Rapid cooling assembly for high titanium slag melt

By introducing a cooling motor to drive the atomization spray head to rotate and stir the mixing motor in the high-titanium slag cooling device, the problems of small and uneven spraying range are solved, efficient cooling effect is achieved, and the service life of the motor is extended.

CN223283448UActive Publication Date: 2025-08-29WUDING WUXING TITANIUM IND CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202422096225.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-28
Publication Date
2025-08-29
Estimated Expiration
2034-08-28

AI Technical Summary

Technical Problem

The existing high-titanium slag cooling device does not have a rotating structure to drive atomization nozzle, resulting in a small and uneven spraying range, and the high-titanium slag cannot be fully stirred, and the cooling effect is poor.

Method used

A high-titanium slag melt rapid cooling assembly including a cooling mechanism and a stirring mechanism is designed. The atomization spray head is driven to rotate by a cooling motor and stirred with a stirring motor to realize that the atomization spray head is sprayed with water mist while rotating, and enhance the contact between the material and the water mist.

Benefits of technology

It improves cooling efficiency, makes the high titanium slag fully contact with the water mist, enhances the cooling effect, and extends the service life of the motor.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223283448U_ABST
    Figure CN223283448U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of high titanium slag production, in particular to a high titanium slag melt rapid cooling assembly which comprises a working plate, a cooling cylinder is fixed on the top face of the working plate, a plurality of supporting columns are fixed at the bottom end of the working plate, and a feeding hopper communicated with an inner cavity of the cooling cylinder is fixed on the top face of the cooling cylinder. By arranging the working plate, the cooling cylinder, the feeding hopper, the discharging pipe and the two valves, high titanium slag melt can be stored, a water supply pipe of an external water supply device is tightly connected with the liquid inlet pipe in a sleeved mode, and materials in the cooling cylinder can be stirred through the design of the stirring mechanism; through the design of the cooling mechanism, water mist can be sprayed into the cooling cylinder, and through the design of the cooling mechanism, the atomizing nozzle can spray the water mist while rotating, so that materials can be in full contact with the water mist, and the cooling efficiency of the whole cooling device can be higher and more sufficient.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of high-titanium slag production, in particular to a high-titanium slag melt rapid cooling component. Background Art

[0002] High-titanium slag is the common name for titanium ore concentrates formed through a physical production process. It is a high-titanium dioxide concentrate obtained by melting titanium ore in an electric furnace to melt and separate titanium dioxide and iron in the titanium ore. High-titanium slag needs to cool its melt during the production process, and a cooling device is required during the cooling process.

[0003] Patent publication number CN216144031 U discloses a high-titanium slag rapid cooling device, including: a conduction tube and an atomizing nozzle, the atomizing nozzle is arranged above the slag pot, the atomizing nozzle is detachably connected to one end of the conduction tube, the other end of the conduction tube is fixedly connected to a conveying pipe, the conduction tube is provided with a timer and a solenoid valve, and the timer and the solenoid valve are connected by a cable.

[0004] Although the device achieves rapid cooling of titanium slag through the structure of the atomizing nozzle and valve, avoiding the risk of cooling water accumulating in the slag pot and exploding when in contact with high-temperature molten liquid, the device does not have a structure to drive the atomizing nozzle to rotate, so that the atomizing nozzle cannot spray water mist while rotating. The spraying range is small and uneven, and the high-titanium slag inside the slag pot cannot be stirred, thereby preventing the high-titanium slag from fully contacting with the water mist, resulting in poor cooling effect. Utility Model Content

[0005] The purpose of the present utility model is to provide a high-titanium slag melt rapid cooling component to solve the problem that the device proposed in the above background technology is not provided with a structure for driving the atomizing nozzle to rotate, so that the atomizing nozzle cannot spray water mist while rotating, the spraying range is small and uneven, and the high-titanium slag inside the slag pot cannot be stirred, and thus the high-titanium slag cannot be fully contacted with the water mist, resulting in poor cooling effect.

