可变刚度自适应关节:具有传导特性的策略性材料

H. Bier, Qinyu Wang, P. Teuffel, G. Senatore
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引用次数: 0

摘要

建筑物周围的环境是不断变化的,而建筑物的静态设计方案在整个使用寿命期间无法发挥良好的作用。为了提高结构的性能,包括强度(即避免倒塌)和适用性,自适应结构很可能成为建筑环境研究和应用的未来趋势之一。本课题旨在综合一种具有变刚度能力的结构节点。刚度变化是通过具有传导特性的策略性排列材料来实现的。形状记忆聚合物(SMPs)在玻璃态和橡胶态之间具有较大的刚度变化,这使得它们在自适应结构的形状控制中具有良好的应用前景。在不同的荷载条件下,结构会自行改变为最优形状。然而,由于关节的固定点会影响载荷路径和形状控制,较大的形状变化要求关节具有很大的灵活性。为了解决这一问题,提出了一种变刚度节点。在形状/负载路径控制期间,关节降低其刚度,以便以低驱动能量实现所需的变形模式。经形状控制后,接头恢复刚度。实验研究表明,变刚度关节在自适应结构中的应用具有很大的潜力。
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Adaptive joints with variable stiffness: strategically arranged materials with transduction properties
The environment around buildings keeps changing, while the static design solutions of buildings cannot perform well during the whole service life. In order to improve structural performances including strength (i.e. avoid collapse) and serviceability, adaptive structures are likely to establish as one of future trends in both research and application for the built environment. This project aims to synthesize a type of structural joints with variable stiffness capabilities. Stiffness variation is achieved by strategically arranged materials with transduction properties. Shape memory polymers (SMPs) feature large variation of stiffness between a glassy and a rubbery state, which makes them good candidates for application in shape control of adaptive structures. The structures will change themselves into optimal shapes corresponding to different load conditions. However, large shape changes require significant flexibility of the joints because their fixity can affect load-path and shape control. To address this problem, a variable stiffness joint is proposed. During shape/load-path control, the joint reduces its stiffness so that required deformation patterns can be achieved with low actuation energy. After shape control the joint recovers rigidity. Experimental studies showed the potential for application of joints with variable stiffness in adaptive structures.
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