Adjustable horizontal turnover structure

By designing an adjustable horizontal flipping structure, the distance between the clamping plates is adjusted using threaded rods and sliders, and a combination of telescopic springs and positioning blocks is used to achieve stable clamping of parts of different sizes. Precise flipping is achieved through cylinder and gear transmission, which solves the problem that existing flipping structures cannot adapt to parts of different sizes, and improves production efficiency and equipment versatility.

CN224129733UActive Publication Date: 2026-04-17KUNSHAN HONGYI TENGDA MOLD HARDWARE CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
KUNSHAN HONGYI TENGDA MOLD HARDWARE CO LTD
Filing Date
2025-03-14
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Existing flipping structures can only flip parts of custom sizes and cannot adapt to parts of different sizes and models, resulting in frequent replacements or adjustments during production, increasing equipment downtime and adjustment costs.

Method used

An adjustable horizontal flipping structure was designed. The adjustment mechanism uses a drive motor to drive the threaded rod and auxiliary rod, and the slider moves along the slide groove to adjust the distance of the clamping plate. Combined with the telescopic spring and positioning block, it can stably clamp parts of different sizes. The flipping mechanism uses cylinder and gear transmission to achieve precise flipping angle control.

Benefits of technology

It enables quick and convenient adaptation to the flipping of parts of different sizes and models, reducing equipment downtime, lowering adjustment costs, and improving production efficiency and equipment versatility.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the related technical field of turnover structures, in particular to an adjustable horizontal turnover structure which comprises a horizontal cabinet, and an adjusting mechanism is arranged on the surface of the turnover structure. According to the adjustable horizontal turnover structure, the driving motor is started to drive the threaded rod to rotate, the sliding blocks can move face to face or oppositely along the sliding grooves under the rotation of the threaded rod and the guiding effect of the auxiliary rod, and when the sliding blocks move, the clamping plates fixed to the outer sides of the sliding blocks also move along with the sliding blocks, so that the distance between the clamping plates is adjusted; when the part is placed in place, the part can generate certain pressure on the clamping plate, so that the clamping plate slightly moves upwards, at the moment, a telescopic rod in a telescopic pipe at one end of a fixing block is compressed, a telescopic spring is compressed, and elastic potential energy is stored; and the positioning blocks are clamped into the corresponding positioning holes in the surface of the support, so that the position of the clamping plate is locked, and stable clamping of the part is ensured.
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Description

Technical Field

[0001] This utility model relates to the field of flipping structure technology, and in particular to an adjustable horizontal flipping structure. Background Technology

[0002] A flipping structure is a mechanical device or mechanism design that enables an object to rotate around a specific axis or point, thereby changing its spatial posture or position. It typically consists of supporting components, a rotating shaft, drive elements (such as motors, cylinders, etc.), and connecting and transmission components (such as connecting rods, gears, chains, etc.). Power is provided by the drive elements, transmitted through the transmission components, and converted into rotational motion of the rotating shaft, which in turn drives the object connected to it to achieve a flipping action. The flipping angle can be limited and controlled according to design requirements, commonly including 90 degrees, 180 degrees, or continuously adjustable types within a certain range, to meet different process operations, production processes, or functional requirements. For example, in industrial production, it is used for flipping parts, adjusting the loading, unloading, and transfer posture of products, and switching functional surfaces in some equipment. Different sized parts require different sized clamps, therefore, an adjustable horizontal flipping structure is particularly needed.

[0003] However, existing flipping structures can only flip parts of custom sizes and cannot adapt to parts of different sizes and models. As a result, in actual production, when faced with product diversification or frequent changes in part models, it is necessary to frequently change or adjust the flipping structure, which greatly increases equipment downtime and adjustment costs. Utility Model Content

[0004] The purpose of this utility model is to provide an adjustable horizontal flipping structure to solve the problem of the existing adjustable horizontal flipping structure mentioned in the background art. However, the existing flipping structure can only flip parts of customized size and cannot adapt to parts of different sizes and models. As a result, in the actual production process, when faced with product diversification or frequent changes in part models, it is necessary to frequently change or adjust the flipping structure, which greatly increases the equipment downtime and adjustment costs.

