Aqueous sterilizing solution preparation device

By designing the track wheel and ring track structures in the aqueous sterilization solution preparation device, the quantitative combination and mixing of solutes and solvents is achieved, solving the problem of loading and discharging of existing equipment in assembly line production, improving production efficiency and reducing labor costs.

CN115722139BActive Publication Date: 2025-08-22安徽中科大禹科技有限公司
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Patent Information

Application Number
CN202211348211.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-10-31
Publication Date
2025-08-22
Estimated Expiration
2042-10-31

AI Technical Summary

Technical Problem

It is difficult for existing mixing equipment to simultaneously load and discharge materials in assembly line production, resulting in cumbersome processes, high cost and low efficiency, and cannot meet the precise requirements of solution configuration.

Method used

A water-based sterilization solution preparation device is designed, including container, rail, shaft cylinder, mixing box and mixing parts. Through the reciprocating rolling of the track wheels on the ring track, the depression and protruding parts, the quantitative combination of solute and solvent is achieved, and the material is merged and discharged during the loading process to meet the needs of assembly line production.

Benefits of technology

The precise mixing of solute and solvent is achieved, meeting the needs of assembly line production, improving production efficiency and reducing labor costs.

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Abstract

The present invention provides an aqueous sterilizing solution preparation device, which relates to the field of solution preparation equipment, including a container with an open cylindrical cavity; a track, the track including a ring track that is opposite to the cylindrical cavity and etched on the inner wall of the container, wherein the ring track is concave inward at the top and protrudes outward at the lower corner; a shaft cylinder, the shaft cylinder is horizontally mounted in the cylindrical cavity, and a solvent tube extending outward in both directions relative to the shaft cylinder is inserted therein, the solvent tube passes through the container and is rotatably arranged at the container, and the portion of the solvent tube located within the range of the shaft cylinder is provided with a plurality of holes for allowing the solvent to enter the shaft cylinder from the solvent tube; a mixing box, the mixing box is annularly arrayed on the periphery of the shaft cylinder, wherein the mixing box is connected to the shaft cylinder. When the solvent tube is rotated, the track wheel moves at the ring track, the concave portion of the ring track, and the protruding portion of the ring track, so that the solute and the solvent are quantitatively combined, and the material is discharged during the loading process, thereby meeting the requirements of streamlined production.
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Description

Technical Field

[0001] The present invention relates to the field of solution preparation equipment, in particular to an aqueous sterilizing solution preparation device. Background Art

[0002] The stirring process is applied to the preparation of aqueous sterilizing solutions, and is often implemented with equipment with mixing capabilities such as stirring kettles or forced mixers. In practical applications, although the above-mentioned equipment with mixing capabilities has a good mixing effect, its mixing process is difficult to meet the requirements of the assembly line production mode. That is, in order to obtain the hard indicators of accurate solution preparation, the above-mentioned equipment adopts a single closed-loop processing mode. The biggest problem of this mode is that it is difficult to combine and discharge materials at the same time as loading. For this reason, in industrial production, the above-mentioned equipment mostly appears in group mode, that is, one device is loading, one device is mixing, and the other device is discharging, and this cycle is used to adapt to assembly line production. However, from many aspects, it is obviously inappropriate. First, the process is cumbersome. Second, the cost increases. Finally, multiple personnel are required to participate in the above work, and the efficiency is greatly reduced. For this reason, in combination with the above problems, a water-based sterilizing solution preparation device suitable for assembly line production is proposed. Summary of the Invention

[0003] The purpose of the present invention is to provide an aqueous sterilizing solution preparation device to solve the technical problem that in order to obtain the hard indicators of accurate solution configuration, equipment with mixing capabilities such as a stirring kettle or a forced mixer is difficult to load and discharge materials at the same time when using a single closed-loop processing mode.

[0004] In order to solve the above technical problems, the present invention adopts the following technical solutions:

[0005] An aqueous sterilizing solution preparation device includes a container having an open cylindrical cavity therein;

[0006] The track includes a ring track that is opposite to the cylindrical cavity and etched on the inner wall of the container, wherein the ring track is concave inward at the top and convex outward at the lower corner;

[0007] The shaft cylinder is horizontally mounted in the cylindrical cavity, and a solvent tube is inserted therein and extends outward in both directions relative to the shaft cylinder. The solvent tube passes through the container and is rotatably arranged at the container. The portion of the solvent tube located within the shaft cylinder is provided with a plurality of holes for allowing the solvent to enter the shaft cylinder through the solvent tube.

