Turnover type adsorbent particle classificator
The flip-type adsorbent particle sorting machine solves the problem of low screening efficiency of adsorbent particles in existing technologies by using a screw conveyor and a flipping mechanism to achieve high-precision and high-efficiency particle screening, thereby improving product quality.
Patent Information
- Application Number
- CN202520089157.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-15
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2035-01-15
AI Technical Summary
In the current technology, the blood perfusion device industry lacks automated equipment for the mass production of adsorbent particles, resulting in low screening efficiency. This makes it impossible to accurately identify and remove damaged, irregular, sticky, non-round, and inconsistent-sized particles, affecting product quality and performance.
A flip-type adsorbent particle sorting machine is used, which conveys uniform particles through a screw rod. Combined with a flipping mechanism and a vibration structure, unqualified particles are screened out to ensure the consistency of particle diameter and quality.
This improved screening accuracy and production efficiency, ensured the quality of adsorbent particles, and met the needs of the biotechnology blood perfusion device industry.
Smart Images

Figure CN223915972U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of adsorbent particle selection technology in the blood perfusion device industry, and in particular to a flip-type adsorbent particle selection machine. Background Technology
[0002] The adsorbent particle sorting machine is a non-standard customized machine that integrates feeding, screening, and collecting. Its function is to screen out adsorbent particles that are damaged, irregular, sticky, not round, or inconsistent in size. With the help of an electronic and pneumatic control system, the resin size diameter deviation can be controlled to ±0.1mm, the filling volume is stable, the operating cost is low, the product can be changed quickly, and the maintenance is simple. The resin size diameter range is 0.3-2mm, and the screening capacity can reach 20 liters / hour. It can realize the mass production of adsorbent particle sorting machines in the biotechnology blood perfusion device industry.
[0003] However, in the current technology, most companies in the blood perfusion device industry still use manual operation. There is no mature machine equipment to complete the batch production of the adsorbent particles that are broken or stuck together. Relying on manual operation is not only inefficient, but also often fails to accurately identify and remove broken, irregular, stuck, non-round, and inconsistent-sized particles. It is difficult to guarantee the accuracy and consistency of screening, which will affect the quality and performance of the blood perfusion device to a certain extent. Utility Model Content
[0004] The present invention proposes a rotary adsorbent particle sorting machine, which solves the existing problems.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: a flip-type adsorbent particle sorting machine, including an outer frame, a feeding mechanism connected inside the outer frame, and the feeding mechanism having an upper open trapezoidal structure, the feeding mechanism being used to receive adsorbent particle material to prevent material from scattering, a flipping mechanism being connected to one side below the feeding mechanism, the flipping mechanism having a rotating flipping structure and a vibration structure at its lower end, the flipping mechanism being used to screen different adsorbent particles, and a receiving platform being connected to one side of the lower end of the flipping mechanism.
[0006] Preferably, the feeding mechanism is connected to two ends of a screw rod, and the feeding mechanism is internally connected to a screw rod. One end of the screw rod is connected to a first rotating wheel, and the outer end of the first rotating wheel is connected to a first synchronous belt. The other end of the first synchronous belt is connected to a second rotating wheel, and the second rotating wheel is internally connected to a rotating rod, and one end of the rotating rod is connected to a first motor.
[0007] Preferably, connecting rods are connected to both sides below the feeding mechanism. Multiple rotating rods are connected inside the connecting rods, and a conveyor belt is connected to the outside of the multiple rotating rods. One end of each rotating rod is connected to a third rotating wheel, and the outer end of the third rotating wheel is connected to a second synchronous belt. The other end of the second synchronous belt is connected to a fourth rotating wheel, and a rotating rod is connected inside the fourth rotating wheel. One end of the rotating rod is connected to a second motor.
[0008] Preferably, the flipping mechanism includes a third motor, a lead screw is connected to one side of the third motor via a rotating rod, a movable plate is connected to the outside of the lead screw, a bracket is connected above the movable plate, and two receiving boxes are respectively connected to the two ends of the bracket.
[0009] Preferably, multiple rack plates are connected to both sides of the upper end of the bracket, a fourth motor is connected to one side of each rack plate, a fifth wheel is connected to one side of the fourth motor, a third synchronous belt is connected to the outer end of the fifth wheel, and a sixth wheel is connected to one end of the inner side of the third synchronous belt.
[0010] Preferably, a circular rotating rod is connected inside the sixth rotating wheel, and two arc-shaped frames are spaced apart on the outside of the circular rotating rod. The lower end of the arc-shaped frame is connected to a frame plate, a block is connected to the outer end of the circular rotating rod, a rectangular plate is connected above the block, a vibrator is connected to the lower middle part of the rectangular plate, and a hopper is connected to the upper end of the rectangular plate near the feeding mechanism.
