Production performance analysis for horizontal wells in composite coal bed methane reservoir

Size: px
Start display at page:

Download "Production performance analysis for horizontal wells in composite coal bed methane reservoir"

Transcription

1 Original Article Production performance analysis for horizontal wells in composite coal bed methane reservoir Energy Exploration & Exploitation 2017, Vol. 35(2) ! The Author(s) 2017 DOI: / journals.sagepub.com/home/eea Zhang Wei, Jiang Ruizhong, Xu Jianchun, Gao Yihua and Yang Yibo Abstract In this paper, the mathematical model of production performance analysis for horizontal wells in composite coal bed methane reservoir is introduced. In this model, two regions with different formation parameters are distinguished, and multiple mechanisms are considered including desorption, diffusion, and viscous flow. Then the solution of horizontal well performance analysis model is obtained by using point source function method, Laplace transform, and Stehfest algorithm comprehensively. The solution of the proposed model is verified with previous work thoroughly. The pressure transient analysis for horizontal well when producing at a constant rate is obtained and discussed. At last, different flow regimes are divided based on pressure transient analysis curves. They are early wellbore storage period, skin factor period, first radial flow regime, transition regime, second radial flow regime, transfer regime, and late pseudo-radial flow regime. The effects of related parameters such as storativity ratio, transfer coefficient, adsorption coefficient, ratio of vertical permeability to horizontal permeability, skin factor, horizontal well position in vertical direction, and inner region radius are analyzed as well according to pressure transient analysis and rate transient analysis curves. The presented work in this paper can give a better understanding of coal bed methane production performance in composite reservoir. Keywords Horizontal well, coal bed methane composite reservoir, pseudo-steady diffusion, pressure transient analysis, rate transient analysis China University of Petroleum (East China), Qingdao, China Corresponding authors: Xu Jianchun, Engineering Building B255, China University of Petroleum (East China), Qingdao , China. illeyupc@gmail.com Zhang Wei, Engineering Building B255, China University of Petroleum (East China), Qingdao , China @s.upc.edu.cn Creative Commons CC-BY: This article is distributed under the terms of the Creative Commons Attribution 3.0 License ( which permits any use, reproduction and distribution of the work without further permission provided the original work is attributed as specified on the SAGE and Open Access pages (

2 Wei et al. 195 Introduction Coal bed methane (CBM) which is an unconventional gas resource (Law and Curtis, 2002) has emerged as an important energy source worldwide over the last several decades and will play an important role in the future energy industry (Flores, 1998; Letcher, 2013; Moore, 2012; Rightmire, 1984). Taking the U.S. as an example, by the end of 2013, the proved reserve of CBM was 12,392 billion cubic feet which took up about 3.5% of U.S. s domestic natural gas reserves. The estimated production was 1466 billion cubic feet which accounted for about 4.75% of U.S. s domestic natural gas production (Source: dnav/ng/ng_enr_coalbed_dcu_nus_a.htm). The pore structure, gas storage, and flow mechanisms for CBM reservoir are different from that of conventional gas reservoirs. CBM reservoir is composed of the matrix, micropores, cleat system, and gas (Anbarci and Ertekin, 1991; Gong et al., 2014; Nie et al., 2012; Remner et al., 1986). CBM reservoir is always taken as a dual porosity media (Warren and Root, 1963) the macropores in the cleat system and those in the coal matrix (Pillalamarry et al., 2011; Yu-long et al., 2014). Most gas stores as adsorption gas in matrix (Gray, 1987; Pillalamarry et al., 2011). To describe the flow mechanisms in CBM reservoir, three processes are distinguished: (1) Desorption. The decrease of reservoir pressure will result in the desorption of gas from coal grains. (2) Diffusion. The gas will diffuse in micropores of matrix. (3) Viscous flow. The transport of gas in the cleat network is Darcy flow because the diameter of the cleat network is large enough (Nie et al., 2012; Yu-long et al., 2014). To analyze the flow characteristics and well performances of CBM reservoir, production performances such as pressure transient analysis (PTA) and rate transient analysis (RTA) are always used as effective tools (Doublet et al., 1994; Nie and Ding, 2010; Yu-long et al., 2014). Besides vertical wells, horizontal wells are also commonly employed in CBM development (Palmer, 2010; Palmer et al., 1993). Many scholars have studied the PTA or RTA for horizontal wells. Sarkar and Rajtar (1994) presented an analytical solution for pressure transient behavior of horizontal wells in a coal bed reservoir considering wellbore storage and skin. A semi-infinite, anisotropic CBM reservoir was assumed. Engler and Rajtar (1992) studied the pressure response for horizontal wells in CBM gas reservoirs, and both analytical solution and numerical simulation results were given in their work. The effects of the diffusion coefficient and desorption coefficient were also analyzed in detail. Clarkson et al. (2009) studied the production performance analysis workflows for both single- and two-phase flow and for both vertical well and horizontal well. King and Ertekin (1988) developed the CBM numerical simulator to study the flow characteristics of vertical fractured well or horizontal well and it can be used for two-phase flow (water and gas). Nie et al. (2012) studied horizontal well production performance analysis method in coal bed seam. Their model was solved using Laplace transform method. The rate decline and pressure transient curves were used to analyze single- and two-phase gas flow. All above works assumed the CBM reservoir to be homogenous and none of them considered composite CBM reservoirs. For composite reservoirs, Shi et al. (2012) demonstrated the equation for horizontal well pressure response in composite oil reservoirs considering the whole horizontal well located in the inner region. However, the type curves were not presented. Zhang et al. (2010) introduced a new well testing model in composite oil reservoirs and the reservoirs were assumed to be linear and have two zones. Formation properties were assumed to be different in different zones. Raghavan (2012) analyzed the pressure transient behaviors in

3 196 Energy Exploration & Exploitation 35(2) a two-region composite system using the Green s function method and the method of sources and sinks. Jiang et al. (2014) presented the rate transient behavior of fractured horizontal well in tight oil reservoir and Zhao et al. (2014) gave the performance of multistage fractured horizontal wells considering stimulated reservoir volume (SRV) for both tight gas and shale gas. The PTA and RTA were presented considering multiple effect parameters. Zhao et al. (2014) illustrated the PTA and PTA behaviors for vertical fractured wells considering multiple transport flow mechanisms including adsorption/desorption, diffusion in matrix, and Darcy flow in cleat fractures. Chen and Raghavan (1995) presented some solving methods for fractured well and horizontal well in composite oil reservoirs. As can be seen, though many scholars have done great jobs on PTA and RTA in composite system, little is related to horizontal well of CBM. This article studies the production performance behavior for single-phase CBM horizontal wells in composite CBM reservoir. The goal is to demonstrate the PTA and RTA results for the better understanding of the production performances in CBM development. The rest of the article is organized as follows: In the next section, the physical model including the transport mechanisms and the production scenario of the CBM reservoir are introduced. In the following section, the mathematical model is established, and the solution of the mathematical model is described in Model solution section. Result and discussion section will demonstrate the type curves and flow regimes based on the solution. Later, the difference among the composite CBM model, the homogenous CBM model, and the composite noncoal reservoir model will be presented. At last, sensitivity analysis will be made on several important parameters affecting CBM production. Physical model The CBM is always taken as a dual-porosity media which contains the matrix and cleat, and they generally have different properties. In our model, four flow stages are considered in CBM production process (see Figures 1 and 2). They are as follows: (1) Desorption. The pressure drop in the cleats will result in the gas desorption from the matrix grain. This phenomenon can be described using Langmuir isotherm theory (Gong et al., 2014; Nie et al., 2012; Zhao et al., 2014). (2) Diffusion in matrix micropores. After desorption from the matrix grain, gas will diffuse into the cleat. In this paper, the pseudo-steady diffusion is used. (3) Flow in cleat. Flow in the cleat network is viscous flow which obeys Figure 1. Gas storage and transport in the coal seam (modified from Remner et al. (1986)).

4 Wei et al. 197 Figure 2. Flow process in CBM reservoir. CBM: coal bed methane. Darcy s law. (4) Flow between the cleat and wellbore. The gas will flow into the wellbore from the cleat due to the decline of wellbore pressure; the flow process among different systems is illustrated in Figure 2. Because the well is always drilled in a region with best reservoir properties, the reservoir properties near the production well are always better than that far away from the well. In order to characterize the heterogeneity of the CBM reservoir, the reservoir in this work is set to be a composite system containing an inner region and an outer region. Also composite models can be applied to describe hydraulic fracturing wells with SRV; however, the proposed model in this work is only developed for characterizing the heterogeneity of CBM reservoir but not for fractured reservoirs. The permeability of inner region is assumed to be larger than that of outer region, and the horizontal well is in the inner region completely (see Figure 3). Mathematical model Mathematical model The production scenario is a radial cylindrical composite reservoir and the cylindrical coordinates are used in model description. Some assumptions are made as follows: 1. Well produces at a constant rate or at a constant wellbore pressure. The outer boundary is assumed to be infinite for the outer region and the top and bottom boundary to be closed. The inner region radius is r 1 (see Figure 3). 2. The CBM flux along the horizontal wellbore is assumed to be uniform. This assumption makes it possible to use point source method. 3. Wellbore storage phenomenon and skin factor are considered. 4. The reservoir is horizontal with uniform thickness of h and initial pressure p i. 5. For the inner region, the horizontal permeability is k h1, the vertical permeability is k v1, the compressibility C t1, and the porosity is 1 ; while for the outer region, they are k h2, k v2, C t2, 2.

