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Analytical solutions of the steady or unsteady heat conduction equation in industrial devices: A comparison with FEM results

机译:工业装置中稳态或非稳态热传导方程的解析解:与有限元结果的比较

摘要

Heat transfer is one of the most salient and fundamental research areas for any engineer, due to its ubiquity. Today the energy efficiency requirements are becoming more and more demanding. This motivates engineers to continuously improve the efficiency of heat transfer processes.udFor such analysis nowadays, the common and the popular practice to infer the temperature field is now commercially available in computer codes. Analytical solutions for the temperature field are also available under the assigned conditions such as Dirichlet, Neumann or Robin, if the thermal conductivity is constant and isotropic. In the cases where conductivity is anisotropic and strongly dependent by temperature or the material is not homogenous, the exact solution of the energy conservation in the body is not possible due to high non linearity in the equations.udDespite the complexity of many engineering structures, the present work is undertaken to demonstrate that the reduction to a simpler version of more complex heat conduction equations is possible and the exact analytical solution is comparable with the approximate finite element solution.udThe topic of the present research study is the resolution of the problems in various engineering fields through the analysis of conduction heat transfer in rigid bodies, transition bodies, steady and transient bodies and the provision of analytical solutions with graphical representation of the results. Namely; in an electrolytic capacitor, a food container and a gas turbine blade. The modelling of them plays an important role because excessive temperatures drastically reduce the lifetime of capacitors, turbine vanes and blades. In the food sterilization it is necessary to know the thermal wave behaviour in order to reduce its associated costs or to guarantee the sterilization time.udThe last part of this study is the evaluation of the numerical simulation results in order to make a comparison with the analytical results and, when possible, with experimental data. For such analysis a finite element method has been utilized by both commercial and free software; namely, ANSYS™ and FreeFem++. Very good agreements are obtained between both of them.
机译:由于热传递无处不在,因此对于任何工程师来说,热传递都是最突出和最基础的研究领域之一。如今,对能效的要求越来越高。这促使工程师不断提高传热过程的效率。 ud对于如今的这种分析,推断温度场的通用和流行做法现在可以通过计算机代码在市场上买到。如果导热系数恒定且各向同性,则在指定的条件下(例如Dirichlet,Neumann或Robin),也可以使用温度场的解析解。在电导率是各向异性的并且受温度强烈影响或材料不均匀的情况下,由于方程中的高度非线性,因此无法精确地解决体内能量守恒的问题。 ud尽管许多工程结构非常复杂,进行本工作以证明可以简化为更复杂的热传导方程的简化版本,并且精确的解析解可以与近似有限元解相比较。 ud本研究的主题是解决问题的方法在各个工程领域中,通过分析刚体,过渡体,稳态和瞬态体中的传导传热,并提供以结果图形表示的分析解决方案。即;在电解电容器,食物容器和燃气轮机叶片中。它们的建模起着重要的作用,因为过高的温度会极大地缩短电容器,涡轮叶片和叶片的使用寿命。在食品灭菌中,必须了解热波行为,以降低其相关成本或保证灭菌时间。 ud本研究的最后一部分是对数值模拟结果进行评估,以便与热模拟进行比较。分析结果,并在可能的情况下提供实验数据。为了进行这种分析,商业软件和免费软件都采用了有限元方法。即ANSYS™和FreeFem ++。他们之间获得了很好的协议。

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    Ilemin Bulut;

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  • 年度 2016
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