[0005] To achieve the above objectives, this utility model provides the following technical solution: an adjustable horizontal flip structure, including a horizontal cabinet, a storage slot is provided on one side of the horizontal cabinet, a pulley is installed at the bottom of the horizontal cabinet, an operating table is fixedly connected to the upper surface of the horizontal cabinet, a flip mechanism is provided on the upper surface of the operating table, and an adjustment mechanism is provided on the surface of the flip mechanism.

[0006] The adjustment mechanism includes a support, a slide groove, a drive motor, a threaded rod, an auxiliary rod, a baffle, a slider, a clamping plate, a fixing block, a telescopic tube, a telescopic rod, a telescopic spring, a positioning block, and a positioning hole. The surface of the flipping mechanism is provided with a support, and the surface of the support has a slide groove. One end of the support is fixedly connected to a drive motor, and the inner end of the drive motor is fixedly connected to a threaded rod. The inner wall surface of the slide groove is fixedly connected to an auxiliary rod, and the middle part of the slide groove is fixedly connected to a baffle. Slider blocks are slidably connected to the surfaces of both the threaded rod and the auxiliary rod. A clamping plate is fixedly connected to the outer surface of the slider, and a fixing block is fixedly connected above the clamping plate. One end of the fixing block is fixedly connected to a telescopic tube, and the inside of the telescopic tube is slidably connected to a telescopic rod. A telescopic spring is wound around the outer side of the telescopic rod, and a positioning block is fixedly connected to one end of both the telescopic rod and the telescopic spring. The surface of the support has a positioning hole.

[0007] Preferably, multiple sets of pulleys are provided at the bottom of the wardrobe, and are symmetrically distributed at the four corners of the bottom of the wardrobe with respect to the central axis of the wardrobe.

[0008] Preferably, the flipping mechanism includes a fixed plate, a cylinder, a push rod, a locking block, a connecting plate, a slide rail, a limiting groove, a limiting plate, a rack plate, a gear, a sleeve, a fixed seat, a rotating shaft, and a flipping block. A fixed plate is fixedly connected to the upper surface of the operating table. A cylinder is fixedly connected to one side of the fixed plate. A push rod is slidably connected inside the cylinder. A locking block is fixedly connected to one end of the push rod. A connecting plate is fixedly connected to the inner side of the locking block. A slide rail is fixedly connected to the upper surface of the operating table. A limiting groove is formed on the surface of the slide rail. A limiting plate is fixedly connected to one side of the connecting plate. A rack plate is fixedly connected to the inner side of the limiting plate. A gear meshes with the surface of the rack plate. A sleeve is rotatably connected to one side of the gear. A fixed seat is fixedly connected to one end of the sleeve. A rotating shaft is rotatably connected inside the sleeve. One end of the rotating shaft is fixedly connected to one side of the gear. A flipping block is fixedly connected to the middle part of the rotating shaft. A support is fixedly connected to the surface of the flipping block.

[0009] Preferably, the position of the rack plate corresponds to the position of the limiting groove, and the outer wall dimension of the bottom of the rack plate matches the inner wall dimension of the limiting groove.

[0010] Preferably, the threaded rod is symmetrically arranged with respect to the central axis of the baffle, and two sets of auxiliary rods are arranged inside the slide groove.

[0011] Preferably, the position of the slider corresponds to the position of the groove, and the outer wall size of the slider matches the inner wall size of the groove.

[0012] Preferably, the outer wall size of the positioning block matches the inner wall size of the positioning hole, and multiple sets of positioning holes are provided on the surface of the support.

