An anti-corrosion processing device for solid wood floors and its processing technology

By designing the assembly and driving mechanism of the anti-corrosion processing device of the solid wood floor, the solid wood floor is turned over in the anti-corrosion tank and fully contacted with the preservative, the problem of uneven penetration of preservatives is solved, the production efficiency and product quality are improved, and the use of preservatives is saved.

CN116117955BActive Publication Date: 2025-07-11ZHEJIANG DELIAN HOME FURNISHING CO LTD
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Patent Information

Application Number
CN202310194892.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-02-27
Publication Date
2025-07-11
Estimated Expiration
2043-02-27

AI Technical Summary

Technical Problem

The existing anti-corrosion processing equipment of solid wood floors cannot automatically disperse the solid wood floors during soaking, resulting in uneven penetration of preservatives and reducing production efficiency and product quality.

Method used

A solid wood floor anti-corrosion processing device is designed, and the solid wood floor is turned over in the anti-corrosion tank through the assembly mechanism, drive mechanism and rotating mechanism to ensure that each floor is in full contact with the preservative, and the rolling range is adjusted when the preservative is insufficient through the telescopic mechanism to avoid damage and waste.

Benefits of technology

The uniform contact between solid wood floors and preservatives is achieved, the penetration efficiency of preservatives is improved, the uneven penetration of some locations is avoided, the quality of the product is improved, and the amount of preservatives is saved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses an anti-corrosion processing device and its processing technology for solid wood floors in the technical field of anti-corrosion of solid wood floors, including an anti-corrosion tank and a tank door. The inner bottom end of the anti-corrosion tank is slidably connected with a bottom plate through a slide rail. Two mounting plates are arranged on the top end of the bottom plate through an assembling mechanism. The assembling mechanism is used to connect the two mounting plates into a whole when the tank door is closed. A rotating shaft is arranged at the rear end of the mounting plate through a driving mechanism. The driving mechanism is used to drive the upper mounting plate to lift and drive the two mounting plates to rotate around the rotating shaft as the axis. Two rotating rods are rotatably connected to the side of the two mounting plates close to each other. Support frames are fixedly installed on the outer sides of the rotating rods. A rotating mechanism is arranged at the front end of the mounting plate. The rotating mechanism is used to drive the two support frames on the same side to close and open, solving the problem that the existing anti-corrosion processing device for solid wood floors cannot automatically disperse the solid wood floors during soaking.
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Description

Technical Field

[0001] The present invention relates to the technical field of anti-corrosion of solid wood floors, and specifically to an anti-corrosion processing device for solid wood floors and its processing technology. Background Technique

[0002] Anti-corrosion wooden floors are the finished products after ordinary wood is processed by anti-corrosion treatment. After the ordinary wood floors are treated with anti-corrosion, their performance is greatly improved, achieving the effects of anti-corrosion, anti-mildew, anti-moth, and anti-termite; wood anti-corrosion is after drying, degreasing, and preliminary mechanical processing, the wood is loaded into a closed pressure vessel, first most of the air outside the wood cell nucleus is evacuated in a vacuum state, and then under the repeated state of a certain pressure and vacuum, the wood preservative is penetrated into the cell tissue of the wood. After a period of curing and stabilization, the preservative is combined with the wood, having anti-leaching properties, enabling the wood structure tissue to resist the erosion of various harmful factors, and being durable even in various harsh environments.

[0003] In the existing technology, a wood anti-corrosion tank is often used to process the anti-corrosion of solid wood floors. When the solid wood floors enter the anti-corrosion tank, they are in a stacked state, so that the parts where the solid wood floors are in close contact with each other cannot directly contact the agent, and thus it takes a long time to soak to make the preservative fully penetrate, reducing the production and processing efficiency, and the existing anti-corrosion processing device for solid wood floors cannot automatically disperse the solid wood floors during soaking.

[0004] Based on this, the present invention designs an anti-corrosion processing device for solid wood floors and its processing technology to solve the above problems. Summary of the Invention

[0005] The purpose of the present invention is to provide an anti-corrosion processing device for solid wood floors and its processing technology with the function of automatically dispersing solid wood floors during soaking, so as to solve the problems raised in the above background technique.

[0006] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a solid wood floor anti-corrosion processing device, comprising an anti-corrosion tank and a tank door, the bottom inner side of the bottom end of the anti-corrosion tank is slidably connected with a bottom plate through a slide rail, the top of the bottom plate is provided with two mounting plates through an assembling mechanism, the assembling mechanism is used to connect the two mounting plates into a whole when the tank door is closed, the rear end of the mounting plate is provided with a rotating shaft through a driving mechanism, the driving mechanism is used to drive the upper mounting plate to rise and fall, and drive the two mounting plates to rotate around the rotating shaft as the axis, the two mounting plates are rotatably connected to the sides close to each other with two rotating rods, the outer sides of the rotating rods are fixedly installed with support frames, and the front end of the mounting plate is provided with a rotating mechanism. , the rotating mechanism is used to drive the two support frames on the same side to close and open, and a plurality of arc-shaped plates are provided on the sides of the two support frames that are close to each other through a telescopic mechanism, and the upper and lower groups of the arc-shaped plates are staggered. The telescopic mechanism is used to drive the arc-shaped plate to move inwardly toward the support frame when the angle between the two support frames on the same side is reduced. A serpentine plate is provided above the mounting plate on the lower side, and a mountain-shaped plate is slidably connected to the left and right sides of the serpentine plate. A limiting block is fixedly installed at the front end of the mountain-shaped plate, and a first limiting groove is provided at the front end of the two support frames on the lower side, and the rear ends of the limiting blocks pass through the first limiting groove and are slidably connected thereto, and the bottom end of the serpentine plate is fixedly connected to the bottom plate;

