Molecular sieve ball forming mill

By combining the design of rollers, screening mesh barrels and gears in the molecular sieve ball forming machine, efficient screening and ball forming of molecular sieve raw materials is achieved, and the ball forming effect is improved by rotating the spray head, solving the problem of inconvenience in screening and spraying in traditional ball forming machines.

CN222816781UActive Publication Date: 2025-05-02SICHUAN JIATAI HAIFU NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202421791730.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-27
Publication Date
2025-05-02
Estimated Expiration
2034-07-27

AI Technical Summary

Technical Problem

Before putting the traditional molecular sieve ball forming machine, the molecular sieve raw materials need to be screened to remove impurity particles, resulting in the raw materials need to be transported between different equipment, affecting the efficiency of ball forming. In addition, the spray mechanism is fixed in one position, resulting in the spray direction being fixed and other positions cannot be effectively sprayed.

Method used

A molecular sieve ball forming machine is designed, combining the roller, screening mesh barrel and gear. The first motor drives the roller to rotate, and the gear transmission drives the screening mesh barrel to rotate, realizing the screening and ball forming of the molecular sieve raw materials. At the same time, through the combination of rotary joints, connecting pipes and water pumps, spraying at different positions inside the drum is achieved.

Benefits of technology

It realizes efficient screening and ball formation of molecular sieve raw materials during the ball formation process, avoids the transport of raw materials between different equipment, and improves ball formation efficiency. At the same time, effective spraying at different positions is achieved by rotating the spray head, improving the ball-forming effect.

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Abstract

The utility model relates to a molecular sieve ball forming mill which comprises an L-shaped plate body, a first motor is installed on one side of the L-shaped plate body, one side of the first motor penetrates through the L-shaped plate body to be connected with a roller, a screening net cylinder penetrates through one side of the roller, the end, located in the roller, of the screening net cylinder is of an open structure, and a rotating disc is fixed to the end, extending out of the roller, of the screening net cylinder. A first motor is fixed on one side of the inner wall of the roller, a screening net cylinder is arranged in the roller, a first gear penetrates through the outer part of one end, located in the roller, of the screening net cylinder, the penetrating position of the first gear and the screening net cylinder is fixed, and a second gear is fixed on one side of the inner wall of the roller. The rotary drum can drive the screening net drum to rotate through transmission between the gears, so that molecular sieve raw materials are screened through the screening net drum, the screened molecular sieve raw materials enter the rotary drum, the molecular sieve raw materials are balled through rolling of the rotary drum, and the balling mechanism and the screening mechanism are integrally arranged.
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Description

Technical Field

[0001] The utility model relates to the field of molecular sieve pelletizing machines, in particular to a molecular sieve pelletizing machine. Background Art

[0002] Molecular sieve is a synthetic hydrated aluminosilicate or natural zeolite that has the function of screening molecules. It has many channels with uniform pore sizes and neatly arranged holes in its structure. Molecular sieves with different pore sizes separate molecules of different sizes and shapes. When producing molecular sieves, the molecular sieve raw materials need to be placed inside the ball forming machine. Through the rotation of the ball forming machine, the molecular sieve raw materials roll inside the ball forming machine and adhere to each other to make the molecular sieve into a spherical shape.