[0008] Mixing boxes, wherein the mixing boxes are arranged in an annular array on the periphery of the shaft cylinder, wherein the mixing boxes are communicated with the shaft cylinder, and an open channel is provided at one end of the mixing boxes away from the shaft cylinder;

[0009] Mixed material parts, including a bag and an insert;

[0010] The capsule is placed in the shaft cylinder and filled with a solute;

[0011] The plug-in plate is inserted into the mixing box through an open channel and connected to the capsule. The part of the plug-in plate located in the mixing box is provided with an open groove connected to the capsule, and the part of the plug-in plate located outside the mixing box is installed with a track wheel at the side end that is inserted into the track and in rolling contact with the track. When the solvent tube is rotated, the track wheel rolls back and forth on the ring track, the recessed part of the ring track and the protruding part of the ring track.

[0012] Preferably, the bag is gradually compressed when the track wheel moves from the ring track to the recessed portion in the ring track.

[0013] Preferably, when the track wheel moves from the ring track to the protruding portion in the ring track, the open groove is gradually exposed outward relative to the mixing box, so that the inner part of the mixing box is connected with the outer part of the mixing box.

[0014] Preferably, a plurality of solute transport channels are arranged on the inserting plate to connect the capsule with the open groove.

[0015] Preferably, a one-way valve is provided in the solute transport channel to direct the flow from the capsule to the open groove.

[0016] Preferably, the concave portion of the ring track is an inner concave track, and the convex portion of the ring track is an outer convex track.

[0017] Preferably, a solute delivery tube is installed at the capsule, passing through the hole and connected to the solute box from the solvent tube.

[0018] Preferably, a discharge channel communicating with the cylindrical cavity is provided at the lowest point of the container.

[0019] Preferably, one end of the solvent tube is solid, and the other end extends outward and is connected to the solvent box.

[0020] Preferably, a motor is mounted outside the container and is transmission-connected to the solvent tube.

[0021] The beneficial effects of the present invention are:

[0022] When the solvent tube is rotated, the track wheel moves on the ring track, the concave part of the ring track and the convex part of the ring track, so that the solute and the solvent are quantitatively combined, and the material is discharged during the loading process, meeting the needs of streamlined production. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 It is a structural schematic diagram of the aqueous bactericidal solution preparation device of the present invention;

[0024] Figure 2 is a schematic three-dimensional cross-sectional view of the container of the present invention;

[0025] Figure 3 for Figure 1Schematic diagram of a three-dimensional cross section;

[0026] Figure 4 Schematic diagram of the structure of the continuous stirring component;

[0027] Figure 5 for Figure 4 A partial cross-sectional diagram from the front view;

[0028] Figure 6 It is a structural diagram of the mixing frame;

[0029] Figure 7 Schematic diagram of the combined structure of the mixing element, the shaft cylinder and the solute conveying pipe;

[0030] Figure 8 It is a schematic diagram of the three-dimensional combination of the mixing unit, mixing frame, shaft cylinder and solute conveying pipe;

[0031] Figure 9 It is a schematic diagram of the three-dimensional structure of the container from a top view;

[0032] Figure numerals: 1, container; 2, mixing box; 3, shaft cylinder; 4, solute delivery tube; 5, mixing piece; 51, bag; 52, track wheel; 53, plug plate; 54, solute delivery channel; 55, open groove; 6, solvent tube; 7, hole; 8, track; 81, ring track; 82, concave track; 83, convex track; 9, discharge channel. DETAILED DESCRIPTION

[0033] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific embodiments and drawings. However, the following embodiments are only preferred embodiments of the present invention and are not exhaustive. Based on the embodiments in the implementation manner, other embodiments obtained by those skilled in the art without making any creative work are all within the scope of protection of the present invention.

[0034] Specific embodiments of the present invention are described below with reference to the accompanying drawings.

