Uniform distributing device of gypsum powder continuous cooling and aging bin
By designing a multi-stage linkage vibration damping mechanism and a rotating disc, the vibration problem at the pipe connection in the continuous cooling and aging chamber for gypsum powder was solved, achieving stable operation of the equipment and uniform distribution of materials, thus improving the cooling and aging efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZAOZHUANG SHENGSHI MASCH TECH CO LTD
- Filing Date
- 2025-06-24
- Publication Date
- 2026-05-19
AI Technical Summary
The existing uniform distribution feeder in the continuous cooling and aging gypsum powder silo has insufficient vibration damping effect at the pipe connection, which leads to vibration accumulation, loosening, deformation, and even cracking, affecting the stability and safety of the equipment, and reducing the cooling and aging efficiency.
The system employs a multi-stage linkage vibration damping mechanism, including components such as a fixed ring, damping column, connecting plate, and vibration damping ring. It absorbs and disperses vibration energy through springs and telescopic columns, and combines a rotating disc and stirring blades to achieve uniform distribution and mixing of materials, ensuring the stability of pipeline connections and the uniformity of materials.
It effectively reduces pipe loosening and leakage failures, improves the stability and safety of equipment operation, and ensures uniform distribution and processing efficiency of gypsum powder in the cooling and aging chamber.
Smart Images

Figure CN224257828U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of material processing equipment technology, and in particular to a uniform distribution device for a continuous cooling and aging gypsum powder chamber. Background Technology
[0002] The gypsum powder cooling and aging chamber is mainly used for cooling and aging treatment during the gypsum powder production process. Its function is to continuously exchange heat between the high-temperature gypsum powder and the air, reduce the temperature of the gypsum powder to a suitable range, and provide sufficient residence time in the chamber to allow the gypsum powder to complete the stable transformation of its physicochemical properties, eliminate internal stress, balance the moisture content, improve the uniformity of the crystal structure, and ensure that the performance of the gypsum powder meets the requirements of subsequent processing and application, thus realizing the key transition from high-temperature semi-finished product to stable finished product.
[0003] The working principle of the uniform distribution feeder in the continuous cooling and aging gypsum powder bin is to drive the feeding components, such as rotating feeding cones, rake arms, and multi-layer feeding plates, through mechanical transmission or pneumatic devices. This disperses the gypsum powder entering the bin in a horizontal or vertical direction. By utilizing the rotation, swinging, or vibration of the components, the concentrated accumulation of the material during its fall is broken, allowing the gypsum powder to be evenly spread across the bin's cross-section. At the same time, combined with the flow of air or cooling medium within the bin, the material is ensured to be heated or cooled evenly during the cooling and aging process, avoiding uneven temperature distribution or insufficient aging caused by local accumulation. This achieves efficient and uniform distribution and processing of the material.
[0004] However, in existing technologies, the uniform distribution feeders in some continuous cooling and aging gypsum powder silos suffer from insufficient vibration damping at pipe connections. During gypsum powder production, the feeder continuously conveys material, generating high-frequency vibrations during operation. Pipe connections often use rigid connections or simple rubber gaskets for vibration damping, which are insufficient to effectively buffer mechanical vibrations. Over time, vibration energy accumulates and transfers at the connections, causing pipes to loosen, deform, or even crack. This not only increases equipment maintenance costs but also easily leads to gypsum powder leaks, polluting the production environment. Furthermore, it affects the uniformity and continuity of material distribution, reduces cooling and aging efficiency, and restricts the stability and safety of the entire production process. Therefore, a uniform distribution feeder for continuous cooling and aging gypsum powder silos is proposed to address these issues. Utility Model Content
[0005] To overcome the above deficiencies, this utility model provides a uniform distribution feeder for a continuous cooling and aging gypsum powder chamber, aiming to improve the problem of insufficient vibration reduction effect at the pipe connection point in the existing uniform distribution feeder for continuous cooling and aging gypsum powder chambers.
