Graphite shaping cutter head structure and equipment thereof

By adopting a cambered transition cutter head design and a sweeping structure in graphite shaping equipment, the problem of traditional cutter heads breaking up microcrystalline graphite is solved, more efficient graphite spheroidization and particle size control are achieved, and the quality of graphite materials is improved.

CN223326699UActive Publication Date: 2025-09-12SHENZHEN BTR NEW ENERGY TECH RES INST CO LTD
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Patent Information

Application Number
CN202422697752.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-05
Publication Date
2025-09-12
Estimated Expiration
2034-11-05

AI Technical Summary

Technical Problem

In traditional graphite shaping equipment, the sharp edges of the turntable cutter head easily break the microcrystalline graphite particles during high-speed striking, resulting in unsatisfactory spheroidization effect and difficult to control particle size distribution, affecting the quality of the graphite material.

Method used

The graphite shaping cutter head structure with a curved surface transition design on the outer surface of the cutter head is combined with a sweeping part and a throwing structure to achieve spherical processing through the friction and collision between the cutter head and the microcrystalline graphite, avoiding the breakage of the graphite by sharp edges.

Benefits of technology

It effectively reduces the breakage rate of microcrystalline graphite, improves the spheroidization effect of graphite particles and the stability of particle size distribution, and improves the quality of graphite materials.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of graphite processing, and discloses a graphite shaping cutter head structure and equipment thereof, the cutter head structure comprises a turntable, a plurality of cutter bars and cutter heads, the cutter bars are detachably and uniformly mounted on the turntable, each cutter bar protrudes out of the outer surface of the turntable, each cutter bar is fixedly provided with the cutter head, and the outer surface of each cutter head is in cambered surface transition. The outer surface of the tool bit is arranged to be the cambered surface, so that when the tool bit makes contact with microcrystalline graphite, the effect of smashing the microcrystalline graphite is reduced when the round cambered surface makes contact with the microcrystalline graphite, the tool bit rotates at a high speed to collide with the microcrystalline graphite, and the microcrystalline graphite is driven to conduct friction collision, so that redundant edges and corners are removed; and the purpose of spheroidizing shaping is achieved.
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Description

Technical Field

[0001] The present application relates to the field of graphite processing, and in particular to a graphite shaping cutter disc structure and equipment thereof. Background Art

[0002] In the field of graphite shaping equipment, traditional graphite particle shaping equipment relies primarily on a motor drive system. This system efficiently transmits power to the main shaft through a pulley and belt transmission, which in turn drives the shaping turntable at high speed. The shaping turntable, as a core component, typically consists of a rotating main disc and multiple disc cutters.

[0003] During the shaping process, the rotating disc blade strikes the microcrystalline graphite particles at high speed. Through friction between the particles and the inner wall of the cylinder, as well as between the particles themselves, the edges and corners are removed, ultimately achieving a stable spherical shape. However, the traditional square rigid metal blade design has obvious flaws. Its sharp edges easily break the microcrystalline graphite particles during the high-speed impact, resulting in unsatisfactory sphericalization and difficult to control particle size distribution, which seriously affects the quality of the graphite material and subsequent applications. Utility Model Content

[0004] In view of this, the purpose of this application is to overcome the deficiencies in the prior art and provide a graphite shaping cutter disc structure and equipment thereof.

[0005] To achieve the above objectives, the technical solutions adopted in this application are as follows:

[0006] This application provides:

[0007] A graphite shaping cutter disc structure, the cutter disc structure comprising:

[0008] turntable;

[0009] A plurality of knife bars, each of which is detachably mounted on the turntable and protrudes from the outer surface of the turntable;

[0010] A cutter head is fixedly arranged on each of the cutter rods, and the outer surface of each cutter head is subjected to an arc surface transition.

[0011] Furthermore, the cutter head protrudes from the end surface of the turntable, and the cross-section of the cutter head gradually decreases along a first preset direction.

[0012] Furthermore, the included angle α between each of the tool rods and the tangent line of the outer circumference of the turntable satisfies: 30°≤α≤60°.

