High-temperature superconducting undulator magnet structure
The horizontal 'bell-shaped' coil design for high-temperature superconducting waveguide magnets optimizes magnetic field alignment and reduces stress on REBCO materials, enhancing performance and stability.
Patent Information
- Application Number
- CN202510572755.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-06
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2045-05-06
AI Technical Summary
Among the high-temperature superconducting waveform magnets, the high-temperature superconducting strip is difficult to make cylindrical lines due to the large bending stress, which makes its performance unable to be fully utilized, and the vertical winding coil is affected by the high perpendicular magnetic field strength, which reduces performance.
Horizontal winding of high-temperature superconducting strips is used to form a horizontal barbell coil with wide ends and narrow middle. The direction of the magnetic field is optimized through the design of the winding core, and the perpendicular magnetic field component is reduced. Combined with the structural design of the magnet mount, including the main pole iron, the secondary pole iron and the yoke, a periodic magnetic field is formed to improve the current carrying capacity.
It effectively reduces the impact of the perpendicular magnetic field of high-temperature superconducting strip, improves the current carrying capacity, reduces costs, increases the uniformity and stability of the magnetic field, and extends the service life of the strip.
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Figure CN120089481B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of undulators, and particularly to a high-temperature superconducting undulator magnet structure. Background Art
[0002] A superconducting undulator is a key device for large scientific devices such as synchrotron radiation devices, positron-electron colliders, and free-electron laser devices. By generating a strong magnetic field, it causes the electron beam to deflect laterally, thereby generating high-intensity synchrotron radiation light. The coils of traditional undulators are generally wound with NbTi low-temperature superconducting wire. However, with the emergence of high-temperature superconducting material REBCO (rare earth barium copper oxide), and due to its advantages such as high working magnetic field strength, high operating temperature, low magnetic energy storage of the magnet, and low maintenance cost, it has gradually been applied to coil manufacturing.
[0003] However, since the bending stress that the REBCO material can withstand is not too large, it is difficult to make a cylindrical wire, and making it into a tape form can better utilize its high critical current density and high irreversibility field characteristics, so it is made into a high-temperature superconducting tape. In related technologies, the high-temperature superconducting undulator magnet usually uses a vertical racetrack-shaped wire groove for winding. Although this design can achieve a high magnetic field strength, it also causes the high-temperature superconducting tape used for winding the coil to be subjected to a high vertical magnetic field strength, making it impossible for the high-temperature superconducting tape to better exert its performance. Summary of the Invention
[0004] The main object of the present invention is to propose a high-temperature superconducting undulator magnet structure, aiming to enable the high-temperature superconducting tape to better exert its performance.
[0005] To achieve the above object, the high-temperature superconducting undulator magnet structure proposed by the present invention includes a coil formed by winding a high-temperature superconducting tape. The high-temperature superconducting undulator magnet structure includes:
[0006] Yoke iron;
[0007] At least two end fixing pole pieces, the two end fixing pole pieces are arranged on the yoke iron and enclose an installation groove with the yoke iron; and
[0008] A plurality of magnet mounting members, the plurality of magnet mounting members are arranged on the yoke iron and located in the installation groove. One side of each magnet mounting member protrudes with a winding core body. The winding core body has a first winding segment, a winding straight segment, and a second winding segment connected to each other. The width of the winding straight segment is smaller than the widths of the first winding segment and the second winding segment. The end faces of the first winding segment and the second winding segment away from the winding straight segment are arc surfaces. The high-temperature superconducting tape is wound around the winding core body to form the coil and is adapted to the outer peripheral wall of the winding core body.
[0009] In one embodiment, each of the magnet mounting members includes a main pole iron and a secondary pole iron. A winding core body protrudes from one side of the main pole iron, and a limiting step is formed at the connection between the main pole iron and the winding core body. A secondary pole iron is provided between any two adjacent main pole irons. Grooves are formed on two opposite side walls of the main pole iron corresponding to the straight winding segments, and first convex segments are formed on two opposite side walls of the secondary pole iron corresponding to the grooves. A second convex segment is formed at one end of each end fixing pole iron close to the main pole iron corresponding to the groove.
[0010] In one embodiment, an arc transition concave segment is formed at the connection between the first winding segment and the straight winding segment and at the connection between the second winding segment and the straight winding segment. The arc transition concave segment includes a connected first arc segment and second arc segment.
[0011] In one embodiment, arc transition concave segments are formed on both side walls of the groove, and arc transition convex segments adapted to the arc transition concave segments are formed at both ends of the first convex segment and the second convex segment.
[0012] In one embodiment, the end of the first winding segment extends in a direction away from the straight winding segment to form an arc inclined surface segment, and an incoming wire channel is provided on one side wall of the main pole iron corresponding to the arc inclined surface segment.
[0013] In one embodiment, a first connection portion is formed at one end of the main pole iron close to the first winding segment. Each of the magnet mounting members includes a commutation member, and the commutation member is detachably connected to the first connection portion. A bevel concave arc groove adapted to the arc inclined surface segment is provided at the end of the commutation member.
