메뉴 건너뛰기




Volumn 35, Issue C, 2001, Pages 249-308

Recent advances in the modeling and applications of nonconventional heat pipes

Author keywords

[No Author keywords available]

Indexed keywords


EID: 1842683385     PISSN: 00652717     EISSN: None     Source Type: Book Series    
DOI: 10.1016/S0065-2717(01)80022-8     Document Type: Chapter
Times cited : (37)

References (136)
  • 1
    • 0026204805 scopus 로고
    • Analysis of the one-dimensional transient compressible vapor flow in heat pipes
    • Jang J.H., Faghri A., and Chang W.S. Analysis of the one-dimensional transient compressible vapor flow in heat pipes. Int. J. Heat Mass Transfer 34 (1991) 2029-2037
    • (1991) Int. J. Heat Mass Transfer , vol.34 , pp. 2029-2037
    • Jang, J.H.1    Faghri, A.2    Chang, W.S.3
  • 2
    • 77956778415 scopus 로고
    • Simulated Heat Pipe Vapor Dynamics
    • Air Force Institute of Technology
    • Bowman W.J. Simulated Heat Pipe Vapor Dynamics. Ph.D. Dissertation (1987), Air Force Institute of Technology
    • (1987) Ph.D. Dissertation
    • Bowman, W.J.1
  • 4
    • 85003406350 scopus 로고
    • Transient heat pipe modeling: A quasi-steady, incompressible vapor flow model
    • Bowman W.J., Winn R.C., and Martin H.L. Transient heat pipe modeling: A quasi-steady, incompressible vapor flow model. AIAA J. Thermophys. Heat Transfer 6 (1992) 571-574
    • (1992) AIAA J. Thermophys. Heat Transfer , vol.6 , pp. 571-574
    • Bowman, W.J.1    Winn, R.C.2    Martin, H.L.3
  • 7
    • 0031212523 scopus 로고    scopus 로고
    • Boundary element approach to transient heat pipe analysis
    • Zuo Z.J., and Faghri A. Boundary element approach to transient heat pipe analysis. Numer. Heat Transfer 32A (1997) 205-220
    • (1997) Numer. Heat Transfer , vol.32 A , pp. 205-220
    • Zuo, Z.J.1    Faghri, A.2
  • 8
    • 0025671254 scopus 로고
    • Transient two-dimensional compressible analysis for high-temperature heat pipes with pulsed heat input
    • Cao Y., and Faghri A. Transient two-dimensional compressible analysis for high-temperature heat pipes with pulsed heat input. Numer. Heat Transfer 18 (1990) 483-502
    • (1990) Numer. Heat Transfer , vol.18 , pp. 483-502
    • Cao, Y.1    Faghri, A.2
  • 10
    • 77956720742 scopus 로고
    • Transient response of liquid metal heat pipes-A comparison of numerical and experimental results
    • Beijing, China
    • Chang M., and Chow L.C. Transient response of liquid metal heat pipes-A comparison of numerical and experimental results. Proceedings of the 8th International Heat Pipe Conference. Beijing, China (1992) 139-147
    • (1992) Proceedings of the 8th International Heat Pipe Conference , pp. 139-147
    • Chang, M.1    Chow, L.C.2
  • 12
    • 0027386928 scopus 로고
    • An experimental investigation of the transient response of a water heat pipe
    • El-Genk M.S., and Huang L. An experimental investigation of the transient response of a water heat pipe. Int. J. Heat Mass Transfer 36 (1993) 3823-3830
    • (1993) Int. J. Heat Mass Transfer , vol.36 , pp. 3823-3830
    • El-Genk, M.S.1    Huang, L.2
  • 14
    • 0029656520 scopus 로고    scopus 로고
    • Longitudinal vibration effects on a copper/water heat pipe's capillary limit
    • Huber N.F., and Bowman W.J. Longitudinal vibration effects on a copper/water heat pipe's capillary limit. AIAA J. Thermophys. Heat Transfer 10 (1996) 90-96
    • (1996) AIAA J. Thermophys. Heat Transfer , vol.10 , pp. 90-96
    • Huber, N.F.1    Bowman, W.J.2
  • 15
    • 0030111751 scopus 로고    scopus 로고
    • Performance characteristics of a stainless steel/ammonia loop heat pipe
    • Wirsch P.J., and Thomas S.K. Performance characteristics of a stainless steel/ammonia loop heat pipe. AIAA J. Thermophys. Heat Transfer 10 (1996) 326-333
    • (1996) AIAA J. Thermophys. Heat Transfer , vol.10 , pp. 326-333
    • Wirsch, P.J.1    Thomas, S.K.2
  • 16
    • 0029656524 scopus 로고    scopus 로고
    • Evaporative heat transfer at the evaporative section of a grooved heat pipe
    • Kobayashi Y., Ikeda S., and Iwasa M. Evaporative heat transfer at the evaporative section of a grooved heat pipe. AIAA J. Thermophys. Heat Transfer 10 (1996) 83-89
    • (1996) AIAA J. Thermophys. Heat Transfer , vol.10 , pp. 83-89
    • Kobayashi, Y.1    Ikeda, S.2    Iwasa, M.3
  • 17
    • 0026913972 scopus 로고
    • Analysis of flow and heat transfer characteristics of an asymmetrical flat plate heat pipe
    • Vafai K., and Wang W. Analysis of flow and heat transfer characteristics of an asymmetrical flat plate heat pipe. Int. J. Heat Mass Transfer 35 (1992) 2087
    • (1992) Int. J. Heat Mass Transfer , vol.35 , pp. 2087
    • Vafai, K.1    Wang, W.2
  • 18
    • 0032169541 scopus 로고    scopus 로고
    • Analytical modelling of the startup characteristics of asymmetrical flat-plate and disk-shaped heat pipes
    • Zhu N., and Vafai K. Analytical modelling of the startup characteristics of asymmetrical flat-plate and disk-shaped heat pipes. Int. J. Heat Mass Transfer 41 (1998) 2619-2637
    • (1998) Int. J. Heat Mass Transfer , vol.41 , pp. 2619-2637
    • Zhu, N.1    Vafai, K.2
  • 20
    • 0023033970 scopus 로고
    • Flow in porous media I: A theoretical derivation of Darcy's law
    • Whitaker S. Flow in porous media I: A theoretical derivation of Darcy's law. Transport Porous Media 1 (1986) 3-25
    • (1986) Transport Porous Media , vol.1 , pp. 3-25
    • Whitaker, S.1
  • 23
    • 0030073539 scopus 로고    scopus 로고
    • Enhanced flat miniature axially grooved heat pipe
    • Khrustalev D., and Faghri A. Enhanced flat miniature axially grooved heat pipe. ASME J. Heat Transfer 118 (1996) 261-264
    • (1996) ASME J. Heat Transfer , vol.118 , pp. 261-264
