Method and device capable of realizing three-dimensional metallogenic model demonstration
By designing a three-dimensional mineralization model display device that includes a glass working platform and a transparent panel, the problem of difficulty in three-dimensional display of ore bodies in existing technologies has been solved. This enables rapid and accurate three-dimensional display of geological elements in mining areas, simplifies the operation process, and improves the efficiency and accuracy of mineralization prediction.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-05-05
- Publication Date
- 2026-04-03
AI Technical Summary
Existing technologies struggle to visualize the complex morphology of ore bodies in three-dimensional space, making mineralization prediction difficult. Furthermore, existing software is expensive and complex to operate, hindering its widespread adoption and application.
Design a device for demonstrating three-dimensional mineralization models, including a glass work platform, a monitor, a transparent panel, and various models. The device displays three dimensions by combining geological profiles and ore body models, and adjusts the orientation and position of the models using telescopic rods and fixing clips.
It enables rapid and accurate three-dimensional physical visualization of geological elements and ore bodies in mining areas, simplifies operation, lowers the technical threshold, and improves the efficiency and accuracy of mineralization prediction.
Smart Images

Figure CN121789520A_ABST
Abstract
Description
Technical Field
[0001] This invention patent relates to the field of geological and mineral exploration research, and in particular to a method and apparatus for demonstrating three-dimensional mineralization models. Background Technology
[0002] The three-dimensional metallogenic model is based on the systematic collection of geological, physical, chemical, and remote sensing data of the study area. It constructs a three-dimensional framework using a series of geological profiles, realizes the three-dimensional modeling of metallogenic geological elements according to the principle of geological profile analysis, and realizes the three-dimensional spatial display of geological bodies and ore bodies. It analyzes the metallogenic regularity from a three-dimensional perspective, broadens the thinking, accurately predicts the enrichment location of ore bodies, and solves the problem of complex and diverse metallogenic geology.
[0003] Current physical geological research data mainly consists of planar maps and cross-sectional views. When conducting mineralization model studies, the focus is limited to two-dimensional planes. However, ore bodies are distributed in three-dimensional space, with complex and diverse shapes, posing significant challenges to mineralization prediction. Although some geological software exists that can display ore bodies in three dimensions, these programs suffer from drawbacks such as high cost, technical complexity, and long development cycles. They require specialized software engineers to input large amounts of complex data to create a virtual display, and subsequent adjustments and modifications are extremely cumbersome, hindering widespread adoption and application. Furthermore, they cannot be used for physical object demonstrations.
[0004] The purpose of this invention is to provide a method and apparatus for demonstrating three-dimensional mineralization models. This method can quickly and accurately display the geological elements and ore bodies of a mining area in three dimensions, conduct three-dimensional mineralization model research, and carry out mineral exploration prediction. The structure is ingenious, convenient, and efficient.
[0005] To achieve the above objectives, the present invention patent adopts the following technical solution: Design a method and apparatus for demonstrating a three-dimensional mineralization model, comprising a working device body, a glass working platform on the top surface of the working device body, a display screen inside the working device body, a storage drawer on the side of the working device body, a placement groove along the edge of the top surface of the working device body, a control shaft at the opening end of the placement groove, a telescopic rod connected to the control shaft, a hanging rod fixedly connected to the upper end of the telescopic rod, multiple sets of fixing clips connected to the hanging rod, a transparent panel connected to the lower part of the fixing clips, a geological profile map displayed on the transparent panel, a borehole model connected to the transparent panel, a tunnel model connected to the transparent panel, an ore body model connected to the transparent panel, and a surface model connected to the transparent panel.
[0006] Preferably, the top surface of the working device body is provided with a glass working platform, and the glass working platform is marked with coordinate scale.
[0007] Preferably, the top surface of the working device body is provided with a placement groove along the edge, and the opening end of the placement groove is provided with a control shaft. The control shaft is connected to a telescopic rod, and the placement groove is used to store the telescopic rod.
