Subelement for a semi-finished wire for the production of a Nb3Sn superconducting wire
By integrating Nb-containing filler elements with diverse geometries in the intermediate region of Nb3Sn superconducting wires, the issues of void formation and mechanical weakness are addressed, resulting in enhanced current carrying capacity and stability.
Patent Information
- Application Number
- DE102024109846
- Authority / Receiving Office
- DE · DE
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-04-09
- Publication Date
- 2025-10-09
AI Technical Summary
Existing Nb3Sn superconducting wires suffer from void formation and mechanical weakness due to diffusion processes during heat treatment, leading to reduced superconducting current carrying capacity and increased vulnerability to cracks under external forces.
Incorporating Nb-containing filler elements with varying geometries in the intermediate region of the sub-elements, allowing for the formation of additional Nb3Sn and minimizing voids, thereby enhancing mechanical robustness and current carrying capacity.
The design results in a superconducting wire with improved mechanical stability and higher current carrying capacity by reducing voids and crack formation, particularly under Lorentz forces, while maintaining high ohmic conductivity.
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Abstract
Description
[0001] The invention relates to a subelement for a semi-finished wire for producing a Nb3Sn superconducting wire, where the subelement comprises - a Sn-containing core region, - a Cu-containing inner matrix region surrounding the Sn-containing core region, - a bundle region comprising a plurality of adjacent Nb-containing rod elements, the bundle region surrounding the inner matrix region, - an intermediate area surrounding the bundle area, - a circumferential diffusion barrier surrounding the intermediate region, and - a Cu-containing shell region surrounding the diffusion barrier.
[0002] Such a subelement is known from EP 1 719 190 B1.
[0003] Superconducting materials can transport electrical current without significant ohmic losses. For example, superconducting wires are used to wind magnetic coils that can generate very high magnetic field strengths, such as those required in NMR spectroscopy.
[0004] Despite significant advances in high-temperature superconductor materials, low-temperature superconductor materials (with a transition temperature of 40 K or less) continue to play a significant role in practical applications. In particular, Nb3Sn-containing superconducting wires are used in the production of magnet coils for high magnetic field strengths. These superconducting wires are required to have a high current-carrying capacity and to be mechanically robust enough to withstand the stresses encountered during use.
[0005] The production of Nb3Sn superconducting wires involves the production of an unreacted semi-finished wire containing Nb and Sn. The semi-finished wire is formed into a desired shape, for example, wound into a coil, and subjected to a reaction heat treatment. During this process, the Nb contained in the semi-finished wire reacts with the Sn contained in the semi-finished wire to form the superconducting Nb3Sn phase, thereby transforming the semi-finished wire into a superconducting wire.
[0006] Various routes have been identified for the production of Nb3Sn superconducting wire or the corresponding semi-finished wire, some of which differ considerably. In the bronze route, the required Sn is contained in a bronze alloy within the semi-finished wire. In the internal tin method, the Sn is generally separated from the Cu in the semi-finished wire until heat treatment.
[0007] From the aforementioned EP 1 719 190 B1, a process based on an internal tin method has become known. In this process, subelements are first manufactured, each subelement having a Sn-containing core (core region) surrounded by an inner part of a Cu-containing matrix (inner matrix region). A plurality of Nb-containing filaments (Nb-containing rod elements) are arranged adjacent to one another around this core, each having an Nb-containing core and a Cu cladding. The region (bundle region) of the Nb-containing filaments is in turn surrounded by an outer part of the Cu-containing matrix. A circumferential diffusion barrier made of Nb is arranged around the outer part of the Cu-containing matrix. This barrier is surrounded by a cladding (cladding region) made of Cu. Several of these subelements are bundled in a Cu matrix and subjected to a cross-sectional tapering, thereby producing a semi-finished wire.This process is also known as the Restack Rod Process (RRP). ® ) became known.
[0008] A similar procedure is also described in DE 10 2019 204 926.
[0009] The RRP ® -process is also discussed in detail in C. Sanabrina, “A new understanding of the heat treatment of Nb-Sn superconducting wires”, PhD Thesis, Florida State University, Tallahassee, US, 2017.
[0010] According to the inventors' findings, during the reaction heat treatment of such a semi-finished wire, significant voids can arise due to diffusion processes in the outer part of the Cu-containing matrix of the subelements, i.e., in the intermediate region between the bundle region and the diffusion barrier. These voids do not contribute to the superconducting current-carrying capacity of the superconducting wire. Furthermore, the voids represent mechanical weak points from which cracks can originate, particularly when the finished superconducting wire is exposed to significant forces during use, such as Lorentz forces in a magnet. Such cracks can reduce the superconducting current-carrying capacity. In addition, local stress increases occur in the porosity region, which negatively impact the superconducting properties of the affected Nb3Sn.
[0011] From I. Pong et al., Supercond. Sci. Technol. 26 (2013) 105002, it has been reported that porosity can develop around Nb-containing filaments (Nb-containing rod elements) during reaction heat treatment. Large Kirkendall pores were typically observed toward the diffusion barrier.
[0012] WL Neijmeijer, in “Microstructural and kinetic studies of the manufacturing of superconducting Nb3Sn”, PhD thesis, Universiteit Twente, Enschede, NL, 1988, describes that pores and crevices form stress centers that can induce cracks in the brittle Nb3Sn phase.
[0013] T. Bagni et al., Supercond. Sci. Technol. 35 (2022), 104003, describes the initiation and propagation of cracks in RRP ® Nb3Sn wires. In magnetic applications, periodic Lorentz forces, in particular, can lead to stresses. At stresses above 150 MPa, cracks have been observed in the formed Nb3Sn.
[0014] C. Senatore et al., Supercond. Sci. Technol. 36 (2023), 075001, describe the degradation of the critical current in Nb3Sn wires due to residual stresses.
[0015] EP 2 717 340 A2 proposes to enrich the Cu-containing shells of the Nb-containing elements (Nb-containing rod elements) with Sn.
[0016] In EP 3 420 565 B1 it is proposed to form the Cu-containing matrix in which the copper-clad Nb rods (Nb-containing rod elements) are arranged, as a bronze with a low Sn content. Object of the invention
[0017] The object of the invention is to improve the superconducting current carrying capacity and the mechanical robustness of an Nb3Sn superconducting wire. Description of the invention
[0018] This object is achieved according to the invention by a sub-element of the type mentioned at the outset, which is characterized in that that Nb-containing filling elements are arranged in the intermediate region, each of which has a geometry that differs from the geometry of the Nb-containing rod elements.
[0019] The invention proposes arranging Nb-containing filler elements in the sub-elements for the semi-finished wire in the intermediate region between the bundle region of the adjacent, usually hexagonal, Nb-containing rod elements and the typically circular diffusion barrier.
