Functional component template and construction method for maglev track beam construction

By using functional part templates to independently position and install the stator sleeve and L-shaped steel plate in the construction of magnetolev track beams, the problems of difficult machining of magnetolev functional parts and difficult to ensure the accuracy are solved, and efficient construction of magnetolev track beams is achieved.

CN118273171BActive Publication Date: 2025-08-29CHINA RAILWAY 23RD CONSTR BUREAU LTD +1
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Patent Information

Application Number
CN202410570734.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-05-09
Publication Date
2025-08-29
Estimated Expiration
2044-05-09

AI Technical Summary

Technical Problem

During the construction of existing magnetolev track beams, the machining of maglev functional parts is difficult to ensure, and the accuracy is difficult to ensure, which affects the construction quality.

Method used

Functional part formwork is used to position and install the stator sleeve and L-shaped steel plate independently, and the formwork is used to position and assemble in the track beam forming system to avoid welding, and the overall molding of the magneto-levitation functional parts is achieved through the connection between concrete and steel frames.

Benefits of technology

The machining process of maglev functional parts is simplified, the construction efficiency is improved, the overall forming quality and installation accuracy of the maglev track beam are ensured, and the processing cost is reduced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a functional component template and construction method for the construction of a maglev track beam. The functional component template is used to position the maglev functional component within the track beam forming system. The maglev functional component comprises multiple stator sleeves and L-shaped steel plates. Prior to being formed onto the track beam, the stator sleeves and L-shaped steel plates are independent structures. The functional component template is provided with a positioning portion for positioning and installing the stator sleeves of the maglev functional component. The stator sleeves and L-shaped steel plates are processed separately, and welding is not performed on them before the track beam is formed, resulting in them being treated as independent components. During track beam formation, the functional component template serves as a positioning and installation reference for the stator sleeves and L-shaped steel plates. Each stator sleeve is positioned and assembled within the track beam forming system. During casting, the stator sleeves and L-shaped steel plates are connected using concrete and a steel reinforcement framework, enabling the installation of the maglev functional component on the maglev track beam. This effectively addresses the difficulties in machining and quality assurance of maglev functional components.
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Description

Technical Field

[0001] The present invention belongs to the technical field of maglev track beam construction, and in particular relates to a functional component template and a construction method for maglev track beam construction. Background Art

[0002] The positioning accuracy of the maglev functional components on the maglev track beam has a significant impact on the quality of the track beam's molding, directly affecting the track beam's use and train operation. Therefore, during the molding of the maglev track beam, very high requirements are placed on the positioning accuracy of the maglev functional components.

[0003] Currently, when forming maglev track beams, the stator sleeve of the maglev functional component is typically welded to an L-shaped steel plate to form an integral structure. The entire maglev functional component is then assembled into a molding system and cast into shape. While this molding method ensures the relative positional accuracy between the stator sleeve and the L-shaped steel plate on the maglev track beam, the machining of the maglev functional component, such as welding between the stator sleeve and the L-shaped steel plate, is difficult and costly, and the difficulty in ensuring machining accuracy is a significant barrier to maglev track beam construction. Summary of the Invention

[0004] The purpose of the present invention is to provide a functional component template and construction method for the construction of maglev track beams, so as to solve the problem that the processing of maglev functional components in the existing maglev track beam construction is difficult and the processing accuracy is difficult to ensure, which affects the construction of the maglev track beams.

[0005] The present invention is achieved through the following technical solutions:

[0006] Functional component templates for maglev track beam construction, which are used to position maglev functional components in the track beam forming system. The maglev functional components include multiple stator sleeves and L-shaped steel plates, which are independent structures before being formed onto the track beam.

[0007] The functional component template is provided with a positioning portion for positioning and installing the stator sleeve of the magnetic levitation functional component.

[0008] In some embodiments, the functional component template is a frame structure, including a forming plate, and the positioning portion is arranged on the forming plate.