[0003] According to the published patent 202322546526.7, a molecular sieve ball-forming machine includes a base, a ball-forming rack is arranged on the inner side of the fixed frame, a scraping arc plate is arranged on the inner side of the ball-forming rack, a collecting box is arranged on the other side of the fixed frame, the lower end of the collecting box is fixedly connected to the upper end of the base, a plurality of auxiliary protrusions are evenly fixedly connected to the inner wall of the ball-forming rack, a threaded fixing ring is arranged on the inner side of the ball-forming rack, the threaded fixing ring is threadedly connected to the inner side of the ball-forming rack, and a feed hole is arranged on one side of the ball-forming rack. Through the above structure, a fixing part is fixedly connected to one side of the second electric push rod, and two first electric push rods are symmetrically fixedly connected to the lower end of the fixing part, so that it can be adjusted to extend into the inner side of the ball forming circle to scrape off impurities, and one side of the inner side of the threaded fixing ring is fixedly connected to the inner wall of the ball forming rack, so that it can separate and tighten the ball forming rack, and a plurality of auxiliary protrusions are evenly fixedly connected to the inner wall of the ball forming rack, so that it is convenient to rotate and mix to form balls. In the process of realizing the utility model, the inventor found that at least the following problems in the prior art have not been solved. Although a rotating rod is provided on the inner side of the ball forming rack, a scraping arc plate is fixedly connected to the lower end of the rotating rod, and the scraping arc plate can scrape each other with the inner wall of the ball forming rack, and the other side of the rotating rod is fixedly connected to The second electric push rod has a fixed part fixedly connected to one side of the second electric push rod, and the lower end of the fixed part is symmetrically fixedly connected to two first electric push rods, so that it can be adjusted to extend into the inner side of the ball-forming circle to scrape off impurities. However, during use, the traditional molecular sieve ball-forming machine needs to screen the molecular sieve raw materials before putting them into the ball-forming machine to remove the impurity particles in the molecular sieve raw materials, which causes the molecular sieve raw materials to be transported between different equipment, affecting the efficiency of the molecular sieve raw material ball-forming. Moreover, the spray mechanisms used are all fixed in one position, resulting in a fixed spray direction. During the ball-forming process, only one position is sprayed, and the ball-forming effect at other positions is not very good. For this reason, a new technical solution needs to be designed to solve the problem. Utility Model Content

[0004] The purpose of the utility model is to overcome the deficiencies of the prior art, meet actual needs, and provide a molecular sieve pelletizing machine to solve the current traditional molecular sieve pelletizing machine. Before being placed in the pelletizing machine, the molecular sieve raw materials need to be screened to remove impurity particles in the molecular sieve raw materials, resulting in the molecular sieve raw materials being transported between different equipment, affecting the efficiency of the molecular sieve raw materials pelletizing. Moreover, the spray mechanisms used are fixed in one position, resulting in a fixed spray direction. During the pelletizing process, only one position is sprayed, and the pelletizing effect at other positions is not very good. Technical problem.

[0005] In order to achieve the purpose of the utility model, the technical solution adopted by the utility model is: design a molecular sieve pelletizing machine, including an L-shaped plate body, a first motor is installed on one side of the L-shaped plate body, a drum is connected to one side of the first motor through the L-shaped plate body, a screening mesh cylinder is penetrated on one side of the drum, one end of the screening mesh cylinder located in the drum is an open structure, and a rotating disk is fixed on one end of the screening mesh cylinder extending out of the drum;

[0006] A first gear is passed through the outside of one end of the screening mesh cylinder located in the drum, and the penetration position of the first gear and the screening mesh cylinder is fixed. A second gear is fixed to one side of the inner wall of the drum, and the first gear is meshed with the bottom of the second gear.

[0007] Preferably, a first connecting pipe passes through the inside of the rotating disk and extends into the screening mesh cylinder. One end of the first connecting pipe located in the screening mesh cylinder is a sealed structure. The outside of the first connecting pipe is connected to a plurality of atomizing nozzles. The first connecting pipe and the rotating disk are fixed in position, and the other end of the first connecting pipe is rotatably connected to a rotating joint.

[0008] Preferably, one end of the rotary joint away from the first connecting pipe is fixedly connected to the second connecting pipe, one end of the second connecting pipe away from the rotary joint passes through the movable plate body and extends into the water tank, and a movable plate body is installed on one side of the water tank.

[0009] Preferably, one end of the second connecting pipe located in the water tank is connected to a water pump, and the other end of the water pump is connected to a water pumping pipe.

[0010] Preferably, the top and one side bottom of the water tank are both connected to one end of a tube body, and the other end of the tube body is detachably connected to a tube cover.

[0011] Preferably, a groove is opened on one side of the top of the L-shaped plate body, a threaded rod is arranged inside the groove, a moving block passes through the outside of the threaded rod, and a moving plate body is fixed on the top of the moving block.

[0012] Preferably, one end of the threaded rod passes through the groove and the L-shaped plate to be connected to the second motor, one side of the second motor is fixed with the L-shaped plate, the other end of the threaded rod is rotatably connected to a bearing, and the end of the bearing away from the threaded rod is installed with a groove.

[0013] Preferably, a mounting hole is provided at the front end of the drum, and a cover plate is installed inside the mounting hole.