[0007] As a further scheme of the present invention, the assembling mechanism comprises a plurality of rollers rotatably connected to the top end of the bottom plate, the top ends of the rollers are tightly fitted with the bottom ends of the lower mounting plate, the middle part of the bottom plate is slidably connected to a plurality of C-shaped plates in a linear array along the bottom of the bottom plate, and the top openings of the C-shaped plates clamp the lower mounting plate, and the bottom ends of the plurality of C-shaped plates are fixedly connected by connecting rods, the rear end tops of the connecting rods are connected to the bottom plate by tension springs, and a pushing block is fixedly installed on the inner side of the bottom end of the tank door, and an inclined plate is fixedly installed on the front end of the connecting rod, and the pushing block corresponds to the inclined surface of the inclined plate, and a first connecting plate is fixedly installed on the rear end of the mounting plate on the upper side, and the bottom end of the first connecting plate is slidably connected to the second connecting plate, and the bottom end of the second connecting plate is connected to the lower mounting plate through a connecting mechanism, and the connecting mechanism is used to fix the second connecting plate and the lower mounting plate when the C-shaped plate no longer limits the lower mounting plate;

[0008] As a further solution of the present invention, the connecting mechanism includes a connecting block fixedly installed at the rear end of the lower mounting plate, the rear end of the connecting block passes through the second connecting plate and is slidably connected thereto, the rear end of the second connecting plate is slidably connected to a wedge block via a compression spring, a connecting groove is provided in the middle of the connecting block, the bottom end of the wedge block is aligned with the connecting groove, the rear end of the connecting rod and the rear end of the wedge block are both fixedly installed with magnetic blocks, and the two magnetic blocks repel each other;

[0009] As a further solution of the present invention, the driving mechanism includes a first lifting block slidably connected to the middle of the bottom end of the first connecting plate. The front end of the rotating shaft is fixedly connected to the first lifting block. The rear ends of the first connecting plate and the second connecting plate are both fixedly installed with sliding rods. Two sliders are slidably connected to the outer sides of the two sliding rods. A scissors frame is arranged between the two sliding rods. The four ends of the scissors frame are respectively hinged to the four sliders. The rear end of the rotating shaft passes through the central position of the scissors frame and is rotatably connected thereto. A lifting groove is formed in the middle of the rear end of the anti-corrosion tank. A second lifting block is slidably connected to the middle of the lifting groove. Sealing plates are fixedly installed on the upper and lower sides of the front end of the second lifting block. The sealing plates are closely attached to the inner wall of the rear end of the anti-corrosion tank. An electric push rod is arranged at the rear side of the anti-corrosion tank. The output end of the electric push rod is fixedly installed with a support plate. A motor is fixedly installed at the top end of the support plate. The rear end of the rotating shaft sequentially passes through the second lifting block and the support plate and is rotatably connected to the two. The output end of the motor is fixedly connected to the rotating shaft;

[0010] As a further solution of the present invention, the rotating mechanism includes gears fixedly installed on the outer sides of the front ends of the rotating rods. Adjacent two of the gears mesh with each other. One of the front ends of the two rotating rods on the same side is fixedly installed with a locking disc. A plurality of locking grooves are formed in an annular array along the outer wall of the locking disc on the outer side of the locking disc. Locking plates are fixedly installed on the front ends of the mounting plates. A locking block is slidably connected to the side of the locking plate close to the locking disc through a compression spring. The front end of the locking block is wedge-shaped. The other front end of the two rotating rods on the same side is fixedly installed with a first transmission disc. A synchronization mechanism is arranged at the top of the front end of the bottom plate. The synchronization mechanism is used to drive a plurality of rotating rods to rotate synchronously;

[0011] As a further solution of the present invention, the synchronization mechanism includes a synchronization rod arranged at the front end of the mounting plate. Synchronization shafts are rotatably connected to the middle of the upper and lower ends of the synchronization rod. The two synchronization shafts are connected by a transmission belt. Second transmission discs are fixedly installed at the rear ends of the synchronization shafts. The second transmission discs and the first transmission discs are mutually transmitted. Extrusion rods are fixedly installed on the side walls of the upper and lower ends of the synchronization rod. The rear ends of the extrusion rods are closely attached to the inclined surfaces of the locking blocks. A cross rod is fixedly installed at the bottom end of the synchronization rod. The bottom end of the cross rod passes through the bottom plate and is slidably connected thereto;

[0012] As a further solution of the present invention, the telescopic mechanism includes a T-shaped plate fixedly installed at the bottom of the front end of the upper mounting plate. The bottom end of the T-shaped plate is slidably connected with telescopic rods on both the left and right sides. The two telescopic rods are arranged staggeredly. Second limiting grooves are respectively formed at the front ends of the upper support frames. One end of each of the two telescopic rods away from each other passes through the second limiting groove and is slidably connected therewith. First hinge rods are respectively hinged at the bottom left and right sides of the T-shaped plate and the front left and right sides of the front end of the serpentine plate. One end of each of the two first hinge rods on the same side away from each other is slidably connected with a second hinge rod. One end of the arc-shaped plates close to the support frame on the same side is connected by a fixing rod. The arc-shaped plates are adapted to the shape of the support frame and are slidably connected therewith. The other end of the second hinge rod is hinged to the front end of the fixing rod. Squeezing blocks are fixedly installed at the top ends of the two telescopic rods and the front ends of the two mountain-shaped plates. A J-shaped rod is rotatably connected to the front end of the squeezing block. The J-shaped rods are both located outside the adjacent second hinge rods.

