A processing method of highland natural soda washing products based on non-ionic surfactant
The automated production of detergent is achieved by using a quantitative dispensing and stirring device, which solves the problems of waste and errors caused by manual quantitative dispensing, improves production efficiency and washing effect, and enhances the environmental friendliness and detergency of the product by using natural alkali and nonionic surfactants.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-12-22
- Publication Date
- 2026-03-31
AI Technical Summary
In the production of detergent, manual quantitative addition of materials leads to waste and errors, and the lack of automated control affects production efficiency.
A quantitative dispensing and mixing device is adopted, which uses a motor-driven quantitative dispensing mechanism and a mixing mechanism, combined with a heating device and a liquid supply system, to realize the automated quantitative dispensing and mixing of materials. The device includes a quantitative dispensing mechanism, a mixing mechanism, a liquid supply pipe and a discharge valve, ensuring accurate addition and recovery of materials.
It has enabled automated production of detergent, improved the accuracy of material addition and production efficiency, reduced waste, and enhanced washing effect and environmental friendliness through the use of natural alkali and nonionic surfactants.
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Figure CN119075810B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of detergent and chemical products technology, and specifically to a processing method for high-altitude natural alkali detergents and chemical products based on nonionic surfactants. Background Technology
[0002] Cleaning and cosmetic products, as the name suggests, are products used for washing and makeup. Their use plays an indispensable role in people's lives and interpersonal communication. Detergent liquid is one type of cleaning and cosmetic product and is also a common one. Detergent liquid can remove dirt and grease from the surface of objects. However, the production process of detergent liquid requires the mixing of various materials and deionized water. The addition of these materials requires manual metering, resulting in wasted manpower and a high risk of error. Summary of the Invention
[0003] To address the aforementioned technical problems, this invention aims to provide a processing method for natural alkaline detergents from high-altitude regions based on nonionic surfactants. To solve these problems, this invention employs the following technical solution:
[0004] A processing method for high-altitude natural alkaline detergents based on nonionic surfactants includes the following steps:
[0005] A quantitative dispensing and stirring device is used to prepare a washing liquid. The quantitative dispensing and stirring device includes a base, a stirring tank, and a recovery tank. The stirring tank is fixed to the top wall of the base. The stirring tank has a transmission chamber and a stirring chamber. The transmission chamber is equipped with a drive mechanism, and the stirring chamber is equipped with a stirring mechanism. The stirring tank is equipped with a quantitative dispensing mechanism. The recovery tank has two or more recovery chambers and is connected to the base. The inner wall of the stirring chamber is connected to a liquid supply pipe and a discharge valve. The liquid supply pipe is connected to an external liquid supply device. The stirring chamber is equipped with a heating device.
[0006] An external liquid supply device adds a certain amount of deionized water into the stirring chamber through a liquid supply pipe. The drive mechanism controls the quantitative dispensing mechanism and the stirring mechanism to work. The quantitative dispensing mechanism adds antistatic agents, softeners, nonionic surfactants, plant fragrances, and natural alkalis into the stirring chamber. The heating device raises the temperature inside the stirring chamber, and the stirring mechanism stirs all the materials inside the stirring chamber to obtain a washing liquid.
[0007] Furthermore, the driving mechanism includes a motor, and the stirring mechanism includes a rotating rod and a stirring part. The motor is fixed to one side wall of the transmission cavity, the rotating rod is fixed to the output end of the motor, and the stirring part is fixed to the rotating rod and located inside the stirring cavity.
[0008] Furthermore, the quantitative dispensing mechanism includes a first vertical plate, a second vertical plate, a hopper, a first spur gear, a second spur gear, a third spur gear, a sliding plate, a connecting plate, a first transmission wheel, a first transmission belt, a second transmission wheel, a reducer, a worm gear, a fixed plate, a fourth transmission wheel, a quantitative rotary drum, a second wedge, a connecting piece, and a second elastic element.
