Geographic information acquisition device for territorial space planning
By combining a telescopic pole, locking ring, adjusting screw, and rotating top plate, the problems of unstable handheld operation and inconvenient adjustment of fixed support frame in geographic information acquisition devices are solved, achieving stable and efficient multi-directional adjustment and portable installation, thus improving the accuracy of geographic information acquisition.
Patent Information
- Application Number
- CN202421813071.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-30
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2034-07-30
AI Technical Summary
Existing geographic information acquisition devices are unstable when operated by hand, leading to acquisition errors. Furthermore, fixed support frames are inconvenient to adjust, install, and use, affecting acquisition efficiency.
It adopts a structure consisting of a telescopic pole, locking ring, adjusting screw, and rotating top plate. Through threaded connection and multi-directional adjustment, it achieves stable fixation and horizontal adjustment of the scanning equipment. Combined with a modular design, it is easy to carry and install.
It enables stable and efficient data acquisition by scanning equipment under multi-directional adjustment and positioning, reduces acquisition errors, and improves the accuracy and portability of geographic information acquisition.
Smart Images

Figure CN223499109U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of geographic information acquisition technology, specifically a geographic information acquisition device for land spatial planning. Background Technology
[0002] Geographic information is the geographical meaning implied and expressed by geographic data. It is identified through data, which is the most significant feature distinguishing it from other types of information and is the locational characteristic of geographic information.
[0003] Currently, geographic information is collected and processed using handheld scanning devices carried to designated locations. However, handheld operation can be unstable, leading to scanning errors. Additionally, the fixed support frame structure makes it difficult to adjust and use after installation, affecting the collection and use of geographic information. Utility Model Content
[0004] The purpose of this utility model is to provide a geographic information acquisition device for land and space planning, in order to solve the problems mentioned in the background art. Currently, when collecting and processing geographic information, a handheld scanning structure is used to carry the device to a designated location and then scan the designated location. This handheld operation is unstable, resulting in acquisition errors. At the same time, the fixed support frame structure makes it inconvenient to adjust and use after installation, which affects the use of geographic information acquisition.
[0005] To achieve the above objectives, this utility model provides the following technical solution:
[0006] A geographic information acquisition device for land spatial planning includes a telescopic pole. A plug is threadedly fixed to the bottom end of the telescopic pole, and a locking ring is engaged with the outer side of the pole. A fixed top plate is horizontally mounted at the top of the telescopic pole, and an adjusting screw is threaded evenly onto the bottom surface of the fixed top plate. A supporting top plate is horizontally mounted on the top surface of the fixed top plate, and a rotating top plate is horizontally connected to the top surface of the supporting top plate. A connecting screw is threaded horizontally to the side of the supporting top plate, and a scanning device is horizontally connected to the top surface of the rotating top plate. A scanning head is mounted at one end of the scanning device. The bottom end of the telescopic pole is open... The device includes a bottom screw hole, a top screw fixedly mounted on the top of the telescopic upright, a set of mating screw holes evenly distributed on the bottom surface of the fixed top plate, a center screw hole on the bottom surface of the fixed top plate, a top retaining ball fixedly mounted on the top of the adjusting screw, a bottom retaining groove symmetrically formed on the bottom surface of the supporting top plate, a top retaining hole formed on the top surface of the supporting top plate, horizontal screw holes formed on the side of the supporting top plate, a bottom retaining block fixedly mounted on the bottom surface of the rotating top plate, a top screw hole formed on the top surface of the rotating top plate, a mounting screw fixedly mounted on the bottom surface of the scanning device, and a transmission port located at the end of the scanning device furthest from the scanning head.
[0007] In a preferred embodiment of this utility model: the telescopic pole adopts a telescopic pole structure, the top of the plug is provided with a screw structure, and the top screw is threadedly fixed to the inner side of the bottom screw hole, and the top of the telescopic pole is connected to the bottom opening end of the middle screw hole.
[0008] In a preferred embodiment of this utility model, there are four adjusting screws, and all four adjusting screws are vertically threaded and connected to the inner side of the mating screw hole. The four adjusting screws are arranged in parallel with each other, and the supporting top plate and the fixed top plate are arranged in parallel with each other in a superimposed manner.
[0009] In a preferred embodiment of this utility model, the bottom surface of the rotating top plate is connected to the top opening end of the top card hole, the top connecting screw is connected to the inner side of the horizontal screw hole in a horizontal through-threaded manner, and the extension end is connected to the side of the bottom card block in a horizontal connection. The scanning device and the scanning head are electrically connected to each other.
