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A modeling study on the revere cycle defrosting of an air source heat pump with the melted frost downwards flowing away and local drainage

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dc.title A modeling study on the revere cycle defrosting of an air source heat pump with the melted frost downwards flowing away and local drainage en
dc.contributor.author Song, Mengjie
dc.contributor.author Xie, Gongnan
dc.contributor.author Pekař, Libor
dc.contributor.author Mao, Ning
dc.contributor.author Qu, Minglu
dc.relation.ispartof Energy and Buildings
dc.identifier.issn 0378-7788 Scopus Sources, Sherpa/RoMEO, JCR
dc.date.issued 2020
utb.relation.volume 226
dc.type article
dc.language.iso en
dc.publisher Elsevier Ltd
dc.identifier.doi 10.1016/j.enbuild.2020.110257
dc.relation.uri https://www.sciencedirect.com/science/article/pii/S0378778820306605
dc.subject air source heat pump en
dc.subject reverse cycle defrosting en
dc.subject multi-circuit outdoor coil en
dc.subject modeling study en
dc.subject melted frost en
dc.description.abstract Reverse cycle defrosting is widely used for air source heat pumps. When a multi-circuit heat exchanger is vertically installed in a heat pump as an outdoor coil, the melted frost could be kept downwards flowing or locally drained during defrosting by using water collecting trays. To analyze the performance differences of melted frost, two defrosting models were developed and previously reported by authors. In this study, the defrosting performance of an air source heat pump was numerically investigated based on the two models, with the melted frost downwards flowing away or local drainage considered. The following physical parameters are predicted and analyzed, including the thermal resistance of refrigerant, temperature of melted frost on tube and fin's surface, mass of melted frost and energy consumption from refrigerant during defrosting. As calculated, after the melted frost locally drained, the predicted total energy consumption could be decreased from 898.1 kJ to 727.5 kJ, and defrosting efficiency increased from 47.5% to 57.6%. This work is helpful to optimizing the intelligent control strategy of an air source heat pump unit, as well as saving energy for buildings. © 2020 Elsevier B.V. en
utb.faculty Faculty of Applied Informatics
dc.identifier.uri http://hdl.handle.net/10563/1009844
utb.identifier.scopus 2-s2.0-85089075807
utb.identifier.wok 000573584200003
utb.identifier.coden ENEBD
utb.source j-scopus
dc.date.accessioned 2020-08-21T08:57:14Z
dc.date.available 2020-08-21T08:57:14Z
dc.description.sponsorship CAS Key Laboratory of Cryogenics, TIPC, China [CRYO202001]; National Natural Science Foundation of ChinaNational Natural Science Foundation of China (NSFC) [51606044]; Natural Science Foundation of Guangdong ProvinceNational Natural Science Foundation of Guangdong Province [2017A030313300]
utb.ou Department of Automation and Control Engineering
utb.contributor.internalauthor Pekař, Libor
utb.fulltext.affiliation Mengjie Song a,b,c , Gongnan Xie d , Libor Pekař e , Ning Mao f, ⇑ , Minglu Qu b a Department of Energy and Power Engineering, School of Mechanical Engineering, Beijing Institute of Technology, Beijing, China b School of Environment & Architecture, University of Shanghai for Science & Technology, No.516, Jungong Road, Shanghai, China c CAS Key Laboratory of Cryogenics, TIPC, China d Department of Mechanical and Power Engineering, School of Marine Science and Technology, Northwestern Polytechnical University, Xi’an 710072, Shaanxi, China e Department of Automation and Control Engineering, Faculty of Applied Informatics, Tomas Bata University in Zlín, Nad Stráněmi 4511, 76005 Zlín, Czech Republic f Department of Gas Engineering, College of Pipeline and Civil Engineering, China University of Petroleum (East China), Qingdao, China
utb.fulltext.dates Received 29 February 2020 Revised 9 May 2020 Accepted 25 June 2020 Available online 30 June 2020