[0009] A vertical plate 1 is fixed to the top wall of the mixing tank. Two or more vertical plates 2 are fixed to one side wall of the vertical plate. A material box is fixed to each vertical plate 2. A spur gear 1 is fixed to the rotating rod and is located inside the transmission chamber 1. A spur gear 2 is rotatably connected to one side wall of the transmission chamber. A transmission wheel 1 is fixed to the side wall of the spur gear 2. A spur gear 3 is rotatably connected to the side wall of the sliding plate. A control rod is fixed to the sliding plate and extends to the rear of the mixing tank. The sliding plate is slidably connected to the side wall of the connecting plate. The connecting plate is fixed to the top wall of the transmission chamber 1. Transmission wheel 1 is connected to transmission wheel 2 via transmission belt 1. Transmission wheel 2 is fixed to the input end of the reducer. The reducer is fixed to the vertical plate 1. A worm gear is fixed to the output end of the reducer. A fixed plate is fixed to the top wall of the mixing tank. An incomplete gear and a spur gear 4 are rotatably connected to the fixed plate. A worm gear and a force bar are fixed to the incomplete gear. The worm gear and the worm gear mesh. A spur gear 4 is fixed to... A transmission wheel three is connected to a fixed plate, and a wedge-shaped component one is slidably connected to it. The wedge-shaped component one is connected to the top wall of the mixing tank through an elastic component one. A wedge-shaped component two is slidably connected to the top wall of the mixing tank. A connecting piece is fixed to the top wall of the mixing tank and is connected to the wedge-shaped component two through an elastic component two. The mixing tank has a transmission cavity two and a transmission cavity three, which are connected to the mixing cavity. A transmission wheel four is rotatably connected to the rear wall of the transmission cavity three. A metering drum is rotatably connected to the inner wall of the transmission cavity two. The metering drum has two or more metering grooves. A transmission wheel five is fixedly connected to the metering drum. The transmission wheel five is connected to the transmission wheel four through a transmission belt three. The transmission wheel four is connected to the transmission wheel three through a transmission belt two. A material box has a material cavity. The bottom wall of the material cavity is connected to the bottom wall of the material box through a channel one. A T-shaped valve is slidably connected to the bottom wall of the material box. The T-shaped valve has a channel two and is connected to the side wall of the material box through an elastic component three.
[0010] Furthermore, the left end of the rotating rod extends to the left side of the mixing tank, and a spur gear is fixedly connected to the left end of the rotating rod. A guide plate is fixedly connected to the top wall of the base, and a through hole is provided on the guide plate.
[0011] A lifting plate is slidably connected to the rear wall of the through hole. A spur gear six is rotatably connected to the lifting plate. A fixing plate is fixed to the top wall of the base. A transmission wheel six is rotatably connected to the side wall of the fixing plate. A spur gear seven is fixed to the transmission wheel six. The top wall of the guide plate is rotatably connected to the reversing wheel. A transmission line is fixed to the transmission wheel six. One end of the transmission line passes around the reversing wheel and is fixed to the recycling box. The bottom wall of the recycling chamber is inclined. The recycling chamber is connected to the outer wall of the recycling box through an inclined channel three. A transmission groove is opened on the outer wall of the recycling box. A blocking plate is slidably connected to the inner wall of the transmission groove. The bottom wall of the blocking plate extends into all channels three. A wedge-shaped piece three is fixed to the side wall of the blocking plate. A slide bar is slidably connected to the top wall of the transmission groove. A wedge-shaped piece four is fixed to the lower end of the slide bar. A permanent magnet one is fixed to the wedge-shaped piece four. The slide bar is connected to the side wall of the transmission groove through an elastic piece five.
[0012] A fixing rod is fixed to the top wall of the material box, and a permanent magnet is fixed to the upper end of the fixing rod. A groove is opened in the top wall of the material box, and a guide block is slidably connected to the top wall of the material box. An extension piece is fixed to the bottom wall of the guide block, and the extension piece is slidably connected to the groove. The extension piece is connected to the side wall of the groove through an elastic element.
[0013] Furthermore, a limiting piece is fixedly attached to the side wall of the guide plate, and the limiting piece is located below the recycling bin.
[0014] Furthermore, a guide tube is fixed to the bottom wall of the T-shaped valve, and the guide tube comprises polyethylene terephthalate.
[0015] Furthermore, a handle is fixed to the side wall of the lifting plate, and the handle extends to the outside of the through hole.
[0016] Furthermore, the stirring mechanism stirs all the materials in the stirring chamber for 22-25 minutes.
[0017] The present invention has the following beneficial effects:
[0018] After the fabric is washed with the detergent of this application, the antistatic properties of the fabric can be improved by the antistatic agent, the fluffiness and softness of the fabric can be improved by the softener, and the nonionic surfactant can improve the detergency of the fabric. The nonionic surfactant may include lauryl alcohol polyoxyethylene ether and cocoyl glucoside, which are low in irritation and belong to green surfactants. The plant fragrance can enhance the fragrance of the fabric after washing. The plant fragrance is extracted from natural plants and is harmless to the human body. The natural alkali has the advantages of being environmentally friendly, mild, strong detergency and economical.
