Method and apparatus for producing spiral metal body

The method of producing preformed metal helices in a mold and deforming them along the longitudinal axis addresses the limitations of existing methods, enabling efficient mass production of cast coils with improved power density and thermal stability, facilitating automated processing and higher efficiency in electric machines.

JP7718474B2Active Publication Date: 2025-08-05FRAUNHOFER GESELLSCHAFT ZUR FORDERUNG DER ANGEWANDTEN FORSCHUNG EV
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Patent Information

Application Number
JP2023212555
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-09-19
Filing Date
2023-12-15
Publication Date
2025-08-05
Estimated Expiration
2039-09-19

AI Technical Summary

Technical Problem

Existing methods for producing cast Al and Cu coils or coils made of Al and Cu alloys are limited by the lack of suitable permanent molds, leading to low power or torque density in electric machines due to complex winding structures, high thermal stresses, and high rejection rates, which hinder efficient mass production.

Method used

A method involving the production of a preformed metal helix in a mold, followed by plastic deformation along the longitudinal axis to achieve a desired shape, using a simplified two-part mold concept and mandrel compression to stabilize the shape without fastening means, allowing for easier handling and machining before final deformation.

Benefits of technology

Enables high filling rates of spiral structures, reduces thermal stresses, and facilitates automated processing, resulting in improved power density and efficiency of electric machines through mass-produced cast coils with enhanced design flexibility and productivity.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a spiral-shaped metallic body creating method.SOLUTION: In a spiral-shaped metallic body creation method, which firstly creates a spiral-shaped metallic body pre-molded in casting mold by a casting process and then the spiral-shaped metallic body is deformed along a longitudinal axis of the spiral-shaped metallic body so that the body is compressed, the spiral-shaped metallic body is plastically-deformed at least partially after the casting process, so that the body is compressed along the longitudinal axis, and at least one deformation region that is plastically deformed first during compression of the spiral-shaped metallic body is provided or generated, during manufacturing of spiral windings of the pre-molded spiral-shaped metallic body, where the at least one deformation region includes torsion in the windings.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present invention relates to the field of mechanical engineering and manufacturing, in particular metal casting, and can be used with particular advantage in the manufacture of coils, helical structures or springs. [Background technology]

[0002] Wound coils are used in electric machines. Coils made in this way occupy only a portion of the available installation space. This results in low power or torque density relative to the weight or structural space of the electric machine. Cast Al and Cu coils can compensate for this drawback, but to date, no method suitable for continuous production of cast Al and Cu coils or cast coils made of Al and Cu alloys using a permanent mold with sufficient life has been known. Summary of the Invention

[0003] To increase the power or torque density of electric machines, complex, often hand-wound coils are currently used to achieve a slight fill factor improvement over continuous methods. Wire having the same cross section is thereby used throughout the entire length of the winding. Furthermore, in conventional electric machines, the multiple windings of the coil, positioned one on top of the other from the inside out, impair heat dissipation and cause the coil to heat up to high temperatures, which necessarily limits the maximum current density per cross section of the winding.

[0004] Cast Al and Cu coils or cast coils made of Al and Cu alloys are already known, however, currently not produced in permanent molds, but rather using lost forms, e.g. in precision casting or lost form processes, or salt cores that define the contours and prevent direct contact between the mold and the molten metal.

[0005] To create a wide variety of shapes, contoured molds have been utilized in the prior art. For complex shapes, cores are inserted or slides are used in addition to molds that have one or more separations to allow for easy removal of the casting.

[0006] The production of copper parts places increasing demands on molds and cores as a result of high casting temperatures of over 1100°C. Thermal stresses during injection into the mold, especially temperature shock, can shorten the mold's lifespan, limit the quality of the part, or require subsequent complex machining.

[0007] Previous mold concepts always involved the use of complex shaped permanent molds or additional movable slides or cores (permanent or non-permanent). Such molds were only feasible for laboratory work due to the considerable costs involved in maintaining the molds and the high rejection rate.

[0008] From patent application EP 2 819 276 A2, a geometrically modified pattern shape is known, which allows for a simple two-part permanent mold for the casting process. This is achieved by rotating each of the windings by 180 degrees, thereby significantly reducing the geometric complexity of the coil. However, the technical casting process here requires very complex reshaping processes to achieve the coil shape in the inserted state.

