Swing type rhinestone screening device
By driving the shaking of square pipes and square plates by electric telescopic rods, the layer-by-layer screening of rhinestones is achieved, solving the problems of low efficiency and low accuracy of traditional rhinestone screening devices, and improving production efficiency and product quality.
Patent Information
- Application Number
- CN202422389896.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-30
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2034-09-30
AI Technical Summary
The traditional rhinestone screening device is inefficient and has low screening accuracy. The mismatch between feeding speed and swing speed leads to uneven discharge, affecting production efficiency and product quality.
Driven electric telescopic rods are used to drive the square tubes and square plates inside the cylindrical mesh frame to shake. Through layer by layer screening, the rhinestones that meet the size are left inside and discharged from specific holes. The rhinestones that do not meet the size are discharged from the peripheral mesh frame. Combined with the material discharge mechanism, the stacking is cleared and accumulated, and the linkage and screening quality are improved.
The efficiency and quality of rhinestone screening are improved, and the problem of small-sized rhinestones being unable to be discharged due to rapid accumulation and swing is avoided, thus achieving an efficient and stable screening process.
Smart Images

Figure CN223221913U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of water drill production, in particular to a swing type water drill screening device. Background Art
[0002] Rhinestones are widely used in jewelry manufacturing, and screening during their processing is crucial for improving production efficiency and ensuring product quality. Traditional rhinestone screening devices typically use fixed screens and manual operation, resulting in low efficiency and low screening accuracy. With the advancement of industrial automation technology, the development of an automated, highly efficient, swing-type rhinestone screening device has become crucial for improving rhinestone processing.
[0003] Existing swing-type quartz crystal screening devices can experience uneven discharge due to factors such as feed rate, quartz crystal size distribution, and the oscillation characteristics of the screening device. When the feed rate is high and the oscillation speed is slow, quartz crystals tend to accumulate, affecting the discharge speed of quartz crystals of other sizes. Conversely, when the oscillation speed is high, small quartz crystals may not be discharged quickly enough and may be discharged together with larger quartz crystals, resulting in low screening accuracy. Utility Model Content
[0004] In order to overcome the above-mentioned technical problems, the practical purpose of the present invention is to provide a swinging water drill screening device, which can simultaneously drive the square tubes and square plates inside the three cylindrical grids to swing by driving the electric telescopic rod, and screen the water drills layer by layer, effectively improving the linkage of the machinery. The square plates and square tubes will isolate the cylindrical grid into two spaces. The water drills corresponding to the current cylindrical grid size will remain inside and be discharged from a corresponding circular hole at one end. The non-corresponding water drills will be discharged from the outer grid and then enter other cylindrical grids along the arc frame three, effectively improving the screening quality.
[0005] A swing-type water drill screening device, comprising:
[0006] The water drill screening mechanism includes a box body, a square shell is fixedly connected to the top wall of the box body, an arc frame 2 is opened near the bottom of the box body, four circular holes 1 are opened at equal intervals on the outer wall of one side of the box body, and an arc frame 1 is fixedly connected to the outer wall of one side of the box body at one of the circular holes;
[0007] The sealing mechanism is fixed inside the square shell and is used to block the feed port;
[0008] The swing mechanism is fixed inside the box and is used to screen the water rhinestones;
[0009] The discharge mechanism is fixed inside the swing mechanism. When too many water rhinestones are accumulated inside the swing mechanism, the discharge mechanism can be used to clear the accumulation.
[0010] Furthermore, the sealing mechanism includes:
[0011] A motor is fixedly connected to the outer wall of the square shell;
[0012] A spherical frame is fixed on the rotating shaft of the motor, and a second circular hole is opened on the outer wall of the spherical frame;
[0013] There are two spring telescopic tubes, which are respectively fixed to the outer walls on both sides of the square shell.
[0014] Preferably, the swing mechanism includes:
[0015] An electric telescopic rod 1 is fixedly connected to an outer wall of one side of the box body, and one end of the electric telescopic rod 1 is fixedly connected to a T-shaped rod;
[0016] The circular tubes are provided in three numbers and are fixed on the outer wall of the T-shaped rod at equal intervals.
[0017] Preferably, the swing mechanism includes:
[0018] Three cylindrical grids are provided, each of which is fixed to a position corresponding to one of the three circular holes inside the box body, and the size of the grid at one end of the cylindrical grid is larger than the size of the grid at the periphery. In addition, one end of the outer wall of one of the cylindrical grids is fixed to the outer wall of one end of one of the spring telescopic tubes;
[0019] There are two arc-shaped frames three, which are respectively fixed to the interior of the box below two of the cylindrical grids.
