Transfer device for electrolytically purified high-purity titanium material
By designing an electrolytic purified high-purity titanium material transfer device, the lifting mechanism and support frame are used to stabilize the lifting of materials, the problem of loose titanium crystals falling off is solved, and efficient and safe material transfer and environmental protection are achieved.
Patent Information
- Application Number
- CN202422627493.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-29
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2034-10-29
AI Technical Summary
In the prior art, electrolytic purified high-purity titanium materials are easily detached due to loose dendritic titanium crystals during transportation, resulting in pollution and loss, and they need to be kept in an upright suspended state to prevent pollution, and there is a lack of effective transport devices.
An electrolytic purified high-purity titanium material transport device including a transfer vehicle, a lifting mechanism, a material support frame and a carrier is designed. The supporting rod and hydraulic cylinder with a triangular structure are used to achieve stable lifting and transport of materials to prevent titanium crystals from scattering.
It improves the efficiency and safety of material transfer, reduces the demand for manual handling, keeps the working environment clean, reduces labor intensity and secondary pollution risks, has a solid structure and simple operation.
Smart Images

Figure CN223148292U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of electrochemical purification metallurgy, in particular to a transfer device for electrolytic purification of high-purity titanium materials. Background Art
[0002] At present, the principle of electrolytic purification of high-purity titanium crystals by molten salt is achieved through an electrochemical method. Low-purity sponge titanium is used as the anode, losing electrons in the electrolyte melt to become ions, and these ions then gain electrons on the cathode surface and are reduced back to titanium metal, thereby improving the purity of titanium. However, after the titanium metal formed on the cathode surface gradually increases, a dendritic titanium crystal aggregate with a dense interior and loose periphery will be formed. The binding force between this loose dendritic titanium crystal and the dense interior layer is weak. Therefore, during the process of material discharging and transfer, slight vibration may cause large pieces of loose crystals to fall off. Once these crystals fall to the ground and are contaminated by contact with dust, they can only be treated as waste products. In order to avoid product loss during the transfer process, the electrolytically purified material must always be kept in an upright hanging state from the furnace to the processes of acid leaching and water washing, and contact with any pollution source by the titanium crystals must be prevented.
[0003] The transfer device for electrolytic purification of high-purity titanium materials that can achieve this function has become the key to the connection between processes. Therefore, there is an urgent need for a transfer device for electrolytic purification of high-purity titanium materials to achieve the orderly transfer of materials from the processes of acid leaching and water washing to the material stripping process. Summary of the Utility Model
[0004] The purpose of the utility model is to provide a transfer device for electrolytic purification of high-purity titanium materials in view of the deficiencies in the prior art;
[0005] To achieve the above purpose, the technical solution adopted by the utility model is:
[0006] The utility model provides a transfer device for electrolytic purification of high-purity titanium materials, including: a transfer vehicle, a lifting mechanism fixedly arranged on the frame of the transfer vehicle, a material support frame fixedly arranged on the side of the lifting mechanism away from the transfer vehicle, and a carrier frame fixedly arranged at the bottom of the side of the lifting mechanism away from the transfer vehicle;
[0007] Wherein, the material support frame includes: a first support rod, a second support rod, a third support rod, a fourth support rod, and a fifth support rod;
[0008] One end of the first support rod is fixedly connected to one end of the second support rod, the other end of the first support rod is fixedly connected to one end of the third support rod, and the other end of the second support rod is fixedly connected to the other end of the third support rod. Thus, the first support rod, the second support rod, and the third support rod form a triangular structure;
[0009] The first support rod is fixedly connected to the fourth support rod and the fifth support rod in sequence from top to bottom. The end parts of the fourth support rod and the fifth support rod are respectively slidably connected to one side of the lifting mechanism through rollers, and there is a spacing between the fourth support rod and the fifth support rod;
[0010] The other end of the second support rod further extends with a connecting part, and a plurality of threaded holes are provided on the connecting part;
[0011] Wherein, a liquid receiving tray is detachably arranged on the upper part of the carrier, and a cushion block is fixedly arranged at the connection between the liquid receiving tray and the carrier.
[0012] Further, the lifting mechanism includes: an outer gantry fixedly arranged on the frame of the transporter, an inner gantry slidably embedded in the outer gantry, and a hydraulic cylinder fixedly arranged at the bottom of the outer gantry;
[0013] Wherein, a sprocket is fixedly arranged at the top of the piston rod of the hydraulic cylinder. One side of the outer gantry is fixedly connected to one end of a chain, and the other end of the chain bypasses the sprocket and is fixedly connected to one side of the fourth support rod or the fifth support rod.
