Geological mineral exploration device

By designing a geological mineral exploration device with automatic rotation and lifting functions, the problem of labor-consuming and labor-intensive labor and inability to automatically protect and clean up in the prior art is solved, and a more efficient, convenient and safe exploration process is achieved.

CN222910005UActive Publication Date: 2025-05-27HEILONGJIANG INST OF GEOLOGICAL SCI
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Patent Information

Application Number
CN202421869818.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-05
Publication Date
2025-05-27
Estimated Expiration
2034-08-05

AI Technical Summary

Technical Problem

When drilling and sampling, existing geological and mineral exploration devices require manual force control of the drilling and lifting of the drilling sheet by hand, which is time-consuming and labor-intensive, and cannot automatically protect and clean the drilling sheet, which has safety and cleaning problems.

Method used

A geological mineral exploration device including L-shaped support plate, paper-shaped roof plate, drive motor, linkage assembly, telescopic rotary drive assembly and guard-type thread lift assembly is designed. By driving the linkage assembly of the drive motor, the automatic rotation and lifting of the auger piece is realized, and it will be automatically stored, protected and cleaned after use.

Benefits of technology

It realizes automatic rotation and lifting of auger blades without manual pressure when drilling and sampling, improves the convenience and efficiency of use, and reduces safety and cleaning risks through automatic storage protection and cleaning.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a geological mineral exploration device which comprises an L-shaped supporting plate and four rollers which are installed on the right side of the L-shaped supporting plate in a rectangular rotating mode, the two rollers on the upper portion are located on the right upper portion of the two rollers on the lower portion, and the bottom of the L-shaped supporting plate is fixedly connected with four conical supporting feet in a rectangular mode. The inner wall of the bottom of the L-shaped supporting plate is fixedly connected with two supporting rods, and the top ends of the two supporting rods are fixedly connected with the same concentric-square-shaped top plate. According to the utility model, a series of structures are arranged, so that the spiral drilling sheet can be integrally driven to rotate and lift by a single drive, drilling sampling and moving-out work can be carried out, geological drilling and soil sample upward conveying sampling can be conveniently carried out during geological mineral exploration work, personnel do not need to independently apply downward moving and lifting force, time and labor are saved, the use convenience is improved, and the working efficiency is improved. And the spiral drilling piece can be integrally and automatically stored, protected and cleaned after being used, the risk that the spiral drilling piece is accidentally touched and injured and accidentally hurts people during moving and carrying is reduced, and safety and cleanliness are improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of exploration equipment, in particular to a geological and mineral exploration device. Background Technique

[0002] In the work of geological and mineral exploration, it is generally necessary to use a drilling machine to drill the soil, and then take samples of the soil below the ground for testing to judge the geological and mineral conditions. At present, there are various types of drilling machines, and most of them are inconvenient to carry and use. They require the joint efforts of multiple people to use, which also wastes a lot of labor.

[0003] In order to solve the above problems, the utility model patent publication (announcement) number: CN214149943U discloses a geological and mineral exploration device, including: a stabilizing plate, an orienting cylinder, and nail columns; the stabilizing plate is in a rectangular frame shape, and a cylindrical orienting cylinder is welded at the middle position inside the stabilizing plate frame; a plurality of nail columns are welded at the bottom end of the stabilizing plate, and the plurality of nail columns are arranged in a rectangular shape; a rectangular frame-shaped mounting frame is welded at the rear end of the top of the stabilizing plate, and two rollers are welded on each of the left and right sides at the bottom of the rear end of the mounting frame; a U-shaped handle is welded at the top end of the mounting frame, and a screw rod vertically penetrates through the middle position at the top end of the mounting frame; the screw rod is arranged below the inner side of the handle and is threadedly connected with the top end of the mounting frame; it has the advantages of reasonable structure, good supporting effect, not easy to tilt, good drilling effect, more labor-saving movement, and convenient towing and movement.

[0004] The geological and mineral exploration device disclosed in the above technology is convenient for personnel to pull and tow and move after tilting through four rollers arranged at the lower part on one side, and the drill bits are used to convey soil upward during geological drilling, which is convenient for sampling work in geological and mineral exploration work. However, it still has the following deficiencies: 1. When drilling and sampling, it is necessary for manual labor to apply force through the handle to control the downward movement and lifting of the drill bits, which is time-consuming and laborious, and the lifting work cannot be automatically carried out integrally during drilling and sampling, and the usability is not ideal; 2. It cannot protect and clean the drill bits integrally after use, and there is a risk of accidental collision damage and injury to personnel during movement and carrying, and the safety and cleanliness are not ideal; In view of this, this application proposes a geological and mineral exploration device to solve the above problems. Content of the Utility Model

[0005] The purpose of the utility model is to provide a geological and mineral exploration device to solve the problems raised in the above background technology.

