Aspartic acid chlorotransferase determination reagent waste recovery equipment
By combining the design of the extrusion chamber and the U-shaped tube, the problem of waste liquid in the production process of aspartate chloride transferase assay reagents was solved, and the efficient recovery and utilization of liquid in the waste was achieved.
Patent Information
- Application Number
- CN202423313380.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2034-12-31
AI Technical Summary
In the production process of aspartate chloride transferase assay reagents, the waste generated contains some liquid. Direct discharge of this waste would result in waste of the raw material liquid, and existing technologies have not been able to effectively recycle and utilize it.
A waste recycling device for aspartate chloride transferase assay reagents was designed. It utilizes a combination structure of extrusion chamber and U-tube to squeeze out the liquid in the waste and evaporate it into gas through extrusion and heating drying process. The gas is then condensed and recycled back into liquid, thereby improving the utilization rate of raw materials.
It achieves efficient recovery of liquids from waste materials, improves the utilization rate of raw materials, and reduces waste.
Smart Images

Figure CN223698861U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of waste recycling technology, specifically to a waste recycling device for aspartate chloride transferase assay reagents. Background Technology
[0002] Aspartate aminotransferase (AST), formerly known as aspartate aminotransferase, is widely found in the myocardium, skeletal muscle, and liver, with the highest concentration in the myocardium and the second highest in the liver. Aspartate aminotransferase levels can reflect the degree of hepatocellular damage; elevated levels are commonly seen in liver diseases such as infectious hepatitis, myocardial infarction, dermatomyositis, and muscle injury. It is a very common clinical biochemical test for liver function and is of great significance for clinical diagnosis. Aspartate aminotransferase assays require reagents, and during the production of these reagents, solid impurities are filtered out from the liquid raw materials.
[0003] The waste generated during the production of aspartate chloride transferase assay reagents may contain some liquid. If the waste is discharged directly during the production process, it will often result in the waste of some raw material liquid. Utility Model Content
[0004] The purpose of this invention is to provide a waste recycling device for aspartate chloride transferase assay reagents to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a waste recycling device for aspartate chloride transferase assay reagents, comprising a squeezing chamber, a water filter base at the bottom of the squeezing chamber, a discharge port at the top front of the squeezing chamber, base plates on both sides of the bottom of the squeezing chamber, lead screws inside the two base plates, sliders on the outer surfaces of the two lead screws, a vertical shaft at the top of the sliders via a slot, a bracket at the top of the vertical shaft, electric push rods at opposite ends of the two brackets, the output ends of the two electric push rods extending into the squeezing chamber, a first push plate at the output end of one electric push rod, and a second push plate at the output end of the other electric push rod. Each of the two push plates has an upper baffle at its opposite ends. Several inclined push plates are provided at the bottom edges of the opposite ends of the first and second push plates. The inclined push plates at the bottom of the first and second push plates are arranged alternately. The bottom of the opposite ends of the first and second push plates are provided with holes that match the corresponding inclined push plates. A drop opening is provided inside the squeezing chamber at one end of the filter base. A U-shaped tube is provided at the drop opening at the bottom of the squeezing chamber. Heating components are provided on both sides of the bottom of the U-shaped tube. An opening is provided at the bottom of the U-shaped tube. A waste hopper is detachably installed at the opening. Cooling components are provided on both sides of one end of the U-shaped tube. A water collector is provided at the bottom of one end of the U-shaped tube below the two cooling components. An exhaust port is provided at one end of the U-shaped tube.
[0006] Preferably, a bellows is provided on the top of the compression chamber above the drop port. When the waste material falls from the drop port into the U-shaped tube for drying, the liquid adsorbed inside the waste material will evaporate into gas. At this time, the bellows blows air through the drop port into the U-shaped tube, and the humid gas will be driven to move towards the rear end of the U-shaped tube.
[0007] Preferably, two locking blocks are provided on both sides of the waste hopper, and two locking slots matching the locking blocks are provided on both sides of the bottom of the U-shaped tube near the waste hopper. When the four locking blocks and locking slots are used together, the waste hopper can be installed at the opening position.
[0008] Preferably, the bottom of the water collector is provided with a discharge pipe, and a valve is installed inside the discharge pipe. The liquid collected inside the water collection pipe can be discharged through the discharge pipe for recycling.
[0009] Preferably, a first cam is provided on the top of the slider on one side of the vertical shaft, and a second cam is provided on the top of the slider on the other side of the vertical shaft. A motor is provided at the bottom of both the first cam and the second cam. When the motor is running, the raised end and the recessed end of the first cam and the second cam alternately contact the outer surface of the vertical shaft.