[0020] These Nb-containing filler elements have a different geometry than the (usually uniform) geometry of the Nb-containing rod elements in the bundle region. This allows the Nb-containing filler elements to be adapted to the available space in the intermediate region. In particular, Nb-containing filler elements can be arranged in the intermediate region where an arrangement of additional Nb-containing rod elements (with the geometry used in the bundle region) would no longer be possible.
[0021] During the reaction heat treatment of a semi-finished wire made from the sub-elements, additional Nb3Sn can be formed in the intermediate region between the sub-elements from the Nb-containing filler elements. The additionally formed Nb3Sn contributes to the superconducting current-carrying capacity, and the formation of voids in the cross-section of the finished Nb3Sn superconducting wire is avoided. Depending on the reaction procedure and the proportion of Sn available in the sub-element cross-section, some unreacted Nb may also remain in the former intermediate region; in this case, at least the formation of voids is reduced. By minimizing voids in the cross-section of the finished Nb3Sn superconducting wire, the superconducting wire becomes mechanically more robust, and the formation and propagation of cracks is reduced, particularly under the influence of external forces, such as Lorentz forces. This also prevents the degradation of the superconducting current-carrying capacity (orof the critical current) is minimized in the application.
[0022] The invention thus differs from the conventional prior art, which proceeds as follows: In the prior art, a copper matrix is arranged in the space (intermediate region) between the bundle region of the Nb-containing rod elements and the diffusion barrier. This allows the copper to diffuse away during the reaction heat treatment, particularly radially inward toward the core region. The spaces previously occupied by copper then become voids, which impair the mechanical stability of the finished Nb3Sn superconducting wire and do not contribute to the superconducting current-carrying capacity.
[0023] The inventors have found that, despite the comparatively large distance between the Nb-containing filler elements in the intermediate region and the Sn-containing core region, the niobium in the Nb-containing filler elements can still be largely converted to Nb3Sn during a conventional reaction heat treatment in the inventive design. An arrangement of additional Sn sources in the bundle region or intermediate region is generally not necessary, but can be implemented within the scope of the invention if desired. Compared to a conventional sub-element design, the Sn content in the sub-element cross-section can be slightly increased within the scope of the invention, if necessary, in particular by means of an enlarged Sn-containing core region, in order to be able to convert the additionally available Nb in the Nb-containing filler elements to Nb3Sn.
[0024] Since Cu catalyzes the formation of Nb3Sn and, moreover, the diffusion of Sn into Cu is rapid compared to Nb3Sn formation, within the scope of the invention, a portion of the sub-element cross-section in the intermediate region can also be occupied by Cu or a Cu-containing phase and / or a certain proportion of Cu can be present in the elements / structures incorporated in the intermediate region. However, in the intermediate region, the portion of the sub-element cross-section occupied by Cu or Cu-containing phases should be small (typically 40% or less, preferably 20%, particularly preferably 10% or less, based on the total cross-section of the elements / structures incorporated in the intermediate region), and / or the proportion of Cu in the elements / structures incorporated in the intermediate region should be small (typically, on average across all elements / structures in the intermediate region, 40 wt% or less, preferably 20 wt% or less, particularly preferably 10 wt% or less).A low Cu content in the intermediate region effectively prevents the formation of voids. Typically, the proportion of Nb in the intermediate region (averaged across all elements / structures located in the intermediate region) is 50 wt% or more, preferably 60 wt% or more, particularly preferably 80 wt% or more. Furthermore, the intermediate region in cross-section, based on the area, is typically occupied by elements / structures (these are Nb-containing filler elements and, if applicable, additional elements / structures) to an extent of at least 50%, preferably at least 60%, particularly preferably at least 70%.
[0025] Due to the comparatively high filler content and, in particular, the homogenization of the mechanical properties when using Nb-containing filler elements in the intermediate region, good forming behavior is also achieved during cross-section-reducing forming of the subelement (individually or in a semi-finished wire). In particular, the diffusion barrier is not damaged during these forming processes and protects the surrounding Cu-containing cladding area of the subelement (and even more external structures) from tin contamination during heat treatment. Good forming behavior can be achieved even if no Cu is incorporated in the intermediate region; nevertheless, within the scope of the invention, Cu or Cu-containing phases can also be incorporated in the intermediate region, but preferably only to a small extent (see above).
[0026] The different geometries of the Nb-containing filler elements in the intermediate region, on the one hand, and the Nb-containing rod elements in the bundle region, on the other hand, can result in a different external shape and / or a different size in cross-section. The Nb-containing filler elements contain at least one phase containing Nb, typically wherein this phase is solid; alternatively, this phase can also be powdery. The Nb-containing rod elements are typically manufactured with an Nb core (Nb rod) and a surrounding Cu shell (Cu cladding tube). Typically, all Nb-containing rod elements in the bundle region have a uniform, identical geometry (same shape in cross-section, typically hexagonal, and same size); if additional rod elements are arranged in the bundle region, these typically have the same geometry.In many applications, the intermediate area is so narrow that no Nb-containing rod elements from the bundle area can be placed there. However, it can be filled, for example, with smaller Nb-containing filler elements. Preferred embodiments of the invention
[0027] In a preferred embodiment of the subelement according to the invention, the Nb-containing rod elements have a hexagonal cross-section. This allows the Nb-containing rod elements (and optionally other rod elements of the same geometry) to be bundled particularly easily and densely, typically without gaps.
[0028] Particularly preferred is an embodiment which provides that the Nb-containing rod elements each have a cross-sectional area ASE, and that at least some of the Nb-containing filling elements each have a cross-sectional area AFE, with AFE <ASE. Die Nb-haltigen Füllelemente mit (im Vergleich zu den Nb-haltigen Stabelementen) kleiner Querschnittsfläche können sehr gut Räume im Zwischenbereich ausfüllen, in die keine Nb-haltigen Stabelemente mehr passen. Dadurch kann die erreichbare supraleitende Stromtragfähigkeit im fertigen Supraleiterdraht und die mechanische Belastbarkeit gesteigert werden.
[0029] Also particularly preferred is an embodiment which provides that the Nb-containing rod elements each have a maximum length LSE in cross-section, and at least some of the Nb-containing filler elements each have a maximum length LFE in cross-section, with LFE <LSE, and / or that the Nb-containing rod elements in cross-section each have a greatest width BSE perpendicular to the direction of their greatest length LSE, and at least some of the Nb-containing filler elements in cross-section each have a greatest width BFE perpendicular to the direction of their greatest length LFE, with BFE <BSE.
