Jiangsu Province Key Lab of Aerospace Power System, Chien-Shiung Wu College, Southeast University, Nanjing 210096, China.
Key Lab of Energy Thermal Conversion and Control of Ministry of Education, Southeast University, Nanjing 210096, China.
Int J Environ Res Public Health. 2018 Dec 14;15(12):2865. doi: 10.3390/ijerph15122865.
The recent decades have witnessed refrigeration systems playing an important role in the life of human beings, with wide applications in various fields, including building comfort, food storage, food transportation and the medical special care units. However, if the temperature is not controlled well, it will lead to many harmful public health effects, such as the human being catching colds, food spoilage and harm to the recovering patients. Besides, refrigeration systems consume a significant portion of the whole society's electricity usage, which consequently contributes a considerable amount of carbon emissions into the public environment. In order to protect human health and improve the energy efficiency, an optimal control strategy is designed in this paper with the following steps: (1) identifying the refrigeration system model based on a least squares method; (2) tuning an initial group of parameters of the proportional-integral-derivative (PID) controller via the pidTuner Toolbox of Matlab; (3) using an intelligent algorithm, namely fruit fly optimization (FOA), to further optimize the parameters of the PID controller. By comparing the optimal PID controller and the controller provided in the reference, the simulation results demonstrate that the proposed optimal PID controller can produce a more controllable temperature, with less tacking overshoot, less settling time, and more stable performance under a constant set-point.
近几十年来,制冷系统在人类生活中扮演着重要的角色,广泛应用于建筑舒适、食品储存、食品运输和医疗特殊护理等领域。然而,如果温度控制不好,会导致许多有害的公共卫生影响,如人类感冒、食品变质和对康复患者的伤害。此外,制冷系统消耗了全社会用电量的很大一部分,这对公共环境造成了相当数量的碳排放。为了保护人类健康和提高能源效率,本文设计了一种最优控制策略,其步骤如下:(1)基于最小二乘法确定制冷系统模型;(2)通过 Matlab 的 pidTuner 工具箱调整比例-积分-微分(PID)控制器的初始参数组;(3)使用智能算法,即果蝇优化(FOA),进一步优化 PID 控制器的参数。通过将最优 PID 控制器与参考控制器进行比较,仿真结果表明,所提出的最优 PID 控制器在恒定设定点下,能够产生更可控的温度,具有更小的跟踪超调量、更小的稳定时间和更稳定的性能。