Distribution and segmentation integrated template structure and battery powder blanking device
By designing an integrated template structure for material segmentation and a material feeding drive, the problems of material slippage, collapse, and mixing during transportation of lithium battery cathode material after it has been cut into blocks have been solved, thus achieving the stability of the material pile and the consistency of sintering.
Patent Information
- Application Number
- CN202423265108.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-30
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2034-12-30
AI Technical Summary
In existing technologies, lithium battery cathode materials are prone to slippage, collapse, and mixing during transportation after being cut into blocks.
The material is divided into sections using an integrated template structure. The material is formed into a sloping material pile by the material mold assembly. The cross-sectional area of the material pile cavity increases from top to bottom to enhance the structural stability of the material pile. The material is divided and formed into sections by the material feeding drive and the feeding assembly.
It effectively avoids material slippage and collapse during transportation, prevents mixing between adjacent material piles, and ensures the uniformity and consistency of material piles during the sintering process.
Smart Images

Figure CN223737090U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to battery powder production equipment technical field especially, it is a kind of cloth material segmentation integrated template structure and battery powder unloading device. BACKGROUND
[0002] At present, in the production process of lithium battery positive material, generally need to be after the completion of battery powder loading bowl is shaken and cut block work, to improve the contact area of material and oxygen, to ensure the quality of subsequent material sintering material.
[0003] Such as Chinese patent document CN212760595U, discloses a kind of lithium electric positive material loading bowl cutting block device, it includes: mobile discharge port, setting in the lower portion of machine cover;Cutting tool mould, setting in the upper portion of lift cylinder;Hearth, setting in the upper portion of lift cylinder;Vibration module, setting in the lower portion of cutting tool mould;Block, setting in the upper portion of hearth.The lithium electric positive material loading bowl cutting block device described above can reduce subsequent vibration leveling station separately set, by first put cutting tool after loading mode greatly strengthen cutting block effect, reduce the phenomenon of lithium electric positive material sticking pot and cutting block not in place.
[0004] However, the technical scheme disclosed in the above patent still has the following problems: the cutting tool mould is shaped into a square body after cutting block, which makes the material pile difficult to separate from the cutting tool mould, and in the process of moving or transporting to the material sintering process, the material pile is easily affected by the material flowability, and the material pile is prone to sliding and collapsing, which leads to the mixing of adjacent material piles. INVENTION CONTENTS
[0005] The utility model aims at overcoming the deficiencies in the prior art, and provides a cloth material segmentation integrated template structure and battery powder unloading device that can better enhance the structural stability of the material pile, thereby avoiding the sliding and collapsing of the material pile, and preventing the mixing of adjacent material piles.
[0006] The utility model aims to achieve the following technical solutions:
[0007] A cloth material segmentation integrated template structure includes:
[0008] The cloth module is used for fixed installation below the cloth box, and comprises a cloth plate body and a cloth mold group. The cloth mold group comprises a plurality of cloth molds, each cloth mold is arranged below the cloth plate body, the cloth plate body is provided with a plurality of guide ports, each guide port is used for communication with the discharge inner cavity of the cloth box, each cloth mold is provided with a material pile mold cavity, the material pile mold cavity of each cloth mold is communicated with the corresponding guide port, the bottom of each cloth mold is used for abutting against the pot bottom of the sagger, the cloth mold group is used for dividing the discharge, and each material pile mold cavity is formed with a material pile. The cross-sectional area of each material pile mold cavity increases from top to bottom.
[0009] In one of the embodiments, the plurality of cloth molds are arranged in an array, the plurality of guide ports are arranged one by one corresponding to the plurality of cloth molds, and the plurality of cloth molds are fixedly connected with the cloth plate body.
[0010] In one of the embodiments, the plurality of cloth molds are welded with the cloth plate body.
[0011] In one of the embodiments, the plurality of cloth molds are arranged in a rectangular array; and / or,
[0012] There is a separation gap between the adjacent two cloth molds; and / or,
[0013] The outer peripheral wall of each cloth mold is a table body structure.
