An automated green plant supply system

By designing an automated green plant supply system, the problem of low green coverage in the Tibetan Plateau region has been solved, enabling convenient transplanting and protection of green plants, improving the survival rate and supply efficiency of green plants, reducing the consumption of manpower and material resources, and achieving a continuous supply of green plants.

CN116784125BActive Publication Date: 2026-05-26NORTHWEST RES INST CO LTD OF C R E C +2

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
NORTHWEST RES INST CO LTD OF C R E C
Filing Date
2023-06-26
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

When expanding green coverage in the Tibetan Plateau region, existing transplanting methods are time-consuming and labor-intensive, and the plants are prone to withering during transportation, making it difficult to effectively increase the green coverage rate.

Method used

Design an automated green plant supply system, including a planting board, a water supply component, a storage box, and a seed box. The planting board utilizes planting holes and a gripping mechanism to facilitate the easy access and transplanting of green plants. The system combines a water supply system and a shading mechanism to protect the green plants. An isolation layer is used to reduce soil erosion. The system is powered by photovoltaic panels to achieve self-powering and automatic control.

Benefits of technology

The system shortened the transportation time of green plants, improved their survival rate, saved manpower and resources, and achieved a continuous supply of green plants. The continuous supply of green plants in the system improved the survival rate of green plants, increased production efficiency in the Tibetan Plateau region, reduced the mortality rate of green plants, and achieved an uninterrupted supply of green plants.

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Abstract

This application relates to the field of auxiliary equipment for green plant establishment, and in particular to an automated green plant supply system, including a long strip-shaped planting board. Multiple planting holes are evenly spaced along the length of the planting board on its upper surface, arranged in multiple rows. Planting pots for planting green plants are placed inside the planting holes, and an isolation layer is installed inside each planting pot. The planting pots are detachably connected to the planting board. A water supply component for supplying water to the green plants is also provided on the planting board. Below the planting board are a storage box for storing soil, a seed box for storing green plant seeds, and a placement box for storing the isolation layer. This system achieves the effects of increasing the green coverage rate in the Tibetan Plateau region, saving time and manpower, and reducing the possibility of green plant wilting and death.
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Description

Technical Field

[0001] This application relates to the field of auxiliary equipment for green plant construction, and in particular to an automated green plant supply system. Background Technology

[0002] With the development of the national economy, more and more wasteland is being utilized, and the green vegetation coverage area in western my country is gradually increasing.

[0003] For the Tibetan Plateau region, due to its high altitude and predominantly mountainous and valley terrain, with intense solar radiation, the common method for increasing vegetation cover is transplantation. This involves planting vegetation in the surrounding plains and then transporting it to the Tibetan Plateau for transplanting. The inventors discovered that current methods of transplanting vegetation to increase vegetation cover in the Tibetan Plateau region are time-consuming and labor-intensive, and there is also a possibility that the vegetation may wither and die during transport. Summary of the Invention

[0004] This application provides an automated green plant supply system to increase the green coverage rate in the Tibetan Plateau region, save time and manpower, and reduce the possibility of green plants withering and dying.

[0005] The above-mentioned technical objective of this application is achieved through the following technical solution:

[0006] An automated green plant supply system includes a long strip-shaped planting board with multiple planting holes evenly spaced along its length on the upper surface. The planting holes are arranged in multiple rows. Planting pots for planting green plants are installed inside the planting holes. An isolation layer is installed inside the planting pots. The planting pots are detachably connected to the planting board. A water supply component for supplying water to the green plants is also provided on the planting board. Below the planting board are a storage box for storing soil, a seed box for storing green plant seeds, and a placement box for storing the isolation layer.

[0007] By adopting the above scheme, when planting vegetation in high mountains and deep valleys such as the Tibetan Plateau, planting boards can be placed on relatively flat ground near the mountains and valleys. Planting pots can then be placed in the planting holes on the planting boards, and plants can be planted inside the pots. The water supply components on the planting boards can provide water for the plants inside the pots. When transplanting is needed, the plants can be removed from the planting pots. The isolation layer in the planting pots acts as a soil retainer, reducing soil loss. Moreover, the time and distance required to transport transplanted plants to steep slopes are shorter, thus increasing the vegetation coverage in the Tibetan Plateau region, saving time and manpower, and reducing the possibility of plant wilting and death. Furthermore, after removing the plants from the planting pots, the personnel can take out an isolation layer from the storage box and place it in the planting pot, take some soil from the storage box and place it in the isolation layer, and then plant a plant seed in the soil. This allows the vegetation supply system to be reused.

