A grassland ecological restoration management system

CN116205609BActive Publication Date: 2026-08-21INSTITUTE OF GRASSLAND RESEARCH OF CAAS
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Patent Information

Application Number
CN202310373197.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-04-10
Publication Date
2026-08-21
Estimated Expiration
2043-04-10

AI Technical Summary

Technical Problem

[0003]在管理系统使用过程中,由于草原面积较大,常有大风等天气伴随,导致平台需要经常进行维护检修,以保证平台在使用时的稳定性,但是在维护过程中,如果零部件没有安装到平台原来的位置,造成平台与零部件之间出现间隙,进而导致平台在对草原修复数据收集过程中,大风天气会将细小的沙子带到平台内部,平台的正常运作造成影响,使得平台的使用稳定性降低

Benefits of technology

[0013] 1. When installing the filter frame, insert the limiting blocks B on both sides of the filter frame into the mounting groove of the mounting shell. The limiting blocks B will contact one end of the transmission block A. The transmission block A will drive the transmission block B to move, causing the position of the transmission groove inside the transmission block B to change. Since the transmission groove is designed with an inclination, when the position of the transmission groove changes, the transmission column moves along the transmission groove from one end to the other. The transmission column will drive the detection block to move together. The limiting strips on both sides of the battery will not be blocked, which indicates that the filter frame is installed in its original position. There is no gap between the filter frame and the mounting shell, which ensures that the battery can only be installed after the filter frame is installed. This prevents fine sand from entering the management base due to inaccurate filter frame installation and enhances the stability of the management system during maintenance.

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Abstract

The present application provides a kind of grassland ecological restoration management system, it is related to ecological restoration management field, including: management base, the management base is set as square seat structure, and two groups of installation shell are symmetrically fixed on the both sides of management base;Management base inside symmetrically fixed setting has heat dissipation copper base, transmission block A will drive transmission block B to move, so that the transmission groove position inside transmission block B changes, transmission column will drive detection block to move together, the limiting strip of battery two sides will not be blocked, so that guarantee filter frame installation is completed after battery can be installed, prevent the small sand caused by filter frame installation inaccuracy from entering inside management base, if the parts are not installed to the original position of platform, the gap between platform and parts is caused, and then the problem that platform is in the process of grassland restoration data collection, strong wind weather will bring small sand to platform inside, the normal operation of platform is affected.
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Description

Technical Field

[0001] This invention relates to the field of ecological restoration management technology, and in particular to a grassland ecological restoration management system. Background Technology

[0002] Due to the large area of ​​grasslands and the need for a large flow of personnel, in order to meet the province's needs for practical work and information management, and to obtain timely information on the spatial location of grassland ecological restoration sites, forage varieties, ecological restoration projects, construction status, and related construction information, the construction of a grassland ecological restoration monitoring and management system should be accelerated to provide staff with a good management system.

[0003] During the use of the management system, due to the large area of ​​grassland and frequent strong winds, the platform needs to be maintained and inspected frequently to ensure its stability during use. However, if parts are not installed in their original positions during maintenance, gaps may appear between the platform and the parts. As a result, during the collection of grassland restoration data, strong winds may bring fine sand into the platform, affecting its normal operation and reducing its stability. Summary of the Invention

[0004] In view of this, the present invention provides a grassland ecological restoration management system. By inserting the limiting blocks B on both sides of the filter frame into the mounting groove of the mounting shell, the transmission block A will drive the transmission block B to move, causing the position of the transmission groove inside the transmission block B to change. The transmission column will drive the detection block to move together, and the limiting strips on both sides of the battery will not be blocked. This ensures that the battery can only be installed after the filter frame is installed, preventing fine sand from entering the management base due to inaccurate filter frame installation, and enhancing the stability of the management system during maintenance.