5 198 Energy Exploration & Exploitation 35(2) Figure 3. Production scenario of CBM used for mathematical model. CBM: coal bed methane. For the fracture system, according to the assumptions of the physical model, the diffusivity equation for flow of CBM in fracture system can be derived by coupling mass conservation equation, equation of state, and equation of motion k h1 r p 1 þ 1 k h1 p 1 @z k v1 p 1 p 1 ¼ 1 c t1 þ p m T To linearize gas-flow equations, the pseudo-pressure approach is applied. The pseudopressure is defined as follows Z pf p ðpþ ¼ p o Z dp ð2þ ð1þ The mathematical model in the radial cylindrical coordinate system is established. Flow equation in the inner region 1 rk h1 þ r þ ¼ 1C þ p m T Flow equation in the outer region 2 rk h2 þ r þ ¼ 2C þ p m T ð3þ ð4þ The Langmuir isotherm adsorption theory is used to characterize the adsorption characteristics for CBM (Langmuir, 1916) V E ¼ V L L þ ð5þ

6 Wei et al. 199 The diffusion can be described using the pseudo-steady model as follows Outer boundary Interface ¼ DðV m V E Þ 2 ¼ z ¼ 0 or h ð7þ 2 ¼ i, r ¼1 ð8þ 1 ¼ 2, r ¼ r 1 ð9þ k ¼ k r ¼ r 1 ð10þ To describe the point source, the spherical coordinate system is utilized and the radial coordinate is R, the inner boundary condition can be described as p p 1 T sc 4 ffiffiffiffiffiffiffiffiffiffiffiffi k h1 k v1 lim R 1 "!0 p sc ¼ q point source in inner region ð11þ R¼" p p 1 T sc 4 ffiffiffiffiffiffiffiffiffiffiffiffi k h2 k v2 lim R 2 "!0 p sc ¼ q point source in outer region ð12þ R¼" The conversion relationships of all coordinate systems p r ¼ ffiffiffiffiffiffiffiffiffiffiffiffiffiffiffi x 2 þ y 2 p R ¼ ffiffiffiffiffiffiffiffiffiffiffiffiffiffiffiffiffiffiffiffiffiffiffiffiffi x 2 þ y 2 þ z 2 ð13þ ð14þ Dimensionless mathematical model The dimensionless variables are presented in Appendix 1. According to Appendix 1, the dimensionless equations can be obtained. For inner region, with equations (3), (5), and (6), the following equations can be D r D r D þ 2 1D r D md þð1! D ð1! Þ¼ ðv md 1D Þ D For outer region, with equations (4) to (6), the following equations can be 2D r D þ 2 2D r D r D þm1 ð! md ð17þ md ð15þ ð1! Þ¼ ðv md 2D Þ D

7 200 Energy Exploration & Exploitation 35(2) Taking the Laplace transformation with respect to t D, the following model can be obtained for equations (15) to D r D r r 1D r 2D D þ 2 1D r ¼!s 1D þð1! ÞsV md ð19þ 1D þ 2 2D r D sv md ð1! sv md ð1! ¼!s 2D þm1 ð! ÞsV md ð20þ Þ¼ V md 1D Þ¼ V md 2D Substituting equation (21) into (19) and equation (22) into (20), we D r D r r 1D r 2D D þ 2 1D r D ¼!s 1D þð1! f 1 ðsþ ¼!sþð1! Þs sð1! Þþ þ 2 2D r D ¼!s 2D þm1 ð! ð21þ ð22þ Þs sð1! Þþ 1D ð23þ ð24þ Þs sð1! Þþ 2D ð25þ f 2 ðsþ ¼!sþMð1! Þs sð1! Þþ For equations (7) to (10), the dimensionless model is 1D 2D ¼ 0, z D ¼ 0 or h D D D2 ¼ 0, r D ¼1 ð28þ D1 ¼ D2, r D ¼ r 1D ð29þ ¼ D2, r D ¼ r 1D ð30þ D M is the mobility ratio of inner region and outer region. Note that the conventional mobility ratio is defined between two different fluids and here, we use the definition to characterize the CBM mobility ability of inner region and outer region. Equations (11) and (12) and (23) to (30) are the mathematical model for composite CBM reservoir. Model solution To solve the model, the point function method is used. The detailed derivation is shown in Appendix 2. By integrating the point source regarding r 0 from L h =2toL h =2, we can obtain the pressure distribution in the reservoir for horizontal well which can be taken as the line source in the center of composite reservoir. When the horizontal well is completely in the

8 Wei et al. 201 inner region, the pressure distribution when the observation point is in the inner and outer region is shown, respectively, as follows Z 1 HDN1 ¼ 1 Z 1 HDN2 ¼ 1 DN1 0 ¼0 dr0 D r D 5 r 1D ð31þ DN2 0 ¼0 dr0 D r 1D 5 r D 5 1 ð32þ According to the above analysis, the wellbore pressure distribution can be obtained. The integral average method is applied wd ¼ 1 Z 1 HDN1 2 ¼0 dr D ð33þ 1 With the method of Duhamel s principle (Van Everdingen and Hurst, 1949), the solution considering well storage effect and skin effect can be obtained s wdðs, C D Þ ¼ wd þ S ð34þ s þ C D s 2 s wd þ S Using Stehfest numerical inversion algorithm (Stehfest, 1970), the pressure distribution in the real space can be solved and production performance type curves can be plotted. When the well is producing at a constant bottom-hole pressure, the dimensionless rate can be calculated as follows Q D ¼ 1 s 2 wd ð35þ Result and discussion The code of the framework is programed by Matlab2013a. Model verification In this paper, the CBM reservoir is assumed as a composite one which contains two regions with different formation parameters. If some parameters are set to satisfy certain conditions, the new model proposed in this paper can be converted into some other models. For instance, if f 1 ¼ f 2 ¼ f, this new model can be simplified as triple-porosity model in a homogenous reservoir; this simplified model is similar with the model proposed by Zhang et al. (2010). f can be described as equation (A-28) in the paper by Wang et al. (2013). Figure 4 depicts the bottom-hole pressure and bottom-hole pressure derivative curves. As can be seen from Figure 4, this new model can match perfectly with the existing model, which indicates that this proposed model is reliable. Type curves of horizontal wells in CBM reservoir In this section, the production performance curves are analyzed in detail. The dimensionless wellbore pseudo-pressure curve ( wd ) and the pseudo-pressure derivative curve ( 0 wd * t D/ C D ) with respect to t D /C D are plotted as a tool to recognize different flow regimes. Figures 5 and 6 illustrate the type curves of wellbore pseudo-pressure responses for horizontal well

9 202 Energy Exploration & Exploitation 35(2) Figure 4. Comparison between this study and the result proposed by Wang et al. (2013), and the basic parameters are as follows: (S ¼ 0,2,4; C D ¼ 10; L D ¼ 10; r wd ¼ ; z wd ¼ 0.5; x f ¼ 0.01; x m ¼ 0.85; x v ¼ 0.1; vf ¼ 10; mf ¼ 1; mv ¼ 0.2) Note: Definitions of parameters S, C D,L D,r wd,z wd, x f, x m, x v, vf, mf, mv can be found in the paper of Wang et al. (2013). Figure 5. Pressure-transient-type curves of horizontal well in the inner region. model with pseudo-steady diffusion in a CBM reservoir. When producing at a constant production rate, seven main transport regimes can be divided as shown in Figure 5: Regime I: The early wellbore storage period (Guo et al., 2012; Liu et al., 2015; Wang, 2014). The slope is 1 in both the pressure and pressure derivative curve in log-log coordinates.

10 Wei et al. 203 Regime II: The skin factor period (Zhang et al., 2014). This period is between wellbore storage and the early bilinear flow. Regime III: The first radial flow regime. As can be seen, this regime follows regime II. The value of pseudo-pressure derivative curves is constant which is h 1D /4. This regime may not be obvious if the thickness of the reservoir is relatively small. Regime IV: Transition regime. When the pressure spreads to the top or bottom boundaries, the first radial flow regime ends and the transition regime happens. For a homogeneous formation, this regime is also called linear flow regime (Nie et al., 2012). Regime V: Second radial flow regime. The value of pseudo-pressure derivative curves in this regime is a constant which is 0.5. Regime VI: Transfer regime. In this regime, the gas will flow from matrix to cleat because the pressure in cleat decreases significantly and the diffusion/desorption gas becomes an important supplement flowing into the cleats. There is a V shape concave that appears in pressure derivative curves in this regime, which is a typical characteristic for dual porosity media. Regime VII: Late pseudo-radial flow regime. Following regime VI, this regime starts when the gas flow from matrix to cleat and that from cleat to wellbore reach a dynamic balance state. The value in pseudo-pressure derivative curves is constant which is 0.5*M. Type curves for noncoal composite reservoir Until now, the PTA for composite CBM reservoir has been obtained. In addition, when M ¼ ¼ 1, the PTA can also be applied to homogeneous reservoir. Actually, little work has been done on PTA and RTA curves in detail for horizontal well in circular composite reservoir. In our model, if is set to be zero, the PTA or RTA curves can be calculated for the horizontal well in circular composite reservoir without considering the desorption and diffusion flow mechanisms, i.e. the PTA or RTA curves for single porosity reservoir. Figures 5 and 6 are type curves for noncoal gas without desorption and diffusion mechanisms. As can be seen, for the noncoal curves, the regime VI disappears as shown in the brown ellipse. Sensitivity analysis In this section, the influences of seven sensitive parameters are analyzed. Besides the dimensionless wellbore pseudo-pressure curve and the pseudo-pressure derivative curve, the RTAtype curves of the Q D and Q 0 D * t D/C D with respect to t D /C D are also shown. 1. Effect of storage coefficient x. Figure 7 shows the effect of storage coefficient of cleat x on PTA-type curves. According to the analysis in Type curves of horizontal wells in CBM reservoir section, there are seven flow regimes for CBM PTA curves. From Figure 7, we can see the storage coefficient mainly affects regime II, regime IV, and regime VI. A smaller storage coefficient indicates relatively smaller reserves in cleat. When producing at a constant production rate, the pressure spreads quicker than that with a bigger storage coefficient. This leads to earlier appearance of regime IV and regime VI. On the other hand, a smaller storage coefficient causes a deeper V shape concave in regime VI. Figure 8 shows the effect of storage coefficient of cleat x on RTA-type curves. When the storage coefficient increases, the production rate grows bigger, which reflects a high supply capacity for the CBM to flow from cleat to wellbore with the

11 204 Energy Exploration & Exploitation 35(2) Figure 6. Pressure-transient-type curves for noncoal reservoir of horizontal well in the inner region. Figure 7. The effect of storage coefficient on pressure-transient-type curves. constant wellbore pressure. Also, similar to the PTA curves, a smaller storage coefficient causes a deeper V shape concave in regime VI in RTA-type curves. 2. Effect of transfer coefficient. Figure 9 shows the effect of transfer coefficient on PTA-type curves. From Figure 9, we can notice that the transfer coefficient mainly affects regime VI. A smaller transition

12 Wei et al. 205 Figure 8. The effect of storage coefficient on rate-transient-type curves. Figure 9. The effect of transfer coefficient on pressure-transient-type curves. coefficient means relatively smaller diffusion coefficient for CBM. When the diffusion coefficient is small, the CBM is difficult to flow into the cleat from CBM matrix, which makes the beginning time of regime VI to be late. Figure 10 shows the effect of transfer coefficient on RTA-type curves. When the transfer coefficient increases, the production rate will increase accordingly in regime VI. This reflects a high flow capacity from matrix to cleat with the constant wellbore pressure.

