A tooling fixture for manufacturing a ribbon structure

By designing tooling fixtures and utilizing a combination of base, clamping components, and tensioning components, the problems of precision and simplified operation in the manufacturing of strip structures were solved, and efficient strip structure connection was achieved.

CN113618661BActive Publication Date: 2025-12-09NINGBO RUIDA MEDICAL INSTR CO LTD
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Patent Information

Application Number
CN202111109389.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-09-22
Publication Date
2025-12-09
Estimated Expiration
2041-09-22

AI Technical Summary

Technical Problem

How to improve manufacturing accuracy and simplify operations during the manufacturing process of strip structures?

Method used

A tooling fixture including a base, a first clamping assembly, a second clamping assembly, and a tensioning assembly is used. The strip structure is overlapped and clamped by the shaping and fastening mechanisms of the first and second clamping assemblies, and tension is applied by the tensioning assembly to tighten it, thus ensuring connection accuracy.

Benefits of technology

It improves the connection accuracy and manufacturing efficiency of strip structures and simplifies the operation process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the application discloses a tool clamp for manufacturing a belt structure, which comprises a base, a first clamping assembly, a second clamping assembly and a tensioning assembly; the first clamping assembly and the second clamping assembly are arranged at intervals on the base; the first clamping assembly comprises a first shaping mechanism and a first fastening mechanism, the first shaping mechanism comprises a first fixing area, and the first fastening mechanism is used for clamping a first connecting area on a plurality of belt substructures placed on the first fixing area on the first shaping mechanism in an overlapping manner; the second clamping assembly comprises a second shaping mechanism and a second fastening mechanism, the second shaping mechanism comprises a second fixing area, and the second fastening mechanism is used for clamping a second connecting area on a plurality of belt substructures placed on the second fixing area on the second shaping mechanism in an overlapping manner; and the tensioning assembly is fixedly arranged relative to the base and is used for applying a pulling force to the belt substructures, so that the belt substructures are tensioned between the first clamping assembly and the second clamping assembly.
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Description

TECHNICAL FIELD

[0001] The present specification relates to the technical field of tooling fixture, and in particular, to a tooling fixture for manufacturing a belt structure. BACKGROUND

[0002] In many fields such as machinery, shipbuilding, military industry, petrochemical industry, etc., the manufacturing of belt structure is needed, for example, the manufacturing of belt structure is realized by welding, mechanical connection, bonding, etc. In some scenarios, multiple belt sub-structures need to be connected together to manufacture a belt structure (such as a conveyor belt of a conveying device).

[0003] Therefore, in the manufacturing process of the belt structure (such as the conveyor belt of the conveying device), how to improve the manufacturing accuracy and simplify the manufacturing operation is a technical problem to be solved in the field. SUMMARY

[0004] One of the embodiments of the present application provides a tooling fixture for manufacturing a belt structure, which comprises a base, a first clamping assembly, a second clamping assembly and a tensioning assembly; the first clamping assembly and the second clamping assembly are arranged at intervals on the base; the first clamping assembly comprises a first shaping mechanism and a first fastening mechanism, the first shaping mechanism comprises a first fixed area, and the first fastening mechanism is used to clamping the first connecting area on the multiple belt sub-structures placed on the first fixed area on the first shaping mechanism in an overlapping manner; the second clamping assembly comprises a second shaping mechanism and a second fastening mechanism, the second shaping mechanism comprises a second fixed area, and the second fastening mechanism is used to clamping the second connecting area on the multiple belt sub-structures placed on the second fixed area on the second shaping mechanism in an overlapping manner; the tensioning assembly is fixedly arranged relative to the base, and is used to apply tension to the belt sub-structure, so that the belt sub-structure between the first clamping assembly and the second clamping assembly is tensioned.

[0005] In some embodiments, the first shaping mechanism comprises a first shaping shaft, and the first fixed area comprises an arc-shaped first side surface arranged on the first shaping shaft; and / or, the second shaping mechanism comprises a second shaping shaft, and the second fixed area comprises an arc-shaped second side surface arranged on the second shaping shaft.

[0006] In some embodiments, the first fastening mechanism comprises a first pressing member and a first fixing groove; the first fixing groove is located on the first side surface of the first shaping shaft, and is used for placing a first connecting region of each of the strip substructures; the first pressing member is connected to the first shaping shaft to fix the first connecting region in the first fixing groove; and / or the second fastening mechanism comprises a second pressing member and a second fixing groove; the second fixing groove is located on the second side surface of the second shaping shaft, and is used for placing a second connecting region of each of the strip substructures; the second pressing member is connected to the second shaping shaft to fix the second connecting region in the second fixing groove.

[0007] In some embodiments, the first fastening mechanism further comprises a first plate body and a second plate body; the first pressing member comprises two first side plates and a first bottom plate connected between the two first side plates; the first plate body and the second plate body can be connected to two end surfaces of the first shaping shaft respectively; the two first side plates can be connected to a side surface of the first plate body away from the first shaping shaft and a side surface of the second plate body away from the first shaping shaft respectively; and the first bottom plate covers outside the first fixing groove; and / or the second fastening mechanism further comprises a third plate body and a fourth plate body; the second pressing member comprises two second side plates and a second bottom plate connected between the two second side plates; the third plate body and the fourth plate body can be connected to two end surfaces of the second shaping shaft respectively; the two second side plates can be connected to a side surface of the third plate body away from the second shaping shaft and a side surface of the fourth plate body away from the second shaping shaft respectively; and the second bottom plate covers outside the second fixing groove.

[0008] In some embodiments, the first bottom plate is provided with a first connecting through hole; and / or the second bottom plate is provided with a second connecting through hole.

[0009] In some embodiments, the tensioning assembly further comprises a plurality of tensioning blocks, which can be connected to the plurality of strip substructures one by one respectively, and the plurality of tensioning blocks are fixedly arranged relative to the base.

[0010] In some embodiments, the tensioning block comprises a first part and a second part; the first part is provided with a groove; the second part is provided with a boss; the boss can be inserted into the groove; the strip substructure is arranged between the boss and the groove; and the first part and the second part are detachably connected.

[0011] In some embodiments, the tensioning assembly further comprises a support plate fixed with the base, and the plurality of tensioning blocks are detachably connected with the support plate; the support plate is provided with a hanging structure for hanging the belt substructure between the second clamping assembly and the tensioning mechanism.

[0012] In some embodiments, the hanging structure comprises an arc-shaped table comprising an arc-shaped surface for contacting the belt substructure.