[0030] Nb-containing filler elements with a shorter length (LFE) and / or a shorter width (BFE) (compared to Nb-containing rod elements with LSE and BSE) can also very effectively fill spaces in the intermediate region where Nb-containing rod elements can no longer fit, or generally fill small remaining spaces and gaps around intermediate regions. This can also increase the achievable superconducting current-carrying capacity in the finished superconducting wire. Preferably, for at least some of the Nb-containing filler elements, LFE≤0.75*LSE, preferably LFE≤0.50*LSE, and / or BFE≤0.75*BSE, preferably BFE≤0.50*BSE.
[0031] Also advantageous is an embodiment in which the Nb-containing rod elements each have an aspect ratio AVSE in cross-section, and at least some of the Nb-containing filler elements each have an aspect ratio AVFE in cross-section, with AVFE>AVSE. Nb-containing filler elements with a high aspect ratio are particularly well suited for filling the approximately crescent-shaped spaces in the intermediate region, or even small gaps in the intermediate region. It should be noted that Nb-containing filler elements according to this embodiment can be both larger and smaller than the Nb-containing rod elements of the bundle region.
[0032] In an advantageous embodiment, Nb-containing filler elements of at least two different types are arranged in the intermediate region, with the different types of Nb-containing filler elements differing at least in their geometry. The different geometries of the different types of Nb-containing filler elements in the intermediate region can include a different external shape and / or a different size. With multiple types of Nb-containing filler elements, a particularly high fill level can be achieved in the intermediate region of the subelement.
[0033] An advantageous embodiment is one in which at least some of the Nb-containing filler elements have a circular cross-section on the outside. Round Nb-containing filler elements are easy to manufacture and can be used universally in the intermediate region of subelements. Special adaptation of the cross-section of the Nb-containing filler elements to the specific subelement type (e.g., to the number, size, and arrangement of the installed Nb-containing rod elements or the inner diameter of the diffusion barrier) is not necessary.
[0034] Particularly preferred is an embodiment in which at least some of the Nb-containing filler elements have a polygonal, in particular hexagonal, cross-section on the outside. Polygonal Nb-containing filler elements can achieve particularly high fill levels in the intermediate region and / or large, closed filled areas in the intermediate region. For example, hexagonal and diamond-shaped Nb-containing filler elements can be combined very well, so that only minimal free spaces remain in the intermediate region after assembly of the subelement; the geometry of three corners of the corresponding rhombus preferably corresponds to the geometry of three connected corners of the corresponding hexagon.
[0035] An embodiment is advantageous in which at least some of the Nb-containing filling elements have a respective filling element in cross section - has on a radially inner side a profiling corresponding to a portion of an outer edge of the bundle area, and - has a round profile on a radially outer side corresponding to a section of the inside of the diffusion barrier.
[0036] With appropriate filler elements, the intermediate region can be filled almost completely. This allows for particularly high superconducting current-carrying capacities in the finished superconducting wire. In the case of hexagonal Nb-containing rod elements, the radially inner side has a partially straight profile.
[0037] A further preferred embodiment is one in which at least some of the Nb-containing filler elements also contain Cu. Cu can catalyze the formation of Nb3Sn and accelerate the diffusion of Sn to the niobium. Furthermore, Cu or a Cu-containing phase can improve the deformation behavior of the Nb-containing filler elements during cross-section-tapering processes.
[0038] Particularly preferred is an embodiment in which at least some of the Nb-containing filling elements have a respective filling element in cross section - has at least one zone of a first Nb-containing phase, and - has at least one zone of a second, Cu-containing phase.
[0039] This structure makes it easy to incorporate Cu into the Nb-containing subelements, especially in virtually any molar ratio. Note that in a given Nb-containing filler element, the Cu content is typically 40 wt% or less, preferably 20 wt% or less, and most preferably 10 wt% or less. A Cu-containing phase can also improve the drawing behavior of the subelement.
[0040] In an advantageous further development of this embodiment, it is provided that at least in some of the Nb-containing filling elements, a respective filling element in cross section - has a core zone of the first, Nb-containing phase, and - has a lamination zone of the second, Cu-containing phase, which completely encloses the core zone.
[0041] This structure is comparatively simple and enables rapid transport of Sn to the Nb in the core zone of the Nb-containing filler elements from all sides, thus achieving a particularly uniform distribution. The core zone and the lamination zone can be designed concentrically (toward a center of the Nb-containing filler element).
[0042] A further development is also preferred which provides that at least in some of the Nb-containing filling elements, a respective filling element in cross section - has a rear zone of the first Nb-containing phase, which borders radially on the outside of the diffusion barrier, and - has a front zone of the second, Cu-containing phase, which borders radially inwardly on the bundle region and separates the rear zone from the bundle region.
[0043] With this structure, Sn can be transported particularly efficiently from the radially inner side, especially from the Sn-containing core region of the subelement, into the Nb-containing phase. In particular, the front zone can be designed to surround the rear zone in a U-shape.
[0044] A further preferred development provides that at least in some of the Nb-containing filling elements, a respective filling element in cross section - is formed as a layer structure with several first layer zones of the first, Nb-containing phase and several second layer zones of the second, Cu-containing phase, - and first layer zones and second layer zones alternate.
[0045] The layered structure can improve the access of Sn (transported through the second layer zones) to the first layer zones, and overall accelerate the formation of Nb3Sn in the intermediate region. In particular, the first layer zones and second layer zones can be arranged to be substantially radially aligned with respect to the subelement; this further improves the rapid access of Sn from the core region of the subelement to the Nb in the Nb-containing filler elements.
[0046] A preferred development is one which provides that at least in some of the Nb-containing filling elements, a respective filling element in cross section - is formed as a rolled-up structure with a rolled-up layer zone of the first, Nb-containing phase and a rolled-up layer zone of the second, Cu-containing phase, wherein these rolled-up layer zones are rolled together on top of one another, and / or - is designed as a multifilament structure with a matrix zone of the second, Cu-containing phase and several filament zones of the first, Nb-containing phase, which are distributed in the matrix zone.
[0047] In this way, it is possible to keep the maximum distance between Cu and Nb in the cross-section of the subelement in the Nb-containing filling elements small, which can accelerate the formation of Nb3Sn.
[0048] In an advantageous development, at least in some of the Nb-containing filler elements, one or more zones of the first, Nb-containing phase and one or more zones of the second, Cu-containing phase are arranged concentrically in the Nb-containing filler element. The zones of the first phase and the second phase are thus arranged around a common center of the respective Nb-containing filler element. In this way, it is also possible to keep the maximum distance between Cu and Nb in the cross-section of the sub-element in the Nb-containing filler elements small, which can accelerate the formation of Nb3Sn.
[0049] In an advantageous embodiment, that at least some of the Nb-containing filling elements are designed as doping filling elements, wherein the doping filling elements contain at least one element of the fourth subgroup of the periodic table in at least one contained phase, and / or that doping additional elements are also arranged in the intermediate region, wherein the doping additional elements contain at least one element of the fourth subgroup of the periodic table in at least one contained phase, in particular wherein the at least one element of the fourth subgroup of the periodic table comprises titanium.
