Continuous nanometer magnesium powder preparation equipment and method thereof

By combining inert gas flow and centrifugal separation with a rotating scraper and adsorption plate structure, the problems of inconvenient magnesium powder collection and decreased purity in existing technologies have been solved, achieving efficient and pure preparation of nano-magnesium powder.

CN121551608BActive Publication Date: 2026-04-07HAICHENG HUAN MAGNESIUM PROD MFG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2026-01-23
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing ball milling equipment for preparing nano-magnesium powder is prone to introducing impurities during the magnesium powder collection process, resulting in poor magnesium powder quality and reduced purity. Furthermore, the collection process is inconvenient and makes it difficult to apply the powder to subsequent production.

Method used

A continuous nano-magnesium powder preparation device is used, which utilizes inert gas flow and centrifugal force to separate magnesium powder from impurities. Combined with a rotating scraper and adsorption plate structure, it achieves efficient collection and purification of magnesium powder.

Benefits of technology

It improves the collection efficiency and purity of magnesium powder, ensures the quality of magnesium powder, simplifies the impurity removal process, and is suitable for continuous production.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention discloses a continuous nano-magnesium powder preparation device and method, relating to the field of magnesium powder preparation technology. The device includes: a fixed base and a ball mill cylinder. A fixed support is fixedly installed on the fixed base, and the fixed support is rotatably sleeved on the outside of the ball mill cylinder. A power structure is fixedly installed on the fixed base. A collection structure includes a fixed box fixedly connected to the fixed base. The ball mill cylinder is fixedly connected to the fixed box via a connecting pipe. An inlet pipe and an outlet pipe are fixedly connected to the ball mill cylinder and the fixed box, respectively. This invention introduces a flowing inert gas into the device. The gas can blow out small particles of magnesium powder, while larger particles cannot be blown out by the airflow. Therefore, it can ensure higher quality collected magnesium powder. Furthermore, after entering the fixed box, the magnesium powder can be centrifuged to move to the outside of the gas layer, making magnesium powder collection more convenient.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of magnesium powder preparation, and particularly relates to a continuous nano-magnesium powder preparation device and a method thereof. BACKGROUND

[0002] In industrial production, mechanical ball milling is one of important methods for batch production and preparation of nano-magnesium powder due to low equipment requirement.

[0003] The existing device for preparing nano-magnesium powder by ball milling needs to be opened after grinding is completed, and the magnesium powder in the device is taken out, which is inconvenient for collecting the magnesium powder, and large magnesium powder particles are easily taken out together, resulting in poor quality of the magnesium powder. Meanwhile, the magnesium powder taken out in this way is easy to enter impurities, resulting in a decrease in purity of the magnesium powder, so that the prepared magnesium powder cannot be applied to subsequent production and processing, and removal of the impurities is also troublesome, which is not conducive to preparation of the magnesium powder. SUMMARY

[0004] The present application aims at solving the problems in the prior art, and provides a continuous nano-magnesium powder preparation device and a method thereof.

[0005] In order to achieve the above object, the present application adopts the following technical scheme:

[0006] The present application provides a continuous nano-magnesium powder preparation device and a method thereof, which comprises:

[0007] A fixed base and a ball milling cylinder, the fixed base is fixedly provided with a fixed support, and the fixed support is rotatably sleeved on the outside of the ball milling cylinder, and the fixed base is fixedly provided with a power structure;

[0008] A collecting structure, the collecting structure comprises a fixed box fixedly connected with the fixed base, the ball milling cylinder is fixedly communicated with the fixed box through a connecting pipe, the ball milling cylinder and the fixed box are respectively fixedly provided with an air inlet pipe and an air outlet pipe, an inner wall of the fixed box is provided with a collecting groove communicated with the air outlet pipe, the collecting groove is slidably provided with a collecting box, and an inner wall of the fixed box is rotatably provided with a rotating cylinder, the rotating cylinder is fixedly provided with a connecting support, the connecting support is fixedly provided with a rotating rod, the rotating rod is fixedly provided with an impact fan blade, and the fixed box is slidably provided with an auxiliary structure.

[0009] Preferably, the auxiliary structure comprises a fixed cylinder, the inner wall of the fixed cylinder is slidably connected with the rotating rod through a moving block, an adjusting plate is rotatably sleeved on the fixed cylinder, the adjusting plate is slidably connected with the inner wall of the collecting groove through a sliding support, a central shaft is rotatably installed on the adjusting plate, an adjusting rod is slidably installed on the central shaft, an adjusting shaft is fixedly connected on the adjusting rod and penetrates the adjusting rod, an adjusting block is rotatably connected on the outer side of the adjusting shaft, a fixed scraper is fixedly connected on the adjusting block, the adjusting rod adopts a telescopic structure, a return spring is fixedly installed on the inner wall of the adjusting rod, and a transmission structure is fixedly installed on the fixed cylinder.

[0010] Preferably, the transmission structure comprises a fixed gear fixedly sleeved on the outer side of the fixed cylinder, a connecting shaft is rotatably connected on the adjusting plate, a connecting gear is fixedly sleeved on the connecting shaft and engaged with the fixed gear, a connecting disc is fixedly connected on the connecting gear, a connecting block is fixedly connected on the connecting disc, and the connecting block is rotatably connected with the adjusting rod.