    • Khrustalev, D.1    Faghri, A.2
  • 24
    • 0008634636 scopus 로고
    • An experimental investigation of flat plate heat pipe
    • Fundamentals of heat pipes
    • Um J.Y., Chow L.C., and Baker K. An experimental investigation of flat plate heat pipe. Fundamentals of heat pipes. ASME HTD Vol. 278 (1994) 21-26
    • (1994) ASME HTD , vol.278 , pp. 21-26
    • Um, J.Y.1    Chow, L.C.2    Baker, K.3
  • 25
    • 84992580890 scopus 로고
    • Performance characteristics of a concentric annular heat pipe: Part I-Experimental prediction and analysis of the capillary limit
    • Faghri A., and Thomas S. Performance characteristics of a concentric annular heat pipe: Part I-Experimental prediction and analysis of the capillary limit. ASME J. Heat Transfer 111 (1989) 844-850
    • (1989) ASME J. Heat Transfer , vol.111 , pp. 844-850
    • Faghri, A.1    Thomas, S.2
  • 26
    • 84983631643 scopus 로고
    • Performance characteristics of a concentric annualar heat pipe: Part II-Vapor flow analysis
    • Faghri A. Performance characteristics of a concentric annualar heat pipe: Part II-Vapor flow analysis. ASME J. Heat Transfer 111 (1989) 851-857
    • (1989) ASME J. Heat Transfer , vol.111 , pp. 851-857
    • Faghri, A.1
  • 27
    • 0027611302 scopus 로고
    • Vapor flow analysis of an axially rotating heat pipe
    • Faghri A., Gogineni S., and Thomas S. Vapor flow analysis of an axially rotating heat pipe. Int. J. Heat Mass Transfer 36 (1993) 2293-2303
    • (1993) Int. J. Heat Mass Transfer , vol.36 , pp. 2293-2303
    • Faghri, A.1    Gogineni, S.2    Thomas, S.3
  • 28
    • 0029138314 scopus 로고
    • Two-dimensional rotating heat pipe analysis
    • Harley C., and Faghri A. Two-dimensional rotating heat pipe analysis. ASME J. Heat Transfer 117 (1995) 202-208
    • (1995) ASME J. Heat Transfer , vol.117 , pp. 202-208
    • Harley, C.1    Faghri, A.2
  • 29
    • 0030181335 scopus 로고    scopus 로고
    • Critical conditions for collapse of annular flow in a rotating heat pipe with a cylindrical wall
    • Lin L., and Groll M. Critical conditions for collapse of annular flow in a rotating heat pipe with a cylindrical wall. Heat Transfer Eng. 17 (1996) 29-34
    • (1996) Heat Transfer Eng. , vol.17 , pp. 29-34
    • Lin, L.1    Groll, M.2
  • 30
    • 0031246749 scopus 로고    scopus 로고
    • Steady-state performance of rotating miniature heat pipe
    • Lin L., and Faghri A. Steady-state performance of rotating miniature heat pipe. AIAA J. Thermophys. Heat Transfer 11 (1997) 513-518
    • (1997) AIAA J. Thermophys. Heat Transfer , vol.11 , pp. 513-518
    • Lin, L.1    Faghri, A.2
  • 31
    • 0031695942 scopus 로고    scopus 로고
    • Condensation in rotating stepped wall heat pipes with hysteretic annular flow
    • Lin L., and Faghri A. Condensation in rotating stepped wall heat pipes with hysteretic annular flow. AIAA J. Thermophys. Heat Transfer 12 (1998) 94-99
    • (1998) AIAA J. Thermophys. Heat Transfer , vol.12 , pp. 94-99
    • Lin, L.1    Faghri, A.2
  • 32
    • 0344517347 scopus 로고    scopus 로고
    • Heat transfer in micro region of a rotating miniature heat pipe
    • Lin L., and Faghri A. Heat transfer in micro region of a rotating miniature heat pipe. Int. J. Heat Mass Transfer 42 (1999) 1363-1369
    • (1999) Int. J. Heat Mass Transfer , vol.42 , pp. 1363-1369
    • Lin, L.1    Faghri, A.2
  • 33
    • 0032221754 scopus 로고    scopus 로고
    • Test results of water and methanol high-speed rotating heat pipes
    • Ponnappan R., and He Q. Test results of water and methanol high-speed rotating heat pipes. AIAA J. Thermophys. Heat Transfer 12 (1998) 391-397
    • (1998) AIAA J. Thermophys. Heat Transfer , vol.12 , pp. 391-397
    • Ponnappan, R.1    He, Q.2
  • 34
    • 49549144647 scopus 로고
    • Investigations of the factors affecting the performance of a rotating heat pipe
    • Daniels T.C., and Al-Jumaily F.K. Investigations of the factors affecting the performance of a rotating heat pipe. Int. J. Heat Mass Transfer 18 (1975) 961-973
    • (1975) Int. J. Heat Mass Transfer , vol.18 , pp. 961-973
    • Daniels, T.C.1    Al-Jumaily, F.K.2
  • 35
    • 0029104844 scopus 로고
    • Analysis of asymmetric disk-shaped and flat-plate heat pipes
    • Vafai K., Zhu N., and Wang W. Analysis of asymmetric disk-shaped and flat-plate heat pipes. ASME J. Heat Transfer 117 (1995) 209-218
    • (1995) ASME J. Heat Transfer , vol.117 , pp. 209-218
    • Vafai, K.1    Zhu, N.2    Wang, W.3
  • 36
    • 0029657034 scopus 로고    scopus 로고
    • Optimization analysis of a disk-shaped heat pipe
    • Zhu N., and Vafai K. Optimization analysis of a disk-shaped heat pipe. AIAA J. Thermophys. Heat Transfer 10 (1996) 179-182
    • (1996) AIAA J. Thermophys. Heat Transfer , vol.10 , pp. 179-182
    • Zhu, N.1    Vafai, K.2
  • 37
    • 0031200466 scopus 로고    scopus 로고
    • Numerical and analytical investigation of vapor flow in a disk-shaped heat pipe incorporation secondary flow
    • Zhu N., and Vafai K. Numerical and analytical investigation of vapor flow in a disk-shaped heat pipe incorporation secondary flow. Int. J. Heat Mass Transfer 40 (1997) 2887-2900
    • (1997) Int. J. Heat Mass Transfer , vol.40 , pp. 2887-2900
    • Zhu, N.1    Vafai, K.2
  • 38
    • 0029287482 scopus 로고
    • Thermal analysis of a piston cooling system with reciprocating heat pipes
    • Cao Y., and Wang Q. Thermal analysis of a piston cooling system with reciprocating heat pipes. Heat Transfer Eng. 16 (1995) 50-57
    • (1995) Heat Transfer Eng. , vol.16 , pp. 50-57
    • Cao, Y.1    Wang, Q.2
  • 39
    • 0030264643 scopus 로고    scopus 로고