[0014] A battery powder discharging device comprises a cloth box, a cloth assembly, and the cloth dividing integrated template structure of any one of the above embodiments. The cloth box is provided with a discharging inner cavity for buffering materials. The cloth assembly comprises a discharging push plate and a discharging driving member. The discharging driving member is installed outside the cloth box. The discharging push plate is slidingly arranged in the discharging inner cavity. The power output end of the discharging driving member penetrates through the cloth box and is connected with the discharging push plate to drive the discharging push plate to scrape the materials in the discharging inner cavity into the plurality of guide ports.
[0015] In one of the embodiments, the battery powder discharging device further comprises a feeding assembly. The feeding assembly comprises a feeding pipe and a feeding adapter. The feeding adapter is provided with a feeding channel. One end of the feeding pipe is used for communication with a feeding equipment, and the other end of the feeding pipe is in communication with one end of the feeding channel.
[0016] The top of the side adjacent to the discharging driving member of the cloth box is provided with a feeding port. The other end of the feeding channel is in communication with the discharging inner cavity through the feeding port.
[0017] In one of the embodiments, the feeding assembly further comprises a disc valve, which is located at the end of the feeding pipe communicating with the feeding adapter, and is used to control the on-off of the material conveying between the feeding pipe and the feeding adapter.
[0018] In one of the embodiments, the material distribution box is provided with a surplus material passage on the side facing away from the discharging driving element.
[0019] The material distribution assembly further comprises a material collecting groove, which is arranged adjacent to the surplus material passage, and the discharging inner cavity is communicated with the material collecting groove through the surplus material passage, and the material collecting groove is detachably connected with the material distribution box.
[0020] In one of the embodiments, a guide sliding support is arranged below the material distribution box, and the guide sliding support is provided with a sliding passage, and the material distribution plate body is slidingly arranged in the sliding passage.
[0021] In one of the embodiments, a first sliding groove is arranged on one inner side of the guide sliding support, and a second sliding groove is arranged on the other inner side of the guide sliding support, and the first sliding groove and the second sliding groove are both communicated with the sliding passage, one side of the material distribution plate body is slidingly arranged in the first sliding groove, and the other side of the material distribution plate body is slidingly arranged in the second sliding groove, and the sliding direction of the material distribution plate body relative to the guide sliding support is parallel to the sliding direction of the discharging push plate.
[0022] In one of the embodiments, the material distribution assembly further comprises a vibrating block, which is fixedly installed on the outer wall of the material distribution box; and / or,
[0023] The battery powder discharging device further comprises a lifting platform, which is located below the material distribution box, and is used to drive the lifting or lowering of the sagger.
[0024] Compared with the prior art, the utility model has at least the following advantages:
[0025] The material in the discharging inner cavity can flow through the guide port and be filled into the material pile mold cavity, so that the material is directly divided and discharged through the material distribution mold set, and a plurality of material piles are directly formed through the material pile mold cavity, thereby achieving the integrated processing of the divided discharging and forming of the material pile; and the cross-sectional area of each material pile mold cavity increases from top to bottom, so that the circumferential side of the material pile formed by the material pile mold cavity has an inclination, which better enhances the structural stability of the material pile during movement or transportation to the material sintering process, thereby effectively avoiding the situation that the circumferential side of the material pile collapses, and further preventing the mixing problem between adjacent material piles. BRIEF DESCRIPTION OF DRAWINGS
[0026] In order to more clearly illustrate the technical scheme of the embodiments of the present application, the drawings needed to be used in the embodiments will be briefly introduced as follows. It should be understood that the following drawings only show some embodiments of the present application, and therefore should not be regarded as limiting the scope. For those skilled in the art, other related drawings can also be obtained without creative labor on the premise of the drawings.
[0027] Figure 1 It is a structural schematic view of the cloth segmentation integrated template structure in an embodiment.
[0028] Figure 2 It is a structural schematic view of the battery powder discharging device in another embodiment.
[0029] Figure 3 It is Figure 2 It is a structural sectional view of the battery powder discharging device shown in the figure.
