Thermodynamic design data for absorption heat pump systems operating on monomethylamine-water. Part II: Heating

Heat Recovery Systems and CHP - Tập 15 - Trang 571-581 - 1995
I. Pilatowsky1, W. Rivera1, R. Best1, F.A. Holland2
1Laboratorio de Energía Solar de la UNAM, Apartado Postal 34, 61580 Temixco, Morelos, México
2Overseas Educational Development Office, University of Salford, Salford M5 4WT, U.K.

Tài liệu tham khảo

Best, 1991, Thermodynamic design data for absorption heat pump systems operating on ammmonia-lithium nitrate—Part II: Heating, Heat Recovery Systems & CHP, 11, 103, 10.1016/0890-4332(91)90123-L Best, 1993, Thermodynamic design data for absorption heat pump systems operating on ammonia-sodium thiocyanate—Part II: Heating, Heat Recovery Systems & CHP, 13, 11, 10.1016/0890-4332(93)90021-M Eisa, 1986, Thermodynamic design data for absorption heat pump systems operating on water-lithium bromide. Part I: Cooling, J. Appl. Energy, 24, 287, 10.1016/0306-2619(86)90007-3 Felsing, 1929, Vapor pressures and other physical constants of methylamine and methylamine solutions, Ind. Engng Chem., 21, 1269, 10.1021/ie50240a034 Aston, 1937, J. Amer. Chem. Soc., 59, 1742, 10.1021/ja01288a054 Pilatowsky, 1994, Ecuaciones de estado para soluciones acuosas de monometilamina derivadas a partir de diagrams de equilibrio, Reporte Interno No. LES94-0504-I04 del Laboratorio de Energía Solar-IIM-UNAM Bonauguri, 1966, Gemische von CH3NH2 und H2O, La Termotecnia, 5, 53 Uemura, 1967, Studies on the monomethylamine-water absorption refrigerating machine, Refrigeration, 42, 2 Smith, 1982, Absorption heat pump research, 149 Eisa, 1985, A study of the economizer performance in a water-lithium bromide absorption cooler, Int. J. Heat Mass Transfer, 28, 2323, 10.1016/0017-9310(85)90051-1