Mathematical Model Predicting the Critical Heat Flux of Nuclear Reactors

Size: px
Start display at page:

Download "Mathematical Model Predicting the Critical Heat Flux of Nuclear Reactors"

Transcription

1 Journal o Computer Science 01, 8 (1), ISSN doi: /jcssp Pulished Online 8 (1) 01 ( Mathematical Model Predicting the Critical Heat Flux o Nuclear Reactors 1 Chien-Hsiung Lee, Lih-Wu Hourng and 3 Kuo-Wei Lin 1 Nuclear Fuels and Materials ivision, Institute o Nuclear Energy Research P.O. Box 3-3, Lungtan, Taoyuan, 3500, R.O.C., Taiwan epartment o Mechanical Engineering, National Central University, Jhongli, 3001, R.O.C., Taiwan 3 epartment o International Business, Hsuan Chuang University, Hsinchu, 3009, R.O.C., Taiwan Received , Revised ; Accepted ABSTRACT Boiling heat transer system keeps a nuclear power plant sae without getting over-heated. Crisis will occur i the dissipated heat lux exceeds the critical heat lux value. This study assumes the low oiling system at high heat lux is characterized y the existence o a very thin liquid layer, known as the sulayer, which is trapped etween the heated surace and the vapor lankets. In the present study, it is hypothesized that the heat transer through the liquid sulayer is dominated y the heat conduction and the sulayer is dried out due to occurrence o Helmholtz instaility as the relative velocity o the vapor lanket to the local liquid in the sulayer reaches a critical value. By recognizing this hypothesis, a theoretical model or low-quality low is developed to predict oiling heat transer and Critical Heat Flux (CHF). To veriy the validity o the present model, the predictions are compared with the experimental data o low oiling heat transer in the simulation o Pressurized Water Reactor (PWR) and Boiling Water Reactor (BWR) conditions. For the PWR low-quality low, the comparison demonstrates that the Helmholtz instaility is the trigger condition or the onset o CHF. Keywords: Nuclear Crisis, Critical Heat Flux (CHF), Helmholtz Instaility, Boiling Heat Transer, Boiling Water Reactor (BWR), Pressurized Water Reactor (PWR), Relative Velocity 1. INTROUCTION In the review o high heat lux oiling mechanisms, many studies have ound the existence o liquid sulayer Sucooled or low-quality orced convective oiling etween the heated surace and the ule layer at high system is utilized in the design o nuclear reactor cores, heat lux conditions. Based on the ormation o the liquid ecause its high heat luxes can e dissipated. Thereore, sulayer, Katto and Yokoya (1968) developed a to protect the heated surace rom overheating or urnout, hydrodynamic model near the CHF according to the a reliale estimation o the oiling heat transer and its consumption o liquid ilm. limitation Critical Heat Flux (CHF) is extremely required Through a measurement o the transient variation o in the low oiling system. In general, the oiling heat heated surace temperature during nucleate pool oiling transer mechanisms are dierent at the low heat lux o water, Chi-Liang and Mesler (1977) conirmed the (q<0.6 CHF) and the high heat lux (q>0.6 CHF) as shown existence o a liquid ilm eneath the growing vapor in Fig. 1. At the ormer condition, most o the heat lux is which is paramount in transerring heat. Bhat et al. provided or nucleation o ules (Fig. 1a); while at the (1983) hypothesized that the heat transer, in the high latter, the oiling heat transer is dominated y the heat heat lux region etween 0.6 CHF and CHF, takes place conduction in the liquid sulayer trapped etween the mainly due to the heat conduction through the liquid heated surace and the vapor lanket (Fig. 1). layer ormed on the heated surace. Corresponding Author: Kuo-Wei Lin, epartment o International Business, Hsuan Chuang University, Hsinchu, 3009, R.O.C., Taiwan 1996

2 Chien-Hsiung Lee et al. / Journal o Computer Science 8 (1) (01) (a) () Fig. 1. Liquid-vapor coniguration or up-low oiling wator (a) low heat lux condition (<0.6 CHF) () high heat lux condition (>0.6 CHF) In a susequent paper o Bhat et al. (1986), experimental results o sulayer thickness and requency o vapor mass show good agreement with their previous predictions. Later, many high heat lux models ased on heat conduction in the liquid layer have een reported (Chinm et al., 1989; Jairajpuri and Saini, 1991; Rajvanshi et al., 199). Although all the availale models are developed speciically or pool oiling, Chinm et al. (1989) expected that the same concept o heat conduction through the sulayer may also e applied to low oiling conditions. The sulayer concept with heat alance rather than heat conduction has also een applied in the research o low oiling or predicting the CHF. For example, Haramura and Katto (1983), as ones o the pioneers o the sulayer dry out theory, originally derived a high heat lux model, ased on the heat alance o liquid ilm located etween the heated surace and a vapor lanket, to predict the low oiling CHF on lat plates. Lee and Mudawwar (1988) postulated that CHF occurs when the liquid ilm underneath the vapor lanket dries out due to the oscillation motion o the lanket or an intearnal low oiling system. They emphasized that the onset o sulayer dry out was triggered y Helmhotz instaility in the sulayer-vapor lanket interace whiale as the length o the vapor lanket is equal to the Helmholtz critical wavelength. Later, y replacing the single-phase luid properties with the two-phase homogeneous equilirium luid properties, Lin et al. (1988a; 1988) made an improved sulayer dry out model to extend the applicale range rom the sucooled low oiling to the low-quality saturated low oiling. By accounting or the passage time o the lanket, Katto (1990a; 1990; 199) used the similar idea yet dierent approach to evaluate the HF required to vaporize the liquid ilm underneath the lanket. Celata (1991) suggested that this mechanism may also e applied in the thermal-hydraulics studies o high heat lux, high mass low rate usion reactor. Although thickness o liquid sulayers calculated y Lee and Mudawwar (1988) and Katto (1990a; 1990; 199) models are quite dierent, it is worth to note that the magnitude o sulayer thickness is extremely tiny (order o 10 7 ~10 3 m). It is thus appropriate to hypothesize that the convective oiling heat transer is dominated y the heat conduction through the liquid sulayer at superheated conditions. Thereore, ased on heat conduction in the sulayer, Lin et al. (1994) 1997

3 Chien-Hsiung Lee et al. / Journal o Computer Science 8 (1) (01) developed a theoretical model or sucooled low oiling heat transer at high heat lux conditions. Lee and Lin (1993) conducted the low transient CHF experiments in the simulation o Pressurized Water Reactor (PWR) conditions. The experimental data were compared with the predictions o improved model y Lin et al. (1988a). Their results reveal that the sulayer dry out model is appropriate. All o the aore-mentioned theoretical approaches or predicting the low oiling CHF (Lee and Mudawwar, 1988; Lin et al., 1988a; 1988; Katto, 1990a; 1990; 199) acknowledged that the sulayer dry out is triggered y Helmoholtz instaility at the sulayer-vapor lanket interace. However, so ar there is no theoretical model ased on the Helmholtz instaility concept proposed or prediction o occurrence o CHF. In the present study, a critical condition or onset o CHF is derived ased on the Helmholtz instaility at interace o two streams. The relative velocity o two streams is calculated using the heat transer model y Lin et al. (1994). The predicted transient time to the onset o CHF provided reasonale agreement with the Lee and Lin (1993) experimental data.. MATERIALS AN METHOS Based on the oiling coniguration o sucooled low through a vertical tue at the high heat lux conditions as shown in Fig. 1, a theoretical oiling heat transer model was proposed with the ollowing assumptions: In the sucooled low through a vertical tue, the vapor lankets are ormed rom small ules pilling up as vertical distorted vapor cylinders. All the vapor lankets glide up parallel to the heated wall and shield the heated wall rom the cooling o ulk low. As a result, a liquid sulayer orms etween the vapor lankets and the heated wall For high heat lux, the passing period o the vapor lanket ecomes suiciently long as that reported in Hino and Ueda (1985) investigation. Thus, the sulayer seems always exist etween the heated wall and the vapor lanket Since the thickness o the sulayer is very thin with low low rate, it is reasonale to assume that, in the sulayer, the ule generation is ceased and the heat convection can e ignored due to small velocity, the heat transer across the liquid sulayer is dominated y heat conduction Figure shows the temperature distriution in the sulayer and the orce alance on the vapor lanket. As mentioned aove, the q heat lux can e calculated y heat conduction through the thickness o sulayer δ with the temperature dierence o heated wall T w and the vapor lanket T sat. i.e.: k (Tw T sat ) q = δ (1) In this equation k is the conductivity o liquid. By newton s law o cooling, the heat lux also can e expressed as: q = h(t T ) () w From Eq. 1 and, the sucooled oiling heat transer coeicient h can e otained as Eq. 3: h = q / (q δ / k + Tsat T ) (3) Thus to determine the heat transer coeicient, it is needed to calculate the sulayer thickness δ which can e otained y orce alance on the vapor lanket in the axial and the radial directions (Fig. ). For the two-phase low, the eective luid properties such as density ρ and viscosity µ need to e modiied irst..1. Eective Homogeneous Fluid Properties The homogeneous two-phase low model is assumed to e suitale or the present sucooled or low-quality low oiling conditions... Magnitude o True Quality The true quality x can e evaluated y using Saha and Zuer (1974) ormula Eq. 4: xe xd exp(x e / xd 1) x = 1 x exp(x / x 1 d e d (4) where, x e is the thermodynamic equilirium quality and x d is the thermodynamic quality at the point o ule detachment rom that heated wall. The value o x d is Eq. 5: qcp xd = 0.00 ;or Pe < H k g g q xd = 154 ;or Pe > H G (5) where, c p the speciic heat capacity o liquid, the inner diameter o the tue, H g is the latent heat o vaporization, G the mass velocity and P e the Peclet numer o liquid. Note that, as x e x d the true quality is identically zero or the single-phase low. 1998

