An apparatus for processing a lepidolite concentrate
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-05
- Publication Date
- 2026-08-11
AI Technical Summary
[0005]为了克服目前浮选设备上的刮除部件移动范围受限,导致部分区域刮除不到,且在往回移动时容易将泡沫刮回,从而影响泡沫刮除的效率和效果的缺点,本实用新型提供一种能够对含有锂云母颗粒的泡沫进行刮除,防止部分区域刮除不到,提高刮除的效果,且能够防止刮板往回移动时将泡沫刮回,提高刮除的效率的锂云母精矿处理装置
[0012]本实用新型具有如下优点:1、本实用新型通过往复丝杆转动,使得滑块左右移动,使得刮板移动进行刮沫,在移动的过程中,滑动架会沿着导轨上的斜面向上移动,进而带动刮板抬起,从而能够对含有锂云母颗粒的泡沫进行刮除,防止部分区域刮除不到,提高刮除的效果,且能够防止刮板往回移动时将泡沫刮回,提高刮除的效率。
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Figure CN224614017U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of lithium mica concentrate processing, and in particular to a lithium mica concentrate processing device. Background Technology
[0002] Lepidolite concentrate is a mineral concentrate containing lithium, usually extracted from lepidolite, a lithium-containing aluminosilicate mineral. It is an important lithium resource, widely found in granite and pegmatite. Due to its lithium content, lepidolite concentrate has wide applications in battery material manufacturing, ceramics, glass, catalysts and other fields.
[0003] Current methods for processing lepidolite concentrate typically involve pouring a slurry of lepidolite concentrate mixed with water into a flotation device, introducing air, adding reagents, and stirring to form a foam layer. The foam layer is then scraped off using a scraping component. However, the scraping component on the current flotation device has a limited range of movement during the scraping process, resulting in some areas not being scraped off. Furthermore, when moving back, it is easy to scrape the foam back, thus affecting the efficiency and effectiveness of foam scraping.
[0004] Therefore, it is necessary to design a lepidolite concentrate processing device that can scrape off foam containing lepidolite particles, prevent some areas from being missed, improve the scraping effect, and prevent the scraper from scraping the foam back when it moves back, thereby improving the scraping efficiency. Utility Model Content
[0005] To overcome the shortcomings of current flotation equipment, such as the limited range of movement of the scraping components, which results in some areas not being scraped and the tendency to scrape foam back when moving back, thus affecting the efficiency and effectiveness of foam scraping, this utility model provides a lepidolite concentrate processing device that can scrape foam containing lepidolite particles, prevent some areas from being missed, improve the scraping effect, and prevent the scraper from scraping foam back when moving back, thereby improving the scraping efficiency.
[0006] Technical solution: A lithium mica concentrate processing device includes a base, a mixing box, a fixed frame, a first motor, a stirring frame, and a scraping mechanism. The mixing box is connected to the upper side of the base, and the fixed frame is connected to the lower right side of the base. The first motor is connected to the fixed frame, and the stirring frame is connected to the output shaft of the first motor. The stirring frame passes through the base and the mixing box, and a scraping mechanism for scraping out mica is provided between the base and the mixing box.
[0007] In one embodiment, the mixing box is made of a transparent material.
[0008] In one embodiment, the scraping mechanism includes a support plate, a second motor, a reciprocating screw, a slider, a sliding frame, a guide rail, an isolation frame, and a scraper. Two support plates are connected to the front of the base. The second motor is connected to the upper right side of the right support plate. A reciprocating screw is rotatably connected between the upper parts of the support plates. The reciprocating screw is connected to the output shaft of the second motor. A slider is threaded onto the reciprocating screw. A sliding frame is slidably connected to the slider. A guide rail is connected to the upper part of the mixing tank, and the guide rail contacts the sliding frame. An isolation frame is connected to the upper rear side of the base. The guide rail passes through the isolation frame, and the sliding frame contacts the isolation frame. A scraper is connected to the sliding frame.
[0009] In one embodiment, the guide rail is U-shaped.
[0010] In one embodiment, a cleaning mechanism is also included, which includes a guide frame, a cleaning plate, a telescopic spring, a squeezing frame, and a pressing block. The guide frame is connected to both the front and rear sides of the upper left part of the base. The cleaning plate is slidably connected to the rear guide frame. The cleaning plate is slidably connected to the mixing box. The squeezing frame is connected to the front side of the cleaning plate. The squeezing frame is slidably connected to the front guide frame and the mixing box. A telescopic spring is connected between the front guide frame and the squeezing frame. A pressing block is connected to the rear side of the slider.
[0011] In one embodiment, the extrusion frame is L-shaped.