[0013] Compared with the prior art, the beneficial effects of this utility model are as follows: This adjustable horizontal flipping structure, through the setting of the adjustment mechanism, when it is necessary to flip parts of different sizes and models, firstly starts the drive motor, which drives the threaded rod to rotate. Since the slider is simultaneously fitted on the threaded rod and the auxiliary rod, under the rotation of the threaded rod and the guiding action of the auxiliary rod, the slider will move in opposite directions along the slide groove. When the slider moves, the clamping plate fixed on its outer side also moves accordingly, thereby adjusting the distance between the clamping plates to adapt to the width of the part. After the clamping plate contacts the part, the part will exert a certain pressure on the clamping plate. Slightly moving the clamping plate upwards compresses the telescopic rod inside the telescopic tube at one end of the fixed block, compressing the telescopic spring and storing elastic potential energy. When the part is placed in position, the telescopic rod, under the elastic force of the telescopic spring, causes the positioning block to pop outwards and engage with the corresponding positioning hole on the support surface. This locks the position of the clamping plate, ensuring stable clamping of the part. In this way, the adjustment mechanism can quickly and conveniently adapt to parts of different sizes and models, effectively solving the problems of long downtime and high adjustment costs caused by the inflexibility of existing flipping structures, thus improving production efficiency and equipment versatility. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the left side view of the appearance of this utility model;

[0015] Figure 2 This is a schematic diagram of the right side view of the appearance of this utility model;

[0016] Figure 3 This is a cross-sectional view of the flipping mechanism of this utility model;

[0017] Figure 4 This is a cross-sectional view of the adjustment mechanism of this utility model;

[0018] Figure 5 This utility model Figure 4 Enlarged structural diagram at point A in the middle.

[0019] In the diagram: 1. Cabinet; 2. Storage slot; 3. Pulley; 4. Operating table; 5. Flipping mechanism; 501. Fixing plate; 502. Cylinder; 503. Push rod; 504. Locking block; 505. Connecting plate; 506. Slide rail; 507. Limit groove; 508. Limiting plate; 509. Rack plate; 510. Gear; 511. Sleeve; 512. Fixing seat; 513. Rotating shaft; 514. Flipping block; 6. Adjustment mechanism; 601. Support; 602. Slide groove; 603. Drive motor; 604. Threaded rod; 605. Auxiliary rod; 606. Baffle; 607. Slider; 608. Clamping plate; 609. Fixing block; 610. Telescopic tube; 611. Telescopic rod; 612. Telescopic spring; 613. Positioning block; 614. Positioning hole. Detailed Implementation

[0020] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0021] Please see Figure 1-5 This utility model provides a technical solution: an adjustable horizontal flip structure, including a horizontal cabinet 1, a storage slot 2 on one side of the horizontal cabinet 1, a pulley 3 installed at the bottom of the horizontal cabinet 1, an operating table 4 fixedly connected to the upper surface of the horizontal cabinet 1, a flip mechanism 5 provided on the upper surface of the operating table 4, and an adjustment mechanism 6 provided on the surface of the flip mechanism 5.

