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Attainability of the Carnot efficiency with real gases in the regenerator of the refrigeration cycle

机译:在制冷循环蓄热器中使用真实气体达到卡诺效率

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摘要

Improving efficiency is an enduring effort for all work-heat conversion cycles. Ideal regenerators working with ideal gases bring about a lossless work and heat transfer over a temperature gradient, but real gases give rise to an "intrinsic" heat loss in regenerators because of the time-averaged enthalpy flow associated with the pressure dependence. Real gas effects play a vital role on the coefficient of performance (COP) of regenerators of refrigeration cycles working at the temperatures close to or below the critical point. The "intrinsic" heat loss of real gases degrades the theoretical COP of regenerators to as low as 1% of the Carnot efficiency. In this paper, an approach of heat input or removal aiming to improve the COP is proposed. The theoretical analysis of this approach reveals the underlying mechanism. It is shown that the theoretical COP of an ideal regenerator working with a real gas applying this approach is identical to the Carnot efficiency. A simplified approach of heat input is further analyzed. The Carnot efficiency can be attained under certain circumstances, and it is possible to obtain over 90% of the Carnot efficiency with a discrete method. The theory of improving the COP with the approach of heat input in discrete regenerator locations is supported by the experiment results found in the relevant literature. This new approach provides a potential way to significantly improve the efficiency of the regenerator of the refrigeration cycle working at the temperatures close to or below the critical point. This approach may further provide a reference for studies of the heat pump cycle and the engine cycle working with real gases.
机译:提高效率是所有工作-热转换周期的不懈努力。使用理想气体的理想蓄热器在温度梯度上实现无损功和热传递,但是由于与压力相关的时间平均焓流,真实气体在蓄热器中引起“本征”热损失。实际气体效应对在接近或低于临界点的温度下工作的制冷循环再生器的性能系数(COP)至关重要。实际气体的“固有”热损失将再生器的理论COP降至卡诺效率的1%。在本文中,提出了一种旨在提高COP的热量输入或去除方法。这种方法的理论分析揭示了潜在的机制。结果表明,采用这种方法的理想再生器与实际气体一起工作的理论COP与卡诺效率相同。进一步分析了热量输入的简化方法。在某些情况下可以达到卡诺效率,并且可以通过离散方法获得超过90%的卡诺效率。在相关文献中发现的实验结果支持了通过在分立的蓄热室中输入热量来改善COP的理论。这种新方法提供了一种潜在的方法,可以显着提高在接近或低于临界点的温度下工作的制冷循环再生器的效率。该方法可以进一步为研究热泵循环和发动机循环与实际气体一起使用提供参考。

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