Microcrystalline graphite granulator
By using a split structure design of the upper and lower granulation molds, combined with the cooperation of lifting drive components and pushing components, the cutting and granulation of microcrystalline graphite is realized, solving the problem of the inability to process in an integrated manner in the existing technology, and improving processing efficiency and product diversity.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CHENZHOU AONENG GRAPHITE NEW MATERIALS CO LTD
- Filing Date
- 2025-02-25
- Publication Date
- 2026-04-10
AI Technical Summary
Existing technologies cannot achieve the integrated function of material cutting and granulation, and cannot efficiently process microcrystalline graphite.
The system employs a split structure of upper and lower granulation molds. Through the cooperation of lifting drive components, pushing components, and limiting sliding components, it achieves the cutting and kneading of microcrystalline graphite into granules, and uses the size of the granulation holes to manufacture microcrystalline graphite particles of different specifications.
This technology integrates the cutting and granulation of microcrystalline graphite, improving processing efficiency and product specification diversity.
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Figure CN224100643U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a kind of microcrystalline graphite granulators, belong to the technical field of granulator. BACKGROUND
[0002] As the application number is: 201711465171.1 discloses a kind of spherical graphite powder granulator, including: shell, its top end is provided with feed inlet;A pair of crushing rollers, it is set in the shell and is located below the feed inlet;Screen, it is set below a pair of crushing rollers, the lowest edge of the shell is connected with the screen and is provided with coarse material outlet;Screen anti-blocking component;Tubular fan impeller, it is set in the shell and is located below the screen, a granulating cylinder is arranged in the tubular fan impeller, the granulating cylinder is composed of a pair of end plates and a plurality of equally spaced granulating plates connected between the pair of end plates, the side shell opposite the circumferential surface of the tubular fan impeller and the other side shell opposite the circumferential surface of the tubular fan impeller form a fine material outlet, the upper part of the side shell opposite the circumferential surface of the tubular fan impeller is provided with air inlet, and the crushing and spheroidization processing effect of graphite is excellent.
[0003] The prior art is provided with a pair of crushing rollers, which are arranged in the shell and located below the feed inlet;Screen, it is set below a pair of crushing rollers, the lowest edge of the shell is connected with the screen and is provided with coarse material outlet;Screen anti-blocking component;Tubular fan impeller, it is set in the shell and is located below the screen, a granulating cylinder is arranged in the tubular fan impeller, the granulating cylinder is composed of a pair of end plates and a plurality of equally spaced granulating plates connected between the pair of end plates, the side shell opposite the circumferential surface of the tubular fan impeller and the other side shell opposite the circumferential surface of the tubular fan impeller form a fine material outlet, the upper part of the side shell opposite the circumferential surface of the tubular fan impeller is provided with air inlet, and the crushing and spheroidization processing effect of graphite is excellent.
[0004] The prior art cannot realize the function of cutting and granulating, therefore, a microcrystalline graphite granulator is needed to improve the above-mentioned deficiencies. INVENTION CONTENTS
[0005] The main purpose of the utility model is to provide a kind of microcrystalline graphite granulator.
[0006] The purpose of the utility model can be achieved by adopting the following technical solutions:
[0007] A kind of microcrystalline graphite granulator, including the upper granulating die and lower granulating die for granulating;
[0008] The upper granulating die is provided with a lower connecting piece, a connecting swing piece, an upper connecting piece, a limiting plate, a lifting driving piece and a connecting plate;
[0009] The upper granulating mold is provided with a lower connecting piece, the lower connecting piece is swingingly provided with a connecting swing piece, the outer end of the connecting swing piece is provided with an upper connecting piece in a telescopic manner, the outer end of the upper connecting piece is provided with a limiting plate, and the limiting plate is provided with a lifting driving piece in a telescopic manner.
[0010] Preferably, the connecting plate is provided with a pushing piece, a limiting sliding piece and a piston rod, the piston rod is arranged on the outer side of the connecting plate and is arranged at the output end of the pushing piece, and the pushing piece is arranged in the limiting sliding piece in a sliding manner.
[0011] Preferably, the upper granulating mold and the lower granulating mold are slid forward and backward to rub the particles before being mutually attached.
[0012] Preferably, the connecting swing piece swings forward and backward along the lower connecting piece and the upper connecting piece.