[0008] Preferably, each row of planting holes is provided with a corresponding portal frame, which is mounted on the planting board. The planting board is provided with a lifting device that drives the portal frame to move up and down in the vertical direction. The crossbeam of the portal frame is provided with a moving block and a driving device that drives the moving block to move back and forth on the portal frame along the length of the planting board. Below the moving block are two gripping rods for gripping the planting pots. The moving block is provided with a gripping device that drives the two gripping rods to move closer to or further away from each other.

[0009] Preferably, the gripper includes a drive block, which is fixed to the upper end of the gripping rod and embedded in the lower surface of the moving block. The moving block is provided with a bidirectional lead screw, the length direction of which is the same as the length direction of the planting plate. The bidirectional lead screw is rotatably connected to the moving block, passes through the two drive blocks and is threadedly connected to the drive blocks. The moving block is provided with a clearance groove for the drive block to move.

[0010] Preferably, one end of the bidirectional lead screw is equipped with a rotary motor, the rotary motor is connected to a storage battery, and a photovoltaic panel is connected to the storage battery.

[0011] Preferably, an auxiliary block is provided on the side of the two gripping rods that are close to each other, and the side of the auxiliary block away from the gripping rods is arc-shaped.

[0012] Preferably, the water supply assembly includes a water tank located below the planting board, a water supply pipe connected to the water tank, the end of the water supply pipe away from the water tank extending towards the lower surface of the crossbeam and finally extending along the length of the planting board on the crossbeam of the crossbeam of the gantry frame, the end of the water supply pipe away from the water tank being closed, a water pump connected to a storage battery connected to the water supply pipe, and a water supply hole located directly above the planting pot.

[0013] Preferably, the highest point of the planting pot is higher than the upper surface of the planting board, the edge of the planting board is provided with a raised ridge, multiple water collection holes are opened on the planting board, the water collection holes penetrate downward through the planting board and are connected to the inside of the water supply tank, and a filter cover is provided inside the planting board.

[0014] Preferably, the planting board is provided with a shielding mechanism, which includes two support rods. The two support rods are respectively located at both ends of the planting board. The support rods are generally arched with the opening facing downwards. Sliding blocks are provided at both ends of the support rods. The support rods pass through the sliding blocks and are slidably connected to the sliding blocks. A shielding cloth is provided on the upper surface of the planting board near the two sides and is fixedly connected to the support rods. The planting board is provided with a pushing component that drives the two sliding blocks to slide on the support rods.

[0015] Preferably, the support rod is hollow inside, and the pushing assembly includes a pushing block disposed inside the support rod. Connecting blocks are disposed on both sides of the pushing block. The connecting blocks extend to the outside of the support rod and are fixedly connected to the sliding block. An air pump is disposed inside the planting plate. The output end of the air pump is connected to the inside of the support rod on the side of the two sliding blocks that are far apart from each other. An electromagnet is embedded in the side of the two sliding blocks that are close to each other.

[0016] Preferably, a placement groove is provided on the upper surface of the planting board corresponding to the position of the covering cloth, and a winding rod is provided inside the placement groove. One end of the covering cloth is fixed to the winding rod, and a torsion spring is provided on the winding rod to drive the winding rod to rotate and wind up the covering cloth.

[0017] In summary, this application has the following technical effects:

[0018] 1. By setting up a supply system, which can be placed in a small plain area near a steep slope, and then planting greenery in the supply system, when it is necessary to plant greenery on the steep slope, people can take greenery from the nearby supply system, which will shorten the time required to transport greenery and improve the survival rate of greenery; moreover, after people take greenery from the supply system, they can plant new greenery seeds in the corresponding location, thus achieving an uninterrupted supply of greenery from the supply system.