[0009] The present invention aims to realize a simple method for producing a coiled metal body, which method enables effective use of casting molds and thereby enables a high filling rate of a spiral structure.

[0010] According to the invention, this object is achieved by a method having the features of patent claim 1 and patent claims 2 to 7, which present embodiments of the method. Patent claims 8 to 10 relate to a device for producing a coiled metal body.

[0011] Accordingly, the present invention relates to a method for producing a metal helix by first producing a preformed metal helix in a mold by a casting process, and then compressing the metal helix by deforming it along its longitudinal axis.

[0012] The present invention allows for the creation of helical bodies by casting, and allows for the mold to have a relatively thick wall configuration by providing a sufficiently wide spacing between the individual helical threads. The metal body is deformed after the casting process to provide the gaps in the design of the shape to be created by casting. After casting, the desired shape of the metal body can be achieved by deformation, and although the intermediate spaces between the individual threads of the helical structure in the desired shape are rarely realized in casting techniques, or can be achieved only with great difficulty, due to the limitations imposed by the mold, significantly smaller intermediate spaces are possible.

[0013] The method may be configured to at least partially plastically deform the metal body after casting to compress it along the longitudinal axis.

[0014] Plastic deformation of the metal body ensures that the target shape is stabilized and maintained without the use of fastening means.

[0015] The method may further be configured to machine the metal body after casting and before compacting, in particular by grinding and / or polishing and / or coating.

[0016] Due to the fact that the intermediate spaces between, for example, the helical threads in the preformed state, as well as other parts of the metal body, are easier to handle after casting than after realizing the target shape, the above-mentioned machining steps can be more conveniently carried out before deforming or compressing the metal body into the target shape.

[0017] The method may further comprise compressing the metal helical body by forcing the metal helical body through a mandrel having a free end and a first stop shoulder, and inserting the free end of the mandrel into the receiving means until the metal body is compressed between the first stop shoulder and a second stop shoulder on the receiving means.

[0018] Since the metal body already has a helical structure in the mold used in the casting process, it can be easily pushed onto the mandrel and compressed in the direction of the longitudinal axis of the helical structure. A first stop shoulder on the mandrel side serves for this purpose. The receiving means has, for example, an opening into which the mandrel, rather than the metal body, can be inserted. The opening can be provided with a second stop shoulder. When the mandrel is inserted into the opening of the receiving means, the helical metal body is compressed longitudinally between the first and second stop shoulders to the desired shape or even beyond.

[0019] The method may further comprise providing or creating at least one, in particular at least two, deformation zones in each winding of the helical structure during the creation of the preformed metal body, in particular by material cross-section tapering, and first plastically deforming the deformation zones during compression of the metal body.

[0020] In the case of a coiled helical structure having a rectangular cross section, the deformation regions may be provided on multiple short or even long sides of each thread or winding of the helical structure, or on multiple corners of each winding of the helical structure. Multiple cross-sectional taperings may actually be provided in the mold of the metal body.

[0021] Furthermore, the method may be configured to fix the metal body over its entire length after compression by means of fixing means.

[0022] The fixation can be achieved, for example, by immersion in a coating material, by encapsulation, or by applying an external mechanical clamp that axially holds together the windings of the helical structure. The clamp must either be made of a non-conductive material or be electrically isolated from the metal body.

[0023] Furthermore, the method may be configured to first create a lost pattern body, particularly made of a non-metallic material, in the desired target shape of the compressed coiled metal body, expand the pattern body by pre-deforming it along its longitudinal axis, and use the expanded pattern body as a male mold for casting the pre-deformed metal body, particularly by using the pattern body to create a mold for a casting process or by using it in a melting process.

[0024] The pattern is then pre-deformed after creation by axially expanding the helical structure, and the pattern may already have multiple cross-sectional taperings to create weak deformation areas in the metal body that will later be cast. From this pre-deformed pattern, the metal body is then reshaped and possibly machined. The metal body is then compressed to bring it to the target shape.

[0025] The present invention further relates to apparatus for making coiled metal bodies of the type described above, the apparatus comprising a mandrel and receiving means, the mandrel having a free end and a first stop shoulder spaced from the free end, the first stop shoulder being dimensioned to form a limiting stop for a coiled metal body forced onto the mandrel, and the receiving means having an opening for insertion of the free end of the mandrel and a second stop shoulder for the metal body surrounding the opening.

