Cutting device for mineral sampling
By designing a cutting device with a T-shaped rod and a placement plate, and utilizing a clamping structure and a vertical screw system, the problem of unstable hoisting during ore sampling was solved, achieving stable and safe ore cutting and ensuring the smooth progress of the cutting process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GEOPHYSICOCHEM ORE PROSPECTING TEAM JIANGSU GEOLOGY & MINERALS BUREAU
- Filing Date
- 2025-04-21
- Publication Date
- 2026-05-12
AI Technical Summary
During ore sampling, unstable hoisting can lead to safety and instability issues in cutting.
A cutting device comprising a T-shaped rod and a placement plate was designed. The device achieves stable clamping and lifting of the ore through a clamping structure and a vertical screw system. Combined with the flexible adjustment of the cutting blade, the device ensures the stability and safety of the cutting process.
This ensures the stability and safety of the ore during the cutting process, avoids the risk of falling during hoisting, and guarantees the smooth progress of the cutting.
Smart Images

Figure CN224231296U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of ore cutting, specifically a cutting device for mineral sampling. Background Technology
[0002] Various mineral resources on ores refer to mineral aggregates from which useful components can be extracted or which have certain usable properties. They are broadly classified into metallic minerals and non-metallic minerals.
[0003] During mineral mining, it is often necessary to sample the ore at the time of mining. In order to facilitate its analysis, the sample stones are cut after sampling. A special stone cutting machine is used for cutting, which generally consists of a cutting platform and a cutting blade. In order to cut smoothly, a hoisting mechanism is usually needed to lift the stone onto the cutting platform. Due to the irregular shape of the stone, this hoisting process is prone to instability and has a certain degree of danger, and it is also unstable during cutting. Utility Model Content
[0004] In view of the problems existing in the prior art, this utility model discloses a cutting device for mineral sampling. The technical solution adopted includes a processing box, a top cover, a water tank, a water spray head, a cutting blade mounting structure, a cutting blade, a vertical mounting groove, a vertical lead screw, a top knob, a lifting T-shaped plate, a T-shaped track, a T-shaped rod, a through hole, a placement plate, a blade groove, a clamping structure, a stepped groove, and a stabilizing shaft. The top of the processing box is open, with an opening on the right side. The top cover is fixed on the left side of the top, and a water tank is installed on the top cover. A water pump is installed in the water tank, and the water outlet is connected to the water spray head installed on the top of the top cover. During the cutting process, water is sprayed by the water spray head to reduce dust and prevent smoke and dust from spreading during the cutting process. The cutting blade mounting structure is set below the top cover in the processing box and is used to install the cutting blade. Vertical mounting grooves are opened on the front and rear walls of the right side of the processing box. A vertical shaft is fixed in the vertical mounting groove on the front side, and a vertical lead screw is rotatably installed in the vertical mounting groove on the rear side. The vertical lead screw is driven by the top knob. One end of the lifting T-shaped plate... The components are placed in vertical mounting slots, with one plate fitted to a vertical lead screw and the other to a vertical shaft. The two lifting T-plates are connected at the center by a rod. A T-shaped track runs horizontally through the lifting T-plate, and T-shaped rods are placed within this track. Placement plates are fixed to the two T-shaped rods, each with several cutting grooves on its left side. During cutting, the ore is cut into the grooves, either manually or with auxiliary tools. A clamping structure on the placement plate prevents instability during cutting. A stepped groove is located on the left side of the processing box, and a stabilizing shaft is fixed to the inner left wall. Through holes are formed in the left and right directions on the T-shaped rods, with the inner diameter of the through holes being one millimeter larger than the outer diameter of the stabilizing shaft. When the T-shaped rods are raised, the through holes align with the stabilizing shaft, allowing the T-shaped rods to move along the stabilizing shaft when the placement plate is manually pushed, thus enabling the T-shaped rods to move stably and smoothly with the placement plate towards the bottom of the top cover.
