Superconducting joints
11769615 · 2023-09-26
Assignee
Inventors
Cpc classification
International classification
Abstract
A superconducting joint arrangement for superconducting magnets, having an elongate joint arranged between superconducting filaments of superconducting wires of one or more superconducting coils, and excess wire provided between the elongate joint and the one or more superconducting coils.
Claims
1. A superconducting joint arrangement for superconducting magnets, comprising: an elongate joint arranged between superconducting filaments of superconducting wires of one or more superconducting coils; and excess wire provided electrically between the elongate joint and the one or more superconducting coils, wherein the elongate joint is in thermal contact with at least one of the superconducting wires at a location electrically between the one or more superconducting coils and the excess wire.
2. The superconducting joint arrangement according to claim 1, wherein the elongate joint is in electrical contact with at least one of the superconducting wires at a location electrically between the one or more superconducting coils and the excess wire.
3. The superconducting joint arrangement according to claim 2, wherein the elongate joint is in electrical contact with two superconducting wires at a location electrically between the one or more superconducting coils and the excess wire (30), and wherein, in case of a quench, current is flowable from one of the two superconducting wires to the other of the superconducting wires without flowing through the length of the excess wire.
4. The superconducting joint arrangement according to claim 1, wherein the elongate joint is bound to at least one of the superconducting wires by binding wire.
5. The superconducting joint arrangement according to claim 1, wherein the elongate joint comprises a superconducting solder.
6. The superconducting joint arrangement according to claim 5, wherein the elongate joint is soldered to the at least one superconducting wire.
7. The superconducting joint arrangement according to claim 5, wherein the elongate joint and an adjacent part of at least one superconducting wire are cast into a solid block of superconducting alloy or compound.
8. The superconducting joint arrangement according to claim 7, wherein dimensions of the solid block of superconducting alloy or compound in directions perpendicular to the at least one superconducting wire are less than 20 mm.
9. The superconducting joint arrangement according to claim 8, wherein dimensions of the solid block of superconducting alloy or compound in directions perpendicular to the at least one superconducting wire are less than 10 mm.
10. The superconducting joint arrangement according to claim 1, wherein the excess wire is retained in a figure-of-eight loop configuration.
11. The superconducting joint arrangement according to claim 5, wherein the excess wire is retained in the figure-of-eight loop configuration by a plurality of cable ties.
12. The superconducting joint arrangement according to claim 10, wherein the figure-of-eight loop configuration is essentially planar, and the plane of the figure-of-eight loop configuration is arranged parallel to the magnetic field of a superconducting magnet.
13. A method for forming a superconducting joint arrangement for superconducting magnets, comprising: providing superconducting wires extending from one or more superconducting coils, each superconducting wire comprising superconducting filaments encased in a thermally conductive sheath; exposing a length of superconducting filaments by removing the sheath at a free end of each superconducting wire; forming the superconducting filaments into a joint; and attaching the joint in thermal contact with at least one of the wires at a location electrically between the coils and the joint, wherein a length of excess wire is left between the superconducting coils and the superconducting joint, and the superconducting joint is attached in thermal contact with the superconducting wires at a location between the superconducting coils and the excess wire.
14. A method according to claim 13, wherein the step of attaching the joint in thermal contact with at least one of the wires at a location electrically between the coils and the joint comprises forming an elongate superconducting joint and wrapping the elongate superconducting joint around at least one of superconducting wires, electrically between an extremity of the corresponding at least one sheath and the superconducting coil.
15. A method according to claim 13, wherein the elongate joint is doubled back at a turning point, such that an extremity of the superconducting joint is located closer to an extremity of the sheath than the turning point.
16. A method according to claim 13, wherein the elongate joint is formed from superconducting filaments coated in a solder, and then wound around the wires and bound in place by binding.
17. A method according to claim 13, wherein the elongate joint is soldered to the sheaths of the wires.
18. A method according to claim 17, wherein the elongate joint and an adjacent part of at least one superconducting wire are cast into a solid block of superconducting alloy or compound.
19. A method according to claim 18, wherein dimensions of the solid block of superconducting alloy or compound in directions perpendicular to the at least one superconducting wire are less than 20 mm.
20. A method according to claim 19, wherein dimensions of the solid block of superconducting alloy or compound in directions perpendicular to the at least one superconducting wire are less than 10 mm.
