Long Fei, Xu Gaojie, Wang Jing, Ren Yong, Cheng Yuchuan
Zhejiang Key Laboratory of Additive Manufacturing Materials, Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo 315201, China.
Department of Mechanical, Materials and Manufacturing Engineering, University of Nottingham Ningbo China, Ningbo 315100, China.
Micromachines (Basel). 2022 Aug 19;13(8):1343. doi: 10.3390/mi13081343.
Materials that can be designed with programmable properties and which change in response to external stimuli are of great importance in numerous fields of soft actuators, involving robotics, drug delivery and aerospace applications. In order to improve the interaction of human and robots, materials with variable stiffness are introduced to develop their compliance. A variable stiffness composite has been investigated in this paper, which is composed of liquid metals (LMs) and silicone elastomers. The phase changing materials (LMs) have been encapsulated into silicone elastomer by printing the dual materials alternately with three-dimensional direct ink writing. Such composites enable the control over their own stiffness between soft and rigid states through LM effective phase transition. The tested splines demonstrated that the stiffness changes approximately exceeded 1900%, and the storage modulus is 4.75 MPa and 0.2 MPa when LM is rigid and soft, respectively. In the process of heating up, the stretching strain can be enlarged by at least three times, but the load capacity is weakened. At a high temperature, the resistance of the conductive composites changes with the deformation degree, which is expected to be applied in the field of soft sensing actuators.
能够设计具有可编程特性并能响应外部刺激而变化的材料,在软致动器的众多领域中都非常重要,这些领域涉及机器人技术、药物输送和航空航天应用。为了改善人机交互,引入了具有可变刚度的材料来提高其柔顺性。本文研究了一种由液态金属(LMs)和硅橡胶组成的可变刚度复合材料。通过三维直接墨水书写交替打印两种材料,将相变材料(LMs)封装到硅橡胶中。这种复合材料能够通过液态金属的有效相变在软态和硬态之间控制自身的刚度。测试的样条表明,刚度变化大约超过1900%,当液态金属处于刚性和软态时,储能模量分别为4.75MPa和0.2MPa。在升温过程中,拉伸应变可以至少扩大三倍,但承载能力会减弱。在高温下,导电复合材料的电阻随变形程度而变化,有望应用于软传感致动器领域。