[0019] The quantitative dispensing and stirring device of this invention can achieve the mixing of deionized water and materials to form a washing liquid by driving a motor alone. After the force bar rotates, the material chamber sequentially adds materials to the quantitative tank. The wedge-shaped parts push the excess material into the recovery chamber for recycling, preventing waste. By setting the size of the quantitative tank, the amount of different materials added to the stirring chamber each time can be set. No manual control is required, the degree of automation is high, the addition accuracy is high, and the material in the recovery chamber can be easily added back to the upper material chamber without manual handling, which is convenient, fast, and improves production efficiency. Attached Figure Description
[0020] The present invention will be further described with reference to the accompanying drawings, but the embodiments in the drawings do not constitute any limitation on the present invention. For those skilled in the art, other drawings can be obtained based on the following drawings without creative effort.
[0021] Figure 1 This is a schematic diagram of the quantitative addition and stirring device in a processing method for high-altitude natural alkali detergents based on nonionic surfactants according to the present invention.
[0022] Figure 2 This is the present invention. Figure 1 Enlarged view of point A in the middle;
[0023] Figure 3 This is the present invention. Figure 1 Enlarged view of point B in the middle;
[0024] Figure 4 This is the present invention. Figure 1 Enlarged view of point C in the middle;
[0025] Figure 5 This is the present invention. Figure 1 Enlarged view of point D in the middle;
[0026] Figure 6 This is the present invention. Figure 1 A 3D view of the recycling bin;
[0027] Figure 7 This is the present invention. Figure 1 A 3D view of the recycling bin;
[0028] Figure 8 This is the present invention. Figure 1 Enlarged view of point E in the middle.
[0029] Attached reference numerals: 1. Base; 2. Mixing tank; 3. Vertical plate one; 4. Vertical plate two; 5. Material bin; 6. Recycling bin; 7. Transmission chamber one; 8. Mixing chamber; 9. Transmission chamber two; 10. Motor; 11. Spur gear one; 12. Rotating rod; 13. Mixing part; 14. Spur gear two; 15. Spur gear three; 16. Sliding vane; 17. Control lever; 18. Connecting plate; 19. Transmission wheel one; 20. Transmission belt one; 2 1. Transmission wheel two; 22. Reducer; 23. Worm gear; 24. Fixed plate; 25. Incomplete gear; 26. Worm wheel; 27. Force bar; 28. Transmission wheel three; 29. Spur gear four; 30. Transmission belt two; 31. Transmission wheel four; 32. Transmission belt three; 33. Transmission wheel five; 34. Metering drum; 35. Metering groove; 36. Wedge one; 37. Elastic element one; 38. Wedge two; 39. 40. Connecting plate; 41. Elastic element two; 42. Transmission chamber three; 43. Material chamber; 44. Channel one; 45. T-shaped valve; 46. Channel two; 47. Elastic element three; 48. Guide tube; 49. Spur gear five; 50. Guide plate; 51. Through hole; 52. Spur gear six; 53. Lifting plate; 54. Handle; 55. Fixing plate; 56. Spur gear seven; 57. Transmission wheel six; 58. Transmission line; 59. Replacement 59. Wheel; 60. Recovery chamber; 61. Channel three; 62. Transmission groove; 63. Block plate; 64. Wedge three; 65. Elastic element four; 66. Wedge four; 67. Sliding bar; 68. Permanent magnet one; 69. Elastic element five; 70. Limiting plate; 71. Permanent magnet two; 72. Fixing rod; 73. Guide block; 74. Extension plate; 75. Elastic element six; 76. Groove; 77. Liquid supply pipe; 78. Discharge valve. Detailed Implementation
[0030] 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.
[0031] In the description of this invention, it should be noted that the terms "vertical," "upper," "lower," and "horizontal," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing the invention and for simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the invention. Furthermore, "first," "second," "third," and "fourth" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0032] In the description of this invention, it should also be noted that, unless otherwise explicitly specified and limited, the terms "set," "install," "connect," and "link" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or a connection through an intermediate medium; and they can refer to the internal communication between two components. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0033] like Figures 1-7 As shown, a processing method for high-altitude natural alkali detergents based on nonionic surfactants includes the following steps:
[0034] A quantitative dispensing and stirring device is used to prepare a washing liquid. The quantitative dispensing and stirring device includes a base 1, a stirring tank 2, and a recovery tank 6. The stirring tank 2 is fixed to the top wall of the base 1. The stirring tank 2 has a transmission chamber 7 and a stirring chamber 8. The transmission chamber 7 is equipped with a drive mechanism, and the stirring chamber 8 is equipped with a stirring mechanism. The stirring tank 2 is equipped with a quantitative dispensing mechanism. The recovery tank 6 has two or more recovery chambers 59. The recovery tank 6 is connected to the base 1. The inner wall of the stirring chamber 8 is connected to a liquid supply pipe 76 and a discharge valve 77. The liquid supply pipe 76 is connected to an external liquid supply device. The stirring chamber 8 is equipped with a heating device.
