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Passive, internal thermal management system for batteries using microscale liquid-vapor phase change

机译:被动式内部热管理系统,用于电池,采用微尺度的液体-蒸气相变

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Conventional thermal management systems for lithium-ion batteries remove heat from the exterior surface of the battery, causing undesirable temperature increase and thermal gradients inside the battery. Internally cooling batteries can reduce both of these effects, improving safety and durability. In the present study, a novel internal cooling system that utilizes passive, liquid-vapor phase change processes is investigated using representative geometry and a surrogate heat source. Frictional and heat transfer characteristics of the representative cooling system with buoyancy driven flow are reported over a range of net heat inputs (94-6230 W L~(-1)) and saturation temperatures (24℃-33℃). The results show that the mass flow rate increased to a maximum near a heat input of 1350 W L~(-1), and there was a slight influence of saturation temperature on the performance of the system. In addition, the calculated two-phase frictional pressure drops in the microchannel evaporator (3.175 mm × 160 μm channels) are compared to the representative correlation database (Dh < 1 mm) and used to develop a new frictional pressure drop model with improved accuracy over the tested mass flux range (45 < G < 112 kg m~(-2) s~(-1)). The results presented here are utilized in a subsequent investigation to determine the performance improvement in large lithium-ion battery packs intended for electric and hybrid electric vehicular applications through internal cooling.
机译:用于锂离子电池的常规热管理系统从电池的外表面带走热量,导致不希望的温度升高和电池内部的热梯度。内部冷却电池可以减少这两种影响,从而提高安全性和耐用性。在本研究中,利用代表性的几何形状和替代热源,研究了一种利用被动式,液体-蒸汽相变过程的新型内部冷却系统。在净热输入(94-6230 W L〜(-1))和饱和温度(24℃-33℃)范围内,报告了具有浮力驱动流的代表性冷却系统的摩擦和传热特性。结果表明,在输入热量为1350 W L〜(-1)附近,质量流率增加到最大值,并且饱和温度对系统的性能影响很小。此外,将微通道蒸发器(3.175 mm×160μm通道)中计算出的两相摩擦压降与代表性相关数据库(Dh <1 mm)进行比较,并用于开发新的摩擦压降模型,其精度比测试的质量通量范围(45

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