Drying device for electrolytic manganese metal production

By designing an automatic feeding drying device, the electrolytic manganese is fed into the drying box evenly and quickly using spiral blades and vibration components, which solves the problems of slow manual feeding speed and safety hazards, and improves production efficiency and safety.

CN223939883UActive Publication Date: 2026-02-24BEIJING ACCURATE TECH CO LTD
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Patent Information

Application Number
CN202520632017.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-07
Publication Date
2026-02-24
Estimated Expiration
2035-04-07

AI Technical Summary

Technical Problem

Most existing drying equipment for electrolytic manganese production uses manual feeding, which is slow and requires workers to be in close contact with high-temperature dust, posing safety hazards and making it difficult to improve production efficiency.

Method used

Design an automatic feeding device that includes a drying chamber, a conveying pipe, and a vibration component. Electrolytic manganese is fed into the drying chamber uniformly and rapidly through spiral blades and the vibration component, and then dried in combination with a drying fan.

Benefits of technology

The automated feeding of electrolytic manganese has been achieved, which has improved production efficiency, avoided the safety hazards of workers being in close contact with high-temperature dust, and enhanced both safety and production efficiency.

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Abstract

The utility model relates to the technical field of electrolytic manganese production, in particular to a drying device for electrolytic manganese metal production, which comprises a drying box, a conveying pipe and a vibrating component. A supporting column is arranged at the lower end of the drying box, a drying fan is arranged on one side of the drying box, an air conveying pipe is arranged on one side of the drying fan, the other end of the air conveying pipe is connected with the drying box, a discharging pipe is arranged at the lower end of the drying box, a vibration assembly is arranged on one side of the drying box, a material conveying pipe is arranged on one side of the drying box, and a feeding box is arranged on one side of the material conveying pipe. A feeding pipe is arranged on one side of the feeding box, and a first motor is arranged at the upper end of the feeding box; by means of an automatic feeding mode, electrolytic manganese is evenly and rapidly fed into the drying box, and therefore the problems that most manual feeding modes are adopted for feeding, the manual feeding speed is low, workers need to make close contact with the drying device, potential safety hazards such as high temperature and dust possibly exist, the body health of the workers is threatened, and the working efficiency is high are solved. And the production efficiency is difficult to improve.
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Description

Technical Field

[0001] This utility model relates to the field of electrolytic manganese production technology, and in particular to a drying device for electrolytic metallic manganese production. Background Technology

[0002] Electrolytic manganese refers to the elemental metal obtained by acid leaching of manganese ore to obtain manganese salt, which is then electrolyzed in an electrolytic cell. It resembles iron in appearance, is irregularly shaped, hard and brittle, with one side being shiny and the other rough. It ranges in color from silvery-white to brown, and turns silvery-gray when processed into powder. It is easily oxidized in air, dissolves and displaces hydrogen when it comes into contact with dilute acid, and can decompose water to release hydrogen gas at slightly above room temperature.

[0003] Most existing drying equipment for electrolytic manganese production uses manual feeding, which is slow and requires workers to be in close contact with the drying equipment, potentially exposing them to safety hazards such as high temperatures and dust, threatening their health and hindering production efficiency.

[0004] Therefore, most drying equipment used in electrolytic manganese production relies on manual feeding. Manual feeding is slow, and workers are exposed to high temperatures and dust, posing safety hazards and health risks, thus hindering production efficiency. A solution is to design an automatic feeding system for electrolytic manganese production that delivers electrolytic manganese evenly and quickly into the drying chamber. This would solve the problems associated with manual feeding, such as slow speed, high temperatures, dust, and health risks, hindering production efficiency. Utility Model Content

[0005] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a drying device for electrolytic manganese production. This drying device aims to solve the technical problems that under the existing technology, most of the material feeding is done manually, which is slow and requires workers to be in close contact with the drying device, which may expose them to safety hazards such as high temperature and dust, posing a threat to their health and making it difficult to improve production efficiency.