[0035] An external liquid supply device adds a certain amount of deionized water to the stirring chamber 8 through the liquid supply pipe 76. The drive mechanism controls the quantitative dispensing mechanism and the stirring mechanism to work. The quantitative dispensing mechanism adds antistatic agent, softener, nonionic surfactant, plant fragrance and natural alkali to the stirring chamber 8. The heating device raises the temperature inside the stirring chamber 8. The stirring mechanism stirs all the materials inside the stirring chamber 8 to obtain washing liquid.
[0036] After being washed with the detergent of this application, the fabric can improve its antistatic properties through the antistatic agent, improve its fluffiness and softness through the softener, and improve its detergency through the nonionic surfactant. The nonionic surfactant may include lauryl alcohol polyoxyethylene ether and cocoyl glucoside, which are low in irritation and belong to green surfactants. The plant fragrance can enhance the fragrance of the washed fabric, and the plant fragrance is extracted from natural plants and is harmless to the human body.
[0037] Soda ash is an evaporative salt mineral, which is hydrated sodium bicarbonate. It occurs in fibrous or columnar masses, and is gray, yellowish-white or colorless with a vitreous luster. 152 soda ash deposits have been discovered in my country, with reserves of nearly 400 million tons. The largest number of soda ash deposits are found in the alkali lakes of Inner Mongolia, while the Tibetan Plateau is the concentration of modern saline-alkali lakes.
[0038] Natural alkali produced in the Tibetan Plateau has the following main advantages:
[0039] Environmentally friendly, natural alkali is a natural substance that is more environmentally friendly than traditional synthetic detergents and will not pollute the ecological environment;
[0040] It is gentle, as natural alkali is less alkaline and less irritating to the skin and fabrics;
[0041] It has strong cleaning power; natural alkali has excellent cleaning ability and can effectively remove stains and grease from fabrics.
[0042] Economically, the relatively low price of natural alkali can reduce the production cost of detergent.
[0043] According to an optional embodiment of the present invention, the driving mechanism includes a motor 10, the stirring mechanism includes a rotating rod 12 and a stirring part 13, the motor 10 is fixedly connected to the side wall of the transmission cavity 7, the rotating rod 12 is fixedly connected to the output end of the motor 10, the stirring part 13 is fixedly connected to the rotating rod 12, and the stirring part 13 is located in the stirring cavity 8.
[0044] According to an optional embodiment of the present invention, the quantitative dispensing mechanism includes a first vertical plate 3, a second vertical plate 4, a material bin 5, a first spur gear 11, a second spur gear 14, a third spur gear 15, a sliding plate 16, a connecting plate 18, a first transmission wheel 19, a first transmission belt 20, a second transmission wheel 21, a reducer 22, a worm gear 23, a fixed plate 24, a fourth transmission wheel 31, a quantitative rotating drum 34, a second wedge 38, a connecting piece 39, and a second elastic element 40. The first vertical plate 3 is fixed to the top wall of the mixing tank 2, and two or more second vertical plates 4 are fixed to the side wall of the first vertical plate 3. A material bin 5 is fixed to each second vertical plate 4. The first spur gear 11 is fixed to the rotating rod 12. Gear 11 is located inside transmission chamber 7. Spur gear 214 is rotatably connected to the side wall of transmission chamber 7. Transmission wheel 19 is fixed to the side wall of spur gear 214. Spur gear 315 is rotatably connected to the side wall of slide plate 16. A control rod 17 is fixedly connected to slide plate 16, extending to the rear of mixing tank 2. Spur plate 16 is slidably connected to the side wall of connecting plate 18, which is fixed to the top wall of transmission chamber 7. Transmission wheel 19 is connected to transmission wheel 21 via transmission belt 20. Transmission wheel 21 is fixed to the input end of reducer 22, which is fixed to vertical plate 3. Worm gear 23 is fixed to the output end of reducer 22. Fixed plate 24 is fixed to mixing tank. 2. On the top wall, a partial gear 25 and a spur gear 29 are rotatably connected to a fixed plate 24. A worm gear 26 and a force bar 27 are fixedly connected to the partial gear 25. The worm gear 26 meshes with a worm 23. A transmission wheel 28 is fixedly connected to the spur gear 