Porous continuous blending device capable of mixing and uniformly distributing sucked liquid in groups

The liquid continuous mixing device is suctioned through porous and grouped mixing uniformity. The combination of the reversing valve and the stirring spindle is solved, and the liquid mixing device cannot be continuously mixed is achieved, achieving efficient and uniform liquid mixing.

CN223184406UActive Publication Date: 2025-08-05韩琳佳
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Patent Information

Application Number
CN202421508587.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-28
Publication Date
2025-08-05
Estimated Expiration
2034-06-28

AI Technical Summary

Technical Problem

The existing liquid blending device cannot achieve continuous blending, resulting in time-consuming and costly, and uneven blending.

Method used

A porous, grouped mixing and uniform suction liquid continuous mixing device is adopted, including a uniform mixer, a reversing valve assembly and a mixing tank. The precise proportion and mixing of raw materials are achieved through the switching of the reversing valve, and combined with the rotation of the stirring spindle and the turbine blades, the continuous mixing and mixing of the liquid is achieved.

Benefits of technology

Continuous blending of liquids is achieved, cost reduction, and mixing uniformity and efficiency are ensured.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a multi-hole grouping mixing evenly-distributed sucked liquid continuous blending device which comprises an evenly-distributed mixer, the evenly-distributed mixer comprises a plurality of raw material connectors, a plurality of reversing valve assemblies and a mixing main connector, a plurality of liquid through holes are evenly distributed in the raw material connectors and the mixing main connector, and each reversing valve assembly comprises a plurality of reversing valves. The reversing valves at least communicate with the liquid passing holes in the two raw material connectors through liquid passing pipes, the reversing valves communicate with the liquid passing holes in the mixing main connector through the liquid passing pipes at the same time, and the positions, connected with the mixing main connector, of the reversing valves in different reversing valve assemblies are evenly arranged in a dispersed mode; the blending tank body is internally provided with a plurality of splitter plates from top to bottom, the splitter plates divide the blending tank body into a plurality of splitter layers, a feed port is formed in the center of the top of the blending tank body, and a discharge port is formed in the lower end of the blending tank body. The liquid blending device can solve the problems that a liquid blending device cannot continuously blend, time is wasted, and cost is high.
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Description

Technical Field

[0001] The utility model relates to the field of liquid blending devices, in particular to a multi-porous, grouped, mixed and uniformly distributed liquid-absorbing continuous blending device. Background Art

[0002] Existing liquid blending (such as lubricating oil) is performed in a blending tank. This involves first pouring the required liquid into the blending tank according to the desired ratio, then heating and stirring it for a certain period of time before discharging it. This process is repeated again, requiring each step of feeding, heating, stirring, and discharging. These steps require pauses and intervals, making continuous blending impossible. This increases costs compared to conventional liquid blending, and existing solutions cannot evenly blend the liquids themselves. Utility Model Content

[0003] The utility model provides a multi-porous, grouped, mixed and uniformly distributed liquid continuous blending device, which can solve the problems of liquid blending devices being unable to continuously blend, being time-consuming, unevenly blending and having high costs.

[0004] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a multi-porous, grouped mixing and uniformly distributed inhaled liquid continuous blending device, comprising a uniform mixer, the uniform mixer comprising a plurality of raw material interfaces, a plurality of reversing valve assemblies and a total mixing interface, the raw material interfaces and the total mixing interface are uniformly provided with a plurality of liquid holes, the reversing valve assemblies each comprise a plurality of reversing valves, the reversing valves are each connected to the liquid holes on at least two raw material interfaces through a liquid pipe, the reversing valves are simultaneously connected to the liquid holes on the total mixing interface through the liquid pipe, the raw materials entering the total mixing interface are switched through the reversing valves, and the positions where the reversing valves in different reversing valve assemblies are connected to the total mixing interface are dispersed and evenly arranged;

[0005] A blending tank body, wherein a plurality of diverter plates are arranged inside the blending tank body from top to bottom, and the diverter plates divide the blending tank body into a plurality of diverter layers. A feed port is arranged in the center of the top of the blending tank body, and a discharge port is arranged at the lower end of the blending tank body;

[0006] The stirring main shaft is vertically passed through the diverter plate and is arranged inside the blending tank body. The stirring main shaft is equipped with a stirring component located in each diverter layer. The top of the stirring main shaft is equipped with a turbine blade corresponding to the feed port. The main mixing interface is connected to the pipeline extending to the feed port. A liquid diverter is arranged between the end of the pipeline and the turbine blade. By setting up a uniform mixer, the raw materials in multiple raw material interfaces can be mixed at the main mixing interface. The ratio between different raw materials can be switched by the reversing valve, thereby realizing precise ratio adjustment and mixing.

