Thermostable textile oil agent mixing device and use method thereof
By designing a thermally stable textile oil agent mixing device including a box driven by a servo motor, a loading barrel and a regulating barrel, the problem of difficulty in automatically mixing in existing devices is solved, and an efficient mixing process and the ability to quickly adapt to different formulations is achieved.
Patent Information
- Application Number
- CN202510565908.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-30
- Publication Date
- 2025-06-20
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing textile oil agent mixing devices are difficult to automatically mix and mix, and require users to weigh in advance, resulting in low working efficiency and difficult to quickly adapt to different product formulas.
A thermally stable textile oil agent mixing device is designed, including a box, a loading cylinder and a control cylinder driven by a servo motor. Through the coordination of the servo motor, push frame and loading column, the automatic proportion and mixing of raw material liquids are achieved.
Automatic mixing of raw material liquids is realized, the working efficiency of the device is improved, the ability to quickly adapt to different product formulas, and the mixing effect is improved through circulating spraying.
Smart Images

Figure CN120169216A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of textile oil agent mixing devices, and particularly to a heat-stable textile oil agent mixing device and a usage method thereof. Background Technique
[0002] Textile oil agents are widely used in the process of textile processing. By forming a protective film on the surface of fibers, the service life of equipment components can be effectively extended, and at the same time, it has a certain anti-static effect. During the production process of textile oil agents, different raw material liquids need to be mixed with each other through a mixing device. However, there are still some problems with existing textile oil agent mixing devices:
[0003] For example, a heat-stable textile oil agent mixing device and processing technology with the publication number of CN114950206B, which relates to the field of oil agent mixing. It includes a tank body, and a stirring device is arranged inside the tank body. A number of diversion pipes are arranged inside the tank body, and the number of diversion pipes is located at the upper end of the tank body and arranged radially along the tank body. The diversion pipes are interconnected with each other. A feeding pipe communicated with the diversion pipes is arranged outside the tank body, and a pressure pump is arranged on the feeding pipe. The lower end of the diversion pipe is communicated with a number of blanking pipes, and a baffle is fixedly connected to the lower end of the blanking pipe;
[0004] An antistatic textile oil agent dispensing device with the publication number of CN115069121B includes a tank body, and a stirring shaft is rotatably connected inside the tank body. The stirring shaft includes a number of shaft sections, and stirring blades are fixed on the outer wall of each shaft section. A driving mechanism for driving the two shaft sections to rotate in opposite directions is arranged between adjacent two shaft sections. The driving mechanism includes a driving shell, an upper bevel gear is rotatably connected to the upper end of the driving shell, a lower bevel gear is rotatably connected to the lower end of the driving shell, and a transmission bevel gear rotatably connected to the driving shell is meshed between the upper bevel gear and the lower bevel gear;
[0005] In the above devices, during use, it is difficult to automatically proportion and mix the raw material liquids, and users need to perform pre-weighing, thereby reducing the working efficiency of the device, and it is difficult for the device to quickly adapt to different product formulas.
[0006] In view of the above problems, there is an urgent need to innovate and design on the basis of the original textile oil agent mixing device. Summary of the Invention
[0007] The purpose of the present invention is to provide a heat-stable textile oil agent mixing device and a usage method thereof to solve the following problems existing in the existing textile oil agent mixing device in the above background technique: During the use of the device, it is difficult to automatically proportion and mix the raw material liquids, and users need to perform pre-weighing, thereby reducing the working efficiency of the device, and it is difficult for the device to quickly adapt to different product formulas.
[0008] To achieve the above purpose, the present invention provides the following technical solution: A heat-stable textile oil agent mixing device, including:
[0009] A box body, a servo motor is fixedly connected at the top edge thereof, the main shaft of the servo motor rotates and penetrates the box body, and the output gear at the end of the main shaft of the servo motor is meshed and connected to the inner side of the inner gear ring, and the inner gear ring is coaxially fixedly connected to the driving disk, and the driving disk is rotatably embedded in the top of the inner wall of the box body;
[0010] Also includes:
[0011] A loading cylinder, the brackets on both sides of its outer wall are fixedly installed on the inner wall of the box body, a push frame is slidably embedded between the brackets of the loading cylinder, and a force-bearing rod is fixedly connected to the top of one side of the push frame, and the upper end of the force-bearing rod is slidably embedded in a guide ring groove opened at the bottom of the driving disk, and a trigger mechanism is slidably inserted at the center of the end of the loading cylinder, and the trigger mechanism includes a loading column, one end of the loading column is coaxially fixedly connected to an extrusion plug, and a push frame is slidably inserted on the inner wall of the other side of the loading column, and a contact rod is slidably inserted at the end of the loading column close to the extrusion plug, and one end of the contact rod slides through the The squeezing plug is provided, and a moving plate is fixedly connected to the other end surface of the contact rod, a lifting frame is fitted in the inclined groove opened on the side wall of the moving plate, and a contact plate is fixedly connected to the side of the lifting frame away from the moving plate, the side wall of the squeezing plug is fitted on the inner wall of the regulating cylinder, the end of the regulating cylinder is fixedly connected with the liquid inlet of the discharge one-way valve pipe and the liquid discharge port of the liquid inlet one-way valve pipe, the liquid inlet of the liquid inlet one-way valve pipe is fixedly connected to the bottom of the storage cylinder, and the storage cylinder is fixedly installed on the top of the box body, and the tube body of the liquid inlet one-way valve pipe is fixedly penetrated through the box body and the connecting plate;
[0012] A horizontal plate is fixedly connected to the top of the box body, an adjustment block is arranged just above the center point of the horizontal plate, and balls are rotatably embedded in the four corner legs at the bottom of the adjustment block, and the bottom of the ball is fitted on the upper surface of the horizontal plate, one end of a tension rod is fixedly connected to the side wall of the adjustment block, and the other end of the tension rod is slidably embedded in the side wall of the limit box, a connecting plate is fixedly installed at the bottom center of the limit box, and the connecting plate is slidably fitted in the through grooves on the horizontal plate and the box body, and the bottom end of the connecting plate is fixedly connected to the adjustment cylinder.
[0013] Preferably, the axis of the force-bearing rod and the axis of the push frame intersect perpendicularly, and the push frame has a "T"-shaped structure, and the axis of the push frame and the axis of the driving disk intersect perpendicularly, and the guide ring groove opened on the bottom surface of the driving disk has a wavy structure, so that the driving disk can drive the force-bearing rod to move through the guide ring groove.