13 206 Energy Exploration & Exploitation 35(2) Figure 10. The effect of transfer coefficient on rate-transient-type curves. Figure 11. The effect of adsorption coefficient on pressure-transient-type curves. 3. Effect of adsorption coefficient. Figure 11 shows the effect of adsorption coefficient on PTA-type curves. From Figure 11, we can see the adsorption coefficient mainly affects regime VI. When the adsorption coefficient is small, the CBM is difficult to flow into the cleat from CBM matrix. This results in the late appearance of regime VI and shallow V shape concave in the transfer regime. The effect of adsorption coefficient on RTA-type curves is shown in Figure 12. When the

14 Wei et al. 207 Figure 12. The effect of adsorption coefficient on rate-transient-type curves. Figure 13. The effect of ratio of vertical permeability to horizontal permeability on pressure-transienttype curves. adsorption coefficient is big, the production rate is big in regime VI. This manifests that the CBM has a high flow capacity from matrix to cleat with the constant wellbore pressure. 4. Effect of ratio of vertical permeability to horizontal permeability k v /k h. Figure 13 presents the effect of ratio of vertical permeability to horizontal permeability on PTA-type curves. From Figure 13, we can see the ratio of vertical permeability to horizontal

15 208 Energy Exploration & Exploitation 35(2) Figure 14. The effect of ratio of vertical permeability to horizontal permeability on rate-transient-type curves. Figure 15. The effect of skin factor on pressure-transient-type curves. permeability mainly affects regime II, regime III, and regime IV. When the ratio of vertical permeability to horizontal permeability is small, the horizontal permeability is much larger than the vertical permeability. This results in great difficulty for gas to flow in vertical direction and consumes more energy when the well is producing at a constant gas rate. Consequently, the value of first radial flow in pressure derivative curve becomes big, and

16 Wei et al. 209 Figure 16. The effect of skin factor on rate-transient-type curves. Figure 17. The effect of inner region radius on pressure-transient-type curves. this value equals approximately to (h 1D )/4. Figure 14 shows the effect of ratio of vertical permeability to horizontal permeability on RTA-type curves. When the vertical permeability to horizontal permeability ratio increases, the production rate will increase accordingly in the whole production lifetime. 5. Effect of skin factor. Figure 15 shows the effect of skin factor on PTA-type curves. In the proposed model, the negative skin factor which is difficult to deal with for horizontal well testing is considered.

17 210 Energy Exploration & Exploitation 35(2) Figure 18. The effect of inner region radius on rate-transient-type curves. Figure 19. The effect of horizontal well position in vertical direction on pressure-transient-type curves. This problem can be solved by bringing in effective wellbore radius (Wang et al., 2013). Skin factor mainly affects regime I and regime II as shown in Figure 15. When the skin factor increases, the resistance around wellbore will increase, engendering greater difficulty for gas stream to flow into the wellbore. Figure 16 shows the effect of skin factor on RTAtype curves. When the skin factor increases, the production rate will decrease accordingly in all time for well production lifetime.

18 Wei et al Effect of inner region radius. Figure 17 shows the effect of inner region radius on PTA-type curves. It can be seen that inner region radius mainly affects regimes V and VI. If the inner radius is small, e.g. r 1D ¼ 2, the second radial flow will last short and there will be a deep V shape in regime VI. A smaller inner region radius will decrease the duration of second radial flow. Besides, seen from Figure 18, smaller inner region radius will lead to high production rate in regimes V and VI. When M ¼ 0.5, the outer region permeability is bigger than that of inner region. A smaller inner region radius will lead to smaller flow resistance for gas after the pressure spreads to the inner region boundary, therefore resulting in higher production rate at the late time. 7. Effect of horizontal well position in vertical direction. Figure 19 shows the effect of horizontal well position in vertical direction on PTAtype curves. Three values (0.1, 0.3, 0.5) are set to study the effect of the position. Seen from Figure 19, the horizontal well position in vertical direction mainly affects regime III and regime IV. When the horizontal well position in vertical direction z wd decreases, i.e. the distance between the horizontal well and the upper/bottom boundary decreases, the first radial flow regime lasts shorter and an additional radial flow regime appears. As can be seen from the curves that when z wd ¼ 0.1, the pseudo-pressure derivative curve is a constant. When z wd increases, for example when z wd ¼ 0.3, the additional radial flow regime becomes less obvious. When z wd ¼ 0.5, the additional radial flow regime disappears. This regime is caused by the horizontal well being located away from the center position in z direction. Figure 20 shows the effect of horizontal well position in vertical direction on RTA-type curves. When the horizontal well position in vertical direction z wd decreases, i.e. the distance Figure 20. The effect of horizontal well position in vertical direction on rate-transient-type curves.

19 212 Energy Exploration & Exploitation 35(2) between the horizontal and the upper/bottom boundary decreases, the production rate will decrease in all time for well production lifetime, but the difference is not apparent. Conclusions The main goal of this paper is to present the model and results of an extended study on the production performance behaviors of horizontal wells in composite CBM reservoir. The motivation of this study comes from the fact that the CBM reservoirs are generally heterogeneous. In this paper, the performance analysis model is established considering the transport mechanisms for CBM and solved using semianalytical method. Different flow regimes are divided based on the solution of this model, and sensitivity analysis of uncertain parameters is given. According to the work and results presented, the following conclusions are obtained: 1. The mathematical model is derived for production performance analysis of horizontal wells in composite CBM reservoirs. This model can be used to analyze PTA and RTA for CBM. 2. Seven flow regimes exist in CBM production process including wellbore storage period, skin effect regime, first radial flow regime, transition regime, second radial flow regime, transfer regime, and late-pseudo radial flow regime. 3. The flow mobility ratio of inner and outer region decides the shape of the production performance curves. The value of pseudo-pressure derivative curve for late pseudoradial flow regime is 0.5* M. The value of pseudo-pressure derivative curve for second radial flow regime is There is a big difference between the coal PTA and that of noncoal reservoir: there is no transfer regime for noncoal reservoir. 5. Storage coefficient, transfer coefficient, and adsorption coefficient all have significant effects on pressure transient behavior and production performance behavior, and these parameters mainly affect the transfer regime. Bigger storage coefficient, transfer coefficient, and adsorption coefficient lead to bigger production rate. 6. Considering ratio of vertical permeability to horizontal permeability, the value of pseudopressure derivative curve for early radial flow regime equals approximately to h 1D /4. Declaration of conflicting interests The author(s) declared no potential conflicts of interest with respect to the research, authorship, and/or publication of this article. Funding The author(s) disclosed receipt of the following financial support for the research, authorship, and/or publication of this article: This work is supported by National Natural Science Foundation of China (Grant Nos and ). References Anbarci K and Ertekin T (1991) A simplified approach for in-situ characterization of desorption properties of coal seams. SPE low permeability reservoirs symposium, Society of Petroleum Engineers, Denver, Colorado, USA, April. Chen CC and Raghavan R (1995) Supplement to SPE 28393: Modelling a fractured well in a composite reservoir. SPE Formation Evaluation 10(4):

20 Wei et al. 213 Clarkson CR, Jordan CL, Ilk D, et al. (2009) Production data analysis of fractured and horizontal CBM wells. SPE eastern regional meeting, Society of Petroleum Engineers, Charleston, West Virginia, USA, September. Doublet LE, Pande PK, McCollum TJ, et al. (1994) Decline curve analysis using type curves Analysis of oil well production data using material balance time: Application to field cases. International petroleum conference and exhibition of Mexico, Society of Petroleum Engineers, Veracruz, Mexico, October. Engler TW and Rajtar JM (1992) Pressure transient testing of horizontal wells in coalbed reservoirs. SPE rocky mountain regional meeting, Society of Petroleum Engineers, Casper, Wyoming, USA, May. Flores RM (1998) Coalbed methane: From hazard to resource. International Journal of Coal Geology 35(1): Gong B, Zhang Y, Fan Y, et al. (2014) A novel approach to model enhanced coal bed methane recovery with discrete fracture characterizations in a geochemical simulator. Journal of Petroleum Science and Engineering 124: Gray I (1987) Reservoir engineering in coal seams: Part 1 The physical process of gas storage and movement in coal seams. SPE Reservoir Engineering 2(01): Guo J, Zhang L, Wang H, et al. (2012) Pressure transient analysis for multi-stage fractured horizontal wells in shale gas reservoirs. Transport in Porous Media 93(3): Jiang R, Xu J, Sun Z, et al. (2014) Rate transient analysis for multistage fractured horizontal well in tight oil reservoirs considering stimulated reservoir volume. Mathematical Problems in Engineering 2014: King GR and Ertekin T (1988) Comparative evaluation of vertical and horizontal drainage wells for the degasification of coal seams. SPE Reservoir Engineering 3(2): Langmuir I (1916) The constitution and fundamental properties of solids and liquids. Part I. Solids. Journal of the American Chemical Society 38(11): Law BE and Curtis JB (2002) Introduction to unconventional petroleum systems. AAPG Bulletin 86(11): Letcher T (ed.) (2013) Future Energy: Improved, Sustainable and Clean Options for Our Planet. Amsterdam, The Netherlands: Elsevier. Liu M, Xiao C, Wang Y, et al. (2015) Sensitivity analysis of geometry for multi-stage fractured horizontal wells with consideration of finite-conductivity fractures in shale gas reservoirs. Journal of Natural Gas Science and Engineering 22: Moore TA (2012) Coalbed methane: A review. International Journal of Coal Geology 101: Nie RS and Ding Y (2010) Research on the nonlinear spherical percolation model with quadratic pressure gradient and its percolation characteristics. Natural Science 2(02): 98. Nie RS, Meng YF, Guo JC, et al. (2012) Modeling transient flow behavior of a horizontal well in a coal seam. International Journal of Coal Geology 92: Ozkan E (1994) New solutions for well-test-analysis problems: Part III Additional algorithms. SPE Annual Technical Conference and Exhibition, Society of Petroleum Engineers, New Orleans, Louisiana, September. Ozkan E and Raghavan R (1991) New solutions for well-test-analysis problems: Part 1 Analytical considerations (includes associated papers and 29213). SPE Formation Evaluation 6(03): Palmer I (2010) Coalbed methane completions: A world view. International Journal of Coal Geology 82(3): Palmer ID, Lambert SW and Spitler JL (1993) Coalbed methane well completions and stimulations. Hydrocarbons from Coal. Boulder, USA: AAPG Publications, pp Pillalamarry M, Harpalani S and Liu S (2011) Gas diffusion behavior of coal and its impact on production from coalbed methane reservoirs. International Journal of Coal Geology 86(4):

