An adjustable solid geological mineral resource exploration device

Through the combined design of the support mechanism and drilling mechanism, the problem of core breakage in the exploration device is solved, the integrity and stability of the core are achieved, and the exploration efficiency and accuracy are improved.

CN120119924BActive Publication Date: 2025-08-19HENAN YIMINDA GEOLOGICAL CO LTD +1
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Patent Information

Application Number
CN202510614959.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-05-14
Publication Date
2025-08-19
Estimated Expiration
2045-05-14

AI Technical Summary

Technical Problem

The existing solid geological and mineral resource exploration devices are prone to fracture during core return, affecting sample integrity and increasing exploration difficulty.

Method used

The core is supported and guided by a support mechanism, and multi-stage clamping is performed through the drilling mechanism. The core's self-weight is used to increase the clamping force to prevent the core from breaking during lifting and returning.

Benefits of technology

Ensure that the core maintains integrity during the exploration process, reduces faults and fallbacks, and improves exploration efficiency and accuracy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of geological exploration and drilling technology, and discloses an adjustable solid geological mineral resource exploration device, comprising a support frame, an inner wall of the support frame being slidably connected to an adjustment plate, an inner wall of the adjustment plate being rotatably connected to a connecting rod via a bearing, a bottom of the connecting rod being fixedly connected to a drilling mechanism, and further comprising: a support mechanism, the support mechanism being arranged inside the drilling mechanism, the support mechanism comprising a support block 1, an outer wall of the support block 1 being provided with a fixing assembly, an outer wall of the support block 1 being provided with a notch, an inner wall of the notch being rotatably connected to a guide wheel via a rotating shaft, and an inner wall of the support block 1 being slidably connected to a support plate 1. The present invention supports and guides a rock core through the support mechanism, thereby preventing the rock core from breaking and ensuring the integrity of the rock core during the process of drilling the rock core by the exploration device, and ensuring that the rock core sample remains stable in the lifting path.
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Description

Technical Field

[0001] The invention relates to the technical field of geological exploration and drilling, in particular to an adjustable solid geological mineral resource exploration device. Background Art

[0002] Solid geological mineral resource exploration equipment is the core technical equipment supporting the development of mineral resources. It mainly serves the detection and evaluation of energy, metal and non-metallic mineral resources. As global resource demand continues to grow, this device integrates high-precision geophysical, geochemical and remote sensing technologies to achieve accurate identification of underground ore body distribution, morphology and grade. Its application scenarios cover target area delineation in the early stage of mineral resource exploration, reserve estimation in the detailed investigation stage and dynamic monitoring of mine exploitation, effectively improving resource exploration efficiency and accuracy.

[0003] The patent application with application number CN202121202740.5 discloses an adjustable solid geological mineral resource exploration device, including a connecting component and a drilling structure, the upper surface of the connecting component is movably connected with an adjustment component located on the inner side of the connecting component, the top of the drilling structure is fixedly connected to the adjustment component, the adjustment component includes a bearing fixedly connected to the top of the connecting component, the top of the connecting component is movably connected to a screw rod with one end passing through the bearing and the connecting component in sequence and extending to the bottom of the connecting component, the outer side of the screw rod is threadedly connected to a screw block, the left and right sides of the screw block are fixedly connected to side frames, the bottom of the side frame is fixedly connected to a base plate, and the left and right sides of the side frame are fixedly connected to a sliding rod slidably connected to the connecting component on the opposite side.

[0004] However, during the operation of existing solid geological mineral resource exploration equipment, the current technical solution uses a negative pressure system to achieve core return. This process requires ensuring that the sample remains stable during the lifting path. Actual applications have shown that under some working conditions, the core sample may break and fall back into the borehole during the return process, affecting the integrity of the sample and increasing the difficulty of exploration. Summary of the Invention

[0005] The purpose of the present invention is to provide an adjustable solid geological mineral resource exploration device to solve the problems raised in the above background technology.

