Ore waste recovery and storage device
By designing a ore waste recycling and storage device, and utilizing crushing and dust removal components for the classification, processing, and storage of ore waste, the problems of waste occupying land and polluting the environment are solved, and resource recycling and dust control are achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-27
- Publication Date
- 2026-04-03
AI Technical Summary
Waste generated during mining operations occupies land resources and pollutes the environment, necessitating the design of an effective ore waste recycling and storage device.
Design a ore waste recycling and storage device that includes a material distribution box, a crushing component, a dust removal component, and a storage box. The ore waste is crushed by a crushing roller, dusted by a bag filter box, and then classified and stored to achieve resource recycling.
It enables the classified storage and recycling of ore waste, reduces dust pollution, is easy and quick to operate, and is suitable for the production of building materials and cement.
Smart Images

Figure CN224072076U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of ore waste technology, specifically to an ore waste recycling and storage device. Background Technology
[0002] During the mining process, a large amount of waste is generated, including ore, tailings, and slag. This waste not only occupies a large amount of land resources, but also causes serious pollution to the environment.
[0003] Therefore, it is necessary to design a mineral waste recycling and storage device to solve the problems mentioned in the background technology. Utility Model Content
[0004] The purpose of this utility model is to solve the problems in the prior art by proposing a mineral waste recycling and storage device.
[0005] To achieve the above objectives, this utility model provides the following technical solution:
[0006] A waste ore recycling and storage device includes a distribution box, a crushing component, a dust removal component, and a storage box. The crushing component is connected to the upper end of the distribution box near the back. Multiple dust removal components are connected to the upper end of the distribution box near the front. Multiple support frames are provided inside the distribution box. A first distribution plate, a second distribution plate, and a powder collection plate are provided on the support frames. A powder box is provided at the lower end of the distribution box. A storage box is provided at the front of the distribution box. Multiple shock absorbers are connected to the lower end of the distribution box. A base is connected to the lower end of the shock absorbers.
[0007] The material distribution box has rotating seats on both sides near the back, and a first upward-opening door is connected to the rotating seats. The upper end of the material distribution box is provided with a connecting plate near the back, and a first discharge port is opened in the middle of the connecting plate.
[0008] The crushing assembly consists of a crushing hopper, crushing rollers, mounting plate, motor, and guide hopper. Multiple sets of crushing rollers are connected inside the crushing hopper. A motor is connected to one side of the crushing hopper. A mounting plate is connected to the lower end of the crushing hopper and the motor. A guide hopper is connected to the lower end of the mounting plate.
[0009] The dust removal assembly consists of a bag filter box, an exhaust port, a feed pipe, a fan, a mounting frame, and a discharge pipe. The fan is connected to the feed pipe on one side, and the lower end of the feed pipe is connected to the bag filter box. The bag filter box has an exhaust port on one side of its upper part, and a discharge pipe at the lower end of the bag filter box. Multiple mounting frames are connected to the outside of the bag filter box.
[0010] The lower end of the storage box is connected to multiple sets of second moving wheels, and the upper end and front of the storage box are both connected to second upward-opening doors. The middle of the back of the storage box is provided with a first feed port.
[0011] Guide plates are provided at the upper ends of the first and second material distribution plates near the front sides;
[0012] The powder collecting plate has a second discharge port near the front end at its upper end;
[0013] The powder box is connected to a number of first moving wheels at the lower end, and a top cover is connected to the upper end of the powder box. A second feed port is opened at the upper end of the top cover near the front.
[0014] As a preferred embodiment of this utility model, the first upward-opening door and the rotating seat on the material distribution box are connected by a rotating shaft.
[0015] In a preferred embodiment of this utility model, the mounting plate, the guide hopper, and the connecting plate are all connected by bolts.
[0016] As a preferred embodiment of this utility model, the crushing roller and the crushing hopper are connected by bearings, both ends of the two sets of crushing rollers are connected by gear discs, the motor and the crushing roller are connected by couplings, and the crushing hopper, the motor and the mounting plate are connected by bolts.
[0017] As a preferred embodiment of this utility model, the fan, mounting frame and material distribution box are connected by bolts, the fan and bag filter dust collector are connected by a feed pipe, and the bag filter dust collector and material distribution box are connected by a discharge pipe.
[0018] As a preferred embodiment of this utility model, the first feed port and the guide plate are connected by a sleeve connection.
[0019] As a preferred embodiment of this utility model, the first material distribution plate, the second material distribution plate, the powder collection plate and the support frame are connected by a sleeve connection, and the powder box and the material distribution box are connected by a sleeve connection.