[0011] Preferably, a reciprocating screw rod is fixedly connected on the rotating rod, a screw rod sliding block is mechanically matched on the outer side of the reciprocating screw rod, the side wall of the screw rod sliding block is fixedly connected with the adjusting plate through a mounting rod, the fixed cylinder is sleeved on the outer side of the reciprocating screw rod, a connecting rod is slidably connected on the inner wall of the reciprocating screw rod, a fixed plug corresponding to the air outlet pipe is fixedly installed on the connecting rod, and an adjusting spring is fixedly installed between the connecting rod and the inner wall of the reciprocating screw rod.

[0012] Preferably, a decontamination structure is fixedly installed in the inner part of the fixed box, the decontamination structure comprises a fixed tube fixedly installed on the inner wall of the fixed box, a placing plate is slidably sleeved on the outer side of the fixed tube, an adsorption plate is slidably connected on the inner wall of the rotating cylinder, the adsorption plate is rotatably connected with the placing plate, a connecting scraper corresponding to the fixed box is fixedly installed on the placing plate, and a fixed spring is fixedly connected between the placing plate and the inner wall of the rotating cylinder.

[0013] Preferably, sealing flanges are fixedly installed at the connection parts of the connecting pipe, the air inlet pipe and the air outlet pipe with the corresponding ball milling cylinder and the fixed box.

[0014] Preferably, the power structure comprises a motor fixedly installed on the fixed base, a rotating rod is fixedly connected with the output end of the motor, and the rotating rod and the ball milling cylinder are drivingly connected through a belt transmission assembly.

[0015] A method for preparing continuous nano-magnesium powder equipment, comprising the following steps:

[0016] S1, the magnesium block is sent into the ball mill barrel, the motor is started, and inert gas is introduced into the ball mill barrel. After the motor is started, the output end drives the rotating rod to rotate. Under the action of the belt transmission assembly, the ball mill barrel rotates with the rotating rod. The cast iron balls inside the ball mill barrel rotate to ball mill the magnesium block into nanoscale magnesium powder. At the same time, when the magnesium powder particles are ground to nanoscale, the magnesium powder will be blown away by the flow of inert gas to the connecting pipe and finally into the fixed box for collection;

[0017] S2, after the magnesium powder enters the fixed box, it first passes through the fixed tube into the inside of the rotating cylinder. The iron powder in the magnesium powder is attracted by the adsorption plate and adsorbed on the adsorption plate. The magnesium powder with higher purity flows upward with the gas. During the gas flow, the gas blows against the impact fan, causing the impact fan to rotate and drive the rotating rod to rotate, causing the connecting bracket and the rotating cylinder to rotate. The rotation of the rotating cylinder causes the gas to also rotate, and the rotation of the gas has a centrifugal effect, causing the magnesium powder to gather on the outside of the gas. This also facilitates the removal of iron powder. After the gas enters the inside of the collection tank, the magnesium powder is close to the inner wall of the collection tank under centrifugal treatment and cannot move to the outside of the fixed box. The gas is discharged from the gas outlet pipe;

[0018] S3, during the rotation of the rotating rod, the fixed cylinder rotates, driving the fixed gear mounted on the outside of the fixed cylinder to rotate, causing the connecting gear meshing with the fixed gear to rotate, causing the connecting shaft to rotate, driving the connecting disc fixedly installed on the connecting shaft to rotate, and the connecting block rotatably installed on the connecting disc moves annularly with the connecting disc, causing the end of the adjusting rod connected with the connecting block to also move annularly. Therefore, the adjusting rod as a whole rotates back and forth around the central shaft, causing the fixed scraper installed on the central shaft to also rotate back and forth. The elastic force of the return spring allows the fixed scraper to always abut against the inner wall of the collection tank. The back-and-forth movement of the fixed scraper can scrape the magnesium powder adhering to the inner wall of the collection tank into the collection box for collection. When the rotating cylinder rotates, the adsorption plate also rotates, but the connecting scraper does not rotate. Therefore, the connecting scraper can scrape the iron powder on the adsorption plate and drop it onto the placement plate. The top end of the placement plate is located below the fixed tube, so the iron powder on the placement plate is not easily affected by the upward force and moves upward. Moreover, as the amount of iron powder increases, the fixed spring contracts, causing the placement plate to move downward, further preventing the iron powder from being carried away by the gas;

[0019] S4, when the rotating rod rotates, the reciprocating screw rod fixedly installed on the rotating rod also rotates, so that the screw rod slider mechanically matched with the reciprocating screw rod moves up and down, under the action of the mounting rod, the adjusting plate moves up and down, and the fixed scraper moves up and down, the up-down movement of the fixed scraper can prevent the magnesium powder from adhering to the fixed scraper when the magnesium powder is scraped, and with the movement of the screw rod slider, the screw rod slider pushes the fixed plug, so that the fixed plug moves upward, the fixed plug blocks the air outlet pipe, so that the gas flow cannot continue to flow when flowing near the air outlet pipe, so that the magnesium powder is not affected by the lifting force of the gas and falls, so that the magnesium powder is more easily collected into the collecting box, and then the screw rod slider moves downward, and the fixed plug moves downward under the action of the adjusting spring force and returns to the original position.