[0014] Preferably, a toothed plate frame is fixedly connected to the bottom surface of the pushing frame near the stress rod, and the toothed plate frame is slidably attached to the loading frame, and the loading frame is horizontally fixedly connected to the inner wall of the box body. A rotating sleeve is rotatably and fittingly embedded on the side of the loading frame away from the box body, and a transmission gear ring is coaxially fixedly connected to the upper part of the side wall of the rotating sleeve, and the teeth of the toothed plate frame are meshed with the side of the transmission gear ring. A support column is rotatably and fittingly arranged inside the rotating sleeve, and the upper end of the support column is fixedly and penetratingly connected to the lower port of the second one-way valve pipe, and the bottom of the support column is fixedly embedded in the bottom of the inner wall of the box body, and a through hole is opened at the bottom of the support column. A stirring frame is fixedly connected to the lower part of the side wall of the rotating sleeve, and the collar at the bottom of the stirring frame is rotatably embedded in the bottom of the side wall of the support column, so that the transmission gear ring can drive the stirring frame to rotate through the rotating sleeve.
[0015] Preferably, flow channels are opened inside both sides of the rotating sleeve, and the upper ports of the flow channels face the annular groove inside the loading frame, and the annular groove inside the loading frame is communicated with the lower port of the first one-way valve pipe. The lower part of the first one-way valve pipe is fixedly and penetratingly embedded in the top of the loading frame. Spray pipes are fixedly and penetratingly installed on the rotating sleeve and the stirring frame, and the liquid inlet of the spray pipe is fixedly communicated with the bottom of the flow channel, and the nozzles of the spray pipe are fixedly and penetratingly installed on the side wall of the stirring frame, so that the stirring frame can drive the spray pipe to change its position.
[0016] Preferably, four loading cylinders are evenly distributed at equal angles inside the box body. One end of the adjusting cylinder away from the drain check valve pipe is fittingly inserted into the installation ring groove of the loading cylinder. The drain check valve pipe is arranged below the inlet check valve pipe. A communicating pipe is fixedly and penetratingly installed on the side of the loading cylinder away from the adjusting cylinder, and the outer wall of the extrusion plug is fittingly arranged at the liquid inlet port of the communicating pipe. One side of the communicating pipe away from the extrusion plug is fixedly communicated with the upper ports of the first one-way valve pipe and the second one-way valve pipe, so that the liquid in the loading cylinder can enter the communicating pipe.
[0017] Preferably, a plugging block is slidably inserted into the inner wall of the pushing frame, and the top end of the plugging block protrudes from the outer wall of the pushing frame, and the top end of the plugging block is inserted into the positioning groove on the inner wall of the loading column. A plurality of pressure springs are fixedly connected between the bottom of the plugging block and the inner wall of the pushing frame at equal angles. The convex block at the end of the pushing frame is slidably embedded in the inner wall of the loading column, so that the plugging block can enter the pushing frame.
[0018] Preferably, one end of the contact rod protrudes from the plug surface of the extrusion plug, and a return spring is fixedly connected between the other end of the contact rod and the inner wall of the loading column, and the return spring is sleeved on the outer side of the rod body of the contact rod. The outer wall of the loading column is slidably attached and penetrates through the loading cylinder, so that the return spring can drive the contact rod to move.
[0019] Preferably, a through oblique groove is provided on the side of the movable plate away from the contact rod, and a cross bar on the lifting frame is fitted and penetrated on the top of the oblique groove, the movable plate is horizontally slidably installed on the inner wall of the loading column, and the lifting frame and the contact plate are vertically slidably installed on the inner wall of the loading column, the contact plate is in an "L" shape, and the top of the plug-in block is fitted on the bottom surface of the contact plate, and the width of the contact plate is smaller than the width of the plug-in block, so that the movable plate can push the lifting frame to move through the oblique groove.
[0020] Preferably, four tension rods with equal angles are fixedly connected to the side wall of the adjusting block, and the end of the tension rod away from the adjusting block is horizontally slidably embedded in the slide groove on the side wall of the limit box, a threaded rotating screw is installed through the top of the adjusting block, and the bottom end of the rotating screw is slidably inserted on the adjusting block, a lower end of a locking rod is slidably installed on the bottom surface of the adjusting block, and the upper end surface of the locking rod and the inner wall of the bottom end of the rotating screw are elastically connected by a spring, and positioning holes with equal intervals are opened on the horizontal plate, and the bottom end of the locking rod is fitly inserted in the corresponding positioning hole, so that the rotating screw can drive the locking rod to move.
[0021] The operating method of the heat-stable textile oil mixing device comprises the following steps:
[0022] S1: When the user needs to adjust the mixing ratio of the raw material liquid, the user rotates the rotating screw at the top of the adjusting block. At this time, the rotating screw will pull the locking rod elastically connected at the bottom to move synchronously, so that the lower end of the locking rod is disengaged from the positioning hole, and the user can push the adjusting block in the horizontal plane to move horizontally or vertically. Since the tension rods on the four sides of the adjusting block are slidably embedded in the corresponding limit box, the tension rod will drive the corresponding limit box to move. At this time, the limit box will drive the corresponding adjusting cylinder to move through the connecting plate installed at the bottom, so that the adjusting cylinder can move away from or close to the corresponding loading cylinder, and the distance between the inner wall of the adjusting cylinder and the plug surface of the extrusion plug will change synchronously, thereby realizing the corresponding proportion of discharge. After the adjustment is completed, the user will reset the rotating screw. At this time, the rotating screw will apply pressure to the locking rod, so that the bottom end of the locking rod can re-enter the corresponding positioning hole, and the raw material liquid to be mixed is placed in the storage cylinder, and the raw material liquid in the storage cylinder can flow into the adjusting cylinder through the liquid inlet one-way valve pipe;
[0023] S2: Then start the servo motor. At this time, the output gear of the servo motor drives the driving disk to rotate through the meshing internal gear ring, and the guide ring groove on the bottom surface of the driving disk drives the corresponding force rod to move. The force rod can drive the corresponding push rack to move back and forth. At this time, the push rack can drive the loading column to move through the plug-in block. The extrusion plug set at the end of the loading column will move in the regulating cylinder to squeeze the raw material liquid. At this time, under the action of pressure, the raw material liquid will be ejected through the discharge one-way valve pipe, so that the raw material liquid can enter the box body. In this process, the contact rod on the driving disk will first contact the inner wall of the end of the regulating cylinder. The contact rod is moved under the action of reverse pressure, and the contact rod stretches the reset spring. At the same time, the contact rod drives the moving plate to move synchronously, and the inclined slot on the moving plate can push the lifting frame to move downward. In this process, the lifting frame drives the contact plate to apply pressure to the plug-in block, and the plug-in block moves downward to further compress the pressure spring, so that the plug-in block can be separated from the positioning groove on the loading column. At this time, the extrusion plug just squeezes out the raw material liquid in the corresponding regulating cylinder. Since the plug-in block on the push frame no longer forms a transmission relationship with the loading column, the push frame can move to complete the remaining stroke.