29. A wedge-shaped piece 36 is slidably connected to the fixed plate 24. The wedge-shaped piece 36 is connected to the top wall of the mixing tank 2 via an elastic piece 37. A second wedge-shaped piece 38 is slidably connected to the top wall of the mixing tank 2. A connecting piece 39 is fixed to the top wall of the mixing tank 2 and is connected to the second wedge-shaped piece 38 via an elastic piece 40. The mixing tank 2 has a transmission cavity 9 and a third transmission cavity 41, which are connected to the mixing cavity 8. The transmission wheel 31 is rotatably connected to the rear wall of the transmission cavity 41. The metering drum 34 is rotatably connected to the inner wall of the transmission cavity 9. The metering drum 34 has two or more metering grooves 35. The transmission wheel 33 is fixedly connected to the metering drum 34. The transmission wheel 33 is connected to the transmission wheel 31 through the transmission belt 32. The transmission wheel 31 is connected to the transmission wheel 28 through the transmission belt 20. The material box 5 has a material cavity 42. The bottom wall of the material cavity 42 is connected to the bottom wall of the material box 5 through the channel 1 43. The bottom wall of the material box 5 is slidably connected to the T-shaped valve 44. The T-shaped valve 44 has a channel 2 45. The T-shaped valve 44 is connected to the side wall of the material box 5 through the elastic element 3 46.
[0045] According to an optional embodiment of the present invention, the left end of the rotating rod 12 extends to the left side of the mixing tank 2, and a spur gear 48 is fixedly connected to the left end of the rotating rod 12. A guide plate 49 is fixedly connected to the top wall of the base 1. A through hole 50 is provided on the guide plate 49. A lifting plate 52 is slidably connected to the rear wall of the through hole 50. A spur gear 51 is rotatably connected to the lifting plate 52. A fixing plate 54 is fixedly connected to the top wall of the base 1. A transmission wheel 56 is rotatably connected to the side wall of the fixing plate 54. A spur gear 55 is fixedly connected to the transmission wheel 56. The top wall of the guide plate 49 is rotatably connected to the reversing wheel 58. A transmission line 57 is fixedly connected to the transmission wheel 56. One end of the moving line 57 passes around the reversing wheel 58 and is fixed to the recycling box 6. The bottom wall of the recycling chamber 59 is inclined. The recycling chamber 59 is connected to the outer wall of the recycling box 6 through the inclined channel 3 60. The outer wall of the recycling box 6 is provided with a transmission groove 61. A blocking piece 62 is slidably connected to the inner wall of the transmission groove 61. The bottom wall of the blocking piece 62 extends into all channels 3 60. A wedge-shaped piece 3 63 is fixedly connected to the side wall of the blocking piece 62. A slide bar 66 is slidably connected to the top wall of the transmission groove 61. A wedge-shaped piece 4 65 is fixedly connected to the lower end of the slide bar 66. A permanent magnet 1 67 is fixedly connected to the wedge-shaped piece 4 65. The slide bar 66 is connected to the side wall of the transmission groove 61 through an elastic piece 5 68.
[0046] A fixing rod 71 is fixedly connected to the top wall of the material box 5. A permanent magnet 70 is fixedly connected to the upper end of the fixing rod 71. A groove 75 is opened on the top wall of the material box 5. A guide block 72 is slidably connected to the top wall of the material box 5. An extension piece 73 is fixedly connected to the bottom wall of the guide block 72. The extension piece 73 is slidably connected to the groove 75. The extension piece 73 is connected to the side wall of the groove 75 through an elastic member 74.
[0047] According to an optional embodiment of the present invention, a limiting piece 69 is fixedly connected to the side wall of the guide plate 49, and the limiting piece 69 is located below the recycling bin 6.
[0048] According to an optional embodiment of the present invention, the bottom wall of the T-shaped valve 44 is fixedly connected to a guide tube 47, the guide tube 47 comprising polyethylene terephthalate.
[0049] According to an optional embodiment of the present invention, a handle 53 is fixedly connected to the side wall of the lifting plate 52, and the handle 53 extends to the outside of the through hole 50.
[0050] According to an optional embodiment of the present invention, the stirring mechanism stirs all the materials in the stirring chamber 8 for 22-25 minutes.
