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Thermodynamic analysis of a novel dual-temperature air-source heat pump combined ejector with zeotropic mixture R1270/R600a

机译:一种新型双温气源热泵组合喷射器的热力学分析R1270 / R600A

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摘要

This study presents a novel dual-temperature air-source heat pump system with an ejector using zeotropic mixture R1270/R600a. The system provides a high-temperature heat source (around 60 degrees C hot water) and low-temperature heat source (around 35 degrees C hot water) respectively. The system improves its performance via the application of an ejector. The mathematical model based on the energetic method is established to analyze and compare the performance between the novel dual-temperature air-source heat pump system (DTHP-II and DTHP-III) and the conventional dual-temperature air-source heat pump system (DTHP-I), including the heating coefficient of performance (COPh), the heating capacity per volumes (q(v)) and the second law efficiency (eta II). The results show that the DTHP-II and DTHP-III systems significantly outperform the DTHP-I system under various operation conditions due to the application of ejector. Compared with the DTHP-I, the COPh, q(v) and eta=(2* ROMANII) of DTHP-II are improved by 20.2%, 19.5% and 18.2%. Again, compared with the DTHP-II, the COPh, q(v) and eta II of DTHP-III are improved by 36.5%, 37.2% and 38.5% respectively. The heat source temperature affects heat pump system performance significantly. And the DTHP-II and DTHP-III save more energy under the demand for a higher temperature source. Mass fraction of R600a in the zeotropic mixture (z) and the high low-temperature heat source load ratio (LR) show a noticeable effect on the system performance, which should be given attention when designing the DTHP system.
机译:本研究介绍了一种新型双温空气源热泵系统,具有使用鸟升混合物R1270 / R600A的喷射器。该系统分别提供高温热源(约60℃热水)和低温热源(约35摄氏度)。该系统通过应用弹出器来提高其性能。建立了基于能量方法的数学模型分析和比较新型双温空气源热泵系统(DTHP-II和DTHP-III)与传统双温空气源热泵系统之间的性能( DTHP-I),包括性能加热系数(COPH),每体积的加热容量(Q(v))和第二法效率(ETA II)。结果表明,由于喷射器的应用,DTHP-II和DTHP-III系统在各种操作条件下显着优于DTHP-I系统。与DTHP-I相比,DTHP-II的COPH,Q(V)和ETA =(2 * Romanii)得到20.2%,19.5%和18.2%。同样,与DTHP-II的DTHP-II相比,DTHP-III的COPH,Q(V)和ETA II分别得到36.5%,37.2%和38.5%。热源温度显着影响热泵系统性能。和DTHP-II和DTHP-III在对更高温度源的需求下节省更多能量。鸟升混合物(Z)中R600A的质量分数和高低温热源负荷比(LR)对系统性能的显着效果,在设计DTHP系统时应给予关注。

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