[0006] To achieve the above objectives, the present invention provides the following technical solutions:

[0007] A high-titanium slag melt rapid cooling assembly includes a working plate, a cooling cylinder is fixed on the top surface of the working plate, a plurality of support columns are fixed to the bottom end of the working plate, a feed funnel connected to the inner cavity of the cooling cylinder is fixed on the top surface of the cooling cylinder, a discharge pipe connected to the inner cavity of the cooling cylinder and located below the working plate is fixed to the bottom end of the cooling cylinder, valves are installed on the pipe body of the feed funnel and the outer wall of the discharge pipe, and a stirring mechanism is provided inside the cooling cylinder for stirring the material added thereto, and further includes:

[0008] A cooling mechanism is provided on the cooling cylinder and is used to cool the material added to the inside of the cooling cylinder. The cooling mechanism includes an L-shaped liquid box fixed on the top surface of the cooling cylinder, a liquid inlet pipe fixed on the top surface of the horizontal box end of the liquid box and connected to its inner cavity, a liquid outlet pipe rotatably connected to the bottom surface of the horizontal box end of the liquid box and connected to its inner cavity, two sprockets located above the cooling cylinder and used to drive the liquid outlet pipe to rotate, and a cooling motor installed on the top surface of the cooling cylinder and used to drive the two chains to rotate. The liquid outlet pipe passes through the top surface of the cooling cylinder and extends to the inside of the cooling cylinder near the top. An atomizing nozzle connected to its inner cavity is fixed at the bottom end of the liquid outlet pipe, and the two sprockets are connected by a chain transmission.

[0009] As a preferred embodiment, the cooling mechanism further includes a rotating shaft coaxially connected to the output shaft of the cooling motor, and the two sprockets are coaxially fixed on the rotating shaft and the circumferential outer wall of the liquid outlet pipe respectively.

[0010] As a preferred embodiment, the plurality of support columns at the bottom end of the working plate are arranged in a matrix, and a support plate is fixed to the bottom end of the support columns.

[0011] As a preferred embodiment, the bottom end of the cooling cylinder is concave toward the middle on all sides, and the degree of concavity is 13-26°.

[0012] As a preferred embodiment, the stirring mechanism includes a roller rotatably connected to the cooling cylinder, the roller passes through the top surface of the cooling cylinder and extends to the inside of the cooling cylinder near the bottom end. The stirring mechanism also includes a plurality of stirring rods fixed on the outer wall of the roller and located inside the cooling cylinder, and a stirring motor installed on the top surface of the cooling cylinder and with the output shaft coaxially connected to the roller.

[0013] As a preferred embodiment, an anti-skid plate that matches its shape is fixed to the bottom end of the support plate, the thickness of the anti-skid plate is 2-4 cm, and the bottom end of the anti-skid plate is provided with anti-skid lines.

[0014] As a preferred embodiment, the tube body of the feed funnel, the discharge pipe, the liquid outlet pipe and the contact parts of the roller and the cooling cylinder are all provided with sealing rings, the contact parts of the liquid outlet pipe, the atomizing nozzle and the liquid box are all provided with sealing rings, and the contact part of the liquid inlet pipe and the liquid box is also provided with a sealing ring.

[0015] As a preferred embodiment, the cooling mechanism also includes a protective box fixed on the top surface of the cooling cylinder, the cooling motor is located inside the protective box, the rotating shaft passes through the top surface of the protective box, and the stirring mechanism also includes a motor box fixed on the top surface of the cooling cylinder, and the stirring motor is located inside the motor box.

[0016] Compared with the prior art, the beneficial effects of the present invention are:

[0017] 1. The utility model can store high-titanium slag melt by arranging a working plate, a cooling cylinder, a feeding funnel, a discharge pipe and two valves. The water supply pipe of the external water supply device is tightly connected with the liquid inlet pipe. The material inside the cooling cylinder can be stirred by the design of the stirring mechanism. The water mist can be sprayed into the cooling cylinder by the design of the cooling mechanism. The atomizing nozzle can rotate while spraying the water mist, so that the material can be fully contacted with the water mist, thereby making the cooling efficiency of the entire cooling device higher and more sufficient.

[0018] 2. The present invention provides a protection box and a motor box to protect the cooling motor and the stirring motor, thereby extending the service life of the cooling motor and the stirring motor. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 This is one of the overall structural diagrams of the utility model;

[0020] Figure 2 This is the second schematic diagram of the overall structure of the utility model;

[0021] Figure 3 It is a schematic diagram of the local structure of the utility model;

[0022] Figure 4 This is a schematic diagram of the internal structure of the cooling cylinder in the present invention;

[0023] Figure 5 Schematic diagram of the explosion structure of the stirring mechanism in this utility model

[0024] Figure 6 This is a schematic diagram of the overall structure of the cooling mechanism in the present invention;

[0025] Figure 7 This is one of the partial exploded views of the cooling mechanism in the present invention;