[0010] Preferably, the front bottom of the extrusion chamber and the rear bottom of the U-shaped tube are each provided with two support legs, which support the extrusion chamber and the U-shaped tube to ensure the stability of the equipment.
[0011] Compared with the prior art, the beneficial effects of this utility model are:
[0012] 1. This waste recycling equipment for aspartate chlortransferase assay reagents uses a first and second pusher plate inside the extrusion chamber to extrude the solid waste generated during the production of aspartate chlortransferase assay reagents, causing the liquid adsorbed in the waste to be squeezed out and discharged from the filter base, thereby improving the utilization rate of raw materials.
[0013] 2. The waste recovery equipment for aspartate chloride transferase assay reagents uses a U-shaped tube with a heating component to dry the squeezed waste, causing the liquid adsorbed in the waste to evaporate into a gaseous state. Then, the humid gas is condensed by the cooling component of the U-shaped tube, causing the liquid molecules contained in the gas to return to a liquid state for collection, further improving the utilization rate of raw materials. Attached Figure Description
[0014] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0015] Figure 2 For the present utility model Figure 1 Enlarged schematic diagram of the structure at point A in the middle;
[0016] Figure 3 This is a schematic diagram of the internal structure of the compression chamber of this utility model;
[0017] Figure 4 This is a schematic diagram of the inclined push plate structure of this utility model;
[0018] Figure 5 This is a schematic diagram of the U-shaped tube structure of this utility model.
[0019] In the diagram: 1. Extrusion chamber; 2. Feed port; 3. Air box; 4. U-shaped tube; 5. Cooling component; 6. Water collector; 7. Feed pipe; 8. Heating component; 9. Lead screw; 10. Support leg; 11. Base plate; 12. First cam; 13. Slider; 14. Second cam; 15. Vertical shaft; 16. Bracket; 17. Electric push rod; 18. Drop outlet; 19. Filter base; 20. First push plate; 21. Upper baffle; 22. Second push plate; 23. Waste hopper; 24. Locking block; 25. Locking groove; 26. Exhaust port; 27. Opening; 28. Inclined push plate. Detailed Implementation
[0020] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0021] In the description of this utility model, it should be noted that the terms "upper," "lower," "inner," "outer," "front end," "rear end," "both ends," "one end," and "the other end," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. In addition, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0022] like Figures 1 to 5As shown, the waste recycling equipment for aspartate chloride transferase assay reagents in this embodiment includes a squeezing chamber 1. A filter base 19 is installed at the bottom of the squeezing chamber 1, and a discharge port 2 is installed at the top front of the squeezing chamber 1. Base plates 11 are installed on both sides of the bottom of the squeezing chamber 1. Lead screws 9 are installed inside both base plates 11, and the lead screws 9 are driven to rotate by a motor. Slider blocks 13 are installed on the outer surfaces of both lead screws 9. When the lead screws 9 rotate, they drive the sliders 13 to move linearly. A vertical shaft 15 is installed at the top of the slider 13 through a slot. The bottom of the vertical shaft 15 is slidably connected to the slider 13, allowing the vertical shaft 15 to move within a small range. A bracket 16 is installed at the top of the vertical shaft 15, and electric push rods 17 are installed at the opposite ends of the two brackets 16. The two electric push rods 17... Both ends extend into the compression chamber 1. One electric push rod 17 has a first push plate 20 at its output end, and the other electric push rod 17 has a second push plate 22 at its output end. The output ends of the two electric push rods 17 can drive the first push plate 20 and the second push plate 22 to perform relative linear movement, thereby compressing the waste material inside the compression chamber and squeezing out any residual liquid. Each of the opposite ends of the first push plate 20 and the second push plate 22 has an upper baffle 21 that blocks the waste material, preventing it from moving upwards and leaking during compression. Several inclined push plates 28 are provided at the bottom edges of the opposite ends of the first push plate 20 and the second push plate 22, arranged in two groups at the bottom of the first push plate 20 and the second push plate 22. Both sets of inclined push plates 28 have inclined surfaces at their opposite ends. When driven by the first push plate 20 and the second push plate 22 to perform relative linear motion, the waste material