[0013] In some embodiments, the arc-shaped table is in plurality, and the plurality of arc-shaped tables are arranged in a first direction parallel to a second direction tangent to the second side surface in a third connecting region on the second fixed region, the third connecting region being a region fixed with the second connecting region of the belt substructure.

[0014] In some embodiments, the hanging structure comprises a pulley rotatably connected to the support plate.

[0015] In some embodiments, the first clamping assembly and / or the second clamping assembly are slidably arranged on the base.

[0016] In some embodiments, the base is provided with a sliding groove, and the first clamping assembly and / or the second clamping assembly comprise a sliding rod and a connecting piece, the sliding rod being arranged on the shaping mechanism and being capable of being inserted into and sliding in the sliding groove, and the connecting piece being used for fixing the shaping mechanism with the base.

[0017] In some embodiments, the belt structure is a conveyor belt. BRIEF DESCRIPTION OF DRAWINGS

[0018] The present specification will be further illustrated in the manner of exemplary embodiments, which will be described in detail with reference to the accompanying drawings. These embodiments are not restrictive, and in these embodiments, the same numerals represent the same structures, wherein:

[0019] Figure 1 is a front view of a tooling fixture for manufacturing a belt structure according to some embodiments of the present specification;

[0020] Figure 2 is a structural schematic view of a first clamping assembly according to some embodiments of the present specification;

[0021] Figure 3 is another structural schematic view of a first clamping assembly according to some embodiments of the present specification;

[0022] Figure 4is a structural schematic view of a first shaping shaft according to some embodiments of the present specification;

[0023] Figure 5 is a structural schematic view of a tensioning block according to some embodiments of the present specification;

[0024] Figure 6 is a structural schematic view of a support plate according to some embodiments of the present specification;

[0025] Figure 7 is a structural schematic view of a suspension structure of a second clamping assembly and a tensioning assembly according to some embodiments of the present specification;

[0026] Figure 8 is a rear view of a tooling fixture for manufacturing a belt structure according to some embodiments of the present specification.

[0027] BRIEF DESCRIPTION OF DRAWINGS: 10000, tooling fixture, 1000, base; 2000, first clamping assembly; 3000, second clamping assembly; 4000, tensioning assembly; 5000, belt substructure; 1100, sliding groove; 2100, first shaping mechanism; 2110, first shaping shaft; 2111, first fixed region; 2200, first fastening mechanism; 2210, first pressing member; 2211, first side plate; 2212, first bottom plate; 2213, first connecting through hole; 2220, first fixed groove; 2230, first plate body; 2240, second plate body; 2300, sliding rod; 2400, connecting member; 3100, third connecting region; 4100, tensioning block; 4200, support plate; 4110, first part; 4120, second part; 4111, groove; 4121, boss; 4210, suspension structure; 4211, arc-shaped table. DETAILED DESCRIPTION

[0028] In order to more clearly illustrate the technical solutions of the embodiments of the present specification, the following will briefly introduce the drawings needed to be used in the embodiment description. Obviously, the drawings in the following description are only some examples or embodiments of the present specification, and for those skilled in the art, the present specification can also be applied to other similar scenarios without creative labor. Unless it is obvious from the language environment or otherwise stated, the same reference numbers in the drawings represent the same structure or operation.

[0029] As shown in the specification and claims herein, unless the context clearly indicates otherwise, the words "comprise", "comprising", "consist of", "consisting of", "include", "including" and / or "contain", "containing" do not exclude the presence of other steps, elements, methods and / or functions than those listed in the claims. Generally, the terms "comprise", "comprising", "include", "including" and "contain", "containing" are used in the specification and claims herein to indicate the presence of the stated features, steps, elements, methods and / or functions, but do not preclude the presence or addition of one or more other features, steps, elements, methods and / or functions.

[0030] The embodiment of the present application provides a tooling fixture for manufacturing a belt structure, which comprises a first clamping assembly and a second clamping assembly for clamping a plurality of belt substructures, a first shaping mechanism and a first fastening mechanism of the first clamping assembly are used to overlap and clamp a first connecting area on the plurality of belt substructures placed on a first fixing area of the first shaping mechanism on the first shaping mechanism, and a second shaping mechanism and a second fastening mechanism of the second clamping assembly are used to overlap and clamp a second connecting area on the plurality of belt substructures placed on a second fixing area of the second shaping mechanism on the second shaping mechanism. The first clamping assembly and the second clamping assembly clamp the first connecting area and the second connecting area of the plurality of belt substructures respectively, which facilitates the implementation of the welding operation. In addition, the tooling fixture further comprises a tensioning assembly for tensioning the belt substructures between the first clamping assembly and the second clamping assembly, which can ensure that the plurality of belt substructures overlapped together can adhere to each other after being connected, so as to ensure the connection accuracy. The tooling fixture for manufacturing the belt structure can be used for manufacturing a conveying belt of a conveying device, and can also be used for realizing the overlapping connection of a plurality of steel belts in the fields of building, light industry, automobile and the like.

[0031] Figure 1 Fig. 1 is a structural schematic diagram of a tooling fixture for manufacturing a belt structure according to some embodiments of the present application, Figure 2 Fig. 2 is a structural schematic diagram of a first clamping assembly according to some embodiments of the present application, Figure 3 Fig. 3 is another structural schematic diagram of the first clamping assembly according to some embodiments of the present application. The following will be described in combination with Figures 1-3 The tooling fixture for manufacturing a belt structure according to the embodiments of the present application will be described in detail. It is worth noting that the following embodiments are only used to explain the present application, and do not constitute a limitation to the present application.

[0032] As Figure 1 shown, the tooling fixture 10000 for manufacturing a belt structure comprises a base 1000, a first clamping assembly 2000, a second clamping assembly 3000 and a tensioning assembly 4000. The first clamping assembly 2000 and the second clamping assembly 3000 are arranged at intervals on the base 1000. That is to say, there is an interval distance between the first clamping assembly 2000 and the second clamping assembly 3000.