[0008] Preferably, the upper end of the telescopic rod is fixedly connected to a suspension rod, and multiple sets of fixing clips are connected to the suspension rod. Each fixing clip has a transparent panel connected to its lower part, and a geological profile map is placed inside the transparent panel.
[0009] Preferably, the transparent panel is connected to a drilling model, the transparent panel is connected to a tunnel model, and the transparent panel is connected to a surface model.
[0010] Preferably, the transparent panel is connected to a ore body model, which is made of semi-transparent super-elastic fiber material and has transparent suction cups on its edges, allowing it to adhere tightly to both sides of the transparent panel.
[0011] Preferably, the side of the working device body is provided with a storage drawer for storing items.
[0012] Preferably, the working device body is equipped with a display for connecting to a computer to display geological maps and read coordinates.
[0013] The present invention patent proposes a method and apparatus for demonstrating three-dimensional mineralization models, the advantages of which are as follows: The device, equipped with a glass work platform, monitor, control hinges, telescopic rods, hoisting rods, fixing clamps, and a transparent panel, can combine a geological plan and a geological profile of a mining area. The work platform and monitor display the geological plan and display coordinates, while the transparent panel controls the orientation and elevation of the geological profile. A storage drawer is located on the side of the device for storing items; its ingenious structure makes it convenient and practical.
[0014] Based on the location of elements in the geological profile, borehole models, tunnel models, surface models, and ore body models are installed to quickly realize the three-dimensional spatial display of geological elements and ore bodies. Mineralization patterns can be analyzed from a three-dimensional perspective, and the location of ore body enrichment can be predicted. This solves the complex and diverse problems of mineral exploration. It is simple to operate and easy to use. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the main structure of a method and apparatus for demonstrating a three-dimensional mineralization model, as proposed in this patent. Figure 2 This is a schematic diagram of an overlay of a method and apparatus for demonstrating a three-dimensional mineralization model, as proposed in this patent. Figure 3 This is a schematic diagram illustrating a three-dimensional mineralization model, as proposed in this patent, representing a method and apparatus for demonstrating three-dimensional mineralization models. Figure 4 This is a schematic diagram of the ore body model structure in this invention; In the diagram: 1. Working device body; 2. Working platform; 3. Placement slot; 4. Control shaft; 5. Telescopic rod; 6. Storage drawer; 7. Lifting rod; 8. Fixing clamp; 9. Transparent panel; 10. Geological profile; 11. Drill hole model; 12. Tunnel model; 13. Ore body model; 14. Surface model; 15. Monitor; 16. Transparent suction cup. Implementation
[0016] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0017] Reference Figures 1 to 2 A method and apparatus for demonstrating a three-dimensional mineralization model includes a working device body 1, a glass working platform 2 on the top surface of the working device body 1, a storage drawer 6 on the side of the working device body 1, a display 15 inside the working device body 1, a placement groove 3 along the edge of the top surface of the working device body 1, a control shaft 4 at the opening end of the placement groove 3, a telescopic rod 5 connected to the shaft 4, a hanging rod 7 fixedly connected to the upper end of the telescopic rod 5, multiple sets of fixing clips 8 connected to the hanging rod 7, a transparent panel 9 connected to the lower part of the fixing clips 8, a geological profile map 10 placed inside the transparent panel 9, a borehole model 11 connected to the transparent panel 9, a tunnel model 12 connected to the transparent panel 9, a surface model 14 connected to the transparent panel 9, an ore body model 13 connected to the transparent panel 9, and transparent suction cups 16 attached to the edge of the ore body model 13.
[0018] The glass work platform 2 is marked with horizontal and vertical coordinate scales for placing plan maps and reading position coordinates. The work device body is equipped with a monitor for connecting to a computer to display geological plan maps and read coordinates. The work device body 1 has a storage drawer 6 on its side for storing items.
