A new energy battery module heating warehouse and heating production line

By designing a combination of a heated vertical warehouse and heating components, and combining it with a handling robot to realize an automated process for heating new energy battery modules, the problems of low efficiency and energy waste caused by manual control in existing technologies are solved, thereby improving production efficiency and reducing costs.

CN115064751BActive Publication Date: 2025-09-09GUANGZHOU MINO AUTOMOTIVE EQUIP CO LTD
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Patent Information

Application Number
CN202210724140.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-06-24
Publication Date
2025-09-09
Estimated Expiration
2042-06-24

AI Technical Summary

Technical Problem

The heating process of existing new energy battery modules requires manual control and has a low degree of automation, resulting in low production efficiency and insufficient utilization of heat energy, causing energy waste.

Method used

A new energy battery module heating warehouse and heating production line are designed. The combination of a heating vertical warehouse and heating components is used to directly heat the battery modules. Combined with a handling robot, a fully automated process is achieved, reducing energy waste and improving production efficiency.

Benefits of technology

The automation and standardization of the heating process of new energy battery modules has been achieved, which reduces energy waste, lowers production costs, and improves processing efficiency and product quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a new energy battery module heating warehouse and a heating production line. A new energy battery module heating warehouse, comprising: a heating warehouse, the heating warehouse is used to place new energy battery modules; a heating assembly, the heating assembly is installed in the heating warehouse, and is used to heat the new energy battery modules. The heating warehouse comprises: a supporting part, a plurality of supporting parts are provided, and the lower ends of adjacent supporting parts are connected by a connecting part. Support members are equidistantly installed on the supporting part, and the support members on adjacent supporting parts are parallel. The heating warehouse and the heating assembly can be freely combined, and multiple heating warehouses and multiple handling robots can be set according to the production rhythm. The entire process is modularized and standardized, thereby improving the automation rate and production efficiency of the entire new energy battery module.
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Description

Technical Field

[0001] The present invention belongs to the technical field of battery production, and in particular relates to a new energy battery module heating storage and a heating production line. Background Art

[0002] In the existing new energy battery production process, after the liquid injection and liquid sealing are completed, the battery module needs to be heated and then left to stand so that the internal electrodes of the battery are in full contact with the electrolyte. The discharge efficiency and battery life of the battery module that has been heated and left to stand can be improved.

[0003] The commonly used heating and stabilization process is high-temperature stabilization, which involves first heating the air and then transferring the hot air to a vertical warehouse to heat the new energy battery modules. However, using hot air to heat the new energy battery modules results in insufficient utilization of the heat energy. While using tilted stabilization for heating can avoid energy waste, the new energy battery modules are prone to tilting, requiring manual control and resulting in a low degree of automation, which in turn reduces the overall production efficiency of the new energy battery modules. Summary of the Invention

[0004] In order to overcome the shortcomings of the existing technology, the present invention provides a new energy battery module heating warehouse and heating production line to solve the problems of manual control required during the heating process of the new energy battery module, low automation program and low production efficiency.

[0005] One embodiment of the present invention provides a new energy battery module heating warehouse, which improves the heating automation level and production efficiency of the entire new energy battery module. The new energy battery module heating warehouse includes:

[0006] A heated vertical warehouse, which is used to store new energy battery modules;

[0007] A heating component is installed in the heating warehouse and is used to heat the new energy battery module.

[0008] In this embodiment, a plurality of the heating warehouses are arranged in a ring shape, which facilitates the loading and unloading of the new energy battery modules. It should be noted that, in this embodiment, by arranging the heating assembly on the heating warehouse, it is convenient to position the new energy battery modules and then heat them. By moving the new energy battery modules into the heating warehouse and then transporting them to the heating assembly for standardized heating, the heating warehouse and the heating assembly can be freely combined, so that the entire process is modularized and standardized, thereby improving the processing efficiency of the entire new energy battery module.

[0009] As needed, in one embodiment, the plurality of heating vertical warehouses can also be in a trapezoidal shape, a triangular shape, or other shapes, as long as they can meet the range of the handling robot arm to grasp, so as to facilitate the loading and unloading of the new energy battery modules.