[0033] In some embodiments, the first clamping assembly 2000 comprises a first shaping mechanism 2100 and a first fastening mechanism 2200, the first shaping mechanism 2100 comprises a first fixing area 2111. The first fixing area 2111 is used to fix the first connecting area of the plurality of belt sub-structures 5000, and the first shaping mechanism 2100 can be used to shape the area adjacent to the first connecting area. That is, the plurality of belt sub-structures 5000 can be fixed on the first fixing area 2111 of the first shaping mechanism 2100 and shaped by the first shaping mechanism 2100. The first fastening mechanism 2200 is used to overlap and clamp the first connecting area on the plurality of belt sub-structures 5000 placed on the first fixing area 2111 on the first shaping mechanism 2100. In some embodiments, the second clamping assembly 3000 comprises a second shaping mechanism and a second fastening mechanism. The second shaping mechanism comprises a second fixing area. The second fixing area is used to fix the second connecting area of the plurality of belt sub-structures 5000, and the second shaping mechanism can be used to shape the area adjacent to the second connecting area. That is, the plurality of belt sub-structures 5000 can be fixed on the second fixing area of the second shaping mechanism and shaped by the second shaping mechanism. The second fastening mechanism can overlap and clamp the second connecting area on the plurality of belt sub-structures 5000 placed on the second fixing area on the second shaping mechanism. The overlapping direction of the belt sub-structures 5000 can be the thickness direction of the belt sub-structures 5000.

[0034] The plurality of belt sub-structures 5000 after overlapping are connected at the first clamping assembly 2000 and the second clamping assembly 3000, respectively. The first connecting area can be understood as the area on each belt sub-structure 5000 clamped by the first clamping assembly 2000 for connecting with other belt sub-structures 5000, and the second connecting area can be understood as the area on each belt sub-structure 5000 clamped by the second clamping assembly 3000 for connecting with other belt sub-structures 5000. For example, when the plurality of belt sub-structures 5000 are connected by welding, the first connecting area and the second connecting area can be the area on each belt sub-structure 5000 for welding operation.

[0035] In some embodiments, the tensioning assembly 4000 is fixedly arranged relative to the base 1000. The tensioning assembly 4000 can be fixedly connected with the base 1000, or can be arranged at other positions relative to the base 1000 that can keep fixed, for example, the base 1000 and the tensioning assembly 4000 can be both fixed on an operation table. The tensioning assembly 4000 is used to apply tension to each belt sub-structure 5000, so that the belt sub-structures 5000 between the first clamping assembly 2000 and the second clamping assembly 3000 are tensioned.

[0036] The strip substructure 5000 can be a long strip-shaped structure, and the strip structure can be a structure in which multiple strip substructures 5000 are overlapped and connected together in the thickness direction. In some embodiments, the strip substructure 5000 can be a steel strip, belt, etc. The strip structure can include a conveyor belt for conveying equipment (such as a belt conveyor). By way of example only, the strip substructure 5000 can be a steel strip, and the strip structure made of the steel strip can be used as a conveyor belt for conveying equipment. The spacing between the first clamping assembly 2000 and the second clamping assembly 3000 can refer to the spacing between the first fixed area of ​​the first clamping assembly 2000 and the second fixed area of ​​the second clamping assembly 3000. The spacing between the first clamping assembly 2000 and the second clamping assembly 3000 can be designed based on the application scenario of the strip structure. For example, when the strip structure includes a conveyor belt for conveying equipment (such as a belt conveyor), the spacing can be designed based on the distance between the rollers at both ends of the conveyor belt. In some embodiments, the first shaping mechanism 2100 and the first fastening mechanism 200 may be detachably connected (e.g., threaded connection, snap-fit, etc.). In some embodiments, the second shaping mechanism and the second fastening mechanism may be detachably connected (e.g., threaded connection, snap-fit, etc.).

[0037] The structures of the first clamping component 2000 and the second clamping component 3000 can be similar. The following description mainly focuses on the structure of the first clamping component 2000. For the specific structure of the second clamping component 3000, please refer to the relevant description of the first clamping component 2000.

[0038] In some embodiments, the tensioning component 4000 can be connected to the rear side of the second connecting region of the strip substructure 5000, thereby enabling the tensioning component 4000 to tension the strip substructure 5000 between the first clamping component 2000 and the second clamping component 3000. The rear side of the second connecting region can be understood as the side of the second connecting region away from the first connecting region. It should be noted that in different embodiments, the tensioning component 4000 can be disposed in different positions. For example, the tensioning component 4000 can be located between the first clamping component 2000 and the second clamping component 3000, or it can be located on the side of the second clamping component 3000 away from the first clamping component 2000 (i.e., the second clamping component 3000 is located between the tensioning component 4000 and the first clamping component 2000), or it can be disposed in other positions, as long as the tensioning component 4000 can tension the strip substructure 5000 between the first clamping component 2000 and the second clamping component 3000.

[0039] Figure 4 This is a structural schematic diagram of the first shaping shaft 2110 shown according to some embodiments of this specification. For example... Figure 3 and Figure 4As shown, the first shaping mechanism 2100 includes a first shaping shaft 2110, and the first fixed region 2111 includes an arc-shaped first side surface 2110-1 disposed on the first shaping shaft 2110. The portion of each belt-like substructure 5000 adjacent to the first connecting region can be disposed around the first side surface 2110-1, that is, for the belt-like substructure 5000 closest to the first shaping shaft 2110, the side surface of the portion of the belt-like substructure 5000 adjacent to the first connecting region can be disposed around the first side surface 2110-1 in abutment with the first side surface 2110-1, and the remaining belt-like substructures 5000 are in abutment with the adjacent belt-like substructures 5000, so that the remaining belt-like substructures 5000 are disposed around the first side surface 2110-1. In some embodiments, after clamping the first connecting region of each belt-like substructure 5000 to the first shaping shaft 2110 of the first clamping assembly 2000, the portion of each belt-like substructure 5000 adjacent to the first connecting region is disposed around the first side surface, so that the portion of each belt-like substructure 5000 adjacent to the first connecting region can have the same bending curvature as the first side surface. In some embodiments, the second shaping mechanism includes a second shaping shaft, and the second shaping shaft includes an arc-shaped second side surface. The portion of each belt-like substructure 5000 adjacent to the second connecting region is disposed around the second side surface. The structure of the second shaping shaft can be similar to that of the first shaping shaft 2110, and the structure of the second side surface can be similar to that of the first side surface. For the second shaping shaft and the second side surface, please refer to the related description of the first shaping shaft 2110 and the first side surface 2110-1.

