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Retardation of fatigue crack growth in aircraft aluminium alloys via laser heating Simulation-based design optimisation

机译:激光加热抑制飞机铝合金疲劳裂纹扩展基于仿真的设计优化

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Purpose - While normally the formation of thermally induced residual stresses is seen mainly as detrimental side effect from production processes like welding or casting, the well-directed introduction of thermal residual stresses can also be used as tool to retard fatigue crack growth (FCG). In the presented paper, the use of a defocused laser to modify the residual stress state, and by that to retard the FCG, is examined. The focus lies on the simulation-based optimisation of the heating line position for achieving a maximum fatigue life. The paper aims to discuss these issues. Design/methodology/approach - In the presented work, the developed prediction methodology for the FCG coupling process simulation and subsequent fracture mechanics analysis is used to identify the optimum positioning of either one or two heating lines on a C(T)100 specimen that leads to a maximised total lifetime. Afterwards, the prediction results are validated experimentally for selected cases. Findings - The predictions match the experiments within the experimental scatter indicating the correct identification of the optimum heating line positions. This demonstrates the large potential for reducing the experimental effort needed for design optimisation using the proposed strategy. Originality/value - The used methodology of coupling of welding simulation with subsequent fracture mechanics analysis in order to optimise the FCG behaviour of structures is innovative and only very few published studies addressed parts of similar approaches.
机译:目的-虽然通常将热致残余应力的形成主要看作是焊接或铸造等生产过程的有害副作用,但定向良好地引入热残余应力也可以用作抑制疲劳裂纹扩展(FCG)的工具。在本文中,研究了使用散焦激光器来修改残余应力状态,并以此来延迟FCG。重点在于对加热线位置进行基于仿真的优化,以实现最大的疲劳寿命。本文旨在讨论这些问题。设计/方法/方法-在提出的工作中,已开发的用于FCG耦合过程模拟和后续断裂力学分析的预测方法用于确定一条或两条加热线在C(T)100试样上的最佳位置,从而导致达到最大的总寿命。之后,针对选定的案例,对实验结果进行了实验验证。结果-预测与实验散布中的实验相符,表明正确识别了最佳加热线位置。这证明了使用所提出的策略减少设计优化所需的实验工作的巨大潜力。原创性/价值-用于优化结构的FCG行为的焊接模拟与后续断裂力学分析的耦合方法是创新的,只有极少数已发表的研究涉及类似方法的部分。

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