    • Experimental investigations and correlations for the performance of reciprocating heat pipes
    • Ling J., Cao Y., and Wang Q. Experimental investigations and correlations for the performance of reciprocating heat pipes. Heat Transfer Eng. 17 (1996) 34-45
    • (1996) Heat Transfer Eng. , vol.17 , pp. 34-45
    • Ling, J.1    Cao, Y.2    Wang, Q.3
  • 40
    • 0025383117 scopus 로고
    • Mixed double-diffusive convection in gas-loaded heat pipes
    • Peterson P.F., and Tien C.L. Mixed double-diffusive convection in gas-loaded heat pipes. ASME J. Heat Transfer 112 (1990) 78-83
    • (1990) ASME J. Heat Transfer , vol.112 , pp. 78-83
    • Peterson, P.F.1    Tien, C.L.2
  • 41
    • 0028041844 scopus 로고
    • Transient two-dimensional gas loaded heat pipe analysis
    • Harley C., and Faghri A. Transient two-dimensional gas loaded heat pipe analysis. ASME J. Heat Transfer 116 (1994) 716-723
    • (1994) ASME J. Heat Transfer , vol.116 , pp. 716-723
    • Harley, C.1    Faghri, A.2
  • 42
    • 0028166894 scopus 로고
    • Startup performance of a liquid-metal heat pipe in near-vacuum and gas-loaded modes
    • Ponnappan R., and Chang W.S. Startup performance of a liquid-metal heat pipe in near-vacuum and gas-loaded modes. AIAA J. Thermophys. Heat Transfer 8 (1994) 164-171
    • (1994) AIAA J. Thermophys. Heat Transfer , vol.8 , pp. 164-171
    • Ponnappan, R.1    Chang, W.S.2
  • 44
    • 0025926017 scopus 로고
    • Transient multidimensional analysis of nonconventional heat pipes with uniform and nonuniform heat distributions
    • Cao Y., and Faghri A. Transient multidimensional analysis of nonconventional heat pipes with uniform and nonuniform heat distributions. ASME J. Heat Transfer 113 (1991) 995-1002
    • (1991) ASME J. Heat Transfer , vol.113 , pp. 995-1002
    • Cao, Y.1    Faghri, A.2
  • 45
    • 85014327350 scopus 로고
    • Conjugate modeling of high temperature nosecap and wing leading edge heat pipes
    • Cao Y., and Faghri A. Conjugate modeling of high temperature nosecap and wing leading edge heat pipes. ASME J. Heat Transfer 115 (1993) 819-822
    • (1993) ASME J. Heat Transfer , vol.115 , pp. 819-822
    • Cao, Y.1    Faghri, A.2
  • 46
    • 0032074167 scopus 로고    scopus 로고
    • The effects of transverse acceleration-induced body forces on the capillary limit of helically grooved heat pipes
    • Thomas S.K., Klasing K.S., and Yerkes K.L. The effects of transverse acceleration-induced body forces on the capillary limit of helically grooved heat pipes. ASME J. Heat Transfer 120 (1998) 441-451
    • (1998) ASME J. Heat Transfer , vol.120 , pp. 441-451
    • Thomas, S.K.1    Klasing, K.S.2    Yerkes, K.L.3
  • 47
    • 0031193260 scopus 로고    scopus 로고
    • Heat transport enhancement of monogroove heat pipe with electrohydrodynamic pumping
    • Bryan J.E., and Seyed-Yagoobi J. Heat transport enhancement of monogroove heat pipe with electrohydrodynamic pumping. AIAA J. Thermophys. Heat Transfer 11 (1997) 454-460
    • (1997) AIAA J. Thermophys. Heat Transfer , vol.11 , pp. 454-460
    • Bryan, J.E.1    Seyed-Yagoobi, J.2
  • 49
    • 0032102715 scopus 로고    scopus 로고
    • A network thermodynamic analysis of the heat pipe
    • Zuo Z.J., and Faghri A. A network thermodynamic analysis of the heat pipe. Int. J. Heat Mass Transfer 41 (1998) 1473-1484
    • (1998) Int. J. Heat Mass Transfer , vol.41 , pp. 1473-1484
    • Zuo, Z.J.1    Faghri, A.2
  • 50
    • 0029104056 scopus 로고
    • The interfacial thermodynamics of micro heat pipes
    • Swanson L.W., and Peterson G.P. The interfacial thermodynamics of micro heat pipes. ASME J. Heat Transfer 117 (1995) 195-201
    • (1995) ASME J. Heat Transfer , vol.117 , pp. 195-201
    • Swanson, L.W.1    Peterson, G.P.2
  • 51
    • 0029111140 scopus 로고
    • Heat transfer during evaporation on capillary grooved structures of heat pipes
    • Khrustalev D., and Faghri A. Heat transfer during evaporation on capillary grooved structures of heat pipes. ASME J. Heat Transfer 117 (1995) 740-747
    • (1995) ASME J. Heat Transfer , vol.117 , pp. 740-747
    • Khrustalev, D.1    Faghri, A.2
  • 52
    • 0029239996 scopus 로고
    • An augmented Young-Laplace model of an evaporating meniscus in a microchannel with high heat flux
    • Schonberg J.A., Dasgupta S., and Wayner P.C. An augmented Young-Laplace model of an evaporating meniscus in a microchannel with high heat flux. Exp. Thermal Fluid Sci. 10 (1995) 163-170
    • (1995) Exp. Thermal Fluid Sci. , vol.10 , pp. 163-170
    • Schonberg, J.A.1    Dasgupta, S.2    Wayner, P.C.3
  • 53
    • 0032004663 scopus 로고    scopus 로고
    • Thermocapillary effects on the stability of a heated, curved meniscus
    • Pratt D.M., Brown J.R., and Halliman K.P. Thermocapillary effects on the stability of a heated, curved meniscus. ASME J. Heat Transfer 120 (1998) 220-226
    • (1998) ASME J. Heat Transfer , vol.120 , pp. 220-226
    • Pratt, D.M.1    Brown, J.R.2    Halliman, K.P.3
  • 54
    • 0030480972 scopus 로고    scopus 로고
    • The interline heat transfer of evaporating thin films along a micro grooved surface
    • Ha J.M., and Peterson G.P. The interline heat transfer of evaporating thin films along a micro grooved surface. ASME J. Heat Transfer 118 (1996) 747-755
    • (1996) ASME J. Heat Transfer , vol.118 , pp. 747-755
    • Ha, J.M.1    Peterson, G.P.2
  • 55
    • 3843077359 scopus 로고    scopus 로고
    • Capillary performance of evaporating flow in micro grooves: An analytical approach for very small tilt angles
    • Ha J.M., and Peterson G.P. Capillary performance of evaporating flow in micro grooves: An analytical approach for very small tilt angles. ASME J. Heat Transfer 120 (1998) 452-457