[0010] In the traditional heating process of new energy battery modules, the new energy battery modules need to be heated before they are allowed to stand. In order to achieve a better heating effect, the air needs to be heated first and then the hot air needs to be transported to the vertical warehouse to heat the new energy battery modules. However, the method of using hot air to heat the new energy battery modules will cause the problem of insufficient utilization of heat energy; the method of using tilted standing for heating can avoid energy waste, but the new energy battery modules are prone to tilting and need to be manually controlled. The degree of automation is low, which makes the processing efficiency of the entire new energy battery module low. In the present embodiment, during use, the heating vertical warehouse and the heating component directly use the heating component to heat the new energy battery module, thereby reducing energy waste and saving processing and production space, thereby saving energy and reducing production costs.

[0011] In one embodiment, the heated vertical warehouse comprises:

[0012] The supporting parts are provided in plurality, and the lower ends of adjacent supporting parts are connected by a connecting part.

[0013] In one embodiment, support members are installed on the support portion at equal intervals, and the support members on adjacent support portions are parallel.

[0014] In one embodiment, the heating vertical warehouse further includes: a limiting member, one end of which is mounted on the upper surface of the support member on one side, and the other end of which is mounted on the lower surface of the support member on the opposite side.

[0015] In one embodiment, the heated vertical warehouse further comprises:

[0016] The heating vertical warehouse further includes a control component, which is arranged between adjacent support parts and is used to control the heating component.

[0017] In one embodiment, the support member is a rectangular structure, and the middle portion of the support member is connected to the side wall of the support portion.

[0018] In one embodiment, a connecting plate is installed in the middle of the upper surface of the support member, and both ends of the limiting member are connected to the connecting plate by bolts.

[0019] In one embodiment, by installing the support members at equal intervals on the support parts, the tray loaded with the new energy battery modules can be conveniently placed, and during operation, the limit members can fix the distance between adjacent support parts, which can further enhance the stability between the support parts, avoid accidental collisions that cause the heating warehouse to move or shake, and ensure the stability and safety of the new energy battery modules placed on the heating warehouse.

[0020] In one embodiment, the heating assembly comprises:

[0021] A mounting plate, the mounting plate being arranged on the support member, and the middle portion of the mounting plate being used to place the new energy battery module;

[0022] a pressurizing mechanism, the pressurizing mechanism being arranged on the mounting plate;

[0023] The side plate heating mechanism is arranged below the pressurizing mechanism.

[0024] In this embodiment, the pressurizing mechanism first moves the new energy battery module downward to fix the new energy battery module, thereby making it easier for the side plate heating mechanism to heat the new energy battery module.

[0025] In one embodiment, the pressurizing mechanism comprises:

[0026] A fixing portion, the fixing portion being symmetrically mounted on both sides of the mounting plate;

[0027] A connecting member, the connecting member is arranged on the outside of the fixing portion, the connecting member is arranged in an L-shape, a plurality of protrusions are provided on the upper side of the connecting member, a recess is formed between two adjacent protrusions, and an oblique support member is installed on the outside of the protrusion;

[0028] An axial driving member, the axial driving member being symmetrically mounted on both sides of the mounting plate;

[0029] A lower pressure plate, both sides of which are connected to the output shaft of the axial drive member, and a plurality of lower pressure plates are also provided on the lower surface of the lower pressure plate. In one embodiment, during operation, a plurality of the lower pressure plates first apply pressure to the limiting portion, and the limiting portion then transfers the pressure to the new energy battery module, thereby achieving compression of the new energy battery module.

[0030] In one embodiment, fixed plates are provided on both sides of the lower pressure plate, the fixed plates are L-shaped, and one end of the fixed plates is connected to the axial driving member.

[0031] In one embodiment, the side panel heating mechanism comprises:

[0032] A limiting portion, the limiting portion is arranged above the mounting plate, and two sides of the limiting portion are connected to the fixing portion;

[0033] a side pressure plate, the side pressure plate being slidably disposed on an inner side of the fixing portion;

[0034] A radial telescopic driving member is symmetrically mounted at both ends of the fixing portion, and a telescopic end of the radial telescopic driving member is connected to one of the side pressure plates.

