Energy cost minimization in plant factories considering weather factors using additive Bayesian networks

Saya Murakami, Y. Fujimoto, Y. Hayashi, Hideki Fuchikami, T. Hattori
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引用次数: 5

Abstract

ABSTRACTIn recent years, plant factories have been drawing attention for their capability to solve global food crisis. However, the energy cost of plant factories is high due to the power consumption of air conditioning and cultivation systems necessary for realizing semi-automatic production. As this high cost hinders their propagation,, plant factories must minimize the energy cost of growing plants. We propose an operation planning method of cultivation systems for minimizing energy cost minimization while producing plants with the same amount and quality. The effect of electricity charge and weather factors on electric power consumption under various real-world constraints are used to decide the appropriate operation plan of cultivation systems. Simulation results show that the operation plan of cultivation systems properly reflects the effect of electricity charge and weather factors on electric power consumption to reduce energy cost.
考虑天气因素的植物工厂能源成本最小化的加性贝叶斯网络
近年来,植物工厂因其解决全球粮食危机的能力而备受关注。然而,由于实现半自动化生产所需的空调和栽培系统的功耗,植物工厂的能源成本很高。由于这种高成本阻碍了它们的繁殖,植物工厂必须尽量减少种植植物的能源成本。我们提出了一种种植系统的操作规划方法,以最大限度地降低能源成本,同时生产出相同数量和质量的植物。在各种现实约束条件下,利用电荷和天气因素对电力消耗的影响来确定适宜的耕作系统运行计划。仿真结果表明,栽培系统运行方案较好地反映了电费和天气因素对电力消耗的影响,降低了能源成本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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