An adjustable titanium alloy suspension structure

Through the lifting cylinder and adjustable positioning mechanism, the problem of incomplete coating of the clamping mechanism in the titanium alloy suspension structure is solved, the full coating of the titanium alloy surface is achieved, and the processing effect is improved.

CN120348843BActive Publication Date: 2025-09-12SHENYANG HUATIAN AVIATION MASCH CO LTD
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Patent Information

Application Number
CN202510848401.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-06-24
Publication Date
2025-09-12
Estimated Expiration
2045-06-24

AI Technical Summary

Technical Problem

During use of the existing titanium alloy suspension structure, the contact points between the clamping mechanism and the titanium alloy cannot be effectively coated, resulting in incomplete coating and reduced processing effect.

Method used

The machine adopts an adjustable titanium alloy suspension structure, and realizes multi-position clamping and surface cleaning of titanium alloy through lifting cylinders, adjustable positioning mechanism and surface cleaning mechanism, ensuring the comprehensiveness of coating.

Benefits of technology

Through multi-position clamping and surface cleaning, coating blind spots are avoided and the integrity and processing effect of titanium alloy coating are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses an adjustable titanium alloy suspension structure, which relates to the technical field of suspension brackets, including: a suspension frame; two lifting rails, which are arranged on both sides of the suspension frame, and the two lifting rails are slidably connected to a lifting slide, and the suspension frame is fixedly connected to a lifting cylinder above the two lifting rails, and the output end of the lifting cylinder is fixedly connected to the top of the lifting slide; two adjustable positioning mechanisms are arranged on opposite sides of the two lifting slides. The adjustable titanium alloy suspension structure disclosed by the present invention has the effect of clamping the titanium alloy through multiple groups of clamping plates, placing it in a coating tank, turning on the air pump after a period of time, and filling the clamping airbag with gas, and clamping the titanium alloy at different positions by closing the clamping airbag. The hydraulic cylinder drives the clamping plate to gradually separate from the titanium alloy, changing the clamping position of the titanium alloy, thereby ensuring that its surface coating is complete and avoiding the existence of coating blind spots.
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Description

Technical Field

[0001] The present invention relates to the technical field of suspension brackets, and in particular to an adjustable titanium alloy suspension structure. Background Art

[0002] During the processing of titanium alloy, it needs to be suspended by a suspension structure to facilitate its entry and exit from the coating pool.

[0003] During use, the existing titanium alloy suspension structure is clamped by the clamping mechanism on the suspension bracket and then lowered into the coating pool. During the coating process, the contact points between the clamping mechanism and the titanium alloy cannot be effectively coated, resulting in incomplete coating of the titanium alloy, reducing the titanium alloy processing effect, and making the suspension structure lack of use value. Summary of the Invention

[0004] The present invention discloses an adjustable titanium alloy suspension structure, which aims to solve the technical problem that in the existing titanium alloy suspension structure, after the titanium alloy is clamped by a clamping mechanism on a suspension bracket during use, it is lowered into a coating tank. During the coating process, the titanium alloy cannot be effectively coated at the contact points between the clamping mechanism and the titanium alloy, resulting in incomplete coating of the titanium alloy and reduced titanium alloy processing effect.

[0005] In order to achieve the above object, the present invention adopts the following technical solutions:

[0006] An adjustable titanium alloy suspension structure, comprising:

[0007] suspension rack;

[0008] Two lifting rails are provided on both sides of the suspension frame, and the two lifting rails are slidably connected to the lifting slide. The suspension frame is located above the two lifting rails and is fixedly connected to the lifting cylinder, and the output end of the lifting cylinder is fixedly connected to the top of the lifting slide;

[0009] Two adjustable positioning mechanisms are provided on opposite sides of the two lifting slides, and the adjustable positioning mechanisms are used to achieve different positions of the titanium alloy;

[0010] Two annular limiting rails are arranged in two mounting grooves symmetrically opened on the top of the suspension frame;

[0011] Cooperate with the rotating gear and slide connected to the annular limit rail;

[0012] The surface cleaning mechanism is arranged on the mating gear, and is used for cleaning the surface of the titanium alloy.

