146
M. Muttakin et al.
Duffie JA, Beckman WA (1980) Solar engineering of thermal processes. Willey, New York
Hottel HC (1942) Performance of flat-plate solar heat collectors., Trans ASME 64:91
Hottel C (1954) Performance of flat plate energy collectors: space heating with solar energy. In:
Course symposium. Cambridge
Hottel H, Whillier A (1955) Evaluation of flat-plate solar collector performance. In: Transdisciplinary conference on the use of solar energy
Kalogirou SA (2004) Solar thermal collectors and applications. Prog Energy Combust Sci 30:
231–295. https://doi.org/10.1016/j.pecs.2004.02.001
Kalogirou SA, Papamarcou C (2000) Modelling of a thermosyphon solar water heating system and
simple model validation. Renew Energy 21:471–493
McAdams WH (1954) Heat transmission. McGraw-Hill, New York, pp 252–262
Mitchell JW (1976) Heat transfer from spheres and other animal forms. Biophys J 16:561–569
Mitra S, Thu K, Saha BB, Dutta P (2017) Performance evaluation and determination of minimum
desorption temperature of a two-stage air cooled silica gel/water adsorption system. Appl Energy
206:507–518. https://doi.org/10.1016/j.apenergy.2017.08.198
Muttakin M (2013) Optimization of solar thermal collector systems for the tropics. National University of Singapore. https://scholarbank.nus.edu.sg/handle/10635/47365
Muttakin M, Mitra S, Thu K, Ito K, Saha BB (2018) Theoretical framework to evaluate minimum
desorption temperature for IUPAC classified adsorption isotherms. Int J Heat Mass Transfer
122:795–805. https://doi.org/10.1016/j.ijheatmasstransfer.2018.01.107
Praene J-P, Garde F, Lucas F (2005) Dynamic modelling and elements of validation of solar evacuated tube collectors. In: Ninth international IBPSA conference
Rezk ARM, Al-Dadah RK (2012) Physical and operating conditions effects on silica gel/water
adsorption chiller performance. Appl Energy 89:142–149. https://doi.org/10.1016/j.apenergy.
2010.11.021
Saha BB, Kashiwagi T (1997) Experimental investigation of an advanced adsorption refrigeration
cycle. ASHRAE Trans 103:50–58
Saha BB, Boelman EC, Kashiwagi T (1995) Computational analysis of an advanced adsorptionrefrigeration cycle. Energy 20:983–994
Saha BB, El-Sharkawy II, Chakraborty A, Koyama S, Banker ND, Dutta P, Prasad M, Srinivasan
K (2006) Evaluation of minimum desorption temperatures of thermal compressors in adsorption
refrigeration cycles. Int J Refrig 29:1175–1181. https://doi.org/10.1016/j.ijrefrig.2006.01.005
Saha BB, Chakraborty A, Koyama S, Srinivasan K, Ng KC, Kashiwagi T, Dutta P (2007) Thermodynamic formalism of minimum heat source temperature for driving advanced adsorption cooling
device. Appl Phys Lett 91. https://doi.org/10.1063/1.2780117
Shashi Menon E (2015) Meters and valves. Trans Pipeline Calc Simul Manual 431–471. https://
doi.org/10.1016/b978-1-85617-830-3.00012-2
Souka AF, Safwat HH (1966) Determination of the optimum orientations for the double-exposure,
flat-plate collector and its reflectors. Sol Energy 10:170–174
Swinbank WC (1963) Long-wave radiation from clear skies. Q J R Meteorol Soc 89:339–348
Thu K, Saha BB, Mitra S, Chua KJ (2017) Modeling and simulation of mass recovery process in
adsorption system for cooling and desalination. Energy Procedia 105:2004–2009. https://doi.org/
10.1016/j.egypro.2017.03.574
Wang RZ (2001) Performance improvement of adsorption cooling by heat and mass recovery
operation  lioration de la performance d’ un syste Á me de Ame Á adsorption a Á l’ aide de re
 cupe  ration de masse refroidissement a et de chaleur. Int J Refrig 24:602–611. https://doi.