[0014] In one embodiment, a third winding segment protrudes from one side of the commutation member facing away from the yoke iron. One side wall of the third winding segment close to the first winding segment is a concave arc surface adapted to the arc inclined surface segment, and the other side wall of the third winding segment away from the first winding segment is an arc surface, so that the third winding segment is adapted to be connected to the first winding segment.
[0015] In one embodiment, the side wall of one end of the second winding segment away from the straight winding segment is a vertical surface. Each of the magnet mounting members includes an adjusting member, and the adjusting member is elastically connected to the main pole iron. A fourth winding segment protrudes from one side of the adjusting member facing away from the yoke iron. One side wall of the fourth winding segment close to the second winding segment is a vertical surface, and the other side wall of the fourth winding segment away from the second winding segment is an arc surface, so that the fourth winding segment is adapted to be connected to the second winding segment.
[0016] In one embodiment, each of the magnet mounting members includes an elastic member. A first accommodation groove is formed in the end face of the main pole iron close to the adjusting member, and a second accommodation groove is formed in the end face of the adjusting member close to the main pole iron. The first accommodation groove communicates with the second accommodation groove, and two ends of the elastic member are respectively connected to the bottom wall of the first accommodation groove and the bottom wall of the second accommodation groove.
[0017] In one embodiment, a second connecting portion is formed at one end of the main pole iron close to the second winding segment. Each of the magnet mounting members includes a fastening member. A strip-shaped hole is formed in the second connecting portion and arranged along the extending direction of the main pole iron. An installation hole is formed in the adjusting member, and the fastening member passes through the installation hole and the strip-shaped hole to connect the main pole iron and the adjusting member.
[0018] In the technical solution of the present invention, the high-temperature superconducting tape is periodically wound around the outer peripheral wall of the winding core to form a horizontal barbell-shaped coil with wide ends and a narrow middle, so that the coil is horizontally wound, which can effectively reduce the vertical magnetic field component received by the high-temperature superconducting tape. An excessively high vertical magnetic field will reduce the performance of the high-temperature superconducting tape, while horizontal winding can optimize the magnetic field direction to be closer to the critical current direction of the tape, thereby improving the current-carrying capacity of the tape, and further enabling the high-temperature superconducting tape to better exert its performance; since the width of the winding core determines the period length of the magnetic field generated by the coil, and in order to meet the requirement of the undulator to generate a short-period magnetic field, and the minimum turning diameter of the REBCO high-temperature superconducting tape is relatively large, the winding core needs to be set in a shape with wide ends and a narrow middle to adapt to the performance of the high-temperature superconducting tape and meet the requirement of the undulator to generate a magnetic field; due to the relatively large minimum turning diameter of the REBCO high-temperature superconducting tape, the end faces of the first winding segment and the second winding segment far from the winding straight segment are set as arc surfaces to adapt to the physical characteristics of the REBCO high-temperature superconducting tape and reduce the stress and damage of the tape during the winding process. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on the structures shown in these drawings without creative efforts.
[0020] Figure 1 FIG. 15 is a schematic structural diagram of an embodiment of the high-temperature superconducting undulator magnet structure provided by the present invention;
[0021] Figure 2 FIG. 19 is an exploded structural diagram of an embodiment of the high-temperature superconducting undulator magnet structure provided by the present invention;
[0022] Figure 3Schematic structural diagram of an embodiment of an adjustment member provided by the present invention;
[0023] Figure 4 Schematic structural diagram of an embodiment of a commutation member provided by the present invention;
[0024] Figure 5 Schematic structural diagram of an embodiment of an end fixed pole iron provided by the present invention;
[0025] Figure 6 Schematic structural diagram of an embodiment of a main pole iron provided by the present invention;
[0026] Figure 7 Schematic structural diagram of an embodiment of an auxiliary pole iron provided by the present invention.
[0027] Explanation of the reference numerals in the drawings:
[0028] 100, high-temperature superconducting undulator magnet structure; 1, yoke iron; 11, limiting convex part; 2, end fixed pole iron; 21, mounting groove; 22, second convex section; 3, magnet mounting member; 31, main pole iron; 311, winding core; 311a, first winding segment; 311b, winding straight segment; 311c, second winding segment; 311d, arc transition concave segment; 311e, arc inclined plane segment; 312, groove; 313, wire inlet channel; 314, first connecting part; 315, first accommodating groove; 316, second connecting part; 316a, strip-shaped hole; 317, limiting groove; 32, auxiliary pole iron; 321, first convex section; 321a, arc transition convex section; 33, limiting step; 34, commutation member; 341, inclined plane concave arc groove; 342, third winding segment; 35, adjustment member; 351, fourth winding segment; 352, second accommodating groove; 353, mounting hole; 36, elastic member; 4, coil.