[0020] In summary, the technical effects and advantages of this utility model are as follows: When in use, the ore waste recycling and storage device allows ore waste to be fed into the crushing hopper and crushed by relatively rotating crushing rollers, facilitating subsequent recycling. The guide hopper allows the crushed material to be concentrated and fed onto the first distribution plate, reducing the splashing of falling dust. The crushed ore waste can be gradually screened and collected through the first distribution plate, the second distribution plate, and the dust collection plate. Coarse material enters the upper part of the storage box through the first distribution plate, while fine material enters through the second distribution plate. The powder enters the powder box at the bottom of the storage box through the powder collection plate for classified storage. After crushing, it can be used to produce building materials, cement, road materials, etc., realizing the recycling of resources. The back of the distribution box is an openable structure, which makes it easy to remove and replace the first distribution plate, the second distribution plate, the powder collection plate and the powder box. The operation is convenient and quick. When the whole operation is running, the fan and the bag dust collector can be turned on to remove dust through the bag dust collector. The dust can be discharged through the discharge pipe and enter the powder box through the powder collection plate, reducing dust pollution. Attached Figure Description
[0021] Figure 1 This is an overall structural diagram of the present invention;
[0022] Figure 2 This is a structural diagram of the material distribution box of this utility model;
[0023] Figure 3 This is a structural diagram of the crushing component of this utility model;
[0024] Figure 4 This is a structural diagram of the support frame of this utility model;
[0025] Figure 5 This is a structural diagram of the second material distribution plate of this utility model;
[0026] Figure 6 This is a structural diagram of the first material distribution plate of this utility model;
[0027] Figure 7 This is a structural diagram of the powder collection plate of this utility model;
[0028] Figure 8 This is a structural diagram of the powder box of this utility model;
[0029] Figure 9 This is a structural diagram of the dust removal component of this utility model;
[0030] Figure 10 This is a structural diagram of the storage box of this utility model.
[0031] In the diagram: 1. Feeding box; 101. First upward-opening door; 102. Rotating seat; 103. Connecting plate; 104. First discharge port; 2. Crushing assembly; 201. Crushing hopper; 202. Crushing roller; 203. Mounting plate; 204. Motor; 205. Guide hopper; 3. Dust removal assembly; 301. Bag dust collector; 302. Exhaust port; 303. Feed pipe; 304. Fan; 305. Installation... 306. Loading rack; 4. Discharge pipe; 5. Storage box; 601. Second moving wheel; 702. Second upward-opening door; 803. First feed inlet; 9. First distribution plate; 10. Second distribution plate; 11. Guide plate; 22. Powder collecting plate; 33. Second discharge port; 44. Powder box; 55. First moving wheel; 66. Top cover; 77. Second feed inlet; 88. Shock absorber; 99. Base; 10. Support frame. Detailed Implementation
[0032] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0033] Reference Figures 1-10A waste ore recycling and storage device includes a distribution box 1, a crushing assembly 2, a dust removal assembly 3, and a storage box 4. The crushing assembly 2 is connected to the upper end of the distribution box 1 near the back. Multiple dust removal assemblies 3 are connected to the upper end of the distribution box 1 near the front. Multiple support frames 11 are provided inside the distribution box 1, with a first distribution plate 5, a second distribution plate 6, and a powder collection plate 7 mounted on the support frames 11. A powder box 8 is located at the lower end of the distribution box 1. The storage box 4 is located on the front of the distribution box 1. Multiple shock absorbers 9 are connected to the lower end of the distribution box 1, and a bottom is connected to the lower end of each shock absorber 9. Seat 10; Rotary seats 102 are provided on both sides near the back of the material distribution box 1, and a first upward-opening door 101 is connected to the rotating seats 102. A connecting plate 103 is provided at the upper end of the material distribution box 1 near the back, and a first discharge port 104 is opened in the middle of the connecting plate 103; The crushing assembly 2 consists of a crushing hopper 201, crushing rollers 202, mounting plate 203, motor 204, and guide hopper 205. Multiple sets of crushing rollers 202 are connected inside the crushing hopper 201, and a motor 204 is connected to one side of the crushing hopper 201. The crushing hopper 201 and the motor 204... 4. A mounting plate 203 is connected to the lower end of the assembly, and a guide hopper 205 is connected to the lower end of the mounting plate 203; the dust removal assembly 3 consists of a bag dust collector 301, an exhaust port 302, a feed pipe 303, a fan 304, a mounting frame 305, and a discharge pipe 306. The fan 304 is connected to the feed pipe 303 on one side, and the lower end of the feed pipe 303 is connected to the bag dust collector 301. An exhaust port 302 is provided on one side of the upper part of the bag dust collector 301, and a discharge pipe 306 is provided at the lower end of the bag dust collector 301. Multiple sets of mounting frames 3 are connected to the outside of the bag dust collector 301. 05; The lower end of the storage box 4 is connected to multiple sets of second moving wheels 401, and the upper end and front of the storage box 4 are both connected to second upward-opening doors 402. The middle of the back of the storage box 4 is provided with a first feed inlet 403; The upper end of the first material distribution plate 5 and the second material distribution plate 6 are both provided with guide plates 601 near the front sides; The upper end of the powder collecting plate 7 is provided with a second discharge port 701 near the front; The lower end of the powder box 8 is connected to multiple sets of first moving wheels 801, and the upper end of the powder box 8 is connected to a top cover 802. The upper end of the top cover 802 is provided with a second feed inlet 803 near the front.
