Stirring machine for cleaning agent production
By arranging the liquid pumping component and the stirring rod in the mixer, the stirring efficiency and mixing uniformity in the detergent production process are improved, and the problem of low stirring efficiency in the prior art is solved.
Patent Information
- Application Number
- CN202510931220.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-07
- Publication Date
- 2025-10-17
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In the existing production process of cleaning agents, the stirring efficiency is poor, and the reciprocating stirring of the stirring shaft of the existing stirring equipment causes uneven mixing.
A mixer is used which is provided with a liquid pumping assembly and a plurality of stirring rods. The stirring rods are provided with a first cavity and a first liquid outlet. The liquid is transported into the cavity through the liquid pumping device and enters the tank body through the liquid outlet, thereby achieving liquid discharge while stirring and improving mixing uniformity.
By discharging liquid while stirring, the stirring efficiency and mixing uniformity in the detergent production process are significantly improved.
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Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of stirrers, in particular to a stirrer for cleaning agent production. BACKGROUND
[0002] The existing cleaning agent needs to be placed in the stirrer during production. The existing stirring equipment reciprocates the raw materials through the stirring shaft, which results in poor stirring efficiency. SUMMARY
[0003] In order to improve the stirring efficiency, the present application provides a stirrer for cleaning agent production.
[0004] The present application provides a stirrer for cleaning agent production, which adopts the following technical scheme: A stirrer for cleaning agent production, comprising a tank body, a stirring shaft and a driving motor, the stirring shaft is coaxially arranged with the tank body, both ends of the stirring shaft are rotatably connected to the tank body, a liquid pumping cavity is formed in the stirring shaft, a liquid pumping port is formed in the outer peripheral wall of the lower end of the stirring shaft, and a liquid pumping device is arranged in the liquid pumping cavity; a plurality of stirring rods are arranged on the stirring shaft, a first cavity is formed in the stirring rod, a plurality of first liquid outlets are formed in the outer peripheral wall of the stirring rod and communicated with the first cavity, and the liquid pumping device can move the liquid in the stirring tank to the first cavity through the liquid pumping port.
[0005] By adopting the above technical scheme, the liquid pumping assembly and the plurality of stirring rods are arranged, the first cavity and the first liquid outlet are arranged on the stirring rod, the liquid pumped by the liquid pumping device can be transported to the first cavity and then continuously enter the inside of the tank body through the first liquid outlet, the liquid is discharged through the first liquid outlet on the stirring rod, the mixing uniformity of the stirring is improved by discharging the liquid while stirring, and the stirring efficiency is improved.
[0006] Optionally, the liquid pumping device comprises a first one-way assembly, a second one-way assembly and a first piston, the first one-way assembly comprises a first annular plate, a first closing plate and a first gravity block, the first annular plate is arranged in the middle of the liquid pumping cavity, the first closing plate is arranged above the first annular plate and is slidably connected to the first closing plate in the vertical direction, the first gravity block forces the first closing plate to slide downward to close the middle of the first annular plate, the first piston is slidably connected to the liquid pumping cavity in the vertical direction, a first through hole is formed in the middle of the first piston, the second one-way assembly comprises a second closing plate and a second gravity block, the second closing plate is slidably connected to the first piston in the vertical direction to close the first through hole, and the second gravity block forces the second closing plate to slide downward.
[0007] By adopting the technical scheme, when the piston rod moves upward, the space between the first annular plate and the first piston becomes larger, the air pressure decreases, and the first closing plate moves upward under the action of the atmospheric pressure, so that the liquid in the tank body flows into the space between the first annular plate and the second annular plate, then the first piston, and the second closing plate opens the first through hole in the middle of the first piston, and the repeated up-and-down movement of the first piston can continuously draw the liquid into the liquid storage cavity.
[0008] Optionally, the liquid pumping device comprises a first driving rod and a first face gear, the liquid pumping cavity is communicated with the inner top wall of the tank body, the first driving rod is arranged on the first piston, the first face gear is coaxially arranged on the inner top wall of the tank body and located in the liquid pumping cavity, the upper end of the first driving rod abuts against the tooth surface of the first face gear, and the stirring shaft is provided with a third spring for forcing the first driving rod to move upward.