[0006] To achieve the above-mentioned object, the present invention provides the following technical solution: an adjustable solid geological mineral resource exploration device, comprising a support frame, an adjustment plate slidably connected to the inner wall of the support frame, a connecting rod rotatably connected to the inner wall of the adjustment plate via a bearing, a drilling mechanism fixedly connected to the bottom of the connecting rod, and further comprising:

[0007] The support mechanism is arranged inside the drilling mechanism, and the support mechanism includes a support block 1, an outer wall of the support block 1 is provided with a fixed component, an outer wall of the support block 1 is provided with a notch, the inner wall of the notch is rotatably connected to a guide wheel through a rotating shaft, the inner wall of the support block 1 is slidably connected to a support plate 1, the inner wall of the support plate 1 is fixedly connected to an anti-slip strip, the outer wall of the support plate 1 is slidably connected to a support block 2, the outer wall of the support block 2 is hinged to a support rod 1 through a hinge block, the outer wall of the support rod 1 is fixedly connected to the support rod 2, and the guide The outer wall of the wheel protrudes from the inner wall of the support block 1 and contacts the outer wall of the core to guide the core. The support plate 1 is made of elastic material and is used to contact the outer wall of the core through the support block 2. The core is supported and guided by the support mechanism to prevent the core from breaking. At the same time, the integrity of the core is ensured during the drilling process of the core by the exploration device, and the core sample is ensured to remain stable in the lifting path. The clamping force of the support mechanism on the core is increased by the dead weight of the core to prevent the core sample from breaking due to vibration during the lifting process and falling back into the exploration hole.

[0008] According to the above technical solution, the drilling mechanism includes a drill sleeve, a reaming sleeve is inserted into the outer wall of the drill sleeve, a sliding groove 1 is provided on the inner wall of the reaming sleeve, an isolation disk is inserted into the inner wall of the drill sleeve, a guide groove is provided on the inner wall of the drill sleeve, and a sliding groove 2 is provided on the inner wall of the guide groove. The isolation disk is used to isolate the support mechanism, and the core is drilled by the drilling mechanism and the core is clamped in multiple stages, so that the integrity of the core is maintained during the exploration process of the exploration device, and the sample is ensured to remain stable in the lifting path.

[0009] According to the above technical solution, the fixing assembly includes a baffle, the outer wall of the baffle is hinged to the inner wall of the support block 1 through a rotating shaft, the inner wall of the baffle is connected to a slider through a rotating shaft hinge, the inner wall of the slider is connected to the support plate 2 through a rotating shaft hinge, the outer wall of the support plate 2 is hinged to a clamping block through a rotating shaft hinge, the outer wall of the clamping block is fixedly connected to the support block 3, the support block 3 protrudes from the inner wall of the drill sleeve and is used to clamp and support the core. The core is fixed by the fixing assembly to prevent the core from vibrating during the return process, causing the core to break, causing the core sample to break and fall back into the exploration hole during the return process, affecting the difficulty of exploration.

[0010] According to the above technical solution, the bottom of the support block is fixedly connected to a telescopic rod, the bottom of the telescopic rod is hinged to a support claw through a rotating shaft, the outer wall of the support rod is fixedly connected to a spring, the outer wall of the support rod protrudes from the inner wall of the support block and contacts the inner wall of the drill sleeve.

[0011] According to the above technical solution, the outer wall of the support block is slidably connected to the inner wall of the drill sleeve, the outer wall of the support rod is hinged to the inner wall of the support block through a rotating shaft, and the support block contacts the outer wall of the core by protruding from the inner wall of the drill sleeve to position and support the core.

[0012] According to the above technical solution, the drill sleeve is used for drilling cores, and the reaming sleeve is used for reaming and removing slag.

[0013] According to the above technical solution, the outer wall of the baffle is slidably connected to the inner wall of the isolation disk through a slider, the outer wall of the slider is slidably connected to the second groove wall of the sliding groove through a slider, and the outer wall of the clamping block slides along the direction of the guide groove.

[0014] According to the above technical solution, the outer wall of the telescopic rod is slidably connected to the wall of the sliding groove, the outer wall of the support claw is hinged to the wall of the sliding groove through hydraulic damping, the support claw is supported by hydraulic damping and protrudes from the inner wall of the reaming sleeve to support and limit the core, and the support rod 2 drives the support rod 1 to rotate through the extrusion of the drill sleeve.