[0050] By adding chemical elements from the fourth subgroup, especially Ti, the microstructure of Nb3Sn superconducting wire can be refined, and higher superconducting current-carrying capacities can be achieved. Titanium can be added, for example, in doping filler elements with a core made of an Nb-Ti alloy. In the case of additional doping elements, these can be made of titanium or contain a titanium core coated with a Cu layer.
[0051] An embodiment is also advantageous which provides that at least some of the Nb-containing filling elements are designed as reinforcing filling elements, wherein the reinforcing filling elements contain at least one element of the fifth subgroup of the periodic table in at least one contained phase, and / or that additional reinforcing elements are also arranged in the intermediate region, wherein the additional reinforcing elements contain at least one element of the fifth subgroup of the periodic table in at least one contained phase, In particular, the at least one element of the fifth subgroup of the periodic table comprises tantalum. Mechanical reinforcement can be achieved by adding chemical elements of the fifth subgroup, in particular Ta.
[0052] A preferred embodiment provides that at least for some of the Nb-containing filling elements, the respective filling element - also contains Sn, - preferably wherein the respective filling element has in cross-section at least one zone of a first, Nb-containing phase and at least one zone of a second, Cu-containing phase, and the Sn is contained in the Cu-containing phase, - particularly preferably wherein a core zone of the first, Nb-containing phase is completely enclosed by a lamination zone of the second, Cu-containing phase, in which the Sn is also contained.
[0053] The additional tin in the Nb-containing filler elements can directly contribute to the formation of Nb3Sn, in addition to the Sn-containing core region of the subelement. Furthermore, Cu-containing phases in the region of the Nb-containing filler elements can accelerate the transport of Sn from the core region to the Nb in the Nb-containing filler elements through Sn present from the beginning or rapidly diffusing in from the surrounding area.
[0054] Also within the scope of the present invention is a method for producing an Nb3Sn superconducting wire, comprising at least the following steps: Step 1) Manufacturing a plurality of sub-elements according to any one of the preceding claims; Step 2) Bundling of several manufactured sub-elements into a semi-finished wire; Step 3) Reaction heat treatment of the semi-finished wire, whereby Sn and Nb from the semi-finished wire react to form Nb3Sn.
[0055] The process according to the invention produces an Nb3Sn superconducting wire capable of achieving particularly high current-carrying capacity and high mechanical robustness. Note that step 1) typically also includes forming the subelements to reduce their cross-section. Note that step 2) typically also includes forming the semi-finished wire to reduce its cross-section. Furthermore, the subelements can be bundled in one or more stages. Note that the reaction heat treatment in step 3) is carried out with the semi-finished wire in a desired shape (e.g., wound into a coil) and therefore typically also includes prior shaping. The reaction heat treatment typically involves several heat treatment stages (temperature plateaus in which a constant temperature is maintained for some time, usually several hours).For example, a first temperature plateau may be at 200-220°C, a second temperature plateau at 350-400°C, and a third temperature plateau at 600-750°C.
[0056] Further advantages of the invention will become apparent from the description and the drawings. Likewise, the above-mentioned and further-described features can be used individually or in combination in any desired manner. The embodiments shown and described are not intended to be exhaustive, but rather are exemplary in nature for describing the invention. Detailed description of the invention and drawing Fig. Figure 1a shows in schematic cross-section an embodiment of a subelement according to the invention, with Nb-containing filling elements in two types containing finely distributed Nb; Fig. Figure 1b shows schematically one of the Nb-containing filling elements and a Nb-containing rod element made of Fig. 1a, in scale comparison; Fig. 2 shows in schematic cross-section a further embodiment of a subelement according to the invention, with Nb-containing filler elements containing finely distributed Nb, and additional reinforcing elements; Fig. 3a shows a schematic cross-section of a further embodiment of a subelement according to the invention, with Nb-containing filling elements with a layer structure oriented in the circumferential direction; Fig. 3b shows schematically an enlarged section of Fig. 3a; Fig. 4a shows a schematic cross-section of another embodiment of a subelement according to the invention, with Nb-containing filling elements with a radially aligned layer structure; Fig. 4b shows schematically an enlarged section of Fig. 4a; Fig. 5a shows a schematic cross-section of another embodiment of a subelement according to the invention, with circular Nb-containing filling elements of different sizes; Fig. Figure 5b shows schematically an enlarged section of Fig. 5a; Fig. Figure 5c shows schematically the different Nb-containing filling elements as well as one of the Nb-containing rod elements from Fig. 5a, in scale comparison; Fig. 6 shows a schematic cross-section of another embodiment of a subelement according to the invention, with circular Nb-containing filling elements of different sizes and doping additional elements; Fig. 7 shows in schematic cross-section various types of Nb-containing filling elements, each with at least one zone of a first, Nb-containing phase and at least one zone of a second, Cu-containing phase; Fig. 8 shows a schematic cross-section of a further embodiment of a subelement according to the invention, with two types of Nb-containing filling elements, wherein in one type several filament zones of a first, Nb-containing phase are present; Fig. 9a shows in schematic cross-section a further embodiment of a subelement according to the invention, with two types of Nb-containing filling elements, one type being hexagonal and one type being diamond-shaped; Fig. 9b shows schematically an enlarged section of Fig. 9a; Fig. 10a shows in schematic cross-section a further embodiment of a subelement according to the invention, with two types of Nb-containing filling elements, each having a rear zone of a first, Nb-containing phase and a front zone of a second, Cu-containing phase; Fig. 10b shows schematically an enlarged section of Fig. 10a; Fig. 11 shows schematically the sequence of an exemplary variant of a method according to the invention for producing an Nb3Sn superconducting wire.
[0057] The Fig. 1a shows a schematic cross-section of a first exemplary embodiment of a subelement 1 according to the invention.
[0058] Subelement 1 comprises a Sn-containing core region 2, which here is formed by a solid Sn rod. Alternatively, the Sn-containing core region can also be formed by a powder or a powder mixture containing Sn powder and / or Sn-containing powder (not shown). The Sn-containing core region 2 is circular in its radial direction.
[0059] The Sn-containing core region 2 is surrounded by a Cu-containing inner matrix region 3. The Cu-containing matrix region 3 is formed here by appropriately shaped elemental Cu. The Cu-containing inner matrix region 3 is profiled outwardly in sections, corresponding to the adjacent bundle region 4.
[0060] The Cu-containing inner matrix region 3 is surrounded by the bundle region 4, which is formed by a plurality of adjacent Nb-containing rod elements 5. The Nb-containing rod elements 5 are each hexagonal in their outer cross-section and of equal size.
