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Root-zone Cooling Evaluation Using Heat Pump for Greenhouse Strawberry Production

机译:用于温室草莓生产热泵的根区冷却评价

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摘要

Ground-source heat pumps (GSHPs) have been used to chill water to facilitate cooling of 'Natsuakari' strawberry (Fragaria x ananassa) grown within containers during the summer. Two types of soil containers and cooling systems have been considered. In one system, cold-water tubes were placed under as well as over the top of the soil, whereas the other cooling system used cold water passing through tubes placed under the soil and within the irrigation channel to facilitate bottom irrigation. The cooling efficiency of each system was evaluated by observing temperature relationships between greenhouse air and soil. The relationship was represented by means of an elliptic curve, the geometric center and tilt angle of which indicated representative daily soil temperatures and degree of temperature stability, respectively. Both values were observed to be lower for the bottom irrigation system during the two plant growth periods considered in this study, thereby indicating that colder and relatively constant soil temperatures can be maintained via greater heat convection. This greater cooling method was facilitated by rapid transfer of cold water through the bottom irrigation channel into the root zone, resulting from reduction in soil moisture content induced by plant transpiration in addition to heat conduction from the soil to the cooling tube. Measured soil temperatures for the buried-tube system were observed to be coldest when the tube was chilled considerably (9.4 degrees C). Although the setup of the considered bottom watering system was rather sensitive in that the system required maintenance of a constant water level throughout the container, both systems effectively produced cooler soil temperatures compared with the case in which no GSHP was used.
机译:地源热泵(GSHPS)已被用来冷却水,以便于夏季在容器中养成的“Natsuakari”草莓(Fragaria x Ananassa)的冷却。已经考虑了两种类型的土壤容器和冷却系统。在一个系统中,冷水管在土壤的顶部置于以及土壤顶部,而另一个冷却系统使用冷水通过置于土壤下方的管,并在灌溉通道内促进底部灌溉。通过观察温室空气和土壤之间的温度关系来评估每个系统的冷却效率。该关系通过椭圆曲线,几何中心和倾斜角表示,其分别表示代表性的每日土壤温度和温度稳定程度。在本研究中考虑的两种植物生长期间,观察到底部灌溉系统的底部灌溉系统的较低值,从而可以通过更大的热对流保持较冷和相对恒定的土壤温度。通过通过底部灌溉通道快速转移到根区中通过快速将冷水传递到根区中的这种更大的冷却方法,从植物蒸腾诱导的土壤水分含量降低,除了从土壤中的热传导到冷却管。观察到埋管系统的测量的土壤温度,当管冰冷时(9.4℃)时,将被测埋管系统最寒冷。虽然所考虑的底部浇水系统的设置相当敏感,因为系统所需的维持整个容器的恒定水位,但两个系统与使用GSHP的情况相比,两种系统都会有效地产生了较冷的土壤温度。

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