Hydrogen storage type ferrotitanium alloy material processing device

By designing a titanium-iron alloy processing device that includes a support box, conveyor rollers, laser cutting machine, and dust collection components, the hazards and inconvenience of dust and debris during processing have been solved. The device achieves automated dust absorption and debris collection, improving operational safety and efficiency.

CN223932821UActive Publication Date: 2026-02-24JIANGSU HUIPENG HYDROGEN ENERGY STORAGE TECH CO LTD
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Patent Information

Application Number
CN202423304791.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-31
Publication Date
2026-02-24
Estimated Expiration
2034-12-31

AI Technical Summary

Technical Problem

During the processing of titanium-iron alloy sheets, the dust and cutting debris that are raised and remain cause inconvenience to operation, may cause harm to the human body, and require manual cleaning.

Method used

A hydrogen storage type titanium-iron alloy material processing device was designed, which includes a support box, conveying rollers, laser cutting machine, dust collection components and pull-out groove. The dust is absorbed by the dust collection fan, and the debris is collected by the conveying rollers and pull-out groove, reducing human exposure and manual cleaning.

Benefits of technology

It effectively reduces the harm of dust to the human body, automatically collects cutting debris, simplifies the operation process, and improves processing efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a hydrogen storage type ferrotitanium alloy material processing device which comprises a supporting box, a conveying roller is arranged above the inner side of the supporting box, a processing box is arranged above the supporting box, a laser cutting machine is arranged at the top of the processing box, and a feeding port and a discharging port are formed in the front side and the rear side of the processing box respectively. A feeding port is formed in the supporting box, a partition plate is arranged on the inner side of the feeding port, a drawing groove is formed in the supporting box in a sliding mode, a dust collection assembly is arranged on one side of the outer portion of the supporting box, a baffle is rotationally arranged on the rear portion of the interior of the supporting box, and limiting plates are arranged on the left side and the right side of the interior of the supporting box in a sliding mode. According to the titanium-iron alloy plate cutting device, the dust collecting device is arranged, so that machining dust is absorbed, the situation that workers inhale the dust is effectively reduced, cutting chippings fall off through the conveying rollers and are collected through the drawing groove, the workers do not need to manually treat the chippings, and machining of a next titanium-iron alloy plate is conveniently and rapidly conducted.
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Description

Technical Field

[0001] This utility model relates to the field of titanium-iron alloy material processing technology, specifically a hydrogen storage type titanium-iron alloy material processing device. Background Technology

[0002] Ferrotitanium alloy is an intermediate alloy of iron and titanium, primarily used in the purification process of steelmaking. It contains titanium and iron as its main components, along with impurities such as aluminum, silicon, carbon, sulfur, phosphorus, and manganese. This alloy acts as a deoxidizer, desulfurizer, degassing agent, and alloying agent in steelmaking, refining the steel's grain structure, fixing interstitial elements (C, N), and improving the steel's strength.

[0003] Currently, titanium-iron alloy sheets are typically processed using laser cutting machines to cut them into suitable shapes. However, this process generates dust and cutting debris, which can be inhaled by workers and cause harm. Furthermore, after processing, the debris remains on the worktable, requiring cleaning before further processing can proceed, making the operation inconvenient. Utility Model Content

[0004] The purpose of this invention is to provide a hydrogen storage type titanium-iron alloy material processing device to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution:

[0006] A hydrogen storage type titanium-iron alloy material processing device includes a support box, a conveying roller disposed on the upper inner side of the support box, a processing box disposed above the support box, a laser cutting machine disposed on the top of the processing box, an inlet and an outlet disposed on the front and rear sides of the processing box respectively, a partition disposed on the inner side of the inlet, a receiving plate disposed on the outer side of the outlet, a pull-out groove slidably disposed inside the support box, a dust collection component disposed on one side of the outer side of the support box, the dust collection component being used to absorb processing dust, the dust collection component including a dust collection fan, a baffle rotatably disposed inside the rear of the support box, and limit plates slidably disposed on the left and right sides inside the support box.

[0007] In a preferred embodiment of this utility model, a reset hinge is provided at the top of the partition, and the reset hinge is connected to the top of the inner side of the feed port.

