首页> 外文会议>ASME Pressure Vessels and Piping Conference >INFLUENCE OF HYDROGEN ON TENSILE AND FATIGUE LIFE PROPERTIES OF 304/308 AUSTENITIC STAINLESS STEEL BUTT WELDED JOINTS
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INFLUENCE OF HYDROGEN ON TENSILE AND FATIGUE LIFE PROPERTIES OF 304/308 AUSTENITIC STAINLESS STEEL BUTT WELDED JOINTS

机译:氢对304/308奥氏体不锈钢对焊接接头拉伸和疲劳寿命性能的影响

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To investigate the influence of hydrogen on the tensile and fatigue life properties of welded joints of 304/308 austenitic stainless steels, slow strain rate tensile (SSRT) tests and fatigue life tests were conducted in laboratory air using hydrogen exposed specimens. The specimens were fabricated from welded plates, and to elucidate the role of weld structure on hydrogen-induced degradation, the welded joint was solution-treated. In the SSRT tests of the as-welded (AW) joint, a non-exposed specimen failed at the base metal (BM), whereas a hydrogen-exposed specimen failed near the weld toe. In the case of the solution-treated-welded (STW) joint, the non-exposed specimen failed at the part of solution treated weld metal, whereas an H-exposed specimen failed near the weld toe. As a result, internal hydrogen significantly degraded the elongation of the AW joint. In the fatigue test, all the specimens failed near the weld toe. Internal hydrogen degraded the fatigue life considerably. However, the pre-charging led to little, if any, reduction in the fatigue limit. Similarly to the AW joint, hydrogen gas exposure notably degraded the fatigue life of the STW joint and led to little reduction in the fatigue limit. To investigate the relationship between the hydrogen-induced degradation and strain-induced martensitic transformation during fatigue testing, the volume fraction of ferrite in the broken specimens was measured by a ferrite scope. The volume fraction of martensitic transformation increased with an increase in the stress amplitude. These experimental results implied that the hydrogen-induced fatigue life degradation in the welded joint was closely related to the martensitic transformation during the fatigue process. The mechanisms of both the degradation in fatigue life and non-degradation in fatigue limit will be discussed further.
机译:为了研究氢对焊接接头的拉伸和疲劳寿命性能的影响304/308奥氏体不锈钢的影响,使用氢暴露样品在实验室空气中进行慢应变率拉伸(SSRT)试验和疲劳寿命试验。该试样由焊接板制成,并阐明焊接结构对氢致抗降解的作用,焊接接头进行溶液处理。在AS焊接(AW)关节的SSRT测试中,在贱金属(BM)处未暴露的样品失效,而焊接脚趾附近的氢暴露的样品失效。在溶液处理焊接(STW)接头的情况下,在溶液处理的焊接金属的一部分失效时,未暴露的样品失效,而在焊接脚趾附近,H-暴露的样品失效。结果,内氢显着降低了AW关节的伸长率。在疲劳试验中,所有标本都在焊接脚趾附近发生故障。内部氢气显着降低了疲劳寿命。然而,预充电导致疲劳极限的几乎没有,如果有的话。类似于AW关节,氢气曝光显着降低了STW接头的疲劳寿命,并导致疲劳极限的降低。为了研究疲劳试验期间氢致致氢化和应变诱导的马氏体转化之间的关系,通过铁氧体范围测量破损标本中的铁氧体的体积分数。马氏体变换的体积分数随着应力幅度的增加而增加。这些实验结果暗示焊接接头中的氢诱导疲劳寿命降解与疲劳过程中的马氏体转化密切相关。将进一步讨论疲劳寿命和疲劳极限的疲劳寿命和不降解的降解的机制。

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