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Charge management for large transient loads in a multi-evaporator vapor compression system with recuperator

机译:带换热器的多蒸发器蒸汽压缩系统中大瞬态负载的电荷管理

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Two-phase cooling of electronics using vapor compression systems (VCS) is a promising approach for high heat flux removal. A challenge for multi-evaporator VCS is charge management during highly transient or peak/off-peak loads. We present a VCS architecture for direct cooling of multiple, high transient heat loads. This system utilizes a secondary-evaporator (recuperator) with an electronic bypass valve and a suction-line accumulator to enable evaporator overfeed and active charge management. An existing lumped-parameter, low-order nonlinear model is augmented to include the recuperator and bypass control valve. The cycle performance and efficiency is improved with the inclusion of the recuperator, but is susceptible to instability. A proportional-integral (PI) bypass valve control is tuned for evaporator pressure tracking, stabilizing the cycle. The improved circulating charge-management capability of the VCS with recuperator is demonstrated with multi-evaporator experiments, and the improvement in coefficient of performance (COP) over the accumulator-heated cycle is calculated.
机译:使用蒸气压缩系统(VCS)的电子设备的两相冷却是去除高热通量的一种有前途的方法。对于多蒸发器VCS来说,一项挑战是在高瞬态或峰值/非峰值负载期间进行电荷管理。我们提出了一种VCS体系结构,用于直接冷却多个高瞬态热负荷。该系统利用带有电子旁通阀和吸入管路蓄能器的辅助蒸发器(再蓄能器)来实现蒸发器的过量供料和主动电荷管理。现有的集总参数低阶非线性模型得到了增强,以包括同流换热器和旁通控制阀。包含同流换热器可提高循环性能和效率,但容易造成不稳定。调节比例积分(PI)旁通阀控制以跟踪蒸发器压力,从而稳定循环。通过多蒸发器实验证明了带换热器的VCS循环电荷管理能力的提高,并计算了在蓄热器加热循环中性能系数(COP)的提高。

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