[0008] In a preferred embodiment of this utility model, a dust suction port is provided on one side of the support box, the dust suction part of the dust suction fan is connected to the dust suction port, and a dust collection bag is provided at the dust outlet of the dust suction fan.

[0009] In a preferred embodiment of this utility model, a blocking net is provided on one side of the pull-out groove, and the blocking net is located on the side of the dust suction port.

[0010] In a preferred embodiment of this utility model, a slot is provided on the outer side of the baffle, and a locking strip is slidably disposed inside the slot.

[0011] In a preferred embodiment of this utility model, a rack is provided on one side of the card strip, a gear is provided on one side of the baffle, the rack meshes with the gear, and an electric push rod is provided on one side of the dust collector fan, the electric push rod being connected to the bottom of the rack.

[0012] In a preferred embodiment of this utility model, the support box is provided with rotating openings on both sides of its exterior, and a rotating component is rotatably disposed inside the rotating opening.

[0013] In a preferred embodiment of this utility model, a screw hole is provided on the inner side of the rotating component, and a screw rod is provided on one side of the limiting plate, with the screw hole and the screw rod being threadedly connected.

[0014] In a preferred embodiment of this utility model, a worm gear is provided on one side of the rotating component, a motor is provided on the outside of the rotating port, a worm is provided on the motor drive shaft, and the worm meshes with the worm gear.

[0015] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention.

[0016] Beneficial effects: The titanium-iron alloy plate is placed on the conveyor roller from the feed port, and the conveyor roller transports the titanium-iron alloy plate. The titanium-iron alloy plate is cut by a laser cutting machine. A dust extraction fan is used to extract dust at the dust extraction port, thereby absorbing the dust generated during processing and effectively reducing the inhalation of dust by workers. The cutting debris falls off through the conveyor roller and is collected through a pull-out groove, eliminating the need for manual handling of debris and facilitating the rapid processing of the next titanium-iron alloy plate. After processing, the titanium-iron alloy plate is transported back to the discharge port by the conveyor roller.

[0017] The above description is merely an overview of the technical solution of this utility model. In order to better understand the technical means of this utility model and to implement it according to the contents of the specification, the preferred embodiments of this utility model are described in detail below with reference to the accompanying drawings. The specific implementation methods of this utility model are given in detail in the following embodiments and their accompanying drawings. Attached Figure Description

[0018] The above and / or additional aspects and advantages of this utility model will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:

[0019] Figure 1 A schematic diagram of the main structure of a hydrogen storage type titanium-iron alloy material processing device;

[0020] Figure 2 This is a schematic diagram of the connection structure between the support box and the outside of the processing box in a hydrogen storage type titanium-iron alloy material processing device.

[0021] Figure 3 A schematic diagram of a baffle structure in a hydrogen storage type titanium-iron alloy material processing device;

[0022] Figure 4 This is a schematic diagram of the limiting plate structure in a hydrogen storage type titanium-iron alloy material processing device.

[0023] In the diagram: 1. Support box; 11. Processing box; 12. Conveyor roller; 13. Laser cutting machine; 14. Feed inlet; 15. Discharge outlet; 16. Dust extraction fan; 2. Partition; 21. Reset hinge; 22. Receiving plate; 23. Pull-out groove; 24. Baffle net; 25. Dust extraction port; 26. Dust collection bag; 3. Baffle; 31. Gear; 32. Slot; 33. Electric push rod; 34. Locking strip; 35. Rack; 4. Limiting plate; 41. Screw; 42. Rotating port; 43. Rotating component; 44. Threaded port; 45. Worm gear; 5. Worm; 51. Motor. Detailed Implementation

[0024] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.

[0025] Please refer to Figures 1-4 This utility model discloses a hydrogen storage type titanium-iron alloy material processing device, including a support box 1, which serves as the bottom support structure for supporting the overall structure. A conveying roller 12 is installed on the upper inner side of the support box 1, which places and conveys the titanium-iron alloy plate. A processing box 11 is installed above the support box 1, serving as the mounting structure. A laser cutting machine 13 is installed on the top of the processing box 11, forming the main structure of the device, used for cutting the titanium-iron alloy plate. An inlet 14 and an outlet 15 are respectively located on the front and rear sides of the processing box 11. The titanium-iron alloy plate enters through the inlet 14, and the processed titanium-iron alloy plate exits through the outlet 15. A receiving plate 22 is installed outside the outlet 15, where the discharged titanium-iron alloy plate is placed for easy collection by personnel.

