AGM separator forming equipment for gel power battery

Through the design of the closed screening and stirring mechanism, the problems of fiber agglomeration and impurities introduction in traditional equipment are solved, and the efficient and uniform mixing and dehydration treatment of AGM partitions are achieved, which improves the molding quality and production efficiency of partitions.

CN120367069APending Publication Date: 2025-07-25XIAO YANG POWER SOURCES CO LTD
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Patent Information

Application Number
CN202510812366.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-18
Publication Date
2025-07-25

AI Technical Summary

Technical Problem

Traditional AGM partition molding equipment is susceptible to external interference in an open screening environment, resulting in fiber agglomeration and impurities, affecting the structural uniformity and mechanical properties of the partition and reducing the quality of the finished product.

Method used

The sealed screening assembly and stirring mechanism are adopted to drive the blade and stirring rod through the drive shaft to achieve shear dispersion and uniform mixing of the fibers. The opening and closing of the feed port is controlled in combination with the negative pressure environment to ensure that the fibers are mixed in the confined space, and dehydrated with a vacuum water absorber tank to optimize the pore structure.

Benefits of technology

It significantly improves the mixing stability and uniformity of the fibers, reduces the risk of external interference, improves the quality of partition molding and production efficiency, and ensures the consistency of mixing quality and drying efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of battery separator processing, and particularly discloses AGM separator forming equipment for a gel power battery, the AGM separator forming equipment comprises a mixing tank, the top of the mixing tank is fixedly provided with a sealing cover, the bottom of the sealing cover is provided with a screening assembly, and the screening assembly comprises a driving shaft, a mixing mechanism, a screening mechanism and a stirring mechanism; the driving shaft is rotationally mounted in the sealing cover; fibers are conveyed into the mixing seat through the feeding port, the first motor drives shearing force formed by the tool apron and the blades to synchronously complete fiber mixing and particle size regulation and control, the fibers meeting the size requirement fall into the outer side area of the fan blades through the filter screen at the bottom of the mixing seat, the driving shaft synchronously drives the stirring rod to rotate, and superfine fibers are screened through airflow to be stored in the collecting seat. Qualified fibers accurately fall into the mixing tank, and under the synergistic effect of the stirring mechanism and the screw rod, the fibers are efficiently and uniformly mixed in a closed space, so that external interference is effectively isolated, the mixing stability is greatly improved, and the mixing quality is ensured to be uniform and consistent.
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Description

Technical Field

[0001] The present invention relates to the technical field of battery separator processing, and particularly relates to an AGM separator forming device for gel power batteries. Background Art

[0002] The AGM separator uses ultrafine glass fiber as the base material, and forms a porous felt-like structure through fiber interweaving. It has the characteristics of high porosity and large specific surface area, can effectively adsorb and fix the electrolyte, and at the same time constructs a channel for ion transport. In the gel power battery system, the AGM separator can efficiently store and fix the sulfuric acid electrolyte by virtue of its microporous structure, significantly reducing the risk of electrolyte leakage, and ensuring the stable charge and discharge performance of the battery by optimizing the ion conduction path.

[0003] Currently, the mainstream forming process of AGM separators is wet forming, which is completed through the process of "pulping - papermaking pressing - drying and cutting". In view of the problem of uneven length distribution of glass fiber raw materials, the screening process is required in the pulping stage to achieve the homogenization of the slurry. However, the traditional external screening process of equipment has significant technical defects: the open screening environment is easily interfered by the outside world, resulting in fiber agglomeration and caking, and introducing impurities such as dust and foreign objects. The impurities are adsorbed on the fiber surface, which not only increases the thermal resistance in the drying stage and reduces the drying efficiency, but also forms stress concentration points during the forming process, affecting the structural uniformity and mechanical properties of the separator, and ultimately leading to a decline in the quality of the finished product.

