Debugging die of graphite boat loading and unloading machine

By designing the debugging mold of the graphite boat loading and unloading machine and aligning the shaping strips at the edges of the template, the problems of low debugging accuracy and efficiency of the graphite boat loading and unloading machine are solved, and high-precision and efficient debugging effect are achieved.

CN223231518UActive Publication Date: 2025-08-15TONGWEI SOLAR ENERGY (CHENGDU) CO LID
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Patent Information

Application Number
CN202422448610.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-10
Publication Date
2025-08-15
Estimated Expiration
2034-10-10

AI Technical Summary

Technical Problem

There is no reference for debugging the entire module of the existing graphite boat loading and unloading machine, which leads to the problems of low debugging accuracy and low efficiency.

Method used

Design a graphite boat loading and unloading machine debugging mold, including the upper template and the lower template, the edges of the template are aligned to fit the shaping bars of the entire module, providing a debugging basis and improving debugging accuracy and efficiency.

Benefits of technology

Through the use of molds, the debugging accuracy and efficiency of the graphite boat loading and unloading machine can be significantly improved, ensuring accurate posture adjustment of the battery cell and improving the smooth progress of the production process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a debugging die for a graphite boat loading and unloading machine, and relates to the field of photovoltaic manufacturing equipment. The debugging mold for the graphite boat loading and unloading machine comprises an upper mold plate and a lower mold plate which are connected with each other and distributed at an interval, the upper mold plate is provided with a first left edge and a first right edge which are parallel to each other, and the lower mold plate is provided with a second left edge and a second right edge which are parallel to each other; the first left edge and the second left edge are aligned and used for being attached to a left shaping strip of a whole piece module of the graphite boat piece loading and unloading machine; the first right edge and the second right edge are aligned and used for being attached to a right shaping strip of the whole module. According to the debugging die for the graphite boat loading and unloading machine, the debugging precision and the debugging efficiency of the graphite boat loading and unloading machine can be improved.
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Description

Technical Field

[0001] The utility model relates to the field of photovoltaic manufacturing equipment, in particular to a graphite boat loading and unloading machine debugging die. Background Art

[0002] During the photovoltaic cell production process, a graphite boat loading and unloading machine is used to temporarily store cells and load them into the graphite boat. This machine typically features a full-cell module for temporarily storing cells. This module can also perform full-cell operations on the stored cells, adjusting their position to ensure they are loaded into the graphite boat in the ideal position.

[0003] In practical applications, the left and right shaping bars of whole-piece modules often tilt due to loose or deformed parts, resulting in non-standard alignment of the entire module. Therefore, the entire module often needs to be debugged. Currently, due to the lack of dedicated debugging molds and a lack of reference for debugging whole-piece modules, debugging accuracy is poor and debugging efficiency is low. Utility Model Content

[0004] The purpose of the utility model is to provide a graphite boat loading and unloading machine debugging mold, which is specially used for debugging the graphite boat loading and unloading machine and can improve the debugging accuracy and debugging efficiency of the graphite boat loading and unloading machine.

[0005] The embodiment of the present utility model provides a technical solution:

[0006] A graphite boat loading and unloading machine debugging die, comprising an upper die plate and a lower die plate connected to each other, the upper die plate and the lower die plate being spaced apart, the upper die plate having a first left edge and a first right edge parallel to each other, and the lower die plate having a second left edge and a second right edge parallel to each other;

[0007] The first left edge is aligned with the second left edge, and the two are used to fit the left shaping strip of the whole sheet module of the graphite boat loading and unloading machine; the first right edge is aligned with the second right edge, and the two are used to fit the right shaping strip of the whole sheet module.

[0008] In an optional embodiment, the upper template is parallel to the lower template.

[0009] In an optional embodiment, the upper template and the lower template are both rectangular.

[0010] In an optional embodiment, the graphite boat film loading and unloading machine debugging mold also includes a rear template, which is arranged at the same end of the upper template and the lower template, and the rear template is used to fit the film shooting module of the graphite boat film loading and unloading machine.

[0011] In an optional embodiment, a side edge of the upper template between the first left edge and the first right edge is connected to one end of the rear template, and a side edge of the lower template between the second left edge and the second right edge is connected to the other end of the rear template.

[0012] In an optional embodiment, the rear template is perpendicular to the upper template and the lower template.

[0013] In an optional embodiment, weight-reducing holes are provided on the rear template.