[0061] The bundle region 4 is surrounded by an intermediate region 6, in which Nb-containing filler elements 7, 8 are arranged. In the illustrated design, two types of Nb-containing filler elements 7, 8 are installed. The Nb-containing filler elements 7 are smaller than the Nb-containing filler elements 8. Here, the Nb-containing filler elements 7, 8 are profiled straight in sections radially inward, corresponding to the adjacent bundle region 4. Towards the radial outside, the Nb-containing filler elements 7, 8 are round, corresponding to the adjacent diffusion barrier 9.
[0062] The diffusion barrier 9, which is circular in its radial direction both inside and outside, borders the intermediate region 6. The diffusion barrier 9 is thus designed like a circular cylindrical tube. The diffusion barrier 9 is formed, for example, from Nb, V, or Ta.
[0063] During the reaction heat treatment, the diffusion barrier 9 prevents Sn from penetrating radially outward into a Cu-containing cladding region 10, which is made of elemental Cu in this case. This allows the Cu-containing cladding region 10 in the finished superconducting wire to retain a high ohmic conductivity. The Cu-containing cladding region 10 is hexagonal on the outside, which facilitates subsequent bundling into a semi-finished wire (see Fig. 11 on this).
[0064] The Fig. Figure 1b shows, enlarged but true to scale, an Nb-containing rod element 5 and an Nb-containing filling element 8 of Fig. 1a.
[0065] The Nb-containing rod element 5 has a solid Nb core 11 surrounded by a Cu shell 12. The Nb core 11 is round on the outside. The Cu shell 12 is correspondingly round on the inside and hexagonal on the outside.
[0066] The Nb-containing filler element 8 has a partially straight profile 13 on one side (directed radially inward in the sub-element), and a round (circularly curved) profile 14 on the other side (directed radially outward in the sub-element). The Nb-containing filler element 8 contains finely and evenly distributed Nb; in the illustrated embodiment, the Nb-containing filler element 8 is made of an alloy consisting of 92.5 wt% Nb and 7.5 wt% Ta (Nb7.5Ta). Due to the Ta content, the filler element 8 can also serve as a reinforcing filler element 15.
[0067] The Nb-containing filling element 8 has a greatest length LFE and, perpendicular to this, a corresponding greatest width BFE, and thus an aspect ratio AVFE=LFE / BFE, where AVFE here is approximately 4.9.
[0068] The Nb-containing rod element 5 has a maximum length LSE (between opposite corners) and a corresponding maximum width BSE (between opposite sides) perpendicular to this, and thus an aspect ratio AVSE=LSE / BSE, where AVSE is approximately 1.2. In the design shown, AVFE>AVSE.
[0069] In the design shown, see Fig. 1a, the intermediate region 6 would still be wide enough in some places to accommodate a few more Nb-containing rod elements. However, this was omitted here in order to arrange comparatively long, marginal, straight layer sections of Nb-containing rod elements 5 at the edge of the bundle region 4, and to continue to form the Nb-containing filler elements 7, 8 with a comparatively large width everywhere. This facilitates production.
[0070] The further embodiments of sub-elements for the invention explained below largely correspond to sub-element 1 of Fig. 1a, so that only the essential differences are explained; the differences are mostly limited to the intermediate area and the filling elements there.
[0071] In the embodiment of subelement 1, which is shown in Fig. 2, has the Nb-containing filler elements 8 in the intermediate region 6, and also doping elements 16. In the design shown, these contain an alloy of Cu and Ti. During the reaction heat treatment, the Cu and Ti from the doping elements 16 can support the formation of the Nb3Sn phase from the Nb from the Nb-containing filler elements 8 and from the Sn from the Sn-containing core region 2 with high superconducting current carrying capacity.
[0072] In a variant of the design of Fig. 2, instead of additional doping elements 16, additional reinforcing elements can also be installed, which are made of tantalum or contain tantalum, for example (not shown in detail).
[0073] The Fig. 3a in general overview and the Fig. 3b with an enlarged section of Fig. 3a shows a subelement 1 in an embodiment in which two types of Nb-containing filler elements 7, 8 are installed. While the smaller Nb-containing filler elements 7 contain finely distributed Nb, the larger Nb-containing filler elements 8 have a layered structure 30.
[0074] The layer structure 30 is formed by a plurality of first layer zones 17 of a first, niobium-containing phase P1 (e.g., Nb7.5Ta) and a plurality of second layer zones 18 of a second, Cu-containing phase P2 (e.g., Cu0.5Sn). The first layer zones 17 and the second layer zones 18 alternate, here along the radial direction. The layer zones 17, 18 each extend in a circular arc, concentric with respect to the center of subelement 1.
[0075] The Fig. 4a in general overview and the Fig. 4b with an enlarged section of Fig. 4a also shows a subelement 1 in an embodiment in which two types of Nb-containing filler elements 7, 8 are installed. The smaller Nb-containing filler elements 7 contain finely distributed Nb, whereas the larger Nb-containing filler elements 8 have a layered structure 30.
[0076] The layer structure 30 is formed by a plurality of first layer zones 17 of a first, niobium-containing phase P1 (e.g., pure Nb), and a plurality of second layer zones 18 of a second, Cu-containing phase P2 (e.g., pure Cu). The first layer zones 17 and the second layer zones 18 alternate, here along the circumferential direction. The layer zones 17, 18 each extend straight along the radial direction relative to the center of the subelement 1.
[0077] The Fig. 5a in general overview and the Fig. 5b with an enlarged section of Fig. 5a show a subelement 1 in an embodiment in which three types of Nb-containing filling elements 19, 20, 21 are installed in the intermediate region 6. The Fig. 5c also shows Fig. 5a the Nb-containing filling elements 19, 20, 21 and an Nb-containing rod element 5 individually and enlarged, but true to scale to each other.
[0078] In the design shown, the intermediate region 6 between the bundle region 4 and the diffusion barrier 9 is comparatively narrow, so that no further Nb-containing rod elements 5 could be arranged in the intermediate region 6.
[0079] The Nb-containing filler elements 19, 20, and 21 each have a circular outer cross-section but differ in size. The Nb-containing filler element 19 has the largest diameter D, the Nb-containing filler element 20 has an average diameter D, and the Nb-containing filler element 21 has the smallest diameter D. All three types of Nb-containing filler elements 19, 20, and 21 each have a core zone 22 of a first, Nb-containing phase P1, and a cladding zone 23 of a second, Cu-containing phase P2. The cladding zone 23 encloses the core zone 22 on all sides (completely over the entire circumference).