[0013] A preservative treatment process for solid wood floors includes the following steps:

[0014] Step 1: Place the solid wood floor on the top end of the serpentine plate, and then push the bottom plate to convey it to the inside of the preservative tank.

[0015] Step 2: Drive the two support frames on the same side to close through the rotating mechanism. At this time, the arc-shaped plates slowly slide towards the inside of the support frames until the support frames can no longer move.

[0016] Step 3: Drive the rotating shaft to move downward through the driving mechanism. At this time, the upper mounting plate moves downward driven by the rotating shaft.

[0017] Step 4: When the mounting plate can no longer move downward, close the tank door, and then the driving mechanism drives the mounting plate and the support frame to rotate around the rotating shaft.

[0018] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0019] 1. By setting up the assembly mechanism in the present invention, when the tank door is closed, the connecting mechanism fixedly connects the second connecting plate and the lower mounting plate. At this time, the upper mounting plate, the first connecting plate, the second connecting plate and the lower mounting plate form a whole. Then the driving mechanism is started to drive the solid wood floor to flip in the preservative tank. At this time, the solid wood floors that are attached together are loosened, so that the outer sides of the solid wood floors can all be in direct contact with the preservative in the preservative tank, thereby accelerating the penetration of the preservative into the solid wood floor, improving the processing efficiency of the solid wood floor, avoiding the uneven penetration of the preservative in some positions of the solid wood floor, improving the product quality, bringing convenience to the use of the preservative tank, and solving the problem that the existing preservative treatment device for solid wood floors cannot automatically disperse the solid wood floors during soaking.

[0020] 2. The present invention is provided with a driving mechanism. When the number of solid wood floors is insufficient to fill the anti-corrosion tank, the rotating mechanism drives the two support frames on the same side to close. At this time, the telescopic mechanism drives the arc-shaped plate to be retracted towards the inner side of the support frame until the lower support frame is blocked by the solid wood floor. Then, the driving mechanism drives the rotating shaft and the upper mounting plate to move downward. The rotating shaft always maintains the central position between the two mounting plates during the movement until the rotating shaft and the upper mounting plate stop moving when the upper support frame is blocked by the solid wood floor. At this time, the space enclosed by the upper and lower groups of support frames and the arc-shaped plate is reduced, so that when the number of solid wood floors is small, the rolling amplitude in the anti-corrosion tank will not increase, thus avoiding damage to the solid wood floor during the rolling process. Secondly, only the amount of preservative sufficient to submerge the mounting plate needs to be injected into the anti-corrosion tank, and the solid wood floor will only roll in the preservative, thus avoiding waste caused by excessive injection of the preservative. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 is the process flow chart of the present invention;

[0022] Figure 2 is the overall structure schematic diagram of the present invention;

[0023] Figure 3 is the side view structure schematic diagram of the present invention;

[0024] Figure 4 is the side view internal structure sectional structure schematic diagram of the present invention;

[0025] Figure 5 is the connection structure schematic diagram of the mounting plate and the support frame in the present invention;

[0026] Figure 6 is the connection structure schematic diagram of the bottom plate and the C-shaped plate in the present invention;

[0027] Figure 7 is the connection structure schematic diagram of the bottom plate and the mounting plate in the present invention;

[0028] Figure 8 is the connection structure schematic diagram of the mounting plate and the C-shaped plate in the present invention;

[0029] Figure 9 is the connection structure schematic diagram of the snake-shaped plate and the mountain-shaped plate in the present invention;

[0030] Figure 10 is the connection structure schematic diagram of the snake-shaped plate and the fixed rod in the present invention;

[0031] Figure 11 The present invention Figure 10 is the enlarged structure schematic diagram at A in;

[0032] Figure 12 is the connection structure schematic diagram of the second connecting plate and the mounting plate in the present invention;

[0033] Figure 13 Schematic diagram of the connection structure between the rotating shaft and the first connecting plate in the present invention;

[0034] Figure 14 Schematic diagram of the connection structure between the T-shaped plate and the telescopic rod in the present invention.

[0035] In the accompanying drawings, the list of components represented by each reference numeral is as follows:

[0036] 1. Anticorrosion tank; 2. Tank door; 3. Bottom plate; 4. Mounting plate; 5. Rotating shaft; 6. Rotating rod; 7. Support frame; 8. Arc plate; 9. Serpentine plate; 10. Mountain-shaped plate; 11. Limit block; 12. First limit groove; 13. Drum; 14. C-shaped plate; 15. Connecting rod; 16. Pusher block; 17. Inclined plate; 18. First connecting plate; 19. Second connecting plate; 20. Connecting block; 21. Wedge block; 22. Connecting groove; 23. Magnetic block; 24. First lifting block; 25. Slide bar; 26. Slide block; 27. Scissor lift; 28. Lifting groove; 29. Second lifting block; 30. Sealing plate; 31. Electric push rod; 32. Support plate; 33. Motor; 34. Gear; 35. Locking disc; 36. Locking groove; 37. Locking plate; 38. Locking block; 39. First drive disc; 40. Synchronous rod; 41. Synchronous shaft; 42. Drive belt; 43. Second drive disc; 44. Extrusion rod; 45. Cross rod; 46. T-shaped plate; 47. Telescopic rod; 48. Second limit groove; 49. First hinge rod; 50. Second hinge rod; 51. Fixed rod; 52. Extrusion block; 53. J-shaped rod. Detailed implementation manners

