Efficient baking device for non-metallic mineral powder materials and working method of efficient baking device

By using the synchronous reverse rotation of the baking drum, the flip drum and the flip rod in the non-metallic powder baking equipment, combined with the heating rod and the insulation board, the problems of high cost of existing equipment, waste of heat and uneven drying are solved, and efficient and uniform drying effect is achieved.

CN120444870AInactive Publication Date: 2025-08-08SHANDONG JINSHUO NEW MATERIAL TECH CO LTD
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Patent Information

Application Number
CN202510400816.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-01
Publication Date
2025-08-08
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing non-metallic ore powder baking equipment is costly, has serious heat waste, is uneven drying and is difficult to utilize waste heat, and requires professional operation.

Method used

The baking drum is used to combine the synchronous reverse rotation of the flip drum and the flip rod, and combine the heating rod and the insulation board to avoid heat loss and accumulation through the dispersion mechanism to achieve uniform drying.

Benefits of technology

It realizes efficient and uniform drying of non-metallic ore powder, reduces heat loss, maintains drying quality, and uses waste heat for insulation, reducing equipment cost and operation complexity.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an efficient baking device for non-metal mineral powder materials and a working method of the efficient baking device, and belongs to the technical field of non-metal mineral powder processing. The direction adjusting mechanism is arranged on the base; the baking barrel is arranged on the direction adjusting mechanism, and the baking barrel is located over the base; and a driving mechanism. According to the efficient baking device for the non-metallic mineral powder materials and the working method of the efficient baking device, heat is stored through the baking barrel, and synchronous reverse rotation of the turning barrel and the turning rod in the baking barrel is matched, so that the non-metallic mineral powder materials in the turning barrel are baked more sufficiently, uniform drying is guaranteed, and the drying quality is better; according to the efficient baking device for the non-metallic mineral powder material and the working method thereof, the interior is heated through the heating rod, heat loss during external heating is avoided, meanwhile, the heat preservation plate can ensure that the dried non-metallic mineral powder material cannot be rapidly cooled, the quality is prevented from being affected, and meanwhile, the heat accumulation in the baking device is avoided by cooperating with the dispersion mechanism.
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Description

Technical Field

[0001] The present invention belongs to the technical field of non-metallic mineral powder processing, and specifically relates to a high-efficiency baking device for non-metallic mineral powder materials and a working method thereof. Background Art

[0002] Mineral powder is a fine powder extracted from ore, and its composition depends on the composition of the original ore. For example, iron ore can be processed to obtain iron powder, which is a metal mineral powder, while quartz ore can be processed to obtain silica powder, which is a non-metallic mineral powder. Therefore, the composition of mineral powder depends on the composition of the original ore. There are both metal mineral powders and non-metallic mineral powders. Mineral powder has a wide range of applications in industrial production. Metal mineral powder can be used to manufacture alloys, electronic components, magnetic materials, etc.; non-metallic mineral powder can be used to manufacture glass, ceramics, building materials, plastics, etc. In addition, mineral powder can also be used in soil improvement, environmental protection, landfill covering, etc. Different types of mineral powders have different physical and chemical properties and uses, so it is necessary to select appropriate mineral powder according to actual needs.

[0003] In the process of fine processing of non-metallic mineral powder, the powder modification process includes dry method and wet method. For non-metallic mineral powder modified by wet method, baking and drying is a very important process step. The existing baking and drying process generally uses spray dryers, drum dryers, flash dryers, multi-function dryers, fluidized bed dryers, tunnel dryers and other equipment.

[0004] However, these devices are expensive and require professional personnel to operate. In addition, most of them are not convenient for repeatedly combing the materials during the drying process. In addition, when using existing non-metallic mineral powder baking equipment, the baking wire is mostly placed outside the cylinder, which will cause some heat loss and waste. At the same time, the existing equipment cannot dry the non-metallic mineral powder evenly, and the drying quality is poor. Moreover, during the baking process, the residual heat cannot be utilized, resulting in a waste of heat resources. Summary of the Invention

[0005] The purpose of the present invention is to preserve heat through the baking cylinder, and cooperate with the synchronous reverse rotation of the internal turning cylinder and the turning rod to make the non-metallic mineral powder material inside the turning cylinder more fully baked, ensure uniform drying and better drying quality, heat the interior through the heating rod to avoid heat loss during external heating, and at the same time, the insulation plate can ensure that the non-metallic mineral powder material will not cool down quickly after drying, avoiding quality impact, and cooperate with the dispersion mechanism to avoid internal heat accumulation.