[0020] Preferably, the swing mechanism includes:
[0021] The second circular tube is fixed at one end of the first circular tube. Two square tubes are fixedly connected to the outer wall of the second circular tube at equal angles. A square plate is slidably inserted into the interior of the square tube.
[0022] Preferably, the swing mechanism includes:
[0023] Two springs are provided and fixed between the inner wall of the square tube and the outer wall of the square plate at equal intervals.
[0024] Preferably: the discharge mechanism includes:
[0025] A fixing frame is fixed to the outer wall of the T-shaped rod, one end of the fixing frame is fixedly connected to the electric telescopic rod 2, and the outer wall of one end of the electric telescopic rod 2 is fixedly connected to the square rod;
[0026] One end of the traction rope is fixed to the outer wall of the square plate, and the other end is fixed to the outer wall of the square rod along the inside of the second circular tube and the first circular tube.
[0027] Beneficial effects of the utility model:
[0028] 1. By driving the electric telescopic rod, the square tubes and square plates inside the three cylindrical grids can be driven to shake at the same time, and the water drills can be screened layer by layer, which effectively improves the linkage of the machine.
[0029] 2. The cylindrical grid is separated into two spaces by square plates and square tubes. The diamonds corresponding to the current cylindrical grid size will remain inside and be discharged from the corresponding circular hole at one end. The diamonds that do not correspond will be discharged from the outer grid and then enter other cylindrical grids along the arc frame, effectively improving the screening quality.
[0030] 3. The discharge mechanism can quickly discharge the rhinestones accumulated on the top of the square tube into the cylindrical grid below the square tube. The space above the square tube in the cylindrical grid will be vacated to screen the rhinestones that have just fallen. The rhinestones below the square tube in the cylindrical grid will also be screened and discharged, effectively improving the screening efficiency and quality, avoiding low screening efficiency caused by excessive accumulation, or small-sized rhinestones that may not be discharged in time when swinging too fast and are discharged together with large-sized rhinestones. BRIEF DESCRIPTION OF THE DRAWINGS
[0031] The present invention will be further described below with reference to the accompanying drawings.
[0032] Figure 1 It is a schematic diagram of the overall structure of the utility model;
[0033] Figure 2 This is a schematic diagram of the sealing mechanism structure of the utility model;
[0034] Figure 3 This is a schematic diagram of the cross-sectional structure of the box body in the utility model;
[0035] Figure 4 This is a schematic diagram of the partial structure of the swing mechanism in the utility model;
[0036] Figure 5 This is a schematic diagram of the cylindrical grid structure of the utility model;
[0037] Figure 6 This is a schematic diagram of the second structure of the circular tube in the utility model.
[0038] In the figure: 100, water drill screening mechanism; 110, box body; 111, round hole 1; 112, arc frame 1; 120, square shell; 130, arc frame 2; 200, sealing mechanism; 210, motor; 211, spherical frame; 212, round hole 2; 220, spring telescopic tube; 300, swing mechanism; 310, electric telescopic rod 1; 311, T-shaped rod; 320, round tube 1; 321, round tube 2; 322, square tube; 323, square plate; 324, spring; 330, cylindrical grid; 340, arc frame 3; 400, unloading mechanism; 410, fixed frame; 411, electric telescopic rod 2; 412, square rod; 420, traction rope. DETAILED DESCRIPTION
[0039] The following will be combined with the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0040] See also Figure 1-6 As shown, a swing-type water drill screening device includes a water drill screening mechanism 100, which includes a box body 110 and the following parts: a square shell 120 is fixedly connected to the top wall of the box body 110, and an arc frame 2 130 is opened near the bottom position inside the box body 110, and four circular holes 111 are opened at equal intervals on the outer wall of one side of the box body 110, and an arc frame 112 is fixedly connected to the outer wall of one side of the box body 110 at the circular holes 111, and a sealing mechanism 200 is fixed to the inside of the square shell 120 for blocking the feed port, and its swing mechanism 300 is fixed to the inside of the box body 110 for screening water drills, and a discharging mechanism 400 is fixed to the inside of the swing mechanism 300. When there are too many water drills accumulated inside the swing mechanism 300, the discharging mechanism 400 can be used for dredging. The sealing mechanism 200 includes The following parts: the motor 210 is fixedly connected to the outer wall of the square shell 120, and the spherical frame 211 is fixed on the rotating shaft of the motor 210. A second circular hole 212 is opened on the outer wall of the spherical frame 211, and two spring telescopic tubes 220 are provided, which are respectively fixed to the outer walls on both sides of the square shell 120. When working, the water drill enters the second circular hole 212 along the spring telescopic tube 220, and then flows into one of the cylindrical grids 330 through the other spring telescopic tube 220. When it is detected that there are too many water drills accumulated inside the cylindrical grid 330, affecting the water drill screening quality and efficiency, the motor 210 drives the spherical frame 211 to rotate until the second circular hole 212 is offset from the inside of the spring telescopic tube 220, temporarily sealing the input port. Under special circumstances, the sealing mechanism 200 can temporarily close the input end, effectively improving the working stability.
