A tree living body growth state analysis system

By designing a tree growth status analysis system that includes transfer, adjustment, and stabilization mechanisms, the problem of collecting information and measuring trunk diameter at different heights in existing devices has been solved, improving the stability of the device and the convenience of data acquisition.

CN116381130BActive Publication Date: 2026-01-13ZHEJIANG NANSHAN ENVIRONMENTAL CONSTR CO LTD
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Patent Information

Application Number
CN202211722079.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-12-30
Publication Date
2026-01-13
Estimated Expiration
2042-12-30

AI Technical Summary

Technical Problem

Existing data collection devices are not convenient for collecting growth information of trees at different heights, are not convenient for measuring the trunk diameter of trees, and have poor stability.

Method used

A system was designed that includes a data acquisition device, a transmission device, and an automatic tree growth status analysis device. The data acquisition device acquires information and measures the trunk diameter of trees at different heights through a transfer, adjustment, and stabilization mechanism. The transmission device is used for information transmission, and the automatic analysis device is used for analyzing the growth status.

Benefits of technology

This technology enables convenient and rapid collection of tree growth information and measurement of trunk diameter at different heights, improving the stability of the device and ensuring the safety and accuracy of data collection.

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Patent Text Reader

Abstract

The application discloses a tree living body growth state analysis system and relates to the technical field of tree analysis; the application comprises a collecting device, a transmission device and a tree growth state automatic analysis device; the collecting device collects the image, the trunk diameter and the environmental information of a target tree; the height of the measuring mechanism, the camera and the environmental data collector can be conveniently and quickly adjusted by using the setting of the adjusting mechanism, so that the collection of the growth information of the tree at different heights is facilitated; the trunk diameter of the tree can be conveniently and quickly measured by using the setting of the measuring mechanism, so that the operation of the user is facilitated; the distance between the two third brake wheels is gradually increased with the increase of the measuring height when the relevant data of the tree is measured by using the setting of the stabilizing mechanism, so that the stability of the collecting device can be effectively improved, and the safe implementation of the data collection operation is ensured.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of tree analysis, in particular to a tree living growth state analysis system. BACKGROUND

[0002] Trees are plants with woody trunks and branches, which include trees, shrubs and woody vines, and trees are mainly seed plants, while only tree ferns in ferns are trees.

[0003] In order to ensure the normal growth of trees, it is necessary to analyze the living growth state of trees, so it is necessary to use a collection device to collect the growth information of trees, but the current collection device still has some shortcomings: most of the existing collection devices are not convenient for collecting the growth information of trees at different heights and are not convenient for measuring the diameter of the trunk of the tree, in addition, the existing collection device has the defect of poor stability.

[0004] In view of the above problems, the present application provides a tree living growth state analysis system to solve the above problems. SUMMARY

[0005] In order to solve the problems of the existing collection device that is not convenient for collecting the growth information of trees at different heights, is not convenient for measuring the diameter of the trunk of the tree and has poor stability, the purpose of the present application is to provide a tree living growth state analysis system.

[0006] To solve the above technical problems, the present application adopts the following technical scheme: a tree living growth state analysis system, comprising a collection device, a transmission device, a tree growth state automatic analysis device, the collection device collects the image, the trunk diameter and the environmental information of the target tree; the transmission device transmits the collected information to the tree growth state automatic analysis device; the tree growth state automatic analysis device analyzes the collected information and obtains the living growth state of the tree.

[0007] Preferably, the collection device comprises a transfer mechanism, and the transmission device is fixedly installed on the transfer mechanism, the top end of the transfer mechanism is fixedly installed with an adjusting mechanism, and the side lower end of the adjusting mechanism away from the transmission device is fixedly connected with a measuring mechanism, the adjusting mechanism is fixedly installed with a camera and an environmental data collector used in cooperation with the measuring mechanism, and the transfer mechanism is provided with a stabilizing mechanism used in cooperation with the adjusting mechanism.