[0040] It can be understood that by disposing the portion of each belt-like substructure 5000 adjacent to the first connecting region around the first side surface 2110-1, disposing the portion of each belt-like substructure 5000 adjacent to the second connecting region around the second side surface, connecting the first connecting regions of the plurality of belt-like substructures 5000 together, and connecting the second connecting regions of the plurality of belt-like substructures 5000 together, the portion of the belt-like substructure 5000 disposed around the first side surface has a similar shape (such as the same bending curvature) to the first side surface, and the portion of the belt-like substructure 5000 disposed around the second side surface has a similar shape (such as the same bending curvature) to the second side surface, thereby achieving the shaping of the belt-like substructure 5000. The first shaping shaft 2110 can be a columnar structure, for example, a cylindrical column, an elliptical column, or other columnar structures with irregular cross-sections. The first side surface can be understood as a portion of the side surface of the columnar structure. For example, as shown in FIG. 2, the first shaping shaft 2110 is a cylindrical column, and the first side surface 2110-1 is a portion of the side surface of the cylindrical column. Figure 3As shown, the first side surface can be a side surface of an outer side of the columnar structure (i.e., a side surface of a side of the columnar structure away from the second clamping assembly 3000). In some embodiments, the shape and size of the first shaping shaft 2110 can be designed according to the use requirement of the belt-like substructure 5000. For example only, when the belt-like substructure 5000 is used as a conveyor belt of a conveying device, since the conveyor belt needs to be used in cooperation with a roller of the conveying device, the first shaping shaft 2110 can be provided in a cylindrical shape, and the diameter of the first shaping shaft 2110 can be the same as the diameter of the roller of the conveying device. In some embodiments, the length of the first shaping shaft 2110 along the axial direction can be greater than or equal to the width of the belt-like substructure 5000.

[0041] In some embodiments, referring to Figure 3 and Figure 4 , the first fastening mechanism 2200 includes a first pressing member 2210 and a first fixing groove 2220. The first fixing groove 2220 is used to accommodate or support the first connecting region of the belt-like substructure 5000, and the first pressing member 2210 is used to fix the first connecting region of the belt-like substructure 5000 relative to the first fixing groove 2220. The first fixing groove 2220 is located on the first side surface of the first shaping shaft 2110, the first fixing groove 2220 is used to accommodate the first connecting region of each belt-like substructure 5000, and the first pressing member 2210 is connected to the first shaping shaft 2110 to fix the corresponding part of the first connecting region of the belt-like substructure at the first fixing groove 2220. For example, the first pressing member 2210 can fix the first connecting region in the first fixing groove 2220. For another example, the first pressing member 2210 can fix the corresponding part of the first connecting region of the belt-like substructure at the notch of the first fixing groove 2220. In some embodiments, as shown in Figure 3 , the first fixing groove 2220 can be located at the lower part of the first side surface.

[0042] In some embodiments, the second fastening mechanism includes a second pressing member and a second fixing groove. The second fixing groove is used to accommodate or support the second connecting region of the belt-like substructure 5000, and the second pressing member is used to fix the second connecting region of the belt-like substructure 5000 relative to the second fixing groove. The second fixing groove is located on the second side surface of the second shaping shaft, the second fixing groove is used to accommodate the second connecting region of each belt-like substructure 5000, and the second pressing member is connected to the second shaping shaft to fix the corresponding part of the second connecting region of the belt-like substructure at the second fixing groove. The structure of the second pressing member can be similar to that of the first pressing member 2210, and the structure of the second fixing groove can be similar to that of the first fixing groove 2220. For the second pressing member and the second fixing groove, please refer to the relevant description of the first pressing member and the first fixing groove above.

[0043] In some embodiments, the first fastening mechanism 2200 can also include a first pressing member 2210 and a first fixing plane located on the first side surface of the first shaping shaft 2110, the first pressing member 2210 being connected to the first shaping shaft 2110 to fix the corresponding part of the first connecting region of the belt-like substructure on the first fixing plane. Similarly, the second fastening mechanism can also include a second pressing member and a second fixing plane located on the second side surface of the second shaping shaft, the second pressing member being connected to the second shaping shaft to fix the corresponding part of the second connecting region of the belt-like substructure on the second fixing plane.

[0044] In some embodiments, the first pressing member 2210 can be directly connected to the first shaping shaft 2110 by screwing or clamping, etc. In other embodiments, as shown in Figure 3 the first fastening mechanism 2200 further includes a first plate body 2230 and a second plate body 2240, and the first pressing member 2210 can be connected to the first shaping shaft 2110 through the first plate body 2230 and the second plate body 2240.

[0045] In some embodiments, as shown in Figure 3 the first pressing member 2210 includes two first side plates 2211 and a first bottom plate 2212 connected between the two first side plates 2211. The first plate body 2230 and the second plate body 2240 can be connected to the two end faces of the first shaping shaft 2110, respectively. The two first side plates 2211 can be connected to the side surface of the first plate body 2230 away from the first shaping shaft 2110 and the side surface of the second plate body 2240 away from the first shaping shaft 2110, respectively. The first bottom plate 2212 covers the outside of the first fixing groove 2220. The two first side plates 2211 can be connected to the first plate body 2230 and the second plate body 2240 by screwing, clamping or other detachable connection methods, respectively. The first bottom plate 2212 covers the outside of the first fixing groove 2220, and the first bottom plate 2212 can press the first connecting region of the belt-like substructure 5000 at the first fixing groove 2220. In some embodiments, the first pressing member 2210 can be an integrally formed structure. The first pressing member 2210 can be manufactured by stamping. In other embodiments, the first side plates 2211 and the first bottom plate 2212 are connected by bonding or welding, etc.

[0046] In some embodiments, a pad can be arranged in the first fixing groove 2220, and the first connecting region of the belt-like substructure 5000 can be pressed between the pad and the first bottom plate 2212, at this time, the first connecting region is pressed at the slot of the first fixing groove 2220. Through the cooperation of the first plate body 2230, the second plate body 2240 and the first pressing member 2210, the clamping operation of the first clamping assembly 2000 is simple, and the clamping of the belt-like substructure 5000 is more stable.

[0047] In some embodiments, the second fastening mechanism further comprises a third plate body and a fourth plate body, and the second compression member comprises two second side plates and a second bottom plate connected between the two second side plates. The third plate body and the fourth plate body can be respectively connected to the two end faces of the second shaping shaft, and the two second side plates can be respectively connected to the side surface of the third plate body away from the second shaping shaft and the side surface of the fourth plate body away from the second shaping shaft, and the second bottom plate is arranged outside the second fixing groove. The structure of the second fastening mechanism is similar to that of the first fastening mechanism (for example, the structure of the third plate body is similar to that of the first plate body 2230, the structure of the fourth plate body is similar to that of the second plate body 2240, and the structure of the second compression member is similar to that of the first compression member 2210), and the connection mode of the second fastening mechanism and the first shaping shaft 2110 is similar to that of the first fastening mechanism 2200 and the first shaping shaft 2110. For the second fastening mechanism, please refer to the relevant description of the first fastening mechanism 2200 above.

