Hydrogen role in strain aging of low alloy steels under operation

Hryhoriy Nykyforchyn , Oleksandr Tsyrulnyk , Oleh Venhryniuk , Olha Zvirko , Oleksandra Student , Ihor Dzioba , Dmytro Demianchuk
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Abstract

Strain aging of structural steels is generally considered as an important factor in their embrittlement. In the laboratory, it is initiated by preliminary plastic deformation of a metal for the generation of dislocations, followed by short-term heating. In the study, a new hypothesis about the possibility of strain ageing occurring without any initial plastic deformation at the micro-scale under the presence of hydrogen in the process that induces internal stresses in steel was proposed. It was presumed that areas with local plastic deformation induced by hydrogen would be the preferred locations for steel to undergo strain aging during subsequent heating. This assumption was substantiated through experimental tests using the low-alloy pipe steel in different states (as-delivered state, after low-temperature tempering and after preliminary electrochemical hydrogen charging followed by low-temperature tempering). The mechanical properties of the steel, including strength, plasticity, impact strength, fracture toughness, and resistance to stress corrosion cracking, were assessed. Low-temperature tempering did not affect the mechanical behaviour of the steel. However, the steel subjected to the procedure of combining preliminary hydrogen charging with subsequent low-temperature tempering was characterized by a significant decrease in fracture toughness and resistance to stress corrosion cracking. Hydrogen had an impact on the embrittlement of the steel through the strain aging at local sites being preferable for hydrogen diffusion.

氢在低合金钢工作状态下的应变时效中的作用
结构钢的应变时效通常被认为是导致其脆性的一个重要因素。在实验室中,应变时效是通过金属的初步塑性变形产生位错,然后进行短期加热而开始的。在这项研究中,提出了一个新的假设,即在钢中产生内应力的过程中,氢的存在可能导致微尺度的应变时效,而不产生任何初始塑性变形。据推测,在随后的加热过程中,由氢引起局部塑性变形的区域将是钢材发生应变时效的首选位置。通过使用不同状态的低合金管材钢(交货状态、低温回火后和初步电化学充氢后低温回火)进行实验测试,证实了这一假设。对钢材的机械性能进行了评估,包括强度、塑性、冲击强度、断裂韧性和抗应力腐蚀开裂性能。低温回火没有影响钢的机械性能。然而,在初步充氢和随后的低温回火相结合的过程中,钢的断裂韧性和抗应力腐蚀开裂能力显著下降。氢对钢的脆性产生了影响,因为局部位置的应变时效更有利于氢的扩散。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
1.70
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