Ore classified storage and display device
By introducing electric uniform rotation structure, anti-tilt structure, moving structure, annular isolation storage structure and shock-absorbing damping structure into the ore display device, the problems of limited display angle of the display device and lack of partition in the internal space are solved, and the ore display and classified storage are achieved, which improves the display effect and the stability and safety of the device.
Patent Information
- Application Number
- CN202422416074.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-08
- Publication Date
- 2025-06-03
- Estimated Expiration
- 2034-10-08
AI Technical Summary
When displaying ore, the existing ore display device has limited display angles, making it difficult to achieve comprehensive observation, and the internal space lacks partitions, making it difficult to store and display classified according to the type of ore.
A ore classification storage and display device is designed, adopting an electric uniform rotation structure, an anti-tilt structure, a moving structure, annular isolation storage structure and a shock-absorbing and damping structure. It is classified and isolated by the combination of glass cover and glass partition, and the rotating disc is driven to rotate at a constant speed through the transmission shaft.
The ore is fully displayed and classified and stored, which improves the display effect, enhances the stability and safety of the device, and improves the seismic resistance.
Smart Images

Figure CN222929515U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the field of ore display, and particularly relates to an ore classification storage and display device. Background Art
[0002] An ore display device can be a device or structure used to display ores of different types or from different sources. These display devices are usually designed to be aesthetically pleasing and can clearly display the characteristics and properties of each ore.
[0003] When the existing display devices are used for ore display, the existing display devices often store the ores in a display cabinet and display the ores in sequence in the display cabinet. However, due to the relatively limited display angle of the display cabinet, if people need to observe the ores comprehensively, they need to move to view other aspects of the ores. Moreover, the internal space of the display cabinet is relatively large, and it is often difficult to classify and store the ores according to different ore types, thus greatly affecting the display effect of the device on the ores.
[0004] Therefore, aiming at the problem that when the above-mentioned display device is used for ore display, a general display cabinet can often only display one side of the ore, and the internal display space lacks partitions, and it is often difficult to classify and store the ores well according to different ore types, an ore classification storage and display device is developed. By adding an electric uniform rotation structure, an anti-tipping structure, a moving structure, an annular isolation type storage structure and a shock damping structure to the display device, the display effect of the device on different ores can be greatly improved, and its stability and safety during use can be improved, and the seismic performance of the device can also be improved. Content of the Utility Model
[0005] In order to overcome the problem that when the display device is used for ore display, the display structure has a poor display effect on the ores and it is difficult to classify and store the ores efficiently.
[0006] The technical solution of the utility model is: an ore classification storage and display device, which includes a counterweight and a motor, and also includes a bearing assembly, a support assembly, a display assembly and a moving assembly. The display assembly includes a glass cover, a handle, a rotating disk, a glass cover, a glass partition, a mounting shaft and a transmission shaft. A circular glass cover is installed at the upper end of the rotating disk. A mounting shaft is fixedly connected to the center inside the glass cover. Eight glass partitions are installed between the glass cover and the mounting shaft at equal intervals around the mounting shaft. A glass cover is installed on the mounting shaft by threading. A handle is fixedly connected to the upper end of the glass cover. A transmission shaft is fixedly connected to the lower end of the rotating disk. The lower end of the transmission shaft is connected to the upper end of the output unit of the motor.
[0007] Preferably, the inner wall of the glass cover can be classified and isolated by the glass cover and equally spaced glass partitions, so that workers can put ores into the rotating disk for display, and the rotation of the transmission shaft drives the rotating disk to rotate at a constant speed to drive the minerals on the rotating disk for display.
[0008] Preferably, moving components for damping and shock absorption are installed at the four corner edges of the bearing component, a supporting component for assisting in stabilizing the display component is arranged at the upper end of the bearing component, and a display component for circularly classifying ores and driving the ores to rotate is arranged on the inner wall of the supporting component. During use, the glass-made supporting component can circularly classify the ores and drive the ores to rotate for display, so as to improve the display effect of the device on the ores. The moving component cooperates with the bearing component to drive the device to move flexibly and improve the stability of the ores during movement.