[0048] In some embodiments, as shown in Figure 3 The first bottom plate 2212 is provided with a first connecting through hole 2213. After the first compression member 2210 is connected to the first shaping shaft 2110, the first connecting through hole 2213 is correspondingly located at the first connecting area of the belt-shaped substructure 5000, which facilitates the operator to perform the connecting operation of a plurality of belt-shaped substructures 5000 at the first connecting area. For example, a welding gun is used to pass through the through hole to weld the first connecting area; for another example, glue is dripped through the through hole to perform the bonding operation on the first connecting area. In some embodiments, the second bottom plate is provided with a second connecting through hole. The position and function of the second connecting through hole are similar to those of the first connecting through hole 2213. For the second connecting through hole, please refer to the relevant description of the first connecting through hole 2213 above.

[0049] In other embodiments, the first and second shaping mechanisms 2100 and 2200 can also be other structures. For example, taking the first shaping mechanism 2100 and the first fastening mechanism 2200 as an example, the first shaping mechanism 2100 can include a shaping table with an arc-shaped surface, and the first fastening mechanism 2200 can include an arc-shaped pressing plate. The shaping table is fixedly arranged relative to the base 1000, and the outer arc surface of the shaping table with the arc-shaped surface can match the inner arc surface of the arc-shaped pressing plate. Further, the arc-shaped pressing plate can be detachably connected with the shaping table. The first connecting region of the strip-shaped substructure 5000 and the portion adjacent to the first connecting region can be pressed between the outer arc surface of the shaping table with the arc-shaped surface and the inner arc surface of the arc-shaped pressing plate, so that the portion adjacent to the first connecting region of each strip-shaped substructure 5000 can have the same bending curvature as the outer arc surface of the shaping table with the arc-shaped surface. In some embodiments, the second shaping mechanism can also include a shaping table with an arc-shaped surface, and the second fastening mechanism can also include an arc-shaped pressing plate. For details, please refer to the related description of the first shaping mechanism 2100 and the first fastening mechanism 2200 in this paragraph.

[0050] In some embodiments, as Figure 1As shown, the tensioning assembly 4000 may include a plurality of tensioning blocks 4100. Each tensioning block 4100 can be connected one-to-one with a plurality of strip substructures 5000; that is, each strip substructure 5000 is connected to one tensioning block 4100. In some embodiments, the plurality of tensioning blocks 4100 are fixedly disposed relative to the base 1000. The plurality of tensioning blocks 4100 may all be connected to the base 1000, or they may all be disposed at other positions that can maintain relative fixation with the base 1000; for example, the tensioning blocks 4100 and the base 1000 may all be fixed to an operating table. In some embodiments, the connection between the tensioning blocks 4100 and the base 1000 may be a detachable connection. In some embodiments, the connection between the tensioning blocks 4100 and the strip substructures 5000 may be a detachable connection. By connecting the tension block 4100 to the strip substructure 5000 and fixing the tension block 4100 to the base 1000, the strip substructure 5000 between the first clamping assembly 2000 and the second clamping assembly 3000 can be tensioned, and the strip substructure 5000 can be fixed relative to the base 1000 to facilitate subsequent connection operations. In some embodiments, the tension block 4100 can be fixed to the strip substructure 5000 first, and then the tension block 4100 can be connected to the base 1000. In other embodiments, the tension block 4100 can be connected to the base 1000 first, and then the tension block 4100 can be connected to the strip substructure 5000. In some embodiments, weights (such as weights or weight-adding components described below) can be hung on each strip substructure 5000 first, and then each tension block 4100 can be connected to each strip substructure 5000 respectively. In other embodiments, the operator can apply tension to the strip substructure 5000 by pulling it while simultaneously connecting each tensioning block 4100 to the respective strip substructure 5000. In some embodiments, the plurality of tensioning blocks 4100 are detachably connected to a support plate 4200 fixed to the base 1000, thereby achieving a detachable connection between the plurality of tensioning blocks 4100 and the base 1000. In other embodiments, the plurality of tensioning blocks 4100 can be directly detachably connected to the base 1000.

[0051] Figure 5 This is a structural schematic diagram of the tensioning block 4100 according to some embodiments of this specification. For example... Figure 5As shown, the tensioning block 4100 includes a first part 4110 and a second part 4120. The first part 4110 has a groove 4111, and the second part 4120 has a protrusion 4121 which can be inserted into the groove 4111. The belt-like substructure 5000 is arranged between the protrusion 4121 and the groove 4111 (e.g. between the protrusion 4121 and the bottom of the groove 4111), and the first part 4110 and the second part 4120 are detachably connected. In some embodiments, the first part 4110 and the second part 4120 can be detachably connected by clamping or threaded connection, etc. Through the design of the first part 4110 and the second part 4120, the belt-like substructure 5000 between the first clamping assembly 2000 and the second clamping assembly 3000 can be conveniently and quickly tensioned after the first clamping assembly 2000 and the second clamping assembly 3000 clamp the plurality of belt-like substructures 5000. The cooperation of the groove 4111 and the protrusion 4121 can effectively prevent the belt-like substructure 5000 from being separated from the tensioning block 4100, so as to make the connection of the tensioning block 4100 and the belt-like substructure 5000 more stable. In some examples, the width of the groove 4111 and the protrusion 4121 can be greater than the width of the belt-like substructure 5000.

[0052] In other embodiments, the side edges of the first part 4110 and the second part 4120 of the tensioning block 4100 can be hinged together, so that the first part 4110 and the second part 4120 can be relatively rotated to open or close. A locking member can be arranged between the first part 4110 and the second part 4120, and the locking member can lock the first part 4110 and the second part 4120 together after closing. The first part 4110 and the second part 4120 can be relatively rotated to clamp the belt-like substructure 5000 during the process of connecting the tensioning block 4100 to the belt-like substructure 5000, and then the first part 4110 and the second part 4120 are locked together by the locking member, so that the tensioning block 4100 is connected to the belt-like substructure 5000.

