Operating controls and dynamics for floating refrigerant loop for high heat flux electronics

K. Lowe, C.W. Avers, J. S. Hsu
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引用次数: 1

Abstract

The Oak Ridge National Laboratory (ORNL) Power Electronics and Electric Machinery Research Center (PEEMRC) have been developing technologies to address the thermal issues associated with hybrid vehicles. This work is part of the ongoing FreedomCAR and Vehicle Technologies (FCVT) program, performed for the Department of Energy (DOE). Removal of the heat generated from electrical losses in traction motors and their associated power electronics is essential for the reliable operation of motors and power electronics. As part of a larger thermal management project, which includes shrinking inverter size and direct cooling of electronics, ORNL has developed U.S. Patent No. 6,772,603 B2, Methods and apparatus for thermal management of vehicle systems and components (Hsu et al, 2004), and patent pending Floating loop system for cooling integrated motors and inverters using hot liquid refrigerant (Hsu et al, 2004). The floating-loop system provides a large coefficient of performance (COP) for hybrid drive component cooling. This loop uses R-134a as a coolant and shares the vehicle's existing air-conditioning (AC) condenser, which dissipates waste heat to the ambient air. Because temperature requirements for cooling power electronics and electric machines are not as low as that required for passenger compartment air, this adjoining loop can operate on the high-pressure side of the existing AC system. This arrangement also allows for the floating loop to run without a compressor and requires only a small pump to move the liquid refrigerant. For the design to be viable, the loop must not adversely affect the existing system. The loop should also, ideally, provide a high COP, a flat temperature profile, and low pressure drop. To date, the floating-loop test prototype has successfully removed 2 kW of heat load in a 9 kW automobile passenger AC system with and without the automotive AC system running. However, during the cyclic operation of the floating refrigerant loop, some two-phase transient behavior is evident. In order to maintain stable running conditions, specific operating controls were implemented. Also thermodynamic energy balances were conducted to further analyze the operating conditions
用于高热流密度电子设备的浮动制冷剂回路的操作控制和动力学
橡树岭国家实验室(ORNL)电力电子和电机研究中心(PEEMRC)一直在开发解决与混合动力汽车相关的热问题的技术。这项工作是美国能源部正在进行的自由汽车和车辆技术(FCVT)项目的一部分。消除牵引电机及其相关电力电子设备中电气损耗产生的热量对于电机和电力电子设备的可靠运行至关重要。作为一个更大的热管理项目的一部分,包括缩小逆变器的尺寸和电子设备的直接冷却,ORNL已经开发了美国专利号6,772,603 B2,车辆系统和部件的热管理方法和设备(Hsu等人,2004),以及正在申请专利的使用热液体制冷剂冷却集成电机和逆变器的浮动回路系统(Hsu等人,2004)。浮环系统为混合动力驱动部件的冷却提供了较大的性能系数。这个循环使用R-134a作为冷却剂,并共享车辆现有的空调(AC)冷凝器,将废热散发到周围的空气中。由于冷却电力电子设备和电机的温度要求不像客舱空气的温度要求那么低,因此该相邻回路可以在现有交流系统的高压侧运行。这种布置还允许浮动回路在没有压缩机的情况下运行,只需要一个小泵来移动液态制冷剂。为了使设计可行,回路必须不会对现有系统产生不利影响。理想情况下,该回路还应提供高COP、平坦的温度曲线和低压降。到目前为止,浮动回路测试原型已经成功地在一个9千瓦的汽车乘客交流系统中消除了2千瓦的热负荷,无论是否有汽车交流系统运行。然而,在浮动制冷剂回路的循环运行过程中,一些两相瞬态行为是明显的。为了保持稳定的运行条件,实施了特定的操作控制。并进行了热力学能量衡算,进一步分析了运行工况
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