TRNSYS 模拟双功能太阳能-热能-储能辅助热泵系统

Energies Pub Date : 2024-07-10 DOI:10.3390/en17143376
Mingzhen Wang, Eric Hu, Lei Chen
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引用次数: 0

摘要

建筑物的能源需求不断增加,尤其是热泵的供热和制冷需求,对能源资源的压力越来越大。我们提出了双功能热二极管水箱(BTDT)作为热能储存器,以改善热泵在夏季和冬季的供热和制冷性能。BTDT 是一个带有重力热管(GHP)的隔热水箱,白天可以从太阳辐射和外部环境中被动地收集和储存热量。在夏季,它可以在白天从空气和夜空中收集和储存冷能。通过进行 TRNSYS 模拟,对澳大利亚阿德莱德的 BTDT 辅助热泵(BTDT-HP)系统在 2021-2022 年夏季和冬季的性能进行了评估。研究结果表明,BTDT-HP 系统的性能优于 ASHP 参考系统,可节约 8% 的供热能耗和 39.75% 的制冷能耗。总体能耗降低了 18.89%。增加 BTDT 容积和 GHP 面板面积可使水箱在冬季和夏季储存更多的热能和冷能,从而提高系统的性能。在最佳条件下,研究案例中加热和冷却的最大静电除尘器分别为 31.6% 和 41.2%。当 GHP 面板面积固定为 15 平方米时,BTDT-HP 系统的 BTDT 容积至少应为 28 立方米,制冷和制热能力分别为 40 千瓦和 43.2 千瓦,以实现正节能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
TRNSYS Simulation of a Bi-Functional Solar-Thermal-Energy-Storage-Assisted Heat Pump System
The escalating energy demands in buildings, particularly for heating and cooling demands met by heat pumps, have placed a growing stress on energy resources. The bi-functional thermal diode tank (BTDT) is proposed as thermal energy storage to improve the heating and cooling performances of heat pumps in both summer and winter. The BTDT is an insulated water tank with a gravity heat pipe (GHP), which can harvest and store heat passively from sun radiation and the external environment during the daytime. In summer, it harvests and stores cold energy from the air and night sky during the daytime. The performance of the BTDT-assisted heat pump (BTDT-HP) system in Adelaide, Australia, during the 2021–2022 summer and winter seasons was evaluated by conducting a TRNSYS simulation. This study revealed that the BTDT-HP system outperformed the reference ASHP system, where up to 8% energy in heating and 39.75% energy in cooling could be saved. An overall reduction in the energy consumption of 18.89% was achieved. Increasing the BTDT volume and GHP panel area enabled the tank to store more thermal and cold energy across the winter and summer seasons, thereby improving the system’s performance. The maximum ESPs were found to be 31.6% and 41.2% for heating and cooling for the study case under optimal conditions. When the GHP panel area was fixed at 15 m2, the BTDT volume should be at least 28 m3 for the BTDT-HP system, boasting cooling and heating capacities of 40 kW and 43.2 kW, to achieve positive energy savings.
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