A drilling device for lithium ore exploration and sampling
By using spiral blades and retaining plates arranged alternately with fixed and movable sheets in the drilling device, the direct slide and push of geotechnical materials is achieved, and the problem of cumbersome separation operation between sampling crimp and sampling cylinder in the prior art is solved, and the drilling efficiency is improved.
Patent Information
- Application Number
- CN202510079883.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-18
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2045-01-18
AI Technical Summary
During the sampling process of existing drilling equipment, the separation of the sampling dragon and the sampling barrel is complicated, resulting in low drilling efficiency.
A drilling device for lithium ore exploration and sampling was designed, using spiral blades arranged alternately with fixed sheets and movable sheets to form a soil falling space through the movement of the movable sheets. The geotechnical material directly slides out of the sampling cylinder, and combines the retaining plate to push the geotechnical into the soil falling space, simplifying the sampling process.
It improves drilling operation efficiency, simplifies the extraction process of geotechnical samples, reduces tedious separation steps, and improves sampling efficiency.
Smart Images

Figure CN119777860B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of geological exploration equipment, and in particular to a drilling device for lithium ore exploration and sampling. Background Art
[0002] Lithium ore refers to naturally occurring lithium resources that can be economically mined. More than 150 types of lithium minerals and lithium-containing ores have been discovered in nature. The main mineral raw materials for producing lithium are spodumene, lepidolite, lepidolite, petalite and ferrolithium mica.
[0003] Before the formal mining of lithium ore, the geological conditions of the mine site must be surveyed first, and drilling equipment with sampling function is required. In the relevant technology, the drilling equipment includes a frame, a drive mechanism, a drill rod and a drill bit. The drive mechanism is used to control the lifting and rotation of the drill rod relative to the frame. The drill bit is located at the end of the drill rod. The drill bit includes a sampling barrel and a sampling auger. The sampling auger is located inside the sampling barrel and the two are coaxial. The sampling auger can rotate relative to the sampling barrel. When the drill bit goes deep into the ground, the underground rock and soil materials enter the sampling barrel. The sampling auger rotates to improve the smoothness of drilling and soil sampling. When the blades of the sampling auger are loaded with a certain amount of rock and soil, the drill rod is lifted until the drill bit is above the ground. During this process, the sampling auger remains relatively stationary relative to the sampling barrel, and the rock and soil materials inside it can remain stable. The sampling auger is then removed from the sampling barrel, and the collected rock and soil can be taken out.
[0004] According to the above operation process, it can be seen that when on the ground, the sampling auger and the sampling barrel must be relatively separated before the rock and soil samples can be taken out, and then the two must be combined to continue drilling. The operation process is relatively cumbersome, resulting in reduced drilling efficiency. Summary of the Invention
[0005] In order to improve the above problems, the present application provides a drilling device for lithium ore exploration and sampling.
[0006] The present application provides a drilling device for lithium ore exploration and sampling, which adopts the following technical solution:
[0007] A drilling device for lithium ore exploration and sampling, comprising a fixed frame, a driving mechanism, an excavation drill rod and a sampling drill bit, the sampling drill bit being located at the end of the excavation drill rod, the sampling drill bit comprising a sampling barrel and a sampling auger, the excavation drill rod comprising a screw-in drill rod and a straight drill rod, the driving mechanism being used to control the rotation and vertical movement of the screw-in drill rod relative to the fixed frame, and to control the vertical movement of the straight drill rod, the sampling auger comprising a center rod and spiral blades located around the center rod, the center rod being coaxially connected to the end of the screw-in drill rod, the sampling barrel being fixedly connected to the end of the straight drill rod, the spiral blades comprising a plurality of fixed plates and a plurality of movable plates, the fixed plates and the movable plates being alternately arranged along the trajectory of the spiral blades, and a soil-falling space for the movable plate to exist being formed between two adjacent fixed plates, the fixed plate and the side wall of the center rod being fixedly connected, and the movable plate and the center rod being relatively movably connected.