[0010] In a preferred embodiment of this utility model: the bottom screw hole is located at the center of the bottom end of the telescopic upright, the top end of the top screw is threadedly fixedly connected to the inner side of the middle screw hole, there are four mating screw holes, and the four mating screw holes are all equidistantly and through-type located on the bottom surface of the fixed top plate near the edge, the middle screw hole is located at the center of the bottom surface of the fixed top plate, the top locking balls are all correspondingly locked to the inner side of the bottom locking groove, and the bottom locking grooves are all equidistantly arranged on the bottom surface of the supporting top plate near the edge.
[0011] In a preferred embodiment of this utility model: the top card hole is opened at the center of the top surface of the supporting top plate, the horizontal screw hole is opened horizontally through, and the extension end extends to the inner side of the top card hole to maintain connection, the top of the bottom card block is fixedly set at the center of the bottom surface of the rotating top plate, and the bottom end of the bottom card block is snapped into the inner side of the top card hole, the mounting screw is threadedly fixedly connected to the top screw hole, and the scanning device and the transmission port are electrically connected to each other.
[0012] Compared with the prior art, the beneficial effects of this utility model are:
[0013] This invention uses a plug-in pin, threadedly fixed to the top of a screw rod inside a bottom screw hole. The plug-in pin is then inserted into and fixed to the soil layer. After the telescopic pole is stretched to a specified length, the locking ring is rotated to create a locking effect. A top screw rod is threadedly fixed to the top of a middle screw hole. The scanning device is then threadedly fixed to the top screw hole via a mounting screw on the bottom surface. Supported by the telescopic pole, the scanning device is fixed at a specified height to meet the needs of scanning the external terrain. When the adjustment screw needs to be rotated, it engages with the threaded screw hole, allowing the top of the device to abut against the supporting plate for leveling. The system allows the top scanning device to be adjusted for horizontal scanning. After rotating the top plate, the bottom locking block rotates to a specified angle inside the top locking hole. Then, the top connecting screw on the side is rotated to fix the extension end horizontally to the outer side of the bottom locking block. The scanning head scans the outside, and the external transmission connector is inserted into the transmission port. The other end connects to the acquisition device, allowing the scanned data to be transmitted to the acquisition device for calculation. The split threaded installation structure makes it compact, easy to carry and install, and the multi-directional adjustment and positioning structure makes the acquisition more stable and efficient. Attached Figure Description
[0014] Other features, objects, and advantages of this invention will become more apparent from the following detailed description of non-limiting embodiments with reference to the accompanying drawings:
[0015] Figure 1 A three-dimensional structural diagram of a geographic information acquisition device for land spatial planning;
[0016] Figure 2 A frontal view of the connection details of a telescopic pole for a geographic information collection device used in land spatial planning;
[0017] Figure 3 A structural schematic diagram showing the connection details of the fixed top plate of a geographic information acquisition device for land spatial planning;
[0018] Figure 4 A structural schematic diagram showing the connection details of the front cross-section of the supporting top plate of a geographic information acquisition device for land spatial planning;
[0019] Figure 5 This is a structural schematic diagram showing the connection details of the rotating top plate of a geographic information acquisition device for land spatial planning.