[0004] Therefore, it is necessary to provide an AGM separator forming device for gel power batteries, aiming to solve the above problems. Summary of the Invention

[0005] The main purpose of the present invention is to provide an AGM separator forming device for gel power batteries, which can effectively solve the problems in the background art.

[0006] To achieve the above purpose, the technical solution adopted by the present invention is: an AGM separator forming device for gel power batteries, including a mixing tank and a support. The mixing tank is rotatably installed on the top of the support. A sealing cover is fixedly installed on the top of the mixing tank. A screening assembly is arranged at the bottom of the sealing cover. The screening assembly includes a driving shaft, a mixing mechanism, a screening mechanism, and a stirring mechanism. The driving shaft is rotatably installed inside the sealing cover, and a screw rod is fixedly connected to the bottom of the driving shaft. The mixing mechanism includes a mixing base, blades and a tool holder. The mixing base is rotatably connected to the bottom of the mixing tank. The blades are evenly and fixedly connected to the bottom of the mixing base. The tool holder is fixedly connected to the outside of the drive shaft. A driving wheel is fixedly connected to the top of the drive shaft. Two driven wheels are rotatably connected to the outside of the sealing cover through a mounting shaft. A gear ring is fixedly connected to the top of the mixing base. The driving wheel is engaged with the gear ring through the two driven wheels. A filter screen is fixedly connected to the bottom of the mixing base; The screening mechanism includes a fan blade and a collection base. The fan blade is fixedly connected to the outside of the drive shaft. The collection base is fixedly connected to the bottom of the mixing base. A sieve mesh is fixedly connected to the top of the collection base. A bottom plate is fixedly connected to the bottom of the fan blade.

[0007] As a further improvement of the above solution, a conveying base is fixedly installed on the top of the support. A flattening assembly is arranged on the top of the conveying base. Two driving rollers are rotatably installed inside the conveying base. A mesh belt is sleeved between the two driving rollers and forms a transmission connection. A vacuum water suction tank located inside the mesh belt is also fixedly connected inside the conveying base. A water storage tank is fixedly connected to the bottom of the conveying base. The vacuum water suction tank and the water storage tank are communicated through a connecting pipe.

[0008] As a further improvement of the above solution, a water inlet, a feed inlet and a bracket are fixedly installed on the top of the sealing cover. The bracket is located between the water inlet and the feed inlet. Sealing assemblies are arranged on the tops of the water inlet and the feed inlet. A first motor is fixedly installed on the top of the bracket. The top of the drive shaft is fixedly connected to the output end of the first motor through a coupling. An air inlet pipe is fixedly installed on the top of the sealing cover.

[0009] As a further improvement of the above solution, the stirring mechanism includes a stirring rod and a mounting seat. The top of the stirring rod is rotatably connected inside the mounting seat. The mounting seats are evenly and fixedly connected to the bottom of the bottom plate. Stirring blocks are evenly and fixedly connected to the outside of the stirring rod.

[0010] As a further improvement of the above solution, a gear is rotatably connected inside the mounting seat. The gear is fixedly connected to the top of the stirring rod. A tooth groove is formed inside the collection base. The gear penetrates through the mounting seat and meshes with the tooth groove.

[0011] As a further improvement of the above solution, the sealing assembly includes a driving sleeve, a guiding seat and a pushing seat. The driving sleeve is fixedly connected to the outside of the drive shaft. The driving sleeve is rotatably connected inside the guiding seat. The guiding seat is rotatably connected to the top of the driving wheel. The pushing seat is slidably connected to the outside of the guiding seat. A guiding groove is formed on the outside of the guiding seat. A convex block slidably connected to the guiding groove is arranged inside the pushing seat.

[0012] As a further improvement of the above solution, two connecting rods are fixedly connected to the bottom of the pushing seat, pistons are fixedly connected to the bottoms of the connecting rods, and sealing sleeves are fixedly connected to the interiors of the water inlet and the feed inlet respectively.

