Peristaltic transport of two-layered blood flow using Herschel Bulkley Model

Size: px
Start display at page:

Download "Peristaltic transport of two-layered blood flow using Herschel Bulkley Model"

Transcription

1 BIOMEDICAL ENGINEERING RESEARCH ARTICLE Peristaltic transport of two-layered blood flow using Herschel Bulkley Model C. Rajashekhar, G. Manjunatha, K. V. Prasad, B. B. Divya and Hanumesh Vaidya Cogent Engineering (2018), 5: Page 1 of 16

2 BIOMEDICAL ENGINEERING RESEARCH ARTICLE Peristaltic transport of two-layered blood flow using Herschel Bulkley Model C. Rajashekhar 1, G. Manjunatha 1 *, K. V. Prasad 2, B. B. Divya 1 and Hanumesh Vaidya 3 Received: 10 March 2018 Accepted: 24 June 2018 First Published: 10 July 2018 *Corresponding author: G. Manjunatha, Department of Mathematics, Manipal Academy of Higher Education, Manipal Institute of Technology, Manipal, Karnataka, India gudekote_m@rediffmail.com Reviewing editor: Zhongmin Jin, Xian Jiao Tong University (China) and Leeds University (UK), China Additional information is available at the end of the article Abstract: The present article investigates the peristaltic transport of a Herschel Bulkley fluid in an axisymmetric tube. The governing equations are solved using the long wavelength and small Reynolds number approximation. The closed-form solutions are obtained and analyzed for the effects of the fluid behavior index, amplitude ratio, and yield stress on pressure, pressure rise, frictional force, and streamlines. The present model reveals that the increase in flux against pressure C. Rajashekhar ABOUT THE AUTHOR Dr G. Manjunatha received his BSc Degree in Mathematics from the Gulbarga University, Gulbarga, India, in He then received his MSc and PhD degrees from Gulbarga and Kuvempu University, India, in 1996 and 2009, respectively. Dr G. Manjunatha is currently working as an Associate Professor Senior Scale at the Manipal Institute of Technology, Manipal Academy of Higher Education, Manipal. He serves as a referee for several reputed international journals. Dr G. Manjunatha research interests include Mathematical Modeling, Biomechanics, fluid mechanics, and Numerical Analysis PUBLIC INTEREST STATEMENT The present investigation on peristaltic transport of blood has been of utmost interest to researchers in recent times due to its wide application in the field of Medicine. The peristaltic transport occurs in the movement of bolus through esophagus, chime in the gastrointestinal tract, spermatozoa in the cervical canal, ovum in the fallopian tube, transportation of urine through the ureter, and flow of blood in the blood vessel. The mechanism of peristaltic motion has also found applications in biomedical engineering to design and construct many useful devices such as blood pump machine, toxic liquid in nuclear industry, finger and roller pumps, and dialysis machine The Author(s). This open access article is distributed under a Creative Commons Attribution (CC-BY) 4.0 license. Page 2 of 16

3 rise for a Newtonian fluid is less when compared with Herschel Bulkley fluid. Further, these changes are opposite to the behavior of frictional force against pressure rise. Also, it is noticed that pressure rise for a fixed value of amplitude ratio in Herschel Bulkley model is more significant than that of a Newtonian, Power-law, and Bingham model. Furthermore, it is observed that, for small values of yield stress, there is not much difference between Herschel Bulkley and Power-law fluids. Subjects: Engineering Mathematics; Fluid Mechanics; Biomechanics Keywords: Bingham plastic; frictional force; Herschel-Bulkley fluid; peristalsis; power law; pressure rise; yield stress 1. Introduction Peristalsis is a mechanism of the progressive propagation of wave contraction and expansion along the walls of a distensible tube. Physiologically, any tubular smooth muscle structure has an inherent neuromuscular property, which exhibits peristaltic action. The body uses these characteristics to mix and push forward the contents of the tube, like movement of food through the esophagus, chime in the gastrointestinal tract, spermatozoa in the cervical canal, ovum in the fallopian tube, transportation of urine through the ureter, and flow of blood in the blood vessel. The mechanism of peristaltic motion has also found applications in biomedical engineering to design and construct many useful devices such as blood pump machine and dialysis machine (Jaggy, Lachat, Leskosek, Znd, & Turina, 2000; Nisar, Afzulpurkar, Mahaisavariya, & Tuantranont, 2008). The mechanism of peristalsis has been of scientific interest for many researchers since the preliminary investigation by Latham (1966), several experimental and theoretical studies have been carried out to explore peristaltic action in different situations. Initial works were carried out by assuming the small wave number, amplitude ratio, and Reynolds number (Burns & Parkes, 1967; Fung& Yih, 1968; Jaffrin, 1973; Jaffrin & Shapiro, 1971; Raju & Devanathan, 1972; Shapiro, Jaffrin, & Weinberg, 1969; Weinberg, Eckstein, & Shapiro, 1971). The viscosity close to the wall of the tube has been observed to be not quite the same as that in the central region for some biological systems and thinking about this reality, Shukla, Parihar, Rao, and Guptha (1980) studied two-layered peristaltic flows through tubes and channels using Stoke s approximations. It was observed that the effect of frictional force decreases and the flow flux increases with a reduction in fluid viscosity. Srivastava and Srivastava (1982) investigated the two-layered peristaltic transport consisting of Newtonian fluid in an axisymmetric tube. Their study emphasizes the effects of viscosity variation on two-layered peristaltic transport in a non-uniform tube. Srivastava and Srivastava (1984) investigated the peristaltic movement using Casson model and found that, under a given set of conditions, the magnitude of the pressure rise is smaller in the model without a peripheral layer, when compared to those with an outer layer. By considering the two-layered powerlaw fluid model, Usha and Ramachandra (1997) noticed that the positive or negative mean flow was due to the rheology of the peripheral layer. Further, comparative study was carried out by Misra and Pandey (2002) for the axisymmetric and channel flow. Akram, Hanif, Nadeem, and Zhongmin (2014) investigated peristaltic transport with the help of Maxwell model by taking porous channel. Recently, several authors used non-newtonian models to study the physiological behaviors of different fluids under various assumption and geometries (Manjunatha & Rajashekhar, 2018; Prasad, Vajravelu, Vaidya, Shivakumara, & Basha, 2016; Vajravelu, Prasad, Vaidya, Basha, & Ng, 2017). The above-mentioned non-newtonian models do not explain the complex physiological behavior of blood. In the case of suspensions of cells, the plasma of blood influences it to behave like non- Newtonian fluid at moderate shear rates. This nonlinearity can be modeled using either Casson or Herschel Bulkley model. The study on using both Casson and Herschel Bulkley models were carried out by Blair and Spanner (1974). They concluded that the blood obeys Casson model at moderate shear rates. Further, they also noticed that there is no much change among Casson and Herschel Bulkley plots of experimental data at moderate shear rates. However, the utilization of Page 3 of 16

4 Herschel Bulkley model over Casson model is more suitable since it contains one more additional parameter (fluid behavior index) and can be utilized for low shear rates where the Casson model fails to clarify the different physiological behaviors of blood. Furthermore, the Herschel Bulkley model can be reduced to different models, for example, Newtonian, Power-law, and Bingham plastic for a pertinent value of yield stress and fluid behavior index. Due to their generality, many researchers have made use of Herschel Bulkley model to study the peristaltic transport in different physiological conditions. Vajravelu, Sreenadh, and Babu (2005) investigated the two-layered peristaltic transport using Herschel Bulkley fluid. Later, Vajravelu et al. (2005a, 2006) extended their work on peristaltic transport to the inclined tube and two-layered geometry, respectively. Maiti and Misra (2013) explored the peristaltic transport of a couple stress fluid in a porous channel. Their investigation was inspired toward the physiological fluid of blood in the micro-circulatory framework by assessing the particle size effect. It was additionally uncovered that it is conceivable to increment both pumping and pressure by expanding amplitude proportion and couple stress parameter and by lessening the permeability. Manjunatha, Basavarajappa, Thippeswamy, and Hanumesh (2013), (2014) contemplated the peristaltic transport of two and three-layered fluid with varying amplitude proportion. For the examination, they used Herschel Bulkley model to ascertain the physiological parameters. Vajravelu, Sreenadh, Devaki, and Prasad (2015, 2016) carried out investigations on peristaltic transport by considering the elastic tube. For modeling the peristaltic flow, Herschel Bulkley and Casson s models were used. Recently, a detailed survey regarding peristaltic transport of physiological fluids was carried out by (Suresh & Hemadri, 2016; Thanesh&Kavitha,2016). The present study investigates the two-layered peristaltic transport using a non-newtonian Herschel Bulkley model. The closed-form solutions are obtained for velocity, flow rate, pressure gradient, pressure rise, and frictional force. Further, the results of various other models (Power-law, Bingham plastic, and Newtonian) are discussed as a special case of Herschel Bulkley model for a fixed value of yield stress and fluid behavior index. Furthermore, the present investigation helps in understanding the movement of food bolus through gastrointestinal tract, the flow of blood in narrow arteries (where the shear rates are low) and the thrombus formation of blood. 2. Formulation of the problem Consider the peristaltic flow of a steady, laminar, incompressible Herschel Bulkley fluid in an axisymmetric tube (Figure 1) with radius a. The flow is axisymmetric and encourages the choice of the cylindrical coordinate system to study the problem. The wall deformation due to the propagation of an infinite sinusoidal wave train of peristaltic waves is represented by hðz; tþ ¼a þ b sin 2π ðz ctþ (1) λ Figure 1. Geometric representation of peristaltic waves in a tube. Page 4 of 16

