Restuccia, G., Freni, A., Vasta, S., & Aristov, Y. (2004).
Selective water sorbent for solid sorption chiller: experimental results and modelling. International Journal of
Refrigeration, Volume 27, 284–293.
Rhayt, F., Dezairi, A., Ouaskit, S., Loulijat, H., Zerradi, H.,
& Mizani, S. (2015). Study of the absorption refrigerating cycle, NH3-H2O coupled with the solar absorption
heat transformer, H2O-LiBr by solar data from the City
of Oujda (Morocco). Revue des Energies Renouvelables,
Volume 18 (1), 39–48.
Rodrigues, M., & Lima, R. (2012). Cleaner production of
soapstone in the Ouro Preto region of Brazil: a case study.
Journal of Clean Production, Volume 32, 149–156.
Saha B.B., Akisawa A., & Kashiwagi T. (2001). Solar/waste
heat driven two-stage adsorption chiller: the prototype.
Renewable Energy, Volume 23, 93–101.
Said, W. K. (2008). Solar energy refrigeration by liquidsolid adsorption technique. Nablus – Palestine: An-Najah
University.
Shahab, H. (2018). Experimental Study of the Performance of a Continues Solar Adsorption Chiller using
Nano-activated Carbon/Methanol as Working Pair”. Solar
Energy 173(2018), 920-927.
Sierra, Z., Best, R., & Holland, A. (1993). Experiments on an
absorption refrigeration system powered by a solar pond.
Heat Recovery Systems & Combined Heat and Power,
Volume 13(5), 401–408.
Srivastava, N., & Eames, I. (1998). A review of adsobents and
adsorbates in solid–vapor adsorption heat pump systems.
Applied Thermal Engineering, Volume 18, 704–714.
Strecker K., Panzera T.H., Sabariz A.L.R., & Miranda J.S.
(2010). The effect of incorporation of steatite wastes on
the mechanical properties of cementitious composites.
Materials Structure, Volume 43, 923–932.
Sumathy K, Yeung KH, & Yong L. (2003). Technology development in the solar adsorption refrigeration systems.
Progress in Energy Combustion Science, Volume 29(4),
301–327, http://dx.doi.org/10.1016/S03601285(03) 000285.
Sumathy K. (2001). An energy efficient solar ice-maker.
Department of Mechanical Engineering, University of
Hong Kong, Hong Kong.
Sumathy, K., & Yeung, K. (2003). Thermodynamic analysis
and optimization of a combined adsorption heating and
cooling system. International Journal of Energy Research,
Volume 27, 1299–1315.
Sur, A., & Das, R. K. (2010). Review on Solar Adsorption
Refrigeration cycle. International Journal of Mechanical
Engineering and Technology. Volume 1, 190–226.
Sward, K., Levan, D., & Meunier, F. (2000). Adsorption heat
pump modeling: the thermal wave process with local equilibrium. Applied Thermal Engineering, Volume 20 ( 8),
759–780.
Szarzynski, S., Feng, Y., & Pons, M. (1997). Study of different internal vapour transports for adsorption cycles with
heat regeneration. International Journal for Refrigeration,
Volume 20(6), 390–401.
Tamainot-Telto Z. & Critoph R. E. (1997). Adsorption refrigerator using monolithic carbon-ammonia pair. lnternational Journal of Refrigeration, Volume 20(2), 146–155.
Tather, M., Tantekin-Ersolmaz, B., & Erdem-Senatalar, A.
(1999). A novel approach to enhance heat and mass transfer in adsorption heat pumps using the zeolite–water pair.
Micropore Mesopore Materials, Volume 27, 1–10.
Tchernev D.I. (1979). Solar air conditioning and refrigeration systems utilizing zeolites.In: Proceeding of meetings
of Commissions E1-E2, Jerusalem. Proceeding of meetings of Commissions, Volume E1-E2, (pp. 209–215).
Jerusalem.
Tchernev DI. (1978). Natural zeolites: occurrence properties
and use. London: Pergamon Press.
Tierney, M. J. (2002). Feasibility of driven convective thermal wave chiller with low-grade heat. Renewable Energy,
Volume 33 (9), 2097–2108.
Tso, C., & Chao, Y. (2012). Activated carbon, silica-gel
and calcium chloride composite adsorbents for energy
efficient solar adsorption cooling and dehumidification
systems. International Journal for Refrigeration, Volume
35, 1626–1638 doi:10.1016/j.ijrefrig.2012.05.007.
Umar, M., & Aliyu, B. (2008). Design and thermodynamic
simulation of a solar absorption icemaker. Continental
Journal of Engineering Sciences, Volume 3, 42–49.
Uyan, A. S. (2009). Numerical analysis of an advanced three
bed mass recovery adsorption refrigeration cycle. Applied
Thermal Engineering, Volume 29 (14–15), 2876–2884.
Wang D, Zhang J, Xia Y, Han Y, & Wang S.
(2012). Investigation of adsorption performance Deterioration in silica gel–water adsorption refrigeration.
Energy Conversion Management, Volume 58, 157–162,
http://dx.doi.org/10.1016/j.enconman.2012.01.013.
