A magnet structure for use in a circular ion accelerator, such as e.g. a synchrocyclotron comprises a cold-mass structure including superconducting magnetic coils (20, 25), at least one dry cryocooler unit (10, 11, 12, 13) coupled with the cold-mass structure for cooling the latter and a magnetic yoke structure (30) with a return yoke (35) configured radially around said coils (20, 25). The return yoke (35) comprises an opening in which said dry cryocooler unit (10, 11, 12, 13) is received so as to be in thermal contact with said cold-mass structure.
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1. A magnet structure for use in a circular ion accelerator comprising:
a cold-mass structure including superconducting magnetic coils;
at least one dry cryocooler unit coupled with the cold-mass structure and configured to cool the cold-mass structure; and
a magnetic yoke structure including a return yoke configured radially around the superconducting magnetic coils;
wherein the return yoke comprises an opening in which the at least one dry cryocooler unit is received so as to be in thermal contact with the cold-mass structure.
3. A magnet structure for use in a circular ion accelerator comprising:
a cold-mass structure including superconducting magnetic coils;
a plurality of dry cryocooler units coupled with the cold-mass structure and configured to cool the cold-mass structure; and
a magnetic yoke structure including a return yoke configured radially around the superconducting magnetic coils,
wherein the return yoke comprises an opening in which the at least two dry cryocooler units are received so as to be in thermal contact with the cold-mass structure, the at least two dry cryocooler units being superimposed at a same radial position.
2. A magnet structure for use in a circular ion accelerator comprising:
a cold-mass structure including superconducting magnetic coils;
at least one dry cryocooler unit coupled with the cold-mass structure and configured to cool the cold-mass structure; and
a magnetic yoke structure including a return yoke configured radially around the superconducting magnetic coils,
wherein the return yoke comprises an opening in which the at least one dry cryocooler unit is received so as to be in thermal contact with the cold-mass structure, the at least one dry cryocooler unit being received in the opening in a position essentially perpendicular to a central axis of the superconducting magnetic coils.
4. The magnet structure according to
5. The magnet structure according to
6. The magnet structure according to
7. The magnet structure according to
8. The magnet structure according to
9. The magnet structure according to
10. The magnet structure according
11. The magnet structure according to
12. The magnet structure according to
13. The magnet structure according to
the cold mass structure includes at least two superconducting magnetic coils comprising a material being superconducting below a nominal temperature, the at least two superconducting magnetic coils being configured for having a common central axis; and a bobbin configured to support the at least two superconducting magnetic coils; and
the magnet structure further includes:
a cryostat enclosing the cold-mass structure and forming a vacuum chamber for keeping the cold-mass structure under vacuum, wherein the magnetic yoke structure surrounds the cryostat.
15. The magnet structure according to
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This application is a national phase application of International Application No. PCT/EP2011/068691, filed Oct. 25, 2011, designating the United States and claiming priority to European Patent Application No. 10188946.7, filed Oct. 26, 2010, both of which are incorporated by reference as if fully rewritten herein.
The invention generally relates to a circular ion accelerator, more particularly to a superconducting synchrocyclotron. More specifically, the invention relates to a magnet structure for a circular ion accelerator, more particularly to a magnetic structure for a superconducting synchrocyclotron.
A typical magnetic structure of a superconducting synchrocyclotron generally comprises a cold-mass structure including at least two superconducting magnetic coils, i.e. magnetic coils which comprise a material that is superconducting below a nominal temperature, and a bobbin associated with the magnetic coils. A cryostat generally encloses this cold mass structure and forms a vacuum chamber for keeping the cold mass structure under vacuum. The cold mass structure is cooled with one or more dry cryocooler units below the nominal temperature at which the magnetic coils are superconducting. The magnet structure further comprises a magnetic yoke structure surrounding the cryostat. Such a yoke structure generally comprises an upper part, a lower part, a pair of pole parts and a return yoke arranged radially around the magnetic coils.
U.S. Pat. No. 7,656,258 describes such a magnetic structure for generating a magnetic field in e.g. a superconducting synchrocyclotron. The magnet structure comprises several dry cryocooler units as shown in FIG. 10 of the referenced patent (units identified with reference number 26) to cool the cold-mass structure (21) below a temperature where the coils become superconducting. A first dry cryocooler unit (26) is positioned vertically on top of the upper part of the yoke (36) and extends vertically through a hole in the upper part of the yoke structure towards the cold mass structure (21). A second cryocooler unit (26) is positioned vertically below the lower part of the yoke structure (36) and extends vertically through a hole in the lower part of the yoke structure. Two additional dry cryocooler units (33) are installed on top of the upper part of the yoke structure and configured for cooling the current leads (37, 58) of the coils (12, 14). Such a vertical orientation of the dry cryocooler units is necessary for reaching the specified nominal refrigeration capacity (e.g. Gifford-McMahon type of cryocooler units). Other types of cryocooler units (e.g. pulse type of cryocooler unit) only operate in a vertical position.
