Anti-overflow titanium dioxide concentration and crystallization device

The rubber material kit and elastic metal support plate structure eliminate the vibration of the anti-overflow titanium dioxide concentration crystallization device, solve the problem of attachments on the inner wall of the observation port affecting the clarity, and achieve the stability of the device and convenient disassembly.

CN223404454UActive Publication Date: 2025-10-03SHANDONG JINHAI TITANIUM RESOURCES TECH CO LTD
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Patent Information

Application Number
CN202422415949.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-08
Publication Date
2025-10-03
Estimated Expiration
2034-10-08

AI Technical Summary

Technical Problem

The existing anti-overflow titanium dioxide concentration and crystallization device is prone to adhesion of objects on the inner wall of the observation port, affecting the clarity, and the vibration is unstable during operation.

Method used

The rubber kit structure and the elastic metal support plate structure are in contact with the connecting block assembly to eliminate vibration, and the attachments on the inner wall of the tempered glass are wiped by the moving rod assembly to ensure observation clarity.

Benefits of technology

The stability and observation effect of the device are improved, and it is convenient for quick disassembly and installation.

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Abstract

The utility model provides an anti-overflow titanium dioxide concentration and crystallization device, and relates to the field of titanium dioxide processing. An observation opening is formed in the front end of the device body, a moving rod assembly is installed at the observation opening through a side groove, a contact assembly made of a corrosion-resistant rubber material is fixedly bonded to the front end of the moving rod assembly, the upper side and the lower side of the contact assembly are of inclined structures, and the middle position of the contact assembly is of a V-shaped structure; and an inner rod assembly made of a corrosion-resistant rubber material is fixed in the contact assembly. The control assembly is pulled or pushed to move, the control assembly drives the contact assembly and the inner rod assembly to move together through the moving rod assembly, and when the contact assembly and the inner rod assembly make contact with the inner wall of tempered glass and move, attachments on the tempered glass are erased, so that the definition of the tempered glass is restored, and the observation effect is prevented from being affected; the problem that according to a common anti-overflow titanium dioxide concentration and crystallization device, attachments are likely to be generated on the inner wall of an observation opening, and the observation definition can be affected is solved.
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Description

Technical Field

[0001] The utility model relates to the technical field of titanium dioxide processing, in particular to an anti-overflow titanium dioxide concentration and crystallization device. Background Art

[0002] The anti-overflow titanium dioxide concentration crystallization device is a titanium dioxide concentration crystallization tank, which continuously adds titanium dioxide liquid into the vacuum crystallization tank through a feeding pipe for crystallization. The special feature of this device is that it has the function of preventing overflow. Through the setting of the overflow pipe, the liquid level inside the vacuum crystallization tank can be reasonably controlled to prevent the titanium liquid from being discharged through the overflow pipe, thereby ensuring the stability of the use of the vacuum crystallization tank. In addition, this crystallizer is also combined with the detection of the liquid level sensor and the observation of the visual window to further ensure the accuracy and safety of its operation. The design and application of the anti-overflow titanium dioxide concentration crystallizer provides an efficient and stable solution for the production and processing of titanium dioxide. The common anti-overflow titanium dioxide concentration crystallization device on the market is prone to attachments on the inner wall of the observation port during continuous processing, which will affect the clarity of observation, and when the anti-overflow titanium dioxide concentration crystallization device is in operation, it will produce certain vibrations, affecting the overall stability. Utility Model Content

[0003] The disclosed embodiment relates to an anti-overflow titanium dioxide concentration and crystallization device. When the device body is in use, the bottom is connected to the bottom rod structure. The bottom rod structure is in contact with the connecting block assembly through a rubber kit structure and an elastic metal support plate structure, so that the device body is elastically supported. When the device body is in operation, after vibration is generated, the elasticity of the two is used to eliminate the vibration force and improve the overall stability.

[0004] According to a first aspect of the present disclosure, an anti-overflow titanium dioxide concentration and crystallization device is provided, which specifically includes: a device body; a motor is provided at the top of the device body, the motor is connected to a stirring structure, an observation port is provided at the front end of the device body, a moving rod assembly is installed on the observation port through a side groove, a contact assembly made of corrosion-resistant rubber is bonded and fixed to the front end of the moving rod assembly, the upper and lower sides of the contact assembly are inclined structures, the middle position of the contact assembly is a V-shaped structure, an inner rod assembly made of corrosion-resistant rubber is fixed inside the contact assembly, and the inner rod assembly is an arc-shaped structure; a bottom rod structure; three bottom rod structures are installed on the bottom support of the device body, the top of the bottom rod structure is provided with a rubber material kit structure through an insert rod, the insert rod is fixed with an inclined support plate structure by welding through an auxiliary block, and the support plate structure is made of elastic metal.

