Geological mineral resource exploration equipment

By introducing a buffer spring and a moving frame design into the exploration equipment, the problem of samples falling due to vibration during sampling and collection was solved, enabling complete collection and accurate analysis of the samples.

CN224535459UActive Publication Date: 2026-07-21HEBEI BEIWU GEOLOGICAL EXPLORATION TECHNOLOGY SERVICE CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HEBEI BEIWU GEOLOGICAL EXPLORATION TECHNOLOGY SERVICE CO LTD
Filing Date
2025-05-26
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

During the sampling and collection process, samples are easily shaken and fall off due to the movement of parts in existing exploration equipment, resulting in a reduction in the number of samples.

Method used

The design incorporates a buffer spring and a movable frame. Through the cooperation of the tilting plate and the movable wheels, vibration is reduced and fallen samples are collected. The buffer spring stores energy for reset, preventing collisions between parts and ensuring sample integrity.

Benefits of technology

It effectively reduces sample loss during sampling and collection, improves the integrity and accuracy of sample collection, and reduces the analytical burden on operators.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of exploration equipment, put forward a kind of geological mineral resources exploration equipment, including support plate, support leg, sampling cylinder, push rod motor, transmission motor, first transmission gear and second transmission gear, further include processing box, moving frame, tilt plate, first buffer spring, collection box and first moving wheel, processing box is fixed on the upper surface of support plate, moving frame, moving frame outer surface is penetrated in the outside of processing box, tilt plate outside face is installed in the top end of moving frame, first buffer spring right end is installed in processing box, first buffer spring is sleeved in the outer surface of moving frame, first buffer spring left end is installed in the right side of tilt plate, collection box is sleeved in the bottom end of moving frame, first moving wheel is installed in the lower surface of collection box, the outside of fixed frame is equipped with first connecting frame. By the above technical scheme, to solve the problem of sample falling in the moving process of parts in the prior art.
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Description

Technical Field

[0001] This utility model relates to the field of exploration equipment technology, specifically to a geological and mineral resource exploration equipment. Background Technology

[0002] Mineral exploration is a geological work that provides reliable ore reserves and necessary geological, technical and economic data for mine design. Exploration is nothing more than technical methods such as drilling and geochemical exploration. Drilling equipment is such as well drilling, and geochemical exploration is such as sampling and analysis equipment. Sampling and analysis need to be carried out in sequence.

[0003] Current exploration equipment requires the sampling mechanism to be inserted into the ground first, and then the sample is collected into the internal parts through the rotation of the mechanism. However, during the upward lifting of the sampling mechanism, the sample at the bottom is prone to fall along the parts, resulting in a reduction in the number of samples.

[0004] The existing sampling method involves lifting the collection mechanism upwards, dismantling the main pipeline, and then moving the dismantled part to the placement location to retrieve the sample. However, during this process, the pipeline is prone to vibration, causing some samples to fall out.

[0005] The above-mentioned discharge method is prone to vibration during the movement of parts, which can cause samples to fall off. Therefore, we propose a geological and mineral resource exploration device. Utility Model Content

[0006] This invention proposes a geological and mineral resource exploration device to solve the problem of sample falling off during the movement of components in the prior art.

[0007] The technical solution of this utility model is as follows: A geological and mineral resource exploration device, comprising a support plate, support legs, a sampling cylinder, a push rod motor, a transmission motor, a first transmission gear, and a second transmission gear, capable of driving the entire device to operate, and further comprising: A processing box, which is fixed to the upper surface of the support plate; A movable frame, the outer surface of which extends through the outer side of the processing box; An inclined plate, the outer side of which is mounted on the top of the movable frame; The first buffer spring, with its right end installed inside the processing box, allows the first buffer spring to store kinetic energy and resets the moving frame after sampling. The first buffer spring is sleeved on the outer surface of the moving frame, and its left end is installed on the right side of the inclined plate. A collection box, which is fitted onto the bottom of the movable frame, allows for quick separation of the collection box and the movable frame after collection. The first moving wheel is installed on the lower surface of the collection box to reduce the resistance encountered by the collection box during movement.

