A mixing device for silicone oil applied to textile

By designing an automated linkage structure for mixing, screening, and feeding modules, the problems of limited functionality and poor mixing effect in existing silicone oil mixing devices have been solved, achieving efficient silicone oil mixing and impurity separation, thus improving the quality of silicone oil and production efficiency.

CN116059870BActive Publication Date: 2026-02-10YISHUIXIANGTENGHUAGONG CO LTD
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Patent Information

Application Number
CN202211437926.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-11-16
Publication Date
2026-02-10
Estimated Expiration
2042-11-16

AI Technical Summary

Technical Problem

Existing silicone oil mixing devices have simple structures and limited functions. The removal of impurities from the raw materials and the feeding process require manual handling, resulting in poor mixing effects and affecting the quality of the silicone oil.

Method used

A mixing device comprising a mixing execution module, a drive module, a screening module, and a feeding module was designed. The device achieves automated mixing, screening, and feeding through a linkage structure. Irregular mixing and impurity separation are achieved by utilizing the coordinated movement of the rotating roller, mixing blades, and auxiliary blades.

Benefits of technology

It improves the stirring effect and purity of silicone oil, realizes a highly automated mixing process, and ensures the quality of silicone oil and production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to the technical fields of silicone oil mixing, in particular to a silicone oil mixing device for textiles, which comprises a mixing box, a feeding port, a discharging port and a plurality of raw material tanks, the feeding port and the discharging port are arranged on the mixing box, the plurality of raw material tanks are arranged on the mixing box, a plurality of feeding nozzles are symmetrically arranged in the mixing box, the feeding nozzles are communicated with the raw material tanks, the mixing device further comprises: a feeding module, the number of groups is several and the feeding module is arranged in the mixing tank, each group of the feeding module is arranged between the raw material tank and the feeding nozzle; a stirring execution module is arranged in the mixing box; a screening module is arranged in the mixing box; and a driving module is arranged in the mixing box and connected with the stirring execution module, the driving module is connected with the screening module and the feeding module; compared with the traditional single motion stirring mode, the device can make the raw materials move irregularly in the mixing box, and the stirring effect of the multiple raw materials is improved.
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Description

Technical Field

[0001] This invention relates to the field of silicone oil mixing technology, and more specifically, to a mixing device for silicone oil applied to textiles. Background Technology

[0002] Silicone oil generally refers to linear polysiloxane products that remain liquid at room temperature. It is generally divided into two categories: methyl silicone oil and modified silicone oil. The most commonly used silicone oil—methyl silicone oil, also known as ordinary silicone oil—has all its organic groups as methyl groups. Methyl silicone oil has good chemical stability, insulation properties, and good hydrophobicity.

[0003] Silicone oil is produced by mixing multiple raw materials. Typically, specialized mixing equipment is used during the silicone oil production process to mix these materials. However, existing mixing equipment has the following drawbacks:

[0004] Existing silicone oil mixing devices have simple structures and limited functions, only capable of simple mixing and stirring of raw materials. However, the removal of impurities inside the raw materials and the feeding of raw materials require workers to use other equipment or handle them manually. At the same time, the existing mixing devices have a single stirring method and poor stirring effect, which affects the quality of the final silicone oil. Summary of the Invention

[0005] The purpose of this invention is to provide a mixing device for silicone oil applied to textiles, so as to solve the problems mentioned in the background art.

[0006] To achieve the above objectives, the present invention provides the following technical solution:

[0007] A mixing device for silicone oil used in textiles includes a mixing tank, an inlet, a outlet, and several raw material tanks. The inlet and outlet are disposed on the mixing tank, and the several raw material tanks are disposed on the mixing tank. Several inlet nozzles are symmetrically arranged inside the mixing tank, and the inlet nozzles are connected to the raw material tanks. The mixing device further includes:

[0008] The feeding module is in several groups and is installed inside the mixing tank. Each group of the feeding module is located between the raw material tank and the feed nozzle, and is used to input the raw material in the raw material tank into the mixing tank.

