This invention relates to a radiation protection device that protects patients, as well as clinical staff against excessive x-ray radiation exposure by controlling the x-ray field of exposure.
X-radiation (containing x-rays) is a form of electromagnetic radiation having a multitude of applications. One commonly used application is found in medical diagnostics, such as dental or bone imaging. Thus, while x-ray radiation is useful for medical purposes, the x-ray radiation can be harmful to the human body. As such, overexposure to x-ray radiation should be minimized. One approach to controlling exposure is to limit the x-ray field of exposure by using beam-limiting devices, also known as collimators. Traditionally, beam limiting devices have been available as either variable-aperture beam-limiting devices, or as a set of interchangeable fixed beam-limiting devices. While those configurations provide solutions for various geometric environments, they can also result in a large assortment of parts, difficulty of use, and higher cost.
Some conventional intraoral x-ray systems provide multiple interchangeable fixed beam-limiting devices. In these systems, the beam-limiting device body is generally made of an x-ray opaque high-density material, such as Nylon 6/6, filled with barium sulfite powder. The body of the beam-limiting device may include grooves, which accommodate O-rings to provide a snap fit with the x-ray tube housing. Special attachments may be used to provide appropriate shaping of the x-ray beam.
Conventional fixed beam-limiting devices are available in various shapes that may be suitable for various medical studies. However, the number of different versions of beam-limiting devices is growing based on radiation regulations, which may be dissimilar in different countries. One drawback of conventional intraoral x-ray systems is that the field replacement of the beam-limiting device requires additional effort and special tools. In addition, conventional designs do not facilitate easy adjustment in order to match a shaped opening (such as a rectangular opening) with the x-ray film or sensor being used.
In view of the foregoing, a need exists for beam-limiting devices, such as those used with x-ray systems, that overcome the short-comings of conventional beam-limiting devices.
The present invention overcomes the foregoing and other shortcomings and drawbacks of beam-limiting devices heretofore known for use in x-ray systems. While various embodiments are discussed in detail herein, it will be understood that the invention is not limited to these embodiments. On the contrary, the invention includes all alternatives, modifications and equivalents as may be included within the spirit and scope of the present invention.
In accordance with one embodiment, a modular beam-limiting device for use with an x-ray machine is provided that includes a base portion having a tubular body adapted to be received on an x-ray tubehead housing, an attachment portion having a tubular body selectively removably couplable to the base portion, at least one first magnet on the base portion, and at least one second magnet or magnetically attractive material on the attachment portion.
In accordance with another embodiment, method of securing a modular beam-limiting device to an x-ray machine is provide, the method including the steps of coupling a base portion on an x-ray tubehead housing, wherein the base portion includes at least one first magnet; and selectively removably coupling an attachment portion to the base portion, wherein the attachment portion includes at least one second magnet. The at least one first magnet and the at least one second magnet are polarized in complementary orientations such that the attachment portion is coupled to the base portion by magnetic force.
With reference to
The base portion 30, which provides support to other components (e.g., the attachment portion 32) has a tubular construction and is adapted to be received on the x-ray tubehead housing 28. The tubehead housing 28 may also include an internal groove 28a. More specifically, relative to the x-ray tube 24, the base portion 30 includes a proximal end 30a and a distal end 30b; the proximal end 30a being received in opening of the tubehead housing 28. O-rings 34, which are provided on outer surface of the base portion 30 near the proximal end 30a, are received in circumferential grooves 31a, 31b and provide frictional engagement to couple the base portion 32 with the tubehead housing 28. Grooves 28a and 31a each accommodate a portion of an O-ring thereby providing a snap fit. While the embodiments shown and described herein utilize O-rings to facilitate coupling the base portion 30 to tubehead housing 28, it will be appreciated that various other methods and structure may alternatively be used. For example, in alternative embodiments, other coupling configurations, which may include screws, pins, threads, or other suitable structure, may be utilized in addition to, or instead of, the O-rings 34 to retain the base portion 30 coupled to the tubehead housing 28. Distal end 30b of the base portion 30 includes magnets 36.
The attachment portion 32 is selectively removably couplable to the base portion 30 for easy removal and replacement and provides the desired collimation of x-ray radiation. The attachment portion 32 includes magnets 38, which are polarized in a complementary orientation to magnets 36, such that the attachment portion 32 is magnetically coupled with the base portion 30 when the attachment portion 32 is placed in proximity to the base portion 30 and magnets 36, 38 are aligned to at least one distinct angular orientation. Magnets 36, 38 are of sufficient strength to provide enough magnetic attractive force to hold in place the base portion 30 and the attachment portion 32. As shown, the magnets 36, 38 are cylindrically formed and may be axially magnetized. It will be appreciated, however, that various other shapes and configurations, including but not limited to cubic or rectangular shapes, may be used.
While the embodiments shown and described herein include magnets on both the base portion 30 and the attachment portion 32, it will be appreciated that various other configurations may alternatively be used. As a non-limiting example, an alternative embodiment may comprise at least one magnet provided in one of the base portion 30 or the attachment portion 32, and a ferromagnetic substance or a substance that is attracted to a magnet provided on the other of the base portion 30 or the attachment portion 32, whereby the magnet and the ferromagnetic or magnetically attracted substance provide for coupling of the base portion 30 and the attachment portion 32 in a manner similar to that described above.
According to embodiments of the invention, the base portion 30 and the attachment portion 32 may comprise one or more x-ray opaque high-density materials, such as Nylon 6/6 filled with barium sulfite powder. The magnets 36, 38 may be incorporated into the base portion 30 and the attachment portion 32 using standard molding techniques. Alternatively, the magnets 36, 38 may be added to the base portion 30 and/or the attachment portion 32 after the base portion 30 or attachment portion 32 have been made. For example, as shown in
Still referring to
The magnetic field modulator 40 may be formed integrally with the base portion 30 or the attachment portion 32, such as by molding therewith. Alternatively, the modulator 40 may be coupled with the base portion 30 or the attachment portion 32 after the portion has been formed. For example,
With continued reference to
In the embodiment shown in
The beam-limiting device 17 may further include additional components, such as inserts for modifying an aperture of the device 20 and/or an adapter for converting the beam-limiting device 17 to have a longer axial length. The insert and the adapter may be constructed of x-ray opaque high-density materials, such as those materials suitable for use in the base portion 30 and the attachment portion 32. Accordingly,
While the present invention has been illustrated by the description of one or more embodiments thereof, and while the embodiments have been described in considerable detail, they are not intended to restrict or in any way limit the scope of the appended claims to such detail. Additional advantages and modifications will readily appear to those skilled in the art. The invention in its broader aspects is therefore not limited to the specific details, representative apparatus and methods and illustrative examples shown and described. The various features of exemplary embodiments described herein may be used in any combination. Accordingly, departures may be made from such details without departing from the scope or spirit of Applicant's general inventive concept.
This application claims the benefit of U.S. Provisional Application No. 61/373,101, filed Aug. 12, 2010, which is hereby incorporated by reference herein in its entirety.
Number | Date | Country | |
---|---|---|---|
61373101 | Aug 2010 | US |