[0006] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: a geological mineral exploration device, comprising an L-shaped support plate and four rollers rotatably installed on the right side of the L-shaped support plate in a rectangular shape, the two upper rollers being located to the upper right of the two lower rollers, the bottom of the L-shaped support plate being rectangular and fixedly connected with four conical feet, the four rollers being provided for rolling support at the bottom when personnel pull the entire device to the right and tilt it, so as to facilitate the personnel to carry out pulling and displacement work;

[0007] The bottom inner wall of the L-shaped support plate is fixedly connected to two support rods, the top ends of the two support rods are fixedly connected to the same circular top plate, the two support rods are slidingly sleeved with the same circular lifting seat, the bottom inner wall of the L-shaped support plate is provided with a circular through hole, a telescopic rotary drive assembly is rotatably installed at the bottom of the circular lifting seat, the outer welding sleeve of the telescopic rotary drive assembly is provided with a spiral drill piece located in the circular through hole, a guard-type threaded lifting assembly threadedly connected to the circular lifting seat is installed between the bottom inner wall of the L-shaped support plate and the bottom of the circular top plate, the top ends of the telescopic rotary drive assembly and the guard-type threaded lifting assembly both extend into the circular top plate and are fixedly connected to the same linkage assembly, a driving motor with an output shaft fixedly connected to the linkage assembly is embedded and fixed on the top inner wall of the circular top plate, the bottom of the circular lifting seat A first telescopic protective rubber sleeve is fixedly connected between the bottom inner wall of the L-shaped support plate, the spiral drill piece is located in the first telescopic protective rubber sleeve, an annular brush is embedded and fixed at the bottom of the L-shaped support plate, and the spiral drill piece is located on the inner and upper sides of the annular brush. The linkage assembly is used to drive the telescopic rotary drive assembly and the protective threaded lifting assembly to rotate synchronously when the drive motor is started, and the protective threaded lifting assembly is used to drive the circular lifting seat to move up and down when rotating. The telescopic rotary drive assembly is used to drive the spiral drill piece to rotate when rotating, and is used to drive the spiral drill piece to move downward as a whole when the circular lifting seat moves downward. The spiral drill piece that moves downward and rotates is used for geological drilling, and geological samples are transported and sampled during geological and mineral exploration. The provided annular brush is used to brush and clean the outer side of the spiral drill piece when it rotates and rises subsequently.

[0008] Preferably, the linkage assembly includes two synchronous wheels arranged in the circular top plate, the two synchronous wheels are transmission-connected with the same synchronous belt, and the top of the synchronous wheel on the left is fixedly connected to the bottom end of the output shaft of the driving motor.

[0009] Preferably, the telescopic rotary drive assembly includes a central shaft rotatably mounted at the bottom of the circular lifting seat, the bottom end of the central shaft extends into the circular through-hole and is arranged in a conical structure, the spiral drill piece is welded and sleeved on the central shaft, the top end of the central shaft is provided with a square slide groove, and a square rotating rod is slidably sleeved in the square slide groove, the top end of the square rotating rod extends into the circular top plate and is fixedly connected to the bottom of the synchronous wheel on the right side, and the circular top plate is rotatably sleeved on the square rotating rod.

[0010] Preferably, the shielding type screw lifting assembly includes a screw rod rotatably installed between the inner wall of the bottom of the L-shaped support plate and the inner wall of the bottom of the rectangular top plate. The rectangular lifting seat is threadedly sleeved on the screw rod. A second telescopic shielding rubber sleeve movably sleeved outside the screw rod is fixedly connected between the bottom of the rectangular lifting seat and the inner wall of the bottom of the L-shaped support plate. The top end of the screw rod extends into the rectangular top plate and is fixedly connected to the bottom of the left synchronous pulley.

[0011] Preferably, a storage battery electrically connected to the driving motor is fixedly installed on the inner wall of the top of the rectangular top plate.

[0012] Preferably, a U-shaped handle is fixedly connected to the right side of the rectangular top plate.

[0013] Preferably, a threaded hole threadedly connected to the screw rod is opened on the left side of the top of the rectangular lifting seat.

