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Energy optimization using metaheuristic bat algorithm assisted controller tuning for industrial and residential applications

机译:能源优化采用型材蝙蝠算法辅助控制器调整工业和住宅应用

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摘要

The advent of model based control provides optimization and constrained control capabilities that can be tailored to specific goals. Metaheuristic algorithms are being researched in various fields owing to their efficiency in providing global optimization. In this paper, both model regression and energy efficiency based controller tuning are attempted using the chaotic bat algorithm (CBA). Two sets of plant data, one from an industrial precalciner temperature loop (PTL) and another from a domestic heating ventilation and air conditioning system (HVAC) are considered. Explicit model predictive control is designed. Minimizing the energy consumption (HVAC) and coal feed rate (PTL) by tuning the controllers is attempted. Results indicate that CBA can be successfully deployed in both regression and achieving control objectives as observed from the case studies.
机译:基于模型的控制的出现提供了可以对特定目标量身定制的优化和约束控制功能。 由于其提供全球优化的效率,在各种领域正在研究成群质识别算法。 在本文中,尝试使用混沌BAT算法(CBA)尝试模型回归和基于能量效率的控制器调整。 考虑两组植物数据,来自工业预算器温度环(PTL)的植物数据,以及来自家用加热通风和空调系统(HVAC)的另一组。 设计显式模型预测控制。 尝试通过调整控制器最小化能量消耗(HVAC)和煤饲料速率(PTL)。 结果表明,CBA可以在回归和从案例研究中观察到的控制目标中成功部署。

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