[0019] 2. By setting up a gantry frame, gripping rod, and gripping parts, when people need to take green plants from the supply system, they can control the gripping rod to take out the green plants located in the center of the planting board, which makes it convenient for people to use the supply system;

[0020] 3. By setting up a shielding mechanism, when the location of the supply system encounters strong winds or heavy rainfall, the shielding cloth in the shielding mechanism will be placed over the green plants, protecting them from damage. Attached Figure Description

[0021] Figure 1 This is an overall structural diagram of the automated green plant supply system in the embodiments of this application;

[0022] Figure 2 This is another perspective of the overall structure of the automated green plant supply system in the embodiments of this application;

[0023] Figure 3 This is a partial cross-sectional view of the automated green plant supply system in the embodiments of this application;

[0024] Figure 4 yes Figure 3 Enlarged view of a portion of point A in the middle;

[0025] Figure 5 This is a control logic block diagram of the control center in the embodiments of this application.

[0026] In the diagram: 1. Planting board; 11. Planting hole; 12. Water collection hole; 13. Filter cover; 2. Planting assembly; 21. Planting pot; 22. Isolation layer; 23. Placement box; 3. Water supply assembly; 31. Water supply tank; 32. Water supply pipe; 33. Humidity sensor; 34. Water supply pump; 4. Storage box; 5. Seed box; 6. Gripping mechanism; 61. Gantry frame; 62. Lifting component; 621. Lifting motor; 622. Lifting sleeve; 623. Lifting gear; 63. Moving block; 64. Drive component. 641. Drive motor; 642. Drive screw; 65. Gripping rod; 66. Auxiliary block; 67. Gripping component; 671. Drive block; 672. Bidirectional screw; 673. Rotary motor; 7. Shielding mechanism; 71. Support rod; 72. Sliding block; 73. Shielding cloth; 74. Pushing assembly; 742. Air pump; 743. Air pipe; 746. Rewinding rod; 8. Photovoltaic panel; 81. Photovoltaic battery; 82. Control center; 83. Pressure sensor; 84. Wind speed measurement sensor. Detailed Implementation

[0027] The present application will be further described in detail below with reference to the accompanying drawings.

[0028] Reference Figure 1 This application provides an automated green plant supply system, including a planting board 1, a planting component 2, a water supply component 3, a storage box 4, and a seed box 5. The storage box 4 is set on the ground, and one side of the storage box 4 is a movable surface. The movable surface of the storage box 4 is rotatably connected to the main body of the storage box 4 so that the movable surface of the storage box 4 can be rotated open. The seed box 5 is set on one end face of the storage box 4, and the upper end face of the seed box 5 is rotatably connected to the side face of the seed box 5 so that the upper end face of the seed box 5 can be rotated open. The planting board 1 is generally rectangular and is horizontally set above the storage box 4. The planting component 2 is set on the planting board 1 for planting green plants, and the water supply component 3 is set on the planting board 1 for providing water resources for the planted green plants.

[0029] When using the automated green plant supply system, the storage box 4 is filled with planting soil, and multiple seeds of different types of green plants are added to the seed box 5. Then, the storage box 4 is placed in the designated position of the supply system, and the planting board 1 is horizontally installed on the storage box 4. Through the planting component 2, multiple green plants can be planted on the planting board 1, and the water supply component 3 can provide the green plants planted on the planting board 1 with the water resources needed for growth. When it is necessary to transplant green plants on steep slopes, they can be taken directly from the planting board 1, which can shorten the time required for green plant transportation and thus improve the survival rate of green plants. Furthermore, when people take green plants from the planting board 1, they can take some soil from the storage box 4 and add it to the planting component 2, and take a seed from the seed box 5 and place it in the planting component 2. After a period of time, the planting board 1 will be full of green plants ready for transplanting again.