[0014] In an optional embodiment, at least one of the upper template and the lower template is provided with a scale portion.

[0015] In an optional embodiment, the scale portion is a groove recessed in the surface of the upper template and / or the lower template.

[0016] In an optional embodiment, the scale portion is provided on a side surface of the upper template facing away from the lower template, and a side surface of the lower template close to the upper template.

[0017] In an optional embodiment, two scale parts are provided on the upper template, one of the two scale parts is provided close to the first left edge, and the remaining one is provided close to the first right edge; and / or,

[0018] Two scale parts are provided on the lower template, one of the two scale parts is provided close to the second left edge, and the remaining one is provided close to the second right edge.

[0019] In an optional embodiment, the graphite boat loading and unloading machine debugging mold further includes a support column, one end of the support column is connected to the upper template, and the other end is connected to the lower template.

[0020] Compared with the prior art, the graphite boat loading and unloading machine debugging mold provided by the present invention is placed in the whole sheet module of the graphite boat loading and unloading machine in actual application, between the left shaping bar and the right shaping bar of the whole sheet module, and the whole sheet module is controlled so that the two upper and lower parts of the left shaping bar are respectively fitted with the first left edge and the second left edge, and the two upper and lower parts of the right shaping bar are respectively fitted with the first right edge and the second right edge. Since the first left edge is aligned with the second left edge, and the first right edge is aligned with the second right edge, the fitting conditions of the left shaping bar with the first left edge and the second left edge, and the fitting conditions of the right shaping bar with the first right edge and the second right edge, respectively, are used as the basis for debugging the whole sheet module, and the debugging is performed until the left shaping bar is evenly fitted with the first left edge and the second left edge, and the right shaping bar is evenly fitted with the first right edge and the second right edge. Therefore, the beneficial effects of the graphite boat loading and unloading machine debugging mold provided by the present invention include: being able to improve the debugging accuracy and debugging efficiency of the graphite boat loading and unloading machine. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] To more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for use in the embodiments. It should be understood that the following drawings only illustrate certain embodiments of the present invention and should not be considered as limiting the scope of the present invention. Those skilled in the art can also derive other relevant drawings based on these drawings without inventive effort.

[0022] Figure 1 A schematic structural diagram of a graphite boat loading and unloading machine debugging die provided in an embodiment of the present utility model;

[0023] Figure 2 A schematic diagram of the structure of the entire module for debugging the mold and debugging the graphite boat loading and unloading machine provided by this embodiment;

[0024] Figure 3 This is a structural diagram of the rear template and the filming module when debugging the mold and filming module using the graphite boat loading and unloading machine provided by this embodiment;

[0025] Figure 4 A schematic diagram of the structure of the graphite boat loading and unloading machine debugging conveyor track provided by this embodiment;

[0026] Figure 5 The figure is a structural diagram of the graphite boat loading and unloading machine debugging robot adsorption module provided by this embodiment.

[0027] Icons: 100-graphite boat loading and unloading machine debugging mold; 110-upper template; 111-first left edge; 112-first right edge; 120-lower template; 121-second left edge; 122-second right edge; 130-rear template; 131-weight reduction hole; 140-scale part; 150-support column; 210-whole piece module; 211-left shaping bar; 212-right shaping bar; 213-cache teeth; 220-film shooting module; 230-conveyor track; 240-robot adsorption module; 241-suction cup. DETAILED DESCRIPTION

[0028] To make the objectives, technical solutions, and advantages of the embodiments of the present invention more apparent, the technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the accompanying drawings of the embodiments of the present invention. It should be understood that the described embodiments are only a portion of the embodiments of the present invention, not all of them. Generally, the components of the embodiments of the present invention described and illustrated in the drawings herein may be arranged and designed in a variety of different configurations.

[0029] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but rather merely represents selected embodiments of the present invention. All other embodiments derived by persons of ordinary skill in the art based on the embodiments of the present invention without creative effort are also within the scope of protection of the present invention.

[0030] It should be noted that similar reference numerals and letters denote similar items in the following drawings, and therefore, once an item is defined in one drawing, it does not need to be further defined or explained in subsequent drawings.

[0031] In the description of the present utility model, it should be understood that the terms "upper", "lower", "inside", "outside", "left", "right", etc. indicate directions or positional relationships based on the directions or positional relationships shown in the accompanying drawings, or are directions or positional relationships in which the utility model product is usually placed when in use, or are directions or positional relationships commonly understood by those skilled in the art. These directions or positional relationships are only for the convenience of describing the present utility model and simplifying the description, and do not indicate or imply that the device or component referred to must have a specific direction, be constructed and operated in a specific direction, and therefore should not be understood as a limitation on the present utility model.