[0014] Compared with the prior art, the beneficial effects of the utility model are:

[0015] 1. The utility model can put the molecular sieve raw material into the screening mesh cylinder through the combination of the drum, the screening mesh cylinder and the gears. In the process of ball forming, the first motor is used to drive the drum to rotate. The drum drives the screening mesh cylinder to rotate through the transmission between the gears, so that the molecular sieve raw material is screened through the screening mesh cylinder, and the screened molecular sieve raw material enters the drum. The molecular sieve raw material is balled by the rolling of the drum. The ball forming mechanism and the screening mechanism are integrated, and there is no need to set up multiple driving devices. This solves the problem of traditional molecular sieve ball forming machines. Before being put into the ball forming machine, the molecular sieve raw material needs to be screened to remove impurity particles in the molecular sieve raw material, resulting in the molecular sieve raw material being transported between different equipment, affecting the technical problem of the ball forming efficiency of the molecular sieve raw material.

[0016] 2. The utility model combines a rotary joint, a connecting pipe and a water pump, and can utilize the water pump to draw water in the water tank into the connecting pipe and the atomizing nozzle, so as to spray the inside of the drum. During the spraying process, when the net cylinder rotates, it will drive the connecting pipe to rotate through the rotary joint, so that the multiple atomizing nozzles rotate, thereby realizing the spraying of different positions inside the drum, and solving the technical problem that the adopted spray mechanisms are all fixed in one position, resulting in a fixed spray direction, and in the process of ball forming, only one position is sprayed, and the ball forming effect for other positions is not very good. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 It is a schematic diagram of the overall structure of the utility model;

[0018] Figure 2 This is a schematic diagram of the internal structure of the drum and the net drum of the utility model;

[0019] Figure 3 This is a schematic diagram of the internal structure of the water tank of the utility model;

[0020] Figure 4 It is a schematic diagram of the internal structure of the groove of the utility model from a top view.

[0021] In the figure: 1. L-shaped plate; 2. first motor; 201. roller; 202. cover plate; 203. rotating disk; 204. first connecting pipe; 205. rotating joint; 206. second connecting pipe; 207. moving plate; 208. groove; 209. second motor; 210. mesh cylinder; 211. first gear; 212. threaded rod; 213. moving block; 214. bearing; 215. mounting hole; 216. second gear; 3. water tank; 301. pipe body; 302. pipe cover; 303. atomizing nozzle; 304. water pump; 305. water pump. DETAILED DESCRIPTION

[0022] The utility model is further described below in conjunction with the accompanying drawings and embodiments:

[0023] Example 1: A molecular sieve pelletizing machine, see Figures 1 to 4 , including an L-shaped plate body 1, a first motor 2 is installed on one side of the L-shaped plate body 1, a drum 201 is connected to the first motor 2 through the L-shaped plate body 1, a screening mesh cylinder 210 is passed through one side of the drum 201, and the end of the screening mesh cylinder 210 located in the drum 201 is an open structure, and a rotating disk 203 is fixed to the end of the screening mesh cylinder 210 extending out of the drum 201; a first gear 211 is passed through the outside of the end of the screening mesh cylinder 210 located in the drum 201, and the first gear 211 is fixed to the penetration position of the screening mesh cylinder 210, a second gear 216 is fixed on one side of the inner wall of the drum 201, and the first gear 211 is meshed with the bottom of the second gear 216, first put the molecular sieve raw material into the mesh cylinder 210, and after the putting is completed, turn on the first motor 2, and the second gear 216 is meshed with the first gear 211. A motor 2 drives the drum 201 to rotate, and the drum 201 drives the second gear 216 inside to rotate. Since the second gear 216 is meshed with the first gear 211, it drives the first gear 211 and the mesh drum 210 to rotate. The molecular sieve raw material is centrifugally screened out by the rotating mesh drum 210, and the screened molecular sieve raw material enters the drum 201. The molecular sieve raw material is rolled by the drum 201 to be balled. The balling mechanism and the screening mechanism are integrated, and there is no need to set up multiple driving devices. This solves the problem of traditional molecular sieve balling machines. Before being placed in the balling machine, the molecular sieve raw material needs to be screened to remove impurity particles in the molecular sieve raw material, resulting in the molecular sieve raw material being transported between different equipment, affecting the technical problem of the molecular sieve raw material balling efficiency.