[0026] A partition 2 is provided on the inner side of the feed inlet 14, and a reset hinge 21 is provided on the top of the partition 2. The reset hinge 21 is connected to the top of the inner side of the feed inlet 14. That is, by pushing the partition 2, the feed inlet 14 is opened. After the titanium-iron alloy plate is placed, the partition 2 is reset by the reset hinge 21, thereby blocking the feed inlet 14.

[0027] The support box 1 has a sliding pull-out groove 23 inside. A dust collection component is located on one side of the support box 1 to absorb processing dust. The dust collection component includes a dust collection fan 16. A dust suction port 25 is located on one side of the support box 1, and the dust collection fan 16 is connected to the dust suction port 25. A dust collection bag 26 is located at the dust outlet of the dust collection fan 16. A baffle net 24 is located on one side of the pull-out groove 23. The baffle net 24 is not dustproof and is located on the side of the dust suction port 25. When cutting the internal titanium-iron alloy plate... The dust is drawn by the suction fan 16 at the suction port 25, which absorbs the dust during processing and effectively reduces the inhalation of dust by the workers. The dust is collected by the dust collection bag 26 for easy subsequent processing. The cutting debris falls off by the conveyor roller 12 and is collected by the pull-out groove 23, so that the workers do not need to manually handle the debris, which facilitates the rapid processing of the next titanium-iron alloy plate. The blocking net 24 blocks the debris, and the debris can be easily handled by pulling out the pull-out groove 23.

[0028] A baffle 3 is rotatably mounted inside the rear of the support box 1. A slot 32 is provided on one side of the baffle 3. A retaining strip 34 is slidably mounted inside the slot 32. The retaining strip 34 is engaged in the slot 32 and slides. A rack 35 is provided on one side of the retaining strip 34, and a gear 31 is provided on one side of the baffle 3. The rack 35 meshes with the gear 31. An electric push rod 33 is provided on one side of the dust collector fan 16. The electric push rod 33 is connected to the bottom of the rack 35. The electric push rod 33 drives the rack 35 to extend and retract, thereby causing the gear 31 to drive the baffle 3 to rotate. The baffle 3 is adjusted to face downwards, that is, the titanium-iron alloy plate on the conveyor roller 12 is blocked by the baffle 3. After processing, the baffle 3 is adjusted to one side or upwards, that is, it does not block the titanium-iron alloy plate.

[0029] Limiting plates 4 are slidably installed on the left and right sides inside the support box 1. Rotating openings 42 are provided on the two sides outside the support box 1. Rotating components 43 are rotatably installed inside the rotating openings 42. The rotating components 43 are locked inside the rotating openings 42 and rotate. A threaded opening 44 is provided on the inner side of the rotating component 43. A screw 41 is provided on one side of the limiting plate 4. The threaded opening 44 is threadedly connected to the screw 41. A worm gear 45 is provided on one side of the rotating component 43. A motor 51 is provided on the outer side of the rotating opening 42. A worm 5 is provided on the drive shaft of the motor 51. The worm 5 meshes with the worm gear 45. The motor 51 drives the worm 5 to rotate, thereby causing the worm gear 45 and the rotating component 43 to rotate. Through the threaded transmission, the limiting plates 4 can extend and retract. That is, the limiting plates 4 on both sides limit the internal titanium-iron alloy plate, which facilitates processing.