[0006] The technical solution adopted by the present invention is as follows: a high-efficiency baking device for non-metallic mineral powder materials, comprising:

[0007] base;

[0008] The direction adjustment mechanism is arranged on the base;

[0009] A baking cylinder, which is arranged on the direction adjustment mechanism and is located directly above the base;

[0010] A driving mechanism is arranged in the baking cylinder;

[0011] A turning cylinder, the turning cylinder is rotatably connected to the baking cylinder and is connected to a driving mechanism;

[0012] A turning rod, the turning rod is rotatably connected to the turning cylinder and is connected to the driving mechanism, and the outside of the turning rod is fixedly connected to a auger;

[0013] A heating rod, which is fixedly connected to the flipping rod and is used for baking non-metallic mineral powder;

[0014] Angle adjustment mechanism, arranged on the base;

[0015] A heat preservation plate, one end of which is rotatably connected to the base, and the other end of which is connected to an angle adjustment mechanism for adjusting the angle of the heat preservation plate; and

[0016] The dispersion mechanism is arranged in the base and is used to disperse the baked non-metallic mineral powder.

[0017] The adjustment mechanism includes an adjustment cylinder and a support hinge, wherein the support hinge is fixedly connected to one end of the top of the base, and one end of the support hinge is fixedly connected to the baking cylinder, and the adjustment cylinder is movably hinged to the other end of the top of the base through a hinge shaft, and the output end of the adjustment cylinder is movably hinged to one end of the baking cylinder through a hinge shaft.

[0018] Wherein, the driving mechanism includes:

[0019] A power component, provided on the baking drum, for controlling the rotation of the turning drum and the turning rod; and

[0020] The synchronous component is arranged on the turning cylinder and the turning rod, and the synchronous component is connected with the power component.

[0021] Among them, the power component includes a flipping motor and a driving gear. The flipping motor is fixedly connected to the edge of one end of the top of the baking cylinder by bolts. The driving gear is rotatably connected to the edge of one end of the top of the baking cylinder, and the driving gear is fixedly connected to the output end of the flipping motor.

[0022] Wherein, the synchronization component includes a first driven gear plate and a second driven gear plate, the first driven gear plate is fixedly connected to one end of the flip cylinder, the second driven gear plate is fixedly connected to one end of the flip rod, and the first driven gear plate and the second driven gear plate are both engaged with the driving gear.

[0023] Among them, the angle adjustment mechanism is two angle adjustment cylinders, one end of the two angle adjustment cylinders is respectively hinged to both sides of one end of the base through a hinge shaft, and the other end of the two angle adjustment cylinders is respectively hinged to both sides of one end of the insulation board through a hinge shaft.

[0024] Among them, the dispersion mechanism includes two pushing cylinders, two slide grooves and a pushing rod. The two slide grooves are respectively opened on both sides of the inner wall of the base. The sides of the pushing rod are respectively slidably connected in the two slide grooves. The two pushing cylinders are respectively fixedly connected to the top two ends of the base, and the output ends of the two pushing cylinders are fixedly connected to the pushing rod.

[0025] The interior of the insulation board is fixedly connected to the hot air pipe, one end of the baking cylinder is fixedly connected to a high-temperature exhaust pump by a bolt, the input end of the high-temperature exhaust pump is connected to the baking cylinder through a conduit, and the output end of the high-temperature exhaust pump is connected to the hot air pipe through a conduit.

[0026] A discharge port is provided at the edge of one end of the top of the baking cylinder, and a discharge port is provided at the edge of one end of the bottom of the baking cylinder.