[0008] Preferably, the first connecting frame is installed on the outer side of the fixed frame, and the second connecting frame is slidably connected to the inner side of the processing box, so as to facilitate the movement of the second connecting frame.

[0009] Preferably, the second moving wheel is mounted on the outer side of the second connecting frame, and the second moving wheel is in rolling connection with the inner side of the inclined plate.

[0010] Preferably, the second buffer spring is installed inside both the first connecting frame and the second connecting frame to prevent damage to the first connecting frame and the second connecting frame during the continued collection process, and to prevent the first connecting frame and the second connecting frame from deforming due to mutual compression. The auxiliary rod is installed at the inner end of the second buffer spring, and the auxiliary rod passes through the first connecting frame and the second connecting frame.

[0011] Preferably, the mobile frame is symmetrically arranged in a C-shape along the center of the support plate during movement. In order to better synchronize the movement progress of both ends through a single component, the number of mobile frames is four.

[0012] Preferably, the first connecting frame and the second connecting frame are inverted L-shape and regular L-shape respectively during movement.

[0013] The working principle and beneficial effects of this utility model are as follows: In this invention, when the moving frame moves inward as the sampling tube moves upward, the collection box moves inward via the first moving wheel, so that the sample that falls after the sampling tube extends into the ground enters the collection box, thereby reducing the number of times the sample falls due to vibration of the parts and reducing the impact on the operator's subsequent sample analysis.

[0014] In this invention, when the second connecting frame contacts the processing box, the auxiliary rod begins to compress the second buffer spring. At this time, the first connecting frame can continue to move downward, increasing the range of movement of the components inside the device. After the sampling tube finishes sampling, the second buffer spring can support the first connecting frame upward, preventing the components inside the device from colliding with each other. Attached Figure Description

[0015] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.

[0016] Figure 1 This is a schematic diagram of the exploration equipment of this utility model in its non-operational state; Figure 2 This is a schematic diagram of the sampling structure of this utility model; Figure 3This utility model Figure 2 Enlarged schematic diagram of the structure at point A in the middle; Figure 4 This is a vertical sectional view of the material receiving structure of this utility model.

[0017] In the diagram: 1. Support plate; 2. Support leg; 3. Processing box; 4. Moving frame; 5. First buffer spring; 6. Inclined plate; 7. Collection box; 8. First moving wheel; 9. Support frame; 10. Push rod motor; 11. Sampling cylinder; 12. Fixed frame; 13. Crushing tooth; 14. Observation slot; 15. Transmission motor; 16. First transmission gear; 17. Second transmission gear; 18. First connecting frame; 19. Second connecting frame; 20. Second moving wheel; 21. Second buffer spring; 22. Auxiliary rod. Detailed Implementation

[0018] The technical solutions of this utility model will be clearly and completely described below with reference to the embodiments of this utility model. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this utility model.

[0019] like Figures 1-4 As shown, this embodiment proposes a geological and mineral resource exploration equipment, including a support plate 1, support legs 2, sampling cylinder 11, push rod motor 10, transmission motor 15, first transmission gear 16 and second transmission gear 17, and also includes a processing box 3, a moving frame 4, an inclined plate 6, a first buffer spring 5, a collection box 7 and a first moving wheel 8, so that the operator can collect the fallen samples.