[0009] The mixing execution module, located inside the mixing tank, is used to mix the raw materials;

[0010] A screening module, located inside the mixing chamber, is used to screen raw materials; and

[0011] The drive module, located inside the mixing chamber and connected to the stirring execution module, is also connected to the screening module and the feeding module. When the stirring execution module is operating, the drive module can control the screening module and the feeding module to work synchronously.

[0012] The stirring execution module includes:

[0013] The rotating rollers are arranged in a set and symmetrically on a mounting frame inside the mixing chamber.

[0014] The power unit is mounted on the mixing chamber and its output end is connected to the rotating roller.

[0015] Several stirring blades are arranged in a ring around the rotating roller; and

[0016] The auxiliary blade is movably disposed between two adjacent stirring blades. The auxiliary blade is connected to the drive module, and the drive module can adjust the angle between the auxiliary blade and the stirring blade when it is working.

[0017] A further technical solution of this application: Each group of feeding modules includes:

[0018] A material extraction hopper is installed inside the mixing tank. The material extraction hopper is provided with an inlet and an outlet. The inlet and outlet are respectively connected to the raw material tank and the feed nozzle. A one-way valve is provided in both the inlet and outlet.

[0019] The extrusion plate is movably mounted inside the material extraction hopper; and

[0020] The push arm is movably mounted on the material extraction hopper and the two are elastically connected. One end of the push arm is connected to the extrusion plate, and the other end is connected to the drive module.

[0021] A further technical solution of this application: The material extraction barrel includes a movable barrel body and a fixed barrel body. The fixed barrel body is disposed on the mixing box, and the movable barrel body is movably disposed in the fixed barrel body. A sliding plate is movably disposed inside the extrusion plate, and one end of the sliding plate abuts against the movable barrel body. A threaded rod is provided on the fixed barrel body, and the threaded rod is threadedly engaged with the movable barrel body. A scale is provided inside the fixed barrel body, and a pointer that cooperates with the scale is provided on the movable barrel body.

[0022] A further technical solution of this application: the driving module includes:

[0023] The mounting base is installed on the mixing tank;

[0024] The drive arm is movably connected to the mounting base at one end. A turntable coaxially connected to the rotating roller is movably mounted on the mounting frame. A fixed column is provided on the turntable. A guide rail that slides with the fixed column is provided on the drive arm.

[0025] The movable arm has one end slidably inserted into the drive arm and the two are elastically connected.

[0026] Adjustment seats, arranged in a set and staggered within the mixing chamber, are movably connected to the other end of the movable arm. Each adjustment seat has a protrusion that slides with the push arm.

[0027] A transmission unit is located between the movable arm and the auxiliary blade. When the movable arm moves relative to the drive arm, the angle between the auxiliary blade and the stirring blade can be adjusted through the transmission unit.

[0028] A further technical solution of this application is: a resistance-reducing component is provided between the other end of the push arm and the adjusting seat to reduce the frictional resistance between the adjusting seat and the push arm.

[0029] A further technical solution of this application: the transmission unit includes a piston, several sleeves, and a cylinder;

[0030] The piston is movably disposed in a cavity formed inside the drive arm and connected to one end of the drive arm. The cylinder is movably connected between the rotating roller and the auxiliary blade. The sleeve is movably sleeved on the rotating roller. The mounting seat and the cavity are connected. The sleeve connects the mounting seat and the cylinder.

[0031] A further technical solution of this application: the screening module includes:

[0032] The filter box is set within the mixing bin;

[0033] A sieve, set on the filter box;

[0034] Gears, movable within the mixing chamber and connected to the screening box; and

[0035] The rack and gears are arranged alternately, and the rack and gears mesh with each other. The rack is connected to the adjusting seat.

[0036] A further technical solution of this application: the mixing device also includes a recycling module, which is disposed between the mixing box and the screening frame, for recycling impurities on the screen.

[0037] A further technical solution of this application: the recycling module includes a recycling bin and a discharge slope;

[0038] The recycling bins are a plurality of bins arranged in a ring around the mixing bin. The mixing bin is provided with a recycling window that communicates with the recycling bins. The discharge crusher is set on the screening frame and connected to the screen.