[0015] According to the above technical solution, the telescopic rod can be elastically extended and retracted to limit the support block 1, and the support rod 2 is reset by spring support.

[0016] According to the above technical solution, the support block three is embedded in the outer wall of the core to clamp and fix the core, and the slider is used to support the clamping block through the support plate two.

[0017] Compared with the prior art, the present invention has the following beneficial effects:

[0018] 1. This adjustable solid geological mineral resource exploration device supports and guides the core through a support mechanism to prevent the core from breaking. At the same time, it ensures the integrity of the core during the drilling process and prevents the core sample from breaking and falling back into the exploration hole during the return process.

[0019] 2. The adjustable solid geological mineral resource exploration device fixes the core through a fixing component to prevent the core from vibrating during the return process, causing the core to break and fall back into the exploration hole during the return process, affecting the difficulty of exploration.

[0020] 3. The adjustable solid geological mineral resource exploration device drills the core through the drilling mechanism and performs multi-stage clamping on the core, so that the core can maintain its integrity during the exploration process of the exploration device and ensure that the sample remains stable during the lifting path.

[0021] 4. This adjustable solid geological mineral resource exploration device uses a support mechanism to keep the core sample stable during the lifting path. At the same time, the core's own weight increases the support mechanism's clamping force on the core, preventing the core sample from breaking due to vibration during the lifting process and falling back into the exploration hole. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 The structure of the present invention is schematically shown Figure 1 ;

[0023] Figure 2 The structure of the present invention is schematically shown Figure 2 ;

[0024] Figure 3 This is a cross-sectional view of the drill sleeve in the drilling mechanism of the present invention and a schematic diagram of the internal structure. Figure 1 ;

[0025] Figure 4 A cross-sectional view of the drill sleeve in the drilling mechanism of the present invention Figure 1 ;

[0026] Figure 5 A cross-sectional view of the drill sleeve in the drilling mechanism of the present invention Figure 2 ;

[0027] Figure 6 The structural diagram of the support mechanism of the present invention is as follows Figure 1 ;

[0028] Figure 7 The structural diagram of the support mechanism of the present invention is as follows Figure 2 ;

[0029] Figure 8 The cross-sectional view and internal structure diagram of the support block 1 in the support mechanism of the present invention Figure 1 ;

[0030] Figure 9 The cross-sectional view and internal structure diagram of the support block 1 in the support mechanism of the present invention Figure 2 ;

[0031] Figure 10 It is a structural schematic diagram of the fixing component of the present invention.

[0032] In the figure: 1. Support frame; 101. Adjustment plate; 102. Connecting rod; 2. Drilling mechanism; 201. Drill sleeve; 202. Reaming sleeve; 203. Isolation plate; 204. Sliding groove one; 205. Sliding groove two; 206. Guide groove; 3. Support mechanism; 301. Support block one; 302. Support claw; 303. Telescopic rod; 304. Notch; 305. Guide wheel; 306. Support plate one; 307. Anti-slip strip; 308. Support block two; 309. Support rod one; 310. Support rod two; 311. Spring; 4. Fixing assembly; 401. Baffle; 402. Slider; 403. Support plate two; 404. Clamping block; 405. Support block three. DETAILED DESCRIPTION

[0033] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0034] For example 1, please refer to Figures 1-6 and Figure 8-Figure 9 The present invention provides a technical solution: an adjustable solid geological mineral resource exploration device, comprising a support frame 1, an adjustment plate 101 being slidably connected to the inner wall of the support frame 1, a connecting rod 102 being rotatably connected to the inner wall of the adjustment plate 101 via a bearing, a drilling mechanism 2 being fixedly connected to the bottom of the connecting rod 102, and further comprising:

[0035] The support mechanism 3 is arranged inside the drilling mechanism 2, and the support mechanism 3 includes a support block 1 301. The outer wall of the support block 1 301 is provided with a fixing component 4. The outer wall of the support block 1 301 is provided with a notch 304. The inner wall of the notch 304 is rotatably connected to a guide wheel 305 through a rotating shaft. The inner wall of the support block 1 301 is slidably connected to a support plate 1 306. The inner wall of the support plate 1 306 is fixedly connected to an anti-slip strip 307. The outer wall of the support plate 1 306 is slidably connected to a support block 2 308. The outer wall of the support block 2 308 is hinged to a support rod 1 309 through a hinge block. The outer wall of the support rod 1 309 is fixedly connected to a support rod 2 310. The outer wall of the guide wheel 305 protrudes from the inner wall of the support block 1 301 and the outer wall of the core The support plate 1 306 is made of elastic material and is used to support the contact with the outer wall of the core through the support block 2 308. When the adjustable solid geological mineral resource exploration device is put into use, the drilling mechanism 2 is adjusted by the adjustment plate 101 to make the drill sleeve 201 drill into the rock formation and drill the core. During the drilling process of the drill sleeve 201, the hole is expanded through the reaming sleeve 202, and the core enters the interior of the drill sleeve 201. The support claw 302 is squeezed by the core, so that the support claw 302 is retracted into the sliding groove 1 204, and the outer wall of the core contacts the outer wall of the guide wheel 305, driving the guide wheel 305 to drill. The inner wall of the slot 304 rotates to support and guide the core to prevent the core from breaking. When the drill sleeve 201 drives the core sample to lift up, the outer wall of the core contacts the outer wall of the support claw 302. The support claw 302 is supported by hydraulic damping so that the support claw 302 protrudes from the inner wall of the drill sleeve 201 and contacts the outer wall of the core. At the same time, the core's own weight causes the support claw 302 to be embedded in the core to support the core and prevent the core from falling back during the extraction process. At the same time, the support claw 302 drives the support block 1 301 to slide on the inner wall of the drill sleeve 201 through the telescopic rod 303, so that the inner wall of the support block 1 301 protrudes from the inner wall of the drill sleeve 201 and contacts the outer wall of the core, supporting and clamping the core. The support block 1 301 is in the drill sleeve 201 During the process of sliding the wall toward the core, the outer wall of the second support rod 310 contacts the inner wall of the drill sleeve 201, driving the support rod 1 309 to rotate, so that the support rod 1 309 drives the second support block 308 to slide on the outer wall of the support plate 1 306, supporting the support plate 1 306, so that the support plate 1 306 slides on the inner wall of the support block 1 301 and protrudes from the inner wall of the support block 1 301, supporting the core. At the same time, the second support block 308 drives the support plate 1 306 to deform, increasing the contact area with the core, and squeezing the anti-slip strip 307 to support the core, preventing the core from being damaged during the lifting process. After the core is taken out of the well, the reaming sleeve 202 and the drill sleeve 201 are unplugged, the core is separated and reassembled, and the work can be continued;

[0036] The drilling mechanism 2 includes a drill sleeve 201, an outer wall of the drill sleeve 201 is plugged with a reaming sleeve 202, an inner wall of the reaming sleeve 202 is provided with a sliding groove 1 204, an inner wall of the drill sleeve 201 is plugged with an isolation disk 203, an inner wall of the drill sleeve 201 is provided with a guide groove 206, an inner wall of the guide groove 206 is provided with a sliding groove 205, and the isolation disk 203 is used to isolate the support mechanism 3. When the core enters the drill sleeve 201, the core squeezes the support claw 302, causing the support claw 302 to retract into the sliding groove 1 204. The outer wall of the core contacts the outer wall of the guide wheel 305, driving the guide wheel 305 to rotate on the inner wall of the slot 304, thereby supporting and guiding the core and preventing the core from breaking.