5 where b is the amplitude, λ is the wavelength, c is the wave propagation speed, and t is the time. The flow becomes steady in the wave frame ðr; θ; zþ moving with velocity c away from the fixed frame ðr; Θ; ZÞ given by r ¼ R; z ¼ Z ct; ψ ¼ Ψ R2 2 ; pz; ð t Þ ¼ PðZÞ; (2) where p and P are pressures, ψ and Ψ are stream functions, in the wave and fixed frames of references, respectively. 3. Mathematical model The equations of motion in the wave frame of references, moving with speed c under the long wavelength approximation and by neglecting the wall slope and inertial terms (Shapiro et al., 1969), is written as r 0 ð r 0 τ r 0 z ¼ 0 (4) where τ r 0 z0 for Herschel Bulkley fluid is given by Chaturani & Narasimhan 0 ¼ fðþ¼ τ 1 1 ð k τ r 0 z 0 τ ni 0Þ ; τ r 0z0 τ 0; i ¼ fðþ¼0; τ 0 r 0 z 0 τ 0: (6) It is worth mentioning that above Herschel Bulkley model reduces to Bingham fluid when n i ¼ 1andK ¼ μ (Newtonian viscosity); to the power-law fluid when τ 0 ¼ 0andK ¼ μ and to the Newtonian fluid when n i ¼ 1; K ¼ μ, andτ 0 ¼ 0. It is important to note that the plug core radius increases with the yield stress τ 0 and with the fluid behavior index n i. The variables are rendered dimensionless by the following transformations p ¼ anþ1 p 0 λμc ; r ¼ r0 n a ; z ¼ z0 λ ; u i ¼ u0 i c ; τ 0 ¼ an 0 τ0 c n μ ; τ rz ¼ τ0 z0a n r0 μc n ; τ a ¼ τ0 aa n μc n (7) Making use of the non-dimensional quantities in Equation (7), the governing equations (5) and (6) (after dropping the primes) take the form as, ni i þ τ @z ; τ rz τ 0 ; i ¼ 1; 2; 0 0 ¼ 0; τ rz τ 0 : (9) The corresponding non-dimensional boundary conditions are u 1 ¼ u p at r ¼ r p u 1 ¼ u 2 at r ¼ h 1 u 0 1 ¼ 0atr ¼ 0 u 2 ¼ 1atr ¼ h (10) The expression for velocities u 1, u 2,andu p are obtained on solving Equations (8) and (9) satisfying the boundary conditions (10), we get Page 5 of 16

6 " 2 Ph K1 þ1 u 1 ¼ PðK 1 þ 1Þ 2 τ 0 Pr # K1 þ1 2 τ 0 1 (11) " 2 Ph K2 þ1 u 2 ¼ PðK 2 þ 1Þ 2 τ 0 Pr # K2 þ1 2 τ 0 1 (12) The upper limit of plug flow region for τ 0 ¼ 2 P r p at r ¼ r p is obtained as r p ¼ 2τ 0 P r ¼ h (Bird et al., 1976), we get P ¼ 2τ h h. and for τ rz ¼ τ h at Hence, from the above results, we have r p h ¼ τ 0 τ h ¼ τ (13) The plug flow velocity at r ¼ r p, using Equations (11) and (13) is given by " 2 Ph K1 þ1 u p ¼ PðK 1 þ 1Þ 2 τ 0 Pr # K1 þ1 p 2 τ 0 1 (14) where r p ¼ 2τ 0 P, K 1 ¼ 1 n 1, K 2 ¼ 1 n 2 The instantaneous flow rate q across any cross-section of the artery is defined as given below: q ¼ q p þ q 1 þ q 2 (15) r p h 1 h q ¼ 2 ò ru p dr þ 2 ò ru 1 dr þ 2 ò ru 2 dr (16) 0 r p h 1 2r 2 p Ph 1þK1 q p ¼ Pð1 þ K 1 Þ 2 τ 0 rp 2 (17) h ih i 16 τ 0 þ Ph1 2 ðk 1 þ 2Þ Ph1 2 2 q 1 ¼ P 3 ðk 1 þ 1ÞðK 1 þ 2ÞðK 1 þ 3Þ K 1þ2 " 16 Ph q 2 ¼ P 3 ðk 2 þ 1ÞðK 2 þ 2ÞðK 2 þ 3Þ 2 τ 0 " # þðh 2 1 r2 p Þ 2 Ph K1þ1 PðK 1 þ 1Þ 2 τ 0 K2 þ2 τ 0 þ Ph 2 ðk 2 þ 2Þ (18) Ph 1 2 τ 0 K2 þ2 τ 0 þ Ph # 1 2 ðk 2 þ 2Þ þðh 2 h 2 1 Þ 2 PðK 2 þ 2Þ Ph K2 þ1 2 τ 0 1 # (19) where q p ; q 1 and q 2 are respectively the plug, core, and peripheral region flow rates. The dimensionless time-averaged flux Q is obtained as 1 h Q ¼ ò ò rðu i 1Þdrdz ¼ q þ ò h 2 dz ¼ q þ 1 þ ε2 0 2 (20) 4. Pumping characteristics The pressure rise (ΔP) over one cycle of the wave is given by " 1 QðK þ 1ÞðK þ 2ÞðK þ 3Þ2 K #1 K ΔP ¼ ò 0 h Kþ3 ð1 τþ Kþ1 dz (21) fðk þ 1ÞðK þ 2Þþ2τðτþKþ1Þg The dimensionless frictional force F at the wall across one wavelength is Page 6 of 16

7 1 F ¼ ò h dz " 1 QðK þ 1ÞðK þ 2ÞðK þ 3Þ2 K #1 K F ¼ ò 0 h 3 K ð1 τþ Kþ1 dz (22) fðk þ 1ÞðK þ 2Þþ2τðτþKþ1Þg Equations (21) and (22) are solved numerically by Weddle s rule using MATLAB. 5. Results and discussion The solutions for pressure rise and frictional force with corresponding boundary condition are obtained using MATLAB. The effects of yield stress to wall shearing stress ðτþ, amplitude ratio ðεþ and fluid behavior index ðnþ on pressure rise ðδpþ, frictional force ðfþ, pressure gradient ðpþ, and streamlines ðψþ for Newtonian, Power-law, Bingham plastic, and Herschel Bulkley models are analyzed and presented graphically through Figures Figure 2. ΔP v/s Q for varying τ with ε ¼ 0:6 and n¼ 3. Figure 3. ΔP v/s Q for varying ε with τ ¼ 0:2 and n ¼ 3. Page 7 of 16

8 Figure 4. ΔP v/s Q for varying n with ε ¼ 0:6 and τ ¼ 0:2. Figure 5. F v/s Q for varying τ with ε ¼ 0:6 and n ¼ 3. Figures 2 4 are plotted to see the effects of yield stress, amplitude ratio, and fluid behavior index on pressure rise and frictional force for a Herschel Bulkley fluid. Figure 2 depicts the variation of τ on ΔP and Q. It is observed that an increase in the value of τ increases ΔP in an axisymmetric tube. This is because of the existence of τ in the model. Moreover, ΔP decreases with an increase in Q. The variation of ε on ΔP and Q is shown in Figure 3. It is noticed that an increase in the value of ε increases the pressure rise. This is mainly due to the increase in the height of the sinusoidal wave which requires more ΔP for the movement of blood through the tube. The variation of n on ΔP and Q shows the significant increase in ΔP for small variation in n (Figure 4). This appreciable amount of increase in ΔP is due to the shear-thickening property of blood. The variations of τ on F and Q are plotted in Figure 5. It is noticed that the behavior of F is opposite to that of ΔP. The above observations of τ, ε, and n on ΔP and F are in concurrence with the results of Shapiro et al. (1969) and Vajravelu et al. (2005). Page 8 of 16

9 Figure 6. ΔP v/s Q for varying ε with τ ¼ 0 and n ¼ 1. Figure 7. ΔP v/s Q for varying ε with τ ¼ 0 and n ¼ 3. Figure 6 shows the results for a Newtonian fluid ðτ ¼ 0; n ¼ 1Þ. It is observed that the behavior of ε remains to be the same as that of Herschel Bulkley fluid, but ΔP required for a particular value of ε is less when compared with Herschel Bulkley fluid. This is mainly due to the absence of τ. Figures 7 and 8 are plotted for the effects of ε and n on ΔP and Q for Power-law fluids. It is noticed from Figure 7 that an increase in the values of ε increases ΔP in an axisymmetric tube. Similar behavior is observed for an increase in n (Figure 8). Figures 9 and 10 illustrate the variation of ε and τ on ΔP and Q for Bingham-plastic fluids. The variations of ε and τ show the same trend as that of Herschel Bulkley fluid, but ΔP required is less when compared with Herschel Bulkley and Power-law fluids. Figures 11 and 12 illustrate the pressure graphs for Herschel Bulkley fluid. Figure 11 shows the variations of τ, ε and n ðn > 1Þ on pressure. As expected, the pressure gradient P is maximum at the narrowest part of the tube, that is, z ¼ 0:75. The main reason is to maintain the same flow rate Page 9 of 16

10 Figure 8. ΔP v/s Q for varying n with ε ¼ 0:6 and τ ¼ 0. Figure 9. ΔP v/s Q for varying ε for τ ¼ 0:2 and n ¼ 1. through narrow part in comparison with the wider part of the tube to satisfy the conservation of mass. Further, for positive P, an adverse pressure gradient is registered (which opposes the flow) in the rangez 2½0; 1Š. It is observed that the magnitude of pressure increases with an increase in τ, ε, and n. Similar behavior is observed on pressure for the variation of τ, ε, and n when ðn < 1Þ (Figure 12). Figure 13 depicts the variation of ε on pressure for a Newtonian fluid. It is noticed that the magnitude of pressure increases for an increase in ε. Also, it is observed that the magnitude of pressure increases with an increase in the value of ε and n for Power-law fluids (Figure 14). Similar variations in pressure are observed for an increase in the values of τ and ε for Bingham-plastic fluids (Figure 15). Thus, from Figures 11 15, it is noticed that the maximum pressure is required for pumping the Herschel Bulkley fluid and minimum pressure for Newtonian fluid. The most essential part of peristalsis is trapping. It is by and large the arrangement of inside flowing bolus. The generation of inside flowing bolus in a fluid is implanted by different stream, Page 10 of 16