[0039] A method of using the mixing device comprising the above-described technical solution, wherein the specific steps of the method are as follows:

[0040] S100: Water is discharged into the mixing tank through the feed inlet. The capacity of the feed tank is adjusted by rotating the threaded rod to change the proportion of raw materials entering the mixing tank from the raw material tank per unit time.

[0041] S200: Controls the operation of the stirring execution module and controls the synchronous operation of the drive module;

[0042] S300: The drive module works on the one hand to control the feeding module to intermittently input different types of raw materials into the mixing box in a set ratio, and on the other hand to control the screening module to screen the raw materials.

[0043] S400: Finally, the mixing module works to mix the raw materials and water to complete the production and processing of silicone oil. Then, the discharge port is opened to discharge the generated silicone oil.

[0044] Compared with the prior art, the technical solution provided by the embodiments of the present invention has the following beneficial effects:

[0045] This invention, through the inclusion of a stirring execution module, a driving module, a screening module, and a feeding module, enables the simultaneous operation of the feeding and screening modules while the stirring execution module is functioning. The entire device boasts a high degree of automation. Utilizing a linked structure, the drive arm not only controls the automatic intermittent feeding of raw materials as the rollers rotate, but also continuously adjusts the angle between the auxiliary blades and the stirring blades as the auxiliary blades follow the rotation of the stirring blades. Compared to traditional single-motion stirring methods, this device allows the raw materials to move irregularly within the mixing chamber, improving the stirring effect for various materials. Attached Figure Description

[0046] Figure 1 This is a schematic diagram of the structure of a silicone oil mixing device applied to textiles in an embodiment of the present invention;

[0047] Figure 2 This is a top view of a cross-sectional view of the mixing chamber in a mixing device for silicone oil applied to textiles, as described in an embodiment of the present invention.

[0048] Figure 3 This is an enlarged structural schematic diagram of point A in the silicone oil mixing device applied to textiles in an embodiment of the present invention;

[0049] Figure 4 This is a schematic diagram of the stirring execution module in the mixing device for silicone oil applied to textiles according to an embodiment of the present invention:

[0050] Figure 5 This is a partial cross-sectional view of the drive arm in the silicone oil mixing device for textiles, as described in an embodiment of the present invention.

[0051] Figure 6 This is a schematic diagram of the material addition module in the silicone oil mixing device for textiles, as described in an embodiment of the present invention.

[0052] Figure 7This is an enlarged structural schematic diagram of point B in the silicone oil mixing device applied to textiles in an embodiment of the present invention;

[0053] Figure 8 This is a schematic diagram of the structure of the screening frame and screen in the silicone oil mixing device applied to textiles in an embodiment of the present invention.

[0054] Explanation of the labels in the diagram:

[0055] 1-Mixing box, 2-Inlet, 3-Discharge port, 4-Recovery box, 5-Raw material tank, 6-Screwing frame, 7-Screen, 8-Discharge slope, 9-Recovery window, 10-Roller, 11-Rack, 12-Adjusting seat, 13-Gear, 14-Protrusion, 15-Roller, 16-Stepper motor, 17-Turntable, 18-Agitator blade, 19-Auxiliary blade, 20-Cylinder, 21-Sleeve, 22-Fixed column, 23-Drive arm, 24-Moving arm, 25-Piston, 26-Cavity, 27-Mounting seat, 28-Inlet nozzle, 29-Fixed barrel, 30-Moving barrel, 31-Push arm, 32-Roller, 33-Extrusion plate, 34-Slide plate, 35-One-way valve, 36-Scale, 37-Threaded rod, 38-Pointer. Detailed Implementation

[0056] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention. The present invention will be further described below with reference to the embodiments.

