A geological disaster land planting sleeve output device

CN224760834UActive Publication Date: 2026-09-18HUNAN NEW CONTINENT ECOLOGICAL CONSTR CO LTD
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Patent Information

Application Number
CN202522300342.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-30
Publication Date
2026-09-18
Estimated Expiration
2035-10-30

AI Technical Summary

Technical Problem

[0002]地质灾害直接破坏了土地资源,地震、泥石流等灾害在瞬间摧毁了土地,使其变得不适宜种植生长,甚至无法再生

Benefits of technology

[0015] Using the above technical solution, this utility model provides a sleeve output device for planting in land affected by geological disasters. The sleeves are arranged in a linear pattern and placed in the cavity of the frame and positioned on the upper end of the slide plate. The servo motor is controlled to push the sleeves forward into the circular perforation on the right side, where they are locked in place by a side slip ring. The lower end is clamped by a second cylinder pushing a clamping plate forward. The first cylinder moves the sleeves downward and the second cylinder retracts the sleeves, thus outputting them downward to the desired position. The device has a simple structure and is easy to use.

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Abstract

This utility model discloses a sleeve output device for planting in land affected by geological disasters, comprising a frame; sliding plates are provided on both sides of the lower end of the frame cavity via screws, and a connecting plate is provided on the right side; a circular through hole is provided on the left side of the frame, and a slip ring is provided at the lower end of the circular through hole via a rubber material; a servo motor is provided on the lower left side of the frame, and the lead screw of the servo motor passes through the frame and cooperates with the connecting plate; a nut is provided on the lead screw of the servo motor, and a push plate is provided on the outside of the nut, and first sliders are provided on both sides of the push plate via screws; corresponding first sliding grooves are provided on the two inner walls of the frame, and cooperate with the first sliders; corner plates are welded on both sides of the right end of the frame, and a first cylinder is provided on the inner side plate of the corner plate via screws; a second cylinder is provided on the lower end of the first cylinder rod, and a clamping plate is provided at the front end of the second cylinder. This utility model provides a sleeve output device for planting in land affected by geological disasters, which facilitates the continuous output of stacked sleeves; the device has a simple structure and is practical and convenient.
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Description

Technical Field

[0001] This utility model relates to the field of geological disaster construction technology, and in particular to a sleeve output device for facilitating planting in geological disaster land. Background Technology

[0002] Geological disasters directly damage land resources. Earthquakes, mudslides, and other disasters destroy land in an instant, rendering it unsuitable for planting and even unable to regenerate. In such cases, artificial planting is necessary to restore the land's greenery. However, the existing shallow soil is mostly a mixture of mud and gravel, requiring manual drilling and backfilling for planting. After drilling, the gravel is easily re-buried, necessitating the addition of sleeves to prevent this re-buried soil. Currently, these sleeves are placed manually, which is inefficient and increases labor intensity. Utility Model Content

[0003] The technical problem to be solved by this utility model is to provide a sleeve output device for planting in land affected by geological disasters, thus solving the problems raised in the background art.

[0004] To address the aforementioned technical problems, this utility model provides a convenient sleeve output device for planting in geological disaster-prone land, comprising a frame, a slip ring, a connecting plate, a sliding plate, a push plate, a servo motor, a control device, an angle plate, a first cylinder, a second cylinder, a clamping plate, an infrared sensor, and a second slider; the lower end of the frame is provided with a support angle and upper and lower through slots; the lower ends of the frame cavity are fitted with sliding plates on both sides via screws, and the right end is provided with a connecting plate; the left end of the frame is provided with a circular through hole, and the lower end of the circular through hole is fitted with a slip ring via a colloid; the lower left end of the frame is provided with a servo motor, and the lead screw of the servo motor passes through the frame and engages with the connecting plate; the lead screw of the servo motor is provided with a nut. An outer push plate is provided, and first sliders are provided on both sides of the push plate by screws; the two inner walls of the frame are provided with corresponding first sliding grooves, which cooperate with the first sliders; corner plates are welded to both sides of the right end of the frame, and first cylinders are provided on the inner side plates of the corner plates by screws; a second cylinder is provided on the lower end of the first cylinder rod, and a clamping plate is provided at the front end of the second cylinder; a sliding guide rail is provided on the left side of the second cylinder, and the sliding guide rail is fastened to the inner wall of the corner plate by screws; the first cylinder and the second cylinder are connected to a control device by wires; the control device is located on the outer plane of the frame; a second sliding groove is provided on the lower right side of the frame, and a corresponding second slider is provided in the second sliding groove; an infrared sensor is provided on the upper end of the second slider.

