Device for quickly connecting measuring points

By designing a backup battery and solar panel on the total station, the problem of insufficient battery life of the total station was solved, enabling the total station to work continuously in field surveys and improving survey efficiency.

CN223884964UActive Publication Date: 2026-02-06HAINAN JISI SURVEY PLANNING DESIGN CO LTD
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Patent Information

Application Number
CN202520340553.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-28
Publication Date
2026-02-06
Estimated Expiration
2035-02-28

AI Technical Summary

Technical Problem

Existing land surveying equipment, particularly total stations, suffers from small battery capacity and limited endurance, leading to interruptions in surveying work and impacting the surveying progress.

Method used

A device was designed that includes a total station body, a power supply head, a backup power box, and a backup battery. The backup battery is powered by a controller and charged by a solar panel to ensure continuous operation of the total station.

Benefits of technology

The problem of insufficient battery life has been solved, ensuring that the total station can work continuously in the field, thus improving survey efficiency and progress.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a device used for measuring point rapid wiring, which comprises a total station body, an electrifying head is arranged at the bottom of the total station body, a communicating pipe is arranged at the top of the electrifying head and penetrates through the bottom surface of the total station body to be communicated with the power supply end of the total station body, and a plurality of electric wires are arranged in the electrifying head and penetrate through the communicating pipe to be electrically connected with the power supply end of the total station body. The power-on head is detachably connected with a standby power box, symmetrical storage assemblies are arranged on the inner bottom face of the standby power box, square frames used for containing standby batteries are arranged in the storage assemblies, the bottom face of the power-on head is provided with a power-on assembly plate connected with the square frames in a matched mode, and the power-on assembly plate is provided with electrodes electrically connected with the standby batteries. A controller is arranged in the total station body, an electricity control element is arranged between the storage assemblies and connected with the controller, and the controller is connected with the standby battery through the electricity control element. The technical problems that an existing device is small in battery capacity, limited in battery cruising ability and incapable of supporting long-term surveying work, so that the working efficiency is reduced, and the normal surveying progress is affected are solved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to land surveying equipment technical field, concretely relates to a device for measuring point position rapid connection. BACKGROUND

[0002] In land surveying, the rapid connection device for point position usually adopts highly integrated intelligent device to determine and record the position of geological point efficiently and accurately. Taking total station as an example, it has the diversified functions of horizontal angle, vertical angle, distance and height difference measurement, it can quickly combine prism measurement and record multiple point positions, and then the measured point positions are integrated into a connection diagram through the built-in software or external data processing system, so that the rapid connection function of measuring point position is realized. However, since the total station is a portable device, the installed battery capacity is usually small, and the battery endurance is limited. Especially in the field environment far away from the power supply, the battery cannot be used up and cannot be continued, and needs to be replaced or charged regularly, which can easily cause the interruption of surveying work, reduce the work efficiency and affect the normal surveying progress. SUMMARY

[0003] The utility model aims at providing a device for measuring point position rapid connection, which solves the technical problem that the existing device has small battery capacity, limited battery endurance and cannot support long-term surveying work, thereby reducing the work efficiency and affecting the normal surveying progress.

[0004] The technical scheme of the utility model is realized as follows:

[0005] A device for measuring point position rapid connection, comprising a total station body, a power supply head is arranged at the bottom of the total station body, a communication pipe is arranged at the top of the power supply head and penetrates through the bottom surface of the total station body and is in communication with the power supply end of the total station body, a plurality of wires are arranged in the power supply head and penetrate through the communication pipe and are electrically connected with the power supply end of the total station body, a backup battery box is detachably connected with the power supply head, a plurality of symmetric storage assemblies are arranged on the inner bottom surface of the backup battery box, a square box for placing the backup battery is arranged in the storage assembly, a power supply assembly plate is arranged on the bottom surface of the power supply head and is adaptively connected with the square box, and the power supply assembly plate is provided with electrodes which are electrically connected with the backup battery.