[0013] Furthermore, a plurality of sweeping members are provided on the end surface of the turntable away from the protruding direction of the cutter head, and the angle β between each sweeping member and the tangent line of the outer circumference of the turntable is satisfied: 30°≤β≤60°.

[0014] Furthermore, a mounting hole is provided through the center of the turntable, and a material throwing structure is provided at the circular opening of the mounting hole. The material throwing structure includes a mounting plate fixedly mounted on the turntable, and a plurality of material throwing parts are provided on the end face of the mounting plate.

[0015] The present application provides a graphite shaping device, comprising:

[0016] Cutter disc structure;

[0017] A driving device, the driving device is used to drive the cutter disc structure to rotate, and the power output end of the driving device is connected to any of the above-mentioned cutter disc structures;

[0018] A shaping cylinder, wherein the shaping cylinder has a top cover, and the cutter disc structure is located inside the shaping cylinder;

[0019] A feed inlet, the feed inlet being arranged on the top cover;

[0020] A discharge port is provided on the outer wall of the shaping cylinder.

[0021] Furthermore, the driving device includes:

[0022] a first rotary drive member;

[0023] a rotating shaft connected to the turntable;

[0024] A transmission belt is provided between the output shaft of the first rotary drive member and the rotating shaft, and the transmission belt is used for the first rotary drive member to drive the rotating shaft to rotate.

[0025] Furthermore, a scraper structure is provided in the shaping cylinder, and the scraper structure includes a second rotating drive member fixedly mounted on the top cover, the rotating end of the second rotating drive member penetrates into the interior of the shaping cylinder and a driven shaft is fixedly mounted on the rotating end of the second rotating drive member, and a scraper is fixedly mounted on the driven shaft.

[0026] Furthermore, an opening cover structure is provided between the outer wall of the shaping cylinder and the top cover, and the opening cover structure includes a first connecting seat fixedly mounted on the outer wall of the shaping cylinder, a lifting member is mounted on the first connecting seat, a second connecting seat is fixedly mounted on the top cover, and the telescopic end of the lifting member is connected to the second connecting seat.

[0027] Furthermore, a plurality of fastening structures are provided between the outer wall of the shaping cylinder and the top cover, the fastening structure including a first mounting seat fixedly provided on the outer wall of the shaping cylinder, the first mounting seat being hingedly provided with a connecting rod, a second mounting seat being fixedly provided on the top cover, an avoidance groove being penetrated through the second mounting seat, the connecting rod being able to penetrate into the avoidance groove, a fastener being installed on the connecting rod, and a handle being installed on the outer wall of the avoidance groove.

[0028] The present application sets the outer surface of the cutter head into an arc surface, so that when it comes into contact with the microcrystalline graphite, the rounded arc surface reduces the effect of crushing the microcrystalline graphite. The cutter head rotates at high speed to collide with the microcrystalline graphite and drives the microcrystalline graphite to rub and collide with each other, thereby removing excess edges and corners and achieving the purpose of spherical shaping.

[0029] In order to make the above-mentioned objects, features and advantages of the present application more obvious and easy to understand, preferred embodiments are given below and described in detail with reference to the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS

[0030] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following is a brief introduction to the drawings required for use in the embodiments. It should be understood that the following drawings only show certain embodiments of the present application and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without creative work.

[0031] Figure 1 Shows a three-dimensional schematic diagram of the cutter head structure of the present application;

[0032] Figure 2 A bottom view of the cutter head structure of the present application is shown;

[0033] Figure 3 A schematic top view of the cutter head structure of the present application is shown;

[0034] Figure 4 A three-dimensional schematic diagram of the plastic surgery device of the present application from a first viewing angle is shown;

[0035] Figure 5 A schematic cross-sectional view of the shaping device of the present application is shown;

[0036] Figure 6 A three-dimensional schematic diagram of the plastic surgery device of the present application from a second viewing angle is shown;

[0037] Figure 7 Shows this application Figure 6 Enlarged schematic diagram of point A in the middle.

