Integrated protein separation device
By designing a protein separation device including a jet pump, a diversion cylinder, a protein collection cup and an emission component, the problem that existing devices cannot efficiently discharge foam, and the rapid discharge of foam and the improvement of protein separation effect is achieved.
Patent Information
- Application Number
- CN202421738374.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-23
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2034-07-23
AI Technical Summary
The existing protein separation devices cannot actively and continuously and efficiently discharge foam generated in the protein separation operation, causing the foam to accumulate in the collection cup and affect the operation of the device.
An integrated protein separation device is designed, including a jet pump, a diversion cylinder, a protein collection cup and a discharge assembly. Ozone gas is generated through a jet pump, and the aeration assembly in the diversion cylinder spreads the gas evenly into the water body, aggregating protein particles. There is a rotary drum and discharge blade outside the overflow port in the protein collection cup, which drives the rotary drum and discharge blades to quickly discharge foam.
The rapid discharge of foam is achieved, foam accumulation is avoided, protein separation is continuously carried out, and separation effect is improved.
Smart Images

Figure CN222861215U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of protein separators, in particular to an integrated protein separator. Background Art
[0002] Protein skimmer, also called foam skimmer, is a machine that separates suspended solids in water by flotation principle. It is widely used in industrial aquaculture circulation and source water treatment systems and life support systems of oceanariums.
[0003] The integrated protein separation device disclosed in the utility model with the authorization announcement number CN220723671U includes: a base and a protein separator, the protein separator is arranged on the top of the base, a mounting plate is fixedly mounted on the outer wall of one side of the base, an ozone generator is fixedly mounted on the top of the mounting plate, a quick fixing component is arranged on the base, the quick fixing component includes an ozone outlet pipe, a sleeve one, an air inlet pipe one, an inner ring and two fixing components, the ozone outlet pipe is fixedly mounted on the top of the ozone generator, the sleeve one is fixedly mounted on the ozone outlet pipe, the air inlet pipe is arranged on the ozone outlet pipe, the inner ring is fixedly mounted on the air inlet pipe one, the fixing component includes a groove, a telescopic rod, a U-shaped block, a spring, a card block and a card slot, and the groove is provided on the outer wall of the inner ring. The integrated protein separation device provided by the utility model has the advantages of saving energy consumption and area, and facilitating the quick connection of the air inlet pipe. However, in the application process of this technical solution, the foam entering the collection cup needs to be squeezed or self-flowed by the foam continuously collected subsequently before it can be discharged from the device through the sewage outlet. There is a technical problem that the foam continuously generated in the protein separation operation cannot be actively, continuously and efficiently discharged. Utility Model Content
[0004] In order to overcome the shortcomings of the prior art, the utility model provides an integrated protein separation device, which can solve the technical problem that the foam entering the collection cup needs to be squeezed or flowed by the subsequent continuously collected foam before it can be discharged from the device through the drain port, and there is a technical problem that the foam continuously generated in the protein separation operation cannot be actively, continuously and efficiently discharged.
[0005] To solve the above technical problems, the utility model provides the following technical solutions: an integrated protein separation device, comprising a base, a shell is arranged on the top of the base, a jet pump is arranged on one side of the top of the base, a delivery pipe is arranged at the output end of the jet pump, a water inlet is arranged at a position close to the top of one side of the shell, a guide cylinder is arranged at the middle position inside the shell, a water outlet pipe is arranged at the bottom of the other side of the shell, a protein collection cup is arranged at the top of the shell, an overflow is arranged at the bottom end inside the protein collection cup, a sewage outlet is plugged into the bottom of the rear end of the protein collection cup, a rotating drum is arranged outside the overflow in the protein collection cup, a connecting frame is arranged on the top of the rotating drum, a driving motor is arranged at the middle position of the top of the protein collection cup, a driving shaft is arranged at the output end of the driving motor, a sealed bearing is arranged at the middle position of the top of the protein collection cup, a discharge paddle is arranged on the outside of the rotating drum, and an aeration assembly is arranged at the bottom end of the guide cylinder.
