English

A Compact 3D-Printed Soft Finger with Cyclic Hydraulic Actuation

Systems and Control 2026-07-20 v1

Abstract

Hydraulic soft fingers offer compliant and gentle manipulation, but their practical deployment is limited by bulky fluidic hardware, fabrication complexity, and insufficient design validation. This paper presents a compact 3D-printed soft hydraulic finger driven by a miniature cyclic peristaltic loop. The finger integrates compliant bellows, rigid connectors, and fluidic ports, while an Abaqus fluid-structure model is used to guide selection of wall thickness, pitch angle, and bellows length. The selected design is validated through baseline-corrected chamber-pressure measurements and vision-based angle tracking. Results show that the quasi-static finite-element model captures the main pressure-angle trends, with remaining offsets mainly attributed to bonding-induced stiffness and hydraulic losses. Vision-feedback control further enables repeatable angle tracking over a large bending range. Finally, grasping tests on fragile and deformable objects, including tofu and blueberries, demonstrate gentle, slip-free contact without visible damage. Overall, this work establishes a reproducible pipeline from FEA-guided design to closed-loop validation for compact 3D-printed hydraulic soft fingers.

Cite

@article{arxiv.2607.17840,
  title  = {A Compact 3D-Printed Soft Finger with Cyclic Hydraulic Actuation},
  author = {Zefang Mao and Yunjia Li and Victoria Bamgboye and Sara Ben Haj Hammouda and Aika Ono and Wen Fan and Chao Wu and Dandan Zhang},
  journal= {arXiv preprint arXiv:2607.17840},
  year   = {2026}
}

Comments

6 pages, 5 figures, The 31st International Conference on Automation and Computing