高压气态氢对SUS304和SUS316奥氏体不锈钢疲劳性能的影响

T. Iijima, H. Enoki, J. Yamabe, B. An
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引用次数: 3

摘要

一套高压材料测试系统(最大压力可达1倍)。压力:140 MPa,温度范围:−80 ~ 90°C),研究了高压气态氢材料相容性的测试方法。在本研究中,对JIS SUS304和SUS316奥氏体不锈钢在室温、- 45℃和- 80℃的高压气态氢中进行了SSRT和疲劳寿命试验。将测试结果与相同测试温度范围下的实验室空气环境进行了比较。在105 MPa氢气条件下,以5 × 10−5 s−1的应变速率进行SSRT试验,得到了标称应力-应变曲线。SUS304和SUS316的0.2%偏置屈服强度(Ys)在氢气和实验室空气气氛中没有显著差异。在- 45°C和- 80°C的氢气中,SUS304的断裂后总伸长率(El)约为15%,SUS316为20%。在疲劳寿命试验中,采用直径为7 mm的光滑表面圆棒试样,在100 MPa氢气中,应力率R = - 1(拉压),频率为1、0.1和0.01 Hz。可以看出,SUS304和SUS316的疲劳寿命试验结果表现出相同的趋势。在100mpa氢气中,室温下的疲劳极限与实验室空气中的疲劳极限相当。高压氢气下的室温疲劳寿命比低温下的疲劳寿命更严重。SUS304和SUS316奥氏体不锈钢在疲劳极限处归一化应力幅值(σa / Ts)分别为0.37 ~ 0.39。
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Effect of High Pressure Gaseous Hydrogen on Fatigue Properties of SUS304 and SUS316 Austenitic Stainless Steel
A high pressure material testing system (max. pressure: 140 MPa, temperature range: −80 ∼ 90 °C) was developed to investigate the testing method of material compatibility for high pressure gaseous hydrogen. In this study, SSRT and fatigue life test of JIS SUS304 and SUS316 austenitic stainless steel were performed in high pressure gaseous hydrogen at room temperature, −45, and −80 °C. These testing results were compared with those in laboratory air atmosphere at the same test temperature range. The SSRT tests were performed at a strain rate of 5 × 10−5 s−1 in 105 MPa hydrogen gas, and nominal stress-strain curves were obtained. The 0.2% offset yield strength (Ys) did not show remarkable difference between in hydrogen gas and in laboratory air atmosphere for SUS304 and SUS316. Total elongation after fracture (El) in hydrogen gas at −45 and −80 °C were approximately 15 % for SUS304 and 20% for SUS316. In the case of fatigue life tests, a smooth surface round bar test specimen with a diameter of 7 mm was used at a frequency of 1, 0.1, and 0.01 Hz under stress rate of R = −1 (tension-compression) in 100 MPa hydrogen gas. It can be seen that the fatigue life test results of SUS304 and SUS316 showed same tendency. The fatigue limit at room temperature in 100 MPa hydrogen gas was comparable with that in laboratory air. The room temperature fatigue life in high pressure hydrogen gas appeared to be the more severe condition compared to the fatigue life at low temperature. The normalized stress amplitude (σa / Ts) at the fatigue limit was 0.37 to 0.39 for SUS304 and SUS316 austenitic stainless steels, respectively.
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