[0013] As a further improvement of the above solution, the pushing seat is slidably connected to the interior of the bracket, and a first spring is fixedly connected between the pushing seat and the inner wall of the bracket.

[0014] As a further improvement of the above solution, the flattening assembly includes a support seat fixedly installed on the top of the conveying seat. A material distributing push rod is rotatably connected to the interior of the support seat. Movable blocks are symmetrically and slidably connected to the interior of the support seat. A pressing roller is rotatably connected between the two movable blocks. A second spring is fixedly connected between the movable block and the inner wall of the support seat. A protective cover is fixedly installed on the outside of the support seat. A second motor is fixedly installed on the top of the protective cover. A worm is rotatably installed in the protective cover. The top of the worm is fixedly connected to the output shaft of the second motor through a coupling. The ends of the material distributing push rod and the pressing roller penetrating into the protective cover are both fixedly connected with worm wheels, and the worm wheels are all meshed with the worm.

[0015] Compared with the prior art, the present invention has the following beneficial effects: 1. Fibers are conveyed from the feed inlet to the inside of the mixing seat. The first motor drives the tool rest to rotate through the drive shaft. The shearing force formed by the tool rest and the cutting blade synchronously completes fiber mixing and particle size regulation. Fibers that meet the size requirements pass through the filter screen at the bottom of the mixing seat and fall into the area outside the fan blades. The drive shaft synchronously drives the stirring rod to rotate, and uses air flow to screen the overly fine fibers into the collection seat for storage. Qualified fibers are accurately dropped into the mixing tank. Under the synergistic action of the stirring mechanism and the screw rod, high-efficiency and uniform mixing of fibers is achieved in a closed space, effectively isolating external interference, greatly improving the mixing stability, and ensuring that the mixing quality is uniform.

[0016] 2. When the first motor drives the drive shaft to rotate, it synchronously drives the guide seat to rotate. The guide seat drives the pushing seat to move downward through the sliding cooperation of the guide groove and the convex block, and then makes the piston closely fit with the sealing sleeve through the connecting rod, realizing the sealing lock of the water inlet and the feed inlet. At this time, a negative pressure environment can be applied to the inside of the mixing tank through the air inlet pipe of the sealing cover. After the mixing process is completed, the negative pressure is released through the air inlet pipe, and the piston automatically resets under the elastic force of the first spring, thereby conveniently completing the opening and closing control of the water inlet and the feed inlet, and significantly improving the sealing operation efficiency.

[0017] 3. The fibers after pulping are conveyed by a mesh belt to the lower part of the equalizing assembly. The equalizing assembly evenly disperses the stacked fiber layer to form a fiber blanket with a uniform thickness, so as to be conveyed to a vacuum suction water box for dehydration treatment and improve the subsequent drying efficiency. During the equalizing process, the feeding push rod realizes the diversion of the fibers, and the pressure roller pre-compacts the dispersed fiber layer to optimize the pore structure of the fiber blanket and ensure efficient water removal during vacuum pumping. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.

[0019] Figure 1 is a schematic diagram of the overall structure of the present invention; Figure 2 is a schematic diagram of the internal structure of the mixing tank of the present invention; Figure 3 is a schematic diagram of the internal structure of the sealing cover of the present invention; Figure 4 is of the present invention Figure 3 is a schematic diagram of the structure at A in; Figure 5 is a schematic diagram of the internal structure of the mixing base of the present invention; Figure 6 is a schematic diagram of the structure of the mixing mechanism of the present invention; Figure 7 is a schematic diagram of the structure of the collection base of the present invention; Figure 8 is a schematic diagram of the structure of the sealing assembly of the present invention; Figure 9 is a schematic diagram of the structure of the drive sleeve of the present invention; Figure 10 is a schematic diagram of the structure of the conveying base of the present invention; Figure 11 is a schematic diagram of the structure of the support base of the present invention; Figure 12 is a schematic diagram of the structure of the water storage tank of the present invention; Figure 13 is a schematic diagram of the structure of the pressure roller of the present invention; Figure 14 is a schematic diagram of the structure of the worm gear and the worm of the present invention.