[0034] Reference Figures 1-10During the mining process, a large amount of waste is generated, including ore, tailings, and slag. This waste not only occupies a large amount of land resources but also causes serious environmental pollution. The first upward-opening door 101 and the rotating seat 102 on the distribution box 1 are connected by a rotating shaft. The first distribution plate 5, the second distribution plate 6, the powder collecting plate 7, and the support frame 11 are connected by a sleeve connection. The powder box 8 and the distribution box 1 are connected by a sleeve connection. The first feed inlet 403 and the guide plate 601 are connected by a sleeve connection. The crushed ore waste can be... The material is gradually screened and collected through the first dividing plate 5, the second dividing plate 6, and the powder collecting plate 7. Coarse material enters the upper part of the storage box 4 through the first dividing plate 5, fine material enters the lower part of the storage box 4 through the second dividing plate 6, and powder enters the powder box 8 through the powder collecting plate 7 for classified storage. After crushing, the material can be used to produce building materials, cement, road materials, etc., realizing the recycling of resources. The back of the dividing box 1 is an openable structure, which makes it convenient to remove and replace the first dividing plate 5, the second dividing plate 6, the powder collecting plate 7, and the powder box 8, making the operation convenient and quick.
[0035] Reference Figures 1-10 The mounting plate 203, the guide hopper 205, and the connecting plate 103 are all connected by bolts. The crushing roller 202 and the crushing hopper 201 are connected by bearings. The two ends of the two sets of crushing rollers 202 are connected by gear discs. The motor 204 and the crushing roller 202 are connected by a coupling. The crushing hopper 201, the motor 204, and the mounting plate 203 are connected by bolts. When in use, ore waste can be put into the crushing hopper 201 and crushed by the relatively rotating crushing rollers 202, which is convenient for later recycling. The guide hopper 205 can concentrate the crushed material onto the first distribution plate 5, reducing the splashing of falling dust.
[0036] Reference Figures 1-10 The fan 304, mounting bracket 305 and distribution box 1 are connected by bolts. The fan 304 and bag dust collector 301 are connected by feed pipe 303. The bag dust collector 301 and distribution box 1 are connected by discharge pipe 306. When the whole system is running, the fan 304 and bag dust collector 301 can be turned on to remove dust through the bag dust collector 301. The dust can re-enter the lower part of distribution box 1 through discharge pipe 306 and enter powder box 8 through dust collection plate 7, thereby reducing dust pollution.
[0037] Working principle: The mounting plate 203, guide hopper 205, and connecting plate 103 of the ore waste recycling and storage device are all connected by bolts. The crushing roller 202 and crushing hopper 201 are connected by bearings. Both ends of the two sets of crushing rollers 202 are connected by gear discs. The motor 204 and crushing roller 202 are connected by a coupling. The crushing hopper 201, motor 204, and mounting plate 203 are connected by bolts. In use, ore waste can be put into the crushing hopper 201, and the relative rotation of the rollers will cause the ore waste to be crushed. The crushing roller 202 crushes the material for easy recycling later. The guide hopper 205 allows the crushed material to be concentrated and fed onto the first distribution plate 5, reducing the splashing of falling dust. The first upward-opening door 101 and the rotating seat 102 on the distribution box 1 are connected by a rotating shaft. The first distribution plate 5, the second distribution plate 6, the powder collecting plate 7, and the support frame 11 are connected by a sleeve. The powder box 8 and the distribution box 1 are connected by a sleeve. The first feed inlet 403 and the guide plate 601 are connected by a sleeve. The crushed ore waste... The material can be gradually screened and collected through the first dividing plate 5, the second dividing plate 6, and the powder collecting plate 7. Coarse material enters the upper part of the storage box 4 through the first dividing plate 5, fine material enters the lower part of the storage box 4 through the second dividing plate 6, and powder enters the powder box 8 through the powder collecting plate 7 for classified storage. After crushing, the material can be used to produce building materials, cement, road materials, etc., realizing the recycling of resources. The back of the dividing box 1 has an openable structure, which facilitates the removal and replacement of the first dividing plate 5, the second dividing plate 6, the powder collecting plate 7, and the powder box 8. The system is easy and quick to operate. The fan 304, mounting bracket 305 and distribution box 1 are connected by bolts. The fan 304 and bag dust collector 301 are connected by feed pipe 303. The bag dust collector 301 and distribution box 1 are connected by discharge pipe 306. When the whole system is running, the fan 304 and bag dust collector 301 can be turned on to remove dust through the bag dust collector 301. The dust can re-enter the lower part of distribution box 1 through discharge pipe 306 and enter powder box 8 through dust collection plate 7, reducing dust pollution.