[0005] In at least some embodiments, an overflow pipe is installed on the side of the device body, the interior of the overflow pipe is connected to the interior of the device body, and the outside of the overflow pipe is connected to the collection tank through a pipeline. Three ring-arranged connecting block assemblies are welded and fixed on the outside of the device body, and a kit structure is inserted into the interior of the connecting block assembly. The inner wall of the connecting block assembly is in contact with the support plate structure; tempered glass is installed inside the observation port, and the contact assembly and the inner rod assembly are in contact with the tempered glass. A side groove is respectively opened on both sides of the observation port; a moving rod assembly is inserted into the interior of the side groove, and the moving rod assembly is free to slide up and down inside the side groove, and the outside of the moving rod assembly is connected to the control assembly of the rectangular frame structure. The control assembly fits on the outside of the side groove and seals the side groove.

[0006] In at least some embodiments, an insertion rod with a T-shaped shaft structure is welded and fixed to the top of the bottom rod structure, and an auxiliary block is welded and fixed to the top of the insertion rod, and the side of the auxiliary block is a rectangular structure; two triangular bottom plate structures are welded and fixed to the outside of the bottom end of the bottom rod structure, and a rectangular stop structure is fixed to the inner bottom of each bottom plate structure; a movable plate passes through the inside of the bottom end of each bottom rod structure and can be freely pulled and drawn inside the bottom end of the bottom rod structure, the outer end of the movable plate is provided with a groove for connecting bolts, and the inner end of the movable plate is welded and fixed with a control rod.

[0007] The utility model provides an anti-overflow titanium dioxide concentration and crystallization device, which has the following beneficial effects:

[0008] During the operation of the device body, when titanium dioxide concentrates and crystallizes, some attachments will adhere to the inner wall of the tempered glass, thereby affecting the clarity of the tempered glass and affecting the observation effect. At this time, the control component can be pulled or pushed to move. The control component drives the contact component and the inner rod component to move together through the moving rod component. Since the contact component and the inner rod component are in contact with the inner wall of the tempered glass, when they move, the attachments on the tempered glass can be easily wiped off, so that the clarity of the tempered glass is restored and the observation effect is avoided.

[0009] When the device body is in use, the bottom is connected to the bottom rod structure. The bottom rod structure contacts the connecting block assembly through a rubber kit structure and an elastic metal support plate structure, so that it elastically supports the device body. When the device body is running, after vibration is generated, the elasticity of the two is used to eliminate the vibration force and improve the overall stability.

[0010] When the device body needs to be disassembled, after the fixing bolts are loosened, the operating lever can be directly pulled to move, driving the movable plate to move together, so that the bolts are disengaged from the inside of the movable plate, quickly releasing the fixation of the device body and the bottom rod structure, making it convenient to quickly disassemble the device body and the bottom rod structure. BRIEF DESCRIPTION OF THE DRAWINGS

[0011] In order to more clearly illustrate the technical solutions of the embodiments of the present utility model, the drawings of the embodiments will be briefly introduced below.

[0012] The drawings described below only relate to some embodiments of the present invention, but are not intended to limit the present invention.

[0013] In the attached figure:

[0014] Figure 1 Shows a schematic diagram of the three-dimensional structure of the present application;

[0015] Figure 2 Shows a bottom-up structural schematic diagram of the present application;

[0016] Figure 3 Shows a schematic diagram of the exploded three-dimensional structure of the present application;

[0017] Figure 4 It shows a schematic diagram of the exploded three-dimensional structure of the device body of the present application;

[0018] Figure 5 Shows a schematic diagram of the exploded three-dimensional structure of the bottom rod structure of the present application;

[0019] Figure 6 A schematic diagram of the bottom rod structure of the present application is shown;

[0020] Reference Signs List

[0021] 1. Device body; 101. Overflow pipe; 102. Connecting block assembly; 103. Observation port; 104. Side groove; 105. Moving rod assembly; 106. Contact assembly; 107. Inner rod assembly; 108. Control assembly;

[0022] 2. Bottom rod structure; 201. Insert rod; 202. Auxiliary block; 203. Support plate structure; 204. Kit structure; 205. Bottom plate structure; 206. Stopper structure; 207. Moving plate; 208. Control rod. DETAILED DESCRIPTION

[0023] To make the purpose, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions of the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of them. Based on the described embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0024] Example 1: Please refer to Figures 1 to 6 :