[0035] Example 1

[0036] In this embodiment, an aqueous sterilizing solution preparation device is proposed, which includes a container 1 with an open cylindrical cavity and a track 8. Figure 2 The track 8 includes a ring track 81 that is opposite to the cylindrical cavity and etched on the inner wall of the container 1. It should be noted that the ring track 81 is concave inward at the top and convex outward at the lower corner ( Figure 2 The lower left corner in the viewing angle);

[0037] The shaft cylinder 3 is horizontally mounted in the cylindrical cavity. It should be noted that the shaft cylinder 3 does not contact the container 1. Therefore, in order to lift the shaft cylinder 3 into the container 1, a solvent tube 6 extending outward from the shaft cylinder 3 in both directions needs to be inserted into the shaft cylinder 3. The solvent tube 6 first needs to pass through the container 1 and then needs to be rotated and set at the container 1 so that the shaft cylinder 3 can be in the container 1. In addition, please refer to Figure 8 The portion of the solvent tube 6 within the range of the shaft cylinder 3 is provided with a plurality of holes 7 for allowing the solvent to enter the shaft cylinder 3 through the solvent tube 6.

[0038] The mixing box 2 and the mixing piece 5 are a set of matching components;

[0039] As for the mixing box 2, its annular array is outside the shaft cylinder 3. It should be noted that the mixing box 2 is connected to the shaft cylinder 3. In addition, an open channel is provided at one end of the mixing box 2 away from the shaft cylinder 3.

[0040] The mixing unit 5 is composed of two large components: two capsules 51 and an inserting plate 53. The capsules 51 are placed inside the shaft cylinder 3 (in this embodiment, the capsules 51 are parallel to the solvent tube 6) and are filled with solute. The inserting plate 53 is inserted into the mixing box 2 through an open channel and connected to the capsules 51. The inserting plate 53 is provided with multiple solute delivery channels 54 that connect the capsules 51 to the open grooves 55. Therefore, the inserting plate 53 can be located inside or outside the mixing box 2.

[0041] The portion of the insert plate 53 located inside the mixing box 2 is provided with an open groove 55 communicating with the capsule 51;

[0042] The portion of the insert plate 53 located outside the mixing box 2 is installed with a track wheel 52 at the side end, which is inserted into the track 8 and in rolling contact with the track 8. When the solvent tube 6 is rotated, the track wheel 52 rolls back and forth on the ring track 81, the recessed portion of the ring track 81, and the protruding portion of the ring track 81.

[0043] In combination with the above description, the movement of the track wheel 52 at the ring track 81, the recessed portion of the ring track 81, and the protruding portion of the ring track 81 will bring different effects:

[0044] For details, please refer to Figure 5 When the track wheel 52 moves from the ring track 81 to the concave portion of the ring track 81, the insert plate 53 moves toward the mixing box 2. At the same time, the capsule 51 is affected by the movement of the insert plate 53, is gradually compressed, and the solute is squeezed into the solute delivery channel 54.

[0045] by Figure 3From the perspective of perspective, the solvent tube 6 is rotated clockwise in the container 1. During the rotation, the solute in the solute delivery channel 54 falls into the mixing box 2 due to gravity. It should be noted that when the solute in the solute delivery channel 54 falls into the mixing box 2, the opening of the mixing box 2 is facing upward, and the open groove 55 is located within the range of the mixing box 2 (the plug-in plate 53 blocks the open channel at the mixing box 2). Combined with the above, the solvent introduced into the shaft cylinder 3 from the solvent tube 6 and the hole 7 is bound to fill the mixing box 2 with the opening facing upward, so that a certain amount of solvent is combined with a certain amount of solute (the solvent just fills the mixing box 2 during the period from the solvent entering the mixing box 2 to the solvent being unable to enter the mixing box 2), so as to achieve the hard indicators of precise configuration of the solution.

[0046] It should be noted that, during the process of pouring the solvent into the mixing box 2 , the solvent has already been stirred and mixed with the solute under the action of gravity.

[0047] See also Figure 5 When the track wheel 52 moves from the ring track 81 to the protruding portion of the ring track 81 , the open groove 55 gradually becomes exposed outward relative to the mixing box 2 , so that the inner part of the mixing box 2 is connected to the outer part of the mixing box 2 .

[0048] Continue with Figure 3 From a perspective, the solvent tube 6 is rotated clockwise in the container 1. During the rotation, when the track wheel 52 moves from the ring track 81 to the protruding portion of the ring track 81, it pulls the insert plate 53, thereby exposing the open groove 55 relative to the mixing box 2 to the outside, connecting the inner part of the mixing box 2 with the outer part of the mixing box 2, so that the previously mixed solution flows into the container 1 through the open groove 55.

