This patent application claims priority to German Patent Application No. 10 2006 050 781.9 filed Oct. 27, 2006. The complete disclosure of the above-identified patent application is hereby fully-incorporated herein by reference.
The present invention relates to a fixture for spatial positioning of a device. More particularly, the invention relates to a fixture for spatial positioning of a device with a medical application, that is supported in a pivoting arrangement on a holding device or the like by an arm.
Devices for positioning a medical device generally require the treatment area to be positioned centrally in relation to the holding fixture. In such conventional methods, the positioning fixture can be moved in space along a rail bent into a C-shape. The patient's treatment area is preferably positioned in the center of the C-shaped rail. A fixture of this kind can be used for supporting both X-ray and shock wave generation devices for treating bone growth or for lithotripsy of kidney stones. Accordingly, the medical device is aligned along an arc located on the same plane as the patient's treatment area.
A disadvantage of the conventional devices is that the treatment area must be positioned centrally in relation to the arc-shaped arrangement of the holding fixture in order for the X-ray beams or the focal point of the generated shock waves to be oriented specifically for the device. Thus, even minor positioning inaccuracies outside the center point of the holding fixture can lead to unwanted medical side effects. For example, the shock waves can have a characteristic that is not suitable for the required successful treatment effect in this position. Therefore, it is necessary to ensure at all times that the patient's treatment area is positioned precisely in the spatial area of the center of the arc-shaped holding fixture.
A further disadvantage of conventional methods is that the device can only be aligned in one plane in relation to the treatment area. As a result, geometrical adaptations intended to arrange the treatment area in the specified center point are very time consuming because the treatment area, i.e. the patient, must be precisely positioned with regard to the holding fixture and must be fixed in this position for the duration of the treatment. This is because the device in accordance with the prior art can only be used along the holding fixture in accordance with the rail bent into a C-shape, meaning that the alignment of the device is two-dimensional.
Thus, a need exists in the art for a device that addresses the deficiencies of conventional devices.
The present invention can provide a fixture for spatial positioning of a device such that the device can be aligned and secured in space in relation to a patient's treatment area, with the movement of the device being easy and efficient.
In one aspect of the invention, a ring-shaped holding body is attached to the free end of an arm, and a spherical outer jacket surface is provided on the device. The spherical outer jacket surface is enclosed in whole or in part by the ring-shaped holding body. The outer jacket surface of the device is held in the holding body and can be swiveled relative to the holding body.
The inside of the holding body can be arranged at a distance from the outer jacket surface, such that the inside of the holding body runs concentrically to the outer jacket surface. Further, at least one plain and/or antifriction bearing can be arranged between the holding body and the outer jacket surface, supported against the holding body and acting against the outer jacket surface. The plain and/or anti-friction bearings permit a relative movement between the device and the holding body as a component of the holding fixture, and this relative movement can be performed in two of the three spatial vectors.
In one aspect of the invention, the plain and/or anti-friction bearings can comprise two rings coupled to the inside of the holding body and aligned such that a space does not exist between the two rings. Further, the two rings can be parallel to one another and perpendicular to the lengthwise axis of the device. The plain and/or anti-friction bearings can comprise spherical roller bodies arranged in the two rings and can vertically contact the spherical outer jacket surface of the device. In addition, the two rings can be disposed in the ends of the holding body, and the curvature of the two rings can run concentrically with the spherical outer jacket surface. The spherical outer jacket surface can have a surface that provides for as little friction as possible to allow the roller bodies to move easily along it.
The movement between the outer jacket surface and the holding body is guaranteed by the geometrical arrangement of the outer jacket surface and the inner contour of the holding body that is adapted to the outer jacket surface, without the device slipping out of the holding body as a result of the positioning possibilities. Instead, the ring-shaped holding body partially or entirely encloses the outer jacket surface in order to support it and, at the same time, to provide a relative movement in space.
The alignment and positioning options of the device in the space are increased because the holding device is arranged on an arm with a swivel joint provided at its end between the end of the arm and the holding body. Thus, the device can be swiveled about the lengthways axis of the arm. As a result, two subsections overlap allowing for adjustment of the device in a vertical plane. Both subsections of the adjusting angle overlap within a spatially limited area in order to achieve an overall adjusting angle range of +/−45 degrees. Furthermore, the device can be moved within an adjusting angle of +/−26 degrees in an adjusting plane running perpendicular to the lengthways axis of the device and parallel to the lengthways axis of the arm so that the overlapping of the two adjusting movements allows the device to be aligned diagonally in space overall. In this regard, the total adjustment available is +/−71 degrees (the total of the 26 degree and 45 degree subsections) with respect to the horizontal axis of the device.
The adjusting angle is limited by the geometrical dimensions of the outer jacket surface with regard to the diameter of the cylindrically shaped device. The cylindrical jacket surface of the device arranged immediately adjacent to the outer jacket surface namely acts as a stop and is in contact with the side area of the holding body at the maximum possible set deflection.
According to one aspect, two guide elements can be provided on the swivel joint. The two guide elements can be arranged with one inside the other in the form of a dovetail guide. This arrangement can provide for rotation of the device. Openings in the dovetail guide can be closed by a cover that is aligned along the lengthwise axis of the arm.
Further, a brake can be disposed in the central plane of the holding body, such that it contacts the spherical outer jacket such that activation of the brake can stop the movement of the device. The brake can comprise a two-part ring, where an actuator can press the two-part ring apart, allowing movement of the device; and a spring can press the two-part ring together, essentially preventing movement of the device.
Additional aspects of the invention include supports struts on the arm that can be telescoped inside one another, and one or more handles on the device to facilitate movement.