[0006] As a preferred technical solution of the utility model, the bottom end of the driving shaft passes through the sealed bearing and is fixedly connected to the top end of the connecting frame, and the discharge blades are arranged at equal intervals outside the rotating drum.
[0007] As a preferred technical solution of the utility model, a liquid level gauge is provided at the front end of the shell, and the overflow port is communicated with the interior of the shell.
[0008] As a preferred technical solution of the utility model, one side of the delivery pipe passes through the bottom of the other side of the shell and extends to the interior of the guide cylinder.
[0009] As a preferred technical solution of the utility model, the aeration assembly includes a first aeration tube, which is arranged at the bottom end of the inner side wall of the guide tube, a second aeration tube is arranged on the inner side of the first aeration tube, connecting tubes are arranged at both ends between the inner side of the first aeration tube and the outer side of the second aeration tube, and aeration holes are arranged at the top ends of the first aeration tube and the second aeration tube.
[0010] As a preferred technical solution of the utility model, one side of the delivery pipe is fixedly connected to one side of the first aeration pipe, and the aeration holes are arranged at equal intervals at the top ends of the first aeration pipe and the second aeration pipe.
[0011] Compared with the prior art, the utility model can achieve the following beneficial effects:
[0012] 1. A discharge assembly is arranged inside the protein collection cup. After the foam with protein particles is collected through the overflow port of the protein collection cup, the drive motor is started to drive the connecting frame and the drum to rotate through the drive shaft. When the drum rotates, the discharge blade is driven to rotate to quickly discharge the foam through the sewage outlet, thereby avoiding the accumulation of foam in the protein collection cup and causing the device to run poorly, ensuring the continuous protein separation operation of the separation device;
[0013] 2. An aeration assembly is provided at the bottom end of the guide tube. When the device is in operation, the gas is transported to the first aeration tube and the second aeration tube connected thereto through the transport pipe, and the bubbles are evenly released into the water to be treated in the guide tube through the aeration holes, so that the bubbles can be more evenly and comprehensively diffused in the device to gather protein particles in the water to be treated, thereby further improving the protein separation effect of the device and having strong feasibility. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 This is a schematic diagram of the front three-dimensional structure of the utility model;
[0015] Figure 2 It is a rear-view stereoscopic structural schematic diagram of the utility model;
[0016] Figure 3 This is a schematic diagram of the front cross-sectional structure of the housing of the utility model;
[0017] Figure 4 It is a schematic diagram of a partial cross-sectional structure of a shell body viewed from above of the present invention.
[0018] Wherein: 1. Shell; 2. Water inlet; 3. Liquid level meter; 4. Base; 5. Jet pump; 6. Delivery pipe; 7. Water outlet pipe; 8. Protein collection cup; 9. Overflow port; 10. Drive motor; 11. Drain port; 12. Discharge blade; 13. Connecting frame; 14. Drive shaft; 15. Sealed bearing; 16. Rotating drum; 17. Guide tube; 18. First aeration pipe; 19. Connecting pipe; 20. Aeration hole; 21. Second aeration pipe. DETAILED DESCRIPTION
[0019] In order to make the technical means, creative features, purpose and efficacy of the utility model easy to understand, the utility model is further described below in conjunction with specific embodiments, but the following embodiments are only preferred embodiments of the utility model, not all. Based on the embodiments in the implementation mode, other embodiments obtained by those skilled in the art without creative work are all within the scope of protection of the utility model. The experimental methods in the following embodiments are conventional methods unless otherwise specified, and the materials, reagents, etc. used in the following embodiments are all commercially available unless otherwise specified.