[0037] Please refer to Figures 1 - 14, the present invention provides a technical solution: an anti-corrosion processing device for solid wood floors, including an anti-corrosion tank 1 and a tank door 2. The inner bottom end of the anti-corrosion tank 1 is slidably connected with a bottom plate 3 through a slide rail. Two mounting plates 4 are arranged on the top end of the bottom plate 3 through an assembly mechanism. The assembly mechanism is used to connect the two mounting plates 4 into a whole when the tank door 2 is closed. A rotating shaft 5 is arranged at the rear end of the mounting plate 4 through a driving mechanism. The driving mechanism is used to drive the upper mounting plate 4 to lift and drive the two mounting plates 4 to rotate around the rotating shaft 5 as the axis. Two rotating rods 6 are rotatably connected to the side of the two mounting plates 4 close to each other. Support frames 7 are fixedly installed on the outer sides of the rotating rods 6. A rotating mechanism is arranged at the front end of the mounting plate 4. The rotating mechanism is used to drive the two support frames 7 on the same side to close and open. A plurality of arc-shaped plates 8 are arranged on the side of the two support frames 7 close to each other through a telescopic mechanism. The upper and lower groups of arc-shaped plates 8 are arranged in a staggered manner. The telescopic mechanism is used to drive the arc-shaped plates 8 to move inward of the support frames 7 when the included angle between the two support frames 7 on the same side is reduced. A serpentine plate 9 is arranged above the lower mounting plate 4. Mountain-shaped plates 10 are slidably connected to the left and right sides of the serpentine plate 9. Limit blocks 11 are fixedly installed at the front ends of the mountain-shaped plates 10. First limit grooves 12 are formed at the front ends of the lower two support frames 7. The rear ends of the limit blocks 11 pass through the first limit grooves 12 and are slidably connected thereto. The bottom end of the serpentine plate 9 is fixedly connected to the bottom plate 3;

[0038] The assembly mechanism includes a plurality of rollers 13 rotatably connected to the top end of the bottom plate 3. The top ends of the rollers 13 are closely attached to the bottom end of the lower mounting plate 4. A plurality of C-shaped plates 14 linearly arranged along the bottom of the bottom plate 3 are slidably connected to the middle of the bottom plate 3. The top openings of the C-shaped plates 14 clamp the lower mounting plate 4. The bottom ends of the plurality of C-shaped plates 14 are fixedly connected through a connecting rod 15. The top of the rear end of the connecting rod 15 is connected to the bottom plate 3 through a tension spring. A push block 16 is fixedly installed at the inner bottom end of the tank door 2. An inclined plate 17 is fixedly installed at the front end of the connecting rod 15. The push block 16 corresponds to the inclined surface of the inclined plate 17. A first connecting plate 18 is fixedly installed at the rear end of the upper mounting plate 4. A second connecting plate 19 is slidably connected to the bottom end of the first connecting plate 18. The bottom end of the second connecting plate 19 is connected to the lower mounting plate 4 through a connecting mechanism. The connecting mechanism is used to fixedly connect the second connecting plate 19 to the lower mounting plate 4 when the C-shaped plate 14 no longer limits the lower mounting plate 4;

[0039] During operation, the staff place the solid wood floor on the top of the serpentine plate 9, and then push the bottom plate 3 so that the bottom plate 3 moves along the slide rail into the anti-corrosion tank 1 until the solid wood floor completely enters the anti-corrosion tank 1. Then, the tank door 2 is closed. The movement of the tank door 2 drives the movement of the push block 16. The movement of the push block 16 squeezes the inclined surface of the inclined plate 17. The inclined plate 17 is squeezed and drives the connecting rod 15 to move downward. The downward movement of the connecting rod 15 fixedly connects the second connecting plate 19 and the lower mounting plate 4 through the connecting mechanism. At this time, the upper mounting plate 4, the first connecting plate 18, the second connecting plate 19 and the lower mounting plate 4 form an integral body; at the same time, during the downward movement of the connecting rod 15, a number of C-shaped plates 14 are driven to move downward, so that the lower mounting plate 4 is no longer limited by the C-shaped plates 14;

[0040] When the anti-corrosion tank 1 is filled with anti-corrosion agent, the driving mechanism is started to drive the two mounting plates 4 to rotate around the rotating shaft 5 through the first connecting plate 18 and the second connecting plate 19. The movement of the two mounting plates 4 drives the solid wood floor to flip in the anti-corrosion tank 1 through the support frame 7 and the arc plate 8. At this time, the solid wood floors that are attached together are loosened, so that the outer sides of the solid wood floors can all be in direct contact with the anti-corrosion agent in the anti-corrosion tank 1, thereby accelerating the penetration of the anti-corrosion agent into the solid wood floor, improving the processing efficiency of the solid wood floor, avoiding the occurrence of uneven penetration in some positions of the solid wood floor, improving the quality of the product, bringing convenience to the use of the anti-corrosion tank 1, and solving the problem that the existing anti-corrosion processing device for solid wood floors cannot automatically disperse the solid wood floors during soaking;

[0041] When the number of solid wood floors to be processed is not enough to fill the anti-corrosion tank 1, after the staff transport the solid wood floors into the anti-corrosion tank 1, they drive a number of rotating rods 6 to rotate through the rotating mechanism. At this time, the two rotating rods 6 on the same side rotate in opposite directions and drive the two support frames 7 on the same side to flip in the closing direction. The rotation of the bottom support frame 7 pushes the mountain-shaped plate 10 into the serpentine plate 9 through the first limit groove 12 and the limit block 11. The support frame 7 drives a number of arc plates 8 to move synchronously during the movement. At this time, the telescopic mechanism drives the arc plates 8 to be received inside the support frame 7 during the movement until the lower support frame 7 is blocked by the solid wood floor and cannot be flipped inward anymore;