[0030] Reference Figure 1 and Figure 2 The planting component 2 includes a planting pot 21, an isolation layer 22, and a placement box 23. Multiple planting holes 11 are evenly spaced along the length of the planting board 1, and three rows of planting holes 11 are formed along the width of the planting board 1. The planting pot 21 is placed in the planting holes 11, with the highest point of the planting pot 21 located above the upper surface of the planting board 1. The isolation layer 22 is a layer laid inside the planting pot 21. The placement box 23 is fixed to one end of the storage box 4 and located on one side of the seed box 5. When using the planting component 2, multiple isolation layers 22 are stacked in the placement box 23. When planting plants, one isolation layer 22 is taken out from the placement box 23 and laid into the planting pot 21, with the planting soil added to the isolation layer 22. During subsequent transplanting, the plants and soil can be rotated together using the isolation layer 22. The isolation layer 22 reduces soil loss during transport, further reducing the possibility of plant wilting and death.

[0031] In this embodiment, the specific dimensions of the planting board 1 are: length * width = 10 * 2 meters. In order to facilitate people to remove the green plants located in the center of the planting board 1 from the planting board 1, a gripping mechanism 6 is provided on the planting board 1. There are three sets of gripping mechanisms 6, and the three sets of gripping mechanisms 6 correspond to the three rows of planting holes 11 respectively.

[0032] Reference Figure 1 , Figure 3 and Figure 4The gripping mechanism 6 includes a gantry frame 61, a lifting component 62, a moving block 63, a driving component 64, a gripping rod 65, an auxiliary block 66, and a gripping element 67. The gantry frame 61 is assumed to be on the planting board 1, and the length direction of the crossbeam on the gantry frame 61 is the same as the length direction of the planting board 1. The lifting component 62 is mounted on the planting board 1 and can drive the gantry frame 61 to reciprocate vertically. The moving block 63 is located below the crossbeam on the gantry frame 61, and the upper end face of the moving block 63 is embedded inside the lower surface of the crossbeam. The driving component 64... The device is mounted on the gantry frame 61 and can drive the moving block 63 to reciprocate along the length of the planting board 1 on the gantry frame 61; there are two gripping rods 65, which are vertically mounted below the moving block 63; the auxiliary block 66 is mounted on the side of the two gripping rods 65 that are close to each other and is fixedly connected to the gripping rods 65; the side of the auxiliary block 66 away from the gripping rods 65 is curved; the gripping member 67 is mounted on the moving block 63 and can drive the two gripping rods 65 to move towards or away from each other.

[0033] When people need to take the greenery from the center of the planting board 1, they can use the drive component 64 to move the moving block 63 directly above the greenery to be grabbed. Then, the lifting component 62 moves the gantry frame 61 and the moving block 63 on the gantry frame 61 downwards. When the grabbing rod 65 moves to one side of the greenery, the grabbing component 67 moves the two grabbing rods 65 closer to each other. The auxiliary block 66 has an arc surface away from the grabbing rod 65, which can increase the contact area between the auxiliary block 66 and the planting pot 21. After the grabbing rod 65 and the auxiliary block 66 clamp the planting pot 21, the lifting component 62 moves the gantry frame 61 and the moving block 63 upwards. The grabbing rod 65 and the auxiliary block 66 will remove the planting pot 21 from the planting hole 11 of the planting board 1. Then, the drive component 64 moves the moving block 63 closer to the edge of the planting board 1. Finally, people can remove the planting pot 21 between the two grabbing rods 65.

[0034] In this embodiment, the lifting component 62 includes a lifting motor 621, a lifting sleeve 622, and a lifting gear 623. The lifting sleeve 622 is fixed to both ends of the planting plate 1. The two ends of the gantry frame 61 pass downward through the lifting sleeve 622 and are slidably connected to it. The lifting gear 623 is fixed to the end face of the planting plate 1 and is located on one side of the gantry frame 61. A toothed groove that meshes with the lifting gear 623 is provided on the side of the gantry frame 61. The lifting motor 621 is fixed to the planting plate 1 and can drive the lifting gear 623 to rotate. When the lifting motor 621 is working, it drives the lifting gear 623 to rotate. The lifting gear 623 meshes with the toothed groove on the side of the gantry frame 61. When the lifting gear 623 rotates, it drives the gantry frame 61 to reciprocate vertically inside the lifting sleeve 622.