[0026] The device may be configured so that the mandrel has external dimensions in the region of the first stop shoulder that allow it to fit and receive the preformed metal body, and so that the mandrel tapers towards its free end, at least in the first direction of extension in cross section. The mandrel may advantageously have the shape and size of a continuous axial opening in the center of the target shape of the metal body. The mandrel tapers or reduces at its free end for better insertion into the metal body before final deformation. The first stop shoulder may be configured as a flange on the mandrel.

[0027] Furthermore, the apparatus may be configured such that, as a result of molding the mandrel and receiving means, a longitudinal stop is formed for insertion of the mandrel into the receiving means, the longitudinal stop being configured to fix the overall length of the compressed metal helical body. [Brief explanation of the drawings]

[0028] The invention will now be illustrated and subsequently explained on the basis of embodiments in the drawings, in which:

[0029] [Figure 1] FIG.

[0030] [Figure 2] 1 shows a spiral compressed along the longitudinal axis of the spiral structure in three successive stages.

[0031] [Figure 3] 1 shows the helix compressed along its longitudinal axis against the mandrel of the machining device between two stop shoulders in three successive stages.

[0032] [Figure 4] 1 shows a spiral with deformation regions illustrated.

[0033] [Figure 5] 10 is a schematic diagram of a production process when a model body is used. DETAILED DESCRIPTION OF THE INVENTION

[0034] The following describes the creation of a lost form for precision casting using a simplified mold concept. To enable the use of a simplified two-part mold concept for the creation of castings (especially metal pressure casting, low-pressure casting, chill casting, and metal powder injection casting) or pattern plates or lost forms (especially those used in wax injection molding, sand casting, Disamatic sand casting, and expanded polystyrene (EPS) patterns for lost foam), the complexity of the coil shape of the lost form is reduced by plastically reshaping the winding head in combination with twisting the long ends of the windings by no more than 90 degrees. For this purpose, in the case of a pattern body, the winding head and the windings (long thin plates) are reshaped while adopting a shape such as that shown in FIG. 1. FIG. 1 shows the shape of the pattern body, which can initially have the target shape of the metal spiral and then be pre-deformed by expanding along its longitudinal axis 6 to form the metal spiral. However, this shape also corresponds to the shape of the metal spiral after casting and before compression in the longitudinal direction 6. The ends of the winding head 2 are shown, as well as the individual windings of the helical structure 3, 4, 5. In the casting process of the resulting metal body, the individual windings of the helical structure have an expanded spacing D. As a result, delicate workmanship and complex areas are avoided in the mold design.

[0035] Thus, a robust and simple management concept is created for any kind of pluggable coil.

[0036] The pre-deformation of the winding head and the twisting of the windings in the pattern allow for the production of cast coils by the permanent mold method, lost patterns, and lost molds suitable for mass serial production. After the casting process, the casting system can be retained to provide molten metal for subsequent processing steps as a handling aid for the casting. This has the advantage that the actual casting, often made of pure aluminum (R99.7 or similar) or E-copper®, has very low strength and high flexibility, preventing further plastic deformation. The cast coil is fixed in the pre-deformed position, which is highly advantageous for subsequent processing steps and allows for automated processing. The improved ease of handling provided by pre-deformed coils with increased winding spacing greatly simplifies processing steps, particularly deburring, polishing, cleaning, polishing, and coating. Subsequent processing can be performed before or after the casting system is removed, or only after further subsequent processing steps (polishing, polishing, and coating for electrical insulation). Further advantages of this shape change include the easy reshaping process after casting by inserting guide rods into the core of the winding or helix, and the reshaping of multiple windings directly in succession.

[0037] This is achieved by passing a mandrel having a stop shoulder through it, as shown in Figure 2. Figure 2 shows three different compression steps of the metal helix in three successive stages from top to bottom, with the top showing the uncompressed shape along the longitudinal axis of the metal helix 1', the middle showing a partially compressed shape, and the bottom showing a fully compressed shape. On the left side of the metal body is shown a mandrel 7, each having a free end 7a and a first stop shoulder 7b, while on the right side is shown receiving means 8, each having a second stop shoulder 8a and an opening 8b for receiving the free end 7a of the mandrel 7.