[0014] Compared with the prior art, the beneficial effects of the utility model are as follows:

[0015] 1. For this geological and mineral exploration device, through the cooperation of the L-shaped support plate, support rod, rectangular top plate, driving motor, linkage assembly, telescopic rotary driving assembly and shielding type screw lifting assembly, it can realize the rotation and lifting of the spiral drill bits by one drive, and carry out drilling and sampling and removal work, enabling the rotation and downward movement to be carried out integrally, and the rotation and lifting to be carried out integrally, which is convenient for drilling into the geology and taking soil sample for upward transportation during geological and mineral exploration work, without the need for personnel to apply downward and lifting forces separately, saving time and effort and improving the use convenience;

[0016] 2. For this geological and mineral exploration device, through the cooperation of the rectangular lifting seat, spiral drill bits, first telescopic shielding rubber sleeve and annular brush, it can automatically protect and clean the spiral drill bits integrally when driving the spiral drill bits to rise and rotate after use, reducing the risk of accidental collision damage and accidental injury to personnel during movement and carrying, and improving safety and cleanliness.

[0017] Through a series of structures set in the utility model, it is convenient to realize the rotation and lifting of the spiral drill bits by one drive, carry out drilling and sampling and removal work, facilitate drilling into the geology and taking soil sample for upward transportation during geological and mineral exploration work, without the need for personnel to apply downward and lifting forces separately, saving time and effort and improving the use convenience, and it is also convenient to automatically protect and clean the spiral drill bits integrally after use, reducing the risk of accidental collision damage and accidental injury to personnel during movement and carrying, and improving safety and cleanliness. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 is a three-dimensional structural schematic diagram of a geological and mineral exploration device proposed by the utility model;

[0019] Figure 2 isFigure 1 The upward view structural schematic diagram;

[0020] Figure 3 The front view sectional structural schematic diagram of a geological and mineral exploration device proposed by the present utility model;

[0021] Figure 4 is Figure 3 The enlarged structural schematic diagram of part A in

[0022] In the figure: 1. L-shaped support plate; 101. Roller; 2. Support rod; 3. U-shaped top plate; 4. U-shaped handle; 5. U-shaped lifting seat; 6. Central shaft; 7. Spiral drill bit; 8. First telescopic protective rubber sleeve; 9. Square rotating rod; 10. Synchronous pulley; 11. Synchronous belt; 12. Driving motor; 13. Second telescopic protective rubber sleeve; 14. Screw rod; 15. Circular through hole; 16. Annular brush. Specific implementation manners

[0023] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without making creative efforts shall fall within the protection scope of the present utility model.

[0024] As Figures 1 to 4 shown, a geological and mineral exploration device proposed in this embodiment includes an L-shaped support plate 1 and four rollers 101 rotatably installed in a rectangular shape on the right side of the L-shaped support plate 1. The two upper rollers 101 are located in the upper right of the two lower rollers 101. Four conical feet are fixedly connected to the bottom of the L-shaped support plate 1 in a rectangular shape. The four rollers 101 provided are used for rolling support at the bottom when the entire device is pulled to the right and tilted by personnel, so as to facilitate the pulling and displacement work of personnel;