[0006] To achieve the above objectives, the present invention adopts the following technical solution: a uniformly distributed feeder for a continuous cooling and aging gypsum powder chamber, comprising an outer shell, a tank body fixedly connected to the top of the outer shell, a top cover fixedly connected to the top of the tank body, a vibration damping mechanism fixedly connected to the top of the top cover, and a flow diversion mechanism slidably connected inside the tank body; the vibration damping mechanism comprises a fixing ring, the bottom end of the fixing ring fixedly connected to the top of the top cover, a plurality of fixing discs I fixedly connected to the outer inner wall of the fixing ring, damping columns I fixedly connected to adjacent sides of the plurality of fixing discs I, connecting discs fixedly connected to adjacent sides of the plurality of damping columns I, damping columns II fixedly connected to adjacent sides of the plurality of connecting discs, fixing discs II fixedly connected to adjacent sides of the plurality of damping columns II, a vibration damping ring fixedly connected to adjacent sides of the plurality of fixing discs II, a vibration damping pad fixedly connected inside the top of the fixing ring, and auxiliary components fixedly connected inside the plurality of fixing discs I.
[0007] As a further description of the above technical solution: the diversion mechanism includes a rotating disk, the outside of which is slidably connected to the inner wall of the tank, a power shaft is fixedly connected to the top of the rotating disk, multiple baffles are slidably connected inside the rotating disk, a power column is fixedly connected to one side of each of the multiple baffles, multiple telescopic columns are fixedly connected to one side of each of the multiple baffles, and springs are sleeved on the outside of each of the multiple telescopic columns, a diversion disk is slidably connected to the bottom of the rotating disk, and multiple stirring blades are fixedly connected to the outside of the power shaft.
[0008] As a further description of the above technical solution: the auxiliary component includes multiple connecting rods 1, the exterior of which are fixedly connected to the interior of multiple fixed disks 1, and retractable rods 1 are rotatably connected to the interior of both sides of the multiple connecting rods 1, connecting rods 2 are fixedly connected to the interior of the multiple connecting disks, retractable rods 2 are rotatably connected to both sides of the multiple connecting rods 2, connecting rods 3 are fixedly connected to the interior of the multiple fixed disks 2, support plates are fixedly connected to the top of the multiple connecting disks, telescopic columns 1 are fixedly connected to the top of adjacent sides of the multiple support plates, limit plates are fixedly connected to adjacent sides of the multiple telescopic columns 1, springs 1 are sleeved on the exterior of the multiple damping columns 1, springs 2 are sleeved on the exterior of the multiple damping columns 2, and springs 3 are sleeved on the exterior of the multiple telescopic columns 1.
[0009] As a further description of the above technical solution: the inner wall of the vibration damping mechanism is fixedly connected to a conveying pipe, and the bottom end of the outer shell is fixedly connected to a bracket.
[0010] As a further description of the above technical solution: the top of the damping pad is fixedly connected to the inside of the bottom end of the conveying pipe, the inner wall of the damping ring is fixedly connected to the outside of the bottom end of the conveying pipe, and the adjacent sides of the plurality of limiting plates are fixedly connected to the outside of the bottom end of the conveying pipe.
[0011] As a further description of the above technical solution: the adjacent sides of the plurality of retractable rods one are respectively rotatably connected to both sides of the plurality of connecting rods two, and the adjacent sides of the plurality of retractable rods two are respectively rotatably connected to both sides of the plurality of connecting rods three.
[0012] As a further description of the above technical solution: the other end of the plurality of power columns is fixedly connected to the inside of the rotating disk, the other end of the plurality of telescopic columns II is fixedly connected to the inside of the rotating disk, the outside of the diverter plate is fixedly connected to the inside of the tank, and the outside of the plurality of springs IV is slidably connected to the inside of the rotating disk.
