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Data-based mechanistic modelling of indoor temperature distributions based on energy input

机译:基于数据的基于数据的机械建模基于能量输入的室内温度分布

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Energy used for building heating, ventilating and air conditioning contributes to a great share in the total energy consumption worldwide. Better understanding and management of energy distribution in those processes is essential for the improvement of process quality and efficiency of energy use. This paper presents a data-based mechanistic modelling approach to model the dynamic indoor temperature distribution in an imperfectly mixed ventilated airspace based on energy input to the system. The combination of classical heat balance differential equations and the data-based modelling techniques for continuous-time system has brought a robust dynamic model suitable for model-based controlling and yet providing a profound insight the energy and temperature distribution in ventilated systems. The effect of changing heat input on the temperature distribution inside a ventilated structure was studied. Dynamic response of indoor temperature to varying energy input could be explained by a second order transfer function model with a high coefficient of determination (R~2 > 0.99), a low Young Identification Criterion (YIC < -2.3) and a low model standard error (SE < 0.028 °C). The physically meaningful model parameters as local heat load fraction y and local temperature change rate coefficient by heat load h (°C/J) were revealed. This modelling approach is very useful for future design of model-based predictive controller for zonal control of indoor temperature by the direct adjustment of heat load into ventilated structures. This approach will allow to energy in climate control.
机译:用于建筑加热,通风和空调的能源有助于全球总能耗的大量份额。在这些过程中更好地理解和管理能源分配对于提高流程质量和能源使用效率至关重要。本文介绍了一种基于数据的机制建模方法,可以基于对系统的能量输入的不完全混合通气空间中的动态室内温度分布模拟动态室内温度分布。经典热平衡差分方程的组合和连续时间系统的数据建模技术已经为基于模型的控制的强大动态模型带来了一种强大的动态模型,并且在通风系统中提供了深刻的洞察力和温度分布。研究了改变热输入对通风结构内温度分布的影响。可以通过具有高判定系数(R〜2> 0.99)的二阶传递函数模型来解释室内温度与变化能量输入的动态响应,低年轻识别标准(yic <-2.3)和低模型标准误差(SE <0.028℃)。揭示了物理上有意义的模型参数作为局部热载量y和局部温度变化率系数通过加热负荷H(°C / j)。这种建模方法对于未来的基于模型的预测控制器的设计非常有用,用于通过直接调节热载体进入通风结构的室内温度的区域温度控制。这种方法将允许气候控制中的能量。

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