21 214 Energy Exploration & Exploitation 35(2) Raghavan R (2012) A horizontal well in a composite system with planar interfaces. Advances in Water Resources 38: Remner DJ, Ertekin T, Sung W, et al. (1986) A parametric study of the effects of coal seam properties on gas drainage efficiency. SPE Reservoir Engineering 1(06): Rightmire CT (1984) Coalbed methane resource. American Association of Petroleum Geologists Studies in Geology 138: Sarkar PS and Rajtar JM (1994) Transient well testing of coalbed methane reservoirs with horizontal wells. Permian basin oil and gas recovery conference, Society of Petroleum Engineers, Midland, Texas, March. Shi G, Nie R, Lu J, et al. (2012) Well test model of horizontal well in 2-Zoned composite reservoir and example interpretation. Journal of Southwest Petroleum University (Science & Technology Edition) 34(5): Stehfest H (1970) Algorithm 368: Numerical inversion of Laplace transforms (D5). Communications of the ACM 13(1): Van Everdingen AF and Hurst W (1949) The application of the Laplace transformation to flow problems in reservoirs. Transactions of AIME 186(305): Wang H, Zhang L and Guo J (2013) A new rod source model for pressure transient analysis of horizontal wells with positive/negative skin in triple-porosity reservoirs. Journal of Petroleum Science and Engineering 108: Wang HT (2014) Performance of multiple fractured horizontal wells in shale gas reservoirs with consideration of multiple mechanisms. Journal of Hydrology 510: Warren JE and Root PJ (1963) The behavior of naturally fractured reservoirs. SPE Journal 3(3): Yu-long Z, Lie-Hui Z, Guo-Qing F, et al. (2014) Performance analysis of fractured wells with stimulated reservoir volume in coal seam reservoirs. Oil & Gas Science and Technology Revue d IFP Energies nouvelles 71(1): Zhang LH, Guo JJ and Liu QG (2010) A new well test model for a two-zone linear composite reservoir with varied thicknesses. Journal of Hydrodynamics, Series B 22(6): Zhang LH, Zhao YL and Liu QG (2014) Well-test-analysis and applications of source functions in a bi-zonal composite gas reservoir. Petroleum Science and Technology 32(8): Zhao YL, Zhang LH, Luo JX, et al. (2014) Performance of fractured horizontal well with stimulated reservoir volume in unconventional gas reservoir. Journal of Hydrology 512: Appendix Notation C wellbore storage factor, m 3 /Pa C t total compressibility, Pa 1 D diffusion coefficient, m 2 /s h reservoir thickness, m I k (x) the modified Bessel function of first kind k permeability, m 2 K k (x) the modified Bessel function of second kind L reference length, m L h the length of horizontal well, m M mobility ratio of inner region and outer region, fraction

22 Wei et al. 215 P pressure, Pa q point source production rate, m 3 /s Q well production rate, m 3 /s r,, z cylindrical coordinates s variable of Laplace space with respect to t D S skin factor, dimensionless t time, s T temperature, K x,y,z Cartesian coordinates V E equilibrium volumetric gas concentration, m 3 /m 3 V m volumetric gas concentration, m 3 /m 3 V L Langmuir volume, m 3 /m 3 Z compressibility factor, fraction a shape factor, m 2 adsorption coefficient for matrix, dimensionless Z diffusivity ratio, fraction transfer coefficient, dimensionless l fluid viscosity, Pa s porosity, fraction pseudo pressure, Pa/s L Langmuir pseudo pressure, Pa/s x storativity ratio, fraction Subscripts and superscripts D dimensionless i initial h horizontal direction sc standard condition v vertical direction - Laplace 1 inner region 2 outer region Appendix 1. Dimensionless definition D1 ¼ 2k h1ht sc ð i 1 Þ p sc QT D2 ¼ 2k h1ht sc ð i 2 Þ p sc QT ¼ 1 C t1 þ 2k h1hv Ei Q

23 216 Energy Exploration & Exploitation 35(2)! ¼ 1C t1 t D ¼ k h1t L 2 M ¼ k h kh 1 2 k h kh ¼ C t C t 1 r D ¼ r L sffiffiffiffiffiffi z 1D ¼ z k h1 L k v1 sffiffiffiffiffiffiffiffiffiffiffiffiffi k v1 k h2 z 2D ¼ z 1D k h1 k v2 V md ¼ V Ei V m V Ei 2 V ED ¼ V Ei V E V Ei ¼ p scqt L 2k h1 ht sc i ð L þ ¼ 2L2 h Q DV Ei sffiffiffiffiffiffiffiffiffiffiffiffiffiffiffiffiffiffiffi n ¼ f 1 þ n2 2 n ¼ h 2 1D sffiffiffiffiffiffiffiffiffiffiffiffiffiffiffiffiffiffiffi f 2 þ n2 2 h 2 2D Þ C D ¼ C 2hC t1 L 2 z wd ¼ z h Appendix 2. Solving the mathematic model The point function method is used (Jiang et al., 2014; Ozkan, 1994; Ozkan and Raghavan, 1991; Wang et al., 2013) to solve this model. As the point function may be in the inner region or in the outer region shown in Figure 21.

24 Wei et al. 217 Figure 21. Point sources. Using the same method, when the point source is in the inner region (Ozkan, 1994; Zhang et al., 2014) shown in Figure 21, the pressure distribution in the inner and outer region is " DN1 ¼ 1 X þ1 pffiffiffiffi pffiffiffiffi I k f 1r 0 2u D K k f 1rD cosð 0 Þþ 2 Xþ1 cos n z 1D cos n z0 1D h 1D h 1D Xþ1 k¼ 1 k¼ 1 þ 2 Xþ1 n¼1 DN2 ¼ 1 2u I k n r 0 D Kk ð n r D Þcosð 0 cos n z 1D h 1D cos n z0 1D h 1D Xþ1 " Xþ1 k¼ 1 X þ1 k¼ 1 k¼ 1 Þþ Xþ1 k¼ 1 c k0 I k n¼1 p rd ffiffiffiffi f 1 c kn I k ð n r D Þcosð 0 Þ cosð 0 Þ # ð36þ pffiffiffiffi d k0 K k f 2rD cosð 0 Þþ 2 Xþ1 cos n z 2D cos n z0 2D h n¼1 2D h 2D # ð37þ d kn K k n r D cos 0 ð Þ c kn ¼ C kn I k n r 0 D ð38þ d kn ¼ M D kn I k n r 0 D r 1D ð39þ C kn ¼ M nk 0 k ð nr 1D ÞK k n r 1D n K k ð n r 1D ÞK 0 k nr 1D M n I 0 k ð nr 1D ÞK k n r 1D n I k ð n r 1D ÞK 0 k ð40þ nr 1D D kn ¼ A kn ð41þ

Simulation of Pressure Transient Behavior for Asymmetrically Finite-Conductivity Fractured Wells in Coal Reservoirs

Simulation of Pressure Transient Behavior for Asymmetrically Finite-Conductivity Fractured Wells in Coal Reservoirs Transp Porous Med (2013) 97:353 372 DOI 10.1007/s11242-013-0128-z Simulation of Pressure Transient Behavior for Asymmetrically Finite-Conductivity Fractured Wells in Coal Reservoirs Lei Wang Xiaodong Wang

More information

Coalbed Methane Properties

Coalbed Methane Properties Coalbed Methane Properties Subtopics: Permeability-Pressure Relationship Coal Compressibility Matrix Shrinkage Seidle and Huitt Palmer and Mansoori Shi and Durucan Constant Exponent Permeability Incline

More information

Performance Analysis of Fractured Wells with Stimulated Reservoir Volume in Coal Seam Reservoirs

Performance Analysis of Fractured Wells with Stimulated Reservoir Volume in Coal Seam Reservoirs Oil & Gas Science and Technology Rev. IFP Energies nouvelles (2016) 71, 8 Ó Z. Yu-long et al., published by IFP Energies nouvelles, 2014 DOI: 10.2516/ogst/2014026 Dossier Second and Third Generation Biofuels:

More information

Flow of Non-Newtonian Fluids within a Double Porosity Reservoir under Pseudosteady State Interporosity Transfer Conditions

Flow of Non-Newtonian Fluids within a Double Porosity Reservoir under Pseudosteady State Interporosity Transfer Conditions SPE-185479-MS Flow of Non-Newtonian Fluids within a Double Porosity Reservoir under Pseudosteady State Interporosity Transfer Conditions J. R. Garcia-Pastrana, A. R. Valdes-Perez, and T. A. Blasingame,

More information

The SPE Foundation through member donations and a contribution from Offshore Europe

The SPE Foundation through member donations and a contribution from Offshore Europe Primary funding is provided by The SPE Foundation through member donations and a contribution from Offshore Europe The Society is grateful to those companies that allow their professionals to serve as

More information

Pressure Transient Analysis COPYRIGHT. Introduction to Pressure Transient Analysis. This section will cover the following learning objectives:

Pressure Transient Analysis COPYRIGHT. Introduction to Pressure Transient Analysis. This section will cover the following learning objectives: Pressure Transient Analysis Core Introduction to Pressure Transient Analysis This section will cover the following learning objectives: Describe pressure transient analysis (PTA) and explain its objectives

More information

Novel Approaches for the Simulation of Unconventional Reservoirs Bicheng Yan*, John E. Killough*, Yuhe Wang*, Yang Cao*; Texas A&M University

Novel Approaches for the Simulation of Unconventional Reservoirs Bicheng Yan*, John E. Killough*, Yuhe Wang*, Yang Cao*; Texas A&M University SPE 168786 / URTeC 1581172 Novel Approaches for the Simulation of Unconventional Reservoirs Bicheng Yan*, John E. Killough*, Yuhe Wang*, Yang Cao*; Texas A&M University Copyright 2013, Unconventional Resources

More information

REDESIGNING COALBED METHANE RESERVOIR ENGINEERING: a reflective analysis

REDESIGNING COALBED METHANE RESERVOIR ENGINEERING: a reflective analysis REDESIGNING COALBED METHANE RESERVOIR ENGINEERING: a reflective analysis Turgay Ertekin Penn State University Fall 2014 Energy Exchange Seminar Series January 22, 2014 A MULTIPLE CHOICE QUESTION: REVISITING

More information

Physical Models for Shale Gas Reservoir Considering Dissolved Gas in Kerogens

Physical Models for Shale Gas Reservoir Considering Dissolved Gas in Kerogens Physical Models for Shale Gas Reservoir Considering Dissolved Gas in Kerogens Cai Wang, Gang Lei, Weirong Li, Lei Wang, Zunyi Xia, and Huijie Wang, Peking University Abstract To figure out the complexity

More information

Integrated Approach to Drilling Project in Unconventional Reservoir Using Reservoir Simulation

Integrated Approach to Drilling Project in Unconventional Reservoir Using Reservoir Simulation Integrated Approach to Drilling Project in Unconventional Reservoir Using Reservoir Simulation Jerzy Stopa 1,*, Rafał Wiśniowski 1, Paweł Wojnarowski 1, Damian Janiga 1, and Krzysztof Skrzypaszek 1 1 AGH

More information

Faculty Curriculum Vitae

Faculty Curriculum Vitae NAME: Guan Qin EDUCATION Ph.D. Petroleum Engineering, University of Wyoming, U.S.A., 1995 M.E. Petroleum Engineering, Research Institute for Petroleum Exploration & Development, China National Petroleum

More information

American Journal of Energy Engineering

American Journal of Energy Engineering American Journal of Energy Engineering 2017; 5(3): 11-16 http://www.sciencepublishinggroup.com/j/ajee doi: 10.11648/j.ajee.20170503.11 ISSN: 2329-1648 (Print); ISSN: 2329-163X (Online) Exploitation Evaluation

More information

Triple Medium Physical Model of Post Fracturing High-Rank Coal Reservoir in Southern Qinshui Basin

Triple Medium Physical Model of Post Fracturing High-Rank Coal Reservoir in Southern Qinshui Basin Journal of Earth Science, Vol. 26, No. 3, p. 407 415, June 2015 ISSN 1674-487X Printed in China DOI: 10.1007/s12583-014-0501-z Triple Medium Physical Model of Post Fracturing High-Rank Coal Reservoir in

More information

Faculty of Science and Technology MASTER S THESIS

Faculty of Science and Technology MASTER S THESIS Study program/ Specialization: Faculty of Science and Technology MASTER S THESIS MSc Petroleum Engineering / Reservoir Engineering Spring semester, 2015 Open access Writer: Mahmoud S M Alaassar (Writer

More information

COMPARISON OF SINGLE, DOUBLE, AND TRIPLE LINEAR FLOW MODELS FOR SHALE GAS/OIL RESERVOIRS. A Thesis VARTIT TIVAYANONDA

COMPARISON OF SINGLE, DOUBLE, AND TRIPLE LINEAR FLOW MODELS FOR SHALE GAS/OIL RESERVOIRS. A Thesis VARTIT TIVAYANONDA COMPARISON OF SINGLE, DOUBLE, AND TRIPLE LINEAR FLOW MODELS FOR SHALE GAS/OIL RESERVOIRS A Thesis by VARTIT TIVAYANONDA Submitted to the Office of Graduate Studies of Texas A&M University in partial fulfillment

More information

THEORETICAL RESERVOIR MODELS

THEORETICAL RESERVOIR MODELS THEORETICAL RESERVOIR MODELS TIME EARLY TIME MIDDLE TIME AREA OF INTEREST NEAR WELLBORE RESERVOIR MODELS Wellbore storage and Skin Infinite conductivity vertical fracture Finite conductivity vertical fracture

More information

Pressure-Transient Behavior of DoublePorosity Reservoirs with Transient Interporosity Transfer with Fractal Matrix Blocks

Pressure-Transient Behavior of DoublePorosity Reservoirs with Transient Interporosity Transfer with Fractal Matrix Blocks SPE-190841-MS Pressure-Transient Behavior of DoublePorosity Reservoirs with Transient Interporosity Transfer with Fractal Matrix Blocks Alex R. Valdes-Perez and Thomas A. Blasingame, Texas A&M University

More information

Pressure Transient data Analysis of Fractal Reservoir with Fractional Calculus for Reservoir Characterization

Pressure Transient data Analysis of Fractal Reservoir with Fractional Calculus for Reservoir Characterization P-408 Summary Pressure Transient data Analysis of Fractal Reservoir with Fractional Calculus for Reservoir Characterization Asha S. Mishra* and S. K. Mishra 1 The present paper describes the pressure transient

More information

Reservoir Flow Properties Fundamentals COPYRIGHT. Introduction

Reservoir Flow Properties Fundamentals COPYRIGHT. Introduction Reservoir Flow Properties Fundamentals Why This Module is Important Introduction Fundamental understanding of the flow through rocks is extremely important to understand the behavior of the reservoir Permeability

More information

UNIVERSITY OF CALGARY. A New Method For Production Data Analysis Using Superposition-Rate. Peter Yue Liang A THESIS

UNIVERSITY OF CALGARY. A New Method For Production Data Analysis Using Superposition-Rate. Peter Yue Liang A THESIS UNIVERSITY OF CALGARY A New Method For Production Data Analysis Using Superposition-Rate by Peter Yue Liang A THESIS SUBMITTED TO THE FACULTY OF GRADUATE STUDIES IN PARTIAL FULFILMENT OF THE REQUIREMENTS

More information

Adaptability analysis of radiative transport diffusion approximation in planar-graded-index media

Adaptability analysis of radiative transport diffusion approximation in planar-graded-index media Research Article Adaptability analysis of radiative transport diffusion approximation in planar-graded-index media Advances in Mechanical Engineering 2018, ol. 10(11) 1 6 Ó The Author(s) 2018 DOI: 10.1177/1687814018809613

More information

The Mathematical Analysis of Temperature-Pressure-Adsorption Data of Deep Shale Gas

The Mathematical Analysis of Temperature-Pressure-Adsorption Data of Deep Shale Gas International Journal of Oil, Gas and Coal Engineering 2018; 6(6): 177-182 http://www.sciencepublishinggroup.com/j/ogce doi: 10.11648/j.ogce.20180606.18 ISSN: 2376-7669 (Print); ISSN: 2376-7677(Online)

More information

SPE MS. Copyright 2014, Society of Petroleum Engineers

SPE MS. Copyright 2014, Society of Petroleum Engineers SPE-168966-MS Modeling Analysis of Transient Pressure and Flow Behavior at Horizontal Wells with Multi-Stage Hydraulic Fractures in Shale Gas Reservoirs Cong Wang, Colorado School of Mines and Yu-Shu Wu,

More information

Shale Gas Reservoir Simulation in Eclipse

Shale Gas Reservoir Simulation in Eclipse PNG 512- Project Report Shale Gas Reservoir Simulation in Eclipse Submitted By: Priyank Srivastava Thought by: Dr. Turgay Ertekin Spring-2017 Model Description From Given Eclipse File Reservoir dimensions

More information

Factors that affect pressure distribution of horizontal wells in a layered reservoir with simultaneous gas cap and bottom water drive

Factors that affect pressure distribution of horizontal wells in a layered reservoir with simultaneous gas cap and bottom water drive Vol. 6(1), pp. 1-9, January, 2015 DOI: 10.5897/JPGE 2013.0180 Article Number: 3C2A1DC50083 ISSN 2I41-2677 Copyright 2015 Author(s) retain the copyright of this article http://www.academicjournals.org/jpge

More information

Apparent Permeability Effective Stress Laws: Misleading Predictions Resulting from Gas Slippage, Northeastern British Columbia

Apparent Permeability Effective Stress Laws: Misleading Predictions Resulting from Gas Slippage, Northeastern British Columbia Apparent Permeability Effective Stress Laws: Misleading Predictions Resulting from Gas Slippage, Northeastern British Columbia E.A. Letham, University of British Columbia, Vancouver, BC, ealetham@gmail.com

More information

Study on Coal Methane Adsorption Behavior Under Variation Temperature and Pressure-Taking Xia-Yu-Kou Coal for Example

Study on Coal Methane Adsorption Behavior Under Variation Temperature and Pressure-Taking Xia-Yu-Kou Coal for Example International Journal of Oil, Gas and Coal Engineering 2018; 6(4): 60-66 http://www.sciencepublishinggroup.com/j/ogce doi: 10.11648/j.ogce.20180604.13 ISSN: 2376-7669 (Print); ISSN: 2376-7677(Online) Study

More information

Modeling and Simulation of Natural Gas Production from Unconventional Shale Reservoirs

Modeling and Simulation of Natural Gas Production from Unconventional Shale Reservoirs International Journal of Clean Coal and Energy, 2015, 4, 23-32 Published Online May 2015 in SciRes. http://www.scirp.org/journal/ijcce http://dx.doi.org/10.4236/ijcce.2015.42003 Modeling and Simulation

More information

The sensitivity of the array resistivity log to mud. inversion for improved oil water recognition