[0029] The realization, functional features and advantages of the purpose of the present invention will be further described with reference to the embodiments and the accompanying drawings. Detailed implementation manners
[0030] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0031] It should be noted that if there are directional indications (such as up, down, left, right, front, back...) involved in the embodiments of the present invention, the directional indications are only used to explain the relative positional relationship and movement conditions between components in a specific posture. If the specific posture changes, the directional indications will also change accordingly.
[0032] In addition, if the embodiments of the present invention involve descriptions such as "first" and "second", the descriptions of "first", "second", etc. are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include at least one such feature. In addition, if "and / or" or "and / or" appears throughout the text, its meaning includes three parallel scenarios. Taking "A and / or B" as an example, it includes scenario A, or scenario B, or the scenario where both A and B are satisfied simultaneously. In addition, the technical solutions between the various embodiments can be combined with each other, but it must be based on the fact that those of ordinary skill in the art can implement them. When the combination of technical solutions results in contradictions or cannot be implemented, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection required by the present invention.
[0033] The present invention provides a high-temperature superconducting undulator magnet structure 100.
[0034] Please refer to Figure 1 and Figure 2 , in an embodiment of the present invention, the high-temperature superconducting undulator magnet structure 100 includes a coil 4 formed by winding high-temperature superconducting tapes. The high-temperature superconducting undulator magnet structure 100 includes a yoke 1, at least two end fixing pole pieces 2, and a plurality of magnet mounting members 3. The two end fixing pole pieces 2 are provided on the yoke 1 and enclose an installation groove 21 with the yoke 1; a plurality of the magnet mounting members 3 are provided on the yoke 1 and are located in the installation groove 21. A winding core 311 protrudes from one side of each of the magnet mounting members 3. The winding core 311 has a first winding segment 311a, a winding straight segment 311b, and a second winding segment 311c that are connected to each other. The width of the winding straight segment 311b is smaller than the widths of the first winding segment 311a and the second winding segment 311c. The end faces of the first winding segment 311a and the second winding segment 311c away from the winding straight segment 311b are arc surfaces. The high-temperature superconducting tape is wound around the winding core 311 to form the coil 4 and is adapted to the outer peripheral wall of the winding core 311.
[0035] In the technical solution of the present invention, the high-temperature superconducting tape is wound around the outer peripheral wall of the winding core 311 periodically to form a horizontal barbell-shaped coil 4 with wide ends and a narrow middle, so that the coil 4 is wound horizontally, which can effectively reduce the vertical magnetic field component received by the high-temperature superconducting tape. Excessive vertical magnetic field will reduce the performance of the high-temperature superconducting tape, while horizontal winding can optimize the magnetic field direction to be closer to the critical current direction of the tape, thereby improving the current-carrying capacity of the tape, and further enabling the high-temperature superconducting tape to better exert its performance. Since the width of the winding core 311 determines the period length of the magnetic field generated by the coil 4, and in order to meet the requirement of the undulator to generate a short-period magnetic field, and the minimum turning diameter of the REBCO high-temperature superconducting tape is relatively large, the winding core 311 needs to be set in a shape with wide ends and a narrow middle to adapt to the performance of the high-temperature superconducting tape and meet the requirement of the undulator to generate a magnetic field. Since the minimum turning diameter of the REBCO high-temperature superconducting tape is relatively large, the end faces of the first winding segment 311a and the second winding segment 311c far from the winding straight segment 311b are set as arc surfaces to adapt to the physical characteristics of the REBCO high-temperature superconducting tape and reduce the stress and damage of the tape during the winding process. At the same time, since the coil 4 in this solution is wound horizontally, compared with vertical winding, the consumption of the high-temperature superconducting tape is reduced, thereby reducing the cost, and the number of coils 4 is less, reducing the energy storage of the magnet, which is more conducive to quench protection.
[0036] Among them, the yoke 1 is an important part of the high-temperature superconducting undulator magnet structure 100. Its main function is to provide mechanical support and magnetic circuit closure. The yoke 1 can guide and concentrate the magnetic field, reduce magnetic leakage, and ensure that the magnetic field is mainly concentrated in the area where the electron beam passes, thereby improving the uniformity and stability of the magnetic field. The end fixing pole iron 2 is located at both ends of the magnet and is mainly used to fix and support the magnet structure. It can ensure the mechanical stability of the magnet structure during operation and prevent the magnet structure from deforming due to vibration or other external forces. The magnet mounting member 3 is used to generate a periodic magnetic field and improve the uniformity and stability of the magnetic field. The width setting range of the winding straight segment 311b is between 1 mm and 10 mm, preferably set to 5 mm. The end faces of the first winding segment 311a and the second winding segment 311c far from the winding straight segment 311b are arc surfaces, and the radius setting range of the arc surfaces is between 1 mm and 10 mm, preferably set to 5 mm. The optimized winding straight segment 311b and the arc surface can improve the periodicity and uniformity of the magnetic field.