[0022] The adjusting mechanism 6 includes a support 601, a slide 602, a drive motor 603, a threaded rod 604, an auxiliary rod 605, a baffle 606, a slider 607, a clamping plate 608, a fixing block 609, a telescopic tube 610, a telescopic rod 611, a telescopic spring 612, a positioning block 613, and a positioning hole 614. The surface of the flipping mechanism 5 is provided with a support 601, and a slide 602 is formed on the surface of the support 601. One end of the support 601 is fixedly connected to the drive motor 603, and the inner end of the drive motor 603 is fixedly connected to the threaded rod 604. The inner wall surface of the slide 602 is fixedly connected to the auxiliary rod 605, and the middle part of the slide 602 is fixedly connected to... A slider 607 is slidably connected to the surfaces of the baffle 606, threaded rod 604, and auxiliary rod 605. A clamping plate 608 is fixedly connected to the outer surface of the slider 607. A fixing block 609 is fixedly connected above the clamping plate 608. A telescopic tube 610 is fixedly connected to one end of the fixing block 609. A telescopic rod 611 is slidably connected inside the telescopic tube 610. A telescopic spring 612 is wound around the outside of the telescopic rod 611. A positioning block 613 is fixedly connected to one end of both the telescopic rod 611 and the telescopic spring 612. A positioning hole 614 is provided on the surface of the support 601. By adjusting the mechanism 6, when it is necessary to flip parts of different sizes and models, the mechanism can be adjusted accordingly. First, the drive motor 603 is started, which drives the threaded rod 604 to rotate. Since the slider 607 is simultaneously fitted onto the threaded rod 604 and the auxiliary rod 605, under the rotation of the threaded rod 604 and the guiding action of the auxiliary rod 605, the slider 607 will move in opposite directions along the slide groove 602. When the slider 607 moves, the clamping plate 608 fixed on its outer side also moves accordingly, thereby adjusting the distance between the clamping plates 608 to adapt to the width of the part. After the clamping plate 608 contacts the part, the part will exert a certain pressure on the clamping plate 608, causing the clamping plate 608 to move slightly upward. At this time, the extension and retraction of one end of the fixed block 609... The telescopic rod 611 inside the tube 610 is compressed, and the telescopic spring 612 is compressed and stores elastic potential energy. When the part is placed in place, under the elastic force of the telescopic spring 612, the telescopic rod 611 drives the positioning block 613 to pop outward. The positioning block 613 is engaged in the corresponding positioning hole 614 on the surface of the support 601, thus locking the position of the clamping plate 608 and ensuring stable clamping of the part. In this way, the adjustment mechanism 6 can quickly and conveniently adapt to parts of different sizes and models, effectively solving the problems of long equipment downtime and high adjustment costs caused by the inflexibility of the existing flipping structure, and improving production efficiency and equipment versatility.

[0023] Furthermore, multiple sets of pulleys 3 are installed at the bottom of the cabinet 1, and are symmetrically distributed at the four corners of the bottom of the cabinet 1 around the central axis of the cabinet 1. Through the installation of pulleys 3, multiple sets of pulleys 3 are symmetrically distributed at the four corners of the bottom of the cabinet 1 around the central axis of the cabinet 1, providing a stable support structure for the cabinet 1. This symmetrical distribution ensures that the cabinet 1 can be placed stably on the ground or other supporting planes when stationary, evenly distributing the weight it bears, avoiding tilting or shaking due to the shift of the center of gravity, and ensuring the overall stability of the equipment. Especially when placing heavier parts or tools, it can effectively prevent the cabinet 1 from being damaged due to uneven force.

[0024] Furthermore, the flipping mechanism 5 includes a fixed plate 501, a cylinder 502, a push rod 503, a locking block 504, a connecting plate 505, a slide rail 506, a limiting groove 507, a limiting plate 508, a rack plate 509, a gear 510, a sleeve 511, a fixed base 512, a rotating shaft 513, and a flipping block 514. A fixed plate 501 is fixedly connected to the upper surface of the operating table 4. A cylinder 502 is fixedly connected to one side of the fixed plate 501. A push rod 503 is slidably connected inside the cylinder 502. A locking block 504 is fixedly connected to one end of the push rod 503. A connecting plate 505 is fixedly connected to the inner side of the locking block 504. A connecting plate 505 is fixedly connected to the upper surface of the operating table 4. A slide rail 506 is connected, and a limit groove 507 is formed on the surface of the slide rail 506. A limit plate 508 is fixedly connected to one side of the connecting plate 505. A rack plate 509 is fixedly connected to the inner side of the limit plate 508. A gear 510 meshes with the surface of the rack plate 509. A sleeve 511 is rotatably connected to one side of the gear 510. A fixed seat 512 is fixedly connected to one end of the sleeve 511. A rotating shaft 513 is rotatably connected inside the sleeve 511. One end of the rotating shaft 513 is fixedly connected to one side of the gear 510. A flipping block 514 is fixedly connected to the middle part of the rotating shaft 513. A support 601 is fixedly connected to the surface of the flipping block 514. The flipping mechanism 5... When a flipping operation is required, cylinder 502 is activated first. Cylinder 502 pushes push rod 503 outward. Push rod 503 drives locking block 504 and connected connecting plate 505 to move along slide rail 506. Due to the cooperation between limiting plate 508 and limiting groove 507 on slide rail 506, the movement of connecting plate 505 is more stable and directional. As connecting plate 505 moves, rack plate 509 fixed inside it also moves. Rack plate 509 meshes with gear 510, thereby driving gear 510 to rotate. When gear 510 rotates, it drives flipping block 514 to rotate around the shaft 513. The shaft of 513 rotates. During this process, the sleeve 511 connects and supports the gear 510 and the fixed seat 512, ensuring the stability and reliability of the gear 510 during rotation. The support 601 fixed on the flipping block 514 and its attached adjustment mechanism 6 also flip together, thereby realizing the flipping action of parts of different sizes and models placed on the support 601. By controlling the stroke of the cylinder 502, the flipping angle and position can be precisely adjusted to meet various process and operation requirements, enabling the parts to flexibly change their posture in different processing or handling procedures, improving the automation level and processing accuracy of the production process.

