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Generation of planar tensegrity structures through cellular multiplication

机译:通过细胞增殖产生平面张力结构

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Tensegrity structures are frameworks in a stable self-equilibrated prestress state that have been applied in various fields in science and engineering. Research into tensegrity structures has resulted in reliable techniques for their form finding and analysis. However, most techniques address topology and form separately. This paper presents a bio-inspired approach for the combined topology identification and form finding of planar tensegrity structures. Tensegrity structures are generated using tensegrity cells (elementary stable self-stressed units that have been proven to compose any tensegrity structure) according to two multiplication mechanisms: cellular adhesion and fusion. Changes in the dimension of the self-stress space of the structure are found to depend on the number of adhesion and fusion steps conducted as well as on the interaction among the cells composing the system. A methodology for defining a basis of the self-stress space is also provided. Through the definition of the equilibrium shape, the number of nodes and members as well as the number of self-stress states, the cellular multiplication method can integrate design considerations, providing great flexibility and control over the tensegrity structure designed and opening the door to the development of a whole new realm of planar tensegrity systems with controllable characteristics. (C) 2018 Elsevier Inc. All rights reserved.
机译:张力结构是处于稳定的自我平衡预应力状态的框架,已在科学和工程的各个领域中应用。对张力结构的研究已经找到了可靠的形式发现和分析技术。但是,大多数技术都涉及拓扑并单独形成。本文提出了一种生物启发的方法,用于平面张力结构的组合拓扑识别和形状查找。使用张力细胞(已证明构成任何张力结构的基本稳定的自应力单位)根据两种增殖机制生成张力结构:细胞粘附和融合。发现结构的自应力空间的尺寸变化取决于所进行的粘附和融合步骤的数量以及组成系统的细胞之间的相互作用。还提供了一种定义自重空间基础的方法。通过定义平衡形状,节点和成员的数量以及自应力状态的数量,细胞倍增方法可以整合设计考虑因素,为设计的张力结构提供极大的灵活性和控制力,并为制造商打开大门。具有可控特性的平面张力系统的全新领域的发展。 (C)2018 Elsevier Inc.保留所有权利。

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