[0038] Description of main component symbols:

[0039] 100-cutter disc structure; 110-turntable; 120-cutter rod; 130-cutter head; 140-material sweeping part; 150-mounting hole; 160-material throwing structure; 161-mounting plate; 162-material throwing part; 200-driving device; 210-first rotating driving part; 220-rotating shaft; 230-transmission belt; 300-shaping cylinder; 400-feed port; 500-discharge port; 600-scraping structure; 610-second rotating driving part; 620-driven shaft; 630-scraper; 700-opening structure; 710-first connecting seat; 720-lifting part; 730-second connecting seat; 800-fastening structure; 810-first mounting seat; 820-connecting rod; 830-second mounting seat; 840-avoidance groove; 850-fastener; 860-handle. DETAILED DESCRIPTION

[0040] The following describes in detail embodiments of the present application. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present application and are not to be construed as limiting the present application.

[0041] In the description of the present application, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise", "axial", "radial", "circumferential" and the like indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be understood as a limitation on the present application.

[0042] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of the technical features being referred to. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of the features. Throughout the description of this application, "plurality" means two or more, unless otherwise specifically defined.

[0043] In this application, unless otherwise expressly specified or limited, terms such as "mounted," "connected," "connect," and "fixed" should be understood in a broad sense. For example, they may refer to fixed connections, detachable connections, or integration; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; and internal connections between two components or interactions between two components. Those skilled in the art will understand the specific meanings of these terms in this application based on specific circumstances.

[0044] In this application, unless otherwise expressly specified or limited, when a first feature is "above" or "below" a second feature, it may mean that the first and second features are in direct contact, or the first and second features are in indirect contact through an intermediate medium. Furthermore, when a first feature is "above," "above," or "above" a second feature, it may mean that the first feature is directly above or diagonally above the second feature, or simply means that the first feature is at a higher level than the second feature. When a first feature is "below," "below," or "below" a second feature, it may mean that the first feature is directly below or diagonally below the second feature, or simply means that the first feature is at a lower level than the second feature.

[0045] Example:

[0046] In the field of microcrystalline graphite shaping equipment, during the shaping process, the turntable cutter head hits the microcrystalline graphite particles at high speed, and the friction between the particles and the inner wall of the cylinder and between the particles is used to remove the edges and corners, and finally the graphite particles are stably sphericalized; the existing turntable cutter head has sharp edges and corners, and the sharp edges and corners can easily break the microcrystalline graphite when in contact with the microcrystalline graphite, thus preventing it from forming a spherical shape. For this reason, the present application makes an arc transition on the outer surface of the cutter head 130. The surface of the cutter head 130 is an arc surface. Compared with sharp edges and corners, the arc surface is not easy to break the microcrystalline graphite when it hits it, and it is easier for the microcrystalline graphite particles to rub against each other, and drive the particles to rub against the inside of the cylinder to form a spherical shape, thereby meeting the needs.

[0047] Specifically, the present application provides a graphite shaping cutter disc structure, wherein the cutter disc structure 100 includes a rotating disc 110 , a plurality of cutter rods 120 and a cutter head 130 .

[0048] The tool rods 120 are detachably and evenly mounted on the turntable 110 . Each tool rod 120 protrudes from the outer surface of the turntable 110 . A tool head 130 is fixedly mounted on each tool rod 120 . The outer surface of each tool head 130 is cambered.

[0049] See Figure 1As shown, the turntable 110 is connected to the driving device 200 in the graphite shaping equipment, and the driving device 200 drives the turntable 110 to rotate, thereby enabling the knife rod 120 and the knife head 130 to rotate at high speed. Specifically, when the knife head 130 is driven by the high-speed rotation of the turntable 110, the knife head 130 will collide with the microcrystalline graphite particles, and transfer kinetic energy to the microcrystalline graphite particles through the collision, thereby driving friction and collision between the microcrystalline graphite and between the microcrystalline graphite and the inner wall of the shaping cylinder 300. During the friction and collision process, the microcrystalline graphite gradually transforms into a spherical shape.