[0009] By adopting the technical scheme, in the rotation process of the stirring shaft, the first driving rod rotates relative to the tank body, and then moves relative to the first face gear, so that the first driving rod is forced to move up and down.
[0010] Optionally, the stirring shaft is provided with a liquid storage cavity, one side of the liquid storage cavity is provided with a first liquid inlet communicated with the liquid pumping cavity, the other side of the liquid storage cavity is provided with a second liquid outlet communicated with the first cavity, one end of the stirring shaft is provided with a pressurizing device, and the pressurizing device can pressurize the liquid in the liquid storage cavity and deliver the liquid into the first cavity.
[0011] By adopting the technical scheme, the pressurizing device is arranged on one side of the stirring shaft, the liquid is delivered into the first cavity by the pressurizing device, and then flows out from the first liquid outlet.
[0012] Optionally, the pressurizing device comprises a shell, a second piston, a third one-way component and a fourth one-way component, the shell is arranged on the outer peripheral wall of the stirring shaft, one side of the shell is provided with a second liquid inlet communicated with the liquid storage cavity, the other side of the shell is provided with a third liquid outlet, the third liquid outlet is communicated with the first cavity through a liquid delivery pipe, the second piston is slidably connected to the shell along the length direction of the shell, the third one-way component is located at the second liquid inlet so that the liquid can only enter the shell from the liquid storage cavity, and the fourth one-way component is located at the third liquid outlet so that the liquid can only flow out of the shell.
[0013] By adopting the technical scheme, when the second piston moves upward, the third one-way component allows the liquid to only enter the shell from the liquid storage cavity, so that the liquid in the liquid storage cavity can be pumped into the shell, then the second piston moves downward to pump the liquid in the shell into the second cavity, and the second piston will not pump the liquid back into the liquid storage cavity in the process of moving downward due to the existence of the third one-way component.
[0014] Optionally, the third one-way component comprises a first steel ball and a first spring, the first steel ball is located inside the shell, one end of the first spring is connected to the inner wall of the shell, the first steel ball is arranged at the other end of the first spring, the first spring forces the first steel ball to move to block the second liquid inlet, when the second piston moves upward, the first steel ball is forced to move to open the second liquid inlet; the fourth one-way component comprises a second steel ball and a second spring, one end of the second spring is connected to the inner wall of the shell, the second steel ball is arranged at the other end of the second spring, the second spring forces the second steel ball to move to block the third liquid outlet, when the second piston moves downward, the second steel ball is forced to move to open the third liquid outlet.
[0015] By adopting the above technical scheme, when the second piston moves upward, the first steel ball is forced to move away from the second liquid inlet, so that the second liquid inlet is opened, and when the second piston moves downward, the second steel ball is forced to move away from the third liquid outlet, so that the third liquid outlet is opened.
[0016] Optionally, the pressurizing device further comprises a second driving rod and a second face gear, the second driving rod is arranged on the second piston, the second face gear is coaxially arranged on the inner top wall of the tank body, and the upper end of the second driving rod abuts against the tooth surface of the second face gear.
[0017] By adopting the above technical scheme, during the rotation of the stirring shaft, the second driving rod moves relative to the second face gear, so that the second driving rod is forced to move downward through the tooth shape of the second face gear.
[0018] Optionally, the middle part of the first piston is coaxially fixedly connected with a third driving rod, and the third driving rod extends to the upper part of the tank body.
