评价高压氢气影响的简单力学试验方法

T. Ogata
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引用次数: 5

摘要

提出了一种简单的测试方法,用于评估在20 ~ 800 K温度范围内,高达100 MPa的高压氢气对机械性能的影响。该方法不使用高压气体容器,而是将高压气体从氢气气瓶或压缩机中充入空心型试件的小孔中,进行10mpa或100mpa的试验。在慢应变速率拉伸(SSRT)试验中,较小的孔内径也可以评估面积的减少。高压气体试样的温度可以简单地通过周围的冷却剂或加热器在20k和800k之间改变。大量试验结果表明,在高压气体容器中安装试件时,该方法与常规方法的试验结果基本一致。该方法的巨大优点不仅在于高压容器的设备成本较低,而且可以在较低或较高的温度下进行测试。因此,该方法有望在世界范围内广泛应用于评价高压氢气等极端恶劣环境下结构材料的力学性能,并研究高压氢气对这些设施设计和可靠性的影响机制。本文详细介绍了该方法的试验过程,以及用该方法对几种不锈钢在高达70 MPa的氢气条件下进行拉伸和疲劳试验的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simple Mechanical Testing Method to Evaluate Influence of High Pressure Hydrogen Gas
A simple testing method to evaluate the influence of high pressure hydrogen gas up to 100 MPa on mechanical properties at the temperature between 20 K and up to 800 K had been developed. In this method, instead of using high-pressure gas vessels, high pressure gas was filled into a small hole in the hollow-type test piece from a hydrogen gas cylinder or a compressor for 10 MPa or 100 MPa test. A small inner diameter of the hole enables to evaluate also the reduction of area in the slow strain-rate tensile (SSRT) tests. The temperature of the test piece with the high pressure gas can be changed simply by surrounding coolant or heater between 20 K and 800 K. Lots of test results by this method proved that almost the same results were obtained between this method and the conventional method with high-pressure gas vessels where test piece is installed. The great advantages of this method are not only the less cost for the facilities of high-pressure vessels but also the ability of tests at lower or higher temperatures than those with the vessels. So, this method is proposed to be used world-widely to evaluate the mechanical properties of structural materials for extremely severe environments, such as high-pressure hydrogen applications and also to study the mechanism of the influence of high-pressure hydrogen for design and reliability of those facilities. In this paper, the details of testing procedure of this method and results of tensile and fatigue tests in up to 70 MPa hydrogen gas on several kinds of stainless steels obtained by this method are presented.
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