[0008] Preferably, the conveying mechanism comprises a conveying base plate, one side bottom end of the conveying base plate is fixedly provided with symmetrically arranged first brake wheels, and the other side bottom end of the conveying base plate is fixedly provided with a bidirectional electric push rod, the output ends of the two sides of the bidirectional electric push rod are fixedly connected with conveying push plates, the top end of the conveying push plate is fixedly provided with a conveying side plate, the conveying side plate is slidably connected with the conveying base plate, one end of the conveying side plate away from the conveying base plate is fixedly provided with a second brake wheel used in cooperation with the first brake wheel, one end of the conveying side plate close to the conveying base plate is fixedly provided with two first guide rods, the end of the conveying base plate away from the first brake wheel is provided with symmetrically arranged first guide holes, the first guide rods are slidably inserted into the first guide holes, the end of the conveying base plate away from the conveying side plate is fixedly provided with symmetrically arranged Z-shaped push rods, and the end of the Z-shaped push rod away from the conveying base plate is fixedly provided with an anti-skid sheath.

[0009] Preferably, the adjusting mechanism comprises a back-shaped guide frame, the back-shaped guide frame is fixedly connected with the conveying base plate, a adjusting sliding plate is slidably inserted into the inner cavity of the back-shaped guide frame, the top end of the adjusting sliding plate is fixedly connected with the environmental data collector, an installation groove is formed in the adjusting sliding plate, a first rack is fixedly inserted into the installation groove, a servo motor is fixedly installed on one side upper end of the back-shaped guide frame close to the first rack, two side-attached horizontal rods are fixedly installed on the top end of the back-shaped guide frame, the end of the side-attached horizontal rod is fixedly connected with a side-attached support, the servo motor is fixedly inserted into the side-attached support, the output end of the servo motor is fixedly connected with a horizontal rotating rod, the horizontal rotating rod is rotatably connected with the back-shaped guide frame, a first gear is fixedly sleeved on the horizontal rotating rod, the first gear is movably penetrated through the back-shaped guide frame and engaged with the first rack, symmetrically arranged rotating supports are fixedly installed on one side upper end of the back-shaped guide frame, the horizontal rotating rod is rotatably inserted into the rotating supports, a connecting through slot is formed on one side upper end of the back-shaped guide frame close to the rotating supports, the first gear is rotatably inserted into the connecting through slot, a T-shaped sliding plate is fixedly connected with one side lower end of the adjusting sliding plate away from the first rack, a connecting sliding groove used in cooperation with the T-shaped sliding plate is formed in the back-shaped guide frame, the T-shaped sliding plate is slidably inserted into the connecting sliding groove, and the camera is fixedly connected with the T-shaped sliding plate.

[0010] Preferably, the measuring mechanism comprises a mounting outer frame, the mounting outer frame is fixedly connected with the bottom end of the T-shaped sliding plate, a rotary air cylinder is fixedly installed on the top end of the mounting outer frame, the output end of the rotary air cylinder is rotatably penetrated through the mounting outer frame and fixedly sleeved with a second gear on the outer side thereof, the outer side of the second gear is engaged with a second rack and a third rack, the second rack and the third rack are slidably connected with the mounting outer frame, the end of the second rack away from the mounting outer frame is fixedly connected with a first L-shaped rod, and the end of the third rack away from the mounting outer frame is fixedly provided with a second L-shaped rod used in cooperation with the first L-shaped rod.

[0011] Preferably, the stabilizing mechanism includes two drive screws, which are rotatably connected to the transfer base plate. A bevel gear is fixedly sleeved on the top of each drive screw, and symmetrically arranged side gears are fixedly sleeved on the transverse rotating rod. The side gears mesh with the bevel gears. Lifting horizontal plates are threaded onto both drive screws. Both ends of the lifting horizontal plates are rotatably connected to drive rotating plates, and the bottom end of the drive rotating plates is rotatably connected to a T-shaped moving block. The T-shaped moving block is slidably connected to the transfer base plate, and a third brake wheel is fixedly installed at the bottom end of the T-shaped moving block. A guide sleeve is fixedly installed on one T-shaped moving block, and a third guide rod that cooperates with the guide sleeve is fixedly installed on the other T-shaped moving block. A second guide hole is opened through the transfer base plate, and the guide sleeve is slidably inserted into the second guide hole. The third guide rod is slidably inserted into the guide sleeve.

[0012] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0013] 1. By adjusting the mechanism, the height of the measuring mechanism, camera, and environmental data collector can be adjusted quickly and easily, thus facilitating the collection of tree growth information at different heights;

[0014] 2. The measuring mechanism allows for convenient and quick measurement of the trunk diameter of trees, thus facilitating user operation.

