Page 17 - Read Online
P. 17

Li et al. Carbon Footprints 2024;3:6  https://dx.doi.org/10.20517/cf.2023.54    Page 13 of 14

                   management. Autom Abstr 2019;5:1. Available from: https://g3mv.com/thesis/detail/1992705 [Last accessed on 20 Feb 2024].
               3.       Wu Q, Ma D, Lin XY, Peng D, Dou GY. International experience in greenhouse gas control of air conditioners for vehicles and its
                   enlightenments. 2022. Available from: http://www.ceec.cn/zyzx/sjhjzz/zzlm/tszs/202302/P020230214520032932758.pdf [Last
                   accessed on 20 Feb 2024].
               4.       Wang C, Cao F, Li M, Yin X, Song Y, He Y. Research status and future development of thermalmanagement system for new energy
                   vehicles underthe background of carbon neutrality. Chin Sci Bull 2021;66:4112-28.  DOI
               5.       Golzari S, Kasaeian A, Daviran S, Mahian O, Wongwises S, Sahin AZ. Second law analysis of an automotive air conditioning system
                   using HFO-1234yf, an environmentally friendly refrigerantAnalyse selon le second principe d'un système de conditionnement d'air
                   automobile fonctionnant au HFO-1234yf, frigorigène respectueux de l'environnement. Int J Refrig 2017;73:134-43.  DOI
               6.       Liu YS, Li WY, Zhang L, Shi JY, Chen JP. Performance of automotive ultra-low temperature economized vapor injection heat pump
                   air conditioning using r1234yf refrigerant. J Shanghai Jiao Tong Univ 2020;54:1108-16.  DOI
               7.       Wang D, Yu B, Hu J, Chen L, Shi J, Chen J. Heating performance characteristics of CO  heat pump system for electrical vehicle in a
                                                                             2
                   cold climate. Caractéristiques des performances de chauffage d’un système de pompe à chaleur au CO  pour un véhicule électrique
                                                                                       2
                   dans un climat froid. Int J Refrig 2018;85:27-41.  DOI
               8.       Baek C, Heo J, Jung J, Cho H, Kim Y. Optimal control of the gas-cooler pressure of a CO  heat pump using EEV opening and outdoor
                                                                             2
                   fan speed in the cooling mode. Régulation optimale de la pression du refroidisseur de gaz d'une pompe à chaleur au CO2 à l'aide de
                   l'ouverture du détendeur électronique et de la vitesse du ventilateur externe, en mode refroidissement. Int J Refrig 2013;36:1276-84.
                   DOI
               9.       Ghodbane M. An investigation of R152a and hydrocarbon refrigerants in mobile air conditioning. In: international congress and
                   exposition, SAE technical paper 1999-01-0874. 1999.  DOI
               10.      Ghodbane M, Craig TD, Baker JA. Demonstration of an energy-efficient secondary loop HFC-152a mobile air conditioning system.
                   2007. Available from: https://www.researchgate.net/profile/Timothy-Craig-3/publication/237297660_Demonstration_of_an_Energy-
                   Efficient_Secondary_Loop_HFC152a_Mobile_Air_Conditioning_System/links/5554b2c808ae980ca60acf5a/Demonstration-of-an-
                   Energy-Efficient-Secondary-Loop-HFC152a-Mobile-Air-Conditioning-System.pdf [Last accessed on 20 Feb 2024].
               11.      Li G, Eisele M, Lee H, Hwang Y, Radermacher R. Experimental investigation of energy and exergy performance of secondary loop
                   automotive air-conditioning systems using low-GWP (global warming potential) refrigerants. Energy 2014;68:819-31.  DOI
               12.      Hafner A, Neksa P. Global environmental consequences of introducing R-744 (CO ) mobile air conditioning. In: 7th IIR gustav
                                                                           2
                   lorentzen conference on natural working fluids. 2006. Available from: https://archive.r744.com/files/pdf_233.pdf [Last accessed on 20
                   Feb 2024].
               13.      Koban M. HFO-1234yf low GWP refrigerant LCCP analysis 2009-01-0179. In: SAE world congress & exhibition, SAE technical
                   paper, 2009. Available from: https://www.sae.org/publications/technical-papers/content/2009-01-0179/ [Last accessed on 20 Feb
                   2024].
               14.      Yu B, Long J, Wang D, Ouyang H, Shi J, Chen J. Life cycle climate performance (LCCP) evaluation model for electric vehicle heat
                   pumps and emission reduction analysis of low-GWP refrigerants. Chin Sci Bull 2023;68:841-52.  DOI
               15.      Yue C, You F, Huang Y. Thermal and economic analysis of an energy system of an ORC coupled with vehicle air conditioning.
                   Analyse thermique et économique du système énergétique d'un cycle organique de Rankine (ORC) couplé avec un système de
                   conditionnement d'air de véhicule. Int J Refrig 2016;64:152-67.  DOI
               16.      China Automotive Technology Research Center. Research report on China’s low-carbon action plan for automobiles 2021[EB/OL].
                   Available from: https://www.digitalelite.cn/h-nd-1515.html?fromColId=30 [Last accessed on 20 Feb 2024].
               17.      Papasavva S, Hill WR, Andersen SO. GREEN-MAC-LCCP: a tool for assessing the life cycle climate performance of MAC systems.
                   Environ Sci Technol 2010;44:7666-72.  DOI  PubMed
               18.      Zhang Z, Li W, Zhang C, Chen J. Climate control loads prediction of electric vehicles. Appl Therm Eng 2017;110:1183-8.  DOI
               19.      Li W, Liu R, Liu Y, Wang D, Shi J, Chen J. Performance evaluation of R1234yf heat pump system for an electric vehicle in cold
                   climate. Évaluation de la performance d’un système de pompe à chaleur au R1234yf pour un véhicule électrique en climat froid. Int J
                   Refrig 2020;115:117-25.  DOI
               20.      Yu B, Ouyang H, Shi J, Guo Z, Chen J. Experimental evaluation of cycle performance for new-developed refrigerants in the electric
                   vehicle heat pump systems. Évaluation expérimentale de la performance du cycle pour les frigorigènes nouvellement mis au point dans
                   les systèmes de pompe à chaleur des véhicules électriques. Int J Refrig 2021;129:118-27.  DOI
               21.      Wang D, Yu B, Li W, Shi J, Chen J. Heating performance evaluation of a CO  heat pump system for an electrical vehicle at cold
                                                                        2
                   ambient temperatures. Appl Therm Eng 2018;142:656-64.  DOI
               22.      Yu B, Yang J, Wang D, Shi J, Guo Z, Chen J. Experimental energetic analysis of CO /R41 blends in automobile air-conditioning and
                                                                           2
                   heat pump systems. Appl Energy 2019;239:1142-53.  DOI
               23.      Yu B, Ouyang H, Shi J, Liu W, Chen J. Evaluation of low-GWP and mildly flammable mixtures as new alternatives for R410A in air-
                   conditioning and heat pump system. Évaluation de mélanges à faible PRP et légèrement inflammables comme nouvelles alternatives au
                   R410A dans les systèmes de conditionnement d’air et de pompes à chaleur. Int J Refrig 2021;121:95-104.  DOI
               24.      China Meteorological Bureau. China standard weather data for analyzing building thermal conditions. Beijing: China Building
                   Industry Publishing House. 2005.
               25.      Xiaoxiong fuel consumption. 2017 annual mileage report of the car owners in Xiaoxiong fuel consumption. 2018. Available from:
                   https://zhuanlan.zhihu.com/p/43119608 [Last accessed on 20 Feb 2024].
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