[0020] Compared with the prior art, the beneficial effects of the present application are:

[0021] 1. The flowing inert gas is introduced into the device, the gas can blow out the fine magnesium powder, and the gas flow cannot blow out the magnesium powder with larger particles, so that the quality of the collected magnesium powder is higher, and after the magnesium powder enters the fixed box, it can be moved to the outside of the gas, that is, the inner wall of the collecting box, and the gas is discharged from the air outlet pipe, so that the collection of the magnesium powder is more convenient;

[0022] 2. The air outlet pipe is intermittently blocked during the gas flow, so that the gas cannot continue to flow when flowing to the air outlet pipe, so that the magnesium powder in the collecting groove loses the lifting force and falls, and the movement of the fixed scraper is matched, so that the magnesium powder falls into the collecting box, further facilitating the collection of the magnesium powder;

[0023] 3. By installing the adsorption plate, the iron powder in the magnesium powder can be adsorbed, and the magnesium powder and the iron powder are suspended in the gas, and the rotation and centrifugation are matched, so that the removal of the iron powder is more complete, thereby improving the purity of the magnesium powder and being beneficial to the preparation of the magnesium powder. BRIEF DESCRIPTION OF DRAWINGS

[0024] Figure 1 A three-dimensional structure schematic view of a continuous nano-magnesium powder preparation equipment and method is provided for the present application;

[0025] Figure 2 A sectional three-dimensional structure schematic view of a continuous nano-magnesium powder preparation equipment and method is provided for the present application;

[0026] Figure 3 A structure schematic view of a continuous nano-magnesium powder preparation equipment and method is provided for the present application;

[0027] Figure 4 A three-dimensional structure schematic view of a fixed box of a continuous nano-magnesium powder preparation equipment and method is provided for the present application;

[0028] Figure 5 This is a side-view three-dimensional structural diagram of the fixing box of a continuous nano-magnesium powder preparation device and method proposed in this invention;

[0029] Figure 6 This is a schematic diagram of the auxiliary structure of the continuous nano-magnesium powder preparation equipment and method proposed in this invention;

[0030] Figure 7 for Figure 5 Enlarged view of point A in the middle;

[0031] Figure 8 This is a three-dimensional structural diagram of the impurity removal structure of the continuous nano-magnesium powder preparation equipment and method proposed in this invention.

[0032] Figure 9 This is a three-dimensional structural diagram of the unfixed box in the continuous nano-magnesium powder preparation equipment and method proposed in this invention.

[0033] In the diagram: 1. Fixed base, 2. Fixed bracket, 3. Grinding cylinder, 4. Connecting pipe, 5. Fixed box, 6. Collection structure, 61. Rotating cylinder, 62. Connecting bracket, 63. Rotating rod, 64. Impact fan blade, 65. Reciprocating screw, 66. Screw slider, 67. Connecting rod, 68. Fixed block, 7. Auxiliary structure, 71. Fixed cylinder, 72. Sliding bracket, 73. Adjusting plate, 74. Fixed gear, 75. Fixed scraper, 76. Adjusting block, 77. Adjusting shaft, 78. Adjusting rod, 79. Central shaft, 710. Connecting gear, 711. Connecting shaft, 712. Connecting plate, 713. Connecting block, 714. Mounting rod, 8. Impurity removal structure, 81. Fixed pipe, 82. Placement plate, 83. Adsorption plate, 84. Connecting scraper, 85. Fixed spring, 9. Collection trough, 10. Motor, 11. Rotating rod, 12. Belt drive assembly, 13. Collection box. Detailed Implementation

[0034] Reference Figures 1-9 A continuous nano-magnesium powder preparation device and method, comprising:

[0035] The fixed base 1 and the ball mill cylinder 3 are fixedly installed. A fixed bracket 2 is fixedly installed on the fixed base 1 and the fixed bracket 2 is rotatably sleeved on the outside of the ball mill cylinder 3. A power structure is fixedly installed on the fixed base 1.

[0036] like Figure 3 and Figure 4As shown, the collection structure 6 includes a fixed box 5 fixedly connected to the fixed base 1. The ball mill cylinder 3 is fixedly connected to the fixed box 5 via a connecting pipe 4. An inlet pipe and an outlet pipe are fixedly connected to the ball mill cylinder 3 and the fixed box 5, respectively. A collection groove 9 communicating with the outlet pipe is opened inside the fixed box 5. The collection groove 9 is located at the upper end of the fixed box 5. After the gas and magnesium powder enter the collection groove 9, under centrifugal force, the gas will carry the magnesium powder to diffuse to both sides, so that the magnesium powder can fall into the collection box 13. The collection box 13 is slidably installed on the inner wall of the collection groove 9. A rotating cylinder 61 is rotatably installed on the inner wall of the fixed box 5. The rotating cylinder 61 is a cylinder with its upper and lower ends connected. It is installed on the lower inner wall of the fixed box 5, and its top end extends into the collection groove 9. The side wall of the rotating cylinder 61 is in contact with the inner side wall of the fixed box 5. Therefore, after the gas enters the fixed box 5, it will pass through the inside of the rotating cylinder 61. A connecting bracket 62 is fixedly connected to the rotating cylinder 61. A rotating rod 63 is fixedly installed on the connecting bracket 62. An impact fan blade 64 is fixedly connected to the rotating rod 63. The impact fan blade 64 is a prior art technology. Through the arc shape of the outer side of the fan blade, the gas will cause the impact fan blade 64 to rotate when it passes through the impact fan blade 64. An auxiliary structure 7 is slidably installed inside the fixed box 5.