[0080] The Nb-containing filling elements 19, 20, 21 are smaller in all three types compared to the Nb-containing rod element 5 in various aspects: The cross-sectional area ASE of the Nb-containing rod element 5 is larger than the respective cross-sectional area AFE of the Nb-containing filling elements 19, 20, 21. Furthermore, the greatest length LSE of the Nb-containing rod element 5 (between two opposite corners) is greater than the respective greatest length LFE of the Nb-containing filling elements 19, 20, 21. Note that due to the circular shape, LFE corresponds to D in each case.
[0081] In addition, the greatest width BSE perpendicular to the direction of the greatest length LSE in the Nb-containing rod element 5 (between two opposite sides) is greater than the greatest width BFE perpendicular to the direction of the greatest length LFE in the respective Nb-containing filling element 19, 20, 21. Note that due to the circular shape, BFE also corresponds to D here.
[0082] Due to these aspects, the intermediate region 6 can be filled to a high degree with the Nb-containing filling elements 19, 20, 21, even if Nb-containing rod elements 5 can no longer be arranged there.
[0083] The Fig. Figure 6 shows an embodiment of a subelement 1 in which two types of round Nb-containing filler elements 19, 21 of different sizes are installed in the intermediate region 6. The Nb-containing filler elements 19 are larger than the Nb-containing filler elements 21. The Nb-containing filler elements 19, 21 each have an Nb core and a Cu cladding (cf. Fig. 5c).
[0084] Furthermore, the intermediate region 6 also contains additional reinforcing elements 39 of a round shape. These are made, for example, of pure tantalum. In the embodiment shown, the additional reinforcing elements 39 are the same size as the Nb-containing filler elements 19. However, the additional reinforcing elements could also be manufactured as two-component elements, e.g., as Cu-clad Ta elements (not shown).
[0085] The Fig. Figure 7 shows various types of Nb-containing filler elements 24a-24h in schematic cross-section, which can be installed in a subelement according to the invention. All of these Nb-containing filler elements 24a-24h of the Fig. 7 is that they each have at least one zone of a first, Nb-containing phase P1, and at least one zone of a second, Cu-containing phase P2. The Nb-containing filler elements 24a-24d are each hexagonal on the outside, and the Nb-containing filler elements 24e-24h are each circular on the outside.
[0086] The Nb-containing filler elements 24a, 24e have several (here five) annular zones of the Nb-containing phase P1, and alternating with these, several (here six) annular zones of the Cu-containing phase P2. These zones of the phases P1, P2 are arranged concentrically with each other (with respect to the Nb-containing filler element 24a, 24e). A further zone of the second, Cu-containing phase P2 is arranged in the center of the Nb-containing filler element 24a, 24e.
[0087] The Nb-containing filler elements 24b, 24f each have a layer zone 42 of the first, Nb-containing phase P1 and a rolled-up layer zone 43 of the second, Cu-containing phase P2, which are rolled together in the manner of a snail. The layer zones 42, 43 form a rolled-up structure 31 ("jellyroll" structure).
[0088] The Nb-containing filler elements 24c, 24g have a multifilament structure 25, wherein the second Cu-containing phase P2 forms a matrix zone 26, and the first Nb-containing phase P1 forms several filament zones 27 (here, twenty-nine filament zones) distributed throughout the matrix zone 26. The filament zones 27 are separated from one another by the matrix zone 26.
[0089] The Nb-containing filler elements 24d, 24h each have a zone of the first, Nb-containing phase P1 radially inward as core zone 22, and a zone of the second, Cu-containing phase P2 radially outward as lamination zone 23. The core zone 22 is circular in its outer cross-section.
[0090] The Fig. 8 shows an embodiment of a subelement 1 in which two types of round Nb-containing filling elements 7, 8 of different sizes are installed in the intermediate region 6.
[0091] The smaller Nb-containing filler elements 7 each have a single zone of the first, Nb-containing phase P1 and a surrounding zone of the second, Cu-containing phase P2. Phase P1 can be assigned to a core zone 22, and phase P2 to a cladding zone 23. Phase P2 in the cladding zone 23 is chosen here as a CuSn alloy.
[0092] The larger Nb-containing filler elements 8 each have several (here four) zones of the first, Nb-containing phase P1, and a surrounding zone of the second, Cu-containing phase P2. The zones of phase P1 form filament zones 27, and the zone of phase P2 forms a matrix zone 26, corresponding to a multifilament structure 25. The phase P2 in the matrix zone 26 is also chosen here as a CuSn alloy.
[0093] The Fig. 9a in the overall overview and the Fig. 9b with an enlarged section of Fig. 9a show a subelement 1 in an embodiment in which two types of Nb-containing filling elements 28, 29 are installed in the intermediate region 6.
[0094] The smaller Nb-containing filler elements 28 have a diamond-shaped exterior, and the larger Nb-containing filler elements 29 have a hexagonal exterior. The distance between two adjacent corners is the same in both types of Nb-containing filler elements 28, 29.
[0095] By combining the two types of Nb-containing filling elements 28, 29, a very high, in particular maximum, filling level of the intermediate region 6 between the bundle region 4 and the diffusion barrier 9 can be achieved.
[0096] Both types of Nb-containing filling elements 28, 29 have a zone of a first, Nb-containing phase in the middle and a surrounding zone of a second, Cu-containing phase.
[0097] The Fig. 10a in the overall overview and the Fig. 10b with an enlarged section of Fig. 10a show a subelement 1 in an embodiment in which two types of Nb-containing filling elements 7, 8 are installed in the intermediate region 6.
[0098] The Nb-containing filling elements 7, 8 each comprise a rear zone 40 of a first, Nb-containing phase P1, and a front zone 41 of a second, Cu-containing phase P2.
[0099] The front zone 41 lies in front of the rear zone 40, as seen from the center of the subelement 1. The front zone 41 borders the bundle area 4 at the front / radially inward. The rear zone 40 borders the diffusion barrier 9 at the rear / radially outward, but not the bundle area 4.
[0100] In the design shown, the front zone 41 also extends laterally around the rear zones 40 in an approximately U-shaped manner, up to the diffusion barrier 9.
[0101] In the design shown, the Nb-containing phase P1 in the respective rear zone 40 also contains a portion of titanium, for example in an Nb0.5Ti alloy. Thus, the Nb-containing filler elements 8 simultaneously function as doping filler elements 38.
[0102] The Fig. Figure 11 illustrates the chronological sequence for the production of an Nb3Sn superconducting wire 32 according to the invention. Schematic diagrams of the various production steps are shown in chronological order from t1 to t6.
[0103] First, in step t1, a plurality of subelements 1 are manufactured; typical subelements 1 are explained in the preceding figures.
[0104] In a step t2, the subelements 1 are then subjected to a cross-section-reducing forming process, for example, a drawing or extrusion process. This results in a tapered subelement 1'.
