Development of highly effective cryogenic printed circuit heat exchanger (PCHE) with low axial conduction
Tóm tắt
Từ khóa
Tài liệu tham khảo
Bowdery, 2005, Microchannel heat exchangers and reactors, Adv Offshore Gas Manage
Bowdery T. LNG applications of diffusion bonded heat exchangers. AIChE Spring Meeting. In: 6th Topical conference on natural gas utilization; 2006.
Ngo, 2006, New printed circuit heat exchanger with S-shaped fins for hot water supplier, Exp Thermal Fluid Sci, 30, 811, 10.1016/j.expthermflusci.2006.03.010
Tsuzuki, 2007, High performance printed circuit heat exchanger, Appl Therm Eng, 27, 1702, 10.1016/j.applthermaleng.2006.07.007
Nikitin, 2006, Printed circuit heat exchanger thermal–hydraulic performance in supercritical CO2 experimental loop, Int J Refrig, 29, 807, 10.1016/j.ijrefrig.2005.11.005
Pra, 2008, Promising designs of compact heat exchangers for modular HTRs using the Brayton cycle, Nucl Eng Des, 238, 3160, 10.1016/j.nucengdes.2007.12.024
Kim, 2008, Numerical investigation on thermal–hydraulic performance of new printed circuit heat exchanger model, Nucl Eng Des, 238, 3269, 10.1016/j.nucengdes.2008.08.002
Kim DE, Kim MH, Cha JE, Kim S-O. Numerical study for heat transfer and pressure drop of supercritical carbon dioxide fluid with a channel bending angle in printed circuit heat exchanger. In: Korean society of mechanical engineering conference, Division of thermal engineering; 2008. p. 298–305.
Chowdhury K, Sarangi S. Performance of cryogenic heat exchangers with heat leak from the surroundings. Colorado Springs, CO., USA: Plenum Press; 1984. p. 273–80.
Nellis, 2003, A heat exchanger model that includes axial conduction, parasitic heat loads, and property variations, Cryogenics, 43, 523, 10.1016/S0011-2275(03)00132-2
Pradeep Narayanan, 1998, Performance degradation due to longitudinal heat conduction in very high NTU counterflow heat exchangers, Cryogenics, 38, 927, 10.1016/S0011-2275(98)00064-2
Pradeep Narayanan, 1999, Performance of a counterflow heat exchanger with heat loss through the wall at the cold end, Cryogenics, 39, 43, 10.1016/S0011-2275(98)00123-4
Gupta, 2007, Second law analysis of counter flow cryogenic heat exchangers in presence of ambient heat-in-leak and longitudinal conduction through wall, Int J Heat Mass Transf, 50, 4754, 10.1016/j.ijheatmasstransfer.2007.03.035
Lerou, 2005, Optimization of counterflow heat exchanger geometry through minimization of entropy generation, Cryogenics, 45, 659, 10.1016/j.cryogenics.2005.08.002
Jung J. Recuperative two-stage pulse tube refrigerator Daejeon: KAIST; 2008.
Gaiser G, Kottke V. Effects of corrugation parameters on local and integral heat transfer in plate heat exchangers and regenerators. In: Proceedings of the ninth international heat transfer conference. Washington, DC, Hemisphere; 1990. p. 85–90.
Gerd Gaiser VK. Effects of wavelength and inclination angle on the homogeneity of local heat transfer coefficients in plate heat exchangers. In: Proceedings of 11th international heat transfer conference. Kyongju, Korea; 1998. p. 203–8.
Peng, 1996, Convective heat transfer and flow friction for water flow in microchannel structures, Int J Heat Mass Transf, 39, 2599, 10.1016/0017-9310(95)00327-4
Lemmon EW, Huber ML, McLinden MO. NIST Standard Reference Database 23: Reference Fluid Thermodynamic and Transport Properties-REFPROP. Version 9.0 ed: National Institute of Standards and Technology, Standard Reference Data Program, Gaithersburg; 2010.
Vanapalli, 2007, Pressure drop of laminar gas flows in a microchannel containing various pillar matrices, J Micromech Microeng, 171381
Barron, 1999
Haynes BS, Johnston AMT. High-effectiveness micro-exchanger performance. 2002.