[0041] The swing mechanism 300 includes the following parts: an electric telescopic rod 310 is fixedly connected to the outer wall of one side of the box body 110, a T-shaped rod 311 is fixedly connected to one end of the electric telescopic rod 310, and three circular tubes 320 are provided, which are fixed on the outer wall of the T-shaped rod 311 at equal intervals, and three cylindrical grids 330 are provided, which are respectively fixed to the corresponding positions of three circular holes 111 inside the box body 110, and the size of the grid at one end of the cylindrical grid 330 is larger than the size of the outer grid. In addition, one end of the outer wall of one of the cylindrical grids 330 is fixed to the outer wall of one end of one of the spring telescopic tubes 220, and two arc-shaped frames 340 are provided, which are respectively fixed to the inside of the box body 110 below two of the cylindrical grids 330, and the circular tube 2 321 is fixed at one end of the circular tube 1 320. Two square tubes 322 are fixedly connected at equal angles to the outer wall of the circular tube 321, and a square plate 323 is slidably inserted inside the square tube 322. Two springs 324 are provided, which are fixed at equal intervals between the inner wall of the square tube 322 and the outer wall of the square plate 323. By driving the electric telescopic rod 310, the square tubes 322 and square plates 323 inside the three cylindrical grids 330 can be driven to shake at the same time, and the water drills are screened layer by layer, which effectively improves the linkage of the machine. The square plates 323 and square tubes 322 will isolate the cylindrical grid 330 into two spaces. The water drills corresponding to the size of the current cylindrical grid 330 will remain inside and be discharged from the corresponding circular hole 111 at one end. The water drills that do not correspond will be discharged from the outer grid and then enter the other cylindrical grids 330 along the arc frame 340, effectively improving the screening quality.
[0042] The unloading mechanism 400 includes the following parts: a fixing frame 410 is fixed to the outer wall of the T-shaped rod 311, an electric telescopic rod 2 411 is fixedly connected to one end of the fixing frame 410, and a square rod 412 is fixedly connected to the outer wall of one end of the electric telescopic rod 2 411, one end of the traction rope 420 is fixed to the outer wall of the square plate 323, and the other end is fixed to the outer wall of the square rod 412 along the inside of the round tube 2 321 and the round tube 1 320. The unloading mechanism 400 can quickly unload the materials accumulated on the square tube 322. The square rhinestones are discharged into the cylindrical grid 330 below the square tube 322. The space above the square tube 322 in the cylindrical grid 330 will be vacated to screen the rhinestones that have just fallen. The rhinestones below the square tube 322 in the cylindrical grid 330 will also be screened and discharged, which effectively improves the screening efficiency and screening quality, avoids low screening efficiency caused by excessive accumulation, or avoids small-sized rhinestones that may not be discharged in time when swinging too fast and are discharged together with large-sized rhinestones.
[0043] Specifically, during operation, the water drill follows the spring telescopic tube 220 into the second circular hole 212, and then flows into one of the cylindrical grids 330 through the other spring telescopic tube 220, and falls onto the square tube 322 and the square plate 323. The electric telescopic rod 1 310 drives the T-shaped rod 311 to move, driving the square tube 322 to swing inside the cylindrical grid 330. The water drill is affected by the movement of the square tube 322 and the square plate 323 to shake, and the water drill smaller than the size of the corresponding cylindrical grid 330 will be discharged from the outer grid, and move along the trajectory of the arc frame 340 to the other cylindrical grid 330 for screening again, while the water drill corresponding to the size of the grid at one end of the cylindrical grid 330 will be discharged from here, thereby The drills are screened. When it is detected that there are too many water drills accumulated inside the cylindrical grid 330, the motor 210 drives the spherical frame 211 to rotate until the round hole 212 is offset from the inside of the spring telescopic tube 220, temporarily sealing the input port. The electric telescopic rod 211 drives the square rod 412 to move to one side. The traction rope 420 is affected by the square rod 412 and pulls the square plate 323 to slide inside the square tube 322. The water drills will fall down from the original position of the square plate 323 to the bottom of the square tube 322 inside the cylindrical grid 330, so that the space inside the cylindrical grid 330 above the square tube 322 is vacated. The sealing mechanism 200 releases the blockage of the input end, so that the water drills can be screened at the same time in the two layers of space inside the cylindrical grid 330.