[0009] In some embodiments, the positioning portion includes a positioning hole provided on the forming plate and a positioning support plate provided below the positioning hole, wherein the positioning support plate is provided with a positioning surface cooperating with the end face of the positioning sleeve and a connecting hole cooperating with the threaded hole on the positioning sleeve.

[0010] In some embodiments, the forming plate is provided with a forming surface for forming the track beam.

[0011] In some embodiments, the functional component template includes a positioning plate provided on one side, and the positioning plate is provided with a positioning side surface for positioning the L-shaped steel plate.

[0012] In some embodiments, the positioning plate is provided with auxiliary support members for providing support for the L-shaped steel plate.

[0013] On the other hand, the present invention also provides a method for constructing a magnetic levitation track beam, comprising the following steps:

[0014] Install the functional component template onto the track beam forming system and adjust the functional component template to the designed position;

[0015] Install the stator sleeves onto the positioning parts of the functional component templates respectively;

[0016] Positioning and assembling L-shaped steel plates on the track beam forming system;

[0017] The track beam forming system closes the mold and casts the maglev track beam.

[0018] In some embodiments, the L-shaped steel plate is positioned and assembled based on the positioning side surface on the functional component template, and the L-shaped steel plate is positioned and assembled to the track beam forming system.

[0019] Compared with the prior art, the present invention has the following advantages and beneficial effects:

[0020] To address the problem that magnetic levitation functional parts are difficult to process, the present invention adopts a method of separately processing the stator sleeve and the L-shaped steel plate. Before the track beam is formed, the stator sleeve and the L-shaped steel plate are not welded, so that they are treated as independent components. When the track beam is formed, the functional part template is used as a positioning and installation reference for the stator sleeve and the L-shaped steel plate, and each stator sleeve is positioned and assembled in the track beam forming system. During casting and forming, the stator sleeve and the L-shaped steel plate are connected by concrete and a steel bar skeleton to realize the arrangement of the magnetic levitation functional parts on the magnetic levitation track beam. In this way, the problems of difficult processing and difficult processing quality of the magnetic levitation functional parts are effectively solved, and the overall forming quality of the magnetic levitation functional parts on the magnetic levitation track beam and the overall processing quality of the magnetic levitation track beam can be well guaranteed.

[0021] In the present invention, by setting the functional part template structure, a positioning and assembly reference is provided for the stator sleeve and the L-shaped steel plate, which well ensures the relative position accuracy between the stator sleeve and the L-shaped steel plate. In addition, the positioning operation of the stator sleeve and the L-shaped steel plate on the functional part template is convenient, which makes the construction operation of the maglev track beam simpler and improves the construction efficiency.

[0022] The functional component template in the present invention not only provides stable connection and positioning for the magnetic levitation functional component during casting construction, but also serves as a part of the track beam forming system, which can well ensure the forming quality of the wing plate positions on both sides of the magnetic levitation track beam. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings in the embodiments will be briefly introduced below. It should be understood that the following drawings only illustrate certain embodiments of the present invention and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without paying any creative work.

[0024] Figure 1 Schematic diagram of the structure of the magnetic levitation functional component in an embodiment of the present invention.

[0025] Figure 2 Schematic diagram of the stator sleeve structure with dovetail slots in an embodiment of the present invention.

[0026] Figure 3 Schematic diagram of the stator sleeve structure without dovetail slots in an embodiment of the present invention.

[0027] Figure 4 Schematic diagram of the functional component template structure in an embodiment of the present invention.

[0028] Figure 5 It is a top view of the functional component template structure in an embodiment of the present invention.

[0029] Figure 6 for Figure 5 Schematic diagram of the AA section.

[0030] Figure 7 for Figure 5 A schematic cross-sectional view of the center BB at one end of the functional component template.

[0031] Figure 8 for Figure 5 Schematic diagram of the CC section.

[0032] Figure 9 for Figure 5 Schematic diagram of the mid-DD cross section.

