Integrated heating and cooling system with borehole thermal energy storage for a greenhouse in Romania

被引:0
|
作者
Braekken, August [1 ]
Sannan, Sigurd [1 ]
Jerca, Ionut Ovidiu [2 ]
Badulescu, Liliana Aurelia [2 ]
机构
[1] SINTEF Energy Res, Postboks 4761 Torgarden, NO-7465 Trondheim, Norway
[2] Univ Agron Sci & Vet Med Bucharest, 59 Marasti Blvd,Dist 1, Bucharest 011464, Romania
关键词
Greenhouse; Energy efficiency; Heat pump; Borehole thermal energy storage; Building simulation; SOLAR COLLECTOR; PERFORMANCE; PUMP; DESIGN;
D O I
10.1016/j.tsep.2024.102910
中图分类号
O414.1 [热力学];
学科分类号
摘要
The IDA Indoor Climate and Energy (IDA ICE) simulation tool is used to model a research greenhouse in Bucharest, Romania, equipped with a recently implemented energy system that includes an integrated heat pump system, Air Handling Units (AHUs), a dry cooler, and boreholes for thermal energy storage. The integrated heat pump system is designed to provide year-round heating and cooling of the greenhouse. The performance of the system is assessed through simulations conducted for one week in summer (July 2023) and one week in winter (December 2023), using recorded weather data for each respective period. Results from the IDA ICE model are compared with values derived from onsite sensor measurements. During the summer week, the model generally aligns with measured air temperatures in the greenhouse compartment. The total cooling simulated in the model is 26.5 kWh/m(2), compared to 27.2 kWh/m(2) calculated from onsite measurements. Hourly discrepancies were observed, potentially due to the heat pump system operating at reduced capacity during this summer. In the winter week, the measured and simulated temperatures fall within a comparable range. The calculated and simulated cumulative heating show excellent agreement, both at 15.1 kWh/m(2).
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页数:13
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