[0008] By adopting the above technical solution, the spiral blade can form a soil falling space through the movement of the movable plate after the spiral sampling is completed. The rock and soil materials carried by the spiral blade can directly slide out of the sampling tube through the soil falling space, without the need to remove the sampling auger from the sampling tube, thereby improving operational efficiency.
[0009] Preferably, the movable sheet and the central rod slide relative to each other, and the sliding direction is parallel to the trajectory of the spiral blade.
[0010] By adopting the above technical solution, the movable piece slides relative to the central rod, and then the movable piece slides to a position where it overlaps with the fixed piece, at which time the soil-falling space is opened.
[0011] Preferably, an adjustment space is provided in the center rod, an adjustment rod is coaxially sleeved in the center rod, an adjustment slot hole connected to the adjustment space is provided on the side wall of the center rod, the trajectory of the adjustment slot hole is parallel to the trajectory of the spiral blade, a connecting part is fixedly connected to the movable plate, the connecting part passes through the adjustment slot hole and is fixedly connected to the adjustment rod, the two ends of the adjustment slot hole are respectively a working part and a soil landing part, when the connecting part is located at the working part, the movable plate closes the soil landing space, and when the connecting part is located at the soil landing part, the movable plate is located above the fixed plate.
[0012] By adopting the above technical solution, the adjusting rod rotates spirally relative to the central rod, thereby controlling all movable pieces to rotate spirally synchronously to change their own positions.
[0013] Preferably, an operating slot is provided on the center rod, the trajectory of the operating slot is parallel to the trajectory of the spiral blade, an operating pin is fixedly connected to the adjusting rod, one end of the operating pin is fixedly connected to the side wall of the adjusting rod, and the other end extends from the operating slot, and a limiting member is slidably provided on the center rod, and the limiting member is used to control the change of the fixed state of the operating pin in the operating slot.
[0014] Preferably, the limiting member is a limiting slide rod, the sliding direction of the limiting slide rod is parallel to the axis of the center rod, the height of the working part is lower than the height of the soil-falling part, and when the movable piece is located in the working part, the side wall of the limiting slide rod abuts the side wall of the operating pin, and a limiting cylinder is provided on the rod wall of the center rod for the limiting slide rod to be coaxially inserted.
[0015] By adopting the above technical solution, the operating pin, the adjusting rod and each movable piece are fixed to each other, and their movable states are also kept consistent. The limiting slide rod and the inner wall of the end of the operating slot hole clamp and abut the operating pin in opposite directions, so that the operating pin remains stable in the operating slot hole, that is, each movable piece is located in the working part and remains relatively fixed with the center rod.
[0016] Preferably, a thrust block is fixedly connected to the fixing frame, and the thrust block is used to abut against the side of the operating pin facing away from the limiting slide rod.
[0017] By adopting the above technical solution, after the limit slide rod is pulled out, the thrust block and the operating pin originally abut against the side facing away from the limit slide rod and when the center rod rotates relative to the thrust block, the operating pin is thrust and moves along the operating slot, thereby realizing the spiral rotation control of the adjusting rod.
[0018] Preferably, a retaining plate is slidably provided on the fixed frame, the plate surface of the retaining plate is a vertical plane, the sliding direction is the radial direction of the sampling cylinder, a soil-moving gap for the retaining plate to be inserted is opened on the wall of the sampling cylinder, the height of the retaining plate is smaller than the spiral lead of the spiral blade, and a sealing elastic strip is fixedly connected on the wall of the sampling cylinder and in the soil-moving gap. In a natural state, the sealing elastic strip closes the soil-moving gap.
[0019] By adopting the above technical solution, the retaining plate is extended into the sampling tube. When the sampling auger rotates, the retaining plate moves relative to the sampling auger. The rock and soil on the spiral blade moves due to the relative push of the retaining plate, and it is easier to fall through the soil falling space.
[0020] Preferably, a scraper strip is slidingly provided below the retaining plate, and the sliding direction is vertical. The scraper strip is used to contact the upper surface of the spiral blade. A control component for controlling the sliding of the scraper strip is provided on the retaining plate.