[0020] Example
[0021] Please refer to Figure 1-4 As shown, the utility model provides an integrated protein separation device, including a base 4, a shell 1 is arranged on the top of the base 4, a jet pump 5 is arranged on one side of the top of the base 4, a delivery pipe 6 is arranged on the output end of the jet pump 5, a water inlet 2 is arranged near the top of one side of the shell 1, and water to be treated is introduced through the water inlet 2, a guide tube 17 is arranged at the middle position inside the shell 1, one side of the delivery pipe 6 passes through the bottom of the other side of the shell 1 and extends to the inside of the guide tube 17, and ozone is delivered to the inside of the device through the jet pump 5 and the delivery pipe 6. Generate tiny bubbles, and the protein particles in the water body need to be treated by agglomerating the bubbles. A water outlet pipe 7 is provided at the bottom of the other side of the shell 1, and a protein collection cup 8 is provided at the top of the shell 1. An overflow port 9 is provided at the bottom of the protein collection cup 8. The foam is guided to the protein collection cup 8 for collection through the overflow port 9. The overflow port 9 is connected to the interior of the shell 1. A sewage outlet 11 is inserted at the bottom of the rear end of the protein collection cup 8. The foam in the protein collection cup 8 is discharged through the sewage outlet 11. A liquid level meter 3 is provided at the front end of the shell 1, and the liquid level in the device is displayed by the liquid level meter 3.
[0022] As a further implementation of this embodiment, Figure 1 , Figure 2 and Figure 3 As shown, a rotating drum 16 is arranged outside the overflow port 9 in the protein collection cup 8, a connecting frame 13 is arranged on the top of the rotating drum 16, a driving motor 10 is arranged at the middle position of the top of the protein collection cup 8, a driving shaft 14 is arranged at the output end of the driving motor 10, a sealing bearing 15 is arranged at the middle position of the top of the inner top of the protein collection cup 8, the bottom end of the driving shaft 14 penetrates the sealing bearing 15 and the top of the connecting frame 13 and is fixedly connected, a discharge blade 12 is arranged outside the rotating drum 16, and the discharge blade 12 is arranged at equal intervals outside the rotating drum 16, when the device is running, the driving motor 10 is started to drive the connecting frame 13 and the rotating drum 16 to rotate through the driving shaft 14 and drive the discharge blade 12 to rotate to quickly discharge the foam through the sewage outlet 11, thereby avoiding the accumulation of foam in the protein collection cup 8 and causing the device to run poorly, ensuring the continuous protein separation operation of the separation device;
[0023] After the foam with protein particles is collected by the protein collection cup 8 through the overflow port 9, the driving motor 10 is started to drive the connecting frame 13 and the rotating drum 16 to rotate through the driving shaft 14. When the rotating drum 16 rotates, the discharge blade 12 is driven to rotate to quickly discharge the foam through the sewage outlet 11;
[0024] As a further implementation of this embodiment, Figure 1 , Figure 3 and Figure 4As shown, an aeration assembly is provided at the bottom end of the guide tube 17, and the aeration assembly includes a first aeration pipe 18, which is provided at the bottom end of the inner side wall of the guide tube 17, one side of the delivery pipe 6 is fixedly connected to one side of the first aeration pipe 18, a second aeration pipe 21 is provided on the inner side of the first aeration pipe 18, and connecting pipes 19 are provided at both ends between the inner side of the first aeration pipe 18 and the outer side of the second aeration pipe 21, and gas is transported to the first aeration pipe 18 and the second aeration pipe 21 connected thereto by the connecting pipe 19 through the delivery pipe 6, and aeration holes 20 are provided at the top ends of the first aeration pipe 18 and the second aeration pipe 21, and the aeration holes 20 are arranged at equal intervals at the top ends of the first aeration pipe 18 and the second aeration pipe 21, and bubbles are evenly exposed to the water body to be treated in the guide tube 17 through the aeration holes 20, so that the bubbles can be more evenly and comprehensively diffused in the device to gather protein particles in the water body to be treated, thereby further improving the protein separation effect of the device, and the feasibility is strong;
[0025] When the device is in operation, the gas is transported to the first aeration pipe 18 and the second aeration pipe 21 connected thereto by the connecting pipe 19 through the transport pipe 6, and the bubbles are evenly aerated into the water body to be treated in the guide tube 17 through the aeration holes 20, so that the bubbles can be more evenly and comprehensively diffused in the device;
[0026] Specific working principle:
[0027] When using the protein separation device, firstly, the input end of the jet pump 5 is connected to the ozone generator, and the water body to be treated is introduced through the water inlet 2, and the ozone is transported to the first aeration pipe 18 and the second aeration pipe 21 connected thereto by the connecting pipe 19 through the jet pump 5 via the delivery pipe 6, and the bubbles are evenly exposed to the water body to be treated in the guide tube 17 through the aeration holes 20, so that the bubbles can be more evenly and comprehensively diffused in the device, and the protein particles in the water body to be treated are gathered by the bubbles, and the foam is guided to the protein collection cup 8 through the overflow port 9 for collection, and at the same time, the driving motor 10 is started to drive the connecting frame 13 and the rotating drum 16 to rotate through the driving shaft 14, and when the rotating drum 16 rotates, it drives the discharge blade 12 to rotate to quickly discharge the foam through the sewage outlet 11, and the liquid level meter 3 is used to display the liquid level in the device when the device is working, so as to ensure that the device can stably and continuously perform protein separation operations.