[0013] Preferably, the limiting sliding piece is connected with the upper granulating mold in a separated manner.
[0014] Preferably, the upper granulating mold and the lower granulating mold are in a split structure.
[0015] The beneficial technical effects of the present application are as follows:
[0016] The microcrystalline graphite granulator provided by the present application corresponds the injection port by installing the upper granulating mold and the lower granulating mold in the limiting shell, drives the upper granulating mold to rise by starting the lifting driving piece after installation, drives the upper granulating mold and the pushing piece to rise and fall along the limiting sliding piece after rising, fixes the limiting sliding piece with the shell, injects the material by the injection part after the opening of the upper granulating mold, drives the upper granulating mold to move downward by the lifting driving piece after the end of injection, cuts the material by the cutting knife during the moving process, rubs and granulates the microcrystalline graphite during the swinging process of the upper granulating mold pulled by the pushing piece after cutting, and the present application can manufacture the microcrystalline graphite particles with different sizes according to the size of the rubbing holes on the upper granulating mold and the lower granulating mold. BRIEF DESCRIPTION OF DRAWINGS
[0017] Figure 1 It is a whole three-dimensional structure schematic view of the device according to the preferred embodiment of the microcrystalline graphite granulator of the present application.
[0018] Figure 2 It is a partial schematic view according to the preferred embodiment of the microcrystalline graphite granulator of the present application.
[0019] Figure 3 It is a whole side view according to the preferred embodiment of the microcrystalline graphite granulator of the present application.
[0020] In the figure: 1, the upper granulating die; 101, the inclined plate; 102, the feeding port; 103, the cutting knife; 104, the lower granulating die; 2, the lower connecting piece; 201, the connecting swing piece; 202, the upper connecting piece; 203, the limiting plate; 204, the lifting driving piece; 205, the connecting plate; 3, the pushing piece; 301, the limiting sliding piece; 302, the piston rod. DETAILED DESCRIPTION
[0021] In order to make the technical scheme of the utility model more clear and explicit for those skilled in the art, the utility model will be described in further detail below in combination with embodiments and drawings, but the implementation manner of the utility model is not limited to this.
[0022] As shown in Figure 1 - Figure 3 The embodiment provides a microcrystalline graphite granulator, which comprises an upper granulating die 1 and a lower granulating die 104 for granulation.
[0023] The upper granulating die 1 is provided with a lower connecting piece 2, a connecting swing piece 201, an upper connecting piece 202, a limiting plate 203, a lifting driving piece 204 and a connecting plate 205.
[0024] The upper granulating die 1 is provided with the lower connecting piece 2, the connecting swing piece 201 is swingably arranged on the lower connecting piece 2, the outer end of the connecting swing piece 201 is provided with the upper connecting piece 202 in a telescopic manner, the outer end of the upper connecting piece 202 is provided with the limiting plate 203, and the lifting driving piece 204 is arranged on the limiting plate 203 in a telescopic manner.
[0025] The connecting plate 205 is provided with a pushing piece 3, a limiting sliding piece 301 and a piston rod 302, the piston rod 302 is arranged on the outer side of the connecting plate 205, the piston rod 302 is arranged at the output end of the pushing piece 3, and the pushing piece 3 is slidably connected in the limiting sliding piece 301.
[0026] The upper granulating die 1 and the lower granulating die 104 slide and rub granulation before and after mutual adhesion.
[0027] The connecting swing piece 201 swings along the lower connecting piece 2 and the upper connecting piece 202.
[0028] The limiting sliding piece 301 is connected separately from the upper granulating die 1.
[0029] The upper granulating die 1 and the lower granulating die 104 are in a split structure.
[0030] As shown in Figure 1 - Figure 3As shown, the working process of the microcrystalline graphite granulator provided in this embodiment is as follows: The upper granulation mold 1 and the lower granulation mold 104 are installed in the limiting housing and correspond to the injection port. After installation, the lifting drive 204 is started to drive the upper granulation mold 1 to rise. After rising, the upper granulation mold 1 and the pusher 3 are driven to rise and fall along the limiting sliding member 301. The limiting sliding member 301 is fixedly connected to the housing. After the upper granulation mold 1 is opened, the material is injected through the injection member. After the material injection is completed, the lifting drive 204 pushes the upper granulation mold 1 to move downward. During the movement, the material is cut by the cutting blade 103. After cutting, the upper granulation mold 1 is pulled back and forth by starting the pusher 3. During the swing, the microcrystalline graphite is kneaded into granules. This device can produce microcrystalline graphite granules of different sizes according to the size of the granulation holes on the upper granulation mold 1 and the lower granulation mold 104.
