Xu Xianchen, Wang Chen, Shou Wan, Du Zongliang, Chen Yangyang, Li Beichen, Matusik Wojciech, Hussein Nassar, Huang Guoliang
Department of Mechanical and Aerospace Engineering, University of Missouri, Columbia, Missouri 65211, USA.
Computer Science and Artificial Intelligence Laboratory, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
Phys Rev Lett. 2020 Mar 20;124(11):114301. doi: 10.1103/PhysRevLett.124.114301.
An elastic cloak is a coating material that can be applied to an arbitrary inclusion to make it indistinguishable from the background medium. Cloaking against elastic disturbances, in particular, has been demonstrated using several designs and gauges. None, however, tolerate the coexistence of normal and shear stresses due to a shortage of physical realization of transformation-invariant elastic materials. Here, we overcome this limitation to design and fabricate a new class of polar materials with a distribution of body torque that exhibits asymmetric stresses. A static cloak for full two-dimensional elasticity is thus constructed based on the transformation method. The proposed cloak is made of a functionally graded multilayered lattice embedded in an isotropic continuum background. While one layer is tailored to produce a target elastic behavior, the other layers impose a set of kinematic constraints equivalent to a distribution of body torque that breaks the stress symmetry. Experimental testing under static compressive and shear loads demonstrates encouraging cloaking performance in good agreement with our theoretical prediction. The work sets a precedent in the field of transformation elasticity and should find applications in mechanical stress shielding and stealth technologies.
弹性隐身衣是一种涂层材料,可应用于任意内含物,使其与背景介质难以区分。特别是,利用几种设计和规格已经证明了针对弹性干扰的隐身效果。然而,由于缺乏变换不变弹性材料的物理实现,没有一种能承受法向应力和剪应力的共存。在此,我们克服了这一限制,设计并制造了一类新型的具有体扭矩分布的极性材料,该材料表现出不对称应力。基于变换方法构建了一种用于全二维弹性的静态隐身衣。所提出的隐身衣由嵌入各向同性连续体背景中的功能梯度多层晶格制成。当一层被设计成产生目标弹性行为时,其他层施加一组运动学约束,等同于打破应力对称性的体扭矩分布。在静态压缩和剪切载荷下的实验测试表明,隐身性能令人鼓舞,与我们的理论预测高度吻合。这项工作在变换弹性领域开创了先例,应能在机械应力屏蔽和隐身技术中找到应用。