[0033] Figure 10 for Figure 4 Partial schematic diagram at point B in the middle.

[0034] Figure 11 This is a structural diagram of a functional component template from another perspective in an embodiment of the present invention.

[0035] Figure 12 for Figure 11 Partial schematic diagram at point F in the middle.

[0036] Figure 13 Schematic diagram of the magnetic levitation track beam structure in an embodiment of the present invention.

[0037] Figure 14 This is a schematic diagram of the arrangement structure of the functional component template in the track beam forming system in an embodiment of the present invention.

[0038] Figure 15 for Figure 14 Partial schematic diagram at point G in the middle.

[0039] in:

[0040] 10. Maglev track beam, 11. beam body, 12. wing plate;

[0041] 241, side formwork, 242, skeleton beam, 243, side formwork back;

[0042] 31. Functional component template, 310. Positioning portion, 3101. Positioning hole, 3102. Positioning support plate, 3103. Connecting hole, 311. Frame plate, 312. Sliding hole, 313. Movable groove, 314. Forming plate, 315. Positioning plate, 32. Vertical driving member, 33. Horizontal driving member, 34. First connecting head, 341. Rotating portion, 342. Connecting portion, 35. Second connecting head, 36. Steel plate fixing member, 37. Steel plate adjusting member, 38. Auxiliary support member;

[0043] 40. Magnetic levitation functional parts, 41. Stator sleeve, 411. Stator sleeve with dovetail groove, 412. Stator sleeve without dovetail groove, 413. Threaded hole, 42. L-shaped steel plate. DETAILED DESCRIPTION

[0044] In order to make the purpose, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments.

[0045] like Figure 13 As shown, the maglev track beam 10 is provided with maglev functional parts 40 on its two side wing plates 12 respectively to ensure the operation of the high-speed maglev train. In the maglev track beam of the present invention, the maglev functional parts are integrally cast onto the beam body when the beam is cast. This construction method can well ensure the installation position accuracy of the maglev functional parts on the spatial curved beam and can well ensure the installation structural strength of the maglev functional parts on the spatial curved beam.

[0046] Here, the magnetic levitation functional part includes a plurality of stator sleeves 41 and an L-shaped steel plate 42 welded by a sliding surface steel plate and a guide surface steel plate. Figure 13As shown, the upper end surface of the wing plate 12 of the maglev track beam is a sliding surface steel plate, and the side end surface of the wing plate 12 is a guide surface steel plate.

[0047] When the maglev track beam is formed, the stator sleeve 41 and the L-shaped steel plate 42 in the maglev functional part 40 are independent components and have no connection relationship with each other. The functional part template in the embodiment of the present invention is used to accurately locate the position of the stator sleeve and the L-shaped steel plate when the maglev track beam is cast and formed, so as to ensure the position accuracy of the maglev functional part on the maglev track beam. The stator sleeve and the L-shaped steel plate are not connected before being formed into the spatial curved beam. Instead, the stator sleeve and the L-shaped steel plate are installed on the spatial curved beam separately during the casting and forming of the maglev track beam. This makes the processing of the maglev functional part simpler and reduces the process steps of welding between the stator sleeve and the L-shaped steel plate. Figure 1 、 Figure 2 and Figure 3 This is a structural diagram of the magnetic levitation functional parts.

[0048] The positioning and installation of maglev functional parts in the forming system is a key link in the manufacturing process of maglev track beams. Its installation deviation directly affects the deviation of the stator surface, guide surface, and sliding surface, and ultimately affects the running comfort of high-speed maglev trains.