[0030] Figure 4 It is Figure 2 It is an exploded structural schematic view of the battery powder discharging device shown in the figure.
[0031] Figure 5 It is Figure 4 It is a local enlarged view of A of the battery powder discharging device shown in the figure.
[0032] Figure 6 It is Figure 4 It is a local enlarged view of B of the battery powder discharging device shown in the figure.
[0033] The drawings show: cloth segmentation integrated template structure 10; cloth module 100; cloth plate body 110; material guide port 1101; cloth mold group 120; cloth mold 120a; material pile mold cavity 1201; sagger 200; cloth box 300; discharging inner cavity 301; feeding port 302; excess material channel 303; guide sliding support 310; sliding channel 3101; first sliding groove 3102; second sliding groove 3103; cloth assembly 400; discharging push plate 410; discharging driving member 420; material collecting groove 430; vibrating block 440; feeding assembly 500; feeding pipe 510; feeding adapter 520; feeding channel 5201; disc valve 530. DETAILED DESCRIPTION
[0034] In order to facilitate the understanding of the present application, the present application will be described more fully below with reference to the related drawings. The preferred embodiments of the present application are shown in the drawings. However, the present application can be realized in many different forms and is not limited to the embodiments described herein. On the contrary, the purpose of providing these embodiments is to make the disclosure of the present application more thorough and comprehensive.
[0035] It should be noted that when an element is referred to as being "on" another element, it can be directly on the other element or intervening elements can also be present. When an element is referred to as being "connected" to another element, it can be directly connected to the other element or intervening elements can also be present. As used herein the terms "vertical", "horizontal", "left", "right", and the like are used for explanation purposes only and are not intended to limit the embodiments of the present application.
[0036] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terminology used in the description of the application herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the application. As used herein, the singular forms "a", "an" and "the" are intended to include the plural forms as well, unless the context clearly indicates otherwise.
[0037] Referring to Figures 1 to 3 In order to better understand the cloth segmentation integrated template structure 10 of the present application, the cloth segmentation integrated template structure 10 is further explained as follows:
[0038] The cloth segmentation integrated template structure 10 of an embodiment includes a cloth module 100. The cloth module 100 is used to be fixedly installed below the cloth box 300. The cloth module 100 includes a cloth plate body 110 and a cloth die set 120. The cloth die set 120 includes a plurality of cloth dies 120a. Each cloth die 120a is arranged below the cloth plate body 110. The cloth plate body 110 is provided with a plurality of guide openings 1101. Each guide opening 1101 is used to communicate with the discharging inner cavity 301 of the cloth box 300. Each cloth die 120a is provided with a material pile die cavity 1201. The material pile die cavity 1201 of each cloth die 120a is communicated with the corresponding guide opening 1101. The bottom of each cloth die 120a is used to abut against the pot bottom of the sagger 200. The cloth die set 120 is used to segment the discharging material so that a material pile is formed in each material pile die cavity 1201. The cross-sectional area of each material pile die cavity 1201 is increased from top to bottom.
[0039] In the embodiment, the material in the blanking inner cavity 301 can flow through the material guide port 1101 and fill into the material pile mold cavity 1201, so that the material is directly divided and blanked by the material distribution mold set 120, and a plurality of material piles are directly formed by the material pile mold cavity 1201, thereby achieving the integrated processing of dividing and blanking the material piles; and the cross-sectional area of each material pile mold cavity 1201 increases from top to bottom in sequence, so that the circumferential side of the material pile formed by the material pile mold cavity 1201 has a slope, so as to better enhance the structural stability of the material pile during movement or transportation to the material sintering process, thereby effectively avoiding the situation that the circumferential side of the material pile collapses, and thereby preventing the problem of mixing between adjacent material piles.
[0040] As shown in Figures 1 to 3 In one embodiment, the plurality of material distribution molds 120a are arranged in an array, the plurality of material guide ports 1101 are arranged one-to-one with the plurality of material distribution molds 120a, and the plurality of material distribution molds 120a are fixedly connected with the material distribution plate body 110.