[0019] In summary, the present application has at least one of the following beneficial technical effects: 1. First, the liquid suction assembly and the plurality of stirring rods are arranged, and the first cavity and the first liquid outlet are arranged on the stirring rod, the liquid sucked by the liquid suction device can be transported into the first cavity and then continuously enter the inside of the tank body through the first liquid outlet, and the liquid is discharged through the first liquid outlet on the stirring rod, so that the mixing uniformity of stirring is improved, and the efficiency of stirring is improved. 2. When the second piston moves upward, the first steel ball is forced to move away from the second liquid inlet, so that the second liquid inlet is opened, and when the second piston moves downward, the second steel ball is forced to move away from the third liquid outlet, so that the third liquid outlet is opened. BRIEF DESCRIPTION OF DRAWINGS
[0020] Figure 1 is a structural schematic diagram of this embodiment; Figure 2 is a structural schematic diagram of the stirring shaft in this embodiment; Figure 3 is Figure 2 is an enlarged schematic diagram of A in Figure 4 is Figure 2 is an enlarged schematic diagram of B in Figure 5 is a structural schematic diagram of the shell in this embodiment.
[0021] Mark explanation: 1, tank body; 11, stirring cavity; 2, driving motor; 3, stirring shaft; 31, liquid suction cavity; 32, liquid storage cavity; 321, first liquid inlet; 33, liquid suction port; 34, stirring rod; 341, first liquid outlet; 35, liquid delivery pipe; 4, liquid suction device; 41, first one-way component; 411, first annular plate; 412, first closing plate; 413, first gravity block; 414, first guide rod; 42, second one-way component; 421, second closing plate; 422, second gravity block; 43, first piston; 431, first through hole; 432, third driving rod; 44, first driving rod; 441, third spring; 442, first mounting plate; 45, first face gear; 5, pressurizing device; 51, shell; 511, second liquid inlet; 512, third liquid outlet; 513, mounting groove; 52, second piston; 53, third one-way component; 531, first steel ball; 532, first spring; 533, second mounting plate; 54, fourth one-way component; 541, second steel ball; 542, second spring; 543, third mounting plate; 55, second driving rod; 551, fourth spring; 552, fourth mounting plate; 56, second face gear. DETAILED DESCRIPTION
[0022] The following will be described in detail in combination with the accompanying Figures 1-5 The present application is further described in detail.
[0023] The embodiment of the present application discloses a stirring machine for cleaner production. Referring to Figure 1 , comprising a tank body 1, a stirring shaft 3 and a driving motor 2, the tank body 1 has a stirring cavity 11 inside, the stirring shaft 3 is coaxially arranged with the tank body 1 and located in the stirring cavity 11, and both ends of the stirring shaft 3 are rotationally connected to the tank body 1. The driving motor 2 is fixedly connected to one side of the tank body 1, and the driving motor 2 drives the stirring shaft 3 to rotate through a synchronous belt and a belt wheel.
[0024] Referring to Figure 1 and Figure 2A liquid pumping chamber 31 is defined within the stirring shaft 3. The upper portion of the liquid pumping chamber 31 is connected to the upper end surface of the stirring shaft 3. A liquid pumping port 33 connected to the liquid pumping chamber 31 is defined on the outer peripheral wall of the stirring shaft 3 at the lower end. A liquid storage chamber 32 is defined in the middle portion of the stirring shaft 3. The liquid storage chamber 32 is annular, with an inner diameter greater than the diameter of the liquid pumping chamber 31. A first liquid inlet 321 connected to the liquid pumping chamber 31 is defined on one side of the liquid storage chamber 32. The stirring shaft 3 is provided with a liquid pumping device 4 located within the liquid pumping chamber 31. The liquid pumping device 4 is used to pump liquid from the stirring chamber 11 into the liquid storage chamber 32.
[0025] Reference Figure 2 The pumping device 4 includes a first one-way component 41, a second one-way component 42, and a first piston 43. The first one-way component 41 includes a first annular plate 411, a first closing plate 412, and a first weight block 413. The first annular plate 411 is arranged at the lower part of the pumping chamber 31, and the first closing plate 412 is coaxially fixedly connected to the inner wall of the pumping chamber 31. The first closing plate 412 is located above the first annular plate 411, and two first guide rods 414 are fixedly connected to the lower end surface of the first closing plate 412. The two first guide rods 414 are symmetrically arranged around the axis of the first closing plate 412, and the axis of the first guide rods 414 is vertically arranged. The first guide rods 414 slide along the vertical direction and penetrate the first closing plate 412. The first weight block 413 is fixedly connected to the upper surface of the first closing plate 412, which can force the first closing plate 412 to slide downward to close the middle part of the first annular plate 411.
