Leite, P., Grilo, R., Andrade, F., Belo, F., & Meunier, F.
(2007). Experimental thermodynamic cycles and performance analysis of a solar-powered adsorptive icemaker
in hot humid climate. Renewable Energy, Volume 32,
697–712.
Li M. , Wang R.Z., Xu Y.X., Wu J.Y., & Dieng A.O.,. (2002).
Experimental study on dynamic performance analysis of
a flat-plate solar solid-adsorption refrigeration for ice
maker”, Renewable Energy 27 (2002) 211–221.
Li. (2003). Experimental study on the adsorption performance of consolidated activated carbon-methanol pair.
Unpublished Msc Thesis. Shanghai, China: Shanghai Jiao
Tong University.
Li, M., & Wang, R. (2003). Heat and Mass Transfer in a
Flat Plate Solar Solid Adsorption Refrigeration Ice Maker.
Renewable Energy, Volume 28, 613–622.
Li, M., Huang, H., R.Z.Wang, Wang, L., Cai, W., & Yang,
W. (2004). Experimental study on adsorbent of activated carbon with refrigerant of methanol and ethanol
for solar icemaker. Renewable Energy, Volume 29,
2235–2244.
Li, M., Sun, C., Wang, R., & Cai, W. (2004). Development of
no valve solar ice maker. Applied Thermal Engineering,
865–872.
Li, M., Wang, R., Xu, Y., Wu, J., & Dieng, A. (2001).
Experimental study on dynamic performance analysis of a
flatplate solar solid-adsorption refrigeration for ice maker.
Renew Energy 2001;27:211–21.
Lithoxoos G.P., L. A. (2010). Adsorption of N2, CH4, CO
and CO2 gases in single walled carbon nanotubes: A
combined experimental and Monte Carlo molecular simulation study. Journal of Supercritical Fluids, Volume 55,
510–523. doi:10.1016/j.supflu.2010.09.017.
Liu, Y., & K.C., L. (2006). Numerical study of a novel Cascaded adsorption cycle. International Journal of Refrigeration, Volume 29 (2), 250–259.
Liu, Y., Wang, Z., & Xia, Z. (2005). Experimental study on
a continuous adsorption water chiller with novel design.
International Journal of Refrigeration, Volume 28 (92),
218–230.
Loh W.S, El-Sharkawy I.I., Ng K.C., & Saha B.B.
(2009). Adsorption cooling cycles for alternative adsorbent/adsorbate pairs working at partial vacuum and pressurized conditions. Applied thermal Engineering, Volume
29, 793–798.
Meunier F, K. S. (1996). Comparative thermodynamic
study of sorption systems: second law analysis.
International Journal for Refrigeration Volume 19(6),
414–421.
Meunier F. (1998). Solid sorption heat powered cycles for
cooling and heat pumping applications. Applied Thermal
Engineering, Volume 18(9–10), 715–729.
Meunier, F. (1985). Second law analysis of a solid adsorption
heat pump operating on reversible cascaded cycles; Application to the Zeolite-water pair. Journal of Heat Recovery
System, Volume 5 (2), 133–141.
Miyazaki, T. A. (2010). The performance analysis of novel
dual evaporator type three-bed adsorption chiller. International Journal of Heat Recovery Systems, Volume 5 (2),
133–141.
Mohand, B., Brahim, A., Ferhat, Y., Fateh, B., & Maamar,
O. (2014). Design and realization of a solar adsorption
refrigeration machine powered by solar energy. Energy
Procedia, Volume 48, 1226–1235.
NaefA.A.Q., & MagedAl E.S. (2013). Improving ice productivity and performance for an activated carbon/methanol
solar adsorption ice maker. Solar Energy, Volume 98,
523–542.
Nidal H., Abu-Hamdeh, A., Khaled A., Alnefaie, A., Khalid
H., & Almitani. (2013). Design and performance characteristics of solar adsorption refrigeration system using
parabolic trough collector: Experimental and statistical
optimization technique. Energy Conversion and Management, Volume 74, 162–170.
Nilesh Pawar, D. P. (2014). Theoretical investigation of
refrigeration system for rapid cooling applications. International Journal of Engineering, Business and Enterprise
Applications, Volume 7(1), 95–98.
Nunez, T., Mittelbach, W., & Henning, H. (2004). Development of an adsorption chiller and heat pump for domestic
heating and air-conditioning applications. Proceedings of
the third international conference on heat powered cycles.
Cyprus.
Nwamba, J., Meyer, C., & Mbarawa, M. (2008). The Design
and Evaluation of a Solarpowered Adsorption Refrigerator for African Conditions. Tshwane University of
Technology.
Nwosu M. C., U. S. (2013). Design, construction and characterization of a sliding –plate-evaporator freezer (Spef).