[0020] In the figure: 1. Mixing tank; 2. Sealing cover; 3. Water inlet; 4. Feed inlet; 5. Bracket; 6. First motor; 7. Sealing assembly; 71. Driving sleeve; 72. Guide seat; 73. Pushing seat; 74. Connecting rod; 75. Piston; 76. First spring; 77. Sealing sleeve; 8. Screening assembly; 81. Driving shaft; 82. Mixing mechanism; 821. Mixing seat; 822. Gear ring; 823. Blade; 824. Tool holder; 825. Driving wheel; 826. Mounting shaft; 827. Driven wheel; 83. Screening mechanism; 831. Fan blade; 832. Bottom plate; 833. Sieve mesh; 834. Collection seat; 84. Stirring mechanism; 841. Stirring rod; 842. Mounting seat; 843. Stirring block; 844. Gear; 85. Screw rod; 9. Conveyor seat; 10. Levelling assembly; 101. Support seat; 102. Dividing material push rod; 103. Protective cover; 104. Second motor; 105. Pressing roller; 106. Movable block; 107. Second spring; 108. Worm gear; 109. Worm; 11. Mesh belt; 12. Water storage tank; 13. Vacuum suction water tank; 14. Driving roller; 15. Connecting pipe; 16. Support. Detailed implementation mode

[0021] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative work shall fall within the protection scope of the present invention.

[0022] Please refer to Figures 1 to 14 As shown in the figure, the present invention provides an embodiment: an AGM separator forming device for gel power batteries, including a mixing tank 1 and a support 16. A sealing cover 2 is fixedly installed on the top of the mixing tank 1. A screening assembly 8 is arranged at the bottom of the sealing cover 2. The screening assembly 8 includes a driving shaft 81, a mixing mechanism 82, a screening mechanism 83 and a stirring mechanism 84. The driving shaft 81 is rotatably installed inside the sealing cover 2, and a screw rod 85 is fixedly connected to the bottom of the driving shaft 81; The mixing mechanism 82 includes a mixing seat 821, a blade 823 and a tool holder 824. The mixing seat 821 is rotatably connected to the bottom of the mixing tank 1. The blades 823 are uniformly fixedly connected to the bottom of the mixing seat 821. The tool holder 824 is fixedly connected to the outside of the driving shaft 81. A driving wheel 825 is fixedly connected to the top of the driving shaft 81. Two driven wheels 827 are rotatably connected to the outside of the sealing cover 2 through a mounting shaft 826. A gear ring 822 is fixedly connected to the top of the mixing seat 821. The driving wheel 825 is meshed with the gear ring 822 through the two driven wheels 827. A filter screen is fixedly connected to the bottom of the mixing seat 821; The screening mechanism 83 includes a fan blade 831 and a collection base 834. The fan blade 831 is fixedly connected to the outside of the drive shaft 81, the collection base 834 is fixedly connected to the bottom of the mixing base 821, a screen 833 is fixedly connected to the top of the collection base 834, and a bottom plate 832 is fixedly connected to the bottom of the fan blade 831.