    • (1998) ASME J. Heat Transfer , vol.120 , pp. 452-457
    • Ha, J.M.1    Peterson, G.P.2
  • 56
    • 0029674009 scopus 로고    scopus 로고
    • Experimental investigation of countercurrent liquid-vapor interactions and their effect on the friction factor
    • Ma H.B., Peterson G.P., and Peng X.F. Experimental investigation of countercurrent liquid-vapor interactions and their effect on the friction factor. Exp. Thermal. Fluid Sci. 12 (1996) 25-32
    • (1996) Exp. Thermal. Fluid Sci. , vol.12 , pp. 25-32
    • Ma, H.B.1    Peterson, G.P.2    Peng, X.F.3
  • 57
    • 0029676041 scopus 로고    scopus 로고
    • Analysis of countercurrent liquid-vapor interactions and the effect on the liquid friction factor
    • Peterson G.P., and Ma H.B. Analysis of countercurrent liquid-vapor interactions and the effect on the liquid friction factor. Exp. Thermal Fluid Sci. 12 (1996) 13-24
    • (1996) Exp. Thermal Fluid Sci. , vol.12 , pp. 13-24
    • Peterson, G.P.1    Ma, H.B.2
  • 58
    • 0032148029 scopus 로고    scopus 로고
    • Capillary performance of evaporating flow in micro grooves: An approximate analytical approach and experimental investigation
    • Peterson G.P., and Ha J.M. Capillary performance of evaporating flow in micro grooves: An approximate analytical approach and experimental investigation. ASME J. Heat Transfer 120 (1998) 743-751
    • (1998) ASME J. Heat Transfer , vol.120 , pp. 743-751
    • Peterson, G.P.1    Ha, J.M.2
  • 59
    • 0027579901 scopus 로고
    • Analysis of capillary induced rewetting in circular channels with internal grooves
    • Peng X.F., Peterson G.P., and Lu X.J. Analysis of capillary induced rewetting in circular channels with internal grooves. AIAA J. Thermophys. Heat Transfer 7 (1993) 334-339
    • (1993) AIAA J. Thermophys. Heat Transfer , vol.7 , pp. 334-339
    • Peng, X.F.1    Peterson, G.P.2    Lu, X.J.3
  • 60
    • 0028992212 scopus 로고
    • Depriming/rewetting of arterial heat pipes: Comparison with Share-II flight experiment
    • Ochterbeck J.M., Peterson G.P., and Ungar E.K. Depriming/rewetting of arterial heat pipes: Comparison with Share-II flight experiment. AIAA J. Thermophys. Heat Transfer 9 (1995) 101-108
    • (1995) AIAA J. Thermophys. Heat Transfer , vol.9 , pp. 101-108
    • Ochterbeck, J.M.1    Peterson, G.P.2    Ungar, E.K.3
  • 61
    • 0028534046 scopus 로고
    • Theoretical and physical interpretation of entrainment phenomenon in capillary-driven heat pipes using hydrodynamic instability theories
    • Kim B.H., and Peterson G.P. Theoretical and physical interpretation of entrainment phenomenon in capillary-driven heat pipes using hydrodynamic instability theories. Int. J. Heat Mass Transfer 37 (1994) 2647-2660
    • (1994) Int. J. Heat Mass Transfer , vol.37 , pp. 2647-2660
    • Kim, B.H.1    Peterson, G.P.2
  • 63
    • 0029103993 scopus 로고
    • Analysis of the critical Weber number at the onset of liquid entrainment in capillary driven heat pipes
    • Kim B.H., and Peterson G.P. Analysis of the critical Weber number at the onset of liquid entrainment in capillary driven heat pipes. Int. J. Heat Mass Transfer 38 (1995) 1427-1442
    • (1995) Int. J. Heat Mass Transfer , vol.38 , pp. 1427-1442
    • Kim, B.H.1    Peterson, G.P.2
  • 64
    • 0028532370 scopus 로고
    • The effective pore radius of screen wicks
    • Imura H., Kozai H., and Ikeda Y. The effective pore radius of screen wicks. Heat Transfer Eng. 15 (1994) 24-32
    • (1994) Heat Transfer Eng. , vol.15 , pp. 24-32
    • Imura, H.1    Kozai, H.2    Ikeda, Y.3
  • 65
    • 0028530452 scopus 로고
    • Liquid flow and vapor formation phenomena in a flat heat pipe
    • McCreery G.E. Liquid flow and vapor formation phenomena in a flat heat pipe. Heat Transfer Eng. 15 (1994) 33-41
    • (1994) Heat Transfer Eng. , vol.15 , pp. 33-41
    • McCreery, G.E.1
  • 66
    • 0025468566 scopus 로고
    • Mathematical modeling and analysis of heat pipe start-up from the frozen state
    • Jang J.H., Faghri A., Chang W.S., and Mahefkey E.T. Mathematical modeling and analysis of heat pipe start-up from the frozen state. ASME J. Heat Transfer 112 (1990) 586-594
    • (1990) ASME J. Heat Transfer , vol.112 , pp. 586-594
    • Jang, J.H.1    Faghri, A.2    Chang, W.S.3    Mahefkey, E.T.4
  • 67
    • 0027333794 scopus 로고
    • Freeze/thaw characteristics of a copper/water heat pipe: Effects of noncondensible gas charge
    • Ochterbeck J.M., and Peterson G.P. Freeze/thaw characteristics of a copper/water heat pipe: Effects of noncondensible gas charge. AIAA J. Thermophys. Heat Transfer 7 (1993) 127-132
    • (1993) AIAA J. Thermophys. Heat Transfer , vol.7 , pp. 127-132
    • Ochterbeck, J.M.1    Peterson, G.P.2
  • 69
    • 0030525446 scopus 로고    scopus 로고
    • A vapor flow model for analysis of fluid-metal heat pipe startup from a frozen state
    • Tournier J.M., and El-Genk M.S. A vapor flow model for analysis of fluid-metal heat pipe startup from a frozen state. Int. J. Heat Mass Transfer 39 (1996) 3767-3780
    • (1996) Int. J. Heat Mass Transfer , vol.39 , pp. 3767-3780
    • Tournier, J.M.1    El-Genk, M.S.2
  • 70
    • 0025926014 scopus 로고
    • A study of high-temperature heat pipes with multiple heat sources and sinks: Part I-Experimental methodology and frozen startup profiles
    • Faghri A., Buchko M., and Cao Y. A study of high-temperature heat pipes with multiple heat sources and sinks: Part I-Experimental methodology and frozen startup profiles. ASME J. Heat Transfer 113 (1991) 1003-1009
    • (1991) ASME J. Heat Transfer , vol.113 , pp. 1003-1009
    • Faghri, A.1    Buchko, M.2    Cao, Y.3
  • 71
    • 0026892873 scopus 로고
