Rotary water-cooled vibrating conveyor

The design of the rotary water-cooled vibrating conveyor solves the safety and stability problems caused by the fixed structure of the furnace front feeding conveyor in high-temperature environments, and achieves efficient and stable material conveying and equipment protection.

CN223619493UActive Publication Date: 2025-12-02NANTONG UNITED HEAVY MACHINERY
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422483727.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-15
Publication Date
2025-12-02
Estimated Expiration
2034-10-15

AI Technical Summary

Technical Problem

The existing furnace front feeding conveyor has a fixed structure in high-temperature environments, which leads to reduced safety and service life, poor operational stability, inability to move away from the furnace body, and long-term exposure to high-temperature environments affects the stability and lifespan of the equipment.

Method used

The design incorporates a rotary water-cooled vibrating conveyor, driven by a small sprocket and slewing bearing, with a reducer to rotate the rotating frame. An inertial vibrating motor then conveys the material, which is cooled by a water-cooled chute and corrugated metal hoses, enhancing the equipment's stability and sealing.

Benefits of technology

It achieves stable material conveying in high-temperature environments, with a simple structure, good sealing performance, low material conveying resistance, low power consumption, extended equipment service life, and improved production efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223619493U_ABST
    Figure CN223619493U_ABST
Patent Text Reader

Abstract

According to the technical scheme, the rotary water-cooled vibrating conveyor is characterized in that the rotary water-cooled vibrating conveyor comprises an inertia vibrating conveyor, a rotary mechanism is rotationally connected to the lower portion of the inertia vibrating conveyor, the rotary mechanism comprises a large chain wheel, the outer end of the large chain wheel is connected with a chain in a meshed mode, and the large chain wheel is connected with a water pump. A small chain wheel is engaged in the other end, away from the large chain wheel, of the chain; the speed reducer is arranged to be matched with the small chain wheel and the slewing bearing for transmission, at the moment, the slewing bearing can drive the rotating frame, the rotating frame drives the inertia vibration conveyor to rotate, and under the condition that the front end of the inertia vibration conveyor is cooled and stably conveys and feeds, the front end of the inertia vibration conveyor can be far away from the furnace after feeding is completed; the rotary water-cooled vibrating conveyor can convey materials in a high-temperature environment, is stable in working state, simple in structure, good in sealing performance, small in material conveying resistance and small in power consumption, and is more practical when being applied to metallurgy preparation.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of furnace front feeding and conveying equipment, and in particular to a rotary water-cooled vibrating conveyor. Background Technology

[0002] In the metallurgical industry, converters and refining furnaces have high temperatures, and the use of ordinary feeding equipment is not feasible in terms of process. Therefore, it is necessary to use designated conveying equipment. Thus, it is essential to use more practical conveying equipment for furnace front feeding and conveying.

[0003] Existing furnace front charging conveyors have certain drawbacks in use. First, most furnace front charging conveyors have relatively fixed structures, while the temperature of refining furnaces in metallurgical work is high. After the conveying is completed, the conveyor cannot be moved away from the furnace body, which reduces the safety and service life of the furnace front charging conveyor. Second, the furnace front charging conveyor is exposed to high temperature environment for a long time, which reduces the stability of the furnace front charging conveyor operation. Therefore, we propose a rotary water-cooled vibrating conveyor. Utility Model Content

[0004] To overcome the shortcomings of existing technologies, the purpose of this utility model is to provide a rotary water-cooled vibrating conveyor. By setting a small sprocket and a slewing bearing, when the rotary water-cooled vibrating conveyor is running, the reducer works in conjunction with the small sprocket and the slewing bearing for transmission. At this time, the slewing bearing can drive the rotating frame, and the rotating frame drives the inertial vibrating conveyor to rotate. The inertial vibrating conveyor can stably convey materials while being cooled at the front end. After feeding, the front end can also be moved away from the furnace, allowing the rotary water-cooled vibrating conveyor to convey materials even in high-temperature environments. It has a stable working state, simple structure, good sealing performance, low material conveying resistance, and low power consumption, making the rotary water-cooled vibrating conveyor more practical in metallurgical preparation.