[0024] For details, see Figure 2The first connecting pipe 204 runs through the rotating disk 203, and the first connecting pipe 204 extends into the screening net cylinder 210. One end of the first connecting pipe 204 located in the screening net cylinder 210 is a sealed structure. The first connecting pipe 204 is connected to multiple atomizing nozzles 303 outside. The first connecting pipe 204 and the rotating disk 203 are fixed in position. The other end of the first connecting pipe 204 is rotatably connected to a rotating joint 205. During the rotation of the net cylinder 210, the first connecting pipe 204 will be driven to rotate through the rotating joint 205. After the water pump 304 is turned on, the water pump 304 will The water in the water tank 3 is pumped into the second connecting pipe 206 and the first connecting pipe 204, and is sprayed out through the multiple atomizing nozzles 303 outside the first connecting pipe 204. When the net cylinder 210 rotates, it will drive the connecting pipe to rotate through the rotating joint 205, so that the multiple atomizing nozzles 303 rotate, thereby realizing the spraying of different positions inside the drum 201, and solving the technical problem that the adopted spraying mechanism is fixed in one position, resulting in a fixed spray direction. In the process of ball forming, only one position is sprayed, and the ball forming effect at other positions is not very good.

[0025] For more details, see Figure 3 One end of the rotary joint 205 away from the first connecting pipe 204 is fixedly connected to the second connecting pipe 206, and one end of the second connecting pipe 206 away from the rotary joint 205 passes through the movable plate 207 and extends into the water tank 3. The movable plate 207 is installed on one side of the water tank 3.

[0026] For further information, see Figure 3 One end of the second connecting pipe 206 located in the water tank 3 is connected to the water pump 304 , and the other end of the water pump 304 is connected to the pumping pipe 305 .

[0027] It is worth noting that see Figure 1 The top and one side bottom of the water tank 3 are both connected to one end of a tube body 301 , and the other end of the tube body 301 is detachably connected to a tube cover 302 .

[0028] It is worth noting that see Figure 4 A groove 208 is provided on one side of the top of the L-shaped plate body 1 , a threaded rod 212 is provided inside the groove 208 , a moving block 213 passes through the outside of the threaded rod 212 , and a moving plate body 207 is fixed on the top of the moving block 213 .

[0029] It is worth mentioning that see Figure 4One end of the threaded rod 212 passes through the groove 208 and is connected to the L-shaped plate 1 with a second motor 209, one side of the second motor 209 is fixed with the L-shaped plate 1, and the other end of the threaded rod 212 is rotatably connected to a bearing 214, and the end of the bearing 214 away from the threaded rod 212 is installed with a groove 208. When it is necessary to clean the impurities in the net cylinder 210, the second motor 209 can be turned on, and the second motor 209 drives the threaded rod 212, and the threaded rod 212 drives the moving block 213, and the moving block 213 drives the moving plate 207 to move, and the moving plate 207 drives the rotating disk 203 and the net cylinder 210 to move, and the net cylinder 210 is moved out of the drum 201, so that the staff can clean the impurities inside the net cylinder 210 or put new molecular sieve raw materials into the net cylinder 210.

[0030] It is worth emphasizing that see Figure 1 A mounting hole 215 is provided at the front end of the drum 201 , and a cover plate 202 is installed inside the mounting hole 215 .

[0031] When using a molecular sieve ball forming machine, first put the molecular sieve raw material into the mesh drum 210. After the placement is completed, turn on the first motor 2, the first motor 2 drives the drum 201 to rotate, and the drum 201 drives the internal second gear 216 to rotate. Since the second gear 216 is meshed with the first gear 211, it will drive the first gear 211 and the mesh drum 210 to rotate. The molecular sieve raw material is centrifugally screened out by the rotating mesh drum 210, and the screened molecular sieve raw material will enter the drum 201. The molecular sieve raw material is rolled by the drum 201 to form balls. The ball forming mechanism and the screening mechanism are integrated, and there is no need to set up multiple driving devices. During the rotation of the mesh drum 210, it will drive the first connecting pipe 204 to rotate through the rotary joint 205. After turning on the water pump 304, the water pump 304 will pump the water in the water tank 3. The liquid is drawn into the second connecting tube 206 and the first connecting tube 204, and is atomized and sprayed out through the multiple atomizing nozzles 303 outside the first connecting tube 204. When the net cylinder 210 rotates, the connecting tube will be driven to rotate through the rotary joint 205, so that the multiple atomizing nozzles 303 rotate, thereby realizing the spraying of different positions inside the drum 201. When it is necessary to clean the impurities in the net cylinder 210, the second motor 209 can be turned on, and the second motor 209 drives the threaded rod 212, and the threaded rod 212 drives the moving block 213. The moving block 213 drives the moving plate 207 to move, and the moving plate 207 drives the rotating disk 203 and the net cylinder 210 to move, so that the net cylinder 210 is moved out of the drum 201, so that the staff can clean the impurities inside the net cylinder 210 or put new molecular sieve raw materials into the net cylinder 210.

