This invention is directed toward a patient safety positioning system, and more particularly, to a patient safety positioning system during magnetic resonance imaging (MRI).
MRI makes use of electromagnets and short bursts of electromagnetic waves that can pass through a patient's body. These waves, in the radiofrequency range, can be used to change the orientation of hydrogen atom nuclei in the patient's tissue and thus to produce a signal that depends on tissue properties. One or more magnetic coils detects the signal and transfer it to a computer, which transforms the signals received into an image of tissue. MRI requires a large static magnetic field. The strength of the field varies as a function of distance from a MRI scanner, creating a spatial gradient magnetic field. The spatial gradient of the magnetic field exerts a translational force on ferromagnetic objects that is proportional to the gradient. For the sake of safety, there are limits on the spatial gradient magnetic field for an implanted medical device.
Based on the foregoing, it is an object of the present invention to provide patient safety positioning system and related method of use. According to an embodiment of the present invention, a patient safety positioning assembly for MRI includes a bumper barrier releasably attached to an interior of a scanner bore of the MRI machine, wherein at least a functional portion of the bumper barrier is shaped and positioned corresponding to a boundary of a spatial gradient threshold of the MRI machine.
According to another embodiment of the present invention, a patient safety positioning assembly for MRI includes a bumper barrier configured to be releasably attached to an interior of a scanner bore of the MRI machine. At least a functional portion of the bumper barrier is shaped and positioned corresponding to a boundary of a spatial gradient threshold of the MRI machine, and a support portion of the bumper barrier is configured to be releasably attached to an end of the MRI scanner bore.
According to another embodiment, a method of controlling a patient of accessing spatial gradient zone of a MRI scanner using a patient safety positioning assembly includes attaching a support portion of the patient safety positioning assembly to an end of a MRI scanner bore, and positioning a functional portion of the patient safety positioning assembly at interior of MRI scanner bore, wherein the functional portion is shaped and positioned corresponding to a boundary of a spatial gradient threshold of the MRI machine.
For a fuller understanding of the invention, reference is made to the following detailed description, taken in connection with the accompanying drawings illustrating various embodiments of the present invention, in which:
The present invention will now be described more fully hereinafter with reference to the accompanying drawings, in which preferred embodiments of the invention are shown. This invention may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art. Like numbers refer to like elements throughout.
According to one embodiment of the present invention, a patient safety positioning assembly for MRI includes a bumper barrier releasably attached to an interior of a scanner bore of the MRI machine, wherein at least a functional portion of the bumper barrier is shaped and positioned corresponding to a boundary of a spatial gradient threshold of the MRI machine.
In the depicted embodiment, the circular flange 22 is and mounted on the rear end 18 of the scanner 10 while the functional bumper 24 is inserted in the central bore of the MRI scanner 10. The flared flange 22 can be slightly larger than the MRI bore opening. The circular flange 22 is configured to be mounted from either the front or rear of the MRI bore via a hook and loop fastener 26 or other suitable mounting methods.
According to one embodiment of the present invention, the bumper barrier 20 extends along the axis of the scanner 10 and conforms to the inner dimensions of a particular MRI scanner, as shown in
The position of bumper barriers 20 can be adjusted.
The bumper barrier 20 can be a single, unitary piece. Alternatively, the bumper barrier 20 can include a plurality of discrete pieces forming a unitary shape.
The bumper barrier 20 is made of materials that are non-metallic, non-magnetic, and of low electrical conductivity such as rubber, foam, polyurethane, and other material with good radiolucent capabilities. The bumper barriers 20 can be cleaned by standard hospital cleaning procedure. The bumper barrier 20 is preferably made of anti-microbial material and moisture impervious.
Referring to
At step 804, a functional portion (e.g., functional portion 24) of the bumper barrier is positioned in the interior of the MRI scanner bore, and the bumper barrier is shaped and positioned corresponding to a boundary of a spatial gradient threshold of the MRI machine. The position of the functional portion of the bumper barrier can be adjusted between an open position and a closed position, for example, via one or more joints (e.g., joint 28) mounted on a housing of the MRI scanner. For example, the joint can be a hinge joint, a pivot joint, a ball and socket joint, and the like. The support portion of the patient safety positioning assembly can be removed from the end of the MRI scanner when scanning is completed.
The MRI patient safety positioning assembly can prevent a specific portion of a patient with a medical device/implant from being exposed to an unsafe spatial gradient magnetic field. A safety positioning assembly can limit patient access to within a certain distance of a MRI coil during a MRI scan and prevent unsafe scanning for patients having certain implants. The safety positioning assembly can prevent patients and health care workers from entering a region with a spatial magnetic field gradient above a certain threshold. The invention will be especially useful for patients or health care workers having an implant device for which exposure to a certain spatial magnetic field gradient would be dangerous.
The safety positioning assembly is MRI compatible, safe and rapid setting, which will decrease the time to set up a patient for scanning, thereby further improving MRI productivity.
The assembly can be used in any modern non-invasive body scanning equipment based on NMR, MRI, and other techniques using large-scale superconducting magnets.
Many modifications and other embodiments of the invention will come to the mind of one skilled in the art having the benefit of the teachings presented in the foregoing descriptions and the associated drawings. Therefore, it is understood that the invention is not to be limited to the specific embodiments disclosed, and that modifications and embodiments are intended to be included within.