4 Chien-Hsiung Lee et al. / Journal o Computer Science 8 (1) (01) Fig.. Schematic diagram o vapor lanke moving in vertical turulent low at high heat lux condition.3. ρ and µ or Homogeneous Flow For the homogeneous two-phase low o true quality x, the luid density ρ is generally given y Eq. 6: 1 x (1 x ) = + ρ ρ ρ g (6) In this equation ρ g and ρ respectively, denote the density o vapor and liquid, while the mean two-phase viscosity µ will e evaluated y using the ormula o ukler et al. (1964) Eq. 7: µ = ρ [xµ gv g + (1 x) µ v ] (7) where, µ g and µ represent the viscosity o vapor and liquid; and v g and v are speciic volume o vapor and liquid, respectively..4. Relative Velocity o Vapor Blanket to Liquid At high heat lux condition, the vapor lanket is ormed y the coalescence o small ules. The vapor lanket is assumed to e a distorted cylinder o length L and diameter, which orms a lat interace near the wall. Consider the orce alance in the axial direction, the relative velocity o the lanket with respect to the liquid will e determined y a alance etween the uoyancy orce F and the drag orce F d Eq. 8 and 9: F + F = 0 (8) B Where: π FB = L ρ g (9) 4 And: 1 Z π F = ρ FCUL (10) 4 in which ρ = ρ -ρ g is the density dierence etween the two phases, C the drag coeicient and U L the relative velocity o the vapor lanket with respect to the liquid at the position corresponding to the centerline o the lanket. The negative sign in Eq. 10 indicates that the direction o the drag orce is opposite to the low direction. Chan and Prince (1965) proposed an expression o the drag coeicient or a small deormed ule Eq. 11: C 48µ = (11) ρ eu L Since the vapor lanket is ormed initially y the coalescence a vertical column o small ules, the 1999

5 Chien-Hsiung Lee et al. / Journal o Computer Science 8 (1) (01) equivalent diameter e and are assumed to e equal to the ule departure diameter (Lee and Mudawwar, 1988) and the latter can e otained rom the correlation o Cole and Rohsenow (1968) Eq. 1: C 4 pt σ ρ sat g ρ ρ H g g (1) where, σ is the surace tension. Weisman and Pei (1983) indicated that the ules are approximately ellipsoidal with the ratio o long to short ellipse axis eing aout 3:1 in the case o high heat lux. So the length o the vapor lanket L is assumed to e three times o the ule diameter. Comining Eq. 8 through (1) with the relations e = and L =3 gives the relative velocity o the ule with respect to the liquid as Eq. 13: U L = ( ρ ρ g ) 8µ.5. Liquid Velocity Gradient g (13) The local liquid velocity gradient can e evaluated y the orce alance o a vapor lanket in the radial direction and the velocity proile distriution..6. Force Balance in Radial irection The orce alance o a vapor lanket in the radial direction is shown as Fig.. Vapro generation due to sulayer evaporation creates a rate o change o momentum F 1 which pushes the vapor lanket away rom the wall. However, the lateral motion o the lanket is resisted y a lateral orce F R caused y the vapor lanket rotation, which is resulted due to the velocity gradient associated with the liquid oundary layer in the tue. The inertial orce F 1 is given y Eq. 14: U π F = C U L y 4 L R ρ L (16) where, U L is the local liquid velocity and C is a parameter which accounts or the eects o turulent luctuations and local ule concentration on the rotation o the vapor lanket. From a liquid-gas two-phase low experiment in the adiaatic oundary condition, Beyerlein et al. (1985) ound that C is a unction o the average void raction and the liquid Reynolds numer. In the present model or vapor-liquid system with wall heating, the dependences o two-phase Reynolds numer and the oiling numer in the parameter C are taken into account and is modeled y Eq. 17: C = a Re Bo (17) a a3 1 * In which a 1, a and a 3 are empirical constants, Re = G/µ is the eective Reynolds numer or homogeneous low and Bo * is a modiied oiling numer deined as Eq. 18: q Bo = * Bo[(1 x) /1 ] 1 x = α Hg G 1 α (18) In which Bo = q/(gh g ) is the conventional oiling numer and α is the void raction Eq. 19: α = vgx / [vgx + v (1 x)] (19) Upon comining the aove equations, the liquid velocity gradient U L / y can e evaluated as the values o a 1, a and a 3 are treated known quantities, it is Eq. 0: F = ρ V L (14) 1 g U L 3µ q = y gπc ρ ( ρ ρ )H 3 p g g g (0) where, V is the vapor velocity due to evaporation o the sulayerand can e expressed as Eq. 15: V = q / ( ρ gh g) (15) Beyerlein et al. (1985) derived an expression or the lateral orce on a ule in turulent two-phase low in a vertical tue. The lateral orce on the vapor lanket is determined y the relative velocity o the lanket and the gradient o the liquid velocity proile, i.e Eq. 16:.7. Velocity Proile istriution Applying the Karman s three-layer structure o turulent low in a tue, the riction velocity U + can e derived y the non-dimensional wall distance y +, that is Eq. 1a-d: U = y ;or0 < y < 5 (1a) U = 5.0ln y 3.05;or 5 y 30 (1) 000

6 Chien-Hsiung Lee et al. / Journal o Computer Science 8 (1) (01) U =.5ln y ;or 30 < y (1c) Where: U = U / τ / ρ, y = y τ ρ / µ (1d) + + w w ( ρ ρ ) ( ) τ δ + / τ / ρ ρ µ w w U = 5.0ln g 8µ g (6) And τ w is wall shear stress which can e otained y Eq. : (G / ρ) τ w = ρ () where, the riction actor is the anning riction actor, can e calculated y Eq. 3: F = 0.046Re 0. (3) The eective value o he velocity gradient causing vapor lanket rotation can e approximated as velocity gradient at the radial position o δ+ / rom the wall. Lee and Mudawwar (1988) ound that the liquid velocity proile around the vapor lanket locates in the uer region and the eective velocity gradient can e calculated rom Eq. (1a-d): U L 1 = 5 τw / ρ y δ + ( / ).8. Thickness o Sulayer (4) Comparing Eq. 0 and 4, the thickness o sulayer δ is otained y: S π τ / ρgc ρ ( ρ ρ )H δ = 3µ q w p g g g (5) Thus, the heat transer coeicient h can e predicted y sustituting Eq. 5 into Eq Velocity o Vapor Blanket To determine the onset o CHF, it is needed to calculate the velocity o vapor lanket U which can e approximated as the superposition o the local liquid velocity at the radial position o δ+ / rom the wall and the relative vapor lanket velocity. Thereore, the velocity o the vapor lanket can e calculated rom Eq. 1 and 13, it is Eq. 6:.10. Critical Velocity or Oneset o CHF Figure 3 represents the low oiling coniguration o sucooled or low-quality low immediately just eore and occurrence o CHF. This phenomenon is called Helmholt instaility which causes a wavy motion o the sulayer-vapor lanket interace. Based on the concept o Helmholtz instaility as the relative velocity o the two streams, i.e., the liquid in the sulayer and the vapor in the vapor lanket, reaches a critical value, a wavy motion o the interace is induced. ue to the instaility nature, the amplitude o the wavy motion can e ampliied. The critical value will e evaluated ased on the ollowing assumptions: The length o the lanket changes suddenly to the Helmholtz critical wavelength when the vapor lanket velocity reaches the critical valueand the sulayer also adjust its thickness The vapor lanket touches the heated surace as result o the Helmholtz instaility, the dry patch persists and spreads very quickly, which induces a sudden rise in wall temperature CHF occurs when the rate o sulayer mass loss y evaporation exceeds the mass low rate o the liquid entering the sulayer rom the core region.11. Thickness o Sulayer Since CHF is postulated to occur as a result o Helmholtz instaility, the length o the sulayer and the vapor lanket are assumed to e equal to the Helmholtz critical wavelength L H, as shown in Fig. 3a, i.e Eq. 7: L πσ( ρ +ρ ) = a (7) ρ ρ g H g(uh U m) In which U H, is the critical velocity o the vapor lanket to onset o CHF, U m the liquid velocity in the sulayer. Since U H is always much higher than U m, the aove expression can e reduced to: L πσ( ρ +ρ ) = (8) ρ ρ g H guh 001

