Li Kang, Wang Jingwu, Luo Shuxian, Wang Zhenzhen, Zhou Xuejin, Fang Jun, Su Lin, Tu Ran
School of Energy and Power Engineering, University of Shanghai for Science and Technology, Shanghai 200093, People's Republic of China.
Key Laboratory of Multiphase Flow and Heat Transfer in Shanghai Power Engineering, University of Shanghai for Science and Technology, Shanghai 200093, People's Republic of China.
R Soc Open Sci. 2020 Apr 22;7(4):191478. doi: 10.1098/rsos.191478. eCollection 2020 Apr.
Concerning the issues regarding driving mileage reduction for electric vehicles (EVs) in cold climates, a heat pump system with low global warming potential refrigerant R290/R1234yf is employed as one of the promising solutions. Different from the widely used mobile refrigerant R134a, R290 and R1234yf are both flammable or explosive. The application of R290/R1234yf in the mobile heat pump system is hindered by unexpected refrigerant leakage with the existence of fire and explosion risk. In this study, the combustion characteristics of R290/R1234yf in a potential leakage process from an air-conditioning heat pump system for EVs were investigated. Firstly, thermodynamic behaviours of R290/R1234yf used in a typical heat pump system were analysed based on a special experimental facility designed for EVs. Then the leakage and combustion characteristics of R290/R1234yf including flame shape, temperature, radiation etc. were obtained by the experimental method under different initial temperature and mass flow rate conditions. It was found that R290/R1234yf leaked is difficult to ignite at low temperatures, while the blow-off phenomenon of the jet flame would occur at high temperature with high leakage mass flow rate. In addition, the results showed that combustion intensity would be enhanced by the leakage mass flow rate between 30 and 60°C. These results could provide guidance for fire detection and rescue system design for new energy vehicles.
关于寒冷气候下电动汽车(EV)行驶里程减少的问题,采用具有低全球变暖潜值制冷剂R290/R1234yf的热泵系统是一种很有前景的解决方案。与广泛使用的移动制冷剂R134a不同,R290和R1234yf都具有易燃或易爆性。R290/R1234yf在移动热泵系统中的应用因存在火灾和爆炸风险导致意外制冷剂泄漏而受到阻碍。在本研究中,对电动汽车空调热泵系统潜在泄漏过程中R290/R1234yf的燃烧特性进行了研究。首先,基于为电动汽车设计的特殊实验装置,分析了典型热泵系统中使用的R290/R1234yf的热力学行为。然后通过实验方法,在不同初始温度和质量流量条件下,获得了R290/R1234yf的泄漏和燃烧特性,包括火焰形状、温度、辐射等。研究发现,泄漏的R290/R1234yf在低温下难以点燃,而在高温且高泄漏质量流量时会出现射流火焰吹熄现象。此外,结果表明,在30至60°C之间,燃烧强度会因泄漏质量流量而增强。这些结果可为新能源汽车火灾探测与救援系统设计提供指导。