Oct 2026· IEEE Robotics and Automation Letters· Vol 11, pp. 11968-11975· 0 citations· 24 references
Abstract
Soft robotic arms, which are most commonly constructed from fluid-driven actuators, have demonstrated a high degree of compliance and the ability to move in simple and complex ways, from single bends to whole-arm gripping to drawer opening. However, their practical applications have been constrained by limited load-bearing capacities: soft arms rarely lift more than 3 N in cross workspace movements. Designing soft robotic arms to have a high load-bearing capacity is an unsolved challenge, as simply increasing actuation pressure dramatically reduces compliance at the arm’s surface. Antagonistic actuation (without a backbone) has shown promise, but is inherently limited to the available actuation pressures, while actuation against an inextensible backbone - similar to hyper-redundant manipulators - locks out axial deformation. In this article, we propose a third option: a passive, extensible backbone constructed from a tailorable architected geometry that adjusts stiffness, retains the ability to change length, and is compatible with unidirectional or antagonistic actuation. Our design consists of a multilayer stack of sinusoidal wave-shapes, inspired by recently developed trimmed helicoids, which shifts the center point of any soft arm’s stiffness range while otherwise preserving actuatable degrees of freedom. We characterize bending, axial, and shear stiffness through finite element analysis validated with prototype tests, and further experimentally show how these backbones can be used to improve load bearing capacity. Our results provide a general structural reinforcement strategy for soft robotic arms and demonstrate the potential for using our structure or similar structures to augment existing arm designs.
Conventional robotic arms are primarily designed for bending deformation at a constant length, which limits their ability to meet operational requirements that involve extending and manipulating within complex environments, such as deep cavities and obstacle-cluttered spaces. To address this limitation, this study pr...
Xiang Zhang, Xue-Song Wu, Sun-Quan Yu et al.· Journal of Mechanisms and Ro...· 0 citations
Soft actuators are widely used in grasping tasks involving irregularly shaped and fragile objects due to their inherent compliance. However, most existing soft actuators lack shape-morphing capabilities, making it difficult to achieve optimal grasping performance when faced with different operational scenarios. Inspire...
Xuan-Hao Zhang, Jian-Tao Yao, Shuai Zhang et al.· IEEE Robotics and Automation...· 0 citations
Soft pneumatic actuators are widely used in robotic manipulation due to their compliance and adaptability; however, their performance is typically fixed at the fabrication stage, limiting their suitability for applications requiring task-specific tuning. This paper presents a reconfigurable self-bending contraction act...
Rowan Dressel, S. Katiyar, S. Nefti-Meziani et al.· Actuators· 0 citations
Soft robots have shown promise across applications such as wearable assistance, gripping, manipulation, and locomotion, where adaptability, safety, and compliance are essential. These functions are largely enabled by a small set of fundamental actuation modes: contraction, bending, twisting, rotation, and stiffening; b...
Ming-Yuan Li, Russell Dickerson, Run-Ze Zuo et al.· Science Advances· 0 citations
In this paper, we present the Berkeley QUAD (Quasi-direct-drive, Underactuated, Asymmetric Design) Hand, a four-finger anthropomorphic robotic hand with 11 degrees of freedom and 8 degrees of actuation. The design utilizes QDD actuation at the base of each finger, enabling high force transparency for dexterous, adaptiv...
Benjamin Davis, Chase Kidder, Hannah S. Stuart· 0 citations
Existing soft grippers often suffer from slow actuation, continuous energy consumption during grasp maintenance, and limited payload-to-weight ratios, which restrict their application in dynamic and unstructured environments. In addition, fixed-geometry designs and multi-actuator architectures frequently compromise geo...
Tang-Yan Wang, Tian-Yu Cheng, Shao-Kun Wang et al.· Bioinspiration & Biomimetics· 0 citations
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