[0049] In some embodiments, the functional component template is provided with a positioning portion 310 for positioning and installing the stator sleeve of the magnetic levitation functional component, and the stator sleeve 41 can be fixedly installed on the positioning portion 310 of the functional component template by bolts. Figure 2 and Figure 3 The stator sleeve includes a stator sleeve 411 with dovetail slots and a stator sleeve 412 without dovetail slots. Therefore, the positioning portion of the functional component template is configured with different positioning structures based on the different stator sleeve shapes to accommodate the positioning and installation of stator sleeves of different structures. The stator sleeve is provided with threaded holes 413 for positioning and assembly. After the stator sleeve is positioned and installed on the positioning portion, bolts engage the threaded holes 413 provided in the stator sleeve to secure it to the functional component template.

[0050] like Figure 4 、 Figure 5 、 Figure 6 、 Figure 7 、 Figure 8 and Figure 9The functional component template 31 employs a frame-like structure for positioning the magnetic levitation functional component. It includes a forming plate 314, on which a positioning portion 310 is disposed. Positioning portion 310 is configured according to the structure of the stator sleeve and includes a positioning hole 3101 provided in the forming plate and a positioning support plate 3102 provided below the positioning hole. Positioning support plate 3102 is arranged parallel to and fixedly connected to the forming plate. Positioning support plate 3102 is provided with a positioning surface, which mates with one end face of the stator sleeve for positioning the stator sleeve. This positioning surface is the upper end face of the positioning support plate. Positioning support plate 3102 is also provided with a connecting hole 3103 that mates with a threaded hole in the positioning sleeve. The positioning holes on the forming plate are circular or square, respectively, to accommodate stator sleeves without or with dovetail slots.

[0051] When installing the stator sleeve on the functional part template, first fit the stator sleeve into the positioning hole and position the stator sleeve end face on the positioning surface of the positioning support plate. Then, use bolts, connecting holes, and threaded holes to secure the stator sleeve to the functional part template. The positioning holes, the positioning surface on the positioning support plate, and the threaded holes on the stator sleeve ensure precise positioning of the stator sleeve on the functional part template.

[0052] At the same time, the functional part template is also used as a template for forming the track beam. Accordingly, a forming surface for forming the track beam is provided on the forming plate 314. The forming surface is the upper end surface of the forming plate 314. The forming quality of the wing plates 12 on both sides of the magnetic levitation track beam is ensured by the forming surface.

[0053] In some embodiments, the functional component template 31 includes a positioning plate 315 provided on one side, and the positioning plate 315 is provided with a positioning side surface for positioning the L-shaped steel plate.

[0054] By coordinating the positioning side with the guide steel plate of the L-shaped steel plate, the position of the L-shaped steel plate on the functional part template is positioned, so that the relative position between the L-shaped steel plate and the stator sleeve can be limited, which can well ensure the installation accuracy of the magnetic levitation functional part on the track beam.

[0055] Regarding the positioning and installation of the L-shaped steel plate, the functional part template here mainly provides a positioning and installation reference for the L-shaped steel plate. The positioning and installation of the L-shaped steel plate usually also needs to be combined with the steel plate positioning mechanism for positioning the L-shaped steel plate of the magnetic levitation functional part. The steel plate positioning mechanism uses the functional part template as the positioning reference to fix the L-shaped steel plate on the functional part template, which is used to adjust and fix the position of the L-shaped steel plate in the magnetic levitation functional part to ensure the position accuracy of the sliding surface and the guide surface.

[0056] In some embodiments, reference Figure 14 and Figure 15The steel plate positioning mechanism includes at least two groups of steel plate positioning components arranged on the outside of the functional part template. The steel plate positioning components are distributed along the longitudinal direction of the functional part template. The steel plate positioning components include steel plate fixing parts 36 that can press and fix the L-shaped steel plate on the functional part template at the corresponding position and steel plate adjusting parts 37 that can adjust and support the L-shaped steel plate in the transverse direction at the corresponding position. The steel plate fixing parts 36 and the steel plate adjusting parts 37 are arranged on the side mold assembly of the forming system. The side mold assembly can generally include a side mold 241 and a skeleton crossbeam 242 and a side mold back 243 respectively connected to the side mold.