[0035] In one embodiment, a hollow portion is opened in the middle of the lower pressure plate, and a lower pressure piece is symmetrically installed on the hollow portion. The lower pressure piece is connected to the lower pressure plate through the bolts. A plurality of lower pressure columns are evenly distributed on the lower surface of the lower pressure piece, and the lower pressure columns are used to fix the module.

[0036] In the side plate heating mechanism provided in the above embodiment, due to the provision of a radial telescopic drive member, the telescopic end of the telescopic radial telescopic drive member will extend or shorten, thereby driving the side pressure plate to move, thereby achieving compression of the new energy battery module, thereby facilitating the heating member to heat the new energy battery module.

[0037] In one embodiment, the side panel heating mechanism further comprises:

[0038] A heating element is installed on the inner side of the side pressure plate and is used to heat the module.

[0039] In one embodiment, for the convenience of description, the axial direction of the axial direction is defined as the Z-axis direction, and the radial direction of the radial telescopic driving member is defined as the X-axis direction.

[0040] During operation, the axial driving member drives the lower pressure plate to move downward to press the new energy battery module placed in the heating vertical warehouse, and then drives the side pressure plate to move toward the direction of the new energy battery module through the radial telescopic driving member. After the side of the new energy battery module is pressed, in one embodiment, the heating member is started as needed to heat the new energy battery module, thereby realizing direct heating of the new energy battery module in the heating vertical warehouse, thereby realizing direct heat transfer to the new energy battery module, thereby reducing energy loss, reducing energy waste, and reducing production costs.

[0041] One embodiment of the present invention further provides a new energy battery module production line, comprising:

[0042] A new energy battery module heating bank; and

[0043] A module loading conveyor line is provided on one side of the heating vertical warehouse and is used for loading modules;

[0044] A handling robot, which is arranged between a plurality of the heating vertical warehouses and is used for loading and / or unloading modules;

[0045] The module unloading conveyor line is arranged on the other side of the heating vertical warehouse and is used to unload and convey the modules to the next workstation.

[0046] In one embodiment, by arranging the module loading conveyor line, the module unloading conveyor line and the handling robot between multiple heating warehouses, the processes of heating loading, heating and unloading of the new energy battery module can be fully automated, so that the processing efficiency of the entire production line is high, and no manual participation is required, which saves labor costs and improves the overall processing efficiency and quality of the product.

[0047] In one embodiment, a new energy battery module production line further includes:

[0048] The heating warehouse loading position is set at one end of the module loading conveyor line close to the heating warehouse, which is used to facilitate the conveying and handling robot to load the module;

[0049] The heating vertical warehouse unloading position is set at one end of the module unloading conveyor line close to the heating vertical warehouse, and is used for the handling robot to place the heated module onto the module unloading conveyor line.

[0050] In one embodiment, during operation, the new energy battery module transported to the upper material position of the heating vertical warehouse by the module loading conveyor line is transported to the mounting plate on the heating vertical warehouse by the transport robot, and then pressed by the lower pressure plate and the side pressure plate. The heating element heats the driving element of the new energy battery module. After the heating is completed, the transport robot transports the new energy battery module to the unloading position of the heating vertical warehouse as needed, and then is transferred to the next workstation by the module unloading conveyor line.

[0051] The new energy battery module heating warehouse and heating production line provided in the above embodiments have the following beneficial effects:

[0052] 1. In this embodiment, a plurality of the heating vertical warehouses are arranged in a ring, which facilitates the loading and unloading of the new energy battery modules. It should be noted that, in this embodiment, by arranging the heating components on the heating vertical warehouses, it is convenient to position the new energy battery modules and then heat them, so that the entire process is modularized and standardized, thereby improving the processing efficiency of the entire new energy battery module.

[0053] 2. During use of the heating vertical warehouse and the heating component in this embodiment, since the heating component is directly used to heat the new energy battery module, energy waste can be reduced.

[0054] 3. In one embodiment, by equidistantly installing the support members on the support portion, the tray loaded with the new energy battery module can be conveniently placed. In addition, during operation, the limit members can fix the distance between adjacent support portions, thereby further enhancing the stability between the support portions, avoiding accidental collisions that may cause movement or shaking of the heating vertical warehouse, and ensuring the stability and safety of the new energy battery modules placed on the heating vertical warehouse.