[0027] A method for using a non-metallic mineral powder material high-efficiency baking device, using the non-metallic mineral powder material high-efficiency baking device according to any one of the above claims, comprising the following steps:

[0028] Step 1: Inject non-metallic mineral powder materials: Adjust the cylinder to extend, so that the baking cylinder as a whole rotates on the support hinge, and lift one end of the discharge port to ensure that the non-metallic mineral powder materials inside will not overflow during the baking process. After the lifting is completed, the non-metallic mineral powder materials are placed into the turning cylinder through the discharge port;

[0029] Step 2: Rotate and bake: The turning motor drives the first driven gear plate and the second driven gear plate through the driving gear to drive the turning cylinder and the turning rod to rotate synchronously in opposite directions, so that the non-metallic mineral powder materials inside can be fully circulated. At the same time, the heating rod inside the turning rod is heated to increase the temperature inside the baking cylinder, so that the non-metallic mineral powder materials can be fully baked.

[0030] Step 3: Moisture extraction: During the baking process, a high-temperature vacuum pump extracts the hot air inside the baking cylinder through a conduit to prevent the internal water vapor from repeatedly affecting the non-metallic mineral powder material. The extracted high-temperature gas enters the hot air pipe to increase the temperature of the insulation board;

[0031] Step 4. Discharge, turn over and keep warm: After baking is completed, adjust the cylinder to contract, so that one end of the discharge port drops, and the turning motor rotates in the opposite direction, so that the non-metallic mineral powder material inside is discharged through the discharge port and enters the insulation plate at the bottom to maintain the temperature and dissipate heat slowly to avoid rapid cooling. At the same time, push the cylinder to control the push rod to move in the slide, and turn it over with the non-metallic mineral powder material inside the insulation plate to avoid internal heat accumulation.

[0032] In summary, due to the adoption of the above technical solution, the beneficial effects of the present invention are:

[0033] (1) In the present invention, heat is preserved by the baking drum, and the internal turning drum and the turning rod are synchronously rotated in opposite directions, so that the non-metallic mineral powder material inside the turning drum is baked more fully, ensuring uniform drying and better drying quality.

[0034] (2) In the present invention, internal heating is achieved by a heating rod to prevent heat loss during external heating. At the same time, the heat preservation plate can ensure that the non-metallic mineral powder material will not cool down quickly after drying, thereby preventing the quality from being affected. At the same time, the dispersion mechanism is used to prevent internal heat accumulation. BRIEF DESCRIPTION OF THE DRAWINGS

[0035] Figure 1 A partial cross-sectional view from a first perspective of the present invention;

[0036] Figure 2 This is a first perspective stereogram of the present invention;

[0037] Figure 3 A partial cross-sectional view from a second perspective of the present invention;

[0038] Figure 4 is a second perspective stereogram of the present invention;

[0039] Figure 5 A three-dimensional diagram of the driving mechanism of the present invention;

[0040] Figure 6 An exploded view of the driving mechanism of the present invention;

[0041] Figure 7 It is a three-dimensional diagram of the angle adjustment mechanism of the present invention;

[0042] Figure 8 A three-dimensional diagram of the dispersion mechanism of the present invention;

[0043] Figure 9 It is an exploded view of the dispersion mechanism of the present invention.

[0044] Markings in the figure: 1. Base; 2. Push cylinder; 3. Adjustment cylinder; 4. High-temperature vacuum pump; 5. Discharge port; 6. Baking cylinder; 7. Turning cylinder; 8. Turning rod; 9. Push rod; 10. Turning motor; 11. Support hinge; 12. Slide; 13. Insulation plate; 14. Hot air pipe; 15. Angle adjustment cylinder; 16. Driving gear; 17. First driven gear disc; 18. Heating rod; 19. Discharge port; 20. Auger; 21. Second driven gear disc. DETAILED DESCRIPTION

[0045] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.