[0037] The outer wall of the support block 301 is slidably connected to the inner wall of the drill sleeve 201, and the outer wall of the support rod 309 is hinged to the inner wall of the support block 301 through a rotating shaft. The support block 301 contacts the outer wall of the core by protruding from the inner wall of the drill sleeve 201 to position and support the core. When the drill sleeve 201 drives the core sample to be lifted, the outer wall of the core contacts the outer wall of the support claw 302. The support claw 302 is supported by hydraulic damping so that the support claw 302 protrudes from the inner wall of the drill sleeve 201 and contacts the outer wall of the core. At the same time, the support claw 302 is embedded in the core to support the core through the dead weight of the core, preventing the core from falling back during the extraction process. At the same time, the support claw 302 drives the support block 301 to the drill sleeve 20 through the telescopic rod 303. 1, so that the inner wall of support block 1 301 protrudes from the inner wall of drill sleeve 201 and contacts the outer wall of core, supporting and clamping the core. In the process of support block 1 301 sliding on the inner wall of drill sleeve 201 toward the core, the outer wall of support rod 2 310 contacts the inner wall of drill sleeve 201, driving support rod 1 309 to rotate, so that support rod 1 309 drives support block 2 308 to slide on the outer wall of support plate 1 306, supporting support plate 1 306, so that support plate 1 306 slides on the inner wall of support block 1 301 and protrudes from the inner wall of support block 1 301, supporting the core. At the same time, support block 2 308 drives support plate 1 306 to deform, increasing the contact area with the core and squeezing anti-slip strip 307 to support the core.

[0038] The drill sleeve 201 is used for drilling cores, and the reaming sleeve 202 is used for reaming and removing slag. The drilling mechanism 2 is adjusted by the adjustment plate 101 so that the drill sleeve 201 drills into the rock formation to drill the core. During the drilling process of the drill sleeve 201, the reaming sleeve 202 is used to reame and remove slag.

[0039] Example 2, based on Example 1, please refer to Figure 10The present invention provides a technical solution: the fixing assembly 4 includes a baffle 401, the outer wall of the baffle 401 is hinged to the inner wall of the support block 1 301 through a rotating shaft, the inner wall of the baffle 401 is connected to a slider 402 through a rotating shaft hinge, the inner wall of the slider 402 is connected to the support plate 2 403 through a rotating shaft hinge, the outer wall of the support plate 2 403 is connected to a clamping block 404 through a rotating shaft hinge, the outer wall of the clamping block 404 is fixedly connected to the support block 3 405, the support block 3 405 protrudes from the inner wall of the drill sleeve 201, and is used to clamp and support the core. When the drill sleeve 201 drives the core sample to be lifted, the outer wall of the core contacts the outer wall of the support claw 302, and the support claw 302 is supported by hydraulic damping so that the support claw 302 protrudes from the inner wall of the drill sleeve 201 and contacts the outer wall of the core. At the same time, the support claw 302 is supported by the dead weight of the core. The support block 301 is embedded in the core to support the core and prevent it from falling back during the extraction process. At the same time, the support claw 302 drives the support block 1 301 to slide on the inner wall of the drill sleeve 201 through the telescopic rod 303, so that the inner wall of the support block 1 301 protrudes from the inner wall of the drill sleeve 201 and contacts the outer wall of the core to support and clamp the core. In the process of the support block 1 301 sliding from the inner wall of the drill sleeve 201 toward the core, the baffle 401 drives the slider 402 to slide on the inner wall of the sliding groove 205, so that the slider 402 supports the clamping block 404 through the support plate 203, so that the clamping block 404 slides on the inner wall of the guide groove 206, so that the clamping block 404 protrudes from the inner wall of the drill sleeve 201 to clamp the core, and the support block 3 405 is supported by the clamping block 404, so that the support block 3 405 is embedded in the core to fix the core.

[0040] The outer wall of the baffle 401 is slidably connected to the inner wall of the isolation disk 203 through a slider, the outer wall of the slider 402 is slidably connected to the wall of the second sliding groove 205 through a slider, and the outer wall of the clamping block 404 slides along the direction of the guide groove 206. When the inner wall of the drill sleeve 201 slides toward the core, the support block 1 301 drives the slider 402 to slide on the inner wall of the second sliding groove 205 through the baffle 401, so that the slider 402 supports the clamping block 404 through the support plate 2 403, so that the clamping block 404 slides on the inner wall of the guide groove 206, so that the clamping block 404 protrudes from the inner wall of the drill sleeve 201 to clamp the core, and the support block 3 405 is supported by the clamping block 404 so that the support block 3 405 is embedded in the core to fix the core;

[0041] The support block three 405 is embedded in the outer wall of the core to clamp and fix the core. The slider 402 is used to support the clamping block 404 through the support plate two 403. The clamping block 404 protrudes from the inner wall of the drill sleeve 201 to clamp the core. The support block three 405 is supported by the clamping block 404 so that the support block three 405 is embedded in the core to fix the core.