[0055] 4. In the side plate heating mechanism provided in the above embodiment, due to the provision of a radial telescopic drive member, the telescopic end of the telescopic radial telescopic drive member will extend or shorten, thereby driving the side pressure plate to move, thereby achieving compression of the new energy battery module, thereby facilitating the heating member to heat the new energy battery module.

[0056] 5. In one embodiment, during operation, the axial driving member drives the lower pressure plate to move downward to press the new energy battery module placed in the heating vertical warehouse, and then the radial telescopic driving member drives the side pressure plate to move toward the direction of the new energy battery module. After the side of the new energy battery module is pressed, the heating member is started as needed to heat the new energy battery module, thereby realizing direct heating of the new energy battery module in the heating vertical warehouse, thereby realizing direct heat transfer to the new energy battery module in the heating vertical warehouse, reducing energy loss and reducing production costs.

[0057] 6. In one embodiment, during the working process, the new energy battery module transported to the loading position of the heating warehouse by the module loading conveyor line is transported to the mounting plate on the heating warehouse by the transport robot, and then pressed by the lower pressure plate and the side pressure plate. The heating element heats the driving element of the new energy battery module. After the heating is completed, the transport robot transports the new energy battery module to the unloading position of the heating warehouse, and then is transferred to the next workstation by the module unloading conveyor line, thereby realizing the automated operation of heating the new energy battery module. At the same time, multiple heating warehouses and multiple transport robots can be set according to the production rhythm, and the entire process is modularized and standardized, greatly improving the production efficiency of the production line. BRIEF DESCRIPTION OF THE DRAWINGS

[0058] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on the structures shown in these drawings without paying any creative work.

[0059] Figure 1 It is a structural schematic diagram of the present invention;

[0060] Figure 2 for Figure 1 A magnified view of point A;

[0061] Figure 3 This is a top view of the heating vertical warehouse;

[0062] Figure 4 This is a structural diagram of a heating vertical warehouse;

[0063] Figure 5 This is a structural diagram of the module loading and unloading conveyor line. DETAILED DESCRIPTION

[0064] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.

[0065] It should be noted that if the embodiments of the present invention involve directional indications (such as up, down, left, right, front, back, etc.), the directional indications are only used to explain the relative position relationship, movement status, etc. between the components under a certain specific posture. If the specific posture changes, the directional indications will also change accordingly.

[0066] In addition, if there are descriptions involving "first", "second", etc. in the embodiments of the present invention, the descriptions of "first", "second", etc. are only for descriptive purposes and cannot be understood as indicating or suggesting their relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features limited to "first" and "second" may explicitly or implicitly include at least one of such features. In addition, if "and / or" or "and / or" appears in the full text, its meaning includes three parallel solutions. Taking "A and / or B" as an example, it includes solution A, solution B, or solutions that satisfy both A and B. In addition, the technical solutions between the various embodiments can be combined with each other, but it must be based on the ability of ordinary technicians in this field to implement. When the combination of technical solutions is mutually contradictory or cannot be implemented, it should be deemed that such a combination of technical solutions does not exist and is not within the scope of protection required by the present invention.

[0067] One embodiment of the present invention provides a new energy battery module heating bank, comprising:

[0068] A heating vertical warehouse 1, which is used to store new energy battery modules;

[0069] The heating component 2 is installed in the heating warehouse 1 and is used to heat the new energy battery module.

[0070] In this embodiment, a plurality of the heating warehouses 1 are arranged in a ring shape, which is convenient for loading and unloading the new energy battery modules. It should be noted that, in this embodiment, by arranging the heating component 2 on the heating warehouse 1, it is convenient to position the new energy battery modules and then heat them. By transporting the new energy battery modules to the heating warehouse 1 and then transporting them to the heating component 2 for standardized heating, the heating warehouse 1 and the heating component 2 can be freely combined, and the heating time of the new energy battery modules can be adjusted to make the entire process modular and standardized, thereby improving the processing efficiency of the entire new energy battery modules.