[0005] Preferably, the control device includes a display screen, buttons, a microcontroller, a relay, an air supply tank, a solenoid valve, and an air pipe;

[0006] The display screen and buttons are located on the outside of the frame and are connected to the microcontroller via wires;

[0007] The microcontroller is connected to the relay and solenoid valve via wires;

[0008] The microcontroller wires are connected to the infrared sensor;

[0009] The solenoid valve is connected to the air supply tank and cylinder via an air pipe.

[0010] Preferably, the slip ring is made of high-density foam, and the inner side of the upper end of the ring is provided with an inclined plane.

[0011] Preferably, the front end of the push plate is provided with a protruding plate.

[0012] Preferably, the clamp is a conical ring, and the inner side is provided with elastic cotton.

[0013] Preferably, the right side of the frame is provided with an extension frame, and an inner ring is provided to cooperate with the circular through hole on the right side of the frame; the left side of the extension frame is connected to the frame.

[0014] Preferably, a position sensor is provided inside the cavity of the frame.

[0015] Using the above technical solution, this utility model provides a sleeve output device for planting in land affected by geological disasters. The sleeves are arranged in a linear pattern and placed in the cavity of the frame and positioned on the upper end of the slide plate. The servo motor is controlled to push the sleeves forward into the circular perforation on the right side, where they are locked in place by a side slip ring. The lower end is clamped by a second cylinder pushing a clamping plate forward. The first cylinder moves the sleeves downward and the second cylinder retracts the sleeves, thus outputting them downward to the desired position. The device has a simple structure and is easy to use. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the structure of an embodiment of the present utility model;

[0017] Figure 2 This is a schematic diagram of the structure of an embodiment of the present utility model;

[0018] Figure 3 This is a schematic diagram of the front view structure of an embodiment of the present utility model. Detailed Implementation

[0019] To facilitate understanding of this utility model, a more detailed description is provided below with reference to the accompanying drawings and specific embodiments. The accompanying drawings show preferred embodiments of this utility model. However, this utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a more thorough and complete understanding of the disclosure of this utility model.

[0020] It should be noted that when a component is described as being "fixed to" another component, it can be directly attached to the other component or there may be an intervening component. When a component is described as being "connected to" another component, it can be directly connected to the other component or there may be an intervening component. The terms "vertical," "horizontal," "left," "right," and similar expressions used in this specification are for illustrative purposes only.

[0021] Unless otherwise defined, all technical and scientific terms used in this specification have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to limit the scope of the invention. The term "and / or" as used in this specification includes any and all combinations of one or more of the associated listed items.

[0022] The present invention will be further described below with reference to the accompanying drawings and examples.

[0023] like Figure 1 , 2 As shown in Figure 3, a sleeve output device for facilitating planting in land affected by geological disasters includes a frame 601, a slip ring 602, a connecting plate 603, a sliding plate 604, a push plate 605, a servo motor 606, a control device 607, a corner plate 608, a first cylinder 609, a second cylinder 610, a clamping plate 611, an infrared sensor 612, and a second slider 613.

[0024] The frame 601 has a support corner 614 at the lower end and a through groove 615 at the top and bottom.

[0025] Slide plates 604 are provided on both sides of the lower end of the cavity of frame 601 by screws, and a connecting plate 603 is provided on the right side end; these are used to place stacked sleeves, and are located on both sides at the upper end of the slide plates for easy sliding.

[0026] The left side of the frame 601 is provided with a circular through hole 616, and the lower end of the circular through hole 616 is provided with a slip ring 602 through the colloid; the upper sleeve of the slide plate inside the frame is pushed and slid to the right circular through hole by the push plate, and is limited by the slip ring.

[0027] A servo motor 606 is provided on the lower left side of the frame 601, and it passes through the left side plate of the frame 601 and cooperates with the connecting plate 603 inside the frame cavity; a push plate 605 is provided on the upper slider of the servo motor 606, and first sliders 617 are provided on both sides of the push plate 605 by screws.

[0028] A servo motor 606 is provided on the lower left side of the frame 601, and the lead screw of the servo motor 606 passes through the frame 601 and cooperates with the connecting plate 605; the lead screw of the servo motor 606 is provided with a nut, a push plate 605 is provided on the outside of the nut, and the push plate 605 is provided with first sliders 617 on both sides by screws.