[0031] Example
[0032] like Figure 1 - Figure 3 As shown, a lower granulation mold 104 is attached to the lower part of the upper granulation mold 1. An inclined plate 101 and a feeding port 102 are respectively installed at both ends of the lower granulation mold 104. A cutting blade 103 is distributed at one side opening of the upper granulation mold 1. A lower connecting member 2 is installed on the upper granulation mold 1. A connecting swing member 201 is oscillatingly installed on the lower connecting member 2. An upper connecting member 202 is installed at the outer end of the connecting swing member 201. A limiting plate 203 is installed on the upper connecting member 202. A lifting drive member 204 is installed on the outer side of the limiting plate 203. A connecting plate 205 is installed on one side of the lower connecting member 2 on the upper granulation mold 1. A piston rod 302 is installed on one side of the connecting plate 205. The piston rod 302 is installed at the output end of the pusher 3. A limiting sliding member 301 is installed at the outer end of the pusher 3.
[0033] The upper granulation mold 1 and the lower granulation mold 104 are installed in the limiting housing and aligned with the injection port. After installation, the lifting drive 204 is activated to lift the upper granulation mold 1. After lifting, the upper granulation mold 1 and the pusher 3 move up and down along the limiting slide 301. The limiting slide 301 is fixedly connected to the housing. After the upper granulation mold 1 is opened, the material is injected through the injection device. After the injection is completed, the lifting drive 204 pushes the upper granulation mold 1 downward. During the movement, the material is cut by the cutting blade 103. After cutting, the upper granulation mold 1 is pulled back and forth by the pusher 3. During the swing, the microcrystalline graphite is kneaded into granules. This device can manufacture microcrystalline graphite granules of different sizes according to the size of the granulation holes on the upper granulation mold 1 and the lower granulation mold 104.
[0034] The above merely illustrates the further embodiments of the present application, but the protection scope of the present application is not limited thereto, any skilled in the art can make equivalent substitutions or changes according to the technical scheme and concept of the present application within the disclosed scope, which all belong to the protection scope of the present application.
Claims
1. A microcrystalline graphite granulator, comprising an upper granulating die (1) and a lower granulating die (104) for granulation; characterized in that A lower connecting piece (2), a connecting swing piece (201), an upper connecting piece (202), a limiting plate (203), a lifting driving piece (204) and a connecting plate (205) are installed on the upper granulating die (1); A lower connecting piece (2) is installed on the upper granulating die (1), a connecting swing piece (201) is swingably installed on the lower connecting piece (2), an upper connecting piece (202) is telescopically installed on the outer end of the connecting swing piece (201), a limiting plate (203) is installed on the outer end of the upper connecting piece (202), and a lifting driving piece (204) is telescopically installed on the limiting plate (203).
2. A microcrystalline graphite pelletizer according to claim 1, characterized in that: A pushing piece (3), a limiting sliding piece (301) and a piston rod (302) are installed on the connecting plate (205), the piston rod (302) is installed on the outer side of the connecting plate (205), the piston rod (302) is installed on the output end of the pushing piece (3), and the pushing piece (3) is slidingly connected in the limiting sliding piece (301).
3. A microcrystalline graphite pelletizer according to claim 2, characterized in that: The upper granulating die (1) and the lower granulating die (104) slide forward and backward before being mutually attached.
4. A microcrystalline graphite pelletizer according to claim 3, characterized in that: The connecting swing piece (201) swings forward and backward along the lower connecting piece (2) and the upper connecting piece (202).
5. A microcrystalline graphite pelletizer according to claim 4, characterized in that: The limiting sliding piece (301) is connected separately from the upper granulating die (1).
6. A microcrystalline graphite pelletizer according to claim 5, characterized in that: The upper granulating die (1) and the lower granulating die (104) are of a split structure.
Citation Information
Patent Citations
High-efficiency spheroidal graphite granulator
CN108128772A