[0050] In this embodiment, the outer surface of the cutter head 130 is set to an arc surface, thereby reducing the effect of the cutter head 130 on the microcrystalline graphite crushing when colliding with the microcrystalline graphite particles, preventing the microcrystalline graphite from being crushed too small to form a sphere and unable to meet the needs.

[0051] In this embodiment, the knife rod 120 and the knife head 130 are integrally formed, or they can be split. In the split type, the knife rod 120 and the knife head 130 can be connected by bolts. Of course, other methods can also be used for connection, as long as the connection can be achieved. There is no specific limitation here. In this embodiment, the knife rod 120 and the turntable 110 are detachably connected. The knife rod 120 can be connected to the turntable 110 by bolt connection or other methods. Specifically, the turntable 110 is provided with corresponding threaded holes and the knife rod 120 is provided with corresponding through holes. During installation, the through holes on the knife rod 120 are aligned with the threaded holes on the turntable 110, and then the bolts are passed through the through holes to the threaded holes. The installation of the knife rod 120 and the knife head 130 can be completed by screwing the bolts into the threaded holes.

[0052] The cutter head 130 protrudes from the end surface of the turntable 110 , and the cross section of the cutter head 130 gradually decreases along the first preset direction.

[0053] Continue reading Figures 1 to 3 As shown, the cutter head 130 is in the shape of a rod that is narrow at the top and wide at the bottom, and is a trapezoid when viewed from the side. In this embodiment, the first preset direction is the up and down height direction, that is, the cross-section of the cutter head 130 gradually becomes smaller from bottom to top. When the cutter head 130 rotates at high speed and collides with the microcrystalline graphite particles, the cutter head 130 is likely to undergo a certain deformation. If the cutter head 130 is deformed, it is likely to collide with the inner wall of the shaping cylinder 300. For this reason, the cutter head 130 is set to a shape that is narrow at the top and wide at the bottom. Even if the top of the cutter head 130 is deformed to a certain extent, the space reserved by the narrow part of the cutter head 130 can make up for the deformation distance, so that the cutter head 130 will not collide with the inner wall of the shaping cylinder 300.

[0054] The included angle α between each cutter bar 120 and the tangent line of the outer circumference of the rotary disk 110 satisfies the following conditions: 30°≤α≤60°.

[0055] See Figure 3 In this embodiment, in order to make the cutter head 130 collide and rub against the inner wall of the shaping cylinder 300 after colliding with the microcrystalline graphite, the cutter rod 120 is tilted at a certain angle. Specifically, the tangent angle α between the cutter rod 120 and the turntable 110 is between 30° and 60°. As the cutter rod 120 and the cutter head 130 rotate at high speed, the microcrystalline graphite will be knocked away from the center of the turntable 110 after colliding with the cutter head 130, so that it can be moved toward the inner wall of the shaping cylinder 300, so that the microcrystalline graphite The ink rubs against the inner wall of the shaping cylinder 300. It should be noted that when the microcrystalline graphite rubs against the inner wall of the shaping cylinder 300, friction will also occur between the microcrystalline graphites due to mutual contact, thereby gradually causing the microcrystalline graphite particles to gradually transform into spherical shapes; in this embodiment, the angle α can be selected to be 30°, 35°, 40°, 45°, 50°, 55°, 60°, etc., and can be adaptively adjusted according to the actual rotation speed, microcrystalline graphite particle size, etc. The specific angle is not limited here.

[0056] A plurality of sweeping members 140 are provided on the end surface of the turntable 110 that is away from the cutting head 130 , and the angle β between each sweeping member 140 and the tangent line of the outer circumference of the turntable 110 is satisfied: 30°≤β≤60°.

[0057] See Figure 2 As shown, in order to ensure that the spherical microcrystalline graphite is shaped each time, the sweeping member 140 at the bottom of the turntable 110 drives the spherical microcrystalline graphite to move toward the discharge port 500 of the shaping device, and is finally discharged from the discharge port 500.