[0037] After the gas enters the fixed box 5, it impacts the impact fan blade 64, causing the impact fan blade 64 to rotate, which in turn drives the rotating rod 63 to rotate, causing the connecting bracket 62 and the rotating cylinder 61 to rotate as well. The rotation of the rotating cylinder 61 causes the gas to rotate as well. The rotation of the gas has a centrifugal effect, causing the magnesium powder to gather to the outside of the gas, which also facilitates the removal of iron powder. After the gas enters the inside of the collection tank 9, the magnesium powder, under centrifugal treatment, is close to the inner wall of the collection tank 9 and cannot move to the outside of the fixed box 5. The gas is then discharged from the outlet pipe.

[0038] like Figure 5 and Figure 7 As shown, the auxiliary structure 7 includes a fixed cylinder 71. The inner wall of the fixed cylinder 71 is slidably connected to the rotating rod 63 via a moving block. An adjusting plate 73 is rotatably sleeved on the fixed cylinder 71, and the adjusting plate 73 is slidably connected to the inner wall of the collection tank 9 via a sliding bracket 72. A central shaft 79 is rotatably mounted on the adjusting plate 73, and an adjusting rod 78 is slidably mounted on the central shaft 79. An adjusting shaft 77 is fixedly connected to the adjusting rod 78 and passes through it. An adjusting block 76 is rotatably connected to the outer side of the adjusting shaft 77, and a fixed scraper 75 is fixedly connected to the adjusting block 76. The adjusting rod 78 adopts a telescopic structure, and a return spring is fixedly installed on the inner wall of the adjusting rod 78. A transmission structure is fixedly installed on the fixed cylinder 71.

[0039] Under the action of the transmission structure, the fixed scraper 75 installed on the central shaft 79 moves back and forth. The elastic force of the return spring allows the fixed scraper 75 to keep against the inner wall of the collection tank 9. The back and forth movement of the fixed scraper 75 can scrape the magnesium powder adhering to the inner wall of the collection tank 9 into the collection box 13 to collect the magnesium powder. At the same time, under the action of the mounting rod 714, the adjusting plate 73 moves up and down, which drives the fixed scraper 75 to move up and down. The up and down movement of the fixed scraper 75 can prevent the magnesium powder from adhering to the fixed scraper 75 when scraping off the magnesium powder.

[0040] like Figure 5 , Figure 6 and Figure 7 As shown, the transmission structure includes a fixed gear 74 fixedly sleeved on the outside of the fixed cylinder 71, a connecting shaft 711 rotatably connected to the adjusting plate 73, a connecting gear 710 fixedly sleeved on the connecting shaft 711 and meshing with the fixed gear 74, a connecting disk 712 fixedly connected to the connecting gear 710, a connecting block 713 fixedly connected to the connecting disk 712, and the connecting block 713 rotatably connected to the adjusting rod 78.

[0041] The fixed cylinder 71 rotates, causing the fixed gear 74, which is fixedly sleeved on the outside of the fixed cylinder 71, to rotate as well. This causes the connecting gear 710, which meshes with the fixed gear 74, to rotate, making the connecting shaft 711 rotate. This causes the connecting disc 712, which is fixedly mounted on the connecting shaft 711, to rotate. The connecting block 713, which is rotatably mounted on the connecting disc 712, moves in a circular motion along with the connecting disc 712. This causes the end of the adjusting rod 78 connected to the connecting block 713 to also move in a circular motion. Therefore, the adjusting rod 78 as a whole will rotate back and forth around the central axis 79.

[0042] like Figure 3 , Figure 4 and Figure 5 As shown, a reciprocating lead screw 65 is fixedly connected to the rotating rod 63. The fixed cylinder 71 is entirely sleeved on the outside of the reciprocating lead screw 65. Therefore, when the fixed cylinder 71 rotates and moves, there will be no interference between its movement and that of the lead screw slider 66 and the reciprocating lead screw 65. The outer side of the reciprocating lead screw 65 is mechanically fitted with the lead screw slider 66. The side wall of the lead screw slider 66 is fixedly connected to the adjusting plate 73 through the mounting rod 714. The fixed cylinder 71 is sleeved on the outside of the reciprocating lead screw 65. A connecting rod 67 is slidably connected to the inner wall of the reciprocating lead screw 65. A fixed plug 68 corresponding to the air outlet pipe is fixedly installed on the connecting rod 67. An adjusting spring is fixedly installed between the connecting rod 67 and the inner wall of the reciprocating lead screw 65.

