This application claims the benefit of DE 10 2012 201 855.7, filed Feb. 8, 2012, which is hereby incorporated by reference.
The present embodiments relate to a contour collimator or an adaptive filter and to an associated method for adjusting a contour in a ray path in x-ray radiation.
A contour collimator is used in radiation therapy for the treatment of tumors. In radiation therapy, a tumor is irradiated with energy-rich radiation (e.g., with high-energy x-ray radiation of a linear accelerator). In such treatment, the contour collimator is brought into the ray path of the x-ray radiation. The contour collimator has an opening, through which radiation may pass. The contour of the opening is intended to correspond to the contour of the tumor. The contour thus forms an aperture for the passage of the x-ray radiation. This provides that the tumor, and not the adjoining healthy body tissue, is irradiated with the x-ray radiation. By embodying the contour collimator in a suitable manner, almost any given contour of a tumor may be mapped.
Collimators widely used for radiation therapy are multi-leaf collimators, as described, for example, in patent DE 10 2006 039793 B3. The multi-leaf collimator has a number of leaves (e.g., 160 leaves) able to be moved by motors in relation to one another to form the opening. The leaves include a material absorbing the x-ray radiation. Two packages of leaves are disposed opposite one another so that the leaves may be moved with end face sides towards one another or away from one another.
Each of the leaves is able to be displaced individually by an electric motor. Since there may be slight deviations in the positioning of the leaves between a required specification and the actual position of the leaves currently set, each leaf has a position measurement device, with which the position currently set may be determined.
In examinations with the aid of x-rays, it often occurs that the patient or organs of the patient exhibit a greatly differing absorption behavior with respect to the applied x-ray radiation in the area under examination. For example, in images of the thorax, the attenuation in the area in front of the lungs is very large, as a result of the organs disposed there, while in the area of the lungs, the attenuation is small. Both to obtain an informative image and also to protect the patient, the applied dose may be adjusted as a function of the area so that more x-ray radiation than necessary is not supplied. This provides that a larger dose is to be applied in the areas with high attenuation than in the areas with low attenuation. In addition, there are applications in which only a part of the area under examination is to be imaged with high diagnostic quality (e.g., with little noise). The surrounding parts are of importance for orientation but not for the actual diagnosis. These surrounding areas may thus be mapped with a lower dose in order to reduce the overall applied dose.
Filters are used to attenuate the x-ray radiation. Such a filter is known, for example, from DE 44 22 780 A1. This has a housing with a controllable electrode matrix, by which an electrical field that acts on a fluid connected to the electrode matrix, in which x-ray radiation-absorbing ions are present, is able to be generated. The x-ray radiation-absorbing ions are freely movable and move around according to the field applied. In this way, by forming an appropriate field, many or few irons may be correspondingly accumulated in the area of one or more electrodes in order to change the absorption behavior of the filter locally.
The present embodiments may obviate one or more of the drawbacks or limitations in the related art. For example, a further contour collimator and a further adaptive filter that may map a contour robustly and rapidly are provided. In a further example, an appropriate method for forming a contour is provided.
An aperture forming the contour is generated with the aid of a magnetic fluid absorbing x-ray radiation or with a fluid impermeable to x-ray radiation (e.g., a ferrofluid). In a magnetic field, magnetic moments of the particles of the ferrofluid tend to travel in a direction and achieve macroscopic magnetization. Magnet elements generating magnetic fields are used to magnetize the fluid or parts of the fluid.
Ferrofluids are magnetic fluids that react to magnetic fields without solidifying. The ferrofluids are attracted by magnetic fields. The ferrofluids includes magnetic particles a few nanometers in size that are suspended in a colloidal manner in a carrier fluid. The particles may be stabilized with a polymer surface coating. True ferrofluids are stable dispersions, which provides that the solid particles do not break off over time and do not themselves accumulate on one another in extremely strong magnetic fields or separate from the fluid as another phase. Ferrofluids are supermagnetic and have a very low hysteresis.
A contour collimator or an adaptive filter for adjusting a contour of a ray path of x-ray radiation is provided. The apparatus includes a magnetic fluid impermeable to x-ray radiation and switchable magnet elements, by which an aperture forming the contour may be formed in the magnetic fluid by the magnetic fluid being attracted by the magnetic fields of the magnet elements. The contour forms the aperture (i.e., an opening in the contour collimator or the filter). An aperture may be a free opening or the diameter of the free opening, through which x-rays may be emitted or received. The embodiment offers the advantage of a robust collimator or filter, with which rapidly changing contours may be adjusted precisely
In a further embodiment, the magnetic fluid may be a ferrofluid.