[0037] To wind the coil 4 into a shape with wide ends and a narrow middle, please refer to Figure 1 , Figure 2 and Figures 5 to 7, in an embodiment of the present invention, each of the magnet mounting members 3 includes a main pole iron 31 and a secondary pole iron 32. A winding core 311 protrudes from one side of the main pole iron 31. A limiting step 33 is formed at the connection between the main pole iron 31 and the winding core 311. One secondary pole iron 32 is provided between any two adjacent main pole irons 31. Grooves 312 are formed on opposite side walls of the main pole iron 31 corresponding to the straight winding segments 311b. First convex segments 321 are formed on opposite side walls of the secondary pole iron 32 corresponding to the grooves 312. Second convex segments 22 are formed at one end of each end fixing pole iron 2 close to the main pole iron 31 corresponding to the grooves 312. First, the high-temperature superconducting tape is periodically wound around the outer peripheral wall of the winding core 311. After the winding width of the high-temperature superconducting tape reaches the width of the limiting step 33, the winding stops. Then, the two secondary pole irons 32 are connected to the side walls of the main pole iron 31, so that the first convex segments 321 of the secondary pole irons 32 and the winding core 311 of the main pole iron 31 cooperate to press the middle part of the coil 4, forming a horizontal barbell-shaped coil 4 with wide ends and a narrow middle. After repeating the winding of multiple coils 4, one end fixing pole iron 2 is installed on the yoke iron 1, and the secondary pole iron 32 on one side of the main pole iron 31 in the wound coil 4 structure is removed. Then, the main pole iron 31 is connected to the end fixing pole iron 2. Next, the secondary pole iron 32 on one side of the main pole iron 31 in the next wound coil 4 structure is removed, and the main pole iron 31 is connected to the secondary pole iron 32 in the previously fixed coil 4 structure. Until all the wound coil 4 structures are installed, then another end fixing pole iron 2 is installed on the yoke iron 1, so that the second convex segments 22 of the end fixing pole iron 2 cooperate with the grooves 312 of the main pole iron 31 to complete the installation of the high-temperature superconducting undulator magnet structure 100. The magnet mounting member 3 includes a main pole iron 31 and a secondary pole iron 32, which jointly act on the generation and optimization of the magnetic field. The main pole iron 31 is used to generate a periodic magnetic field, while the secondary pole iron 32 is used to assist in adjusting the magnetic field distribution and optimizing the uniformity and stability of the magnetic field. The limiting step 33 is located at the connection between the main pole iron 31 and the winding core 311, and is used to limit the winding width of the high-temperature superconducting tape, ensuring that the tape remains in a predetermined position during the winding process. The width of the limiting step 33 can be selected and set within the range of 1 mm to 10 mm according to actual needs, and is preferably set to 3 mm. The settings of the first convex segments 321, the second convex segments 22, and the grooves 312 are used to cooperate to press the coil 4 into a shape with wide ends and a narrow middle, so that the wound coil 4 adapts to the performance of the high-temperature superconducting tape and meets the requirements of the undulator for generating a magnetic field.
[0038] Specifically, please refer to Figure 6, in an embodiment of the present invention, arc transition concave segments 311d are formed at both the connection between the first winding segment 311a and the winding straight segment 311b and the connection between the second winding segment 311c and the winding straight segment 311b; the arc transition concave segment 311d includes a connected first arc segment and second arc segment. During the winding process of the high-temperature superconducting tape, stress concentration is likely to occur at the connection, and stress concentration may cause damage to the tape during the winding process, affecting its performance. The arc transition concave segment 311d reduces stress concentration through a smooth transition design, reducing the risk of damage to the tape during the winding process and improving the service life and reliability of the tape; the uniformity and stability of the magnetic field are crucial for the performance of the undulator, and the shape of the winding core 311 directly affects the distribution of the magnetic field. The design of the arc transition concave segment 311d makes the magnetic field more uniform at the connection, reducing the non-uniformity of the magnetic field and contributing to improving the stability and uniformity of the magnetic field, thereby improving the performance of the undulator; the minimum turning diameter of the REBCO high-temperature superconducting tape is relatively large, and it is necessary to reduce the stress and damage of the tape during the winding process. The design of the arc transition concave segment 311d adapts to the physical characteristics of the REBCO high-temperature superconducting tape, reduces the stress of the tape during the winding process, ensures that the tape will not be damaged during the winding process, and improves the current-carrying capacity of the tape.
[0039] In an embodiment, the first arc segment and the second arc segment are arranged in a common tangent, and the radius setting range of the first arc segment and the second arc segment is between 2 mm and 50 mm, preferably set to 20 mm. Through the common tangent arrangement and optimized radius, the magnetic field is more uniform at the connection, reducing the non-uniformity and boundary effect of the magnetic field and improving the stability and uniformity of the magnetic field; the larger radius reduces stress concentration, reduces the risk of damage to the tape during the winding process, and improves the service life and reliability of the tape; through the optimized radius setting, the tape is more smooth during the winding process, reducing the error during the winding process and improving the winding accuracy, thereby improving the uniformity and stability of the magnetic field; the optimized radius setting adapts to the physical characteristics of the REBCO high-temperature superconducting tape, reduces the stress of the tape during the winding process, ensures that the tape will not be damaged during the winding process, and improves the current-carrying capacity of the tape.