[0026] Figure 8 This is the second partial exploded view of the cooling mechanism in the present invention;

[0027] The meaning of each number in the figure is:

[0028] 1. Working plate; 2. Cooling cylinder; 3. Support column; 4. Feed funnel; 5. Discharge pipe; 6. Valve; 7. Cooling mechanism; 71. Liquid box; 72. Liquid inlet pipe; 73. Liquid outlet pipe; 74. Atomizing nozzle; 75. Sprocket; 76. Chain; 77. Cooling motor; 78. Rotating shaft; 79. Protective box; 8. Stirring mechanism; 81. Roller; 82. Stirring rod; 83. Stirring motor; 84. Motor box; 9. Support plate; 10. Anti-skid plate. DETAILED DESCRIPTION

[0029] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0030] See also Figures 1-8 The utility model provides a technical solution: a high-titanium slag melt rapid cooling component, including a working plate 1, a cooling cylinder 2 is fixed on the top surface of the working plate 1, a plurality of support columns 3 are fixed to the bottom end of the working plate 1, a feeding funnel 4 connected to the inner cavity of the cooling cylinder 2 is fixed on the top surface of the cooling cylinder 2, a discharge pipe 5 connected to the inner cavity of the cooling cylinder 2 and located below the working plate 1 is fixed to the bottom end of the cooling cylinder 2, valves 6 are installed on the outer wall of the feeding funnel 4 and the discharge pipe 5, and a stirring mechanism 8 for stirring the material added thereto is provided inside the cooling cylinder 2, and further comprising:

[0031] The cooling mechanism 7 is arranged on the cooling cylinder 2 and is used to cool the material added to the inside of the cooling cylinder 2. The cooling mechanism 7 includes an L-shaped liquid box 71 fixed on the top surface of the cooling cylinder 2, a liquid inlet pipe 72 fixed on the top surface of the horizontal box end of the liquid box 71 and connected to its inner cavity, a liquid outlet pipe 73 rotatably connected to the bottom surface of the horizontal box end of the liquid box 71 and connected to its inner cavity, two sprockets 75 located above the cooling cylinder 2 and used to drive the liquid outlet pipe 73 to rotate, a cooling motor 77 installed on the top surface of the cooling cylinder 2 and used to drive the two chains 76 to rotate, the liquid outlet pipe 73 passes through the top surface of the cooling cylinder 2 and extends to the inside of the cooling cylinder 2 near the top, and the bottom end of the liquid outlet pipe 73 is fixed with a An atomizing nozzle 74 is connected to its inner cavity, and two sprockets 75 are connected by a chain 76. By setting a working plate 1, a cooling cylinder 2, a feeding funnel 4, a discharge pipe 5 and two valves 6, the high-titanium slag melt can be stored. The water supply pipe of the external water supply device is tightly connected with the liquid inlet pipe 72. The material inside the cooling cylinder 2 can be stirred by the design of the stirring mechanism 8. The water mist can be sprayed into the inside of the cooling cylinder 2 by the design of the cooling mechanism 7. The design of the cooling mechanism 7 can make the atomizing nozzle 74 rotate while spraying the water mist, so that the material can fully contact with the water mist, and thus the cooling efficiency of the entire cooling device can be higher and more sufficient.

[0032] In this embodiment, the cooling mechanism 7 also includes a rotating shaft 78 coaxially connected to the output shaft of the cooling motor 77, and two sprockets 75 are coaxially fixed on the rotating shaft 78 and the circumferential outer wall of the liquid outlet pipe 73, respectively, which can smoothly drive the two sprockets 75 to rotate, and then smoothly drive the liquid outlet pipe 73 and the atomizing nozzle 74.

[0033] In addition, several support columns 3 at the bottom of the working plate 1 are arranged in a matrix, and a support plate 9 is fixed to the bottom of the support column 3, which can increase the contact area between the entire device and the ground, thereby making the entire device more stable during operation.

[0034] Furthermore, the bottom end of the cooling cylinder 2 is concave in all directions toward the middle, and the degree of concavity is 13-26°, preferably 22°, so that the cooled high-titanium slag can be discharged.

