Economic viability of phase-changing materials in residential buildings-A case study in Alice Springs, Australia

被引:17
作者
Acuna-Diaz, Oscar [1 ]
Al-Halawani, Nour [1 ]
Alonso-Barneto, Marta [1 ]
Ashirbekov, Assetbek [2 ]
Ruiz-Flores, Carlos [1 ]
Rojas-Solorzano, Luis [2 ]
机构
[1] IMT Atlantique Nantes, European Joint Master Project Management Environm, Nantes, France
[2] Nazarbayev Univ, Sch Engn & Digital Sci, Dept Mech & Aerosp Engn, 53 Kabanbay Batyr Ave, Nur Sultan 010000, Kazakhstan
关键词
PCM; Life cycle cost; Energy efficiency; Building envelope; CHANGE MATERIALS PCM; THERMAL PERFORMANCE; ENERGY; INSULATION; WALL; EFFICIENCY; ROOM;
D O I
10.1016/j.enbuild.2021.111612
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The use of phase-changing materials (PCM) in residential envelopes is an emerging technology that promises significant cooling and heating energy savings. Such energy savings are expected due to PCM's inherent energy storage capability, realized as physical transformation processes, during hot-cold weather transitions. However, this technology has limited market penetration due to a lack of demon-strated economic advantages for constructing and retrofitting buildings. This paper addresses the techno-economic viability of implementing PCM in an average residential dwelling in Alice Springs, Australia. The life-cycle cost analysis is performed by modeling the transient characteristics of the PCM envelope component through a proxy heat-pump with tuned Coefficient of Performance (COP) and seasonal effi-ciency to match the experimental annual heating-cooling characteristics. Three instances were considered, namely: (a) basic PCM implementation; (b) PCM implementation with capital expenditure (CAPEX) subsidies from a government program (Grant); and (c) use of a novel and less expensive (low-cost) encapsulated PCM technology to address the hurdle of the typically signif-icant CAPEX associated with conventional PCM in the Australian market. Results demonstrated that PCM is a promising technology with potential energy savings in hot-arid climates. However, it requires subsidies of nearly 50% of the CAPEX or the implementation of the novel low-cost technology to become financially attractive. The present case study shows both alternatives' profitability, with the former resulting in a 1.2 benefit-cost (BC) ratio and equity payback (EP) of 9.3 years. The latter shows a BC ratio of 1.7 and an EP period of 8.3 years. (c) 2021 Elsevier B.V. All rights reserved.
引用
收藏
页数:10
相关论文
共 39 条
[1]   Traditional, state-of-the-art and renewable thermal building insulation materials: An overview [J].
Abu-Jdayil, Basim ;
Mourad, Abdel-Hamid ;
Hittini, Waseem ;
Hassan, Muzamil ;
Hameedi, Suhaib .
CONSTRUCTION AND BUILDING MATERIALS, 2019, 214 :709-735
[2]   Experimental investigation of using nano-PCM/nanofluid on a photovoltaic thermal system (PVT): Technical and economic study [J].
Al-Waeli, Ali H. A. ;
Kazem, Hussein A. ;
Chaichan, Miqdam T. ;
Sopian, K. .
THERMAL SCIENCE AND ENGINEERING PROGRESS, 2019, 11 :213-230
[3]   Energy saving potential of phase change materials in major Australian cities [J].
Alam, Morshed ;
Jamil, Hasnat ;
Sanjayan, Jay ;
Wilson, John .
ENERGY AND BUILDINGS, 2014, 78 :192-201
[4]   Investigation of the thermal performance of a passive solar test-room with wall latent heat storage [J].
Athienitis, AK ;
Liu, C ;
Hawes, D ;
Banu, D ;
Feldman, D .
BUILDING AND ENVIRONMENT, 1997, 32 (05) :405-410
[5]  
Australian Bureau of Statistics, 2016, AL SPRINGS TOWN COUN
[6]  
Australian National Audit Office (ANAO), 2016, HOM INS PROGR
[7]  
Black R, 2020, The COVID-19 Crisis and Clean Energy Progress, IEA, Paris
[8]  
Casini M, 2016, WOOD PUBL SER CIVIL, V69, P1
[9]   A new kind of phase change material (PCM) for energy-storing wallboard [J].
Chen, Chao ;
Guo, Haifeng ;
Liu, Yuning ;
Yue, Hailin ;
Wang, Chendong .
ENERGY AND BUILDINGS, 2008, 40 (05) :882-890
[10]  
Conservatoire National des Arts et Metiers (CNAM), EN METZ