[0005] As a preferred technical solution of this utility model, the cutting blade mounting structure includes a front-to-back lead screw, a left-side mounting T-plate, a connecting plate, a mounting plate, an electrical box, a cutting motor, a front-to-back guide shaft, and a front adjustment knob. The front-to-back lead screw is rotatably mounted in the space below the top cover inside the processing box, and the front-to-back guide shaft is fixedly mounted. The front-to-back lead screw is driven by the front adjustment knob. Two left-side mounting T-plates are installed in conjunction with the front-to-back lead screw and are movably fitted with the front-to-back guide shaft. The two left-side mounting T-plates are connected by a connecting plate, and a mounting plate is fixed on the left-side mounting T-plate. A shaft is rotatably mounted between the two mounting plates. This shaft is driven by a cutting motor mounted on the front side of the front mounting plate, and the cutting blade is fixed on the shaft. An electrical box is also mounted on the front side of the mounting plate, supplying power to the cutting motor. The side wall of the front adjustment knob has an anti-slip groove, allowing manual rotation of the front adjustment knob to adjust the position of the cutting blade to different blade slot positions for convenient and smooth cutting. A battery in the electrical box supplies power to the cutting motor, which can be controlled by a remote control.
[0006] As a preferred technical solution of this utility model, the clamping structure includes a front and rear groove of the placement plate, a bidirectional lead screw, a rear knob, and an L-shaped clamping plate. The front and rear groove of the placement plate is opened at the right end. The bidirectional lead screw is rotatably installed in the front and rear groove of the placement plate. The bidirectional lead screw is driven by the rear knob. The vertical part of the L-shaped clamping plate is fitted in the front and rear groove of the placement plate. The two L-shaped clamping plates are symmetrically fitted on the bidirectional lead screw. The rear knob is manually rotated to drive the bidirectional lead screw to rotate, so that the two L-shaped clamping plates approach synchronously to complete the clamping of the ore sample placed on the placement plate.
[0007] As a preferred technical solution of this utility model, a friction anti-slip layer is provided on the inner side wall of the L-shaped clamp.
[0008] As a preferred technical solution of this utility model, the stabilizing shaft is made of a rigid material.
[0009] The beneficial effects of this utility model are as follows: By pulling the T-shaped rod and the placement plate outward, the ore can be placed directly at a low position, avoiding the risk of falling during hoisting and lifting. After the ore is placed at a low position, it is clamped by the clamping structure. Then, the T-shaped rod and the placement plate are pushed back, and the lifting T-shaped plate is raised by the vertical screw and the top knob. The T-shaped rod is raised to the height where its through hole is aligned with the stabilizing shaft. The T-shaped rod is manually pushed to move the ore towards the cutting blade, and the cutting is completed during the movement. Before cutting, the cutting position is adjusted by the cutting blade to align it with the corresponding blade groove to ensure smooth cutting. Attached Figure Description
[0010] Figure 1 This is a schematic diagram of the structure of this utility model;
[0011] Figure 2 This is a top view of the structure of this utility model;
[0012] Figure 3 This is the right view of the present invention.
[0013] In the diagram: 1. Processing box; 2. Top cover; 3. Water tank; 4. Sprayer head; 5. Front and rear lead screw; 6. Left side T-plate; 7. Connecting plate; 8. Mounting plate; 9. Cutting blade; 10. Front and rear guide shaft; 11. Front adjustment knob; 12. Vertical mounting groove; 13. Top knob; 14. Lifting T-plate; 15. T-rail; 16. T-bar; 17. Through hole; 18. Placement plate; 19. Blade groove; 10. Placement plate front and rear groove; 10. Bidirectional lead screw; 11. Rear knob; 11. L-shaped clamp; 22. Stepped groove; 23. Stabilizing shaft. Detailed Implementation
[0014] Example 1
[0015] like Figures 1 to 3 As shown, this utility model discloses a cutting device for mineral sampling. The technical solution includes a processing box 1, a top cover 2, a water tank 3, a water spray head 4, a cutting blade mounting structure, a cutting blade 54, a vertical mounting groove 8, a vertical lead screw 9, a top knob 10, a lifting T-shaped plate 11, a T-shaped track 12, a T-shaped rod 13, a through hole 14, a placement plate 15, a blade groove 16, a clamping structure, a stepped groove 20, and a stabilizing shaft 21. The top of the processing box 1 is open, with an opening on the right side. The top cover 2 is fixed to the left side of the top, and the water tank 3 is installed on the top cover 2. A water pump is installed in the water tank 3, and the water outlet is connected to