Effect of generator temperature on steam ejector performance in renewable refrigeration cycle considering wet steam model and dry steam model

Jian Jiang, Yanping Yin
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Abstract

The rise in global warming has led to an increased utilization of cooling systems. High energy consumption associated with common refrigeration cycles not only contributes to air pollution but also intensifies the consumption of fossil fuels. Consequently, the imperative to conserve energy has become paramount in today's world. One of the methods to decrease energy consumption involves employing systems capable of harnessing waste heat from industries, solar energy, and other sources. The ejector refrigeration cycle (ERC) stands as an example of such systems. In present study, the impact of elevating the generator temperature on various aspects such as flow behavior in the ejector, aerodynamic shocks, entrainment ratio (ER), and entropy production was examined. The investigation encompassed both wet steam model (WSM) and dry steam model (DSM). Based on the findings, it was observed that with an increase in generator temperature, the ER decreases while the production entropy increases. In the WSM, the liquid mass fraction (LMF) also experiences an increase. Additionally, the Mach number distribution in the DSM surpasses that of the WSM and the temperature drop in the DSM is greater compared to the WSM. With the rise in generator temperature from 388 K to 418 K, both the DSM and WSM exhibit a decrease in ER by 52.9% and 58.7%, respectively. Furthermore, the production entropy experiences a substantial increase of 180% and 206% for the DSM and WSM, respectively.
考虑到湿蒸汽模型和干蒸汽模型,发电机温度对可再生制冷循环中蒸汽喷射器性能的影响
全球变暖的加剧导致冷却系统的使用率上升。与普通制冷循环相关的高能耗不仅会造成空气污染,还会加剧化石燃料的消耗。因此,节约能源已成为当今世界的当务之急。减少能源消耗的方法之一是采用能够利用工业废热、太阳能和其他能源的系统。喷射制冷循环(ERC)就是此类系统的一个例子。在本研究中,我们研究了提高发电机温度对喷射器中的流动行为、空气动力冲击、夹带率(ER)和熵产生等各方面的影响。研究包括湿蒸汽模型(WSM)和干蒸汽模型(DSM)。研究结果表明,随着发电机温度的升高,ER 会降低,而产生的熵会增加。在 WSM 中,液体质量分数 (LMF) 也会增加。此外,DSM 中的马赫数分布超过了 WSM,而且与 WSM 相比,DSM 中的温降更大。随着发生器温度从 388 K 升至 418 K,DSM 和 WSM 的 ER 分别下降了 52.9% 和 58.7%。此外,DSM 和 WSM 的生产熵分别大幅增加了 180% 和 206%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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