Wang R.Z., W. J. (2001). Performance researches and
improvements on heat regenerative adsorption refrigerator and heat pump”. Energy Conversion & Management,
Volume 42, 233–249.
Wang R.Z., Wu J.Y., Xu Y.X., & Wang W. (2001). Performance researches and improvements on heat regenerative adsorption refrigerator and heat pump. Energy
Conversion & Management, Volume 42, 233–249.
Wang RZ. (2001). Performance improvement of adsorption
cooling by heat and mass recovery operation. International
Journal for Refrigeration, Volume 24, 601–611.
Wang, K., Wu, J., Xia, Z., Li, L., & Wang, Z. (2008).
Design and performance prediction of a novel double heat
pipes type adsorption chiller for fishing boats. Renewable
Energy, Volume 33, 780–790.
Wang, L. (2018). Experimental Study of an Adsorption
Refrigeration Test Unit. Procedia Engineering, Volume
152, 895–903.
Wang, L., Wang, R., Wu, J., & Wang, K. (2004). Compound adsorbent for adsorption ice maker on fishing
boats. International Journal of Refrigeration, Volume 27,
401–408.
Wang, R. Z. (2001). Performance improving of adsorption
cooling by heat and mass recovery operation. International
Journal of Refrigeration, Volume 24 (7), 602–611.
Wang, R., Li, M., Xu, Y., & Wu, J. (2000). An energy efficient hybrid system of solar powered water heater and
adsorption ice maker. Solar Energy, Volume 68, 189–195.
Wang., L. (2018). Experimental Study of an Adsorption
Refrigeration Test Unit. Energy Procedia, Volume 152,
895–903.
Xia, Z. Z., Chen, C. J., Kiplagat, J., Wang, R. Z., & Hu, J.
Q. (2008). Adsorption Equilibrium of water on silica gel.
Journal of Chemical & Engineering Data, Volume 35 (10),
2462–2465.
Xu J., Ming L., Jieqing F., Peng Z., Bin L., & W., L. (2014).
Structure optimization and performance experiments of
a solar-powered finned-tube adsorption refrigeration system. Applied Energy, Volume 113, 1293–1300.
Zhang, J., & Wang, Z. (2002). A new combined adsorption–
ejector refrigeration and heating hybrid system powered
by solar energy. Applied Thermal Engineering, Volume
22, 1245–1258.
Zhang, X., & Wang, R. (2002). Design and performance simulation of a new solar continuous solid adsorption refrigeration and heating hybrid system. Renewable Energy,
Volume 27, 401–415.
274
Selective water sorbent for solid sorption chiller: experimental results and modelling. International Journal of
Refrigeration, Volume 27, 284–293.
Rhayt, F., Dezairi, A., Ouaskit, S., Loulijat, H., Zerradi, H.,
& Mizani, S. (2015). Study of the absorption refrigerating cycle, NH3-H2O coupled with the solar absorption
heat transformer, H2O-LiBr by solar data from the City
of Oujda (Morocco). Revue des Energies Renouvelables,
Volume 18 (1), 39–48.
Rodrigues, M., & Lima, R. (2012). Cleaner production of
soapstone in the Ouro Preto region of Brazil: a case study.
Journal of Clean Production, Volume 32, 149–156.
Saha B.B., Akisawa A., & Kashiwagi T. (2001). Solar/waste
heat driven two-stage adsorption chiller: the prototype.
Renewable Energy, Volume 23, 93–101.
Said, W. K. (2008). Solar energy refrigeration by liquidsolid adsorption technique. Nablus – Palestine: An-Najah
University.
Shahab, H. (2018). Experimental Study of the Performance of a Continues Solar Adsorption Chiller using
Nano-activated Carbon/Methanol as Working Pair”. Solar
Energy 173(2018), 920-927.
Sierra, Z., Best, R., & Holland, A. (1993). Experiments on an
absorption refrigeration system powered by a solar pond.
Heat Recovery Systems & Combined Heat and Power,
Volume 13(5), 401–408.
Srivastava, N., & Eames, I. (1998). A review of adsobents and
adsorbates in solid–vapor adsorption heat pump systems.
Applied Thermal Engineering, Volume 18, 704–714.
Strecker K., Panzera T.H., Sabariz A.L.R., & Miranda J.S.
(2010). The effect of incorporation of steatite wastes on
the mechanical properties of cementitious composites.
Materials Structure, Volume 43, 923–932.
Sumathy K, Yeung KH, & Yong L. (2003). Technology development in the solar adsorption refrigeration systems.
Progress in Energy Combustion Science, Volume 29(4),
301–327, http://dx.doi.org/10.1016/S03601285(03) 000285.
Sumathy K. (2001). An energy efficient solar ice-maker.
Department of Mechanical Engineering, University of
Hong Kong, Hong Kong.
Sumathy, K., & Yeung, K. (2003). Thermodynamic analysis
and optimization of a combined adsorption heating and
cooling system. International Journal of Energy Research,
Volume 27, 1299–1315.