[0013] In a preferred embodiment, the adjustable positioning mechanism includes:

[0014] A semi-enclosed lifting frame is provided on one side of the lifting slide, and a hydraulic cylinder 1 is fixedly connected to both sides of the semi-enclosed lifting frame;

[0015] A middle semicircular sleeve is provided at the output end of the first hydraulic cylinder. A reinforcement slide is fixedly connected to the outer wall of the middle semicircular sleeve. A reinforcement slide is provided on the side of the semi-enclosed lifting frame facing the reinforcement slide. The reinforcement slide is slidably connected to the reinforcement slide.

[0016] A middle block is provided on the outer side wall of the middle semicircular sleeve located on the middle line;

[0017] The two hydraulic cylinders 2 are respectively arranged at the top and bottom of the middle block, and the output ends of the two hydraulic cylinders 2 are fixedly connected with an integrated ring rod.

[0018] By setting up an adjustable positioning mechanism, the titanium alloy is clamped by multiple sets of clamping plates and then placed in a coating tank. After a period of time, the air pump is turned on to fill the clamping airbag with gas. The titanium alloy is clamped in different positions by closing the clamping airbag. The hydraulic cylinder drives the clamping plates to gradually separate from the titanium alloy, changing the clamping position of the titanium alloy, thereby ensuring that its surface coating is complete, avoiding the existence of coating blind spots, and thereby improving the use value of the suspension structure.

[0019] In a preferred embodiment, the adjustable positioning mechanism further comprises:

[0020] Multiple mobile racks are arranged on the same side of the two integrated ring rods. The side of each mobile rack away from the middle block is fixedly connected to a hydraulic cylinder three, and the output end of each hydraulic cylinder three is fixedly connected to a clamping plate;

[0021] Two receiving grooves are provided at the top and bottom of the middle semicircular sleeve;

[0022] A plurality of telescopic connecting rods are arranged in the two receiving grooves, and one end of the telescopic connecting rod is fixedly connected to one end of the corresponding moving frame.

[0023] In a preferred solution, two clamping airbags are fixedly connected to the inner arc surface of the middle semicircular sleeve, and connecting holes are opened on the opposite sides of the two clamping airbags. The inside of the two connecting holes is fixedly connected to the same connecting pipe, and one side of the reinforcing slide is fixedly connected to a pump ring frame, and the inside of the pump ring frame is fixedly connected to an air pump, and the air delivery end of the air pump is connected to the inside of the connecting pipe through a pipeline.

[0024] In a preferred solution, the movable frame is fixedly connected to a fixed block near the outer side wall of the middle semicircular sleeve, and the fixed block is fixedly connected to a self-adjusting spring rod on the side facing the clamping plate, one end of the self-adjusting spring rod is fixedly connected to a fine-tuning rail, the inner sliding connection of the fine-tuning rail is an adjusting slider, the adjusting slider is fixedly connected to a contact limiting ball on the side facing the clamping plate, the contact limiting ball is in contact with the clamping plate, the contact limiting ball is fixedly connected to a connecting rod facing the outer side wall of the middle semicircular sleeve, and one end of the connecting rod is fixedly connected to a fixed-point extrusion ball.

[0025] In a preferred solution, one side of the adjusting slider is fixedly connected to a connecting spring, and one end of the connecting spring is fixedly connected to an inner wall of one side of the fine-tuning rail, the air inlet end of the air pump is fixedly connected to a telescopic air guide tube, one side of the suspension bracket is fixedly connected to a pipe rack, and the telescopic air guide tube is fixedly connected to the inside of the pipe rack.

[0026] In a preferred embodiment, the surface cleaning mechanism comprises:

[0027] The rotating ring is arranged on the matching rotating tooth;

[0028] A collecting ring pipe is provided on the hanging frame and is located below the rotating ring piece. The outer wall of the collecting ring pipe facing the interior of the rotating ring piece is provided with a collecting hole.

[0029] The brush cloth is distributed in an annular manner on the inner wall of the rotating ring piece.

[0030] In a preferred embodiment, the surface cleaning mechanism further comprises:

[0031] A plurality of semicircular turning rails are provided on the inner side wall of the rotating ring piece and are located between each two adjacent brush cloths;

[0032] A reset slider is slidably connected to the interior of the semicircular turntable, the top of the reset slider is fixedly connected to a joint frame, and the bottom of the joint frame is fixedly connected to a follower vertical rod;

[0033] A plurality of vibration balls, each of which has an outer side wall fixedly connected to a flexible connecting rod, and one end of the flexible connecting rod is fixedly connected to the outer side wall of the follower vertical rod;

[0034] A reset spring is arranged on one side of each reset slider, and one end of the reset spring is fixedly connected to an inner wall of one side of the semicircular slewing rail.