[0026] Reference Figure 2 and Figure 3 The first piston 43 is located in the middle of the liquid pumping chamber 31. The first piston 43 is connected to the liquid pumping chamber 31 by sliding in the vertical direction. A first through hole 431 is formed in the middle of the first piston 43. The second one-way component 42 includes a second closing plate 421 and a second gravity block 422. The second closing plate 421 is located on the upper end surface of the first piston 43. A second guide rod is fixedly connected to the lower surface of the second closing plate 421. The axis direction of the second guide rod is vertically arranged. There are two second guide rods, and the two second guide rods are symmetrically arranged around the axis of the second closing plate 421. The second guide rod slides through the second closing plate 421 in the vertical direction. The second gravity block 422 is fixedly connected to the upper surface of the second closing plate 421, which can force the second closing plate 421 to slide downward to close the first through hole 431.
[0027] Reference Figure 2 and Figure 3The liquid pumping device 4 in the embodiment further comprises a first driving rod 44 and a first face gear 45. The first driving rod 44 is arranged on the upper surface of the first piston 43, and two first driving rods 44 are symmetrically arranged around the axis of the first piston 43. The lower end of the first driving rod 44 is fixedly connected to the upper surface of the first piston 43. The first face gear 45 is arranged in the liquid pumping cavity 31 and is fixedly connected to the inner top wall of the tank body 1. The upper end of the first driving rod 44 abuts against the tooth surface of the first face gear 45.
[0028] With reference to Figure 2 and Figure 4 , the stirring shaft 3 is provided with a third spring 441 for forcing the first driving rod 44 to move upward. The inner wall of the liquid pumping cavity 31 is fixedly connected with a first mounting plate 442 corresponding to the first driving rod 44. The third spring 441 is located on the lower surface of the first mounting plate 442. The upper end of the third spring 441 is fixedly connected to the first mounting plate 442, and the lower end of the third spring 441 is fixedly connected to the first driving rod 44.
[0029] With reference to Figure 2 and Figure 5 , one end of the stirring shaft 3 is provided with a pressurizing device 5. The pressurizing device 5 can pressurize and deliver the liquid in the liquid storage cavity 32 into the first cavity. The pressurizing device 5 is provided with two groups, and the two groups of pressurizing devices 5 are located on both sides of the stirring shaft 3. The pressurizing device 5 comprises a shell 51. The length direction of the shell 51 is vertically arranged. The shell 51 is fixedly connected to the outer peripheral wall of the stirring shaft 3. The shell 51 is located above the stirring rod 34. The shell 51 has a cavity. One side of the cavity is provided with a second liquid inlet 511 communicated with the liquid storage cavity 32. The other side of the cavity is provided with a third liquid outlet 512. A plurality of stirring rods 34 are fixedly connected to the stirring shaft 3. The stirring rod 34 is provided with a first cavity. The outer peripheral wall of the stirring rod 34 is uniformly provided with a plurality of first liquid outlets 341 communicated with the first cavity. The third liquid outlet 512 is sequentially communicated with a plurality of first cavities on the same side of the stirring shaft 3 through a liquid delivery pipe 35.
[0030] The pressurizing device 5 further comprises a second piston 52, a third one-way component 53 and a fourth one-way component 54. The second piston 52 is slidingly connected to the shell 51 along the length direction of the shell 51. The third one-way component 53 is located at the second liquid inlet 511 so that the liquid can only enter the shell 51 from the liquid storage cavity 32. The fourth one-way component 54 is located at the third liquid outlet 512 so that the liquid can only flow out of the shell 51.
[0031] The third one-way component 53 includes a first steel ball 531 and a first spring 532. The bottom wall of the cavity is fixedly connected to the second mounting plate 533. The first spring 532 is located on the side of the second mounting plate 533 close to the second liquid inlet 511. One end of the first spring 532 is fixedly connected to the second mounting plate 533. The first steel ball 531 is fixedly connected to the other end of the first spring 532. Under normal circumstances, the first spring 532 forces the first steel ball 531 to move to block the second liquid inlet 511. When the second piston 52 moves upward, it forces the first steel ball 531 to move to open the second liquid inlet 511.