[0013] As a further description of the above technical solution: the interior of the rotating disk has multiple slots, and the interior of the diverting disk has multiple slots.
[0014] This utility model has the following beneficial effects:
[0015] 1. In this utility model, the vibration damping ring utilizes a multi-stage linkage structure consisting of a fixed plate 1, a damping column 1, a connecting plate, a damping column 2, and a fixed plate 2 to drive spring 1 and spring 2 to extend and deform, absorbing and dispersing vibration energy. At the same time, the limiting plate, through the connection between the support plate and the extension column 1, drives spring 3 to undergo elastic deformation to further buffer vibration. The vibration damping pad directly provides flexible support to the bottom of the conveying pipeline, suppressing vibration transmission. This achieves reliable vibration damping protection for the pipeline connection parts, significantly reducing pipeline loosening and leakage caused by vibration, and improving the stability and safety of equipment operation.
[0016] 2. In this utility model, when the stirring blade is working, the power shaft drives the rotating disk to rotate. At this time, the baffle closes under the elastic force of the spring four, blocking the groove of the rotating disk and preventing gypsum powder from falling. After stirring, the baffle retracts under the action of the power column and the telescopic column two. The gypsum powder falls evenly into the shell through the groove of the rotating disk and the distribution disk, thereby achieving the effect of preventing material from falling during stirring and accurately controlling the even distribution of material after stirring. This ensures the uniform distribution of gypsum powder in the cooling and aging chamber and improves processing efficiency. Attached Figure Description
[0017] Figure 1 This is a three-dimensional schematic diagram of the uniformly distributed feeder for the continuous cooling and aging gypsum powder chamber proposed in this utility model.
[0018] Figure 2This is a schematic diagram of the top cover of the uniformly distributed feeder for the continuous cooling and aging gypsum powder chamber proposed in this utility model.
[0019] Figure 3 for Figure 2 Enlarged view of point A in the middle;
[0020] Figure 4 This is a schematic diagram of the flow distribution mechanism of the uniform distribution feeder for the gypsum powder continuous cooling and aging chamber proposed in this utility model.
[0021] Figure 5 for Figure 4 Enlarged view of point B in the middle.
[0022] Legend:
[0023] 1. Outer shell; 2. Tank body; 3. Top cover; 4. Vibration damping mechanism; 41. Fixing ring; 42. Fixing plate one; 43. Damping column one; 44. Connecting plate; 45. Damping column two; 46. Fixing plate two; 47. Vibration damping ring; 48. Vibration damping pad; 49. Auxiliary components; 491. Connecting rod one; 492. Retracting rod one; 493. Connecting rod two; 494. Retracting rod two; 495. Connecting rod three; 496. Support plate; 497. Telescopic column one; 498. Limiting plate; 401. Spring one; 402. Spring two; 403. Spring three; 5. Diverting mechanism; 51. Rotating disk; 52. Power shaft; 53. Power column; 54. Telescopic column two; 55. Spring four; 56. Diverting disk; 57. Baffle; 58. Stirring blade; 6. Conveying pipe; 7. Support. Detailed Implementation
[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0025] Reference Figures 1 to 3This utility model provides an embodiment of a uniformly distributed feeder for a continuous cooling and aging gypsum powder chamber, comprising a shell 1. The shell 1 serves as the supporting structure for the entire feeder, providing protection and a mounting base for internal components such as the tank 2 and the diversion mechanism 5, ensuring long-term stable operation of the feeder in harsh industrial environments. The tank 2 is fixedly connected to the top of the shell 1. The tank 2 stores and transports gypsum powder, and its volume is designed according to the production scale. A top cover 3 is fixedly connected to the top of the tank 2. The top cover 3 seals the tank 2, preventing gypsum powder from flying during transport, and also provides a mounting base for the vibration damping mechanism 4. The vibration damping mechanism 4 is fixedly connected to the top of the top cover 3. During the transport of gypsum powder, vibrations are generated due to the flow of materials and the operation of the equipment. The vibration damping mechanism 4 absorbs and buffers these vibration energies.