[0049] See also Figure 3 A plurality of mixing boxes 2 are arranged in a circular array on the shaft cylinder 3. Accordingly, the mixing boxes 2 are used as stirring members, and the solution flowing out of the open groove 55 is placed at the angle between the two mixing boxes 2. During the rotation of the shaft cylinder 3, the solution at the angle flows on the surface of the mixing boxes 2 to be further mixed, and is further mixed in the process of falling to the bottom of the container 1, and then flows out.

[0050] See also Figure 5 After the track wheel 52 moves from the recessed portion of the ring track 81 to the ring track 1, the pressure on the capsule 51 is released; after the track wheel 52 moves from the protruding portion of the ring track 81 to the ring track 81, the open groove 55 re-enters the mixing box 2. At the same time, the open channel at the mixing box 2 is blocked.

[0051] In combination with the above description, when the solvent tube 6 is rotated, the track wheel 52 rolls back and forth at the ring track 81, the recessed portion of the ring track 81 and the protruding portion of the ring track 81, so that the solute and the solvent are quantitatively combined, and the material is discharged during the loading process to meet the needs of streamlined production.

[0052] Example 2

[0053] In this embodiment, an aqueous sterilizing solution preparation device is proposed, which includes a container 1 with an open cylindrical cavity and a track 8. Figure 2 The track 8 includes a ring track 81 that is opposite to the cylindrical cavity and etched on the inner wall of the container 1. It should be noted that the ring track 81 is concave inward at the top and convex outward at the lower corner ( Figure 2 The lower left corner in the viewing angle);

[0054] The shaft cylinder 3 is horizontally mounted in the cylindrical cavity. It should be noted that the shaft cylinder 3 does not contact the container 1. Therefore, in order to lift the shaft cylinder 3 into the container 1, a solvent tube 6 extending outward from the shaft cylinder 3 in both directions needs to be inserted into the shaft cylinder 3. The solvent tube 6 first needs to pass through the container 1 and then needs to be rotated and set at the container 1 so that the shaft cylinder 3 can be in the container 1. In addition, please refer to Figure 8 The portion of the solvent tube 6 within the range of the shaft cylinder 3 is provided with a plurality of holes 7 for allowing the solvent to enter the shaft cylinder 3 through the solvent tube 6.

[0055] The mixing box 2 and the mixing piece 5 are a set of matching components;

[0056] As for the mixing box 2, its annular array is outside the shaft cylinder 3. It should be noted that the mixing box 2 is connected to the shaft cylinder 3. In addition, an open channel is provided at one end of the mixing box 2 away from the shaft cylinder 3.

[0057] The mixing unit 5 is composed of two large components: two capsules 51 and an inserting plate 53. The capsules 51 are placed inside the shaft cylinder 3 (in this embodiment, the capsules 51 are parallel to the solvent tube 6) and are filled with solute. The inserting plate 53 is inserted into the mixing box 2 through an open channel and connected to the capsules 51. The inserting plate 53 is provided with multiple solute delivery channels 54 that connect the capsules 51 to the open grooves 55. Therefore, the inserting plate 53 can be located inside or outside the mixing box 2.

[0058] The portion of the insert plate 53 located inside the mixing box 2 is provided with an open groove 55 communicating with the capsule 51;

[0059] The portion of the insert plate 53 located outside the mixing box 2 is installed with a track wheel 52 at the side end, which is inserted into the track 8 and in rolling contact with the track 8. When the solvent tube 6 is rotated, the track wheel 52 rolls back and forth on the ring track 81, the recessed portion of the ring track 81, and the protruding portion of the ring track 81.

[0060] Different from Example 1, in this embodiment, a solute delivery tube 4 is installed at the capsule 51, passing through the hole 7 and connected to the solute box through the solvent tube 6. That is, in order to meet the needs of assembly line production, the solute delivery tube 4 is connected to the solute box to continuously supply solute into the capsule 51.

[0061] See also Figure 2 In Example 1 and Example 2, the concave portion of the ring track 81 is the inner concave track 82 , and the convex portion of the ring track 81 is the outer convex track 83 .