[0044] Example 1
[0045] like Figure 2 As shown, in this embodiment, the sealing mechanism 200 includes the following parts: its motor 210 is fixedly connected to the outer wall of the square shell 120, and the spherical bracket 211 is fixed to the rotating shaft of the motor 210. A second circular hole 212 is opened on the outer wall of the spherical bracket 211, and two spring telescopic tubes 220 are provided, which are respectively fixed to the outer walls on both sides of the square shell 120.
[0046] In this embodiment, during operation, the water drills follow the spring telescopic tube 220 into the second circular hole 212, and then flow into one of the cylindrical grids 330 through the other spring telescopic tube 220. When it is detected that too many water drills are accumulated inside the cylindrical grid 330, affecting the quality and efficiency of water drill screening, the motor 210 drives the spherical frame 211 to rotate until the second circular hole 212 is offset from the inside of the spring telescopic tube 220, temporarily sealing the input port. Under special circumstances, the sealing mechanism 200 can temporarily close the input end, effectively improving the working stability.
[0047] like Figure 3-6As shown, in this embodiment, the swing mechanism 300 includes the following parts: an electric telescopic rod 310 is fixedly connected to the outer wall of one side of the box body 110, a T-shaped rod 311 is fixedly connected to one end of the electric telescopic rod 310, and three circular tubes 320 are provided, which are fixed on the outer wall of the T-shaped rod 311 at equal intervals. Three cylindrical grids 330 are provided, which are respectively fixed to the corresponding positions of the three circular holes 111 inside the box body 110, and the size of the grid at one end of the cylindrical grid 330 is larger than the size of the outer grid. In addition, One end of the outer wall of one of the cylindrical grids 330 is fixed to the outer wall of one end of one of the spring telescopic tubes 220, and two arc-shaped frames 340 are provided, which are respectively fixed to the inside of the box 110 below the two cylindrical grids 330, and the second circular tube 321 is fixed to one end of the first circular tube 320, and two square tubes 322 are fixedly connected at equal angles to the outer wall of the second circular tube 321, and a square plate 323 is slidably inserted inside the square tube 322, and two springs 324 are provided, which are fixed at equal intervals between the inner wall of the square tube 322 and the outer wall of the square plate 323.
[0048] During the specific implementation, the electric telescopic rod 310 drives the T-shaped rod 311 to move, driving the square tube 322 to swing inside the cylindrical grid 330. The water drills are affected by the movement of the square tube 322 and the square plate 323 to shake. The water drills smaller than the size of the corresponding cylindrical grid 330 will be discharged from the outer grid and move along the trajectory of the arc frame 340 to another cylindrical grid 330 for screening again. The water drills with the same size as the grid at one end of the cylindrical grid 330 will be discharged from here. In this way, the water drills are screened. Driving the electric telescopic rod 310 can simultaneously drive the square tubes 322 and square plates 323 inside the three cylindrical grids 330 to shake, screening the water drills layer by layer, effectively improving the linkage of the machine. The square plates 323 and square tubes 322 will isolate the cylindrical grid 330 into two spaces. The water drills corresponding to the size of the current cylindrical grid 330 will remain inside and be discharged from the corresponding circular hole 111 at one end. The water drills that do not correspond will be discharged from the outer grid and then enter other cylindrical grids 330 along the arc frame 340, effectively improving the screening quality.
[0049] Example 2
[0050] like Figure 4 and Figure 6 As shown, in this embodiment, the discharge mechanism 400 includes the following parts: its fixing frame 410 is fixed to the outer wall of the T-shaped rod 311, an electric telescopic rod 2 411 is fixedly connected to one end of the fixing frame 410, and a square rod 412 is fixedly connected to the outer wall of one end of the electric telescopic rod 2 411, one end of the traction rope 420 is fixed to the outer wall of the square plate 323, and the other end is fixed to the outer wall of the square rod 412 along the inside of the circular tube 2 321 and the circular tube 1 320.
