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A state-space thermal model incorporating humidity and thermal comfort for model predictive control in buildings

机译:结合湿度和热舒适性的状态空间热模型,用于建筑物的模型预测控制

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A major challenge in applying Model Predictive Control (MPC) to building automation and control (BAC) is the development of a simplified mathematical model of the building for real-time control with fast response times. However, building models are highly complex due to nonlinearities in heat and mass transfer processes of the building itself and the accompanying air-conditioning and mechanical ventilation systems. This paper proposes a method to develop an integrated state-space model (SSM) for indoor air temperature, radiant temperature, humidity and Predicted Mean Vote (PMV) index suitable for fast real-time multiple objectives optimization. Using the model, a multi-objective MPC controller is developed and its performance is evaluated through a case study on the BCA Skylab test bed facility in Singapore. The runtime of the MPC controller is less than 0.1 s per optimization, which is suitable for real-time BAC applications. Compared to the conventional ON/OFF control, the MPC controller can achieve up to 19.4% energy savings while keeping the PMV index within the acceptable comfort range. When the MPC controller is adjusted to be thermal-comfort-dominant that achieves a neutral PMV index at most office hours, the system can still bring about 6% in energy savings as compared to the conventional ON/OFF control. (C) 2018 Elsevier B.V. All rights reserved.
机译:将模型预测控制(MPC)应用于建筑物自动化和控制(BAC)的主要挑战是开发一种简化的建筑物数学模型,以实现具有快速响应时间的实时控制。但是,由于建筑物本身以及随附的空调和机械通风系统在传热和传质过程中存在非线性,因此建筑模型非常复杂。本文提出了一种开发室内状态温度,辐射温度,湿度和预测平均投票(PMV)指标的集成状态空间模型(SSM)的方法,该模型适用于快速实时多目标优化。使用该模型,开发了多目标MPC控制器,并通过在新加坡BCA Skylab测试台设施上进行的案例研究来评估其性能。每次优化时,MPC控制器的运行时间少于0.1 s,适用于实时BAC应用。与传统的开/关控制相比,MPC控制器可实现高达19.4%的节能,同时将PMV指数保持在可接受的舒适度范围内。当将MPC控制器调整为以热舒适性为主,在大多数办公时间达到中性PMV指标时,与传统的ON / OFF控制相比,该系统仍可节省6%的能源。 (C)2018 Elsevier B.V.保留所有权利。

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