[0025] Two support rods 2 are fixedly connected to the inner bottom wall of the L-shaped support plate 1. The tops of the two support rods 2 are fixedly connected to the same rectangular top plate 3. A U-shaped handle 4 is fixedly connected to the right side of the rectangular top plate 3. A rectangular lifting seat 5 is slidably sleeved on the two support rods 2. Two rectangular guide holes are respectively formed in the top of the rectangular lifting seat 5 and slidably sleeved on the outer sides of the corresponding support rods 2, which has the effect of guiding the vertical sliding of the rectangular lifting seat 5. A circular through hole 15 is formed in the inner bottom wall of the L-shaped support plate 1. A telescopic rotary driving assembly is rotatably installed at the bottom of the rectangular lifting seat 5. A spiral drill blade 7 located in the circular through hole 15 is welded and sleeved on the outer side of the telescopic rotary driving assembly. A shielding threaded lifting assembly threaded with the rectangular lifting seat 5 is installed between the inner bottom wall of the L-shaped support plate 1 and the bottom of the rectangular top plate 3. The tops of the telescopic rotary driving assembly and the shielding threaded lifting assembly both extend into the rectangular top plate 3 and are fixedly connected to the same linkage assembly. A driving motor 12 with an output shaft fixedly connected to the linkage assembly is embedded and fixed on the inner top wall of the rectangular top plate 3. A first telescopic shielding rubber sleeve 8 is fixedly connected between the bottom of the rectangular lifting seat 5 and the inner bottom wall of the L-shaped support plate 1. The spiral drill blade 7 is located inside the first telescopic shielding rubber sleeve 8. An annular brush 16 is embedded and fixed at the bottom of the L-shaped support plate 1. The spiral drill blade 7 is located above the inner side of the annular brush 16. A storage battery electrically connected to the driving motor 12 is fixedly installed on the inner top wall of the rectangular top plate 3, which has the effect of supplying power to the driving motor 12. The linkage assembly is used to drive the telescopic rotary driving assembly and the shielding threaded lifting assembly to rotate synchronously when the driving motor 12 is started. The shielding threaded lifting assembly is used to drive the rectangular lifting seat 5 to move up and down when rotating. The telescopic rotary driving assembly is used to drive the spiral drill blade 7 to rotate when rotating, and is used to integrally drive the spiral drill blade 7 to move down when the rectangular lifting seat 5 moves down. The geological drilling is carried out by using the downwardly moving and rotating spiral drill blade 7, and the geological samples are sampled upward during the geological mineral exploration work. The provided annular brush 16 is used to brush and clean the outer side of the spiral drill blade 7 when it rotates and rises subsequently. The provided first telescopic shielding rubber sleeve 8 is used to surround and shield the spiral drill blade 7 when not in use, reducing the risk of damage caused by accidental collision and impact and accidental scratching of personnel.

[0026] Specifically, the linkage assembly includes two synchronous pulleys 10 arranged in the rectangular top plate 3. The same synchronous belt 11 is drivingly connected to the two synchronous pulleys 10. The top of the synchronous pulley 10 on the left is fixedly connected to the bottom end of the output shaft of the driving motor 12. The provided synchronous pulley 10 and synchronous belt 11 cooperate. The driving motor 12 is used to drive the synchronous pulley 10 on the left to rotate. The synchronous pulley 10 on the left drives the two synchronous pulleys 10 on the right to rotate through the synchronous belt 11, realizing the synchronous rotation of the two synchronous pulleys 10.

[0027] Furthermore, the telescopic rotary drive assembly includes a central shaft 6 rotatably mounted at the bottom of the loop-shaped lifting seat 5. A first circular hole is provided at the bottom of the loop-shaped lifting seat 5, and a first bearing is fixedly sleeved in the first circular hole. The inner ring of the first bearing is fixedly sleeved on the outer side of the central shaft 6, achieving the effect of rotatably mounting the central shaft 6. The bottom end of the central shaft 6 extends into the circular through-hole 15 and is configured as a conical structure. The spiral drill blade 7 is welded and sleeved on the central shaft 6. A square chute is provided at the top end of the central shaft 6, and a square rotating rod 9 is slidably sleeved in the square chute. The top end of the square rotating rod 9 extends into the loop-shaped top plate 3 and is fixedly connected to the bottom of the synchronous pulley 10 on the right side. A circular movable through-hole for the square rotating rod 9 to pass through is provided on the inner wall of the top of the loop-shaped lifting seat 5. The loop-shaped top plate 3 is rotatably sleeved on the square rotating rod 9. A second circular hole is provided at the bottom of the loop-shaped top plate 3, and a second bearing is fixedly sleeved in the circular hole. The inner side of the inner ring of the second bearing is fixedly connected to the outer side of the square rotating rod 9, achieving the effect of rotatably mounting the square rotating rod 9. The cooperation of the central shaft 6, the square chute, and the square rotating rod 9 is set such that when the synchronous pulley 10 on the right side rotates, it can drive the square rotating rod 9 to rotate. The square rotating rod 9 drives the central shaft 6 to rotate through the angular breakage and clamping of the square chute. The rotation of the central shaft 6 is used to drive the spiral drill blade 7 to rotate. When the loop-shaped lifting seat 5 moves downward, it can drive the central shaft 6 to slide downward on the square rotating rod 9, and the central shaft 6 drives the spiral drill blade 7 to move downward. The downwardly moving and rotating spiral drill blade 7 is used to drill into the geology, and the rotating spiral drill blade 7 is used to take samples from geological samples during geological mineral exploration work.