[0015] 3. By setting up and using a stabilizing mechanism, the distance between the two third brake wheels can be gradually increased as the measurement height increases when measuring tree-related data, thereby effectively improving the stability of the data acquisition device and ensuring the safe conduct of data acquisition operations. Attached Figure Description

[0016] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0017] Figure 1 This is a schematic diagram of the structure of the present invention.

[0018] Figure 2 This is a schematic diagram of the installation of the measuring mechanism in this invention.

[0019] Figure 3 For the present invention Figure 2 Enlarged schematic diagram of the structure at point A in the middle.

[0020] Figure 4 For the present invention Figure 2 Enlarged schematic diagram of the structure at point B.

[0021] Figure 5 The installation schematic diagram of the adjusting mechanism in the application.

[0022] Figure 6 The installation schematic diagram of the adjusting mechanism in the application. Figure 5

[0023] Figure 7 The installation schematic diagram of the adjusting mechanism in the application. Figure 5

[0024] Figure 8 The installation schematic diagram of the adjusting mechanism in the application. Figure 5

[0025] Figure: 1, transfer mechanism; 11, transfer bottom plate; 12, first brake wheel; 13, bidirectional electric push rod; 14, transfer push plate; 15, transfer side plate; 16, second brake wheel; 17, first guide rod; 18, first guide hole; 19, Z-shaped push rod; 110, anti-skid sheath; 111, second guide hole; 2, adjusting mechanism; 21, back-shaped guide frame; 22, adjusting slide plate; 23, installation groove; 24, first rack; 25, servo motor; 26, transverse rotating rod; 27, first gear; 28, T-shaped slide plate; 29, connecting slide groove; 210, side-attached horizontal rod; 211, side-attached support; 212, rotating support; 213, connecting through groove; 3, measuring mechanism; 31, installation outer frame; 32, rotary air cylinder; 33, second gear; 34, second rack; 35, third rack; 36, first L-shaped rod; 37, second L-shaped rod; 4, camera; 5, environmental data collector; 6, stabilizing mechanism; 61, driving screw rod; 62, bevel gear; 63, side gear; 64, lifting horizontal plate; 65, driving rotating plate; 66, T-shaped moving block; 67, third brake wheel; 68, guide sleeve; 69, third guide rod. DETAILED DESCRIPTION

[0026] The technical solutions in the embodiments of the application will be clearly and completely described below with reference to the drawings in the embodiments of the application. Obviously, the described embodiments are only part of the embodiments of the application, rather than all the embodiments of the application. Based on the embodiments in the application, all other embodiments obtained by a person of ordinary skill in the art without creative work fall within the protection scope of the application.

[0027] Embodiment one: as Figures 1-8 ​​​As shown, the present application provides a tree living growth state analysis system, comprising a collection device, a transmission device, a tree growth state automatic analysis device, the collection device collects the image, the trunk diameter and the environmental information of the target tree; the transmission device transmits the collected information to the tree growth state automatic analysis device; the tree growth state automatic analysis device analyzes according to the collected information and obtains the living growth state of the tree.

[0028] By adopting the above technical scheme, the transmission device and the tree growth state automatic analysis device can automatically transmit the collected information and automatically analyze the collected information, which are all prior art and will not be described in detail here.

[0029] The collection device comprises a transfer mechanism 1, and the transmission device is fixedly installed on the transfer mechanism 1. The top end of the transfer mechanism 1 is fixedly installed with an adjusting mechanism 2. The side, away from the transmission device, of the adjusting mechanism 2 is fixedly connected with a measuring mechanism 3 at the lower end. A camera 4 and an environmental data collector 5 are fixedly installed on the adjusting mechanism 2 and used in cooperation with the measuring mechanism 3. The transfer mechanism 1 is provided with a stabilizing mechanism 6 used in cooperation with the adjusting mechanism 2.

[0030] By adopting the above technical scheme, the environmental data collector 5 can collect the temperature, humidity and other data of the surrounding environment, which is prior art and will not be described in detail here.