[0105] In a step t3, several tapered subelements 1' are bundled and arranged in a cladding tube 33. The cladding tube 33 is typically made of Cu. This results in a semi-finished wire 34.
[0106] In the subsequent step t4, the semi-finished wire 34 undergoes a cross-section-reducing forming process, for example, a drawing or extrusion process. This results in a tapered semi-finished wire 34'. If desired, the tapered semi-finished wire can be subjected to a further bundling and tapering iteration (not shown in detail). At the end of step t4, the tapered semi-finished wire 34' has the diameter desired for the application.
[0107] The tapered semi-finished wire 34' is then formed into the desired shape for the application in step t5. In the example shown, the tapered semi-finished wire 34' is wound into a coil on a coil former 35. Note that the tapered semi-finished wire 34' is still highly elastically and plastically deformable before the reaction heat treatment.
[0108] Finally, in step t6, the tapered semi-finished wire undergoes a reaction heat treatment in a furnace 36. The Nb contained reacts with the Sn contained therein to form Nb3Sn. The previously tapered semi-finished wire thus becomes the finished Nb3Sn superconducting wire 32. In the example shown, a superconducting magnet coil 37 is thus completed. Note that the Nb3Sn in the finished semi-finished wire is comparatively brittle and therefore should not be deformed further. List of reference symbols 1 (not yet rejuvenated) subelement 1' tapered subelement 2 Sn-containing core area 3 Cu-containing inner matrix region 4 Bundle area 5 Nb-containing rod element 6 Intermediate area 7 Nb-containing filling element (radially inside, sectionally straight profiled, radially outside, round profiled, small) 8 Nb-containing filling element (radially inside straight profiled in sections, radially outside round profiled, large) 9 Diffusion barrier 10 Cu-containing cladding area 11 Nb core 12 Cu-shell 13 sectionally straight profiling 14 sectionally round profiling 15 Reinforcing filler element 16 Doping element 17 first layer zone (P1) 18 second layer zone (P2) 19 Nb-containing filling element (round, large) 20 Nb-containing filling element (round, medium) 21 Nb-containing filling element (round, small) 22 Core Zone (P1) 23 Laminating zone (P2) 24a-24g Nb-containing filling elements (with P1, P2) 25 Multifilament structure 26 Matrix zone (P2) 27 filament zones (P1) 28 Nb-containing filling element (polygonal, here diamond-shaped) 29 Nb-containing filling element (polygonal, here hexagonal) 30 Layer structure 31 rolled up structure 32 Nb3Sn superconducting wire 33 Sheathing tube (for semi-finished wire) 34 (not yet tapered) semi-finished wire 34' tapered semi-finished wire 35 coil bodies 36 oven 37 superconducting magnetic coil 38 Doping filling element 39 Additional reinforcement element 40 rear zone 41 front zone 42 rolled layer zone (P1) 43 rolled-up layer zone (P2) AFE cross-sectional area of Nb-containing filler element ASE cross-sectional area of Nb-containing rod element AVFE aspect ratio Nb-containing filler element AVSE aspect ratio Nb-containing rod element BFE largest width Nb-containing filling element (perpendicular to the direction of LFE) BSE greatest width Nb-containing rod element (perpendicular to the direction of LSE) D (outer) diameter LFE greatest length Nb-containing filling element LSE greatest length Nb-containing rod element P1 first Nb-containing phase P2 second, Cu-containing phase t1-t6 steps (substeps) in the manufacturing process of the Nb3Sn superconducting wire QUOTES CONTAINED IN THE DESCRIPTION
[0000] This list of documents submitted by the applicant was generated automatically and is included solely for the convenience of the reader. This list is not part of the German patent or utility model application. The DPMA assumes no liability for any errors or omissions. Zitierte Patentliteratur
[0000] EP 1 719 190 B1 [0002, 0007] DE 10 2019 204 926
[0008] EP 2 717 340 A2
[0015] EP 3 420 565 B1
[0016] Zitierte Nicht-Patentliteratur
[0000] C. Sanabrina, „A new understanding of the heat treatment of Nb-Sn superconducting wires“, PhD Thesis, Florida State University, Tallahassee, US, 2017
[0009] I. Pong et al., Supercond. Sci. Technol. 26 (2013) 105002
[0011] W. L. Neijmeijer, in „Microstructural and kinetic studies of the manufacturing of superconducting Nb3Sn“, Dissertation, Universiteit Twente, Enschede, NL, 1988
[0012] T. Bagni et al., Supercond. Sci. Technol. 35 (2022), 104003
[0013] C. Senatore et al., Supercond. Sci. Technol. 36 (2023), 075001
[0014]
Claims
[1] Subelement (1) for a semi-finished wire (34) for producing a Nb3Sn superconducting wire (32), wherein the subelement (1) comprises - a Sn-containing core region (2), - a Cu-containing inner matrix region (3) surrounding the Sn-containing core region (2), - a bundle region (4) comprising a plurality of adjacent Nb-containing rod elements (5), wherein the bundle region (4) surrounds the inner matrix region (3), - an intermediate region (6) surrounding the bundle region (4), - a circumferential diffusion barrier (9) surrounding the intermediate region (6), and - a Cu-containing cladding region (10) surrounding the diffusion barrier (9), characterized by , that in the intermediate region (6) Nb-containing filling elements (7, 8; 19, 20, 21; 24a-24h; 28, 29) are arranged, each of which has a geometry that differs from the geometry of the Nb-containing rod elements (5). [2] Subelement (1) according to claim 1, characterized by that the Nb-containing rod elements (5) have a hexagonal cross-section. [3] Subelement (1) according to claim 1 or 2, characterized by that the Nb-containing rod elements (5) each have a cross-sectional area ASE, and that at least some of the Nb-containing filling elements (19, 20, 21; 24a-24h; 28, 29) each have a cross-sectional area AFE, with AFE <ASE. [4] Subelement (1) according to one of the preceding claims, characterized by , that the Nb-containing rod elements (5) each have a greatest length LSE in cross-section, and at least some of the Nb-containing filling elements (19, 20, 21; 24a-24h; 28, 29) each have a greatest length LFE in cross-section, with LFE <LSE, and / or that the Nb-containing rod elements (5) each have a greatest width BSE in cross section perpendicular to the direction of their greatest length LSE, and at least some of the Nb-containing filling elements (19, 20, 21; 24a-24h; 28, 29) each have a greatest width BFE in cross section perpendicular to the direction of their greatest length LFE, with BFE <BSE. [5] Subelement (1) according to one of the preceding claims, characterized by that the Nb-containing rod elements (5) each have an aspect ratio AVSE in cross-section, and that at least some of the Nb-containing filler elements (7, 8; 28) each have an aspect ratio AVFE in cross-section, with AVFE>AVSE. [6] Subelement (1) according to one of the preceding claims, characterized bythat Nb-containing filling elements (7, 8; 19, 20, 21; 24a-24h; 28, 29) of at least two different