[0035] In a preferred solution, the suspension bracket is fixedly connected to a collecting box between the two rotating ring plates, and mounting plates are fixedly connected to both sides of the collecting box. The tops of the two mounting plates are fixedly connected to dust pumps, and the dust suction end of the dust suction pump is connected to the interior of the corresponding collecting ring pipe through a pipe, and the dust delivery end of the dust suction pump is connected to the interior of the collecting box through a pipe.

[0036] In a preferred solution, the suspension bracket is fixedly connected to a motor bracket near the top of the mating gear, and a driving motor is fixedly connected to the motor bracket, the output shaft of the driving motor is fixedly connected to a driving shaft through a coupling, and the outer side wall of the driving shaft is fixedly connected to an active gear, and the active gear is meshed with the mating gear.

[0037] The present invention provides an adjustable titanium alloy suspension structure. After the titanium alloy is clamped by multiple sets of clamping plates, it is placed in a coating tank. After a period of time, the air pump is turned on to fill the clamping airbag with gas. The titanium alloy is clamped in different positions by closing the clamping airbag. The hydraulic cylinder drives the clamping plates to gradually separate from the titanium alloy, changing the clamping position of the titanium alloy, thereby ensuring that its surface coating is complete and avoiding the existence of coating blind spots. BRIEF DESCRIPTION OF THE DRAWINGS

[0038] Figure 1 This is a schematic diagram of the overall structure of an adjustable titanium alloy suspension structure proposed by the present invention.

[0039] Figure 2 for Figure 1 Bottom view of the overall structure.

[0040] Figure 3 This is a schematic diagram of the combined structure of a lifting rail, a telescopic air guide tube and an adjustable positioning mechanism of an adjustable titanium alloy suspension structure proposed by the present invention.

[0041] Figure 4 This is a schematic diagram of the clamping mechanism structure of an adjustable titanium alloy suspension structure proposed by the present invention.

[0042] Figure 5 for Figure 4 Flip diagram of the overall structure.

[0043] Figure 6 This is an enlarged view of the combined structure of the clamping plate, telescopic connecting rod and movable frame of an adjustable titanium alloy suspension structure proposed by the present invention.

[0044] Figure 7 This is a schematic diagram of the combined structure of a contact limiting ball and a fixed-point extrusion ball of an adjustable titanium alloy suspension structure proposed by the present invention.

[0045] Figure 8 This is a schematic diagram of the surface cleaning mechanism of an adjustable titanium alloy suspension structure proposed by the present invention.

[0046] Figure 9 for Figure 8 Cross-sectional view of the rotating ring, annular limiting rail and matching rotating gear structure.

[0047] Figure 10This is a schematic diagram of the combined structure of a semicircular turning track, an oscillating ball and a follower vertical rod of an adjustable titanium alloy suspension structure proposed by the present invention.

[0048] In the figure: 1. Suspension frame; 2. Motor frame; 3. Surface cleaning mechanism; 301. Rotating ring; 302. Collecting ring tube; 303. Brush cloth; 304. Collecting hole; 305. Follow-up vertical rod; 306. Oscillating ball; 307. Semicircular turntable; 308. Return spring; 309. Return slider; 310. Combined frame; 311. Elastic connecting rod; 4. Lifting cylinder; 5. Lifting slide; 6. Adjustable positioning mechanism; 601. Semi-enclosed lifting frame; 602. Hydraulic cylinder 1; 603. Middle semicircular sleeve; 604. Clamping airbag; 605. Reinforcement slide; 606. Reinforcement chute; 607. Pump ring frame; 608. Air pump; 609. Middle block; 610. Hydraulic cylinder 2; 611. Integrated ring rod; 612. Receiving groove; 613. Moving frame; 614. Clamping plate; 615. Hydraulic cylinder 3; 616. Connecting pipe; 617. Telescopic connecting rod; 618. Fixed-point squeezing ball; 619. Contact limit ball; 620. Fixed block; 621. Self-adjusting spring rod; 622. Adjusting slider; 623. Connecting spring; 624. Fine-tuning rail; 625. Connecting rod; 7. Collection box; 8. Lifting rail; 9. Telescopic air guide tube; 10. Pipe rack; 11. Mounting plate; 12. Dust pump; 13. Driving motor; 14. Active gear; 15. Matching gear; 16. Driving shaft; 17. Annular limit rail. DETAILED DESCRIPTION