[0032] The fourth one-way component 54 includes a second steel ball 541 and a second spring 542. A mounting groove 513 is defined within the third liquid outlet 512, and the fourth one-way component 54 is located within the mounting groove 513. A third mounting plate 543 is fixedly connected to the bottom wall of the mounting groove 513. The second spring 542 is located on the side of the third mounting plate 543 near the cavity. One end of the second spring 542 is fixedly connected to the third mounting plate 543, and the second steel ball 541 is fixedly connected to the other end of the second spring 542. Under normal conditions, the second spring 542 forces the second steel ball 541 to move, thereby blocking the third liquid outlet 512. When the second piston 52 moves downward, it forces the second steel ball 541 to move, thereby opening the third liquid outlet 512.
[0033] The pressurizing device 5 also includes a second drive rod 55 and a second face gear 56. The second drive rod 55 is vertically arranged in its length direction. The lower end of the second drive rod 55 is fixedly connected to the upper surface of the second piston 52. One long end of the second drive rod 55 extends upward and passes through the housing 51. The second face gear 56 is coaxially arranged on the inner top wall of the tank body 1. The upper end of the second drive rod 55 is rotatably connected to the second steel ball 541 and abuts the tooth surface of the second face gear 56.
[0034] The shell 51 is provided with a fourth spring 551 that forces the second drive rod 55 to slide upward. The peripheral wall of the second drive rod 55 is fixedly connected to the fourth mounting plate 552. The fourth spring 551 is coaxially sleeved on the second drive rod 55. One end of the fourth spring 551 is fixedly connected to the shell 51, and the other end of the fourth spring 551 is fixedly connected to the fourth mounting plate 552.
[0035] Reference Figure 1 and Figure 2 A third driving rod 432 is coaxially fixedly connected between the two first driving rods 44, and the third driving rod 432 extends to the upper part of the tank body 1. The implementation principle of the embodiment of the cleaning agent production stirring machine is as follows: firstly, the liquid pumping assembly and a plurality of stirring rods 34 are arranged, the stirring rod 34 is provided with a first cavity and a first liquid outlet 341, the liquid pumped by the liquid pumping device 4 can be delivered into the first cavity and then continuously enter the inside of the tank body 1 through the first liquid outlet 341, the liquid is discharged through the first liquid outlet 341 on the stirring rod 34, and the mixing uniformity of stirring can be improved by stirring and discharging at the same time, and then the efficiency of stirring can be improved.
[0036] The above are preferred embodiments of the application, and do not limit the protection scope of the application, so: any equivalent changes made on the basis of the structure, shape, principle of the application should be covered within the protection scope of the application.
Claims
1. A mixer for detergent production, characterized in that: The invention comprises a tank body (1), a stirring shaft (3) and a driving motor (2), wherein the stirring shaft (3) is coaxially arranged with the tank body (1), both ends of the stirring shaft (3) are rotatably connected to the tank body (1), and the driving motor (2) drives the stirring shaft (3) to rotate, a liquid pumping cavity (31) is provided in the stirring shaft (3), a liquid pumping port (33) is provided on the outer peripheral wall of the stirring shaft (3) at the lower end, and a liquid pumping device (4) is provided in the liquid pumping cavity (31); a plurality of stirring rods (34) are provided on the stirring shaft (3), a first cavity is provided in the stirring rod (34), and a plurality of first liquid outlets (341) connected to the first cavity are provided on the outer peripheral wall of the stirring rod (34), and the liquid pumping device (4) can move the liquid in the stirring tank into the first cavity through the liquid pumping port (33).