[0031] The transfer mechanism 1 comprises a transfer bottom plate 11. The transmission device is fixedly installed on the transfer bottom plate 11. The side, away from the bottom end, of the transfer bottom plate 11 is fixedly installed with symmetrically arranged first brake wheels 12. The other side, away from the bottom end, of the transfer bottom plate 11 is fixedly installed with a bidirectional electric push rod 13. The ends of the output ends of the bidirectional electric push rod 13 are both fixedly connected with transfer push plates 14. The top end of each transfer push plate 14 is fixedly installed with a transfer side plate 15. The transfer side plate 15 is slidably connected with the transfer bottom plate 11. The end, away from the transfer bottom plate 11, of the transfer side plate 15 is fixedly installed with second brake wheels 16 used in cooperation with the first brake wheels 12. The end, close to the transfer bottom plate 11, of the transfer side plate 15 is fixedly installed with two first guide rods 17. The end, away from the first brake wheels 12, of the transfer bottom plate 11 is provided with symmetrically arranged first guide holes 18. The first guide rods 17 are slidably inserted into the first guide holes 18. The end, away from the transfer side plate 15, of the transfer bottom plate 11 is fixedly installed with symmetrically distributed Z-shaped push rods 19. The end, away from the transfer bottom plate 11, of each Z-shaped push rod 19 is fixedly sleeved with an anti-skid sheath 110. The anti-skid sheath 110 can increase friction and facilitate operation.

[0032] By adopting the above technical scheme, when in use, the user can push the Z-shaped push rod 19, so as to drive the moving bottom plate 11 and the moving side plate 15 to move in cooperation with the use of the first brake wheel 12 and the second brake wheel 16, and then drive the collection device to move. When the collection device moves to the tree to be analyzed, the two-way electric push rod 13 can be opened. At this time, the two-way electric push rod 13 will push the two moving push plates 14 to move backward, so as to drive the two moving side plates 15 to move backward, until the distance between the two moving side plates 15 matches the tree to be analyzed, the two-way electric push rod 13 is closed, and then the Z-shaped push rod 19 can be continuously pushed until the tree to be analyzed is moved between the two moving side plates 15.

[0033] The adjusting mechanism 2 comprises a back-shaped guide frame 21 fixedly connected with the moving bottom plate 11, a adjusting sliding plate 22 slidingly inserted in the inner cavity of the back-shaped guide frame 21, a top end of the adjusting sliding plate 22 fixedly connected with the environmental data collector 5, an installation groove 23 formed in the adjusting sliding plate 22, a first rack 24 fixedly inserted in the installation groove 23, a servo motor 25 fixedly installed on one side of the upper end of the back-shaped guide frame 21 close to the first rack 24, a horizontal rotating rod 26 fixedly connected to the output end of the servo motor 25, the horizontal rotating rod 26 rotationally connected with the back-shaped guide frame 21, a first gear 27 fixedly sleeved on the horizontal rotating rod 26, the first gear 27 movably penetrating through the back-shaped guide frame 21 and meshing with the first rack 24, symmetrically distributed rotating supports 212 fixedly installed on one side of the upper end of the back-shaped guide frame 21, the horizontal rotating rod 26 rotationally inserted in the rotating supports 212, the rotating supports 212 arranged to provide protection for the stable rotation of the horizontal rotating rod 26, a connecting through slot 213 penetratingly formed on one side of the upper end of the back-shaped guide frame 21 close to the rotating supports 212, the first gear 27 rotationally inserted in the connecting through slot 213, a T-shaped sliding plate 28 fixedly connected to one side of the lower end of the adjusting sliding plate 22 away from the first rack 24, and a connecting sliding groove 29 penetratingly formed in the back-shaped guide frame 21 and used in cooperation with the T-shaped sliding plate 28, the T-shaped sliding plate 28 slidingly inserted in the connecting sliding groove 29, and the camera 4 fixedly connected with the T-shaped sliding plate 28.

[0034] By adopting the above technical scheme, when in use, the servo motor 25 can be turned on. At this time, the servo motor 25 will drive the horizontal rotating rod 26 to rotate, so as to drive the first gear 27 and the side gear 63 to rotate, and then drive the first rack 24 to move upward, further drive the adjusting sliding plate 22 to move upward, and at the same time drive the T-shaped sliding plate 28 and the environmental data collector 5 to move upward, so as to drive the measuring mechanism 3 and the camera 4 to move upward, until the measuring mechanism 3 is moved to the appropriate height, the servo motor 25 is turned off.