[0049] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0050] The adjustable titanium alloy suspension structure disclosed in the present invention is mainly applied to the existing titanium alloy suspension structure. During use, the titanium alloy is clamped by the clamping mechanism on the suspension bracket and then lowered into the coating pool. During the coating process, the contact points between the clamping mechanism and the titanium alloy cannot be effectively coated, resulting in incomplete coating of the titanium alloy and reduced titanium alloy processing effect.

[0051] Reference Figures 1-10 , an adjustable titanium alloy suspension structure, comprising:

[0052] Suspension rack 1;

[0053] Two lifting rails 8 are provided on both sides of the suspension frame 1. The two lifting rails 8 are slidably connected to the lifting slide 5. The suspension frame 1 is fixedly connected to the lifting cylinder 4 above the two lifting rails 8. The output end of the lifting cylinder 4 is fixedly connected to the top of the lifting slide 5.

[0054] Two adjustable positioning mechanisms 6 are provided on opposite sides of the two lifting slides 5. The adjustable positioning mechanisms 6 are used to achieve clamping of the titanium alloy at different positions.

[0055] Two annular limiting rails 17 are arranged in two mounting grooves symmetrically opened on the top of the suspension bracket 1;

[0056] Cooperate with the rotating gear 15 and slide connected to the annular limiting rail 17;

[0057] The surface cleaning mechanism 3 is provided on the mating gear 15 and is used for cleaning the surface of the titanium alloy.

[0058] Reference Figure 1-Figure 7 In a preferred embodiment, the adjustable positioning mechanism 6 includes:

[0059] The semi-enclosed lifting frame 601 is provided on one side of the lifting slide 5, and a hydraulic cylinder 1 602 is fixedly connected to both sides thereof;

[0060] The middle semicircular sleeve 603 is provided at the output end of the hydraulic cylinder 1 602. A reinforcement slide 605 is fixedly connected to the outer wall of the middle semicircular sleeve 603. A reinforcement slide 606 is formed on the side of the semi-enclosed lifting frame 601 facing the reinforcement slide 605. The reinforcement slide 605 is slidably connected to the reinforcement slide 606.

[0061] The middle block 609 is provided on the outer side wall of the middle semicircular sleeve 603 on the middle line;

[0062] The two hydraulic cylinders 2 610 are respectively arranged at the top and bottom of the middle block 609 , and the output ends of the two hydraulic cylinders 2 610 are fixedly connected to the integrated ring rod 611 .

[0063] In a specific application scenario, after the titanium alloy is clamped by multiple sets of clamping plates 614, it is placed in a coating tank. After a period of time, the air pump 608 is turned on to fill the clamping airbag 604 with gas. The clamping airbag 604 is closed to achieve clamping of the titanium alloy at different positions. The hydraulic cylinder three 615 drives the clamping plate 614 to gradually separate from the titanium alloy, changing the clamping position of the titanium alloy, thereby ensuring that its surface coating is complete, avoiding the existence of coating blind spots, and thereby improving the use value of the suspension structure.

[0064] Specifically, when the hydraulic cylinder 3 615 drives the clamping plate 614 to separate from the titanium alloy, the clamping plate 614 squeezes the contact limiting ball 619, so that the adjusting slider 622 on the contact limiting ball 619 is pressed down, and the connecting spring 623 is compressed. When the contact limiting ball 619 is separated from the clamping plate 614, the connecting spring 623 rod drives the contact reset ball to reset, and the self-adjusting spring rod 621 drives the contact limiting ball 619 to squeeze the titanium alloy. At the same time, the hydraulic cylinder 2 610 drives the moving When the frame 613 moves toward the middle semicircular sleeve 603, the annularly distributed contact limiting balls 619 continue to limit the contact with the periphery of the titanium alloy, and cooperate with the clamping airbag 604 to achieve stable clamping of the titanium alloy after the clamping position is adjusted. When the fixed-point extrusion ball 618 contacts the clamping airbag 604, the fixed-point extrusion ball 618 squeezes the clamping airbag 604, so that the gas inside the clamping airbag 604 flows toward the position in contact with the titanium alloy, further improving the firmness of the clamping of the clamping airbag 604.

