9 TEWI Assessment of Conventional and Solar Powered Cooling Systems
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tokyo-boeki-machinery.jp/adsorption_chiller/siyou.html. Accessed 23 Apr 2019
Stocker TF, Qin D, Plattner GK, Tignor M, Allen SK, Boschung J, Nauels A, Xia Y, Bex V,
Midgley PM (eds) (2019) Contribution of working group i to the fifth assessment report of the
intergovernmental panel on climate change. Cambridge University Press, Cambridge. http://www.
climatechange2013.org/images/report/WG1AR5_ALL_FINAL.pdf. Accessed 23 Apr 2019
Stryi-Hipp G (2016) Renewable heating and cooling: technologies and applications, 1st edn. Woodhead Publishing, Amsterdam
Tangkengsirisin V, Kanzawa A, Watanabe T (1998) A solar-powered adsorption cooling system using a silica gel-water mixture. Energy 23:347–353. https://doi.org/10.1016/S03605442(98)00002-4
Tassou SA, Grace IN (2005) Fault diagnosis and refrigerant leak detection in vapour compression
refrigeration systems. Int J Refrig 28:680–688. https://doi.org/10.1016/j.ijrefrig.2004.12.007
Technical specification of 10 kW Bry-Chill adsorption chiller (2019) Bry-Air (Asia)
Pvt. Ltd. https://www.bryair.com/products-solutions/adsorption-chillers/brychilltm-adsorptionchiller/. Accessed 23 Apr 2019
Thu K, Chakraborty A, Saha BB, Ng KC (2013) Thermo-physical properties of silica gel
for adsorption desalination cycle. Appl Therm Eng 50:1596–1602. https://doi.org/10.1016/j.
applthermaleng.2011.09.038
Tyagi VV, Kaushik SC, Tyagi SK (2012) Advancement in solar photovoltaic/thermal (PV/T) hybrid
collector technology. Renew Sustain Energy Rev 16:1383–1398. https://doi.org/10.1016/j.rser.
2011.12.013
Vaitkus L, Dagilis V (2017) Analysis of alternatives to high GWP refrigerants for eutectic refrigerating systems. Int J Refrig 76:160–169. https://doi.org/10.1016/j.ijrefrig.2017.01.024
Wang SK (2000) Handbook of air conditioning and refrigeration, 2nd edn. McGraw-Hill, New York
Wang LW, Wang RZ, Oliveira RG (2009) A review on adsorption working pairs for refrigeration.
Renew Sustain Energy Rev 13:518–534. https://doi.org/10.1016/j.rser.2007.12.002
Wang R, Wang L, Wu J (2014) Adsorption refrigeration technology—theory and application. Wiley,
Singapore
Yang MH, Yeh RH (2015) Performance and exergy destruction analyses of optimal subcooling
for vapor-compression refrigeration systems. Int J Heat Mass Transf 87:1–10. https://doi.org/10.
1016/j.ijheatmasstransfer.2015.03.085
Yumruta¸ s R, Kunduz M, Kano˘ glu M (2002) Exergy analysis of vapor compression refrigeration
systems. Exergy An Int J 2:266–272. https://doi.org/10.1016/S1164-0235(02)00079-1
177
Standard specification of adsorption chiller (2019). Tokyo Boeki Machinery, Japan. http://www.
tokyo-boeki-machinery.jp/adsorption_chiller/siyou.html. Accessed 23 Apr 2019
Stocker TF, Qin D, Plattner GK, Tignor M, Allen SK, Boschung J, Nauels A, Xia Y, Bex V,
Midgley PM (eds) (2019) Contribution of working group i to the fifth assessment report of the
intergovernmental panel on climate change. Cambridge University Press, Cambridge. http://www.
climatechange2013.org/images/report/WG1AR5_ALL_FINAL.pdf. Accessed 23 Apr 2019
Stryi-Hipp G (2016) Renewable heating and cooling: technologies and applications, 1st edn. Woodhead Publishing, Amsterdam
Tangkengsirisin V, Kanzawa A, Watanabe T (1998) A solar-powered adsorption cooling system using a silica gel-water mixture. Energy 23:347–353. https://doi.org/10.1016/S03605442(98)00002-4
Tassou SA, Grace IN (2005) Fault diagnosis and refrigerant leak detection in vapour compression
refrigeration systems. Int J Refrig 28:680–688. https://doi.org/10.1016/j.ijrefrig.2004.12.007
Technical specification of 10 kW Bry-Chill adsorption chiller (2019) Bry-Air (Asia)
Pvt. Ltd. https://www.bryair.com/products-solutions/adsorption-chillers/brychilltm-adsorptionchiller/. Accessed 23 Apr 2019
Thu K, Chakraborty A, Saha BB, Ng KC (2013) Thermo-physical properties of silica gel
for adsorption desalination cycle. Appl Therm Eng 50:1596–1602. https://doi.org/10.1016/j.
applthermaleng.2011.09.038
Tyagi VV, Kaushik SC, Tyagi SK (2012) Advancement in solar photovoltaic/thermal (PV/T) hybrid
collector technology. Renew Sustain Energy Rev 16:1383–1398. https://doi.org/10.1016/j.rser.
2011.12.013
Vaitkus L, Dagilis V (2017) Analysis of alternatives to high GWP refrigerants for eutectic refrigerating systems. Int J Refrig 76:160–169. https://doi.org/10.1016/j.ijrefrig.2017.01.024
Wang SK (2000) Handbook of air conditioning and refrigeration, 2nd edn. McGraw-Hill, New York
Wang LW, Wang RZ, Oliveira RG (2009) A review on adsorption working pairs for refrigeration.
Renew Sustain Energy Rev 13:518–534. https://doi.org/10.1016/j.rser.2007.12.002
Wang R, Wang L, Wu J (2014) Adsorption refrigeration technology—theory and application. Wiley,
Singapore
Yang MH, Yeh RH (2015) Performance and exergy destruction analyses of optimal subcooling
for vapor-compression refrigeration systems. Int J Heat Mass Transf 87:1–10. https://doi.org/10.
1016/j.ijheatmasstransfer.2015.03.085
Yumruta¸ s R, Kunduz M, Kano˘ glu M (2002) Exergy analysis of vapor compression refrigeration
systems. Exergy An Int J 2:266–272. https://doi.org/10.1016/S1164-0235(02)00079-1
