Pleșcan Costel, Stanciu Mariana D, Szasz Matyas
Department of Civil Engineering, Transylvania University of Brasov, 500036 Brașov, Romania.
Department of Mechanical Engineering, Faculty of Mechanical Engineering, Transylvania University of Brașov, B-dul Eroilor 29, 500036 Brașov, Romania.
Materials (Basel). 2019 Sep 4;12(18):2849. doi: 10.3390/ma12182849.
Steel pipes in different engineering applications may fail, leading to numerous environmental disasters. During loading, certain mechanical and chemical phenomena develop inside the pipes and cause them to burst. In this study, the influence of internal pressure on the elastic and plastic behaviour of E355 steel pipes was investigated on small specimens with different wall thicknesses. First, the failure modes of pipes subjected to monotonic loading were assessed, and then the behaviour of specimens subjected to cyclic internal pressure was analysed in terms of variation of radial strain. The strain and stress states of pipes were analysed using the finite element method. The results revealed that the hardening of materials inside the pipes increases the risk of cracking and bursting because of elasticity limits being exceeded, causing entry into the plastic domain. The transition of mechanical behaviour can be observed in the microstructure of steel in cracked areas from the inside to the outside of the pipe.
不同工程应用中的钢管可能会失效,从而导致众多环境灾难。在加载过程中,钢管内部会出现某些机械和化学现象并导致其破裂。在本研究中,针对不同壁厚的小试样,研究了内压对E355钢管弹性和塑性行为的影响。首先,评估了承受单调加载的钢管的失效模式,然后根据径向应变的变化分析了承受循环内压的试样的行为。使用有限元方法分析了钢管的应变和应力状态。结果表明,由于超过弹性极限导致进入塑性域,钢管内部材料的硬化增加了开裂和破裂的风险。从钢管内部到外部的裂纹区域的钢的微观结构中,可以观察到力学行为的转变。