The sensitivity of the array resistivity log to mud. inversion for improved oil water recognition Pet.Sci.()9:9-3 DOI.7/s8---y 9 The sensitivity of the array resistivity log to mud inversion for improved oil water recognition Deng Shaogui, Sun Qingtao, Li Hu, Huo Ningning and He Xuquan School of Geosciences,

More information

A NOVEL APPROACH FOR THE RAPID ESTIMATION OF DRAINAGE VOLUME, PRESSURE AND WELL RATES. A Thesis NEHA GUPTA

A NOVEL APPROACH FOR THE RAPID ESTIMATION OF DRAINAGE VOLUME, PRESSURE AND WELL RATES. A Thesis NEHA GUPTA A NOVEL APPROACH FOR THE RAPID ESTIMATION OF DRAINAGE VOLUME, PRESSURE AND WELL RATES A Thesis by NEHA GUPTA Submitted to the Office of Graduate Studies of Texas A&M University in partial fulfillment of

More information

2012 International Pittsburgh Coal Conference Pittsburgh, PA, USA October 15-18, 2012

2012 International Pittsburgh Coal Conference Pittsburgh, PA, USA October 15-18, 2012 2012 International Pittsburgh Coal Conference Pittsburgh, PA, USA October 15-18, 2012 A Field Study on Simulation of CO 2 injection-ecbm Production and Prediction of CO2 Storage Capacity in Un-mineable

More information

Production performance analysis of fractured horizontal well in tight oil reservoir

Production performance analysis of fractured horizontal well in tight oil reservoir J Petrol Explor Prod Technol (2018) 8:229 247 https://doi.org/10.1007/s13202-017-0339-x ORIGINAL PAPER - PRODUCTION ENGINEERING Production performance analysis of fractured horizontal well in tight oil

More information

Reservoir Engineering Aspects of Unconventional Reservoirs A Brief Introduction

Reservoir Engineering Aspects of Unconventional Reservoirs A Brief Introduction Reservoir Engineering Aspects of Unconventional Reservoirs A Brief Introduction Tom BLASINGAME Petroleum Engineering Texas A&M University College Station, TX 77843-3116 (USA) +1.979.255.8808 t-blasingame@tamu.edu

More information

SPE ATCE 2013 Special Session So We Frac'd the Well, Now What? Reservoir Engineering Aspects of Unconventional Reservoirs

SPE ATCE 2013 Special Session So We Frac'd the Well, Now What? Reservoir Engineering Aspects of Unconventional Reservoirs SPE ATCE 2013 Special Session So We Frac'd the Well, Now What? Reservoir Engineering Aspects of Unconventional Reservoirs Tom BLASINGAME Petroleum Engineering Texas A&M University College Station, TX 77843-3116

More information

Rate Transient Analysis COPYRIGHT. Introduction. This section will cover the following learning objectives:

Rate Transient Analysis COPYRIGHT. Introduction. This section will cover the following learning objectives: Learning Objectives Rate Transient Analysis Core Introduction This section will cover the following learning objectives: Define the rate time analysis Distinguish between traditional pressure transient

More information

Determination of Gas Well Productivity by Logging Parameters

Determination of Gas Well Productivity by Logging Parameters Earth Science Research; Vol. 6, No. ; 017 ISSN 197-054 E-ISSN 197-0550 Published by Canadian Center of Science and Education Determination of Gas Well Productivity by Logging Parameters Weijun Hao 1, Zhihong

More information

Technology of Production from Shale

Technology of Production from Shale Technology of Production from Shale Doug Bentley, European Unconventional, Schlumberger May 29 th, 2012 Johannesburg, South Africa What are Unconventional Reservoirs Shale both Gas & Oil Coal Bed Methane

More information

SPE Copyright 2009, Society of Petroleum Engineers

SPE Copyright 2009, Society of Petroleum Engineers SPE 124961 A Numerical Study of Performance for Tight Gas and Shale Gas Reservoir Systems C.M. Freeman, Texas A&M University, G. Moridis, Lawrence Berkeley National Laboratory, D. Ilk, Texas A&M University,

More information

11th Biennial International Conference & Exposition

11th Biennial International Conference & Exposition Analysis of Cleats in Coal Bed Methane wells from Micro Resistivity Image and Cross Dipole Array Acoustic Log Muhammad Ali* (ONGC), Partho Sarathi Sen (ONGC) Email ID: muhammadali_nzr@yahoo.co.in Keywords

More information

Open Access An Experimental Study on Percolation Characteristics of a Single-Phase Gas in a Low-Permeability Volcanic Reservoir Under High Pressure

Open Access An Experimental Study on Percolation Characteristics of a Single-Phase Gas in a Low-Permeability Volcanic Reservoir Under High Pressure Send Orders for Reprints to reprints@benthamscience.ae 186 The Open Petroleum Engineering Journal, 2015, 8, 186-192 Open Access An Experimental Study on Percolation Characteristics of a Single-Phase Gas

More information

Chapter Seven. For ideal gases, the ideal gas law provides a precise relationship between density and pressure:

Chapter Seven. For ideal gases, the ideal gas law provides a precise relationship between density and pressure: Chapter Seven Horizontal, steady-state flow of an ideal gas This case is presented for compressible gases, and their properties, especially density, vary appreciably with pressure. The conditions of the

More information

Far East Journal of Applied Mathematics

Far East Journal of Applied Mathematics Far East Journal of Applied Mathematics Volume, Number, 29, Pages This paper is available online at http://www.pphmj.com 29 Pushpa Publishing House EVELOPMENT OF SOLUTION TO THE IFFUSIVITY EQUATION WITH

More information

Evaluation and Forecasting Performance of Naturally Fractured Reservoir Using Production Data Inversion.

Evaluation and Forecasting Performance of Naturally Fractured Reservoir Using Production Data Inversion. Evaluation and Forecasting Performance of Naturally Fractured Reservoir Using Production Data Inversion. T. Marhaendrajana, S. Rachmat, and K. Anam; Institut Teknologi Bandung. I. ABSTRACT Many oil and

More information

UNIVERSITY OF OKLAHOMA GRADUATE COLLEGE INTEGRATED PRODUCTION DATA ANALYSIS OF HORIZONTAL FRACTURED WELL IN UNCONVENTIONAL RESERVOIR A THESIS

UNIVERSITY OF OKLAHOMA GRADUATE COLLEGE INTEGRATED PRODUCTION DATA ANALYSIS OF HORIZONTAL FRACTURED WELL IN UNCONVENTIONAL RESERVOIR A THESIS UNIVERSITY OF OKLAHOMA GRADUATE COLLEGE INTEGRATED PRODUCTION DATA ANALYSIS OF HORIZONTAL FRACTURED WELL IN UNCONVENTIONAL RESERVOIR A THESIS SUBMITTED TO THE GRADUATE FACULTY in partial fulfillment of

More information

Propagation of Radius of Investigation from Producing Well

Propagation of Radius of Investigation from Producing Well UESO #200271 (EXP) [ESO/06/066] Received:? 2006 (November 26, 2006) Propagation of Radius of Investigation from Producing Well B.-Z. HSIEH G. V. CHILINGAR Z.-S. LIN QUERY SHEET Q1: Au: Please review your

More information

The Effect of Well Patterns on Surfactant/Polymer Flooding

The Effect of Well Patterns on Surfactant/Polymer Flooding International Journal of Energy and Power Engineering 2016; 5(6): 189-195 http://www.sciencepublishinggroup.com/j/ijepe doi: 10.11648/j.ijepe.20160506.13 ISSN: 2326-957X (Print); ISSN: 2326-960X (Online)

More information

Fracture-matrix transfer function in fractured porous media

Fracture-matrix transfer function in fractured porous media Fluid Structure Interaction VII 109 Fracture-matrix transfer function in fractured porous media A. J. Mahmood Department of Chemical Industries, Al-Anbar Technical Institute, Iraq Abstract One of the mathematical

More information

Analysis of Micro-fractures in Coal for Coal Bed Methane Exploitation in Jharia Coal Field

Analysis of Micro-fractures in Coal for Coal Bed Methane Exploitation in Jharia Coal Field 5th Conference & Exposition on Petroleum Geophysics, Hyderabad-2004, India PP 904-909 Analysis of Micro-fractures in Coal for Coal Bed Methane Exploitation in Jharia Coal Field Dipak Mandal, D.C. Tewari

More information

The Analytic Hierarchy Process for the Reservoir Evaluation in Chaoyanggou Oilfield

The Analytic Hierarchy Process for the Reservoir Evaluation in Chaoyanggou Oilfield Advances in Petroleum Exploration and Development Vol. 6, No. 2, 213, pp. 46-5 DOI:1.3968/j.aped.1925543821362.1812 ISSN 1925-542X [Print] ISSN 1925-5438 [Online].cscanada.net.cscanada.org The Analytic

More information

HEAT CONDUCTION USING GREEN S FUNCTIONS

HEAT CONDUCTION USING GREEN S FUNCTIONS HEAT CONDUCTION USING GREEN S FUNCTIONS Preface to the first edition Preface to the second edition Author Biographies Nomenclature TABLE OF CONTENTS FOR SECOND EDITION December 2009 Page viii x xii xiii

More information

Tom BLASINGAME Texas A&M U. Slide 1

Tom BLASINGAME Texas A&M U. Slide 1 Petroleum Engineering 620 Fluid Flow in Petroleum Reservoirs Petrophysics Lecture 1 Introduction to Porosity and Permeability Concepts Tom BLASINGAME t-blasingame@tamu.edu Texas A&M U. Slide 1 From: Jorden,

More information

Introduction to Well Stimulation

Introduction to Well Stimulation Introduction to Well Stimulation PNGE 691A Ali Takbiri-Borujeni West Virginia University Fall 2018 Ali Takbiri-Borujeni PNGE 691A: Introduction to Well Stimulation 1 / 46 What is well stimulation? Main

More information

A Course in Fluid Flow in Petroleum Reservoirs Syllabus Thomas A. Blasingame Petroleum Engineering/Texas A&M University Spring 2005