[0058] In this embodiment, the sweeping piece 140 is in the shape of a long strip or a long block, and the sweeping piece 140 rotates together with the turntable 110. As the sweeping piece 140 rotates, the spherical microcrystalline graphite located in the shaping cylinder 300 moves toward the discharge port 500. Specifically, the sweeping piece 140 is also tilted, and the angle β between the sweeping piece 140 and the tangent of the turntable 110 can be selected to be 30°, 35°, 40°, 45°, 50°, 55°, 60°, etc. In practice, it can be designed and selected according to needs, and there is no limitation here.

[0059] A mounting hole 150 is provided through the center of the turntable 110 , and a material throwing structure 160 is provided at the outer circular opening of the mounting hole 150 . The material throwing structure 160 includes a mounting plate 161 fixedly mounted on the turntable 110 , and a plurality of material throwing parts 162 are provided on the end face of the mounting plate 161 .

[0060] Please continue reading Figure 2As shown, since there is a mounting hole 150 in the middle of the turntable 110, the mounting hole 150 is mainly used to connect to the drive device 200 for transmission. For this reason, the mounting hole 150 position usually needs to be sealed. In order to prevent the powder generated during the external microcrystalline graphite shaping process from entering the mounting hole 150 and the position where the rotating shaft 220 is rotatably connected to the shaping cylinder 300, it is necessary to keep these powder particles away from the mounting hole 150 position. For this reason, a material throwing structure 160 is provided at the original position of the outer periphery of the mounting hole 150. Specifically, the material throwing piece 162 is connected to the turntable 110 through the mounting plate 161. Furthermore, the material throwing piece 162 is also tilted. The specific angle can be set according to actual needs and is not limited here.

[0061] In this embodiment, the material-removing member 162 is a guide plate.

[0062] This embodiment also discloses a graphite shaping device, which includes a cutter head structure 100, a driving device 200, a shaping cylinder 300, a feed port 400, and a discharge port 500.

[0063] The driving device 200 is used to drive the cutter disc structure 100 to rotate. The power output end of the driving device 200 is connected to any of the above-mentioned cutter disc structures 100. The shaping cylinder 300 has a top cover. The cutter disc structure 100 is located inside the shaping cylinder 300. The feed port 400 is arranged on the top cover, and the discharge port 500 is arranged on the outer wall of the shaping cylinder 300.

[0064] See Figure 4 and Figure 5 As shown, the drive device 200 drives the cutter disc structure 100 located in the shaping cylinder 300 to rotate, and the rotation of the cutter disc structure 100 collides with the microcrystalline graphite particles located in the shaping cylinder 300, thereby driving friction between the microcrystalline graphite and between the microcrystalline graphite and the inner wall of the shaping cylinder 300, so that the microcrystalline graphite gradually transitions to a spherical shape.

[0065] In this embodiment, the microcrystalline graphite raw material enters the shaping cylinder 300 from the feed port 400 , and the finally formed spherical microcrystalline graphite is discharged through the discharge port 500 .

[0066] The driving device 200 includes a first rotating driving member 210, a rotating shaft 220 and a transmission belt 230. The rotating shaft 220 is connected to the turntable 110. The transmission belt 230 is arranged between the output shaft of the first rotating driving member 210 and the rotating shaft 220. The transmission belt 230 is used for the first rotating driving member 210 to drive the rotating shaft 220 to rotate.

[0067] Continue reading Figure 5The rotating shaft 220 is rotatably installed at the bottom of the shaping cylinder 300 and penetrates into the inside of the shaping cylinder 300. The shaping cylinder 300 is located on the base, and the first rotating drive member 210 is also installed on the base; the transmission belt 230 is connected to the power output end of the first rotating drive member 210 and the power input end connected to the rotating shaft 220. The power of the first rotating drive member 210 is transmitted to the rotating shaft 220 through the transmission belt 230, thereby driving the rotating shaft 220 to rotate, and then driving the cutter head structure 100 to rotate.

[0068] In this embodiment, the first rotary drive member 210 is a motor, and the transmission belt 230 can be a V-belt, a flat belt, a synchronous belt, etc. The specific type can be selected according to actual needs and is not limited here.