Innovative Systems Design and Engineering, Volume 4
(15), ISSN 2222–1727.
Odesola, I., & Adebayo, J. (2010). Solar adsorption technologies for ice-making and recent Developments in
solar technologies: a review. International Journal of
Advanced Engineering and Technolology, Volume 1(3),
284–303.
Oleg, B. T., & Yury, A. L. (2002). Thermo physical aspects
of environmental problems of modern refrigerating engineering. Chemistry and Computational Simulation Butlerov Communications, Volume 3, No.10.
Onyambu M.K. (2013). The development and evolution of
soapstone industry in Kisii area of Kenya: 1895-2010
Masters thesis. Eldoret: Moi university.
Panzera T.H., Strecker K., S., Miranda J.D.S., Christoforo
A.L., & Borges P.H.R. (2011). Cement – steatite composites reinforced with carbon fibres: an alternative for
restoration of Brazilian historical buildings. Materials
Restoration, Volume 14, 118–123.
Patel, J. (2016). An Overview of Developments in Adsorption
Refrigeration Systems: Principle and Optimization Techniques. International Conference on Advances in Robotic,
Mechanical Engineering and Design - ARMED.
Pokki, J. (2014). Summary: geological resources in Finland, production data and annual report 2012, Geological
Survey of Finland, Report of Investigation 2014, p. 27.
Helsinki: Geological Survey of Finland.
Pongsid Srikhirin, S.A. (2001).A review of absorption refrigeration technologies. Renewable and Sustainable Energy
Reviews, Volume 5, 343–372.
Pons M, P. F. (1999). Adsorptive machines with advanced
cycles for heat pumping or cooling applications.
International Journal for Refrigeration, Volume 22(1),
27–37.
Poyelle, F., Guilleminot, J., & Meunier, F. (1999). Experimental tests and predictive model of an adsorptive air
conditioning unit. Industrial Engineering and Chemistry,
Volume 38(1), 298–309.
Pridasawas, W., & Lundqvist, P. (2007). A year-round
dynamic simulation of a solar driven ejector refrigeration system with iso-butane as a refrigerant.
International Journal of Refrigeration, Volume 30(5),
840–850.
Qasem, N., & El-Shaarawi, M. (2013). Improving ice productivity and performance for an activated carbon/methanol
solar adsorption ice-maker. Solar Energy, Volume 98,
523–542.
273
(2007). Experimental thermodynamic cycles and performance analysis of a solar-powered adsorptive icemaker
in hot humid climate. Renewable Energy, Volume 32,
697–712.
Li M. , Wang R.Z., Xu Y.X., Wu J.Y., & Dieng A.O.,. (2002).
Experimental study on dynamic performance analysis of
a flat-plate solar solid-adsorption refrigeration for ice
maker”, Renewable Energy 27 (2002) 211–221.
Li. (2003). Experimental study on the adsorption performance of consolidated activated carbon-methanol pair.
Unpublished Msc Thesis. Shanghai, China: Shanghai Jiao
Tong University.
Li, M., & Wang, R. (2003). Heat and Mass Transfer in a
Flat Plate Solar Solid Adsorption Refrigeration Ice Maker.
Renewable Energy, Volume 28, 613–622.
Li, M., Huang, H., R.Z.Wang, Wang, L., Cai, W., & Yang,
W. (2004). Experimental study on adsorbent of activated carbon with refrigerant of methanol and ethanol
for solar icemaker. Renewable Energy, Volume 29,
2235–2244.
Li, M., Sun, C., Wang, R., & Cai, W. (2004). Development of
no valve solar ice maker. Applied Thermal Engineering,
865–872.
Li, M., Wang, R., Xu, Y., Wu, J., & Dieng, A. (2001).
Experimental study on dynamic performance analysis of a
flatplate solar solid-adsorption refrigeration for ice maker.
Renew Energy 2001;27:211–21.
Lithoxoos G.P., L. A. (2010). Adsorption of N2, CH4, CO
and CO2 gases in single walled carbon nanotubes: A
combined experimental and Monte Carlo molecular simulation study. Journal of Supercritical Fluids, Volume 55,
510–523. doi:10.1016/j.supflu.2010.09.017.
Liu, Y., & K.C., L. (2006). Numerical study of a novel Cascaded adsorption cycle. International Journal of Refrigeration, Volume 29 (2), 250–259.
Liu, Y., Wang, Z., & Xia, Z. (2005). Experimental study on
a continuous adsorption water chiller with novel design.
International Journal of Refrigeration, Volume 28 (92),
218–230.
Loh W.S, El-Sharkawy I.I., Ng K.C., & Saha B.B.