[0023] In the actual application of the embodiment of the present invention, as Figures 2 to 6 shown, when the device operates, the drive shaft 81 drives the knife holder 824 fixed thereon to rotate synchronously. The blade 823 and the knife holder 824 form a relative shearing motion to mechanically cut and disperse the fiber raw materials entering the mixing base 821. At the same time, the driving wheel 825 at the top of the drive shaft 81 meshes with the gear ring 822 at the top of the mixing base 821 through the driven wheel 827, driving the mixing base 821 to rotate in the reverse direction, forming a double-rotor shearing effect, significantly improving the fiber dispersion efficiency and particle size uniformity. As Figures 5 to 7 shown, the preliminarily processed fibers enter the screening area through the filter screen at the bottom of the mixing base 821. At this time, the fan blade 831 rotates at a high speed with the drive shaft 81 to generate centrifugal force. Under the combined action of centrifugal force and gravity, the fibers with qualified particle sizes pass through the screen 833 and fall into the bottom of the mixing tank 1, while the too-small particles are collected into the collection base 834 due to insufficient centrifugal force, realizing precise grading. Meanwhile, as Figure 3 and Figure 5 shown, the drive shaft 81 drives the screw rod 85 to rotate, axially conveying and radially mixing the qualified fibers falling into the mixing tank 1. Combining with the circumferential disturbance effect of the stirring mechanism 84, a three-dimensional turbulent flow field is formed in the mixing tank 1 to ensure the uniform dispersion of the fibers in water. Finally, the shearing dispersion, particle size grading and uniform mixing of the fibers are completed in a closed environment, effectively avoiding external pollution and fiber secondary agglomeration, and significantly improving the forming quality and production efficiency of the partition board.

[0024] As Figure 2 and Figure 3 shown, a water inlet 3, a feed inlet 4 and a bracket 5 are fixedly installed on the top of the sealing cover 2. The bracket 5 is located between the water inlet 3 and the feed inlet 4. Sealing components 7 are arranged on the tops of the water inlet 3 and the feed inlet 4. A first motor 6 is fixedly installed on the top of the bracket 5. The top of the drive shaft 81 is fixedly connected to the output end of the first motor 6 through a coupling. An air inlet pipe is fixedly installed on the top of the sealing cover 2.

[0025] In the actual application of the embodiment of the present invention, when the device is running, the first motor 6 drives the drive shaft 81 to rotate at a high speed through a coupling, and at the same time drives the sealing assembly 7 to realize the mechanical seal of the water inlet 3 and the feed inlet 4. At this time, negative pressure gas is introduced into the sealing cover 2 through the air inlet pipe, so that a negative pressure environment is formed inside the mixing tank 1, ensuring that the fibers and water are sheared and mixed in the mixing seat 821 under closed conditions. After the mixing is completed, the negative pressure is released through the air inlet pipe, and the water inlet 3 and the feed inlet 4 are opened, and the fibers and water can be added, effectively improving the accuracy and efficiency of the slurry preparation and reducing the risk of external pollution.

[0026] As Figure 3 , Figure 5 , Figure 6 and Figure 7 shown, the stirring mechanism 84 includes a stirring rod 841 and a mounting seat 842. The top of the stirring rod 841 is rotatably connected to the inside of the mounting seat 842. The mounting seat 842 is uniformly fixedly connected to the bottom of the bottom plate 832. Stirring blocks 843 are uniformly fixedly connected to the outside of the stirring rod 841. A gear 844 is rotatably connected to the inside of the mounting seat 842. The gear 844 is fixedly connected to the top of the stirring rod 841. A tooth groove is formed inside the collection seat 834, and the gear 844 passes through the mounting seat 842 and meshes with the tooth groove of the collection seat 834.

[0027] In the actual application of the embodiment of the present invention, when the drive shaft 81 drives the fan blade 831 to rotate, the bottom plate 832 rotates synchronously, thereby driving the mounting seat 842 to revolve around the drive shaft 81. Since the gear 844 meshes with the tooth groove inside the collection seat 834, the gear 844 rotates on its own axis under the action of the tooth groove during the revolution, and then drives the stirring rod 841 to rotate around its own axis. This planetary motion enables the stirring block 843 to form a composite stirring trajectory in the mixing tank 1: that is, it makes a large-range circulating motion along the circumferential direction and performs local high-shear stirring, applying a high-frequency shear force to the fibers and water, and cooperating with the axial pushing action of the screw rod 85, forming a composite flow field of axial circulation and radial diffusion in the mixing tank 1, so that the fiber bundles are fully dissociated and evenly distributed in the water.