[0007] Preferably, the uniformly distributed mixer includes a first raw material interface, a second raw material interface, a third raw material interface, a first reversing valve assembly, a second reversing valve assembly and a total mixing interface. The first liquid tube on the first raw material interface and part of the second liquid tube on the second raw material interface are both connected to the corresponding first reversing valve assembly, the third liquid tube on the third raw material interface and the remaining second liquid tube on the second raw material interface are both connected to the corresponding second reversing valve assembly, the first reversing valve assembly and the second reversing valve assembly are respectively connected to the liquid holes on the total mixing interface through the fourth liquid tube and the fifth liquid tube, and the liquid holes connected to the total mixing interface are evenly dispersed and have a reasonable structure.

[0008] Preferably, the number of liquid holes on the second raw material interface is twice the number of liquid holes on the first raw material interface and the third raw material interface, so that the raw materials in the second raw material interface can be mixed with the other two raw material interfaces in equal proportions.

[0009] Preferably, the main mixing interface is evenly distributed with 100 liquid holes, and there are 50 fourth liquid pipes and 50 fifth liquid pipes respectively, which is conducive to the adjustment and switching of the ratio.

[0010] Preferably, the diverter plate comprises a first diverter plate and a second diverter plate which are installed alternately, a plurality of first flow holes are arranged around the edge of the first diverter plate, and a second flow hole is arranged at the center of the second diverter plate.

[0011] Preferably, the stirring member is a stirring plate that is evenly arranged around the stirring main shaft and extends radially.

[0012] Preferably, a diversion groove is provided at the upper end of the liquid diverter, a conical protrusion is provided in the middle of the diversion groove, and a plurality of diversion holes are provided around the conical protrusion at the edge of the diversion groove.

[0013] Compared with the prior art, the beneficial effects of the present invention are:

[0014] The utility model has a uniform distribution mixer, which can distribute and mix the raw materials entering from multiple raw material interfaces through the reversing integrated component, realize the mixing adjustment of multiple formulas, and then impact the raw materials together onto the turbine blades on the blending tank, driving the turbine blades to rotate, and the turbine blades drive the stirring main shaft to rotate. At the same time, the stirring component rotates to stir the mixture entering the diversion layer. After passing through multiple diversion layers, it can be fully blended. The blended mixture is discharged from the discharge port, realizing continuous and uninterrupted blending of the raw materials, solving the problem that the liquid blending device cannot continuously blend, which is time-consuming and costly. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 This is the main structural diagram of the utility model;

[0016] Figure 2 This is a structural diagram of the uniform mixer of the present utility model;

[0017] Figure 3 This is a structural diagram of the liquid diverter of the present utility model;

[0018] Figure 4 This is a structural diagram of the first diverter plate of the present utility model;

[0019] Figure 5 This is a structural diagram of the second diverter plate of the present utility model;

[0020] Figure 6 This is a structural diagram of the stirring component of the present utility model;

[0021] Figure 7 This is a diagram of the dispersed arrangement of the liquid holes of the mixing main interface of the present utility model.

[0022] Reference numerals:

[0023] 1. Blending tank, 11. Discharge port, 12. First diverter plate, 13. Booster pump, 16. First circulation hole, 2. Pipeline, 3. Uniform mixer, 30. Main mixing interface, 31. First raw material interface, 32. Second raw material interface, 33. Third raw material interface, 34. Second liquid pipe, 35. First reversing valve assembly, 36. Second reversing valve assembly, 37. Third liquid pipe, 38. Fourth liquid pipe, 39. Fifth liquid pipe, 4. Second diverter plate, 41. First liquid pipe, 42. Third liquid pipe, 5. Turbine blades, 6. Liquid diverter, 61. Diverter trough, 62. Conical protrusion, 63. Diverter hole, 7. Second circulation hole, 8. Stirring component, 81. Stirring plate, 9. Stirring spindle, 10. Feed port. DETAILED DESCRIPTION

[0024] The technical solutions in the embodiments of the present invention will be described clearly and completely below with reference to the accompanying drawings in the embodiments of the present invention.