[0043] When the rotating rod 63 rotates, the reciprocating screw 65 fixedly installed on the rotating rod 63 also rotates, causing the screw slider 66, which is mechanically engaged with the reciprocating screw 65, to move up and down. As the screw slider 66 moves, it pushes the fixed block 68, causing the fixed block 68 to move upward and block the air outlet. When the airflow reaches the vicinity of the air outlet, it cannot continue to flow. Therefore, the magnesium powder is no longer lifted by the gas and falls down, making it easier for the magnesium powder to fall into the collection box 13. Then the screw slider 66 moves downward, and the fixed block 68 also moves downward under the action of gravity.

[0044] like Figure 8 As shown, a cleaning structure 8 is fixedly installed inside the fixed box 5. The cleaning structure 8 includes a fixed tube 81 fixedly installed on the inner wall of the fixed box 5. A placement plate 82 is slidably sleeved on the outer side of the fixed tube 81. An adsorption plate 83 is slidably connected to the inner wall of the rotating cylinder 61. A magnet is installed on the adsorption plate 83. The magnetic force of the magnet can adsorb iron powder onto the adsorption plate 83. The adsorption plate 83 is rotatably connected to the placement plate 82. A connecting scraper 84 corresponding to the adsorption plate 83 is fixedly installed on the placement plate 82. A fixing spring 85 is fixedly connected between the placement plate 82 and the inner wall of the fixed box 5.

[0045] When the rotating cylinder 61 rotates, the adsorption plate 83 also rotates, while the connecting scraper 84 does not rotate. Therefore, the connecting scraper 84 scrapes the iron powder on the adsorption plate 83 and it falls onto the placement plate 82. The top of the placement plate 82 is located below the fixed tube 81, so the iron powder on the placement plate 82 is not easily affected by the lift and moves upward. Moreover, as the amount of iron powder increases, the fixed spring 85 contracts and the placement plate 82 moves downward, further preventing the iron powder from being carried away by the gas.

[0046] like Figure 1 and Figure 2 As shown, sealing flanges are fixedly installed at the connection points of the connecting pipe 4, the inlet pipe and the outlet pipe with the corresponding ball mill cylinder 3 and the fixed box 5 to seal the device and prevent gas leakage.

[0047] like Figure 1 As shown, the power structure includes a motor 10 fixedly mounted on a fixed base 1. A rotating rod 11 is fixedly connected to the output end of the motor 10. The rotating rod 11 and the ball milling cylinder 3 are connected by a belt drive assembly 12. After the motor 10 is started, its output end drives the rotating rod 11 to rotate. Under the action of the belt drive assembly 12, the ball milling cylinder 3 rotates together with the rotating rod 11, causing the cast iron balls inside the ball milling cylinder 3 to rotate and ball mill the magnesium block into nano-sized magnesium powder.

[0048] A method for preparing continuous nano-magnesium powder includes the following steps:

[0049] S1. The magnesium block is fed into the ball mill cylinder 3, the motor 10 is started, and inert gas is introduced into the ball mill cylinder 3 at the same time. After the motor 10 starts, its output end drives the rotating rod 11 to rotate. Under the action of the belt drive assembly 12, the ball mill cylinder 3 rotates with the rotating rod 11, causing the cast iron ball inside the ball mill cylinder 3 to rotate and ball mill the magnesium block, grinding it into nano-sized magnesium powder. At the same time, when the magnesium powder particles are ground to the nano-sized, the magnesium powder will be blown towards the connecting pipe 4 by the flow of inert gas and finally enter the fixed box 5 for collection.

[0050] S2. After the magnesium powder enters the fixed box 5, it first enters the inner side of the rotating cylinder 61 through the fixed pipe 81. The iron powder in the magnesium powder will be attracted by the adsorption plate 83 and adsorbed on the adsorption plate 83. The magnesium powder with higher purity flows upward with the gas. During the gas flow, the gas will blow towards the impact fan blade 64, causing the impact fan blade 64 to rotate. The gas will impact the impact fan blade 64, causing the impact fan blade 64 to rotate, driving the rotating rod 63 to rotate together, causing the connecting bracket 62 and the rotating cylinder 61 to rotate accordingly. The rotation of the rotating cylinder 61 will also cause the gas to rotate. The rotation of the gas can play a centrifugal effect, causing the magnesium powder to gather to the outside of the gas, which also facilitates the removal of iron powder. After the gas enters the inner side of the collection tank 9, the magnesium powder, under centrifugal treatment, is close to the inner wall of the collection tank 9 and cannot move to the outside of the fixed box 5. The gas is discharged from the gas outlet pipe.

