ArXiv

A Master-Salve Robot Manipulator for Needle-Based Teleoperation in MRI Chamber

Authors
Omar Curiel, Jing-Yuan Huang, Po-Chih Chen...
Categories
cs.RO
arXiv
https://arxiv.org/abs/2608.06354v1
PDF
https://arxiv.org/pdf/2608.06354v1

Brief

A MR-safe master–slave robot for MRI-guided abdominal needle interventions pairs a human-operated 2+1‑DoF master with a 2+1‑DoF slave using fluid transmission. Elastomeric fluid actuators handle angulation and low‑friction graphite piston cylinders drive insertion, yielding sub-newton force transparency and sub-millimeter motion over bedside piping. A digital master adds multimodal manual/digital/hybrid/collaborative control; preliminary MRI tests validated bedside manual control in an in‑vivo pig experiment.

Why it matters

MR-safe master–slave robot for abdominal MRI interventions: a human-operated 2+1-DoF master transmits motion/force to a 2+1-DoF slave via fluid transmission (Curiel et al., arXiv 2026-08-06).

Key details

  • Actuation design: elastomeric fluid actuators provide remote angulation control while low‑friction graphite piston cylinders handle needle insertion, achieving sub-newton force transparency and sub-millimeter motion transmission across bedside fluid piping.
  • Control and validation: a digital master controller enables multimodal manual, digital, hybrid, and collaborative modes (beyond split-axis/mode-switch architectures); preliminary MRI scanner tests show functional viability for an in‑vivo pig experiment in bedside manual control mode.
Source evidence

Abstract

We present a MR safe, master-slave robot manipulator for abdominal interventions in the MRI chamber. A human operated 2+1-DoF master controller manipulator transmits motion and force to a 2+1-DoF slave manipulator via fluid transmission. Jointly, a digital master controller provides multimodal control capability beyond common split axis or mode switchable hybrid human-digital controller configurations found in previous studies. High input impedance, low-leakage, elastomeric fluid actuators are delegated to remote angulation control. Low-friction graphite piston cylinders are delegated to needle insertion axis remote actuation given the sub-newton force transparency and sub-millimeter motion transmission over bedside fluid piping lengths. The device enables real-time MRI guided interventions allowing manual, digital, hybrid, and collaborative control modes. Collaborative tasks such as assisted tissue penetration, fault-driven virtual fixture, and motion compensation through feedback control are presented in this paper. Preliminary MR scanner results demonstrate manipulator functional viability for an in-vivo pig experiment in bedside, manual control mode configuration.

Comment: 14 pages, 12 figures