Although the design of the magnetic structure as disclosed in U.S. Pat. No. 7,656,258 may work in a satisfactory manner, it has nevertheless some disadvantages.
A first disadvantage of the magnetic structure as disclosed in U.S. Pat. No. 7,656,258 resides in the fact that for each cryocooler unit installed in the upper, respectively lower part of the yoke structure, a corresponding hole must be made in a symmetrical way in the opposite lower part, respectively the opposite upper part of the yoke structure. This symmetry of the holes in the magnetic yoke structure is indeed necessary for warranting the required magnetic field properties. It will be appreciated that these supplementary holes result in an increased machining time when manufacturing the yoke structure. A great number of holes in the yoke structure also results in a second disadvantage, namely a reduction of the efficiency of the yoke structure and an increase of the magnetic stray field. A third disadvantage is due to the fact that vertically positioned dry cryocooler units increase the height of the accelerator and hence require a larger building with sufficiently high ceilings to house the cyclotron. Moreover, for maintenance purposes, such cyclotrons are opened by removing the upper part of the yoke structure. Hence, before opening the cyclotron, it is necessary to first disconnect the vertically arranged cryocooler units from the cold mass structure, which is a major fourth disadvantage. This fourth disadvantage further results in longer down time periods of cyclotron operation, when the cyclotron must be opened for e.g. maintenance purposes.
The publication of JOONSUN et al: “Design Study of a K22 Prototype Superconducting Cyclotron Magnet”, IEEE Transactions on Applied Superconductivity, IEEE Service Center Los Alamitos, Calif., US, vol. 20, no. 3, 1 Jun. 2010, pages 192-195, discloses a cryogenic system comprising three 1.5 W GM cryocoolers arranged in separate re-condensing vessels located laterally of the cyclotron. Conduits for evaporated and re-condensed helium pass through a radial opening in the upper half of a return yoke.
It is an object of the invention to provide a magnetic structure for use in an ion accelerator (e.g. synchrocyclotron) which overcomes or alleviates at least some of the aforementioned problems of prior art magnetic structures.
This object is achieved by magnet structure in accordance with claim 1, respectively by a synchrocyclotron comprising such a magnet structure.
A magnet structure for use in a circular ion accelerator comprises a cold-mass structure including superconducting magnetic coils, at least one dry cryocooler unit coupled with the cold-mass structure for cooling the cold-mass structure and a magnetic yoke structure comprising a return yoke configured radially around the coils. In accordance with one aspect of the present invention, the return yoke comprises an opening in which the dry cryocooler unit is received so as to be in thermal contact with the cold-mass structure.
In a preferred embodiment, the dry cryocooler unit is received in the opening in a position essentially perpendicular to a central axis of the magnetic coils.
Preferably two dry cryocooler units are received in the same opening in the return yoke, wherein they are preferably superimposed at a same radial position. Indeed, by superimposing two cryocooler units at the same radial position with respect to the return yoke, the return flux of the magnetic field remains the same when compared to the use of a single cryocooler unit at the same radial position and hence there is no need to increase the diameter of the cyclotron to compensate for the loss of magnetic flux capacity when installing a second cryocooler unit for increasing the refrigeration capacity.
In a preferred embodiment, the return yoke comprises two openings spaced by an angle of 180°, wherein at least one cryocooler unit is received in each of these openings. Thus, symmetry of the yoke structure is warranted with a minimum of openings therein. Preferably, two cryocooler units are superimposed in each of these openings.
The cold-mass structure typically includes a bobbin associated with the superconducting magnetic coils, wherein the at least one cryocooler unit is advantageously in thermal contact with the bobbin.
The superconducting magnetic coils advantageously include a current lead that is in thermal contact with the cryocooler unit, so that the latter simultaneously cools the bobbin and the current lead. Hence, no dedicated or additional dry cryocooler units must be installed for cooling the current leads and, consequently, no additional openings must be made in the yoke structure
The cryocooler unit advantageously has a terminal cooling stage member that is in thermal contact with an outward wing of the bobbin, and the outward wing is in contact with a radial outer part of the magnetic coils.
In a preferred embodiment, the magnet structure has a central axis and a median plane perpendicular to the central axis, and the opening in which the dry cryocooler unit is received is symmetric with regard to the median plane.
The magnet structure typically comprises a cryostat enclosing the cold-mass structure and forming a vacuum chamber for keeping the cold-mass structure under vacuum. This vacuum chamber advantageously comprises a radial vacuum chamber extension in which at least one cooling stage of the dry cryocooler unit is housed. The latter advantageously includes a head part protruding out of the radial vacuum chamber extension.
A preferred embodiment of the magnet structure with a vacuum chamber for keeping the cold-mass structure under vacuum further comprises tie rods for supporting the cold-mass structure. Each of the tie rods is advantageously positioned partly within a hollow tube, which extends the vacuum chamber for passing through the yoke structure. At least one of these hollow tubes is advantageously coupled to a vacuum pump for creating a vacuum in the cryostat.