[0040] Further, please refer to Figure 6, in an embodiment of the present invention, arc transition concave segments 311d are formed on both side walls of the groove 312, and arc transition convex segments 321a adapted to the arc transition concave segments 311d are formed at both ends of the first convex segment 321 and the second convex segment 22. The arc transition concave segments 311d cooperate with the arc transition convex segments 321a to ensure that the first convex segment 321 and the second convex segment 22 can be tightly connected to the groove 312 respectively, so as to cooperate to press the coil 4 to form a shape with wide ends and narrow middle. The arc transition convex segment 321a also has a first arc segment and a second arc segment, which are adapted to the shape of the arc transition concave segment 311d to improve the stability and uniformity of the magnetic field generated by the coil 4 structure formed by winding.
[0041] Please refer to Figure 6 , in an embodiment of the present invention, the end of the first winding segment 311a extends in a direction away from the winding straight segment 311b to form an arc inclined surface segment 311e, and an inlet channel 313 is provided on a side wall of the main pole iron 31 corresponding to the arc inclined surface segment 311e. The high-temperature superconducting tape can enter from the inlet channel 313 and enter the first winding segment 311a under the steering guidance of the arc inclined surface segment 311e, so as to be periodically wound along the outer peripheral wall of the winding core 311 to form a horizontal barbell-shaped coil 4 with wide ends and narrow middle. During the winding process, the high-temperature superconducting tape needs to enter the winding core 311 from a specific inlet. The inlet channel 313 provides a clear inlet for the tape, ensuring that the tape can smoothly enter the winding core 311. The design of the arc inclined surface segment 311e can smoothly guide the turning of the tape, ensuring that the tape can smoothly enter the first winding segment 311a, providing a smooth transition surface for the high-temperature superconducting tape, reducing the stress concentration during the turning of the tape, and reducing the risk of damage to the tape during the winding process; the design of the arc inclined surface segment 311e makes the magnetic field more uniform at the connection, reducing the magnetic field non-uniformity and boundary effect, and improving the stability and uniformity of the magnetic field.
[0042] Furthermore, please refer to Figure 4 and Figure 6, in an embodiment of the present invention, a first connecting portion 314 is formed at one end of the main pole iron 31 close to the first winding segment 311a. Each of the magnet mounting members 3 includes a commutation member 34, and the commutation member 34 is detachably connected to the first connecting portion 314. A bevel concave arc groove 341 adapted to the arc bevel segment 311e is formed at the end of the commutation member 34. When performing the winding operation of the high-temperature superconducting tape, first, the high-temperature superconducting tape enters from the inlet channel 313 and enters the first winding segment 311a under the guiding action of the turning of the arc bevel segment 311e. At this time, the commutation member 34 needs to be connected to the first connecting portion 314 so that the bottom wall of the bevel concave arc groove 341 cooperates with the outer peripheral wall of the arc bevel segment 311e to fix the end of the high-temperature superconducting tape. After the end of the high-temperature superconducting tape is fixed, the high-temperature superconducting tape is periodically wound along the outer peripheral wall of the winding core 311 to form a horizontal barbell-shaped coil 4 with wide ends and a narrow middle; the detachable connection between the commutation member 34 and the first connecting portion 314 can be realized by screwing a screw through the first connecting portion 314 and the commutation member 34, or by providing a snap structure on the first connecting portion 314 and the commutation member 34. In this embodiment, screw connection is preferably adopted, and the screw can be tightened or loosened as needed to improve the connection reliability between the first connecting portion 314 and the commutation member 34, ensure the firm fixation of the end of the high-temperature superconducting tape, and reduce the error during the winding process.
[0043] Please refer to Figure 4 and Figure 6 , in an embodiment of the present invention, a third winding segment 342 protrudes from the side of the commutation member 34 facing away from the yoke iron 1. The side wall of the third winding segment 342 close to the first winding segment 311a is a concave arc surface adapted to the arc bevel segment 311e, and the side wall of the third winding segment 342 far from the first winding segment 311a is an arc surface, so that the third winding segment 342 is adapted to be connected to the first winding segment 311a. When performing the winding operation of the high-temperature superconducting tape, first, the high-temperature superconducting tape enters from the inlet channel 313 and enters the first winding segment 311a under the guiding action of the turning of the arc bevel segment 311e. At this time, the commutation member 34 needs to be connected to the first connecting portion 314 so that the bottom wall of the bevel concave arc groove 341 and the concave arc surface both cooperate with the outer peripheral wall of the arc bevel segment 311e to fix the end of the high-temperature superconducting tape. After the end of the high-temperature superconducting tape is fixed, the high-temperature superconducting tape is sequentially wound along the first winding segment 311a, the winding straight segment 311b, the second winding segment 311c, and the third winding segment 342 periodically to form a horizontal barbell-shaped coil 4 with wide ends and a narrow middle; the radius of the arc surface of the third winding segment 342 is set in the range of 1 mm to 10 mm, and is preferably set to 5 mm.