[0071] As needed, in one embodiment, the plurality of heating vertical warehouses 1 can also be in a trapezoidal shape, a triangular shape, or other shapes, as long as they can meet the range of the handling robot arm to facilitate the loading and unloading of the new energy battery modules.

[0072] In the traditional heating process of new energy battery modules, the new energy battery modules need to be heated before they are allowed to stand. In order to achieve a better heating effect, the air needs to be heated first and then the hot air needs to be transported to the vertical warehouse to heat the new energy battery modules. However, the method of using hot air to heat the new energy battery modules will cause the problem of insufficient utilization of heat energy; the method of using tilted standing for heating can avoid energy waste, but the new energy battery modules are prone to tilting and need to be manually controlled. The degree of automation is low, which makes the processing efficiency of the entire new energy battery module low. In this embodiment, during use, the heating vertical warehouse 1 and the heating component 2 directly use the heating component 2 to heat the new energy battery modules, thereby reducing energy waste and saving processing and production space, thereby saving energy and reducing production costs.

[0073] In one embodiment, the heating vertical warehouse 1 includes:

[0074] The supporting parts 11 are provided in plurality, and the lower ends of adjacent supporting parts 11 are connected by a connecting part.

[0075] In one embodiment, support members 12 are equidistantly mounted on the support portion 11 , and the support members 12 on adjacent support portions 11 are parallel.

[0076] In one embodiment, the heating vertical warehouse 1 further includes: a limiting member 13 , one end of which is mounted on the upper surface of the support member 12 on one side, and the other end is mounted on the lower surface of the support member 12 on the opposite side.

[0077] In one embodiment, the heating vertical warehouse 1 further includes:

[0078] The control member 14 is disposed between adjacent support portions 11 and is used to control the heating assembly 2 .

[0079] In one embodiment, the support member 12 is a rectangular structure, and the middle portion of the support member 12 is connected to the side wall of the support portion 11 .

[0080] In one embodiment, a connecting plate 15 is installed in the middle of the upper surface of the support member 12 , and both ends of the limiting member 13 are connected to the connecting plate 15 by bolts.

[0081] In one embodiment, by equidistantly installing the support members 12 on the support portion 11, a pallet loaded with the new energy battery module can be conveniently placed. During operation, the limit member 13 can fix the distance between adjacent support portions 11, thereby further enhancing the stability between the support portions 11, avoiding accidental collisions that cause the heating warehouse 1 to move or shake, and ensuring the stability and safety of the new energy battery module placed on the heating warehouse 1.

[0082] In one embodiment, the heating component 2 includes:

[0083] A mounting plate 21, the mounting plate 21 is arranged on the support member 12, and the middle part of the mounting plate 21 is used to place the new energy battery module;

[0084] A pressurizing mechanism 22 , the pressurizing mechanism 22 being disposed on the mounting plate 21 ;

[0085] The side plate heating mechanism 23 is provided below the pressurizing mechanism 22 .

[0086] In this embodiment, during operation, the pressurizing mechanism 22 first moves the new energy battery module downward to fix the new energy battery module, thereby making it easier for the side plate heating mechanism 23 to heat the new energy battery module.

[0087] In one embodiment, the pressurizing mechanism 22 includes:

[0088] The fixing parts 221 are symmetrically mounted on both sides of the mounting plate 21;

[0089] A connecting member 222 is provided on the outside of the fixing portion 221. The connecting member 222 is L-shaped. A plurality of protrusions 2221 are provided on the upper side of the connecting member 222. A recess 2222 is formed between two adjacent protrusions 2221. An oblique support member 2223 is installed on the outer side of the protrusion 2221.

[0090] Axial driving members 223, the axial driving members 223 are symmetrically mounted on both sides of the mounting plate 21;

[0091] In one embodiment, auxiliary axial driving members are further provided on both sides of the axial driving member 223, and the telescopic ends of the auxiliary axial driving members are connected to the lower pressing plate 224;

[0092] The lower pressure plate 224, both sides of which are connected to the output shaft of the axial driving member 223; in one embodiment, during operation, the plurality of lower pressure plates 224 first apply pressure to the limiting portion, and the limiting portion then transfers the pressure to the new energy battery module, thereby achieving compression of the new energy battery module.