Sur, A., & Das, R. K. (2010). Review on Solar Adsorption
Refrigeration cycle. International Journal of Mechanical
Engineering and Technology. Volume 1, 190–226.
Sward, K., Levan, D., & Meunier, F. (2000). Adsorption heat
pump modeling: the thermal wave process with local equilibrium. Applied Thermal Engineering, Volume 20 ( 8),
759–780.
Szarzynski, S., Feng, Y., & Pons, M. (1997). Study of different internal vapour transports for adsorption cycles with
heat regeneration. International Journal for Refrigeration,
Volume 20(6), 390–401.
Tamainot-Telto Z. & Critoph R. E. (1997). Adsorption refrigerator using monolithic carbon-ammonia pair. lnternational Journal of Refrigeration, Volume 20(2), 146–155.
Tather, M., Tantekin-Ersolmaz, B., & Erdem-Senatalar, A.
(1999). A novel approach to enhance heat and mass transfer in adsorption heat pumps using the zeolite–water pair.
Micropore Mesopore Materials, Volume 27, 1–10.
Tchernev D.I. (1979). Solar air conditioning and refrigeration systems utilizing zeolites.In: Proceeding of meetings
of Commissions E1-E2, Jerusalem. Proceeding of meetings of Commissions, Volume E1-E2, (pp. 209–215).
Jerusalem.
Tchernev DI. (1978). Natural zeolites: occurrence properties
and use. London: Pergamon Press.
Tierney, M. J. (2002). Feasibility of driven convective thermal wave chiller with low-grade heat. Renewable Energy,
Volume 33 (9), 2097–2108.
Tso, C., & Chao, Y. (2012). Activated carbon, silica-gel
and calcium chloride composite adsorbents for energy
efficient solar adsorption cooling and dehumidification
systems. International Journal for Refrigeration, Volume
35, 1626–1638 doi:10.1016/j.ijrefrig.2012.05.007.
Umar, M., & Aliyu, B. (2008). Design and thermodynamic
simulation of a solar absorption icemaker. Continental
Journal of Engineering Sciences, Volume 3, 42–49.
Uyan, A. S. (2009). Numerical analysis of an advanced three
bed mass recovery adsorption refrigeration cycle. Applied
Thermal Engineering, Volume 29 (14–15), 2876–2884.
Wang D, Zhang J, Xia Y, Han Y, & Wang S.
(2012). Investigation of adsorption performance Deterioration in silica gel–water adsorption refrigeration.
Energy Conversion Management, Volume 58, 157–162,
http://dx.doi.org/10.1016/j.enconman.2012.01.013.
Wang R.Z., W. J. (2001). Performance researches and
improvements on heat regenerative adsorption refrigerator and heat pump”. Energy Conversion & Management,
Volume 42, 233–249.
Wang R.Z., Wu J.Y., Xu Y.X., & Wang W. (2001). Performance researches and improvements on heat regenerative adsorption refrigerator and heat pump. Energy
Conversion & Management, Volume 42, 233–249.
Wang RZ. (2001). Performance improvement of adsorption
cooling by heat and mass recovery operation. International
Journal for Refrigeration, Volume 24, 601–611.
Wang, K., Wu, J., Xia, Z., Li, L., & Wang, Z. (2008).
Design and performance prediction of a novel double heat
pipes type adsorption chiller for fishing boats. Renewable
Energy, Volume 33, 780–790.
Wang, L. (2018). Experimental Study of an Adsorption
Refrigeration Test Unit. Procedia Engineering, Volume
152, 895–903.
Wang, L., Wang, R., Wu, J., & Wang, K. (2004). Compound adsorbent for adsorption ice maker on fishing
boats. International Journal of Refrigeration, Volume 27,
401–408.
Wang, R. Z. (2001). Performance improving of adsorption
cooling by heat and mass recovery operation. International
Journal of Refrigeration, Volume 24 (7), 602–611.
Wang, R., Li, M., Xu, Y., & Wu, J. (2000). An energy efficient hybrid system of solar powered water heater and
adsorption ice maker. Solar Energy, Volume 68, 189–195.
Wang., L. (2018). Experimental Study of an Adsorption
Refrigeration Test Unit. Energy Procedia, Volume 152,
895–903.
Xia, Z. Z., Chen, C. J., Kiplagat, J., Wang, R. Z., & Hu, J.
Q. (2008). Adsorption Equilibrium of water on silica gel.
Journal of Chemical & Engineering Data, Volume 35 (10),
2462–2465.
Xu J., Ming L., Jieqing F., Peng Z., Bin L., & W., L. (2014).
Structure optimization and performance experiments of
a solar-powered finned-tube adsorption refrigeration system. Applied Energy, Volume 113, 1293–1300.
Zhang, J., & Wang, Z. (2002). A new combined adsorption–
ejector refrigeration and heating hybrid system powered
by solar energy. Applied Thermal Engineering, Volume
22, 1245–1258.
Zhang, X., & Wang, R. (2002). Design and performance simulation of a new solar continuous solid adsorption refrigeration and heating hybrid system. Renewable Energy,
Volume 27, 401–415.
274