[0065] It should be noted that after the titanium alloy clamping position is changed, it is clamped by the clamping airbag 604 to avoid damage to the film layer on the surface of the titanium alloy caused by hard clamping and to protect the titanium alloy film layer. At the same time, the clamping airbag 604 can be used for clamping titanium alloys of various shapes, with a higher degree of fit and a better clamping effect.

[0066] Reference Figure 3-Figure 7 In a preferred embodiment, the adjustable positioning mechanism 6 further comprises:

[0067] Multiple movable frames 613 are arranged on the same side of the two integrated ring rods 611. The side of each movable frame 613 away from the middle block 609 is fixedly connected to a hydraulic cylinder 3 615. The output end of each hydraulic cylinder 3 615 is fixedly connected to a clamping plate 614.

[0068] Two receiving grooves 612 are provided at the top and bottom of the middle semicircular sleeve 603;

[0069] A plurality of telescopic connecting rods 617 are disposed in the two receiving slots 612 , and one end of the telescopic connecting rod 617 is fixedly connected to one end of the corresponding moving frame 613 .

[0070] Reference Figure 4 and Figure 5 In a preferred embodiment, two clamping airbags 604 are fixedly connected to the inner arc surface of the middle semicircular sleeve 603, and connecting holes are opened on the opposite sides of the two clamping airbags 604. The inside of the two connecting holes is fixedly connected to the same connecting pipe 616, and one side of the reinforcement slide 605 is fixedly connected to the pump ring frame 607. The inside of the pump ring frame 607 is fixedly connected to the air pump 608, and the gas delivery end of the air pump 608 is connected to the inside of the connecting pipe 616 through a pipeline.

[0071] Reference Figure 6 and Figure 7 In a preferred embodiment, the movable frame 613 is fixedly connected to a fixed block 620 near the outer wall of the middle semicircular sleeve 603, and the fixed block 620 is fixedly connected to a self-adjusting spring rod 621 on the side facing the clamping plate 614, and one end of the self-adjusting spring rod 621 is fixedly connected to a fine-tuning rail 624, and the inner sliding connection of the fine-tuning rail 624 is connected to an adjusting slider 622, and the side of the adjusting slider 622 facing the clamping plate 614 is fixedly connected to a contact limiting ball 619, and the contact limiting ball 619 is in contact with the clamping plate 614, and the contact limiting ball 619 is fixedly connected to a connecting rod 625 facing the outer wall of the middle semicircular sleeve 603, and one end of the connecting rod 625 is fixedly connected to a fixed-point extrusion ball 618.

[0072] Reference Figure 1 、 Figure 2 and Figure 4 In a preferred embodiment, one side of the adjusting slider 622 is fixedly connected to a connecting spring 623, and one end of the connecting spring 623 is fixedly connected to the inner wall of one side of the fine-tuning rail 624, the air inlet end of the air pump 608 is fixedly connected to the telescopic air guide tube 9, one side of the suspension frame 1 is fixedly connected to the pipe rack 10, and the telescopic air guide tube 9 is fixedly connected to the inside of the pipe rack 10.

[0073] Reference Figure 1 、 Figure 2 、 Figure 8 and Figure 9 In a preferred embodiment, the surface cleaning mechanism 3 comprises:

[0074] The rotating ring 301 is arranged on the mating rotating tooth 15;

[0075] The collecting ring pipe 302 is provided on the hanging frame 1 and is located below the rotating ring piece 301. The outer wall of the collecting ring pipe 302 facing the inside of the rotating ring piece 301 is provided with a collecting hole 304;

[0076] The brush cloth 303 is distributed in an annular shape on the inner side wall of the rotating ring piece 301 .