[0046] Example 1, refer to Figure 1-9 : A high-efficiency baking device for non-metallic mineral powder materials, comprising:

[0047] Base 1;

[0048] The direction adjustment mechanism is provided on the base 1;

[0049] The baking cylinder 6 is provided on the adjustment mechanism and is located directly above the base 1;

[0050] The driving mechanism is arranged in the baking cylinder 6;

[0051] The turning cylinder 7 is rotatably connected to the baking cylinder 6 and is connected to the driving mechanism;

[0052] The turning rod 8 is rotatably connected to the turning cylinder 7 and is connected to the driving mechanism. The outside of the turning rod 8 is fixedly connected to the auger 20.

[0053] The heating rod 18 is fixedly connected to the flip rod 8 and is used for baking non-metallic mineral powder;

[0054] Angle adjustment mechanism, provided on the base 1;

[0055] An insulation board 13, one end of the insulation board 13 is rotatably connected to the base 1, and the other end of the insulation board 13 is connected to an angle adjustment mechanism for adjusting the angle of the insulation board 13; and

[0056] The dispersion mechanism is provided in the base 1 and is used to disperse the baked non-metallic mineral powder.

[0057] In this embodiment, the connection between the baking cylinder 6, the turning cylinder 7 and the turning rod 8 is sealed by a sealing ring to ensure that the hot air inside the baking cylinder 6 is not easy to flow during use. The outer surface of the turning cylinder 7 is provided with fine small holes to ensure that the hot air with water inside is discharged. The turning rod 8 is provided with turning leaves and cooperates with the auger 20 to turn the non-metallic mineral powder material inside to ensure that the non-metallic mineral powder material is fully heated and baked. The auger 20 can turn the non-metallic mineral powder material inside when the whole body rotates. The heating rod 18 is inside to avoid external heating and heat loss. The insulation plate 13 is used to support the non-metallic mineral powder material after baking to avoid its rapid cooling and quality loss.

[0058] Specifically, the direction adjustment mechanism includes a direction adjustment cylinder 3 and a support hinge 11. The support hinge 11 is fixedly connected to one end of the top of the base 1, and one end of the support hinge 11 is fixedly connected to the baking cylinder 6. The direction adjustment cylinder 3 is movably hinged to the other end of the top of the base 1 through a hinge shaft, and the output end of the direction adjustment cylinder 3 is movably hinged to one end of the baking cylinder 6 through a hinge shaft.

[0059] In this embodiment, the model of the adjustment cylinder 3 can be selected from any commercially available model as needed, and no further details will be given here. By extending and retracting the adjustment cylinder 3, one end of the baking drum 6 is lifted. Since both ends of the adjustment cylinder 3 are movably hinged to the base 1 and the baking drum 6 respectively through hinge shafts, the lifting is not affected by the angle. The bottom of the support hinge 11 is fixed to the base 1, and a ball joint is provided at the center, which is connected to the baking drum 6, so that the whole can rotate at multiple angles.

[0060] Specifically, the driving mechanism includes:

[0061] A power component, provided on the baking drum 6, for controlling the rotation of the turning drum 7 and the turning rod 8; and

[0062] The synchronous component is provided on the turning cylinder 7 and the turning rod 8, and the synchronous component is connected with the power component.

[0063] In this embodiment, the power component controls the rotation of the synchronization component, so that the turning cylinder 7 and the turning rod 8 can rotate synchronously in opposite directions, ensuring that the non-metallic mineral powder material inside is fully heated.

[0064] Specifically, the power component includes a flipping motor 10 and a driving gear 16. The flipping motor 10 is fixedly connected to the edge of one end of the top of the baking cylinder 6 by bolts. The driving gear 16 is rotatably connected to the edge of one end of the top of the baking cylinder 6, and the driving gear 16 is fixedly connected to the output end of the flipping motor 10.

[0065] In this embodiment, the model of the flipping motor 10 can be selected from those available on the market as needed, and will not be described in detail here. The power of the flipping motor 10 is output through the driving gear 16.

[0066] Specifically, the synchronization component includes a first driven sprocket 17 and a second driven sprocket 21. The first driven sprocket 17 is fixedly connected to one end of the flip cylinder 7, and the second driven sprocket 21 is fixedly connected to one end of the flip rod 8. The first driven sprocket 17 and the second driven sprocket 21 are both engaged with the driving gear 16.