[0026] The tank body 2 has a sliding connection to a diversion mechanism 5. When gypsum powder enters from the top of the tank body 2, the diversion mechanism 5 adjusts its position by sliding up and down, allowing the gypsum powder to fall evenly into the cooling and aging chamber through the diversion holes. The vibration damping mechanism 4 includes a fixing ring 41. The wall thickness of the fixing ring 41 is generally 10-15mm, which can withstand the force generated when the vibration damping mechanism 4 is working, ensuring the structural stability of the entire vibration damping mechanism 4. The bottom end of the fixing ring 41 is fixedly connected to the top end of the top cover 3. When the material distributor vibrates during operation, the fixing ring 41 can transfer the vibration energy to the internal vibration damping components for processing, while preventing external dust, moisture, and other impurities from entering the vibration damping mechanism 4 and affecting its normal operation. Multiple fixing discs 42 are fixedly connected to the outer inner wall of the fixing ring 41. Their function is to provide fixed support points for the damping column 43, so that the damping column 43 can be stably installed inside the fixing ring 41.
[0027] Damping columns 43 are fixedly connected to adjacent sides of multiple fixed discs 42. When the material distributor vibrates, the hydraulic oil inside the damping columns 43 generates flow resistance with the vibration, converting the vibration energy into heat energy of the hydraulic oil, which is then dissipated. The damping coefficient of the damping columns 43 is designed according to the vibration frequency and amplitude of the material distributor, ensuring good vibration reduction under different vibration conditions. Connecting discs 44 are fixedly connected to adjacent sides of the multiple damping columns 43. When the material distributor vibrates, the connecting discs 44 can evenly distribute the vibration energy to each damping column 43, improving vibration reduction efficiency. Damping columns 45 are fixedly connected to adjacent sides of the multiple connecting discs 44. After the vibration is initially processed by the damping columns 43, the remaining vibration energy is transferred to the damping columns 45 for further processing, making the vibration reduction effect even more significant.
[0028] Multiple damping columns 45 are fixedly connected to adjacent sides of each other by fixed disks 46. The diameter and thickness of the fixed disks 46 are designed according to the size and distribution of the damping columns 45, and are able to withstand the forces generated by the damping columns 45 during operation, ensuring the stability of the entire vibration damping structure. Vibration damping rings 47 are fixedly connected to adjacent sides of the multiple fixed disks 46. When vibration is transmitted to the vibration damping rings 47, the rings 47 undergo elastic deformation, converting the vibration energy into their own elastic potential energy, reducing the transmission of vibration. Vibration damping pads 48 are fixedly connected to the top of the fixed rings 41. The damping pads 48 have good elasticity and wear resistance, and can maintain stable vibration damping performance during long-term use. Auxiliary components 49 are fixedly connected to the interior of the multiple fixed disks 42. The function of the auxiliary components 49 is to enhance the stability and reliability of the vibration damping mechanism 4.
[0029] Reference Figures 3 to 5 The diversion mechanism 5 includes a rotating disk 51, which serves as the core carrier of the mechanism, providing a mounting base for components such as the baffle 57 and the diversion disk 56. Its rotation is crucial for achieving uniform distribution of gypsum powder, altering the falling path and distribution pattern of the powder. The rotating disk 51 is externally slidably connected to the inner wall of the tank 2. Driven by the power shaft 52, the disk 51 can rotate 360 degrees, coordinating the components on it to evenly disperse the gypsum powder below the tank 2, providing a uniform material base for the subsequent cooling and aging process. The top of the rotating disk 51 is fixedly connected to the power shaft 52, with the axis of the power shaft 52 strictly aligned with the center of the rotating disk 51 to ensure stability and coaxiality during rotation, reducing vibration and wear caused by eccentricity.
