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arXiv · 2609.15276

Low Clearance Hinge Joint Mechanism Based on 3D Printing on Sheet Fabrication Methodology

Abstract

This paper presents a low-clearance hinge joint mechanism based on the 3D printing on sheet fabrication method. This approach simplifies the fabrication of hinge mechanisms and overcomes limitations of conventional origami manufacturing by eliminating the need for adhesives commonly used during assembly, making it suitable for robots at the tens-of-centimeters scale. The advantages and disadvantages of three types of hinge joint mechanisms are compared, and a hinge joint that can be designed with low clearance for various facet thicknesses is selected. Based on the selected hinge joint, the twisting angle and bending force are analyzed, leading to the implementation of a clearance of 0.1 mm. Torsional resistance is experimentally evaluated to measure the torque required for twisting caused by plastic deformation and clearance. The results show that the torque associated with plastic deformation is sufficient to constrain the undesired degrees of freedom of the hinge joint, while the torque required for twisting due to clearance is minimal. Based on the analyzed data, the proposed hinge joint mechanism is applied to a 3-degree-of-freedom delta robot manipulator, demonstrating precise motion with low clearance.

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Jaehyung Jang, Euibin Shin, Allison M. Okamura, Jee-Hwan Ryu. 2026-09-14. Low Clearance Hinge Joint Mechanism Based on 3D Printing on Sheet Fabrication Methodology. https://arxiv.org/abs/2609.15276

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