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System parameter identification theory and uncertainty analysis methods for multi-zone building heat transfer and infiltration

机译:多区域建筑物传热与渗透的系统参数辨识理论与不确定性分析方法

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摘要

Methods for on-site measurement of building thermal performance system parameters such as coefficient of heat loss, solar heat gain, effective thermal capacity, infiltration rate, and effective mixing volume are very important, yet a nontrivial task. Although these are steady-state parameters, on-site measurements are exposed to changing meteorological conditions and are affected by the thermal capacity of the building. In addition, these parameters should generally be estimated by using a multi-zone model such as inter-zone flow rates. In this regard, a state space equation model, referred to as a "thermal network model," has been devised to generalize such multi-zone heat transfer system and tracer gas diffusion system measurements. This model is composed of three parameter types, and we have developed a system parameter identification theory and uncertainty analysis method using least squares, as well as actual measurement systems. In the present paper, we improve the least-squares regression equation, the uncertainty analysis method, and the reliability evaluation method. We investigate appropriate excitation waveforms and frequencies for heating and tracer gas release, as well as a low-pass filter for pre-processing measurement data. We verify these theories and methods using computer-simulated measurement.
机译:现场测量建筑热性能系统参数(如热损失系数,太阳热能获取,有效热容量,渗透率和有效混合量)的方法非常重要,但并非易事。尽管这些是稳态参数,但现场测量会暴露于不断变化的气象条件中,并受建筑物的热容量影响。此外,通常应使用多区域模型(例如区域间流速)来估计这些参数。在这方面,已经设计了状态空间方程模型,称为“热网络模型”,以概括这种多区域传热系统和示踪气体扩散系统的测量结果。该模型由三种参数类型组成,我们已经开发了使用最小二乘法的系统参数识别理论和不确定性分析方法,以及实际的测量系统。在本文中,我们改进了最小二乘回归方程,不确定性分析方法和可靠性评估方法。我们研究了用于加热和释放示踪气体的合适的激励波形和频率,以及用于预处理测量数据的低通滤波器。我们使用计算机模拟的测量来验证这些理论和方法。

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