[0005] This invention provides a grassland ecological restoration management system with specific objectives and effects, including: a management base, which is a square base structure with two sets of mounting shells symmetrically fixed on both sides; mounting grooves are formed on adjacent sides of the two sets of mounting shells; heat dissipation copper seats are symmetrically fixed inside the management base; filter frames are installed between the mounting shells; the management base also includes: a mounting frame, which is an L-shaped frame structure and fixedly mounted at one end of the management base; a mounting groove is formed between the management base and the mounting frame on adjacent sides, and a limiting groove is formed inside the mounting groove, and a battery is installed inside the mounting groove; a cooling fan is installed in the middle of the other end of the management base; a protective net is installed at the front end of the cooling fan; a limiting block is a square block structure and is slidably mounted inside one end of the mounting frame; a spring is installed between the mounting frame and the limiting block.

[0006] Furthermore, the management base also includes: a connecting block A, which is configured as a T-shaped block and fixedly disposed on one side of the limiting block; two sets of connecting sockets, which are symmetrically installed on one side of the mounting bracket; a heat dissipation groove, which is configured as a bent connection and is configured as two sets, which are symmetrically opened inside the management base; the heat dissipation groove is connected to the cooling fan; a power-conducting block A, which is configured as two sets and symmetrically fixedly disposed in the middle of one side of the management base; and a detection block, which is configured as a U-shaped block and is configured as two sets, which are symmetrically slidably disposed inside one side of the management base.

[0007] Furthermore, the management base also includes: a transmission block A, which is configured as an L-shaped block structure, and two sets of transmission blocks A are configured, and the transmission blocks A are symmetrically slidably disposed inside both sides of the management base; one end of the transmission block A is slidably connected to the mounting groove of one set of mounting shells; a transmission block B, which is configured as a square block structure, and the transmission block B is fixedly disposed on one side of the transmission block A, and a spring is installed between the transmission block B and the management base; and a transmission groove, which is configured as an elliptical groove structure, and the transmission groove is inclinedly opened inside the transmission block B.

[0008] Furthermore, the management base also includes: a transmission column, which is configured as a circular column structure and is fixedly installed at one end of the detection block, and is slidably connected to the transmission groove; an operation panel, which is installed on the top of the management base; the bottom of the operation panel is in contact with the top of the heat dissipation copper base; the operation panel is electrically connected to the connection socket; and the power block A is electrically connected to the operation panel.

[0009] Furthermore, the battery also includes: a limiting strip, which is a long strip structure, and two sets of the limiting strip are symmetrically and integrally arranged on both sides of the battery; a limiting groove, which is a square groove structure and is opened on one side of the battery; the limiting groove matches one end of the limiting block; and a power-conducting block B, which is two sets of the power-conducting block B and is symmetrically installed on one end of the battery.

[0010] Furthermore, the mounting shell is configured as a square shell structure, and an installation space is provided inside the mounting shell; the mounting shell also includes: a limiting block A, which is configured as a square block structure, and a spring is installed between the limiting block A and the installation space of the mounting shell; and a connecting block B, which is configured as a T-shaped block structure, and the connecting block B is fixedly installed on one side of the limiting block A.

[0011] Furthermore, the heat dissipation copper base also includes: heat dissipation contact plates, which are configured in ten groups and are symmetrically fixedly arranged at the bottom of the heat dissipation copper base; heat dissipation contact plates are arranged inside the heat dissipation groove; and heat dissipation strips, which are configured in five groups and are fixedly arranged inside the heat dissipation contact plates.

[0012] Furthermore, the filter frame also includes: a filter screen, which is configured in three groups and is fixedly arranged in a straight line inside the filter frame; a limiting block B, which is configured in two groups and is symmetrically and integrally arranged on both sides of the filter frame; the limiting block B is slidably connected to the mounting groove of the mounting shell. Beneficial effects

[0013] 1. When installing the filter frame, insert the limiting blocks B on both sides of the filter frame into the mounting groove of the mounting shell. The limiting blocks B will contact one end of the transmission block A. The transmission block A will drive the transmission block B to move, causing the position of the transmission groove inside the transmission block B to change. Since the transmission groove is designed with an inclination, when the position of the transmission groove changes, the transmission column moves along the transmission groove from one end to the other. The transmission column will drive the detection block to move together. The limiting strips on both sides of the battery will not be blocked, which indicates that the filter frame is installed in its original position. There is no gap between the filter frame and the mounting shell, which ensures that the battery can only be installed after the filter frame is installed. This prevents fine sand from entering the management base due to inaccurate filter frame installation and enhances the stability of the management system during maintenance.