[0038] The metal body (1') can be maintained in the shortened target shape after compression of the lower part in Figure 2 by plastic deformation or can be maintained in compression by fixing means 10. Such fixing means can include, for example, a mechanical clamp 10. However, the metal body can also be fixed by gluing, for example, with an insulating material, which at the same time insulates the windings of the helical structure from each other.

[0039] FIG. 3 shows the insertion of the mandrel 7 into the metal helix 1 in three different stages, top and bottom, and the resulting forward compression of the metal helix in the direction of its longitudinal axis 6, which extends parallel to the longitudinal axis of the mandrel 7. Using the mandrel 7 and receiving means 8, the coil is deformed into a target or inserted state, which allows for a combined reshaping process and correction. After maintaining plastic deformation to release the elastically deformed components, compression can continue until the target shape is achieved. At the free end 7a, the mandrel is thin to facilitate insertion, and it thickens toward the first stop shoulder 7b, where it corresponds in cross section to the inner end profile of the helix. Ideally, the inner end profile of the helix has at least the same height as the coil or metal helix in its target shape.

[0040] As shown in Figure 4, deformation zones 10, 11, 12, and 13 can be provided at specific locations on the spiral metal body. These zones can be reduced, for example, in the material cross section, to precisely eliminate the elastic deformation zones at these locations during low deformation and transition to plastic deformation. This reduces the rate of elastic deformation during compression of the metal body, allowing for a better prediction and realization of the desired shape. Deformation zones can also be provided, for example, at corners of multiple windings or at straight sections of multiple windings.

[0041] 5, a model 11 is shown diagrammatically, which is first produced in the target shape. The model 11 is transformed into a longitudinally expanded pre-deformed model 11', which is then transformed by a reshaping process into a metal body 13 of a similarly expanded shape, which can then be machined in several possible work steps 14, for example deburring and / or coating, and then compressed to form the metal body 13'.

[0042] The combination of a winding head pre-deformed to the target shape and windings twisted in the pre-deformed state at an angle of less than 90 degrees to the target shape offers the following advantages: The combined and variable application of the winding head modification and simultaneous coil twisting at an angle of less than 90 degrees allows this mold concept to be used for insert coils of any type and size. Draft angles at the relevant points of the winding are not required (windings with parallel and non-parallel edges are possible), thus preventing the reduction of groove filling factors during manufacturing. The pre-deformed coils can be reshaped into the insert state by simply pressing them with a mandrel. The mandrel shape can be designed to allow for direct reshaping of corrections to the final shape. The small protruding area of the tool allows for the use of smaller injection machines, smaller molds, or multiple cavities.

[0043] The present invention can be used to make cast coils of a wide variety of sizes (e.g., small features such as those in steering motors, required for permanent molds in Al press molding or mold injection molding (MIM) of Cu coils, or larger coils that can be made in lost form or sand casting).

[0044] A further advantage of the present invention is that it allows the option of using shell investment casting instead of using block molding, which is made possible by pre-deformation.

[0045] To allow for shell construction in precision casting, the casting mold creates sufficient space between the individual windings, preventing problems that can occur when shells are formed on top of each other in thin-walled molds or when the individual helical threads are spaced too closely together.

[0046] Flash created on the coiled metal body during casting can be easily dealt with, for example automatically removed, before final deformation.

[0047] In precision casting and in the case of methods using lost foam (lost pattern), the closed shell or ceramic molds available according to the invention make it possible to produce burr-free castings with protruding surfaces, respectively, and the casting system only needs to be separated and subsequently machined. The individual process steps can thereby be automated, particularly for serial production.

[0048] The present invention allows for the mass-produced continuous production of cast coils using raw materials such as Al and Cu or Al and Cu alloys, thereby significantly improving productivity, design flexibility, and profitability in continuous use. Furthermore, the above-described procedure can be used to produce other raw materials processed by casting techniques into a helical shape. Furthermore, different helical structures with different numbers of turns, winding thicknesses, and winding widths can be produced in external shapes using appropriately different internal inlays, e.g., made of ceramic materials, thereby enabling different designs. The present invention thus significantly contributes to the economical production of helical structures, for example, for use as coils in electric machines, and opens up new methods for producing electric machines with higher power density and higher efficiency compared to the prior art. The use of innovative concepts for producing helical structures or coils, coil patterns, or lost-mold coils in molds formed into simple shapes enables a robust and automatable production process for mass production.