[0028] Furthermore, the shielding type screw lifting assembly includes a screw rod 14 rotatably mounted between the inner wall of the bottom of the L-shaped support plate 1 and the bottom of the loop-shaped top plate 3. A third circular hole is provided on the left side of the bottom of the loop-shaped top plate 3, and third bearings are fixedly connected to both the inner wall of the third circular hole and the inner wall of the bottom of the L-shaped support plate 1. The inner side of the inner ring of the third bearing is fixedly connected to the outer side of the screw rod 14, achieving the effect of rotatably mounting the screw rod 14. The loop-shaped lifting seat 5 is threadedly sleeved on the screw rod 14. A threaded hole threadedly connected to the screw rod 14 is provided on the left side of the top of the loop-shaped lifting seat 5. The threaded connection between the screw rod 14 and the threaded hole is used to conveniently drive the loop-shaped lifting seat 5 to move up and down when the screw rod 14 rotates. A second telescopic shielding rubber sleeve 13 sleeved on the outer side of the screw rod 14 is fixedly connected between the bottom of the loop-shaped lifting seat 5 and the inner wall of the bottom of the L-shaped support plate 1. The top end of the screw rod 14 extends into the loop-shaped top plate 3 and is fixedly connected to the bottom of the synchronous pulley 10 on the left side. The cooperation of the screw rod 14 and the second telescopic shielding rubber sleeve 13 is set such that when the synchronous pulley 10 on the left side rotates, it will drive the screw rod 14 to rotate synchronously. The rotation of the screw rod 14 drives the loop-shaped lifting seat 5 to move up and down for lifting work. The loop-shaped lifting seat 5 compresses or stretches the second telescopic shielding rubber sleeve 13, achieving the effect of driving the loop-shaped lifting seat 5 to move up and down. The second telescopic shielding rubber sleeve 13 can surround and shield the outer side of the screw rod 14 from dust when it rises, improving its long-term operation stability.

[0029] The usage method of this embodiment is as follows: When pulling the entire device to the right to tilt it, the four rollers 101 can be used to actively support it at the bottom, and cooperate with the U-shaped handle 4 to facilitate the personnel to easily drag and move the entire device; after moving to the position where geological exploration and sampling are required during geological and mineral exploration work, turn the device to the left until it is vertical, and then start the driving motor 12 in the forward direction to drive the left synchronous wheel 10 to rotate. The left synchronous wheel 10 drives the two synchronous wheels 10 on the right to rotate through the synchronous belt 11, realizing the synchronous rotation of the two synchronous wheels 10. At this time, the two synchronous wheels 10 drive the screw rod 14 and the square rotating rod 9 to rotate respectively. When the square rotating rod 9 rotates, it drives the central shaft 6 to rotate through the edges and corners of the square sliding groove. The central shaft 6 drives the spiral drill bit 7 to rotate. When the screw rod 14 rotates, it drives the loop-shaped lifting seat 5 to slide downward on the two support rods 2, and compresses the first telescopic protective rubber sleeve 8 and the second telescopic protective rubber sleeve 13. The loop-shaped lifting seat 5 drives the central shaft 6 to slide downward on the square rotating rod 9 through the square sliding groove, and the central shaft 6 drives the spiral drill bit 7 to move downward. At this time, the spiral drill bit 7 is in a state of rotating and automatically moving downward. The rotating and downward-moving spiral drill bit 7 drills into the geology downward, and the spiral drill bit 7 conveys the soil upward to the upper part during drilling. Personnel can directly take away the soil sample at the upper part, achieving the effect of drilling into the geology and transporting the soil sample upward for sampling during geological and mineral exploration work;

[0030] After sampling, start the driving motor 12 in the reverse direction. Similarly, the movement direction is completely opposite to that of starting the driving motor 12 in the forward direction above. At this time, the loop-shaped lifting seat 5 changes to rise upward. At this time, the spiral drill bit 7 changes to a rotating state. The loop-shaped lifting seat 5 drives the spiral drill bit 7 to rise and reset through the central shaft 6, realizing the effect of driving the spiral drill bit 7 to rotate and driving it to move downward and rise after use. There is no need for personnel to apply separate downward and lifting forces, which saves time and effort and improves the convenience of use; in addition, when the loop-shaped lifting seat 5 rises, it also stretches the first telescopic protective rubber sleeve 8 and the second telescopic protective rubber sleeve 13, so that the rising spiral drill bit 7 moves upward and is received into the second telescopic protective rubber sleeve 13, and the first telescopic protective rubber sleeve 8 surrounds and protects the screw rod 14 again. And when the spiral drill bit 7 rotates and rises, it will rub against the inner side of the annular brush 16, realizing the effect of brushing and cleaning the outside of the spiral drill bit 7 to remove soil when rising after use, making it convenient to integrally store and protect the spiral drill bit 7 after use and clean it, reducing the risk of accidental collision damage and accidental injury to personnel during movement and carrying, and improving safety and cleanliness.