[0044] Please refer to Figure 2 , Figure 3 and Figure 6, in an embodiment of the present invention, the side wall of one end of the second winding segment 311c away from the winding straight segment 311b is a vertical plane. Each of the magnet mounting members 3 includes an adjusting member 35, and the adjusting member 35 is elastically connected to the main pole iron 31. A fourth winding segment 351 protrudes from the side of the adjusting member 35 facing away from the yoke iron 1. One side wall of the fourth winding segment 351 close to the second winding segment 311c is a vertical plane, and the side wall of the fourth winding segment 351 away from the second winding segment 311c is an arc surface, so that the fourth winding segment 351 is adaptively connected to the second winding segment 311c. When performing the winding operation of the high-temperature superconducting tape, first, the high-temperature superconducting tape enters from the inlet channel 313 and enters the first winding segment 311a under the guiding action of the turning of the arc-shaped inclined plane segment 311e. At this time, the commutation member 34 needs to be connected to the first connecting portion 314 so that the bottom wall and the concave arc surface of the inclined plane concave arc groove 341 cooperate with the outer peripheral wall of the arc-shaped inclined plane segment 311e to fix the end of the high-temperature superconducting tape. After the end of the high-temperature superconducting tape is fixed, the high-temperature superconducting tape is sequentially wound around the first winding segment 311a, the winding straight segment 311b, the second winding segment 311c, the fourth winding segment 351, and the third winding segment 342 periodically to form a horizontal barbell-shaped coil 4 with wide ends and a narrow middle; since the adjusting member 35 is elastically connected to the main pole iron 31, there is a gap between the main pole iron 31 and the adjusting member 35. After the winding width of the high-temperature superconducting tape reaches the target width, the coil 4 at the winding straight segment 311b will not be in close contact with the winding straight segment 311b. After connecting the two sub-pole irons 32 to both sides of the main pole iron 31 respectively, at this time, the coil 4 at the winding straight segment 311b is pressed by the sub-pole iron 32 and the main pole iron 31 to fit the winding straight segment 311b. At the same time, under the action of this pressing force, the gap between the main pole iron 31 and the adjusting member 35 decreases, and the vertical plane of the fourth winding segment 351 and the vertical plane of the second winding segment 311c are in close contact to complete the winding of the coil 4; the side wall of the fourth winding segment 351 away from the second winding segment 311c is an arc surface, and the radius of the arc surface is set in the range of 1 mm to 10 mm, preferably set to 5 mm; the present invention does not limit the materials of the commutation member 34 and the adjusting member 35, and preferably uses high-thermal-conductivity materials at low temperatures, such as oxygen-free copper or aluminum and other materials.
[0045] Please refer to Figure 2 and Figure 3, in an embodiment of the present invention, each of the magnet mounting members 3 includes an elastic member 36. An end face of the main pole iron 31 close to the adjusting member 35 is provided with a first receiving groove 315, and an end face of the adjusting member 35 close to the main pole iron 31 is provided with a second receiving groove 352. The first receiving groove 315 communicates with the second receiving groove 352. Two ends of the elastic member 36 are respectively connected to the bottom wall of the first receiving groove 315 and the bottom wall of the second receiving groove 352. The two ends of the elastic member 36 are respectively connected to the bottom wall of the first receiving groove 315 and the bottom wall of the second receiving groove 352, so as to form an elastic connection between the adjusting member 35 and the main pole iron 31. This elastic connection method allows the adjusting member 35 to undergo a certain amount of elastic deformation when subjected to an external force, so that it can better meet the winding requirements of the high-temperature superconducting tape when winding the coil 4; the elastic member 36 is connected to the bottom walls of the two receiving grooves, so that when the vertical plane of the fourth winding segment 351 and the vertical plane of the second winding segment 311c are closely attached, the elastic member 36 can be compressed and accommodated in the first receiving groove 315 and the second receiving groove 352, thereby minimizing the gap between the main pole iron 31 and the adjusting member 35 as much as possible. At the same time, the vertical plane of the fourth winding segment 351 can be adapted to the shape of the vertical plane of the second winding segment 311c, so that the vertical plane of the fourth winding segment 351 can be closely attached to the vertical plane of the second winding segment 311c.