[0030] Multiple baffles 57 are slidably connected inside the rotating disk 51. When the density of the gypsum powder distribution needs to be adjusted, the operator can drive the baffles 57 to slide through components such as the power column 53, controlling the flow rate and distribution uniformity of the gypsum powder to adapt to different production needs. A power column 53 is fixedly connected to one side of each of the multiple baffles 57. When the position of the baffles 57 needs to be changed, the operator pushes or pulls the power column 53, causing the baffles 57 to slide within the rotating disk 51. Multiple telescopic columns 54 are fixedly connected to one side of each of the multiple baffles 57. Their telescopic stroke and elastic coefficient are designed according to the flow rate and impact force of the gypsum powder, ensuring effective protection of the baffles 57 under different working conditions, while maintaining the blocking and diversion function of the baffles 57 on the gypsum powder. Multiple telescopic columns 2 54 are each fitted with a spring 4 55. When the telescopic column 2 54 is compressed by the impact force of gypsum powder, the spring 4 55 is compressed and stores elastic potential energy. When the impact force decreases, the spring 4 55 releases elastic potential energy, pushes the telescopic column 2 54 to reset, and makes the baffle 57 return to the initial position.
[0031] A distribution plate 56 is slidably connected to the bottom of the rotating disk 51. When gypsum powder falls from the opening on the rotating disk 51, the distribution plate 56 further disperses the gypsum powder by adjusting its rotation and tilt angle, making it evenly distributed in the cooling and aging chamber. Multiple stirring blades 58 are fixedly connected to the outside of the power shaft 52. The rotation of the stirring blades 58 can break up the agglomeration of gypsum powder, making the gypsum powder more evenly distributed on the rotating disk 51 under the action of gravity and centrifugal force. At the same time, it promotes the contact between gypsum powder and air, which helps the subsequent cooling and aging process.
[0032] Reference Figures 1 to 3 The auxiliary component 49 includes multiple connecting rods 491, each with a retractable rod 492 rotatably connected to its two sides. When the vibration damping mechanism 4 is subjected to vibration, the retractable rods 492 can flexibly rotate and extend on both sides of the connecting rods 491, absorbing vibration energy through their extension and retraction. Multiple connecting discs 44 have connecting rods 493 fixedly connected to their interiors. During vibration damping, the connecting rods 493 stably transmit the force and vibration to the connecting discs 44, ensuring the coordinated operation of components such as the retractable rods 494 and maintaining the overall stability of the auxiliary component 49. Multiple connecting rods 493 have retractable rods 494 rotatably connected to their two sides. When vibration is transmitted to the connecting discs 44, the retractable rods 494 can rotate and extend, working in conjunction with the retractable rods 492 to further absorb and buffer vibration energy.
[0033] Multiple fixed discs 46 are internally connected to connecting rods 495. During vibration damping, connecting rods 495 transmit the force and vibration of the fixed discs 46 to components such as the retractable rods 494, while also bearing the feedback force from these components, ensuring the force balance among the various parts of the auxiliary components 49 and enabling the vibration damping mechanism 4 to operate stably. Multiple connecting discs 44 are topped with support plates 496. When the vibration damping mechanism 4 is working, the support plates 496 can bear the force transmitted by the telescopic columns 497, distributing it evenly across the connecting discs 44 to prevent excessive local stress. Telescopic columns 497 are fixedly connected to the tops of adjacent sides of the multiple support plates 496. When the conveying pipe 6 is displaced due to vibration, the telescopic columns 497 can extend and retract according to the displacement, absorbing vibration energy through their own extension and retraction, thus limiting the displacement amplitude of the conveying pipe 6.