[0042] Example 3, based on Example 1 and Example 2, please refer to Figure 7 The present invention provides a technical solution: the bottom of the support block 301 is fixedly connected to a telescopic rod 303, the bottom of the telescopic rod 303 is connected to a support claw 302 through a rotating shaft hinge, the outer wall of the support rod 210 is fixedly connected to a spring 311, the outer wall of the support rod 210 protrudes from the inner wall of the support block 1 301, and contacts the inner wall of the drill sleeve 201. During the drilling process, the core enters the inside of the drill sleeve 201, and the core squeezes the support claw 302, so that the support claw 302 retracts into the sliding groove 1 204, so that the core passes through the support mechanism 3. When the drill sleeve 201 drives During the process of lifting the core sample, the outer wall of the core contacts the outer wall of the support claw 302. The support claw 302 is supported by hydraulic damping, so that the support claw 302 protrudes from the inner wall of the drill sleeve 201 and contacts the outer wall of the core. At the same time, the support claw 302 is embedded in the core by the dead weight of the core to support the core and prevent the core from falling back during the extraction process. At the same time, the support claw 302 drives the support block 1 301 to slide on the inner wall of the drill sleeve 201 through the telescopic rod 303, so that the inner wall of the support block 1 301 protrudes from the inner wall of the drill sleeve 201 and contacts the outer wall of the core, thereby supporting and clamping the core.

[0043] The outer wall of the telescopic rod 303 is slidably connected to the wall of the sliding groove 1 204, and the outer wall of the supporting claw 302 is hinged to the wall of the sliding groove 1 204 through hydraulic damping. The supporting claw 302 is supported by the hydraulic damping and protrudes from the inner wall of the reaming sleeve 202 to support and limit the core. The supporting rod 2 310 drives the supporting rod 1 309 to rotate through the squeeze of the drill sleeve 201. When the drill sleeve 201 drives the core sample to be lifted, the outer wall of the core contacts the outer wall of the supporting claw 302, and the supporting The support claw 302 is supported by hydraulic damping, so that the support claw 302 protrudes from the inner wall of the drill sleeve 201 and contacts the outer wall of the core. At the same time, the support claw 302 is embedded in the core by the dead weight of the core to support the core and prevent the core from falling back during the extraction process. At the same time, the support claw 302 drives the support block 1 301 to slide on the inner wall of the drill sleeve 201 through the telescopic rod 303, so that the inner wall of the support block 1 301 protrudes from the inner wall of the drill sleeve 201 and contacts the outer wall of the core, thereby supporting and clamping the core.

[0044] The telescopic rod 303 is elastically retractable and is used to limit the support block 1 301. The support rod 2 310 is reset by the support of the spring 311. During the drilling process, the core enters the drill sleeve 201 and squeezes the support claw 302 through the core, so that the support claw 302 retracts into the sliding groove 1 204. The support block 1 301 is squeezed by the telescopic rod 303, driving the support block 1 301 to reset, so that the core passes through the support mechanism 3.