[0041] It can be understood that in the embodiment, the material distribution mold set 120 is used for integrated processing of dividing and blanking the square sagger 200, specifically, by arranging the plurality of material guide ports 1101 and the plurality of material distribution molds 120a in an array, the shape of the sagger cavity of the square sagger 200 can be better matched, the uniformity of the plurality of material piles after dividing and forming is better, and the consistency of sintering of the plurality of material piles can be effectively ensured. In other embodiments, the material distribution mold set 120 can be an integrated forming structure.
[0042] As shown in Figure 2 and Figure 3 In one embodiment, the plurality of material distribution molds 120a are welded with the material distribution plate body 110, which facilitates the production and manufacturing of the material distribution mold set 120.
[0043] As shown in Figure 1 In one embodiment, the plurality of material distribution molds 120a are arranged in a rectangular array. In this way, by arranging the plurality of material guide ports 1101 and the plurality of material distribution molds 120a in a rectangular array, the shape of the sagger cavity of the square sagger 200 can be better matched, the uniformity of the plurality of material piles after dividing and forming is better, and the consistency of sintering of the plurality of material piles can be effectively ensured.
[0044] As shown in Figure 1 and Figure 2 In one embodiment, there is a separation gap between two adjacent material distribution molds 120a. In this way, the plurality of material piles are spaced apart at a distance.
[0045] As shown in Figure 3As shown, in one embodiment, the outer peripheral wall of each material distribution mold 120a is in a platform structure. In this way, the material pile formed by the material pile mold cavity 1201 has an increasing volume from top to bottom, so as to improve the structural stability of the material pile.
[0046] Please refer to Figures 2 to 6 The application also provides a battery powder discharging device 20, which comprises a material distribution box 300, a material distribution assembly 400, and the material distribution and segmentation integrated template structure 10 of any of the above embodiments. The material distribution box 300 is provided with a discharging inner cavity 301 for buffering the material. The material distribution assembly 400 comprises a discharging push plate 410 and a discharging driving member 420, and the discharging driving member 420 is installed on the outer side of the material distribution box 300. The discharging push plate 410 is slidingly arranged in the discharging inner cavity 301. The power output end of the discharging driving member 420 penetrates through the material distribution box 300 and is connected with the discharging push plate 410, so as to drive the discharging push plate 410 to scrape the material in the discharging inner cavity 301 into the plurality of material guide ports 1101.
[0047] In this embodiment, the discharging push plate 410 is driven by the discharging driving member 420 to slide in the discharging inner cavity 301, so as to simultaneously scrape the material buffered in the discharging inner cavity 301 into the plurality of material guide ports 1101. The material can flow through the material guide ports 1101 and be filled into the material pile mold cavities 1201, so that the segmentation and discharging are directly realized by the material distribution mold set 120, and the plurality of material piles are directly formed by the material pile mold cavities 1201, thereby achieving the segmentation and discharging forming integrated processing of the material piles. In addition, the cross-sectional area of each material pile mold cavity 1201 increases from top to bottom, so that the circumferential side of the material pile formed by the material pile mold cavity 1201 has a slope, so as to better enhance the structural stability of the material pile during the movement or transportation to the material sintering process, thereby effectively avoiding the situation that the circumferential side of the material pile collapses, and further preventing the mixing problem between the adjacent material piles.
[0048] Specifically, in this embodiment, the discharging driving member 420 is a telescopic air cylinder, which has a good response rate and can quickly drive the discharging push plate 410 to reciprocate until the plurality of material pile mold cavities 1201 are filled. In other embodiments, the discharging driving member 420 can be a telescopic electric cylinder or a telescopic hydraulic cylinder. Of course, this is not limited, and those skilled in the art can also make other selections according to needs. More specifically, the discharging driving member 420 is fixedly installed on one side of the material distribution box 300 through a support seat.