[0006] The technical solution of this utility model is as follows: a drying device for electrolytic manganese production, including a drying box, a conveying pipe and a vibration component; a support column is provided at the lower end of the drying box, a drying fan is provided on one side of the drying box, an air conveying pipe is provided on one side of the drying fan, the other end of the air conveying pipe is connected to the drying box, a discharge pipe is provided at the lower end of the drying box, a vibration component is provided on one side of the drying box, a conveying pipe is provided on one side of the drying box, a feeding box is provided on one side of the conveying pipe, an inlet pipe is provided on one side of the feeding box, a first motor is provided at the upper end of the feeding box, a first rotating shaft is provided at the output end of the first motor, and spiral blades are provided on the outer side of the first rotating shaft.

[0007] Preferably, a groove is provided at the corresponding position of the feeding box and the spiral blade, and the spiral blade is rotatably connected inside the groove of the feeding box.

[0008] Preferably, the vibration assembly includes a second motor, which is located on one side of the drying chamber. A second rotating shaft is located at the output end of the second motor. A first cam is located on the outer side of the second rotating shaft. A first pulley is located on the outer side of the second rotating shaft. A transmission belt is located on the outer side of the first pulley. A second pulley is located on the inner side of the transmission belt. A third rotating shaft is located on the inner side of the second pulley. A second cam is located on the outer side of the third rotating shaft. A spring is located inside the drying chamber. A slider is located on one side of the spring. A sliding rod is located inside the drying chamber. A feeding plate is located on one side of the slider.

[0009] Preferably, a groove is provided at the corresponding position of the drying box and the third rotating shaft, and the third rotating shaft is rotatably connected inside the groove of the drying box.

[0010] Preferably, a groove is provided at the corresponding position of the drying box and the slider, and the slider is slidably connected inside the groove of the drying box.

[0011] Preferably, a groove is provided at the corresponding position of the slider and the slide rod, and the slider is slidably connected to the outside of the slide rod.

[0012] Preferably, multiple sets of springs and slide bars are provided, and multiple sets of springs and slide bars are arranged in an array inside the drying chamber.

[0013] The beneficial effects of this utility model are:

[0014] Compared to traditional drying equipment used in electrolytic manganese production, which mostly relies on manual feeding—a slow process where workers are exposed to high temperatures and dust, posing health risks and hindering production efficiency—this device uses automatic feeding to deliver electrolytic manganese evenly and quickly into the drying chamber. This solves the problems associated with manual feeding, which is slow and exposes workers to high temperatures and dust, hindering health and production efficiency. Attached Figure Description

[0015] Figure 1 The diagram shown is a three-dimensional structural schematic of the drying device for electrolytic manganese production according to this utility model.

[0016] Figure 2 The diagram shown is a cross-sectional view of the drying device for electrolytic manganese production according to this utility model.

[0017] Figure 3 The diagram shown is a cross-sectional view of the vibration component of the drying device for electrolytic manganese production according to this utility model.

[0018] Figure 4 The diagram shown is a partial structural schematic of the vibration component of the drying device for electrolytic manganese production according to this utility model.

[0019] Explanation of reference numerals in the attached drawings: 1. Drying box; 2. Support column; 3. Drying fan; 4. Air conveying pipe; 5. Discharge pipe; 601. Material conveying pipe; 602. Feeding box; 603. Feeding pipe; 604. First motor; 605. First rotating shaft; 606. Spiral blade; 701. Second motor; 702. Second rotating shaft; 703. First cam; 704. First pulley; 705. Transmission belt; 706. Second pulley; 707. Third rotating shaft; 708. Second cam; 709. Spring; 710. Slider; 711. Slide rod; 712. Feeding plate. Detailed Implementation