[0051] S3. During the rotation of the rotating rod 63, the fixed cylinder 71 rotates accordingly, causing the fixed gear 74, which is fixedly sleeved on the outside of the fixed cylinder 71, to rotate as well. This causes the connecting gear 710, which meshes with the fixed gear 74, to rotate, resulting in the rotation of the connecting shaft 711. This, in turn, causes the connecting disc 712, which is fixedly mounted on the connecting shaft 711, to rotate. The connecting block 713, which is rotatably mounted on the connecting disc 712, moves in a circular motion along with the connecting disc 712. This causes the end of the adjusting rod 78 connected to the connecting block 713 to also move in a circular motion. Therefore, the adjusting rod 78 as a whole will rotate back and forth around the central shaft 79, causing the fixed scraper 75 mounted on the central shaft 79 to rotate back and forth accordingly. The return spring... The elasticity of the fixed scraper 75 allows it to remain pressed against the inner wall of the collection tank 9. The back-and-forth movement of the fixed scraper 75 scrapes the magnesium powder adhering to the inner wall of the collection tank 9 into the collection box 13 for collection. When the rotating cylinder 61 rotates, the adsorption plate 83 also rotates, while the connecting scraper 84 does not rotate. Therefore, the connecting scraper 84 scrapes the iron powder off the adsorption plate 83 and onto the placement plate 82. The top of the placement plate 82 is located below the fixed tube 81, so the iron powder on the placement plate 82 is not easily affected by the lift and moves upward. Moreover, as the amount of iron powder increases, the fixed spring 85 contracts and the placement plate 82 moves downward, further preventing the iron powder from being carried away by the gas.

[0052] S4. When the rotating rod 63 rotates, the reciprocating lead screw 65 fixedly installed on the rotating rod 63 also rotates, causing the lead screw slider 66, which is mechanically engaged with the reciprocating lead screw 65, to move up and down. Under the action of the mounting rod 714, the adjusting plate 73 moves up and down accordingly, driving the fixed scraper 75 to move up and down as well. The up and down movement of the fixed scraper 75 prevents the magnesium powder from adhering to the fixed scraper 75 when scraping it. At the same time, as the lead screw slider 66 moves, it pushes the fixed block 68, causing the fixed block 68 to move upward and block the air outlet. When the airflow reaches the vicinity of the air outlet, it cannot continue to flow. Therefore, the magnesium powder is no longer lifted by the gas and falls down, making it easier for the magnesium powder to fall into the collection box 13. Then the lead screw slider 66 moves downward, and the fixed block 68 also moves downward under the action of the adjusting spring, returning to its original position.

[0053] In this invention, the magnesium block is first fed into the ball mill cylinder 3, then the motor 10 is started, and inert gas is simultaneously introduced into the ball mill cylinder 3. After the motor 10 starts, its output end drives the rotating rod 11 to rotate. Under the action of the belt drive assembly 12, the ball mill cylinder 3 rotates together with the rotating rod 11, causing the cast iron balls inside the ball mill cylinder 3 to rotate and ball mill the magnesium block, grinding it into nano-sized magnesium powder. At the same time, when the magnesium powder particles are ground to the nano-scale, the magnesium powder is blown towards the connecting pipe 4 by the flow of inert gas, and finally enters the fixed box 5 for collection. After the magnesium powder enters the fixed box 5, it first enters the inner side of the rotating cylinder 61 through the fixed pipe 81. The iron in the magnesium powder... The powder is attracted to the adsorption plate 83 and adsorbed onto the adsorption plate 83. The higher purity magnesium powder flows upward with the gas. During the gas flow, the gas impacts the impact fan blade 64, causing the impact fan blade 64 to rotate, which drives the rotating rod 63 to rotate as well. This causes the connecting bracket 62 and the rotating cylinder 61 to rotate as well. The rotation of the rotating cylinder 61 causes the gas to rotate as well. The rotation of the gas has a centrifugal effect, causing the magnesium powder to gather to the outside of the gas. This also facilitates the removal of iron powder. After the gas enters the inside of the collection tank 9, the magnesium powder, under centrifugal treatment, is close to the inner wall of the collection tank 9 and cannot move to the outside of the fixed box 5. The gas is then discharged from the gas outlet.

[0054] Simultaneously, as the rotating rod 63 rotates, the fixed cylinder 71 rotates accordingly, causing the fixed gear 74, which is fixedly sleeved on the outside of the fixed cylinder 71, to rotate as well. This causes the connecting gear 710, which meshes with the fixed gear 74, to rotate, resulting in the rotation of the connecting shaft 711. This, in turn, causes the connecting disc 712, which is fixedly mounted on the connecting shaft 711, to rotate. The connecting block 713, which is rotatably mounted on the connecting disc 712, moves in a circular motion along with the connecting disc 712. This causes the end of the adjusting rod 78 connected to the connecting block 713 to also move in a circular motion. Therefore, the adjusting rod 78 as a whole will rotate back and forth around the central shaft 79, causing the fixed scraper 75 mounted on the central shaft 79 to rotate back and forth accordingly, thus activating the return spring. The elasticity allows the fixed scraper 75 to remain pressed against the inner wall of the collection tank 9. The back-and-forth movement of the fixed scraper 75 scrapes the magnesium powder adhering to the inner wall of the collection tank 9 into the collection box 13 for collection. When the rotating cylinder 61 rotates, the adsorption plate 83 also rotates, while the connecting scraper 84 does not rotate. Therefore, the connecting scraper 84 scrapes the iron powder on the adsorption plate 83 and drops it onto the placement plate 82. The top of the placement plate 82 is located below the fixed tube 81, so the iron powder on the placement plate 82 is not easily affected by the lift and moves upward. Moreover, as the amount of iron powder increases, the fixed spring 85 contracts and the placement plate 82 moves downward, further preventing the iron powder from being carried away by the gas.

