A 2-TEMPERATURE MODEL OF THE REGENERATIVE SOLID-VAPOR HEAT-PUMP

被引:14
作者
FULLER, TA [1 ]
WEPFER, WJ [1 ]
SHELTON, SV [1 ]
ELLIS, MW [1 ]
机构
[1] GEORGIA INST TECHNOL,SCH MECH ENGN,ATLANTA,GA 30332
来源
JOURNAL OF ENERGY RESOURCES TECHNOLOGY-TRANSACTIONS OF THE ASME | 1994年 / 116卷 / 04期
关键词
Circulating heat transfer fluid - Regenerative solid/vapor heat pump;
D O I
10.1115/1.2906457
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
A thermally driven heat pump using a solid/vapor adsorption/desorption compression process is thermodynamically analyzed. Heat regeneration between the two adsorbent beds is accomplished through the use of a circulating heat transfer (HX) fluid. Effective heat regeneration and system performance requires that steep thermal profiles or waves be established in the beds along the path of the HX-fluid flow direction. Previous studies by Shelton, Wepfer, and Miles have used square and ramp profiles to approximate the temperature profiles in the adsorbent beds, which, in turn, enable the thermodynamic performance of the heat pump to be computed. In this study, an integrated heat transfer and thermodynamic model is described The beds are modeled using a two-temperature approach. A partial differential equation for the lumped adsorbent bed and tube is developed to represent the bed temperature as a function of time and space (along the flow direction), while a second partial differential equation is developed for the heat transfer fluid to represent the fluid temperature as a function of time and space (along the flow direction). The resulting differential equations are nonlinear due to pressure and temperature-dependent coefficients. Energy and mass balances are made at each time step to compute the bed pressure, mass, adsorption level, and energy changes that occur during the adsorption and desorption process. Using these results, the thermodynamic performance of the heat pump is calculated. Results showing the heat pump's performance and capacity as a function of the four major dimensionless groups, DR, Pe, Ri, and KA(r), are presented.
引用
收藏
页码:297 / 304
页数:8
相关论文
共 15 条
  • [1] Aittomake A., Harkonen M., Internal Regeneration of the Adsorption Process, Proceedings, Solid Sorption Refrigeration Symposium, (1992)
  • [2] Fuller T.A., An Analytical Study of the Performance Characteristics of Solid/Vapor Adsorption Heat Pumps, MS Thesis, Georgia Institute of Technology, (1990)
  • [3] Hajji A., Worek W.M., Simulation of a Regenerative, Closed-Cycle Adsorption Cooling/Heating System, Energy, 16, 3, pp. 643-654, (1991)
  • [4] Harkonen M., Aittomake A., Analytical Model for the Thermal Wave Adsorption Heat Pump Cycle, Heat Recovery Systems &CHP, 12, 1, pp. 73-80, (1992)
  • [5] Harkonen M., Aittomake A., The Principle of Internal Regeneration as Applied to the Adsorption Heat Pump Process, Heat Recovery Systems &CHP, 11, 4, pp. 239-248, (1991)
  • [6] Miles D.J., Shelton S.V., Coupled Heat Transfer and Thermodynamic Adsorption Heat Pump Analysis, Proceedings, Winter Annual Meeting, Advanced Energy Systems Division: Heat Pump Design, Analysis, and Application, 26, pp. 33-38, (1991)
  • [7] Shelton S.V., Wepfer W.J., Miles D.J., External Heating of a Porous Bed, Heat Transfer in Porous Media and Particulate Flows, 46, pp. 77-83, (1985)
  • [8] Shelton S.V., Miles D.J., Solid/Vapor Thermally Driven Heat Pump Development, Presented at Research Activities on Advanced Heat Pumps, (1986)
  • [9] Shelton S.V., United States Patent No. 4,610,148, Solid Adsorbent Heat Pump System, (1986)
  • [10] Shelton S.V., Wepfer W.J., Miles D.J., External Heating of a Porous Bed, Chemical Engineering Communications, 71, (1988)