11 Figure 10. ΔP v/s Q for varying τ with ε ¼ 0:6 and n ¼ 1. Figure 11. P v/s z for varying (a) τ (b) ε and (c) n with ε ¼ 0:5; τ ¼ 0:5 and n ¼ 0:3. which is named as trapping phenomenon. These trapped boluses move alongside sinusoidal movement of peristaltic wave. This phenomenon is particularly useful in understanding the flow of bolus through gastrointestinal tract and the formulation of thrombus in blood. Figure 16 is plotted to see the formation of trapped bolus for Herschel Bulkley, Bingham, Newtonian, and Power-law fluids. From the figure, it is noticed that an increase in the value of τ increases the volume of trapped bolus for Herschel Bulkley, Bingham, and Newtonian fluid. Further, from Newtonian and Power-law fluids, it is observed that the fluid behavior index enhances the volume Page 11 of 16

12 Figure 12. P v/s z with varying (a) τ (b) ε and (c) n with ε ¼ 0:5; τ ¼ 0:5 and n ¼ 0:3. Figure 13. P v/s z for varying ε with n ¼ 1 and τ ¼ 0. of trapped bolus. Also, for small values of τ, there is not much difference between Herschel Bulkley and Power-law fluids. 6. Conclusions The present article deals with the study of the peristaltic motion of blood in the human circulatory system. The results are presented for Herschel Bulkley, Power-law, Bingham-plastic, and Newtonian fluids. The effects of amplitude ratio, yield stress, and fluid behavior index are studied on pressure, pressure rise, and frictional force. The study has the potential of significant application in the field of medicine, biomedical engineering, and technology. Some of the interesting findings are as follows: Page 12 of 16

13 Figure 14. Pressure v/s z for power-law model with varying (a) ε (shear thickening), (b) ε (shear thinning), (c) n (shear thickening) and (d) n (shear thinning) with ε ¼ 0:5 and τ ¼ 0. Figure 15. P v/s z for Bingham plastic model with varying (a) τ and (b) ε. Page 13 of 16

14 Figure 16. Streamlines for (a) Herschel Bulkley, (b) Bingham plastic, (c) Newtonian, and (d) Power-law fluid. The pressure rise increases with increase in the value of yield stress, amplitude ratio, and fluid behavior index for Newtonian, Power law, Bingham, and Herschel Bulkley fluid, respectively. The pressure rise for a particular value of amplitude ratio in Herschel Bulkley model is greater than that of Newtonian, Power law, and Bingham model. The pressure rise in all the cases, namely, Newtonian, Power law, Bingham, and Herschel- Bulkley, decreases with an increase in the time-averaged flux. The magnitude of pressure gradient increases with an increase in the value of yield stress, amplitude ratio, and fluid behavior index. The presence of yield stress, amplitude ratio, and fluid behavior index enhances the flux in an axisymmetric tube. The volume of trapped bolus increases with an increase in the value of yield stress parameter. Nomenclature a: radius of the tube r p: radius of plug region P: pressure gradient b: amplitudes t: time c: wave speed ðr; zþ: radial and axial coordinates u p : velocity in plug region u 1 : velocity in core region u 2 : velocity in peripheral region h: length of the tube n i : fluid behavior index q: volumetric flow rate q p : flux in plug region q 1 : flux in core region q 2 : flux in peripheral region Page 14 of 16

15 Q: time averaged flux ΔP: pressure rise per wavelength F: frictional force at the wall Greek symbols λ: wavelength μ: viscosity τ 0 : yield stress τ: ratio of yield stress to wall shearing stress ε: amplitude ratio Acknowledgements The authors appreciate the constructive comments of the reviewers, which led to definite improvement in the article. Author details C. Rajashekhar 1 choudhariraj3@gmail.com ORCID ID: G. Manjunatha 1 gudekote_m@rediffmail.com ORCID ID: K. V. Prasad 2 prasadkv2007@gmail.com B. B. Divya 1 divya.baliga@manipal.edu Hanumesh Vaidya 3 hanumeshvaidya@gmail.com 1 Department of Mathematics, Manipal Academy of Higher Education, Manipal Institute of Technology, Manipal, Karnataka, India. 2 Department of Mathematics, Vijayanagara Srikrishnadevaraya University, Ballari, Karnataka, India. 3 Department of Mathematics, SSA Government First Grade College(Autonomous), Ballari, Karnataka, India. Cover Image Source: Citation information Cite this article as: Peristaltic transport of two-layered blood flow using Herschel Bulkley Model, C. Rajashekhar, G. Manjunatha, K. V. Prasad, B. B. Divya & Hanumesh Vaidya, Cogent Engineering (2018), 5: References Akram, S., Hanif, M., Nadeem, S., & Zhongmin, J. (2014). Peristaltic transport of a Maxwell fluid in a porous asymmetric channel through a porous medium. Cogent Engineering, 01, 01. Bird, R. B., Stewart, W. E., & Lightfoot, E. N. (1976). Transport phenomena. New York: Wiley. Blair, S. G. W., & Spanner, D. C. (1974). An introduction to biorheology. Amsterdam: Elsevier Scientific Publishing Company. Burns, J. C., & Parkes, T. (1967). Peristaltic motion. Journal of Fluid Mechanics, 29, Chaturani, P., & Narasimhan, S. (1988). Theory for flow of Casson and Herschel-Bulkley fluids in cone-plate viscometers. Biorheology, 25, Fung, Y. C., & Yih, C. S. (1968). Peristaltic transport. Journal of Applied Mechanics, 35, Jaffrin, M. Y. (1973). Inertia and stream line curvature effects on peristaltic pumping. International Journal of Engineering Science, 11, Jaffrin, M. Y., & Shapiro, A. H. (1971). Peristaltic pumping. Annual Review of Fluid Mechanics, 3, Jaggy, C., Lachat, M., Leskosek, B., Znd, G., & Turina, M. (2000). Affinity pump system: A new peristaltic blood pump for cardiopulmonary bypass. Perfusion, 15, Latham., W. (1966). Fluid motions in the peristaltic pump (M.S. thesis), Massachusetts Institute of Technology. Maiti, S., & Misra, J. C. (2013). Non-Newtonian characteristics of peristaltic flow of blood in micro-vessels. Communications in Nonlinear Science and Numerical Simulation, 18, Manjunatha, G., Basavarajappa, K. S., & Katiyar, V. K. (2014). Mathematical modelling on peristaltic transport of two layered viscous incompressible fluid with varying amplitude. International Journal of Mathematical Modelling and Physical Sciences, 02, Manjunatha, G., Basavarajappa, K. S., Thippeswamy, G., & Hanumesh, V. (2013). Peristaltic transport of three layered viscous incompressible fluid. Global Journal of Pure and Applied Mathematics, 9, Manjunatha, G., & Rajashekhar, C. (2018). Slip effects on peristaltic transport of Casson fluid in an inclined elastic tube with porous walls. Journal of Advanced Research in Fluid Mechanics and Thermal Sciences, 43, Misra, J. C., & Pandey, S. K. (2002). Peristaltic transport of blood in small vessels: Study of a mathematical model. Computers and Mathematics with Applications, 43, Nisar, A., Afzulpurkar, N., Mahaisavariya, B., & Tuantranont, A. (2008). MEMS-based micropumps in drug delivery and biomedical applications. Sensors & Actuators, B, 130, Prasad, K. V., Vajravelu, K., Vaidya, H., Shivakumara, I. S., & Basha, N. Z. (2016). Flow and heat transfer of a Casson Nanofluid over a nonlinear stretching sheet. Journal of Nanofluids, 05, Raju, K. K., & Devanathan, R. (1972). Peristaltic motion of a non-newtonian fluid. Rheologica Acta, 11, Shapiro, A. H., Jaffrin, M. Y., & Weinberg, W. L. (1969). Peristaltic pumping with long wavelengths at low reynolds number. Journal of Fluid Mechanics, 37, Shukla, J. B., Parihar, R. S., Rao, B. R. P., & Guptha, S. P. (1980). Effects of peripheral layers viscosity on peristaltic transport of a bio-fluid. Journal of Fluid Mechanics, 97, Srivastava, L. M., & Srivastava, V. P. (1982). Peristaltic transport of a two-layered physiological fluid. Journal of Biomechanics, 15, Srivastava, L. M., & Srivastava, V. P. (1984). Peristaltic transport of blood: Casson model-ii. Journal of Biomechanics, 17, Suresh, J. G., & Hemadri, R. R. (2016). A review chronicle of recent trends in peristaltic transport of non- Newtonian fluid. International Journal of Pharmacy and Technology, 08, Thanesh, K. K., & Kavitha, A. (2016). A review report of recent developments in peristaltic transport of physiological fluids. International Journal of Pharmacy and Technology, 08, Usha, S., & Ramachandra, R. A. (1997). Peristaltic transport of two layered power law of fluids. Journal of Biomechanical Engineering, 119, Page 15 of 16