[0021] By adopting the above technical solution, when the retaining plate passes through the soil-moving gap, the scraper strips need to be retracted into the retaining plate. When the retaining plate is completely located in the thread gap of the spiral blade, the scraper strips need to move downward and extend from the lower edge of the retaining plate to contact and abut the movable plate or the fixed plate.
[0022] Preferably, the control component includes a push slide, a force-bearing slide and a return spring, the force-bearing slide and the scraper strip are fixedly connected, the push slide and the force-bearing slide are both slidably connected to the earth retaining plate and the plate surfaces are parallel to each other, the sliding direction of the push slide is parallel to the sliding direction of the earth retaining plate, the sliding direction of the force-bearing slide is vertical, the push slide is provided with a thrust wedge surface, the force-bearing slide is provided with a response wedge surface, the thrust wedge surface abuts the response wedge surface, one end of the return spring is connected to the earth retaining plate, and the other end is connected to the force-bearing slide. In a natural state, the scraper strip is located inside the earth retaining plate, the edge of the push slide extends from the earth retaining plate toward one end of the center rod, and an abutment ball is embedded in the end of the push slide close to the center rod, and the abutment ball is used to abut the side wall of the center rod.
[0023] In summary, this application includes at least one of the following beneficial technical effects:
[0024] 1. Through the arrangement of the fixed piece and the movable piece, the spiral blade can form a soil drop space through the movement of the movable piece after the spiral sampling is completed. The rock and soil material carried by the spiral blade slides directly out of the sampling barrel through the soil drop space, without removing the sampling auger from the sampling barrel, thereby improving the operation efficiency;
[0025] 2. Through the setting of the retaining board, during the process of extracting the sampled rock and soil, the retaining board is extended into the sampling tube, the sampling auger rotates, and the rock and soil on the spiral blades abut against the retaining board. Under the relative propulsion of the retaining board, the rock and soil are more likely to reach the soil landing space, thereby improving the soil landing efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 It is a schematic diagram of the overall structure of the drilling device used for lithium ore exploration and sampling in the embodiment of the present application.
[0027] Figure 2 It is a structural diagram used to reflect the sampling auger in the embodiment of the present application.
[0028] Figure 3 It is a schematic structural diagram for reflecting the control principle of the adjustment lever in the embodiment of the present application.
[0029] Figure 4 It is a structural cross-sectional schematic diagram used to illustrate the working principle of the retaining plate in the embodiment of the present application.
[0030] Explanation of Reference Numerals: 1. Fixing frame; 11. Driving mechanism; 12. Thrust block; 13. Lifting cylinder; 2. Excavation drill rod; 21. Rotary drill rod; 22. Straight drill rod; 3. Sampling drill bit; 31. Sampling tube; 311. Soil-moving gap; 312. Sealing elastic strip; 32. Sampling auger; 321. Center rod; 3211. Adjusting slot; 3212. Working part; 3213. Soil-dropping part; 3214. Operating slot; 322, spiral blade; 3221, movable piece; 3222, connecting part; 3223, fixed piece; 323, adjusting rod; 3231, operating pin; 324, limiting slide; 325, limiting cylinder; 4, earth retaining plate; 41, scraper strip; 42, control assembly; 421, push slide; 422, thrust wedge surface; 423, force slide; 424, response wedge surface; 425, return spring; 426, abutting ball. DETAILED DESCRIPTION
[0031] The following is combined with Figure 1-4 This application is described in further detail.
[0032] The present application discloses a drilling device for lithium ore exploration and sampling, such as Figure 1 As shown, the excavation drill bit 3 includes a fixed frame 1, a drive mechanism 11, an excavation drill rod 2, and a sampling drill bit 3. The fixed frame 1 is fixed to the ground, and the sampling drill bit 3 is located at the lower end of the drill rod. The drive mechanism 11 is used to control the excavation drill rod 2 and the drill bit to drill into the ground below the fixed frame 1 and collect rock and soil samples.