[0057] The steel plate fixing member 36 and the steel plate adjusting member 37 can be an adjusting screw or an electric strut installed on the side mold backing 243. For example, the adjusting screw is threadedly connected to the side mold backing 243. The adjusting screw is horizontally arranged with one end extending toward the L-shaped steel plate. The steel plate fixing member 36 is located at a position corresponding to the side edge of the functional component template, and the steel plate adjusting member 37 is located above the steel plate fixing member.

[0058] In some embodiments, an auxiliary support member 38 is provided on the positioning plate 315 for providing support for the L-shaped steel plate.

[0059] The auxiliary support member 38 can be in the form of two ear plates arranged on one side of the functional member template, which provide support for the L-shaped steel plate.

[0060] During installation, the L-shaped steel plate is hoisted to the installation location and supported by auxiliary supports. The steel plate fixings are adjusted to tighten the L-shaped steel plate against the side of the functional component template. The installation position of the L-shaped steel plate is then tested. Based on the test results, the position of the L-shaped steel plate is adjusted using the steel plate adjusting members until it is adjusted to the set position. At this point, the steel plate adjusting members also serve to support the L-shaped steel plate. The steel plate fixing members and steel plate adjusting members can not only position and adjust the L-shaped steel plate, but also prevent the L-shaped steel plate from moving during the concrete pouring and vibration process, which could affect the quality of the maglev track beam.

[0061] On the other hand, based on the structural characteristics of the functional component template and the magnetic levitation functional component in the above embodiments, the present invention also provides a method for constructing a magnetic levitation track beam.

[0062] In some embodiments, reference Figure 14 and Figure 15 , the maglev track beam construction method includes the following steps:

[0063] Install the functional component template onto the track beam forming system and adjust the functional component template to the designed position;

[0064] Install the stator sleeves on the respective positioning parts of the functional component template, and fix the stator sleeves on the functional component template with bolts;

[0065] Positioning and assembling the L-shaped steel plate on the track beam forming system; the positioning and assembly of the L-shaped steel plate includes: positioning and assembling the L-shaped steel plate based on the positioning side on the functional part template; supporting the L-shaped steel plate on the auxiliary support, adjusting the position of the L-shaped steel plate along the longitudinal direction of the functional part template, and adjusting the state of the L-shaped steel plate through multiple steel plate fixing parts and steel plate adjusting parts and fixing it on the functional part template.

[0066] The track beam forming system closes the mold and casts the maglev track beam.

[0067] The spatial position of the functional component template can be adjusted by means of a vertical adjustment component and a horizontal adjustment component provided between the molding system and the functional component template.

[0068] As an implementable structure, the vertical adjustment assembly includes four vertical adjustment parts arranged at the four corners of the functional part template. The four vertical adjustment parts are used to adjust the height of the functional part template in the vertical direction at four different positions of the functional part template, thereby realizing the adjustment of the position of the functional part template in the vertical direction.

[0069] Reference Figure 11 、 Figure 12 、 Figure 14 and Figure 15 The vertical adjustment member includes a vertical driving member 32 and a first connecting head 34. The first connecting head 34 is connected to the functional member template 31 in a rotating and sliding manner, so that the first connecting head can rotate around the connection point in a vertical plane along the transverse direction of the functional member template and can move horizontally along the transverse direction of the functional member template. The vertical driving member 32 and the first connecting head 34 are connected by a ball joint, which is used to drive the first connecting head to move in the vertical direction. The vertical driving member is arranged on the side mold assembly of the forming system.

[0070] The vertical driving member 32 can adopt an electric push rod arranged along the vertical direction. Based on the connection structure between the first connecting head and the functional part template, the functional part template is adjusted through four vertical adjustment members. The four vertical driving members drive the first connecting head to move in the vertical direction to adjust the functional part template to the set spatial position.

[0071] The vertical driving member 32 is fixedly arranged on the skeleton cross beam 242 located outside the end of the side template 241.