[0051] Implementation process: A quantitative mixing device is used to prepare the washing solution. An external liquid supply device adds a certain amount of deionized water to the mixing chamber 8 through the liquid supply pipe 76. A heating device raises the temperature inside the mixing chamber 8. Antistatic agents, softeners, nonionic surfactants, plant fragrances, and natural alkalis are placed into their respective material chambers 42. The motor 10 is turned on, causing the output of the motor 10 to drive the spur gear 11, rotating rod 12, mixing part 13, and spur gear 5 48 to rotate. The control lever 17 is pushed forward, causing spur gear 3 15, spur gear 2 14, and spur gear 11 to mesh. Spur gear 11 drives spur gear 3 15, spur gear 2 14, and the transmission... As belt 20 and drive wheel 21 rotate, the worm gear 23 slowly rotates after being reduced in speed by reducer 22. Worm gear 23 drives worm wheel 26, incomplete gear 25, and force bar 27 to rotate counterclockwise. When force bar 27 rotates to abut against T-shaped valve 44, it pushes T-shaped valve 44 and guide tube 47 to move to the left against the elastic force of elastic element 3 46, thereby connecting channel 2 45 and channel 1 43. Under its own gravity, the material in the material chamber 42 passes through channel 1 43 and channel 2 45 and is guided by guide tube 47 into metering trough 35. Guide tube 47 can reduce the time the material is exposed to the air, reduce the dust stirred up by the material, and ensure that the material falls accurately into metering trough. Within 35, when the force bar 27 disengages from the T-shaped valve 44, the T-shaped valve 44, under the elastic force of the elastic element 3 46, moves to the right and resets. The T-shaped valve 44 re-blocks the channel 1 43, stopping the addition of material. At this time, the material in the metering tank 35 will be higher than the highest point of the metering tank 35. The force bar 27 continues to rotate counterclockwise, pushing the wedge 1 36 downward against the elastic force of the elastic element 1 37. The downward movement of the wedge 1 36 pushes the wedge 2 38 to the left, thereby pushing the material higher than the highest point of the metering tank 35 to the left side of the mixing tank 2. The material falls into each recovery chamber 59 for recovery to prevent waste. The force bar 27 continues to rotate counterclockwise, and the force bar 27 disengages from the wedge 1 After 36, the incomplete gear 25 and the spur gear 4 29 mesh. The incomplete gear 25 drives the spur gear 4 29, the transmission wheel 3 28, the transmission belt 2 30, the transmission wheel 4 31, the transmission belt 3 32, the transmission wheel 5 33, and the metering drum 34 to rotate. When the metering tank 35 rotates to face the downward stirring chamber 8, the material in the metering tank 35 will fall into the stirring chamber 8 under its own gravity and mix with the deionized water. Then, after the metering drum 34 rotates to the reset position of the metering tank 35, the worm gear 26 disengages from the spur gear 4 29, and the control lever 17 moves backward. The spur gear 3 15 moves backward and disengages from the spur gear 2 14 and the spur gear 1 11. The spur gear 2 14 stops rotating.
[0052] The stirring section 13 rotates to mix deionized water and all materials to obtain a washing liquid.
[0053] When the material recovered in the recycling chamber 59 needs to be added back into the material chamber 42, pushing the handle 53 causes the lifting plate 52 and spur gear six 51 to move upward. Spur gear six 51 meshes with spur gear five 48 and spur gear seven 55, thereby causing spur gear five 48 to drive spur gear six 51, spur gear seven 55, and transmission wheel six 56 to rotate. Transmission wheel six 56 collects the transmission line 57, thereby pulling the recycling box 6 upward. When the top wall of the recycling box 6 abuts against the guide block 72, the top wall of the recycling box 6 will push the guide block 72 to overcome the elasticity. When component 6 74 moves to the right due to elastic force, the guide block 72 and the right wall of the recycling box 6 come into contact. When permanent magnet 1 67 moves up to the left of permanent magnet 2 70, the magnetic repulsion of permanent magnet 2 70 pushes permanent magnet 1 67, wedge 4 65 and slide bar 66 to overcome the elastic force of elastic component 4 64 and move to the left. This causes wedge 4 65 to push wedge 3 63 and block 62 up. The material in the recycling chamber 59 slides down the inclined bottom wall of the recycling chamber 59 into the channel 3 60, and then slides down to the guide block 72 and then into the material chamber 42 to complete the addition of material.
[0054] The handle 53 is moved down, disengaging from the spur gear 48 and spur gear 55. The recycling box 6 moves down along the guide plate 49 under its own gravity until it abuts against the top wall of the limiting plate 69. The transmission wheel 56 releases the transmission line 57.