[0057] Please see Figures 1-8 In one embodiment of this application, a mixing device for silicone oil applied to textiles includes a mixing tank 1, an inlet 2, a outlet 3, and a plurality of raw material tanks 5. The inlet 2 and outlet 3 are disposed on the mixing tank 1, and the plurality of raw material tanks 5 are disposed on the mixing tank 1. A plurality of feed nozzles 28 are symmetrically arranged inside the mixing tank 1, and the feed nozzles 28 are connected to the raw material tanks 5. The mixing device further includes:

[0058] The feeding module is in several groups and is set inside the mixing tank. Each group of the feeding module is set between the raw material tank 5 and the feed nozzle 28, and is used to input the raw material in the raw material tank 5 into the mixing box 1.

[0059] The mixing execution module is located inside the mixing tank 1 and is used to mix the raw materials;

[0060] A screening module, located within mixing chamber 1, is used for screening raw materials; and

[0061] The drive module is located inside the mixing chamber 1 and connected to the stirring execution module. The drive module is also connected to the screening module and the feeding module. When the stirring execution module is working, the drive module can control the screening module and the feeding module to work synchronously.

[0062] The stirring execution module includes:

[0063] Rollers 15, in a set and symmetrically arranged on a mounting frame inside the mixing chamber 1;

[0064] A power element is mounted on the mixing box 1 and its output end is connected to the rotating roller 15;

[0065] Agitator blades 18, numbering several and arranged in a ring around the rotating roller 15; and

[0066] Auxiliary blade 19 is movably disposed between two adjacent stirring blades 18. The auxiliary blade 19 is connected to the drive module, and the drive module can adjust the angle between the auxiliary blade 19 and the stirring blade 18 when it is working.

[0067] It should be noted that the power element can be a stepper motor 16 or a servo motor. In this embodiment, the power element is preferably a stepper motor 16. The stepper motor 16 is mounted on the mixing box 1 and its output end is connected to the rotating roller 15. As for the specific model of the stepper motor 16, the best choice can be made according to the actual situation, and no specific limitation is made here.

[0068] In one specific embodiment, each group of feeding modules includes:

[0069] A material extraction bucket is installed inside the mixing box 1. The material extraction bucket is provided with an input hole and an output hole. The input hole and the output hole are respectively connected to the raw material tank 5 and the feed nozzle 28. A one-way valve 35 is provided in both the input hole and the output hole.

[0070] The extrusion plate 33 is movably disposed inside the material extraction hopper; and

[0071] Push arm 31 is movably mounted on the material extraction barrel and the two are elastically connected. One end of push arm 31 is connected to extrusion plate 33, and the other end is connected to drive module.

[0072] In another specific embodiment, the material extraction tank includes a movable tank body 30 and a fixed tank body 29. The fixed tank body 29 is disposed on the mixing box 1, and the movable tank body 30 is movably disposed inside the fixed tank body 29. A sliding plate 34 is movably disposed inside the extrusion plate 33, and one end of the sliding plate 34 abuts against the movable tank body 30. A threaded rod 37 is provided on the fixed tank body 29, and the threaded rod 37 is threadedly engaged with the movable tank body 30. A scale 36 is provided inside the fixed tank body 29, and a pointer 38 that cooperates with the scale 36 is provided on the movable tank body 30.

[0073] In practical applications, water is fed into the mixing tank 1 through the feed inlet 2. By rotating the threaded rod 37, the movable tank 30 moves relative to the fixed tank 29 under the threaded engagement between the threaded rod 37 and the movable tank 30, causing the pointer 38 to reach different positions on the scale 36. Then, the stepper motor 16 is energized and rotated, driving the rotating roller 15 and the stirring blade 18 to rotate. At the same time, the drive module is controlled to work. When the drive module is working, it can control the push arm 31 and the extrusion plate 33 to reciprocate relative to the feeding tank, thereby feeding the raw materials in the raw material tank 5 into the mixing tank 1 according to the expected ratio. The drive module can also control the screening module to screen the raw materials fed into the mixing tank 1, thereby removing impurities and improving the purity of the final silicone oil. In addition, when the drive module is working, it can also change the angle between the auxiliary blade 19 and the stirring blade 18, thereby improving the stirring of the raw materials in the mixing tank 1. The final silicone oil is discharged from the discharge port 3.