[0028] As Figure 2 , Figure 3 , Figure 8 and Figure 9As shown, the sealing assembly 7 includes a driving sleeve 71, a guiding seat 72 and a pushing seat 73. The driving sleeve 71 is fixedly connected to the outside of the driving shaft 81. The driving sleeve 71 is rotatably connected to the inside of the guiding seat 72. The guiding seat 72 is rotatably connected to the top of the driving wheel 825. The pushing seat 73 is slidably connected to the outside of the guiding seat 72. A guiding groove is formed on the outside of the guiding seat 72. A convex block slidably connected to the guiding groove is arranged inside the pushing seat 73. Two connecting rods 74 are fixedly connected to the bottom of the pushing seat 73. Pistons 75 are fixedly connected to the bottoms of the connecting rods 74. Sealing sleeves 77 are respectively fixedly connected to the inside of the water inlet 3 and the feed inlet 4. The pushing seat 73 is slidably connected to the inside of the bracket 5. A first spring 76 is fixedly connected between the pushing seat 73 and the inner wall of the bracket 5.

[0029] In the actual application of the embodiment of the present invention, when the equipment is started, the first motor 6 drives the driving shaft 81 to rotate, driving the driving sleeve 71 fixed thereto to rotate synchronously. The driving sleeve 71 drives the guiding seat 72 to rotate through keyway fit. The spiral guiding groove on the outside of the guiding seat 72 and the convex block on the inside of the pushing seat 73 form a sliding pair transmission, so that the pushing seat 73 moves linearly along the inner wall of the bracket 5 under the constraint of the guiding groove as the guiding seat 72 rotates, compressing the first spring 76 and pushing the piston 75 to move downward through the connecting rod 74. When the piston 75 is in close fit with the sealing sleeve 77, the water inlet 3 and the feed inlet 4 achieve mechanical sealing. At this time, a negative pressure is applied to the mixing tank 1 through the air inlet pipe to ensure that there is no leakage of fibers and liquid during the transportation process. During the mixing process, the driving shaft 81 continuously rotates, and the guiding seat 72 maintains a dynamic sealing state, effectively isolating the intrusion of external air and impurities. After the mixing process is completed, the negative pressure supply of the air inlet pipe is stopped and the pressure in the mixing tank 1 is restored. At this time, the elastic potential energy of the first spring 76 is released, pushing the pushing seat 73 to reset upward, driving the piston 75 to disengage from the sealing sleeve 77, and the water inlet 3 and the feed inlet 4 are restored to the open state. During the reset process of the pushing seat 73, the guiding seat 72 will be pushed to rotate through the guiding groove. Since the driving sleeve 71 and the guiding seat 72 are as Figure 9 shown, there is a rotation space for the driving sleeve 71 during the reset process and it cannot directly drive the guiding seat 72 to rotate.

[0030] As Figure 1 、 Figures 10 to 14As shown in the figure, a conveying seat 9 is fixedly installed at the top of the support 16. A flattening assembly 10 is arranged at the top of the conveying seat 9. Two driving rollers 14 are rotatably installed inside the conveying seat 9. A mesh belt 11 is sleeved between the two driving rollers 14 and forms a transmission connection. A vacuum suction water tank 13 located inside the mesh belt 11 is also fixedly connected inside the conveying seat 9. A water storage tank 12 is fixedly connected to the bottom of the conveying seat 9. The vacuum suction water tank 13 and the water storage tank 12 are communicated through a connecting pipe 15. The flattening assembly 10 includes a support seat 101 fixedly installed at the top of the conveying seat 9. A distributing push rod 102 is rotatably connected inside the support seat 101. Two movable blocks 106 are symmetrically and slidably connected inside the support seat 101. A pressing roller 105 is rotatably connected between the two movable blocks 106. A second spring 107 is fixedly connected between the movable block 106 and the inner wall of the support seat 101. A protective cover 103 is fixedly installed outside the support seat 101. A second motor 104 is fixedly installed at the top of the protective cover 103. A worm 109 is rotatably installed inside the protective cover 103. The top of the worm 109 is fixedly connected to the output shaft of the second motor 104 through a coupling. One ends of the distributing push rod 102 and the pressing roller 105 that penetrate into the protective cover 103 are both fixedly connected with worm gears 108. The worm gears 108 are all meshed with the worm 109.