[0055] Furthermore, when the rotating rod 63 rotates, the reciprocating lead screw 65 fixedly installed on the rotating rod 63 also rotates, causing the lead screw slider 66, which is mechanically coupled with the reciprocating lead screw 65, to move up and down. Under the action of the mounting rod 714, the adjusting plate 73 moves up and down accordingly, driving the fixed scraper 75 to move up and down as well. The up and down movement of the fixed scraper 75 prevents the magnesium powder from adhering to the fixed scraper 75 when scraping it off. At the same time, as the lead screw slider 66 moves, it pushes the fixed block 68, causing the fixed block 68 to move upward and block the air outlet. When the airflow reaches the vicinity of the air outlet, it cannot continue to flow. Therefore, the magnesium powder is no longer lifted by the gas and falls down, making it easier for the magnesium powder to fall into the collection box 13. Then, the lead screw slider 66 moves downward, and the fixed block 68 also moves downward under the action of the adjusting spring, returning to its original position, and the gas is discharged.

Claims

1. A continuous nano-magnesium powder preparation device, characterized in that, include: A fixed base (1) and a ball mill cylinder (3) are provided. A fixed bracket (2) is fixedly installed on the fixed base (1), and the fixed bracket (2) is rotatably sleeved on the outside of the ball mill cylinder (3). A power structure is fixedly installed on the fixed base (1). The collection structure (6) includes a fixed box (5) fixedly connected to the fixed base (1), the ball mill cylinder (3) is connected to the fixed box (5) through the connecting pipe (4), the ball mill cylinder (3) and the fixed box (5) are respectively fixedly connected to an air inlet pipe and an air outlet pipe, the fixed box (5) has a collection groove (9) connected to the air outlet pipe inside, the collection groove (9) is slidably installed with a collection box (13) on the inner wall of the collection groove (9), the fixed box (5) is rotatably installed with a rotating cylinder (61) on the inner wall, the rotating cylinder (61) is fixedly connected with a connecting bracket (62), the connecting bracket (62) is fixedly installed with a rotating rod (63), the rotating rod (63) is fixedly connected with an impact fan blade (64), and the fixed box (5) is slidably installed with an auxiliary structure (7). The auxiliary structure (7) includes a fixed cylinder (71), the inner wall of which is slidably connected to a rotating rod (63) via a moving block, an adjusting plate (73) is rotatably sleeved on the fixed cylinder (71), and the adjusting plate (73) is slidably connected to the inner wall of the collection trough (9) via a sliding bracket (72), a central shaft (79) is rotatably mounted on the adjusting plate (73), an adjusting rod (78) is slidably mounted on the central shaft (79), an adjusting shaft (77) is fixedly connected to the adjusting rod (78) and passes through it, an adjusting block (76) is rotatably connected to the outer side of the adjusting shaft (77), a fixed scraper (75) is fixedly connected to the adjusting block (76), the adjusting rod (78) adopts a telescopic structure, and a return spring is fixedly mounted on the inner wall of the adjusting rod (78), and a transmission structure is fixedly mounted on the fixed cylinder (71); The transmission structure includes a fixed gear (74) fixedly sleeved on the outside of the fixed cylinder (71), a connecting shaft (711) rotatably connected to the adjusting plate (73), a connecting gear (710) meshing with the fixed gear (74) fixedly sleeved on the connecting shaft (711), a connecting disc (712) fixedly connected to the connecting gear (710), a connecting block (713) fixedly connected to the connecting disc (712), and the connecting block (713) rotatably connected to the adjusting rod (78). A reciprocating screw (65) is fixedly connected to the rotating rod (63). A screw slider (66) is mechanically fitted on the outer side of the reciprocating screw (65). The side wall of the screw slider (66) is fixedly connected to the adjusting plate (73) through the mounting rod (714). The fixing cylinder (71) is sleeved on the outer side of the reciprocating screw (65). A connecting rod (67) is slidably connected to the inner wall of the reciprocating screw (65). A fixing block (68) corresponding to the air outlet pipe is fixedly installed on the connecting rod (67). An adjusting spring is fixedly installed between the connecting rod (67) and the inner wall of the reciprocating screw (65). The fixed box (5) is equipped with a cleaning structure (8), which includes a fixed tube (81) fixedly installed on the inner wall of the fixed box (5). A placement plate (82) is slidably sleeved on the outer side of the fixed tube (81). An adsorption plate (83) is slidably connected to the inner wall of the rotating cylinder (61). The adsorption plate (83) is rotatably connected to the placement plate (82). A connecting scraper (84) corresponding to the adsorption plate (83) is fixedly installed on the placement plate (82). A fixing spring (85) is fixedly connected between the placement plate (82) and the inner wall of the fixed box (5).