21. A method according to claim 13, wherein the excess wire is wound into a figure-of-eight configuration.
22. A method according to claim 21, wherein the figure-of-eight loop configuration is essentially planar, and the plane of the figure-of-eight loop configuration is arranged parallel to the magnetic field of a superconducting magnet.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above, and further, objects, characteristics and advantages of the present disclosure will become more apparent from the following description of certain embodiments, given by way of examples only, in conjunction with the appended drawings, wherein:
(2)
(3)
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DETAILED DESCRIPTION
(9) The present disclosure accordingly provides a superconducting joint for superconducting magnets, wherein an elongate joint is made between superconducting filaments of superconducting wires of one or more superconducting coils, excess wire being provided electrically between the elongate joint and the one or more superconducting coils, wherein the elongate joint is in thermal contact with at least one of the superconducting wires at a location electrically between the one or more superconducting coils and the excess wire.
(10) a.
(11) The joint 1 is made up from two superconducting wires 2, themselves forming part of the coils of superconducting wire 3, and typically one wire each from respective coils of superconducting wire 3. As shown in
(12) As is well-known in the art, and illustrated in
(13) The filaments of the wires to be joined are twisted or plaited together to form elongate superconducting joint 1. The plaited or twisted filaments may then be tinned, for example with indium, to assist surface wetting of the superconducting filaments by superconducting alloy. The elongate superconducting joint 1 may then be coated in a solder, preferably a superconducting solder such as lead-bismuth. The elongate superconducting joint 1 is then placed in thermal contact with at least one of superconducting wires 2, in this example by being wrapped around the superconducting wires 2, electrically between an extremity 23 of the corresponding at least one sheath 22 and the superconducting coil 3. As shown in
(14) This arrangement, according to the present disclosure, provides a relatively short heat transfer path from elongate superconducting joint 1 to cooled coils 3. In the absence of the arrangement of the present disclosure, heat would have to pass from the elongate joint 1 along the length of excess wire 30 to reach the cooled coils. The present disclosure provides a much reduced thermal path between the elongate superconducting join and the cooled coils, increasing the effectiveness of the cooling of the elongate superconducting joint and reducing the likelihood of a quench being initiated in the elongated superconducting joint.
(15) The elongate superconducting joint 1 may be soldered to the wires 2, using the same solder which is used in the joint, thereby providing a very effective thermal link between the join and the wires 2, and a very effective mechanical support for the joint. The use of binding wire 14 provides these advantages, to some extent. In certain embodiments, binding wire and solder may be used.
(16) The join 1 is formed over a significant length of the superconducting filaments, for example over 10-30 cm. This will ensure low joint resistance and high current handling capacity.
(17) Preferably, the join 1 is thermally linked to wires 2 relatively close to the coils of superconducting wire 3, ensuring effective thermal coupling between the join 1 and the coils of superconducting wire 3.
(18) In alternative embodiments, the thermal and mechanical contact between the elongate joint 1 and the at least one superconducting wire 2 may be obtained by clamping, pressing or gluing with a suitable adhesive, such as a LOCTITE (RTM) STYCAST (RTM) resin which may be obtained from Henkel Ltd.
(19) The join may be located in a vacuum region, or within a cryogen vessel illustrated in
(20) As explained above, superconducting coils 3 are cooled by cooling means not illustrated to a cryogenic temperature sufficiently cold to enable superconducting operation of superconducting coils 3. Joint 1, being thermally in contact with sheaths 22 of wires 2, is cooled by thermal conduction along those sheaths to the cooled superconducting coils 3.
(21) Sheath 22 is of a thermally conductive material such as copper, aluminium, silver or a combination of some or all of those metals. Elongate joint 1 may make electrical contact as well as thermal and mechanical contact with the sheaths 22 of superconducting wires 2, as sheaths 22 and elongate joint 1 will be at a same voltage. The thermal conductivity of sheaths 22 carries heat from elongate joint 1 towards the superconducting coil 3.
(22)
(23) Following a quench, the superconducting wire 2 and the elongate superconducting joint 1 become resistive. Typically, the metal sheath 22 is of lower resistance than the filaments 21 in this state. Current flows along path 72 following a quench. Path 72 follows one joined superconducting wire 2 but along the metallic sheath 22 in preference to the filaments 21. At elongated superconducting joint 1, current preferably transfers from metallic sheath 22 of one wire to metallic sheath 22 of the other wire, through the solder if present and out following the other joined superconducting wire 2.
(24) As illustrated in
(25) Assembly of the joint of the present disclosure may be facilitated by use of binding 26, for example of copper wire, to retain wires 2 together, and/or binding 14, for example of copper wire, to retain the elongate superconducting joint 1 in mechanical contact with sheaths 22 of wires 2. In an embodiment, elongate superconducting joint 1 may be formed from superconducting filaments coated in a solder such as a superconducting solder, then the elongate superconducting joint 1 may be wound around the wires 2, as illustrated in
(26) In an alternative embodiment, a further soldering step may be applied to solder the elongate joint to the sheaths of wires 2, to provide an improved thermal conduction between elongate joint 1 and wires 2. A superconducting solder is preferably used, such as lead-bismuth or indium-tin. Such further soldering step may be performed prior to, following, or in place of, binding of the elongate joint 1 to sheaths 22 of wires 2 by binding 27.