[0029] The servo motor 606 has a lead screw at its front end via a coupling and a nut at its upper end. The lead screw drives the nut to move the push plate left and right, which is used to control the distance of each push and achieve continuous feeding.

[0030] The two inner walls of the frame 601 are provided with corresponding first sliding grooves 618, which cooperate with the first slider 617;

[0031] The servo motor drives the push plate to move, thus moving the upper sleeve of the slide plate inside the frame.

[0032] Angle plates 608 are welded to both sides of the right end of the frame 601, and the first cylinder 609 is provided on the inner side plate of the angle plate 608 by screws; the angle plate is a horizontal plate with the outer side perpendicular to the bottom, and the first cylinder is provided on the inner side of the vertical plate by screws.

[0033] The lower end of the first cylinder 609 is equipped with a second cylinder 610, and the front end of the second cylinder 610 is equipped with a clamping plate 611; the clamping plate is arc-shaped and conical, which facilitates the fitting of the sleeve; the sleeve is conical.

[0034] The second cylinder 610 is provided with a sliding guide rail 619 on the left side, and the sliding guide rail 619 is fastened to the inner wall of the corner plate 608 with screws.

[0035] The first cylinder 609 and the second cylinder 610 are connected to the control device 607 via wires;

[0036] The control device 607 is located on the outer plane of the frame 601;

[0037] The lower right side of the frame 601 is provided with a second slide groove 620, and a corresponding second slider 613 is provided in the second slide groove 620; an infrared sensor 612 is provided on the upper end of the second slider 613.

[0038] Preferably, the control device 607 includes a display screen, buttons, a microcontroller, a relay, an air supply tank, a solenoid valve, and an air pipe;

[0039] The display screen and buttons are located on the outside of the frame and are connected to the microcontroller via wires;

[0040] The microcontroller is connected to relays and solenoid valves via wires;

[0041] The microcontroller wires are connected to the infrared sensor;

[0042] The solenoid valve is connected to the air supply tank and cylinder via an air pipe.

[0043] Preferably, the slip ring 602 is made of high-density foam, and the inner ring at the upper end has a sloping plane to facilitate downward extrusion.

[0044] Preferably, the front end of the push plate 605 is provided with a protruding plate 621, which facilitates the front end to push it to the circular through hole on the right side of the frame.

[0045] Preferably, the clamp 611 is a conical ring with elastic cotton on the inner side to increase friction and facilitate downward pulling.

[0046] Preferably, the frame 601 has an extension frame 622 on the right side facing upwards, and the extension frame has an inner ring that matches the circular through hole on the right side of the frame 601; the left side of the extension frame 622 communicates with the frame 601; it is used to position the stacked sleeve.

[0047] Preferably, a position sensor is provided inside the cavity of the frame 601 to control the transmission distance.

[0048] In use: The stacked sleeves are arranged linearly and placed into the frame cavity, positioned on the upper end of the slide plate. A servo motor pushes them forward into the circular through-hole on the right side, where they are secured by a side slip ring. At the lower end, a second cylinder pushes a clamping plate forward, holding the sleeves in place. The first cylinder moves downward, and the second cylinder retracts, outputting the sleeves downward to the desired position. The lower end of the frame has support corners and vertical through-slots. Slide plates are attached to both sides of the lower end of the frame cavity via screws, and a connecting plate is located on the right side. These are used to hold the stacked sleeves, which are positioned on the upper end of the slide plates on both sides. For easy sliding; a circular perforation is provided on the left side of the frame, and a slip ring is provided at the lower end of the circular perforation through a rubber body; the upper sleeve of the inner slide plate is pushed and slid to the right circular perforation by a push plate, and is limited by the slip ring; a servo motor is provided on the lower left side of the frame, and passes through the left side plate of the frame to cooperate with the connecting plate inside the frame cavity; a push plate is provided on the upper slider of the servo motor, and the first slider is provided on both sides of the push plate through screws; a servo motor is provided on the lower left side of the frame, and the lead screw of the servo motor passes through the frame to cooperate with the connecting plate; a nut is provided on the lead screw of the servo motor, and the outer side of the nut The system includes a push plate with first sliders attached to both sides via screws. A lead screw is connected to the front end of a servo motor via a coupling, and a nut is attached to the upper end. The lead screw drives the nut to move the push plate left and right, controlling the distance of each push and ensuring continuous feeding. The two inner walls of the frame have corresponding first sliding grooves that cooperate with the first sliders, enabling the servo motor to drive the push plate and move the upper sleeve of the slide plate inside the frame. Corner plates are welded to both sides of the right end of the frame, and first cylinders are attached to the inner side plates of the corner plates via screws. The corner plates are horizontal and vertically downwards on the outer side. The first cylinder is mounted on the inner side of the vertical plate by screws; the lower end of the first cylinder has a second cylinder, and the front end of the second cylinder has a clamping plate; the clamping plate is arc-shaped and tapered to facilitate the fitting of the sleeve; the sleeve is tapered; the left end of the second cylinder has a sliding guide rail, and the sliding guide rail is fastened to the inner wall of the corner plate by screws; the first cylinder and the second cylinder are connected to the control device by wires; the control device is located on the outer plane of the frame; the lower right end of the frame has a second sliding groove, and the second sliding groove has a corresponding second slider; the upper end of the second slider has an infrared sensor for controlling the feeding sleeve.