[0034] Multiple telescopic columns 497 are fixedly connected to adjacent sides of each other with limiting plates 498. When the telescopic column 497 extends or retracts to its limit position, the limiting plate 498 contacts the conveying pipe 6, preventing further displacement and avoiding damage to the conveying pipe 6 due to excessive displacement. Multiple damping columns 43 are each fitted with a spring 401. When the damping column 43 is subjected to vibration compression or tension, the spring 401 deforms accordingly to store elastic potential energy. When the vibration weakens, the spring 401 releases the elastic potential energy, helping the damping column 43 to quickly return to its original position. The spring 401, in conjunction with the damping column 43, can more effectively absorb and buffer vibration energy under vibrations of different frequencies. Multiple damping columns 45 are each fitted with a spring 402. The spring 402 has a similar structure and function to the spring 401 and is fitted outside the damping column 45, working in conjunction with it.
[0035] Multiple telescopic columns 497 are each fitted with a spring 403. When the telescopic column 497 is vibrated and expands due to the impact of the conveying pipe 6, the spring 403 absorbs some energy by compressing or stretching. When the vibration weakens, the spring 403 releases its elastic potential energy, helping the telescopic column 497 to quickly reset and ensuring that the limit plate 498 returns to its initial position in time. The inner wall of the vibration damping mechanism 4 is fixedly connected to the conveying pipe 6, which is used to convey gypsum powder. Its inner wall is smooth, and its diameter is designed according to the flow rate and conveying requirements of the gypsum powder. The bottom end of the outer shell 1 is fixedly connected to the bracket 7, which is firmly connected to the bottom end of the outer shell 1, supporting the entire material distributor to a suitable height, facilitating the input and output of gypsum powder and the maintenance of the equipment. The top of the vibration damping pad 48 is fixedly connected to the inside of the bottom end of the conveying pipe 6. When the conveying pipe 6 vibrates due to the flow of gypsum powder or the operation of the equipment, the vibration damping pad 48 undergoes elastic deformation, converting the vibration energy into its own elastic potential energy, reducing the intensity of the vibration transmitted upward to other parts of the conveying pipe 6.
[0036] The inner wall of the damping ring 47 is fixedly connected to the outside of the bottom end of the conveying pipe 6. When the conveying pipe 6 generates radial vibration, the damping ring 47 dissipates the vibration energy into heat energy through elastic deformation and internal damping, further reducing the vibration amplitude of the conveying pipe 6 and ensuring the stability of the conveying pipe 6 during operation. Multiple limiting plates 498 are fixedly connected to the outside of the bottom end of the conveying pipe 6 on adjacent sides. When the conveying pipe 6 is displaced under vibration, the limiting plates 498 cooperate with the telescopic column 497 to limit the displacement amplitude of the conveying pipe 6, preventing it from colliding with or being damaged by other components due to excessive displacement. Multiple retractable rods 492 are rotatably connected to both sides of multiple connecting rods 493 on adjacent sides. When the connecting rod 491 is vibrated, causing the retractable rod 492 to move, the retractable rod 492 can rotate and extend / retract on both sides of the connecting rod 493, transferring and converting vibration energy between different components.
[0037] Multiple contraction rods 494 are rotatably connected to the outer sides of multiple connecting rods 495 on both sides. When the connecting plate 44 and the fixed plate 46 are vibrated, the contraction rods 494 can rotate and extend, cooperating with the contraction rods 492, damping columns, and other components to further absorb and buffer vibration energy. The other end of multiple power columns 53 is fixedly connected to the inside of the rotating plate 51. The operator can flexibly adjust the position of the baffle 57 in the rotating plate 51 through the power columns 53, thereby controlling the flow and distribution of gypsum powder to meet the needs of different production conditions. The other end of multiple telescopic columns 54 is fixedly connected to the inside of the rotating plate 51. The outside of the diversion plate 56 is fixedly connected to the inside of the tank 2. The diversion plate 56 is fixed inside the tank 2 and can rotate stably under the drive of the rotating plate 51, further dispersing the gypsum powder falling from the rotating plate 51, so that the gypsum powder can be evenly distributed in the cooling and aging chamber.