These and further aspects of the invention will be explained in greater detail by way of example and with reference to the accompanying drawings in which:
The figures are not drawn to scale. Generally, identical components are denoted by the same reference numerals in the figures.
The superconducting coils 20, 50 are generating a coil magnetic field in an axial direction, i.e. in a direction parallel with the central axis 50. They comprise e.g. NbTi as superconducting material and are typically operated at 4.5 K, with current densities of about 55.6 A/mm2 for providing a coil magnetic field of about 3.33 Tesla. Alternatively, other superconducting conductor materials can be used such as Nb-3Sn conductors.
As mentioned above, the magnet structure comprises a magnetic yoke structure 30, which consists of several parts. Following main parts of the yoke structure can be distinguished on
The superconducting coils 20, 25, together with the magnetic yoke structure generate a combined magnetic field between the two poles of the magnetic structure. The prototype referred herein is e.g. a 250 MeV proton synchrocyclotron having a magnetic structure designed for providing a total magnetic field of about 5.6 Tesla for bending protons during a circular acceleration process. To fix the ideas, it will be noted that the entire magnetic structure of such a synchrocyclotron has e.g. a diameter of about 2.5 m and a height of 1.56 m and has a total weight of about 45.000 kg.
The cold-mass structure is cooled by using a dry cryocooler unit. With the wording “dry” it is understood that the coils are maintained in a dry condition, i.e. they are not immersed in a cooling liquid (e.g. liquid He). Instead, the cold-mass structure is thermally coupled with one or more dry cryocooler units. These dry cryocooler units are commercially available.
As shown in
When the dry cryocooler unit (e.g. a dry cryocooler unit of the Gifford-McMahon type) is in such a horizontal position with respect to the floor, the refrigeration power will be lower than its nominal refrigeration power, i.e. the refrigeration power is typically reduced by 15%. For example, a dry cryocooler having a nominal refrigeration power of 1.5 W in a vertical position will only have a refrigeration power of 1.3 W in a horizontal position. With a refrigeration power of 1.3 W per cryocooler unit and with a synchrocyclotron in operation (i.e. producing beam), four dry cryocoolers units are needed to cool the cold-mass structure of the present example to a temperature of 4.5 K. In
Preferably, the opening in the return yoke 35 is configured such that it can receive two superimposed dry cryocooler units as shown in greater detail in
As illustrated in
Typically and as shown in
The dry cryocooler units that are used for cooling the cold mass structure are at the same time also configured for gradually cooling the current leads of the two coils 20, 25 by making appropriate thermal contacts with the first stage and second stage members. In this way, no dedicated or additional dry cryocooler units need to be installed for cooling the current leads and hence no additional openings need to be made in the yoke structure 30.
As discussed above, the cold-mass structure is surrounded by a cryostat 70 and a vacuum is created in the cryostat to thermally insulate the cold-mass structure.
The heavy cold-mass structure, having a weight of about 4.300 kg, must be supported inside the cryostat 70. For this purpose, tension links 80, 90 are used, preferably both in the radial direction and the axial direction. Different types of tension links can be used. The preferred tension link is formed by a tied rod. As shown on
As mentioned above, a vacuum is created within the cryostat 70. To create this vacuum, a tube connection piece 86 is advantageously connected to one of the hollow tubes 85, as illustrated in
The present invention has been described with regard to a preferred embodiment of a magnet structure for use in a synchrocyclotron. The embodiment described is e.g. capable of providing a magnet field of about 5.6 T and designed for use in a 250 MeV proton synchrocyclotron. The dry cryocooler units that are installed through openings in the return yoke of the magnet structure are positioned in an essentially perpendicular position with respect to the central axis 50 of the coils. As discussed above, the dry cryocooler units are preferably installed at an angle of 90°+/−5° with respect to the central axis 50 and more preferably at an angle of 90°+/−2°. However, the detailed description of this embodiment just illustrates the invention and may not be construed as limiting.
More specifically, in alternative embodiments, the dry cryocooler units installed in openings of through the return yoke may not have an orientation perpendicular with respect to the central axis of the synchrocyclotron 1. Thus, the longitudinal axis of the dry cryocooler unit may define an angle smaller than 90° with the central axis of the synchrocyclotron 1, for example an angle of 80°. The invention is of course also applicable to other kinds of circular accelerators (such as e.g. a cyclotron) and to other magnet field strengths.
More generally, it will be appreciated by persons skilled in the art that the present invention is not limited by what has been particularly shown and/or described hereinabove. The invention resides in each and every novel characteristic feature and each and every combination of characteristic features.
Reference numerals in the claims do not limit their protective scope.
Use of the verbs “to comprise”, “to include”, “to be composed of”, or any other variant, as well as their respective conjugations, does not exclude the presence of parts other than those stated.
Use of the article “a”, “an” or “the” preceding an element does not exclude the presence of a plurality of such elements.
Marabotto, Roberto, De Neuter, Sébastien, Verbruggen, Patrick, Capelluto, Alessio
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