[0045] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. An adjustable solid geological mineral resource exploration device, comprising a support frame (1), an adjusting plate (101) being slidably connected to the inner wall of the support frame (1), and a connecting rod (102) being rotatably connected to the inner wall of the adjusting plate (101) via a bearing, characterized in that: The bottom of the connecting rod (102) is fixedly connected to a drilling mechanism (2), and further comprises: A support mechanism (3) is provided inside the drilling mechanism (2), and the support mechanism (3) includes a support block (301), an outer wall of the support block (301) is provided with a fixing assembly (4), a notch (304) is provided on the outer wall of the support block (301), an inner wall of the notch (304) is rotatably connected to a guide wheel (305) via a rotating shaft, an inner wall of the support block (301) is slidably connected to a support plate (306), and an inner wall of the support plate (306) is fixedly connected to an anti-slip strip. (307), the outer wall of the support plate 1 (306) is slidably connected to the support block 2 (308), the outer wall of the support block 2 (308) is hingedly connected to the support rod 1 (309) through the hinge block, the outer wall of the support rod 1 (309) is fixedly connected to the support rod 2 (310), the outer wall of the guide wheel (305) protrudes from the inner wall of the support block 1 (301) and contacts the outer wall of the core to guide the core, the support plate 1 (306) is made of elastic material and is used to support and contact the outer wall of the core through the support block 2 (308); The fixing assembly (4) includes a baffle (401), the outer wall of the baffle (401) is hinged to the inner wall of the support block 1 (301) through a rotating shaft, the inner wall of the baffle (401) is hinged to a slider (402) through a rotating shaft, the inner wall of the slider (402) is hinged to the support plate 2 (403) through a rotating shaft, the outer wall of the support plate 2 (403) is hinged to a clamping block (404) through a rotating shaft, the outer wall of the clamping block (404) is fixedly connected to the support block 3 (405), and the support block 3 (405) protrudes from the inner wall of the drill sleeve (201) and is used to clamp and support the core.

2. The adjustable solid geological mineral resource exploration device according to claim 1, characterized in that: The drilling mechanism (2) comprises a drill sleeve (201), an outer wall of the drill sleeve (201) is plugged with a reaming sleeve (202), an inner wall of the reaming sleeve (202) is provided with a first sliding groove (204), an inner wall of the drill sleeve (201) is plugged with an isolation disk (203), an inner wall of the drill sleeve (201) is provided with a guide groove (206), an inner wall of the guide groove (206) is provided with a second sliding groove (205), and the isolation disk (203) is used to isolate the support mechanism (3).

3. The adjustable solid geological mineral resource exploration device according to claim 1, characterized in that: The bottom of the support block 1 (301) is fixedly connected to a telescopic rod (303), and the bottom of the telescopic rod (303) is hingedly connected to a support claw (302) via a rotating shaft. The outer wall of the support rod 2 (310) is fixedly connected to a spring (311), and the outer wall of the support rod 2 (310) protrudes from the inner wall of the support block 1 (301) and contacts the inner wall of the drill sleeve (201).

4. The adjustable solid geological mineral resource exploration device according to claim 1, characterized in that: The outer wall of the support block 1 (301) is slidably connected to the inner wall of the drill sleeve (201), and the outer wall of the support rod 1 (309) is hingedly connected to the inner wall of the support block 1 (301) through a rotating shaft. The support block 1 (301) contacts the outer wall of the core by protruding from the inner wall of the drill sleeve (201) to position and support the core.

5. The adjustable solid geological mineral resource exploration device according to claim 2, characterized in that: The drill sleeve (201) is used for drilling cores, and the reaming sleeve (202) is used for reaming holes and removing slag.

6. The adjustable solid geological mineral resource exploration device according to claim 1, characterized in that: The outer wall of the baffle (401) is slidably connected to the inner wall of the isolation disk (203) via a slider, the outer wall of the slider (402) is slidably connected to the wall of the second sliding groove (205) via a slider, and the outer wall of the clamping block (404) slides along the direction of the guide groove (206).

7. The adjustable solid geological mineral resource exploration device according to claim 3, characterized in that: The outer wall of the telescopic rod (303) is slidably connected to the wall of the sliding groove (204), and the outer wall of the support claw (302) is hingedly connected to the wall of the sliding groove (204) through hydraulic damping. The support claw (302) is supported by the hydraulic damping and protrudes from the inner wall of the reaming sleeve (202) for supporting and limiting the core. The support rod (310) drives the support rod (309) to rotate through the squeezing of the drill sleeve (201).

8. The adjustable solid geological mineral resource exploration device according to claim 7, characterized in that: The telescopic rod (303) is elastically retractable and is used to limit the position of the support block 1 (301), and the support rod 2 (310) is supported by the spring (311) for reset.

9. The adjustable solid geological mineral resource exploration device according to claim 1, characterized in that: The support block three (405) is embedded in the outer wall of the core to clamp and fix the core, and the slider (402) is used to support the clamping block (404) through the support plate two (403).

Citation Information

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