[0074] Please see Figure 1 , Figure 4 , Figure 5 , Figure 6 as well as Figure 7 In another preferred embodiment of this application, the driving module includes:

[0075] Mounting base 27 is mounted on mixing box 1;

[0076] The drive arm 23 is movably connected to the mounting base 27 at one end. The mounting frame is movably provided with a turntable 17 coaxially connected to the rotating roller 15. The turntable 17 is provided with a fixed column 22. The drive arm 23 is provided with a guide rail that slides with the fixed column 22.

[0077] The movable arm 24 has one end slidably inserted into the drive arm 23 and the two are elastically connected.

[0078] Adjustment seats 12, arranged in a set and staggered within the mixing chamber 1, are movably connected to the other end of the movable arm 24. Each adjustment seat 12 has a protrusion 14 that slides with the push arm 31.

[0079] A transmission unit is disposed between the movable arm 24 and the auxiliary blade 19. When the movable arm 24 moves relative to the drive arm 23, the angle between the auxiliary blade 19 and the stirring blade 18 can be adjusted through the transmission unit.

[0080] In one specific embodiment, a resistance-reducing component is provided between the other end of the push arm 31 and the adjusting seat 12 to reduce the frictional resistance between the adjusting seat 12 and the push arm 31.

[0081] It should be noted that the drag-reducing component can be a ball or a roller 3210. In this embodiment, the drag-reducing component is preferably a roller 3210, which is movably disposed at the other end of the push arm 31.

[0082] In another specific embodiment, the transmission unit includes a piston 25, a plurality of sleeves 21, and a cylinder 20;

[0083] The piston 25 is movably disposed in the cavity 26 formed inside the drive arm 23 and connected to one end of the movable arm 24. The cylinder 20 is movably connected between the rotating roller 15 and the auxiliary blade 19. The sleeve 21 is movably sleeved on the rotating roller 15. The mounting base 27 and the cavity 26 are connected. The sleeve 21 connects the mounting base 27 and the cylinder 20.

[0084] When the stepper motor 16 drives the roller 15 to rotate, it can drive the turntable 17 to rotate synchronously. Under the sliding cooperation between the fixed column 22 and the guide rail, it can drive the drive arm 23 to swing left and right along the mounting base 27. During this process, since the movable arm 24 can drive the piston 25 to reciprocate along the cavity 26, the air in the cavity 26 can be repeatedly discharged into the cylinder 20, so that the cylinder 20 continuously extends and retracts. As the auxiliary blade 19 follows the stirring blade 18 to rotate, the angle of the auxiliary blade 19 also changes continuously, thereby improving the stirring effect on the raw materials and making the stirring more thorough. During the repeated swinging of the drive arm 23, it can drive the adjusting seat 12 to reciprocate relative to the mixing box 1. During this process, under the action of the protrusion 14, the roller 3210 repeatedly passes over the protrusion 14. This drives the push arm 31 to reciprocate relative to the feeding bucket, thereby inputting the raw materials in the raw material tank 5 into the mixing box 1 according to the expected ratio. At the same time, the drive arm 23 can also drive the screening module to screen the raw materials, separating impurities from the raw materials and improving the quality of the final silicone oil. The whole device has a high degree of automation. It can use the linkage structure to control the automatic intermittent feeding of raw materials while the roller 15 rotates. It can also control the auxiliary blade 19 to follow the stirring blade 18 while continuously adjusting the angle between the auxiliary blade 19 and the stirring blade 18. Compared with the traditional single-motion stirring method, this device can make the raw materials move irregularly in the mixing box 1, improving the stirring effect of multiple raw materials.

[0085] Please see Figure 1 , Figure 2 , Figure 3 as well as Figure 8 In another preferred embodiment of this application, the screening module includes:

[0086] Filter box 6, activity set in mixing box 1;

[0087] Screen 7 is set on the filter box 6;

[0088] Gear 13, movably disposed within mixing chamber 1 and connected to screening box 6; and

[0089] The rack 11 and the gear 13 are arranged alternately, the rack 11 and the gear 13 mesh with each other, and the rack 11 is connected to the adjusting seat 12.