[0005] The above-mentioned technical objective of this utility model is achieved through the following technical solution:

[0006] A rotary water-cooled vibrating conveyor, including an inertial vibrating conveyor, wherein a rotating mechanism is rotatably connected to the lower part of the inertial vibrating conveyor;

[0007] The rotating mechanism includes a large sprocket, with a chain meshing at the outer end of the large sprocket, and a small sprocket meshing at the inner end of the chain away from the large sprocket. A speed reducer is installed at the lower end of the small sprocket, and a slewing bearing is installed at the inner end of the large sprocket.

[0008] By installing small sprockets and slewing bearings, this rotary water-cooled vibrating conveyor becomes more practical in metallurgical manufacturing.

[0009] Furthermore, an inertial vibration motor is movably connected above the slewing bearing, and a damping spring is movably connected to the inner end of the inertial vibration motor, the damping spring being evenly distributed.

[0010] By installing damping springs, the conveying effect of this rotary water-cooled vibrating conveyor was improved.

[0011] Furthermore, a front damping seat is installed at the bottom end of the damping spring, a rear damping seat is movably connected to the rear of the front damping seat, and a rotating frame is installed at the bottom end of the rear damping seat.

[0012] The stability of the conveyor structure was improved by installing a rear vibration damping seat.

[0013] Furthermore, a base is fixedly connected to the lower end of the rotating frame, and a proximity switch device is fixedly connected to the outer end of the base.

[0014] By installing a base, a support structure can be formed at the bottom of the overall structure of the device, making the installation and operation of the conveyor more stable.

[0015] Furthermore, a water-cooled chute is fixedly installed at the front end of the inertial vibration conveyor, and a metal corrugated hose is fixedly connected to the bottom end of the water-cooled chute.

[0016] The practicality of this rotary water-cooled vibrating conveyor is further enhanced by the installation of a water-cooled chute and a corrugated metal hose.

[0017] Furthermore, a conveying trough is provided at the rear of the corrugated metal hose, the conveying trough is located at the inner end of the inertial vibration conveyor, and an inertial vibration motor is installed below the conveying trough.

[0018] By adding a conveyor trough, the conveying efficiency of the equipment can be increased.

[0019] Furthermore, a sprocket cover is movably connected to the lower part of the inertial vibration motor, and the sprocket cover is movably connected to the outer end of the chain.

[0020] By installing a sprocket cover, a protective structure can be formed on the outside of the rotating mechanism, preventing external damage to the drive components of the rotating mechanism.

[0021] In summary, this utility model has the following beneficial effects:

[0022] 1. By setting a small sprocket and a slewing bearing, when the rotary water-cooled vibrating conveyor is running, the reducer works with the small sprocket and the slewing bearing for transmission. At this time, the slewing bearing can drive the rotating frame, and the rotating frame drives the inertial vibrating conveyor to rotate. The inertial vibrating conveyor can stably convey materials while being cooled at the front end. After feeding, the front end can also be moved away from the furnace, allowing the rotary water-cooled vibrating conveyor to convey materials in high-temperature environments. It has a stable working state, simple structure, good sealing performance, low material conveying resistance, and low power consumption, making the rotary water-cooled vibrating conveyor more practical in metallurgical preparation.

[0023] 2. By setting damping springs, multiple damping springs can increase the stability of the inertial vibration motor's operating structure, increase the vibration effect of the inertial vibration motor, enable the rapid and uniform conveying of materials, improve production efficiency, and enhance the conveying effect of the rotary water-cooled vibrating conveyor.

[0024] 3. By installing a water-cooled chute and a corrugated metal hose, the water-cooled chute is in contact with circulating water, which protects it from deformation and maintains a suitable temperature. The corrugated metal hose effectively conducts cooling water, helps control the internal temperature of the equipment, and the corrugated design effectively reduces vibration transmission and impact on the cooling water pipes, thereby protecting the stability of the cooling system, effectively preventing the conveying equipment from overheating, and extending the service life of the equipment. Attached Figure Description

[0025] Figure 1 This is a schematic diagram of the overall structure in this embodiment;

[0026] Figure 2 This is in this embodiment Figure 1 Enlarged structural diagram of the plane at point A in the middle;

[0027] Figure 3 This is in this embodiment Figure 1 A magnified schematic diagram of the plane at point B.