[0030] The working principle of this utility model is as follows: By pushing the partition 2 to open the feed port 14, the titanium-iron alloy plate is placed on the conveying roller 12 from the feed port 14. The conveying roller 12 conveys the titanium-iron alloy plate. After the titanium-iron alloy plate is placed, the partition 2 is reset by the reset hinge 21. The electric push rod 33 drives the rack 35 to extend and retract, thereby causing the gear 31 to drive the baffle 3 to rotate, adjusting the baffle 3 to face downwards, that is, the baffle 3 blocks the titanium-iron alloy plate on the conveying roller 12. The motor 51 drives the worm 5 to rotate, thereby causing the worm wheel 45 and the rotating part 43 to rotate. Through the threaded transmission, the limiting plate 4 extends and retracts, that is, through the two sides... Position plate 4 limits the internal titanium-iron alloy plate. The titanium-iron alloy plate is cut by laser cutting machine 13. Dust is sucked up by dust suction fan 16 at dust suction port 25 to absorb the dust generated during processing. Cutting debris falls through conveyor roller 12 and is collected through pull-out groove 23. Baffle net 24 blocks the debris. By pulling out pull-out groove 23, the debris can be easily handled. After processing, baffle 3 is adjusted to one side or above, and the two limiting plates 4 are released. The titanium-iron alloy plate is conveyed by conveyor roller 12 and discharged from discharge port 15. The discharged titanium-iron alloy plate is placed on receiving plate 22 for easy collection by staff.

[0031] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.

Claims

1. A hydrogen storage type titanium-iron alloy material processing device, comprising a support box (1), characterized in that: A conveying roller (12) is provided on the upper inner side of the support box (1). A processing box (11) is provided on the upper side of the support box (1). A laser cutting machine (13) is provided on the top of the processing box (11). A feed inlet (14) and a discharge outlet (15) are provided on the front and rear sides of the processing box (11), respectively. A partition (2) is provided on the inner side of the feed inlet (14). A receiving plate (22) is provided on the outer side of the discharge outlet (15). A pull-out groove (23) is slidably provided inside the support box (1). A dust collection component is provided on one side of the outside of the support box (1). The dust collection component is used to absorb the dust during processing. The dust collection component includes a dust collection fan (16). A baffle (3) is rotatably provided at the rear inside the support box (1). Limit plates (4) are slidably provided on the left and right sides inside the support box (1).

2. The hydrogen storage type titanium-iron alloy material processing device according to claim 1, characterized in that, The top of the partition (2) is provided with a reset hinge (21), which is connected to the top of the inner side of the feed inlet (14).

3. The hydrogen storage type titanium-iron alloy material processing device according to claim 1, characterized in that, A dust suction port (25) is provided on one side of the support box (1), the dust suction port (25) is connected to the dust suction part of the dust suction fan (16), and a dust collection bag (26) is provided at the dust discharge part of the dust suction fan (16).

4. The hydrogen storage type titanium-iron alloy material processing device according to claim 3, characterized in that, A barrier net (24) is provided on one side of the pull-out groove (23), and the barrier net (24) is located on the side of the dust suction port (25).

5. The hydrogen storage type titanium-iron alloy material processing device according to claim 1, characterized in that, A slot (32) is provided on the outer side of the baffle (3), and a strip (34) is slidably provided inside the slot (32).

6. The hydrogen storage type titanium-iron alloy material processing device according to claim 5, characterized in that, A rack (35) is provided on one side of the card strip (34), and a gear (31) is provided on one side of the baffle (3). The rack (35) meshes with the gear (31). An electric push rod (33) is provided on one side of the dust collector (16), and the electric push rod (33) is connected to the bottom of the rack (35).

7. The hydrogen storage type titanium-iron alloy material processing device according to claim 1, characterized in that, The support box (1) has rotating openings (42) on both sides of its exterior, and rotating parts (43) are rotatably arranged inside the rotating openings (42).

8. The hydrogen storage type titanium-iron alloy material processing device according to claim 7, characterized in that, The rotating part (43) has a screw hole (44) on its inner side, and the limiting plate (4) has a screw rod (41) on one side. The screw hole (44) and the screw rod (41) are connected by threads.

9. The hydrogen storage type titanium-iron alloy material processing device according to claim 7, characterized in that, A worm gear (45) is provided on one side of the rotating part (43), and a motor (51) is provided on the outside of the rotating port (42). A worm (5) is provided on the drive shaft of the motor (51), and the worm (5) meshes with the worm gear (45).