    • Frozen start-up behavior of low-temperature heat pipes
    • Faghri A. Frozen start-up behavior of low-temperature heat pipes. Int. J. Heat Mass Transfer 35 (1992) 1681-1694
    • (1992) Int. J. Heat Mass Transfer , vol.35 , pp. 1681-1694
    • Faghri, A.1
  • 72
    • 0026953241 scopus 로고
    • Closed-form analytical solutions of high-temperature heat pipe startup and frozen startup limitation
    • Cao Y., and Faghri A. Closed-form analytical solutions of high-temperature heat pipe startup and frozen startup limitation. ASME J. Heat Transfer 114 (1992) 1028-1035
    • (1992) ASME J. Heat Transfer , vol.114 , pp. 1028-1035
    • Cao, Y.1    Faghri, A.2
  • 73
    • 0025926016 scopus 로고
    • A study of high-temperature heat pipes with multiple heat sources and sinks: Part II-Analysis of continuum transient and steady state experimental data with numerical predictions
    • Faghri A., Buchko M., and Cao Y. A study of high-temperature heat pipes with multiple heat sources and sinks: Part II-Analysis of continuum transient and steady state experimental data with numerical predictions. ASME J. Heat Transfer 113 (1991) 1010-1016
    • (1991) ASME J. Heat Transfer , vol.113 , pp. 1010-1016
    • Faghri, A.1    Buchko, M.2    Cao, Y.3
  • 74
    • 77956763247 scopus 로고
    • Studies on the startup transients and performance of a gas loaded sodium heat pipe
    • Universal Energy Systems, Inc., Dayton, OH
    • Ponnappan R. Studies on the startup transients and performance of a gas loaded sodium heat pipe. Technical Report, WRDC-TR-89-2046 (1989), Universal Energy Systems, Inc., Dayton, OH
    • (1989) Technical Report, WRDC-TR-89-2046
    • Ponnappan, R.1
  • 75
    • 0027391365 scopus 로고
    • Simulation of the early startup period of high-temperature heat pipes from the frozen state by a rarefied vapor self-diffusion model
    • Cao Y., and Faghri A. Simulation of the early startup period of high-temperature heat pipes from the frozen state by a rarefied vapor self-diffusion model. ASME J. Heat Transfer 115 (1993) 239-246
    • (1993) ASME J. Heat Transfer , vol.115 , pp. 239-246
    • Cao, Y.1    Faghri, A.2
  • 76
    • 0027391366 scopus 로고
    • A numerical analysis of high-temperature heat pipe startup from the frozen state
    • Cao Y., and Faghri A. A numerical analysis of high-temperature heat pipe startup from the frozen state. ASME J. Heat Transfer 115 (1993) 247-254
    • (1993) ASME J. Heat Transfer , vol.115 , pp. 247-254
    • Cao, Y.1    Faghri, A.2
  • 77
    • 0028992216 scopus 로고
    • Startup characteristics of a potassium heat pipe from the frozen state
    • Jang J.H. Startup characteristics of a potassium heat pipe from the frozen state. AIAA J. Thermophys. Heat Transfer 9 (1995) 117-122
    • (1995) AIAA J. Thermophys. Heat Transfer , vol.9 , pp. 117-122
    • Jang, J.H.1
  • 78
    • 0026204474 scopus 로고
    • Experimental and numerical analysis of low-temperature heat pipes with multiple heat sources
    • Faghri A., and Buchko M. Experimental and numerical analysis of low-temperature heat pipes with multiple heat sources. ASME J. Heat Transfer 113 (1991) 728-734
    • (1991) ASME J. Heat Transfer , vol.113 , pp. 728-734
    • Faghri, A.1    Buchko, M.2
  • 79
    • 0027470674 scopus 로고
    • A study of circumferentially-heated and block-heated heat pipes-I. Experimental analysis and generalized analytical prediction of capillary limits
    • Schmalhofer J., and Faghri A. A study of circumferentially-heated and block-heated heat pipes-I. Experimental analysis and generalized analytical prediction of capillary limits. Int. J. Heat Mass Transfer 36 (1993) 201-212
    • (1993) Int. J. Heat Mass Transfer , vol.36 , pp. 201-212
    • Schmalhofer, J.1    Faghri, A.2
  • 80
    • 0027519132 scopus 로고
    • A study of circumferentially-heated and block-heated heat pigs-II. Three-dimensional numerical modeling as a conjugate problem
    • Schmalhofer J., and Faghri A. A study of circumferentially-heated and block-heated heat pigs-II. Three-dimensional numerical modeling as a conjugate problem. Int. J. Heat Mass Transfer 36 (1993) 213-226
    • (1993) Int. J. Heat Mass Transfer , vol.36 , pp. 213-226
    • Schmalhofer, J.1    Faghri, A.2
  • 81
    • 0029413285 scopus 로고
    • Heat extraction from the ground in a volcanic zone using copper water heat pipes-experiment and analysis
    • Tanaka O., Koshino H., Kuriki J., Yohmatsu Y., and Harada O. Heat extraction from the ground in a volcanic zone using copper water heat pipes-experiment and analysis. Exp. Thermal Fluid Sci. 11 (1995) 72-76
    • (1995) Exp. Thermal Fluid Sci. , vol.11 , pp. 72-76
    • Tanaka, O.1    Koshino, H.2    Kuriki, J.3    Yohmatsu, Y.4    Harada, O.5
  • 82
    • 0029657574 scopus 로고    scopus 로고
    • Steady solution selection and existence in geothermal heat pipes-I. The convective case
    • McGuinness M.J. Steady solution selection and existence in geothermal heat pipes-I. The convective case. Int. J. Heat Mass Transfer 39 (1996) 259-274
    • (1996) Int. J. Heat Mass Transfer , vol.39 , pp. 259-274
    • McGuinness, M.J.1
  • 83
    • 0029181206 scopus 로고
    • Performance characteristics of recently developed high-performance heat pipes
    • Schlitt R. Performance characteristics of recently developed high-performance heat pipes. Heat Transfer Engineering 16 (1995) 44-52
    • (1995) Heat Transfer Engineering , vol.16 , pp. 44-52
    • Schlitt, R.1
  • 84
    • 0029239992 scopus 로고
    • A pumped heat pipe cold plate for high-flux applications
    • Ambrose J.H., Field A.R., and Holmes H.R. A pumped heat pipe cold plate for high-flux applications. Exp. Thermal Fluid Sci. 10 (1995) 156-162