In one development, the magnetic fluid may be arranged in the form of a layer with limited expansion.
Furthermore, the apparatus may include at least one second layer, in which the magnet elements are arranged. The second layer may be arranged above or below the first layer. Alternatively, a second layer may be arranged above or below the first layer in each instance.
In a further embodiment, an electric grid structure formed from conductor paths is embodied in the second layer. The magnet elements are arranged at the points of intersection of the conductor paths.
In a development, the magnet elements may include coils, through which current passes.
The contour collimator or the filter may include an electric control unit, with the aid of which the magnet elements may be switched on and off according to the contour to be formed.
A number of first and second layers may also be stacked in order to form the contour collimator.
In one embodiment, a method for adjusting a contour of a ray path of x-ray radiation using a contour collimator or an adaptive filter is provided. Magnetic fields form an aperture forming the contour in a magnetic fluid that is impermeable to x-ray radiation, by the magnetic fields attracting the magnetic fluid.
In one embodiment, the magnetic fields may be formed by switchable magnet elements.
The magnetic fields may be formed by electric currents.
While the present invention has been described above by reference to various embodiments, it should be understood that many changes and modifications can be made to the described embodiments. It is therefore intended that the foregoing description be regarded as illustrative rather than limiting, and that it be understood that all equivalents and/or combinations of embodiments are intended to be included in this description.
Number | Date | Country | Kind |
---|---|---|---|
10 2012 201 855 | Feb 2012 | DE | national |
Number | Name | Date | Kind |
---|---|---|---|
3755672 | Edholm et al. | Aug 1973 | A |
4794629 | Pastyr | Dec 1988 | A |
5037374 | Carol | Aug 1991 | A |
5438991 | Yu et al. | Aug 1995 | A |
5442675 | Swerdloff et al. | Aug 1995 | A |
5559853 | Linders et al. | Sep 1996 | A |
5625665 | Fokkink et al. | Apr 1997 | A |
5677943 | Hoebel | Oct 1997 | A |
5745279 | Ciscato et al. | Apr 1998 | A |
5751786 | Welters et al. | May 1998 | A |
5768340 | Geittner et al. | Jun 1998 | A |
5878111 | Schulz | Mar 1999 | A |
5889834 | Vilsmeier et al. | Mar 1999 | A |
6052436 | Huttner et al. | Apr 2000 | A |
6118855 | Welters et al. | Sep 2000 | A |
6269147 | Powell | Jul 2001 | B1 |
6453013 | Prins | Sep 2002 | B2 |
6757355 | Siochi | Jun 2004 | B1 |
6813336 | Siochi | Nov 2004 | B1 |
6920203 | Short et al. | Jul 2005 | B2 |
7015490 | Wang et al. | Mar 2006 | B2 |
7180980 | Nguyen | Feb 2007 | B2 |
7224763 | Naidu et al. | May 2007 | B2 |
7254216 | Thandiackal et al. | Aug 2007 | B2 |
7272208 | Yatsenko et al. | Sep 2007 | B2 |
7308073 | Tkaczyk et al. | Dec 2007 | B2 |
7386099 | Kasper et al. | Jun 2008 | B1 |
7894574 | Nord et al. | Feb 2011 | B1 |
7993058 | Bohn et al. | Aug 2011 | B2 |
20030202632 | Svatos et al. | Oct 2003 | A1 |
20040105525 | Short et al. | Jun 2004 | A1 |
20050058245 | Ein-Gal | Mar 2005 | A1 |
20090041199 | Bohn | Feb 2009 | A1 |
Number | Date | Country |
---|---|---|
4422780 | Jan 1996 | DE |
19638621 | Feb 1998 | DE |
102006039793 | Jan 2008 | DE |
Entry |
---|
German Office Action dated Sep. 26, 2012 for corresponding German Patent Application No. DE 10 2012 201 855.7 with English translation. |
German Office Action dated Jan. 11, 2013 for corresponding German Patent Application No. DE 10 2012 220 750.3 with English translation. |
Number | Date | Country | |
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20130202092 A1 | Aug 2013 | US |