[0035] The measuring mechanism 3 comprises a mounting frame 31 fixedly connected with the bottom end of the T-shaped slide plate 28, and a rotary cylinder 32 fixedly installed at the top end of the mounting frame 31, the output end of the rotary cylinder 32 is rotatably penetrated through the mounting frame 31 and fixedly sleeved with a second gear 33 outside the mounting frame 31, the outside of the second gear 33 is meshingly connected with a second rack 34 and a third rack 35, and the second rack 34 and the third rack 35 are slidingly connected with the mounting frame 31, one end of the second rack 34 away from the mounting frame 31 is fixedly connected with a first L-shaped rod 36, and one end of the third rack 35 away from the mounting frame 31 is fixedly installed with a second L-shaped rod 37 used in cooperation with the first L-shaped rod 36.

[0036] By adopting the above technical scheme, when in use, the rotary cylinder 32 drives the second gear 33 to rotate, so as to drive the second rack 34 and the third rack 35 to move, and then drive the first L-shaped rod 36 and the second L-shaped rod 37 to move towards each other until the first L-shaped rod 36 and the second L-shaped rod 37 are attached to the outer wall of the tree to be analyzed, at this time, the user can record the diameter of the trunk of the tree at the existing height and transmit the data.

[0037] The stabilizing mechanism 6 comprises two driving screws 61 rotatably connected with the transfer base plate 11, the top end of the driving screw 61 is fixedly sleeved with a bevel gear 62, and the lateral rotating rod 26 is fixedly sleeved with symmetrically arranged side gears 63, the side gears 63 are meshed with the bevel gears 62, and the two driving screws 61 are threadedly sleeved with a lifting cross plate 64, both ends of the lifting cross plate 64 are rotatably connected with driving turn plates 65, the bottom end of the driving turn plate 65 is rotatably connected with a T-shaped moving block 66, the T-shaped moving block 66 is slidingly connected with the transfer base plate 11, the bottom end of the T-shaped moving block 66 is fixedly installed with a third brake wheel 67, one T-shaped moving block 66 is fixedly installed with a guide sleeve 68, the other T-shaped moving block 66 is fixedly installed with a third guide rod 69 used in cooperation with the guide sleeve 68, the transfer base plate 11 is penetrated with a second guide hole 111, the guide sleeve 68 is slidingly inserted into the second guide hole 111, and the third guide rod 69 is slidingly inserted into the guide sleeve 68, through the cooperation of the guide sleeve 68 and the third guide rod 69, the movement of the two T-shaped moving blocks 66 is limited and guided.

[0038] By adopting the above technical scheme, when the side gears 63 rotate, the corresponding bevel gears 62 are driven to rotate, so as to drive the corresponding driving screws 61 to rotate, and then drive the lifting cross plate 64 to move downwards, and when the lifting cross plate 64 moves downwards, the corresponding driving turn plates 65 are driven to move downwards, so as to make the driving turn plates 65 push the corresponding T-shaped moving blocks 66 to move, and then make the two T-shaped moving blocks 66 move away from each other, and further drive the two third brake wheels 67 to move away from each other.

[0039] Embodiment two: as shown, the top end of the back-shaped guide frame 21 is fixedly installed with two side-attached horizontal rods 210, and the distal end of the side-attached horizontal rod 210 is fixedly connected with a side-attached support 211, and the servo motor 25 is fixedly inserted into the side-attached support 211. Figure 6

[0040] By adopting the above technical scheme, the cooperation of the side-attached horizontal rod 210 and the side-attached support 211 effectively improves the installation stability of the servo motor 25.

[0041] Working principle: in use, the user can push the Z-shaped push rod 19, so as to drive the moving bottom plate 11 and the moving side plate 15 to move in cooperation with the use of the first brake wheel 12 and the second brake wheel 16, thereby driving the collection device to move, and when the collection device moves to the tree to be analyzed, the bidirectional electric push rod 13 can be opened, at this time the bidirectional electric push rod 13 will push the two moving push plates 14 to move backward, so as to drive the two moving side plates 15 to move backward, until the distance between the two moving side plates 15 matches the tree to be analyzed, then the bidirectional electric push rod 13 is closed, and then the Z-shaped push rod 19 can be continuously pushed until the tree to be analyzed is moved between the two moving side plates 15;