the water spray head 4 installed at the top inside the top cover 2. The cutting blade mounting structure is located below the top cover 2 in the processing box 1, and the cutting blade 54 is installed through it. Vertical mounting grooves 8 are opened on the front and rear walls of the processing box 1 on the right side. A vertical shaft is fixed in the vertical mounting groove 8 on the front side, and the vertical shaft is fixed in the vertical mounting groove 8 on the rear side. A vertical screw 9 is rotatably installed in the vertical mounting slot 8. The vertical screw 9 is driven by the top knob 10. One end of the lifting T-shaped plate 11 is fitted into the vertical mounting slot 8. One of them is installed in conjunction with the vertical screw 9, and the other is movably fitted with the vertical shaft. The middle of the two lifting T-shaped plates 11 is connected by a rod. A T-shaped track 12 is opened on the lifting T-shaped plate 11 in the left and right direction. The T-shaped rod 13 is placed in the T-shaped track 12. A placement plate 15 is fixed on the two T-shaped rods 13. Several knife-edge grooves 16 are opened on the left side of the placement plate 15. A clamping structure is set on the placement plate 15. A stepped groove 20 is opened on the left side of the inner wall of the processing box 1. A stabilizing shaft 21 is fixed on the inner left side wall. A through hole 14 is opened in the left and right direction of the T-shaped rod 13. The inner diameter of the through hole 14 is one millimeter larger than the outer diameter of the stabilizing shaft 21. After the T-shaped rod 13 is raised, the through hole 14 corresponds to the position of the stabilizing shaft 21.
[0016] As a preferred technical solution of this utility model, the cutting blade mounting structure installs the cutting blade and allows for flexible adjustment of its position during use. A front-to-back lead screw 5 is rotatably mounted in the space below the top cover 2 within the processing box 1, and a front-to-back guide shaft 6 is fixedly mounted. The front-to-back lead screw 5 is driven by a front adjustment knob 7. Two T-shaped plates 51 are mounted on the left side, both of which are installed in conjunction with the front-to-back lead screw 5 and are movably fitted with the front-to-back guide shaft 6. The two left-side T-shaped plates 51 are connected by a connecting plate 52. A mounting plate 53 is fixedly mounted on the left-side T-shaped plates 51, and a shaft is rotatably mounted between the two mounting plates 53. This shaft is driven by a cutting motor 56 mounted on the front side of the front mounting plate 53. A cutting blade 54 is fixed on the shaft. An electrical box 55 is also mounted on the front side of the mounting plate 53, through which the cutting motor 56 is powered. The side wall of the front adjustment knob 7 has an anti-slip groove.
[0017] As a preferred technical solution of this utility model, the clamping structure clamps the ore to ensure the stability of the cutting process. Its specific structure includes a front and rear groove 17 of the placement plate, a bidirectional screw 171, a rear knob 18, and an L-shaped clamping plate 19. The front and rear groove 17 of the placement plate 15 is opened at the right end. The bidirectional screw 171 is rotatably installed in the front and rear groove 17 of the placement plate. The bidirectional screw 171 is driven by the rear knob 18. The vertical part of the L-shaped clamping plate 19 is placed in the front and rear groove 17 of the placement plate. The two L-shaped clamping plates 19 are symmetrically installed on the bidirectional screw 171.
[0018] As a preferred technical solution of this utility model, a friction anti-slip layer is provided on the inner wall of the L-shaped clamp 19.
[0019] As a preferred technical solution of this utility model, the stabilizing shaft 21 is made of rigid material.
[0020] The working principle of this utility model is as follows: When in use, pulling out the T-shaped rod and the placement plate allows for direct placement of ore at a low position, avoiding the risk of falling during hoisting and lifting. After the ore is placed at the low position, manually turning the rear knob drives the bidirectional screw to rotate, and the two L-shaped clamps move synchronously to clamp the ore. Then, the T-shaped rod and the placement plate are pushed back, and the vertical screw and the top knob lift the lifting T-shaped plate, raising the T-shaped rod to the height where its through hole aligns with the stabilizing shaft. Manually pushing the T-shaped rod moves the ore toward the cutting blade, completing the cutting process during the movement.
[0021] Components not described in detail in this article are existing technologies.
[0022] While the specific embodiments of this utility model have been described in detail above, this utility model is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of this utility model. Modifications or variations that do not involve creative labor are still within the protection scope of this utility model.