A Course in Fluid Flow in Petroleum Reservoirs Syllabus Thomas A. Blasingame Petroleum Engineering/Texas A&M University Spring 2005 Instructor: Thomas A. Blasingame, P.E., Ph.D. Phone: +1.979.845.2292 Department of Petroleum Engineering Fax: +1.979.845.7142 Texas A&M University E-mail: t-blasingame@tamu.edu College Station, TX 77843-3116

More information

Numerical Simulation and Multiple Realizations for Sensitivity Study of Shale Gas Reservoir

Numerical Simulation and Multiple Realizations for Sensitivity Study of Shale Gas Reservoir SPE 141058 Numerical Simulation and Multiple Realizations for Sensitivity Study of Shale Gas Reservoir A.Kalantari-Dahaghi, S.D.Mohaghegh,SPE, Petroleum Engineering and Analytic Research Laboratory(PEARL)

More information

PORE PRESSURE EVOLUTION AND CORE DAMAGE: A COMPUTATIONAL FLUID DYNAMICS APPROACH

PORE PRESSURE EVOLUTION AND CORE DAMAGE: A COMPUTATIONAL FLUID DYNAMICS APPROACH SCA211-41 1/6 PORE PRESSURE EVOLUTION AND CORE DAMAGE: A COMPUTATIONAL FLUID DYNAMICS APPROACH I. Zubizarreta, M. Byrne, M.A. Jimenez, E. Roas, Y. Sorrentino and M.A. Velazco. Senergy. Aberdeen, United

More information

SPE This paper presents our continual effort in developing simulation models and tools for quantitative studies of unconventional

SPE This paper presents our continual effort in developing simulation models and tools for quantitative studies of unconventional SPE 163819 Characterizing Hydraulic Fractures in Shale Gas Reservoirs Using Transient Pressure Tests Cong Wang, SPE, Colorado School of Mines, Didier Ding, SPE, IFPEN, and Yu-Shu Wu, SPE, Colorado School

More information

RPSEA Research Project Overview

RPSEA Research Project Overview RPSEA Research Project Overview September 28, 2011 PTTC/DOE/RSPEA Gas Shales Workshop Charlotte Schroeder Secure Energy for America Secure Energy for America RPSEA A non profit corporation formed by a

More information

University of Alberta

University of Alberta University of Alberta PRODUCTION DATA ANALYSIS OF TIGHT HYDROCARBON RESERVOIRS by Shahab Kafeel Siddiqui A thesis submitted to the Faculty of Graduate Studies and Research in partial fulfillment of the

More information

(Page 2 of 7) Reservoir Petrophysics: Introduction to Geology (continued) Be familiar with Reservoir Petrophysics (continued)... Slides Reservoi

(Page 2 of 7) Reservoir Petrophysics: Introduction to Geology (continued) Be familiar with Reservoir Petrophysics (continued)... Slides Reservoi (Page 1 of 7) Introduction to Reservoir Engineering: Be familiar with the World Oil Resources...Slides 3-4 Be familiar with the Reservoir Structure/Depositional Environments... Slide 5 Be familiar with

More information

Perspectives on the Interpretation of Flowback Data from Wells in Shale Reservoir Systems

Perspectives on the Interpretation of Flowback Data from Wells in Shale Reservoir Systems SPE Workshop Production and Reservoir Performance Through Pressure Management Perspectives on the Interpretation of Flowback Data from Wells in Shale Reservoir Systems Tom BLASINGAME Petroleum Engineering

More information

RATE OF FLUID FLOW THROUGH POROUS MEDIA

RATE OF FLUID FLOW THROUGH POROUS MEDIA RATE OF FLUID FLOW THROUGH POROUS MEDIA Submitted by Xu Ming Xin Kiong Min Yi Kimberly Yip Juen Chen Nicole A project presented to the Singapore Mathematical Society Essay Competition 2013 1 Abstract Fluid

More information

WATER INFLUX. Hassan S. Naji, Professor,

WATER INFLUX. Hassan S. Naji, Professor, WATER INFLUX Many reservoirs are bound on a portion or all of their peripheries by water-bearing rocks called aquifers. The aquifer may be so large compared to the reservoir size as to appear infinite,

More information

An approximate analytical solution for non-darcy flow toward a well in fractured media

An approximate analytical solution for non-darcy flow toward a well in fractured media WATER RESOURCES RESEARCH, VOL. 38, NO. 3, 1023, 10.1029/2001WR000713, 2002 An approximate analytical solution for non-arcy flow toward a well in fractured media Yu-Shu Wu Earth Sciences ivision, Lawrence

More information

Atlantic Rim Coalbed Methane Play: The Newest SuccessfulCBM Play in the Rockies

Atlantic Rim Coalbed Methane Play: The Newest SuccessfulCBM Play in the Rockies Atlantic Rim Coalbed Methane Play: The Newest SuccessfulCBM Play in the Rockies Robert A. Lamarre Lamarre Geological, Denver, Colorado Stephen K. Ruhl Anadarko Petroleum Corporation, The Woodlands, Texas

More information

The Pennsylvania State University. The Graduate School. Department of Energy and Mineral Engineering

The Pennsylvania State University. The Graduate School. Department of Energy and Mineral Engineering The Pennsylvania State University The Graduate School Department of Energy and Mineral Engineering ANALYSIS OF PRODUCTION DECLINE CHARACTERISTICS OF A MULTI-STAGE HYDRAULICALLY FRACTURED HORIZONTAL WELL

More information

Numerical Study of Flux Models for CO 2 : Enhanced Natural Gas Recovery and Potential CO 2 Storage in Shale Gas Reservoirs

Numerical Study of Flux Models for CO 2 : Enhanced Natural Gas Recovery and Potential CO 2 Storage in Shale Gas Reservoirs Numerical Study of Flux Models for CO 2 : Enhanced Natural Gas Recovery and Potential CO 2 Storage in Shale Gas Reservoirs Nilay J. Prajapati and Patrick L. Mills * Department of Chemical and Natural Gas

More information

Investigating Methane Adsorption Potential of Malaysian Coal for Coal Bed Methane (CBM) Study

Investigating Methane Adsorption Potential of Malaysian Coal for Coal Bed Methane (CBM) Study Doi:10.5901/mjss.2014.v5n27p178 Abstract Investigating Methane Adsorption Potential of Malaysian Coal for Coal Bed Methane (CBM) Study Saleem Qadir Tunio Universiti Teknologi Petronas (UTP) Malaysia Swapan

More information

Study of heterogeneous vertical hyporheic flux via streambed temperature at different depths

Study of heterogeneous vertical hyporheic flux via streambed temperature at different depths 168 Remote Sensing and GIS for Hydrology and Water Resources (IAHS Publ. 368, 2015) (Proceedings RSHS14 and ICGRHWE14, Guangzhou, China, August 2014). Study of heterogeneous vertical hyporheic flux via

More information

XYZ COMPANY LTD. Prepared For: JOHN DOE. XYZ et al Knopcik 100/ W5/06 PAS-TRG. Dinosaur Park Formation

XYZ COMPANY LTD. Prepared For: JOHN DOE. XYZ et al Knopcik 100/ W5/06 PAS-TRG. Dinosaur Park Formation All depths reported in mkb TVD per EUB requirements. All pressures reported in (a) per EUB requirements. 9.01 used as atmospheric pressure adjustment to convert from gauge to absolute pressure. XYZ COMPANY

More information

Revising Darcy s law: a necessary step toward progress in fluid mechanics and reservoir engineering

Revising Darcy s law: a necessary step toward progress in fluid mechanics and reservoir engineering Advances in Fluid Mechanics VI 615 Revising Darcy s law: a necessary step toward progress in fluid mechanics and reservoir engineering C. Ketata, M. G. Satish & M. R. Islam Department of Civil Engineering,

More information

Flow of shale gas in tight rocks using a non-linear transport model with pressure dependent model parameters

Flow of shale gas in tight rocks using a non-linear transport model with pressure dependent model parameters Engineering Conferences International ECI Digital Archives Sixth International Conference on Porous Media and Its Applications in Science, Engineering and Industry Proceedings 7-4-2016 Flow of shale gas

More information

Petroleum Engineering 324 Well Performance Daily Summary Sheet Spring 2009 Blasingame/Ilk. Date: Materials Covered in Class Today: Comment(s):

Petroleum Engineering 324 Well Performance Daily Summary Sheet Spring 2009 Blasingame/Ilk. Date: Materials Covered in Class Today: Comment(s): Petroleum Engineering 324 Well Performance Daily Summary Sheet Spring 2009 Blasingame/Ilk Date: Materials Covered in Class Today: Comment(s): Petroleum Engineering 324 (2009) Reservoir Performance Analysis

More information

An Improved Differential Strain Analysis Method for Super Deep Wells

An Improved Differential Strain Analysis Method for Super Deep Wells The Open Petroleum Engineering Journal, 2012, 5, 69-77 69 Open Access An Improved Differential Strain Analysis Method for Super Deep Wells L.H. Pan*, S.C. Zhang and J. Zhang School of Petroleum Engineering,

More information

ractical Geomechanics for Unconventional Resources

ractical Geomechanics for Unconventional Resources P ractical Geomechanics for Unconventional Resources 24-26 October 2012, Calgary, Canada Practical Geomechanics for Unconventional Resources Nowadays, unconventional resources have been brought into the

More information

Perforation Inflow Test Analysis (PITA)

Perforation Inflow Test Analysis (PITA) PETROLEUM SOCIETY CANADIAN INSTITUTE OF MINING, METALLURGY & PETROLEUM PAPER 2005-031 Perforation Inflow Test Analysis (PITA) N. M. A. RAHMAN Fekete Associates Inc. M. POOLADI-DARVISH University of Calgary

More information

National Exams May 2016

National Exams May 2016 National Exams May 2016 98-Pet-A3, Fundamental Reservoir Engineering 3 hours duration NOTES: I. If doubt exists as to the interpretation of any question, the candidate is urged to submit with tile answer

More information

Multi-scale fracture prediction using P-wave data: a case study

Multi-scale fracture prediction using P-wave data: a case study Multi-scale fracture prediction using P-wave data: a case study Wanlu Zhang 1,2,*, Shuangquan Chen 1,2, Jian Wang 3, Lianbo Zeng 1, Xiang-Yang Li 1,2,4, 1. State Key Laboratory of Petroleum Resources and

More information

Journal of Petroleum Science and Engineering

Journal of Petroleum Science and Engineering Journal of Petroleum Science and Engineering 08 (203) 22 39 Contents lists available at SciVerse ScienceDirect Journal of Petroleum Science and Engineering journal homepage: www.elsevier.com/locate/petrol

More information

Presentation to the NATIONAL BUYER / SELLER FORUM March 24, Brad J. Hayes Petrel Robertson Consulting Ltd.