[0046] Furthermore, please refer to Figure 4 and Figure 6, in an embodiment of the present invention, a second connecting portion 316 is formed at one end of the main pole iron 31 close to the second winding segment 311c. Each of the magnet mounting members 3 includes a fastener. A strip-shaped hole 316a is formed in the second connecting portion 316 along the extending direction of the main pole iron 31. An installation hole 353 is formed in the adjusting member 35. The fastener passes through the installation hole 353 and the strip-shaped hole 316a to connect the main pole iron 31 and the adjusting member 35. When winding the high-temperature superconducting tape, first, the high-temperature superconducting tape enters from the incoming line channel 313 and enters the first winding segment 311a under the guiding action of the turning of the arc-shaped inclined surface segment 311e. At this time, the commutation member 34 needs to be connected to the first connecting portion 314 so that the bottom wall and the concave arc surface of the inclined surface concave arc groove 341 cooperate with the outer peripheral wall of the arc-shaped inclined surface segment 311e to fix the end of the high-temperature superconducting tape. Then, the fastener passes through the strip-shaped hole 316a and the installation hole 353 to connect the adjusting member 35 and the main pole iron 31. After the end of the high-temperature superconducting tape is fixed, the high-temperature superconducting tape is sequentially wound around the first winding segment 311a, the winding straight segment 311b, the second winding segment 311c, the fourth winding segment 351, and the third winding segment 342 periodically to form a horizontal barbell-shaped coil 4 with wide ends and a narrow middle; since the adjusting member 35 and the main pole iron 31 are elastically connected, there is a gap between the main pole iron 31 and the adjusting member 35. After the winding width of the high-temperature superconducting tape reaches the target width, the coil 4 at the winding straight segment 311b will not be in close contact with the winding straight segment 311b. After connecting the two sub-pole irons 32 to both sides of the main pole iron 31 respectively, at this time, the coil 4 at the winding straight segment 311b is pressed by the sub-pole iron 32 and the main pole iron 31 to fit closely with the winding straight segment 311b. At the same time, under the action of this pressing force, the gap between the main pole iron 31 and the adjusting member 35 decreases. Therefore, the strip-shaped hole 316a and the installation hole 353 are provided here. The setting of the strip-shaped hole 316a can enable the adjusting member 35 to move closer to the main pole iron 31 under the action of the pressing force, so that the vertical surface of the fourth winding segment 351 and the vertical surface of the second winding segment 311c are in close contact, and the winding of the coil 4 is completed.
[0047] Please refer to Figure 4 and Figure 6 , in an embodiment, a limiting groove 317 is formed on one side of each main pole iron 31 facing the yoke iron 1. The yoke iron 1 forms a limiting convex portion 11, and a partial structure of the limiting convex portion 11 is received and limited in the limiting groove 317. The setting of the limiting convex portion 11 and the limiting groove 317 enables positioning when the main pole iron 31 and the yoke iron 1 are connected, which can effectively prevent the main pole iron 31 and the yoke iron 1 from undergoing lateral or longitudinal displacement during the connection process. This limiting design ensures the relative position fixation between the two, thereby improving the structural stability of the entire device.
[0048] The specific winding method of the magnet structure of the high-temperature superconducting undulator proposed in this solution is as follows: The high-temperature superconducting tape enters from the inlet channel 313 and enters the first winding segment 311a under the guiding action of the turning of the arc inclined surface segment 311e. At this time, the commutator 34 needs to be connected to the first connecting portion 314 (both the commutator 34 and the first connecting portion 314 are provided with threaded holes, and a bolt can be used to pass through the threaded holes of the commutator 34 and the first connecting portion 314) so that the bottom wall and the concave arc surface of the inclined surface concave arc groove 341 cooperate with the outer peripheral wall of the arc inclined surface segment 311e to fix the end of the high-temperature superconducting tape; both ends of the elastic member 36 are respectively bonded to the bottom wall of the first accommodating groove 315 and the bottom wall of the second accommodating groove 352, and then the fastener passes through the strip-shaped hole 316a and the mounting hole 353 to connect the adjusting member 35 to the main pole iron 31; the high-temperature superconducting tape is wound periodically along the first winding segment 311a, the winding straight segment 311b, the second winding segment 311c, the fourth winding segment 351, and the third winding segment 342 in sequence until the winding width of the high-temperature superconducting tape reaches the target width (the width of the limit step 33), and then the winding stops; the two sub-pole irons 32 are connected to both sides of the main pole iron 31 (both the sub-pole iron 32 and the main pole iron 31 are provided with threaded holes, and a bolt can be used to pass through the threaded holes of the sub-pole iron 32 and the main pole iron 31). At this time, the coil 4 located at the winding straight segment 311b is pressed and fitted to the winding straight segment 311b by the sub-pole iron 32 and the main pole iron 31. Under the action of this pressing force, the elastic member 36 retracts, and the gap between the main pole iron 31 and the adjusting member 35 decreases, so that the vertical surface of the fourth winding segment 351 and the vertical surface of the second winding segment 311c are closely fitted, completing the winding of the coil 4, and repeating this operation to wind multiple coils 4; an end fixing pole iron 2 is installed on the yoke iron 1, and the sub-pole iron 32 on one side of the main pole iron 31 in the wound coil 4 structure is removed, and then the main pole iron 31 is connected to the end fixing pole iron 2. Then, the sub-pole iron 32 on one side of the main pole iron 31 in the next wound coil 4 structure is removed, and the main pole iron 31 is connected to the sub-pole iron 32 in the previously fixed coil 4 structure. Repeat this operation until all the wound coil 4 structures are installed, and then another end fixing pole iron 2 is installed on the yoke iron 1 so that the second convex segment 22 of the end fixing pole iron 2 cooperates with the groove 312 of the main pole iron 31, completing the installation of the magnet structure 100 of the high-temperature superconducting undulator.