[0031] Finally, it should be noted that the above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. A geological mineral exploration device, comprising an L-shaped support plate (1) and four rollers (101) rotatably mounted on the right side of the L-shaped support plate (1) in a rectangular shape, wherein the upper two rollers (101) are located to the upper right of the lower two rollers (101), characterized in that: The bottom of the L-shaped support plate (1) is rectangular and fixedly connected with four conical support feet; Two support rods (2) are fixedly connected to the inner wall of the bottom of the L-shaped support plate (1), the top ends of the two support rods (2) are fixedly connected to the same circular top plate (3), the two support rods (2) are slidably sleeved with the same circular lifting seat (5), a circular through hole (15) is opened on the inner wall of the bottom of the L-shaped support plate (1), a telescopic rotary drive assembly is rotatably installed at the bottom of the circular lifting seat (5), the outer side of the telescopic rotary drive assembly is welded with a spiral drill piece (7) located in the circular through hole (15), a retaining screw threadedly connected to the circular lifting seat (5) is installed between the inner wall of the bottom of the L-shaped support plate (1) and the bottom of the circular top plate (3). The top ends of the thread lifting assembly, the telescopic rotary drive assembly and the protective thread lifting assembly all extend into the inner wall of the circular top plate (3) and are fixedly connected to the same linkage assembly. A driving motor (12) whose output shaft is fixedly connected to the linkage assembly is embedded and fixedly mounted on the inner wall of the top of the circular top plate (3). A first telescopic protective rubber sleeve (8) is fixedly connected between the bottom of the circular lifting seat (5) and the inner wall of the bottom of the L-shaped support plate (1). The spiral drill piece (7) is located in the first telescopic protective rubber sleeve (8). An annular brush (16) is embedded and fixedly mounted on the bottom of the L-shaped support plate (1). The spiral drill piece (7) is located on the inner side and above the annular brush (16).

2. A geological and mineral exploration device according to claim 1, characterized in that: The linkage assembly comprises two synchronous wheels (10) arranged in a circular top plate (3), the two synchronous wheels (10) are transmission-connected with a same synchronous belt (11), and the top of the synchronous wheel (10) on the left is fixedly connected to the bottom end of the output shaft of the driving motor (12).

3. A geological and mineral exploration device according to claim 2, characterized in that: The telescopic rotary drive assembly comprises a central shaft (6) rotatably mounted on the bottom of the circular lifting seat (5), the bottom end of the central shaft (6) extends into the circular through hole (15) and is arranged in a conical structure, the spiral drill piece (7) is welded and sleeved on the central shaft (6), the top end of the central shaft (6) is provided with a square slide groove, and a square rotating rod (9) is slidably sleeved in the square slide groove, the top end of the square rotating rod (9) extends into the circular top plate (3) and is fixedly connected to the bottom of the synchronous wheel (10) on the right side, and the circular top plate (3) is rotatably sleeved on the square rotating rod (9).

4. A geological and mineral exploration device according to claim 2, characterized in that: The protective threaded lifting assembly comprises a screw rod (14) rotatably mounted between the bottom inner wall of the L-shaped support plate (1) and the bottom of the circular top plate (3); the circular lifting seat (5) is threadedly sleeved on the screw rod (14); a second telescopic protective rubber sleeve (13) movably sleeved on the outside of the screw rod (14) is fixedly connected between the bottom of the circular lifting seat (5) and the bottom inner wall of the L-shaped support plate (1); the top end of the screw rod (14) extends into the circular top plate (3) and is fixedly connected to the bottom of the synchronous wheel (10) on the left side.

5. A geological and mineral exploration device according to claim 1, characterized in that: A storage battery electrically connected to the drive motor (12) is fixedly mounted on the top inner wall of the circular top plate (3).

6. A geological and mineral exploration device according to claim 1, characterized in that: A U-shaped handle (4) is fixedly connected to the right side of the circular top plate (3).

7. A geological and mineral exploration device according to claim 4, characterized in that: A threaded hole threadably connected to the screw rod (14) is provided on the left side of the top of the circular lifting seat (5).

Citation Information

Patent Citations

  • Geological mineral exploration device

    CN214149943U