[0031] In the actual application of the embodiment of the present invention, when the equipment is running, the second motor 104 drives the worm 109 to rotate through the coupling. The worm 109 is meshed with the worm gears 108 at the ends of the distributing push rod 102 and the pressing roller 105 to form a transmission mechanism, realizing the rotation of the distributing push rod 102 and the synchronous rotation of the pressing roller 105. The fibers after pulping are conveyed by the mesh belt 11 driven by the driving rollers 14 to the lower part of the flattening assembly 10. The distributing push rod 102 laterally pushes the accumulated fiber flow through the rotational movement to form a preliminarily uniform fiber layer. Under the elastic pressure of the second spring 107, the pressing roller 105 applies a pre-pressure to the fiber layer, ensuring the uniformity of the fiber layer thickness through rotational compaction. At the same time, the pores between the fibers are compressed to facilitate water extraction. The fiber layer after flattening and compaction moves with the mesh belt 11 to the upper part of the vacuum suction water tank 13. The vacuum suction water tank 13 is communicated with the water storage tank 12 through the connecting pipe 15. In the negative pressure environment of the vacuum suction water tank 13, the water in the fiber layer is quickly extracted, reducing the moisture content of the fibers and providing an efficient dehydration basis for the subsequent drying process.

[0032] It should be noted that, in this document, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or further includes elements inherent to such process, method, article or device. Without further limitation, an element defined by the statement "comprising an..." does not exclude the presence of additional identical elements in the process, method, article or device comprising the said element.

[0033] Although the embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An AGM separator forming device for a gel power battery, comprising a mixing tank (1) and a support (16), the mixing tank (1) is rotatably installed on the top of the support (16), and a sealing cover (2) is fixedly installed on the top of the mixing tank (1), characterized in that: A screening assembly (8) is provided at the bottom of the sealing cover (2). The screening assembly (8) includes a drive shaft (81), a mixing mechanism (82), a screening mechanism (83), and a stirring mechanism (84). The drive shaft (81) is rotatably installed inside the sealing cover (2), and a screw rod (85) is fixedly connected to the bottom of the drive shaft (81). The mixing mechanism (82) includes a mixing base (821), blades (823), and a tool holder (824). The mixing base (821) is rotatably connected to the bottom of the mixing tank (1). The blades (823) are evenly and fixedly connected to the bottom of the mixing base (821). The tool holder (824) is fixedly connected to the outside of the drive shaft (81). A driving wheel (825) is fixedly connected to the top of the drive shaft (81). Two driven wheels (827) are rotatably connected to the outside of the sealing cover (2) through a mounting shaft (826). A gear ring (822) is fixedly connected to the top of the mixing base (821). The driving wheel (825) is engaged with the gear ring (822) through the two driven wheels (827). A filter screen is fixedly connected to the bottom of the mixing base (821). The screening mechanism (83) includes a fan blade (831) and a collection base (834). The fan blade (831) is fixedly connected to the outside of the drive shaft (81). The collection base (834) is fixedly connected to the bottom of the mixing base (821). A screen (833) is fixedly connected to the top of the collection base (834). A bottom plate (832) is fixedly connected to the bottom of the fan blade (831).