[0032] Furthermore, the terms “first”, “second”, etc. are merely used for distinguishing descriptions and should not be understood as indicating or implying relative importance.

[0033] It should also be noted that, in the description of this utility model, unless otherwise expressly specified or limited, terms such as "disposed" and "connected" should be understood in a broad sense. For example, "connected" can mean a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, or it can be the internal communication between two components. For those skilled in the art, the specific meanings of the above terms in this utility model can be understood according to specific circumstances.

[0034] The specific implementation of the present invention is described in detail below with reference to the accompanying drawings.

[0035] Example

[0036] The graphite boat loading and unloading machine includes a conveying track 230, a whole-piece module 210, a film-shooting module 220 and a robot adsorption module 240. In actual application, the conveying track 230 conveys the battery cells processed in the previous process to the whole-piece module 210 for temporary storage, that is, the conveying track 230 completes the loading of the cells.

[0037] The whole-cell module 210 processes the stored cells, primarily aligning the left and right edges of the stacked cells. The film-tapping module 220, located at the rear of the whole-cell module 210, supports the rear ends of the stacked cells in the module 210 to align their front and back edges.

[0038] A plurality of suction cups 241 are stacked and spaced apart on the robot adsorption module 240 . The plurality of suction cups 241 are used to respectively adsorb the plurality of battery cells stacked and arranged in the entire module 210 and transfer the plurality of battery cells to the graphite boat.

[0039] In actual application, to ensure the smooth loading process of the graphite boat loading and unloading machine, the conveying track 230 needs to be adjusted to the bottom middle position of the whole sheet module 210; to ensure the whole sheet standard, the whole sheet module 210 needs to be adjusted to its left shaping bar 211 and the right shaping bar 212 are parallel and vertical; to ensure the filming standard, the filming module 220 needs to be adjusted to a vertical state and facing the whole sheet module 210; to ensure the smooth transfer process, the robot adsorption module 240 needs to be adjusted to a state where it can extend into the middle area of the whole sheet module 210.

[0040] In order to quickly and easily complete the above debugging of the graphite boat loading and unloading machine, this embodiment provides a graphite boat loading and unloading machine debugging mold 100, please refer to Figure 1 , Figure 1 Shown is a structural schematic diagram of the graphite boat loading and unloading machine debugging mold 100.

[0041] The graphite boat loading and unloading machine debugging mold 100 provided in this embodiment includes an upper template 110, a lower template 120 and a rear template 130. The rear template 130 is located at the rear end of the upper template 110 and the lower template 120, and the top end of the rear template 130 is connected to the upper template 110, and the bottom end of the rear template 130 is connected to the lower template 120.

[0042] Specifically, the upper template 110 has a first left edge 111 and a first right edge 112 parallel to each other, and the lower template 120 has a second left edge 121 and a second right edge 122 parallel to each other, the first left edge 111 is aligned with the second left edge 121, and the first right edge 112 is aligned with the second right edge 122.

[0043] It should be noted that the first left edge 111 is aligned with the second left edge 121, and the first right edge 112 is aligned with the second right edge 122. It can be understood that in the plane where the lower template 120 is located, the projection of the first left edge 111 coincides with the second left edge 121, and the projection of the second left edge 121 coincides with the second right edge 122.

[0044] Please refer to Figure 2 , Figure 2 It is a structural diagram of debugging the whole wafer module 210 by using a graphite boat loading and unloading wafer machine debugging mold 100.

[0045] When debugging the entire wafer module 210, the graphite boat loading and unloading machine debugging mold 100 only needs to be placed inside the debugging module, that is, between the left shaping bar 211 and the right shaping bar 212 of the entire wafer module 210. In this state, the upper mold plate 110 and the lower mold plate 120 are arranged vertically, with the first left edge 111 of the upper mold plate 110 and the second left edge 121 of the lower mold plate 120 facing the left shaping bar 211 of the entire wafer module 210, and the first right edge 112 of the upper mold plate 110 and the second right edge 122 of the lower mold plate 120 facing the right shaping bar 212 of the entire wafer module 210.