[0025] like Figure 1-7As shown, the present invention can solve the problem that the liquid blending device cannot continuously blend, is time-consuming and has high cost, and provides the following technical solutions: To achieve the above purpose, the present invention provides the following technical solutions: A multi-porous, grouped mixing and uniformly distributed inhaled liquid continuous blending device, comprising a uniform mixer 3, the uniform mixer 3 comprising a plurality of raw material interfaces, a plurality of reversing valve assemblies and a total mixing interface 30, the raw material interfaces and the total mixing interface 30 are uniformly provided with a plurality of liquid holes, the reversing valve assemblies each comprising a plurality of reversing valves, the reversing valves are connected to the liquid holes on at least two raw material interfaces through a liquid pipe, the reversing valves are simultaneously connected to the liquid holes on the total mixing interface 30 through the liquid pipe, the raw materials entering the total mixing interface 30 are switched through the reversing valves, and the positions where the reversing valves in different reversing valve assemblies are connected to the total mixing interface 30 are dispersed and evenly arranged;

[0026] The blending tank body 1 is provided with a plurality of diverter plates from top to bottom inside the blending tank body 1, which divide the blending tank body 1 into a plurality of diverter layers. A feed port 10 is provided in the center of the top of the blending tank body 1, and a discharge port 11 is provided at the lower end of the blending tank body 1;

[0027] A stirring main shaft 9 is vertically passed through the diversion plate and is arranged inside the blending tank body 1. The stirring main shaft 9 is equipped with a stirring component 8 located in each diversion layer. The top of the stirring main shaft 9 is equipped with a turbine blade 5 corresponding to the feed port 10. The total mixing interface 30 is connected to the pipeline 2 extending to the feed port 10. A liquid diverter 6 is arranged between the end of the pipeline 2 and the turbine blade 5. By arranging a uniform mixer 3, the raw materials in multiple raw material interfaces can be mixed at the total mixing interface 30. The ratio between different raw materials can be switched by the reversing valve, thereby realizing precise ratio adjustment and mixing.

[0028] Specifically, the uniform mixer 3 adopts multiple raw material interfaces, which can be connected to the connecting pipes of different raw materials respectively. The raw materials entering the raw material interface will evenly enter the liquid hole, and then be connected to different reversing valve assemblies through the liquid pipe. The reversing valve can be used to set the switching of the feed ratio for different raw materials. After the reversing valve is controlled according to the ratio, different raw materials will be evenly dispersed and mixed in the mixing total interface 30, and all the raw materials will be mixed together in the mixing total interface 30, and then enter the blending tank 1. The reversing valve can use a two-position three-way electromagnetic reversing valve or a manual three-way reversing valve.

[0029] A booster pump 13 may be installed on the pipeline 2 to increase the water flow rate and water pressure.

[0030] The mixed raw materials are poured downwards through the feed inlet 10 of the blending tank 1. This water flow is relatively large. To better drive the turbine blades 5 to rotate, a liquid diverter 6 is provided to form the mixed raw materials into multiple downward streams, which impact the turbine blades 5. This can better apply rotational force to the turbine blades 5, allowing the stirring shaft 9 to rotate slowly. The mixed liquid entering the blending tank 1 flows between the diverter plates, which can better mix it. At the same time, the stirring shaft 9 drives the stirring element 8 to stir the mixed liquid in the diverter layer, improving the mixing effect.