types are arranged in the intermediate region (6), wherein the different types of Nb-containing filling elements (7, 8; 19, 20, 21; 24a-24h; 28, 29) differ at least in their geometry. [7] Subelement (1) according to one of the preceding claims, characterized by that at least some of the Nb-containing filling elements (19, 20, 21; 24e-24h) are circular in cross-section on the outside. [8] Subelement (1) according to one of the preceding claims, characterized by that at least some of the Nb-containing filling elements (28, 29) are externally polygonal, in particular hexagonal, in cross-section. [9] Subelement (1) according to one of the preceding claims, characterized by that at least in some of the Nb-containing filling elements (7, 8) a respective filling element in cross-section - on a radially inner side has a profiling (13) corresponding to a portion of an outer edge of the bundle region (4), and - on a radially outer side has a round profile (14) corresponding to a portion of the inside of the diffusion barrier (9). [10] Subelement (1) according to one of the preceding claims, characterized by that at least some of the Nb-containing filling elements (7, 8; 19, 20, 21; 24a-24h; 28, 29) continue to contain Cu. [11] Subelement (1) according to one of the preceding claims, characterized by that at least in some of the Nb-containing filling elements (7, 8; 19, 20, 21; 24a-24h; 28, 29) a respective filling element (7, 8; 19, 20, 21; 24a-24h; 28, 29) in cross section - has at least one zone of a first Nb-containing phase (P1), and - has at least one zone of a second, Cu-containing phase (P2). [12] Subelement (1) according to claim 11, characterized bythat at least in some of the Nb-containing filling elements (7, 8; 19, 20, 21; 24a-24h; 28, 29) a respective filling element (7, 8; 19, 20, 21; 24a-24h; 28, 29) in cross section - has a core zone (22) of the first Nb-containing phase (P1), and - has a lamination zone (23) of the second, Cu-containing phase (P2) which completely encloses the core zone (22). [13] Subelement (1) according to one of claims 11 or 12, characterized by that at least in some of the Nb-containing filling elements (7, 8; 19, 20, 21; 24a-24h; 28, 29) a respective filling element (7, 8; 19, 20, 21; 24a-24h; 28, 29) in cross section - a rear zone (40) of the first Nb-containing phase (P1) which borders radially on the outside of the diffusion barrier (9), and - a front zone (41) of the second, Cu-containing phase (P2) which borders radially inwardly on the bundle region (4) and separates the rear zone (40) from the bundle region (4). [14] Subelement (1) according to one of claims 11 to 13, characterized by that at least in some of the Nb-containing filling elements (7, 8; 19, 20, 21; 24a-24h; 28, 29) a respective filling element (7, 8; 19, 20, 21; 24a-24h; 28, 29) in cross section - is designed as a layer structure (30) with a plurality of first layer zones (17) of the first Nb-containing phase (P1) and a plurality of second layer zones (18) of the second Cu-containing phase (P2), - and first layer zones (17) and second layer zones (18) alternate. [15] Subelement (1) according to one of claims 11 to 14, characterized by that at least in some of the Nb-containing filling elements (7, 8; 19, 20, 21; 24a-24h; 28, 29) a respective filling element (7, 8; 19, 20, 21; 24a-24h; 28, 29) in cross section - is designed as a rolled-up structure (31) with a rolled-up layer zone (42) of the first, Nb-containing phase (P1) and a rolled-up layer zone (43) of the second, Cu-containing phase (P2), wherein these rolled-up layer zones (42, 43) are rolled together on top of one another, and / or - is designed as a multifilament structure (25) with a matrix zone (26) of the second, Cu-containing phase (P2) and a plurality of filament zones (27) of the first, Nb-containing phase (P1), which are distributed in the matrix zone (26). [16] Subelement (1) according to one of claims 11 to 15, characterized by that at least in some of the Nb-containing filling elements (7, 8; 19, 20, 21; 24a-24h; 28, 29) one or more zones of the first, Nb-containing phase (P1) and one or more zones of the second, Cu-containing phase (P2) are arranged concentrically in the Nb-containing filling element (7, 8; 19, 20, 21; 24a-24h; 28, 29). [17] Subelement (1) according to one of the preceding claims, characterized by , that at least some of the Nb-containing filling elements (7, 8; 19, 20, 21; 24a-24h; 28, 29) are designed as doping filling elements (38), wherein the doping filling elements (38) contain at least one element of the fourth subgroup of the periodic table in at least one contained phase (P1, P2), and / or that doping additional elements (16) are also arranged in the intermediate region (6), wherein the doping additional elements (16) contain at least one element of the fourth subgroup of the periodic table in at least one contained phase (P1, P2), in particular wherein the at least one element of the fourth subgroup of the periodic table comprises titanium. [18] Subelement (1) according to one of the preceding claims, characterized by , that at least some of the Nb-containing filling elements (7, 8; 19, 20, 21; 24a-24h; 28, 29) are designed as reinforcing filling elements (15), wherein the reinforcing filling elements (15) contain at least one element of the fifth subgroup of the periodic table in at least one contained phase (P1, P2), and / or that additional reinforcing elements (39) are also arranged in the intermediate region (6), wherein the additional reinforcing elements (39) contain at least one element of the fifth subgroup of the periodic table in at least one contained phase (P1, P2), in particular wherein the at least one element of the fifth subgroup of the periodic table comprises tantalum. [19] Subelement (1) according to one of the preceding claims, characterized by that at least in some of the Nb-containing filling elements (7, 8; 19, 20, 21; 24a-24h; 28, 29) the respective filling element (7, 8; 19, 20, 21; 24a-24h; 28, 29) - also contains Sn, - preferably wherein the respective filling element (7, 8; 19, 20, 21; 24a-24h; 28, 29) has in cross-section at least one zone of a first, Nb-containing phase (P1) and at least one zone of a second, Cu-containing phase (P2), and the Sn is contained in the Cu-containing phase (P2), - particularly preferably wherein a core zone (22) of the first, Nb-containing phase (P1) is completely enclosed by a lamination zone (23) of the second, Cu-containing phase (P2), in which the Sn is also contained. [20] A method for producing an Nb3Sn superconducting wire (32), comprising at least the following steps: Step 1) manufacturing (t1, t2) a plurality of subelements (1; 1') according to one of the preceding claims; Step 2) Bundling (t3, t4) several manufactured sub-elements (1; 1') to form a semi-finished wire (34; 34'); Step 3) Reaction heat treatment (t5, t6) of the semi-finished wire (34; 34'), wherein Sn and Nb from the semi-finished wire (34; 34') react to form Nb3Sn.
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