[0077] Specifically, before hanging the titanium alloy, it is passed through the rotating ring piece 301, and the driving motor 13 is started. The driving motor 13 drives the active rotating gear 14 to rotate through the driving shaft 16, and the active rotating gear 14 drives the matching rotating gear 15 to rotate, thereby driving the brush cloth 303 inside the rotating ring piece 301 to clean the surface of the titanium alloy. At the same time, the dust suction pump 12 is started, and the dust suction pump 12 collects the impurities that fall off the surface of the titanium alloy through the collection hole 304 on the collection ring tube 302 to prevent the impurities on the surface of the titanium alloy from affecting the coating effect.

[0078] It should be noted that, when the brush cloth 303 inside the rotating ring 301 brushes off the impurities on the surface of the titanium alloy, the rotating oscillating ball 306 slightly impacts the titanium alloy, causing it to be in an oscillating state, accelerating the falling of impurities on its surface and avoiding the adhesion of impurities. At the same time, when there is a conflict between the follower vertical rod 305 and the titanium alloy, the reset slider 309 rotates in the semicircular turn track 307 to avoid the conflict between the two and cause damage to the titanium alloy. When the titanium alloy is separated from the follower vertical rod 305, the reset spring 308 drives the reset slider 309 to reset, and the oscillating ball 306 continues to work.

[0079] Reference Figure 9 and Figure 10 In a preferred embodiment, the surface cleaning mechanism 3 further comprises:

[0080] A plurality of semicircular turning rails 307 are provided on the inner side wall of the rotating ring piece 301 and are located between each two adjacent brush cloths 303;

[0081] The reset slider 309 is slidably connected to the interior of the semicircular turn rail 307. The top of the reset slider 309 is fixedly connected to the joint frame 310, and the bottom of the joint frame 310 is fixedly connected to the follower vertical rod 305;

[0082] Multiple oscillating balls 306, each oscillating ball 306 has an outer wall fixedly connected to a flexible connecting rod 311, and one end of the flexible connecting rod 311 is fixedly connected to the outer wall of the follower vertical rod 305;

[0083] The return spring 308 is provided on one side of each return slider 309 , and one end thereof is fixedly connected to the inner wall of one side of the semicircular slewing rail 307 .

[0084] Reference Figure 2 and Figure 9 In a preferred embodiment, the suspension bracket 1 is fixedly connected to a collection box 7 between the two rotating ring pieces 301, and mounting plates 11 are fixedly connected to both sides of the collection box 7. The tops of the two mounting plates 11 are fixedly connected to dust pumps 12, and the dust suction end of the dust suction pump 12 is connected to the inside of the corresponding collection ring pipe 302 through a pipe, and the dust delivery end of the dust suction pump 12 is connected to the inside of the collection box 7 through a pipe.

[0085] Reference Figure 8 and Figure 9 In a preferred embodiment, the suspension frame 1 is fixedly connected to the motor frame 2 near the top of the mating gear 15, and the motor frame 2 is fixedly connected to the drive motor 13. The output shaft of the drive motor 13 is fixedly connected to the drive shaft 16 through a coupling. The outer side wall of the drive shaft 16 is fixedly connected to the active gear 14, and the active gear 14 is meshed with the mating gear 15.