[0038] Multiple springs 55 are externally slidably connected to the interior of the rotating disk 51. During extension and retraction, the springs 55 provide elastic cushioning and restoring force to the telescopic column 54, ensuring stable operation of the baffle 57 after impact or position adjustment. The rotating disk 51 has multiple drainage channels inside. When the rotating disk 51 rotates, gypsum powder falls through these channels into the distribution disk 56 below, where it is further dispersed. The distribution disk 56 also has multiple drainage channels inside. After falling from the drainage channels of the rotating disk 51, the gypsum powder enters the drainage channels of the distribution disk 56. Through rotation and the distribution of the drainage channels, the distribution disk 56 further disperses the gypsum powder to different locations within the cooling and aging chamber.
[0039] Working principle: When the tank body 2 vibrates, the vibration is first transmitted to the fixed ring 41 connected to the top cover 3 of the tank body 2. The fixed ring 41 drives the damping column 43 to move through the fixed plate 42. The movement of the damping column 43 compresses or stretches the spring 401 sleeved on its outside, initially buffering the vibration. At the same time, the connecting rod 491 inside the fixed plate 42 drives the retraction rod 492 to move. The movement of the retraction rod 492 then drives the connecting rod 493 and the connecting plate 44 to move. The connecting plate 44 then drives the damping column 45 and the fixed plate 46 to move. The spring 402 outside the damping column 45 further buffers the vibration. The support plate 496 at the top of the connecting plate 44 drives the telescopic column 497 and the limiting plate 498 to move. The spring 403 outside the telescopic column 497 buffers the movement of the limiting plate 498. The limiting plate 498, together with the vibration damping ring 47 and the vibration damping pad 48, limits and protects the conveying pipeline 6, thereby achieving all-round vibration damping protection for the conveying pipeline 6, extending the service life of the conveying pipeline 6, and ensuring the stability and safety of the conveying process.
[0040] When the power shaft 52 drives the stirring blade 58 to rotate, the power shaft 52 simultaneously drives the rotating disk 51 to slide on the inner wall of the tank 2. When the rotating disk 51 rotates, the baffle 57 inside it merges under the restriction of the power column 53 and the telescopic column 54. At this time, the spring 55 is in a compressed state. After the baffle 57 merges, it prevents the material from falling from the trough of the rotating disk 51, so that the stirring blade 58 can fully stir the material. After the stirring is completed, the power column 53 and the telescopic column 54 slide inside the rotating disk 51. The elastic force of the spring 55 pushes the baffle 57 to retract. The rotating disk 51 continues to rotate and cooperates with the diversion disk 56 fixed in the tank 2. The troughs on the rotating disk 51 and the diversion disk 56 gradually slide, so that the lime powder can fall evenly into the inner shell 1 through the trough. This achieves the effect of full mixing of materials during the stirring process and uniform falling of lime powder after stirring, improving the efficiency and uniformity of material processing.
[0041] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A uniformly distributed feeder for a continuous cooling and aging gypsum powder chamber, comprising a housing (1), characterized in that: The top of the outer shell (1) is fixedly connected to the tank body (2), the top of the tank body (2) is fixedly connected to the top cover (3), the top of the top cover (3) is fixedly connected to the vibration damping mechanism (4), and the inside of the tank body (2) is slidably connected to the diversion mechanism (5). The vibration damping mechanism (4) includes a fixed ring (41), the bottom end of which is fixedly connected to the top of the top cover (3). Multiple fixed discs (42) are fixedly connected to the outer inner wall of the fixed ring (41). Damping columns (43) are fixedly connected to adjacent sides of the multiple fixed discs (42). Connecting discs (44) are fixedly connected to adjacent sides of the multiple damping columns (43). Damping columns (45) are fixedly connected to adjacent sides of the multiple connecting discs (44). Fixed discs (46) are fixedly connected to adjacent sides of the multiple damping columns (45). Vibration damping rings (47) are fixedly connected to adjacent sides of the multiple fixed discs (46). Vibration damping pads (48) are fixedly connected to the inside of the top of the fixed ring (41). Auxiliary components (49) are fixedly connected to the inside of the multiple fixed discs (42).