[0038] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A mineral waste recycling storage device comprising a distribution box (1), a crushing assembly (2), a dust removal assembly (3) and a storage box (4), characterized in that: The upper end of the distribution box (1) is connected with a crushing assembly (2) near the back, a plurality of dust removal assemblies (3) are connected near the front of the upper end of the distribution box (1), a plurality of support frames (11) are arranged inside the distribution box (1), the support frames (11) are provided with a first distribution plate (5), a second distribution plate (6) and a powder collecting plate (7), a powder box (8) is arranged at the lower end inside the distribution box (1), a storage box (4) is arranged at the front of the distribution box (1), a plurality of shock absorbers (9) are connected to the lower end of the distribution box (1), and a base (10) is connected to the lower end of the shock absorber (9). The both sides of the distribution box (1) are provided with rotating seats (102) near the back, the rotating seats (102) are connected with first upturned doors (101), and the upper end of the distribution box (1) is provided with a connecting plate (103) near the back, and a first discharging port (104) is formed in the middle of the connecting plate (103). The crushing assembly (2) is composed of a crushing hopper (201), a crushing roller (202), a mounting plate (203), a motor (204) and a guide hopper (205), a plurality of crushing rollers (202) are connected inside the crushing hopper (201), the crushing hopper (201) is connected with a motor (204) on one side, the crushing hopper (201) and the motor (204) are connected with the mounting plate (203) at the lower end, and the mounting plate (203) is connected with the guide hopper (205) at the lower end. The dust removal assembly (3) is composed of a bag dust removal box (301), an exhaust port (302), a feeding pipe (303), a fan (304), a mounting frame (305) and a discharging pipe (306), the fan (304) is connected with the feeding pipe (303) on one side, the feeding pipe (303) is connected with the bag dust removal box (301) at the lower end, the bag dust removal box (301) is provided with the exhaust port (302) on one side of the upper portion, the bag dust removal box (301) is provided with the discharging pipe (306) at the lower end, and a plurality of mounting frames (305) are connected to the outside of the bag dust removal box (301). The storage box (4) is connected with a plurality of second moving wheels (401) at the lower end, the upper end and the front of the storage box (4) are connected with second upturned doors (402), and a first feeding port (403) is formed in the middle of the back of the storage box (4). The upper end of the first distribution plate (5) and the second distribution plate (6) is provided with a guide plate (601) near the two sides of the front. The upper end of the powder collecting plate (7) is provided with a second discharging port (701) near the front. The lower end of the powder box (8) is connected with a plurality of first moving wheels (801), the upper end of the powder box (8) is connected with an upper cover (802), and the upper end of the upper cover (802) is provided with a second feeding port (803) near the front.
2. An ore waste recovery storage device as claimed in claim 1, wherein: The first upturned door (101) and the rotating seat (102) on the distribution box (1) are connected through a rotating shaft.
3. An ore waste recovery storage device as claimed in claim 1, wherein: The mounting plate (203), the guide hopper (205) and the connecting plate (103) are connected through bolts.
4. The ore waste recovery storage device of claim 1, wherein: The pulverizing roller (202) and the pulverizing hopper (201) are connected through a bearing, both ends of the two groups of the pulverizing roller (202) are connected through a gear plate, the motor (204) and the pulverizing roller (202) are connected through a shaft coupling, and the pulverizing hopper (201), the motor (204) and the mounting plate (203) are connected through bolts.
5. The ore waste recovery storage device of claim 1, wherein: The fan (304), the mounting rack (305) and the distribution box (1) are connected through bolts, the fan (304) and the bag dust removal box (301) are connected through a feeding pipe (303), and the bag dust removal box (301) and the distribution box (1) are connected through a discharging pipe (306).
6. An ore waste recovery storage device as claimed in claim 1, wherein: The first feeding port (403) and the guide plate (601) are connected through sleeve connection.
7. An ore waste recovery storage device as claimed in claim 1, wherein: The first distribution plate (5), the second distribution plate (6), the powder collecting plate (7) and the supporting frame (11) are connected through sleeve connection, and the powder box (8) and the distribution box (1) are connected through sleeve connection.