org/10.1016/j.ijrefrig.2014.04.018
Zarem A, Erway D (1963) Introduction to the utilization of solar energy. McGraw-Hill, New York
M. Muttakin et al.
Duffie JA, Beckman WA (1980) Solar engineering of thermal processes. Willey, New York
Hottel HC (1942) Performance of flat-plate solar heat collectors., Trans ASME 64:91
Hottel C (1954) Performance of flat plate energy collectors: space heating with solar energy. In:
Course symposium. Cambridge
Hottel H, Whillier A (1955) Evaluation of flat-plate solar collector performance. In: Transdisciplinary conference on the use of solar energy
Kalogirou SA (2004) Solar thermal collectors and applications. Prog Energy Combust Sci 30:
231–295. https://doi.org/10.1016/j.pecs.2004.02.001
Kalogirou SA, Papamarcou C (2000) Modelling of a thermosyphon solar water heating system and
simple model validation. Renew Energy 21:471–493
McAdams WH (1954) Heat transmission. McGraw-Hill, New York, pp 252–262
Mitchell JW (1976) Heat transfer from spheres and other animal forms. Biophys J 16:561–569
Mitra S, Thu K, Saha BB, Dutta P (2017) Performance evaluation and determination of minimum
desorption temperature of a two-stage air cooled silica gel/water adsorption system. Appl Energy
206:507–518. https://doi.org/10.1016/j.apenergy.2017.08.198
Muttakin M (2013) Optimization of solar thermal collector systems for the tropics. National University of Singapore. https://scholarbank.nus.edu.sg/handle/10635/47365
Muttakin M, Mitra S, Thu K, Ito K, Saha BB (2018) Theoretical framework to evaluate minimum
desorption temperature for IUPAC classified adsorption isotherms. Int J Heat Mass Transfer
122:795–805. https://doi.org/10.1016/j.ijheatmasstransfer.2018.01.107
Praene J-P, Garde F, Lucas F (2005) Dynamic modelling and elements of validation of solar evacuated tube collectors. In: Ninth international IBPSA conference
Rezk ARM, Al-Dadah RK (2012) Physical and operating conditions effects on silica gel/water
adsorption chiller performance. Appl Energy 89:142–149. https://doi.org/10.1016/j.apenergy.
2010.11.021
Saha BB, Kashiwagi T (1997) Experimental investigation of an advanced adsorption refrigeration
cycle. ASHRAE Trans 103:50–58
Saha BB, Boelman EC, Kashiwagi T (1995) Computational analysis of an advanced adsorptionrefrigeration cycle. Energy 20:983–994
Saha BB, El-Sharkawy II, Chakraborty A, Koyama S, Banker ND, Dutta P, Prasad M, Srinivasan
K (2006) Evaluation of minimum desorption temperatures of thermal compressors in adsorption
refrigeration cycles. Int J Refrig 29:1175–1181. https://doi.org/10.1016/j.ijrefrig.2006.01.005
Saha BB, Chakraborty A, Koyama S, Srinivasan K, Ng KC, Kashiwagi T, Dutta P (2007) Thermodynamic formalism of minimum heat source temperature for driving advanced adsorption cooling
device. Appl Phys Lett 91. https://doi.org/10.1063/1.2780117
Shashi Menon E (2015) Meters and valves. Trans Pipeline Calc Simul Manual 431–471. https://
doi.org/10.1016/b978-1-85617-830-3.00012-2
Souka AF, Safwat HH (1966) Determination of the optimum orientations for the double-exposure,
flat-plate collector and its reflectors. Sol Energy 10:170–174
Swinbank WC (1963) Long-wave radiation from clear skies. Q J R Meteorol Soc 89:339–348
Thu K, Saha BB, Mitra S, Chua KJ (2017) Modeling and simulation of mass recovery process in
adsorption system for cooling and desalination. Energy Procedia 105:2004–2009. https://doi.org/
10.1016/j.egypro.2017.03.574
Wang RZ (2001) Performance improvement of adsorption cooling by heat and mass recovery
operation  lioration de la performance d’ un syste Á me de Ame Á adsorption a Á l’ aide de re
 cupe  ration de masse refroidissement a et de chaleur. Int J Refrig 24:602–611. https://doi.
org/10.1016/j.ijrefrig.2014.04.018
Zarem A, Erway D (1963) Introduction to the utilization of solar energy. McGraw-Hill, New York
