Performance enhancement of absorption refrigeration systems: An overview

Performance enhancement of absorption refrigeration systems: An overview

The introduction of absorption refrigeration technology addressed several significant con-cerns in the domain of energy crisis, rising cost of fossil fuel, and ecological challenges aris-ing due to the excess use of traditional compression refrigeration systems. ARS (absorption refrigeration system) is gaining popularity as a result of benefits such as the use of low-grade heat sources and environmentally acceptable low-cost working fluid pairs. However, two sig-nificant hurdles to commercial success for this technology are the often too big size of the refrigeration system and the poor performance of the system. Numerous studies have been conducted in an attempt to discover methods for improving the COP (coefficient of perfor-mance) of ARS in order to get these systems more competitive in comparison to the conven-tional compression refrigeration systems. The goal of this article is to perform a review of the literature on different methods used to enhance the COP of ARSs based on cycle layout mod-ification and working pair selection as they are the promising solutions for the enhancement of the performance of ARSs. The futuristic aspect of this technology includes the introduction of new working pairs with no corrosion to the system components, including nanoparticles to increase heat transfer rate while reducing the cost of the system. Heat recovery methods should be introduced and the efficient design of various components especially the generator and absorber are to be addressed. This technology could be combined with other refrigeration technologies while utilizing the waste heat to further improve the efficiency of ARSs.