[0067] In this embodiment, the first driven gear disc 17 and the second driven gear disc 21 have the same size and are meshed with the driving gear 16 so that the whole body rotates accordingly.

[0068] Specifically, the angle adjustment mechanism is two angle adjustment cylinders 15, one end of the two angle adjustment cylinders 15 is respectively hinged to both sides of one end of the base 1 through a hinge shaft, and the other end of the two angle adjustment cylinders 15 is respectively hinged to both sides of one end of the insulation board 13 through a hinge shaft.

[0069] In this embodiment: the models of the two angle-adjusting cylinders 15 can be selected from those available on the market as needed, and no further details are given here. By extending and retracting the two angle-adjusting cylinders 15, the angle of the insulation plate 13 relative to the base 1 is controlled, so that the non-metallic mineral powder material baked inside can be poured out, reducing the difficulty of discharge.

[0070] Specifically, the dispersion mechanism includes two pushing cylinders 2, two slide grooves 12 and a pushing rod 9. The two slide grooves 12 are respectively opened on both sides of the inner wall of the base 1. The sides of the pushing rod 9 are respectively slidably connected to the two slide grooves 12. The two pushing cylinders 2 are respectively fixedly connected to the top two ends of the base 1, and the output ends of the two pushing cylinders 2 are fixedly connected to the pushing rod 9.

[0071] In this embodiment: the models of the two pushing cylinders 2 can be selected from those available on the market as needed, and no further details will be given here. Through the extension and retraction of the two pushing cylinders 2, the pushing rod 9 is controlled to slide inside the slide groove 12, and the non-metallic mineral powder material inside the insulation board 13 is dispersed to avoid internal heat accumulation and improve the use effect. At the same time, the shape of the pushing rod 9 can be changed as needed to meet the use in different conditions.

[0072] Specifically, the interior of the insulation plate 13 is fixedly connected to the hot air pipe 14, and one end of the baking cylinder 6 is fixedly connected to the high-temperature vacuum pump 4 by bolts. The input end of the high-temperature vacuum pump 4 is connected to the baking cylinder 6 through a conduit, and the output end of the high-temperature vacuum pump 4 is connected to the hot air pipe 14 through a conduit.

[0073] In this embodiment, the model of the high-temperature vacuum pump 4 can be selected from any model available on the market as needed, and no further details will be given here. The hot air with water vapor inside the baking cylinder 6 is extracted by the high-temperature vacuum pump 4 to avoid the gas transmission interfering with the quality of the non-metallic mineral powder material being baked inside. There is a telescopic tube at the output end of the high-temperature vacuum pump 4 and the input end of the hot air pipe 14 to ensure that the baking cylinder 6 and the insulation plate 13 are not affected when the angle changes. Since the high-temperature vacuum pump 4 is resistant to high temperatures, the hot air will not affect it.

[0074] Specifically, a discharge port 5 is provided at the edge of one end of the top of the baking cylinder 6 , and a discharge port 19 is provided at the edge of one end of the bottom of the baking cylinder 6 .

[0075] In this embodiment, the discharge port 5 is directly connected to the inside of the turning cylinder 7 to prevent the non-metallic mineral powder from falling from the discharge port 19. After the discharge port 19 is tilted, it is convenient for discharge.

