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首页> 外文期刊>IEEE transactions on components, packaging, and manufacturing technology. Part A >Finding unknown surface temperatures and heat fluxes in steady heat conduction
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Finding unknown surface temperatures and heat fluxes in steady heat conduction

机译:在稳定的热传导中发现未知的表面温度和热通量

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We have developed a new direct noniterative methodology for determining unknown temperatures and heat fluxes on surfaces of arbitrarily-shaped solid objects where the thermal boundary conditions cannot be measured or evaluated otherwise. The method belongs to a general class of algorithms for the solution of steady inverse boundary value problems with the objective of determining the unknown boundary conditions. A requirement for this technique to work is that both temperatures and heat fluxes must be available and specified together creating an over-specified problem on at least a part of the object's surface. Our two-dimensional steady-state inverse boundary value problem-boundary element method (IBVP-BEM) algorithm computes the temperature field within the entire object and simultaneously calculates temperatures and heat fluxes on surfaces where thermal boundary values are unavailable. Our code has been tested on several simple geometries where the boundary conditions and the analytic solutions were known everywhere. The algorithm is highly flexible in treating complex geometries, mixed thermal boundary conditions and temperature-dependent material properties. The accuracy and reliability of this technique deteriorate when the known boundary conditions are only slightly over-specified and far from the inaccessible boundaries.
机译:我们已经开发了一种新的直接非迭代方法,用于确定任意形状的固体物体表面上的未知温度和热通量,否则无法测量或评估其热边界条件。该方法属于一般类算法,用于解决稳态逆边值问题,目的是确定未知边界条件。这项技术有效的要求是必须同时提供温度和热通量,并同时指定温度和热通量,从而在对象表面的至少一部分上产生过度指定的问题。我们的二维稳态逆边界值问题边界元方法(IBVP-BEM)算法计算整个对象内的温度场,同时计算无法获得热边界值的表面上的温度和热通量。我们的代码已经在几个简单的几何体上进行了测试,这些几何体的边界条件和解析解在任何地方都是众所周知的。该算法在处理复杂的几何形状,混合的热边界条件和与温度有关的材料特性方面具有很高的灵活性。当已知的边界条件只是稍微被过度指定并且远离不可访问的边界时,该技术的准确性和可靠性就会降低。

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