D. D. Riffel, U. Wittstadt, and E. P. Schmidt, Transient modeling of an adsorber using finned-tube heat exchanger, International Journal of Heat and Mass Transfer, vol.53, issue.7-8, pp.53-1473, 2010.
DOI : 10.1016/j.ijheatmasstransfer.2009.12.001

M. Pons, . Ph, and . Grenier, Experimental Data on a Solar-Powered Ice Maker Using Activated Carbon and Methanol Adsorption Pair, Journal of Solar Energy Engineering, vol.109, issue.4, pp.303-310, 1987.
DOI : 10.1115/1.3268222

F. Mhiri and S. Golli, Etude d'un r??frig??rateur solaire ?? adsorption solide avec le couple charbon actif-m??thanol, Revue G??n??rale de Thermique, vol.35, issue.412, pp.269-277, 1996.
DOI : 10.1016/S0035-3159(96)80019-5

J. Guilleminot and F. Meunier, Etude expérimentale d'une glacière solaire utilisant le cycle zéolithe 13X-eau, Rev, Gen.Therm, vol.239, pp.825-834, 1981.

J. Schwarz, DieAdsoptionskaltemaschine mit dem Stoffpaar Zeolith/wasser, die kalte und klimatechnik, 9, pp.492-505, 1990.

R. E. Critoph, An Ammonia Carbon Solar Refrigerator for vaccine cooling, Renewable Energy, 5, pp.502-508, 1994.
DOI : 10.1016/0960-1481(94)90424-3

L. L. Vasiliev, D. A. Mishkinis, A. A. Antukh, and J. L. Vasiliev, Solar-Gas Solid Sorption Refrigerator, pp.149-161, 2001.

F. Bucher, C. Hildbrand, . Ph, M. Dind, and . Pons, Experimental data on an advanced solar-powered adsorption refrigerator. Heat Powered 01, Internationnal conference, pp.61-68, 2001.

I. I. El-sharkawy, H. Abdelmeguid, and B. B. Saha, Towards an optimal performance of adsorption chillers: Reallocation of adsorption/desorption cycle times, International Journal of Heat and Mass Transfer, vol.63, pp.171-182, 2013.
DOI : 10.1016/j.ijheatmasstransfer.2013.03.076

R. M. Rezk and K. Raya, Al-Dadah, Physical and operating conditions effects on silica gel/water adsorption chiller performance, Applied Energy, pp.142-149, 2012.
DOI : 10.1016/j.apenergy.2010.11.021

R. K. Aldadah and A. Rezk, Empirical simulation model of silica gel/water adsorption chiller, ASME-ATI-UIT, thermal and environmental issues in energy systems, 2010.

D. C. Wang, Study of a novel silica gel???water adsorption chiller. Part I. Design and performance prediction, International Journal of Refrigeration, vol.28, issue.7, pp.1073-1083, 2005.
DOI : 10.1016/j.ijrefrig.2005.03.001

H. T. Chuaa, Modeling the performance of two-bed, sillica gel-water adsorption chillers, International Journal of Refrigeration, vol.22, issue.3, pp.194-204, 1999.
DOI : 10.1016/S0140-7007(98)00063-2

X. Wang and H. Chua, Two bed silica gel???water adsorption chillers: An effectual lumped parameter model, International Journal of Refrigeration, vol.30, issue.8, pp.1417-1426, 2007.
DOI : 10.1016/j.ijrefrig.2007.03.010

B. B. Saha, Study on an activated carbon fiber???ethanol adsorption chiller: Part I ??? system description and modelling, International Journal of Refrigeration, vol.30, issue.1, pp.86-95, 2007.
DOI : 10.1016/j.ijrefrig.2006.08.004

D. Rupp, Solar cooling for small scale application with adsorption technology, 2009.

E. C. Boelman, B. B. Saha, and T. Kashiwagi, Computer simulation of a silica gel?water adsorption refrigeration cycle? the influence of operating conditions of cooling output and COP, ASHARE Transactions, pp.348-355, 1995.

K. Chihara and M. Suzuki, Air drying by pressure swing adsorption., Journal of Chemical Engineering of Japan, vol.16, issue.4, pp.293-299, 1983.
DOI : 10.1252/jcej.16.293