___

  • REFERENCES
  • [1] Murthy AA, Subiantoro A, Norris S, Fukuta M. A review on expanders and their performance in vapour compression refrigeration systems. Int J Refrig 2019;106:427–446. [CrossRef]
  • [2] Siddiqui MU, Said SAM. A review of solar powered absorption systems. Renew Sustain Energy Rev 2015;42:93–115. [CrossRef]
  • [3] Wu W, Wang B, Shi W, Li X. An overview of ammonia–based absorption chillers and heat pumps. Renew Sustain Energy Rev 2014;31:681–707. [CrossRef]
  • [4] Anisur MR, Mahfuz MH, Kibria MA, Saidur R, Metselaar IHSC, Mahlia TMI. Curbing global warming with phase change materials for energy storage. Renew Sustain Energy Rev 2013;18:23–30. [CrossRef]
  • [5] Yuan Y, Cao X, Sun L, Lei B, Yu N. Ground source heat pump system: A review of simulation in China. Renew Sustain Energy Rev 2012;16:6814–22. [CrossRef]
  • [6] Qasem NAA. Waste–heat recovery from a vapor–absorption refrigeration system for a desalination plant. Appl Therm Eng 2021;195:117199. [CrossRef]
  • [7] Chauhan P, Verma A, Bhatti S, Tyagi S. An overview on mathematical models of adsorption refrigeration system. J Mater Sci Mech Eng 2019;6:275–278.
  • [8] Nikbakhti R, Wang X, Hussein AK, Iranmanesh A. Absorption cooling systems – Review of various techniques for energy performance enhancement. Alexandria Eng J 2020;59:707–738. [CrossRef]
  • [9] Wang DC, Li YH, Li D, Xia YZ, Zhang JP. A review on adsorption refrigeration technology and adsorption deterioration in physical adsorption systems. Renew Sustain Energy Rev 2010;14:344–353. [CrossRef]
  • [10] Hassan HZ, Mohamad AA. A review on solar cold production through absorption technology. Renew Sustain Energy Rev 2012;16:5331–5348. [CrossRef]
  • [11] Hare B, Meinshausen M. How much warming are we committed to and how much can be avoided? Clim Chang 2006;75:111–149. [CrossRef]
  • [12] Dixit M, Arora A, Kaushik SC. Energy and exergy analysis of a waste heat driven cycle for triple effect refrigeration. J Therm Eng 2016;2:954–961. [CrossRef]
  • [13] Kurtulmuş N, Bilgili M, Şahin B. Energy and exergy analysis of a vapor absorption refrigeration system in an intercity bus application. J Therm Eng 2019;5:355–371. [CrossRef]
  • [14] Bhatti SS, Tyagi SK, Verma A. Energy and exergy analysis of vapour absorption cooling system driven by exhaust heat of IC engine. Lect Notes Mech Eng 2021:269–276. [CrossRef]
  • [15] Kurtulmuş N, Bilgili M, Şahin B. Energy and exergy analysis of a vapor absorption refrigeration system in an intercity bus application. J Therm Eng 2019;5:355–371. [CrossRef]
  • [16] Mohamed SA, Karimi MN. Analysis and optimization of vapor absorption generator–heat exchanger using kern method and CFD. J Therm Eng 2020;6:440–459. [CrossRef]
  • [17] Anand Y, Gupta A, Tyagi SK, Anand S. Variable capacity absorption cooling system performance for building application. J Therm Eng 2018;4:2303–2317. [CrossRef]
  • [18] Ansari NA, Arora A, Samsher, Manjunath K. Optimum parametric analysis based on thermodynamic modeling of a compression absorption cascade refrigeration system. J Therm Eng 2020;6:559–576. [CrossRef]
  • [19] Wonchala J, Hazledine M, Goni Boulama K. Solution procedure and performance evaluation for a water–LiBr absorption refrigeration machine. Energy 2014;65:272–284. [CrossRef]
  • [20] Kaynakli O, Kilic M. Theoretical study on the effect of operating conditions on performance of absorption refrigeration system. Energy Convers Manag 2007;48:599–607. [CrossRef]
  • [21] Solanki A, Pal Y. Evaluation and optimization of single–effect vapour absorption system for the dairy industry using design of experiment approach. J Therm Eng 2022:629–641.
  • [22] Anand Y, Gupta A, Tyagi SK, Anand S. Variable capacity absorption cooling system performance for building application. J Therm Eng 2018;4:2303–2317. [CrossRef]
  • [23] Verma A, Kaushik SC, Tyagi SK. Thermodynamic analysis of a combined single effect vapour absorption system and tc–CO2 compression refrigeration system. HighTech Innov J 2021;2:87–98. [CrossRef]
  • [24] Verma A, Kaushik SC, Tyagi SK. Energy and exergy analysis of a novel ejector–absorption combined refrigeration cycle using natural refrigerants. Int J Exergy 2022;39:142. [CrossRef]
  • [25] Nikbakhti R, Wang X, Chan A. Performance optimization of an integrated adsorption–absorption cooling system driven by low–grade thermal energy. Appl Therm Eng 2021;193:117035.
  • [26] Bellos E, Chatzovoulos I, Tzivanidis C. Yearly investigation of a solar–driven absorption refrigeration system with ammonia–water absorption pair. Therm Sci Eng Prog 2021;23:100885.
  • [27] Arora A, Dixit M, Kaushik SC. Computation of optimum parameters of a half effect water–lithium bromide vapour absorption refrigeration system. J Therm Eng 2016;2:683–692. [CrossRef]
