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Inverse method using infrared thermography for surface temperature and heat flux measurements

机译:使用红外热成像的逆方法进行表面温度和热通量测量

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Temperature measurements, for the direct identification of the surface heat flux, are not always possible considering an aggressive environment or an inaccessible zone. That is why an inverse method has been developed: the direct problem with the unknown boundary condition (wall heat flux) is solved by adding an observation equation given by temperature measurements on the opposite face of the wall. In order to estimate spatiotemporal variations of the surface heat flux, an inverse non linear three-dimensional unsteady model has been developed. The resolution is based on the minimisation of a function representing the sum of the differences between the observations (measured surface temperatures) and the calculated temperature at the same position. A compression method using DCT is used to filter the temperature measurements and reduce the number of heat flux components to be estimated. First a numerical validation of the inverse model has been conducted: a flat plate submitted to a specified spatiotemporal heat flux evolution. Then two validation experiments have been developed: impact of a moving laser beam on a flat steel plate and flame-wall interaction. The estimation of high resolution unsteady heat flux cartographies have been demonstrated.
机译:考虑到恶劣的环境或无法进入的区域,始终无法进行温度测量以直接识别表面热通量。这就是为什么要开发一种逆方法的原因:边界条件未知(壁热通量)未知的直接问题是通过在壁的相对面上添加由温度测量给出的观测方程来解决的。为了估计表面热通量的时空变化,已经开发了逆非线性三维非稳态模型。分辨率基于最小化函数的表示,该函数表示观测值(测得的表面温度)与计算出的相同位置温度之间的差异之和。使用DCT的压缩方法用于过滤温度测量值并减少要估计的热通量分量。首先,对逆模型进行了数值验证:将平板施加到指定的时空热通量。然后,开发了两个验证实验:移动激光束对平板的影响和火焰-壁相互作用。高分辨率非稳态热通量制图的估计已得到证明。

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