Holzer Simon, Konstantinidi Stefania, Koenigsdorff Markus, Martinez Thomas, Civet Yoan, Gerlach Gerald, Perriard Yves
Integrated Actuators Laboratory, Ecole Polytechnique Fédérale de Lausanne, Rue de la Maladière 71b, 2000 Neuchâtel, Switzerland.
Institute of Solid-State Electronics, Faculty of Electrical and Computer Engineering, Dresden University of Technology, Mommsenstraße 15, 01069 Dresden, Germany.
Materials (Basel). 2024 Jul 25;17(15):3672. doi: 10.3390/ma17153672.
Dielectric elastomer actuators (DEAs) have gained significant attention due to their potential in soft robotics and adaptive structures. However, their performance is often limited by their in-plane strain distribution and limited mechanical stability. We introduce a novel design utilizing fiber reinforcement to address these challenges. The fiber reinforcement provides enhanced mechanical integrity and improved strain distribution, enabling efficient energy conversion and out-of-plane displacement. We discuss an analytical model and the fabrication process, including material selection, to realize fiber-reinforced DEAs. Numerical simulations and experimental results demonstrate the performance of the fiber-reinforced equibiaxial DEAs and characterize their displacement and force capabilities. Actuators with four and eight fibers are fabricated with 100 μm and 200 μm dielectric thicknesses. A maximal out-of-plane displacement of 500 μm is reached, with a force of 0.18 N, showing promise for the development of haptic devices.
介电弹性体致动器(DEAs)因其在软机器人技术和自适应结构方面的潜力而备受关注。然而,它们的性能常常受到面内应变分布和有限机械稳定性的限制。我们引入了一种利用纤维增强的新颖设计来应对这些挑战。纤维增强提供了更高的机械完整性和改善的应变分布,实现了高效的能量转换和平面外位移。我们讨论了一个分析模型以及制造过程,包括材料选择,以实现纤维增强的介电弹性体致动器。数值模拟和实验结果展示了纤维增强等双轴介电弹性体致动器的性能,并表征了它们的位移和力的能力。制造了具有四根和八根纤维、介电厚度分别为100μm和200μm的致动器。实现了500μm的最大平面外位移,力为0.18N,显示出在触觉设备开发方面的潜力。