[0093] In one embodiment, the side plate heating mechanism 23 includes:

[0094] A limiting portion, the limiting portion is provided above the mounting plate 21 , and two sides of the limiting portion are connected to the fixing portion 221 ;

[0095] a side pressure plate 232 slidably disposed on the inner side of the fixing portion 221 ;

[0096] The radial telescopic driving member 231 is symmetrically mounted at both ends of the fixing portion 221 , and the telescopic end of the radial telescopic driving member 231 is connected to one of the side pressure plates 232 .

[0097] In one embodiment, a hollow portion 2241 is opened in the middle of the lower pressure plate 224, and a lower pressure piece 2242 is symmetrically installed on the hollow portion 2241. The lower pressure piece 2242 is connected to the lower pressure plate 224 through the bolts. A plurality of lower pressure columns 2243 are evenly distributed on the lower surface of the lower pressure piece 2242, and the lower pressure columns 2243 are used to fix the module.

[0098] In the side plate heating mechanism 23 provided in the above embodiment, due to the provision of a radial telescopic driving member 231, the telescopic end of the telescopic radial telescopic driving member 231 will extend or shorten, thereby driving the side pressure plate 232 to move, thereby achieving compression of the new energy battery module, thereby facilitating the heating member 234 to heat the new energy battery module.

[0099] In one embodiment, the side plate heating mechanism 23 further includes:

[0100] The heating element 234 is installed on the inner side of the side pressure plate 232 and is used to heat the module.

[0101] In this embodiment, for the convenience of description, the axial direction of the axial direction is defined as the Z-axis direction, and the radial direction of the radial telescopic driving member 231 is defined as the X-axis direction.

[0102] In one embodiment, during operation, the axial driving member 223 drives the lower pressure plate 224 to move downward to press the new energy battery module placed in the heating vertical warehouse 1, and then drives the side pressure plate 232 to move toward the direction of the new energy battery module through the radial telescopic driving member 231. After the side of the new energy battery module is pressed, the heating member 234 is started as needed to heat the new energy battery module, thereby realizing direct heating of the new energy battery module in the heating vertical warehouse 1, thereby realizing direct heat transfer to the new energy battery module, thereby reducing energy loss, reducing energy waste, and reducing production costs.

[0103] One embodiment of the present invention further provides a new energy battery module production line, comprising:

[0104] A new energy battery module heating bank; and

[0105] The module loading conveyor line 3 is provided on one side of the heating vertical warehouse 1 and is used for loading the modules;

[0106] A handling robot 4, which is arranged between the plurality of heating vertical warehouses 1 and is used for loading and / or unloading modules;

[0107] The module unloading conveyor line 5 is arranged on the other side of the heating vertical warehouse 1 and is used to unload and convey the modules to the next workstation.

[0108] In one embodiment, by setting the module loading conveyor line 3, the module unloading conveyor line 5 and the handling robot 4 between multiple heating warehouses 1, the process of heating loading, heating and unloading of the new energy battery module can be fully automated. According to the production rhythm, multiple heating warehouses 1 and multiple handling robots 4 can be set up, and the entire process is modularized and standardized, thereby improving the automation rate and production efficiency of the entire new energy battery module.

[0109] In one embodiment, a new energy battery module production line further includes:

[0110] The heating warehouse loading position 31 is arranged at one end of the module loading conveyor line 3 close to the heating warehouse 1, and is used to facilitate the conveying and handling robot 4 to load the module;

[0111] The heating vertical warehouse unloading position 51 is set at one end of the module unloading conveyor line 5 close to the heating vertical warehouse 1, and is used for the handling robot 4 to place the heated module onto the module unloading conveyor line 5.

[0112] In one embodiment, during operation, the new energy battery module transported to the upper material position 31 of the heating vertical warehouse by the module loading conveyor line 3 is transported by the transport robot 4 to the mounting plate 21 on the heating vertical warehouse 1, and then pressed by the lower pressure plate 224 and the side pressure plate 232. The heating element 234 heats the driving element of the new energy battery module. After heating is completed, the transport robot 4 transports the new energy battery module to the unloading position 51 of the heating vertical warehouse, and then is transferred to the next workstation by the module unloading conveyor line 5.