[0069] A scraper structure 600 is provided in the shaping cylinder 300, and the scraper structure 600 includes a second rotating drive member 610 fixedly mounted on the top cover, the rotating end of the second rotating drive member 610 penetrates into the shaping cylinder 300 and a driven shaft 620 is fixedly mounted on the rotating end of the second rotating drive member 610, and a scraper 630 is fixedly mounted on the driven shaft 620.

[0070] See Figure 5 As shown, in order to prevent the microcrystalline graphite powder from adhering to the inner wall of the shaping cylinder 300, it is necessary to clean the inner wall of the shaping cylinder 300. Specifically, the power from the second rotating drive member 610 is transmitted to the scraper 630 in the shaping cylinder 300 through the driven shaft 620, thereby driving the scraper 630 to rotate. The scraper 630 contacts the inner wall of the shaping cylinder 300. As the scraper 630 rotates, the powder and the like are peeled off from the inner wall of the shaping cylinder 300, thereby maintaining the cleanliness of the inner wall of the shaping cylinder 300.

[0071] Illustratively, the second rotation driving member 610 is a motor.

[0072] An opening cover structure 700 is provided between the outer wall of the shaping cylinder 300 and the top cover. The opening cover structure 700 includes a first connecting seat 710 fixedly mounted on the outer wall of the shaping cylinder 300, a lifting member 720 is mounted on the first connecting seat 710, a second connecting seat 730 is fixedly mounted on the top cover, and the telescopic end of the lifting member 720 is connected to the second connecting seat 730.

[0073] See Figure 6 As shown, the second connecting seat 730 is lifted by the lifting member 720, thereby driving the top cover to separate from the shaping cylinder 300 and releasing the closure of the opening of the shaping cylinder 300. In this embodiment, after the top cover is lifted, it can also be rotated relative to the lifting member 720 to separate from the opening position of the shaping cylinder 300, thereby facilitating manual replacement of the cutter head 130 in the cutter disc structure 100.

[0074] A plurality of fastening structures 800 are arranged between the outer wall of the shaping cylinder 300 and the top cover. The fastening structure 800 includes a first mounting seat 810 fixedly arranged on the outer wall of the shaping cylinder 300. The first mounting seat 810 is hingedly installed with a connecting rod 820. A second mounting seat 830 is fixedly arranged on the top cover. An avoidance groove 840 is penetrated through the second mounting seat 830. The connecting rod 820 can be deeply inserted into the avoidance groove 840. A fastener 850 is installed on the connecting rod 820, and a handle 860 is installed on the outer wall of the avoidance groove 840.

[0075] See Figure 6 and Figure 7 As shown, when the top cover is connected to the shaping cylinder 300, in order to ensure the closure of the opening of the shaping cylinder 300, after the top cover covers the opening of the shaping cylinder 300, each connecting rod 820 is rotated to the inside of the corresponding avoidance groove 840, and then the fastener 850 is rotated to connect it to the connecting rod 820. After the fastener 850 is screwed a certain distance, its end will be close to the surface of the second mounting seat 830. As the fastener 850 continues to be screwed, the force acting on the second mounting seat 830 will gradually increase, thereby increasing the bonding force between the top cover and the shaping cylinder 300, and the top cover realizes the closure of the opening of the shaping cylinder 300.

[0076] In this embodiment, in order to make the screwing of the fastener 850 more convenient and labor-saving, a handle 860 can be provided on the outer surface of the fastener 850. When the fastener 850 needs to be rotated, it is only necessary to hold the handle 860 to drive the fastener 850 to rotate.

[0077] For example, the fastener 850 may be a nut or other component that can be screwed and tightened.

[0078] In the description of this specification, the description with reference to the terms "one embodiment", "some embodiments", "example", "specific example", or "some examples" means that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present application. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner. In addition, those skilled in the art can combine and combine different embodiments or examples described in this specification and features of different embodiments or examples without contradiction.

[0079] Although the embodiments of the present application have been shown and described above, it can be understood that the above embodiments are exemplary and cannot be understood as limitations on the present application. Ordinary technicians in this field can change, modify, replace and modify the above embodiments within the scope of the present application.

