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Review
. 2021 May;51(5):716-723.
doi: 10.1007/s00247-020-04894-9. Epub 2021 Apr 19.

Components of a magnetic resonance imaging system and their relationship to safety and image quality

Affiliations
Review

Components of a magnetic resonance imaging system and their relationship to safety and image quality

Suraj D Serai et al. Pediatr Radiol. 2021 May.

Abstract

Magnetic resonance imaging (MRI) is a powerful diagnostic tool that can be optimized to display a wide range of clinical conditions. An MRI system consists of four major components: a main magnet formed by superconducting coils, gradient coils, radiofrequency (RF) coils, and computer systems. Each component has safety considerations. Unless carefully controlled, the MRI machine's strong static magnetic field could turn a ferromagnetic object into a harmful projectile or cause vertigo and headache. Switching magnetic fields in the gradients evokes loud noises in the scanner, which can be mitigated by ear protection. Gradients also generate varying magnetic fields that can cause peripheral nerve stimulation and muscle twitching. Magnetic fields produced by RF coils deposit energy in the body and can cause tissue heating (with the potential to cause skin burns). In this review, we provide an overview of the components of a typical clinical MRI scanner and its associated safety issues. We also discuss how the relationship between the scanning parameters can be manipulated to improve image quality while ensuring a safe operational environment for the patients and staff. Understanding the strengths and limitations of these parameters can enable users to choose optimal techniques for image acquisition, apply them in clinical practice, and improve the diagnostic accuracy of an MRI examination.

Keywords: Children; Gradients; Image quality; Magnetic resonance imaging; Radiofrequency coils; Safety; System components.

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References

    1. Grover VP, Tognarelli JM, Crossey MM et al (2015) Magnetic resonance imaging: principles and techniques: lessons for clinicians. J Clin Exp Hepatol 5:246–255 - DOI
    1. Serai SD, Hu HH, Ahmad R et al (2020) Newly developed methods for reducing motion artifacts in pediatric abdominal MRI: tips and pearls. AJR Am J Roentgenol 214:1042–1053 - DOI
    1. Serai SD, Jones BV, Podberesky DJ, Coley B (2013) Is it time for a dedicated pediatric MRI ACR accreditation program? J Am Coll Radiol 10:274–278 - DOI
    1. Serai SD, Rigsby CK, Kan HJ et al (2018) Inclusion of pediatric-specific indications and procedures in the new ACR MRI accreditation program. J Am Coll Radiol 15:1022–1026 - DOI
    1. International Electrotechnical Commission (2010) Medical electrical equipment — part 2–33: particular requirements for the basic safety and essential performance of magnetic resonance equipment for medical diagnosis. IEC 60601–2-33. U.S. Food and Drug Administration website. https://www.accessdata.fda.gov/scripts/cdrh/cfdocs/cfStandards/detail.cf... . Accessed 29 Sep 2020

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