[0072] The first connector 34 includes a rotating portion 341 and a connecting portion 342 . The rotating portion 341 and the connecting portion 342 form a T-shaped structure. For example, the rotating portion and the connecting portion may be a T-shaped structural member composed of two sections of round tubes.

[0073] The functional component template 31 is provided with two frame plates 311 arranged side by side, and each frame plate 311 is provided with a sliding hole 312. The sliding hole can be set as a square hole structure, for example. The two ends of the rotating part 341 are respectively arranged in the sliding holes of the two frame plates, so that the rotating part can rotate along the axis of the rotating part in the sliding hole and can slide in the lateral direction of the functional component template in the sliding hole. The connecting part 342 is arranged between the two frame plates and is clearance-matched with the two frame plates. For example, the width of the sliding hole can be set to match the diameter of the rotating part, so that the rotating part can rotate along its axis and slide along the length direction of the sliding hole. In addition, a limiting structure can be set on the outer side of the two frame plates on the rotating part. The limiting structure limits the rotating part from deflecting around the axis of the connecting part when sliding along the length direction of the sliding hole, thereby ensuring the stability of the connection between the first connector and the functional component template.

[0074] By configuring the structure of the first connector, the vertical adjustment member can move the functional component template to the set position and prevent interference between the vertical adjustment members during the adjustment process. The first connector is configured to be slidably connected to the functional component template, providing a certain amount of space for horizontal adjustment of the functional component template.

[0075] The transverse adjustment assembly includes two transverse adjustment members arranged along the longitudinal direction of the functional component template, which are used to adjust the position of the functional component template in the transverse direction. Figure 10 、 Figure 11 and Figure 15 The lateral adjustment member includes a lateral drive member 33 and a second connector 35. The second connector 35 is slidably connected to the outer side plate of the functional part template, so that the second connector can move in the vertical direction on the functional part. The lateral drive member and the second connector are connected by a ball joint, which is used to drive the second connector to move horizontally in the lateral direction of the functional part template, thereby adjusting the position of the functional part template in the lateral direction of the molding system.

[0076] The transverse driving member 33 can adopt a horizontally arranged transverse electric push rod, which is fixedly arranged on the side mold back 243 located on the outside of the side mold. The side mold back 243 can move with the side mold. The driving end of the transverse electric push rod is connected to the second connecting head by a ball joint, and due to the sliding fit connection between the second connecting head and the functional part template, it can adjust the functional part template in the transverse direction while providing a certain space for the vertical adjustment component to adjust the functional part template in the vertical direction, and can fix the position of the functional part template in the transverse direction after the adjustment is completed.

[0077] A vertical movable space is provided at a connection position between the transverse adjusting member and the functional member template, which allows the functional member template to move in a vertical direction relative to the transverse adjusting member.

[0078] In the description of the present invention, it should be noted that the terms "center", "up", "down", "left", "right", "vertical", "horizontal", "inside", "outside", etc. used to indicate the orientation or position relationship are based on the orientation or position relationship shown in the accompanying drawings, or are the orientation or position relationship in which the product of the invention is usually placed when in use. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, they should not be understood as limiting the present invention.

[0079] Furthermore, the use of terms such as "horizontal" and "vertical" in the description of the present invention does not necessarily imply that the component must be absolutely horizontal or suspended, but rather that it can be slightly tilted. For example, "horizontal" simply means that its direction is more horizontal than "vertical" and does not mean that the structure must be completely horizontal, but rather that it can be slightly tilted.

[0080] It should also be noted that, in the description of the present invention, unless otherwise expressly specified or limited, the terms "disposed," "installed," "connected," and "connected" should be understood in a broad sense. For example, they may refer to fixed connections, detachable connections, or integral connections; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; and internal connections between two components. Those skilled in the art will understand the specific meanings of the above terms in the present invention in specific contexts.