[0053] Figure 6 is a structural schematic view of a support plate 4200 according to some embodiments of the present specification. As shown, the support plate 4200 includes a first part 4210 and a second part 4220. The first part 4210 has a groove 4211, and the second part 4220 has a protrusion 4221 which can be inserted into the groove 4211. The belt-like substructure 5000 is arranged between the protrusion 4221 and the groove 4211 (e.g. between the protrusion 4221 and the bottom of the groove 4211), and the first part 4210 and the second part 4220 are detachably connected. In some embodiments, the first part 4210 and the second part 4220 can be detachably connected by clamping or threaded connection, etc. Through the design of the first part 4210 and the second part 4220, the belt-like substructure 5000 between the first clamping assembly 2000 and the second clamping assembly 3000 can be conveniently and quickly tensioned after the first clamping assembly 2000 and the second clamping assembly 3000 clamp the plurality of belt-like substructures 5000. The cooperation of the groove 4211 and the protrusion 4221 can effectively prevent the belt-like substructure 5000 from being separated from the support plate 4200, so as to make the connection of the support plate 4200 and the belt-like substructure 5000 more stable. In some examples, the width of the groove 4211 and the protrusion 4221 can be greater than the width of the belt-like substructure 5000. Figure 6 Figure 7 ​and the like. The support plate 4200 is fixed to the base 1000, and the plurality of tensioning blocks 4100 are fixed to the support plate 4200, for example, the plurality of tensioning blocks 4100 are detachably connected to the support plate 4200. For example, the support plate 4200 can be provided with a through hole, and the tensioning block 4100 can also be provided with a through hole, and the through hole of the support plate 4200 and the through hole of the tensioning block 4100 can be used to insert a bolt or a pin and the like, so as to realize the detachable connection of the support plate 4200 and the tensioning block 4100.

[0054] Figure 7 is a structural schematic view of a suspension structure of a second clamping assembly and a tensioning assembly according to some embodiments of the present specification. As shown in Figure 7 , the support plate 4200 can be provided with a suspension structure 4210, and the suspension structure 4210 is used to suspend the belt-shaped substructure 5000 between the second clamping assembly 3000 and the tensioning mechanism. By providing the suspension structure 4210, the belt-shaped substructure 5000 can be suspended to a suitable position first, and then the belt-shaped substructure 5000 between the first clamping assembly 2000 and the second clamping assembly 3000 is tensioned using the tensioning block 4100, preventing the tensioning block 4100 from directly acting on the connection position of the belt-shaped substructure 5000 and the second clamping assembly 3000, and ensuring the connection stability of the belt-shaped substructure 5000 and the second clamping assembly 3000 during the tensioning process.

[0055] In some embodiments, the suspension structure 4210 includes an arc-shaped table 4211, and the arc-shaped table 4211 includes an arc-shaped surface used to contact the belt-shaped substructure 5000. By providing the arc-shaped table 4211 with the arc-shaped surface, the belt-shaped substructure 5000 is suspended on the arc-shaped table 4211 and contacts the arc-shaped surface, and during the process of tensioning the belt-shaped substructure 5000 between the first clamping assembly 2000 and the second clamping assembly 3000 by the tensioning block 4100 or other ways, the friction between the belt-shaped substructure 5000 and the arc-shaped surface is small, the belt-shaped substructure 5000 is easy to be pulled, and the situation that the belt-shaped substructure 5000 is not tensioned due to large friction can be effectively prevented.

[0056] In some embodiments, the number of arc-shaped tables 4211 is a plurality, and the plurality of arc-shaped tables 4211 are arranged at intervals along a first direction Figure 7 indicated by the arrow). Figure 7The second direction is a direction tangent to the second side surface within the third connecting region 3100 of the second fixed region. The third connecting region 3100 is a region of the second side surface of the second fixed region fixed with the second connecting region of the strip-shaped substructure 5000. That is, the third connecting region 3100 can be understood as a region of the second side surface of the second shaping shaft fixedly connected with the second connecting region of the strip-shaped substructure. For example, when the second side surface has the second fixed groove, the third connecting region can be a region where the groove opening of the second fixed groove is located. For another example, when the second side surface has the second fixed surface, the third connecting region can be a region of the second fixed surface. Through such a configuration, the strip-shaped substructure 5000 pulled out from the third connecting region 3100 can extend along the second direction, and thus the strip-shaped substructure 5000 pulled out from the third connecting region 3100 is less likely to be bent after being hung on the plurality of arc-shaped tables 4211. In addition, the plurality of strip-shaped substructures 5000 are hung respectively, which can effectively reduce the friction between the strip-shaped substructure 5000 and the hanging structure, and prevent the strip-shaped substructure 5000 from being not tensioned due to a large frictional force.

[0057] In some embodiments, the hanging structure 4210 includes a pulley rotatably connected to the support plate 4200. By configuring the hanging structure 4210 as a pulley, since the pulley can rotate relative to the support plate 4200, in the process of tensioning the strip-shaped substructure 5000 between the first clamping assembly 2000 and the second clamping assembly 3000 by the tensioning block 4100 or other means, the strip-shaped substructure 5000 can drive the pulley to rotate relative to the support plate 4200, and the strip-shaped substructure 5000 is more easily pulled, which can effectively prevent the strip-shaped substructure 5000 from being not tensioned due to a large frictional force.

[0058] In some embodiments, the tensioning assembly 4000 can include a weight-increasing member, which can be hung on the strip-shaped substructure 5000. Specifically, when the strip-shaped substructure 5000 is hung by the hanging structure 4210, the weight-increasing member can be connected to the rear side of the second connecting region of the strip-shaped substructure 5000, so that the weight-increasing member tension the strip-shaped substructure 5000 between the first clamping assembly 2000 and the second clamping assembly 3000 under the action of gravity.

[0059] In some embodiments, the first clamping assembly 2000 and / or the second clamping assembly 3000 can be slidably arranged on the base 1000. By slidably arranging the first clamping assembly 2000 and / or the second clamping assembly 3000 on the base 1000, the spacing distance between the first clamping assembly 2000 and the second clamping assembly 3000 can be adjusted, so that the tooling fixture for manufacturing the belt structure of the present application can be suitable for different application scenarios (e.g., different sizes of conveying equipment). Hereinafter, the first clamping assembly 2000 is taken as an example for illustration.

[0060] In some embodiments, the first clamping assembly 2000 and the second clamping assembly 3000 can be slidably arranged on the base 1000, so that the adjustable relative distance range between the first clamping assembly 2000 and the second clamping assembly 3000 is wider. The slidable arrangement of the second clamping assembly 3000 can be similar to that of the first clamping assembly 2000. For the slidable arrangement of the second clamping assembly 3000, please refer to the relevant description of the slidable arrangement of the first clamping assembly 2000 in the present specification.