[0020] In the diagram: 1. Telescopic pole; 2. Connecting pin; 3. Locking ring; 4. Fixed top plate; 5. Adjusting screw; 6. Supporting top plate; 7. Rotating top plate; 8. Top connecting screw; 9. Scanning equipment; 10. Scanning head; 11. Bottom screw hole; 12. Top screw; 13. Mating screw hole; 14. Middle screw hole; 15. Top clamp ball; 16. Bottom clamp groove; 17. Top clamp hole; 18. Horizontal screw hole; 19. Bottom clamp block; 20. Top screw hole; 21. Mounting screw; 22. Transmission port. Detailed Implementation
[0021] Please see Figure 1 In this embodiment of the utility model, a geographic information collection device for land spatial planning includes a telescopic pole 1. A plug pin 2 is threadedly fixed to the bottom end of the telescopic pole 1. A locking ring 3 is snapped onto the outer side of the telescopic pole 1. The telescopic pole 1 adopts a telescopic rod structure. A screw structure is provided at the top of the plug pin 2, and the top screw is threadedly fixed to the inner side of the bottom screw hole 11. The top of the telescopic pole 1 is connected to the bottom opening end of the middle screw hole 14. A fixed top plate 4 is horizontally provided at the top of the telescopic pole 1. Adjusting screws 5 are evenly threadedly connected to the bottom surface of the fixed top plate 4. A supporting top plate 6 is horizontally provided on the top surface of the fixed top plate 4. There are four adjusting screws 5, and all four adjusting screws 5 are vertical. A through-threaded connection is set on the inner side of the mating screw hole 13. Four adjusting screws 5 are arranged in parallel with each other. The supporting top plate 6 and the fixed top plate 4 are arranged in parallel with each other in a superimposed manner. The top surface of the supporting top plate 6 is horizontally connected to the rotating top plate 7. The side of the supporting top plate 6 is horizontally threaded with the top connecting screw 8. The top surface of the rotating top plate 7 is horizontally connected to the scanning device 9. One end of the scanning device 9 is equipped with a scanning head 10. The bottom surface of the rotating top plate 7 is connected to the top opening end of the top card hole 17. The top connecting screw 8 is horizontally threaded through and set on the inner side of the horizontal screw hole 18, and the extended end is horizontally connected to the side of the bottom card block 19. The scanning device 9 and the scanning head 10 are electrically connected to each other.
[0022] Please see Figure 2-5In this embodiment of the utility model, a geographic information collection device for land spatial planning includes a bottom screw hole 11 at the bottom end of a telescopic pole 1, a top screw 12 fixedly installed at the top end of the telescopic pole 1, matching screw holes 13 evenly distributed on the bottom surface of a fixed top plate 4, a center screw hole 14 distributed on the bottom surface of the fixed top plate 4, a top locking ball 15 fixedly installed at the top end of an adjusting screw 5, and a bottom locking groove 16 symmetrically distributed on the bottom surface of a supporting top plate 6. The bottom screw hole 11 is located at the center of the bottom end of the telescopic pole 1, the top end of the top screw 12 is threadedly fixedly connected to the inner side of the center screw hole 14, there are four matching screw holes 13, and all four matching screw holes 13 are equidistantly and through-typely located near the edge of the bottom surface of the fixed top plate 4, the center screw hole 14 is located at the center of the bottom surface of the fixed top plate 4, and the top locking balls 15 are all correspondingly locked to the inner side of the bottom locking groove 16. The scanning device 9 is equidistantly arranged on the bottom surface of the supporting top plate 6 near the edge. The top surface of the supporting top plate 6 has a top locking hole 17, and the side of the supporting top plate 6 has a horizontal screw hole 18. The bottom surface of the rotating top plate 7 is fixedly provided with a bottom locking block 19, and the top surface of the rotating top plate 7 has a top screw hole 20. The bottom surface of the scanning device 9 is fixedly provided with a mounting screw 21. The scanning device 9 has a transmission port 22 at the end away from the scanning head 10. The top locking hole 17 is located at the center of the top surface of the supporting top plate 6. The horizontal screw hole 18 is horizontally through-hole, and its extension end extends to the inner side of the top locking hole 17 to maintain connection. The top of the bottom locking block 19 is fixedly located at the center of the bottom surface of the rotating top plate 7, and the bottom end of the bottom locking block 19 is locked to the inner side of the top locking hole 17. The mounting screw 21 is threadedly fixed to the top screw hole 20. The scanning device 9 and the transmission port 22 are electrically connected to each other.
[0023] The working principle of this utility model is as follows:
[0024] The insertion pin 2 is fixedly connected to the bottom screw hole 11 through the threaded connection of the top screw, and then the insertion pin 2 is inserted into the soil layer and fixed. After the telescopic pole 1 is stretched to the specified length, the locking ring 3 is rotated to form a locking effect. The top screw 12 is fixedly connected to the middle screw hole 14 through the threaded connection, and then the scanning device 9 is fixedly connected to the top screw hole 20 through the threaded connection of the bottom mounting screw 21. With the support of the telescopic pole 1, the scanning device 9 is fixed at the specified height to meet the scanning needs of the external terrain. When it is necessary to rotate the adjusting screw 5, it is connected to the matching... With the screw hole 13 threaded, the top end is connected to the support plate 6 for adjustment of the horizontal state, allowing the scanning device 9 at the top to perform level scanning. After rotating the top plate 7, the bottom locking block 19 on the bottom surface rotates to a specified angle inside the top locking hole 17. Then, the top connecting screw 8 on the side is rotated to fix the extension end horizontally to the outer side of the bottom locking block 19. The scanning head 10 performs a scanning operation on the outside. The external transmission end connector is plugged into the transmission socket 22. After the other end is connected to the acquisition device, the scanned data is transmitted to the acquisition device for calculation.