[0086] Working principle: When in use, before hanging the titanium alloy, pass it through the rotating ring piece 301, start the driving motor 13, and the driving motor 13 drives the active rotating gear 14 to rotate through the driving shaft 16. The active rotating gear 14 drives the matching rotating gear 15 to rotate, thereby driving the brush cloth 303 inside the rotating ring piece 301 to clean the surface of the titanium alloy. During the process of the brush cloth 303 inside the rotating ring piece 301 brushing off the impurities on the surface of the titanium alloy, the rotating oscillating ball 306 slightly impacts the titanium alloy, putting it in an oscillating state, accelerating the falling of impurities on its surface, and avoiding the adhesion of impurities. At the same time, the suction is started Dust pump 12, the dust pump 12 collects the impurities that have fallen off the surface of the titanium alloy through the collection hole 304 on the collection ring tube 302. After the titanium alloy passes through the inside of the rotating ring 301, its lower end passes through the semi-enclosed lifting frame 601. When its lower end moves to the semi-enclosed lifting frame 601, first adjust the hydraulic cylinder 1 602 to drive each clamping plate 614 to move toward the titanium alloy, then adjust the hydraulic cylinder 3 615 to drive the clamping plate 614 to clamp the titanium alloy. After the clamping is completed, the lifting cylinder 4 drives the titanium alloy as a whole to move into the coating pool. After a period of time, the coating is completed on the surface of the titanium alloy except for the clamping cover position, and the titanium alloy is turned on. Air pump 608, air pump 608 fills gas into the clamping airbag 604, and clamps the titanium alloy at different positions by closing the clamping airbag 604. During the clamping process of the clamping airbag 604, hydraulic cylinder three 615 drives the clamping plate 614 to separate from the titanium alloy, and the clamping plate 614 squeezes the contact limiting ball 619, so that the adjustment slider 622 on the contact limiting ball 619 is pressed down, and the connecting spring 623 is compressed. When the contact limiting ball 619 is separated from the clamping plate 614, the connecting spring 623 rod drives the contact reset ball to reset, and the self-adjusting spring rod 621 drives the contact limiting ball 619 to squeeze the titanium alloy. At the same time, the hydraulic cylinder 2 610 is adjusted to drive the movable frame 613 to move toward the middle semicircular sleeve 603, and the annularly distributed contact limiting balls 619 continue to contact and limit the periphery of the titanium alloy, and cooperate with the clamping airbag 604 to achieve stable clamping of the titanium alloy after the clamping position is adjusted. When the fixed-point extrusion ball 618 contacts the clamping airbag 604, the fixed-point extrusion ball 618 squeezes the clamping airbag 604, so that the gas inside the clamping airbag 604 flows toward the position in contact with the titanium alloy to achieve firm clamping of the titanium alloy, and continue the coating operation. After the initial clamping covering position coating is completed, the lifting cylinder 4 drives it to rise, and the operation ends.

[0087] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.

Claims

1. An adjustable titanium alloy suspension structure, characterized in that: include: Suspension bracket (1); Two lifting rails (8) are provided on both sides of the suspension frame (1), and the two lifting rails (8) are slidably connected to a lifting slide (5). The suspension frame (1) is located above the two lifting rails (8) and is fixedly connected to a lifting cylinder (4). The output end of the lifting cylinder (4) is fixedly connected to the top of the lifting slide (5); Two adjustable positioning mechanisms (6) are arranged on opposite sides of the two lifting slides (5), and the adjustable positioning mechanisms (6) are used to achieve clamping of the titanium alloy at different positions; Two annular limiting rails (17) are arranged in two mounting grooves symmetrically opened on the top of the suspension frame (1); Cooperating with the rotating gear (15), it is slidably connected to the annular limiting rail (17); A surface cleaning mechanism (3) is provided on the mating gear (15), and the surface cleaning mechanism (3) is used to clean the surface of the titanium alloy; The adjustable positioning mechanism (6) comprises: A semi-enclosed lifting frame (601) is provided on one side of the lifting slide (5), and a hydraulic cylinder 1 (602) is fixedly connected to both sides of the semi-enclosed lifting frame (601); The middle semicircular sleeve (603) is arranged at the output end of the hydraulic cylinder (602), the outer wall of the middle semicircular sleeve (603) is fixedly connected to the reinforcement slide (605), and the side of the semi-enclosed lifting frame (601) facing the reinforcement slide (605) is provided with a reinforcement slide groove (606), and the reinforcement slide (605) is slidably connected in the reinforcement slide groove (606); A middle block (609) is provided on the outer side wall of the middle semicircular sleeve (603) located on the middle line; Two hydraulic cylinders (610) are respectively arranged at the top and bottom of the middle block (609), and the output ends of the two hydraulic cylinders (610) are fixedly connected to an integrated ring rod (611); The adjustable positioning mechanism (6) further comprises: Multiple movable racks (613) are arranged on the same side of the two integrated ring rods (611), and each movable rack (613) is fixedly connected to a hydraulic cylinder three (615) on a side away from the middle block (609), and the output end of each hydraulic cylinder three (615) is fixedly connected to a clamping plate (614); Two receiving grooves (612) are provided at the top and bottom of the middle semicircular sleeve (603); A plurality of telescopic connecting rods (617) are arranged in the two receiving grooves (612), and one end of the telescopic connecting rod (617) is fixedly connected to one end of the corresponding moving frame (613); Two clamping airbags (604) are fixedly connected to the inner arc surface of the middle semicircular sleeve (603), and communication holes are opened on opposite sides of the two clamping airbags (604). The interiors of the two communication holes are fixedly connected to the same communication pipe (616). One side of the reinforcement slide plate (605) is fixedly connected to a pump ring frame (607), and the interior of the pump ring frame (607) is fixedly connected to an air pump (608). The air delivery end of the air pump (608) is connected to the interior of the communication pipe (616) through a pipeline.