[0009] Preferably, the supporting component includes a supporting base, an installation groove, a limiting cylinder and a bracket. The inside of the supporting base is hollow, a counterweight block is installed on the inner wall of the supporting base, and an installation groove is penetrated and opened at the upper end of the supporting base. During use, the supporting base cooperates with the counterweight block to improve the stability of the rotating disk to prevent it from tipping over during display, thereby improving the safety of the device during display.
[0010] Preferably, the motor is installed in the installation groove, the limiting cylinder is fixedly connected to the upper end of the supporting base, and the bracket is fixedly connected to the outer wall of the limiting cylinder. During use, the motor can drive the transmission shaft to rotate to drive the rotating disk to rotate, so as to facilitate the user to display the ores, and the bracket can improve the stability of the rotating disk during rotation.
[0011] Preferably, the bearing component includes a bearing platform, a first groove body, a handle and a hinge groove. The supporting base is installed on the upper end of the bearing platform, and handles are fixedly connected to the left and right sides of the upper end of the bearing platform. During use, the bearing platform can stably carry other components, and the handle can facilitate the worker to push the bearing platform to move.
[0012] Preferably, two groups of symmetrically arranged hinge grooves are opened at the lower end of the bearing platform, and first groove bodies are penetrated and opened at the four corner edges of the upper and lower ends of the bearing platform. During use, the hinge rod can be connected through the hinge groove, and the damper can be limited and installed through the first groove body.
[0013] Preferably, the moving component includes moving wheels, dampers, hinge blocks and hinge rods. The damper is installed in the first groove body. The lower end of the damper is fixedly connected with a moving wheel. The outer wall of the moving wheel is fixedly connected with a hinge block. The hinge rod is hingedly installed on the hinge block, and the other end of the hinge rod is hingedly installed in the hinge groove. When in use, the carrying platform can be flexibly driven to move through the moving wheels, and the moving wheels can be damped and shock-absorbed through the cooperation of the dampers and the hinge rods.
[0014] The beneficial effects of the present utility model are as follows:
[0015] 1. Through the cooperation of the glass cover and the glass partition, the inner wall of the glass cover can be classified and isolated. By rotating the transmission shaft, the rotating disk can be driven to rotate at a constant speed, so as to improve the display effect of the minerals on the rotating disk, and further enable the device to perform classified and rotating display of the ores.
[0016] 2. The carrying platform can be flexibly driven to move through the moving wheels, and the moving wheels can be damped and shock-absorbed through the cooperation of the dampers and the hinge rods;
[0017] 3. By cooperating the support base with the counterweight, the stability of the rotating disk can be improved to prevent it from tipping over during display, thereby enhancing the safety of the device during display;
[0018] 4. The support component made of glass can classify the ores in a circular shape and drive the ores to rotate for display, so as to improve the display effect of the device on the ores. The moving component cooperates with the carrying component to drive the device to move flexibly and improve the stability of the ores during movement. Description of the Drawings
[0019] Figure 1 Shown is a three-dimensional structural schematic diagram of the ore classification, storage and display device of the present utility model;
[0020] Figure 2 Shown is a three-dimensional structural exploded schematic diagram of the ore classification, storage and display device of the present utility model;
[0021] Figure 3 Shown is a three-dimensional structural schematic diagram of the carrying component of the ore classification, storage and display device of the present utility model;
[0022] Figure 4 Shown is a three-dimensional structural exploded schematic diagram of the moving component of the ore classification, storage and display device of the present utility model;
[0023] Figure 5 Shown is a three-dimensional structural exploded schematic diagram of the support component and the counterweight of the ore classification, storage and display device of the present utility model;
[0024] Figure 6 The figure shows a schematic exploded three-dimensional structure diagram of the display component and the motor of the ore classification storage and display device of the present utility model.
[0025] Explanation of reference numerals: 101 - bearing platform, 102 - first groove body, 103 - handle, 104 - hinge groove, 201 - support base, 202 - installation groove, 203 - limiting cylinder, 204 - bracket, 301 - glass cover, 302 - grip, 303 - rotating disk, 304 - glass cover, 305 - glass partition, 306 - mounting shaft, 307 - transmission shaft, 401 - moving wheel, 402 - damper, 403 - hinge block, 404 - hinge rod, 5 - counterweight, 6 - motor. Detailed implementation manners
[0026] The present utility model will be further described below in conjunction with the accompanying drawings and embodiments.
