Miniaturizing Floating Traps to Increase RF Safety of Magnetic-Resonance-Guided Percutaneous Procedures

Abstract

Insights

Floating radiofrequency (RF) traps mitigate RF heating in cardiovascular MRI guidewires. This novel application of RF traps reduces induced currents and heating without compromising essential guidewire mechanical properties.

Area of Science:

  • Cardiovascular interventions
  • Medical imaging
  • Radiofrequency engineering

Background:

  • Cardiovascular catheter-based interventions increasingly utilize MRI, requiring conductive guidewires.
  • Conductive guidewires in MRI systems risk RF heating due to induced currents.
  • Existing heating mitigation techniques often compromise guidewire mechanical performance.

Purpose of the Study:

  • To propose and evaluate a novel application and miniaturization of floating RF traps for mitigating RF heating in MRI guidewires.
  • To assess the impact of RF traps on guidewire mechanical properties.
  • To validate the modeling and effectiveness of miniaturized RF traps.

Main Methods:

  • Theoretical and experimental analysis of induced impedance in RF traps.
  • Modeling of RF trap distributions along catheter length.
  • Phantom experiments to measure induced current and heating.
  • Comparison with commercial simulation packages.

Main Results:

  • Miniaturized RF traps can be accurately modeled, including their induced series impedance.
  • RF traps effectively reduce induced RF currents and associated heating.
  • The proposed method demonstrates feasibility in phantom experiments.

Conclusions:

  • Floating RF traps offer a viable solution for mitigating RF heating in MRI-compatible guidewires.
  • This technique preserves critical mechanical properties of guidewires.
  • Miniaturized RF traps are a promising advancement for interventional cardiovascular MRI procedures.