具有幂律温度相关辐射率的环形翅片的理论分析:最小化方法

R.A. Oderinu, A.D. Ohaegbue, S. Alao, A.A. Oyewumi, A.A. Yahaya
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引用次数: 0

摘要

本文主要研究了环形翅片的温度和热应力分布。这是通过开发一个能量平衡方程来实现的,该方程包含了与温度相关的发射率,使用幂律来解释线性和非线性关系。使用适当的量纲变量对能量方程进行缩放,并使用分区最小化技术求解得到的无量纲方程,得到多项式形式的结果。为了评估溶液方法的有效性,将获得的结果与文献中记录的结果进行比较,发现高度一致。研究了不同热物性对温度分布和热应力的影响。观察到,这些特性对翅片的温度和相关应力都有直接影响。研究表明,发射率非线性阶数的增加会导致系统的更多散热,并对翅片造成更大的径向应力,从而准确地反映了常数形式可能无法捕获的发射率的实际现象。因此,建议工程师在设计时考虑这些参数,如发射率随温度的变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Theoretical analysis of an annular fin with power law temperature-dependent emissivity: A minimization approach
This study focused on examining the distribution of temperature and thermal stress in annular fins. This was done by developing an energy balance equation that incorporated temperature-dependent emissivity, using a power law to account for both linear and non-linear relationships. The energy equation was scaled using appropriate dimensional variables, and the resulting dimensionless equation was solved using a partition minimization technique, yielding results in the form of a polynomial. In order to assess the efficacy of the solution approach, the acquired results were compared with those documented in the literature and were found to be highly consistent. The influence of different thermo-physical properties on temperature distribution and thermal stress were investigated. It was observed that these properties have a direct impact on both temperatures of the fin and stress associated. The study demonstrated that an increase in the order of nonlinearity in emissivity results in more heat dissipation from the system as well as causing more radial stress to the fin, thereby accurately reflecting the practical phenomenon of emissivity that a constant form may not capture. Therefore, engineers are advised to consider these parameters, such as emissivity, which varies with temperature, when designing.
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CiteScore
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