[0025] Furthermore, the position of the rack plate 509 corresponds to the position of the limiting groove 507, and the outer wall dimension of the bottom of the rack plate 509 matches the inner wall dimension of the limiting groove 507. Through the setting of the limiting groove 507 and the rack plate 509, the position of the rack plate 509 corresponds precisely to the limiting groove 507 and the dimensions are closely matched. This provides extremely precise guidance for the movement of the rack plate 509. When the flipping mechanism 5 is operating, when the cylinder 502 pushes the push rod 503 to move the connecting plate 505, thereby causing the rack plate 509 to move accordingly, the limiting groove 507 ensures that the rack plate 509 can only move along the predetermined straight trajectory and will not deviate. The precise guidance ensures that the meshing between the rack plate 509 and the gear 510 remains stable and accurate, allowing the gear 510 to rotate smoothly according to the expected transmission ratio. This enables precise control of the flipping angle of the flipping block 514. Whether starting at low speed or operating at high speed, it effectively avoids problems such as gear 510 jamming, accelerated wear, or uncontrolled flipping action caused by unstable movement of the rack plate 509. This greatly improves the motion accuracy and reliability of the flipping mechanism 5, ensuring the accuracy and consistency of the parts flipping operation during production, and is conducive to improving product quality and production efficiency.

[0026] Furthermore, the threaded rod 604 is symmetrically arranged around the central axis of the baffle 606. Two sets of auxiliary rods 605 are arranged inside the slide groove 602. Through the arrangement of the threaded rod 604 and the auxiliary rods 605, the threaded rod 604 is symmetrically arranged on both sides of the central axis of the baffle 606. Under the drive of the drive motor 603, the sliders 607 on both sides can be evenly stressed and synchronized when they move relative to or in opposite directions. When the adjusting mechanism 6 clamps and adjusts parts of different sizes, this symmetrical thread design can ensure that the clamping plate 608 moves smoothly closer to or further away from the parts from both sides, avoiding the workpiece being skewed or inaccurately positioned due to uneven force on one side. In the event of such a situation, the two sets of auxiliary rods 605 provide additional support and guidance for the slider 607, further enhancing the stability of the slider 607 during movement. The auxiliary rods 605 work in conjunction with the threaded rods 604 with symmetrical threads, enabling the slider 607 to respond precisely and stably to the commands of the drive motor 603, quickly and accurately adjust to the appropriate position, adapt to the clamping requirements of parts of different widths, improve the adaptability and adjustment accuracy of the adjustment mechanism 6 to changes in part size, reduce part processing errors or damage caused by unstable clamping or adjustment errors, thereby improving the overall reliability of the equipment and the quality of product processing.