[0042] Then the user can open the camera 4, the environmental data collector 5 and the rotary air cylinder 32, at this time the camera 4 and the environmental data collector 5 can automatically collect the image of the tree and the growth environment information of the tree and transmit them through the transmission device, at the same time, the rotary air cylinder 32 drives the second gear 33 to rotate, thereby driving the second rack 34 and the third rack 35 to move, and further driving the first L-shaped rod 36 and the second L-shaped rod 37 to move towards each other, until the first L-shaped rod 36 and the second L-shaped rod 37 are in close contact with the outer wall of the tree to be analyzed, at this time the user can record the diameter of the trunk of the tree at the existing height and transmit the data, then the tree growth state automatic analysis device analyzes the collected information and obtains the living growth state of the tree, and then the first L-shaped rod 36 and the second L-shaped rod 37 can be reset;

[0043] Then the user can open the servo motor 25, at this time the servo motor 25 drives the horizontal rotating rod 26 to rotate, thereby driving the first gear 27 and the side gear 63 to rotate, further driving the first rack 24 to move upwards, and further driving the adjusting sliding plate 22 to move upwards, and at the same time the adjusting sliding plate 22 moves upwards, the T-shaped sliding plate 28 and the environmental data collector 5 are driven to move upwards, thereby driving the measuring mechanism 3 and the camera 4 to move upwards, until the measuring mechanism 3 is moved to the appropriate height, then the servo motor 25 is closed and the subsequent information collection work is carried out according to the above steps;

[0044] ​During this period, the side gear 63 rotates at the same time to drive the corresponding bevel gear 62 to rotate, thereby driving the corresponding drive screw 61 to rotate, and further driving the lifting horizontal plate 64 to move downward, and the lifting horizontal plate 64 moves downward to drive the corresponding drive rotating plate 65 to move downward, thereby enabling the drive rotating plate 65 to push the corresponding T-shaped moving block 66 to move, and further enabling the two T-shaped moving blocks 66 to move in the opposite direction, and further enabling the two third brake wheels 67 to move in the opposite direction.

[0045] Obviously, various modifications and changes can be made to the present application by those skilled in the art without departing from the spirit and scope of the present application. Thus, it is intended that the present application cover the modifications and changes as long as they come within the scope of the appended claims and their equivalents.

Claims

1. A tree living body growth state analysis system comprising a collection device, a transmission device, and a tree growth state automatic analysis device, characterized in that: The collection device collects the image, the trunk diameter and the environmental information of the target tree; the transmission device transmits the collected information to the automatic analysis device of the tree growth state; the automatic analysis device of the tree growth state analyzes the collected information and obtains the living growth state of the tree; The collection device includes a transfer mechanism (1), and the transmission device is fixedly installed on the transfer mechanism (1); a adjusting mechanism (2) is fixedly installed at the top end of the transfer mechanism (1); a measuring mechanism (3) is fixedly connected to the side, away from the transmission device, of the lower end of the adjusting mechanism (2); a camera (4) and an environmental data collector (5) are fixedly installed on the adjusting mechanism (2) and used in cooperation with the measuring mechanism (3); and a stabilizing mechanism (6) is arranged on the transfer mechanism (1) and used in cooperation with the adjusting mechanism (2). The adjusting mechanism (2) includes a back-shaped guide frame (21) which is fixedly connected with the transfer bottom plate (11); a adjusting sliding plate (22) is slidably inserted into the inner cavity of the back-shaped guide frame (21); the top end of the adjusting sliding plate (22) is fixedly connected with the environmental data collector (5); an installation groove (23) is formed in the adjusting sliding plate (22); a first rack (24) is fixedly inserted into the installation groove (23); a servo motor (25) is fixedly installed on the side, close to the first rack (24), of the upper end of the back-shaped guide frame (21); the output end of the servo motor (25) is fixedly connected with a horizontal rotating rod (26); the horizontal rotating rod (26) is rotatably connected with the back-shaped guide frame (21); a first gear (27) is fixedly sleeved on the horizontal rotating rod (26); the first gear (27) is movably penetrated through the back-shaped guide frame (21) and engaged with the first rack (24); a T-shaped sliding plate (28) is fixedly connected to the side, away from the first rack (24), of the lower end of the adjusting sliding plate (22); a connecting sliding groove (29) is formed in the back-shaped guide frame (21) and used in cooperation with the T-shaped sliding plate (28); the T-shaped sliding plate (28) is slidably inserted into the connecting sliding groove (29); and the camera (4) is fixedly connected with the T-shaped sliding plate (28). The stabilizing mechanism (6) includes two driving screws (61) which are rotatably connected with the transfer bottom plate (11); a conical gear (62) is fixedly sleeved on the top end of each driving screw (61); symmetrically arranged side gears (63) are fixedly sleeved on the horizontal rotating rod (26); the side gears (63) are engaged with the conical gears (62); a lifting horizontal plate (64) is threadedly sleeved on the two driving screws (61); driving rotating plates (65) are rotatably connected to the two ends of the lifting horizontal plate (64); T-shaped moving blocks (66) are rotatably connected to the bottom ends of the driving rotating plates (65); the T-shaped moving blocks (66) are slidably connected with the transfer bottom plate (11); and third brake wheels (67) are fixedly installed on the bottom ends of the T-shaped moving blocks (66).