[0049] For the magnet structure 100 of the high-temperature superconducting undulator proposed in this solution, since the coil 4 is wound horizontally, the vertical magnetic field component received by the high-temperature superconducting tape can be effectively reduced, and the magnetic field direction is optimized to be closer to the critical current direction of the tape, thereby improving the current-carrying capacity of the tape and enabling the high-temperature superconducting tape to better exert its performance.
[0050] The above are only exemplary embodiments of the present invention, and thus do not limit the patent scope of the present invention. Any equivalent structural transformation made under the technical concept of the present invention by using the content of the specification and drawings of the present invention, or any direct / indirect application in other related technical fields is included in the patent protection scope of the present invention.
Claims
1. A high-temperature superconducting undulator magnet structure, comprising a coil formed by winding high-temperature superconducting tapes, characterized in that, The high-temperature superconducting undulator magnet structure includes: Yoke iron; At least two end-fixed pole pieces, the two end-fixed pole pieces are arranged on the yoke iron and enclose an installation groove with the yoke iron; and A plurality of magnet mounting members, the plurality of magnet mounting members are arranged on the yoke iron and located in the installation groove. One side of each magnet mounting member is convexly provided with a winding core body. The winding core body has a first winding segment, a winding straight segment and a second winding segment connected to each other. The width of the winding straight segment is smaller than the widths of the first winding segment and the second winding segment. The end faces of the first winding segment and the second winding segment away from the winding straight segment are arc surfaces. The high-temperature superconducting tape is wound around the winding core body to form the coil and is adapted to the outer peripheral wall of the winding core body; Each magnet mounting member includes a main pole piece and a sub-pole piece. The winding core body is convexly provided on one side of the main pole piece. A limiting step is formed at the connection between the main pole piece and the winding core body. One sub-pole piece is arranged between any two adjacent main pole pieces; grooves are formed on the opposite side walls of the main pole piece corresponding to the winding straight segment, and first convex segments are formed on the opposite side walls of the sub-pole piece corresponding to the grooves; a second convex segment is formed at one end of each end-fixed pole piece close to the main pole piece corresponding to the groove; Arc transition concave segments are formed at the connection between the first winding segment and the winding straight segment and at the connection between the second winding segment and the winding straight segment; the arc transition concave segment includes a first arc segment and a second arc segment connected to each other; Arc transition concave segments are formed on both side walls of the groove, and arc transition convex segments adapted to the arc transition concave segments are formed at both ends of the first convex segment and the second convex segment; The side wall of the end of the second winding segment away from the winding straight segment is a vertical surface. Each magnet mounting member includes an adjusting member. The adjusting member is elastically connected to the main pole piece. A fourth winding segment is convexly provided on the side of the adjusting member facing away from the yoke iron. The side wall of the fourth winding segment close to the second winding segment is a vertical surface, and the side wall of the fourth winding segment away from the second winding segment is an arc surface, so that the fourth winding segment is adapted to be connected to the second winding segment; Each magnet mounting member includes an elastic member. A first receiving groove is formed on the end face of the main pole piece close to the adjusting member, and a second receiving groove is formed on the end face of the adjusting member close to the main pole piece. The first receiving groove is communicated with the second receiving groove. The two ends of the elastic member are respectively connected to the bottom wall of the first receiving groove and the bottom wall of the second receiving groove.
2. The high-temperature superconducting undulator magnet structure according to claim 1, characterized in that The end of the first winding segment extends towards the direction away from the winding straight segment to form an arc inclined surface segment, and an incoming wire channel is formed on one side wall of the main pole piece corresponding to the arc inclined surface segment.
3. The high-temperature superconducting undulator magnet structure according to claim 2, characterized in that, A first connecting portion is formed at one end of the main pole piece close to the first winding segment. Each magnet mounting member includes a commutation member. The commutation member is detachably connected to the first connecting portion, and an inclined surface concave arc groove adapted to the arc inclined surface segment is formed at the end of the commutation member.
4. The high-temperature superconducting undulator magnet structure according to claim 3, characterized in that, On one side of the commutation member facing away from the yoke, a third winding segment protrudes. One side wall of the third winding segment close to the first winding segment is a concave arc surface adapted to the arc inclined surface segment, and one side wall of the third winding segment far from the first winding segment is an arc surface, so that the third winding segment is adaptively connected to the first winding segment.
5. The high-temperature superconducting undulator magnet structure according to claim 1, wherein A second connecting portion is formed at one end of the main pole iron close to the second winding segment. Each of the magnet mounting members includes a fastener. The second connecting portion is provided with a strip-shaped hole arranged along the extending direction of the main pole iron. The adjusting member is provided with a mounting hole. The fastener passes through the mounting hole and the strip-shaped hole to connect the main pole iron and the adjusting member.
Citation Information
Patent Citations
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