X-ray tube rotor with carbon composite based material
09853511 · 2017-12-26
Assignee
Inventors
Cpc classification
International classification
A61B6/00
HUMAN NECESSITIES
Abstract
The present invention relates to a rotor for an X-ray tube. In order to provide further possibilities for weight reduction in X-ray tubes for providing an increase of rotation frequency, a rotor (10) for an X-ray tube is provided, comprising a rotational structure (12) with a plurality of electrically conducting elements (14), the ends thereof connected to each other and provided such that an external stator magnetic field generated by a stator induces a current in the electrically conducting elements, which current generates a rotor magnetic field to interact with the stator magnetic field. At least the plurality of electrically conducting elements is made from carbon composite based material.
Claims
1. A rotor for an X-ray tube, comprising: a rotational structure with a plurality of electrically conducting elements, ends of the electrically conducting elements being connected to each other and provided such that an external stator magnetic field generated by a stator induces a current in the electrically conducting elements, which current generates a rotor magnetic field to interact with the stator magnetic field; wherein at least the plurality of electrically conducting elements is made from carbon composite based material; and wherein the rotational structure is provided as a cylindrical collar on an anode disc on a side opposite a side where a focal track is provided.
2. The rotor according to claim 1, wherein the carbon composite based material comprises carbon-fibre reinforced carbon; and wherein the carbon-fibres are oriented in a way that high modulus fibres optimize the induced current flow whereas high tensile fibres provide the required strength.
3. An X-ray system, comprising: a rotatable anode arrangement; a bearing arrangement; a stator; and a rotor comprising a rotational structure with electrically conducting elements, end of the electrically conducting elements being connected to each other and provided such that an external stator magnetic field generated by the stator induces a current in the electrically conducting elements, which current generates a rotor magnetic field to interact with a stator magnetic field, wherein at least the electrically conducting elements are made from carbon composite based material, and wherein the rotational structure is provided as a cylindrical collar on an anode disc on a side opposite a side where a focal track is provided; wherein the rotatable anode arrangement is supported by the bearing arrangement; and wherein the stator is provided with electrical coils to generate the stator magnetic field to interact with the rotor such that electrical current is generated in the rotor generating the rotor magnetic field for rotating the anode arrangement.
4. The X-ray system according to claim 3, wherein the stator is provided at least partially enclosing the cylindrical collar.
5. The X-ray system according to claim 3, wherein the stator comprises a number of C-shaped iron cores, around which a winding is provided; and wherein the rotational structure is arranged partly between ends of the C-shaped iron cores.
6. The X-ray system according to claim 3, wherein the rotational structure is provided integrally with the anode disc; and wherein the stator is provided along an edge of the anode disc structure.
7. The X-ray system according to claim 5, wherein the stator is segmented; and wherein the C-shaped iron cores of the stator are arranged with at least one gap such that a focal spot is provided on the anode disc, upon which focal spot an electron beam can impinge.
8. The X-ray system according to claim 3, further comprising: an X-ray source; an X-ray detector; a processing unit; and an X-ray tube comprising the rotatable anode arrangement, the bearing arrangement, the stator and the rotor according to claim 3, wherein the processing unit is provided to control rotation by the rotor.
9. A method for rotating an anode of an X-ray tube, the method comprising: a) applying a first electrical current to a stator winding; b) generating a stator magnetic field; c) acting of the stator magnetic field on a rotor, wherein the rotor comprises a rotational structure with a plurality of electrically conducting elements made from carbon composite based material, ends thereof connected to each other; wherein the rotational structure is provided as a cylindrical collar on an anode disc on a side opposite a side where a focal track is provided; d) inducing a second current in the electrically conducting elements by the stator magnetic field, thereby generating a rotor magnetic field; e) interacting of the rotor magnetic field with the stator magnetic field; and f) driving the anode to rotation due to the interaction.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Exemplary embodiments of the invention will be described in the following with reference to the following drawings:
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DETAILED DESCRIPTION OF EMBODIMENTS
(9)
(10) Further, an axis of rotation 18 is indicated together with a rotational arrow 20 indicating the direction of rotation.
(11) It is noted that the electrically conducting elements 14 are indicated with lines parallel to the axis of rotation, whereas, according to the present invention, also lines inclined to the axis of rotation may be provided.
(12) The carbon composite based material may comprise carbon-fibre reinforced carbon. The carbon-fibres are oriented in a way that high modulus fibres optimize the induced current flow whereas high tensile fibres provide the required strength.
(13) The carbon-fibres may be provided as primary fibre winding oriented such that the current can be induced in the electrically conducting elements.
(14) As can be seen in
(15) The shaft is rotatably supportable by bearings, which is not further shown. The rotor is a counterpart to a stator, for example the stator 28, for driving the rotatable anode 26.
(16) For example, at least the circumferential of the rotational structure, for example a cylindrical structure 22, is made from copper-free material. The circumferential part can be made from carbon based material. For example, the circumferential part is made from copper-free material, for example from metal-free material.