  • [28] Verma A. Energy analysis and optimization of flat plate collector area of a solar driven water lithium bromide half effect vapour absorption refrigeration system for a given cooling load. In: Singh DRK, Pal DA, Gautam SV, Kumar DG, editors. International Conference on “Recent Advances in Mechanical Engineering (RAME 2016)At: New Delhi. RAME, DTU, India, New Delhi: Enriched Publications Pvt. Ltd; 2016, p. 101–109.
  • [29] Medrano M, Bourouis M, Coronas A. Double–lift absorption refrigeration cycles driven by low–temperature heat sources using organic fluid mixtures as working pairs. Appl Energy 2001;68:173–185. [CrossRef]
  • [30] Verma A, Tyagi SK, Kaushik SC. Exergy analysis and cost optimization of solar flat pate collector for a two–stage absorption refrigeration system with water–lithium bromide as a working pair. In: Bose M, Modi A, editors. Proceedings of the 7th International Conference on Advances in Energy Research; Singapore: Springer: 2021. pp. 599–610. [CrossRef]
  • [31] She X, Yin Y, Xu M, Zhang X. A novel low–grade heat–driven absorption refrigeration system with LiCl–H2O and LiBr–H2O working pairs. Int J Refrig 2015;58:219–234. [CrossRef]
  • [32] Rout SK, Pulagam MKR, Sarangi SK. Prospect of a fully solar energy–driven compact cold store for low income farming communities. Lect Notes Mech Eng 2021;13–21. [CrossRef]
  • [33] Ansari NA, Arora A, Samsher, Manjunath K. Optimum parametric analysis based on thermodynamic modeling of a compression absorption cascade refrigeration system. J Therm Eng 2020;6:559–576. [CrossRef]
  • [34] Arora A, Dixit M, Kaushik SC. Computation of optimum parameters of a half effect water–lithium bromide vapour absorption refrigeration system. J Therm Eng 2016;2:683–692. [CrossRef]
  • [35] Kaushik SC, Chandra S. Computer modeling and parametric study of a double effect generation absorption refrigeration cycle. Energy Convers Manag 1985;25:9–14. [CrossRef]
  • [36] Arora A, Dixit M, Kaushik SC. Energy and exergy analysis of a double effect parallel flow LiBr/H2O absorption refrigeration system. J Therm Eng 2016;2:541–549. [CrossRef]
  • [37] Gomri R, Hakimi R. Second law analysis of double effect vapour absorption cooler system. Energy Convers Manag 2008;49:3343–3348. [CrossRef]
  • [38] Arora A, Kaushik SC. Theoretical analysis of LiBr/H2O absorption refrigeration systems. Int J Energy Res 2009;33:1321–1340. [CrossRef]
  • [39] Colorado–Garrido D. Advanced exergetic analysis of a double–effect series flow absorption refrigeration system. J Energy Resour Technol Trans ASME 2020;142:104503. [CrossRef]
  • [40] Domínguez–Inzunza LA, Hernández–Magallanes JA, Sandoval–Reyes M, Rivera W. Comparison of the performance of single–effect, half–effect, double–effect in series and inverse and triple–effect absorption cooling systems operating with the NH3–LiNO3 mixture. Appl Therm Eng 2014;66:612–620. [CrossRef]
  • [41] Domínguez–Inzunza LA, Sandoval–Reyes M, Hernández–Magallanes JA, Rivera W. Comparison of the performance of single effect, half effect, double effect in series and inverse absorption cooling systems operating with the mixture H2O–LiBr. Energy Procedia 2014;57:2534–2543. [CrossRef]
  • [42] Xu GP, Dai YQ. Theoretical analysis and optimization of a double–effect parallel–flow–type absorption chiller. Appl Therm Eng 1997;17:157–170. [CrossRef]
  • [43] Xu GP, Dai YQ, Tou KW, Tso CP. Theoretical analysis and optimization of a double–effect series–flow–type absorption chiller. Appl Therm Eng 1996;16:975–987. [CrossRef]
  • [44] Li Z, Liu J. Appropriate heat load ratio of generator for different types of air cooled lithium bromide–water double effect absorption chiller. Energy Convers Manag 2015;99:264–273. [CrossRef]
  • [45] Grossman G, Gommed K, Gadoth D. A computer model for simulation of absorption systems in flexible and modular form 1991. Technical Report. Washington, DC: Oak Ridge National Lab; 1991. Report No. ORNL/Sub–90–89673. [CrossRef]
  • [46] Gambhir D, Sherwani AF, Arora A, Ashwni. Parametric optimization of blowdown operated double–effect vapour absorption refrigeration system. J Therm Eng 2022;8:78–89. [CrossRef]
  • [47] Arora A, Dixit M, Kaushik SC. Energy and exergy analysis of a double effect parallel flow LiBr/H2O absorption refrigeration system. J Therm Eng 2016;2:541–549. [CrossRef]
  • [48] Yang M, Lee SY, Chung JT, Kang YT. High efficiency H2O/LiBr double effect absorption cycles with multi–heat sources for tri–generation application. Appl Energy 2017;187:243–254. [CrossRef]
  • [49] Farshi LG, Mahmoudi SMS, Rosen MA, Yari M. A comparative study of the performance characteristics of double–effect absorption refrigeration systems. Int J Energy Res 2012;36:182–192. [CrossRef]
