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Multi-dimensional transient temperature simulation and back-calculation for thermal properties of building materials

机译:建筑材料热特性的多维瞬态温度模拟和反计算

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Thermal properties (i.e. thermal conductivity and heat capacity) are important parameters that influence the temperature of building materials and thermal performance of built environment. These properties are required as fundamental inputs for modeling and simulating thermal behavior of built environment. Most existing methods for measuring thermal properties of building materials are based on 1-D steady-state heat transfer theory. The critical challenge for these methods has been the difficulty in achieving a 1-D heat flow condition for the testing specimen. A multi-dimensional transient method is needed to reduce the challenge and requirement on the testing specimen size and shape, and make it possible to accurately measure all the thermal properties from one single test. This paper first developed a multi-dimensional transient model and a practical tool to simulate the transient temperature at any location on a beam or cylinder specimen of any size subject to convection heat transfer. Case studies verified that this model can be used to, if the thermal properties are known, simulate the transient temperature at any location for a specimen of various shapes and sizes, and predict the time to reach a specified target temperature for mechanical and other testing. Secondly, this paper developed and validated partly by case studies on both asphalt and concrete materials a procedure for back-calculating the thermal properties of a specimen of various shapes and sizes. Thermal properties of novel building materials (various initiative cool materials such as porous concrete and high thermal resistance materials) can be easily measured with that procedure.
机译:热性能(即热导率和热容量)是影响建筑材料的温度和建筑环境的热性能的重要参数。这些特性是建模和模拟建​​筑环境热行为所需的基本输入。现有的大多数测量建筑材料热性能的方法都是基于一维稳态传热理论。这些方法的关键挑战是难以实现测试样品的一维热流条件。需要一种多维瞬态方法来减少对测试样本尺寸和形状的挑战和要求,并使通过一次测试准确测量所有热性能成为可能。本文首先开发了多维瞬态模型和实用工具,以模拟受对流传热影响的任何尺寸的梁或圆柱试样上任何位置的瞬态温度。案例研究证明,如果已知热特性,则该模型可用于模拟各种形状和大小的样本在任何位置的瞬态温度,并预测达到指定目标温度的时间,以进行机械和其他测试。其次,本文通过对沥青和混凝土材料的案例研究,部分开发和验证了一种用于反计算各种形状和尺寸的试样的热性能的程序。新型建筑材料(各种主动降温材料,例如多孔混凝土和高耐热性材料)的热性能可通过该程序轻松测量。

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