Claims

1. A graphite shaping cutter head structure, characterized in that: The cutter head structure (100) comprises: Turntable (110); A plurality of knife rods (120), wherein the knife rods (120) are detachably and evenly mounted on the turntable (110), and each knife rod (120) protrudes from the outer surface of the turntable (110); A cutter head (130) is fixedly provided on each of the cutter rods (120), and the outer surface of each of the cutter heads (130) is subjected to an arc surface transition.

2. The graphite shaping cutter disc structure according to claim 1, characterized in that: The cutter head (130) protrudes from the end surface of the turntable (110), and the cross section of the cutter head (130) gradually becomes smaller along a first preset direction.

3. The graphite shaping cutter disc structure according to claim 1, characterized in that: The included angle α between each of the knife bars (120) and the tangent line of the outer circumference of the rotating disk (110) satisfies the following conditions: 30°≤α≤60°.

4. The graphite shaping cutter disc structure according to claim 1, characterized in that: A plurality of sweeping members (140) are provided on the end surface of the turntable (110) away from the protruding direction of the cutter head (130), and the angle β between each sweeping member (140) and the tangent line of the outer circumference of the turntable (110) is satisfied: 30°≤β≤60°.

5. The graphite shaping cutter disc structure according to claim 1, characterized in that: A mounting hole (150) is provided through the center of the turntable (110), and a material-stripping structure (160) is provided at the outer circumferential opening of the mounting hole (150). The material-stripping structure (160) includes a mounting plate (161) fixedly mounted on the turntable (110), and a plurality of material-stripping parts (162) are provided on the end surface of the mounting plate (161).

6. A graphite shaping device, characterized in that: include: Cutter head structure (100); a driving device (200), the driving device (200) being used to drive the cutter head structure (100) to rotate, the power output end of the driving device (200) being connected to the cutter head structure (100) according to any one of claims 1 to 5; A shaping cylinder (300), wherein the shaping cylinder (300) has a top cover, and the cutter disc structure (100) is located inside the shaping cylinder (300); a feed port (400), the feed port (400) being arranged on the top cover; A discharge port (500) is provided on the outer wall of the shaping cylinder (300).

7. The graphite shaping equipment according to claim 6, characterized in that The driving device (200) comprises: A first rotary driving member (210); a rotating shaft (220), the rotating shaft (220) being connected to the rotating disk (110); A transmission belt (230) is provided between the output shaft of the first rotating driving member (210) and the rotating shaft (220), and the transmission belt (230) is used for the first rotating driving member (210) to drive the rotating shaft (220) to rotate.

8. The graphite shaping equipment according to claim 6, characterized in that A scraper structure (600) is provided in the shaping cylinder (300), and the scraper structure (600) includes a second rotating driving member (610) fixedly mounted on the top cover, the rotating end of the second rotating driving member (610) penetrates into the interior of the shaping cylinder (300), and a driven shaft (620) is fixedly mounted on the rotating end of the second rotating driving member (610), and a scraper (630) is fixedly mounted on the driven shaft (620).

9. The graphite shaping equipment according to claim 6, characterized in that An opening structure (700) is provided between the outer wall of the shaping cylinder (300) and the top cover, and the opening structure (700) includes a first connecting seat (710) fixedly mounted on the outer wall of the shaping cylinder (300), a lifting member (720) being mounted on the first connecting seat (710), and a second connecting seat (730) being fixedly mounted on the top cover, and a telescopic end of the lifting member (720) being connected to the second connecting seat (730).

10. The graphite shaping equipment according to claim 6, characterized in that A plurality of fastening structures (800) are provided between the outer wall of the shaping cylinder (300) and the top cover, and the fastening structures (800) include a first mounting seat (810) fixedly provided on the outer wall of the shaping cylinder (300), a connecting rod (820) being hingedly installed on the first mounting seat (810), a second mounting seat (830) being fixedly provided on the top cover, an avoidance groove (840) being provided through the second mounting seat (830), the connecting rod (820) being able to penetrate into the avoidance groove (840), a fastener (850) being installed on the connecting rod (820), and a handle (860) being installed on the outer wall of the avoidance groove (840).