[0024] S3: When the push frame performs the reset movement, the push frame will move away from the loading column. At this time, the loading column will no longer be subjected to the pressure of the push frame, and the extrusion plug at the end of the loading column will no longer be pressed against the inner wall of the end surface of the adjusting cylinder. At this time, the reset spring can push the contact rod to reset through the reset action, and at the same time, the contact rod will drive the moving plate to move, so that the inclined groove on the moving plate can drive the lifting frame to reset, and the lifting frame will drive the contact plate to reset and move. When the push frame drives the plug-in block to reset, the pressure spring can push the plug-in block back into the positioning groove on the loading column. In this process, the extrusion plug will reset and move, so that a suction low pressure is generated in the adjusting cylinder, so that the raw material liquid in the storage cylinder can enter the adjusting cylinder through the liquid inlet one-way valve pipe, so as to facilitate a raw material liquid discharge cycle;
[0025] S4: During the movement of the push frame, the push frame will drive the toothed plate frame connected to the bottom to move synchronously. At this time, the toothed plate frame will drive the meshing transmission gear ring to rotate, and the transmission gear ring will drive the stirring frame to rotate through the rotating sleeve to mix the raw material liquid in the box. Since the side of the loading cylinder away from the regulating cylinder is fixedly connected with a connecting pipe, and the port of the connecting pipe faces the plug surface of the extrusion plug, when the extrusion plug moves in the regulating cylinder, the air pressure in the connecting pipe will change synchronously. When the air pressure in the connecting pipe decreases, the mixed raw material liquid at the bottom of the box will flow into the connecting pipe through the support column and the second one-way valve pipe. When the pressure in the connecting pipe increases, the liquid in the connecting pipe will flow into the annular groove in the loading frame through the first one-way valve pipe. The liquid in the loading frame can enter the spray pipe through the flow channel on the rotating sleeve, and the spray pipe can spray the liquid, thereby improving the mixing effect of the liquid in the box.
[0026] Compared with the prior art, the invention has the following beneficial effects: the heat-stable textile oil agent mixing device and the use method can automatically mix the raw material liquid in a proportion during the stirring and mixing process of the device, thereby improving the working efficiency of the device, and the device can adapt to different product formulas, and the device can circulate and spray the mixed liquid to improve the mixing effect. The specific contents are as follows:
[0027] 1. One end of the loading column is coaxially fixedly connected with an extrusion plug, a push frame is slidably inserted on the inner wall of the other side of the loading column, a contact rod is slidably inserted on the end of the loading column close to the extrusion plug, one end of the contact rod slides through the extrusion plug, and a moving plate is fixedly connected to the end face of the other end of the contact rod. A lifting frame is fitted in the inclined groove opened on the side wall of the moving plate, and a resistance plate is fixedly connected to the side of the lifting frame away from the moving plate. The side wall of the extrusion plug is fitted on the inner wall of the adjusting cylinder, and a plug-in block is slidably inserted on the inner wall of the push frame, and the plug-in block is fixedly connected to the inner wall of the adjusting cylinder. The top end protrudes from the outer wall of the push frame, and the top end of the plug-in block is inserted into the positioning groove on the inner wall of the loading column. The push frame drives the loading column to move through the plug-in block, and the loading column drives the extrusion plug to squeeze out the liquid in the regulating cylinder. When the contact rod contacts the inner wall of the end of the regulating cylinder, the contact rod will be pressed and moved, and the contact rod will drive the moving plate to move, so that the inclined groove on the moving plate will push the upgrade frame to move, and the upgrade frame will drive the contact plate to move, so that the contact plate can move the plug-in block out of the positioning groove on the loading column, so that the push frame can continue to move;
[0028] 2. Four tension rods with equal angles are fixedly connected to the side wall of the adjusting block, and the end of the tension rod away from the adjusting block slides horizontally in the slide groove on the side wall of the limit box. A rotating screw with threaded connection is installed through the top of the adjusting block, and the lower end of a locking rod is installed slidingly through the bottom surface of the adjusting block. The upper end surface of the locking rod and the inner wall of the bottom end of the rotating screw are elastically connected by a spring. Positioning holes with equal intervals are opened on the horizontal plate, and the bottom end of the locking rod is fitly inserted in the corresponding positioning hole. The rotating screw is rotated. At this time, the rotating screw will drive the locking rod to move upward, so that the locking rod is away from the positioning hole, which can push the adjusting block to move. The adjusting block will drive the corresponding limit box to move through the tension rod, and the limit box will drive the corresponding adjusting cylinder position through the connecting plate, thereby changing the space between the adjusting cylinder box extrusion plug. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] Figure 1 It is a schematic diagram of the overall external structure of the present invention;
[0030] Figure 2 This is a schematic diagram of the installation structure of the loading rack of the present invention;
[0031] Figure 3 This is a schematic diagram of the drive disk installation structure of the present invention;
[0032] Figure 4Schematic diagram of the installation structure of the loading cylinder of the present invention;
[0033] Figure 5 Schematic diagram of the installation structure of the stirring frame of the present invention;
[0034] Figure 6 Schematic diagram of the installation structure of the tension rod of the present invention;
[0035] Figure 7 Schematic diagram of the installation structure of the locking rod of the present invention;
[0036] Figure 8 Schematic diagram of the installation structure of the connecting plate of the present invention;
[0037] Figure 9 Schematic diagram of the installation structure of the toothed plate frame of the present invention;
[0038] Figure 10 Schematic diagram of the installation structure of the adjusting cylinder of the present invention;
[0039] Figure 11 Schematic diagram of the installation structure of the rotating sleeve of the present invention;
[0040] Figure 12 Schematic diagram of the installation structure of the extrusion plug of the present invention;
[0041] Figure 13 Schematic diagram of the installation structure of the contact rod of the present invention;
[0042] Figure 14 Schematic diagram of the installation structure of the moving plate of the present invention;
[0043] Figure 15 Schematic diagram of the installation structure of the abutting plate of the present invention.