[0006] A controller is arranged in the total station body, and an electric control element is arranged between the storage assemblies and is connected with the controller, and the controller is connected with the backup battery through the electric control element.

[0007] Further, the power supply head and the backup battery box are screw-connected.

[0008] Further, the backup battery box is symmetrically provided with through holes, and the through holes are opposite to the middle parts of the storage assemblies.

[0009] Further technical solutions are that the article placing assembly comprises half-round frames, the inner side walls of the half-round frames are connected with the square frame, an empty area is arranged between the two half-round frames, the empty area is used for placing the power control element, and the through hole is opposite to the empty area.

[0010] Further technical solutions are that a plurality of cavities are formed between the half-round frames and the square frame, and heat dissipation blocks are arranged in the cavities.

[0011] Further technical solutions are that a solar panel is hingedly connected to the top of the total station body, and an adjuster is arranged on the side edge, the output end of the solar panel is connected with the adjuster, and the adjuster is used for connecting the backup battery.

[0012] Further technical solutions are that a damping rotating shaft is arranged on the top of the total station body and connected with the solar panel.

[0013] Further technical solutions are that the backup battery comprises a first backup battery and a second backup battery, the square frame is arranged with the first backup battery and the second backup battery respectively, and the first backup battery and the second backup battery are connected with the adjuster.

[0014] Further technical solutions are that a hand holding rod is arranged on the top of the total station body.

[0015] The utility model discloses beneficial effect lies in:

[0016] When the power supply of the total station body is exhausted, the controller sends an instruction to trigger the power control element, the backup battery in the backup power box generates electricity, the electrode of the power supply head and the wire in the communication pipe start the total station body to work again, thereby solving the technical problem that the existing device has small battery capacity, limited battery endurance, cannot support long-term survey work, reduces work efficiency and affects normal survey progress. DRAWINGS

[0017] Figure 1 It is the overall schematic view of the utility model;

[0018] Figure 2 It is the front view of Figure 1

[0019] Figure 3 It is the state one drawing of the power supply head and the backup power box disassembly;

[0020] Figure 4 It is the enlarged view of A in Figure 3

[0021] Figure 5 It is the state two drawing of the power supply head and the backup power box disassembly.

[0022] ​​In the figure, 1, total station body; 2, power head; 3, communication pipe; 4, standby power box; 5, frame; 6, power-on group board; 7, electrode; 8, control element; 9, through hole; 10, semicircular frame; 11, cavity; 12, solar panel; 13, regulator; 14, first standby battery; 15, second standby battery; 16, hand-held rod. DETAILED DESCRIPTION

[0023] In order to better understand the technical content of the present application, the following specific embodiments are provided, and the present application is further described in conjunction with the accompanying drawings.

[0024] Example 1

[0025] Referring to Figures 1 to 5 The utility model provides a device for measuring point position quick connection, including total station body 1, total station body 1 bottom is equipped with power head 2, and power head 2 top is equipped with the communication pipe 3 through total station body 1 bottom surface and total station body 1 power supply end intercommunication, and power head 2 is built in multiple electric wires and passes through communication pipe 3 and total station body 1 power supply end electric connection, and power head 2 detachable connection has standby power box 4, and the inner bottom surface of standby power box 4 is equipped with the symmetric placing assembly of each other, and the placing assembly is equipped with the frame 5 for placing standby battery, and the bottom surface of power head 2 is equipped with the power-on group board 6 of the adaptive connection of frame 5, and power-on group board 6 is equipped with the electrode 7 of the electric connection of standby battery, and total station body 1 is built in controller, and the placing assembly is equipped with the control element 8 of the control element 8 and the controller connection, and the controller is connected with standby battery through control element 8.Power head 2 and standby power box 4 are screw connections.