(2009). Adsorption cooling cycles for alternative adsorbent/adsorbate pairs working at partial vacuum and pressurized conditions. Applied thermal Engineering, Volume
29, 793–798.
Meunier F, K. S. (1996). Comparative thermodynamic
study of sorption systems: second law analysis.
International Journal for Refrigeration Volume 19(6),
414–421.
Meunier F. (1998). Solid sorption heat powered cycles for
cooling and heat pumping applications. Applied Thermal
Engineering, Volume 18(9–10), 715–729.
Meunier, F. (1985). Second law analysis of a solid adsorption
heat pump operating on reversible cascaded cycles; Application to the Zeolite-water pair. Journal of Heat Recovery
System, Volume 5 (2), 133–141.
Miyazaki, T. A. (2010). The performance analysis of novel
dual evaporator type three-bed adsorption chiller. International Journal of Heat Recovery Systems, Volume 5 (2),
133–141.
Mohand, B., Brahim, A., Ferhat, Y., Fateh, B., & Maamar,
O. (2014). Design and realization of a solar adsorption
refrigeration machine powered by solar energy. Energy
Procedia, Volume 48, 1226–1235.
NaefA.A.Q., & MagedAl E.S. (2013). Improving ice productivity and performance for an activated carbon/methanol
solar adsorption ice maker. Solar Energy, Volume 98,
523–542.
Nidal H., Abu-Hamdeh, A., Khaled A., Alnefaie, A., Khalid
H., & Almitani. (2013). Design and performance characteristics of solar adsorption refrigeration system using
parabolic trough collector: Experimental and statistical
optimization technique. Energy Conversion and Management, Volume 74, 162–170.
Nilesh Pawar, D. P. (2014). Theoretical investigation of
refrigeration system for rapid cooling applications. International Journal of Engineering, Business and Enterprise
Applications, Volume 7(1), 95–98.
Nunez, T., Mittelbach, W., & Henning, H. (2004). Development of an adsorption chiller and heat pump for domestic
heating and air-conditioning applications. Proceedings of
the third international conference on heat powered cycles.
Cyprus.
Nwamba, J., Meyer, C., & Mbarawa, M. (2008). The Design
and Evaluation of a Solarpowered Adsorption Refrigerator for African Conditions. Tshwane University of
Technology.
Nwosu M. C., U. S. (2013). Design, construction and characterization of a sliding –plate-evaporator freezer (Spef).
Innovative Systems Design and Engineering, Volume 4
(15), ISSN 2222–1727.
Odesola, I., & Adebayo, J. (2010). Solar adsorption technologies for ice-making and recent Developments in
solar technologies: a review. International Journal of
Advanced Engineering and Technolology, Volume 1(3),
284–303.
Oleg, B. T., & Yury, A. L. (2002). Thermo physical aspects
of environmental problems of modern refrigerating engineering. Chemistry and Computational Simulation Butlerov Communications, Volume 3, No.10.
Onyambu M.K. (2013). The development and evolution of
soapstone industry in Kisii area of Kenya: 1895-2010
Masters thesis. Eldoret: Moi university.
Panzera T.H., Strecker K., S., Miranda J.D.S., Christoforo
A.L., & Borges P.H.R. (2011). Cement – steatite composites reinforced with carbon fibres: an alternative for
restoration of Brazilian historical buildings. Materials
Restoration, Volume 14, 118–123.
Patel, J. (2016). An Overview of Developments in Adsorption
Refrigeration Systems: Principle and Optimization Techniques. International Conference on Advances in Robotic,
Mechanical Engineering and Design - ARMED.
Pokki, J. (2014). Summary: geological resources in Finland, production data and annual report 2012, Geological
Survey of Finland, Report of Investigation 2014, p. 27.
Helsinki: Geological Survey of Finland.
Pongsid Srikhirin, S.A. (2001).A review of absorption refrigeration technologies. Renewable and Sustainable Energy
Reviews, Volume 5, 343–372.
Pons M, P. F. (1999). Adsorptive machines with advanced
cycles for heat pumping or cooling applications.
International Journal for Refrigeration, Volume 22(1),
27–37.
Poyelle, F., Guilleminot, J., & Meunier, F. (1999). Experimental tests and predictive model of an adsorptive air
conditioning unit. Industrial Engineering and Chemistry,
Volume 38(1), 298–309.
Pridasawas, W., & Lundqvist, P. (2007). A year-round
dynamic simulation of a solar driven ejector refrigeration system with iso-butane as a refrigerant.
International Journal of Refrigeration, Volume 30(5),
840–850.
Qasem, N., & El-Shaarawi, M. (2013). Improving ice productivity and performance for an activated carbon/methanol
solar adsorption ice-maker. Solar Energy, Volume 98,
523–542.
273