16 Vajravelu, K., Prasad, K. V., Vaidya, H., Basha, N. Z., & Ng, C.- O. (2017). Mixed convective flow of a Casson fluid over a stretching sheet. International Journal of Applied and Computational Mathematics, 03, Vajravelu, K., Sreenadh, S., & Babu, V. R. (2005). Peristaltic pumping of a Herschel-Bulkley fluid in a channel. Applied Mathematics and Computation, 169, Vajravelu, K., Sreenadh, S., & Babu, V. R. (2005a). Peristaltic transport of a Herschel Bulkley fluid in an inclined tube. International Journal of Non-Linear Mechanics, 40, Vajravelu, K., Sreenadh, S., Devaki, P., & Prasad, K. V. (2015). Peristaltic transport of a Herschel-Bulkley fluid in a n elastic tube. Heat Transfer-Asian Research, 44, Vajravelu, K., Sreenadh, S., Devaki, P., & Prasad, K. V. (2016). Peristaltic pumping of a Casson fluid in an elastic tube. Journal of Applied Fluid Mechanics, 9, Vajravelu, K., Sreenadh, S., & Ramesh, B. V. (2006). Peristaltic transport of a Herschel-Bulkley fluid in contact with Newtonian fluid. Journal of Applied Mathematics, 64, Weinberg,S.L.,Eckstein,E.C.,&Shapiro,A.H.(1971). An experimental study of peristaltic pumping. Journal of Fluid Mechanics, 49, The Author(s). This open access article is distributed under a Creative Commons Attribution (CC-BY) 4.0 license. You are free to: Share copy and redistribute the material in any medium or format. Adapt remix, transform, and build upon the material for any purpose, even commercially. The licensor cannot revoke these freedoms as long as you follow the license terms. Under the following terms: Attribution You must give appropriate credit, provide a link to the license, and indicate if changes were made. You may do so in any reasonable manner, but not in any way that suggests the licensor endorses you or your use. No additional restrictions You may not apply legal terms or technological measures that legally restrict others from doing anything the license permits. Cogent Engineering (ISSN: ) is published by Cogent OA, part of Taylor & Francis Group. Publishing with Cogent OA ensures: Immediate, universal access to your article on publication High visibility and discoverability via the Cogent OA website as well as Taylor & Francis Online Download and citation statistics for your article Rapid online publication Input from, and dialog with, expert editors and editorial boards Retention of full copyright of your article Guaranteed legacy preservation of your article Discounts and waivers for authors in developing regions Submit your manuscript to a Cogent OA journal at Page 16 of 16

Peristaltic pumping of couple stress fluid through non - erodible porous lining tube wall with thickness of porous material

Peristaltic pumping of couple stress fluid through non - erodible porous lining tube wall with thickness of porous material Available online at www.pelagiaresearchlibrary.com Advances in Applied Science Research, 01, 3 (4):36-336 ISSN: 0976-8610 CODEN (USA): AASRFC Peristaltic pumping of couple stress fluid through non - erodible

More information

Theoretical Study of Heat Transfer on Peristaltic Transport of Non- Newtonian Fluid Flowing in a Channel: Rabinowitsch Fluid Model

Theoretical Study of Heat Transfer on Peristaltic Transport of Non- Newtonian Fluid Flowing in a Channel: Rabinowitsch Fluid Model Theoretical Study of Heat Transfer on Peristaltic Transport of Non- Newtonian Fluid Flowing in a Channel: Rabinowitsch Fluid Model U. P. Singh Department of Applied Sciences and Humanities Rajkiya Engineering

More information

Influence of velocity slip conditions on MHD peristaltic flow of a Prandtl fluid in a non-uniform channel

Influence of velocity slip conditions on MHD peristaltic flow of a Prandtl fluid in a non-uniform channel Malaysian Journal of Mathematical Sciences 11): 35 47 16) MALAYSIAN JOURNAL OF MATHEMATICAL SCIENCES Journal homepage: http://einspem.upm.edu.my/journal Influence of velocity slip conditions on MHD peristaltic

More information

Mathematical Modeling of Peristaltic Flow of Chyme in Small Intestine

Mathematical Modeling of Peristaltic Flow of Chyme in Small Intestine Available at http://pvamu.edu/aam Appl. Appl. Math. ISSN: 1932-9466 Vol. 6, Issue 2 (December 2011), pp. 428 444 Applications and Applied Mathematics: An International Journal (AAM) Mathematical Modeling

More information

Slip Effect on Peristaltic Transport. of Micropolar Fluid

Slip Effect on Peristaltic Transport. of Micropolar Fluid Applied Mathematical Sciences, Vol. 4,, no. 43, 5-7 Slip Effect on Peristaltic Transport of Micropolar Fluid M. K. Chaube *, S. K. Pandey and D. Tripathi Department of Applied Mathematics, Institute of

More information

Effects of Heat Transfer on the Peristaltic Flow of Jeffrey Fluid through a Porous Medium in a Vertical Annulus

Effects of Heat Transfer on the Peristaltic Flow of Jeffrey Fluid through a Porous Medium in a Vertical Annulus J. Basic. Appl. Sci. Res., (7)75-758,, TextRoad Publication ISSN 9-44X Journal of Basic and Applied Scientific Research www.textroad.com Effects of Heat Transfer on the Peristaltic Flow of Jeffrey Fluid

More information

INTERNATIONAL JOURNAL OF ADVANCE RESEARCH, IJOAR.ORG ISSN

INTERNATIONAL JOURNAL OF ADVANCE RESEARCH, IJOAR.ORG ISSN ISSN 30-913 7 International Journal of Advance Research, IJOAR.org Volume 3, Issue 6, June 015, Online: ISSN 30-913 PERISTALTIC PUMPING OF COUPLE STRESS FLUID THROUGH NON - ERODIBLE POROUS LINING TUBE

More information

Peristaltic transport of a Maxwell fluid in a porous asymmetric channel through a porous medium

Peristaltic transport of a Maxwell fluid in a porous asymmetric channel through a porous medium Akram et al., Cogent Engineering 04, : 980770 http://dx.doi.org/0.080/3396.04.980770 BIOMEDICAL ENGINEERING RESEARCH ARTICLE Peristaltic transport of a Maxwell fluid in a porous asymmetric channel through

More information

MHD peristaltic transport of a micropolar fluid in an asymmetric channel with porous medium

MHD peristaltic transport of a micropolar fluid in an asymmetric channel with porous medium Available online at www.pelagiaresearchlibrary.com Advances in Applied Science Research, 06, 7():05-4 ISSN: 0976-860 CODEN (USA): AASRFC MHD peristaltic transport of a micropolar fluid in an asymmetric

More information

Peristaltic transport of a newtonian fluid with wall properties in an asymmetric channel

Peristaltic transport of a newtonian fluid with wall properties in an asymmetric channel Int. J. Adv. Appl. Math. and Mech. 3(1) (015) 10 109 (ISSN: 347-59) Journal homepage: www.ijaamm.com International Journal of Advances in Applied Mathematics and Mechanics Peristaltic transport of a newtonian

More information

Heat and Mass Transfer Effects of Peristaltic Transport of a Nano Fluid in Peripheral layer

Heat and Mass Transfer Effects of Peristaltic Transport of a Nano Fluid in Peripheral layer Available at http://pvamu.edu/aam Appl. Appl. Math. ISSN: 932-9466 Vol. 2, Issue 2 (December 207, pp. 968-987 Applications and Applied Mathematics: An International Journal (AAM Heat and Mass Transfer

More information

Peristaltic Transport of a Hyperbolic Tangent Fluid Model in an Asymmetric Channel

Peristaltic Transport of a Hyperbolic Tangent Fluid Model in an Asymmetric Channel Peristaltic Transport of a Hyperbolic Tangent Fluid Model in an Asymmetric Channel Sohail Nadeem and Safia Akram Department of Mathematics Quaid-i-Azam University 4530 Islamabad 44000 Pakistan Reprint

More information

Flow of a Casson Fluid Through an Inclined Tube of Non-uniform Cross Section with Multiple Stenoses

Flow of a Casson Fluid Through an Inclined Tube of Non-uniform Cross Section with Multiple Stenoses Available online at www.pelagiaresearchlibrary.com Advances in Applied Science Research, 2011, 2 (5):340-349 ISSN: 0976-8610 CODEN (USA): AASRFC Flow of a Casson Fluid Through an Inclined Tube of Non-uniform

More information

PERISTALTIC FLOW OF A FRACTIONAL SECOND GRADE FLUID THROUGH A CYLINDRICAL TUBE

PERISTALTIC FLOW OF A FRACTIONAL SECOND GRADE FLUID THROUGH A CYLINDRICAL TUBE THERMAL SCIENCE, Year 0, Vol. 5, Suppl., pp. S67-S73 S67 PERISTALTIC FLOW OF A FRACTIONAL SECOND GRADE FLUID THROUGH A CYLINDRICAL TUBE by Dharmendra TRIPATHI Mathematics Group, BITS Pilani, Hyderabad

More information

Peristaltic Pumping of a Casson Fluid in an Elastic Tube

Peristaltic Pumping of a Casson Fluid in an Elastic Tube Journal of Applied Fluid Mechanics, Vol. 9, No., pp. 97-95, 6. Available online at www.jafmonline.net, ISSN 735-357, EISSN 735-365. DOI:.69/acadpub.jafm.6.35.695 Peristaltic Pumping of a Casson Fluid in

More information

Oscillatory flow of a jeffrey fluid in an elastic tube of variable cross-section

Oscillatory flow of a jeffrey fluid in an elastic tube of variable cross-section Available online at www.pelagiaresearchlibrary.com Advances in Applied Science Research 2012 3 (2):671-677 ISSN: 0976-8610 CODEN (USA): AASRFC Oscillatory flow of a jeffrey fluid in an elastic tube of