7 Chien-Hsiung Lee et al. / Journal o Computer Science 8 (1) (01) sulayer, G m the liquid mass lux lowing into the sulayer, can e express as Eq. 30: Gm = ρ (UH U m) ρ UH (30) Since H g = C p and in general, T sat = T m the second term in RHS o Eq. 9 can e neglected. Thereore, comining Eq. 8 through (30) gives δ H the thickness o the sulayer as Eq. 31: πσq ( ρ +ρ ) δ = (31) ρ ρ c g H 3 ghguh (a).1. Relative Velocity o Capor Blanket to Liquid Near the CHF condition, the relative velocity o the vapor lanket to local liquid U LH can e determined y a alance etween the uoyancy orce F B and the drag orce F Eq. 33 and 34: F + F = 0 (3) B Where: π FB = L H( ρ ρ g)g (33) 4 And: 1 π F = ρ CU LH (34) 4 In which C is the drag coeicient, can e evaluated through the Chan and Prince (1965) Eq. 35: () Fig. 3. The proposed sulayer dry out mechanism (a) Just eor CHF () Occurrence o CHF Since the occurrence o CHF is a result o local sulayer dry out, the minimum critical heat lux q c necessary to evaporate the mass lux in the sulayer (see Fig. 3a is: qclh = G mδ H[Hg + C p (Tsat T m)] (9) where, δ H is the thickness o the sulayer to onset o CHF, T m the temperature o the liquid entering the C 48µ = (35) ρ ULH Comining Eq. 8 and 3 through 35 gives the relative velocity o the vapor lanket: U πσ( ρ ρ ) g g LH = 1µ ρρguh.13. Critical Velocity o Vapor Blanket (36) The critical velocity o the vapor lanket is derived y the supersession o local liquid velocity at the radial position o δ H + / rom the wall and the lanket relative velocity U H which can e otained rom Eq. 1 and 36. it is Eq. 37: 00

8 Chien-Hsiung Lee et al. / Journal o Computer Science 8 (1) (01) g g H ( ρ + ρ ) πσqc g + τ 3 wρ τ ghguh w ρ ρ UH = 5.0ln 3.05 ρ µ πσ( ρ ρ ) g + 1µ ρ ρ U (37) Thus, the critical lanket velocity U H can e predicted y the numerical iteration. 3. RESULTS AN ISCUSSION 3.1. Veriication o Heat Transer Model By a regression analysis o 31 experimental data in the simulation o Light Water Reactors (LWRs) conditions (P = 6.9~15.5MPa), that is conducted y Lin et al. (1994), empirical constants a 1, a and a 3 are ound to e 0.50, 1.0 and.1, respectively, Fig. 4 provides a comparison o predicted and experimental heat transer coeicient or sucooled low oiling at high heat lux (0.6 CHF < q<chf). The predictions agree well with the experimental dataand the majority o data points all within the error and o 40%. Gungor and Winterton (1986) evaluated the various correlations or sucooled low oiling, y comparing with measured data, they reported that the correlations y Moles and Shaw (197); Shah (1977) and Gungor and Winterton (1986) are the est ones among others. Thereore, the aove mentioned three correlations are selected in the study o sucooled low oiling heat transer coeicients. The comparison o these correlations with the experimental data is in Tale 1. The correlations y Moles and Shaw (197) and Gungor and Winterton (1986) that perormed well with the high pressure (6.9MPa~15.5 MPa) oiling data give mean deviation o 3.7% (Moles and Shaw, 197) and 46.1% (Gungor and Winterton, 1986), this error is closed to the report or sucooled low iling data at the pressure rom 13. to MPa. The correlation y Moles and Shaw present a etter agreement with the experimental data within average deviation o 3.9% and mean deviation o 3.7%. However, this correlation is derived y direct dimensionless analysisand no signiicant physical meanings. Since the present model is developed ased on the high heat lux mechanisms o vapor lanket and heat conduction in sulayer, it is superior to other correlations. 3.. Veriication o Steady-State CHF To veriy the trigger condition or onset o CHF, it is needed to examine the comparison etween the critical value U H and the vapor lanket velocity U as CHF occurs. Fig. 4. Comparison o the predicted heat transer coeicient with the experimental data at high heat lux Tale 1. The statistical results or predicting oiling heat transer coeicient y the various correlation Correlation Numer o points A(%) M(%) Gungor and Interton Moles and Shaw Shah Present model Thereore, an analysis o relation etween U H and U will e study ased on a total o 36 data points o sucooled and low-quality saturated low oiling water included in the taular CHF data o the USSR Academy o Sciences (Collier, 1981), at the conditions o P = MPa, G = 1000~5000 kg m s and α = The analysis provided the Average eviation (A) o 5.3% and mean deviation o.8%. Thus, ased on the Helmholtz instaility at the sulayer-vapor lanket interace is the trigger condition or the onset o CHF as the lanket velocity reaches a critical value, this hypothesis is appropriate Veriication o Tr0061nsient CHF Lee and Lin (1993) conducted an experiment low transient CHF in the simulation o PWR at the linear mass low decay rate rom 0.1 to 30%/s. Figure 5 shows the variation o the inlow mass velocity and the wall temperature with the transient time at the low decay rate o 0.1%/s. The onset o CHF is determined at the exit o the test section while the wall temperature excursion occurred, since the arupt drop and the ollowed jump in wall temperature implies rewetting and dry out process o liquid ilm underneath the vapor lanket. 003

9 Chien-Hsiung Lee et al. / Journal o Computer Science 8 (1) (01) Fig. 5. The variation o the inlow mass velocity and the wall temperature with the transient time at the low decay rate o 0.1%/s Fig. 6. The variation o sulayer thickness and vapor lanket velocity with the transient time at the low decay rate o 0.1%/s 004

10 Chien-Hsiung Lee et al. / Journal o Computer Science 8 (1) (01) Fig. 7. The relation etween the transient time to CHF and the low decay rate Fig. 8. Comparison o the predicted time to CHF with the experimental data under simulating PWR low transient 005

11 Chien-Hsiung Lee et al. / Journal o Computer Science 8 (1) (01) Tale. The statistical results or predicting transient time to CHF y the various correlations Correlation No. o points A(%) M(%) EPRI BandW Lin, Lee and Pei Present model The experimental data will e compared with present model predictions. In present study, the predicted time to onset o CHF is determined as the lanket velocity is reached the critical velocity. Figure 6 show the variation a vapor lanket velocity and sulayer thickness with the transient time at the conditions o T in = 90 C, P = 15.5MPa, G initial = 3800 kg m sec and low decay rate =0.1%/. The CHF is occurred when U is equal to U H, it is worth to note that the thickness o sulayer is very near zero during the occurrence o CHF, this is a good evidence or sulayer dry out model. In Fig. 7, as the low decay rate increase rom %/s, it is shown that the experimental and the predicted transient time to CHF is decreased. Figure 8 provides a comparison o the predicted and measured time to ones o CHF. The prediction agrees well with the experimental dataand the majority o data points all within the error ank o 30% The well-known CHF correction o BandW- (Gellerstedy, 1969), EPR-1 (Fighetti and Reddy, 1983) and Lin et al. (1988a) are used to predict the onset o CHF in comparison with the present model. The comparison is shown in Tale. Only the BandW- correlation with 13.9% o mean deviation is etter than the prediction o present model. But the process rom oiling heat transer to the onset o CHF only can e demonstrated y the present model, this is why the present model is superior to the other correlations. 4. CONCLUSION A theoretical model ased on the Helmholtz instaility has een developed or the evaluation o heat transer perormance and occurrence o CHF in lowquality low oiling prolem. For prediction o the heat transer coeicient and the critical heat lux, the validity o the present model has een demonstrated y comparing with the existing experimental data and empirical corrections. However, it is worthy to note that the present model is developed ased on the low and heat transer mechanisms. Thereore, unlike most o the previous models, the present one is o more physical meanings. It is elieved that the present theoretical model is also useul to the analysis o the cooling technology related to the low oiling heat transer. 5. REFERENCES 1. Beyerlein, S.W., R.K. Cossman and H.J. Richter, Prediction o ule concentration proiles in vertical turulent twophase low. Int. J. Mul. Flow, 11: OI: / (85) Bhat, A.M., J.S. Saini and R. Prakash, Role o macrolayer evaporation in pool oiling at high heat lux. Int. J. Heat Mass Trans., 9: OI: / (86) Bhat, A.M., R. Prakash and J.S. Saini, Heat transer in nucleate pool oiling at high heat lux. Int. J. Heat Mass Trans., 6: OI: /S (83) Celata, G.P., A review o recent experiments and predictions aspects o urnout at very high heat luxes. Proceedings o the International Journal Multiphase Flows Conerence, (IJMFC 91), pp: Chan, B.K.C. and R.G.H. Prince, istillation studies-viscous drag on a gas ule rising in a liquid. AIChE, J. 11: OI: /aic Chi-Liang, Y. and R.B. Mesler, A study o nucleate oiling near the peak heat lux through measurement o transient surace temperature. Int. J. Heat Mass Trans., 0: OI: / (77) Chinm, P., J.Y. Hwang and T.L. Lin, The mechanism o heat transer in transition oiling. Int. J. Heat Mass Trans., 3: OI: / (89) Cole, R. and W.R. Rohsenow, Correlation o ule departure diameters or oiling o saturated liquids. Proceedings o the Chemical Enginring Progress Symposym, (CEPS 68), pp: Collier, J.G., Convective Boiling and Condensation. nd Edn., McGraw-Hill, New York, ISBN-10: , pp: ukler, A.E., M. Wicks and R.G. Cleveland, Frictional pressure drop in two-phase low: B. An approach through similarity analysis. AIChE J., 10: OI: /aic