  • [50] Chahartaghi M, Golmohammadi H, Shojaei AF. Performance analysis and optimization of new double effect lithium bromide–water absorption chiller with series and parallel flows. Int J Refrig 2019;97:73–87. [CrossRef]
  • [51] Kaita Y. Simulation results of triple–effect absorption cycles. Int J Refrig 2002;25:999–1007. [CrossRef]
  • [52] Gebreslassie BH, Medrano M, Boer D. Exergy analysis of multi–effect water–LiBr absorption systems: From half to triple effect. Renew Energy 2010;35:1773–1782. [CrossRef]
  • [53] Dixit M, Arora A, Kaushik SC. Energy and exergy analysis of a waste heat driven cycle for triple effect refrigeration. J Therm Eng 2016;2:954–961. [CrossRef]
  • [54] Arun MB, Maiya MP, Murthy SS. Performance comparison of double–effect parallel–flow and series flow water–lithium bromide absorption systems. Appl Therm Eng 2001;21:1273–1279. [CrossRef]
  • [55] Arun MB, Maiya MP, Srinivasa Murthy S. Equilibrium low pressure generator temperatures for double–effect series flow absorption refrigeration systems. Appl Therm Eng 2000;20:227–242. [CrossRef]
  • [56] Gomri R. Investigation of the potential of application of single effect and multiple effect absorption cooling systems. Energy Convers Manag 2010;51:1629–1636. [CrossRef]
  • [57] Kaushik SC, Gadhi SMB, Agarwal RS, Kumar Y. Feasibility studies on an alcohol–salt mixture for absorption refrigeration systems. Energy Convers Manag 1991;31:459–469. [CrossRef]
  • [58] Hammad MA, Audi MS. Performance of a solar LiBr–water absorption refrigeration system. Renew Energy 1992;2:275–282. [CrossRef]
  • [59] Horuz I. A comparison between ammonia–water and water–lithium bromide solutions in vapor absorption refrigeration systems. Int Commun Heat Mass Transf 1998;25:711–721. [CrossRef]
  • [60] Kim DS, Infante Ferreira CA. Analytic modelling of steady state single–effect absorption cycles. Int J Refrig 2008;31:1012–1020. [CrossRef]
  • [61] Patel J, Pandya B, Mudgal A. Exergy based analysis of LiCl–H2O absorption cooling system. Energy Procedia 2017;109:261–269. [CrossRef]
  • [62] Won SH, Lee WY. Thermodynamic design data for double effect absorption heat pump systems using water–lithium chloride—cooling. Heat Recover Syst CHP 1991;11:41–48. [CrossRef]
  • [63] Kaushik SC, Kumar R. Thermodynamic study of a two–stage vapour absorption refrigeration system using NH3 refrigerant with liquid/solid absorbents. Energy Convers Manag 1985;25:427–431. [CrossRef]
  • [64] Karamangil MI, Coskun S, Kaynakli O, Yamankaradeniz N. A simulation study of performance evaluation of single–stage absorption refrigeration system using conventional working fluids and alternatives. Renew Sustain Energy Rev 2010;14:1969–1978. [CrossRef]
  • [65] Cai D, He G, Tian Q, Bian Y, Xiao R, Zhang A. First law analysis of a novel double effect air–cooled non–adiabatic ammonia/salt absorption refrigeration cycle. Energy Convers Manag 2015;98:1–14. [CrossRef]
  • [66] Cai D, Jiang J, He G, Li K, Niu L, Xiao R. Experimental evaluation on thermal performance of an air–cooled absorption refrigeration cycle with NH3–LiNO3 and NH3–NaSCN refrigerant solutions. Energy Convers Manag 2016;120:32–43. [CrossRef]
  • [67] Cerezo J, Best R, Romero RJ. A study of a bubble absorber using a plate heat exchanger with NH3–H2O, NH3–LiNO3 and NH3–NaSCN. Appl Therm Eng 2011;31:1869–1876. [CrossRef]
  • [68] Won SH, Chung HS, Lee H. Simulation and thermodynamic design data study on double–effect absorption cooling cycle using water–LiBr–LiSCN mixture. Heat Recover Syst CHP 1991;11:161–168. [CrossRef]
  • [69] Koo KK, Lee HR, Jeong S, Oh YS, Park DR, Baek YS. Solubilities, vapor pressures, and heat capacities of the water + lithium bromide + lithium nitrate + lithium iodide + lithium chloride system. Int J Thermophys 1999;20:589–600. [CrossRef]
  • [70] Moreno–Quintanar G, Rivera W, Best R. Comparison of the experimental evaluation of a solar intermittent refrigeration system for ice production operating with the mixtures NH3/LiNO3 and NH3/LiNO3/H2O. Renew Energy 2012;38:62–68. [CrossRef]
  • [71] Steiu S, Salavera D, Bruno JC, Coronas A. A basis for the development of new ammonia–water–sodium hydroxide absorption chillers. Int J Refrig 2009;32:577–587. [CrossRef]
  • [72] Sun DW. Comparison of the performances of NH3–H2O, NH3–LiNO3 and NH3–NaSCN absorption refrigeration systems. Energy Convers Manag 1998;39:357–368. [CrossRef]
  • [73] Lee HR, Koo KK, Jeong S, Kim JS, Lee H, Oh YS, et al. Thermodynamic design data and performance evaluation of the water + lithium bromide + lithium iodide + lithium nitrate + lithium chloride system for absorption chiller. Appl Therm Eng 2000;20:707–720. [CrossRef]
Journal of Thermal Engineering-Cover
  • Başlangıç: 2015
  • Yayıncı: YILDIZ TEKNİK ÜNİVERSİTESİ
Sayıdaki Diğer Makaleler