[0113] The above description is only a preferred embodiment of the present invention and does not limit the patent scope of the present invention. All equivalent structural transformations made by using the contents of the present invention description and drawings under the inventive concept of the present invention, or direct / indirect application in other related technical fields are included in the patent protection scope of the present invention.

Claims

1. A new energy battery module heating warehouse, characterized in that: include: The heating vertical warehouse includes a plurality of support parts, wherein the lower ends of adjacent support parts are connected by a connecting part; the heating vertical warehouse is used to place new energy battery modules; support members are equidistantly installed on the support parts, and the support members on adjacent support parts are parallel; A heating component is installed in the heating warehouse and is used to heat the new energy battery module; the heating component includes: A mounting plate, the mounting plate being arranged on the support member, and the middle portion of the mounting plate being used to place the new energy battery module; A pressurizing mechanism is provided on the mounting plate and includes: a fixing portion symmetrically mounted on both sides of the mounting plate; a connecting member disposed on the outside of the fixing portion, the connecting member being L-shaped, a plurality of protrusions being provided on the upper side of the connecting member, a recess being formed between two adjacent protrusions, and an oblique support member being mounted on the outside of the protrusion; An axial driving member, the axial driving member being symmetrically mounted on both sides of the mounting plate; A lower pressing plate, both sides of which are connected to the output shaft of the axial drive member A side panel heating mechanism is provided below the pressurizing mechanism and comprises: a limiting portion, the limiting portion is provided above the mounting plate, and both sides of the limiting portion are connected to the fixing portion; a side pressure plate, the side pressure plate is slidably provided on the inner side of the fixing portion; a radial telescopic driving member, the radial driving member is symmetrically installed at both ends of the fixing portion, and the telescopic end of the radial telescopic driving member is connected to one of the side pressure plates; a heating member, the heating member is installed on the inner side of the side pressure plate for heating the module.

2. The new energy battery module heating bank according to claim 1, characterized in that: The heating vertical warehouse also includes: A limiting member, one end of which is mounted on the upper surface of a supporting member on one side, and the other end of which is mounted on the lower surface of a supporting member on the opposite side.

3. The new energy battery module heating bank according to claim 2, characterized in that: The heating vertical warehouse also includes: The heating vertical warehouse further includes a control component, which is arranged between adjacent support parts and is used to control the heating component.

4. The new energy battery module heating bank according to claim 2, characterized in that: The support member is a rectangular structure, and the middle portion of the support member is connected to the side wall of the support portion.

5. The new energy battery module heating bank according to claim 4, characterized in that: A connecting plate is installed in the middle of the upper surface of the support member, and both ends of the limiting member are connected to the connecting plate through bolts respectively.

6. The new energy battery module heating bank according to claim 1, characterized in that: A fixing plate is further provided on both sides of the lower pressing plate. The fixing plate is L-shaped, and one end of the fixing plate is connected to the axial driving member.

7. The new energy battery module heating bank according to claim 5, characterized in that: A hollow portion is provided in the middle of the lower pressure plate, and a lower pressure piece is symmetrically installed on the hollow portion. The lower pressure piece is connected to the lower pressure plate through the bolts. A plurality of lower pressure columns are evenly distributed on the lower surface of the lower pressure piece, and the lower pressure columns are used to fix the new energy battery module.

8. A new energy battery module production line, characterized in that: include: At least one new energy battery module heating bank according to any one of claims 1 to 7; and A module loading conveyor line is provided on one side of the heating vertical warehouse and is used for loading modules; A handling robot, which is arranged between a plurality of the heating vertical warehouses and is used for loading and / or unloading modules; The module unloading conveyor line is arranged on the other side of the heating vertical warehouse and is used to unload and convey the modules to the next workstation.

9. The new energy battery module production line according to claim 8, characterized in that: The new energy battery module production line further includes: The heating vertical warehouse loading position is set at one end of the module loading conveyor line close to the heating vertical warehouse, which is used to facilitate the handling robot to load the module; The heating vertical warehouse unloading position is set at one end of the module unloading conveyor line close to the heating vertical warehouse, and is used for the handling robot to place the heated module onto the module unloading conveyor line.

Citation Information

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