[0011] The beneficial effects of this invention are as follows: The device uses a screw rod to transfer uniformly sized adsorbent particles in equal quantities, while preventing larger and irregular adsorbent particles from falling onto the conveyor belt for transport. Simultaneously, a rotating rod drives a block to tilt and flip, which, in conjunction with a slightly inclined plate and a flipping mechanism, as well as a vibrating machine, further filters out damaged, irregular, adhered, non-round, and inconsistently sized adsorbent particles. This device offers higher screening precision, and the diameter deviation of the resin particles can be controlled within the required range, ensuring the quality of the adsorbent particles. Compared to manual operation, it also improves production efficiency to a certain extent, meeting the large demand for adsorbent particles in the biotechnology blood perfusion device industry. Attached Figure Description
[0012] Figure 1 This is a schematic diagram of the structure of this utility model.
[0013] Figure 2 This is a schematic diagram of the feeding mechanism of this utility model.
[0014] Figure 3 This is a schematic diagram of the feeding mechanism from another perspective of this utility model.
[0015] Figure 4 This is a schematic diagram of the receiving box of this utility model.
[0016] Figure 5 This is a schematic diagram of the flipping mechanism of this utility model.
[0017] The diagram is labeled as follows: 1. Outer frame; 2. Feeding mechanism; 201. Screw rod; 202. First rotating wheel; 203. First synchronous belt; 204. Second rotating wheel; 205. First motor; 206. Connecting rod; 207. Conveyor belt; 208. Third rotating wheel; 209. Second synchronous belt; 210. Fourth rotating wheel; 211. Second motor; 3. Tilting mechanism; 301. Third motor; 302. Lead screw; 303. Moving plate; 304. Bracket; 305. Receiving box; 306. Shelf plate; 307. Fourth motor; 308. Fifth rotating wheel; 309. Third synchronous belt; 310. Sixth rotating wheel; 311. Circular rotating rod; 312. Arc frame; 313. Block; 314. Rectangular plate; 315. Vibrator; 316. Hopper; 4. Receiving platform. Detailed Implementation
[0018] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0019] Reference Figures 1-5 A flip-type adsorbent particle sorting machine includes an outer frame 1, with a feeding mechanism 2 connected inside the outer frame 1. The feeding mechanism 2 has an open trapezoidal structure and is used to receive adsorbent particles to prevent the material from scattering. A flipping mechanism 3 is connected to one side below the feeding mechanism 2. The flipping mechanism 3 is equipped with a rotating flipping structure and a vibration structure at its lower end. The flipping mechanism 3 is used to screen out unqualified adsorbent particles that are damaged or stuck together. A receiving platform 4 is connected to one side of the lower end of the flipping mechanism 3.
[0020] Reference Figure 2 , Figure 3The feeding mechanism 2 has screw rods 201 connected to both ends, and screw rods 201 are also connected inside the feeding mechanism 2. One end of the screw rod 201 is connected to a first rotating wheel 202, and the outer end of the first rotating wheel 202 is connected to a first synchronous belt 203. The other end of the first synchronous belt 203 is connected to a second rotating wheel 204, and a rotating rod is connected inside the second rotating wheel 204. One end of the rotating rod is connected to a first motor 205. Connecting rods 206 are connected to both sides below the feeding mechanism 2. Multiple rotating rods are connected inside the connecting rods 206, and the multiple rotating rods are connected to the outside of the connecting rods. A conveyor belt 207 is connected to a rotating rod. One end of the rotating rod is connected to a third rotating wheel 208. The outer end of the third rotating wheel 208 is connected to a second synchronous belt 209. The other end of the second synchronous belt 209 is connected to a fourth rotating wheel 210. The fourth rotating wheel 210 is connected to a rotating rod. One end of the rotating rod is connected to a second motor 211. By rotating the spiral rod 201, the uniformly sized adsorbent particles are rotated and fall above the conveyor belt 207. Rotating the third rotating wheel 208 drives the conveyor belt 207 through the rotating rod to transfer the adsorbent particles above to the flipping mechanism 3.
[0021] Reference Figure 4 , Figure 5 The flipping mechanism 3 includes a third motor 301. A lead screw 302 is connected to one side of the third motor 301 via a rotating rod. A movable plate 303 is connected to the outside of the lead screw 302. A bracket 304 is connected above the movable plate 303. Two receiving boxes 305 are connected to the upper ends of the bracket 304. Multiple support plates 306 are connected to both sides of the upper end of the bracket 304. A fourth motor 307 is connected to one side of the support plate 306, and a fifth rotating wheel 308 is connected to one side of the fourth motor 307. A third synchronous belt 309 is connected to the outer end of the fifth rotating wheel 308, and a sixth rotating wheel 310 is connected to one end of the inner side of the third synchronous belt 309. A circular rotating wheel 310 is connected inside the sixth rotating wheel 310. The rod 311 has two arc-shaped frames 312 spaced apart on its outer side, and the lower end of the arc-shaped frame 312 is connected to the frame plate 306. The outer end of the rod 311 is connected to a block 313, and a rectangular plate 314 is connected above the block 313. A vibrator 315 is connected to the middle of the lower part of the rectangular plate 314. A hopper 316 is connected to the upper end of the rectangular plate 314 near the feeding mechanism 2. Rotating the screw 302 drives the moving plate 303 to move up and down. The moving plate 303 moves up and down, which drives the bracket 304 to move up and down. Rotating the block 313 drives the rectangular plate 314 to flip and tilt. The vibrator 315 is started to screen out the adsorbent particles that do not meet the requirements.