More information

MHD PERISTALTIC FLOW OF A COUPLE STRESS FLUIDS PERMEATED WITH SUSPENDED PARTICLES THROUGH A POROUS MEDIUM UNDER LONG WAVELENGTH APPROXIMATION

MHD PERISTALTIC FLOW OF A COUPLE STRESS FLUIDS PERMEATED WITH SUSPENDED PARTICLES THROUGH A POROUS MEDIUM UNDER LONG WAVELENGTH APPROXIMATION VOL. 0, NO. 7, APRIL 05 ISSN 89-6608 006-05 Asian Research Publishing Network (ARPN). All rights reserved. MHD PERISTALTIC FLOW OF A COUPLE STRESS FLUIDS PERMEATED WITH SUSPENDED PARTICLES THROUGH A POROUS

More information

Effects of magnetic field and an endoscope on peristaltic motion

Effects of magnetic field and an endoscope on peristaltic motion Available online at www.pelagiaresearchlibrary.com Advances in Applied Science Research,, (4:-9 ISSN: 976-86 CODEN (USA: AASRFC Effects of magnetic field and an endoscope on peristaltic motion V.P. Rathod

More information

EFFECT OF MAGNETIC FIELD ON THE PERISTALTIC PUMPING OF A JEFFREY FLUID IN A CHANNEL WITH VARIABLE VISCOSITY

EFFECT OF MAGNETIC FIELD ON THE PERISTALTIC PUMPING OF A JEFFREY FLUID IN A CHANNEL WITH VARIABLE VISCOSITY International Journal of Applied Mathematics & Engineering Sciences Vol. 5, No., January-June EFFECT OF MAGNETIC FIELD ON THE PERISTALTIC PUMPING OF A JEFFREY FLUID IN A CHANNEL WITH VARIABLE VISCOSITY

More information

CHAPTER 6 Effect of slip and heat transfer on the Peristaltic flow of a Williamson fluid in an incliped channel

CHAPTER 6 Effect of slip and heat transfer on the Peristaltic flow of a Williamson fluid in an incliped channel CHAPTER 6 Effect of slip and heat transfer on the Peristaltic flow of a Williamson fluid in an incliped channel 6.1. Introduction Peristalsis is a well-known mechanism for pumping biological and industrial

More information

Peristaltic Flow of A Couple Stress Fluids in an Inclined Channel

Peristaltic Flow of A Couple Stress Fluids in an Inclined Channel International Journal of Allied Practice, Research and Review Website: www.ijaprr.com (ISSN 350-194) Peristaltic Flow of A Couple Stress Fluids in an Inclined Channel V.P.Rathod and N.G.Sridhar Department

More information

Effect of variable viscosity on the peristaltic flow of a Jeffrey fluid in a uniform tube

Effect of variable viscosity on the peristaltic flow of a Jeffrey fluid in a uniform tube Available online at www.pelagiaresearchlibrary.com Advances in Applied Science Research,, 3 ():9-98 ISSN: 976-86 CODEN (USA): AASRFC Effect of variable viscosity on the peristaltic flow of a Jeffrey fluid

More information

Peristaltic Transport of a Magneto Non-Newtonian Fluid through A porous medium in a horizontal finite channel

Peristaltic Transport of a Magneto Non-Newtonian Fluid through A porous medium in a horizontal finite channel IOSR Journal of Mathematics (IOSR-JM) e-issn: 2278-5728, p-issn:2319-765x. Volume 8, Issue 6 (Nov. Dec. 2013), PP 32-39 Peristaltic Transport of a Magneto Non-Newtonian Fluid through A porous medium in

More information

Peristaltic flow of a Williamson fluid in an inclined planar channel under the effect of a magnetic field

Peristaltic flow of a Williamson fluid in an inclined planar channel under the effect of a magnetic field Available online at www.pelagiaresearchlibrary.com Advances in Applied Science Research,, 3 ():5-6 ISSN: 976-86 CODEN (USA): AASRFC Peristaltic flow of a Williamson fluid in an inclined planar channel

More information

Biomagnetic Steady Flow through an Axisymmetric Stenosed Artery

Biomagnetic Steady Flow through an Axisymmetric Stenosed Artery International Journal of Innovation and Applied Studies ISSN 2028-9324 Vol. 8 No. 1 Sep. 2014, pp. 394-407 2014 Innovative Space of Scientific Research Journals http://www.ijias.issr-journals.org/ Biomagnetic

More information

Research Article Peristaltic Transport of a Jeffrey Fluid with Variable Viscosity through a Porous Medium in an Asymmetric Channel

Research Article Peristaltic Transport of a Jeffrey Fluid with Variable Viscosity through a Porous Medium in an Asymmetric Channel Hindawi Publishing Corporation Advances in Mathematical Physics Volume 212, Article ID 169642, 15 pages doi:1.1155/212/169642 Research Article Peristaltic Transport of a Jeffrey Fluid with Variable Viscosity

More information

On a mixed interpolation with integral conditions at arbitrary nodes

On a mixed interpolation with integral conditions at arbitrary nodes PURE MATHEMATICS RESEARCH ARTICLE On a mixed interpolation with integral conditions at arbitrary nodes Srinivasarao Thota * and Shiv Datt Kumar Received: 9 October 5 Accepted: February 6 First Published:

More information

Unsteady Flow of a Newtonian Fluid in a Contracting and Expanding Pipe

Unsteady Flow of a Newtonian Fluid in a Contracting and Expanding Pipe Unsteady Flow of a Newtonian Fluid in a Contracting and Expanding Pipe T S L Radhika**, M B Srinivas, T Raja Rani*, A. Karthik BITS Pilani- Hyderabad campus, Hyderabad, Telangana, India. *MTC, Muscat,

More information

Long Wavelength Flow Analysis in a Curved Channel

Long Wavelength Flow Analysis in a Curved Channel Long Wavelength Flow Analysis in a Curved Channel Nasir Ali a, Muhammad Sajid b, and Tasawar Hayat c a Department of Mathematics, International Islamic University, Islamabad, Pakistan b Theoretical Plasma

More information

Effects of wall properties and heat transfer on the peristaltic transport of a jeffrey fluid in a channel

Effects of wall properties and heat transfer on the peristaltic transport of a jeffrey fluid in a channel Available online at www.pelagiaresearchlibrar.com Advances in Applied Science Research,, 4(6):59-7 ISSN: 976-86 CODEN (USA): AASRFC Effects of wall properties and heat transfer on the peristaltic transport

More information

Applied Mathematics and Computation

Applied Mathematics and Computation Applied Mathematics and Computation 244 (214) 761 771 Contents lists available at ScienceDirect Applied Mathematics and Computation journal homepage: www.elsevier.com/locate/amc Effect of coupled radial

More information

Blood flow through arteries in a pathological state: A theoretical study

Blood flow through arteries in a pathological state: A theoretical study International Journal of Engineering Science 44 (6) 66 671 www.elsevier.com/locate/ijengsci Blood flow through arteries in a pathological state: A theoretical study J.C. Misra *, G.C. Shit Department of

More information

Finding the strong defining hyperplanes of production possibility set with constant returns to scale using the linear independent vectors

Finding the strong defining hyperplanes of production possibility set with constant returns to scale using the linear independent vectors Rafati-Maleki et al., Cogent Mathematics & Statistics (28), 5: 447222 https://doi.org/.8/233835.28.447222 APPLIED & INTERDISCIPLINARY MATHEMATICS RESEARCH ARTICLE Finding the strong defining hyperplanes

More information

Effects of Heat and Mass Transfer on Peristaltic Flow of Carreau Fluid in a Vertical Annulus

Effects of Heat and Mass Transfer on Peristaltic Flow of Carreau Fluid in a Vertical Annulus Effects of Heat and Mass Transfer on Peristaltic Flow of Carreau Fluid in a Vertical Annulus Sohail Nadeem and Noreen Sher Akbar Department of Mathematics Quaid-i-Azam University 530 Islamabad 000 Pakistan

More information

Graded fuzzy topological spaces

Graded fuzzy topological spaces Ibedou, Cogent Mathematics (06), : 8574 http://dxdoiorg/0080/85068574 PURE MATHEMATICS RESEARCH ARTICLE Graded fuzzy topological spaces Ismail Ibedou, * Received: August 05 Accepted: 0 January 06 First

More information

ENTROPY PRODUCTION IN PERISTALTIC FLOW OF A SPACE DEPENDENT VISCOSITY FLUID IN ASYMMETRIC CHANNEL. Najma SALEEM

ENTROPY PRODUCTION IN PERISTALTIC FLOW OF A SPACE DEPENDENT VISCOSITY FLUID IN ASYMMETRIC CHANNEL. Najma SALEEM ENTROPY PRODUCTION IN PERISTALTIC FLOW OF A SPACE DEPENDENT VISCOSITY FLUID IN ASYMMETRIC CHANNEL Najma SALEEM Department of Mathematics and Natural Sciences, Prince Mohammad Bin Fahd University, Khobar,

More information

MHD Peristaltic flow of a Jeffrey fluid in an asymmetric channel with partial slip

MHD Peristaltic flow of a Jeffrey fluid in an asymmetric channel with partial slip Available online at www.pelagiaresearchlibrary.com Advances in Applied Science Research,, 3 (6):3755-3765 ISSN: 976-86 CODEN (USA): AASRFC MHD Peristaltic flow of a Jeffrey fluid in an asymmetric channel