[0014] 2. During operation, the control panel will transfer the heat generated to the heat sink, which will then transfer the heat to the heat dissipation contact plate and heat dissipation strip. By starting the cooling fan, the air inside the heat sink will be circulated, dissipating the heat from the heat dissipation contact plate and heat dissipation strip, thus ensuring that the control panel can work well with the data acquisition equipment. Attached Figure Description

[0015] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings of the embodiments will be briefly described below.

[0016] The accompanying drawings described below are only related to some embodiments of the invention and are not intended to limit the invention.

[0017] In the attached diagram: Figure 1 This is a schematic diagram of the disassembled structure of the management base of the grassland ecological restoration management system according to an embodiment of the present invention.

[0018] Figure 2This is a schematic diagram of the internal structure of the management base when the battery and filter frame of the grassland ecological restoration management system of this invention are installed on the management base.

[0019] Figure 3 This is a schematic diagram of the disassembled structure of the transmission block A and the detection block in the grassland ecological restoration management system of an embodiment of the present invention.

[0020] Figure 4 This is a schematic diagram of the mounting frame structure of the grassland ecological restoration management system according to an embodiment of the present invention.

[0021] Figure 5 This is a schematic diagram of the battery structure of the grassland ecological restoration management system according to an embodiment of the present invention.

[0022] Figure 6 This is a schematic diagram of the disassembly structure of the installation shell of the grassland ecological restoration management system according to an embodiment of the present invention.

[0023] Figure 7 This is a schematic diagram of the heat dissipation copper base structure of the grassland ecological restoration management system according to an embodiment of the present invention.

[0024] Figure 8 This is a schematic diagram of the disassembled structure of the filter frame of the grassland ecological restoration management system according to an embodiment of the present invention.

[0025] Figure 9 This is a schematic diagram of the overall axonometric three-dimensional structure of the grassland ecological restoration management system according to an embodiment of the present invention.

[0026] List of reference numerals 1. Management base; 101. Mounting bracket; 102. Cooling fan; 103. Protective net; 104. Limiting block; 105. Connecting block A; 106. Connecting socket; 107. Heat dissipation groove; 108. Power-on block A; 109. Detection block; 110. Transmission block A; 111. Transmission block B; 112. Transmission groove; 113. Transmission column; 114. Operation panel; 2. Battery; 201. Limiting strip; 202. Limiting groove; 203. Power-on block B; 3. Mounting shell; 301. Limiting block A; 302. Connecting block B; 4. Heat dissipation copper base; 401. Heat dissipation contact plate; 402. Heat dissipation strip plate; 5. Filter frame; 501. Filter screen; 502. Limiting block B. Detailed Implementation

[0027] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings of specific embodiments of the present invention.