12 Chien-Hsiung Lee et al. / Journal o Computer Science 8 (1) (01) Fighetti, C.F. and.c. Reddy, Parametric study o CHF data. 1. Gellerstedy, J.S., R.A. Lee, W.J. Oerjohn, R.H. Wilson and L.J. Stanek, Correlation o critical heat lux in a undle cooled y pressurized water reactor. 13. Gungor, K.E. and R.H.S. Winterton, A general correlation or low oiling in tues and annuli. Int. J. Heat Mass Trans., 9: OI: / (86)9005-X 14. Haramura, Y. and Y. Katto, A new hydrodynamic model o critical heat lux, applicale widely to oth pool and orced convection oiling on sumerged odies in saturated liquids. Int. J. Heat. Mass Trans., 6: OI: / (83) Hino, R. and T. Ueda, Studies on heat transer and low characteristics in sucooled low oiling-part. low characteristics. Int. J. Multiphase low, 11: OI: / (85)90059-X 16. Jairajpuri, A.M. and J.S. Saini, A new model or heat low through macrolayer in pool oiling at high heat lux. Int. J. Heat. Mass. Trans., 34: OI: / (91) Katto, Y. and S. Yokoya, Principal mechanism o oiling crisis in pool oiling. Int. J. Heat Mass Tran., 11: OI: / (68) Katto, Y., 1990a. A physical approach to critical heat lux o sucooled low oiling in round tues. Int. J. Heat Mass Trans., 33: OI: / (90)90160-V 19. Katto, Y., Prediction o critical heat lux o sucooled low oiling in round tues. Int. J. Heat Mass Trans., 33: OI: / (90)903-H 0. Katto, Y., 199. A prediction model o sucooled water low oiling CHF or pressure in the range MPa. Int. J. Heat Mass Trans., 35: OI: / (9)9017-O 1. Lee, C.H. and I. Mudawwar, A mechanistic critical heat lux model or sucooled low oiling ased on local ulk low conditions. Int. J. Mul. low, 14: OI: / (88) Lee, C.H. and K.W. Lin, Experimental investigation o low transient critical heat lux at light water reactor conditions. Int. Commun. Heat Mass Trans., 0: OI: / (93) Lin, K.W., C.H. Lee, L.W. Hourng and J.C. Hsu, A theoretical and experimental study on sucooled low oiling at high heat lux. Warme-und Stouertragung, 9: OI: /BF Lin, W.S., B.S. Pei, C.H. Lee and I.A. Mudawwar, A mechanistic critical heat lu critical heat lux model or rod undles under pressurized water reactor conditions. Int. J. Mul. Flow., 14: OI: / (88) Lin, W.S., C.H. Lee and B.S. Pei, 1988a. An improved theoretical critical heat lux model or low-quality low. Nuclear Technol., 88: Moles, F.. and J.F.G. Shaw, 197. Boiling heat transer to sucooled liquids under conditions o orced convection. Trans. Inst. Chem. Eng., 50: Rajvanshi, A.K., J.S. Saini and R. Prakash, 199. Investigation o macrolayer thickness in nucleate pool oiling at high heat lux. Int. J. Heat. Mass. Trans., 35: OI: / (9)907-T 8. Saha, P. and N. Zuer, Point o net vapor generation and vapor void raction in sucooled oiling. Proceedings o the 5th International Heat Transer Conerence, (IHTC 74), Tokyo, Japan, pp: Shah, M.M., A general correlation or heat transer during sucooled oiling in pipes and annuli. Ashrae Trans., 83: %0BOIL%0CORR%01977.pd 30. Weisman, J. and B.S. Pei, Prediction o critical heat lux in low oiling at low qualities. Int. J. Heat Mass Trans., 6: OI: /S (83)

Gas-side mass transfer coefficient of a laboratory column equipped with one sieve tray

Gas-side mass transfer coefficient of a laboratory column equipped with one sieve tray Gas-side mass transer coeicient o a laoratory column equipped with one sieve tray Zhivko Ivanov, Zhelcho Steanov, Bogdan Bogdanov Astract: The inluence o plate geometry on the characteristics o luid low

More information

CONVECTIVE HEAT TRANSFER CHARACTERISTICS OF NANOFLUIDS. Convective heat transfer analysis of nanofluid flowing inside a

CONVECTIVE HEAT TRANSFER CHARACTERISTICS OF NANOFLUIDS. Convective heat transfer analysis of nanofluid flowing inside a Chapter 4 CONVECTIVE HEAT TRANSFER CHARACTERISTICS OF NANOFLUIDS Convective heat transer analysis o nanoluid lowing inside a straight tube o circular cross-section under laminar and turbulent conditions

More information

Controlling the Heat Flux Distribution by Changing the Thickness of Heated Wall

Controlling the Heat Flux Distribution by Changing the Thickness of Heated Wall J. Basic. Appl. Sci. Res., 2(7)7270-7275, 2012 2012, TextRoad Publication ISSN 2090-4304 Journal o Basic and Applied Scientiic Research www.textroad.com Controlling the Heat Flux Distribution by Changing

More information

cen29305_ch08.qxd 11/30/05 3:05 PM Page 451 INTERNAL FORCED CONVECTION CHAPTER 8 Liquid or gas flow through pipes or ducts is commonly used in heating

cen29305_ch08.qxd 11/30/05 3:05 PM Page 451 INTERNAL FORCED CONVECTION CHAPTER 8 Liquid or gas flow through pipes or ducts is commonly used in heating cen29305_ch08.qxd 11/30/05 3:05 PM Page 451 INTERNAL FORCED CONVECTION CHAPTER 8 Liquid or gas flow through pipes or ducts is commonly used in heating and cooling applications. The fluid in such applications

More information

Boiling and Condensation (ME742)

Boiling and Condensation (ME742) Indian Institute of Technology Kanpur Department of Mechanical Engineering Boiling and Condensation (ME742) PG/Open Elective Credits: 3-0-0-9 Updated Syllabus: Introduction: Applications of boiling and

More information

Chapter 10: Boiling and Condensation 1. Based on lecture by Yoav Peles, Mech. Aero. Nuc. Eng., RPI.

Chapter 10: Boiling and Condensation 1. Based on lecture by Yoav Peles, Mech. Aero. Nuc. Eng., RPI. Chapter 10: Boiling and Condensation 1 1 Based on lecture by Yoav Peles, Mech. Aero. Nuc. Eng., RPI. Objectives When you finish studying this chapter, you should be able to: Differentiate between evaporation

More information

EXTENDED SURFACES / FINS

EXTENDED SURFACES / FINS EXTENDED SURFACES / FINS Convection: Heat transer etween a solid surace and a moving luid is governed y the Newton s cooling law: q = ha(t s -T ). Thereore, to increase the convective heat transer, one

More information

Evaporation (Chapter 14) Zan Wu Room: 5123

Evaporation (Chapter 14) Zan Wu Room: 5123 Evaporation (Chapter 14) Zan Wu zan.wu@enery.lth.se Room: 5123 Evaporation, Boilin vätska, liquid 1) Local boilin or subcooled boilin 2) Boilin with net evaporation q Pool boilin Forced convective boilin

More information

FLOW CHARACTERISTICS OF HFC-134a IN AN ADIABATIC HELICAL CAPILLARY TUBE

FLOW CHARACTERISTICS OF HFC-134a IN AN ADIABATIC HELICAL CAPILLARY TUBE E HEFAT7 5 th International Conerence on Heat Transer, Fluid Mechanics and Thermodynamics Sun City, South Arica Paper number: KM1 FLOW CHARACTERISTICS OF HFC-1a IN AN ADIABATIC HELICAL CAPILLARY TUBE Khan

More information

OE4625 Dredge Pumps and Slurry Transport. Vaclav Matousek October 13, 2004

OE4625 Dredge Pumps and Slurry Transport. Vaclav Matousek October 13, 2004 OE465 Vaclav Matousek October 13, 004 1 Dredge Vermelding Pumps onderdeel and Slurry organisatie Transport OE465 Vaclav Matousek October 13, 004 Dredge Vermelding Pumps onderdeel and Slurry organisatie

More information

Analysis of Non-Thermal Equilibrium in Porous Media

Analysis of Non-Thermal Equilibrium in Porous Media Analysis o Non-Thermal Equilibrium in Porous Media A. Nouri-Borujerdi, M. Nazari 1 School o Mechanical Engineering, Shari University o Technology P.O Box 11365-9567, Tehran, Iran E-mail: anouri@shari.edu

More information

Available online at ScienceDirect. Energy Procedia 83 (2015 ) Václav Dvo ák a *, Tomáš Vít a

Available online at   ScienceDirect. Energy Procedia 83 (2015 ) Václav Dvo ák a *, Tomáš Vít a Available online at www.sciencedirect.com ScienceDirect Energy Procedia 83 (205 ) 34 349 7th International Conerence on Sustainability in Energy and Buildings Numerical investigation o counter low plate

More information

COMPUTATIONAL STUDY OF CHEMICALLY REACTING HYPERSONIC FLOW

COMPUTATIONAL STUDY OF CHEMICALLY REACTING HYPERSONIC FLOW COMPUTATIONAL STUDY OF CHEMICALLY REACTING HYPERSONIC FLOW Yoshiuru Funahashi Department o Aeronautics and Astronautics, Graduate School o Engineering, The University o Tokyo, Tokyo, JAPAN Keywords: Hypersonic

More information

Chapter 3 Water Flow in Pipes

Chapter 3 Water Flow in Pipes The Islamic University o Gaza Faculty o Engineering Civil Engineering Department Hydraulics - ECI 33 Chapter 3 Water Flow in Pipes 3. Description o A Pipe Flow Water pipes in our homes and the distribution

More information

Description of a One-Dimensional Numerical Model of an Active Magnetic Regenerator Refrigerator

Description of a One-Dimensional Numerical Model of an Active Magnetic Regenerator Refrigerator This is a 1D model o an active magnetic regenerative rerigerator (AMRR) that was developed in MATLAB. The model uses cycle inputs such as the luid mass low and magnetic ield proiles, luid and regenerator