[0049] As Figures 2 to 4As shown, in one of the embodiments, the battery powder discharging device 20 further comprises a feeding assembly 500, the feeding assembly 500 comprises a feeding pipe 510 and a feeding adapter 520, the feeding adapter 520 is provided with a feeding channel 5201, one end of the feeding pipe 510 is used for being communicated with a feeding device, and the other end of the feeding pipe 510 is communicated with one end of the feeding channel 5201; the feeding channel 5201 is communicated with the discharging inner cavity 301 through the feeding port 302 provided at the top of the side of the cloth box 300 adjacent to the discharging driving member 420.
[0050] It can be understood that the feeding device can pre-store the material to the discharging inner cavity 301 through the feeding pipe 510 and the feeding adapter 520, specifically, in the embodiment, the feeding channel 5201 is in a fan-shaped structure from top to bottom, and the opening width of the other end of the feeding channel 5201 matches the width of the discharging push plate 410 in the sliding direction, so that the uniformity of the material flowing through the feeding channel 5201 and then entering the discharging inner cavity 301 is good, so as to facilitate the subsequent discharging push plate 410 to quickly and uniformly scrape the material into the plurality of guide ports 1101 at the same time, thereby effectively improving the discharging efficiency of the cloth assembly 400.
[0051] As shown in the embodiment, the cloth assembly 400 further comprises a feeding device, the feeding device is connected with the feeding pipe 510, and the feeding device is used for pre-storing the material to the discharging inner cavity 301 through the feeding pipe 510. Figure 4 As shown, in one of the embodiments, the feeding assembly 500 further comprises a disc valve 530, the disc valve 530 is located at the end of the feeding pipe 510 communicated with the feeding adapter 520, and the disc valve 530 is used for controlling the on-off of the material conveying between the feeding pipe 510 and the feeding adapter 520. In this way, the on-off of the material conveying between the feeding pipe 510 and the feeding adapter 520 can be controlled, so that the quantitative feeding and quantitative discharging of the material can be realized.
[0052] As shown in the embodiment, the cloth assembly 400 further comprises a feeding device, the feeding device is connected with the feeding pipe 510, and the feeding device is used for pre-storing the material to the discharging inner cavity 301 through the feeding pipe 510. Figure 4 As shown, in one of the embodiments, the cloth box 300 is provided with a surplus material channel 303 at the side away from the discharging driving member 420; the cloth assembly 400 further comprises a material collecting groove 430, the material collecting groove 430 is arranged adjacent to the surplus material channel 303, the discharging inner cavity 301 is communicated with the material collecting groove 430 through the surplus material channel 303, and the material collecting groove 430 is detachably connected with the cloth box 300.
[0053] It is understood that during the process of the feeding pusher plate 410 scraping the material into the guide port 1101, the material that cannot be scraped into the guide port 1101 in time will be pushed to the material collection tank 430 through the residual material channel 303 for temporary storage, so as to facilitate the subsequent material recycling work, so as to feed and discharge the material again, thereby avoiding material waste. Specifically, in this embodiment, the material collection tank 430 is snapped into the fabric box 300. The side of the material collection tank 430 adjacent to the fabric box 300 has a snap-fit protrusion (not shown in the figure), and the side of the fabric box 300 adjacent to the material collection tank 430 has a snap-fit groove (not shown in the figure). The snap-fit protrusion is located in the snap-fit groove, so that the material collection tank 430 is snapped into the fabric box 300. The material collection tank 430 can be disassembled and installed separately.
[0054] like Figures 4 to 6 As shown, in one embodiment, a guide bracket 310 is provided below the fabric box 300, and the guide bracket 310 has a sliding channel 3101. The fabric plate 110 is slidably disposed in the sliding channel 3101. In one embodiment, a first sliding groove 3102 is provided on one inner side of the guide bracket 310, and a second sliding groove 3103 is provided on the other inner side of the guide bracket 310. Both the first sliding groove 3102 and the second sliding groove 3103 are connected to the sliding channel 3101. One side of the fabric plate 110 is slidably disposed in the first sliding groove 3102, and the other side of the fabric plate 110 is slidably disposed in the second sliding groove 3103. The sliding direction of the fabric plate 110 relative to the guide bracket 310 is parallel to the sliding direction of the feed pusher plate 410.