[0046] Afterwards, the entire module 210 is controlled to move so that its left shaping bar 211 and the right shaping bar 212 gradually approach each other until the left shaping bar 211 is in contact with the first left edge 111 and the second left edge 121, and the right shaping bar 212 is in contact with the first right edge 112 and the second right edge 122. The entire module 210 is thus clamped left and right against the upper template 110 and the lower template 120.

[0047] Since the first left edge 111 is parallel to the first right edge 112, the second left edge 121 is parallel to the second right edge 122, the first left edge 111 is aligned with the second left edge 121, and the first right edge 112 is aligned with the second right edge 122, the plane defined by the first left edge 111 and the second left edge 121 is set as the left limiting surface, the plane defined by the first right edge 112 and the second right edge 122 is set as the right limiting surface, the left limiting surface is parallel to the right limiting surface, and the fitting condition of the left shaping strip 211 and the left limiting surface and the fitting condition of the right shaping strip 212 and the right limiting surface can be used as a basis for judging the status of the left shaping strip 211 and the right shaping strip 212.

[0048] Therefore, the fit between the left shaping strip 211 and the first left edge 111 and the second left edge 121 , and the fit between the right shaping strip 212 and the first right edge 112 and the second right edge 122 , can be used as a basis for debugging the entire module 210 .

[0049] For example, if the left shaping strip 211 is completely in contact with the first left edge 111 and has a gap with the second left edge 121, and the right shaping strip 212 is completely in contact with the first right edge 112 and the second right edge 122, then it indicates that the left shaping strip 211 has tilted. If the gaps between the front side of the left shaping strip 211 and the first and second left edges 111, 121 are smaller, and the gaps between the back side and the first and second left edges 111, 121 are larger, and the right shaping strip 212 is completely in contact with the first and second right edges 112, 122, then it indicates that the left shaping strip 211 has deflected.

[0050] If the left shaping bar 211 is completely in contact with the first left edge 111 and the second left edge 121, and the right shaping bar 212 is completely in contact with the first right edge 112 and the second right edge 122, then the entire module 210 is properly adjusted. Both the left shaping bar 211 and the right shaping bar 212 are provided with a plurality of buffer teeth 213 arranged in sequence in the vertical direction. The buffer teeth 213 at the same height on the left shaping bar 211 and the right shaping bar 212 support the same battery cell.

[0051] When the entire module 210 is debugged into place, the multiple temporarily stored battery cells are arranged vertically, and the battery cells are in a horizontal state. The left shaping bar 211 and the right shaping bar 212 are close to each other and can push the left and right edges of the multiple temporarily stored battery cells, thereby ensuring that the left and right edges of the multiple battery cells are aligned.

[0052] In fact, in this embodiment, the upper template 110 is parallel to the lower template 120, and both the upper template 110 and the lower template 120 are rectangular, the first left edge 111 and the first right edge 112 are two opposite sides of the upper template 110, and the second left edge 121 and the second right edge 122 are two opposite sides of the lower template 120.

[0053] Please refer to Figure 3 , Figure 3 FIG. 1 is a schematic structural diagram of the rear template 130 and the filming module 220 when the filming module 220 is debugged.

[0054] In this embodiment, the rear template 130 is perpendicular to the upper template 110 and the lower template 120. When debugging the graphite boat loading and unloading machine, the upper template 110 and the lower template 120 are horizontal, and the rear template 130 is vertical, facing the film-taking module 220 located behind the whole-wafer module 210. In this situation, the film-taking module 220 is controlled to gradually approach the rear template 130 until it is in contact with the rear template 130. The contact between the film-taking module 220 and the rear template 130 can be used as a basis for debugging the film-taking module 220.

[0055] For example, if the gap between the filming module 220 and the back template 130 gradually increases from the upper area to the lower area of the filming module 220, it indicates that the filming module 220 has tilted and its filming surface is no longer vertical; if the gap between the filming module 220 and the back template 130 gradually increases from the left area to the right area of the filming module 220, it indicates that the filming module 220 has deflected and its filming surface is no longer facing the whole film module 210. If the filming module 220 and the back template 130 are completely in contact, it indicates that the filming module 220 has been properly adjusted.

[0056] One side edge of the upper template 110 between the first left edge 111 and the first right edge 112 is connected to one end of the rear template 130 , and one side edge of the lower template 120 between the second left edge 121 and the second right edge 122 is connected to the other end of the rear template 130 .