More information

Non-newtonian Rabinowitsch Fluid Effects on the Lubrication Performances of Sine Film Thrust Bearings

Non-newtonian Rabinowitsch Fluid Effects on the Lubrication Performances of Sine Film Thrust Bearings International Journal o Mechanical Engineering and Applications 7; 5(): 6-67 http://www.sciencepublishinggroup.com/j/ijmea doi:.648/j.ijmea.75.4 ISSN: -X (Print); ISSN: -48 (Online) Non-newtonian Rabinowitsch

More information

FLOW INSTABILITY IN VERTICAL CHANNELS

FLOW INSTABILITY IN VERTICAL CHANNELS FLOW INSTABILITY IN VERTICAL CHANNELS FLOW INSTABILITY IN VERTICAL CHANNELS Robert Stelling, and Edward V. McAssey, Jr. Department o Mechanical Engineering Villanova University Villanova, Pennsylvania

More information

heat transfer process where a liquid undergoes a phase change into a vapor (gas)

heat transfer process where a liquid undergoes a phase change into a vapor (gas) Two-Phase: Overview Two-Phase two-phase heat transfer describes phenomena where a change of phase (liquid/gas) occurs during and/or due to the heat transfer process two-phase heat transfer generally considers

More information

COMPARISON OF THERMAL CHARACTERISTICS BETWEEN THE PLATE-FIN AND PIN-FIN HEAT SINKS IN NATURAL CONVECTION

COMPARISON OF THERMAL CHARACTERISTICS BETWEEN THE PLATE-FIN AND PIN-FIN HEAT SINKS IN NATURAL CONVECTION HEFAT014 10 th International Conerence on Heat Transer, Fluid Mechanics and Thermodynamics 14 6 July 014 Orlando, Florida COMPARISON OF THERMA CHARACTERISTICS BETWEEN THE PATE-FIN AND PIN-FIN HEAT SINKS

More information

ROAD MAP... D-1: Aerodynamics of 3-D Wings D-2: Boundary Layer and Viscous Effects D-3: XFLR (Aerodynamics Analysis Tool)

ROAD MAP... D-1: Aerodynamics of 3-D Wings D-2: Boundary Layer and Viscous Effects D-3: XFLR (Aerodynamics Analysis Tool) AE301 Aerodynamics I UNIT D: Applied Aerodynamics ROAD MAP... D-1: Aerodynamics o 3-D Wings D-2: Boundary Layer and Viscous Eects D-3: XFLR (Aerodynamics Analysis Tool) AE301 Aerodynamics I : List o Subjects

More information

8. INTRODUCTION TO STATISTICAL THERMODYNAMICS

8. INTRODUCTION TO STATISTICAL THERMODYNAMICS n * D n d Fluid z z z FIGURE 8-1. A SYSTEM IS IN EQUILIBRIUM EVEN IF THERE ARE VARIATIONS IN THE NUMBER OF MOLECULES IN A SMALL VOLUME, SO LONG AS THE PROPERTIES ARE UNIFORM ON A MACROSCOPIC SCALE 8. INTRODUCTION

More information

An Improved Expression for a Classical Type of Explicit Approximation of the Colebrook White Equation with Only One Internal Iteration

An Improved Expression for a Classical Type of Explicit Approximation of the Colebrook White Equation with Only One Internal Iteration International Journal o Hydraulic Engineering 06, 5(): 9-3 DOI: 0.593/j.ijhe.06050.03 An Improved Expression or a Classical Type o Explicit Approximation o the Colebrook White Equation with Only One Internal

More information

Phase Changes Heat must be added or removed to change a substance from one phase to another. Phases and Phase Changes. Evaporation

Phase Changes Heat must be added or removed to change a substance from one phase to another. Phases and Phase Changes. Evaporation Applied Heat Transer Part One (Heat Phase Changes Heat must be added or remoed to change a substance rom one phase to another. Ahmad RAMAZANI S.A. Associate Proessor Shari Uniersity o Technology انتقال

More information

RESEARCH OF THE BUNDLE CHF PREDICTION BASED ON THE MINIMUM DNBR POINT AND THE BO POINT METHODS

RESEARCH OF THE BUNDLE CHF PREDICTION BASED ON THE MINIMUM DNBR POINT AND THE BO POINT METHODS RESEARCH OF THE BUNDLE CHF PREDICTION BASED ON THE MINIMUM DNBR POINT AND THE BO POINT METHODS Wei Liu 1, Jianqiang Shan 2 1 :Science and Technology on Reactor System Design Technology Laboratory, Nuclear

More information

Energy-Mass-Size balance model for dynamic control of a wet open circuit grinding mill: Part I - Model development

Energy-Mass-Size balance model for dynamic control of a wet open circuit grinding mill: Part I - Model development ISSN (e): 2250 3005 Volume, 06 Issue, 02 Feruary 2016 International Journal o Computational Engineering Research (IJCER) Energy-Mass-Size alance model or dynamic control o a wet open circuit grinding mill:

More information

Kuldeep Rawat*, Ayushman Srivastav* *Assistant Professor, Shivalik College of Engineering, Dehradun.

Kuldeep Rawat*, Ayushman Srivastav* *Assistant Professor, Shivalik College of Engineering, Dehradun. International Journal o Scientiic & Engineering search, Volume 7, Issue 12, December-16 348 ISSN 2229-18 NUMERICAL INVESTIGATION OF HEAT TRANSFER ENHANCEMENT OVER RECTANGULAR PERFORATED FIN Abstract Kuldeep

More information

Pressure Drop for In-tube Supercritical CO 2 Cooling: Comparison of Correlations and Validation

Pressure Drop for In-tube Supercritical CO 2 Cooling: Comparison of Correlations and Validation Paper No: RC-8 19 th National & 8 th ISHMT-ASME Heat and Mass Transer Conerence January -, 008 JNTU Hyderaad, India Pressure Drop or In-tue Supercritical CO Cooling: Comparison o Correlations and Validation

More information

Prediction of Critical Heat Flux (CHF) for Vertical Round Tubes with Uniform Heat Flux in Medium Pressure Regime

Prediction of Critical Heat Flux (CHF) for Vertical Round Tubes with Uniform Heat Flux in Medium Pressure Regime Korean J. Chem. Eng., 21(1), 75-80 (2004) Prediction of Critical Heat Flux (CHF) for Vertical Round Tubes with Uniform Heat Flux in Medium Pressure Regime W. Jaewoo Shim and Joo-Yong Park Department of

More information

Chem 406 Biophysical Chemistry Lecture 1 Transport Processes, Sedimentation & Diffusion

Chem 406 Biophysical Chemistry Lecture 1 Transport Processes, Sedimentation & Diffusion Chem 406 Biophysical Chemistry Lecture 1 Transport Processes, Sedimentation & Diusion I. Introduction A. There are a group o biophysical techniques that are based on transport processes. 1. Transport processes

More information

TOPICAL PROBLEMS OF FLUID MECHANICS 17 ONE-DIMENSIONAL TEMPERATURE DISTRIBUTION OF CONDENSING ANNULAR FINS OF DIFFERENT PROFILES

TOPICAL PROBLEMS OF FLUID MECHANICS 17 ONE-DIMENSIONAL TEMPERATURE DISTRIBUTION OF CONDENSING ANNULAR FINS OF DIFFERENT PROFILES TOPICAL PROBLEMS OF FLUID MECHANICS 17 ONE-DIMENSIONAL TEMPERATURE DISTRIBUTION OF CONDENSING ANNULAR FINS OF DIFFERENT PROFILES A. Bouraaa 1, 2, M. Saighi 2, K. Salhi 1, A. Hamidat 1 and M. M. Moundi

More information

Title. Author(s) 尾崎, 哲浩. Issue Date DOI. Doc URL. Type. File Information. Drag Force Models /doctoral.k13343

Title. Author(s) 尾崎, 哲浩. Issue Date DOI. Doc URL. Type. File Information. Drag Force Models /doctoral.k13343 Title Improvement o Accuracy and Reliability on BWR Therm Drag Force Models Author(s) 尾崎, 哲浩 Issue Date 2018-09-25 DOI 10.14943/doctoral.k13343 Doc URL http://hdl.handle.net/2115/71808 Type theses (doctoral)

More information

Appendix A: Uncertainty Analysis

Appendix A: Uncertainty Analysis Appendix A: Uncertainty Analysis o compute the uncertainty in the experimental data o this work, error analyses have been conducted according to the principles proposed by aylor [1]. he error analysis

More information

Improved Refrigerant Characteristics Flow Predictions in Adiabatic Capillary Tube

Improved Refrigerant Characteristics Flow Predictions in Adiabatic Capillary Tube Research Journal o Applied Sciences, Engineering and Technology 4(3: 9-97, 0 ISSN: 040-7467 Maxwell Scientiic Organization, 0 Submitted: February 6, 0 Accepted: March 08, 0 Published: July 0, 0 Improved

More information

P = ρ{ g a } + µ 2 V II. FLUID STATICS

P = ρ{ g a } + µ 2 V II. FLUID STATICS II. FLUID STATICS From a force analysis on a triangular fluid element at rest, the following three concepts are easily developed: For a continuous, hydrostatic, shear free fluid: 1. Pressure is constant

More information

International Journal of Heat and Mass Transfer

International Journal of Heat and Mass Transfer International Journal of Heat and Mass Transfer 52 (2009) 4519 4524 Contents lists available at ScienceDirect International Journal of Heat and Mass Transfer journal homepage: www.elsevier.com/locate/ijhmt