[0090] In this embodiment, the mixing device also includes a recycling module disposed between the mixing box 1 and the screening box 6, for recycling impurities on the screen 7.

[0091] It should be noted that the recycling module includes a recycling bin 4 and a discharge slope 8;

[0092] The recycling bins 4 are a plurality of bins arranged in a ring around the mixing bin 1. The mixing bin 1 is provided with a recycling window 9 that communicates with the recycling bins 4. The discharge crusher is set on the screening frame 6 and connected to the screen 7.

[0093] During the reciprocating motion of the drive arm 23 relative to the mixing box 1, the rack 11 can be driven to move synchronously. Under the meshing action between the gear 13 and the rack 11, the gear 13 and the screening frame 6 can be driven to rotate, so that the screen 7 is in motion. When the material falls from the feed nozzle 28 and passes through the screen 7, it can effectively screen the raw material, separate the impurities inside the raw material and leave them on the screen 7. By rotating the screen 7, not only can the screening effect of the raw material be improved, but also the centrifugal force of the impurities themselves can be used to throw the impurities to the edge of the screen 7, and finally discharge them into the recycling box 4 along the discharge slope 8 and the recycling window 9, replacing the manual collection of impurities on the screen 7 and avoiding the clogging of the screen 7.

[0094] Please see Figures 1-8 In another embodiment of this application, a method of using the mixing device described in the above embodiments is provided, the specific steps of which are as follows:

[0095] S100: Drain water into mixing tank 1 through feed inlet 2, and rotate threaded rod 37 to adjust the capacity of the extraction bucket to change the proportion of raw materials entering mixing tank 1 from raw material tank 5 per unit time.

[0096] S200: Controls the operation of the stirring execution module and controls the synchronous operation of the drive module;

[0097] S300: The drive module works on the one hand to control the feeding module to intermittently input different types of raw materials into the mixing box 1 in a set ratio, and on the other hand to control the screening module to screen the raw materials.

[0098] S400: Finally, the mixing module works to mix the raw materials and water to complete the production and processing of silicone oil. Then, the discharge port 3 is opened to discharge the generated silicone oil.

[0099] The present invention and its embodiments have been described above illustratively. This description is not restrictive, and the figures shown are only one embodiment of the present invention; the actual structure is not limited thereto. Therefore, if those skilled in the art are inspired by this description and design similar structures and embodiments without departing from the spirit of the present invention, such designs should fall within the protection scope of the present invention.

[0100] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A mixing device for silicone oil used in textiles, comprising a mixing tank, an inlet, a outlet, and a plurality of raw material tanks, wherein the inlet and outlet are disposed on the mixing tank, the plurality of raw material tanks are disposed on the mixing tank, and a plurality of feed nozzles are symmetrically arranged inside the mixing tank, the feed nozzles being connected to the raw material tanks, characterized in that, The mixing device further includes: The feeding module is in several groups and is installed inside the mixing tank. Each group of the feeding module is located between the raw material tank and the feed nozzle, and is used to input the raw material in the raw material tank into the mixing tank. The mixing execution module, located inside the mixing tank, is used to mix the raw materials; A screening module, located inside the mixing chamber, is used to screen raw materials; and The drive module, located inside the mixing chamber and connected to the stirring execution module, is also connected to the screening module and the feeding module. When the stirring execution module is operating, the drive module can control the screening module and the feeding module to work synchronously. The stirring execution module includes: a set of rotating rollers, which are symmetrically and movablely arranged on a mounting frame inside the mixing chamber; A power element is mounted on the mixing chamber and its output end is connected to the rotating roller; several stirring blades are arranged around the rotating roller; and auxiliary blades are movably disposed between two adjacent stirring blades. The auxiliary blades are connected to the drive module, and the drive module can adjust the angle between the auxiliary blades and the stirring blades when it is working. The drive module includes: a mounting base, mounted on the mixing chamber; a drive arm, one end of which is movably connected to the mounting base, a turntable coaxially connected to the rotating roller is movably mounted on the mounting base, a fixed column is provided on the turntable, and a guide rail that slides with the fixed column is provided on the drive arm; a movable arm, one end of which is slidably inserted into the drive arm and the two are elastically connected; an adjusting seat, a set of which is staggered and movably arranged in the mixing chamber, the other end of the adjusting seat being movably connected to the movable arm, and a protrusion that slides with the push arm; and a transmission unit, located between the movable arm and the auxiliary blade, wherein the angle between the auxiliary blade and the stirring blade can be adjusted by the transmission unit when the movable arm moves relative to the drive arm.