2. The tree living body growth state analysis system according to claim 1, wherein The transfer mechanism (1) includes a transfer bottom plate (11), one side bottom end of the transfer bottom plate (11) is fixedly installed with symmetrically arranged first brake wheels (12), and the other side bottom end of the transfer bottom plate (11) is fixedly installed with a bidirectional electric push rod (13), the output ends of the two sides of the bidirectional electric push rod (13) are fixedly connected with transfer push plates (14), and the top end of the transfer push plate (14) is fixedly installed with a transfer side plate (15), the transfer side plate (15) is slidably connected with the transfer bottom plate (11), and the end of the transfer side plate (15) away from the transfer bottom plate (11) is fixedly installed with second brake wheels (16) used in cooperation with the first brake wheels (12), the end of the transfer side plate (15) close to the transfer bottom plate (11) is fixedly installed with two first guide rods (17), and the end of the transfer bottom plate (11) away from the first brake wheels (12) is provided with symmetrically arranged first guide holes (18), and the first guide rods (17) are slidably inserted into the first guide holes (18).

3. The tree living body growth state analysis system according to claim 2, wherein The end of the transfer bottom plate (11) away from the transfer side plate (15) is fixedly installed with symmetrically distributed Z-shaped push rods (19), and the end of the Z-shaped push rod (19) away from the transfer bottom plate (11) is fixedly sleeved with an anti-skid sheath (110).

4. The tree living body growth state analysis system according to claim 1, wherein The top end of the back-shaped guide frame (21) is fixedly installed with two side-joined horizontal rods (210), and the ends of the side-joined horizontal rods (210) are fixedly connected with side-joined supports (211), and the servo motor (25) is fixedly inserted into the side-joined support (211).

5. The tree living body growth state analysis system according to claim 1, wherein The side end of the back-shaped guide frame (21) is fixedly installed with symmetrically distributed rotating supports (212), and the horizontal rotating rod (26) is rotatably inserted into the rotating support (212), and the side end of the back-shaped guide frame (21) close to the rotating support (212) is provided with a connecting through groove (213), and the first gear (27) is rotatably inserted into the connecting through groove (213).

6. The tree living body growth state analysis system according to claim 1, wherein The measuring mechanism (3) includes a mounting outer frame (31), the mounting outer frame (31) is fixedly connected with the bottom end of the T-shaped sliding plate (28), and the top end of the mounting outer frame (31) is fixedly installed with a rotary air cylinder (32), the output end of the rotary air cylinder (32) is rotatably penetrated through the mounting outer frame (31) and fixedly sleeved with a second gear (33) outside the mounting outer frame (31), the outer side of the second gear (33) is meshingly connected with a second rack (34) and a third rack (35), and the second rack (34) and the third rack (35) are slidably connected with the mounting outer frame (31), the end of the second rack (34) away from the mounting outer frame (31) is fixedly connected with a first L-shaped rod (36), and the end of the third rack (35) away from the mounting outer frame (31) is fixedly installed with a second L-shaped rod (37) used in cooperation with the first L-shaped rod (36).

7. The tree living body growth state analysis system according to claim 1, wherein One of the T-shaped moving blocks (66) is fixedly provided with a guide sleeve (68), and the other T-shaped moving block (66) is fixedly provided with a third guide rod (69) matched with the guide sleeve (68). The transfer base plate (11) is provided with a second guide hole (111) penetratingly formed therein. The guide sleeve (68) is slidingly inserted into the second guide hole (111), and the third guide rod (69) is slidingly inserted into the guide sleeve (68).

Citation Information

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