[0020] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0021] Please see Figure 1 - Figure 4This utility model provides an embodiment of a drying device for electrolytic manganese production, comprising a drying chamber 1, a conveying pipe 601, and a vibration assembly; a support column 2 is provided at the lower end of the drying chamber 1, a drying fan 3 is provided on one side of the drying chamber 1, an air conveying pipe 4 is provided on one side of the drying fan 3, the other end of the air conveying pipe 4 is connected to the drying chamber 1, a discharge pipe 5 is provided at the lower end of the drying chamber 1, a vibration assembly is provided on one side of the drying chamber 1, a conveying pipe 601 is provided on one side of the drying chamber 1, a feeding box 602 is provided on one side of the conveying pipe 601, an inlet pipe 603 is provided on one side of the feeding box 602, a first motor 604 is provided at the upper end of the feeding box 602, a first rotating shaft 605 is provided at the output end of the first motor 604, and a spiral blade 606 is provided on the outer side of the first rotating shaft 605. A groove is provided at the corresponding position of the feeding box 602 and the spiral blade 606. The spiral blade 606 is rotatably connected to the inside of the groove in the feeding box 602. The groove provided at the corresponding position of the feeding box 602 and the spiral blade 606 provides a limiting effect when the spiral blade 606 rotates inside the groove. The first motor 604 is started, which drives the first rotating shaft 605 to rotate. The first rotating shaft 605 drives the spiral blade 606 to rotate. Then, electrolytic manganese is added to the feeding box 602 through the feed pipe 603. The rotation of the spiral blade 606 causes the electrolytic manganese to rise. When it rises to the top, it enters the drying chamber 1 through the conveying pipe 601. The drying fan 3 is started, and the drying fan 3 blows air into the drying chamber 1 through the air conveying pipe 4 to dry the electrolytic manganese.

[0022] Please see Figure 4In this embodiment, the vibration assembly includes a second motor 701. The second motor 701 is located on one side of the drying chamber 1. A second rotating shaft 702 is located at the output end of the second motor 701. A first cam 703 is located on the outer side of the second rotating shaft 702. A first pulley 704 is located on the outer side of the second rotating shaft 702. A transmission belt 705 is located on the outer side of the first pulley 704. A second pulley 706 is located on the inner side of the transmission belt 705. A third rotating shaft 707 is located on the inner side of the second pulley 706. A second cam 708 is located on the outer side of the third rotating shaft 707. A spring 709 is located inside the drying chamber 1. A slider 710 is located on one side of the spring 709. A slide rod 711 is located inside the drying chamber 1. A feeding plate 712 is located on one side of the slider 710. A groove is formed at the corresponding position of the drying chamber 1 and the third rotating shaft 707. The third rotating shaft 707 is rotatably connected to the inside of the groove in the drying chamber 1. A groove is provided at the corresponding position of the drying chamber 1 and the third rotating shaft 707, so that the third rotating shaft 707 has a limiting effect when rotating inside the groove. A groove is provided at the corresponding position of the drying chamber 1 and the slider 710. The slider 710 is slidably connected inside the groove of the drying chamber 1. The groove provided at the corresponding position of the drying chamber 1 and the slider 710 has a limiting effect when sliding inside the groove. A groove is provided at the corresponding position of the slider 710 and the slide rod 711. The slider 710 is slidably connected outside the slide rod 711. The groove provided at the corresponding position of the slider 710 and the slide rod 711 has a limiting effect when sliding inside the groove. Multiple sets of springs 709 and slide rods 711 are provided. Multiple sets of springs 709 and slide rods 711 are arranged in an array inside the drying chamber 1. By providing multiple sets of springs 709 and slide rods 711, the feeding plate 712 is more stable when vibrating.

[0023] When using this device, the first motor 604 is started, which drives the first rotating shaft 605 to rotate. The first rotating shaft 605 drives the spiral blades 606 to rotate. Then, electrolytic manganese is added to the feeding box 602 through the feed pipe 603. The rotation of the spiral blades 606 drives the electrolytic manganese to rise. When it rises to the top, it enters the drying box 1 through the conveying pipe 601. The drying fan 3 is started, and the drying fan 3 blows air into the drying box 1 through the air conveying pipe 4 to dry the electrolytic manganese. The second motor 701 is started, which drives the second rotating shaft 702. The rotation of the second rotating shaft 702 drives the first cam 703 to rotate, which in turn drives the first pulley 704 to rotate. The first pulley 704 drives the transmission belt 705 to rotate, which in turn drives the second pulley 706 to rotate. The second pulley 706 drives the third rotating shaft 707 to rotate, which in turn drives the second cam 708 to rotate. This causes the two sets of feeding plates 712 to slide simultaneously. The sliding of the feeding plates 712 compresses the spring 709, thereby generating vibration. This prevents the electrolytic manganese from sticking to the feeding plates 712, resulting in a better drying effect.