[0014] Further, the carrier is fixedly arranged at the bottom of the side of the outer gantry away from the transporter.
[0015] Further, the end parts of the fourth support rod and the fifth support rod are fixedly connected to the side of the inner gantry away from the transporter.
[0016] Further, it further includes: an "L"-shaped clamping member. A through hole is provided at one end of the "L"-shaped clamping member. A bolt matching the through hole is fixedly arranged on one side of the bottom of the outer gantry close to the liquid receiving tray. One end of the "L"-shaped clamping member is fixed to one side of the bottom of the outer gantry close to the liquid receiving tray through the through hole, the bolt, and a nut;
[0017] Wherein, a clamping groove for the other end of the "L"-shaped clamping member is provided on one side of the liquid receiving tray close to the bottom of the outer gantry.
[0018] Furthermore, the transporter further includes: a vehicle body, a control armrest fixedly arranged on the vehicle body, two protective baffles fixedly arranged on both sides of the vehicle body, and a footrest fixedly arranged at the bottom of the vehicle body.
[0019] Furthermore, the wall thickness of the liquid receiving tray 5 is 0.5 cm - 2 cm, and the depth inside the liquid receiving tray 5 is 2 cm - 3 cm.
[0020] Furthermore, the axial direction of the first support rod is parallel to the axial direction of the inner gantry, and the axial direction of the second support rod is perpendicular to the axial direction of the inner gantry.
[0021] The present utility model adopts the above technical solutions, and compared with the prior art, has the following technical effects:
[0022] The present utility model provides an efficient and orderly material transfer device, which is applicable to the whole process from the acid leaching and water washing processes to the material stripping process. The present utility model also greatly reduces the need for manual handling, reduces the labor intensity and labor costs. During the transfer process, it effectively prevents liquids and titanium crystals from scattering on the ground, keeps the working environment clean and safe, and reduces the risk of secondary pollution. In this regard, the present utility model not only improves the efficiency and safety of material transfer, has the characteristics of firm structure and simple operation, but also significantly improves the working environment. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 is a schematic side view structure diagram of the present utility model;
[0024] Figure 2 is an axonometric structure diagram of the lifting mechanism, the material support frame, and the carrier frame in the present utility model;
[0025] Figure 3 is an enlarged structure diagram of area A in the present utility model;
[0026] The reference numerals of the present utility model are:
[0027] Transporter, 1; Lifting mechanism, 2; Material support frame, 3; Carrier frame, 4; First support rod, 31; Second support rod, 32; Third support rod, 33; Fourth support rod, 34; Fifth support rod, 35; Liquid receiving tray, 5; Cushion block, 6; Outer gantry, 7; Inner gantry, 8; Hydraulic cylinder, 9; Piston rod, 10; Sprocket, 11; Chain, 16; "L"-shaped clamping part, 15; Vehicle body, 12; Control armrest, 13; Protective baffle, 18; Footrest, 14; Material, 17. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0028] The following will describe the specific embodiments of the present utility model in detail.
[0029] Unless otherwise defined, technical terms or scientific terms used in the claims and the specification shall have the ordinary meanings understood by those with ordinary skills in the technical field to which the present utility model pertains.
[0030] The term "comprising" or similar terms used in the specification and claims of the present utility model patent application are intended to mean that the items appearing before "comprising" cover the items listed after "comprising" or their equivalents, without excluding other items.
[0031] The numerical values mentioned in the present utility model include all numerical values that increase unit by unit from low to high. Here, it is assumed that there is an interval of at least two units between any lower value and higher value. For example, if it is said that a component amount or a physical quantity ranges from 1 to 100, more preferably from 10 to 90, and most preferably from 20 to 80, it is intended to express that numerical values such as 5 to 95, 14 to 76, 23 to 67, 32 to 58, 41 to 49, etc. are clearly listed in this specification; for numerical values less than 1, 0.0001, 0.001, 0.01 or 0.1 is considered a more appropriate unit. The foregoing examples are for illustrative purposes only. In fact, all numerical combinations between the lowest value and the highest value listed are considered to be clearly listed in this specification in a similar manner.