[0033] like Figure 1 and 2 As shown, the sampling drill bit 3 includes a sampling barrel 31 and a sampling auger 32. The excavation drill rod 2 includes a rotating drill rod 21 and a straight drill rod 22. There are two straight drill rods 22, one located on opposite sides of the rotating drill rod 21. The lengths of the three drill rods are parallel and vertical. The sampling auger 32 is located within the sampling barrel 31 and the two are coaxial. The sampling auger 32 includes a center rod 321 and spiral blades 322 located around the center rod 321. The center rod 321 is coaxially connected to the lower end of the rotating drill rod 21. The sampling barrel 31 is fixedly connected to the lower end of the straight drill rod 22. The drive mechanism 11 can control the rotation and vertical movement of the rotating drill rod 21 relative to the fixed frame 1 and control the vertical movement of the straight drill rod 22. As the drill bit drills downward, the sampling auger 32 rotates in the sampling barrel 31, and the spiral blades 322 can carry the rock and soil materials in the sampling barrel 31 while drilling into the rock and soil. Every time a certain depth is drilled, the excavation drill rod 2 is lifted to move the drill bit out of the ground, and the rock and soil materials in the sampling barrel 31 can be discharged and collected.
[0034] like Figure 1 and 2As shown, the spiral blade 322 is spirally wound coaxially around the center rod 321. The spiral blade 322 includes a plurality of fixed plates 3223 and a plurality of movable plates 3221. The fixed plates 3223 and movable plates 3221 are arranged alternately along the trajectory of the spiral blade 322. The fixed plates 3223 are fixedly connected to the side walls of the center rod 321, while the movable plates 3221 are relatively movable relative to the center rod 321. A soil-falling space for the movable plates 3221 is formed between two adjacent fixed plates 3223. As the sampling drill bit 3 rotates downward, the movable plates 3221 are located in the soil-falling space and seal it, forming a complete auger shape for the spiral blade 322. When collecting samples on the ground, the movable plates 3221 will move relative to the center rod 321 to open the soil-falling space, thereby forming a channel space on the spiral blade 322 for rock and soil to fall.
[0035] like Figure 1 and 2 As shown, the center rod 321 is hollow and has an adjustment space therein. An adjustment rod 323 is coaxially sleeved inside the center rod 321. An adjustment slot 3211 connected to the adjustment space is provided on the side wall of the center rod 321. The trajectory of the adjustment slot 3211 is parallel to the spiral trajectory of the spiral blade 322. The number of the adjustment slots 3211 is consistent with the number of the movable plates 3221 and the two correspond one to one. The trajectory of the adjustment slot 3211 is the sliding trajectory of the movable plate 3221 relative to the center rod 321. A single adjustment slot 3211 is located between two adjacent fixed plates 3223. A connecting portion 3222 is fixedly connected to the movable piece 3221. The connecting portion 3222 passes through the adjusting slot 3211 and is fixedly connected to the adjusting rod 323. The two ends of the adjusting slot 3211 are the working portion 3212 and the soil landing portion 3213 respectively. The soil landing portion 3213 is higher than the working portion 3212. When the connecting portion 3222 is located at the working portion 3212, the movable piece 3221 closes the soil landing space. When the connecting portion 3222 is located at the soil landing portion 3213, the movable piece 3221 is located above the fixed piece 3223. In this embodiment, one span of the spiral blade 322 includes two fixed pieces 3223 and two movable pieces 3221; the rotation of the adjusting rod 323 can simultaneously control the synchronous movement of all movable pieces 3221. During the drilling process, the movable piece 3221 is located at the working part 3212. When discharging the sample, the adjusting rod 323 spirally rotates 90° relative to the center rod 321, and the movable piece 3221 moves to the soil landing part 3213. A single movable piece 3221 is located above a fixed piece 3223, that is, the two are stacked on each other, and the soil landing space is given up.