    • (1995) Exp. Thermal Fluid Sci. , vol.10 , pp. 156-162
    • Ambrose, J.H.1    Field, A.R.2    Holmes, H.R.3
  • 86
    • 0031106550 scopus 로고    scopus 로고
    • Fin efficiency enhancement using a gravity assisted planar heat pipe
    • Wei J., Hijikata K., and Inoue T. Fin efficiency enhancement using a gravity assisted planar heat pipe. Int. J. Heat Mass Transfer 40 (1997) 1045-1051
    • (1997) Int. J. Heat Mass Transfer , vol.40 , pp. 1045-1051
    • Wei, J.1    Hijikata, K.2    Inoue, T.3
  • 87
    • 0031239918 scopus 로고    scopus 로고
    • Enhancing forced air convection heat transfer from an array of parallel plate fins using a heat pipe
    • Zhao Z., and Avedisian C.T. Enhancing forced air convection heat transfer from an array of parallel plate fins using a heat pipe. Int. J. Heat Mass Transfer 40 (1997) 3135-3147
    • (1997) Int. J. Heat Mass Transfer , vol.40 , pp. 3135-3147
    • Zhao, Z.1    Avedisian, C.T.2
  • 88
    • 0027187757 scopus 로고
    • Micro/miniature heat pipes and operating limitations
    • Heat Pipes and Capillary Pumped Loops
    • Cao Y., Faghri A., and Mahefkey E.T. Micro/miniature heat pipes and operating limitations. Heat Pipes and Capillary Pumped Loops. ASME HTD Vol. 236 (1993) 55-62
    • (1993) ASME HTD , vol.236 , pp. 55-62
    • Cao, Y.1    Faghri, A.2    Mahefkey, E.T.3
  • 89
    • 0025471669 scopus 로고
    • Steady state modeling and testing of a micro heat pipe
    • Babin B.R., Peterson G.P., and Wu D. Steady state modeling and testing of a micro heat pipe. ASME J. Heat Transfer 112 (1990) 595-601
    • (1990) ASME J. Heat Transfer , vol.112 , pp. 595-601
    • Babin, B.R.1    Peterson, G.P.2    Wu, D.3
  • 90
    • 0026139230 scopus 로고
    • Investigation of the transient characteristics of a micro heat pipe
    • Wu D., and Peterson G.P. Investigation of the transient characteristics of a micro heat pipe. AIAA J. Thermophys. Heat Transfer 5 (1991) 129-134
    • (1991) AIAA J. Thermophys. Heat Transfer , vol.5 , pp. 129-134
    • Wu, D.1    Peterson, G.P.2
  • 93
    • 0026402546 scopus 로고
    • Experimental investigation of micro heat pipes in silicon wafers
    • Microchemical Sensors, Actuators, and Systems
    • Peterson G.P., Duncan A.B., and Ahmed A.S. Experimental investigation of micro heat pipes in silicon wafers. Microchemical Sensors, Actuators, and Systems. ASME DSC Vol. 32 (1991) 341-348
    • (1991) ASME DSC , vol.32 , pp. 341-348
    • Peterson, G.P.1    Duncan, A.B.2    Ahmed, A.S.3
  • 94
    • 0342457863 scopus 로고
    • Investigation of micro heat pipes fabricated as an integral part of silicon wafers
    • Beijing, China
    • Peterson G.P. Investigation of micro heat pipes fabricated as an integral part of silicon wafers. Proceedings of the 8th International Heat Pipe Conference. Beijing, China (1992) 385-395
    • (1992) Proceedings of the 8th International Heat Pipe Conference , pp. 385-395
    • Peterson, G.P.1
  • 95
    • 0027390982 scopus 로고
    • Experimental investigation of micro heat pipes fabricated in silicon wafers
    • Peterson G.P., Duncan A.B., and Weichold M.H. Experimental investigation of micro heat pipes fabricated in silicon wafers. ASME J. Heat Transfer 115 (1993) 751-756
    • (1993) ASME J. Heat Transfer , vol.115 , pp. 751-756
    • Peterson, G.P.1    Duncan, A.B.2    Weichold, M.H.3
  • 96
    • 0026985173 scopus 로고
    • On the use of micro heat pipe as an integral part of semi-conductor devices
    • Mallik A.K., Peterson G.P., and Weichold M.H. On the use of micro heat pipe as an integral part of semi-conductor devices. ASME J. Electron. Packaging 114 (1992) 436-442
    • (1992) ASME J. Electron. Packaging , vol.114 , pp. 436-442
    • Mallik, A.K.1    Peterson, G.P.2    Weichold, M.H.3
  • 97
    • 0029274437 scopus 로고
    • Steady-state investigation of vapor deposited micro heat pipe arrays
    • Mallik A.K., and Peterson G.P. Steady-state investigation of vapor deposited micro heat pipe arrays. ASME J. Electron. Packaging 117 (1995) 75-81
    • (1995) ASME J. Electron. Packaging , vol.117 , pp. 75-81
    • Mallik, A.K.1    Peterson, G.P.2
  • 98
    • 0029274883 scopus 로고
    • Transient response characteristics of vapor deposited micro heat pipe arrays
    • Peterson G.P., and Mallik A.K. Transient response characteristics of vapor deposited micro heat pipe arrays. ASME J. Electron. Packaging 117 (1995) 82-87
    • (1995) ASME J. Electron. Packaging , vol.117 , pp. 82-87
    • Peterson, G.P.1    Mallik, A.K.2
  • 99
    • 0029291317 scopus 로고
    • Charge optimization for a triangular-shaped etched micro heat pipe
    • Duncan A.B., and Peterson G.P. Charge optimization for a triangular-shaped etched micro heat pipe. AIAA J. Thermophys. Heat Transfer 9 (1995) 365-368
    • (1995) AIAA J. Thermophys. Heat Transfer , vol.9 , pp. 365-368
    • Duncan, A.B.1    Peterson, G.P.2
  • 100
    • 0033079638 scopus 로고    scopus 로고
    • Flat miniature heat pipes with micro capillary grooves
    • Hopkins R., Faghri A., and Khrustalev D. Flat miniature heat pipes with micro capillary grooves. ASME J. Heat Transfer 121 (1999) 102-109
    • (1999) ASME J. Heat Transfer , vol.121 , pp. 102-109
    • Hopkins, R.1    Faghri, A.2    Khrustalev, D.3
  • 101
    • 0027307435 scopus 로고
    • Thermal analysis of a micro heat pipe
    • Heat Pipes and Capillary Pumped Loops
    • Khrustalev D., and Faghri A. Thermal analysis of a micro heat pipe. Heat Pipes and Capillary Pumped Loops. ASME HTD Vol. 236 (1993) 19-30
    • (1993) ASME HTD , vol.236 , pp. 19-30
    • Khrustalev, D.1    Faghri, A.2
  • 102
    • 0028155442 scopus 로고
