Accelerating Musculoskeletal Robotics Through Parametric Design and 3D‐Printed Flexible Structures

The human body moves smoothly through coordinated soft elements including muscles, tendons, ligaments, and cushioning tissues. Conventional musculoskeletal robots often simplify these using wires or rigid joints, limiting biological flexibility and requiring extensive customization. Thus, a unified framework for designing biomimetic compliant elements remains lacking. Here, parametric design is integrated with flexible 3D printing to generate muscle‐, tendon‐, ligament‐, and cushioning‐inspired compliant components through a unified fabrication process using a single thermoplastic polyurethane (TPU) material. Tuning pattern parameters, like lattice density and branch thickness, tailors mechanical properties across body regions. Additionally, ligament‐based joint constraints and integrated tendon‐driven actuation enable continuous, coordinated multijoint leg motions at life scale under external suspension, with partial body‐weight support and torso roll, pitch, and yaw each constrained from −20° to +20°. These results validate patterned flexible structures as a practical framework for musculoskeletal robot construction, simplifying design‐to‐fabrication workflows and enabling scalable biomimetic systems with potential extensions to whole‐body humanoids and embedded sensing.

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Publication Details

Journal
Advanced Intelligent Systems
Published
2026-09-11
DOI
https://doi.org/10.1002/aisy.70537
Primary Topic
Soft Robotics and Applications
Type
article
Field-Weighted Citation Impact
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article

Accelerating Musculoskeletal Robotics Through Parametric Design and 3D‐Printed Flexible Structures

Kento Kawaharazuka, Shunnosuke Yoshimura, Kei Okada
Advanced Intelligent Systems
Soft Robotics and Applications
article

Accelerating Musculoskeletal Robotics Through Parametric Design and 3D‐Printed Flexible Structures

Kento Kawaharazuka, Shunnosuke Yoshimura, Kei Okada
article en

Abstract

The human body moves smoothly through coordinated soft elements including muscles, tendons, ligaments, and cushioning tissues. Conventional musculoskeletal robots often simplify these using wires or rigid joints, limiting biological flexibility and requiring extensive customization. Thus, a unified framework for designing biomimetic compliant elements remains lacking. Here, parametric design is integrated with flexible 3D printing to generate muscle‐, tendon‐, ligament‐, and cushioning‐inspired compliant components through a unified fabrication process using a single thermoplastic polyurethane (TPU) material. Tuning pattern parameters, like lattice density and branch thickness, tailors mechanical properties across body regions. Additionally, ligament‐based joint constraints and integrated tendon‐driven actuation enable continuous, coordinated multijoint leg motions at life scale under external suspension, with partial body‐weight support and torso roll, pitch, and yaw each constrained from −20° to +20°. These results validate patterned flexible structures as a practical framework for musculoskeletal robot construction, simplifying design‐to‐fabrication workflows and enabling scalable biomimetic systems with potential extensions to whole‐body humanoids and embedded sensing.

Advanced Intelligent Systems
The University of Tokyo (JP)
Openalex Percentile: Top 20%
Soft Robotics and Applications
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