复合电感在材料磁脉冲加工过程中的热变形特性

Galina Ottovna Anishchenko, V. I. Konokhov, D. V. Lavinsky
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引用次数: 0

摘要

研究了磁脉冲加工材料电感系统应力-应变状态分析中考虑非平稳非均匀温度场的问题。从公开信息源的分析可以看出,在感应加热中,分析由非均匀电磁场引起的非稳态温度场及其对变形的影响的问题已经得到了充分的研究。同时,在磁脉冲处理材料的其他操作过程中,设备的加热会引起相当大的额外变形,进而导致设备因破坏或不可逆变形而丧失性能。提出了一种分析这类问题的一般方法,即确定电磁场、温度场和应力应变状态的定量特征的时空分布。用数值方法进行这种分析的必要性已得到证实。最有效的数值方法是有限元法,它可以在同一计算方案中分析非定常电磁场、温度场和应力-应变状态。在这种情况下,在有限元法的框架内,可以创建允许考虑非线性效应的迭代方案。在这里,非线性效应可能是由于材料的机械和电物理特性对温度的依赖,变形的塑性性质,以及考虑接触现象的需要。给出了一种带介质带的复合单匝电感器的复分析结果。通过引入接触有限元层,考虑了接触相互作用的特点。电感器的应力-应变状态估计了所用材料的两种变体:铜和非磁性钢。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Specific features of thermal deforming of composite inductors during magnetic-pulse processing of materials
The problem of taking into account a non-stationary inhomogeneous temperature field in the analysis of the stress-strain state of inductor systems for magnetic-pulse processing of materials is considered. It follows from the analysis of open information sources that the problem of analyzing a non-stationary temperature field arising from the presence of a non-uniform electromagnetic field and its effect on deformation has been sufficiently studied in relation to induction heating. At the same time, during other operations of magnetic-pulse processing of materials, heating of equipment can cause additional deformations of a significant magnitude, which, in turn, can lead to a loss of equipment performance due to destruction or irreversible deformation. A general approach to the analysis of such problems is proposed, which involves the determination of the spatial-temporal distributions of the quantitative characteristics of the electromagnetic field, temperature field and stress-strain state. The necessity of using numerical methods for carrying out such an analysis has been substantiated. The most effective numerical method is the finite element method, which makes it possible to analyze the unsteady electromagnetic field, temperature field, and stress-strain state within the same calculation scheme. In this case, within the framework of the finite element method, iterative schemes can be created that allow taking into account nonlinear effects. Here, nonlinear effects can be due to the dependence of the mechanical and electro-physical properties of the material on temperature, the plastic nature of deformation, and the need to take into account contact phenomena. The results of complex analysis for a composite single-turn inductor with a dielectric band are presented. The features of contact interaction were taken into account by introducing layers of contact finite elements. The stress-strain state of the inductor is estimated for two variants of the materials used: copper and non-magnetic steel.    
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