[0055] It is understandable that since the material collection trough 430 and the fabric box 300 are detachably connected, the material collection trough 430 can be disassembled separately first, and then the fabric plate 110 can be slid out from the sliding channel 3101, so that different specifications of fabric plate 110 can be replaced, that is, different specifications of fabric module 100 can be replaced to adapt to the requirements of fabric module 100 for materials with different flowability.
[0056] Specifically, the difference between different specifications of the fabric module 100 is reflected in the different circumferential slopes of the formed material pile. That is, when cutting and feeding materials with good flowability, a fabric module 100 with a larger slope can be used to form a material pile; when cutting and feeding materials with poor flowability, a fabric module 100 with a smaller slope can be used. This allows the battery powder feeding device 20 to adapt to the integrated processing of cutting, feeding and forming of materials with different flowability, and also enhances the structural stability of the material pile during the movement or transportation to the material sintering process. This effectively avoids the situation of material slippage and collapse on the periphery of the material pile, and thus prevents the problem of mixing between adjacent material piles. This effectively ensures the quality of subsequent material sintering.
[0057] likeFigure 2 and Figure 3 As shown in FIGS. 1, 2, 3 and 4, in one embodiment, the material distribution assembly 400 further comprises a vibrating block 440 fixedly installed on the outer wall of the material distribution box 300. In this way, the poor flowability of the material can be assisted by starting the vibrating block 440 to facilitate the material to be discharged, thereby improving the rate of material discharge and the density and consistency of the material filled into the material pile mold cavity 1201.
[0058] It should be noted that in the present embodiment, the vibrating block 440 is a pneumatic vibrator, and the pneumatic vibrator is a prior art which will not be described in detail herein. It should be understood by those skilled in the art that the vibrating block 440 can also be other types of vibrators.
[0059] As shown in FIGS. 1, 2, 3 and 4, in one embodiment, the battery powder discharging device 20 further comprises a lifting platform (not shown in the drawings), which is located below the material distribution box 300 and is used to drive the lifting of the sagger 200 or the lowering of the sagger 200. Figure 2 Figure 3 It should be understood that when the sagger needs to be filled with material, the sagger 200 is lifted by the lifting platform until the bottom of the sagger 200 abuts against the bottom of the plurality of material distribution molds 120a; after the sagger is filled with material, the sagger 200 is lowered by the lifting platform so that the material pile is separated from the material pile mold cavity 1201.
[0060] It should be understood that when the sagger needs to be filled with material, the sagger 200 is lifted by the lifting platform until the bottom of the sagger 200 abuts against the bottom of the plurality of material distribution molds 120a; after the sagger is filled with material, the sagger 200 is lowered by the lifting platform so that the material pile is separated from the material pile mold cavity 1201.
[0061] The working principle of the battery powder discharging device 20 is as follows: start the sagger to be filled with material, start the lifting platform to drive the sagger 200 to be lifted, and stop the lifting platform when the bottom of the sagger 200 abuts against the bottom of the material distribution mold 120a; open the disc valve 530, and the material is stored in the discharging inner cavity 301 through the feeding assembly 500; close the disc valve 530, start the discharging driving member 420 and the vibrating block 440, and drive the discharging push plate 410 to scrape the material in the discharging inner cavity 301 into the plurality of guide openings 1101, and the material storage and scraping discharging steps are repeated for multiple times until the plurality of material pile mold cavities 1201 are filled with material; after the sagger is filled with material, start the lifting platform to drive the sagger 200 to be lowered, and the material pile is separated from the material pile mold cavity 1201.
[0062] Compared with the prior art, the present application has at least the following advantages:
[0063] 1. The material in the inner cavity 301 can flow through the guide port 1101 and fill the material pile mold cavity 1201, thereby directly realizing the segmentation and feeding through the material distribution mold group 120, and directly forming multiple material piles through the material pile mold cavity 1201, thus achieving integrated processing of material pile segmentation, feeding and forming; and, the cross-sectional area of each material pile mold cavity 1201 increases from top to bottom, so that the material pile formed by the material pile mold cavity 1201 has a slope on the periphery, which can better enhance the structural stability of the material pile during the movement or transportation to the material sintering process, thereby effectively avoiding the situation of material slippage and collapse on the periphery of the material pile, and thus preventing the problem of mixing between adjacent material piles.