[0062] See also Figure 2 In Examples 1 and 2, a discharge channel 9 communicating with the cylindrical cavity is provided at the lowest point of the container 1.

[0063] In both Example 1 and Example 2, a motor connected to the solvent tube 6 is mounted on the outside of the container 1 , and the motor drives the solvent tube 6 to rotate.

[0064] In Examples 1 and 2, a one-way valve is provided in the solute delivery channel 54 to direct the flow from the capsule 51 to the open groove 55. The function of the one-way valve is to prevent the solute placed in the solute delivery channel 54 from flowing back into the capsule 51 after the capsule 51 is pressurized to squeeze out the solute.

[0065] In the present invention, unless otherwise expressly specified or limited, a first feature being "above" or "below" a second feature may include the first and second features being in direct contact, or may include the first and second features being in contact not directly but through another feature between them. Furthermore, a first feature being "above," "above," and "above" a second feature may include the first feature being directly above or obliquely above the second feature, or may simply mean that the first feature is higher in level than the second feature. A first feature being "below," "below," and "below" a second feature may include the first feature being directly below or obliquely below the second feature, or may simply mean that the first feature is lower in level than the second feature.

[0066] The above shows and describes the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely preferred examples of the present invention and are not intended to limit the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and improvements fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.

Claims

1. Aqueous sterilizing solution preparation device, characterized in that: include: a container having an open cylindrical cavity therein; The track includes a ring track that is opposite to the cylindrical cavity and etched on the inner wall of the container, wherein the ring track is concave inward at the top and convex outward at the lower corner; The shaft cylinder is horizontally mounted in the cylindrical cavity, and a solvent tube is inserted therein and extends outward in both directions relative to the shaft cylinder. The solvent tube passes through the container and is rotatably arranged at the container. The portion of the solvent tube located within the shaft cylinder is provided with a plurality of holes for allowing the solvent to enter the shaft cylinder through the solvent tube. Mixing boxes, wherein the mixing boxes are arranged in an annular array on the periphery of the shaft cylinder, wherein the mixing boxes are communicated with the shaft cylinder, and an open channel is provided at one end of the mixing boxes away from the shaft cylinder; Mixed material parts, including a bag and an insert; The capsule is placed in the shaft cylinder and filled with a solute; The plug-in plate is inserted into the mixing box through an open channel and connected to the capsule. The part of the plug-in plate located in the mixing box is provided with an open groove connected to the capsule, and the part of the plug-in plate located outside the mixing box is installed with a track wheel at the side end that is inserted into the track and in rolling contact with the track. When the solvent tube is rotated, the track wheel rolls back and forth on the ring track, the recessed part of the ring track and the protruding part of the ring track.

2. The aqueous bactericidal solution preparation device according to claim 1, characterized in that: When the track wheel moves from the ring track to the recessed portion in the ring track, the bag is gradually compressed.

3. The aqueous bactericidal solution preparation device according to claim 1, characterized in that: When the track wheel moves from the ring track to the protruding portion in the ring track, the open groove gradually appears outward relative to the mixing box, so that the inner part of the mixing box is connected with the outer part of the mixing box.

4. The aqueous bactericidal solution preparation device according to claim 2, characterized in that: A plurality of solute transport channels are arranged on the inserting plate to connect the capsule with the open groove.

5. The aqueous bactericidal solution preparation device according to claim 4, characterized in that: A one-way valve is provided in the solute transport channel to direct the flow from the capsule to the open groove.

6. The aqueous bactericidal solution preparation device according to any one of claims 1 to 4, characterized in that: The concave portion of the ring track is an inner concave track, and the convex portion of the ring track is an outer convex track.

7. The aqueous bactericidal solution preparation device according to claim 1, characterized in that: A solute transport tube is installed at the capsule, passing through the hole and connected to the solute box from the solvent tube.

8. The aqueous bactericidal solution preparation device according to claim 1, characterized in that: A discharge channel communicating with the cylindrical cavity is provided at the lowest point of the container.

9. The aqueous bactericidal solution preparation device according to claim 7, characterized in that: One end of the solvent tube is dense, and the other end extends outward and is connected to the solvent box.

10. The aqueous bactericidal solution preparation device according to claim 1, characterized in that: A motor is mounted outside the container and is transmission-connected to the solvent tube.

Citation Information

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