TY - JOUR
T1 - Design, modelling and control of hyper-redundant robots in constrained environments
T2 - A review
AU - Xu, Shuo
AU - He, Yuqi
AU - Chen, Yishi
AU - Ma, Nan
AU - Luo, Ming
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/10
Y1 - 2026/10
N2 - Hyper-redundant robots (HRs), with their slender, flexible, and highly redundant structures, are uniquely suited for operation in hazardous, harsh, and confined environments where traditional rigid robots face limitations. This review systematically examines developments in the design, modeling, and control of HRs over the past two decades (2005∼2025), based on comprehensive literature retrieval from Web of Science and Scopus. We categorize key advances in actuation technologies-including electric motors, cable, pneumatic, and bionic muscle actuators-and structural innovations enabling compliance and dexterity in constrained spaces. The review contrasts traditional geometric modeling approaches, such as piecewise constant curvature and Cosserat rod theories, with modern data-driven and hybrid learning-based control methods. Applications span diverse domains, including nuclear facilities, aerospace engine inspection, pipeline and underwater maintenance, aerial robotics, and minimally invasive surgery. We further identify major research challenges, such as stiffness regulation, real-time dynamic modeling, integration of smart materials, miniaturization, proprioceptive sensing, and safe human-robot collaboration. By synthesizing design principles, modeling frameworks, and control methods, this review not only evaluates the current maturity of HR research but also identifies potential opportunities for future advancement. The purpose of this review is to provide a reference point for researchers interested in the design, modeling, and control of HRs operating in constrained environments.
AB - Hyper-redundant robots (HRs), with their slender, flexible, and highly redundant structures, are uniquely suited for operation in hazardous, harsh, and confined environments where traditional rigid robots face limitations. This review systematically examines developments in the design, modeling, and control of HRs over the past two decades (2005∼2025), based on comprehensive literature retrieval from Web of Science and Scopus. We categorize key advances in actuation technologies-including electric motors, cable, pneumatic, and bionic muscle actuators-and structural innovations enabling compliance and dexterity in constrained spaces. The review contrasts traditional geometric modeling approaches, such as piecewise constant curvature and Cosserat rod theories, with modern data-driven and hybrid learning-based control methods. Applications span diverse domains, including nuclear facilities, aerospace engine inspection, pipeline and underwater maintenance, aerial robotics, and minimally invasive surgery. We further identify major research challenges, such as stiffness regulation, real-time dynamic modeling, integration of smart materials, miniaturization, proprioceptive sensing, and safe human-robot collaboration. By synthesizing design principles, modeling frameworks, and control methods, this review not only evaluates the current maturity of HR research but also identifies potential opportunities for future advancement. The purpose of this review is to provide a reference point for researchers interested in the design, modeling, and control of HRs operating in constrained environments.
KW - Constrained environments
KW - Control
KW - Design
KW - Hyper-redundant robots
KW - Modelling
UR - https://www.scopus.com/pages/publications/105041250365
U2 - 10.1016/j.robot.2026.105572
DO - 10.1016/j.robot.2026.105572
M3 - 短篇评述
AN - SCOPUS:105041250365
SN - 0921-8890
VL - 204
JO - Robotics and Autonomous Systems
JF - Robotics and Autonomous Systems
M1 - 105572
ER -