Form-finding of thermal-adaptive pin-bar assemblies based on eigenvalue modification

IF 6.3 2区 材料科学 Q1 MATERIALS SCIENCE, COMPOSITES Composite Structures Pub Date : 2024-06-08 DOI:10.1016/j.compstruct.2024.118275
Hongchuang Liu, Hua Deng
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Abstract

Lattice structures with tunable expansion properties have been investigated in multidisciplinary fields to control the temperature effects of structures or materials. The expected thermal adaptivity can be achieved by optimizing the structural geometry. A novel method for the form-finding of thermal-adaptive pin-bar assemblies is developed in this paper by considering the control of structural temperature effects as the minimization of the potential energy of the system. Based on the stationarity condition of the potential energy with respect to the nodal coordinates, the compatibility relationship between the thermal elongations of members and the target nodal displacements is proven to be the sufficient and necessary condition for structural thermal adaptivity. The solvability of the compatibility equation is determined by the rank equality between the compatibility matrix and its augmented form, which can be measured by the number of nonzero eigenvalues of its Gramian matrix. The analytical relationship between the eigenvalues of the Gramian matrix and the nodal coordinates is established using the matrix perturbation theory. A numerical strategy based on Newton’s method is proposed in which the eigenvalues are gradually modified by adjusting the nodal coordinates until the rank equality is satisfied. To address the existence of multiple solutions with structural thermal adaptivity, structural symmetry and periodicity constraints are introduced to narrow the solution space. The thermal-adaptive configurations of three illustrative pin-bar assemblies are analyzed using the proposed form-finding method, and the expected thermal deformations are verified for the obtained configurations using the finite element software ABAQUS. Comparing the results obtained by the proposed method with those obtained by nonlinear programming and the genetic algorithm validates the advantages of the proposed method in terms of computational time, optimality of the obtained configuration and applicability to complex structural geometries.

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基于特征值修正的热适应性销杆组件的形状搜索
多学科领域一直在研究具有可调膨胀特性的晶格结构,以控制结构或材料的温度效应。通过优化结构几何形状,可以实现预期的热适应性。本文将结构温度效应的控制视为系统势能的最小化,从而开发了一种新的热适应性销杆组件的形状搜索方法。根据势能相对于节点坐标的静止条件,证明了构件热伸长与目标节点位移之间的相容关系是结构热适应性的充分必要条件。相容性方程的可解性由相容性矩阵及其增强形式之间的秩相等性决定,而秩相等性可通过其格拉曼矩阵的非零特征值数量来衡量。利用矩阵扰动理论建立了格拉矩阵特征值与节点坐标之间的分析关系。提出了一种基于牛顿法的数值策略,即通过调整节点坐标来逐步修改特征值,直至满足秩相等。为了解决存在多个具有结构热适应性的解的问题,引入了结构对称性和周期性约束来缩小解的空间。使用所提出的寻形方法分析了三个示例销杆组件的热适应配置,并使用有限元软件 ABAQUS 验证了所获得配置的预期热变形。将拟议方法与非线性编程和遗传算法得出的结果进行比较,验证了拟议方法在计算时间、所获配置的最优性和复杂结构几何形状的适用性等方面的优势。
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来源期刊
Composite Structures
Composite Structures 工程技术-材料科学:复合
CiteScore
12.00
自引率
12.70%
发文量
1246
审稿时长
78 days
期刊介绍: The past few decades have seen outstanding advances in the use of composite materials in structural applications. There can be little doubt that, within engineering circles, composites have revolutionised traditional design concepts and made possible an unparalleled range of new and exciting possibilities as viable materials for construction. Composite Structures, an International Journal, disseminates knowledge between users, manufacturers, designers and researchers involved in structures or structural components manufactured using composite materials. The journal publishes papers which contribute to knowledge in the use of composite materials in engineering structures. Papers deal with design, research and development studies, experimental investigations, theoretical analysis and fabrication techniques relevant to the application of composites in load-bearing components for assemblies, ranging from individual components such as plates and shells to complete composite structures.
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