[0028] Example: Please refer to Figures 1 to 9 As shown: This invention provides a grassland ecological restoration management system, comprising: a management base 1, which is a square base structure, and two sets of mounting shells 3 are symmetrically fixed on both sides of the management base 1; mounting grooves are formed on adjacent sides of the two sets of mounting shells 3; heat dissipation copper bases 4 are symmetrically fixed inside the management base 1; filter frames 5 are installed between the mounting shells 3; the management base 1 also includes: a mounting frame 101, which is an L-shaped frame structure and is fixedly installed at one end of the management base 1; a mounting groove is formed between adjacent sides of the management base 1 and the mounting frame 101, and a limiting groove is formed inside the mounting groove, and a battery 2 is installed inside the mounting groove; and a cooling fan 102. 102 is installed at the middle of the other end of the management base 1; 103 is installed at the front end of the cooling fan 102; 104 is a square block structure and is slidably installed inside one end of the mounting bracket 101; a spring is installed between the mounting bracket 101 and the limiting block 104; A105 is a T-shaped block structure and is fixedly installed on one side of the limiting block 104; two sets of connection sockets 106 are installed symmetrically on one side of the mounting bracket 101; and two sets of heat dissipation grooves 107 are connected in a bent shape. Furthermore, the heat dissipation slots 107 are symmetrically arranged inside the management base 1; the heat dissipation slots 107 are connected to the cooling fan 102; the energizing block A108 is configured in two sets and is symmetrically fixed in the middle of one side of the management base 1; the detection block 109 is configured as a U-shaped block structure and is configured in two sets, and is symmetrically slidably arranged inside one side of the management base 1; the transmission block A110 is configured as an L-shaped block structure and is configured in two sets, and is symmetrically slidably arranged inside both sides of the management base 1; one end of the transmission block A110 is connected to the mounting shell 3 of one set. The system includes a sliding connection via a mounting groove; a transmission block B111, which is a square block structure and fixedly mounted on one side of transmission block A110, with a spring installed between transmission block B111 and the management base 1; a transmission groove 112, which is an elliptical groove structure and is inclinedly opened inside transmission block B111; a transmission column 113, which is a circular column structure and fixedly mounted on one end of detection block 109, with a sliding connection between transmission column 113 and transmission groove 112; and an operation panel 114, which is mounted on the top of management base 1, with the bottom of operation panel 114 contacting the top of heat dissipation copper base 4.When installing the filter frame 5, the limiting blocks B502 on both sides of the filter frame 5 are inserted into the mounting grooves of the mounting shell 3. The limiting blocks B502 will contact one end of the transmission block A110, and the transmission block A110 will drive the transmission block B111 to move, causing the position of the transmission groove 112 inside the transmission block B111 to change. Since the transmission groove 112 is designed with an inclination, when the position of the transmission groove 112 changes, the transmission column 113 moves along the transmission groove 112, from one end of the transmission groove 112 to the other end. The transmission column 113 will drive the detection block 109 to move together. The limiting strips 201 on both sides of the battery 2 will not be blocked, which indicates that the filter frame 5 is installed in its original position. There is no gap between the filter frame 5 and the mounting shell 3, thus ensuring that the battery 2 can only be installed after the filter frame 5 is installed. This prevents fine sand from entering the management base 1 due to inaccurate installation of the filter frame 5, and enhances the stability of the management system during maintenance.

[0029] The battery 2 also includes: a limiting strip 201, which is a long strip structure and is provided in two sets, and is symmetrically and integrally arranged on both sides of the battery 2; a limiting groove 202, which is a square groove structure and is opened on one side of the battery 2; the limiting groove 202 matches one end of the limiting block 104; and a power-conducting block B203, which is provided in two sets and is symmetrically installed on one end of the battery 2.

[0030] The mounting shell 3 is a square shell structure with an installation space inside. The mounting shell 3 also includes: a limiting block A301, which is a square block structure and a spring is installed between the limiting block A301 and the installation space of the mounting shell 3; and a connecting block B302, which is a T-shaped block structure and is fixedly installed on one side of the limiting block A301.

[0031] The heat dissipation copper base 4 also includes: heat dissipation contact plates 401, which are arranged in ten groups and are symmetrically fixed at the bottom of the heat dissipation copper base 4; heat dissipation contact plates 401 are disposed inside the heat dissipation groove 107; heat dissipation strips 402, which are arranged in five groups and are fixedly disposed inside the heat dissipation contact plates 401; the operation panel 114 is electrically connected to the connection socket 106; the power block A108 is electrically connected to the operation panel 114; during operation, the operation panel 114 will transfer the heat generated to the heat dissipation copper base 4, and the heat dissipation copper base 4 will transfer the heat to the heat dissipation contact plates 401 and the heat dissipation strips 402 in sequence. Then, by starting the cooling fan 102, the cooling fan 102 will drive the airflow inside the heat dissipation groove 107 to dissipate the heat from the heat dissipation contact plates 401 and the heat dissipation strips 402, thereby ensuring that the operation panel 114 can work well with the equipment for data acquisition.