[0042] The driving mechanism drives the rotating shaft 5 and the upper mounting plate 4 to move downward. The rotating shaft 5 is always in the central position between the two mounting plates 4 during the movement. The downward movement of the upper mounting plate 4 drives the upper support frame 7 and the upper arc plate 8 to move downward until the upper support frame 7 and the upper arc plate 8 are blocked by the solid wood floor. At this time, the space enclosed by the upper and lower groups of support frames 7 and arc plates 8 is reduced, so that when the number of solid wood floors is small, the rolling amplitude in the anti-corrosion tank 1 will not increase, thereby avoiding damage to the solid wood floor during the rolling process;

[0043] When the driving mechanism drives the solid wood floor to roll through the rotating shaft 5 and the mounting plate 4, the rolling range of the solid wood floor is always inside the bottom end of the antiseptic tank 1. At this time, only the amount of antiseptic sufficient to submerge the mounting plate 4 needs to be injected into the antiseptic tank 1. The solid wood floor will only roll in the antiseptic, thus avoiding waste caused by excessive injection of the antiseptic, saving the production and processing costs, and bringing convenience to the use of the antiseptic.

[0044] As a further solution of the present invention, the connecting mechanism includes a connecting block 20 fixedly installed at the rear end of the lower mounting plate 4. The rear end of the connecting block 20 passes through the second connecting plate 19 and is slidably connected thereto. The rear end of the second connecting plate 19 is slidably connected with a wedge block 21 through a compression spring. A connecting groove 22 is formed in the middle of the connecting block 20. The bottom end of the wedge block 21 is aligned with the connecting groove 22. Magnetic blocks 23 are fixedly installed at the rear ends of the connecting rod 15 and the wedge block 21. The two magnetic blocks 23 repel each other.

[0045] During operation, when the bottom plate 3 moves inside the antiseptic tank 1, the rear end of the connecting block 20 is inserted into the second connecting plate 19. At this time, the lower magnetic block 23 pushes the upper magnetic block 23 to move upward through the repulsive force. The upward movement of the upper magnetic block 23 drives the wedge block 21 to move upward, as Figure 12 shown; when the connecting rod 15 moves downward, the downward movement of the connecting rod 15 drives the lower magnetic block 23 to move downward. At this time, the upper magnetic block 23 no longer receives the repulsive force of the lower magnetic block 23. The wedge block 21 moves downward under the action of the compression spring and is inserted into the connecting groove 22, thereby fixing the connecting block 20 at the bottom end of the second connecting plate 19. At this time, the second connecting plate 19 and the lower mounting plate 4 are fixedly connected as a whole. When the tank door 2 is opened, the connecting rod 15 drives the lower magnetic block 23 to move upward under the action of the tension spring. Similarly, the wedge block 21 moves upward and moves out of the connecting groove 22. At this time, the lower mounting plate 4 is unlocked, thus realizing the locking and unlocking of the lower mounting plate 4 during the opening and closing process of the tank door 2.

[0046] As a further solution of the present invention, the driving mechanism includes a first lifting block 24 slidably connected to the middle of the bottom end of the first connecting plate 18. The front end of the rotating shaft 5 is fixedly connected to the first lifting block 24. Slide rods 25 are fixedly installed at the rear ends of both the first connecting plate 18 and the second connecting plate 19. Two sliders 26 are slidably connected to the outer sides of the two slide rods 25. A scissors frame 27 is arranged between the two slide rods 25. The four ends of the scissors frame 27 are respectively hinged to the four sliders 26. The rear end of the rotating shaft 5 passes through the central position of the scissors frame 27 and is rotatably connected thereto. A lifting groove 28 is formed in the middle of the rear end of the anti-corrosion tank 1. A second lifting block 29 is slidably connected to the middle of the lifting groove 28. Sealing plates 30 are fixedly installed on both the upper and lower sides of the front end of the second lifting block 29. The sealing plates 30 are in close contact with the inner wall of the rear end of the anti-corrosion tank 1. An electric push rod 31 is arranged at the rear side of the anti-corrosion tank 1. The output end of the electric push rod 31 is fixedly installed with a support plate 32. A motor 33 is fixedly installed at the top end of the support plate 32. The rear end of the rotating shaft 5 passes through the second lifting block 29 and the support plate 32 in sequence and is rotatably connected to both of them. The output end of the motor 33 is fixedly connected to the rotating shaft 5;

[0047] During operation, when it is necessary to adjust the heights of the rotating shaft 5 and the mounting plate 4, the electric push rod 31 is started to drive the support plate 32 and the motor 33 to move downward. The downward movement of the support plate 32 drives the rotating shaft 5 to move downward. The downward movement of the rotating shaft 5 drives the second lifting block 29 to slide in the lifting groove 28. At this time, the two sealing plates 30 seal the lifting groove 28 during the movement, avoiding leakage of the anti-corrosion tank 1; the downward movement of the rotating shaft 5 drives the two sliders 26 on the same side to move away from each other through the scissors frame 27. At this time, the upper slider 26 drives the first connecting plate 18 to move downward through the upper slide rod 25. The downward movement of the first connecting plate 18 drives the upper mounting plate 4 to move downward. At this time, the rotating shaft 5 is always kept at the central position between the two mounting plates 4 under the limitation of the scissors frame 27, thereby reducing the rotation range of the two mounting plates 4 to the minimum, thereby reducing the dosage of the preservative to the least, saving the preservative;

[0048] The motor 33 is started to drive the rotating shaft 5 to rotate. The rotation of the rotating shaft 5 drives the first connecting plate 18 and the second connecting plate 19 to rotate around the rotating shaft 5 through the first lifting block 24. The rotation of the first connecting plate 18 and the second connecting plate 19 drives the upper and lower mounting plates 4 to rotate around the rotating shaft 5 as the axis.

