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Optimization of indoor air temperature set-point for centralized air-conditioned spaces in subtropical climates

机译:亚热带气候下中央空调空间室内温度设定点的优化

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Current Building Management System (BMS) does not integrate well with real-time occupant response. In order to fine-tune the system to meet individual demands and to maximize the occupant acceptance of indoor thermal environment, a new notion of Bayesian control algorithm was developed in this study. Control parameters of a weighting function for air temperature control (namely, the control temperature constant k_T and the probable acceptance of the air temperature set-point λ) and two prior distribution functions of air temperature set-point, namely the uniform prior and the expert's prior, were examined. Optimum air temperature set-points of air-conditioning systems obtained from certain Hong Kong offices were then used to demonstrate the applicability of the new algorithm for controlling an example air temperature set-point ranged between 0.2 ℃ and 1 ℃. This algorithm would be useful for adaptive thermal comfort control in a large, post-occupied air-conditioned space.
机译:当前的建筑物管理系统(BMS)与实时的乘员响应不能很好地集成。为了对系统进行微调以满足个性化需求并最大程度地提高室内热环境对乘员的接受程度,本研究提出了一种新的贝叶斯控制算法概念。空气温度控制权重函数的控制参数(即控制温度常数k_T和可能接受的空气温度设定点λ)和空气温度设定点的两个先验分布函数,即均匀先验和专家事先,进行了检查。然后,从香港某些办事处获得的空调系统的最佳空气温度设定点用于证明新算法可用于控制示例空气温度设定点在0.2℃至1℃之间的适用性。该算法对于在大型的后占用空调空间中进行自适应热舒适度控制很有用。

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