[0057] In this embodiment, since the upper template 110 and the lower template 120 are both rectangular plates, the side edge of the upper template 110 connected to the rear template 130 is perpendicular to the first left edge 111 and the first right edge 112, and the side edge of the lower template 120 connected to the rear template 130 is perpendicular to the second left edge 121 and the second right edge 122.

[0058] In order to reduce the overall weight of the mold, in this embodiment, a weight-reducing hole 131 penetrating in the thickness direction is opened on the rear template 130.

[0059] Please refer to Figure 4 , Figure 4 Shown is a schematic structural diagram of the conveying track 230 during debugging.

[0060] Since the conveying track 230 is located below the whole wafer module 210 , when the graphite boat loading and unloading machine debugging mold 100 is placed inside the whole wafer module 210 , the conveying track 230 is located below the graphite boat loading and unloading machine debugging mold 100 .

[0061] After debugging the entire wafer module 210, the graphite boat loading and unloading machine debugging mold 100 is exactly in the middle of the area between the left shaping bar 211 and the right shaping bar 212, and the entire wafer module 210 is facing the conveyor track 230. At this time, the horizontal distance between the left edge of the conveyor track 230 and the second left edge 121, and the horizontal distance between the right edge of the conveyor track 230 and the second right edge 122 can be measured to provide a basis for debugging the conveyor track 230.

[0062] For example, if the horizontal distance between the left edge of the conveying track 230 and the second left edge 121 is larger, and the horizontal distance between the right edge of the conveying track 230 and the second right edge 122 is smaller, it indicates that the conveying track 230 is closer to the right shaping bar 212; conversely, if the horizontal distance between the right edge of the conveying track 230 and the second right edge 122 is larger, and the horizontal distance between the left edge of the conveying track 230 and the second left edge 121 is smaller, it indicates that the conveying track 230 is closer to the left shaping bar 211.

[0063] Through debugging, when the horizontal distance between the left edge of the conveying track 230 and the second left edge 121 is equal to the horizontal distance between the right edge of the conveying track 230 and the second right edge 122, it indicates that the conveying track 230 is debugged in place, that is, the conveying track 230 is just in the horizontal middle position of the entire module 210.

[0064] Please refer to Figure 5 , Figure 5 FIG. 2 is a schematic structural diagram of the debugging robot adsorption module 240 .

[0065] In this embodiment, both the upper and lower templates 110 and 120 are provided with a scale portion 140. The scale portion 140 extends parallel to the first left edge 111, the first right edge 112, the second left edge 121, and the second right edge 122. In actual use, after debugging the entire wafer module 210, the robot suction module 240 is inserted into the entire wafer module 210. The parallelism between the scale portion 140 and the left or right edge of the suction cup sheet 241 on the robot suction module 240 can be used as a basis for debugging the robot suction module 240.

[0066] Furthermore, in this embodiment, two scale portions 140 are provided on the upper template 110, one of which is located near the first left edge 111, and the remaining one is located near the first right edge 112. Two scale portions 140 are provided on the lower template 120, one of which is located near the second left edge 121, and the remaining one is located near the second right edge 122.

[0067] When debugging the robot suction module 240 and inserting it into the whole-piece module 210, if the robot suction module 240 is not located between the four scale portions 140, this indicates that the robot suction module 240 has not been able to insert into the whole-piece module 210 in a trajectory that aligns with the horizontal center area of the whole-piece module 210. Therefore, debugging the robot suction module 240 is necessary. To facilitate observation and comparison, the upper template 110 or the lower template 120 can be inserted between two adjacent suction cups 241 on the robot suction module 240.

[0068] The left and right edges of the suction cup 241 of the robot adsorption module 240 are parallel to the scale portion 140 , and the robot adsorption module 240 is in the horizontal middle position of the entire module 210 , indicating that the robot adsorption module 240 is debugged in place.

[0069] In order to facilitate the observation of the situation between the left and right edges of the suction cup 241 and the ruler portion 140, in this embodiment, the ruler portion 140 on the upper template 110 is set on the side surface of the upper template 110 away from the lower template 120, and the ruler portion 140 on the lower template 120 is set on the side surface of the lower template 120 close to the upper template 110.

[0070] It should be noted that, in another embodiment, the number and setting position of the ruler parts 140 can be adjusted. For example, two ruler parts 140 can be set only on the surface of the upper template 110 facing away from the lower template 120, for respectively comparing the left and right edges of the topmost suction cup sheet 241 on the robot adsorption module 240.