2. A mixer for detergent production according to claim 1, characterized in that: The pumping device (4) includes a first one-way component (41), a second one-way component (42) and a first piston (43). The first one-way component (41) includes a first annular plate (411), a first closing plate (412) and a first gravity block (413). The first annular plate (411) is arranged at the lower part of the pumping chamber (31). The first closing plate (412) is located above the first annular plate (411) and is slidably connected to the first closing plate (412) in a vertical direction. The first gravity block (413) forces the first closing plate (412) to ) slides downward to close the middle of the first annular plate (411), the first piston (43) slides in the vertical direction to be connected to the pumping chamber (31), a first through hole (431) is provided in the middle of the first piston (43), the second one-way component (42) includes a second closing plate (421) and a second gravity block (422), the second closing plate (421) slides in the vertical direction to be connected to the first piston (43) to close the first through hole (431), and the second gravity block (422) forces the second closing plate (421) to slide downward.
3. A mixer for detergent production according to claim 2, characterized in that: The liquid pumping device (4) includes a first driving rod (44) and a first face gear (45); the liquid pumping chamber (31) is connected to the inner top wall of the tank body (1); the first driving rod (44) is arranged on the first piston (43); the first face gear (45) is located in the liquid pumping chamber (31) and is coaxially arranged on the inner top wall of the tank body (1); the upper end of the first driving rod (44) abuts against the tooth surface of the first face gear (45); and the stirring shaft (3) is provided with a third spring (441) for forcing the first driving rod (44) to move upward.
4. A mixer for detergent production according to claim 1, characterized in that: A liquid storage chamber (32) is provided in the stirring shaft (3), a first liquid inlet (321) connected to the liquid pumping chamber (31) is provided on one side of the liquid storage chamber (32), and a second liquid outlet for communicating with the first cavity is provided on the other side of the liquid storage chamber (32). A pressurizing device (5) is provided at one end of the stirring shaft (3), and the pressurizing device (5) can pressurize the liquid in the liquid storage chamber (32) and transport it to the first cavity.
5. A mixer for detergent production according to claim 4, characterized in that: The pressurizing device (5) comprises a shell (51), a second piston (52), a third one-way component (53) and a fourth one-way component (54). The shell (51) is arranged on the outer peripheral wall of the stirring shaft (3). A second liquid inlet (511) connected to the liquid storage chamber (32) is provided on one side of the shell (51). A third liquid outlet (512) is provided on the other side of the shell (51). The third liquid outlet (512) is connected to the first cavity through a liquid infusion tube (35). The second piston (52) is slidably connected to the shell (51) along the length direction of the shell (51). The third one-way component (53) is located at the second liquid inlet (511) so that liquid can only enter the shell (51) from the liquid storage chamber (32). The fourth one-way component (54) is located at the third liquid outlet (512) so that liquid can only flow out of the shell (51).
6. A mixer for detergent production according to claim 5, characterized in that: The third one-way component (53) includes a first steel ball (531) and a first spring (532). The first steel ball (531) is located inside the housing (51). One end of the first spring (532) is connected to the inner wall of the housing (51). The first steel ball (531) is arranged at the other end of the first spring (532). The first spring (532) forces the first steel ball (531) to move to block the second liquid inlet (511). When the second piston (52) moves upward, it forces the first steel ball (531) to move to open the second liquid inlet (511). a second liquid inlet (511); the fourth one-way component (54) includes a second steel ball (541) and a second spring (542), one end of the second spring (542) is connected to the inner wall of the housing (51), and the second steel ball (541) is arranged on the other end of the second spring (542), and the second spring (542) forces the second steel ball (541) to move to block the third liquid outlet (512), and when the second piston (52) moves downward, it forces the second steel ball (541) to move to open the third liquid outlet (512).
7. A mixer for detergent production according to claim 6, characterized in that: The pressurizing device (5) further includes a second driving rod (55) and a second face gear (56), wherein the second driving rod (55) is arranged on the second piston (52), and the second face gear (56) is coaxially arranged on the inner top wall of the tank body (1), and the upper end of the second driving rod (55) abuts against the tooth surface of the second face gear (56).
8. The mixer for detergent production according to claim 2, characterized in that: A third driving rod (432) is coaxially and fixedly connected to the middle of the first piston (43), and the third driving rod (432) extends to the upper part of the tank body (1).