[0049] As a further solution of the present invention, the rotating mechanism includes gears 34 fixedly installed on the outer sides of the front ends of the rotating rods 6. Two adjacent gears 34 mesh with each other. One of the front ends of the two rotating rods 6 on the same side is fixedly installed with a locking disc 35. A number of locking grooves 36 are formed on the outer side of the locking disc 35 in an annular array along the outer wall of the locking disc 35. Locking plates 37 are fixedly installed at the front ends of the mounting plates 4. One side of the locking plate 37 close to the locking disc 35 is slidably connected with a locking block 38 through a compression spring. The front end of the locking block 38 is wedge-shaped. The other front end of the two rotating rods 6 on the same side is fixedly installed with a first transmission disc 39. A synchronization mechanism is arranged at the top of the front end of the bottom plate 3. The synchronization mechanism is used to drive a number of rotating rods 6 to rotate synchronously;

[0050] During operation, the synchronization mechanism drives the two first transmission discs 39 to rotate synchronously. The rotation of the first transmission disc 39 drives the rotation of one of the two rotating rods 6 on the same side. The rotation of the rotating rod 6 drives the rotation of the other rotating rod 6 on the same side in the opposite direction through the gear 34, thereby realizing the closing of the two support frames 7 on the same side; when the lower support frame 7 is blocked by the solid wood floor, only the synchronization mechanism needs to be removed. At this time, the inclined surface of the locking block 38 is no longer blocked, so that the locking block 38 moves upward under the push of the compression spring and is inserted into the locking groove 36, thereby fixing the locking disc 35. When the locking disc 35 is fixed, the rotating rods 6 are all locked, thereby realizing the locking of the support frame 7 and preventing the solid wood floor from pressing open the support frame 7 and causing it to slide during the flipping process.

[0051] As a further solution of the present invention, the synchronization mechanism includes a synchronization rod 40 arranged at the front end of the mounting plate 4. The middle parts of the upper and lower ends of the synchronization rod 40 are rotatably connected with synchronization shafts 41. The two synchronization shafts 41 are connected by a transmission belt 42. Second transmission discs 43 are fixedly installed at the rear ends of the synchronization shafts 41. The second transmission discs 43 are in transmission with the first transmission discs 39. Extrusion rods 44 are fixedly installed on the side walls of the upper and lower ends of the synchronization rod 40. The rear ends of the extrusion rods 44 are in close contact with the inclined surfaces of the locking blocks 38. A cross rod 45 is fixedly installed at the bottom end of the synchronization rod 40. The bottom end of the cross rod 45 passes through the bottom plate 3 and is slidably connected therewith;

[0052] During operation, when it is necessary to drive the first transmission disc 39 to rotate, only the cross rod 45 at the bottom end of the synchronization rod 40 needs to be stuck at the front end of the bottom plate 3. At this time, the cross rod 45 supports the synchronization rod 40, so that the synchronization rod 40 will not shake; at the same time, the second transmission discs 43 are all in close contact with the first transmission discs 39, and the extrusion rods 44 extrude the inclined surfaces of the locking blocks 38. The locking blocks 38 are extruded and move downward and slide out of the locking grooves 36. Figure 11As shown in the figure, at this time, the rotating rods 6 are all in the unlocked state. Then, rotate the lower synchronous shaft 41. The rotation of the lower synchronous shaft 41 drives the upper synchronous shaft 41 to rotate synchronously through the transmission belt 42. The rotation of the two synchronous shafts 41 drives the two first transmission disks 39 to rotate synchronously through the second transmission disk 43, thereby realizing the synchronous rotation of a plurality of rotating rods 6. When the adjustment is completed, just remove the synchronous rod 40 and the cross rod 45 from the front end of the bottom plate 3. At this time, the locking block 38 is no longer squeezed and moves upward, which brings convenience to the adjustment operation of the device, realizes the synchronous adjustment of the upper and lower parts of the device, and ensures the unified form of the upper and lower parts of the device.

[0053] As a further solution of the present invention, the telescopic mechanism includes a T-shaped plate 46 fixedly installed at the bottom of the front end of the upper mounting plate 4. The left and right sides of the bottom end of the T-shaped plate 46 are both slidably connected with telescopic rods 47. The two telescopic rods 47 are arranged staggeredly. Second limiting grooves 48 are respectively opened at the front ends of the upper support frames 7. The mutually remote ends of the two telescopic rods 47 both pass through the second limiting grooves 48 and are slidably connected therewith. The left and right sides of the bottom end of the T-shaped plate 46 and the left and right sides of the front end of the serpentine plate 9 are both hinged with first hinge rods 49. The mutually remote ends of the two first hinge rods 49 on the same side are both slidably connected with second hinge rods 50. The ends of the arc-shaped plates 8 close to the support frame 7 on the same side are both connected by fixing rods 51. The arc-shaped plates 8 are all adapted to the shape of the support frame 7 and are slidably connected therewith. The other ends of the second hinge rods 50 are both hinged to the front ends of the fixing rods 51. The tops of the two telescopic rods 47 and the front ends of the two mountain-shaped plates 10 are all fixedly installed with pressing blocks 52. The front ends of the pressing blocks 52 are rotatably connected with J-shaped rods 53. The J-shaped rods 53 are all located outside the adjacent second hinge rods 50.