More information

CRITICAL MASS FLOW RATE THROUGH CAPILLARY TUBES

CRITICAL MASS FLOW RATE THROUGH CAPILLARY TUBES Proceedings o the ASME 010 rd Joint US-European Fluids Engineering Summer Meeting and 8th International Conerence FESM-ICNMM010 August 1-5, 010, Montreal, Canada Proceedings o ASME 010 rd Joint US-European

More information

Second Order Slip Flow of Cu-Water Nanofluid Over a Stretching Sheet With Heat Transfer

Second Order Slip Flow of Cu-Water Nanofluid Over a Stretching Sheet With Heat Transfer Second Order Slip Flow o Cu-Water Nanoluid Over a Stretching Sheet With Heat Transer RAJESH SHARMA AND ANUAR ISHAK School o Mathematical Sciences, Faculty o Science and Technology Universiti Kebangsaan

More information

39.1 Gradually Varied Unsteady Flow

39.1 Gradually Varied Unsteady Flow 39.1 Gradually Varied Unsteady Flow Gradually varied unsteady low occurs when the low variables such as the low depth and velocity do not change rapidly in time and space. Such lows are very common in

More information

Prediction of Well Bore Temperatures during Ultra-Deep Drilling

Prediction of Well Bore Temperatures during Ultra-Deep Drilling Prediction o Well Bore Temperatures during Ultra-Deep Drilling Fanhe Meng, Aiguo Yao*, Shuwei Dong Faculty o Engineering China University o Geosciences Wuhan, Hubei, 430074, China Abstract In order to

More information

Chapter 8 Laminar Flows with Dependence on One Dimension

Chapter 8 Laminar Flows with Dependence on One Dimension Chapter 8 Laminar Flows with Dependence on One Dimension Couette low Planar Couette low Cylindrical Couette low Planer rotational Couette low Hele-Shaw low Poiseuille low Friction actor and Reynolds number

More information

The Derivation of a Drag Coefficient Formula from Velocity-Voidage Correlations

The Derivation of a Drag Coefficient Formula from Velocity-Voidage Correlations 1 The Derivation o a Drag Coeicient Formula rom Velocity-Voidage Correlations By M. Syamlal EG&G, T.S.W.V, Inc. P.O. Box 880 Morgantown, West Virginia 6507-0880 T.J. O Brien U.S. Department o Energy Morgantown

More information

A lattice Boltzmann method for electric field-space charge coupled problems

A lattice Boltzmann method for electric field-space charge coupled problems Proc. 06 Electrostatics Joint Conerence A lattice Boltzmann method or electric ield-space charge coupled prolems Kang Luo a,, Jian Wu,, Hong-Liang Yi a,*, He-Ping Tan a a. School o Energy Science and Engineering,

More information

A NUMERICAL STUDY OF SINGLE-PHASE FORCED CONVECTIVE HEAT TRANSFER WITH FLOW FRICTION IN ROUND TUBE HEAT EXCHANGERS

A NUMERICAL STUDY OF SINGLE-PHASE FORCED CONVECTIVE HEAT TRANSFER WITH FLOW FRICTION IN ROUND TUBE HEAT EXCHANGERS www.arpapress.com/volumes/vol6issue4/ijrras_6_4_05.pd A NUMERICAL STUDY OF SINGLE-PHASE FORCED CONVECTIVE HEAT TRANSFER WITH FLOW FRICTION IN ROUND TUBE HEAT EXCHANGERS Pedram Mohajeri Khameneh 1,*, Iraj

More information

RESOLUTION MSC.362(92) (Adopted on 14 June 2013) REVISED RECOMMENDATION ON A STANDARD METHOD FOR EVALUATING CROSS-FLOODING ARRANGEMENTS

RESOLUTION MSC.362(92) (Adopted on 14 June 2013) REVISED RECOMMENDATION ON A STANDARD METHOD FOR EVALUATING CROSS-FLOODING ARRANGEMENTS (Adopted on 4 June 203) (Adopted on 4 June 203) ANNEX 8 (Adopted on 4 June 203) MSC 92/26/Add. Annex 8, page THE MARITIME SAFETY COMMITTEE, RECALLING Article 28(b) o the Convention on the International

More information

Evaporation Heat Transfer and Pressure Drop of Refrigerant R-410A Flow in a Vertical Plate Heat Exchanger

Evaporation Heat Transfer and Pressure Drop of Refrigerant R-410A Flow in a Vertical Plate Heat Exchanger Y. Y. Hsieh T. F. Lin Department of Mechanical Engineering, National Chaio Tung University, Hsinchu, Taiwan, R.O.C. Evaporation Heat Transfer and Pressure Drop of Refrigerant R-410A Flow in a Vertical

More information

Estimation of Hottest Spot Temperature in Power Transformer Windings with NDOF and DOF Cooling

Estimation of Hottest Spot Temperature in Power Transformer Windings with NDOF and DOF Cooling Transactions D: Computer Science & Engineering and Electrical Engineering Vol. 16, No. 2, pp. 163{170 c Sharif University of Technology, Decemer 2009 Research Note Estimation of Hottest Spot Temperature

More information

GENERATOR COOLING USING HEAT PIPES

GENERATOR COOLING USING HEAT PIPES Conerence on Modelling Fluid Flow (CMFF 6) The 13th International Conerence on Fluid Flow Technologies Budapest, Hungary, September 6-9, 6 GENERATOR COOLING USING HEAT PIPES Bert de LEEUW 1, Harry HAGENS

More information

Modelling of phase change for Two-Phase Refrigerant Flow inside Capillary Tube under Adiabatic Conditions

Modelling of phase change for Two-Phase Refrigerant Flow inside Capillary Tube under Adiabatic Conditions International Journal of Current Engineering and Technology E-ISSN 2277 4106, P-ISSN 2347 5161 2016 INPRESSCO, All Rights Reserved Available at http://inpressco.com/category/ijcet Research Article Modelling

More information

MAGNETOHYDRODYNAMIC GO-WATER NANOFLUID FLOW AND HEAT TRANSFER BETWEEN TWO PARALLEL MOVING DISKS

MAGNETOHYDRODYNAMIC GO-WATER NANOFLUID FLOW AND HEAT TRANSFER BETWEEN TWO PARALLEL MOVING DISKS THERMAL SCIENCE: Year 8, Vol., No. B, pp. 383-39 383 MAGNETOHYDRODYNAMIC GO-WATER NANOFLUID FLOW AND HEAT TRANSFER BETWEEN TWO PARALLEL MOVING DISKS Introduction by Mohammadreza AZIMI and Rouzbeh RIAZI

More information

CHAPTER-III CONVECTION IN A POROUS MEDIUM WITH EFFECT OF MAGNETIC FIELD, VARIABLE FLUID PROPERTIES AND VARYING WALL TEMPERATURE

CHAPTER-III CONVECTION IN A POROUS MEDIUM WITH EFFECT OF MAGNETIC FIELD, VARIABLE FLUID PROPERTIES AND VARYING WALL TEMPERATURE CHAPER-III CONVECION IN A POROUS MEDIUM WIH EFFEC OF MAGNEIC FIELD, VARIABLE FLUID PROPERIES AND VARYING WALL EMPERAURE 3.1. INRODUCION Heat transer studies in porous media ind applications in several

More information

NON-SIMILAR SOLUTIONS FOR NATURAL CONVECTION FROM A MOVING VERTICAL PLATE WITH A CONVECTIVE THERMAL BOUNDARY CONDITION

NON-SIMILAR SOLUTIONS FOR NATURAL CONVECTION FROM A MOVING VERTICAL PLATE WITH A CONVECTIVE THERMAL BOUNDARY CONDITION NON-SIMILAR SOLUTIONS FOR NATURAL CONVECTION FROM A MOVING VERTICAL PLATE WITH A CONVECTIVE THERMAL BOUNDARY CONDITION by Asterios Pantokratoras School o Engineering, Democritus University o Thrace, 67100

More information

Journal of Thermal Science and Technology

Journal of Thermal Science and Technology Science and Technology Vol. 5, No., Development o an Ethanol Reduced Kinetic Mechanism Based on the Quasi-Steady State Assumption and Feasiility Evaluation or Multi-Dimensional Flame Analysis * Masaki

More information

ENGINEERING OF NUCLEAR REACTORS. Tuesday, October 9 th, 2014, 1:00 2:30 p.m.