[0032] In addition, the components designed in the present invention are all universal standard parts or components known to technical personnel in the field. Their structures and principles can be known to technical personnel through technical manuals or through conventional experimental methods. They can be fully implemented by technical personnel in the field, and there is no need to elaborate. The content protected by the present invention does not involve improvements to internal structures and methods.

[0033] The embodiments of the present invention disclose preferred embodiments, but are not limited thereto. A person skilled in the art can easily understand the spirit of the present invention based on the above embodiments and make different extensions and changes. However, as long as they do not deviate from the spirit of the present invention, they are all within the protection scope of the present invention.

Claims

1. A molecular sieve pelletizing machine, comprising an L-shaped plate (1), characterized in that: A first motor (2) is installed on one side of the L-shaped plate body (1); one side of the first motor (2) passes through the L-shaped plate body (1) and is connected to a roller (201); a screening mesh cylinder (210) passes through one side of the roller (201); one end of the screening mesh cylinder (210) located inside the roller (201) is an open structure; and one end of the screening mesh cylinder (210) extending outside the roller (201) is fixed with a rotating disk (203); A first gear (211) is inserted through the outside of one end of the screening mesh cylinder (210) located inside the drum (201), and the insertion position of the first gear (211) and the screening mesh cylinder (210) is fixed; a second gear (216) is fixed to one side of the inner wall of the drum (201), and the bottom of the second gear (216) is meshed with the first gear (211).

2. A molecular sieve pelletizing machine as claimed in claim 1, characterized in that: A first connecting pipe (204) penetrates the interior of the rotating disk (203), and the first connecting pipe (204) extends into the screening mesh cylinder (210); one end of the first connecting pipe (204) located in the screening mesh cylinder (210) is a sealed structure; the exterior of the first connecting pipe (204) is connected to a plurality of atomizing nozzles (303); the first connecting pipe (204) and the rotating disk (203) are fixedly penetrated at a position; the other end of the first connecting pipe (204) is rotatably connected to a rotating joint (205).

3. A molecular sieve pelletizing machine as claimed in claim 2, characterized in that: One end of the rotary joint (205) away from the first connecting pipe (204) is fixedly connected to the second connecting pipe (206); one end of the second connecting pipe (206) away from the rotary joint (205) passes through the movable plate (207) and extends into the water tank (3); and the movable plate (207) is installed on one side of the water tank (3).

4. A molecular sieve pelletizing machine as claimed in claim 3, characterized in that: One end of the second connecting pipe (206) located in the water tank (3) is connected to a water pump (304), and the other end of the water pump (304) is connected to a water pumping pipe (305).

5. A molecular sieve pelletizing machine as claimed in claim 3, characterized in that: The top and one side bottom of the water tank (3) are both connected to one end of a tube body (301), and the other end of the tube body (301) is detachably connected to a tube cover (302).

6. A molecular sieve pelletizing machine as claimed in claim 1, characterized in that: A groove (208) is provided on one side of the top of the L-shaped plate body (1), a threaded rod (212) is provided inside the groove (208), a moving block (213) passes through the outside of the threaded rod (212), and a moving plate body (207) is fixed on the top of the moving block (213).

7. A molecular sieve pelletizing machine as claimed in claim 6, characterized in that: One end of the threaded rod (212) passes through the groove (208) and the L-shaped plate (1) to be connected to a second motor (209); one side of the second motor (209) is fixed to the L-shaped plate (1); the other end of the threaded rod (212) is rotatably connected to a bearing (214); and the groove (208) is installed at one end of the bearing (214) away from the threaded rod (212).

8. A molecular sieve pelletizing machine as claimed in claim 1, characterized in that: The front end of the drum (201) is provided with a mounting hole (215), and a cover plate (202) is installed inside the mounting hole (215).

Citation Information

Patent Citations

  • Molecular sieve ball forming mill

    CN220835426U