[0081] The above description is only a preferred embodiment of the present invention and does not limit the present invention in any form. Any simple modification or equivalent change made to the above embodiment based on the technical essence of the present invention shall fall within the scope of protection of the present invention.

Claims

1. A method for constructing a maglev track beam, characterized in that: The functional component template is used for construction. The functional component template is used to position the magnetic levitation functional component in the track beam forming system. The magnetic levitation functional component includes multiple stator sleeves and L-shaped steel plates. The stator sleeves and L-shaped steel plates are independent structures before being formed on the track beam. The functional component template is provided with a positioning portion for positioning and installing the stator sleeves of the magnetic levitation functional component. The functional component template is a frame structure, including a forming plate, and the positioning portion is arranged on the forming plate; The maglev track beam construction method includes the following steps: installing the functional component template on the track beam forming system and adjusting the functional component template to the designed position; installing the stator sleeves on the positioning parts of the functional component template; positioning and assembling the L-shaped steel plate on the track beam forming system; closing the track beam forming system to cast the maglev track beam; The spatial position of the functional component template can be adjusted by vertical adjustment components and horizontal adjustment components arranged between the molding system and the functional component template; The vertical adjustment assembly includes four vertical adjustment members arranged at the four corners of the functional part template, and the height of the functional part template in the vertical direction is adjusted at four different positions of the functional part template through the four vertical adjustment members; the vertical adjustment member includes a vertical driving member and a first connecting head, the first connecting head is rotatably and slidably connected to the functional part template, so that the first connecting head can rotate around the connection point in a vertical plane along the transverse direction of the functional part template and can move horizontally along the transverse direction of the functional part template, the vertical driving member and the first connecting head are connected by a ball joint, which is used to drive the first connecting head to move in the vertical direction; the four vertical driving members drive the first connecting head to move in the vertical direction in the vertical direction to adjust the functional part template to a set spatial position; through the structural setting of the first connecting head, the vertical adjustment member can send the functional part template to the set position and avoid interference between the various vertical adjustment members during the adjustment process, and the first connecting head is set to be slidably connected to the functional part template to provide a certain space for adjustment of the functional part template in the transverse direction; The lateral adjustment component includes two lateral adjustment parts arranged along the longitudinal direction of the functional part template, which are used to adjust the position of the functional part template in the lateral direction; the lateral adjustment part includes a lateral driving part and a second connecting head, and the second connecting head is slidably connected to one side of the functional part template, so that the second connecting head can move in the vertical direction on the functional part template, and the lateral driving part and the second connecting head are connected by a ball joint, which is used to drive the second connecting head to move horizontally along the lateral direction of the functional part template to adjust the position of the functional part template in the lateral direction of the molding system; the second connecting head is slidably connected to the functional part template, which provides a certain space for the vertical adjustment component to adjust the functional part template in the vertical direction, and can fix the position of the functional part template in the lateral direction after the adjustment is completed.

2. The method for constructing a maglev track beam according to claim 1, wherein: The positioning portion includes a positioning hole provided on the forming plate and a positioning support plate provided below the positioning hole. The positioning support plate is provided with a positioning surface matched with the end face of the positioning sleeve and a connecting hole matched with the threaded hole on the positioning sleeve.

3. The method for constructing a maglev track beam according to claim 1, wherein: The forming plate is provided with a forming surface for forming the track beam.

4. The method for constructing a maglev track beam according to claim 1, wherein: The functional component template includes a positioning plate arranged on one side, and the positioning plate is provided with a positioning side surface for positioning the L-shaped steel plate.

5. The method for constructing a maglev track beam according to claim 4, wherein: The positioning plate is provided with an auxiliary support member for providing support for the L-shaped steel plate.

6. The method for constructing a maglev track beam according to claim 1, wherein: The L-shaped steel plate is positioned and assembled based on the positioning side surface on the functional part template, and the L-shaped steel plate is positioned and assembled to the track beam forming system.