More information

A BIVARIATE VISCOSITY FUNCTION ON THE PERISTALTIC MOTION IN AN ASYMMETRIC CHANNEL

A BIVARIATE VISCOSITY FUNCTION ON THE PERISTALTIC MOTION IN AN ASYMMETRIC CHANNEL A BIVARIATE VISCOSITY FUNCTION ON THE PERISTALTIC MOTION IN AN ASYMMETRIC CHANNEL Mehdi Lachiheb M. Lachiheb Faculty of Sciences Taibah University Kingdom of Saudi Arabia E-Mail: lachiheb006@gmail.com

More information

CENG 501 Examination Problem: Estimation of Viscosity with a Falling - Cylinder Viscometer

CENG 501 Examination Problem: Estimation of Viscosity with a Falling - Cylinder Viscometer CENG 501 Examination Problem: Estimation of Viscosity with a Falling - Cylinder Viscometer You are assigned to design a fallingcylinder viscometer to measure the viscosity of Newtonian liquids. A schematic

More information

A study of nonlinear variable viscosity in finite-length tube with peristalsis

A study of nonlinear variable viscosity in finite-length tube with peristalsis Applied Bionics and Biomechanics 11 (214) 197 26 DOI 1.3233/ABB-1411 IOS Press 197 A study of nonlinear variable viscosity in finite-length tube with peristalsis Y. Abd Elmaboud a,b,, Kh.S. Mekheimer c,d

More information

PERISTALTIC MOTION WITH HEAT AND MASS TRANSFER OF A DUSTY FLUID THROUGH A HORIZONTAL POROUS CHANNEL UNDER THE EFFECT OF WALL PROPERTIES

PERISTALTIC MOTION WITH HEAT AND MASS TRANSFER OF A DUSTY FLUID THROUGH A HORIZONTAL POROUS CHANNEL UNDER THE EFFECT OF WALL PROPERTIES www.arpapress.com/volumes/vol15issue3/ijrras_15_3_12.pdf PERISTALTIC MOTION WITH HEAT AND MASS TRANSFER OF A DUSTY FLUID THROUGH A HORIZONTAL POROUS CHANNEL UNDER THE EFFECT OF WALL PROPERTIES Nabil T.

More information

The Mathematical Analysis for Peristaltic Flow of Hyperbolic Tangent Fluid in a Curved Channel

The Mathematical Analysis for Peristaltic Flow of Hyperbolic Tangent Fluid in a Curved Channel Commun. Theor. Phys. 59 213 729 736 Vol. 59, No. 6, June 15, 213 The Mathematical Analysis for Peristaltic Flow of Hyperbolic Tangent Fluid in a Curved Channel S. Nadeem and E.N. Maraj Department of Mathematics,

More information

The plastic number and its generalized polynomial

The plastic number and its generalized polynomial PURE MATHEMATICS RESEARCH ARTICLE The plastic number and its generalized polynomial Vasileios Iliopoulos 1 * Received: 18 December 2014 Accepted: 19 February 201 Published: 20 March 201 *Corresponding

More information

PERISTALTIC MOTION OF AN ELLIS FLUID MODEL IN A VERTICAL UNIFORM TUBE WITH WALL PROPERTIES

PERISTALTIC MOTION OF AN ELLIS FLUID MODEL IN A VERTICAL UNIFORM TUBE WITH WALL PROPERTIES International Journal of Civil Engineering and Technology (IJCIET) Volume 9, Issue, January 08, pp. 847 856, Article ID: IJCIET_09_0_08 Available online at http://http://www.iaeme.com/ijciet/issues.asp?jtype=ijciet&vtype=9&itype=

More information

Peristaltic Flow through a Porous Medium in an Annulus: Application of an Endoscope

Peristaltic Flow through a Porous Medium in an Annulus: Application of an Endoscope Applied Mathematics & Information Sciences 2(1) (2008), 103 121 An International Journal c 2008 Dixie W Publishing Corporation, S A Peristaltic Flow through a Porous Medium in an Annulus: Application of

More information

A note on the unique solution of linear complementarity problem

A note on the unique solution of linear complementarity problem COMPUTATIONAL SCIENCE SHORT COMMUNICATION A note on the unique solution of linear complementarity problem Cui-Xia Li 1 and Shi-Liang Wu 1 * Received: 13 June 2016 Accepted: 14 November 2016 First Published:

More information

Slip Effects on Peristaltic Transport of Casson Fluid in an Inclined Elastic Tube with Porous Walls

Slip Effects on Peristaltic Transport of Casson Fluid in an Inclined Elastic Tube with Porous Walls 3, Issue (8) 67-8 Journal of Advanced Researc in Fluid Mecanics and Termal Sciences Journal omepage: www.akademiabaru.com/arfmts.tml ISSN: 89-7879 Slip Effects on Peristaltic Transport of Casson Fluid

More information

Heat absorption and chemical reaction effects on peristaltic motion of micropolar fluid through a porous medium in the presence of magnetic field

Heat absorption and chemical reaction effects on peristaltic motion of micropolar fluid through a porous medium in the presence of magnetic field Vol. 6(5), pp. 94-101, May 2013 DOI: 10.5897/AJMCSR 2013.0473 ISSN 2006-9731 2013 Academic Journals http://www.academicjournals.org/ajmcsr African Journal of Mathematics and Computer Science Research Full

More information

Matrix l-algebras over l-fields

Matrix l-algebras over l-fields PURE MATHEMATICS RESEARCH ARTICLE Matrix l-algebras over l-fields Jingjing M * Received: 05 January 2015 Accepted: 11 May 2015 Published: 15 June 2015 *Corresponding author: Jingjing Ma, Department of

More information

Some aspects on hesitant fuzzy soft set

Some aspects on hesitant fuzzy soft set Borah & Hazarika Cogent Mathematics (2016 3: 1223951 APPLIED & INTERDISCIPLINARY MATHEMATICS RESEARCH ARTICLE Some aspects on hesitant fuzzy soft set Manash Jyoti Borah 1 and Bipan Hazarika 2 * Received:

More information

Peristaltic Flow of a Jeffrey Fluid with Variable Viscosity in an Asymmetric Channel

Peristaltic Flow of a Jeffrey Fluid with Variable Viscosity in an Asymmetric Channel Peristaltic Flow of a Jeffrey Fluid with Variable Viscosity in an Asymmetric Channel Sohail Nadeem and Noreen Sher Akbar Department of Mathematics, Quaid-i-Azam University 45320, Islamabad 44000, Pakistan

More information

Effects of Slip and Heat Transfer on MHD Peristaltic Flow in An Inclined Asymmetric Channel

Effects of Slip and Heat Transfer on MHD Peristaltic Flow in An Inclined Asymmetric Channel Iranian Journal of Mathematical Sciences and Informatics Vol. 7, No. 2 (2012), pp 35-52 Effects of Slip and Heat Transfer on MHD Peristaltic Flow in An Inclined Asymmetric Channel Kalidas Das Department

More information

Series Solutions for the Peristaltic Flow of a Tangent Hyperbolic Fluid in a Uniform Inclined Tube

Series Solutions for the Peristaltic Flow of a Tangent Hyperbolic Fluid in a Uniform Inclined Tube Series Solutions for the Peristaltic Flow of a Tangent Hyperbolic Fluid in a Uniform Inclined Tube Sohail Nadeem and Noreen Sher Akbar Department of Mathematics, Quaid-i-Azam University 45320, Islamabad

More information

Biotransport: Principles

Biotransport: Principles Robert J. Roselli Kenneth R. Diller Biotransport: Principles and Applications 4 i Springer Contents Part I Fundamentals of How People Learn (HPL) 1 Introduction to HPL Methodology 3 1.1 Introduction 3

More information

Analytical Solutions on the Flow of blood with the Effects of Hematocrit, Slip and TPMA in a porous tube

Analytical Solutions on the Flow of blood with the Effects of Hematocrit, Slip and TPMA in a porous tube 47, Issue (08) 0-08 Journal of Advanced Research in Fluid Mechanics and Thermal Sciences Journal homepage: www.akademiabaru.com/arfmts.html ISSN: 89-7879 Analytical Solutions on the Flow of blood with

More information

Peristaltic Transport of Micropolar Fluid in a Tubes Under Influence of Magnetic Field and Rotation A.M.Abd-Alla a, G.A.Yahya b,c, H.S.

Peristaltic Transport of Micropolar Fluid in a Tubes Under Influence of Magnetic Field and Rotation A.M.Abd-Alla a, G.A.Yahya b,c, H.S. International Journal of Engineering & Technology IJET-IJENS Vol: 11 No: 1 17 Peristaltic Transport of Micropolar Fluid in a Tubes Under Influence of Magnetic Field and Rotation A.M.Abd-Alla a, G.A.Yahya

More information

Influence of Wall Properties on the Peristaltic Flow of a Jeffrey Fluid in a Uniform Porous Channel under Heat Transfer

Influence of Wall Properties on the Peristaltic Flow of a Jeffrey Fluid in a Uniform Porous Channel under Heat Transfer Int. J. Res. Ind. Eng. Vol. 6, No. 3 (2017) 246 261 International Journal of Research in Industrial Engineering www.riejournal.com Influence of Wall Properties on the Peristaltic Flow of a Jeffrey Fluid

More information

INFLUENCE OF HEAT TRANSFER ON PERISTALTIC FLOW OF JEFFREY FLUID THROUGH A POROUS MEDIUM IN AN INCLINED ASYMMETRIC CHANNEL

INFLUENCE OF HEAT TRANSFER ON PERISTALTIC FLOW OF JEFFREY FLUID THROUGH A POROUS MEDIUM IN AN INCLINED ASYMMETRIC CHANNEL VOL, NO 9, MAY 07 ISSN 89-6608 006-07 Asian Research Publishing Network (ARPN) All rights reserved INFLUENCE OF HEAT TRANSFER ON PERISTALTIC FLOW OF JEFFREY FLUID THROUGH A POROUS MEDIUM IN AN INCLINED

More information

International Journal of Mathematical Archive-7(5), 2016, Available online through ISSN

International Journal of Mathematical Archive-7(5), 2016, Available online through   ISSN International Journal of Mathematical Archive-7(5), 6, 8-89 Available online through www.ijma.info ISSN 9 546 MHD AND HEAT TRANSFER EFFECTS ON AN OSCILLATORY FLOW OF JEFFREY FLUID IN A CIRCULAR TUBE K.