[0020] The processing box 3 is fixed to the upper surface of the support plate 1. The outer surface of the movable frame 4 extends through the outer side of the processing box 3. The outer side of the inclined plate 6 is installed on the top of the movable frame 4. The inclined plate 6 can slide left and right along the inside of the processing box 3. Figure 4 As shown, after the second moving wheel 20 moves downward along the inclined surface of the inclined plate 6, it can push the inclined plate 6 to move outward along the inside of the processing box 3, thereby driving the movement of the moving frame 4. There are four sets of moving frames 4, and the moving frames 4 are centrally symmetrical about the support plate 1. Therefore, the moving frames 4 on the left and right sides can move inward or outward simultaneously. The right end of the first buffer spring 5 is installed inside the processing box 3, so that the inclined plate 6 gradually returns to its original position after the second moving wheel 20 moves upward. This can prevent the collection box 7 from having difficulty reaching the bottom of the sampling tube 11 during the movement. The first buffer spring 5 is sleeved on the outer surface of the moving frame 4, and the left end of the first buffer spring 5 is installed on the right side of the inclined plate 6. The collection box 7 is fitted onto the bottom end of the movable frame 4, and the first movable wheel 8 is installed on the lower surface of the collection box 7, as shown. Figure 4 As shown, the interior of the collection box 7 consists of an inclined surface and a bottom. The inclined surface can collect the sample during the falling process, so that the collection box 7 can collect part of the sample when it is not completely covered. The collection box 7 moves left and right along the ground via the first moving wheel 8, which reduces the resistance encountered by the collection box 7 during the movement. A first connecting frame 18 is mounted on the outer side of the fixed frame 12, and a second connecting frame 19 is slidably connected to the inner side of the processing box 3. The movement of the second moving wheel 20 is controlled by four sets of first connecting frames 18 and second connecting frames 19, preventing the second moving wheel 20 from leaving its movement range and colliding with other components. The second moving wheel 20 is mounted on the outer side of the second connecting frame 19, and the second moving wheel 20 is in rolling connection with the inner side of the inclined plate 6. Figure 4 As shown, the second moving wheel 20 rolls up and down along the inclined plate 6 under the drive of the second connecting frame 19; Both the first connecting frame 18 and the second connecting frame 19 are equipped with a second buffer spring 21. An auxiliary rod 22 is installed at the inner end of the second buffer spring 21. The auxiliary rod 22 passes through the first connecting frame 18 and the second connecting frame 19. When the second connecting frame 19 moves downward to the bottom of the processing box 3, the second moving wheel 20 has pushed the inclined plate 6 to its maximum range, and the collection box 7 has completely avoided the sampling cylinder 11. At this time, the first connecting frame 18 begins to move downward to compress the second buffer spring 21, so that the auxiliary rod 22 gradually retracts into the first connecting frame 18 and the second connecting frame 19, avoiding the first connecting frame 18 directly squeezing the second connecting frame 19. The movable frame 4 is symmetrically arranged in a C-shape along the center of the support plate 1 during movement. There are four sets of movable frames 4. The first connecting frame 18 and the second connecting frame 19 are respectively in an inverted L-shape and a regular L-shape during movement. By setting the above-mentioned components in a C-shape or L-shape, on the one hand, it is to stabilize the normal movement of the components, and on the other hand, it is to drive the movement in the same direction through different connecting ends, so that the movement between components can be more flexible.

[0021] In this embodiment, a support frame 9 is installed on the upper surface of the support plate 1, and a push rod motor 10 is installed on the upper surface of the support frame 9. The output end of the push rod motor 10 passes through the support frame 9 and is rotatably connected to the upper surface of the sampling cylinder 11. A fixing frame 12 is sleeved on the outer surface of the sampling cylinder 11, and a crushing tooth 13 is installed on the lower surface of the sampling cylinder 11. An observation groove 14 is opened on the outer surface of the sampling cylinder 11, allowing the operator to see the number of samples in the sampling cylinder 11 through the observation groove 14. A drive motor 15 is installed on the inner wall of the fixing frame 12, and a second drive gear 17 is sleeved on the outer surface of the sampling cylinder 11. The output end of the drive motor 15 is keyed to a first drive gear 16. A circular groove is opened on the upper surface of the support plate 1. The size of the circular groove is twice the size of the sampling cylinder 11, making it easier for the sampling cylinder 11 to pass through the support plate 1 and enter the ground for sampling.