[0064] 2. By distributing multiple feed inlets 1101 and multiple cloth molds 120a in a rectangular array, the shape of the square sagger 200 can be better matched, resulting in better uniformity of the distribution of multiple material piles after segmentation within the square sagger 200 cavity, thereby effectively ensuring the consistency of sintering of multiple material piles.
[0065] 3. The opening width at the other end of the feeding channel 5201 matches the width in the sliding direction of the feeding pusher plate 410, so that the material flows through the feeding channel 5201 and enters the feeding cavity 301 with good uniformity, so that the subsequent feeding pusher plate 410 can quickly and evenly scrape the material into multiple guide ports 1101 at the same time, thereby effectively improving the feeding efficiency of the cloth assembly 400.
[0066] 4. When cutting materials with good flowability, a cloth module 100 with a large slope can be used to form a material pile; when cutting materials with poor flowability, a cloth module 100 with a small slope can be used, so that the battery powder feeding device 20 can be adapted to the integrated processing of cutting, feeding and forming of materials with different flowability.
[0067] The embodiments described above are merely illustrative of several implementations of this utility model, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.
Claims
1. A cloth dividing integrated template structure (10) characterized by, The application relates to a cloth feeding module (100) for fixed installation below a cloth box (300), which comprises a cloth plate body (110) and a cloth mold group (120); the cloth mold group (120) comprises a plurality of cloth molds (120a), each cloth mold (120a) is arranged below the cloth plate body (110), the cloth plate body (110) is provided with a plurality of material guide openings (1101), each material guide opening (1101) is used for communication with a discharging inner cavity (301) of the cloth box (300), each cloth mold (120a) is provided with a material pile mold cavity (1201), the material pile mold cavity (1201) of each cloth mold (120a) is communicated with the corresponding material guide opening (1101), and the bottom of each cloth mold (120a) is used for abutting against a pot bottom of a sagger (200); the cloth mold group (120) is used for dividing discharging, a material pile is formed in each material pile mold cavity (1201), and the cross-sectional area of each material pile mold cavity (1201) gradually increases from top to bottom. The plurality of cloth molds (120a) are arranged in an array, the plurality of material guide openings (1101) are arranged in one-to-one correspondence with the plurality of cloth molds (120a), and the plurality of cloth molds (120a) are fixedly connected with the cloth plate body (110).
2. The fabric-segmenting integrated template structure (10) according to claim 1, characterized in that The plurality of cloth molds (120a) are welded with the cloth plate body (110); and / or, 3. The fabric-segmenting integrated template structure (10) according to claim 2, characterized in that The plurality of cloth molds (120a) are arranged in a rectangular array; and / or, There is a separation gap between adjacent two cloth molds (120a); and / or, The outer peripheral wall of each cloth mold (120a) is a table body structure. The application relates to a cloth feeding module (100) for fixed installation below a cloth box (300), which comprises a cloth plate body (110) and a cloth mold group (120); the cloth mold group (120) comprises a plurality of cloth molds (120a), each cloth mold (120a) is arranged below the cloth plate body (110), the cloth plate body (110) is provided with a plurality of material guide openings (1101), each material guide opening (1101) is used for communication with a discharging inner cavity (301) of the cloth box (300), each cloth mold (120a) is provided with a material pile mold cavity (1201), the material pile mold cavity (1201) of each cloth mold (120a) is communicated with the corresponding material guide opening (1101), and the bottom of each cloth mold (120a) is used for abutting against a pot bottom of a sagger (200); the cloth mold group (120) is used for dividing discharging, a material pile is formed in each material pile mold cavity (1201), and the cross-sectional area of each material pile mold cavity (1201) gradually increases from top to bottom.