More information

Derivation, f-derivation and generalized derivation of KUS-algebras

Derivation, f-derivation and generalized derivation of KUS-algebras PURE MATHEMATICS RESEARCH ARTICLE Derivation, -derivation and generalized derivation o KUS-algebras Chiranjibe Jana 1 *, Tapan Senapati 2 and Madhumangal Pal 1 Received: 08 February 2015 Accepted: 10 June

More information

Peristaltic Pumping of Blood Through Small Vessels of Varying Cross-section

Peristaltic Pumping of Blood Through Small Vessels of Varying Cross-section ariv:6.76v2 [physics.flu-dyn] 3 Jan 22 Peristaltic Pumping of Blood Through Small Vessels of Varying Cross-section J.C.Misra, S. Maiti 2 Professor, Department of Mathematics, Institute of Technical Education

More information

SLIP EFFECTS ON MHD PERISTALTIC TRANSPORT OF A WILLIAMSON FLUID THROUGH A POROUS MEDIUM IN A SYMMETRIC CHANNEL. Andhra Pradesh, India

SLIP EFFECTS ON MHD PERISTALTIC TRANSPORT OF A WILLIAMSON FLUID THROUGH A POROUS MEDIUM IN A SYMMETRIC CHANNEL. Andhra Pradesh, India Available online at http://scik.org J. Math. Comput. Sci. 3 (3), No. 5, 36-34 ISSN: 97-537 SLIP EFFECTS ON MHD PERISTALTIC TRANSPORT OF A WILLIAMSON FLUID THROUGH A POROUS MEDIUM IN A SYMMETRIC CHANNEL

More information

Peristaltic transport of a Newtonian fluid in an asymmetric channel

Peristaltic transport of a Newtonian fluid in an asymmetric channel Z. angew. Math. Phys. 54 (3) 53 55 44-75/3/353-9 DOI.7/s33-3-7-7 c 3 Birkhäuser Verlag, Basel Zeitschrift für angewandte Mathematik und Physik ZAMP Peristaltic transport of a Newtonian fluid in an asymmetric

More information

Effects of Magnetic Field and Slip on a Two-Fluid Model for Couple Stress Fluid Flow through a Porous Medium

Effects of Magnetic Field and Slip on a Two-Fluid Model for Couple Stress Fluid Flow through a Porous Medium Inter national Journal of Pure and Applied Mathematics Volume 113 No. 11 2017, 65 74 ISSN: 1311-8080 printed version; ISSN: 1314-3395 on-line version url: http://www.ijpam.eu ijpam.eu Effects of Magnetic

More information

Nonlinear peristaltic waves: a bitter pill to swallow

Nonlinear peristaltic waves: a bitter pill to swallow Nonlinear peristaltic waves: a bitter pill to swallow Daisuke Takagi September 28, 29 Abstract Nonlinear waves of fluid are driven in an elastic tube by imposing a radial force of sinusoidal form. The

More information

MHD Peristaltic Flow of a Couple Stress Fluids with Heat and Mass. Transfer through a Porous Medium

MHD Peristaltic Flow of a Couple Stress Fluids with Heat and Mass. Transfer through a Porous Medium MHD Peristaltic Flow of a Couple Stress Fluids with Heat and Mass Transfer through a Porous Medium N.T. Eldabe, Department of Mathematics, Faculty of Education, Ain Shams University,Cairo, Egypt S.M. Elshaboury,

More information

FREE CONVECTION AROUND A SLENDER PARABOLOID OF NON- NEWTONIAN FLUID IN A POROUS MEDIUM

FREE CONVECTION AROUND A SLENDER PARABOLOID OF NON- NEWTONIAN FLUID IN A POROUS MEDIUM FREE CONVECTION AROUND A SLENDER PARABOLOID OF NON- NEWTONIAN FLUID IN A POROUS MEDIUM Rishi Raj KAIRI, Department of Mathematics, Islampur College, Uttar Dinajpur, West Bengal, India. Email: rishirajkairi@gmail.com

More information

Analytical Solutions of Unsteady Blood Flow of Jeffery Fluid Through Stenosed Arteries with Permeable Walls

Analytical Solutions of Unsteady Blood Flow of Jeffery Fluid Through Stenosed Arteries with Permeable Walls Analytical Solutions of Unsteady Blood Flow of Jeffery Fluid Through Stenosed Arteries with Permeable Walls Rahmat Ellahi a,b, Shafiq-Ur-Rahman b, and Sohail Nadeem c a Department of Mechanical Engineering,

More information

Arterial Macrocirculatory Hemodynamics

Arterial Macrocirculatory Hemodynamics Arterial Macrocirculatory Hemodynamics 莊漢聲助理教授 Prof. Han Sheng Chuang 9/20/2012 1 Arterial Macrocirculatory Hemodynamics Terminology: Hemodynamics, meaning literally "blood movement" is the study of blood

More information

This article appeared in a journal published by Elsevier. The attached copy is furnished to the author for internal non-commercial research and

This article appeared in a journal published by Elsevier. The attached copy is furnished to the author for internal non-commercial research and This article appeared in a journal published by Elsevier. The attached copy is furnished to the author for internal non-commercial research and education use, including for instruction at the authors institution

More information

Effect of Periodic Body Acceleration in Blood Flow through Stenosed Arteries A Theoretical Model

Effect of Periodic Body Acceleration in Blood Flow through Stenosed Arteries A Theoretical Model Freund Publishing House Ltd., International Journal of Nonlinear Sciences & Numerical Simulation 11(4): 43-57, 010 Effect of Periodic Body Acceleration in Blood Flow through Stenosed Arteries A Theoretical

More information

072 B.P. 50 Cotonou, Republic of Benin 2 Laboratory for Applied Mechanics and Energetic (LEMA), Ecole Polytechnique d Abomey-Calavi,

072 B.P. 50 Cotonou, Republic of Benin 2 Laboratory for Applied Mechanics and Energetic (LEMA), Ecole Polytechnique d Abomey-Calavi, Bulletin of Mathematical Sciences and Applications Online: -- ISSN: 78-9634, Vol., pp 3-37 doi:.85/www.scipress.com/bmsa..3 SciPress Ltd., Switzerland Solving the Navier Stokes Flow Equations of Micro-Polar

More information

A Computational study of Bingham plastic flow of Blood through an artery by multiple stenoses and post dilatation

A Computational study of Bingham plastic flow of Blood through an artery by multiple stenoses and post dilatation Available online at www.pelagiaresearchlibrary.com Advances in Applied Science esearch, 22, (5):285-29 ISSN: 976-86 CODEN (USA): AASFC A Computational study of Bingham plastic flow of Blood through an

More information

Transient free convective flow of a micropolar fluid between two vertical walls

Transient free convective flow of a micropolar fluid between two vertical walls Available online at http://ijim.srbiau.ac.ir/ Int. J. Industrial Mathematics (ISSN 2008-5621) Vol. 5, No. 2, 2013 Article ID IJIM-00311, 9 pages Research Article Transient free convective flow of a micropolar

More information

HEAT AND MASS TRANSFER EFFECTS ON THE PERISTALTIC FLOW OF SISKO FLUID IN A CURVED CHANNEL

HEAT AND MASS TRANSFER EFFECTS ON THE PERISTALTIC FLOW OF SISKO FLUID IN A CURVED CHANNEL HEAT AND MASS TRANSFER EFFECTS ON THE PERISTALTIC FLOW OF SISKO FLUID IN A CURVED CHANNEL by Raheel AHMED, Nasir ALI and Khurram JAVID Department of Mathematics & Statistics, IIU, Islamabad 44000, Pakistan.

More information

EFFECT OF COMPLAINT WALLS ON MAGNETO-HYDRODYNAMIC PERISTALTIC PUMPING OF AN INCOMPRESSIBLE VISCOUS FLUID WITH CHEMICAL REACTIONS

EFFECT OF COMPLAINT WALLS ON MAGNETO-HYDRODYNAMIC PERISTALTIC PUMPING OF AN INCOMPRESSIBLE VISCOUS FLUID WITH CHEMICAL REACTIONS EFFECT OF COMPLAINT WALLS ON MAGNETO-HYDRODYNAMIC PERISTALTIC PUMPING OF AN INCOMPRESSIBLE VISCOUS FLUID WITH CHEMICAL REACTIONS G. C. Sankad and M. Y. Dhange Department of Mathematics, (Affiliated to

More information

Effect on the Flow of Bile Due to Radially Varying Viscosity in the Cystic Duct

Effect on the Flow of Bile Due to Radially Varying Viscosity in the Cystic Duct International Journal of Scientific and Innovative Mathematical esearch (IJSIM) Volume 2, Issue 2, February 24, PP 8-85 ISSN 2347-37X (Print) & ISSN 2347-342 (Online) www.arcjournals.org Effect on the

More information

Research Article Peristaltic Flow of a Magneto-Micropolar Fluid: Effect of Induced Magnetic Field

Research Article Peristaltic Flow of a Magneto-Micropolar Fluid: Effect of Induced Magnetic Field Journal of Applied Mathematics Volume 28, Article ID 57825, 23 pages doi:55/28/57825 Research Article Peristaltic Flow of a Magneto-Micropolar Fluid: Effect of Induced Magnetic Field Kh. S. Mekheimer Department