2. The continuous nano-magnesium powder preparation equipment according to claim 1, characterized in that, The connecting pipe (4), the air inlet pipe and the air outlet pipe are all fixedly installed with sealing flanges at the connection points with the corresponding ball mill cylinder (3) and the fixed box (5).

3. The continuous nano-magnesium powder preparation equipment according to claim 2, characterized in that, The power structure includes a motor (10) fixedly mounted on a fixed base (1), and a rotating rod (11) is fixedly connected to the output end of the motor (10). The rotating rod (11) and the ball mill cylinder (3) are connected by a belt drive assembly (12).

4. A method for preparing continuous nano-magnesium powder according to claim 3, characterized in that, Includes the following steps: S1. Feed the magnesium block into the ball mill cylinder (3), start the motor (10), and simultaneously introduce inert gas into the ball mill cylinder (3). After the motor (10) starts, its output end drives the rotating rod (11) to rotate. Under the action of the belt drive assembly (12), the ball mill cylinder (3) rotates together with the rotating rod (11), allowing the cast iron ball inside the ball mill cylinder (3) to rotate and ball mill the magnesium block, grinding it into nano-sized magnesium powder. At the same time, when the magnesium powder particles are ground to the nano-sized, the magnesium powder will be blown to the connecting pipe (4) by the flow of inert gas and finally enter the fixed box (5) to collect the magnesium powder. S2. After the magnesium powder enters the fixed box (5), it first enters the inner side of the rotating cylinder (61) through the fixed tube (81). The iron powder in the magnesium powder will be attracted by the adsorption plate (83) and adsorbed on the adsorption plate (83). The magnesium powder with higher purity flows upward with the gas. During the gas flow, the gas will blow towards the impact fan blade (64), causing the impact fan blade (64) to rotate, driving the rotating rod (63) to rotate together, causing the connecting bracket (62) and the rotating cylinder (61) to rotate. The rotation of the rotating cylinder (61) will also cause the gas to rotate. The rotation of the gas can achieve a centrifugal effect, causing the magnesium powder to gather to the outside of the gas, which also facilitates the removal of iron powder. After the gas enters the inner side of the collection tank (9), the magnesium powder, under centrifugal treatment, is close to the inner wall of the collection tank (9) and cannot move to the outside of the fixed box (5). The gas is discharged from the outlet pipe. S3. During the rotation of the rotating rod (63), the fixed cylinder (71) rotates accordingly, causing the fixed gear (74) fixedly sleeved on the outside of the fixed cylinder (71) to rotate together, causing the connecting gear (710) meshing with the fixed gear (74) to rotate as well, causing the connecting shaft (711) to rotate, causing the connecting plate (712) fixedly mounted on the connecting shaft (711) to rotate, and the connecting block (713) rotatably mounted on the connecting plate (712) to move in a circle together with the connecting plate (712), causing the end of the adjusting rod (78) connected to the connecting block (713) to also move in a circle. Therefore, the adjusting rod (78) as a whole will rotate back and forth around the central shaft (79) as the axis, causing the fixed scraper (75) mounted on the central shaft (79) to rotate back and forth accordingly, resetting. The spring force allows the fixed scraper (75) to remain pressed against the inner wall of the collection tank (9). The back-and-forth movement of the fixed scraper (75) scrapes the magnesium powder adhering to the inner wall of the collection tank (9) into the collection box (13) for collection. When the rotating cylinder (61) rotates, the adsorption plate (83) also rotates, while the connecting scraper (84) does not rotate. Therefore, the connecting scraper (84) scrapes the iron powder off the adsorption plate (83) and onto the placement plate (82). The top of the placement plate (82) is located below the fixed tube (81), so the iron powder on the placement plate (82) is not easily affected by the lift force and moves upward. Moreover, as the amount of iron powder increases, the fixed spring (85) contracts and the placement plate (82) moves downward, further preventing the iron powder from being carried away by the gas. S4. When the rotating rod (63) rotates, the reciprocating lead screw (65) fixedly installed on the rotating rod (63) will also rotate, causing the lead screw slider (66) mechanically cooperating with the reciprocating lead screw (65) to move up and down. Under the action of the mounting rod (714), the adjusting plate (73) moves up and down accordingly, driving the fixed scraper (75) to move up and down accordingly. The up and down movement of the fixed scraper (75) prevents the magnesium powder from adhering to the fixed scraper (75) when scraping it off. At the same time, as the magnesium powder is removed, the sliding plate (66) moves up and down, the sliding plate (66) moves up and down, causing the sliding plate (66) to move ... As the lead screw slider (66) moves, it pushes the fixed block (68), causing the fixed block (68) to move upward and block the air outlet. When the airflow reaches the vicinity of the air outlet, it cannot continue to flow. Therefore, the magnesium powder is no longer lifted by the gas and falls, making it easier for the magnesium powder to fall into the collection box (13). Then, the lead screw slider (66) moves downward, and the fixed block (68) also moves downward under the action of the adjusting spring force, returning to its original position.

Citation Information

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