    • A one-dimensional model of a micro heat pipe during steady-state operation
    • Longtin J.P., Badran B., and Gerner F.M. A one-dimensional model of a micro heat pipe during steady-state operation. ASME J. Heat Transfer 116 (1994) 709-715
    • (1994) ASME J. Heat Transfer , vol.116 , pp. 709-715
    • Longtin, J.P.1    Badran, B.2    Gerner, F.M.3
  • 103
    • 0033743811 scopus 로고    scopus 로고
    • Investigations on transient and steady-state performance of a micro heat pipe
    • Sobhan C.B., Huang X.Y., and Liu C.Y. Investigations on transient and steady-state performance of a micro heat pipe. AIAA J. Thermophys. Heat Transfer 14 (2000) 161-169
    • (2000) AIAA J. Thermophys. Heat Transfer , vol.14 , pp. 161-169
    • Sobhan, C.B.1    Huang, X.Y.2    Liu, C.Y.3
  • 104
    • 0030453236 scopus 로고    scopus 로고
    • Theoretical analysis of the maximum heat transport in triangular grooves: A study of idealized micro heat pipes
    • Peterson G.P., and Ma H.B. Theoretical analysis of the maximum heat transport in triangular grooves: A study of idealized micro heat pipes. ASME J. Heat Transfer 118 (1996) 731-739
    • (1996) ASME J. Heat Transfer , vol.118 , pp. 731-739
    • Peterson, G.P.1    Ma, H.B.2
  • 105
    • 2042493493 scopus 로고    scopus 로고
    • The minimum meniscus radius and capillary heat transport limit in micro heat pipes
    • Ma H.B., and Peterson G.P. The minimum meniscus radius and capillary heat transport limit in micro heat pipes. ASME J. Heat Transfer 120 (1998) 227-233
    • (1998) ASME J. Heat Transfer , vol.120 , pp. 227-233
    • Ma, H.B.1    Peterson, G.P.2
  • 106
    • 0030449420 scopus 로고    scopus 로고
    • Experimental investigation of the maximum heat transport in triangular grooves
    • Ma H.B., and Peterson G.P. Experimental investigation of the maximum heat transport in triangular grooves. ASME J. Heat Transfer 118 (1996) 740-746
    • (1996) ASME J. Heat Transfer , vol.118 , pp. 740-746
    • Ma, H.B.1    Peterson, G.P.2
  • 107
    • 0032216332 scopus 로고    scopus 로고
    • The heat transport capacity of micro heat pipes
    • Ha J.M., and Peterson G.P. The heat transport capacity of micro heat pipes. ASME J. Heat Transfer 120 (1998) 1064-1071
    • (1998) ASME J. Heat Transfer , vol.120 , pp. 1064-1071
    • Ha, J.M.1    Peterson, G.P.2
  • 111
    • 0346599237 scopus 로고
    • Experimental investigation of the application characteristics of micro heat pipe
    • Beijing, China
    • Zhou J., Yao Z., and Zhu J. Experimental investigation of the application characteristics of micro heat pipe. Proceedings of the 8th International Heat Pipe Conference. Beijing, China (1992) 421-424
    • (1992) Proceedings of the 8th International Heat Pipe Conference , pp. 421-424
    • Zhou, J.1    Yao, Z.2    Zhu, J.3
  • 112
    • 0028519676 scopus 로고
    • Flooding and heat transfer limits in horizontal and inclined two-phase thermosiphons
    • Bezrodny M.K., and Podgoretskii V.M. Flooding and heat transfer limits in horizontal and inclined two-phase thermosiphons. Exp. Thermal Fluid Sci. 9 (1994) 345-355
    • (1994) Exp. Thermal Fluid Sci. , vol.9 , pp. 345-355
    • Bezrodny, M.K.1    Podgoretskii, V.M.2
  • 113
    • 0031245840 scopus 로고    scopus 로고
    • Visualization study of flooding and entrainment in closed two-phase thermosyphon
    • Shatto D.P., Besly J.A., and Peterson G.P. Visualization study of flooding and entrainment in closed two-phase thermosyphon. AIAA J. Thermophys. Heat Transfer 11 (1997) 579-582
    • (1997) AIAA J. Thermophys. Heat Transfer , vol.11 , pp. 579-582
    • Shatto, D.P.1    Besly, J.A.2    Peterson, G.P.3
  • 114
    • 0028534048 scopus 로고
    • Numerical modeling of the steady-state two-phase closed thermosyphon
    • Zuo Z.J., and Gunnerson F.S. Numerical modeling of the steady-state two-phase closed thermosyphon. Int. J. Heat Mass Transfer 37 (1994) 2715-2722
    • (1994) Int. J. Heat Mass Transfer , vol.37 , pp. 2715-2722
    • Zuo, Z.J.1    Gunnerson, F.S.2
  • 115
    • 0028425207 scopus 로고
    • Complete transient two dimensional analysis of two-phase closed thermosyphons including the falling condensate film
    • Harley C., and Faghri A. Complete transient two dimensional analysis of two-phase closed thermosyphons including the falling condensate film. ASME J. Heat Transfer 116 (1994) 418-426
    • (1994) ASME J. Heat Transfer , vol.116 , pp. 418-426
    • Harley, C.1    Faghri, A.2
  • 116
    • 0345491005 scopus 로고    scopus 로고
    • Determination of operation envelope for closed, two-phase thermosyphons
    • El-Genk M.S., and Saber H.H. Determination of operation envelope for closed, two-phase thermosyphons. Int. J. Heat Mass Transfer 42 (1999) 889-903
    • (1999) Int. J. Heat Mass Transfer , vol.42 , pp. 889-903
    • El-Genk, M.S.1    Saber, H.H.2
  • 117
    • 0029163859 scopus 로고
    • Heat transfer analysis of an inclined two-phase closed thermosyphon
    • Zuo Z.J., and Gunnerson F.S. Heat transfer analysis of an inclined two-phase closed thermosyphon. ASME J. Heat Tramsfer 117 (1995) 1073-1075
    • (1995) ASME J. Heat Tramsfer , vol.117 , pp. 1073-1075
    • Zuo, Z.J.1    Gunnerson, F.S.2
  • 118
    • 0029182652 scopus 로고
    • Visual study on flow behavior in an inclined two-phase closed thermosyphon
    • Shiraishi M., Terdtoon P., and Murakami M. Visual study on flow behavior in an inclined two-phase closed thermosyphon. Heat Transfer Eng. 16 (1995) 53-59
    • (1995) Heat Transfer Eng. , vol.16 , pp. 53-59
    • Shiraishi, M.1    Terdtoon, P.2    Murakami, M.3
  • 119
    • 0026106994 scopus 로고
    • Flow instability and bifurcation in gas-loaded reflux thermosyphons