2. The adjustable titanium alloy suspension structure according to claim 1, characterized in that: The movable frame (613) is fixedly connected to a fixed block (620) on the outer side wall of the intermediate semicircular sleeve (603), and a self-adjusting spring rod (621) is fixedly connected to the side of the fixed block (620) facing the clamping plate (614). One end of the self-adjusting spring rod (621) is fixedly connected to a fine-tuning rail (624). An adjusting slider (622) is slidably connected to the inside of the fine-tuning rail (624). A contact limiting ball (619) is fixedly connected to the side of the adjusting slider (622) facing the clamping plate (614). The contact limiting ball (619) is in contact with the clamping plate (614). The contact limiting ball (619) is fixedly connected to the outer side wall of the intermediate semicircular sleeve (603). One end of the connecting rod (625) is fixedly connected to a fixed-point extrusion ball (618).

3. The adjustable titanium alloy suspension structure according to claim 2, characterized in that: One side of the adjusting slider (622) is fixedly connected to a connecting spring (623), and one end of the connecting spring (623) is fixedly connected to an inner wall of one side of the fine-tuning rail (624). The air inlet end of the air pump (608) is fixedly connected to a telescopic air guide tube (9). One side of the suspension frame (1) is fixedly connected to a pipe rack (10), and the telescopic air guide tube (9) is fixedly connected to the interior of the pipe rack (10).

4. The adjustable titanium alloy suspension structure according to claim 1, characterized in that: The surface cleaning mechanism (3) comprises: A rotating ring (301) is arranged on the matching rotating tooth (15); A collecting ring tube (302) is provided on the suspension frame (1) and is located below the rotating ring plate (301). A collecting hole (304) is provided on the outer wall of the collecting ring tube (302) facing the interior of the rotating ring plate (301); The brush cloth (303) is distributed in an annular shape on the inner side wall of the rotating ring piece (301).

5. The adjustable titanium alloy suspension structure according to claim 4, characterized in that: The surface cleaning mechanism (3) further comprises: A plurality of semicircular turning rails (307) are arranged on the inner side wall of the rotating ring piece (301) and are located between each two adjacent brush cloths (303); A reset slider (309) is slidably connected to the interior of the semicircular turn rail (307), wherein the top of the reset slider (309) is fixedly connected to a joint frame (310), and the bottom of the joint frame (310) is fixedly connected to a follower vertical rod (305); A plurality of oscillating balls (306), wherein the outer side wall of each oscillating ball (306) is fixedly connected to an elastic connecting rod (311), and one end of the elastic connecting rod (311) is fixedly connected to the outer side wall of the follower vertical rod (305); A return spring (308) is provided on one side of each return slider (309), and one end of the return spring is fixedly connected to an inner wall of one side of the semicircular turn rail (307).

6. The adjustable titanium alloy suspension structure according to claim 5, characterized in that: The hanging frame (1) is fixedly connected to a collecting box (7) between the two rotating ring pieces (301), and both sides of the collecting box (7) are fixedly connected to mounting plates (11), and the tops of the two mounting plates (11) are fixedly connected to dust suction pumps (12), the dust suction end of the dust suction pump (12) is connected to the inside of the corresponding collecting ring pipe (302) through a pipe, and the dust delivery end of the dust suction pump (12) is connected to the inside of the collecting box (7) through a pipe.

7. The adjustable titanium alloy suspension structure according to claim 6, characterized in that: The suspension frame (1) is fixedly connected to a motor frame (2) near the top of the mating rotating gear (15), and a driving motor (13) is fixedly connected to the motor frame (2). The output shaft of the driving motor (13) is fixedly connected to a driving shaft (16) via a coupling. The outer side wall of the driving shaft (16) is fixedly connected to an active rotating gear (14), and the active rotating gear (14) is meshed with the mating rotating gear (15).

Citation Information

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