[0061] Figure 8 is a rear view of a tooling fixture for manufacturing the belt substructure 5000 according to some embodiments of the present specification. As shown in Figure 8 The base 1000 is provided with a sliding groove 1100, and the first clamping assembly 2000 includes a sliding rod 2300 and a connecting piece 2400. The sliding rod 2300 is used for inserting into the sliding groove 1100, and the connecting piece 2400 is used for fixing the first shaping mechanism 2100 to the base 1000. The sliding rod 2300 is arranged on the first shaping mechanism 2100, and the sliding rod 2300 can be inserted into and slide in the sliding groove 1100. The connecting piece 2400 is used for fixing the first shaping mechanism 2100 to the base 1000. By sliding the sliding rod 2300 in the sliding groove 1100, the first shaping mechanism 2100 can be driven to slide on the base 1000, so as to adjust the position of the first shaping mechanism 2100 relative to the base 1000, thereby adjusting the position of the first clamping assembly 2000 relative to the base, and further adjusting the spacing distance between the first clamping assembly 2000 and the second clamping assembly 3000 (e.g., the distance between the first fixing region of the first shaping mechanism 2100 and the second fixing region of the second shaping mechanism 2200).

[0062] The number of slide rods 2300 can be one or multiple (e.g., 2, 4, 5, etc.). Before the first shaping mechanism 2100 is connected to the base 1000 by the connecting member 2400, the multiple slide rods 2300 can prevent the first shaping mechanism 2100 from rotating relative to the base 1000, which facilitates maintaining the stability of the first clamping assembly 2000 during the movement of the first clamping assembly 2000, thereby reducing the operation difficulty. In some embodiments, the first shaping shaft 2110 can be provided with multiple through holes, which can be respectively used for inserting the slide rods 2300 and the connecting member 2400. In some embodiments, the first shaping shaft 2110 can be provided with three through holes, of which the two end through holes are respectively used for inserting the slide rods 2300, and the middle through hole is used for inserting the connecting member 2400. In some embodiments, when the first fastening mechanism 2200 further includes the first plate body 2230 and the second plate body 2240, the first plate body 2230 and the second plate body 2240 can also be correspondingly provided with multiple through holes, so that the slide rods 2300 and the connecting member 2400 can pass through the first plate body 2230, the first shaping shaft 2110 and the second plate body 2240. In some embodiments, the connecting member 2400 can be a threaded connecting member 2400 such as a bolt or a screw. In other embodiments, the connecting member 2400 can also be a connecting member 2400 that is connected by clamping.

[0063] In other embodiments, the first clamping assembly 2000 can also be slidably arranged on the base 1000 in other ways. For example, the base 1000 can be provided with a slide rail, and the first clamping assembly 2000 can be provided with a sliding block capable of sliding along the slide rail. For example, the sliding block can be on the first shaping mechanism 2100 or the first fastening mechanism 2200 of the first clamping assembly 2000.

[0064] The operation of manufacturing a strip structure using the tooling fixture 10000 of this application can be performed according to the following steps: Slide the first clamping component 2000 on the base according to a preset interval between the first clamping component and the second clamping component, adjust the distance between the first clamping component and the second clamping component, and then fix the first clamping component 2000 to the base 1000. This preset interval can be determined based on the length of the strip structure to be manufactured. For example, when the strip structure includes a conveyor belt for a conveying device (such as a belt conveyor), the length of the strip structure can be designed based on the distance between the rollers at both ends of the conveyor belt, thereby determining the preset interval. Clamp the first connecting areas of multiple overlapping strip substructures 5000 onto the first clamping component 2000, and clamp the second connecting areas of multiple overlapping strip substructures 5000 onto the second clamping component 3000. Use a tensioning component to tension the strip substructures 5000 between the first clamping component and the second clamping component. For example, the rear side of the second connecting region of the strip substructure 5000 can be suspended on the suspension structure 4210, and a tensioning block 4100 can be connected to the rear side of the second connecting region of the strip structure 5000.

[0065] In some embodiments, when the strip structure is used as the conveyor belt of a conveying device, the strip structure can be a loop-shaped conveyor belt or a straight conveyor belt. The conveyor belt can be formed by splicing two strip structures manufactured using the aforementioned tooling fixtures. For example, two strip structures can be spliced ​​together to form a loop-shaped conveyor belt, which is then mounted onto two conveyor rollers of the conveying device.

[0066] The basic concepts have been described above. Obviously, for those skilled in the art, the detailed disclosure above is merely illustrative and does not constitute a limitation of this specification. Although not explicitly stated herein, those skilled in the art may make various modifications, improvements, and corrections to this specification. Such modifications, improvements, and corrections are suggested in this specification and therefore remain within the spirit and scope of the exemplary embodiments of this specification. Furthermore, this specification uses specific terms to describe embodiments of this specification. For example, "an embodiment," "one embodiment," and / or "some embodiments" refer to a feature, structure, or characteristic associated with at least one embodiment of this specification. Therefore, it should be emphasized and noted that "an embodiment," "one embodiment," or "an alternative embodiment" mentioned twice or more in different locations in this specification do not necessarily refer to the same embodiment. In addition, certain features, structures, or characteristics in one or more embodiments of this specification can be appropriately combined.

[0067] For simplicity and to facilitate understanding of one or more embodiments, a description of an embodiment sometimes refers to multiple features coexisting together within a single embodiment, drawing, or description of an embodiment. However, this method of disclosure is not to be interpreted as meaning that the embodiments require more features than are explicitly recited in the claims. In fact, claims that recite only a few features are intended to cover all possible embodiments that fall within the scope of the claims, including embodiments that have the additional features recited in the above description of the embodiments.

[0068] Some embodiments use numerals to describe components, quantities of attributes. It should be understood that such numerals used in the description of the embodiments are, in some examples, modified by the adjectives "about," "approximately," or "substantially." Unless otherwise indicated, "about," "approximately," or "substantially" means ±20% of the value of the number. Accordingly, numerical parameters such as those included in the examples and claims are approximations that can vary depending upon the desired properties sought to be obtained by the particular embodiments. In some embodiments, numerical parameters are approximations that can vary from the numerical parameters set forth in the examples and claims. In some embodiments, numerical parameters should be considered in the context of the number of significant digits used for the number. Although the numerical ranges and parameters setting forth the broadest scope of the embodiments recited in this specification are approximations, the numerical values set forth in the specific examples are reported as precisely as possible. The numerical values set forth in the specific examples are provided to be as precise as reasonably possible. However, some variations can occur depending on the choice of the device used to do the measurement and other factors in some embodiments.