[0022] Working principle: First, the personnel pour the adsorbent particles to be screened into the feeding mechanism 2. The first motor 205 is started, driving the second rotating wheel 204 to rotate. The rotation of the second rotating wheel 204 drives the first synchronous belt 203, which in turn drives the first rotating wheel 202 and the screw rod 201 on one side to rotate. By controlling the rotation of the screw rod 201, the quantity and speed of the feed can be controlled, ensuring that the particles are evenly distributed on the conveyor belt 207. Then, the second motor 211 is started, rotating the fourth rotating wheel 210. The rotation of the fourth rotating wheel 210 drives the second synchronous belt 209, which in turn drives the second synchronous belt 209 to rotate. The belt 209 drives the third rotating wheel 208 to rotate, which in turn drives the rotating rod to rotate, causing the outer conveyor belt 207 to start driving and sending the adsorbent particles to the hopper 316 and onto the rectangular plate 314. The fourth motor 307 is started to rotate the fifth rotating wheel 308, which in turn drives the third synchronous belt 309 to rotate the sixth rotating wheel 310. The rotation of the sixth rotating wheel 310 drives the circular rotating rod 311 and the externally connected square block 313 to rotate. The rotation of the square block 313 causes the rectangular plate 314 to flip and tilt, which works in conjunction with the vibrator 315 below for vibration screening.
[0023] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. A flip-flow adsorbent particle sizer comprising an outer frame (1), characterised in that, The outer frame (1) is internally connected with a discharging mechanism (2), and the discharging mechanism (2) is in an upper opening trapezoidal structure, the discharging mechanism (2) is used for receiving adsorbent particle materials to prevent material scattering, one side below the discharging mechanism (2) is connected with a turnover mechanism (3), the turnover mechanism (3) is provided with a rotary turnover structure and a vibration structure at the lower end, the turnover mechanism (3) is used for screening different adsorbent particles, and one side at the lower end of the turnover mechanism (3) is connected with a material collecting table (4).
2. An inverted bed adsorbent particle concentrator according to claim 1 wherein, Both ends of the discharging mechanism (2) are connected with a screw rod (201), and the inside of the discharging mechanism (2) is connected with the screw rod (201), one end of the screw rod (201) is connected with a first rotary wheel (202), and the outer end of the first rotary wheel (202) is connected with a first synchronous belt (203), the other end inside the first synchronous belt (203) is connected with a second rotary wheel (204), and the inside of the second rotary wheel (204) is connected with a rotating rod, and one end of the rotating rod is connected with a first motor (205).
3. An inverted bed adsorbent particle concentrator according to claim 2, wherein, Both sides below the discharging mechanism (2) are respectively connected with a connecting rod (206), the inside of the connecting rod (206) is connected with a plurality of rotating rods, and the outside of the plurality of rotating rods is connected with a conveyor belt (207), one end of a rotating rod is connected with a third rotary wheel (208), the outer end of the third rotary wheel (208) is connected with a second synchronous belt (209), the other end inside the second synchronous belt (209) is connected with a fourth rotary wheel (210), the inside of the fourth rotary wheel (210) is connected with a rotating rod, and one end of the rotating rod is connected with a second motor (211).
4. A reverse-flow adsorptive particle concentrator according to claim 1, wherein The turnover mechanism (3) comprises a third motor (301), one side of the third motor (301) is connected with a lead screw (302) through a rotating rod, and the outside of the lead screw (302) is connected with a moving plate (303), the top of the moving plate (303) is connected with a bracket (304), and both ends above the bracket (304) are respectively connected with two material collecting boxes (305).
5. A reverse-flow adsorptive particle concentrator according to claim 4, wherein, Both sides of the top of the bracket (304) are connected with a plurality of shelf plates (306), one side of the shelf plate (306) is connected with a fourth motor (307), and one side of the fourth motor (307) is connected with a fifth rotary wheel (308), the outer end of the fifth rotary wheel (308) is connected with a third synchronous belt (309), and one end inside the third synchronous belt (309) is connected with a sixth rotary wheel (310).
6. An inverted bed adsorbent particle concentrator according to claim 5 wherein, The inside of the sixth rotary wheel (310) is connected with a circular rotating rod (311), the outside of the circular rotating rod (311) is provided with two arc-shaped frames (312) at intervals, and the lower end of the arc-shaped frame (312) is connected to the shelf plate (306), the outer end of the circular rotating rod (311) is connected with a square block (313), the top of the square block (313) is connected with a rectangular plate (314), and the lower middle of the rectangular plate (314) is connected with a vibration motor (315), one end of the rectangular plate (314) near the discharging mechanism (2) is connected with a hopper (316).