[0036] like Figure 1 、 2As shown in FIG3 , an operating slot 3214 is provided on the center rod 321 above the sampling drill bit 3. The trajectory of the operating slot 3214 is parallel to the trajectory of the spiral blade 322, also forming a spiral shape with a circumferential span of 90°. An operating pin 3231 is fixedly connected to the adjustment rod 323. One end of the operating pin 3231 is fixedly connected to the side wall of the adjustment rod 323, and the other end extends from the operating slot 3214. When the operating pin 3231 is located at the lower end of the operating slot 3214, the movable piece 3221 is located at the working portion 3212. A limit member is slidably provided on the center rod 321, and the limit member is used to control the change of the fixed state of the operating pin 3231 within the operating slot 3214. The limiting part is a limiting slide 324, and the sliding direction of the limiting slide 324 is parallel to the axis of the center rod 321. A limiting cylinder 325 is provided on the rod wall of the center rod 321 for the coaxial insertion of the limiting slide 324. When the movable piece 3221 is located in the working part 3212, the limiting slide 324 is inserted into the limiting cylinder 325 from top to bottom, and the side wall of the limiting slide 324 abuts the side wall of the operating pin 3231. The lower end hole wall of the operating slot 3214 and the limiting slide 324 clamp and abut the operating pin 3231 in opposite directions, so that the operating pin 3231 cannot move, and the adjusting rod 323 and the center rod 321 maintain a relatively stable angular relationship.
[0037] like Figure 3 As shown, a thrust block 12 is fixedly connected to the fixing frame 1 and located next to the screwed-in drill rod 21. A lifting cylinder 13 is also fixedly mounted on the fixing frame 1. An electromagnet is fixedly mounted on the end of the piston rod of the lifting cylinder 13. When the screwed-in drill rod 21 is raised to a position where the operating slot 3214 is at the same height as the thrust block 12, the piston rod of the lifting cylinder 13 moves downward, activating the electromagnet. This magnetic attraction lifts the limiting slide 324 out of the limiting cylinder 325, releasing the positional restriction of the limiting member on the operating pin 3231. The screwed-in drill rod 21 then spirals, causing the thrust block 12 to abut against the side of the operating pin 3231 that was originally facing away from the limiting slide 324. Continued spiral rotation allows the operating pin 3231 to move along the operating slot 3214, thereby causing the adjusting rod 323, carrying the various movable pieces 3221, to spiral relative to the center rod 321, thereby opening the soil-falling space. The thrust block 12 can rotate one circle relative to the central rod 321 , that is, a single retaining plate 4 can move one circle relative to the sampling auger 32 when entering the soil-moving gap 311 once.
[0038] like Figure 1 and 4As shown, a plurality of retaining plates 4 are slidingly mounted on the fixed frame 1. The retaining plates 4 have a vertical surface and slide in the radial direction of the sampling barrel 31. The retaining plates 4 are distributed on opposite sides of the sampling barrel 31. A cylinder for controlling the movement of the retaining plates 4 is mounted on the fixed frame 1. A soil-moving slit 311 for inserting the retaining plates 4 is provided on the wall of the sampling barrel 31. A rubber sealing elastic strip 312 is fixedly connected to the wall of the sampling barrel 31 and within the soil-moving slit 311. In a natural state, the sealing elastic strip 312 closes the soil-moving slit 311. When the retaining plates 4 pass through the soil-moving slit 311, they can push the sealing elastic strip 312 open. After the retaining plate 4 enters the sampling tube 31, it is located in the spiral gap of the spiral blade 322. In order to improve the smoothness of the retaining plate 4 entering the spiral gap, the height of the retaining plate 4 is less than the spiral lead of the spiral blade 322; when the drill rod 21 is screwed in and the sampling auger 32 is spirally rotated, the sampling tube 31 and the retaining plate 4 remain stationary relative to the fixed frame 1, and the retaining plate 4 has a pushing effect on the rock and soil on the spiral blade 322.