[0027] Furthermore, the position of the slider 607 corresponds to the position of the groove 602, and the outer wall size of the slider 607 matches the inner wall size of the groove 602. Through the setting of the groove 602 and the slider 607, the slider 607 and the groove 602 are positioned and matched in size, making the slider 607 slide extremely smoothly and accurately in the groove 602. When the drive motor 603 drives the threaded rod 604 to rotate, the slider 607 can move linearly along the groove 602 strictly according to the thread movement law of the threaded rod 604 with the assistance of the auxiliary rod 605, without obvious shaking or jamming. This not only ensures the accuracy of the position adjustment of the clamping plate 608 and improves the rapid response capability to parts of different sizes, but also reduces the energy loss and component wear caused by uneven sliding friction resistance, and extends the service life of the adjustment mechanism 6.

[0028] Furthermore, the outer wall dimension of the positioning block 613 matches the inner wall dimension of the positioning hole 614, and multiple sets of positioning holes 614 are provided on the surface of the support 601. Through the setting of the positioning block 613 and the positioning hole 614, after the clamping plate 608 contacts and adapts to the shape of the part, the positioning block 613 can accurately lock into the corresponding positioning hole 614. Multiple sets of positioning holes 614 provide a variety of positioning options, enabling the adjustment mechanism 6 to accurately lock the position of the clamping plate 608 for parts of different shapes and sizes, ensuring that the parts are firmly clamped and their positions do not shift during the flipping process. This reliable positioning mechanism effectively prevents safety accidents and processing quality problems that may be caused by loose parts, further enhancing the stability and reliability of the equipment when processing diverse parts, and improving the safety of the production process and the consistency of product processing accuracy.

[0029] Working principle: First, the equipment is moved to a suitable working position and fixed by the pulleys 3. When a part needs to be flipped, the drive motor 603 of the adjustment mechanism 6 is started according to the width of the part. The drive motor 603 drives the threaded rod 604 to rotate. Under the combined action of the threaded rod 604 and the auxiliary rod 605, the slider 607 moves in opposite directions along the slide groove 602, so that the clamping plates 608 are adjusted to a suitable distance. The part is placed between the clamping plates 608. After the part contacts the clamping plates 608, it moves slightly upward. The movement triggers the compression of the telescopic rod 611 inside the telescopic tube 610, and the telescopic spring 612 stores energy. Subsequently, the telescopic spring 612 pushes the telescopic rod 611, causing the positioning block 613 to engage with the corresponding positioning hole 614, locking the position of the clamping plate 608 and completing the stable clamping of the part. Next, the cylinder 502 of the flipping mechanism 5 is activated. The cylinder 502 pushes the push rod 503, causing the locking block 504 to move the connecting plate 505 along the slide rail 506. The limiting plate 508 and the limiting groove 507 cooperate to ensure stable and accurate movement. During the movement of the connecting plate 505... The rack plate 509 moves and meshes with the gear 510, driving the gear 510 to rotate. The gear 510 drives the flipping block 514 to rotate around the axis through the rotating shaft 513, thereby realizing the flipping of the part. The flipping angle and position can be precisely adjusted by controlling the stroke of the cylinder 502 to meet different process requirements. During the flipping process, the sleeve 511 provides a stable connection and support for the gear 510 and the fixed seat 512, ensuring the smooth and reliable flipping action. After the flipping is completed, the cylinder 502 can be restarted to restore the flipping block 514 to its original position according to the requirements of subsequent processes, or the part can be directly removed from the clamping plate 608. If it is necessary to process the next part of a different size, the operation steps of the adjustment mechanism 6 and the flipping mechanism 5 are repeated. The entire equipment can efficiently and accurately handle the flipping tasks of parts of different sizes and models, improve production efficiency and product quality, and adapt to diversified production needs. The cylinder 502 is model SU63-100, and the drive motor 603 is model Y315S-2. This completes the use of an adjustable horizontal flipping structure.