Presentation to the NATIONAL BUYER / SELLER FORUM March 24, Brad J. Hayes Petrel Robertson Consulting Ltd. Presentation to the NATIONAL BUYER / SELLER FORUM March 24, 2010 Brad J. Hayes Petrel Robertson Consulting Ltd. Canada s Gas Resources the Picture in 2010 This gas resource picture is only a snapshot because

More information

Boundary Value Effects on Migration Patterns in Hydraulically Fractured Shale Formations

Boundary Value Effects on Migration Patterns in Hydraulically Fractured Shale Formations Boundary Value Effects on Migration Patterns in Hydraulically Fractured Shale Formations Toyin C. Aseeperi 1 1 Ralph. E Martin Department of Chemical Engineering, University of Arkansas, Fayetteville *Corresponding

More information

SPE Copyright 2008, Society of Petroleum Engineers

SPE Copyright 2008, Society of Petroleum Engineers SPE 119897 Production Analysis and Forecasting of Shale Gas Reservoirs: Case History-Based Approach L. Mattar, B. Gault, K. Morad, Fekete Associates Inc., C.R. Clarkson, EOG Resources, C.M. Freeman, D.

More information

RELATIONSHIP BETWEEN RESERVOIR PRODUCTIVITY AND PORE PRESSURE DROP

RELATIONSHIP BETWEEN RESERVOIR PRODUCTIVITY AND PORE PRESSURE DROP RELATIONSHIP BETWEEN RESERVOIR PRODUCTIVITY AND PORE PRESSURE DROP Musaed N. J. Al-Awad Petroleum Eng. Dept, College of Eng., King Saud University, ABSTRACT The significance of permeability sensitivity

More information

Mixed Reservoir Wetting in Unconventional Reservoirs and Interpretation of Porosity/Resistivity Cross Plots, Derived From Triple-combo Log Data

Mixed Reservoir Wetting in Unconventional Reservoirs and Interpretation of Porosity/Resistivity Cross Plots, Derived From Triple-combo Log Data Mixed Reservoir Wetting in Unconventional Reservoirs and Interpretation of Porosity/Resistivity Cross Plots, Derived From Triple-combo Log Data Michael Holmes DWLS November 14, 2017 Outline Introduction

More information

SPE MS. Abstract. Introduction

SPE MS. Abstract. Introduction SPE-176931-MS Sweet Spot Identification and Prediction of Frac Stage Performance Using Geology, Geophysics, and Geomechanics - Application to the Longmaxi Formation, China Yang, X., Wang, X., SCGC, Aoues,

More information

Radius of Investigation for Reserve Estimation From Pressure Transient Well Tests

Radius of Investigation for Reserve Estimation From Pressure Transient Well Tests See discussions, stats, and author profiles for this publication at: https://www.researchgate.net/publication/559655 Radius of Investigation for Reserve Estimation From Pressure Transient Well Tests Article

More information

Fracking for Tight Oil and Shale Gas in the U.S.

Fracking for Tight Oil and Shale Gas in the U.S. Fracking for Tight Oil and Shale Gas in the U.S. Terminology 1. Crude Oil: Liquid petroleum extracted from the Earth (barrels, bbl) 2. Natural Gas: Mixture of hydrocarbon and non-hydrocarbon gases extracted

More information

An Equation for the Adsorption Under Variable Temperature and Pressure Condition

An Equation for the Adsorption Under Variable Temperature and Pressure Condition International Journal of Oil, Gas and Coal Engineering 2018; 6(6): 171-176 http://www.sciencepublishinggroup.com/j/ogce doi: 10.11648/j.ogce.20180606.17 ISSN: 2376-7669 (Print); ISSN: 2376-7677(Online)

More information

Investigations of Hard (difficult) to drain Seam

Investigations of Hard (difficult) to drain Seam Investigations of Hard (difficult) to drain Seam Dr Ting Ren, Professor Naj Aziz and Dr Jan Nemcik Mining Research Group School of Civil, Mining and Environmental Engineering University of Wollongong Industry

More information

SPE Comparison of Numerical vs Analytical Models for EUR Calculation and Optimization in Unconventional Reservoirs

SPE Comparison of Numerical vs Analytical Models for EUR Calculation and Optimization in Unconventional Reservoirs SPE-180209 Comparison of Numerical vs Analytical Models for EUR Calculation and Optimization in Unconventional Reservoirs A. Moinfar, J.C. Erdle, K. Patel, Computer Modelling Group Inc. Motivation Analytical

More information

A NEW TYPE CURVE ANALYSIS FOR SHALE GAS/OIL RESERVOIR PRODUCTION PERFORMANCE WITH DUAL POROSITY LINEAR SYSTEM

A NEW TYPE CURVE ANALYSIS FOR SHALE GAS/OIL RESERVOIR PRODUCTION PERFORMANCE WITH DUAL POROSITY LINEAR SYSTEM A NEW TYPE CURVE ANALYSIS OR SHALE GAS/OIL RESERVOIR PRODUCTION PERORMANCE WITH DUAL POROSITY LINEAR SYSTEM A Thesis by HAIDER JAAR ABDULAL Submitted to the Office of Graduate Studies of Texas A&M University

More information

MEASUREMENT OF POROSITY AND GAS PERMEABILITY OF TIGHT ROCKS BY THE PULSE DECAY METHOD

MEASUREMENT OF POROSITY AND GAS PERMEABILITY OF TIGHT ROCKS BY THE PULSE DECAY METHOD Geosciences and Engineering, Vol. 1, No. 1 (01), pp. 65 74. MEASUREMENT OF POROSITY AND GAS PERMEABILITY OF TIGHT ROCKS BY THE PULSE DECAY METHOD ANDRÁS GILICZ TIBOR BÓDI EON Földgáz Storage, H-1051Budapest,

More information

Study of early dynamic evaluation methods in complex small fault-block reservoirs

Study of early dynamic evaluation methods in complex small fault-block reservoirs vailable online at www.sciencedirect.com Energy Procedia 14 (01) 689 694 Study of early dynamic evaluation methods in complex small fault-block reservoirs Wu Yahong 1 Weng Xingfang Xu Mengya 1 Guo Shengtao

More information

TRANSIENT AND PSEUDOSTEADY-STATE PRODUCTIVITY OF HYDRAULICALLY FRACTURED WELL. A Thesis ARDHI HAKIM LUMBAN GAOL

TRANSIENT AND PSEUDOSTEADY-STATE PRODUCTIVITY OF HYDRAULICALLY FRACTURED WELL. A Thesis ARDHI HAKIM LUMBAN GAOL TRANSIENT AND PSEUDOSTEADY-STATE PRODUCTIVITY OF HYDRAULICALLY FRACTURED WELL A Thesis by ARDHI HAKIM LUMBAN GAOL Submitted to the Office of Graduate Studies of Texas A&M University in partial fulfillment

More information

SPE Copyright 2008, Society of Petroleum Engineers

SPE Copyright 2008, Society of Petroleum Engineers SPE 454 Applicability of the Arps Rate-Time Relationships for Evaluating Decline Behavior and Ultimate Gas Recovery of Coalbed Methane Wells J.A. Rushing, SPE, Anadarko Petroleum Corp., A.D. Perego, SPE,

More information

INTERPRETATION OF PSEUDOTRANSIENT LINEAR FLOW IN PRODUCTION DATA ANALYSIS OF TIGHT, NATURALLY FRACTURED RESERVOIRS

INTERPRETATION OF PSEUDOTRANSIENT LINEAR FLOW IN PRODUCTION DATA ANALYSIS OF TIGHT, NATURALLY FRACTURED RESERVOIRS INTERPRETATION OF PSEUDOTRANSIENT LINEAR FLOW IN PRODUCTION DATA ANALYSIS OF TIGHT, NATURALLY FRACTURED RESERVOIRS by Wisam J. Assiri A thesis submitted to the Faculty and the Board of Trustees of the

More information

Non-Darcy Skin Effect with a New Boundary Condition

Non-Darcy Skin Effect with a New Boundary Condition International Journal of Petroleum and Petrochemical Engineering (IJPPE) Volume 3, Issue 1, 2017, PP 46-53 ISSN 2454-7980 (Online) DOI: http://dx.doi.org/10.20431/2454-7980.0301007 www.arcjournals.org

More information

SPE Copyright 2003, Society of Petroleum Engineers Inc.

SPE Copyright 2003, Society of Petroleum Engineers Inc. SPE 84475 Integrating Short-Term Pressure Buildup Testing and Long-Term Production Data Analysis to Evaluate Hydraulically-Fractured Gas Well Performance J.A. Rushing, SPE, Anadarko Petroleum Corp. and

More information

Measurement of the organic saturation and organic porosity in. shale

Measurement of the organic saturation and organic porosity in. shale Measurement of the organic saturation and organic porosity in shale Qian Sang a,b, Shaojie Zhang a, Yajun Li a, Mingzhe Dong a,b Steven Bryant b a College of Petroleum Engineering, China University of

More information

Module for: Analysis of Reservoir Performance Introduction

Module for: Analysis of Reservoir Performance Introduction (Formation Evaluation and the Analysis of Reservoir Performance) Module for: Analysis of Reservoir Performance Introduction T.A. Blasingame, Texas A&M U. Department of Petroleum Engineering Texas A&M University

More information

The Mine Geostress Testing Methods and Design

The Mine Geostress Testing Methods and Design Open Journal of Geology, 2014, 4, 622-626 Published Online December 2014 in SciRes. http://www.scirp.org/journal/ojg http://dx.doi.org/10.4236/ojg.2014.412046 The Mine Geostress Testing Methods and Design

More information