[0031] In this embodiment, as a specific embodiment of the uniform mixer 3, as shown in FIG. Figure 2 As shown, the uniformly distributed mixer 3 includes a first raw material interface 31, a second raw material interface 32, a third raw material interface 33, a first reversing valve assembly 35, a second reversing valve assembly 36 and a total mixing interface 30. The first liquid pipe 41 on the first raw material interface 31 and part of the second liquid pipe 34 on the second raw material interface 32 are both connected to the corresponding first reversing valve assembly 35, the third liquid pipe 37 on the third raw material interface 33 and the remaining second liquid pipe 34 on the second raw material interface 32 are both connected to the corresponding second reversing valve assembly 36, the first reversing valve assembly 35 and the second reversing valve assembly 36 are respectively connected to the liquid holes on the total mixing interface 30 through the fourth liquid pipe 38 and the fifth liquid pipe 39, and the liquid holes connected to the total mixing interface 30 are evenly dispersed and have a reasonable structure.

[0032] Among them, such as Figure 7 As shown, the main mixing interface 30 is evenly distributed with 100 liquid holes, and there are 50 fourth liquid pipes 38 and 50 fifth liquid pipes 39, respectively, which is conducive to the adjustment and switching of the mixing ratio.

[0033] For example, the raw material of the first raw material interface 31 is raw material B, the raw material of the second raw material interface 32 is raw material A, and the raw material of the third raw material interface 33 is raw material C. The second raw material interface 32 is provided with 100 liquid holes, and the first raw material interface 31 and the third raw material interface 33 are provided with 50 liquid holes. Now it is necessary to configure a mixed raw material in which raw material A accounts for 60%, raw material B accounts for 30%, and raw material C accounts for 10%. Then, it is necessary to select 30 reversing valves on the first reversing integrated component 38 to switch to connect to the second raw material interface 32, and select 30 reversing valves on the second reversing integrated component 37 to switch to connect to the second raw material interface 32. At the same time, 15 reversing valves are selected on the first reversing integrated component 38 to connect to the first raw material interface 31, 15 reversing valves are selected on the second reversing integrated component 37 to connect to the first raw material interface 31, and 10 reversing valves are selected on the second reversing integrated component 37 to connect to the third raw material interface 33. In this way, by selecting the number of reversing valves, accurate selection and distribution of raw materials in different proportions can be achieved.

[0034] In this embodiment, if Figure 1 、 4 As shown in Figure 5, the diverter plate includes a first diverter plate 12 and a second diverter plate 4 which are installed alternately. The edge of the first diverter plate 12 is provided with a plurality of first flow holes 16 around the circumference, and the center of the second diverter plate 4 is provided with a second flow hole 7. By providing the first diverter plate 12 and the second flow hole 7, the fluidity of the mixed raw material can be improved.

[0035] As a specific structure of the stirring member 8, Figure 6 As shown, the stirring member 8 is a stirring plate 81 evenly arranged around the stirring main shaft 9 and extending radially, which has a simple structure and low cost.

[0036] As a specific embodiment of the liquid diverter 6, Figure 3 As shown, a diversion groove 61 is provided at the upper end of the liquid diverter 6, a conical protrusion 62 is provided in the middle of the diversion groove 61, and a plurality of diversion holes 63 are provided around the edge of the diversion groove 61 around the conical protrusion 62. The conical protrusion 62 can quickly make the liquid that impacts the diversion groove 61 flow around, flow to the position of the diversion hole 63 and flow down, which can increase the speed of the water flow.

[0037] It should be noted that all directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of the present invention are only used to explain the relative position relationship, movement status, etc. between the various components under a certain specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indication will also change accordingly.

[0038] In addition, the terms "first," "second," and so on, used in this utility model are for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Therefore, features specified as "first" or "second" may explicitly or implicitly include at least one such feature. In the description of this utility model, "plurality" means at least two, such as two, three, etc., unless otherwise specifically defined.

[0039] In this utility model, unless otherwise specified or limited, the terms "connection" and "fixation" should be understood in a broad sense. For example, "fixation" can mean fixed connection, detachable connection, or integration; mechanical connection or electrical connection; direct connection or indirect connection through an intermediate medium; internal communication between two elements or interaction between two elements, unless otherwise specified. For those skilled in the art, the specific meanings of the above terms in this utility model can be understood according to specific circumstances.

[0040] In addition, the technical solutions between the various embodiments of the present invention can be combined with each other, but it must be based on the fact that ordinary technicians in this field can implement it. When the combination of technical solutions is contradictory or cannot be implemented, it should be deemed that such a combination of technical solutions does not exist and is not within the scope of protection required by this utility model.