[0027] Please refer to Figures 1-6 , the present utility model provides an embodiment: an ore classification storage and display device, including a counterweight 5 and a motor 6, and further including a bearing component, a support component, a display component and a moving component. The display component includes a glass cover 301, a grip 302, a rotating disk 303, a glass cover 304, a glass partition 305, a mounting shaft 306 and a transmission shaft 307. The upper end of the rotating disk 303 is provided with a circular glass cover 304. The center of the glass cover 304 is fixedly connected with a mounting shaft 306. Between the glass cover 304 and the mounting shaft 306, eight glass partitions 305 are installed at equal intervals around the mounting shaft 306. A glass cover 301 is threadedly installed on the mounting shaft 306. The upper end of the glass cover 301 is fixedly connected with a grip 302. The lower end of the rotating disk 303 is fixedly connected with a transmission shaft 307. The lower end of the transmission shaft 307 is connected to the upper end of the output unit of the motor 6. Through the cooperation of the glass cover 304 and the glass partitions 305 arranged at equal intervals, the inner wall of the glass cover 304 can be classified and isolated, so that workers can put ores into the rotating disk 303 for display, and drive the rotating disk 303 to rotate at a constant speed through the rotation of the transmission shaft 307, so as to drive the minerals on the rotating disk 303 to be displayed. The moving components for damping and shock absorption are installed at the four corner edges of the bearing component. The upper end of the bearing component is provided with a support component for assisting in stabilizing the display component. The inner wall of the support component is provided with a display component for classifying ores in a circular shape and driving the ores to rotate. When in use, the support component made of glass can classify ores in a circular shape and drive the ores to rotate for display, so as to improve the display effect of the device on ores. The moving component cooperates with the bearing component to drive the device to move flexibly and improve the stability of the ores during movement.
[0028] Please refer to Figures 3-4, in this embodiment, the bearing assembly includes a bearing table 101, a first groove 102, a handle 103 and a hinge groove 104. The support base 201 is installed at the upper end of the bearing table 101. Handles 103 are fixedly connected to the left and right sides of the upper end of the bearing table 101. During use, other components can be stably borne by the bearing table 101, and the handle 103 can be used to facilitate workers to push the bearing table 101 to move. Two groups of symmetrically arranged hinge grooves 104 are opened at the lower end of the bearing table 101. First grooves 102 are penetrated and opened at the four-corner edges of the upper and lower ends of the bearing table 101. During use, the hinge rod 404 can be connected through the hinge groove 104, and the damper 402 can be installed in a limited way through the first groove 102. The moving assembly includes a moving wheel 401, a damper 402, a hinge block 403 and a hinge rod 404. The damper 402 is installed in the first groove 102. The lower end of the damper 402 is fixedly connected to the moving wheel 401. A hinge block 403 is fixedly connected to the outer wall of the moving wheel 401. A hinge rod 404 is hingedly installed on the hinge block 403. The other end of the hinge rod 404 is hingedly installed in the hinge groove 104. During use, the bearing table 101 can be driven to move flexibly through the moving wheel 401, and the moving wheel 401 can be damped and shock-absorbed through the cooperation of the damper 402 and the hinge rod 404.
[0029] Please refer to Figure 6 , in this embodiment, the support assembly includes a support base 201, an installation groove 202, a limiting cylinder 203 and a bracket 204. The inside of the support base 201 is hollow. A counterweight 5 is installed on the inner wall of the support base 201. An installation groove 202 is penetrated and opened at the upper end of the support base 201. During use, the stability of the rotating disk 303 can be improved through the cooperation of the support base 201 and the counterweight 5 to prevent it from tipping over during display, thereby improving the safety of the device during display. The motor 6 is installed in the installation groove 202. A limiting cylinder 203 is fixedly connected to the upper end of the support base 201. A bracket 204 is fixedly connected to the outer wall of the limiting cylinder 203. During use, the motor 6 can drive the transmission shaft 307 to rotate to drive the rotating disk 303 to rotate, so as to facilitate the user to display the ore, and the stability of the rotating disk 303 during rotation can be improved through the bracket 204.