[0026] It should be noted that the controller is a single-chip microcomputer controller, and the control element 8 is a relay. The controller cooperates with the control element 8 to facilitate the standby battery power-off operation. The power head 2 and the standby power box 4 are both cylindrical, and the diameter of the standby power box 4 is greater than that of the power head 2, so that when the standby power box 4 is connected with the power head 2, it covers the power head 2 and is stably connected. The communication pipe 3 is used to store the electric wires, avoiding the electric wires from affecting the appearance.

[0027] Exemplarily, the outer circumferential surface of the power head 2 is provided with a threaded convex mark, and the inner circumferential surface of the standby power box 4 is provided with a threaded recess mark. After the standby power box 4 is covered on the power head 2, rotating makes the threaded convex mark and the threaded recess mark tightly connected, so that the standby power box 4 and the power head 2 are stably connected, ensuring the stable work of the standby battery. After the standby power box 4 and the power head 2 are stably connected by rotating, the power head 2 contacts the placing assembly and the frame 5, and the top edge of the standby power box 4 is aligned with the power head 2 (for example, Figure 1As shown in the diagram, ensure the backup power box 4 and the power-on head 2 are sealed to prevent water from flowing into the backup power box 4 and affecting the normal operation of the backup battery. When the backup power box 4 and the power-on head 2 are stably connected, the frame 5 is aligned with the power-on assembly plate 6, and the top surface of the backup battery is higher than the height of the frame 5, so that the backup battery can be inserted into the power-on assembly plate 6 and connected to the electrode 7 to provide a stable power supply to the power supply end of the total station body 1, ensuring that the total station body 1 can stably and normally carry out land exploration work.

[0028] Specifically, when the power supply to the total station body 1 is exhausted, the controller sends a command to trigger the power control element 8, which in turn triggers the backup battery built into the backup power box 4 to generate electricity. The electrical energy is then transmitted through the electrode 7 of the power head 2 and the wires in the connecting pipe 3 to restart the total station body 1. This solves the technical problem that the existing devices have small battery capacity and limited battery life, which cannot support long-term surveying work, thereby reducing work efficiency and affecting the normal surveying progress.

[0029] Preferably, the backup power box 4 has symmetrical through holes 9, which are opposite to the middle of the storage assembly. The storage assembly includes a semi-circular frame 10, the inner sidewalls of which are connected to the storage frame. An empty area is provided between two semi-circular frames 10 for placing the control components 8, and the through holes 9 are opposite to the empty area. Heat sinks are provided in the multiple cavities 11 formed between the semi-circular frame 10 and the square frame 5.

[0030] For example, the semicircular frame 10 is as follows Figure 5 As shown, a heat sink is placed in the cavity 11 formed between the semicircular frame 10 and the square frame 5 to dissipate heat from the battery. The dissipated heat is discharged through the through hole 9, which quickly dissipates heat from the backup battery and improves its service life. An empty area is provided between the two semicircular frames 10 to house the power control component 8 for convenient control of the backup battery's power supply. Specifically, this area is used to conveniently control the power supply to the first backup battery 14 and the second backup battery 15.

[0031] Example 2

[0032] See Figure 1 As a further improvement to Embodiment 1, a solar panel 12 is hinged to the top of the total station body 1, and an regulator 13 is provided on the side. The output end of the solar panel 12 is connected to the regulator 13, which is used to connect a backup battery. A damping shaft is provided on the top of the total station body 1 and connected to the solar panel 12. The backup battery includes a first backup battery 14 and a second backup battery 15. The first backup battery 14 and the second backup battery 15 are respectively placed in the frame 5, and both the first backup battery 14 and the second backup battery 15 are connected to the regulator 13. A carrying rod 16 is provided on the top of the total station body 1.

[0033] Need to explain, the damping shaft is the market conventional sales model. Solar panel 12 and regulator 13 are small size. Solar panel 12 uses at least two parallel to improve the absorption rate of sunlight, wherein, through the damping shaft, the solar panel 12 is conveniently adjusted angle, better improve the absorption rate of sunlight.