[0025] The utility model proposes an anti-overflow titanium dioxide concentration crystallization device, comprising: a device body 1; a motor is provided at the top of the device body 1, the motor is connected to a stirring structure, an observation port 103 is provided at the front end of the device body 1 for conveniently observing the crystallization situation, a moving rod assembly 105 is installed on the observation port 103 through a side groove 104, a contact assembly 106 made of corrosion-resistant rubber is bonded and fixed to the front end of the moving rod assembly 105, the upper and lower sides of the contact assembly 106 are inclined structures, the middle position of the contact assembly 106 is a V-shaped structure, an inner rod assembly 107 made of corrosion-resistant rubber is fixed inside the contact assembly 106, and the inner rod assembly 107 is an arc-shaped structure, so that the contact assembly 106 and the inner rod assembly 107 are in contact with each other. The inner rod assembly 107 contacts the inner wall of the tempered glass, which makes it easy to wipe the attachments on the tempered glass, improves the convenience of cleaning, and makes the tempered glass quickly restore clarity; bottom rod structure 2; three bottom rod structures 2 are installed on the bottom support of the device body 1, and the top of the bottom rod structure 2 is covered with a rubber kit structure 204 through an insertion rod 201. The insertion rod 201 is welded and fixed with an inclined support plate structure 203 through an auxiliary block 202. The support plate structure 203 is made of elastic metal material. The kit structure 204 and the support plate structure 203 are in contact with the connecting block assembly 102 with the help of elasticity, so that after the motor is running, the elasticity of the two can eliminate the vibration force and improve the overall stability.

[0026] In the embodiment of the present disclosure, Figure 3 and Figure 4 As shown, an overflow pipe 101 is installed on the side of the device body 1, the interior of the overflow pipe 101 is connected to the interior of the device body 1, and the exterior of the overflow pipe 101 is connected to the collection tank through a pipeline. Three ring-shaped connecting block components 102 are welded and fixed on the outside of the device body 1. The interior of the connecting block component 102 is inserted with a kit structure 204. The inner wall of the connecting block component 102 contacts the support plate structure 203 to improve the positioning connection effect; the interior of the observation port 103 is equipped with tempered glass, and the contact component 106 and the inner rod component 107 are in contact with the tempered glass, which is convenient for wiping the steel The glass is made of amorphous glass, and a side groove 104 is respectively opened on both sides of the observation port 103, so that the moving rod assembly 105 can be used for guiding displacement; the moving rod assembly 105 is inserted into the inside of the side groove 104, and the moving rod assembly 105 is free to slide up and down inside the side groove 104. The outside of the moving rod assembly 105 is connected to the control assembly 108 of the rectangular frame structure, and the control assembly 108 can be used to conveniently control the up and down displacement of the moving rod assembly 105. The control assembly 108 is attached to the outside of the side groove 104 and seals the side groove 104 to prevent gas from being discharged through the side groove 104.

[0027] In the embodiment of the present disclosure, Figure 5 and Figure 6As shown, an insertion rod 201 with a T-shaped shaft structure is welded and fixed to the top of the bottom rod structure 2, which is used to position the support kit structure 204. An auxiliary block 202 is welded and fixed to the top of the insertion rod 201. The side of the auxiliary block 202 is a rectangular structure, which is used to connect the support plate structure 203. Two triangular bottom plate structures 205 are welded and fixed to the outside of the bottom end of the bottom rod structure 2 to increase the supporting effect. A rectangular stopper structure 206 is fixed to the inner bottom of each bottom plate structure 205 to assist in supporting the movable plate 207 so that the movable plate 207 can be guided and pulled. A movable plate 207 passes through the bottom end of each bottom rod structure 2 and can be freely pulled and pulled inside the bottom end of the bottom rod structure 2. The outer end of the movable plate 207 is provided with a groove for connecting bolts. After the movable plate 207 is displaced, the bolt is easily detached from the inside of the groove, and the device body 1 and the bottom rod structure 2 are quickly disassembled. A control rod 208 is welded and fixed to the inner end of the movable plate 207 to facilitate the displacement of the movable plate 207.

