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首页> 外文期刊>Journal of building performance simulation >Investigation of maximum cooling loss in a piping network using Bayesian Markov Chain Monte Carlo method
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Investigation of maximum cooling loss in a piping network using Bayesian Markov Chain Monte Carlo method

机译:贝叶斯马尔可夫链蒙特卡罗方法研究管道网络中的最大冷却损失

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摘要

Cooling loss during transmission from cooling sources (chillers) to cooling end-users (conditioned zones) is prevalent in HVAC systems. At the HVAC design stage, incomplete understanding of the cooling loss may lead to improper sizing of HVAC systems, which in turn may result in additional energy consumption and economic cost (if oversized) or lead to inadequate thermal comfort (if under-sized). For HVAC system sizing or retrofit, there is a lack of study of uncertainties associated with the maximum cooling loss of HVAC systems although uncertainties in predicting building maximum cooling load have been studied by many researchers. This paper, therefore, proposes a study to investigate the uncertainties associated with the major parameters in predicting the maximum cooling loss in HVAC piping networks using the Bayesian Markov Chain Monte Carlo method. Prior information of those uncertainties combined with available in-situ data, is implemented to produce more informative posterior descriptions of the uncertainties. To facilitate the application, uncertain parameters are categorized into specific and generic types. The posterior information gathered for the specific parameters can be used in retrofit analysis, whereas that acquired for the generic parameters can be referred to in new HVAC system design. Details of the proposed methodology are illustrated by applying it to a real HVAC system.
机译:HVAC系统中普遍存在从冷却源(冷却器)到最终用户(调节区域)的冷却损失。在HVAC设计阶段,对冷却损失的不完全了解可能会导致HVAC系统的尺寸不正确,进而可能导致额外的能耗和经济成本(如果尺寸过大)或导致热舒适性不足(如果尺寸过小)。对于HVAC系统的规模或改造,尽管许多研究人员已经研究了预测建筑物最大冷却负荷的不确定性,但仍缺乏与HVAC系统最大冷却损失相关的不确定性的研究。因此,本文提出了一项研究,以利用贝叶斯马尔可夫链蒙特卡罗方法研究与主要参数相关的不确定性,以预测HVAC管道网络中的最大冷却损失。将那些不确定性的先验信息与可用的现场数据相结合,以产生关于不确定性的更丰富的后验描述。为了方便应用,不确定的参数分为特定类型和通用类型。为特定参数收集的后验信息可用于改造分析,而为通用参数获取的后验信息可在新的HVAC系统设计中引用。通过将其应用于实际的HVAC系统来说明所建议方法的细节。

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