[0028] In the diagram, 1. Water-cooled chute; 2. Inertial vibrating conveyor; 21. Conveying trough; 22. Inertial vibrating motor; 23. Vibration damping spring; 24. Front vibration damping seat; 25. Rear vibration damping seat; 3. Corrugated metal hose; 4. Rotating frame; 5. Rotating mechanism; 51. Large sprocket; 52. Chain; 53. Small sprocket; 54. Reducer; 55. Sprocket cover; 56. Slewing bearing; 6. Base; 7. Proximity switch device. Detailed Implementation

[0029] The present invention will be further described in detail below with reference to the accompanying drawings.

[0030] Identical parts are indicated by the same reference numerals. It should be noted that the terms "front," "rear," "left," "right," "up," and "down" used in the following description refer to directions in the accompanying drawings, while the terms "bottom surface," "top surface," "inner," and "outer" refer to directions toward or away from the geometric center of a specific part, respectively.

[0031] Reference Figure 1-3 As shown, this is a rotary water-cooled vibrating conveyor in a preferred embodiment of the present invention, including an inertial vibrating conveyor 2, and a rotating mechanism 5 rotatably connected to the lower part of the inertial vibrating conveyor 2.

[0032] The rotating mechanism 5 includes a large sprocket 51, with a chain 52 meshing at the outer end of the large sprocket 51. A small sprocket 53 is meshed at the other end of the chain 52 away from the large sprocket 51. A reducer 54 is installed at the lower end of the small sprocket 53, and a slewing bearing 56 is installed at the inner end of the large sprocket 51.

[0033] Reference Figure 1 and Figure 3 As shown, further, an inertial vibration motor 22 is movably connected above the slewing bearing 56, and a damping spring 23 is movably connected to the inner end of the inertial vibration motor 22. The damping springs 23 are evenly distributed.

[0034] Reference Figure 1 and Figure 3 As shown, further, a front damping seat 24 is installed at the bottom end of the damping spring 23, a rear damping seat 25 is movably connected to the rear of the front damping seat 24, and a rotating frame 4 is installed at the bottom end of the rear damping seat 25.

[0035] By installing a reducer 54 in conjunction with a small sprocket 53 at the outer end, the small sprocket 53 drives the large sprocket 51 and chain 52 for transmission. The chain 52 drives the large sprocket 51 for transmission. At this time, the slewing bearing 56 can drive the rotating frame 4, which in turn drives the inertial vibrating conveyor 2 to rotate. The inertial vibrating conveyor 2 can be cooled and stably conveyed at the front end. After feeding, the front end can also be moved away from the furnace, allowing the rotary water-cooled vibrating conveyor to convey materials in high-temperature environments. Multiple damping springs 23 can increase the stability of the inertial vibrating motor 22's operating structure, increase the vibration effect of the inertial vibrating motor 22, and enable fast and uniform material conveying, thereby improving production efficiency. The rotary water-cooled vibrating conveyor can convey materials in high-temperature environments with stable operation. It also has a simple structure, good sealing, low material conveying resistance, and low power consumption, making it more practical for use in metallurgical preparation.

[0036] Reference Figure 1 As shown, the lower end of the rotating frame 4 is fixedly connected to a base 6, and the outer end of the base 6 is fixedly connected to a proximity switch device 7.

[0037] By installing base 6, a support structure can be formed at the bottom of the overall structure of the device, making the installation and operation of the conveyor more stable.

[0038] Reference Figure 1 and Figure 3 As shown, the front end of the inertial vibration conveyor 2 is further fixedly installed with a water-cooled chute 1, and the bottom end of the water-cooled chute 1 is fixedly connected with a metal corrugated hose 3.

[0039] Reference Figure 1 As shown, a conveying trough 21 is further provided at the rear of the metal corrugated hose 3. The conveying trough 21 is located at the inner end of the inertial vibration conveyor 2, and an inertial vibration motor 22 is installed below the conveying trough 21.

[0040] Reference Figure 1-2 As shown, further, a sprocket cover 55 is movably connected to the lower part of the inertial vibration motor 22, and the sprocket cover 55 is movably connected to the outer end of the chain 52.

