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April 4, 2026Advanced Robotics Research0 citationsOpen Access

Optimization of Magnetic Milli‐Spinner for Robotic Endovascular Intervention

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LLLu LuLHLuca HigginsJBJack S. Bernardo

Key Points

  • The research aims to optimize the design of a magnetic milli-spinner for enhanced navigation in vascular interventions.
  • Combined computational fluid dynamics simulations with experimental validation.
  • Investigated effects of structural design parameters like through-hole radius and fin angles.
  • Tested performance in saline and fluid mimicking arterial blood.
  • Achieved swimming velocities of 55 cm/s in saline and 44 cm/s in blood-mimicking fluid.
  • Exceeded performance of existing untethered magnetic robots in tubular environments.
  • Enabled stable operation against high physiological flow rates in major arteries.

Abstract

Vascular diseases, such as atherosclerosis, thrombosis, and aneurysms, can lead to life‐threatening medical events. Conventional catheter‐ or guidewire‐based interventional devices often struggle to navigate through highly tortuous vasculature. The recently developed multifunctional magnetic milli‐spinner offers a promising wireless solution by integrating a central through‐hole and side slits into a cylindrical body with helical fins, enabling rapid and stable navigation for clot debulking, targeted drug delivery, and aneurysm treatment. Here, we combine computational fluid dynamics simulations with experimental validation to optimize the milli‐spinner's structural design for high‐velocity propulsion and high‐efficiency clot debulking in tubular flow environments. By systematically investigating the effects of through‐hole radius, fin number, fin helical angle, and slit dimension on propulsion performance, the optimized milli‐spinner achieves swimming velocities of 55 cm/s (≈175 body lengths/s) in saline water and 44 cm/s (≈140 body lengths/s) in a fluid with viscosity (3.5 mPa·s) comparable to that of arterial blood at high shear rates, far exceeding existing untethered magnetic robots in tubular environments (<80 body lengths/s). This exceptional velocity enables stable upstream operation against strong physiological flows representative of major arteries and veins, establishing the milli‐spinner as a robust untethered navigation platform for operation in high‐flow, tortuous vasculature.

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Cite This Study

Lu et al. (2026) studied this question.

synapsesocial.com/papers/69d0af36659487ece0fa5297https://doi.org/10.1002/adrr.70121
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