[0044] In the figure: 1. Box body; 2. Driving disk; 3. Inner gear ring; 4. Servo motor; 5. Guide ring groove; 6. Stress rod; 7. Pushing frame; 8. Plug-in block; 9. Pressure spring; 10. Toothed plate frame; 11. Transmission gear ring; 12. Rotating sleeve; 13. Loading frame; 14. Flow channel; 15. First one-way valve pipe; 16. Spraying pipe; 17. Stirring frame; 18. Support column; 19. Second one-way valve pipe; 20. Connecting pipe; 21. Loading cylinder; 22. Extrusion plug; 23. Adjusting cylinder; 24. Trigger mechanism; 2401. Loading column; 2402. Contact rod; 2403. Return spring; 2404. Moving plate; 2405. Inclined groove; 2406. Lifting frame; 2407. Abutting plate; 25. Drainage one-way valve pipe; 26. Liquid inlet one-way valve pipe; 27. Storage cylinder; 28. Connecting plate; 29. Limit box; 30. Horizontal plate; 31. Adjusting block; 32. Tension rod; 33. Positioning hole; 34. Locking rod; 35. Rotating screw; 36. Ball. Detailed implementation manners
[0045] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0046] See also Figures 1-15 The present invention provides a technical solution: a heat-stable textile oil mixing device, comprising:
[0047] The box body 1 is fixedly connected with a servo motor 4 at its top edge, the main shaft of the servo motor 4 rotates and penetrates the box body 1, and the output gear at the end of the main shaft of the servo motor 4 is meshed and connected to the inner side of the inner gear ring 3, and the inner gear ring 3 is coaxially fixedly connected to the driving disk 2, and the driving disk 2 is rotatably embedded in the top of the inner wall of the box body 1;
[0048] Also includes:
[0049] The loading cylinder 21 has brackets on both sides of its outer wall fixedly installed on the inner wall of the box body 1, a push frame 7 is slidably embedded between the brackets of the loading cylinder 21, and a force-bearing rod 6 is fixedly connected to the top of one side of the push frame 7, and the upper end of the force-bearing rod 6 is slidably embedded in the guide ring groove 5 opened at the bottom of the driving disk 2, and a trigger mechanism 24 is slidably inserted at the center of the end of the loading cylinder 21. The trigger mechanism 24 includes a loading column 2401, one end of the loading column 2401 is coaxially fixedly connected to the extrusion plug 22, and a push frame 7 is slidably inserted on the inner wall of the other side of the loading column 2401, and a contact rod 2402 is slidably inserted at one end of the loading column 2401 close to the extrusion plug 22, and one end of the contact rod 2402 slides through the extrusion plug 22. The movable plate 2404 is fixedly connected to the other end face of the contact rod 2402, a lifting frame 2406 is fitted in the inclined groove 2405 opened on the side wall of the movable plate 2404, and a resistance plate 2407 is fixedly connected to the lifting frame 2406 on the side away from the movable plate 2404, the side wall of the extrusion plug 22 is fitted on the inner wall of the regulating cylinder 23, the end of the regulating cylinder 23 is fixedly connected with the liquid inlet of the liquid discharge check valve tube 25 and the liquid discharge of the liquid inlet check valve tube 26, the liquid inlet of the liquid inlet check valve tube 26 is fixedly connected to the bottom of the storage cylinder 27, and the storage cylinder 27 is fixedly installed on the top of the box body 1, and the tube body of the liquid inlet check valve tube 26 is fixedly penetrated through the box body 1 and the connection plate 28;
[0050] The horizontal plate 30 is fixedly connected to the top of the box body 1. An adjusting block 31 is arranged directly above the center point of the horizontal plate 30. At the four corner legs at the bottom of the adjusting block 31, balls 36 are rotatably embedded. And the bottom of the balls 36 is in contact with the upper surface of the horizontal plate 30. One end of a tension rod 32 is fixedly connected to the side wall of the adjusting block 31. And the other end of the tension rod 32 is slidably embedded in the side wall of the limiting box 29. A connecting plate 28 is fixedly installed at the center of the bottom of the limiting box 29. And the connecting plate 28 is slidably in contact with the through groove on the horizontal plate 30 and the box body 1. The bottom end of the connecting plate 28 is fixedly connected to the adjusting cylinder 23.