[0054] During operation, when the two support frames 7 are turned inward, the lower support frame 7 moves to drive the two mountain-shaped plates 10 to approach each other through the first limiting groove 12. The mutual approach of the two mountain-shaped plates 10 drives the two lower pressing blocks 52 to approach each other. The movement of the upper support frame 7 drives the two telescopic rods 47 to approach each other. The mutual approach of the two telescopic rods 47 drives the two upper pressing blocks 52 to approach each other. The mutual approach of the two lower pressing blocks 52 pushes the two lower second hinge rods 50 to turn downward. The downward turning of the lower second hinge rods 50 pulls the lower arc-shaped plates 8 to slide inwardly of the support frame 7 through the lower fixing rods 51. At the same time, the first hinge rods 49 and the second hinge rods 50 move toward each other. The mutual approach of the two upper pressing blocks 52 is the same as the above, thereby realizing the automatic telescoping of the arc-shaped plates 8 during the turning process of the support frame 7. The J-shaped rods 53 limit the second hinge rods 50 and the first hinge rods 49, so that one or both of them are always in contact with the pressing blocks 52.

[0055] A process for anti-corrosion processing of solid wood floors includes the following steps:

[0056] Step 1: Place the solid wood floor on the top of the serpentine plate 9, and then push the bottom plate 3 to convey it to the inside of the anticorrosion tank 1;

[0057] Step 2: Drive the two support frames 7 on the same side to close by the rotating mechanism. At this time, the arc plate 8 slowly slides towards the inside of the support frame 7 until the support frame 7 can no longer move;

[0058] Step 3: Drive the rotating shaft 5 to move downward by the driving mechanism. At this time, the upper mounting plate 4 moves downward driven by the rotating shaft 5;

[0059] Step 4: When the mounting plate 4 can no longer move downward, close the tank door 2, and then the driving mechanism drives the mounting plate 4 and the support frame 7 to rotate around the rotating shaft 5.

Claims

1. An anti-corrosion processing device for solid wood floors, comprising an anti-corrosion tank (1) and a tank door (2), characterized in that: The bottom inner side of the anticorrosive tank (1) is slidably connected with a bottom plate (3) via a slide rail, and the top of the bottom plate (3) is provided with two mounting plates (4) via an assembly mechanism, and the assembly mechanism is used to connect the two mounting plates (4) into a whole when the tank door (2) is closed. The rear end of the mounting plate (4) is provided with a rotating shaft (5) via a driving mechanism, and the driving mechanism is used to drive the upper mounting plate (4) to rise and fall, and drive the two mounting plates (4) to rotate around the rotating shaft (5) as the axis. The two mounting plates (4) are rotatably connected to the sides close to each other with two rotating rods (6), and the outer sides of the rotating rods (6) are fixedly installed with support frames (7). The front end of the mounting plate (4) is provided with a rotating mechanism, and the rotating mechanism is used to drive the two support frames (7) on the same side to close and open, and the two A plurality of arc plates (8) are arranged on the sides of the support frames (7) close to each other through a telescopic mechanism, and the upper and lower groups of the arc plates (8) are arranged alternately. The telescopic mechanism is used to drive the arc plates (8) to move inwardly toward the support frames (7) when the angle between the two support frames (7) on the same side is reduced. A serpentine plate (9) is arranged above the mounting plate (4) on the lower side, and the left and right sides of the serpentine plate (9) are slidably connected with mountain plates (10). The front ends of the mountain plates (10) are fixedly installed with limit blocks (11). The front ends of the two support frames (7) on the lower side are provided with first limit grooves (12), and the rear ends of the limit blocks (11) pass through the first limit grooves (12) and are slidably connected thereto. The bottom ends of the serpentine plates (9) are fixedly connected to the bottom plate (3); The assembly mechanism comprises a plurality of rollers (13) rotatably connected to the top of the bottom plate (3), the tops of the rollers (13) are tightly fitted with the bottoms of the lower mounting plates (4), the middle of the bottom plate (3) is slidably connected with a plurality of C-shaped plates (14) arranged in a linear array along the bottom of the bottom plate (3), the top openings of the C-shaped plates (14) clamp the lower mounting plates (4), the bottom ends of the plurality of C-shaped plates (14) are fixedly connected by a connecting rod (15), the top of the rear end of the connecting rod (15) is connected to the bottom plate (3) by a tension spring, and the inner side of the bottom end of the tank door (2) is fixedly installed with a A push block (16), a tilting plate (17) is fixedly installed at the front end of the connecting rod (15), the push block (16) corresponds to the tilting surface of the tilting plate (17), a first connecting plate (18) is fixedly installed at the rear end of the upper mounting plate (4), the bottom end of the first connecting plate (18) is slidably connected to a second connecting plate (19), the bottom end of the second connecting plate (19) is connected to the lower mounting plate (4) through a connecting mechanism, and the connecting mechanism is used to fix the second connecting plate (19) to the lower mounting plate (4) when the C-shaped plate (14) no longer limits the lower mounting plate (4).

2. The anti-corrosion processing device for solid wood floors according to claim 1, characterized in that: The connecting mechanism includes a connecting block (20) fixedly installed at the rear end of the lower mounting plate (4). The rear end of the connecting block (20) passes through the second connecting plate (19) and is slidably connected thereto. The rear end of the second connecting plate (19) is slidably connected with a wedge block (21) through a compression spring. A connecting groove (22) is formed in the middle of the connecting block (20). The bottom end of the wedge block (21) is aligned with the connecting groove (22). Magnetic blocks (23) are fixedly installed at the rear ends of the connecting rod (15) and the wedge block (21). The two magnetic blocks (23) repel each other.