ENGINEERING OF NUCLEAR REACTORS. Tuesday, October 9 th, 2014, 1:00 2:30 p.m. .31 ENGINEERING OF NUCLEAR REACTORS Tuesday, October 9 th, 014, 1:00 :30 p.m. OEN BOOK QUIZ 1 (solutions) roblem 1 (50%) Loss o condensate pump transient in a LWR condenser i) Consider the seaater in the

More information

Studies on flow through and around a porous permeable sphere: II. Heat Transfer

Studies on flow through and around a porous permeable sphere: II. Heat Transfer Studies on flow through and around a porous permeable sphere: II. Heat Transfer A. K. Jain and S. Basu 1 Department of Chemical Engineering Indian Institute of Technology Delhi New Delhi 110016, India

More information

Convective Mass Transfer

Convective Mass Transfer Convective Mass Transfer Definition of convective mass transfer: The transport of material between a boundary surface and a moving fluid or between two immiscible moving fluids separated by a mobile interface

More information

Investigation of Initial Fouling Rates of Calcium Sulfate Solutions under Non-Boiling Conditions (Work-in-Progress)

Investigation of Initial Fouling Rates of Calcium Sulfate Solutions under Non-Boiling Conditions (Work-in-Progress) eereed Proceedings Heat Exchanger Fouling and Cleaning: Fundamentals and Applications Engineering Conerences International Year 23 Investigation o Initial Fouling ates o Calcium Sulate Solutions under

More information

Pressure Distribution of Refrigerant Flow in an Adiabatic Capillary Tube

Pressure Distribution of Refrigerant Flow in an Adiabatic Capillary Tube ScienceAsia 28 (2002) : 71-76 Pressure Distribution of Refrigerant Flow in an Adiabatic Capillary Tube Pakawat Kritsadathikarn, Tirawat Songnetichaovalit, Noppadon okathada and Somchai Wongwises* Fluid

More information

Open Access Establishment of Mathematical Model and Sensitivity Analysis of Plugging Capacity of Multi-Component Foam Flooding

Open Access Establishment of Mathematical Model and Sensitivity Analysis of Plugging Capacity of Multi-Component Foam Flooding Send Orders or Reprints to reprints@benthamscience.ae 84 The Open Chemical Engineering Journal, 2015, 9, 84-89 Open Access Establishment o Mathematical Model and Sensitivity Analysis o Plugging Capacity

More information

Heat Transfer: A Practical Approach - Yunus A Cengel Assignment 11 Fall 2003 Tuesday, November 18, 2003 Chapter 11, Problem 49

Heat Transfer: A Practical Approach - Yunus A Cengel Assignment 11 Fall 2003 Tuesday, November 18, 2003 Chapter 11, Problem 49 Heat Transer: A Practical Approach - Yunus A Cengel Assignment Fall 00 Tuesday, November 8, 00 Chapter, Problem 9 The variation o the spectral transmissivity o a 0.6- cm-thick glass window is as given

More information

Fin efficiency of the newly developed Compartmented Coil of a Single Coil Twin Fan System

Fin efficiency of the newly developed Compartmented Coil of a Single Coil Twin Fan System Fin eiciency o the newly developed Compartmented Coil o a Single Coil Twin Fan System ABSTRACT In predicting the perormance o any cooling coil, HVAC designers ace multiold challenges in designing the system

More information

DEVELOPMENT OF COMPUTATIONAL MULTIFLUID DYNAMICS MODELS FOR NUCLEAR REACTOR APPLICATIONS

DEVELOPMENT OF COMPUTATIONAL MULTIFLUID DYNAMICS MODELS FOR NUCLEAR REACTOR APPLICATIONS DEVELOPMENT OF COMPUTATIONAL MULTIFLUID DYNAMICS MODELS FOR NUCLEAR REACTOR APPLICATIONS Henry Anglart Royal Institute of Technology, Department of Physics Division of Nuclear Reactor Technology Stocholm,

More information

Materials Science and Engineering A

Materials Science and Engineering A Materials Science and Engineering A 528 (211) 48 485 Contents lists availale at ScienceDirect Materials Science and Engineering A journal homepage: www.elsevier.com/locate/msea Study o strength and its

More information

RELIABILITY OF BURIED PIPELINES WITH CORROSION DEFECTS UNDER VARYING BOUNDARY CONDITIONS

RELIABILITY OF BURIED PIPELINES WITH CORROSION DEFECTS UNDER VARYING BOUNDARY CONDITIONS REIABIITY OF BURIE PIPEIES WITH CORROSIO EFECTS UER VARYIG BOUARY COITIOS Ouk-Sub ee 1 and ong-hyeok Kim 1. School o Mechanical Engineering, InHa University #53, Yonghyun-ong, am-ku, Incheon, 40-751, Korea

More information

Vaporization of LPG by ambient air

Vaporization of LPG by ambient air ก ก 2 27-29 ก ก 2549 Vaporization of LG by ambient air anadda hu-akat, Suvit ia and Bunyaphat Suphanit Chemical Engineering Department, King Mongkut s University of echnology honburi 9 racha-uthit Rd.,

More information

A Semi-Analytical Solution for a Porous Channel Flow of a Non-Newtonian Fluid

A Semi-Analytical Solution for a Porous Channel Flow of a Non-Newtonian Fluid Journal o Applied Fluid Mechanics, Vol. 9, No. 6, pp. 77-76, 6. Available online at www.jamonline.net, ISSN 735-357, EISSN 735-3645. A Semi-Analytical Solution or a Porous Channel Flow o a Non-Newtonian

More information

Buoyancy Driven Heat Transfer of Water-Based CuO Nanofluids in a Tilted Enclosure with a Heat Conducting Solid Cylinder on its Center

Buoyancy Driven Heat Transfer of Water-Based CuO Nanofluids in a Tilted Enclosure with a Heat Conducting Solid Cylinder on its Center July 4-6 2012 London U.K. Buoyancy Driven Heat Transer o Water-Based CuO Nanoluids in a Tilted Enclosure with a Heat Conducting Solid Cylinder on its Center Ahmet Cihan Kamil Kahveci and Çiğdem Susantez

More information

Wave regimes and mass transfer in two-layer falling films

Wave regimes and mass transfer in two-layer falling films Wave regimes and mass transer in two-layer alling ilms by GÖKÇEN ÇEKİÇ A thesis submitted to The University o Birmingham or the degree o Doctor o Philosophy School o Mathematics The University o Birmingham

More information

Lectures on Applied Reactor Technology and Nuclear Power Safety. Lecture No 6

Lectures on Applied Reactor Technology and Nuclear Power Safety. Lecture No 6 Lectures on Nuclear Power Safety Lecture No 6 Title: Introduction to Thermal-Hydraulic Analysis of Nuclear Reactor Cores Department of Energy Technology KTH Spring 2005 Slide No 1 Outline of the Lecture

More information

FORCED CONVECTION FILM CONDENSATION OF DOWNWARD-FLOWING VAPOR ON HORIZONTAL TUBE WITH WALL SUCTION EFFECT

FORCED CONVECTION FILM CONDENSATION OF DOWNWARD-FLOWING VAPOR ON HORIZONTAL TUBE WITH WALL SUCTION EFFECT Journal of Marine Science and Technology, Vol., No. 5, pp. 5-57 () 5 DOI:.69/JMST--5- FORCED CONVECTION FILM CONDENSATION OF DOWNWARD-FLOWING VAPOR ON HORIZONTAL TUBE WITH WALL SUCTION EFFECT Tong-Bou

More information

PREDICTION OF MASS FLOW RATE AND PRESSURE DROP IN THE COOLANT CHANNEL OF THE TRIGA 2000 REACTOR CORE

PREDICTION OF MASS FLOW RATE AND PRESSURE DROP IN THE COOLANT CHANNEL OF THE TRIGA 2000 REACTOR CORE PREDICTION OF MASS FLOW RATE AND PRESSURE DROP IN THE COOLANT CHANNEL OF THE TRIGA 000 REACTOR CORE Efrizon Umar Center for Research and Development of Nuclear Techniques (P3TkN) ABSTRACT PREDICTION OF

More information

CFD-Modeling of Boiling Processes

CFD-Modeling of Boiling Processes CFD-Modeling of Boiling Processes 1 C. Lifante 1, T. Frank 1, A. Burns 2, E. Krepper 3, R. Rzehak 3 conxita.lifante@ansys.com 1 ANSYS Germany, 2 ANSYS UK, 3 HZDR Outline Introduction Motivation Mathematical

More information

Professor, Institute of Engineering Mechanics, Harbin. China 2. Ph.D Student, Institute of Engineering Mechanics, Harbin. China 3

Professor, Institute of Engineering Mechanics, Harbin. China 2. Ph.D Student, Institute of Engineering Mechanics, Harbin. China 3 The 14 th World Conerence on Earthquake Engineering COMPARISON OF FRP-RETROFITTING STRATEGIES IN CHINESE AND ITALIAN CODES J. W. DAI 1, Y.R. WANG 2, B. JIN 1, 3, D.F.ZU 4, Silvia Alessandri 5, Giorgio

More information

Summary of Dimensionless Numbers of Fluid Mechanics and Heat Transfer

Summary of Dimensionless Numbers of Fluid Mechanics and Heat Transfer 1. Nusselt number Summary of Dimensionless Numbers of Fluid Mechanics and Heat Transfer Average Nusselt number: convective heat transfer Nu L = conductive heat transfer = hl where L is the characteristic

More information

Chapter 6 Fundamental Concepts of Convection

Chapter 6 Fundamental Concepts of Convection Chapter 6 Fundamental Concepts of Convection 6.1 The Convection Boundary Layers Velocity boundary layer: τ surface shear stress: s = μ u local friction coeff.: C f y y=0 τ s ρu / (6.) (6.1) Thermal boundary

More information

12d Model. Civil and Surveying Software. Version 7. Drainage Analysis Module Hydraulics. Owen Thornton BE (Mech), 12d Model Programmer

12d Model. Civil and Surveying Software. Version 7. Drainage Analysis Module Hydraulics. Owen Thornton BE (Mech), 12d Model Programmer 1d Model Civil and Surveying Sotware Version 7 Drainage Analysis Module Hydraulics Owen Thornton BE (Mech), 1d Model Programmer owen.thornton@1d.com 9 December 005 Revised: 10 January 006 8 February 007

More information

Prandtl Number Effect on Assisted Convective Heat Transfer through a Solar Collector

Prandtl Number Effect on Assisted Convective Heat Transfer through a Solar Collector Available at http://pvamu.edu/aam Appl. Appl. Math. ISSN: 1932-9466 Applications and Applied Mathematics: An International Journal (AAM) Special Issue No. 2 (May 2016), pp. 22 36 18th International Mathematics

