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A methodology to consider local material properties in structural optimization

机译:一种考虑结构优化中局部材料特性的方法

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We propose a finite element methodology to consider local material properties for large cast iron components in shape optimization. We found that considering local strength instead of uniform strength within shape optimization brings to different results in terms of safety-cost balance for the same component. It is well known that local mechanical properties of large cast iron components are defined by their microstructure and defects, which locally affect the strength of the components. Considering or not local mechanical properties can dramatically change a component reliability evaluation during its design. Since a typical industrial aim for shape optimization is trying to get the optimal solution in terms of component quality and cost, considering local material properties is even more important than in traditional design process where no optimization techniques are used. We compute solidification process parameters via finite element solidification analysis, and then we exploit experimental correlation between these parameters and ultimate tensile strength to evaluate the local reliability of the finished component under its static loading conditions. We believe that this methodology represents an opportunity to better design casting components when mechanical properties are deeply affected by their production process as described in the provided examples. In these examples, we wanted to minimize casting cost constrained by a target reliability and we get component cost reduction by considering local material properties. Future research will address the problem of using dedicated casting simulation software instead of general purpose finite element analysis software to compute solidification analysis and then introducing fatigue analysis and correlation between fatigue material properties and casting process output variables.
机译:我们提出了有限元方法,以考虑形状优化的大型铸铁组件的局部材料特性。我们发现,考虑到局部强度而不是形状优化内的均匀强度带来了同一部件的安全成本平衡方面的不同结果。众所周知,大型铸铁组分的局部机械性能由其微观结构和缺陷定义,局部地影响组分的强度。考虑或不局部机械性能可以显着改变其设计期间的组件可靠性评估。由于形状优化的典型工业目标试图在组件质量和成本方面获得最佳解决方案,考虑到当地材料特性甚至比传统的设计过程更重要,在那里没有使用优化技术。我们通过有限元凝固分析计算凝固过程参数,然后我们利用这些参数与最终拉伸强度之间的实验相关性,以评估成品组分在其静态负载条件下的局部可靠性。我们认为,当机械性能深受其生产过程的影响时,该方法代表了更好的设计铸造部件的机会,如提供的实施例中所述。在这些示例中,我们希望通过考虑本地材料属性,最大限度地减少由目标可靠性受到目标可靠性的铸造成本。未来的研究将解决使用专用铸造仿真软件而不是通用有限元分析软件来计算凝固分析,然后引入疲劳材料特性与铸造过程输出变量之间的疲劳分析和相关性。

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