Claims

1. A multi-porous, grouped, mixed and uniformly distributed liquid continuous blending device, characterized in that: include: A uniform mixer (3), the uniform mixer (3) comprising a plurality of raw material interfaces, a plurality of reversing valve assemblies and a mixing main interface (30), the raw material interfaces and the mixing main interface (30) being uniformly provided with a plurality of liquid holes, the reversing valve assemblies comprising a plurality of reversing valves, the reversing valves being connected to the liquid holes on at least two raw material interfaces via liquid pipes, the reversing valves being simultaneously connected to the liquid holes on the mixing main interface (30) via the liquid pipes, the raw materials entering the mixing main interface (30) being switched through the reversing valves, and the positions where the reversing valves in different reversing valve assemblies are connected to the mixing main interface (30) being uniformly distributed; A blending tank body (1), wherein a plurality of diverter plates are provided inside the blending tank body (1) from top to bottom, and the diverter plates divide the blending tank body (1) into a plurality of diverter layers, a feed port (10) is provided in the center of the top of the blending tank body (1), and a discharge port (11) is provided at the lower end of the blending tank body (1); A stirring main shaft (9) is vertically passed through the diverter plate and is arranged inside the blending tank (1). The stirring main shaft (9) is equipped with a stirring component (8) located in each diverter layer. The top of the stirring main shaft (9) is equipped with a turbine blade (5) corresponding to the feed port (10). The mixing main interface (30) is connected to the pipeline (2) extending to the feed port (10). A liquid diverter (6) is provided between the end of the pipeline (2) and the turbine blade (5).

2. The multi-porous, grouped, mixed and uniformly distributed liquid continuous blending device according to claim 1, characterized in that: The uniform distribution mixer (3) comprises a first raw material interface (31), a second raw material interface (32), a third raw material interface (33), a first reversing valve assembly (35), a second reversing valve assembly (36) and a mixing main interface (30). The first liquid passage pipe (41) on the first raw material interface (31) and part of the second liquid passage pipe (34) on the second raw material interface (32) are both connected to the corresponding first reversing valve assembly (35). The third liquid passage pipe (37) on the third raw material interface (33) and the remaining second liquid passage pipe (34) on the second raw material interface (32) are both connected to the corresponding second reversing valve assembly (36). The first reversing valve assembly (35) and the second reversing valve assembly (36) are respectively connected to the liquid holes on the mixing main interface (30) through the fourth liquid passage pipe (38) and the fifth liquid passage pipe (39). The liquid holes connected to the mixing main interface (30) by the fourth liquid passage pipe (38) and the fifth liquid passage pipe (39) are evenly dispersed.

3. The multi-porous, grouped, mixed and uniformly distributed liquid continuous blending device according to claim 2, characterized in that: The number of liquid holes on the second raw material interface (32) is twice the number of liquid holes on the first raw material interface (31) and the third raw material interface (33).

4. The multi-porous, grouped, mixed and uniformly distributed liquid continuous blending device according to claim 2, characterized in that: The mixing main interface (30) is evenly distributed with 100 liquid holes, and there are 50 fourth liquid pipes (38) and 50 fifth liquid pipes (39) respectively.

5. The multi-porous, grouped, mixed and uniformly distributed continuous blending device for liquid absorption according to claim 1, characterized in that: The diverter plate comprises a first diverter plate (12) and a second diverter plate (4) which are installed alternately. The edge of the first diverter plate (12) is provided with a plurality of first flow holes (16) around the circumference, and the center of the second diverter plate (4) is provided with a second flow hole (7).

6. The multi-porous, grouped, mixed and uniformly distributed continuous blending device for inhaled liquid according to claim 1, characterized in that: The stirring member (8) is a stirring plate (81) evenly arranged around the stirring main shaft (9) and extending radially.

7. The multi-porous, grouped, mixed and uniformly distributed continuous blending device for liquid absorption according to claim 1, characterized in that: The upper end of the liquid diverter (6) is provided with a diversion groove (61), the middle of the diversion groove (61) is provided with a conical protrusion (62), and the edge of the diversion groove (61) is provided with a plurality of diversion holes (63) around the conical protrusion (62).