[0019] The top surface of the working device body 1 is provided with a placement groove 3 along the edge. The opening end of the placement groove 3 is provided with a control shaft 4. The control shaft 4 is connected to a telescopic rod 5. The upper end of the telescopic rod 5 is fixedly connected to a hanging rod 7. Multiple sets of fixing clips 8 are connected to the hanging rod 7. The telescopic rod 5, the hanging rod 7 and the fixing clips 8 can be rotated by the control shaft 4 and placed into the placement groove 3.
[0020] A transparent panel 9 is connected to the lower part of the fixing clip 8. The fixing clip 8 can control the direction and height of the transparent panel 9. When not in use, the transparent panel 9 can be removed and stored in the storage drawer 6.
[0021] The transparent panel 9 is equipped with a geological profile map 10, which can be adjusted according to the direction and position of the geological profile map of the mining area. Drilling models 11, tunnel models 12 and surface models 14 can be installed between the transparent panels 9.
[0022] The transparent panel 9 can be connected to the ore body model 13. The ore body model is made of semi-transparent super elastic fiber material and has transparent suction cups 16 on the edges, which can be adsorbed and attached to both sides of the transparent panel to form the ore body model.
[0023] The above description is merely a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A method and apparatus for demonstrating a three-dimensional mineralization model, comprising a working device body (1), characterized in that: The top surface of the working device body (1) is provided with a glass working platform (2), the side of the working device body (1) is provided with a storage drawer (6), the interior of the working device body (1) is provided with a display (15), the top surface of the working device body (1) is provided with a placement groove (3) along the edge, the opening end of the placement groove (3) is provided with a control shaft (4), the control shaft (4) is connected to a telescopic rod (5), and the upper end of the telescopic rod (5) is fixedly connected to a hanging rod (7). The boom (7) is connected to multiple sets of fixing clips (8), and the lower part of the fixing clips (8) is connected to a transparent panel (9). The transparent panel (9) is equipped with a geological profile (10), a borehole model (11) is connected to the transparent panel (9), a tunnel model (12) is connected to the transparent panel (9), an ore body model (13) is connected to the transparent panel (9), a surface model (14) is connected to the transparent panel (9), and a transparent suction cup (16) is installed on the edge of the ore body model (13).
2. The method and apparatus for demonstrating a three-dimensional mineralization model according to claim 1, characterized in that: The top surface of the working device body (1) is provided with a glass working platform (2), and the edge of the glass working platform (2) is marked with coordinate scale.
3. The method and apparatus for demonstrating a three-dimensional mineralization model according to claim 1, characterized in that: The top surface of the working device body (1) is provided with a placement groove (3) along the edge. The opening end of the placement groove (3) is provided with a control shaft (4). The control shaft (4) is connected to a telescopic rod (5). The upper end of the telescopic rod (5) is fixedly connected to a lifting rod (7). The placement groove (3) is used to store the telescopic rod (5) and the lifting rod (7).
4. The method and apparatus for demonstrating a three-dimensional mineralization model according to claim 1, characterized in that: The boom (7) is connected to multiple sets of fixing clips (8), and the lower part of the fixing clips (8) is connected to a transparent panel (9), which is equipped with a geological profile (10).
5. The method and apparatus for demonstrating a three-dimensional mineralization model according to claim 1, characterized in that: The transparent panel (9) is fixed with a drilling model (11), the transparent panel (9) is fixed with a tunnel model (12), and the transparent panel (9) is fixed with a surface model (14).
6. The method and apparatus for demonstrating a three-dimensional mineralization model according to claim 1, characterized in that: The transparent panel (9) is fixed with a ore body model (13), which is made of semi-transparent super-elastic fiber material and has transparent suction cups (16) on the edge, which can be adsorbed and attached to both sides of the transparent panel (9).
7. The method and apparatus for demonstrating a three-dimensional mineralization model according to claim 1, characterized in that: The working device body (1) has a storage drawer (6) on its side for storing items.
8. The method and apparatus for demonstrating a three-dimensional mineralization model according to claim 1, characterized in that: The working device body (1) is equipped with a display (15) inside, which is used to connect to a computer to display geological maps and read coordinates.