[0055] The quantitative dispensing and stirring device of the present invention can achieve the mixing of deionized water and materials to form a washing liquid by driving the motor 10 alone. After the force bar 27 rotates, the material chamber 42 adds materials to the quantitative tank 35 in sequence, and the wedge 38 pushes the excess material into the recovery chamber 59 for recycling to prevent waste. By setting the size of the quantitative tank 35, the amount of different materials added to the stirring chamber 8 each time can be set. No manual control is required, the degree of automation is high, the addition accuracy is high, and the material in the recovery chamber 59 can be easily added back to the material chamber 42 at the top without manual handling, which is convenient, fast and improves production efficiency.
[0056] The components, modules, mechanisms, and devices in this invention that are not described in detail are all general standard parts or components known to those skilled in the art. Their structures and principles can be learned by those skilled in the art through technical manuals or conventional experimental methods.
[0057] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit the scope of protection of the present invention. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the essence and scope of the technical solutions of the present invention.
Claims
1. A method for processing nonionic surfactant based high plain trona washing products, characterized in that, It comprises the following steps: The quantitative feeding stirring device comprises a base (1), a stirring box (2) and a recovery box (6). The stirring box (2) is fixed to the top wall of the base (1). A transmission cavity I (7) and a stirring cavity (8) are formed in the stirring box (2). A driving mechanism is arranged in the transmission cavity I (7). A stirring mechanism is arranged in the stirring cavity (8). A quantitative feeding mechanism is arranged on the stirring box (2). Two or more recovery cavities (59) are formed in the recovery box (6). The recovery box (6) is connected to the base (1). A liquid supply pipe (76) and a discharge valve (77) are connected to the inner wall of the stirring cavity (8). The liquid supply pipe (76) is connected to an external liquid supply device. A heating device is arranged in the stirring cavity (8). The external liquid supply device adds a certain amount of deionized water into the stirring cavity (8) through the liquid supply pipe (76). The driving mechanism controls the quantitative feeding mechanism and the stirring mechanism to work. The quantitative feeding mechanism is used to feed antistatic agent, softener, non-ionic surfactant, plant perfume and natural soda into the stirring cavity (8). The heating device heats the temperature in the stirring cavity (8). The stirring mechanism stirs all the materials in the stirring cavity (8) to obtain the washing liquid. The driving mechanism comprises a motor (10). The stirring mechanism comprises a rotating rod (12) and a stirring part (13). The motor (10) is fixed to the side wall of the transmission cavity I (7). The rotating rod (12) is fixed to the output end of the motor (10). The stirring part (13) is fixed to the rotating rod (12) and located in the stirring cavity (8). The quantitative feeding mechanism comprises a vertical plate I (3), a vertical plate II (4), a material box (5), a spur gear I (11), a spur gear II (14), a spur gear III (15), a sliding sheet (16), a connecting plate (18), a transmission wheel I (19), a transmission belt I (20), a transmission wheel II (21), a speed reducer (22), a worm (23), a fixed plate (24), a transmission wheel IV (31), a quantitative rotating drum (34), a wedge II (38), a connecting sheet (39) and an elastic member II (40). The vertical plate one (3) is fixed to the top wall of the stirring box (2), two or more vertical plate two (4) is fixed to the side wall of the vertical plate one (3), each vertical plate two (4) is fixed with the material box (5), the straight gear one (11) is fixed to the rotating rod (12), the straight gear one (11) is located in the transmission cavity one (7), the straight gear two (14) is rotatably connected to the side wall of the transmission cavity one (7), the transmission wheel one (19) is fixed to the side wall of the straight gear two (14), the straight gear three (15) is rotatably connected to the side wall of the sliding sheet (16), the sliding sheet (16) is fixed with the control rod (17), the control rod (17) extends to the rear of the stirring box (2), the sliding sheet (16) is slidably connected to the side wall of the connecting plate (18), the connecting plate (18) is fixed to the top wall of the transmission cavity one (7), the transmission wheel one (19) is connected through the transmission belt one (20) and the transmission wheel two (21), the transmission wheel two (21) is fixed to the input end of the speed reducer (22), the speed reducer (22) is fixed to the vertical plate one (3), the worm (23) is fixed to the output end of the speed reducer (22), the fixed plate (24) is fixed to the top wall of the stirring box (2), the fixed plate (24) is rotatably connected with the incomplete gear (25) and the straight gear four (29), the incomplete gear (25) is fixed with the worm gear (26) and the force applying rod (27), the worm gear (26) and the worm (23) are engaged, the straight gear four (29) is fixed with the transmission wheel three (28), the fixed plate (24) is