[0022] In this embodiment, when sampling is required, the device is moved to the sampling location, so that the support leg 2 and the first moving wheel 8 contact the ground. The push rod motor 10 is started, and the output end of the push rod motor 10 drives the sampling cylinder 11 to move downward. The sampling cylinder 11 drives the first connecting frame 18 to move downward via the fixed frame 12. Under the support of the second buffer spring 21, the first connecting frame 18 drives the second connecting frame 19 to move downward. The downward movement of the second connecting frame 19 drives the second moving wheel 20 to move downward. The second moving wheel 20 rolls downward along the inclined plate 6 and pushes the inclined plate 6 outward. As the inclined plate 6 moves outward, it compresses the first buffer spring 5, which in turn drives the moving frame 4 to move outward. The moving frame 4 moves outward, causing the collection box 7 to move outward along the ground via the first moving wheel 8, so that the collection box 7 avoids the moving range of the sampling cylinder 11. The drive motor 15 is started, and the output end of the drive motor 15 rotates, driving the first drive gear 16 to rotate. The first drive gear 16 rotates and meshes with the second drive gear 17, driving the sampling cylinder 11 to rotate. The sampling cylinder 11 rotates along the inside of the fixed frame 12. As the sampling cylinder 11 moves downward, it passes the crushing tooth 13 to sample the ground. Once the sample collection is complete in the observation slot 14, the output of the push rod motor 10 lifts the sampling cylinder 11 upwards. At the same time, the fixed frame 12 moves upwards, lifting the first connecting frame 18 and the second connecting frame 19 upwards, causing the second buffer spring 21 to rebound. The second moving wheel 20 moves upwards along the inclined plate 6. The rebound of the first buffer spring 5 drives the inclined plate 6 to move inwards. The inward movement of the inclined plate 6 drives the moving frame 4 to move inwards. The inward movement of the moving frame 4 drives the collection box 7 to move inwards. The collection box 7 moves inwards along the ground after passing the first moving wheel 8. After the sampling cylinder 11 passes over the inclined surface of the collection box 7, the two sets of collection boxes 7 come into contact with each other to collect the fallen sample. After the sampling cylinder 11 stops moving, the sampling cylinder 11 is tapped to remove it and the sample.

[0023] It should be noted that the push rod motor 10 will not rotate during the rotation of the sampling cylinder 11, and the fixing frame 12 will not rotate with the rotation of the sampling cylinder 11 after being limited by the first connecting frame 18 and the second connecting frame 19.

[0024] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model shall be included within the protection scope of the present utility model.

Claims

1. A geological and mineral resource exploration device, comprising a support plate (1), and further comprising support legs (2), a sampling cylinder (11), a push rod motor (10), a transmission motor (15), a first transmission gear (16), and a second transmission gear (17), characterized in that, Also includes: Processing box (3), the processing box (3) is fixed on the upper surface of the support plate (1); A movable frame (4) has its outer surface extending through the outer side of the processing box (3); An inclined plate (6) is mounted on the top of the movable frame (4) on its outer side. The first buffer spring (5) is installed inside the processing box (3) at its right end. The first buffer spring (5) is sleeved on the outer surface of the moving frame (4). The left end of the first buffer spring (5) is installed on the right side of the inclined plate (6). Collection box (7), which is fitted onto the bottom end of the movable frame (4); The first moving wheel (8) is mounted on the lower surface of the collection box (7).

2. The geological and mineral resource exploration equipment according to claim 1, characterized in that, The outer surface of the sampling tube (11) is provided with a fixing frame (12), the outer side of the fixing frame (12) is equipped with a first connecting frame (18), and the inner side of the processing box (3) is slidably connected with a second connecting frame (19).

3. The geological and mineral resource exploration equipment according to claim 2, characterized in that, The second connecting frame (19) is equipped with a second moving wheel (20) on its outer side, and the second moving wheel (20) is in rolling connection with the inner side of the inclined plate (6).

4. The geological and mineral resource exploration equipment according to claim 3, characterized in that, The first connecting frame (18) and the second connecting frame (19) are each equipped with a second buffer spring (21). The inner end of the second buffer spring (21) is equipped with an auxiliary rod (22), which passes through the first connecting frame (18) and the second connecting frame (19).

5. The geological and mineral resource exploration equipment according to claim 4, characterized in that, The movable frame (4) is symmetrically arranged in a C-shape along the center of the support plate (1) during the movement process, and there are four sets of movable frames (4).

6. The geological and mineral resource exploration equipment according to claim 5, characterized in that, The first connecting frame (18) and the second connecting frame (19) are respectively in an inverted L shape and an upright L shape during the movement.