falling on the top of the filter base 19 is pushed to the top of the inclined push plate 28 and then squeezed by the first push plate 20 and the second push plate 22. The liquid adsorbed in the waste material is squeezed out and permeates from the bottom of the filter base 19. A collection device can be placed at the bottom of the filter base 19 to collect the squeezed liquid. The inclined push plates 28 at the bottom of the first push plate 20 and the inclined push plates 28 at the bottom of the second push plate 22 are arranged alternately. The bottom of the opposite ends of the first push plate 20 and the second push plate 22 are provided with holes that match the corresponding inclined push plates 28. When squeezing the waste material, the inclined push plates 28 can be inserted into the corresponding first push plate 20 and the second push plate 22. At the bottom of the filter base 19, a drop opening 18 is provided inside the compression chamber 1 to ensure that the waste material can be completely squeezed by the first push plate 20 and the second push plate 22. After the waste material is squeezed, the lead screw 9 drives the slider 13 to move towards the drop opening 18, which in turn moves the first push plate 20 and the second push plate 22 to the drop opening 18, bringing the squeezed material to the drop opening 18. Then, two electric push rods 17 pull the corresponding first push plate 20 and the second push plate 22, causing the closely attached inclined push plate 28 to leave its corresponding position, allowing the waste material to fall into the drop opening 18. A U-shaped tube 4 is provided at the drop opening 18 at the bottom of the compression chamber 1. Heating components 8 are provided on both sides of the bottom of the U-shaped tube 4. When the waste material falls from the drop opening 18, it will enter the interior of the U-shaped tube 4.The bottom of the U-shaped tube 4 has an opening 27, at which a waste hopper 23 is detachably installed. When material falls inside the U-shaped tube 4, it will fall into the waste hopper 23 due to gravity. At this time, two heating components 8 heat the waste hopper 23, causing the residual adsorbed liquid in the waste to evaporate into a gaseous state. Cooling components 5 are installed on both sides of one end of the U-shaped tube 4. A water collector 6 is installed at the bottom of one end of the U-shaped tube 4 below the two cooling components 5. An exhaust port 26 is installed at one end of the U-shaped tube 4. The evaporated humid gas will move towards the rear end of the U-shaped tube 4. When the gas reaches the cooling component 5, it will be condensed by the low temperature output of the cooling component 5. The water molecules in the gas will re-condense into a liquid state and fall from the gas, falling into the water collector 6 for collection. The dried waste can be removed and recycled by disassembling the waste hopper 23.
[0023] Specifically, a bellows 3 is installed on the top of the compression chamber 1 above the drop port 18. When the waste falls from the drop port 18 into the U-shaped tube 4 for drying, the liquid adsorbed inside the waste will evaporate into gas. At this time, the bellows 3 blows air through the drop port 18 into the U-shaped tube 4, and the humid gas will be driven to move towards the rear end of the U-shaped tube 4.
[0024] Furthermore, two locking blocks 24 are provided on both sides of the waste hopper 23, and two slots 25 matching the locking blocks 24 are provided on both sides of the bottom of the U-shaped tube 4 near the waste hopper 23. When the four locking blocks 24 and slots 25 are used together, the waste hopper 23 can be installed at the opening 27.
[0025] Furthermore, a discharge pipe 7 is provided at the bottom of the water collector 6. A valve is installed inside the discharge pipe 7, and the liquid collected inside the water collector can be discharged through the discharge pipe 7 for recycling.
[0026] Furthermore, a first cam 12 is provided on the top of the slider 13 on one side of the vertical shaft 15, and a second cam 14 is provided on the top of the slider 13 on the other side of the vertical shaft 15. A motor is provided at the bottom of both the first cam 12 and the second cam 14. When the motor runs, the protruding end and the concave end of the first cam 12 and the second cam 14 alternately contact the outer surface of the vertical shaft 15, pushing the vertical shaft 15 to perform a small range of reciprocating motion, causing the bracket 16 to shake.
[0027] Furthermore, two support legs 10 are provided at the front bottom of the extrusion chamber 1 and the rear bottom of the U-shaped tube 4. The support legs 10 support the extrusion chamber 1 and the U-shaped tube 4 to ensure the stability of the equipment.