[0051] There are four loading cylinders 21 evenly distributed at equal angles inside the box body 1. One end of the adjusting cylinder 23 far from the liquid discharge check valve pipe 25 is fitted and inserted into the mounting ring groove of the loading cylinder 21. The liquid discharge check valve pipe 25 is arranged below the liquid inlet check valve pipe 26. A communication pipe 20 is fixedly and penetratingly installed on one side of the loading cylinder 21 far from the adjusting cylinder 23. The outer wall of the extrusion plug 22 is fitted and arranged at the liquid inlet port of the communication pipe 20. One side of the communication pipe 20 far from the extrusion plug 22 is fixedly communicated with the upper ports of the first check valve pipe 15 and the second check valve pipe 19, so that the liquid discharged from the second check valve pipe 19 can enter the first check valve pipe 15 through the communication pipe 20. Flow channels 14 are arranged inside both sides of the rotating sleeve 12. The upper ports of the flow channels 14 face the ring groove inside the loading rack 13. The ring groove inside the loading rack 13 is communicated with the lower port of the first check valve pipe 15. The lower part of the first check valve pipe 15 is fixedly and penetratingly embedded in the top of the loading rack 13. A spray pipe 16 is fixedly and penetratingly installed on the rotating sleeve 12 and the stirring rack 17. The liquid inlet of the spray pipe 16 is fixedly communicated with the bottom of the flow channel 14. The nozzles of the spray pipe 16 are fixedly and penetratingly installed on the side wall of the stirring rack 17. At this time, the liquid discharged from the first check valve pipe 15 will flow into the spray pipe 16 through the flow channel 14. The spray pipe 16 can spray the liquid into the box body 1 for full mixing. A toothed plate rack 10 is fixedly connected to the bottom surface of one side of the push rack 7 close to the stress rod 6. The toothed plate rack 10 is slidably and fittingly arranged on the loading rack 13. The loading rack 13 is horizontally and fixedly connected to the inner wall of the box body 1. One side of the loading rack 13 far from the box body 1 is rotationally and fittingly embedded with the rotating sleeve 12. A transmission toothed ring 11 is coaxially and fixedly connected to the upper part of the side wall of the rotating sleeve 12. The teeth of the toothed plate rack 10 are meshed with the side of the transmission toothed ring 11. A support column 18 is rotationally and fittingly arranged inside the rotating sleeve 12. The upper end of the support column 18 is fixedly and penetratingly connected to the lower port of the second check valve pipe 19. The bottom of the support column 18 is fixedly embedded in the bottom of the inner wall of the box body 1. A through hole is arranged at the bottom of the support column 18. A stirring rack 17 is fixedly connected to the lower part of the side wall of the rotating sleeve 12. The collar at the bottom of the stirring rack 17 is rotationally embedded in the bottom of the side wall of the support column 18, so that the push rack 7 can drive the transmission toothed ring 11 and the rotating sleeve 12 to rotate through the toothed plate rack 10. At this time, the rotating sleeve 12 will drive the bottom stirring rack 17 to rotate synchronously.
[0052] The axis of the force rod 6 and the axis of the push frame 7 intersect vertically, and the push frame 7 is in a "T" shape, and the axis of the push frame 7 and the axis of the drive disk 2 intersect vertically. The guide ring groove 5 provided on the bottom surface of the drive disk 2 is in a wavy structure, so that the drive disk 2 can drive the force rod 6 to move back and forth through the guide ring groove 5, and the force rod 6 will drive the push frame 7 to move synchronously. Since a plug-in block 8 is slidably inserted on the inner wall of the push frame 7, and the top end of the plug-in block 8 protrudes from the outer wall of the push frame 7, and the top end of the plug-in block 8 is inserted in the loading column 240 1, the bottom of the plug block 8 and the inner wall of the push frame 7 are fixedly connected with pressure springs 9 with equal angle distribution, and the protrusion at the end of the push frame 7 is slidably embedded in the inner wall of the loading column 2401. At this time, the push frame 7 will drive the loading column 2401 to move synchronously through the plug block 8. Since one end of the contact rod 2402 protrudes from the plug surface of the extrusion plug 22, and the other end of the contact rod 2402 is fixedly connected with the inner wall of the loading column 2401 with a return spring 2403, and the return spring 2403 is sleeved on the contact rod 2402, the contact rod 2402 is fixedly connected with the inner wall of the loading column 2401. On the outside of the rod body of the contact rod 2402, the outer wall of the loading column 2401 slides and fits through the loading cylinder 21. When the contact rod 2402 contacts the inner wall of the end of the adjusting cylinder 23, the contact rod 2402 will start to move, and the contact rod 2402 will stretch the return spring 2403. At the same time, a through inclined groove 2405 is opened on the side of the moving plate 2404 away from the contact rod 2402, and the top of the inclined groove 2405 fits the cross bar on the lifting frame 2406, and the moving plate 2404 slides horizontally and is installed on the loading column 2 401, the lifting frame 2406 and the contact plate 2407 are vertically slidably installed on the inner wall of the loading column 2401, the contact plate 2407 is in an "L" shape, and the top of the plug-in block 8 is fitted on the bottom surface of the contact plate 2407, and the width of the contact plate 2407 is smaller than the width of the plug-in block 8. At this time, the contact rod 2402 will drive the lifting frame 2406 to move vertically through the moving plate 2404. At this time, the contact plate 2407 at the end of the lifting frame 2406 will push the plug-in block 8 out of the loading column 2401.
[0053] Four tension rods 32 are fixedly connected to the side wall of the adjusting block 31 and are equally angularly distributed. One end of the tension rod 32 far from the adjusting block 31 is horizontally and slidably embedded in the chute on the side wall of the limiting box 29. A rotation screw rod 35 connected by thread is installed through the top of the adjusting block 31, and the bottom end of the rotation screw rod 35 is slidably inserted into the adjusting block 31. The lower end of a locking rod 34 is slidably installed through the bottom surface of the adjusting block 31, and the upper end surface of the locking rod 34 and the inner wall of the bottom end of the rotation screw rod 35 are elastically connected by a spring. Positioning holes 33 are arranged at equal intervals on the horizontal plate 30, and the bottom end of the locking rod 34 is fitted and inserted into the corresponding positioning hole 33. When the rotation screw rod 35 rotates on the adjusting block 31, the rotation screw rod 35 will drive the locking rod 34 at the bottom end to move synchronously, so that the locking rod 34 moves out of the positioning hole 33. At this time, the adjusting block 31 can drive the corresponding limiting box 29 to move synchronously through the tension rod 32.
