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Computationally efficient welding distortion simulation techniques

机译:计算有效的焊接变形仿真技术

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The study's aim is to improve the applicability of finite element analysis to the prediction of welding distortions, with particular emphasis on out-of-plane deformations. Robust simulation strategies are established which take account of material properties and joint configurations, but are at the same time computationally efficient. This is achieved by reducing the full transient thermo-elastoplastic analysis to variants of an uncoupled thermal, elasto-plastic and structural treatment. A two-dimensional cross-section thermal model was used to establish thermal transients. The maximum temperatures, experienced at each node during the welding cycle, were then used to link the thermal welding strains to the elasto-plastic and structural response of the welded structures. Three efficient models have been identified that reduce the transient analysis to a simple multi-load-step analysis and these were applied to sample butt-welded plates. The simulation techniques are supported by full-scale welding tests on steel plates. The evolution of angular distortion can be treated simply through non-linear, stepwise, static analyses. This captures important effects of restraint and material properties. The longitudinal bending distortion can then be established via simple elastic-perfectly plastic algorithms, through a fictitious elastic thermal load analysis.
机译:这项研究的目的是提高有限元分析在焊接变形预测中的适用性,尤其是平面外变形。建立了鲁棒的仿真策略,该策略考虑了材料特性和接头配置,但同时计算效率很高。这可以通过将完整的瞬态热弹塑性分析简化为非耦合的热,弹塑性和结构处理的变体来实现。使用二维截面热模型来建立热瞬态。然后,将焊接周期中每个节点经历的最高温度用于将热焊接应变与焊接结构的弹塑性和结构响应联系起来。已经确定了三种有效的模型,它们可以将瞬态分析简化为简单的多载荷步分析,并将其应用于对接焊板样品。模拟技术得到钢板全面焊接测试的支持。可以通过非线性的逐步静态分析简单地处理角度畸变的演变。这捕获了约束和材料特性的重要影响。然后可以通过虚拟的弹性热负荷分析,通过简单的弹性完美塑性算法来确定纵向弯曲变形。

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