More information

CONVECTIVE HEAT TRANSFER

CONVECTIVE HEAT TRANSFER CONVECTIVE HEAT TRANSFER Mohammad Goharkhah Department of Mechanical Engineering, Sahand Unversity of Technology, Tabriz, Iran CHAPTER 3 LAMINAR BOUNDARY LAYER FLOW LAMINAR BOUNDARY LAYER FLOW Boundary

More information

REE Internal Fluid Flow Sheet 2 - Solution Fundamentals of Fluid Mechanics

REE Internal Fluid Flow Sheet 2 - Solution Fundamentals of Fluid Mechanics REE 307 - Internal Fluid Flow Sheet 2 - Solution Fundamentals of Fluid Mechanics 1. Is the following flows physically possible, that is, satisfy the continuity equation? Substitute the expressions for

More information

MHD OSCILLATORY SLIP FLOW AND HEAT TRANSFER IN A CHANNEL FILLED WITH POROUS MEDIA

MHD OSCILLATORY SLIP FLOW AND HEAT TRANSFER IN A CHANNEL FILLED WITH POROUS MEDIA U.P.B. Sci. Bull., Series A, Vol. 76, Iss., 04 ISSN 3-707 MHD OSCILLATORY SLIP FLOW AND HEAT TRANSFER IN A CHANNEL FILLED WITH POROUS MEDIA Samuel Olumide ADESANYA, Oluwole Daniel MAKINDE This paper deals

More information

Response surface designs using the generalized variance inflation factors

Response surface designs using the generalized variance inflation factors STATISTICS RESEARCH ARTICLE Response surface designs using the generalized variance inflation factors Diarmuid O Driscoll and Donald E Ramirez 2 * Received: 22 December 204 Accepted: 5 May 205 Published:

More information

arxiv: v1 [physics.flu-dyn] 16 May 2014

arxiv: v1 [physics.flu-dyn] 16 May 2014 The Flow of Newtonian and power law fluids in elastic tubes Taha Sochi University College London, Department of Physics & Astronomy, Gower Street, London, WC1E 6BT Email: t.sochi@ucl.ac.uk. Abstract arxiv:145.4115v1

More information

Performance evaluation of different model mixers by numerical simulation

Performance evaluation of different model mixers by numerical simulation Journal of Food Engineering 71 (2005) 295 303 www.elsevier.com/locate/jfoodeng Performance evaluation of different model mixers by numerical simulation Chenxu Yu, Sundaram Gunasekaran * Food and Bioprocess

More information

VISCOUS FLUID FLOW IN AN INCLINED CHANNEL WITH DEFORMABLE POROUS MEDIUM

VISCOUS FLUID FLOW IN AN INCLINED CHANNEL WITH DEFORMABLE POROUS MEDIUM International Journal of Mechanical Engineering and Technology (IJMET) Volume 9, Issue, January 08, pp. 970 979 Article ID: IJMET_09_0_04 Available online at http://www.iaeme.com/ijmet/issues.asp?jtype=ijmet&vtype=9&itype=

More information

Research Article Innovation: International Journal of Applied Research; ISSN: (Volume-2, Issue-2) ISSN: (Volume-1, Issue-1)

Research Article Innovation: International Journal of Applied Research; ISSN: (Volume-2, Issue-2) ISSN: (Volume-1, Issue-1) Free Convective Dusty Visco-Elastic Fluid Flow Through a Porous Medium in Presence of Inclined Magnetic Field and Heat Source/ Sink 1 Debasish Dey, 2 Paban Dhar 1 Department of Mathematics, Dibrugarh University,

More information

Numerical Analysis of Laminar flow of Viscous Fluid Between Two Porous Bounding walls

Numerical Analysis of Laminar flow of Viscous Fluid Between Two Porous Bounding walls Numerical Analysis of Laminar flow of Viscous Fluid Between Two Porous Bounding walls Ramesh Yadav Department of Mathematics Babu Banarasi Das National Institute of Technology & Management Lucknow Uttar

More information

Ferromagnetic effects for peristaltic flow of Cu water nanofluid for different shapes of nanosize particles

Ferromagnetic effects for peristaltic flow of Cu water nanofluid for different shapes of nanosize particles Appl Nanosci (26) 6:379 385 DOI.7/s324-5-43-x ORIGINAL ARTICLE Ferromagnetic effects for peristaltic flow of Cu water nanofluid for different shapes of nanosize particles Noreen Sher Akbar Adil Wahid Butt

More information

Mathematical Modelling of Blood Flow through Catheterized Artery under the Influence of Body Acceleration with Slip Velocity

Mathematical Modelling of Blood Flow through Catheterized Artery under the Influence of Body Acceleration with Slip Velocity Available at http://pvamu.edu/aam Appl. Appl. Math. ISSN: 93-9466 Vol. 8, Issue (December 3), pp. 48 494 Applications and Applied Mathematics: An International Journal (AAM) Mathematical Modelling of Blood

More information

*Corresponding Author: Surajit Dutta, Department of Mathematics, C N B College, Bokakhat, Golaghat, Assam, India

*Corresponding Author: Surajit Dutta, Department of Mathematics, C N B College, Bokakhat, Golaghat, Assam, India International Journal of Scientific and Innovative Mathematical Research (IJSIMR) Volume 6, Issue, 8, PP -6 ISSN 347-37X (Print) & ISSN 347-34 (Online) DOI: http://dx.doi.org/.43/347-34.6 www.arcjournals.org

More information

CHAPTER 3. CONVENTIONAL RHEOMETRY: STATE-OF-THE-ART. briefly introduces conventional rheometers. In sections 3.2 and 3.

CHAPTER 3. CONVENTIONAL RHEOMETRY: STATE-OF-THE-ART. briefly introduces conventional rheometers. In sections 3.2 and 3. 30 CHAPTER 3. CONVENTIONAL RHEOMETRY: STATE-OF-THE-ART This chapter reviews literature on conventional rheometries. Section 3.1 briefly introduces conventional rheometers. In sections 3.2 and 3.3, viscometers

More information

Non-linear unit root testing with arctangent trend: Simulation and applications in finance

Non-linear unit root testing with arctangent trend: Simulation and applications in finance STATISTICS RESEARCH ARTICLE Non-linear unit root testing with arctangent trend: Simulation and applications in finance Deniz Ilalan 1 * and Özgür Özel 2 Received: 24 October 2017 Accepted: 18 March 2018

More information

Peristaltic Flow of Non-Newtonian Fluids through Curved Channels: a Numerical Study

Peristaltic Flow of Non-Newtonian Fluids through Curved Channels: a Numerical Study ANNUAL TRANSACTIONS OF THE NORDIC RHEOLOGY SOCIETY, VOL. 1, 13 Peristaltic Flow of Non-Newtonian Fluids through Curved Channels: a Numerical Study Alireza Kalantari 1, Kayvan Sadeghy 1, and Soheil Sadeqi

More information

International Journal of Applied Mathematics and Physics, 3(2), July-December 2011, pp Global Research Publications, India

International Journal of Applied Mathematics and Physics, 3(2), July-December 2011, pp Global Research Publications, India International Journal of Applied Mathematics and Phsics, 3(), Jul-December 0, pp. 55-67 Global Research Publications, India Effects of Chemical Reaction with Heat and Mass Transfer on Peristaltic Flow

More information

Rotational viscometers

Rotational viscometers 42 Non-Newtonian Flow in the Process Industries Rotational viscometers Due to their relative importance as tools for the rheological characterisation of non-newtonian fluid behaviour, we concentrate on

More information

Petrović s inequality on coordinates and related results

Petrović s inequality on coordinates and related results Rehman et al., Cogent Mathematics 016, 3: 1798 PURE MATHEMATICS RESEARCH ARTICLE Petrović s inequality on coordinates related results Atiq Ur Rehman 1 *, Muhammad Mudessir 1, Hafiza Tahira Fazal Ghulam

More information

Mathematical Models and Numerical Simulations for the Blood Flow in Large Vessels

Mathematical Models and Numerical Simulations for the Blood Flow in Large Vessels Mathematical Models and Numerical Simulations for the Blood Flow in Large Vessels Balazs ALBERT 1 Titus PETRILA 2a Corresponding author 1 Babes-Bolyai University M. Kogalniceanu nr. 1 400084 Cluj-Napoca

More information

Peristaltic Pumping of a Non-Newtonian Fluid

Peristaltic Pumping of a Non-Newtonian Fluid Available at ttp://pvamu.edu/aam Appl. Appl. Mat. ISSN: 93-9466 Vol. 3, Issue (June 8), pp. 37 48 (Previously, Vol. 3, No. ) Applications and Applied Matematics: An International Journal (AAM) Peristaltic

More information

Numerical Study of Steady MHD Plane Poiseuille Flow and Heat Transfer in an Inclined Channel

Numerical Study of Steady MHD Plane Poiseuille Flow and Heat Transfer in an Inclined Channel Numerical Study of Steady MHD Plane Poiseuille Flow and Heat Transfer in an Inclined Channel Muhim Chutia Department of Mathematics, Mariani College, Assam-785634, India ABSTRACT: In this paper, a numerical

More information

Similarity Flow Solution of MHD Boundary Layer Model for Non-Newtonian Power-Law Fluids over a Continuous Moving Surface

Similarity Flow Solution of MHD Boundary Layer Model for Non-Newtonian Power-Law Fluids over a Continuous Moving Surface Gen. Math. Notes, Vol. 4, No., October 014, pp. 97-10 ISSN 19-7184; Copyright ICSRS Publication, 014 www.i-csrs.org Available free online at http://www.geman.in Similarity Flow Solution of MHD Boundary

More information