More information

Heat-fluid Coupling Simulation of Wet Friction Clutch

Heat-fluid Coupling Simulation of Wet Friction Clutch 3rd International Conerence on Mechatronics, Robotics and Automation (ICMRA 2015) Heat-luid Coupling Simulation o Wet Friction Clutch Tengjiao Lin 1,a *, Qing Wang 1, b, Quancheng Peng 1,c and Yan Xie

More information

The Research of Heat Transfer Area for 55/19 Steam Generator

The Research of Heat Transfer Area for 55/19 Steam Generator Journal of Power and Energy Engineering, 205, 3, 47-422 Published Online April 205 in SciRes. http://www.scirp.org/journal/jpee http://dx.doi.org/0.4236/jpee.205.34056 The Research of Heat Transfer Area

More information

8.3 Design of Base Plate for Thickness

8.3 Design of Base Plate for Thickness 8.3 Design o Base Plate or Thickness 8.3.1 Design o base plate or thickness (Elastic Design) Upto this point, the chie concern has been about the concrete oundation, and methods o design have been proposed

More information

3D Numerical Modelling of Convective Heat Transfer through Two-sided Vertical Channel Symmetrically Filled with Metal Foams

3D Numerical Modelling of Convective Heat Transfer through Two-sided Vertical Channel Symmetrically Filled with Metal Foams P Periodica Polytechnica Mechanical Engineering P 60(4), pp. 193-202, 2016 DOI: 10.3311/PPme.8511 Creative Commons Attribution b 3D Numerical Modelling o Convective Heat Transer through Two-sided Vertical

More information

A REPORT ON PERFORMANCE OF ANNULAR FINS HAVING VARYING THICKNESS

A REPORT ON PERFORMANCE OF ANNULAR FINS HAVING VARYING THICKNESS VOL., NO. 8, APRIL 6 ISSN 89-668 ARPN Journal o Engineering and Applied Sciences 6-6 Asian Research Publishing Networ (ARPN). All rights reserved. A REPORT ON PERFORMANCE OF ANNULAR FINS HAVING VARYING

More information

Engineering Thermodynamics. Chapter 3. Energy Transport by Heat, Work and Mass

Engineering Thermodynamics. Chapter 3. Energy Transport by Heat, Work and Mass Chapter 3 Energy Transport y Heat, ork and Mass 3. Energy of a System Energy can e viewed as the aility to cause change. Energy can exist in numerous forms such as thermal, mechanical, kinetic, potential,

More information

Transport Properties: Momentum Transport, Viscosity

Transport Properties: Momentum Transport, Viscosity Transport Properties: Momentum Transport, Viscosity 13th February 2011 1 Introduction Much as mass(material) is transported within luids (gases and liquids), linear momentum is also associated with transport,

More information

Multiphase Flows. Mohammed Azhar Phil Stopford

Multiphase Flows. Mohammed Azhar Phil Stopford Multiphase Flows Mohammed Azhar Phil Stopford 1 Outline VOF Model VOF Coupled Solver Free surface flow applications Eulerian Model DQMOM Boiling Model enhancements Multi-fluid flow applications Coupled

More information

Rotating Flow of Magnetite-Water Nanofluid over a Stretching Surface Inspired By Non-Linear Thermal Radiation and Mass Transfer

Rotating Flow of Magnetite-Water Nanofluid over a Stretching Surface Inspired By Non-Linear Thermal Radiation and Mass Transfer International Journal o Mathematics Research. ISSN 0976-5840 Volume 9, Number (017), pp. 89-97 International Research Publication House http://www.irphouse.com Rotating Flow o Magnetite-Water Nanoluid

More information

Chapter 6 Reliability-based design and code developments

Chapter 6 Reliability-based design and code developments Chapter 6 Reliability-based design and code developments 6. General Reliability technology has become a powerul tool or the design engineer and is widely employed in practice. Structural reliability analysis

More information

transformation of the reactants through highly reactive intermediates (active centers) to final products.

transformation of the reactants through highly reactive intermediates (active centers) to final products. LETUE. ETIN MEHNISMS ND EVLUTIN F TE FMS We have already seen that single reactions, in general, do not occur in one step; ut that it is a particular sequence o elementary reactions (reaction mechanism)

More information

Temperature profile of the Troposphere

Temperature profile of the Troposphere roposphere he troposphere is the lowest atmospheric layer reaching an altitude o about 20 km. Density, pressure and temperature decline with altitude. he troposphere is largely convective, which translates

More information

HYDROMAGNETIC DIVERGENT CHANNEL FLOW OF A VISCO- ELASTIC ELECTRICALLY CONDUCTING FLUID

HYDROMAGNETIC DIVERGENT CHANNEL FLOW OF A VISCO- ELASTIC ELECTRICALLY CONDUCTING FLUID Rita Choudhury et al. / International Journal o Engineering Science and Technology (IJEST) HYDROAGNETIC DIVERGENT CHANNEL FLOW OF A VISCO- ELASTIC ELECTRICALLY CONDUCTING FLUID RITA CHOUDHURY Department

More information

Channel Structure Influence on the Thermal-Hydraulic Performance of. Zigzag PCHE

Channel Structure Influence on the Thermal-Hydraulic Performance of. Zigzag PCHE The 6th International Supercritical CO2 Power Cycles Symposium March 27-29, 218, Pittsburgh, Pennsylvania Channel Structure Inluence on the Thermal-Hydraulic Perormance o Zigzag PCHE Yichao Gao Wenkai

More information

Lecture 30 Review of Fluid Flow and Heat Transfer

Lecture 30 Review of Fluid Flow and Heat Transfer Objectives In this lecture you will learn the following We shall summarise the principles used in fluid mechanics and heat transfer. It is assumed that the student has already been exposed to courses in

More information

Chapter 8 Flow in Pipes. Piping Systems and Pump Selection

Chapter 8 Flow in Pipes. Piping Systems and Pump Selection Piping Systems and Pump Selection 8-6C For a piping system that involves two pipes o dierent diameters (but o identical length, material, and roughness connected in series, (a the low rate through both

More information

Hydraulic validation of the LHC cold mass heat exchanger tube.

Hydraulic validation of the LHC cold mass heat exchanger tube. Hydraulic validation o te LHC cold mass eat excanger tube. LHC Project Note 155 1998-07-22 (pilippe.provenaz@cern.c) Pilippe PROVENAZ / LHC-ACR Division Summary Te knowledge o te elium mass low vs. te

More information

A Critical Investigation of High-Order Flux Limiters In Multiphase Flow Problems

A Critical Investigation of High-Order Flux Limiters In Multiphase Flow Problems A Critical Investigation o High-Order Flux Limiters In Multiphase Flow Problems Chris Guenther Fluent In., 3647 Collins Ferry Rd., Morgantown, WV 26505, USA cpg@luent.com ABSTRACT. In recent years inite

More information

CFD Analysis of Forced Convection Flow and Heat Transfer in Semi-Circular Cross-Sectioned Micro-Channel

CFD Analysis of Forced Convection Flow and Heat Transfer in Semi-Circular Cross-Sectioned Micro-Channel CFD Analysis of Forced Convection Flow and Heat Transfer in Semi-Circular Cross-Sectioned Micro-Channel *1 Hüseyin Kaya, 2 Kamil Arslan 1 Bartın University, Mechanical Engineering Department, Bartın, Turkey

More information

A Novel Model Considered Mass and Energy Conservation for Both Liquid and Vapor in Adsorption Refrigeration System.

A Novel Model Considered Mass and Energy Conservation for Both Liquid and Vapor in Adsorption Refrigeration System. Purdue University Purdue e-pubs International Refrigeration and Air Conditioning Conference School of Mechanical Engineering 2016 A Novel Model Considered Mass and Energy Conservation for Both Liquid and

More information

The University cannot take responsibility for any misprints or errors in the presented formulas. Please use them carefully and wisely.

The University cannot take responsibility for any misprints or errors in the presented formulas. Please use them carefully and wisely. Aide Mémoire Suject: Useful formulas for flow in rivers and channels The University cannot take responsiility for any misprints or errors in the presented formulas. Please use them carefully and wisely.

More information

EXPERIMENTAL AND CFD STUDIES OF FAT FOULING IN A NOVEL SPINNING DISC SYSTEM

EXPERIMENTAL AND CFD STUDIES OF FAT FOULING IN A NOVEL SPINNING DISC SYSTEM Proceedings o International Conerence on Heat Exchanger Fouling and Cleaning VIII - 29 (Peer-reviewed) June 14-19, 29, Schladming, Austria Editors: H. Müller-Steinhagen, M.R. Malayeri and A.P. Watkinson

More information

Local Heat Transfer Coefficient Measurements, Using a Transient Imaging Method With an Inverse Scheme

Local Heat Transfer Coefficient Measurements, Using a Transient Imaging Method With an Inverse Scheme Local Heat Transer Coeicient Measurements, Using a Transient Imaging Method With an Inverse Scheme A. EL ABBADI, D. BOUGEARD, B.BAUDOIN Ecole des Mines de Douai, Département Energétique Industrielle, 941,

More information

FLUID MECHANICS. Lecture 7 Exact solutions

FLUID MECHANICS. Lecture 7 Exact solutions FLID MECHANICS Lecture 7 Eact solutions 1 Scope o Lecture To present solutions or a ew representative laminar boundary layers where the boundary conditions enable eact analytical solutions to be obtained.

More information