Claims
1. A cutting device for mineral sampling, comprising a processing box (1), a top cover (2), a water tank (3), and a water spray nozzle (4), characterized in that: The components include a cutting blade mounting structure, a cutting blade (54), a vertical mounting groove (8), a vertical lead screw (9), a top knob (10), a lifting T-plate (11), a T-rail (12), a T-rod (13), a through hole (14), a placement plate (15), a blade groove (16), a clamping structure, a stepped groove (20), and a stabilizing shaft (21). The processing box (1) has an open top, an open right side, and a fixed top cover (2) on the left side of the top. A water tank (3) is installed on the top cover (2). The water tank (3) is equipped with a water pump, and the outlet end is connected to the spray nozzle (4) installed at the top of the top cover (2); the treatment box (1) is located below the top cover (2) and is equipped with a cutting blade mounting structure, through which the cutting blade (54) is installed; the front and rear walls of the treatment box (1) on the right side have vertical mounting slots (8), the vertical shaft is fixed in the vertical mounting slot (8) on the front side, and the vertical screw (9) is rotatably installed in the vertical mounting slot (8) on the rear side; the vertical screw (9) Driven by a top knob (10); one end of the lifting T-plate (11) is fitted into a vertical mounting slot (8), one of which is fitted into a vertical lead screw (9), and the other is movably fitted into a vertical shaft. The middle of the two lifting T-plates (11) is connected by a rod. A T-shaped track (12) runs through the lifting T-plate (11) in the left-right direction. T-shaped rods (13) are fitted into the T-shaped track (12), and two T-shaped rods (13) are fixed on the top of the two T-shaped rods (13). Plate (15); the left side of the placement plate (15) has several knife-edge grooves (16); the placement plate (15) is provided with a clamping structure; the left side of the inner wall of the processing box (1) has a stepped groove (20), and the inner left side wall is fixed with a stabilizing shaft (21); the T-shaped rod (13) has a through hole (14) in the left and right directions, the inner diameter of the through hole (14) is one millimeter larger than the outer diameter of the stabilizing shaft (21), and the through hole (14) corresponds to the stabilizing shaft (21) after the T-shaped rod (13) is raised.
2. The cutting device for mineral sampling according to claim 1, characterized in that: The cutting blade mounting structure includes a front-to-back lead screw (5), a left-side mounting T-plate (51), a connecting plate (52), a mounting plate (53), an electrical box (55), a cutting motor (56), a front-to-back guide shaft (6), and a front adjustment knob (7); the front-to-back lead screw (5) is rotatably mounted in the space below the top cover (2) inside the processing box (1), and the front-to-back guide shaft (6) is fixedly mounted, wherein the front-to-back lead screw (5) is driven by the front adjustment knob (7); there are two left-side mounting T-plates (51), both of which are connected to... The front and rear lead screws (5) are installed together and are movably fitted with the front and rear guide shafts (6). Two left-side T-shaped plates (51) are connected by a connecting plate (52). A mounting plate (53) is fixed on the left-side T-shaped plate (51). A rotating shaft is mounted between the two mounting plates (53). This shaft is driven by a cutting motor (56) mounted on the front side of the front mounting plate (53). A cutting blade (54) is fixed on the shaft. An electrical box (55) is also mounted on the front side of the mounting plate (53) to supply power to the cutting motor (56).
3. The cutting device for mineral sampling according to claim 2, characterized in that: The front adjustment knob (7) has anti-slip grooves on its side wall.
4. The cutting device for mineral sampling according to claim 1, characterized in that: The clamping structure includes a front and rear groove (17) for the placement plate, a two-way lead screw (171), a rear knob (18), and an L-shaped clamp (19). The placement plate (15) has a front and rear groove (17) on its right side, and the two-way lead screw (171) is rotatably installed in the front and rear groove (17). The two-way lead screw (171) is driven by the rear knob (18). The vertical part of the L-shaped clamp (19) is fitted into the front and rear groove (17) of the placement plate, and the two L-shaped clamps (19) are symmetrically fitted on the two-way lead screw (171).
5. A cutting device for mineral sampling according to claim 4, characterized in that: A friction anti-slip layer is provided on the inner wall of the L-shaped clamp (19).
6. A cutting device for mineral sampling according to claim 1, characterized in that: The stabilizing shaft (21) is made of a rigid material.