Quantitative assessments of image intensifier distortion induced by weak (Sub-Gauss) magnetic fields during

Xingyu Nie1, Azmul H Siddique1, Peter Hardy1

  • 1Department of Radiology, University of Kentucky, Lexington, Kentucky, USA.

Medical Physics
|November 27, 2022
PubMed
Abstract

Insights

Weak magnetic fields in surgical rooms can cause significant S-distortion in fluoroscopic images, impacting procedures. Mitigation strategies like shielding and relocation are essential for accurate imaging during image-intensified fluoroscopically-guided interventions.

Area of Science:

  • Medical Imaging Physics
  • Interventional Radiology
  • Biomedical Engineering

Background:

  • Surgical procedures using fluoroscopy can be compromised by sigmoidal distortion (S-distortion) in image intensifier (II) systems.
  • This distortion occurs even away from strong magnetic fields, indicating ambient weak magnetic fields are a factor.

Purpose of the Study:

  • Quantitatively assess the magnetic field threshold for unacceptable S-distortion during fluoroscopic procedures.
  • Identify sources of magnetic fields in surgical facilities and develop mitigation strategies.

Main Methods:

  • Screened ten surgical facilities for magnetic field distribution using a gaussmeter.
  • Scanned phantom rods with a GE OEC 9900 Elite II system at varying distances from magnetic field 'hot spots'.
  • Compared distortion levels between different image intensifier models and evaluated magnetic shielding effectiveness.

Main Results:

  • Weak magnetic fields (<100 µT) induced unacceptable S-distortion (θ > 4°).
  • Identified threshold magnetic fields for distortion as low as 47 µT (GE II) and 94 µT (Siemens II).
  • S-distortion was independent of implant material but dependent on the image intensifier model; shielding and relocation proved effective.

Conclusions:

  • Ambient sub-Gauss magnetic fields in surgical environments can induce unacceptable S-distortion.
  • Careful consideration of magnetic fields is crucial for image-intensified fluoroscopically-guided procedures to ensure accurate imaging and optimal surgical outcomes.

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