[0049] This utility model provides a convenient sleeve output device for planting on land affected by geological disasters, which facilitates the continuous output of stacked sleeves; the device has a simple structure and is practical and convenient.

[0050] The embodiments of this utility model have been described in detail above with reference to the accompanying drawings, but this utility model is not limited to the described embodiments. For those skilled in the art, various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of this utility model, and these variations still fall within the protection scope of this utility model.

Claims

1. A sleeve output device for facilitating planting in land affected by geological disasters, characterized in that, It includes a frame, slip ring, connecting plate, sliding plate, push plate, servo motor, control device, corner plate, first cylinder, second cylinder, clamping plate, infrared sensor, and second slider; The lower end of the frame is provided with a support corner and a through groove at the top and bottom; The lower end of the frame cavity is equipped with sliding plates on both sides by screws, and a connecting plate is provided on the right end; The frame has a circular perforation at the left end, and a slip ring is provided at the lower end of the circular perforation through the colloid. A servo motor is provided on the lower left side of the frame, and the lead screw of the servo motor passes through the frame and cooperates with the connecting plate; the lead screw of the servo motor is provided with a nut, a push plate is provided on the outside of the nut, and the push plate is provided with a first slider on both sides by screws; The frame has corresponding first sliding grooves on its two inner walls, which cooperate with the first slider. Corner plates are welded to both sides of the right end of the frame, and the first cylinder is mounted on the inner side plate of the corner plate by screws; The lower end of the first cylinder is equipped with a second cylinder, and the front end of the second cylinder is equipped with a clamping plate; The left end of the second cylinder is provided with a sliding guide rail, and the sliding guide rail is fastened to the inner wall of the corner plate with screws; The first cylinder and the second cylinder are connected to the control device via wires; The control device is located on the outer plane of the frame. The lower right side of the frame is provided with a second sliding groove, and a corresponding second slider is provided in the second sliding groove; an infrared sensor is provided on the upper end of the second slider.

2. The sleeve output device for facilitating planting in land affected by geological disasters according to claim 1, characterized in that, The control device includes a display screen, buttons, a microcontroller, relays, an air supply tank, a solenoid valve, and an air pipe; The display screen and buttons are located on the outside of the frame and are connected to the microcontroller via wires; The microcontroller is connected to the relay and solenoid valve via wires; The microcontroller wires are connected to the infrared sensor; The solenoid valve is connected to the air supply tank and cylinder via an air pipe.

3. The sleeve output device for facilitating planting in land affected by geological disasters according to claim 1, characterized in that, The slip ring is made of high-density foam, and the inner side of the upper end ring has a sloping plane.

4. The sleeve output device for facilitating planting in land affected by geological disasters according to claim 1, characterized in that, The front end of the push plate is provided with a protruding plate.

5. The sleeve output device for facilitating planting in land affected by geological disasters according to claim 1, characterized in that, The clamp is a conical ring, and the inner side is provided with elastic cotton.

6. The sleeve output device for facilitating planting in land affected by geological disasters according to claim 1, characterized in that, The frame has an extension frame on the right side, which is provided with an inner ring that matches the circular perforation on the right side of the frame; the left side of the extension frame is connected to the frame.

7. The sleeve output device for facilitating planting in land affected by geological disasters according to claim 1, characterized in that, A position sensor is installed inside the cavity of the frame.