slidably connected with the wedge one (36), the wedge one (36) is connected with the top wall of the stirring box (2) through the elastic element one (37), the wedge two (38) is slidably connected to the top wall of the stirring box (2), the connecting sheet (39) is fixed to the top wall of the stirring box (2), the connecting sheet (39) is connected with the wedge two (38) through the elastic element two (40), the stirring box (2) is provided with the transmission cavity two (9) and the transmission cavity three (41), the transmission cavity two (9) is communicated with the stirring cavity (8), the transmission wheel four (31) is rotatably connected to the rear wall of the transmission cavity three (41), the quantitative rotary cylinder (34) is rotatably connected to the inner wall of the transmission cavity two (9), the quantitative rotary cylinder (34) is provided with two or more quantitative grooves (35), the quantitative rotary cylinder (34) is fixed with the transmission wheel five (33), the transmission wheel five (33) is connected through the transmission belt three (32) and the transmission wheel four (31), the transmission wheel four (31) is connected through the transmission belt two (30) and the transmission wheel three (28), the material box (5) is provided with the material cavity (42), the bottom wall of the material cavity (42) is communicated with the bottom wall of the material box (5) through the channel one (43), the bottom wall of the material box (5) is slidably connected with the T-shaped valve (44), the T-shaped valve (44) is provided with the channel two (45), the T-shaped valve (44) is connected with the side wall of the material box (5) through the elastic element three (46). The rotating rod (12) extends to the left of the mixing box (2), and a spur gear five (48) is fixedly connected to the left end of the rotating rod (12). The top wall of the base (1) is fixedly connected with a guide plate (49), and a through hole (50) is formed in the guide plate (49). A lifting piece (52) is slidably connected to the rear wall of the through hole (50), and a spur gear six (51) is rotatably connected to the lifting piece (52). The top wall of the base (1) is fixedly connected with a fixed piece (54), and a transmission wheel six (56) is rotatably connected to the side wall of the fixed piece (54). A spur gear seven (55) is fixedly connected to the transmission wheel six (56). The top wall of the guide plate (49) is rotatably connected with a reversing wheel (58), and a transmission line (57) is fixedly connected to the transmission wheel six (56). One end of the transmission line (57) passes through the reversing wheel (58) and is fixedly connected to the recycling box (6). The bottom wall of the recycling cavity (59) is inclined, and the recycling cavity (59) is communicated with the outer wall of the recycling box (6) through an inclined channel three (60). A transmission groove (61) is formed in the outer wall of the recycling box (6), and a blocking piece (62) is slidably connected to the inner wall of the transmission groove (61). The bottom wall of the blocking piece (62) extends into the channel three (60), and a wedge three (63) is fixedly connected to the side wall of the blocking piece (62). A sliding bar (66) is slidably connected to the top wall of the transmission groove (61), and a wedge four (65) is fixedly connected to the lower end of the sliding bar (66). A permanent magnet one (67) is fixedly connected to the wedge four (65), and the sliding bar (66) is connected to the side wall of the transmission groove (61) through an elastic piece five (68). A fixed rod (71) is fixedly connected to the top wall of the material box (5), and a permanent magnet two (70) is fixedly connected to the upper end of the fixed rod (71). A recess (75) is formed in the top wall of the material box (5), and a material guide block (72) is slidably connected to the top wall of the material box (5). A extension piece (73) is fixedly connected to the bottom wall of the material guide block (72), and the extension piece (73) is slidably connected to the recess (75). The extension piece (73) is connected to the side wall of the recess (75) through an elastic piece six (74).
2. A method for processing a high plain trona based washing product based on non-ionic surfactants according to claim 1, characterized in that, The side wall of the guide plate (49) is fixedly connected with a limiting piece (69), and the limiting piece (69) is located below the recycling box (6).
3. A method for processing a high plain trona based washing product based on non-ionic surfactants according to claim 2, characterized in that, The bottom wall of the T-shaped valve (44) is fixedly connected with a guide pipe (47), and the guide pipe (47) comprises polyethylene terephthalate.
4. A method for processing a high plain trona based washing product based on non-ionic surfactants according to claim 3, characterized in that, The side wall of the lifting piece (52) is fixedly connected with a handle (53), and the handle (53) extends to the outside of the through hole (50).
5. A process for the manufacture of a high altitude trona based washing and cleaning product based on non-ionic surfactants according to any one of claims 1 to 4, characterized in that, The stirring mechanism stirs all the materials in the stirring cavity (8) for 22-25 minutes.
Citation Information
Patent Citations
Preparation equipment of anti-cross-color underpants antibacterial detergent
CN217774035U