2. The uniform distribution feeder for the continuous cooling and aging gypsum powder chamber according to claim 1, characterized in that: The diversion mechanism (5) includes a rotating disk (51), the outside of which is slidably connected to the inner wall of the tank (2), a power shaft (52) is fixedly connected to the top of the rotating disk (51), a plurality of baffles (57) are slidably connected inside the rotating disk (51), a power column (53) is fixedly connected to one side of each of the baffles (57), a plurality of telescopic columns (54) are fixedly connected to one side of each of the baffles (57), a spring (55) is sleeved on the outside of each of the telescopic columns (54), a diversion disk (56) is slidably connected to the bottom of the rotating disk (51), and a plurality of stirring blades (58) are fixedly connected to the outside of the power shaft (52).
3. The uniform distribution feeder for the continuous cooling and aging gypsum powder chamber according to claim 1, characterized in that: The auxiliary component (49) includes multiple connecting rods (491), the exterior of which is fixedly connected to the interior of multiple fixed disks (42). Retractable rods (492) are rotatably connected to the interior of both sides of each connecting rod (491). Connecting rods (493) are fixedly connected to the interior of each connecting disk (44). Retractable rods (494) are rotatably connected to the interior of each connecting rod (493). Connecting rods (3) are fixedly connected to the interior of each fixed disk (46). 495), the top of the multiple connecting discs (44) are respectively fixedly connected to a support plate (496), the top of the multiple support plates (496) are respectively fixedly connected to a telescopic column one (497), the multiple telescopic column one (497) are respectively fixedly connected to a limit plate (498), the multiple damping column one (43) are all fitted with a spring one (401), the multiple damping column two (45) are all fitted with a spring two (402), and the multiple telescopic column one (497) are all fitted with a spring three (403).
4. The uniform distribution feeder for the continuous cooling and aging gypsum powder chamber according to claim 3, characterized in that: The inner wall of the vibration damping mechanism (4) is fixedly connected to a conveying pipe (6), and the bottom end of the outer shell (1) is fixedly connected to a bracket (7).
5. The uniform distribution feeder for the continuous cooling and aging gypsum powder chamber according to claim 4, characterized in that: The top of the damping pad (48) is fixedly connected to the inside of the bottom of the conveying pipe (6), the inner wall of the damping ring (47) is fixedly connected to the outside of the bottom of the conveying pipe (6), and the adjacent sides of the plurality of limiting plates (498) are fixedly connected to the outside of the bottom of the conveying pipe (6).
6. The uniform distribution feeder for the continuous cooling and aging gypsum powder chamber according to claim 3, characterized in that: The adjacent sides of the plurality of retractable rods (492) are respectively rotatably connected to the two sides of the plurality of connecting rods (493), and the adjacent sides of the plurality of retractable rods (494) are respectively rotatably connected to the outer sides of the plurality of connecting rods (495).
7. The uniform distribution feeder for the continuous cooling and aging gypsum powder chamber according to claim 2, characterized in that: The other end of the multiple power columns (53) is fixedly connected to the inside of the rotating disk (51), the other end of the multiple telescopic columns (54) is fixedly connected to the inside of the rotating disk (51), the outside of the diverter (56) is fixedly connected to the inside of the tank (2), and the outside of the multiple springs (55) is slidably connected to the inside of the rotating disk (51).
8. The uniform distribution feeder for the continuous cooling and aging gypsum powder chamber according to claim 2, characterized in that: The rotating disk (51) has multiple slots inside, and the diverting disk (56) has multiple slots inside.