论文标题

非均质材料设计的滑动基础优化

Sliding Basis Optimization for Heterogeneous Material Design

论文作者

Ulu, Nurcan Gecer, Korneev, Svyatoslav, Ulu, Erva, Nelaturi, Saigopal

论文摘要

我们提出滑动基础计算框架,以自动合成使用约束优化设计的零件的异质(分级或离散)材料字段。我们的框架使用这样一个事实,即在给定域上的任何空间变化的材料字段都可以被参数化为拉普拉斯特征函数的加权总和,从而使有效的设计空间探索具有权重作为一组设计变量。我们通过使用Laplacian征函数形成A频谱的属性进一步提高了计算效率,并且可以从较低到较高的频率订购。这种方法可以随着滑动窗口通过较高频率移动而对材料分布进行更大的局部控制。该方法还减少了每个迭代中优化变量的数量,因此设计优化过程无需牺牲分析质量而独立于域分辨率加速。当可能不容易计算梯度(即优化问题,再加上外部黑盒分析)时,我们的方法是最有益的,从而实现了原本棘手的设计问题的优化。滑动基础框架独立于任何特定的物理分析,目标和约束,为各种应用程序提供了多功能且强大的设计优化工具。我们展示了我们对分级固体火箭燃料设计和多物质拓扑优化应用的方法,并评估其性能。

We present the sliding basis computational framework to automatically synthesize heterogeneous (graded or discrete) material fields for parts designed using constrained optimization. Our framework uses the fact that any spatially varying material field over a given domain may be parameterized as a weighted sum of the Laplacian eigenfunctions enabling efficient design space exploration with the weights as a small set of design variables. We further improve computational efficiency by using the property that the Laplacian eigenfunctions form a spectrum and may be ordered from lower to higher frequencies. This approach allows greater localized control of the material distribution as the sliding window moves through higher frequencies. The approach also reduces the number of optimization variables per iteration, thus the design optimization process speeds up independent of the domain resolution without sacrificing analysis quality. Our method is most beneficial when the gradients may not be computed easily (i.e., optimization problems coupled with external black-box analysis) thereby enabling optimization of otherwise intractable design problems. The sliding basis framework is independent of any particular physics analysis, objective and constraints, providing a versatile and powerful design optimization tool for various applications. We demonstrate our approach on graded solid rocket fuel design and multi-material topology optimization applications and evaluate its performance.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源