utb.fulltext.references [1] Q.L. Zhang, L. Zhang, J.Z. Nie, Y.L. Li, Techno-economic analysis of air source heat pump applied for space heating in northern China, Appl. Energy 207 (2017) 533–542. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0005 [2] Y.J. Fang, L.J. Chen, S.W. Mei, W. Wei, F. Liu, Coal or electricity? An evolutionary game approach to investigate fuel choices of urban heat supply systems, Energy. 181 (2019) 107–122. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0010 [3] A. Pillarisetti, R.J. Ma, M. Buyan, B. Nanzad, K.R. Smith, Advanced household heat pumps for air pollution control: A pilot field study in Ulaanbaatar, the coldest capital city in the world, Environ. Res. 176 (2019) 108381. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0015 [4] M.J. Song, S.M. Deng, C.B. Dang, N. Mao, Z.H. Wang, Review on improvement for air source heat pump units during frosting and defrosting, Appl. Energy 211 (2018) 1150–1170. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0020 [5] D. Huang, Q.X. Li, X.L. Yuan, Comparison between hot-gas bypass defrosting and reverse-cycle defrosting methods on an air-to-water heat pump, Appl. Energy 86 (2009) 1697–1703. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0025 [6] M. Amer, C.C. Wang, Review of defrosting methods, Renew. Sustain. Energy Rev. 73 (2017) 53–74. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0030 [7] Y.J. Ding, G.Y. Ma, Q.H. Chai, Y. Jiang, Experiment investigation of reverse cycle defrosting methods on air source heat pump with TXV as the throttle regulator, Int. J. Refrig 27 (2004) 671–678. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0035 [8] W.J. Hu, Y.Q. Jiang, M.L. Qu, L. Ni, S.M. Deng, An experimental study on the operating performance of a novel reverse-cycle hot gas defrosting method for air source heat pumps, Appl. Therm. Eng. 31 (2011) 363–369. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0040 [9] M.L. Qu, Y.B. Tang, T.Y. Zhang, Z. Li, J.B. Chen, Experimental investigation on the multi-mode heat discharge process of a PCM heat exchanger during TES based reverse cycle defrosting using in cascade air source heat pumps, Appl. Therm. Eng. 151 (2019) 154–162. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0045 [10] M.L. Qu, R. Zhang, J.B. Chen, Y.D. Cheng, Z. Li, Experimental analysis of heat coupling during TES based reverse cycle defrosting method for cascade air source heat pumps, Renewable Energy 147 (2020) 35–42. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0050 [11] B.W. Yang, J.K. Dong, L. Zhang, M.J. Song, S.M. Deng, Heating and energy storage characteristics of multi-split air source heat pump based on energy storage defrosting, Appl. Energy 238 (2019) 303–310. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0055 [12] J.K. Dong, S. Li, Y. Yao, Y.Q. Jiang, H. Tian, Defrosting performances of a multi-split air source heat pump with phase change thermal storage, Int. J. Refrig 55 (2015) 49–59. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0060 [13] Z.B. Liu, F. Zhao, L.F. Zhang, R. Zhang, Y.Y. Chi, Performance of bypass cycle defrosting system using compressor casing thermal storage for air-cooled household refrigerators, Appl. Therm. Eng. 130 (2018) 1215–1223. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0065 [14] Z.B. Liu, A. Li, Q.H. Wang, Y.Y. Chi, L.F. Zhang, Experimental study on a new type of thermal storage defrosting system for frost-free household refrigerators, Appl. Therm. Eng. 118 (2017) 256–265. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0070 [15] M.J. Song, A.L. Chen, N. Mao, An experimental study on defrosting performance of an ASHP unit with a multi-circuit outdoor coil at different frosting evenness values, Appl. Therm. Eng. 94 (2016) 331–334. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0075 [16] M.J. Song, N. Mao, S.M. Deng, Y.D. Xia, Y. Chen, An experimental study on defrosting performance for an air source heat pump unit at different frosting evenness values with melted frost locally drainage, Appl. Therm. Eng. 99 (2016) 730–740. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0080 [17] W. Wang, J. Xiao, Y.C. Feng, Q.C. Guo, L.C. Wang, Characteristics of an ASHP with novel photoelectric sensors during periodic frost-defrost cycles, Appl. Therm. Eng. 50 (2013) 177–186. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0085 [18] Y. Chung, S.I. Na, J.M. Choi, M.S. Kim, Feasibility and optimization of defrosting control method with differential pressure sensor for air source heat pump systems, Appl. Therm. Eng. 155 (2019) 461–469. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0090 [19] M.H. Kim, K.S. Lee, Determination method of defrosting start-time based on temperature measurements, Appl. Energy 146 (2015) 263–269. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0095 [20] J.W. Yoo, Y. Chung, G.T. Kim, C.W. Song, M.S. Kim, Determination of defrosting start time in an air-to-air heat pump system by frost volume calculation method, Int. J. Refrig 96 (2018) 169–178. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0100 [21] M.J. Song, Z.H. Wang, N. Mao, J.K. Dong, H.R. Zhang, Defrosting start control strategy optimization for an air source heat pump unit with the frost accumulation and melted frost downwards flowing considered, Sustainable Cities and Society. 46 (2019) 101461. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0105 [22] M.J. Song, G.C. Gong, N. Mao, S.M. Deng, Z.H. Wang, Experimental investigation on an air source heat pump unit with a three-circuit outdoor coil for its reverse cycle defrosting termination temperature, Appl. Energy 204 (2017) 1388–1398. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0110 [23] Z.Q. Liu, G.F. Tang, F.Y. Zhao, Dynamic simulation of air-source heat pump during hot-gas defrost, Appl. Therm. Eng. 23 (2003) 675–685. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0115 [24] A.M. Alebrahim, S.A. Sherif, Electrical defrosting analysis of a finned tube evaporator coil using the enthalpy method, Proc Inst Mech Eng, Part C: J Mech Eng Sci 216 (2002) 655–673. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0120 [25] W.J. Hu, M.J. Song, Y.Q. Jiang, Y. Yao, Y. Gao, A modeling study on the heat storage and release characteristics of a phase change material based double-spiral coiled heat exchanger in an air source heat pump for defrosting, Appl. Energy 236 (2019) 877–892. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0125 [26] H.T. Qiao, K. Aute, R. Radermacher, Modeling of transient characteristics of an air source heat pump with vapor injection during reverse-cycle defrosting, Int. J. Refrig 8 (2018) 24–34. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0130 [27] D.H. Niederer, Frosting and defrosting effects on coil heat transfer, ASHRAE Trans. 82 (1976) 467–473. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0135 [28] M.L. Qu, D.M. Pan, L. Xia, S.M. Deng, Y.Q. Jiang, A study of the reverse cycle defrosting performance on a multi-circuit outdoor coil unit in an air source heat pump-Part II: Modeling analysis, Appl. Energy 91 (2012) 274–280. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0140 [29] A.M. Rahman, A.M. Jacobi, Study of frost properties and frost melt water drainage on microgrooved brass surfaces in multiple frost/defrost/refrost cycles, Appl. Therm. Eng. 64 (2014) 453–461. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0145 [30] M.J. Song, S.M. Deng, D.M. Pan, N. Mao, An experimental study on the effects of downwards flowing of melted frost over a vertical multi-circuit outdoor coil in an air source heat pump on defrosting performance during reverse cycle defrosting, Appl. Therm. Eng. 67 (2014) 258–265. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0150 [31] M.J. Song, D.M. Pan, N. Li, S.M. Deng, An experimental study on the negative effects of downwards flow of the melted frost over a multi-circuit outdoor coil in an air source heat pump during reverse cycle defrosting, Appl. Energy 138 (2015) 598–604. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0155 [32] M.J. Song, S.M. Deng, N. Mao, X.M. Ye, An experimental study on defrosting performance for an air source heat pump unit with a horizontally installed multi-circuit outdoor coil, Appl. Energy 165 (2016) 371–382. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0160 [33] M.J. Song, C.B. Dang, N. Mao, S.M. Deng, Energy transfer procession in an air source heat pump unit during defrosting with melted frost locally drainage in its multi-circuit outdoor coil, Energy Build. 164 (2018) 109–120. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0165 [34] M.J. Song, S.M. Deng, L. Xia, A semi-empirical modeling study on the defrosting performance for an ASHP unit with local drainage of melted frost from its three-circuit outdoor coil, Appl Energy 136 (2014) 537–547. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0170 [35] M.J. Song, L. Xia, S.M. Deng, A modeling study on alleviating uneven defrosting for a vertical three-circuit outdoor coil in an air source heat pump unit during reverse cycle defrosting, Appl. Energy 161 (2016) 268–278. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0175 [36] C. Shen, J.F. Ma, J.H. Pu, Y.H. Hu, S.M. Deng, The effect of PM2.5 air pollution on the frosting process of outdoor finned-tube evaporator, Energy Build. 213 (2020) 109808. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0180 [37] T.W. Lai, P. Ding, X. Dong, Y.u. Beile Zhang, Hou., Experimental study on the frosting characteristics of round tube in confined circular flow path at low temperature, Appl. Therm. Eng. 171 (2020) 115075. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0185 [38] W. Wang, S.Q. Zhang, Z.Y. Li, Y.Y. Sun, X. Wu, Determination of the optimal defrosting initiating time point for an ASHP unit based on the minimum loss coefficient in the nominal output heating energy, Energy. 191 (2020) 116505. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0190 [39] G.Y. Xu, X.S. Zhang, S.M. Deng, A simulation study on the operating performance of a solar-air source heat pump water heater, Appl. Therm. Eng. 26 (2006) 1257–1265. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0195 [40] H. Kim, G.R. Jin, J.Y. Jeon, K.S. Lee, D.R. Kim, Defrosting behavior and performance on vertical plate for surfaces of varying wettability, Int. J. Heat Mass Transf. 1 (2018) 481–489. http://refhub.elsevier.com/S0378-7788(20)30660-5/h0200
utb.fulltext.sponsorship The first author acknowledge the financial supports from the CAS Key Laboratory of Cryogenics, TIPC, China (No. CRYO202001), National Natural Science Foundation of China (No. 51606044 ) and Natural Science Foundation of Guangdong Province (No. 2017A030313300 ).
utb.wos.affiliation [Song, Mengjie] Beijing Inst Technol, Sch Mech Engn, Dept Energy & Power Engn, Beijing, Peoples R China; [Song, Mengjie; Qu, Minglu] Univ Shanghai Sci & Technol, Sch Environm & Architecture, 516 Jungong Rd, Shanghai, Peoples R China; [Song, Mengjie] TIPC, CAS Key Lab Cryogen, Beijing, Peoples R China; [Xie, Gongnan] Northwestern Polytech Univ, Sch Marine Sci & Technol, Dept Mech & Power Engn, Xian 710072, Shaanxi, Peoples R China; [Pekar, Libor] Tomas Bata Univ Zlin, Fac Appl Informat, Dept Automat & Control Engn, Nad Stranemi 4511, Zlin 76005, Czech Republic; [Mao, Ning] China Univ Petr East China, Coll Pipeline & Civil Engn, Dept Gas Engn, Qingdao, Peoples R China
utb.scopus.affiliation Department of Energy and Power Engineering, School of Mechanical Engineering, Beijing Institute of Technology, Beijing, China; School of Environment & Architecture, University of Shanghai for Science & Technology, No.516, Jungong Road, Shanghai, China; CAS Key Laboratory of Cryogenics, TIPC, China; Department of Mechanical and Power Engineering, School of Marine Science and Technology, Northwestern Polytechnical University, Xi'an 710072, Shaanxi, China; Department of Automation and Control Engineering, Faculty of Applied Informatics, Tomas Bata University in Zlín, Nad Stráněmi 4511, Zlín, 76005, Czech Republic; Department of Gas Engineering, College of Pipeline and Civil Engineering, China University of Petroleum (East China), Qingdao, China
utb.fulltext.projects CRYO202001
utb.fulltext.projects 51606044
utb.fulltext.projects 2017A030313300
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