[0039] like Figure 4As shown, a scraper strip 41 made of hard rubber is slidingly provided under the retaining plate 4, and the sliding direction is vertical. When the retaining plate 4 passes through the soil-moving gap 311, the scraper strip 41 needs to be retracted into the retaining plate 4. When the retaining plate 4 is completely located in the thread gap of the spiral blade 322, the scraper strip 41 needs to move downward and extend from the lower edge of the retaining plate 4, and contact and abut with the movable plate 3221 or the fixed plate 3223; a control component 42 for controlling the sliding of the scraper strip 41 is provided on the retaining plate 4. The control assembly 42 includes a push slide 421, a force slide 423 and a return spring 425. The force slide 423 is fixedly connected to the scraper strip 41. The push slide 421 and the force slide 423 are both slidably connected to the retaining plate 4 and the plate surfaces are parallel to each other. The sliding direction of the push slide 421 is parallel to the sliding direction of the retaining plate 4, and the sliding direction of the force slide 423 is also vertical to the scraper strip 41. A thrust wedge surface 422 is provided on the push slide 421, and a response wedge surface 424 is provided on the force slide 423. The thrust wedge surface 422 abuts against the response wedge surface 424. One end of the return spring 425 is connected to the retaining plate 4, and the other end is connected to the retaining plate 4. The end of the push plate 422 is connected to the force-bearing slide 423, and the return spring 425 applies an upward pulling force to the force-bearing slide 423. In the natural state, the scraper strip 41 is located inside the retaining plate 4, and the edge of the push plate 421 extends from the retaining plate 4 toward one end of the center rod 321. The end of the push plate 421 near the center rod 321 is embedded with an abutment ball 426. When the retaining plate 4 enters the thread gap between the spiral blades 322, the abutment ball 426 rolls and abuts against the side wall of the center rod 321, thereby pushing the push plate 421 to move. The force-bearing slide 423 is driven downward by the wedge surface, and the scraper strip 41 extends from the lower edge of the retaining plate 4. The extension distance of the scraper strip 41 is greater than the thickness of the movable plate 3221, so that the scraper strip 41 can scrape material from both the movable plate 3221 and the fixed plate 3223 by friction.
[0040] The implementation principle of a drilling device for lithium ore exploration and sampling in the embodiment of the present application is as follows:
[0041] During normal drilling and rotary drilling, the movable piece 3221 is located in the soil-falling space; after a single drilling sampling is completed and the sampling drill bit 3 is lifted above the ground, the lifting cylinder 13 pulls out the limit slide 324, and the retaining plate 4 is inserted horizontally into the sampling tube 31, and the drill rod 21 is screwed in and rotated spirally. When the side of the operating pin 3231 abuts the thrust block 12, the fixed piece 3223 continues to rotate spirally while the movable piece 3221 remains stationary, and the soil-falling space is opened. The rock and soil on the spiral blade 322 are pushed by the retaining plate 4 and can fall through the soil-falling space.
[0042] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.
Claims
1. A drilling device for lithium ore exploration and sampling, comprising a fixed frame (1), a driving mechanism (11), an excavation drill rod (2) and a sampling drill bit (3), wherein the sampling drill bit (3) is located at the end of the excavation drill rod (2), the sampling drill bit (3) comprises a sampling barrel (31) and a sampling auger (32), the excavation drill rod (2) comprises a screw-in drill rod (21) and a straight drill rod (22), the driving mechanism (11) is used to control the rotation and vertical movement of the screw-in drill rod (21) relative to the fixed frame (1), and to control the vertical movement of the straight drill rod (22), the sampling auger (32) comprises a center rod (321) and spiral blades (322) located around the center rod (321), the center rod (321) is coaxially connected to the end of the screw-in drill rod (21), and the sampling barrel (31) is fixedly connected to the end of the straight drill rod (22), characterized in that: The spiral blade (322) includes a plurality of fixed pieces (3223) and a plurality of movable pieces (3221). The fixed pieces (3223) and the movable pieces (3221) are alternately arranged along the trajectory of the spiral blade (322). A soil-falling space for the movable pieces (3221) is formed between two adjacent fixed pieces (3223). The fixed pieces (3223) are fixedly connected to the side walls of the central rod (321), and the movable pieces (3221) are relatively movably connected to the central rod (321). The movable piece (3221) and the central rod (321) slide relative to each other, and the sliding direction is parallel to the trajectory of the spiral blade (322); An adjustment space is provided in the center rod (321), an adjustment rod (323) is coaxially sleeved in the center rod (321), an adjustment slot (3211) communicating with the adjustment space is provided on the side wall of the center rod (321), the trajectory of the adjustment slot (3211) is parallel to the trajectory of the spiral blade (322), a connecting portion (3222) is fixedly connected to the movable piece (3221), and the connecting portion (3222) passes through the adjustment slot The hole (3211) is fixedly connected to the adjusting rod (323), and the two ends of the adjusting slot hole (3211) are respectively a working part (3212) and a soil landing part (3213). When the connecting part (3222) is located at the working part (3212), the movable piece (3221) closes the soil landing space. When the connecting part (3222) is located at the soil landing part (3213), the movable piece (3221) is located above the fixed piece (3223).