[0049] In addition to traditional casting methods such as pressure casting, low pressure casting, sand casting, lost foam core packet casting, gravity casting, tilted shell casting, investment casting, and various derivative methods, waffle makers can also be configured to have an adjustable shape, allowing the molten metal to be poured into half of a mold with the above-mentioned contours and then closed, thereby distributing the molten metal within the contours.

[0050] Simple visual inspection and metallographic analysis of the casting will reveal the manufacturing history and make-up type of the molded part. In particular, plastically reshaped areas in the windings and winding heads can be detected metallographically.

Claims

1. A method for producing a spiral metal body, comprising the steps of: First, a preformed spiral metal body is produced in a mold by a casting method; Thereafter, the metal spiral is compressed by deforming the metal spiral along its longitudinal axis, at least partially plastically deforming the metal helical body after said casting to compress it along said longitudinal axis; wherein during the manufacture of each winding of the helix of the preformed metal helical body, at least one deformation region is provided or created that is tapered in cross section and that initially plastically deforms during compression of the metal helical body.

2. A method for producing a spiral metal body, comprising the steps of: First, a preformed spiral metal body is produced in a mold by a casting method; Thereafter, the metal spiral is compressed by deforming the metal spiral along its longitudinal axis, at least partially plastically deforming the metal helical body after said casting to compress it along said longitudinal axis; During the manufacture of each winding of the helix of the preformed metal helical body, at least one deformation zone is provided or created which is initially plastically deformed during compression of the metal helical body; The method, wherein the at least one deformation region is pre-deformed relative to a target shape by having a rotated portion, the rotated portion being rotated by 90° or less, and the plastic deformation includes rotating the rotated portion.

3. 3. The method of claim 1 or 2, wherein the coiled helix has a rectangular cross section and at least one deformation region is provided on the short or long side of each winding of the helix.

4. 4. The method according to claim 1, wherein the metal spiral is machined after the casting and before the pressing, in particular by grinding and / or polishing and / or coating.

5. forcing the metal helix through a mandrel having a free end and a first stop shoulder to compress the metal helix; inserting the free end of the mandrel into the receiving means until the metal helical body is compressed between the first stop shoulder and a second stop shoulder of the receiving means; 5. The method according to any one of claims 1 to 4.

6. During the creation of the preformed helical metal body, at least two deformation regions are provided or created in each winding of the helical structure; during the compression of the metal helical body, first plastically deforming the deformation region; 6. The method according to any one of claims 1 to 5.

7. The method described in claim 6, wherein the at least two deformation regions are provided or manufactured to be tapered in cross section.

8. 8. The method according to claim 1, wherein after said compression, said metal spiral is fixed over its entire length by a fixing means.

9. First, a lost form object, e.g., a foam portion, made of a non-metallic material is prepared in a desired target shape of the compressed spiral metal body; expanding the evaporative phantom body by pre-deforming it along the longitudinal axis; 9. The method according to claim 1, wherein the expanded lost foam body is used as a male mold for the casting of the pre-deformed spiral metal body, in particular by using the lost foam body to create a mold for the casting process or by utilizing it in a melting process.

10. An apparatus for the method of producing the spiral metal body according to any one of claims 1 to 9, comprising: The device A mandrel, Acceptance means and Equipped with The mandrel A free end and a first stop shoulder spaced from the free end; and the first stop shoulder is dimensioned to provide a limiting stop for a metal helix forced onto the mandrel; The receiving means is an opening for inserting the free end of the mandrel; a second stop shoulder for the helical metal body surrounding the opening; and the mandrel has an outer dimension in an area adjacent the first stop shoulder that is adapted to fit and receive the preformed metal helical body; The apparatus wherein the mandrel tapers in cross section in at least a first direction of extension towards the free end.

11. the molding of the mandrel and the receiving means results in a longitudinal stop for insertion of the mandrel into the receiving means; The longitudinal stop fixes the entire length of the compressed helical metal body.

11. The apparatus of claim 10.

Citation Information

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