[0076] A method for using a high-efficiency baking device for non-metallic mineral powder materials, using a high-efficiency baking device for non-metallic mineral powder materials according to any one of the above claims, comprising the following steps: Step 1, injecting non-metallic mineral powder materials: adjusting the cylinder 3 to extend, so that the baking cylinder 6 as a whole rotates on the support hinge 11, so that one end of the discharge port 5 is lifted to ensure that the non-metallic mineral powder materials inside will not overflow during the baking process. After the lifting is completed, the non-metallic mineral powder materials are placed into the turning cylinder 7 through the discharge port 5; Step 2, rotating and baking: the turning motor 10 drives the first driven gear disc 17 and the second driven gear disc 21 through the driving gear 16 to respectively drive the turning cylinder 7 and the turning rod 8 to rotate synchronously in opposite directions, so that the non-metallic mineral powder materials inside are fully active. At the same time, the heating rod 18 inside the turning rod 8 is heated to make the inside of the baking cylinder 6 The temperature rises, so that the non-metallic mineral powder material is fully baked; Step 3, moisture extraction: During the baking process, the high-temperature vacuum pump 4 extracts the hot air inside the baking cylinder 6 through the conduit to prevent the internal water vapor from repeatedly affecting the non-metallic mineral powder material. The extracted high-temperature gas enters the hot air pipe 14, so that the temperature of the insulation plate 13 increases; Step 4, discharge and turn over insulation: After the baking is completed, the cylinder 3 is adjusted to contract, so that one end of the discharge port 5 is lowered, and the turning motor 10 rotates in the opposite direction, so that the internal non-metallic mineral powder material is discharged through the discharge port 19 and enters the insulation plate 13 at the bottom to maintain the temperature and dissipate heat slowly to avoid rapid cooling. At the same time, the cylinder 2 is pushed to control the push rod 9 to move in the slide 12, and the non-metallic mineral powder material inside the insulation plate 13 is turned over to avoid internal heat accumulation.

[0077] The control method of the present invention is to control by manually starting and closing the switch. The wiring diagram of the power element and the provision of power supply are common knowledge in the field, and the present invention is mainly used to protect mechanical devices. Therefore, the control method and wiring layout are no longer explained in detail in the present invention.

[0078] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A high-efficiency baking device for non-metallic mineral powder materials, characterized in that: include: Base (1); A direction adjustment mechanism is provided on the base (1); A baking cylinder (6), wherein the baking cylinder (6) is arranged on the direction adjustment mechanism, and the baking cylinder (6) is located directly above the base (1); A driving mechanism is arranged in the baking cylinder (6); A turning cylinder (7), wherein the turning cylinder (7) is rotatably connected to the baking cylinder (6), and the turning cylinder (7) is connected to a driving mechanism; A turning rod (8), the turning rod (8) is rotatably connected to the turning cylinder (7), and the turning rod (8) is connected to the driving mechanism, and the outside of the turning rod (8) is fixedly connected to a screw dragon (20); A heating rod (18), the heating rod (18) is fixedly connected to the flip rod (8) and is used for baking non-metallic mineral powder; An angle adjustment mechanism is provided on the base (1); A heat preservation plate (13), one end of the heat preservation plate (13) is rotatably connected to the base (1), and the other end of the heat preservation plate (13) is connected to an angle adjustment mechanism, and the angle adjustment mechanism is used to adjust the angle of the heat preservation plate (13); as well as The dispersion mechanism is arranged in the base (1) and is used for dispersing the baked non-metallic mineral powder.

2. The high-efficiency baking device for non-metallic mineral powder materials according to claim 1, characterized in that: The direction adjustment mechanism comprises a direction adjustment cylinder (3) and a support hinge (11), wherein the support hinge (11) is fixedly connected to one end of the top of the base (1), and one end of the support hinge (11) is fixedly connected to the baking cylinder (6), the direction adjustment cylinder (3) is movably hinged to the other end of the top of the base (1) via a hinge shaft, and the output end of the direction adjustment cylinder (3) is movably hinged to one end of the baking cylinder (6) via a hinge shaft.

3. The high-efficiency baking device for non-metallic mineral powder materials according to claim 1, characterized in that: The driving mechanism comprises: A power component is provided on the baking drum (6) and is used to control the rotation of the turning drum (7) and the turning rod (8); and The synchronous component is arranged on the turning cylinder (7) and the turning rod (8), and the synchronous component is connected to the power component.

4. The high-efficiency baking device for non-metallic mineral powder materials according to claim 1, characterized in that: The power component comprises a flipping motor (10) and a driving gear (16); the flipping motor (10) is fixedly connected to the edge of one end of the top of the baking cylinder (6) by means of bolts; the driving gear (16) is rotatably connected to the edge of one end of the top of the baking cylinder (6); and the driving gear (16) is fixedly connected to the output end of the flipping motor (10).