[0012] The present invention has the following advantages: 1. The present invention uses the reciprocating screw to rotate, causing the slider to move left and right, which in turn causes the scraper to move to scrape the foam. During the movement, the sliding frame moves upward along the inclined surface on the guide rail, thereby lifting the scraper, which can scrape off the foam containing lithium mica particles, preventing some areas from being missed, improving the scraping effect, and preventing the scraper from scraping the foam back when it moves back, thus improving the scraping efficiency.
[0013] 2. When some foam remains on the inclined surface, the sliding block will also move as the slider moves, causing the pressing block to contact the extrusion frame. This causes the extrusion frame to move along the guide frame, which in turn moves the cleaning plate along the guide frame. This allows the residual foam on the inclined surface to be scraped off, reducing the waste of foam containing lithium mica particles and improving the recovery rate of lithium mica particles. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0015] Figure 2 This is a cross-sectional three-dimensional structural diagram of the flotation mechanism of this utility model.
[0016] Figure 3 This is a three-dimensional structural diagram of the first type of scraping mechanism of this utility model.
[0017] Figure 4 This is a schematic diagram of the second three-dimensional structure of the scraping mechanism of this utility model.
[0018] Figure 5 This is a three-dimensional structural diagram of the first type of cleaning mechanism of this utility model.
[0019] Figure 6 This is a schematic diagram of the second three-dimensional structure of the cleaning mechanism of this utility model.
[0020] The components in the diagram are labeled as follows: 1_base, 2_mixing box, 3_fixed frame, 4_first motor, 5_stirring frame, 6_scraping mechanism, 61_support plate, 62_second motor, 63_reciprocating screw, 64_slider, 65_sliding frame, 66_guide rail, 67_isolation frame, 68_scraper, 7_cleaning mechanism, 71_guide frame, 72_cleaning plate, 73_telescopic spring, 74_extrusion frame, 75_pressing block. Detailed Implementation
[0021] The present invention will be further described below with reference to the accompanying drawings and specific embodiments.
[0022] A lithium mica concentrate processing device, such as Figures 1-4 As shown, it includes a base 1, a mixing box 2, a fixing frame 3, a first motor 4, a stirring frame 5, and a scraping mechanism 6. The mixing box 2 is connected to the upper side of the base 1. The mixing box 2 is made of transparent material to facilitate observation of the processing. The fixing frame 3 is connected to the lower right side of the base 1. The first motor 4 is connected to the fixing frame 3. The stirring frame 5 is connected to the output shaft of the first motor 4. The stirring frame 5 passes through the base 1 and the mixing box 2. A scraping mechanism 6 for scraping out mica is provided between the base 1 and the mixing box 2.
[0023] like Figure 1 , Figure 3 and Figure 4 As shown, the scraping mechanism 6 includes a support plate 61, a second motor 62, a reciprocating screw 63, a slider 64, a sliding frame 65, a guide rail 66, an isolation frame 67, and a scraper 68. The front of the base 1 is connected to two support plates 61 on the left and right. The upper right side of the right support plate 61 is connected to the second motor 62. The upper part of the support plates 61 is rotatably connected to the reciprocating screw 63, which is connected to the output shaft of the second motor 62. The slider 64 is threadedly connected to the reciprocating screw 63, and the sliding frame 65 is slidably connected to the slider 64. The upper part of the mixing box 2 is connected to the guide rail 66, which is in contact with the sliding frame 65. The guide rail 66 is U-shaped. The upper rear side of the base 1 is connected to the isolation frame 67, through which the guide rail 66 passes. The sliding frame 65 is in contact with the isolation frame 67, and the scraper 68 is connected to the sliding frame 65.
[0024] like Figure 1, Figure 5 and Figure 6 As shown, it also includes a cleaning mechanism 7, which includes a guide frame 71, a cleaning plate 72, a telescopic spring 73, a squeezing frame 74, and a pressing block 75. The guide frame 71 is connected to both the front and rear sides of the upper left part of the base 1. The cleaning plate 72 is slidably connected to the rear guide frame 71. The cleaning plate 72 is slidably connected to the mixing box 2. The squeezing frame 74 is connected to the front side of the cleaning plate 72. The squeezing frame 74 is slidably connected to the front guide frame 71 and the mixing box 2. The squeezing frame 74 is L-shaped. The telescopic spring 73 is connected between the front guide frame 71 and the squeezing frame 74. The pressing block 75 is connected to the rear side of the slider 64.
