Vangelatos Zacharias, Micheletti Andrea, P Grigoropoulos Costas, Fraternali Fernando
Department of Mechanical Engineering, University of California, Berkeley, CA 94709, USA.
Department of Civil and Computer Science Engineering, University of Rome Tor Vergata, RM 00133 Rome, Italy.
Nanomaterials (Basel). 2020 Mar 31;10(4):652. doi: 10.3390/nano10040652.
A bistable response is an innate feature of tensegrity metamaterials, which is a conundrum to attain in other metamaterials, since it ushers unconventional static and dynamical mechanical behaviors. This paper investigates the design, modeling, fabrication and testing of bistable lattices with tensegrity architecture and nanoscale features. First, a method to design bistable lattices tessellating tensegrity units is formulated. The additive manufacturing of these structures is performed through multiphoton lithography, which enables the fabrication of microscale structures with nanoscale features and extremely high resolution. Different modular lattices, comprised of struts with 250 nm minimum radius, are tested under loading-unloading uniaxial compression nanoindentation tests. The compression tests confirmed the activation of the designed bistable twisting mechanism in the examined lattices, combined with a moderate viscoelastic response. The force-displacement plots of the 3D assemblies of bistable tensegrity prisms reveal a softening behavior during the loading from the primary stable configuration and a subsequent snapping event that drives the structure into a secondary stable configuration. The twisting mechanism that characterizes such a transition is preserved after unloading and during repeated loading-unloading cycles. The results of the present study elucidate that fabrication of multistable tensegrity lattices is highly feasible via multiphoton lithography and promulgates the fabrication of multi-cell tensegrity metamaterials with unprecedented static and dynamic responses.
双稳态响应是张拉整体超材料的固有特性,这在其他超材料中很难实现,因为它展现出非常规的静态和动态力学行为。本文研究了具有张拉整体结构和纳米级特征的双稳态晶格的设计、建模、制造和测试。首先,制定了一种设计由张拉整体单元镶嵌而成的双稳态晶格的方法。这些结构通过多光子光刻进行增材制造,这能够制造具有纳米级特征和极高分辨率的微尺度结构。在加载-卸载单轴压缩纳米压痕测试中,对由最小半径为250纳米的支柱组成的不同模块化晶格进行了测试。压缩测试证实了在测试晶格中设计的双稳态扭转机制的激活,并伴有适度的粘弹性响应。双稳态张拉整体棱柱三维组件的力-位移曲线显示,在从初始稳定构型加载过程中存在软化行为,随后发生突然转变事件,使结构进入二级稳定构型。这种转变所特有的扭转机制在卸载后以及重复加载-卸载循环过程中得以保留。本研究结果表明,通过多光子光刻制造多稳态张拉整体晶格是高度可行的,并推动了具有前所未有的静态和动态响应的多单元张拉整体超材料的制造。