(17) As secondary fibre (not further shown) winding may be arranged for mechanical support of the cylindrical structure.
(18) According to the example shown in
(19) The anode disc is made at least partially from carbon-fibre reinforced carbon, and the anode disc 48 comprises a primary winding structure such that the rotor magnetic field can be generated by the stator magnetic field. The primary winding is oriented in radial and tangential direction to the axis of rotation.
(20) For a better understanding,
(21) According to a further example, the rotatable anode arrangement is provided as an anode disc. The bearing arrangement is supported by the stator. Further, a housing may be provided enclosing a tube volume (not further shown), inside which the anode arrangement, the bearing arrangement, the stator, and the rotor are provided, and inside which a vacuum for generating X-rays is provided. The stator and/or the bearing arrangement are connected to the housing according to a further example.
(22) As indicated in
(23) For example, as shown in
(24) A further aspect is also shown in
(25) The segmented stator is also provided to the other examples. However, the segmented stator is only necessary if the stator is arranged such that a focal track is covered by the stator elements. Depending on the location of the focal track, the example of
(26) The arrangement of the rotor, i. e. the anode, between the ends of the C is provided for closing of the stator magnetic field generated by the stator. The C-shaped iron cores can be provided in at least two groups, each group comprising a number of C-shaped iron cores.
(27) Each group of the stator comprises at least one pair of C-shaped iron cores with a winding with an upper C-shaped core having the upper outer edge of the anode arranged between the ends of the C, and a lower C-shaped core having the lower outer edge of the anode arranged between the ends of the C.
(28) It must be noted that the term “upper” relates to the side of the anode, on which the X-ray radiation is generated, and “lower” relates to the opposite side, independent of the actual arrangement of the tube in space.
(29) For example, the X-ray imaging system 100 is provided as a so-called C-arm structure 116 with a C-arm 118, to which the X-ray source and the X-ray detector are mounted to the ends of the C. Further, a movable support structure 120 is provided for allowing a free movement around an object 122, arranged on a patient table 124. Further, display arrangements 126 are provided, in addition to a lighting 128.
(30)
(31) The first step 210 is also referred to as step a), the second step 212 as step b), the third step 214 as step c), the fourth step 216 as step d), the fifth step 218 as step e), and the sixth step 220 as step f).
(32) In another exemplary embodiment of the present invention, a computer program or a computer program element is provided that is characterized by being adapted to execute the method steps of the method according to one of the preceding embodiments, on an appropriate system.
(33) The computer program element might therefore be stored on a computer unit, which might also be part of an embodiment of the present invention. This computing unit may be adapted to perform or induce a performing of the steps of the method described above. Moreover, it may be adapted to operate the components of the above described apparatus. The computing unit can be adapted to operate automatically and/or to execute the orders of a user. A computer program may be loaded into a working memory of a data processor. The data processor may thus be equipped to carry out the method of the invention.
(34) This exemplary embodiment of the invention covers both, a computer program that right from the beginning uses the invention and a computer program that by means of an up-date turns an existing program into a program that uses the invention.
(35) Further on, the computer program element might be able to provide all necessary steps to fulfil the procedure of an exemplary embodiment of the method as described above.
(36) According to a further exemplary embodiment of the present invention, a computer readable medium, such as a CD-ROM, is presented wherein the computer readable medium has a computer program element stored on it which computer program element is described by the preceding section.
(37) A computer program may be stored and/or distributed on a suitable medium, such as an optical storage medium or a solid state medium supplied together with or as part of other hardware, but may also be distributed in other forms, such as via the internet or other wired or wireless telecommunication systems.
(38) However, the computer program may also be presented over a network like the World Wide Web and can be downloaded into the working memory of a data processor from such a network. According to a further exemplary embodiment of the present invention, a medium for making a computer program element available for downloading is provided, which computer program element is arranged to perform a method according to one of the previously described embodiments of the invention.
(39) It has to be noted that embodiments of the invention are described with reference to different subject matters. In particular, some embodiments are described with reference to method type claims whereas other embodiments are described with reference to the device type claims. However, a person skilled in the art will gather from the above and the following description that, unless otherwise notified, in addition to any combination of features belonging to one type of subject matter also any combination between features relating to different subject matters is considered to be disclosed with this application. However, all features can be combined providing synergetic effects that are more than the simple summation of the features.
(40) While the invention has been illustrated and described in detail in the drawings and foregoing description, such illustration and description are to be considered illustrative or exemplary and not restrictive. The invention is not limited to the disclosed embodiments. Other variations to the disclosed embodiments can be understood and effected by those skilled in the art in practicing a claimed invention, from a study of the drawings, the disclosure, and the dependent claims.
(41) In the claims, the word “comprising” does not exclude other elements or steps, and the indefinite article “a” or “an” does not exclude a plurality. A single processor or other unit may fulfil the functions of several items re-cited in the claims. The mere fact that certain measures are re-cited in mutually different dependent claims does not indicate that a combination of these measures cannot be used to advantage. Any reference signs in the claims should not be construed as limiting the scope.