Parameter optimization of coriolis mass flow meter in laminar flow regime using Doe-Taguchi method

Vikram KOLHE, Suyash PAWAR, Vishal CHAUDHARI, Ravindra EDLABADKAR, Sandipkumar SONAWANE

Thermo-economic assessment of air bottoming cycle technology for waste heat recovery purposes from the preheater tower of an Algerian cement plant

Youcef REDJEB, Khatima KAABECHE-DJERAFI, Hamza SEMMARI

A CFD investigation of the design variables affecting the performance of finned-tube heat exchangers

Hussaini Syed MUJTABA, Tariq FEROZE, Ahmad HANAN, Haider Ali SHAMS

Performance enhancement of absorption refrigeration systems: An overview

Abhishek VERMA, Subhash Chandra KAUSHIK, Sudhir Kumar TYAGI1

Freeze-drying kinetics and diffusion modeling of hawthorn

Khaled Ali HAGIG, Bahadır ACAR, Edip TAŞKESEN, Edip TAŞKESEN, Edip TAŞKESEN, Mehmet ÖZKAYMAK

Entropy generation of Al2O3/water nanofluid in corrugated channels

Leila SAOUDI, Nordine ZERAIBI

Thermal insulation performance curves for exterior walls in heating and cooling seasons

Mohammad Ahmad BATIHA, Saleh RAWADİEH, Marwan BATIHA, Leema AL-MAKHADMEH, Muhammet KAYFECI, Freabdullah MARACHLI

Investigation of issues affecting thermal comfort in water system underfloor heating applications of buildings with Bayesian networks

Samet ERKOL, Melih YÜCESAN, Muhammet GÜL, Ali Fuat GÜNERI

Effect of operating parameters on the performance of rotary desiccant wheel energized by PV/T collectors

Umutcan OLMUŞ, Yunus Emre GÜZELEL, Kamil NEYFEL ÇERÇI, Orhan BÜYÜKALACA

Measurement of temperature flow analysis by condition monitoring system for WTG gear box to evaluate the thermal performance associated with plant load factor

K Sunıl KUMAR, Sumathy MUNIAMUTHU, K Sunıl KUMAR, Kala Raja MOHAN