[0035] In this embodiment, the driving component 64 includes a driving motor 641 and a driving screw 642. The driving screw 642 is disposed inside the crossbeam of the portal frame 61 and is rotatably connected to the crossbeam. The driving screw 642 passes through the moving block 63 and is threadedly connected to the moving block 63. The driving motor 641 is fixed on the portal frame 61 and can adjust the driving screw 642 to rotate. A moving groove is provided on the crossbeam of the portal frame 61 for the moving block 63 to reciprocate along the length direction of the planting plate 1.

[0036] In this embodiment, the gripping member 67 includes a drive block 671, a bidirectional lead screw 672, and a rotating motor 673. The drive block 671 is fixed to the upper end of the gripping rod 65 and embedded inside the lower surface of the moving block 63. The bidirectional lead screw 672 is disposed inside the moving block 63. The length direction of the bidirectional lead screw 672 is the same as the length direction of the planting plate 1. The bidirectional lead screw 672 is rotatably connected to the moving block 63. The bidirectional lead screw 672 passes through two drive blocks 671 and is threadedly connected to the drive blocks 671. The moving block 63 is provided with a clearance groove for the drive block 671 to move.

[0037] Reference Figure 2 and Figure 5 The water supply assembly 3 includes a water supply tank 31, a water supply pipe 32, a humidity sensor 33, and a water supply pump 34. The water supply tank 31 is located between the storage box 4 and the planting board 1. One end of the water supply pipe 32 is connected to the inside of the water supply tank 31, and the other end extends towards the lower surface of the crossbeam near the gantry frame 61, and finally extends along the length of the planting board 1 on the crossbeam of the gantry frame 61. The end of the water supply pipe 32 away from the water supply tank 31 is closed. A water supply hole is opened on the water supply pipe 32, which is located directly above the planting pot 21. The water supply pump 34 is installed on the water supply pipe 32. The humidity sensor 33 is fixed at the bottom center of the planting pot 21, and the upper end of the humidity sensor 33 extends upward through the bottom of the isolation layer 22 and into the interior of the isolation layer 22. When planting plants, soil is added to the planting pot 21, and the humidity sensor 33 can detect the soil moisture. When water solution needs to be added to the planting soil, the water supply pump 34 is started. The water supply pump 34 will deliver the water solution in the water supply tank 31 to the water supply pipe 32. The end of the water supply pipe 32 away from the water supply tank 31 is closed, and finally the water solution in the water supply pipe 32 will fall into the planting soil at the water supply hole.

[0038] In order to improve the utilization rate of natural water resources and realize the recycling of natural water resources, a protruding ridge is provided at the edge of the planting board 1, and multiple water collection holes 12 are opened downward on the planting board 1. The water collection holes 12 avoid the position of the planting holes 11, and the water collection holes 12 penetrate downward through the planting board 1 and are connected to the inside of the water supply tank 31. A filter cover 13 adapted to the water collection holes 12 is provided inside the planting board 1.

[0039] Reference Figure 3In this embodiment, in order to protect the green plants in the supply system, a shielding mechanism 7 is provided on the planting board 1.

[0040] The shielding mechanism 7 includes support rods 71, sliding blocks 72, shielding cloth 73, and a pushing component 74. Three support rods 71 ​​are provided, two of which are located near the ends of the planting plate 1, and the third support rod 71 is located at the center of the upper surface of the planting plate 1. The support rods 71 ​​are arranged in an arch shape with their openings facing downwards on the planting plate 1. Each support rod 71 is provided with two corresponding sliding blocks 72, located at both ends of the support rod 71. The support rod 71 passes through the sliding blocks 72 and is slidably connected to them. The shielding cloth 73 is located between two adjacent support rods 71. A placement groove for accommodating the shielding cloth 73 is provided on the upper surface of the planting plate 1. The shielding cloth 73 is placed inside the placement groove, and both ends of the shielding cloth 73 are fixedly connected to the sliding blocks 72 on the support rods 71. The pushing component 74 is located on the planting plate 1 and can push the two sliding blocks 72 on the support rods 71 ​​to move closer to or further away from each other.

[0041] In the event of heavy rainfall or strong winds, the plants may be damaged. In this case, the two sliding blocks 72 can be moved closer to each other on the support rod 71 by pushing the component 74. At this time, the sliding blocks 72 will also move the covering cloth 73 together. When the two sliding blocks 72 are joined together, the covering cloth 73 on the planting board 1 will cover the plants and protect them.