[0024] Through the above steps, the first motor 604 is started, which drives the first rotating shaft 605 to rotate. The first rotating shaft 605 drives the spiral blades 606 to rotate. Then, electrolytic manganese is added to the feeding box 602 through the feed pipe 603. The rotation of the spiral blades 606 drives the electrolytic manganese to rise. When it rises to the top, it enters the drying box 1 through the conveying pipe 601. The drying fan 3 is started, and the drying fan 3 sends air into the drying box 1 through the air conveying pipe 4 to dry the electrolytic manganese.

[0025] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.

Claims

1. A drying apparatus for electrolytic manganese production, comprising a drying chamber (1); characterized in that: It also includes a conveying pipe (601) and a vibration assembly; a support column (2) is provided at the lower end of the drying box (1), a drying fan (3) is provided on one side of the drying box (1), an air conveying pipe (4) is provided on one side of the drying fan (3), the other end of the air conveying pipe (4) is connected to the drying box (1), a discharge pipe (5) is provided at the lower end of the drying box (1), a vibration assembly is provided on one side of the drying box (1), a conveying pipe (601) is provided on one side of the drying box (1), a feeding box (602) is provided on one side of the conveying pipe (601), a feed pipe (603) is provided on one side of the feeding box (602), a first motor (604) is provided at the upper end of the feeding box (602), a first rotating shaft (605) is provided at the output end of the first motor (604), and a spiral blade (606) is provided on the outer side of the first rotating shaft (605).

2. The drying apparatus for electrolytic manganese production according to claim 1, characterized in that: The feed box (602) and the corresponding position of the spiral blade (606) are provided with grooves, and the spiral blade (606) is rotatably connected to the inside of the groove of the feed box (602).

3. The drying apparatus for electrolytic manganese production according to claim 1, characterized in that: The vibration assembly includes a second motor (701), a second motor (701) is provided on one side of the drying chamber (1), a second rotating shaft (702) is provided at the output end of the second motor (701), a first cam (703) is provided on the outside of the second rotating shaft (702), a first pulley (704) is provided on the outside of the second rotating shaft (702), a transmission belt (705) is provided on the outside of the first pulley (704), a second pulley (706) is provided on the inside of the transmission belt (705), a third rotating shaft (707) is provided on the inside of the second pulley (706), a second cam (708) is provided on the outside of the third rotating shaft (707), a spring (709) is provided on the inside of the drying chamber (1), a slider (710) is provided on one side of the spring (709), a slide bar (711) is provided on the inside of the drying chamber (1), and a feeding plate (712) is provided on one side of the slider (710).

4. The drying apparatus for electrolytic manganese production according to claim 3, characterized in that: A groove is provided at the corresponding position of the drying box (1) and the third rotating shaft (707), and the third rotating shaft (707) is rotatably connected inside the groove of the drying box (1).

5. The drying apparatus for electrolytic manganese production according to claim 3, characterized in that: A groove is provided at the corresponding position of the drying box (1) and the slider (710), and the slider (710) is slidably connected inside the groove of the drying box (1).

6. The drying apparatus for electrolytic manganese production according to claim 3, characterized in that: The slider (710) and the corresponding position of the slide rod (711) are provided with grooves, and the slider (710) is slidably connected to the outside of the slide rod (711).

7. The drying apparatus for electrolytic manganese production according to claim 3, characterized in that: Multiple sets of springs (709) and slide bars (711) are provided, and the array of multiple sets of springs (709) and slide bars (711) is arranged inside the drying oven (1).