[0028] The above shows and describes the basic principle, main features and advantages of the utility model. Those skilled in the art should understand that the utility model is not limited by the above embodiments. The above embodiments and descriptions are only preferred examples of the utility model and are not used to limit the utility model. Without departing from the spirit and scope of the utility model, the utility model may have various changes and improvements, which fall within the scope of the utility model to be protected. The scope of protection of the utility model is defined by the attached claims and their equivalents.
Claims
1. An integrated protein separation device, comprising a base (4), characterized in that: A shell (1) is arranged on the top of the base (4), a jet pump (5) is arranged on one side of the top of the base (4), a delivery pipe (6) is arranged at the output end of the jet pump (5), a water inlet (2) is arranged at a position close to the top of one side of the shell (1), a guide tube (17) is arranged at a middle position inside the shell (1), a water outlet pipe (7) is arranged at the bottom of the other side of the shell (1), a protein collection cup (8) is arranged at the top of the shell (1), an overflow port (9) is arranged at the bottom end of the protein collection cup (8), and a rear end of the protein collection cup (8) is provided. A sewage outlet (11) is inserted at the bottom of the protein collection cup (8), a rotating drum (16) is arranged outside the overflow port (9) in the protein collection cup (8), a connecting frame (13) is arranged on the top of the rotating drum (16), a driving motor (10) is arranged at the middle position of the top of the protein collection cup (8), a driving shaft (14) is arranged at the output end of the driving motor (10), a sealing bearing (15) is arranged at the middle position of the top of the protein collection cup (8), a discharge blade (12) is arranged outside the rotating drum (16), and an aeration component is arranged at the bottom end of the guide tube (17).
2. An integrated protein separation device according to claim 1, characterized in that: The bottom end of the driving shaft (14) passes through the sealed bearing (15) and is fixedly connected to the top end of the connecting frame (13), and the discharge blades (12) are arranged at equal intervals outside the rotating drum (16).
3. An integrated protein separation device according to claim 1, characterized in that: A liquid level meter (3) is provided at the front end of the shell (1), and the overflow port (9) is connected to the interior of the shell (1).
4. The integrated protein separation device according to claim 1, characterized in that: One side of the delivery pipe (6) passes through the bottom of the other side of the shell (1) and extends to the interior of the guide tube (17).
5. The integrated protein separation device according to claim 1, characterized in that: The aeration assembly comprises a first aeration pipe (18), the first aeration pipe (18) being arranged at the bottom end of the inner side wall of the flow guide tube (17), a second aeration pipe (21) being arranged on the inner side of the first aeration pipe (18), connecting pipes (19) being arranged at both ends between the inner side of the first aeration pipe (18) and the outer side of the second aeration pipe (21), and aeration holes (20) being arranged at the top ends of the first aeration pipe (18) and the second aeration pipe (21).
6. An integrated protein separation device according to claim 5, characterized in that: One side of the delivery pipe (6) is fixedly connected to one side of the first aeration pipe (18), and the aeration holes (20) are arranged at equal intervals at the top ends of the first aeration pipe (18) and the second aeration pipe (21).
Citation Information
Patent Citations
Integrated protein separation device
CN220723671U