3. The anti-corrosion processing device for solid wood floors according to claim 1, characterized in that: The driving mechanism includes a first lifting block (24) slidably connected to the middle of the bottom end of the first connecting plate (18). The front end of the rotating shaft (5) is fixedly connected to the first lifting block (24). Slide rods (25) are fixedly installed at the rear ends of the first connecting plate (18) and the second connecting plate (19). Two sliders (26) are slidably connected to the outer sides of the two slide rods (25). A scissors frame (27) is arranged between the two slide rods (25). The four ends of the scissors frame (27) are respectively hinged to the four sliders (26). The rear end of the rotating shaft (5) passes through the center of the scissors frame (27) and is rotatably connected thereto. A lifting groove (28) is formed in the middle of the rear end of the anticorrosive tank (1). A second lifting block (29) is slidably connected to the middle of the lifting groove (28). Sealing plates (30) are fixedly installed on the upper and lower sides of the front end of the second lifting block (29). The sealing plates (30) are in close fit with the inner wall of the rear end of the anticorrosive tank (1). An electric push rod (31) is arranged at the rear side of the anticorrosive tank (1). The output end of the electric push rod (31) is fixedly installed with a support plate (32). A motor (33) is fixedly installed at the top end of the support plate (32). The rear end of the rotating shaft (5) passes through the second lifting block (29) and the support plate (32) in sequence and is rotatably connected to both of them. The output end of the motor (33) is fixedly connected to the rotating shaft (5).

4. A wood floor anti-corrosion processing device according to claim 1, characterized in that: The rotating mechanism includes gears (34) fixedly installed on the outer sides of the front ends of the rotating rods (6). Adjacent two of the gears (34) mesh with each other. One of the front ends of the two rotating rods (6) on the same side is fixedly installed with a locking disc (35). A plurality of locking grooves (36) are formed in an annular array along the outer wall of the locking disc (35) on the outer side of the locking disc (35). Locking plates (37) are fixedly installed at the front ends of the mounting plates (4). A locking block (38) is slidably connected to the side of the locking plate (37) close to the locking disc (35) through a compression spring. The front end of the locking block (38) is wedge-shaped. The other front end of the two rotating rods (6) on the same side is fixedly installed with a first transmission disc (39). A synchronization mechanism is arranged at the top of the front end of the bottom plate (3). The synchronization mechanism is used to drive a plurality of rotating rods (6) to rotate synchronously.

5. The anti-corrosion processing device for solid wood floors according to claim 4, characterized in that: The synchronization mechanism includes a synchronization rod (40) provided at the front end of the mounting plate (4). The middle parts of the upper and lower ends of the synchronization rod (40) are rotatably connected to synchronization shafts (41). The two synchronization shafts (41) are connected by a transmission belt (42). The rear ends of the synchronization shafts (41) are fixedly installed with second transmission discs (43). The second transmission discs (43) and the first transmission discs (39) are in mutual transmission. The side walls of the upper and lower ends of the synchronization rod (40) are fixedly installed with extrusion rods (44). The rear ends of the extrusion rods (44) are in close contact with the inclined surfaces of the locking blocks (38). The bottom end of the synchronization rod (40) is fixedly installed with a cross rod (45). The bottom end of the cross rod (45) passes through the bottom plate (3) and is slidably connected thereto.

6. The anti-corrosion processing device for solid wood floors according to claim 1, characterized in that: The telescoping mechanism includes a T-shaped plate (46) fixedly installed at the bottom of the front end of the upper mounting plate (4). The left and right sides of the bottom end of the T-shaped plate (46) are slidably connected to telescopic rods (47). The two telescopic rods (47) are arranged in a staggered manner. Second limiting grooves (48) are provided at the front ends of the upper support frames (7). The mutually remote ends of the two telescopic rods (47) pass through the second limiting grooves (48) and are slidably connected thereto. The left and right sides of the bottom end of the T-shaped plate (46) and the left and right sides of the front end of the serpentine plate (9) are hingedly connected with first hinge rods (49). The mutually remote ends of the two first hinge rods (49) on the same side are slidably connected to second hinge rods (50). The ends of the arc-shaped plates (8) close to the support frame (7) on the same side are connected by fixing rods (51). The arc-shaped plates (8) are adapted to the shape of the support frame (7) and are slidably connected thereto. The other ends of the second hinge rods (50) are hingedly connected to the front ends of the fixing rods (51). The top ends of the two telescopic rods (47) and the front ends of the two mountain-shaped plates (10) are fixedly installed with extrusion blocks (52). The front ends of the extrusion blocks (52) are rotatably connected to J-shaped rods (53). The J-shaped rods (53) are all outside the adjacent second hinge rods (50).

7. A preservative treatment process for solid wood floors, applicable to the solid wood floor preservative treatment device described in any one of claims 1-6, characterized in that: The specific steps of this processing technology are as follows: Step 1: Place the solid wood floor on the top of the serpentine plate (9), and then push the bottom plate (3) to convey it to the inside of the anti-corrosion tank (1); Step 2: Drive the two support frames (7) on the same side to close through the rotating mechanism. At this time, the arc-shaped plates (8) slowly slide towards the inside of the support frames (7) until the support frames (7) can no longer move; Step 3: Drive the rotating shaft (5) to move downward through the driving mechanism. At this time, the upper mounting plate (4) moves downward under the drive of the rotating shaft (5); Step 4: When the mounting plate (4) can no longer move downward, close the tank door (2), and then drive the mounting plate (4) and the support frame (7) to rotate around the rotating shaft (5) through the driving mechanism.

Citation Information

Patent Citations

  • Antiseptic treatment process and device for solid wood tea table

    CN115302601A