[0035] Specifically, the stirring mechanism 8 includes a roller 81 rotatably connected to the cooling cylinder 2, the roller 81 passes through the top surface of the cooling cylinder 2 and extends to the inside of the cooling cylinder 2 near the bottom end. The stirring mechanism 8 also includes a plurality of stirring rods 82 fixed on the outer wall of the circumference of the roller 81 and located inside the cooling cylinder 2, and a stirring motor 83 installed on the top surface of the cooling cylinder 2 and with the output shaft coaxially connected to the roller 81. The stirring motor can stir the material added to the inside of the cooling cylinder 2 so that it is in full contact with the water mist.

[0036] It is worth noting that the bottom end of the support plate 9 is fixed with an anti-slip plate 10 that matches its shape. The thickness of the anti-slip plate 10 is 2-4 cm, and the bottom end of the anti-slip plate 10 is provided with anti-slip grooves, which are preferably 3 cm in this article. It can increase the contact area and friction between the entire device and the ground, and further improve the stability of the entire device during operation.

[0037] It is worth noting that the tube body of the feed funnel 4, the discharge pipe 5, the liquid outlet pipe 73 and the parts where the roller 81 contacts the cooling cylinder 2 are all provided with sealing rings, the parts where the liquid outlet pipe 73 contacts the atomizing nozzle 74 and the liquid box 71 are all provided with sealing rings, and the parts where the liquid inlet pipe 72 contacts the liquid box 71 are also provided with sealing rings, which can make the sealing of the entire device better and prevent leakage of water and materials.

[0038] It is worth emphasizing that the cooling mechanism 7 also includes a protective box 79 fixed on the top surface of the cooling cylinder 2, the cooling motor 77 is located inside the protective box 79, and the rotating shaft 78 passes through the top surface of the protective box 79. The stirring mechanism 8 also includes a motor box 84 fixed on the top surface of the cooling cylinder 2, and the stirring motor 83 is located inside the motor box 84, which can protect the cooling motor 77 and the stirring motor 83, thereby extending the service life of the cooling motor 77 and the stirring motor 83.

[0039] Finally, it should be noted that the cooling motor 77, stirring motor 83 and other components involved in the present invention are all universal standard parts or components known to technical personnel in this field. Their structures and principles are known to technical personnel in this field through technical manuals or through conventional experimental methods. In the idle space of this device, all the above-mentioned electrical components, which refer to power elements, electrical components, and adaptive controllers and power supplies, are connected through wires. The specific connection means should refer to the working principle of the present invention. The electrical connection between each electrical component is completed in a sequential working order, and the detailed connection means are all well-known technologies in this field.

[0040] During the specific use of this embodiment, the water supply pipe of the external water supply device is first tightly connected to the liquid inlet pipe 72, and then the valve 6 on the outer wall of the feed funnel 4 is opened, and then an appropriate amount of high-titanium slag melt is added to the inside of the cooling cylinder 2 through the feed funnel 4, and then the external water supply device, the cooling motor 77 and the stirring motor 83 are started by the external PLC, and the output shaft of the stirring motor 83 rotates to drive the roller 81 coaxially connected to it to rotate, and the rotation of the roller 81 drives the several stirring rods 82 fixed to it to rotate, and the rotation of the several stirring rods 82 can stir the melt inside the cooling cylinder 2. At the same time, the external water supply device transports water from its water supply pipe to the inside of the liquid inlet pipe 72, and the water entering the inside of the liquid inlet pipe 72 then enters the liquid box 71 and passes into the inside of the liquid outlet pipe 73, and the water entering the inside of the liquid outlet pipe 73 then enters the atomizing nozzle 74 and is sprayed into the inside of the cooling cylinder 2 by the atomizing nozzle 74;

[0041] At this time, the output shaft of the cooling motor 77 rotates and drives the rotating shaft 78 coaxially connected to it to rotate. The rotation of the rotating shaft 78 drives the sprocket 75 on the same side coaxially fixed with it to rotate. The rotation of the sprocket 75 drives another sprocket 75 connected to it through the chain 76 to rotate. The rotation of the other sprocket 75 drives the liquid outlet pipe 73 coaxially fixed with it to rotate. The rotation of the liquid outlet pipe 73 drives the atomizing nozzle 74 fixed with it to rotate. The atomizing nozzle 74 rotates so that it can spray water mist while rotating. At the same time, with the use of the stirring mechanism 8, the contact between the high-titanium slag melt and the water mist can be made more sufficient, thereby improving the cooling efficiency.

[0042] The above shows and describes the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely preferred examples of the present invention and are not intended to limit the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention, and such changes and improvements fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.