[0028] The usage method of this embodiment is as follows: When using the aspartate chlorotransferase assay reagent waste recycling equipment, the solid waste generated during the production of the aspartate chlorotransferase assay reagent waste is fed into the top of the filter base 19 inside the compression chamber 1 from the discharge port 2. A storage device can be placed below the filter base 19. When the waste falls to the top of the filter base 19, two electric push rods 17 push the first push plate 20 and the second push plate 22 to perform relative linear motion. Through several inclined push plates 28, the waste falling to the top of the filter base 19 is further processed. The waste material is pushed to the top of the inclined push plate 28, and then squeezed by the first push plate 20 and the second push plate 22. The liquid adsorbed in the waste material is squeezed out from the bottom of the filter base 19 and collected by the collection device. After the squeezing is completed, the screw 9 drives the slider 13 to move towards the lower drop 18, which in turn moves the first push plate 20 and the second push plate 22 to the upper part of the lower drop 18 and brings the squeezed material to the position of the lower drop 18. Then, the two electric push rods 17 pull the corresponding first push plate 20 and second push plate 22, so that the closely attached inclined push plates 20 and 22 are squeezed out. Push plate 28 moves away from its corresponding position, causing waste to fall into drop chute 18. Then, when the motor runs, the raised and recessed ends of the first cam 12 and the second cam 14 alternately contact the outer surface of the vertical shaft 15, pushing the vertical shaft 15 to perform a small range of reciprocating motion, causing the bracket 16 to shake, shaking off the waste adhering to the surface of the inclined push plate 28, ensuring that the waste can fall into the U-shaped tube 4 from the drop chute 18. When the material falls inside the U-shaped tube 4, it will fall into the waste hopper 23 due to gravity. At this time, the two heating groups The component 8 heats the waste hopper 23, causing the residual adsorbed liquid in the waste to evaporate into a gaseous state. At this time, the blower 3 blows air into the U-shaped tube 4, ensuring that the humid gas can move to the rear end of the U-shaped tube 4. When the gas moves to the cooling component 5, the gas will be condensed by the low temperature output of the cooling component 5. The water molecules in the gas will re-condense into a liquid state and fall from the gas. The liquid falls into the water collector 6 for collection. The dried waste can be taken out and recycled by disassembling the waste hopper 23.
[0029] Finally, it should be noted that the above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Although the 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 this utility model should be included within the protection scope of this utility model.
Claims
1. A waste recycling device for aspartate chloride transferase assay reagents, comprising a compression chamber (1), characterized in that: The bottom of the extrusion chamber (1) is provided with a water filter base (19), and the top front of the extrusion chamber (1) is provided with a discharge port (2). Both sides of the bottom of the extrusion chamber (1) are provided with bottom plates (11). Both bottom plates (11) are provided with lead screws (9). Both lead screws (9) are provided with sliders (13) on their outer surfaces. The top of the sliders (13) is provided with a vertical shaft (15) through a slot. The top of the vertical shaft (15) is provided with a bracket (16). Both brackets (16) are provided with electric push rods (17) at their opposite ends. The output ends of both electric push rods (17) extend into the extrusion chamber (1). One of the electric push rods (17) is provided with a first push plate (20) at its output end, and the other electric push rod (17) is provided with a second push plate (22). The opposite ends of the first push plate (20) and the second push plate (22) are provided with upper baffles (21). The first push plate (20) and the second push plate (22) are provided with upper baffles (21). Several inclined push plates (28) are provided at the bottom edges of the opposite ends of the filter base (19). The inclined push plates (28) at the bottom of the first push plate (20) and the inclined push plates (28) at the bottom of the second push plate (22) are arranged alternately. The bottom of the opposite ends of the first push plate (20) and the second push plate (22) are provided with holes that match the corresponding inclined push plates (28). The interior of the squeezing chamber (1) at one end of the filter base (19) is provided with a drop opening (18). The drop opening (18) at the bottom of the squeezing chamber (1) is provided with a drop opening (18). 8) A U-shaped tube (4) is provided at the position. Heating components (8) are provided on both sides of the bottom of the U-shaped tube (4). An opening (27) is provided at the bottom of the U-shaped tube (4). A waste hopper (23) is detachably installed at the opening (27). Cooling components (5) are provided on both sides of one end of the U-shaped tube (4). A water collector (6) is provided at the bottom of one end of the U-shaped tube (4) below the two cooling components (5). An exhaust port (26) is provided at one end of the U-shaped tube (4).
2. The waste recycling equipment for aspartate chloride transferase assay reagents according to claim 1, characterized in that: A bellows (3) is provided on the top of the compression chamber (1) above the drop port (18).
3. The waste recycling equipment for aspartate chloride transferase assay reagents according to claim 1, characterized in that: Two locking blocks (24) are provided on both sides of the waste hopper (23), and two slots (25) matching the locking blocks (24) are provided on both sides of the bottom of the U-shaped tube (4) near the waste hopper (23).
4. The waste recycling equipment for aspartate chloride transferase assay reagents according to claim 1, characterized in that: The bottom of the water collector (6) is provided with a discharge pipe (7).
5. The waste recycling equipment for aspartate chloride transferase assay reagents according to claim 1, characterized in that: A first cam (12) is provided on the top of the slider (13) on one side of the vertical shaft (15), and a second cam (14) is provided on the top of the slider (13) on the other side of the vertical shaft (15).
6. The waste recycling equipment for aspartate chloride transferase assay reagents according to claim 1, characterized in that: The front bottom of the compression chamber (1) and the rear bottom of the U-shaped tube (4) are each provided with two legs (10).