5. The high-efficiency baking device for non-metallic mineral powder materials according to claim 1, characterized in that: The synchronization component comprises a first driven toothed disc (17) and a second driven toothed disc (21), wherein the first driven toothed disc (17) is fixedly connected to one end of the turning cylinder (7), and the second driven toothed disc (21) is fixedly connected to one end of the turning rod (8), and the first driven toothed disc (17) and the second driven toothed disc (21) are both meshed with the driving gear (16).

6. The high-efficiency baking device for non-metallic mineral powder materials according to claim 1, characterized in that: The angle adjustment mechanism comprises two angle adjustment cylinders (15), one end of each of the two angle adjustment cylinders (15) is movably hinged to both sides of one end of the base (1) via a hinge shaft, and the other end of each of the two angle adjustment cylinders (15) is movably hinged to both sides of one end of the insulation board (13) via a hinge shaft.

7. The high-efficiency baking device for non-metallic mineral powder materials according to claim 1, characterized in that: The dispersion mechanism comprises two pushing cylinders (2), two slide grooves (12) and a pushing rod (9), wherein the two slide grooves (12) are respectively opened on both sides of the inner wall of the base (1), and the sides of the pushing rod (9) are respectively slidably connected in the two slide grooves (12), and the two pushing cylinders (2) are respectively fixedly connected to the top ends of the base (1), and the output ends of the two pushing cylinders (2) are both fixedly connected to the pushing rod (9).

8. The high-efficiency baking device for non-metallic mineral powder materials according to claim 1, characterized in that: The interior of the heat preservation plate (13) is fixedly connected to the hot air pipe (14), one end of the baking cylinder (6) is fixedly connected to the high-temperature air pump (4) by means of bolts, the input end of the high-temperature air pump (4) is connected to the baking cylinder (6) through a conduit, and the output end of the high-temperature air pump (4) is connected to the hot air pipe (14) through a conduit.

9. The high-efficiency baking device for non-metallic mineral powder according to claim 1, characterized in that: A discharge port (5) is provided at the edge of one end of the top of the baking cylinder (6), and a discharge port (19) is provided at the edge of one end of the bottom of the baking cylinder (6).

10. A method for using a high-efficiency baking device for non-metallic mineral powder materials, characterized in that: The device for efficiently baking non-metallic mineral powder materials according to any one of claims 1 to 9 is used, comprising the following steps: S1. Injecting non-metallic mineral powder materials: Adjust the cylinder (3) to extend, so that the baking cylinder (6) as a whole rotates on the support hinge (11), so that one end of the discharge port (5) is lifted to ensure that the non-metallic mineral powder materials inside will not overflow during the baking process. After the lifting is completed, the non-metallic mineral powder materials are placed into the turning cylinder (7) through the discharge port (5); S2, Rotation and baking: The turning motor (10) drives the first driven gear disc (17) and the second driven gear disc (21) through the driving gear (16) to respectively drive the turning cylinder (7) and the turning rod (8) to rotate synchronously in opposite directions, so that the non-metallic mineral powder materials inside are fully moved. At the same time, the heating rod (18) inside the turning rod (8) is heated to increase the temperature inside the baking cylinder (6), so that the non-metallic mineral powder materials are fully baked; S3. Water extraction: During the baking process, the high-temperature vacuum pump (4) extracts the hot air inside the baking cylinder (6) through the conduit to prevent the internal water vapor from repeatedly affecting the non-metallic mineral powder material. The extracted high-temperature gas enters the hot air pipe (14), thereby increasing the temperature of the insulation board (13); S4, discharge, turn over and keep warm: after baking is completed, adjust the cylinder (3) to contract, so that one end of the discharge port (5) is lowered, and the turning motor (10) rotates in the opposite direction, so that the non-metallic mineral powder material inside is discharged through the discharge port (19) and enters the insulation plate (13) at the bottom to maintain the temperature and slowly dissipate heat to avoid rapid cooling. At the same time, the cylinder (2) is pushed to control the push rod (9) to move in the chute (12), and the non-metallic mineral powder material inside the insulation plate (13) is turned over to avoid internal heat accumulation.