2. The drilling device for lithium ore exploration and sampling according to claim 1, characterized in that: An operating slot (3214) is provided on the center rod (321), and the trajectory of the operating slot (3214) is parallel to the trajectory of the spiral blade (322). An operating pin (3231) is fixedly connected to the adjusting rod (323), one end of the operating pin (3231) is fixedly connected to the side wall of the adjusting rod (323), and the other end extends from the operating slot (3214). A limiting member is slidably provided on the center rod (321), and the limiting member is used to control and change the fixed state of the operating pin (3231) in the operating slot (3214).
3. The drilling device for lithium ore exploration and sampling according to claim 2, characterized in that: The limiting member is a limiting slide bar (324), the sliding direction of the limiting slide bar (324) is parallel to the axis of the center rod (321), the height of the working portion (3212) is lower than the height of the soil-falling portion (3213), and when the movable piece (3221) is located in the working portion (3212), the side wall of the limiting slide bar (324) abuts against the side wall of the operating pin (3231), and a limiting cylinder (325) is provided on the rod wall of the center rod (321) for the limiting slide bar (324) to be coaxially inserted.
4. A drilling device for lithium ore exploration and sampling according to claim 3, characterized in that: A thrust block (12) is fixedly connected to the fixing frame (1), and the thrust block (12) is used to abut against the side of the operating pin (3231) facing away from the limiting slide bar (324).
5. A drilling device for lithium ore exploration and sampling according to claim 3 or 4, characterized in that: A retaining plate (4) is slidably provided on the fixing frame (1); the plate surface of the retaining plate (4) is a vertical plane, and the sliding direction is the radial direction of the sampling cylinder (31); a soil-moving gap (311) for inserting the retaining plate (4) is provided on the cylinder wall of the sampling cylinder (31); the height of the retaining plate (4) is less than the spiral lead of the spiral blade (322); a sealing elastic strip (312) is fixedly connected on the cylinder wall of the sampling cylinder (31) and in the soil-moving gap (311); in a natural state, the sealing elastic strip (312) closes the soil-moving gap (311).
6. The drilling device for lithium ore exploration and sampling according to claim 5, characterized in that: A scraper strip (41) is slidably provided below the retaining plate (4), and the sliding direction is vertical. The scraper strip (41) is used to contact the upper surface of the spiral blade (322). A control component (42) for controlling the sliding of the scraper strip (41) is provided on the retaining plate (4).
7. The drilling device for lithium ore exploration and sampling according to claim 6, characterized in that: The control assembly (42) includes a push slide (421), a force slide (423) and a return spring (425). The force slide (423) is fixedly connected to the scraper strip (41). The push slide (421) and the force slide (423) are both slidably connected to the retaining plate (4) and the plate surfaces are parallel to each other. The sliding direction of the push slide (421) is parallel to the sliding direction of the retaining plate (4). The sliding direction of the force slide (423) is vertical. The push slide (421) is provided with a thrust wedge surface (422). The force slide (423) is provided with a response spring. The wedge surface (424) is provided, the thrust wedge surface (422) and the response wedge surface (424) are in contact with each other, one end of the return spring (425) is connected to the retaining plate (4), and the other end is connected to the force-bearing slide plate (423). In a natural state, the scraper strip (41) is located inside the retaining plate (4), the edge of the push slide plate (421) extends from the retaining plate (4) toward one end of the center rod (321), and an abutting ball (426) is embedded in one end of the push slide plate (421) close to the center rod (321), and the abutting ball (426) is used to abut against the side wall of the center rod (321).
Citation Information
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