2. The AGM separator forming device for a gel power battery according to claim 1, wherein: A conveying base (9) is fixedly installed at the top of the support (16). A flattening assembly (10) is provided at the top of the conveying base (9). Two drive rollers (14) are rotatably installed inside the conveying base (9). A mesh belt (11) is sleeved between the two drive rollers (14) and forms a transmission connection. A vacuum suction water tank (13) located inside the mesh belt (11) is also fixedly connected inside the conveying base (9). A water storage tank (12) is fixedly connected to the bottom of the conveying base (9). The vacuum suction water tank (13) and the water storage tank (12) are communicated through a connecting pipe (15).

3. An AGM separator forming device for a gel power battery according to claim 1, characterized in that: A water inlet (3), a feed inlet (4), and a support (5) are fixedly installed at the top of the sealing cover (2). The support (5) is located between the water inlet (3) and the feed inlet (4). A sealing assembly (7) is provided at the tops of the water inlet (3) and the feed inlet (4). A first motor (6) is fixedly installed at the top of the support (5). The top of the drive shaft (81) is fixedly connected to the output end of the first motor (6) through a coupling. An air inlet pipe is fixedly installed at the top of the sealing cover (2).

4. The AGM separator forming device for gel power batteries according to claim 2, characterized in that: The stirring mechanism (84) includes a stirring rod (841) and a mounting base (842). The top of the stirring rod (841) is rotatably connected inside the mounting base (842). The mounting bases (842) are evenly and fixedly connected to the bottom of the bottom plate (832). Stirring blocks (843) are evenly and fixedly connected to the outside of the stirring rod (841).

5. An AGM separator forming device for a gel power battery according to claim 4, characterized in that: A gear (844) is rotatably connected inside the mounting base (842). The gear (844) is fixedly connected to the top of the stirring rod (841). A tooth groove is formed inside the collecting base (834). The gear (844) passes through the mounting base (842) and meshes with the tooth groove.

6. The AGM separator forming device for a gel power battery according to claim 3, characterized in that: The sealing assembly (7) includes a driving sleeve (71), a guiding seat (72) and a pushing seat (73). The driving sleeve (71) is fixedly connected to the outside of the driving shaft (81). The driving sleeve (71) is rotatably connected inside the guiding seat (72). The guiding seat (72) is rotatably connected to the top of the driving wheel (825). The pushing seat (73) is slidably connected to the outside of the guiding seat (72). A guiding groove is formed on the outside of the guiding seat (72). A convex block slidably connected to the guiding groove is provided inside the pushing seat (73).

7. An AGM separator forming device for a gel power battery according to claim 6, characterized in that: Two connecting rods (74) are fixedly connected to the bottom of the pushing seat (73). Pistons (75) are fixedly connected to the bottoms of the connecting rods (74). Sealing sleeves (77) are respectively fixedly connected to the interiors of the water inlet (3) and the feed inlet (4).

8. The AGM separator forming equipment for gel power batteries according to claim 6, characterized in that: The pushing seat (73) is slidably connected inside the bracket (5). A first spring (76) is fixedly connected between the pushing seat (73) and the inner wall of the bracket (5).

9. The AGM separator forming device for a gel power battery according to claim 2, wherein: The flattening assembly (10) includes a support seat (101) fixedly installed on the top of the conveying seat (9). A material distributing push rod (102) is rotatably connected inside the support seat (101). Movable blocks (106) are symmetrically and slidably connected inside the support seat (101). A pressing roller (105) is rotatably connected between the two movable blocks (106). A second spring (107) is fixedly connected between the movable block (106) and the inner wall of the support seat (101). A protective cover (103) is fixedly installed on the outside of the support seat (101). A second motor (104) is fixedly installed on the top of the protective cover (103). A worm (109) is rotatably installed inside the protective cover (103). The top of the worm (109) is fixedly connected to the output shaft of the second motor (104) through a coupling. The ends of the material distributing push rod (102) and the pressing roller (105) passing through the protective cover (103) are both fixedly connected with worm wheels (108). The worm wheels (108) are both meshed with the worm (109).