    • Peterson P.F., Elkouh N., Lee K.W., and Tien C.L. Flow instability and bifurcation in gas-loaded reflux thermosyphons. ASME J. Heat Transfer 113 (1991) 158-165
    • (1991) ASME J. Heat Transfer , vol.113 , pp. 158-165
    • Peterson, P.F.1    Elkouh, N.2    Lee, K.W.3    Tien, C.L.4
  • 120
    • 0029310833 scopus 로고
    • Condensation in a gas-loaded thermosyphon
    • Zhou X., and Collins R.E. Condensation in a gas-loaded thermosyphon. Int. J. Heat Mass Transfer 38 (1995) 1605-1617
    • (1995) Int. J. Heat Mass Transfer , vol.38 , pp. 1605-1617
    • Zhou, X.1    Collins, R.E.2
  • 121
    • 0028447915 scopus 로고
    • Two-phase thermosyphon cooling for high-power multichip modules
    • Kishimoto T., and Harada A. Two-phase thermosyphon cooling for high-power multichip modules. IEICE Trans. Electron. E77-C (1994) 986-994
    • (1994) IEICE Trans. Electron. , vol.E77-C , pp. 986-994
    • Kishimoto, T.1    Harada, A.2
  • 122
    • 0027533993 scopus 로고
    • Observations on an evaporative, elbow thermosyphon
    • Lock G.S.H., and Fu J. Observations on an evaporative, elbow thermosyphon. ASME J. Heat Transfer 115 (1993) 501-503
    • (1993) ASME J. Heat Transfer , vol.115 , pp. 501-503
    • Lock, G.S.H.1    Fu, J.2
  • 123
    • 0027594155 scopus 로고
    • Heat transfer characteristics of a cranked evaporative thermosyphon
    • Lock G.S.H., and Fu J. Heat transfer characteristics of a cranked evaporative thermosyphon. Int. J. Heat Transfer 36 (1993) 1827-1832
    • (1993) Int. J. Heat Transfer , vol.36 , pp. 1827-1832
    • Lock, G.S.H.1    Fu, J.2
  • 124
    • 0027472593 scopus 로고
    • Natural convection in the inclined, cranked thermosyphon
    • Lock G.S.H., and Fu J. Natural convection in the inclined, cranked thermosyphon. ASME J. Heat Transfer 115 (1993) 166-172
    • (1993) ASME J. Heat Transfer , vol.115 , pp. 166-172
    • Lock, G.S.H.1    Fu, J.2
  • 126
    • 0030180982 scopus 로고    scopus 로고
    • One-dimensional analysis of maximum performance in a closed two-phase thermosyphon with a crossover flow separator
    • Lin L., Groll M., and Rosler S. One-dimensional analysis of maximum performance in a closed two-phase thermosyphon with a crossover flow separator. Heat Transfer Eng. 17 (1996) 19-28
    • (1996) Heat Transfer Eng. , vol.17 , pp. 19-28
    • Lin, L.1    Groll, M.2    Rosler, S.3
  • 127
    • 0032441382 scopus 로고    scopus 로고
    • Experimental study of critical heat flux in concentric-tube open thermosyphon
    • Islam M.A., Monde M., Hasan M.Z., and Mitsutake Y. Experimental study of critical heat flux in concentric-tube open thermosyphon. Int. J. Heat Mass Transfer 41 (1998) 3691-3704
    • (1998) Int. J. Heat Mass Transfer , vol.41 , pp. 3691-3704
    • Islam, M.A.1    Monde, M.2    Hasan, M.Z.3    Mitsutake, Y.4
  • 128
    • 0027242884 scopus 로고
    • Overview of capillary pumped loop technology
    • Heat Pipes and Capillary Pumped Loops
    • Ku J. Overview of capillary pumped loop technology. Heat Pipes and Capillary Pumped Loops. ASME HTD Vol. 236 (1993) 1-17
    • (1993) ASME HTD , vol.236 , pp. 1-17
    • Ku, J.1
  • 129
    • 0027242883 scopus 로고
    • High temperature capillary pumped loops
    • Heat Pipes and Capillary Pumped Loops
    • Anderson W.G. High temperature capillary pumped loops. Heat Pipes and Capillary Pumped Loops. ASME HTD Vol. 236 (1993) 93-101
    • (1993) ASME HTD , vol.236 , pp. 93-101
    • Anderson, W.G.1
  • 130
    • 0028372414 scopus 로고
    • Conjugate analysis of a flat-plate type evaporator for capillary pumped loops with three-dimensional vapor flow in the groove
    • Cao Y., and Faghri A. Conjugate analysis of a flat-plate type evaporator for capillary pumped loops with three-dimensional vapor flow in the groove. Int. J. Heat Mass Transfer 37 (1994) 401-409
    • (1994) Int. J. Heat Mass Transfer , vol.37 , pp. 401-409
    • Cao, Y.1    Faghri, A.2
  • 131
    • 0028468791 scopus 로고
    • Experimental and analytical investigation of a capillary pumped loop
    • Dickey J.T., and Peterson G.P. Experimental and analytical investigation of a capillary pumped loop. AIAA J. Thermophys. Heat Transfer 8 (1994) 602-607
    • (1994) AIAA J. Thermophys. Heat Transfer , vol.8 , pp. 602-607
    • Dickey, J.T.1    Peterson, G.P.2
  • 132
    • 0032215452 scopus 로고    scopus 로고
    • Experimental and theoretical investigation of a capillary pumped loop with a porous element in the condenser
    • Muraoka I., Ramos F.M., and Vlassov V.V. Experimental and theoretical investigation of a capillary pumped loop with a porous element in the condenser. Int. Commun. Heat Mass Transfer 25 (1998) 1085-1094
    • (1998) Int. Commun. Heat Mass Transfer , vol.25 , pp. 1085-1094
    • Muraoka, I.1    Ramos, F.M.2    Vlassov, V.V.3
  • 133
    • 17744410628 scopus 로고    scopus 로고
    • Effect of mesh size in a flat evaporator and condenser cooling capacity on the thermal performance of a capillary pumped loop
    • Boo J.H., and Chun M.S. Effect of mesh size in a flat evaporator and condenser cooling capacity on the thermal performance of a capillary pumped loop. ASME HTD Vol. 361-3 (1998) 121-127
    • (1998) ASME HTD , vol.361-3 , pp. 121-127
    • Boo, J.H.1    Chun, M.S.2
  • 134
    • 0032667129 scopus 로고    scopus 로고
    • Theoretical and experimental study of a CPL using Freon 11 as the working fluid
    • Bazzo E., Colle S., and Groll M. Theoretical and experimental study of a CPL using Freon 11 as the working fluid. J. Brazil. Soc. Mech. Sci. 21 (1999) 17-28
    • (1999) J. Brazil. Soc. Mech. Sci. , vol.21 , pp. 17-28
    • Bazzo, E.1    Colle, S.2    Groll, M.3


* 이 정보는 Elsevier사의 SCOPUS DB에서 KISTI가 분석하여 추출한 것입니다.