[0032] The filter frame 5 also includes: a filter screen 501, which is configured in three groups and is fixedly installed inside the filter frame 5 in a straight line; a limiting block B502, which is configured in two groups and is symmetrically and integrally installed on both sides of the filter frame 5; the limiting block B502 is slidably connected to the mounting groove of the mounting shell 3.

[0033] The specific usage and function of this embodiment: In this invention, during use, the operator inserts the connection cable of the data collection device into the connection socket 106, and then operates the operation panel 114 to collect and process grassland restoration data in conjunction with the data collection device. During operation, the operation panel 114 will transfer the generated heat to the heat dissipation copper base 4, which will then transfer the heat to the heat dissipation contact plate 401 and the heat dissipation strip 402 in sequence. By starting the cooling fan 102, the cooling fan 102 will drive the airflow inside the heat dissipation slot 107, dissipating the heat from the heat dissipation contact plate 401 and the heat dissipation strip 402, thereby ensuring that the operation panel 114 can work well with the data collection device.

[0034] After a period of use, a lot of fine sand adheres to the filter screen 501. By pulling the connecting block B302, the connecting block B302 moves the limiting block A301, causing the limiting block A301 to move its rear end. The limiting block A301 will then release the restriction on the limiting block B502, allowing the filter frame 5 to slide. This allows the filter frame 5 to be disassembled and replaced, making the maintenance and repair of the management system simpler and reducing the difficulty of maintenance and repair.

[0035] Then, by replacing battery 2, pulling the connecting block A105 will move the limiting block 104, causing the limiting block 104 to disengage from the limiting groove 202, thus releasing the limiting block 104 from restricting battery 2. Then, battery 2 can be disassembled and replaced.

[0036] When installing the filter frame 5, the limiting blocks B502 on both sides of the filter frame 5 are inserted into the mounting grooves of the mounting shell 3. The limiting blocks B502 will contact one end of the transmission block A110. Before the filter frame 5 is installed into the mounting shell 3, the filter frame 5 drives the transmission block A110 to move into the management base 1 through the limiting blocks B502. At this time, the transmission block A110 will drive the transmission block B111 to move, causing the position of the transmission groove 112 inside the transmission block B111 to change. Since the transmission groove 112 is designed with an inclination, when the position of the transmission groove 112 changes, the transmission column 113 moves along the transmission groove 112. The transmission column 113 moves from one end of the transmission groove 112 to the other end, which in turn moves the detection block 109. One end of the detection block 109 will be flush with the limiting slide groove between the mounting bracket 101 and the management base 1. At this time, when the battery 2 is installed, the limiting strips 201 on both sides of the battery 2 will not be blocked, which indicates that the filter frame 5 is installed in its original position. There is no gap between the filter frame 5 and the mounting shell 3, which ensures that the battery 2 can only be installed after the filter frame 5 is installed. This prevents fine sand from entering the management base 1 due to inaccurate installation of the filter frame 5, and enhances the stability of the management system during maintenance.