[0025] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. A geographic information collection device for land spatial planning, comprising a telescopic pole (1), characterized in that, The bottom end of the telescopic pole (1) is threadedly fixed with a plug pin (2), and the outer side of the telescopic pole (1) is snapped with a locking ring (3). The top end of the telescopic pole (1) is horizontally provided with a fixed top plate (4). The bottom surface of the fixed top plate (4) is evenly threaded with an adjusting screw (5). The top surface of the fixed top plate (4) is horizontally provided with a supporting top plate (6). The top surface of the supporting top plate (6) is horizontally connected to a rotating top plate (7). The side of the supporting top plate (6) is horizontally threaded with a top screw (8). The top surface of the rotating top plate (7) is horizontally connected to a scanning device (9). One end of the scanning device (9) is provided with a scanning head (10). The bottom end of the telescopic pole (1) is provided with a bottom screw hole (11). The top end of the telescopic pole (1) is fixedly provided with a bottom screw hole (11). The top screw (12) is provided. The bottom surface of the fixed top plate (4) is evenly provided with mating screw holes (13). The bottom surface of the fixed top plate (4) is provided with a middle screw hole (14). The top end of the adjusting screw (5) is fixedly provided with a top catch ball (15). The bottom surface of the supporting top plate (6) is symmetrically provided with a bottom catch groove (16). The top surface of the supporting top plate (6) is provided with a top catch hole (17). The side of the supporting top plate (6) is horizontally provided with a horizontal screw hole (18). The bottom surface of the rotating top plate (7) is fixedly provided with a bottom catch block (19). The top surface of the rotating top plate (7) is provided with a top screw hole (20). The bottom surface of the scanning device (9) is fixedly provided with an installation screw (21). The scanning device (9) is provided with a transmission port (22) at the end away from the scanning head (10).
2. The geographic information acquisition device for land spatial planning according to claim 1, characterized in that, The telescopic pole (1) adopts a telescopic pole structure. The top of the plug (2) is provided with a screw structure, and the top screw is threadedly fixed to the inner side of the bottom screw hole (11). The top of the telescopic pole (1) is connected to the bottom opening end of the middle screw hole (14).
3. The geographic information acquisition device for land spatial planning according to claim 1, characterized in that, The number of adjusting screws (5) is four, and all four adjusting screws (5) are vertically threaded and connected to the inner side of the mating screw hole (13). The four adjusting screws (5) are arranged in parallel with each other, and the supporting top plate (6) and the fixed top plate (4) are arranged in parallel with each other in a superimposed manner.
4. The geographic information acquisition device for land spatial planning according to claim 1, characterized in that, The bottom surface of the rotating top plate (7) is connected to the top opening end of the top card hole (17), the top connecting screw (8) is connected to the inner side of the horizontal screw hole (18) by a horizontal through thread, and the extension end is connected to the side of the bottom card block (19) by a horizontal connection. The scanning device (9) and the scanning head (10) are electrically connected to each other.
5. A geographic information acquisition device for land spatial planning according to claim 1, characterized in that, The bottom screw hole (11) is located at the center of the bottom end of the telescopic pole (1). The top screw (12) is threaded and fixedly connected to the inner side of the middle screw hole (14). There are four mating screw holes (13), and the four mating screw holes (13) are all equidistantly and through-type on the bottom surface of the fixed top plate (4) near the edge. The middle screw hole (14) is located at the center of the bottom surface of the fixed top plate (4). The top locking ball (15) is correspondingly locked and set on the inner side of the bottom locking groove (16). The bottom locking groove (16) is equidistantly arranged on the bottom surface of the supporting top plate (6) near the edge.
6. The geographic information acquisition device for land spatial planning according to claim 1, characterized in that, The top card hole (17) is opened at the center of the top surface of the supporting top plate (6). The horizontal screw hole (18) is opened horizontally through and the extension end extends to the inner side of the top card hole (17) to maintain connection. The top of the bottom card block (19) is fixedly set at the center of the bottom surface of the rotating top plate (7), and the bottom end of the bottom card block (19) is snapped into the inner side of the top card hole (17). The mounting screw (21) is threadedly fixedly connected to the top screw hole (20). The scanning device (9) and the transmission port (22) are electrically connected to each other.