[0042] The pushing assembly 74 includes a pushing block, an air pump 742, an air tube 743, an electromagnet, a magnet, a winding rod 746, and a torsion spring. The support rod 71 is hollow inside. The pushing block is disposed inside the support rod 71 and is slidably connected to the support rod 71. Both ends of the pushing block extend to the outside of the support rod 71 and are fixedly connected to the sliding block 72. A through groove is provided on the side of the support rod 71 for the connection between the pushing block and the sliding block 72 to pass through. The air pump 742 is fixed on the planting plate 1, and the output end of the air pump 742 is connected to the air tube 743. One end of the tube 743 is connected to the air pipe 742. The end of the air pipe 743 away from the air pump 742 is connected to the inside of the support rod 71 on the side of the two sliding blocks 72 that are far apart from each other. The electromagnet and the magnet are respectively embedded in the side of the two sliding blocks 72 that are close to each other. The winding rod 746 is horizontally set inside the placement groove and is rotatably connected to the planting plate 1. The end of the shielding cloth 73 away from the sliding block 72 is fixed to the winding rod 746. The torsion spring is sleeved on the winding rod 746 and can drive the winding rod 746 to rotate to wind up the shielding cloth 73.

[0043] When encountering strong winds or heavy rainfall, the air pump 742 starts, and the air pump 742 instantly blows a large amount of pushing gas into the support rod 71 through the air pipe 743. The gas drives the pushing block to move the sliding block 72 closer to the center of the support rod 71. At the same time, the electromagnet is energized, and the electromagnet on one of the sliding blocks 72 attracts the magnet on the other sliding block 72, connecting and fixing the two sliding blocks 72 together. At this time, the covering cloth 73 has been placed over the green plants. After the strong winds or heavy rainfall, the electromagnet is de-energized. At this time, the torsion spring drives the winding rod 746 to rotate inside the placement groove. During the rotation of the winding rod 746, the covering cloth 73 is rolled up, and the two sliding blocks 72 separate.

[0044] Reference Figure 5 In this embodiment, since the supply system is mainly used in the Tibetan Plateau where solar radiation is strong, in order to further improve resource utilization and reduce resource waste, a photovoltaic panel 8 is installed on one side of the storage box 4. A photovoltaic battery 81 is connected to the photovoltaic panel 8. The photovoltaic battery 81 is connected to the lifting motor 621, the drive motor 641, the rotation motor 673, the water pump 34, the magnet, and the air pump 742. Furthermore, a control center 82 is also installed on the storage box 4. Here, the control center 82 is a microcontroller. The microcontroller is coupled to the humidity sensor 33. A pressure sensor 83 and a wind speed measurement sensor 84 are embedded on the upper surface of the planting board 1. The pressure sensor 83 is mainly used to detect the rainfall intensity, and the wind speed measurement sensor 84 is mainly used to detect the external wind force. Both the pressure sensor 83 and the wind speed measurement sensor 84 are coupled to the control center 82. The control center 82 is also coupled to the air pump 742 and the electromagnet.

[0045] This specific embodiment is merely an explanation of this application and is not intended to limit it. After reading this specification, those skilled in the art can make modifications to this embodiment without contributing any inventive step, but such modifications are protected by patent law as long as they fall within the scope of the claims of this application.

