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An optimal control strategy with enhanced robustness for air-conditioning systems considering model and measurement uncertainties

机译:考虑模型和测量不确定性的具有增强鲁棒性的空调系统最优控制策略

摘要

Model-based optimal controls in HVAC systems involve uncertainties due to model uncertainties and measurement uncertainties. These uncertainties affect the accuracy and reliability of the outputs of optimal control strategies, and therefore affect the energy and environmental performance of buildings. This study proposes a method to enhance the robustness of optimal control strategies. A fuzzy approach is adopted to predict the errors in models outputs. Such predicted errors are then used to correct the model outputs. The method is validated in an optimal control strategy for HVAC cooling water systems. The operation data of a real building system is used to validate the error prediction method. A simulation platform is built to validate the enhanced strategy. Measurement uncertainties are deliberately added to the simulated system for validation tests. Test results indicate that the method is effective in predicting the errors in model outputs. Significant energy savings are achieved compared with the conventional optimal control method.
机译:由于模型不确定性和测量不确定性,HVAC系统中基于模型的最佳控制涉及不确定性。这些不确定性影响最佳控制策略的输出的准确性和可靠性,因此影响建筑物的能源和环境绩效。这项研究提出了一种方法,以增强最优控制策略的鲁棒性。采用模糊方法来预测模型输出中的误差。然后将这种预测的误差用于校正模型输出。该方法已在HVAC冷却水系统的最佳控制策略中得到验证。实际建筑系统的运行数据用于验证误差预测方法。建立了一个仿真平台来验证增强策略。故意将测量不确定度添加到模拟系统中以进行验证测试。测试结果表明,该方法可有效预测模型输出中的误差。与传统的最佳控制方法相比,可节省大量能源。

著录项

  • 作者

    Zhu N; Shan K; Wang S; Sun Y;

  • 作者单位
  • 年度 2013
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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