[0032] Embodiment
[0033] This embodiment provides an electrolytic purification high-purity titanium material transfer device, including: a transfer vehicle 1, a lifting mechanism 2 fixedly arranged on the frame of the transfer vehicle 1, a material support frame 3 fixedly arranged on the side of the lifting mechanism 2 away from the transfer vehicle 1, and a carrier 4 fixedly arranged at the bottom of the side of the lifting mechanism 2 away from the transfer vehicle 1;
[0034] Among them, the material support frame 3 includes: a first support rod 31, a second support rod 32, a third support rod 33, a fourth support rod 34, and a fifth support rod 35;
[0035] Among them, one end of the first support rod 31 is fixedly connected to one end of the second support rod 32, the other end of the first support rod 31 is fixedly connected to one end of the third support rod 33, and the other end of the second support rod 32 is fixedly connected to the other end of the third support rod 33. Thus, the first support rod 31, the second support rod 32, and the third support rod 33 form a triangular structure;
[0036] Among them, the axial direction of the first support rod 31 is parallel to the axial direction of the inner gantry 8, and the axial direction of the second support rod 32 is perpendicular to the axial direction of the inner gantry 8.
[0037] The first support rod 31 is fixedly connected to the fourth support rod 34 and the fifth support rod 35 in sequence from top to bottom, and the end portions of the fifth support rod 35 are respectively slidably connected to one side of the lifting mechanism 2 through rollers. There is a spacing between the fourth support rod 34 and the fifth support rod 35;
[0038] The other end of the second support rod 32 further extends with a connecting portion, and a plurality of threaded holes are provided on the connecting portion;
[0039] Wherein, a liquid receiving tray 5 is detachably arranged on the upper part of the carrier 4, and a cushion block 6 is fixedly arranged at the connection between the liquid receiving tray 5 and the carrier 4.
[0040] Wherein, it further includes an "L"-shaped clamping member 15. A through hole is provided at one end of the "L"-shaped clamping member 15. A bolt matching the through hole is fixedly arranged on one side of the bottom of the outer gantry 7 close to the liquid receiving tray 5. One end of the "L"-shaped clamping member 15 is fixed to one side of the bottom of the outer gantry 7 close to the liquid receiving tray 5 through the through hole, the bolt, and a nut;
[0041] Wherein, a clamping groove for the other end of the "L"-shaped clamping member 15 is provided on one side of the liquid receiving tray 5 close to the bottom of the outer gantry 7. The arrangement of the "L"-shaped clamping member 15 provides convenience for the disassembly of the liquid receiving tray 5.
[0042] Wherein, the lifting mechanism 2 includes an outer gantry 7 fixedly arranged on the frame of the transfer vehicle 1, an inner gantry 8 slidably embedded in the outer gantry 7, and a hydraulic cylinder 9 fixedly arranged at the bottom of the outer gantry 7;
[0043] Wherein, a sprocket 11 is fixedly arranged at the top of the piston rod 10 of the hydraulic cylinder 9. One side of the outer gantry 7 is fixedly connected to one end of a chain 16. The other end of the chain 16 bypasses the sprocket 11 and is fixedly connected to one side of the fourth support rod 34 or the fifth support rod 35.
[0044] Wherein, the carrier 4 is fixedly arranged at the bottom of one side of the outer gantry 7 away from the transfer vehicle 1.
[0045] Wherein, the end portions of the fourth support rod 34 and the fifth support rod 35 are fixedly connected to one side of the inner gantry 8 away from the transfer vehicle 1.
[0046] Wherein, the transfer vehicle 1 further includes a vehicle body 12, a control armrest 13 fixedly arranged on the vehicle body 12, two protective baffles 18 fixedly arranged on both sides of the vehicle body 12, and a footrest 14 fixedly arranged at the bottom of the vehicle body 12.
[0047] Among them, the wall thickness of the liquid receiving tray 5 is 0.5 cm - 2 cm, and the depth inside the liquid receiving tray 5 is 2 cm - 3 cm.
[0048] During use, the hydraulic cylinder 9 is started, and the piston rod 10 of the hydraulic cylinder 9 moves upward or downward, thereby driving the top sprocket 11 of the piston rod 10 to move upward or downward. When the top of the piston rod 10 drives the sprocket 11 to lift, the chain 16 will lift the material support frame 3 together. After the material support frame 3 reaches the appropriate position, the transfer vehicle 1 is driven to place the connecting part with a threaded hole at the other end of the second support rod 32 above the material 17, and the flange on the material 17 is fixed below the connecting part through bolts. After the material 17 is fixed, the material support frame 3 is lifted and the transfer vehicle 1 is driven away. During the transfer process, the liquid and titanium crystals on the material 17 will drip into the liquid receiving tray 5.
[0049] In summary, the present invention provides an efficient and orderly material transfer device, which is applicable to the whole process from the acid leaching and water washing processes to the material stripping process. The present invention also greatly reduces the need for manual handling, reduces the labor intensity and labor costs. During the transfer process, it effectively prevents the liquid and titanium crystals from scattering on the ground, keeps the working environment clean and safe, and reduces the risk of secondary pollution. In this regard, the present invention not only improves the efficiency and safety of material transfer, has the characteristics of firm structure and simple operation, but also significantly improves the working environment.