[0054] The operation method of the heat-stable textile oil agent mixing device includes the following steps:
[0055] S1: When the user needs to adjust the mixing ratio of the raw material liquid, rotate the rotation screw rod 35 at the top of the adjusting block 31. At this time, the rotation screw rod 35 will pull the locking rod 34 elastically connected at the bottom to move synchronously, so that the lower end of the locking rod 34 disengages from the positioning hole 33. The user can then push the adjusting block 31 horizontally or vertically in the horizontal plane. Since the tension rods 32 on the four sides of the adjusting block 31 are slidably embedded in the corresponding limiting boxes 29, the tension rods 32 will drive the corresponding limiting boxes 29 to move at this time. At this time, the limiting box 29 will drive the corresponding adjusting cylinder 23 to move through the connecting plate 28 installed at the bottom, so that the adjusting cylinder 23 can move away from or close to the corresponding loading cylinder 21, and the distance between the inner wall of the adjusting cylinder 23 and the plug surface of the extrusion plug 22 will change synchronously, thereby realizing the discharging of the corresponding ratio. After the adjustment is completed, the user resets the rotation screw rod 35. At this time, the rotation screw rod 35 will apply pressure to the locking rod 34, so that the bottom end of the locking rod 34 can re-enter the corresponding positioning hole 33. The raw material liquid to be mixed is placed in the storage cylinder 27, and the raw material liquid in the storage cylinder 27 can flow into the adjusting cylinder 23 through the liquid inlet one-way valve pipe 26;
[0056] S2: Then start the servo motor 4. At this time, the output gear of the servo motor 4 drives the driving disk 2 to rotate through the meshing internal gear ring 3, and the guide ring groove 5 on the bottom surface of the driving disk 2 will drive the corresponding force rod 6 to move, and the force rod 6 can drive the corresponding push rack 7 to move back and forth. At this time, the push rack 7 can drive the loading column 2401 to move through the plug block 8. The extrusion plug 22 set at the end of the loading column 2401 will move in the regulating cylinder 23 to squeeze the raw material liquid. At this time, under the action of pressure, the raw material liquid will be sprayed out through the discharge one-way valve pipe 25, so that the raw material liquid can enter the box body 1. In this process, the contact rod 2402 on the driving disk 2 will first contact the inner wall of the end of the regulating cylinder 23, so that the contact rod 2402 can The contact rod 2402 stretches the return spring 2403, and the contact rod 2402 drives the moving plate 2404 to move synchronously. The inclined groove 2405 on the moving plate 2404 can push the lifting frame 2406 to move downward. During this process, the lifting frame 2406 drives the contact plate 2407 to apply pressure to the plug-in block 8. The plug-in block 8 moves downward to further compress the pressure spring 9, so that the plug-in block 8 can be separated from the positioning groove on the loading column 2401. At this time, the extrusion plug 22 just squeezes out the raw material liquid in the corresponding adjustment cylinder 23. Since the plug-in block 8 on the push frame 7 no longer forms a transmission relationship with the loading column 2401, the push frame 7 can move to complete the remaining stroke.
[0057] S3: When the push rack 7 performs the reset movement, the push rack 7 will move away from the loading column 2401. At this time, the loading column 2401 will no longer be subjected to the pressure of the push rack 7, and the extrusion plug 22 at the end of the loading column 2401 will no longer be pressed against the inner wall of the end surface of the regulating cylinder 23. At this time, the reset spring 2403 can push the contact rod 2402 to reset through the reset action. At the same time, the contact rod 2402 will drive the moving plate 2404 to move, so that the inclined groove 2405 on the moving plate 2404 can drive the lifting rack 2406 to reset, and the lifting rack 2406 will drive the contact plate 2407 to reset and move. When the push rack 7 drives the plug-in block 8 to reset, the pressure spring 9 can push the plug-in block 8 back into the positioning groove on the loading column 2401. In this process, the extrusion plug 22 will reset and move, so that a suction low pressure is generated in the regulating cylinder 23, so that the raw material liquid in the storage cylinder 27 can enter the regulating cylinder 23 through the liquid inlet one-way valve pipe 26, so as to facilitate a raw material liquid discharge cycle;
[0058] S4: During the movement of the pushing frame 7, the pushing frame 7 will drive the rack frame 10 connected to the bottom to move synchronously. At this time, the rack frame 10 will drive the engaged transmission gear ring 11 to rotate, and the transmission gear ring 11 will drive the stirring frame 17 to rotate through the rotating sleeve 12 to mix the raw material liquid in the box body 1. Since a communicating pipe 20 is fixedly communicated with the side of the loading cylinder 21 far away from the adjusting cylinder 23, and the port of the communicating pipe 20 faces the plug surface of the extrusion plug 22, when the extrusion plug 22 moves in the adjusting cylinder 23, the air pressure in the communicating pipe 20 will change synchronously. When the air pressure in the communicating pipe 20 decreases, the mixed raw material liquid at the bottom of the box body 1 will flow into the communicating pipe 20 through the support column 18 and the second one-way valve pipe 19. When the pressure in the communicating pipe 20 increases, the liquid in the communicating pipe 20 will flow into the annular groove in the loading frame 13 through the first one-way valve pipe 15, and the liquid in the loading frame 13 can enter the spray pipe 16 through the flow channel 14 on the rotating sleeve 12, and the spray pipe 16 can spray the liquid, thereby improving the mixing effect of the liquid in the box body 1.
[0059] In the description of the present invention, unless otherwise specified, "a plurality of" means two or more; the orientation or positional relationship indicated by the terms "upper", "lower", "left", "right", "inner", "outer", "front end", "rear end", "head", "tail", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be construed as a limitation of the present invention. In addition, the terms "first", "second", "third", etc. are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.
[0060] In the description of the present invention, it should be noted that unless otherwise clearly specified and limited, the terms "connected" and "connected" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.
[0061] Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.
Claims
1. A heat-stable textile oil mixing device, comprising: A box (1) is fixedly connected to a servo motor (4) at its top edge, the main shaft of the servo motor (4) is rotatably arranged through the box (1), and the output gear at the end of the main shaft of the servo motor (4) is meshedly connected to the inner side of the inner gear ring (3), and the inner gear ring (3) is coaxially fixedly connected to the drive disk (2), and the drive disk (2) is rotatably embedded in the top of the inner wall of the box (1); It is characterized by further comprising: A loading cylinder (21) has brackets on both sides of its outer wall fixedly mounted on the inner wall of the box body (1), a push frame (7) is slidably embedded between the brackets of the loading cylinder (21), and a force-bearing rod (6) is fixedly connected to the top of one side of the push frame (7), and the upper end of the force-bearing rod (6) is slidably embedded in a guide ring groove (5) opened at the bottom of the driving disk (2), and a trigger mechanism (24) is slidably inserted at the center of the end of the loading cylinder (21), and the trigger mechanism (24) comprises a loading column (2401), one end of the loading column (2401) is coaxially fixedly connected to an extrusion plug (22), and a push frame (7) is slidably inserted on the inner wall of the other side of the loading column (2401), and a contact rod (2402) is slidably inserted at one end of the loading column (2401) close to the extrusion plug (22), and one end of the contact rod (2402) slides through the extrusion plug ( 22) is provided, and a moving plate (2404) is fixedly connected to the other end surface of the contact rod (2402), a lifting frame (2406) is fitted in the inclined groove (2405) opened on the side wall of the moving plate (2404), and a contact plate (2407) is fixedly connected to the side of the lifting frame (2406) away from the moving plate (2404), the side wall of the extrusion plug (22) is fitted on the inner wall of the regulating cylinder (23), the end of the regulating cylinder (23) is fixedly connected with the liquid inlet of the liquid discharge check valve pipe (25) and the liquid discharge of the liquid inlet check valve pipe (26), the liquid inlet of the liquid inlet check valve pipe (26) is fixedly connected to the bottom of the storage cylinder (27), and the storage cylinder (27) is fixedly installed on the top of the box body (1), and the tube body of the liquid inlet check valve pipe (26) is fixedly penetrated through the box body (1) and the connection plate (28); A horizontal plate (30) is fixedly connected to the top of the box body (1), an adjustment block (31) is arranged directly above the center point of the horizontal plate (30), and balls (36) are rotatably embedded at the four corner legs at the bottom of the adjustment block (31), and the bottom of the ball (36) is fitted on the upper surface of the horizontal plate (30), one end of a tension rod (32) is fixedly connected to the side wall of the adjustment block (31), and the other end of the tension rod (32) is slidably embedded on the side wall of the limit box (29), a connecting plate (28) is fixedly installed at the bottom center of the limit box (29), and the connecting plate (28) is slidably fitted in a through groove on the horizontal plate (30) and the box body (1), and the bottom end of the connecting plate (28) is fixedly connected to the adjustment cylinder (23).