Claims

1. A high-titanium slag melt rapid cooling assembly, comprising a working plate (1), characterized in that: A cooling cylinder (2) is fixed on the top surface of the working plate (1), a plurality of support columns (3) are fixed on the bottom end of the working plate (1), a feeding funnel (4) connected to the inner cavity of the cooling cylinder (2) is fixed on the top surface of the cooling cylinder (2), a discharge pipe (5) connected to the inner cavity of the cooling cylinder (2) and located below the working plate (1) is fixed on the bottom end of the cooling cylinder (2), valves (6) are installed on the pipe body of the feeding funnel (4) and the outer wall of the discharge pipe (5), and a stirring mechanism (8) for stirring the material added thereto is provided inside the cooling cylinder (2), and further comprising: A cooling mechanism (7) is provided on the cooling cylinder (2) and is used to cool the material added to the cooling cylinder (2). The cooling mechanism (7) includes an L-shaped liquid box (71) fixed on the top surface of the cooling cylinder (2), a liquid inlet pipe (72) fixed on the top surface of the horizontal box end of the liquid box (71) and connected to its inner cavity, a liquid outlet pipe (73) rotatably connected to the bottom surface of the horizontal box end of the liquid box (71) and connected to its inner cavity, two sprockets (75) located above the cooling cylinder (2) and used to drive the liquid outlet pipe (73) to rotate, and a cooling motor (77) installed on the top surface of the cooling cylinder (2) and used to drive two chains (76) to rotate, wherein the liquid outlet pipe (73) passes through the top surface of the cooling cylinder (2) and extends to the inside of the cooling cylinder (2) near the top, an atomizing nozzle (74) connected to its inner cavity is fixed at the bottom end of the liquid outlet pipe (73), and the two sprockets (75) are connected by a chain (76).

2. The high-titanium slag melt rapid cooling assembly according to claim 1, characterized in that: The cooling mechanism (7) further comprises a rotating shaft (78) coaxially connected to the output shaft of the cooling motor (77), and the two sprockets (75) are coaxially fixed on the rotating shaft (78) and the circumferential outer wall of the liquid outlet pipe (73).

3. The high-titanium slag melt rapid cooling assembly according to claim 1, characterized in that: The plurality of support columns (3) at the bottom end of the working plate (1) are arranged in a matrix, and a support plate (9) is fixed to the bottom end of the support columns (3).

4. The high-titanium slag melt rapid cooling assembly according to claim 1, characterized in that: The bottom end of the cooling cylinder (2) is in a structure that is concave toward the middle, and the degree of concavity is 13-26 degrees.

5. The high-titanium slag melt rapid cooling assembly according to claim 2, characterized in that: The stirring mechanism (8) includes a roller (81) rotatably connected to the cooling cylinder (2), the roller (81) passes through the top surface of the cooling cylinder (2) and extends to the inside of the cooling cylinder (2) near the bottom end. The stirring mechanism (8) also includes a plurality of stirring rods (82) fixed on the outer wall of the roller (81) and located inside the cooling cylinder (2), and a stirring motor (83) installed on the top surface of the cooling cylinder (2) and with an output shaft coaxially connected to the roller (81).

6. The high-titanium slag melt rapid cooling assembly according to claim 3, characterized in that: The bottom end of the support plate (9) is fixed with an anti-skid plate (10) that matches its shape. The thickness of the anti-skid plate (10) is 2-4 cm, and the bottom end of the anti-skid plate (10) is provided with anti-skid lines.

7. The high-titanium slag melt rapid cooling assembly according to claim 5, characterized in that: The tube body of the feed funnel (4), the discharge pipe (5), the liquid outlet pipe (73) and the roller (81) in contact with the cooling cylinder (2) are all provided with sealing rings, the liquid outlet pipe (73) in contact with the atomizing nozzle (74) and the liquid box (71) are all provided with sealing rings, and the liquid inlet pipe (72) in contact with the liquid box (71) is also provided with a sealing ring.

8. The high-titanium slag melt rapid cooling assembly according to claim 5, characterized in that: The cooling mechanism (7) further includes a protective box (79) fixed on the top surface of the cooling cylinder (2), the cooling motor (77) is located inside the protective box (79), and the rotating shaft (78) passes through the top surface of the protective box (79). The stirring mechanism (8) further includes a motor box (84) fixed on the top surface of the cooling cylinder (2), and the stirring motor (83) is located inside the motor box (84).

Citation Information

Patent Citations

  • Rapid cooling device for high titanium slag

    CN216144031U