Claims

1. An automated green plant supply system, characterized in that: The system includes a long, narrow planting board (1), with multiple planting holes (11) evenly spaced along the length of the planting board (1) on its upper surface. The planting holes (11) are arranged in multiple rows. Planting pots (21) for planting green plants are installed inside the planting holes (11). An isolation layer (22) is installed inside the planting pots (21). The planting pots (21) are detachably connected to the planting board (1). A water supply component (3) for supplying water to the green plants is also provided on the planting board (1). Below the planting board (1) are a storage box (4) for storing soil, a seed box (5) for storing green plant seeds, and a storage box (5) for storing isolation layer. The placement box (23) of the layer (22); a portal frame (61) is set for each row of planting holes (11). The portal frame (61) is mounted on the planting board (1). The planting board (1) is equipped with a lifting component (62) that drives the portal frame (61) to move up and down in the vertical direction. The crossbeam of the portal frame (61) is equipped with a moving block (63) and a driving component (64) that drives the moving block (63) to move back and forth on the portal frame (61) along the length of the planting board (1). Below the moving block (63) are two gripping rods (65) for gripping the planting pot (21). The moving block (63) is equipped with a mechanism to drive the two gripping rods. (65) A gripper (67) that moves toward or away from each other; the gripper (67) includes a drive block (671), which is fixed to the upper end of the gripper rod (65) and embedded in the lower surface of the moving block (63). The moving block (63) is provided with a bidirectional lead screw (672), the length direction of which is the same as that of the planting plate (1). The bidirectional lead screw (672) is rotatably connected to the moving block (63). The bidirectional lead screw (672) passes through the two drive blocks (671) and is threadedly connected to the drive blocks (671). The moving block (63) has a hole for the drive block (671) to move toward or away from each other. 671) Moving clearance groove; Water supply assembly (3) includes a water supply tank (31) set below the planting board (1), a water supply pipe (32) connected to the water supply tank (31), the end of the water supply pipe (32) away from the water supply tank (31) extends towards the gantry frame (61) to the interior of the lower surface of the crossbeam, and finally extends along the length of the planting board (1) on the crossbeam of the gantry frame (61), the end of the water supply pipe (32) away from the water supply tank (31) is closed, a water supply pump (34) connected to the storage battery is connected to the water supply pipe (32), and a water supply hole is opened on the water supply pipe (32), the water supply hole is located directly above the planting pot (21);A shielding mechanism (7) is provided on the planting board (1). The shielding mechanism (7) includes a support rod (71). There are two support rods (71). The two support rods (71) are respectively set at both ends of the planting board (1). The support rods (71) are generally arched with the opening facing downward. Sliding blocks (72) are provided at both ends of the support rods (71). The support rods (71) pass through the sliding blocks (72) and are slidably connected to the sliding blocks (72). A shielding cloth (73) is provided on the upper surface of the planting board (1) near the two sides and is fixedly connected to the support rods (71). The planting board (1) is provided with a mechanism to drive the two support rods (71) to shield the support rods (71). A pushing assembly (74) on which two sliding blocks (72) slide on a support rod (71); the support rod (71) is hollow inside, and the pushing assembly (74) includes a pushing block disposed inside the support rod (71), with connecting blocks disposed on both sides of the pushing block, the connecting blocks extending to the outside of the support rod (71) and fixedly connected to the sliding blocks (72); an air pump (742) is disposed inside the planting plate (1), the output end of the air pump (742) is connected to the inside of the support rod (71) on the side of the two sliding blocks (72) that is far apart from each other, and an electromagnet is embedded in the side of the two sliding blocks (72) that is close to each other.

2. The automated green plant supply system according to claim 1, characterized in that: A rotating motor (673) is provided at one end of the bidirectional lead screw (672), the rotating motor (673) is connected to a storage battery, and a photovoltaic panel (8) is connected to the storage battery.

3. The automated green plant supply system according to claim 1, characterized in that: An auxiliary block (66) is provided on the side of the two gripping rods (65) that are close to each other, and the side of the auxiliary block (66) away from the gripping rods (65) is arc-shaped.

4. The automated green plant supply system according to claim 1, characterized in that: The highest point of the planting pot (21) is higher than the upper surface of the planting board (1). The edge of the planting board (1) is provided with a protruding ridge. Multiple water collection holes (12) are provided on the planting board (1). The water collection holes (12) penetrate downward through the planting board (1) and are connected to the inside of the water supply tank (31). A filter cover (13) is provided inside the planting board (1).

5. An automated green plant supply system according to claim 1, characterized in that: A placement groove is provided on the upper surface of the planting board (1) at the position corresponding to the shielding cloth (73). A winding rod (746) is provided inside the placement groove. One end of the shielding cloth (73) is fixed on the winding rod (746). A torsion spring is provided on the winding rod (746) to drive the winding rod (746) to rotate and wind up the shielding cloth (73).