CERIS-NOVA, Department of Civil Engineering, NOVA School of Science and Technology, Universidade NOVA de Lisboa, Caparica, 2829-516, Portugal.
Adv Mater. 2023 Jun;35(26):e2300639. doi: 10.1002/adma.202300639. Epub 2023 May 5.
The interest in novel energy-dissipation devices that offer advanced functionalities for optimal performance in state-of-the-art engineering applications is growing. In this regard, a highly tunable and innovative dissipator is developed. This dissipator features movement amplification capabilities resulting from the radial replication of a unit-cell with tensegrity architecture. The kinematic response of the dissipator is analyzed for several layouts, by varying the number of unit-cells within the device, their internal geometry, and identifying the corresponding locking configurations. A fully operational 3D-printed prototype is presented, demonstrating its excellent performance in terms of damping capabilities and feasibility. The experimental results are used to validate a numerical model of the flower unit. This model demonstrates the importance of pre-strain on the overall stiffness and dissipative features of the proposed system. By utilizing these numerical models, it is shown that the proposed device can be used as a building block for more complex assemblies such as periodic metamaterials with tensegrity architecture.
人们对能够为最新工程应用中的最优性能提供先进功能的新型能量耗散装置越来越感兴趣。在这方面,开发了一种高度可调谐和创新的耗散器。这种耗散器具有运动放大能力,这是由于采用了带有完整性结构的单元的径向复制。通过改变装置内单元的数量、内部几何形状并确定相应的锁定配置,对几种布局的耗散器的运动响应进行了分析。提出了一个完全可操作的 3D 打印原型,展示了其在阻尼能力和可行性方面的出色性能。实验结果用于验证花单元的数值模型。该模型表明预应变对所提出系统的整体刚度和耗散特性的重要性。通过利用这些数值模型,表明所提出的装置可用作具有完整性结构的周期性超材料等更复杂组件的构建块。