SOIL TEMPERATURE CONTROL FOR GROWING OF HIGH-VALUE TEMPERATE CROPS ON TROPICAL LOWLAND

R. Olabomi, Bakar Jaafar, Md. Nor Musa, S. Sarip
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Abstract

Low soil temperature (14℃–20℃) favours growing of high-value temperate crops that are known to have higher return per hectare of land than other widely cultivated crops, thereby presenting increased income to farmer. However, due to high soil cooling load, growing these crops on tropical lowland area is a challenge except through greenhouse farming or on few cool higher altitudes with resemblance of temperate climate. Greenhouse farming involves cooling the entire volume of planting zone and is energy intensive, while few cool highlands are not sufficient to achieve food security in this direction. This study aims at application of chilled water for direct cooling of soil, to create favorable soil conditions for optimal performance of planted temperate crops. However, soil cooling using vapour compression refrigeration system may not be economically viable. Solar thermal chilled water production system is presented in this study to supply the cooling. The system consists of absorption refrigeration system and dimensioned size of soil bed with chilled water pipe network. The study includes modeling of soil cooling load to determine the refrigeration power required to overcome such load. The modeled system matched well with the experiment; having standard deviation of 1.75 and percentage error of 12.24%. Parametric analysis of the soil cooling showed that temperatures of cooled soil were significantly affected by chilled water flow rates. The regression equation developed from the Analysis of Variance (ANOVA) is suitable for predicting cooled soil temperature. The cooling process is technically feasible, with potential for greenhouse gas emission reduction.
热带低地温带高价值作物种植的土壤温度控制
低土壤温度(14℃–20℃)有利于种植高价值的温带作物,众所周知,这些作物每公顷土地的回报率高于其他广泛种植的作物,从而增加了农民的收入。然而,由于土壤冷负荷高,在热带低地地区种植这些作物是一项挑战,除非是通过温室农业或在少数类似温带气候的凉爽高海拔地区种植。温室农业需要冷却整个种植区,而且是能源密集型的,而很少有凉爽的高地不足以实现这一方向的粮食安全。本研究旨在应用冷冻水直接冷却土壤,为种植温带作物的最佳性能创造有利的土壤条件。然而,使用蒸汽压缩制冷系统进行土壤冷却在经济上可能不可行。本研究采用太阳能热水生产系统来提供冷却。该系统由吸收式制冷系统和带冷冻水管网的土壤床尺寸组成。该研究包括对土壤冷却负荷进行建模,以确定克服这种负荷所需的制冷功率。所建立的系统与实验吻合良好;标准偏差为1.75,百分误差为12.24%。土壤冷却参数分析表明,冷却水流量对土壤温度有显著影响。由方差分析(ANOVA)建立的回归方程适用于预测土壤降温温度。冷却过程在技术上是可行的,具有减少温室气体排放的潜力。
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