[0030] When working, first, the worker holds the handle 103 and drives the bearing table 101 to move flexibly by pushing the handle 103 and cooperating with the moving wheel 401 to move the device to a suitable display position;
[0031] Next, hold the grip 302 to thread the glass cover 301 off the mounting shaft 306, and sequentially place different ores into the annular isolation type display groove formed by the glass cover 304 and the glass partition 305, and then thread the glass cover 301 back into the mounting shaft 306.
[0032] Then, start the motor 6, and drive the transmission shaft 307 to rotate by the motor 6, so as to drive the rotating disc 303 to rotate at a constant speed, and drive the ores sorted and stored in the display groove to be displayed in all directions.
[0033] Through the above steps, the glass cover 304 and the glass partition 305 can be used to isolate and store the ores in a classified manner, and the motor 6 is used to drive the transmission shaft 307 to make the rotating disc 303 rotate at a constant speed, so as to drive the minerals classified and displayed on the rotating disc 303 to rotate, greatly improving the display effect of the device on the ores, and solving the problems that when the display device is used for ore display, the display structure has a poor display effect on the ores, and it is difficult to classify and store the ores efficiently.
[0034] The above has described the embodiments of the present invention in detail with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments, and various changes can be made without departing from the spirit of the present invention within the scope of knowledge possessed by those skilled in the art.
Claims
1. A device for sorting, storing and displaying ore, comprising a counterweight (5) and a motor (6), characterized in that: The invention also comprises a bearing assembly, a supporting assembly, a display assembly and a moving assembly. The display assembly comprises a glass cover (301), a handle (302), a rotating disk (303), a glass cover (304), a glass partition (305), a mounting shaft (306) and a transmission shaft (307). A circular glass cover (304) is mounted on the upper end of the rotating disk (303). The center of the glass cover (304) is fixedly connected to the mounting shaft (306). Eight glass partitions (305) are mounted between the glass cover (304) and the mounting shaft (306) and are equidistantly distributed around the mounting shaft (306). The glass cover (301) is threadedly mounted on the mounting shaft (306). The upper end of the glass cover (301) is fixedly connected to the handle (302). The lower end of the rotating disk (303) is fixedly connected to the transmission shaft (307). The lower end of the transmission shaft (307) is connected to the upper end of the output unit of the motor (6).
2. The ore classification storage and display device according to claim 1, characterized in that: The four corner edges of the bearing assembly are equipped with movable assemblies for damping and absorbing shock, the upper end of the bearing assembly is provided with a supporting assembly for assisting in stabilizing the display assembly, and the inner wall of the supporting assembly is provided with a display assembly for circularly classifying the ore and driving the ore to rotate.
3. The ore classification storage and display device according to claim 2 is characterized in that: The support assembly comprises a support base (201), a mounting groove (202), a limiting cylinder (203) and a bracket (204); the interior of the support base (201) is hollow, a counterweight (5) is installed on the inner wall of the support base (201), and the upper end of the support base (201) is penetrated by the mounting groove (202).
4. The ore classification storage and display device according to claim 3 is characterized in that: The motor (6) is installed in the installation groove (202), the upper end of the support base (201) is fixedly connected to the limiting cylinder (203), and the outer wall of the limiting cylinder (203) is fixedly connected to the bracket (204).
5. The ore classification storage and display device according to claim 4 is characterized in that: The bearing assembly comprises a bearing platform (101), a first slot body (102), a handle (103) and a hinge slot (104); the support base (201) is mounted on the upper end of the bearing platform (101); and the handles (103) are fixedly connected to the left and right sides of the upper end of the bearing platform (101).
6. The ore classification storage and display device according to claim 5, characterized in that: Two groups of hinge grooves (104) are provided at the lower end of the support platform (101) and are symmetrical with each other. First groove bodies (102) are provided through the four corner edges at the upper and lower ends of the support platform (101).
7. The ore classification storage and display device according to claim 6, characterized in that: The moving assembly comprises a moving wheel (401), a damper (402), a hinge block (403) and a hinge rod (404); the damper (402) is installed in the first slot body (102); the lower end of the damper (402) is fixedly connected to the moving wheel (401); the outer wall of the moving wheel (401) is fixedly connected to the hinge block (403); the hinge rod (404) is hingedly installed on the hinge block (403); and the other end of the hinge rod (404) is hingedly installed in the hinge slot (104).