The drawings show sample embodiments in accordance with the present invention, the details of which are explained hereinafter.
Referring to the drawings, in which like numerals represent like elements, aspects of the exemplary embodiments will be described.
The device 2 is attached to a holding device 5 configured as a carriage by means of an L-shaped arm 6. The holding device 5 can be moved along a base. The L-shaped arm 6 consists of a swivel joint 7 arranged between the sections of the arm 6 such that the arm 6 can be pivoted through 360 degrees in relation to the holding device 5. Furthermore, the swivel joint 7 can be moved along with the vertical section of the arm 6 in order to adjust the height.
A swivel joint 21 is disposed at the free end of the arm 6 and is explained in more detail below. A holding body 11 is attached to the swivel joint 21, and the entirety of the holding body 11 forms a completely enclosed ring. The holding body 11 is configured in two parts for installation and removal purposes. Furthermore, the holding body 11 can be configured as an open ring with a ring section of at least 185 degrees.
The device 2 consists of a housing with a cylinder-shaped jacket surface 27. A spherical outer jacket surface 13 is provided approximately in the geometrical center of the device 2 and is completely or partly enclosed by the holding body 11. The device 2 is thus supported by the holding device 5 by the holding body 11 in such a way that the device 2 can be moved relative to the holding body 11.
The distance between the inside 12 and the outer jacket surface 13 corresponds to the spherical radius of the balls 16. Furthermore, the balls 16 make perpendicular contact with the outer jacket surface 13 irrespective of the angle position of the outer jacket surface 13 in relation to the holding body 11. Furthermore, a brake 17 is arranged on the inside 12 of the holding body 11, and the brake 17 is held in a fixed location in the holding body 11 and runs approximately centrally between the two rings 14, 15. The brake 17 acts on the outer jacket surface 13 in such a way that the movement of the device 2 is stopped by brake bodies 17′ (
Furthermore,
The device 2 can be moved in a vertical direction about the swivel joint 21, i.e., about the lengthwise axis of the struts 8. Furthermore, the device 2 can be aligned in a plane running parallel to the lengthways axis of the struts 8 because the outer jacket surface 13 can be moved within the holding body 11 until the cylinder jacket surface 27 that runs in the area of the outer jacket surface 13 makes contact with the end of the holding body 11 as a stop 28. In the selected sample embodiment, the geometrical relationships between the diameter of the outer jacket surface 13 and the internal diameter of the holding body 11 have been selected in such a way that an adjustment angle a of +/−26 degrees about the center 20 of the device 2 is possible. This is a first subsection of the adjustment angle a. A second subsection of the adjustment angle a is generated by means of the opportunities to rotate the swivel joint 21. The deflection in a vertical direction, i.e. in the plane running at right angles to the lengthways axis 9 of the device 2, is approx. +/−45 degrees.” In this regard, the total adjustment available is +/−71 degrees (the total of the 26 degree and 45 degree subsections) with respect to the horizontal axis of the device.
Due to the design of the fixture 1, it is now possible for the patient and/or his or her treatment area 4 to remain fixed and stationary. The device 2 can be positioned precisely in relation to the treatment area 4 without the need for the area to be moved. A monitor 26 with a localization and navigation system (not illustrated) is provided for this purpose, by means of which a doctor conducting the treatment is able to monitor continuously the alignment of the device 2 in relation to the treatment area 4.
Number | Date | Country | Kind |
---|---|---|---|
10 2006 050 781 | Oct 2006 | DE | national |
Number | Name | Date | Kind |
---|---|---|---|
4276779 | Davis, Jr. et al. | Jul 1981 | A |
4537074 | Dietz et al. | Aug 1985 | A |
4539989 | Forssmann et al. | Sep 1985 | A |
4807627 | Eisenmenger | Feb 1989 | A |
4984575 | Uchiyama et al. | Jan 1991 | A |
5119801 | Eisenhoefer et al. | Jun 1992 | A |
5174280 | Gruenwald et al. | Dec 1992 | A |
5222484 | Krauss et al. | Jun 1993 | A |
5287856 | Treiber | Feb 1994 | A |
5301660 | Rattner | Apr 1994 | A |
5350351 | Saffer | Sep 1994 | A |
5419327 | Rohwedder et al. | May 1995 | A |
5419335 | Hartmann et al. | May 1995 | A |
5451010 | Heuser | Sep 1995 | A |
5545124 | Krause et al. | Aug 1996 | A |
5595178 | Voss et al. | Jan 1997 | A |
5921930 | Uberle | Jul 1999 | A |
6128575 | Croom et al. | Oct 2000 | A |
6306089 | Coleman et al. | Oct 2001 | B1 |
6434216 | Maki et al. | Aug 2002 | B1 |
6695270 | Smed | Feb 2004 | B1 |
7207714 | Dhillon | Apr 2007 | B1 |
20010023326 | Spector | Sep 2001 | A1 |
20010039379 | Hagelauer | Nov 2001 | A1 |
20030174809 | Neumann | Sep 2003 | A1 |
20050010140 | Forssmann | Jan 2005 | A1 |
20080033287 | Schwarze et al. | Feb 2008 | A1 |
20090216160 | Schwarze | Aug 2009 | A1 |
Number | Date | Country |
---|---|---|
3427001 | Jan 1986 | DE |
4039408 | Jun 1991 | DE |
10065450 | Jul 2002 | DE |
102005017724 | Nov 2006 | DE |
1445758 | Aug 2004 | EP |
2690719 | Nov 1993 | FR |
WO 2006010865 | Oct 2006 | WO |
WO 2006108615 | Oct 2006 | WO |
Number | Date | Country | |
---|---|---|---|
20090014607 A1 | Jan 2009 | US |