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ADAPTIVE STRUCTURES AND DESIGN CONCEPT OF TRANSFORMABLE JOINTS

机译:变形接头的自适应结构和设计概念

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This article describes the research framework for adaptive structures and the design concept of transformable joints. The research of adaptive structures can be splitted into different scales: deformation mechanisms (whole structure), cooperation mechanisms (inter-component) and actuation mechanisms (intra-component). This research will focus on transformable joints, which are based on special material properties (actuation) to accomplish the change of joint stiffness between locked and released states (transformation). Thereby, the control of DOF can be achieved, in order to finally realise the whole structure's form change (deformation). Alternatively under shock loads, the joints release and the structure occur certain deformation to dissipate energy and adjust to external loads. Afterwards, the structure recovers its original shape and removes residual strain through special/smart materials. Then the released joints relock again. By comparison of natural role models and adaptive structures, there are many similarities between them that we can learn from nature. In future research, e.g. adaptive stiffness, the experimental tests of potential materials and prototypes will be the main research methods. While for adaptive geometry, the knowledge of robotics, especially the part of geometric representations and transformations, will help to express this problem in mathematical way. This part will be mostly in conceptual level, so computer simulation will be used. The final goal of this research is to develop energy dissipation and shape-morphing strategies using transformable joints under varying loads as well as shock impact. These kinds of joints can not only be applied to tessellated shell structures, but also introduced to active facade systems.
机译:本文介绍了自适应结构的研究框架和可变形关节的设计概念。自适应结构的研究可以分为不同的尺度:变形机制(整个结构),协作机制(内部组件)和致动机制(内部组件)。这项研究将集中于可变形接头,该接头基于特殊的材料属性(驱动)来实现锁定状态和释放状态之间的接头刚度变化(变形)。从而,可以实现自由度的控制,从而最终实现整个结构的形变(变形)。可替代地,在冲击载荷下,接头释放并且结构发生一定的变形以耗散能量并适应外部载荷。之后,该结构将恢复其原始形状,并通过特殊/智能的材料消除残留的应变。然后释放的关节再次重新锁定。通过比较自然的榜样和适应性结构,我们可以从自然界中学到很多相似之处。在未来的研究中,例如自适应刚度,潜在材料和原型的实验测试将是主要的研究方法。对于自适应几何,机器人技术的知识,尤其是几何表示和变换的部分,将有助于以数学方式表达此问题。这部分将主要在概念层面上,因此将使用计算机仿真。这项研究的最终目标是在变化的载荷以及冲击影响下使用可变形接头来开发能量耗散和形状变形策略。这些类型的接头不仅可以应用于棋盘格化的壳体结构,而且还可以引入主动外墙系统中。

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