2. The mixing device for silicone oil applied to textiles according to claim 1, characterized in that, Each group of feeding modules includes: A material extraction hopper is installed inside the mixing tank. The material extraction hopper is provided with an inlet and an outlet. The inlet and outlet are respectively connected to the raw material tank and the feed nozzle. A one-way valve is provided in both the inlet and outlet. The extrusion plate is movably mounted inside the material extraction hopper; and The push arm is movably mounted on the material extraction hopper and the two are elastically connected. One end of the push arm is connected to the extrusion plate, and the other end is connected to the drive module.

3. The mixing device for silicone oil applied to textiles according to claim 2, characterized in that, The material extraction tank includes a movable tank body and a fixed tank body. The fixed tank body is mounted on the mixing tank, and the movable tank body is movably mounted inside the fixed tank body. A sliding plate is movably mounted inside the extrusion plate, and one end of the sliding plate abuts against the movable tank body. A threaded rod is provided on the fixed tank body, and the threaded rod is threadedly engaged with the movable tank body. A scale is provided inside the fixed tank body, and a pointer that cooperates with the scale is provided on the movable tank body.

4. The mixing apparatus for silicone oil applied to textiles according to claim 3, characterized in that, A resistance-reducing component is provided between the other end of the push arm and the adjusting seat to reduce the frictional resistance between the adjusting seat and the push arm.

5. The mixing apparatus for silicone oil applied to textiles according to claim 4, characterized in that, The transmission unit includes a piston, several sleeves, and a cylinder; The piston is movably disposed in a cavity formed inside the drive arm and connected to one end of the drive arm. The cylinder is movably connected between the rotating roller and the auxiliary blade. The sleeve is movably sleeved on the rotating roller. The mounting seat and the cavity are connected. The sleeve connects the mounting seat and the cylinder.

6. The mixing apparatus for silicone oil applied to textiles according to claim 5, characterized in that, The filtering module includes: The filter box is set within the mixing bin; A sieve, set on the filter box; Gears, movable within the mixing chamber and connected to the screening box; and The rack and gears are arranged alternately, and the rack and gears mesh with each other. The rack is connected to the adjusting seat.

7. The mixing apparatus for silicone oil applied to textiles according to claim 6, characterized in that, The mixing device also includes a recovery module, which is located between the mixing box and the screening frame, for recovering impurities on the screen.

8. The mixing apparatus for silicone oil applied to textiles according to claim 7, characterized in that, The recycling module includes a recycling bin and a discharge ramp; The recycling bins are a plurality of bins arranged in a ring around the mixing bin. The mixing bin is provided with a recycling window that communicates with the recycling bins. The discharge slope is set on the screening frame and connected to the screen.

9. A method of using the mixing device according to any one of claims 1-8, characterized in that, The specific steps of the usage method are as follows: S100: Water is discharged into the mixing tank through the feed inlet. The capacity of the feed tank is adjusted by rotating the threaded rod to change the proportion of raw materials entering the mixing tank from the raw material tank per unit time. S200: Controls the operation of the stirring execution module and controls the synchronous operation of the drive module; S300: The drive module works on the one hand to control the feeding module to intermittently input different types of raw materials into the mixing box in a set ratio, and on the other hand to control the screening module to screen the raw materials. S400: Finally, the mixing module works to mix the raw materials and water to complete the production and processing of silicone oil. Then, the discharge port is opened to discharge the generated silicone oil.

Citation Information

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