[0069] Each patent, patent application, patent publication, and other material, such as articles, books, specifications, publications, documents, and the like, referenced herein are hereby incorporated by reference in their entirety for the teachings relevant to the sentence and / or paragraph in which the reference is made. Discrepancies between applications history documents and the present specification, other than the most broad scope of the claims, are excepted. In the event of inconsistencies between the description, definitions, and / or terminology in the attached material and the present specification, the present specification governs. Note that if the description, definitions, and / or terminology in the attached material is inconsistent with the present specification, the present specification governs.

[0070] Finally, it should be understood that the embodiments described herein are merely exemplary of the principles of the embodiments. Other variations having essentially the same structure and function can be substituted for the embodiments described and claimed. Accordingly, the embodiments described and illustrated herein are not intended to be limiting, but rather are to serve as examples of implementations of the principles of the embodiments.

Claims

1. A tooling fixture for manufacturing a ribbon structure, characterized by, The base, the first clamping assembly, the second clamping assembly and the tensioning assembly are provided; The first clamping assembly and the second clamping assembly are arranged on the base in a spaced manner; The first clamping assembly comprises a first shaping mechanism and a first fastening mechanism, the first shaping mechanism comprises a first fixing area, and the first fastening mechanism is used for clamping a first connecting area on a plurality of belt-shaped substructures placed on the first fixing area on the first shaping mechanism in a superimposed manner along the thickness direction of the belt-shaped substructure, so as to fix the first fixing area and the first connecting area; The first connecting area is an area on each belt-shaped substructure clamped by the first clamping assembly, which is used for connecting with other belt-shaped substructures; The second clamping assembly comprises a second shaping mechanism and a second fastening mechanism, the second shaping mechanism comprises a second fixing area, and the second fastening mechanism is used for clamping a second connecting area on a plurality of belt-shaped substructures placed on the second fixing area on the second shaping mechanism in a superimposed manner along the thickness direction of the belt-shaped substructure, so as to fix the second fixing area and the second connecting area; the second connecting area is an area on each belt-shaped substructure clamped by the second clamping assembly, which is used for connecting with other belt-shaped substructures; The tensioning assembly is fixedly arranged relative to the base and is used for applying a pulling force to the belt-shaped substructure, so that the belt-shaped substructure between the first clamping assembly and the second clamping assembly is tensioned.

2. The tooling fixture of claim 1, wherein, The first shaping mechanism comprises a first shaping shaft, and the first fixing area comprises an arc-shaped first side surface arranged on the first shaping shaft; and / or The second shaping mechanism comprises a second shaping shaft, and the second fixing area comprises an arc-shaped second side surface arranged on the second shaping shaft.

3. The tooling fixture of claim 2, wherein, The first fastening mechanism comprises a first pressing member and a first fixing groove; The first fixing groove is located on the first side surface of the first shaping shaft, and the first fixing groove is used for placing the first connecting area of each belt-shaped substructure; The second fastening mechanism comprises a second pressing member and a second fixing groove, the second fixing groove is located on the second side surface of the second shaping shaft, and the second fixing groove is used for placing the second connecting area of each belt-shaped substructure, and the second pressing member is connected to the second shaping shaft to fix the second connecting area at the second fixing groove. The first fastening mechanism further comprises a first plate body and a second plate body, the first pressing member comprises two first side plates and a first bottom plate connected between the two first side plates; 4. The tooling fixture of claim 3, wherein, The first plate body and the second plate body can be connected to the two end surfaces of the first shaping shaft respectively, the two first side plates can be connected to the side surface of the first plate body away from the first shaping shaft and the side surface of the second plate body away from the first shaping shaft respectively, and the first bottom plate covers the outside of the first fixing groove; and / or The second fastening mechanism further comprises a third plate body and a fourth plate body, the second pressing member comprises two second side plates and a second bottom plate connected between the two second side plates; The third plate body and the fourth plate body can be connected to the two end surfaces of the second shaping shaft respectively, the two second side plates can be connected to the side surface of the third plate body away from the second shaping shaft and the side surface of the fourth plate body away from the second shaping shaft respectively, and the second bottom plate covers the outside of the second fixing groove. The second fastening mechanism further comprises a third plate body and a fourth plate body, and the second pressing member comprises two second side plates and a second bottom plate connected between the two second side plates; The third plate body and the fourth plate body are respectively connected to two end faces of the second shaping shaft, and the two second side plates are respectively connected to a side surface of the third plate body away from the second shaping shaft and a side surface of the fourth plate body away from the second shaping shaft, and the second bottom plate is arranged outside the second fixing groove.

5. The tooling fixture of claim 4, wherein, The first bottom plate is provided with a first connecting through hole, and / or the second bottom plate is provided with a second connecting through hole.

6. The tooling fixture of claim 2 wherein, The tensioning assembly further comprises a plurality of tensioning blocks, which are respectively connected to the plurality of belt substructures in one-to-one correspondence, and the plurality of tensioning blocks are fixedly arranged relative to the base.

7. The tooling fixture of claim 6, wherein, The tensioning block comprises a first part and a second part, the first part has a groove, the second part is provided with a boss, the boss can be inserted into the groove, the belt substructure is arranged between the boss and the groove, and the first part and the second part are detachably connected.

8. The tooling fixture of claim 6, wherein, The tensioning assembly further comprises a support plate fixedly connected to the base, and the plurality of tensioning blocks are detachably connected to the support plate; the support plate is provided with a hanging structure for hanging the belt substructure between the second clamping assembly and the tensioning assembly.

9. The tooling fixture of claim 8, wherein, The hanging structure comprises an arc-shaped table, and the arc-shaped table comprises an arc-shaped surface for contacting the belt substructure.

10. The tooling fixture of claim 9, wherein, The number of arc-shaped tables is plural, and the plurality of arc-shaped tables are arranged at intervals along a first direction, the first direction is parallel to a second direction tangent to the second side surface in a third connecting region on the second fixing region, and the third connecting region is a region fixed with the second connecting region of the belt substructure.

11. The tooling fixture of claim 8, wherein, The hanging structure comprises a pulley rotatably connected to the support plate.

12. The tool holder of claim 1 wherein, The first clamping assembly and / or the second clamping assembly are slidably arranged on the base.

13. The tooling fixture of claim 12, wherein, The base is provided with a sliding groove, the first clamping assembly and / or the second clamping assembly comprises a sliding rod and a connecting piece, the sliding rod is arranged on the shaping mechanism, the sliding rod can be inserted into and slide in the sliding groove, and the connecting piece is used to fix the shaping mechanism and the base.

14. The tooling fixture of claim 1 wherein, The belt structure is a conveyor belt.

Citation Information

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