Stiffener layout design method for serpentine nozzles using topology optimization
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摘要:
基于热弹性耦合多材料拓扑优化方法建立了S弯管加筋布局优化设计方法,核心思路是引入虚拟材料概念并利用多材料尺寸控制技术,实现任意曲面上自由筋与定向环筋布局的协同优化设计。在热弹性耦合多材料拓扑优化三场法框架内,利用局部搜索建立单一材料环向变量链接模型,实现规整的定向环筋形态;进而构建了自由筋与定向环筋最大实体尺寸整体控制方法与定向环筋间距控制方法;采用了非设计域蒙皮柔顺度最小作为优化目标,满足内表面控形要求。采用所提方法完成了S弯管结构自由筋与定向环筋布局协同优化设计,通过定向环筋间距控制获得了多种S弯管设计方案。重构结果表明:在相同重量下,相比于常规的规则加筋方案,拓扑优化构型的重构设计方案的最大变形降低高达17.1%。
Abstract:A stiffener layout design method for serpentine nozzles based on thermo-elastic coupling multi-material topology optimization was presented. The virtual material concept was introduced, and multi-material length scale control was utilized to achieve the collaborative optimization design of free and directional ring stiffeners on arbitrary curved surfaces. Within the framework of the thermo-elastic coupling multi-material topology optimization three-field method, a circumferential variable linking model for a single material was established using local search to achieve a regular directional ring stiffener morphology. Furthermore, a global control method for the maximum solid length scale of both free and directional ring stiffeners, and a control method for the spacing of the directional ring stiffeners were constructed. The minimization of non-design domain skin compliance was employed as the optimization objective to meet the inner surface shape control requirements. The proposed method was used to complete the collaborative optimization design of free and directional ring stiffener layouts in serpentine nozzles. Various serpentine nozzle designs were obtained by controlling the ring stiffener spacing. The reconstructed designs from the optimized configurations achieved a maximum deformation reduction of up to 17.1% compared with conventional, regularly stiffened designs under the same structural mass.
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