(27) In an embodiment, as illustrated in
(28) According to a feature of the present disclosure, as illustrated in
(29) Excess wire 30 is provided as a loop, comprising wires 2 electrically between elongate joint 1 and superconducting coils 3. In the illustrated embodiment, and preferably, excess wire 30 is wound into a figure-of-eight configuration, to reduce magnetic field coupling (mutual inductance) between a current loop created by excess wire 30 and current loop created by the main persistent circuit of the MRI system. This will be further explained with reference to
(30) As is well known in the art, and with reference to the two loops 32, 34 of the figure-of-eight arrangement shown in
(31) In the illustrated embodiment of
(32) If constructed as above, first loop 32 and second loop 34 of loop L2 are inherently non-inductive, provided that the two wires 2 joined at the elongate superconducting joint 1 are close and parallel to one another.
(33) In other embodiments, use of a single loop L2′ 37 as illustrated in
(34) As a result of small mutual inductance, which may be arranged for as set out above, the net force resulting from the magnetic field of the superconducting magnet on the figure-of-eight arrangement of excess wire 30 is also minimized. This simplifies mounting arrangements and is beneficial.
(35) Preferably, in any case, the loop containing excess wire 30 is formed as a flat, essentially planar structure. In a particular embodiment, the loop containing excess wires 30 is positioned inside OVC 14 such that a magnetic field produced by the superconducting magnet 10 is substantially parallel to the plane of the loop containing excess wires 30, to minimise magnetic coupling between the superconducting magnet 10 and the loop containing excess wires 30.
(36) The effect of other magnetic fields may also be taken into account, such that total local magnetic field is substantially parallel to the plane of the non-inductively-wound windings. Such arrangement minimises the current induced in the non-inductively-wound windings due to external field changes as a result of energisation of the superconducting magnet and other coils associated with the superconducting magnet. For example, gradient coils produce a rapidly varying magnetic field which may have a greater potential for inducing current on the loop(s) of excess wire 30 than any likely variation in the main magnet field.
(37) It is important that the superconducting wire 2 is restrained in position, as far as is practicable. If the superconducting wire were free to move, any movement would take place within the magnetic field of the superconducting coil, and so a voltage would be induced in the wires, which may cause interference with the magnet magnetic field, and could even lead to quench of the magnetic field.
(38) In the illustrated embodiment, this is achieved by use of nylon cable ties 27.
(39) In an alternative embodiment, the excess wire 30 may be wrapped around retaining posts provided for the purpose. Other means for retaining the excess wire in position may be employed, as will be apparent to those skilled in the art.
(40) In an example embodiment, the inventors found that a join according to the present disclosure, in use in a superconducting state, had a resistance of less than 10.sup.−12 ohm, providing a power dissipation of no more than 10.sup.−6 watts at a current of up to 1000 amperes. This low level of power dissipation, combined with high thermal conductivity between the join and the coil of superconducting wire 3 means that the temperature of the join will rise very little.
(41) The phenomenon of flux jumping is discussed in E. W. Collings and M. D. Sumption, “Stability and AC Losses in HTSC/Ag Multifilamentary Strands” Applied Superconductivity Vol. 3, No. 11/12, pp. 551-557, 1995.
(42) Flux jumping of magnet joints could lead to the quench of the whole magnet, and so should be avoided as far as reasonably possible.
(43) From adiabatic theory of flux jumping it could be shown that a characteristic flux jumping dimension is proportional to: specific heat C, difference between critical temperature T.sub.c and operating temperature T and inversely proportional to critical current density J.sub.c of superconductor (Equation 1): When size of superconducting alloy is above a.sub.FJ flux jumps are possible.
(44)
(45) Often the combination of C, T.sub.c, J.sub.c at operating temperature T of superconducting alloy 42 used in superconducting joints requires the characteristic dimension a.sub.FJ to be less than 10-20 mm. This dimensional restriction makes it very challenging to store excess length of the joined superconducting wires 30 embedded in superconducting alloy 42.
(46) According to at least one embodiment of the present disclosure, the excess wires 30 are stored in a figure-of-eight loop. Arranging excess wire storage 30 in this way allows for reducing the dimensions of superconducting alloy 42 to below characteristic dimension a.sub.FJ. In the case of the embodiment of