[0034] Exemplary, total station body 1 top has a convenient carrying hand bar 16, when need to carry, solar panel 12 is turned down, so that solar panel 12 and total station body 1 top surface parallel, convenient for staff to hold hand bar 16 carry. But need total station body 1 work, solar panel 12 is turned over to hand bar 16 direction, exposure solar panel 12 absorption light source, solar panel 12 absorbs light source through regulator 13 adjustment from solar panel 12 to the amount of electricity to the battery, charge first backup battery 14 and second backup battery 15, and through regulator 13 adjustment prolongs the life of first backup battery 14 and second backup battery 15. At the same time, using solar panel 12 to first backup battery 14 and second backup battery 15 cyclic charging, improve the environmental protection effect.

[0035] In addition, when the first backup battery 14 supplies power to the total station body 1, the solar panel 12 charges the second backup battery 15, and when the second backup battery 15 supplies power to the total station body 1, the solar panel 12 charges the first backup battery 14, so that the first backup battery 14 or the second backup battery 15 has surplus power reserved in any case, ensuring that the total station body 1 will not appear suddenly power off and appear work stop situation, resulting in the total station body 1 in the working time stable complete work task. At the same time, charging the first backup battery 14 or the second backup battery 15 in the non-discharge state can delay the performance decay of the battery and reduce damage to a certain extent.

[0036] The above only for the preferred embodiment of the present application, and does not limit the present application, any modification, equivalent replacement, improvement, etc. within the spirit and principles of the present application, should be included in the protection scope of the present application.

Claims

1. A device for measuring point position rapid connection, comprising a total station body, characterized in that: The total station body bottom is equipped with a power head, the top of the power head is equipped with a communication pipe passing through the total station body bottom surface and the total station body power supply end, the power head is internally equipped with multiple wires passing through the communication pipe and electrically connected with the total station body power supply end, the power head is detachably connected with a power supply box, the inner bottom surface of the power supply box is equipped with mutually symmetrical storage assemblies, the storage assemblies are internally equipped with a square box for placing a backup battery, the bottom surface of the power head is equipped with a power supply group plate adaptively connected with the square box, the power supply group plate is equipped with electrodes electrically connected with the backup battery. The total station body is internally equipped with a controller, the storage assemblies are equipped with control elements connected with the controller, and the controller is connected with the backup battery through the control elements.

2. The device for measuring point-to-point rapid connection according to claim 1, characterized in that: The power head and the power supply box are screw-connected.

3. The device for measuring point-to-point rapid connection according to claim 1, characterized in that: The power supply box is symmetrically equipped with through holes, and the through holes are opposite to the middle parts of the storage assemblies.

4. The device for measuring point-to-point rapid connection according to claim 3, characterized in that: The storage assemblies include semicircular frames, the inner side walls of the semicircular frames are connected with the square box, an empty area is arranged between the two semicircular frames, and the empty area is used for placing the control elements, and the through holes are opposite to the empty areas.

5. The device for measuring point-to-point rapid connection according to claim 4, characterized in that: Multiple cavities formed between the semicircular frames and the square box are internally equipped with heat dissipation blocks.

6. The device for measuring point-to-point rapid connection according to claim 1, characterized in that: The top of the total station body is hingedly connected with a solar panel, and the side edge is equipped with an adjuster, the output end of the solar panel is connected with the adjuster, and the adjuster is used for connecting the backup battery.

7. The device for measuring point-to-point rapid connection according to claim 6, characterized in that: The top of the total station body is equipped with a damping rotating shaft connected with the solar panel.

8. The device for measuring point-to-point rapid connection according to claim 6, characterized in that: The backup battery includes a first backup battery and a second backup battery, the square box respectively places the first backup battery and the second backup battery, and the first backup battery and the second backup battery are both connected with the adjuster.

9. The device for measuring point-to-point rapid connection according to claim 1, characterized in that: The top of the total station body is equipped with a hand-held rod.