2. A heat-stable textile oil mixing device according to claim 1, characterized in that: The axis of the force-bearing rod (6) and the axis of the push frame (7) intersect perpendicularly, and the push frame (7) is in a "T"-shaped structure. The axis of the push frame (7) and the axis of the driving disk (2) intersect perpendicularly, and the guide ring groove (5) provided on the bottom surface of the driving disk (2) is in a wave-shaped structure.
3. A heat-stable textile oil mixing device according to claim 1, characterized in that: A toothed plate frame (10) is fixedly connected to the bottom surface of one side of the push frame (7) close to the force-bearing rod (6), and the toothed plate frame (10) is slidably fitted on the loading frame (13), and the loading frame (13) is horizontally fixedly connected to the inner wall of the box body (1), and a rotating sleeve (12) is rotatably fitted on the side of the loading frame (13) away from the box body (1), and a transmission gear ring (11) is coaxially fixedly connected to the upper part of the side wall of the rotating sleeve (12), and the side of the transmission gear ring (11) is meshingly provided with a toothed plate frame The rotating sleeve (12) has teeth, a support column (18) is rotatably fitted on the inner side of the rotating sleeve (12), and the upper end of the support column (18) is fixedly connected to the lower end of the second one-way valve tube (19), and the bottom of the support column (18) is fixedly embedded in the bottom of the inner wall of the box body (1), and a through hole is opened at the bottom of the support column (18), and the lower part of the side wall of the rotating sleeve (12) is fixedly connected to the stirring frame (17), and the ring at the bottom of the stirring frame (17) is rotatably embedded in the bottom of the side wall of the support column (18).
4. A heat-stable textile oil mixing device according to claim 3, characterized in that: Flow channels (14) are provided inside the two sides of the rotating sleeve (12), and the upper end of the flow channel (14) faces the annular groove in the loading frame (13), and the annular groove in the loading frame (13) is communicated with the lower end of the first one-way valve pipe (15), and the lower part of the first one-way valve pipe (15) is fixedly penetrated and embedded in the top of the loading frame (13), and a spray pipe (16) is fixedly penetrated and installed on the rotating sleeve (12) and the stirring frame (17), and the liquid inlet of the spray pipe (16) is fixedly communicated with the bottom of the flow channel (14), and the spray head of the spray pipe (16) is fixedly penetrated and installed on the side wall of the stirring frame (17).
5. A heat-stable textile oil mixing device according to claim 1, characterized in that: Four loading cylinders (21) are arranged at equal angles in the housing (1); an end of the regulating cylinder (23) away from the liquid discharge one-way valve tube (25) is fitted and inserted in the mounting ring groove of the loading cylinder (21); the liquid discharge one-way valve tube (25) is arranged below the liquid inlet one-way valve tube (26); a connecting tube (20) is fixedly installed through the side of the loading cylinder (21) away from the regulating cylinder (23); the outer wall of the extrusion plug (22) is fitted at the liquid inlet port of the connecting tube (20); and the upper ports of the first one-way valve tube (15) and the second one-way valve tube (19) are fixedly connected to the side of the connecting tube (20) away from the extrusion plug (22).
6. A heat-stable textile oil mixing device according to claim 1, characterized in that: A plug-in block (8) is slidably inserted on the inner wall of the push frame (7), and the top end of the plug-in block (8) protrudes from the outer wall of the push frame (7), and the top end of the plug-in block (8) is inserted into a positioning groove on the inner wall of the loading column (2401), and pressure springs (9) distributed at equal angles are fixedly connected between the bottom of the plug-in block (8) and the inner wall of the push frame (7), and the protrusion at the end of the push frame (7) is slidably embedded in the inner wall of the loading column (2401).
7. A heat-stable textile oil mixing device according to claim 1, characterized in that: One end of the contact rod (2402) is protruding from the plug surface of the extrusion plug (22), and a return spring (2403) is fixedly connected between the other end of the contact rod (2402) and the inner wall of the loading column (2401), and the return spring (2403) is sleeved on the outside of the rod body of the contact rod (2402), and the outer wall of the loading column (2401) is slidably fitted and penetrates the loading cylinder (21).
8. A heat-stable textile oil mixing device according to claim 1, characterized in that: A through oblique groove (2405) is provided on a side of the movable plate (2404) away from the contact rod (2402), and the top of the oblique groove (2405) is fitted with a cross bar on a lifting frame (2406) that is provided through the movable plate (2404). The movable plate (2404) is horizontally slidably installed on the inner wall of the loading column (2401), and the lifting frame (2406) and the contact plate (2407) are vertically slidably installed on the inner wall of the loading column (2401). The contact plate (2407) is in an "L"-shaped structure, and the top of the plug-in block (8) is fitted on the bottom surface of the contact plate (2407), and the width of the contact plate (2407) is smaller than the width of the plug-in block (8).