[0051] During the specific implementation, the electric telescopic rod 411 drives the square rod 412 to move to one side, and the traction rope 420 is affected by the square rod 412 to pull the square plate 323 to slide inside the square tube 322. The water drill will fall down from the original position of the square plate 323 to the bottom of the square tube 322 inside the cylindrical grid 330, so that the space inside the cylindrical grid 330 above the square tube 322 is vacated, and the sealing mechanism 200 releases the blockage of the input end, so that the water drill can be screened at the same time in the two layers of space inside the cylindrical grid 330. The material mechanism 400 can quickly discharge the rhinestones accumulated above the square tube 322 to the inside of the cylindrical grid 330 below the square tube 322. The space above the square tube 322 in the cylindrical grid 330 will be vacated to screen the rhinestones that have just fallen. The rhinestones below the square tube 322 in the cylindrical grid 330 will also be screened and discharged, effectively improving the screening efficiency and screening quality, avoiding low screening efficiency caused by excessive accumulation, or small-sized rhinestones may not have time to be discharged when swinging too fast, and are discharged together with large-sized rhinestones.
[0052] Throughout this specification, references to terms such as "one embodiment," "example," and "specific example" indicate that the specific features, structures, materials, or characteristics described in conjunction with that embodiment or example are included in at least one embodiment or example of the present invention. In this specification, schematic representations of these terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.
[0053] The above contents are merely examples and explanations of the present invention. Those skilled in the art may make various modifications or additions to the described specific embodiments or replace them in similar ways. As long as they do not deviate from the scope of the present invention or exceed the scope defined by the claims, they shall fall within the scope of protection of the present invention.
Claims
1. A swing type water drill screening device, characterized in that: include: A water drill screening mechanism (100) comprises a box body (110), a square shell (120) being fixedly connected to the top wall of the box body (110), an arc frame 2 (130) being provided near the bottom of the box body (110), four circular holes 1 (111) being provided at equal intervals on the outer wall of one side of the box body (110), and an arc frame 1 (112) being fixedly connected to the outer wall of one side of the box body (110) at the position of the circular hole 1 (111); A sealing mechanism (200) is fixed inside the square shell (120) and is used to block the feed port; A swing mechanism (300) is fixed inside the box (110) and is used to screen the water rhinestones; The discharge mechanism (400) is fixed inside the swing mechanism (300). When too many water rhinestones are accumulated inside the swing mechanism (300), the discharge mechanism (400) can be used to clear the water rhinestones.
2. The swing type water drill screening device according to claim 1, characterized in that: The sealing mechanism (200) comprises: A motor (210) is fixedly connected to the outer wall of the square housing (120); A spherical frame (211) is fixed on the rotating shaft of the motor (210), and a second circular hole (212) is opened on the outer wall of the spherical frame (211); Two spring telescopic tubes (220) are provided and are respectively fixed to the outer walls on both sides of the square shell (120).
3. The swing type water drill screening device according to claim 2, characterized in that: The swing mechanism (300) comprises: An electric telescopic rod (310) is fixedly connected to an outer wall of one side of the box (110), and one end of the electric telescopic rod (310) is fixedly connected to a T-shaped rod (311); There are three circular tubes (320) fixed on the outer wall of the T-shaped rod (311) at equal intervals.
4. The swing type water drill screening device according to claim 3, characterized in that: The swing mechanism (300) comprises: Three cylindrical grids (330) are provided and fixed to the corresponding positions of the three circular holes (111) inside the box (110), and the size of the grid at one end of the cylindrical grid (330) is larger than the size of the grid at the periphery. In addition, one end of the outer wall of one of the cylindrical grids (330) is fixed to the outer wall of one end of one of the spring telescopic tubes (220); There are two arc-shaped frames (340) which are fixed to the interior of the box (110) below two of the cylindrical grid frames (330).
5. The swing type water drill screening device according to claim 4, characterized in that: The swing mechanism (300) comprises: The second circular tube (321) is fixed at one end of the first circular tube (320). The outer wall of the second circular tube (321) is fixedly connected to two square tubes (322) at equal angles. A square plate (323) is slidably inserted into the interior of the square tube (322).
6. The swing type water drill screening device according to claim 5, characterized in that: The swing mechanism (300) comprises: Two springs (324) are provided and fixed at equal intervals between the inner wall of the square tube (322) and the outer wall of the square plate (323).
7. The swing type water drill screening device according to claim 6, characterized in that: The discharge mechanism (400) comprises: A fixing frame (410) is fixed to the outer wall of the T-shaped rod (311), one end of the fixing frame (410) is fixedly connected to the second electric telescopic rod (411), and one end of the outer wall of the second electric telescopic rod (411) is fixedly connected to the square rod (412); One end of the traction rope (420) is fixed to the outer wall of the square plate (323), and the other end is fixed to the outer wall of the square rod (412) along the inside of the second circular tube (321) and the first circular tube (320).