[0050] The above are only the preferred embodiments of the present invention, and do not limit the implementation manners and protection scope of the present invention. For those skilled in the art, it should be realized that all the equivalent replacements and obvious changes made by using the description and illustrations of the present invention should be included in the protection scope of the present invention.
Claims
1. An electrolytic purification high-purity titanium material transfer device, characterized in that Including: A transfer vehicle (1), a lifting mechanism (2) fixedly arranged on the frame of the transfer vehicle (1), a material support frame (3) fixedly arranged on the side of the lifting mechanism (2) away from the transfer vehicle (1), and a carrier (4) fixedly arranged at the bottom of the side of the lifting mechanism (2) away from the transfer vehicle (1); Wherein, the material support frame (3) includes: a first support rod (31), a second support rod (32), a third support rod (33), a fourth support rod (34), and a fifth support rod (35); Wherein, one end of the first support rod (31) is fixedly connected to one end of the second support rod (32), the other end of the first support rod (31) is fixedly connected to one end of the third support rod (33), and the other end of the second support rod (32) is fixedly connected to the other end of the third support rod (33), whereby the first support rod (31), the second support rod (32), and the third support rod (33) form a triangular structure; The first support rod (31) is fixedly connected to the fourth support rod (34) and the fifth support rod (35) in sequence from top to bottom, and the end parts of the fourth support rod (34) and the fifth support rod (35) are respectively slidably connected to one side of the lifting mechanism (2) through rollers, and there is a spacing between the fourth support rod (34) and the fifth support rod (35); The other end of the second support rod (32) further extends with a connecting portion, and a plurality of threaded holes are formed in the connecting portion; Wherein, a liquid receiving tray (5) is detachably arranged on the upper part of the carrier (4), and a cushion block (6) is fixedly arranged at the connection part of the liquid receiving tray (5) and the carrier (4).
2. The electrolytic purification high-purity titanium material transfer device according to claim 1, characterized in that, The lifting mechanism (2) includes: an outer gantry (7) fixedly arranged on the frame of the transfer vehicle (1), an inner gantry (8) slidably embedded in the outer gantry (7), and a hydraulic cylinder (9) fixedly arranged at the bottom of the outer gantry (7); Wherein, the top of the piston rod (10) of the hydraulic cylinder (9) is fixedly provided with a sprocket (11), one side of the outer gantry (7) is fixedly connected to one end of a chain (16), and the other end of the chain (16) bypasses the sprocket (11) and is fixedly connected to one side of the fourth support rod (34) or the fifth support rod (35).
3. The electrolytic purification high-purity titanium material transfer device according to claim 2, wherein The carrier (4) is fixedly arranged at the bottom of the side of the outer gantry (7) away from the transfer vehicle (1).
4. The electrolytic purification high-purity titanium material transfer device according to claim 2, wherein, The end parts of the fourth support rod (34) and the fifth support rod (35) are fixedly connected to the side of the inner gantry (8) away from the transfer vehicle (1).
5. The electrolytic purification high-purity titanium material transfer device according to claim 2, wherein, Also including: "L”-shaped clip (15), one end of the "L”-shaped clip (15) is provided with a through hole, and a bolt matching the through hole is fixedly arranged on one side of the bottom of the outer gantry (7) close to the liquid receiving tray (5). One end of the "L”-shaped clip (15) is fixed to one side of the bottom of the outer gantry (7) close to the liquid receiving tray (5) through the through hole, the bolt, and a nut. Wherein, a card slot for the other end of the "L”-shaped clip (15) is provided on one side of the liquid receiving tray (5) close to the bottom of the outer gantry (7).
6. The electrolytic purification high-purity titanium material transfer device according to claim 2, wherein The transporter (1) further includes: a vehicle body (12), a control handrail (13) fixedly arranged on the vehicle body (12), two protective baffles (18) fixedly arranged on both sides of the vehicle body (12), and a footrest (14) fixedly arranged on the bottom of the vehicle body (12).
7. The electrolytic purification high-purity titanium material transfer device according to claim 1, wherein, The wall thickness of the liquid receiving tray (5) is 0.5 cm - 2 cm, and the depth inside the liquid receiving tray (5) is 2 cm - 3 cm.
8. The electrolytic purification high-purity titanium material transfer device according to claim 2, characterized in that, The axial direction of the first support rod (31) is parallel to the axial direction of the inner gantry (8), and the axial direction of the second support rod (32) is perpendicular to the axial direction of the inner gantry (8).