4. A battery powder discharging device (20) characterized by comprising: The plurality of cloth molds (120a) are arranged in an array, the plurality of material guide openings (1101) are arranged in one-to-one correspondence with the plurality of cloth molds (120a), and the plurality of cloth molds (120a) are fixedly connected with the cloth plate body (110).
5. The battery powder dispensing device (20) according to claim 4, characterized in that The plurality of cloth molds (120a) are welded with the cloth plate body (110); and / or, The plurality of cloth molds (120a) are arranged in a rectangular array; and / or, There is a separation gap between adjacent two cloth molds (120a); and / or, The outer peripheral wall of each cloth mold (120a) is a table body structure. The application relates to a cloth feeding module (100) for fixed installation below a cloth box (300), which comprises a cloth plate body (110) and a cloth mold group (120); the cloth mold group (120) comprises a plurality of cloth molds (120a), each cloth mold (120a) is arranged below the cloth plate body (110), the cloth plate body (110) is provided with a plurality of material guide openings (1101), each material guide opening (1101) is used for communication with a discharging inner cavity (301) of the cloth box (300), each cloth mold (120a) is provided with a material pile mold cavity (1201), the material pile mold cavity (1201) of each cloth mold (120a) is communicated with the corresponding material guide opening (1101), and the bottom of each cloth mold (120a) is used for abutting against a pot bottom of a sagger (200); the cloth mold group (120) is used for dividing discharging, a material pile is formed in each material pile mold cavity (1201), and the cross-sectional area of each material pile mold cavity (1201) gradually increases from top to bottom. The battery powder discharging device (20) further comprises a feeding assembly (500), the feeding assembly (500) comprises a feeding pipe (510) and a feeding adapter (520), the feeding adapter (520) is provided with a feeding channel (5201), one end of the feeding pipe (510) is used for communication with a feeding equipment, and the other end of the feeding pipe (510) is communicated with one end of the feeding channel (5201). The cloth box (300) is provided with an inlet (302) at the top of one side adjacent to the discharging driving element (420), and the other end of the feeding channel (5201) is connected with the discharging inner cavity (301) through the inlet (302).
6. The battery powder dispensing device (20) according to claim 5, characterized in that The feeding assembly (500) further comprises a disc valve (530) located at the end of the feeding pipe (510) communicating with the feeding adapter (520), and the disc valve (530) is used for controlling the on-off of the material conveying between the feeding pipe (510) and the feeding adapter (520).
7. The battery powder dispensing device (20) according to claim 4, characterized in that The cloth box (300) is provided with a surplus material channel (303) on the side away from the discharging driving element (420); The cloth assembly (400) further comprises a material collecting groove (430) arranged adjacent to the surplus material channel (303), and the discharging inner cavity (301) is connected with the material collecting groove (430) through the surplus material channel (303), and the material collecting groove (430) is detachably connected with the cloth box (300).
8. The battery powder dispensing device (20) according to claim 4, characterized in that The cloth box (300) is provided with a guide sliding support (310) below, and the guide sliding support (310) is provided with a sliding channel (3101), and the cloth plate body (110) is slidingly arranged in the sliding channel (3101).
9. The battery powder dispensing device (20) according to claim 8, characterized in that One side of the guide sliding support (310) is provided with a first sliding groove (3102), and the other side of the guide sliding support (310) is provided with a second sliding groove (3103), and the first sliding groove (3102) and the second sliding groove (3103) are connected with the sliding channel (3101), and one side of the cloth plate body (110) is slidingly arranged in the first sliding groove (3102), and the other side of the cloth plate body (110) is slidingly arranged in the second sliding groove (3103), and the sliding direction of the cloth plate body (110) relative to the guide sliding support (310) is parallel to the sliding direction of the discharging push plate (410).
10. The battery powder dispensing device (20) according to claim 4, characterized in that The cloth assembly (400) further comprises a vibrating block (440) fixedly installed on the outer wall of the cloth box (300); and / or, The battery powder discharging device (20) further comprises a lifting platform located below the cloth box (300), and the lifting platform is used for driving the sagger (200) to lift or descend.
Citation Information
Patent Citations
Bowl-filling and dicing device for lithium battery cathode material
CN212760595U