[0041] By installing water-cooled chute 1 with internal contact with circulating water, the chute 1 can be protected from deformation and maintain a suitable temperature. Combined with metal corrugated hose 3, it can effectively conduct cooling water, helping to control the internal temperature of the equipment, preventing material deterioration or equipment damage due to overheating. Furthermore, the corrugated design effectively reduces vibration transmission and impact on the cooling water pipes, thus protecting the stability of the cooling system. This effectively prevents the conveying equipment from overheating and extends its service life. The conveying trough 21 serves as a channel for material movement. The conveying trough 21 of this conveyor has a certain inclination angle to promote material flow and increase the conveying efficiency of the equipment.

[0042] Specific implementation process: First, the inertial vibration motor 22 is started, and the inertial vibration motor 22 generates periodic vibration. At this time, multiple damping springs 23 can increase the stability of the inertial vibration motor 22's operating structure, increase the vibration effect of the inertial vibration motor 22, and enable the material to be conveyed quickly and evenly, thereby improving production efficiency. The vibration is transmitted to the material through the conveying trough 21, and the material is conveyed by sliding. The conveying trough 21 of this conveyor is at a certain inclination angle to promote the flow of the material. During the conveying process, the water-cooled chute 1 is in contact with circulating water, which can protect the water-cooled chute 1, prevent deformation, and maintain a suitable temperature. With the help of the metal corrugated hose 3, the cooling water can be effectively conducted, which helps to control the internal temperature of the equipment, prevent the material from deteriorating due to overheating or the equipment from being damaged. In addition, the corrugated design can effectively slow down the transmission of vibration and reduce the impact on the cooling water pipes, thereby protecting the stability of the cooling system and effectively preventing the conveying equipment from overheating and extending the service life of the equipment.

[0043] Finally, the reducer 54 works in conjunction with the small sprocket 53 at the outer end. The small sprocket 53 drives the large sprocket 51 and the chain 52 for transmission. The chain 52 drives the large sprocket 51 for transmission. At this time, the slewing bearing 56 can drive the rotating frame 4. The rotating frame 4 drives the inertial vibrating conveyor 2 to rotate. The inertial vibrating conveyor 2 can be cooled and stably conveyed at the front end. After feeding, the front end can also be moved away from the furnace. This allows the rotary water-cooled vibrating conveyor to convey materials in a high-temperature environment. It has a stable working state, simple structure, good sealing, low material conveying resistance, and low power consumption, making the rotary water-cooled vibrating conveyor more practical in metallurgical preparation.

[0044] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claims. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A rotary water-cooled vibrating conveyor, characterized in that: It includes an inertial vibration conveyor (2), and a rotating mechanism (5) is rotatably connected below the inertial vibration conveyor (2); The rotating mechanism (5) includes a large sprocket (51), with a chain (52) meshing at the outer end of the large sprocket (51), and a small sprocket (53) meshing at the other end of the chain (52) away from the large sprocket (51). A reducer (54) is installed at the lower end of the small sprocket (53), and a slewing bearing (56) is installed at the inner end of the large sprocket (51). The front end of the inertial vibration conveyor (2) is fixedly installed with a water-cooled chute (1), and the bottom end of the water-cooled chute (1) is fixedly connected with a metal corrugated hose (3). A conveying groove (21) is provided at the rear of the metal corrugated hose (3). The conveying groove (21) is located at the inner end of the inertial vibration conveyor (2). An inertial vibration motor (22) is installed below the conveying groove (21).

2. The rotary water-cooled vibrating conveyor according to claim 1, characterized in that: An inertial vibration motor (22) is movably connected above the slewing bearing (56), and a damping spring (23) is movably connected to the inner end of the inertial vibration motor (22). The damping spring (23) is evenly distributed.

3. The rotary water-cooled vibrating conveyor according to claim 2, characterized in that: The bottom end of the damping spring (23) is equipped with a front damping seat (24), and a rear damping seat (25) is movably connected to the rear of the front damping seat (24). A rotating frame (4) is installed at the bottom end of the rear damping seat (25).

4. The rotary water-cooled vibrating conveyor according to claim 3, characterized in that: The lower end of the rotating frame (4) is fixedly connected to a base (6), and the outer end of the base (6) is fixedly connected to a proximity switch device (7).

5. The rotary water-cooled vibrating conveyor according to claim 1, characterized in that: A sprocket cover (55) is movably connected to the lower part of the inertial vibration motor (22), and the sprocket cover (55) is movably connected to the outer end of the chain (52).