首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Performance of a multi-bed adsorption heat pump using SWS-1L composite adsorbent and water as the working pair
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Performance of a multi-bed adsorption heat pump using SWS-1L composite adsorbent and water as the working pair

机译:使用SWS-1L复合吸附剂和水作为工作对的多床吸附热泵的性能

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摘要

An analysis of the coefficient of performance (COP), specific cooling power (Q{sub}(scp)) and exergy losses for a four-bed adsorption heat pump is presented. A composite adsorbent (SWS-1L) and water are the adsorption pair. An optimum cycle time, corresponding to a maximum specific cooling power, was found. This maximum specific cooling power increases almost linearly with the regeneration temperature. For the operation corresponding to the maximum specific cooling power at the regeneration temperature of 120℃, using the SWS-1L composite adsorbent to substitute a regular-density silica gel in the adsorbers, the COP and Q{sub}(sCp) values can be increased by 51% and 38.4%, respectively. At the regeneration temperature of 100℃ and the mode operating time of 360 s, the second-law efficiency of the adsorption heat pump is 20.4%. The cycle exergy loss mainly occurs in the adsorbers. The exergy losses in the condenser and evaporator are small. Among the four processes in the adsorbers, the precooling and preheating processes result in 41.55% and 28.96% of the cycle exergy loss, respectively, while the adsorption and regeneration processes cause 8.44% and 18.97%, respectively. The exergy losses in the precooling and preheating processes mainly result from heat transfer through a significant temperature difference.
机译:提出了四床吸附式热泵的性能系数(COP),比冷却功率(Q {sub}(scp))和(火用)损耗的分析。复合吸附剂(SWS-1L)和水是吸附对。找到了对应于最大比冷却功率的最佳循环时间。该最大比冷却功率几乎随再生温度线性增加。对于与再生温度为120℃时的最大比冷却功率相对应的操作,使用SWS-1L复合吸附剂代替吸附剂中的常规密度硅胶,COP和Q {sub}(sCp)值可以为分别增长了51%和38.4%。在再生温度为100℃且模式运行时间为360 s时,吸附热泵的二次律效率为20.4%。循环本能损失主要发生在吸附器中。冷凝器和蒸发器的火用损失很小。在吸附器的四个过程中,预冷却和预热过程分别导致循环本能损失的41.55%和28.96%,而吸附和再生过程分别导致循环的本能损失为8.44%和18.97%。预冷和预热过程中的(火用)损失主要是由于明显的温差引起的热传递。

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