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Heat transfer losses in reciprocating compressors with valve actuation for energy storage applications

机译:储能应用中带阀门驱动的往复式压缩机的传热损失

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Understanding the exergy losses stemming from heat transfer in compressors and expanders is important for many energy storage applications such as compressed air and pumped thermal storage. In order to obtain a better understanding of these losses, CFD simulations were performed for simple gas springs, for a gas spring with an internal grid to mimic valve flow, and for a reciprocating compressor with functioning inlet and outlet valves. The wall heat exchanges for these three cases were examined and compared. The model adopted has previously been validated for a simple gas spring using experimental data from literature. For the gas spring with an internal grid it was found that increased mixing leads to higher heat-transfer-induced hysteresis losses and (at high piston speeds) to a significant pressure loss. These two types of loss can be distinguished by undertaking adiabatic-wall calculations. For a compressor (i.e., with valve flows) heat transfer over the cycle depends very much on valve timing. For example, at 1500 rpm, when the delivery valve is opened at 7 bar the heat transfer coefficient for the initial stages of compression is similar to that for a simple gas spring, whereas for the same speed at 6 bar it is more than doubled.
机译:理解由于压缩机和膨胀机中的热传递而产生的火用损失对于许多储能应用(例如压缩空气和抽水式储热)非常重要。为了更好地理解这些损失,对简单的气体弹簧,具有内部栅格以模拟阀流的气体弹簧以及具有入口和出口阀功能的往复式压缩机进行了CFD仿真。检查并比较了这三种情况下的壁热交换。先前已使用文献中的实验数据对采用的模型进行了简单气体弹簧的验证。对于带有内部格栅的气弹簧,发现增加的混合会导致更高的热传递引起的滞后损失,并且(在高活塞速度下)会导致显着的压力损失。可以通过进行绝热壁计算来区分这两种类型的损耗。对于压缩机(即具有阀流的压缩机),整个循环中的热传递在很大程度上取决于阀的正时。例如,在1500 rpm下,当输送阀以7 bar的压力打开时,压缩初始阶段的传热系数与简单气体弹簧的传热系数相似,而在6 bar的相同速度下的传热系数则增加了一倍以上。

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