[0071] In this embodiment, the scale portion 140 is a groove formed on the surface of the upper template 110 and the lower template 120. In another embodiment, the scale portion 140 can also be configured as a rib protruding from the surface of the upper template 110 and the lower template 120.

[0072] In order to improve the strength of the overall structure, the graphite boat loading and unloading machine debugging mold 100 provided in this embodiment further includes a support column 150 , one end of the support column 150 is connected to the upper mold plate 110 , and the other end is connected to the lower mold plate 120 .

[0073] In fact, there are two support columns 150, and both support columns 150 are located at the front end of the upper template 110 and the lower template 120. One of the two support columns 150 is set close to the first left edge 111 and the second left edge 121, and the remaining one is set close to the first right edge 112 and the second right edge 122. An opening is formed between the two support columns 150 to avoid the robot adsorption module 240, so that the robot adsorption module 240 can smoothly extend between the upper template 110 and the lower template 120.

[0074] In summary, the graphite boat loading and unloading machine debugging mold 100 provided in this embodiment is specifically used for the debugging of the graphite boat loading and unloading machine. It serves as a debugging reference for the whole piece module 210, the film shooting module 220, the conveying track 230 and the robot adsorption module 240 of the graphite boat loading and unloading machine, and can greatly improve the debugging accuracy and debugging efficiency of the graphite boat loading and unloading machine.

[0075] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Those skilled in the art will readily appreciate that the present invention is susceptible to various modifications and variations. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the present invention.

Claims

1. A graphite boat loading and unloading machine debugging mold, characterized in that: The invention comprises an upper template (110) and a lower template (120) connected to each other, wherein the upper template (110) and the lower template (120) are spaced apart from each other, the upper template (110) has a first left edge (111) and a first right edge (112) parallel to each other, and the lower template (120) has a second left edge (121) and a second right edge (122) parallel to each other; The first left edge (111) is aligned with the second left edge (121), and the two are used to fit the left shaping strip (211) of the whole-piece module (210) of the graphite boat loading and unloading machine; the first right edge (112) is aligned with the second right edge (122), and the two are used to fit the right shaping strip (212) of the whole-piece module (210).

2. The graphite boat loading and unloading machine debugging mold according to claim 1, characterized in that: The upper template (110) is parallel to the lower template (120), and / or, The upper template (110) and the lower template (120) are both rectangular.

3. The graphite boat loading and unloading machine debugging mold according to claim 1, characterized in that: The graphite boat loading and unloading machine debugging mold (100) also includes a rear template (130), which is arranged at the same end of the upper template (110) and the lower template (120), and the rear template (130) is used to fit the film shooting module (220) of the graphite boat loading and unloading machine.

4. The graphite boat loading and unloading machine debugging mold according to claim 3, characterized in that: A side edge of the upper template (110) between the first left edge (111) and the first right edge (112) is connected to one end of the rear template (130), and a side edge of the lower template (120) between the second left edge (121) and the second right edge (122) is connected to the other end of the rear template (130).

5. The graphite boat loading and unloading machine debugging mold according to claim 3, characterized in that: The rear template (130) is perpendicular to the upper template (110) and the lower template (120), and / or, The rear template (130) is provided with a weight-reducing hole (131).

6. The graphite boat loading and unloading machine debugging mold according to claim 1, characterized in that: At least one of the upper template (110) and the lower template (120) is provided with a scale portion (140).

7. The graphite boat loading and unloading machine debugging mold according to claim 6, characterized in that: The scale portion (140) is a groove recessed on the surface of the upper template (110) and / or the lower template (120).

8. The graphite boat loading and unloading machine debugging mold according to claim 6, characterized in that: The scale portion (140) is provided on a side surface of the upper template (110) facing away from the lower template (120) and a side surface of the lower template (120) close to the upper template (110).

9. The graphite boat loading and unloading machine debugging mold according to claim 6, characterized in that: Two scale parts (140) are provided on the upper template (110), one of the two scale parts (140) is provided close to the first left edge (111), and the remaining one is provided close to the first right edge (112); and / or, Two scale parts (140) are provided on the lower template (120), one of the two scale parts (140) is provided close to the second left edge (121), and the remaining one is provided close to the second right edge (122).

10. The graphite boat loading and unloading machine debugging mold according to claim 1, characterized in that: The graphite boat loading and unloading machine debugging mold (100) further comprises a support column (150), one end of the support column (150) is connected to the upper mold plate (110), and the other end is connected to the lower mold plate (120).