[0030] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A regulated horizontal flip structure comprising a horizontal cabinet (1), characterized in that: The cabinet (1) has a storage slot (2) on one side, and a pulley (3) is installed at the bottom of the cabinet (1). An operating table (4) is fixedly connected to the upper surface of the cabinet (1). A flipping mechanism (5) is provided on the upper surface of the operating table (4), and an adjustment mechanism (6) is provided on the surface of the flipping mechanism (5). The adjusting mechanism (6) includes a support (601), a slide groove (602), a drive motor (603), a threaded rod (604), an auxiliary rod (605), a baffle (606), a slider (607), a clamping plate (608), a fixing block (609), a telescopic tube (610), a telescopic rod (611), a telescopic spring (612), a positioning block (613), and a positioning hole (614). The surface of the flipping mechanism (5) is provided with a support (601), and the surface of the support (601) is provided with a slide groove (602). One end of the support (601) is fixedly connected to a drive motor (603), the inner end of the drive motor (603) is fixedly connected to a threaded rod (604), and the inner wall surface of the slide groove (602) is fixedly connected to an auxiliary rod (605). The middle part of the slide groove (602) is fixedly connected to a baffle (606). The surfaces of the threaded rod (604) and the auxiliary rod (605) are slidably connected to sliders (607). The outer surface of the slider (607) is fixedly connected to a clamping plate (608). The upper part of the clamping plate (608) is fixedly connected to a fixing block (609). One end of the fixing block (609) is fixedly connected to a telescopic tube (610). The inside of the telescopic tube (610) is slidably connected to a telescopic rod (611). The outside of the telescopic rod (611) is wound with a telescopic spring (612). One end of the telescopic rod (611) and the telescopic spring (612) are both fixedly connected to a positioning block (613). The surface of the support (601) is provided with a positioning hole (614).

2. The adjustable horizontal flip structure of claim 1, wherein: The pulleys (3) are provided in multiple sets at the bottom of the cabinet (1), and are symmetrically distributed at the four corners of the bottom of the cabinet (1) with respect to the central axis of the cabinet (1).

3. The adjustable horizontal flip structure of claim 1, wherein: The flipping mechanism (5) includes a fixed plate (501), a cylinder (502), a push rod (503), a locking block (504), a connecting plate (505), a slide rail (506), a limiting groove (507), a limiting plate (508), a rack plate (509), a gear (510), a sleeve (511), a fixed seat (512), a rotating shaft (513), and a flipping block (514). The fixed plate (501) is fixedly connected to the upper surface of the operating table (4). A cylinder (502) is fixedly connected to one side of the fixed plate (501). A push rod (503) is slidably connected inside the cylinder (502). A locking block (504) is fixedly connected to one end of the push rod (503). A connecting plate (505) is fixedly connected to the inner side of the locking block (504). The upper surface of the operating table (4) is... A slide rail (506) is fixedly connected, and a limiting groove (507) is formed on the surface of the slide rail (506). A limiting plate (508) is fixedly connected to one side of the connecting plate (505). A rack plate (509) is fixedly connected to the inner side of the limiting plate (508). A gear (510) meshes with the surface of the rack plate (509). A sleeve (511) is rotatably connected to one side of the gear (510). A fixed seat (512) is fixedly connected to one end of the sleeve (511). A rotating shaft (513) is rotatably connected inside the sleeve (511). One end of the rotating shaft (513) is fixedly connected to one side of the gear (510). A flipping block (514) is fixedly connected to the middle part of the rotating shaft (513). A support (601) is fixedly connected to the surface of the flipping block (514).

4. The adjustable horizontal flipping structure according to claim 3, characterized in that: The position of the rack plate (509) corresponds to the position of the limiting groove (507), and the outer wall dimension of the bottom of the rack plate (509) matches the inner wall dimension of the limiting groove (507).

5. The adjustable horizontal flip structure of claim 1, wherein: The threaded rod (604) is symmetrically arranged with respect to the central axis of the baffle (606), and two sets of auxiliary rods (605) are arranged inside the slide groove (602).

6. The adjustable horizontal flip structure of claim 1, wherein: The position of the slider (607) corresponds to the position of the groove (602), and the outer wall size of the slider (607) matches the inner wall size of the groove (602).

7. The adjustable horizontal flip structure of claim 1, wherein: The outer wall size of the positioning block (613) matches the inner wall size of the positioning hole (614), and multiple sets of positioning holes (614) are opened on the surface of the support (601).

Citation Information

Patent Citations

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