9. A heat-stable textile oil mixing device according to claim 1, characterized in that: Four tension rods (32) distributed at equal angles are fixedly connected to the side wall of the adjustment block (31), and one end of the tension rod (32) away from the adjustment block (31) is horizontally slidably embedded in the slide groove on the side wall of the limit box (29), a threaded rotating screw (35) is installed through the top of the adjustment block (31), and the bottom end of the rotating screw (35) is slidably inserted on the adjustment block (31), and the lower end of the locking rod (34) is slidably installed on the bottom surface of the adjustment block (31), and the upper end surface of the locking rod (34) and the inner wall of the bottom end of the rotating screw (35) are elastically connected by a spring, and the horizontal plate (30) is provided with positioning holes (33) distributed at equal intervals, and the bottom end of the locking rod (34) is fitted and inserted in the corresponding positioning hole (33).
10. A method for using a heat-stable textile oil mixing device, using the heat-stable textile oil mixing device according to any one of claims 1 to 9, characterized in that: The steps include: S1: When the user needs to adjust the mixing ratio of the raw materials and liquids, the user rotates the rotating screw (35) on the top of the adjusting block (31). At this time, the rotating screw (35) will pull the locking rod (34) elastically connected to the bottom to move synchronously, so that the lower end of the locking rod (34) is disengaged from the positioning hole (33). The user can then push the adjusting block (31) in the horizontal plane to move horizontally or vertically. Since the tension rods (32) on the four sides of the adjusting block (31) are slidably embedded in the corresponding limit boxes (29), the tension rods (32) will drive the corresponding limit boxes (29) to move. At this time, the limit boxes (29) will be brought into contact with the connecting plate (28) installed at the bottom. The corresponding adjusting cylinder (23) is moved so that the adjusting cylinder (23) can be moved away from or close to the corresponding loading cylinder (21). The distance between the inner wall of the adjusting cylinder (23) and the plug surface of the extrusion plug (22) will change synchronously, thereby realizing the corresponding proportion of material discharge. After the adjustment is completed, the user will reset the rotating screw (35). At this time, the rotating screw (35) will apply pressure to the locking rod (34), so that the bottom end of the locking rod (34) can re-enter the corresponding positioning hole (33). The raw material liquid to be mixed is placed in the storage cylinder (27). The raw material liquid in the storage cylinder (27) can flow into the adjusting cylinder (23) through the liquid inlet one-way valve tube (26); S2: Then the servo motor (4) is started. At this time, the output gear of the servo motor (4) drives the driving disk (2) to rotate through the meshing internal gear ring (3), and the guide ring groove (5) on the bottom surface of the driving disk (2) drives the corresponding force rod (6) to move. The force rod (6) can drive the corresponding push rack (7) to move back and forth. At this time, the push rack (7) can drive the loading column (2401) to move through the plug block (8). The extrusion plug (22) provided at the end of the loading column (2401) will move in the regulating cylinder (23) to squeeze the raw material liquid. At this time, under the action of pressure, the raw material liquid will be ejected through the discharge one-way valve pipe (25), so that the raw material liquid can enter the box body (1). During this process, the contact rod (2402) on the driving disk (2) will first contact the inner wall of the end of the regulating cylinder (23), so that the contact rod (2402) It can move under the action of reverse pressure, the contact rod (2402) stretches the return spring (2403), and at the same time the contact rod (2402) drives the moving plate (2404) to move synchronously, and the inclined groove (2405) on the moving plate (2404) can push the lifting frame (2406) to move downward. During this process, the lifting frame (2406) drives the contact plate (2407) to apply pressure to the plug-in block (8), and the plug-in block (8) moves downward to further compress the pressure spring (9), so that the plug-in block (8) can be separated from the positioning groove on the loading column (2401). At this time, the extrusion plug (22) just squeezes out the raw material liquid in the corresponding adjustment cylinder (23). Since the plug-in block (8) on the push frame (7) no longer forms a transmission relationship with the loading column (2401), the push frame (7) can move to complete the remaining stroke. S3: When the push frame (7) performs the reset movement, the push frame (7) will move away from the loading column (2401). At this time, the loading column (2401) will no longer be subjected to the pressure of the push frame (7), and the extrusion plug (22) at the end of the loading column (2401) will no longer be pressed against the inner wall of the end surface of the adjustment cylinder (23). At this time, the reset spring (2403) can push the contact rod (2402) to reset through the reset action, and at the same time, the contact rod (2402) will drive the moving plate (2404) to move, so that the inclined groove (2405) on the moving plate (2404) can drive The lifting frame (2406) is reset, and the lifting frame (2406) drives the contact plate (2407) to reset. When the push frame (7) drives the plug-in block (8) to reset, the pressure spring (9) can push the plug-in block (8) back into the positioning groove on the loading column (2401). During this process, the extrusion plug (22) is reset, so that a suction low pressure is generated in the regulating cylinder (23), so that the raw material liquid in the storage cylinder (27) can enter the regulating cylinder (23) through the liquid inlet one-way valve tube (26), so as to facilitate a raw material liquid discharge cycle; S4: During the movement of the push frame (7), the push frame (7) will drive the toothed plate frame (10) connected to the bottom to move synchronously. At this time, the toothed plate frame (10) will drive the meshing transmission gear ring (11) to rotate, and the transmission gear ring (11) will drive the stirring frame (17) to rotate through the rotating sleeve (12) to mix the raw material liquid in the box body (1). Since the side of the loading cylinder (21) away from the regulating cylinder (23) is fixedly connected with the connecting pipe (20), and the port of the connecting pipe (20) faces the plug surface of the extrusion plug (22), when the extrusion plug (22) moves in the regulating cylinder (23), the connecting pipe (20) The air pressure inside the connecting pipe (20) will change synchronously. When the air pressure inside the connecting pipe (20) decreases, the mixed raw material liquid at the bottom of the box body (1) will flow into the connecting pipe (20) through the support column (18) and the second one-way valve pipe (19). When the pressure inside the connecting pipe (20) increases, the liquid in the connecting pipe (20) will flow into the annular groove in the loading frame (13) through the first one-way valve pipe (15). The liquid in the loading frame (13) can enter the spray pipe (16) through the flow channel (14) on the rotating sleeve (12). The spray pipe (16) can spray the liquid, thereby improving the mixing effect of the liquid in the box body (1).
Citation Information
Patent Citations
A heat-stabilized textile oil mixing device and processing technology
CN114950206B
An antistatic textile oil preparation device and its preparation process
CN115069121B
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