[0025] This device can be used when processing lepidolite concentrate. Take the device to the location where the lepidolite concentrate needs processing, then pour water into the mixing tank 2. The mixing tank 2 is made of transparent material for easy observation of the processing. Next, add an appropriate amount of ground lepidolite concentrate to the water, and then start the first motor 4 on the fixed frame 3. The first motor 4 drives the stirring to rotate, thus mixing the lepidolite concentrate with water into a slurry of appropriate concentration. During the stirring process, a collector, modifier, and frother are added to the mixing tank 2, and air is introduced. As the bubbles rise, they adhere to hydrophobic lepidolite particles, which float to the surface of the slurry to form a foam layer. Then, start the second motor 62 on the support plate 61. The second motor 62 drives the reciprocating screw 63 to rotate, causing the slider 64 to move left and right under the action of the screw, so that the scraper 68 moves along the guide rail 66 to scrape the foam. The guide rail 66 is U-shaped. During the movement, when the sliding frame 65 moves to the leftmost side of the guide rail 66, it moves upward along the inclined surface of the guide rail 66, thus... The sliding frame 65 moves upward, thereby lifting the scraper 68 to scrape off the foam containing lepidolite particles. This prevents some areas from being missed, improving the scraping effect and preventing the scraper 68 from scraping the foam back when it moves back, thus improving scraping efficiency. The scraped foam containing lepidolite particles flows into the collection box from the inclined surface on the left side of the mixing box 2. If some foam remains on the inclined surface, the sliding block 64 will also move the pressing block 75, causing the pressing block 75 to contact the extrusion frame 74. 74 is L-shaped, allowing the extrusion frame 74 to move along the guide frame 71, which in turn drives the cleaning plate 72 to move along the guide frame 71. The telescopic spring 73 is stretched, which can scrape off the residual foam on the inclined surface, reducing the waste of foam containing lepidolite particles and improving the recovery rate of lepidolite particles. When the pressing block 75 disengages from the extrusion frame 74, the telescopic spring 73 rebounds, and the extrusion frame 74 and the cleaning plate 72 move back to their original positions. After processing is completed, the first motor 4 and the second motor 62 are turned off, and then the mixing box 2 is cleaned.
[0026] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A lithium mica concentrate processing device, characterized in that, It includes a base (1), a mixing box (2), a fixing frame (3), a first motor (4), a stirring frame (5), and a scraping mechanism (6). The mixing box (2) is connected to the upper side of the base (1), and the fixing frame (3) is connected to the lower right side of the base (1). The first motor (4) is connected to the fixing frame (3), and the stirring frame (5) is connected to the output shaft of the first motor (4). The stirring frame (5) passes through the base (1) and the mixing box (2). A scraping mechanism (6) for scraping out mica is provided between the base (1) and the mixing box (2).
2. The lithium mica concentrate processing device according to claim 1, characterized in that, The mixing box (2) is made of transparent material.
3. The lithium mica concentrate processing device according to claim 2, characterized in that, The scraping mechanism (6) includes a support plate (61), a second motor (62), a reciprocating screw (63), a slider (64), a sliding frame (65), a guide rail (66), an isolation frame (67), and a scraper (68). The base (1) has two support plates (61) connected to its front. The right support plate (61) has a second motor (62) connected to its upper right side. A reciprocating screw (63) is rotatably connected between the upper parts of the support plates (61). The reciprocating screw (63) and the second motor (68) are connected... The output shaft of 62) is connected, and a slider (64) is threadedly connected to the reciprocating screw (63). A sliding frame (65) is slidably connected to the slider (64). A guide rail (66) is connected to the upper part of the mixing box (2). The guide rail (66) contacts the sliding frame (65). An isolation frame (67) is connected to the upper rear part of the base (1). The guide rail (66) passes through the isolation frame (67). The sliding frame (65) contacts the isolation frame (67). A scraper (68) is connected to the sliding frame (65).
4. The lithium mica concentrate processing device according to claim 3, characterized in that, The guide rail (66) is U-shaped.
5. A lithium mica concentrate processing device according to claim 4, characterized in that, It also includes a cleaning mechanism (7), which includes a guide frame (71), a cleaning plate (72), a telescopic spring (73), a squeezing frame (74), and a pressing block (75). The base (1) is connected to the guide frame (71) on both the front and rear sides of the upper left. The cleaning plate (72) is slidably connected to the rear guide frame (71). The cleaning plate (72) is slidably connected to the mixing box (2). The squeezing frame (74) is connected to the front side of the cleaning plate (72). The squeezing frame (74) is slidably connected to the front guide frame (71). The squeezing frame (74) is slidably connected to the mixing box (2). A telescopic spring (73) is connected between the front guide frame (71) and the squeezing frame (74). The pressing block (75) is connected to the rear side of the slider (64).
6. The lithium mica concentrate processing device according to claim 5, characterized in that, The extrusion frame (74) is L-shaped.