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热致金属塑性的热作用概念。

A Concept of Thermal Effort for Heat-Induced Metal Plasticity.

作者信息

Dudda Waldemar, Ziółkowski Piotr Józef, Ziółkowski Paweł, Bryk Mateusz, Badur Janusz

机构信息

Faculty of Technical Sciences, University of Warmia and Mazury, Oczapowskiego 11, 10-719 Olsztyn, Poland.

Energy Conversion Department, Institute of Fluid-Flow Machinery Polish Academy of Sciences, Fiszera 14, 80-231 Gdansk, Poland.

出版信息

Materials (Basel). 2024 Sep 30;17(19):4824. doi: 10.3390/ma17194824.

Abstract

This paper proposes a new concept of material effort that considers heat-induced plasticity for heat-resistant steels. These steels indicate a strength differential effect, a stress shearness effect, pressure sensitivity, and other features. Therefore, a three-parameter, temperature-dependent yield function was presented and, next, analytically and geometrically researched. To validate the accuracy of the formulated yield function, experiments were conducted with the designed specimens to characterize the heat-resistant steels St12T and 26H2MF, which underwent simple shear, uniaxial strain tension, and compression tests. The yield function was calibrated by using a simple analysis. Next, the calibrated constitutive equations were used to numerically determine the load-stroke responses of different tests. The numerical analysis showed that the proposed yield function based on three parameters could accurately describe the thermal effort in various loading conditions from the onset of yielding to the ultimate rupture. Accordingly, the proposed yield function is recommended to model material strength under various thermal loading conditions.

摘要

本文提出了一种考虑耐热钢热致塑性的材料力学新观念。这些钢呈现出强度差异效应、应力剪切效应、压力敏感性及其他特性。因此,提出了一个与温度相关的三参数屈服函数,随后对其进行了分析和几何研究。为验证所建立屈服函数的准确性,对设计的试样进行了实验,以表征耐热钢St12T和26H2MF,这些试样进行了简单剪切、单轴应变拉伸和压缩试验。通过简单分析对屈服函数进行了校准。接下来,使用校准后的本构方程通过数值方法确定不同试验的载荷-行程响应。数值分析表明,所提出的基于三参数的屈服函数能够准确描述从屈服开始到最终断裂的各种加载条件下的热效应。因此,建议使用所提出的屈服函数对各种热加载条件下的材料强度进行建模。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0649/11478160/817c82c50d9c/materials-17-04824-g001.jpg

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