[0028] The working principle of this embodiment is as follows: when the device body 1 needs to be used, titanium dioxide is added to the inside of the device body 1 in advance, and then the device body 1 is controlled to operate so that the titanium dioxide is concentrated and crystallized inside the device body 1. At the same time, the overflow pipe 101 is used on the side of the device body 1 to avoid overflow. At the same time, during the concentration and crystallization process, when the tempered glass produces attachments that affect the clarity, the control component 108 can be pulled or pushed to move, so that the control component 108 drives the moving rod component 105, the contact component 106 and the inner rod component 107 to move together, so that the contact component 106 and the inner rod component 107 wipe the inner wall of the tempered glass, wipe off the attachments conveniently, restore the clarity of the tempered glass, and facilitate the observation of the crystallization situation through the observation port 103 again. During the operation of the motor, the kit structure 204 and the support plate structure 203 are in contact with the connecting block component 102. With the help of elasticity, the vibration generated by the operation is eliminated, thereby improving the overall stability.

[0029] In this article, there are several points to note:

[0030] 1. The drawings of the embodiments of the present disclosure only relate to the structures related to the embodiments of the present disclosure. Other structures may refer to conventional designs.

[0031] 2. In the absence of conflict, the embodiments of the present disclosure and the features therein may be combined with each other to form new embodiments.

[0032] The above are only specific embodiments of the present disclosure, but the scope of protection of the present disclosure is not limited thereto. Any changes or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in this disclosure should be included in the scope of protection of the present disclosure. Therefore, the scope of protection of the present disclosure should be based on the scope of protection of the claims.

Claims

1. A device for concentrating and crystallizing titanium dioxide to prevent overflow, characterized in that: include: The device body (1) is provided with a motor at the top of the device body (1), and the motor is connected to a stirring structure. The front end of the device body (1) is provided with an observation port (103), and the observation port (103) is provided with a moving rod assembly (105) through a side groove (104). The front end of the moving rod assembly (105) is bonded and fixed with a contact assembly (106) made of corrosion-resistant rubber material. The upper and lower sides of the contact assembly (106) are inclined structures, and the middle position of the contact assembly (106) is a V-shaped structure. The contact assembly (106) is provided with a V-shaped structure. 6) is fixed with an inner rod assembly (107) made of corrosion-resistant rubber material, and the inner rod assembly (107) is an arc-shaped structure; a bottom rod structure (2); three bottom rod structures (2) are installed on the bottom support of the device body (1), and the top of the bottom rod structure (2) is covered with a rubber material set structure (204) through an insertion rod (201), and the insertion rod (201) is fixed with an inclined support plate structure (203) by welding through an auxiliary block (202), and the support plate structure (203) is made of elastic metal material.

2. The anti-overflow titanium dioxide concentration and crystallization device according to claim 1, characterized in that: An overflow pipe (101) is installed on the side of the device body (1), the interior of the overflow pipe (101) is communicated with the interior of the device body (1), and the exterior of the overflow pipe (101) is connected to a collection tank via a pipeline. Three annularly arranged connecting block assemblies (102) are welded and fixed to the exterior of the device body (1), a kit structure (204) is inserted into the interior of the connecting block assembly (102), and the inner wall of the connecting block assembly (102) is in contact with the support plate structure (203).

3. The anti-overflow titanium dioxide concentration and crystallization device according to claim 2, characterized in that: Tempered glass is installed inside the observation port (103), and the contact assembly (106) and the inner rod assembly (107) are in contact with the tempered glass. A side groove (104) is respectively provided on both sides of the observation port (103).

4. The anti-overflow titanium dioxide concentration and crystallization device according to claim 3, characterized in that: A moving rod assembly (105) is inserted into the side groove (104). The moving rod assembly (105) is freely slidable up and down inside the side groove (104). The outside of the moving rod assembly (105) is connected to a control assembly (108) with a rectangular frame structure. The control assembly (108) is fitted to the outside of the side groove (104) and seals the side groove (104).

5. The anti-overflow titanium dioxide concentration and crystallization device according to claim 4, characterized in that: An insertion rod (201) with a T-shaped shaft structure is welded and fixed to the top end of the bottom rod structure (2), and an auxiliary block (202) is welded and fixed to the top end of the insertion rod (201). The side of the auxiliary block (202) is a rectangular structure.

6. The anti-overflow titanium dioxide concentration and crystallization device according to claim 5, characterized in that: Two triangular bottom plate structures (205) are welded and fixed to the outside of the bottom end of the bottom rod structure (2), and a rectangular stopper structure (206) is fixed to the inner bottom of each bottom plate structure (205).

7. The anti-overflow titanium dioxide concentration and crystallization device according to claim 6, characterized in that: A movable plate (207) passes through the bottom end of each bottom rod structure (2) and can be freely drawn inside the bottom end of the bottom rod structure (2). A groove for connecting bolts is provided at the outer end of the movable plate (207), and a control rod (208) is welded and fixed to the inner end of the movable plate (207).