Claims

1. A grassland ecological restoration and management system, characterized in that, include: The management base (1) is a square base structure, and two sets of mounting shells (3) are symmetrically fixed on both sides of the management base (1); the two sets of mounting shells (3) are provided with mounting grooves on adjacent sides; a heat dissipation copper seat (4) is symmetrically fixed inside the management base (1); a filter frame (5) is installed between the mounting shells (3); the management base (1) also includes: a mounting frame (101), which is an L-shaped frame structure and is fixedly installed at one end of the management base (1); a mounting groove is provided between the management base (1) and the mounting frame (101) on adjacent sides, and a mounting groove is provided on the inner side of the mounting groove. A limiting slide groove is provided, and a battery (2) is installed inside the mounting groove; a cooling fan (102) is installed in the middle of the other end of the management base (1); a protective net (103) is installed at the front end of the cooling fan (102); a limiting block (104) is set as a square block structure, and the limiting block (104) is slidably set inside one end of the mounting frame (101); a spring is installed between the mounting frame (101) and the limiting block (104); a heat dissipation groove (107) is set as a connected bent shape, and the heat dissipation groove (107) is set as two sets, and the heat dissipation groove ( 107) is symmetrically arranged inside the management base (1); the heat dissipation slot (107) is connected to the heat dissipation fan (102); the detection block (109) is set as a U-shaped block structure, and there are two sets of detection blocks (109), and the detection blocks (109) are symmetrically slidably arranged inside the management base (1) on one side. The transmission block A (110) is set as an L-shaped block structure, and there are two sets of transmission blocks A (110), and the transmission blocks A (110) are symmetrically slidably arranged inside the management base (1) on both sides; one end of the transmission block A (110) is connected to the mounting groove of one of the mounting shells (3). Sliding connection; transmission block B (111), transmission block B (111) is set as a square block structure, and transmission block B (111) is fixedly set on one side of transmission block A (110), and a spring is installed between transmission block B (111) and management base (1); transmission groove (112), transmission groove (112) is set as an elliptical groove structure, and transmission groove (112) is opened in an inclined shape inside transmission block B (111); transmission column (113), transmission column (113) is set as a circular column structure, and transmission column (113) is fixedly set on one end of detection block (109), and transmission column (113) is slidably connected to transmission groove (112).

2. The grassland ecological restoration management system as described in claim 1, characterized in that: The management base (1) further includes: a connecting block A (105), which is configured as a T-shaped block structure and is fixedly disposed on one side of the limiting block (104); a connecting socket (106), which is configured as two sets and is symmetrically installed on one side of the mounting bracket (101); and a power-conducting block A (108), which is configured as two sets and is symmetrically fixedly disposed in the middle of one side of the management base (1).

3. The grassland ecological restoration management system as described in claim 2, characterized in that: The management base (1) also includes: an operation panel (114), which is installed on the top of the management base (1); the bottom of the operation panel (114) is in contact with the top of the heat dissipation copper base (4); the operation panel (114) is electrically connected to the connection socket (106); and the power block A (108) is electrically connected to the operation panel (114).

4. The grassland ecological restoration management system as described in claim 1, characterized in that: The battery (2) further includes: a limiting strip (201), which is a long strip structure and is set in two sets, and the limiting strip (201) is symmetrically and integrally set on both sides of the battery (2); a limiting groove (202), which is a square groove structure and is opened on one side of the battery (2); the limiting groove (202) matches one end of the limiting block (104); and a power-conducting block B (203), which is set in two sets and is symmetrically installed on one end of the battery (2).

5. The grassland ecological restoration management system as described in claim 1, characterized in that: The mounting shell (3) is configured as a square shell structure, and an installation space is provided inside the mounting shell (3); the mounting shell (3) also includes: a limiting block A (301), which is configured as a square block structure, and a spring is installed between the limiting block A (301) and the installation space of the mounting shell (3); a connecting block B (302), which is configured as a T-shaped block structure, and the connecting block B (302) is fixedly installed on one side of the limiting block A (301).

6. The grassland ecological restoration management system as described in claim 1, characterized in that: The heat dissipation copper base (4) further includes: heat dissipation contact plate (401), which is set in ten groups and is fixedly arranged symmetrically at the bottom of the heat dissipation copper base (4); heat dissipation contact plate (401) is arranged inside the heat dissipation groove (107); heat dissipation strip plate (402), which is set in five groups and is fixedly arranged inside the heat dissipation contact plate (401).

7. The grassland ecological restoration management system as described in claim 1, characterized in that: The filter frame (5) further includes: a filter screen (501), which is set in three groups and is fixedly arranged in a straight line inside the filter frame (5); a limiting block B (502), which is set in two groups and is symmetrically and integrally arranged on both sides of the filter frame (5); the limiting block B (502) is slidably connected to the mounting groove of the mounting shell (3).

Citation Information

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