Quantitative filling structure for shampoo production
The quantitative filling structure, composed of a support frame, infrared positioning, and hydraulic device, solves the problem of low precision in traditional shampoo filling equipment and achieves an efficient and stable quantitative filling process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-12
- Publication Date
- 2026-03-24
AI Technical Summary
Traditional shampoo filling equipment has low filling accuracy and low automation, making it difficult to achieve efficient quantitative filling.
The quantitative filling structure consists of a support, an infrared positioning device, a hydraulic device, and a stepper motor. By controlling the hydraulic shaft, turntable, and limit device, it achieves precise filling volume control and uses infrared positioning and quantitative devices to ensure filling stability.
It achieves high-precision quantitative filling, improves the degree of automation, and ensures the stability and repeatability of the filling process.
Smart Images

Figure CN224030626U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The new type belongs to the technical field of shampoo production, and particularly relates to a quantitative filling structure for shampoo production. BACKGROUND
[0002] Shampoo is a personal care product for cleaning and caring for hair, and usually contains detergents, moisturizers, fragrances and other active ingredients, aiming to remove oil, dirt and dandruff on the scalp and hair, and at the same time provide the required nutrients and moisture to the hair, making the hair more smooth, smooth and easy to manage.
[0003] As a daily necessity, the market demand for shampoo is huge, in order to improve production efficiency and product quality, automatic filling equipment has been widely used in shampoo production, and quantitative filling is a key link in the production process of shampoo, and its precision directly affects the net content and packaging quality of the product, the traditional shampoo filling method has the following problems, low filling precision and low automation degree, therefore, a quantitative filling structure for shampoo production with simple structure, low cost, high filling precision and high automation degree is provided.
[0004] Therefore, a quantitative filling structure for shampoo production is needed to solve the problems in the prior art. CONTENT OF THE INVENTION
[0005] The purpose of the new type is to provide a quantitative filling structure for shampoo production to solve the problems in the background art.
[0006] To achieve the above purpose, the new type provides the following technical scheme: a quantitative filling structure for shampoo production, comprising a support and an infrared positioning device, the support is U-shaped, and a storage bin is fixedly connected to the upper end of one side of the U-shaped support, a discharge hopper is arranged at the lower end of the storage bin, a control device is fixedly connected to the outer surface of the bottom end of the support, a cylindrical base is fixedly connected to the upper end of the other side of the U-shaped support, a first drive bin and a second drive bin are arranged in the cylindrical base, a first stepper motor and a second hydraulic device are respectively fixedly connected in the first drive bin and the second drive bin, a turntable is slidably connected to the upper end of the cylindrical base, a fixed shaft is fixedly connected to the lower end of the turntable, the outer surface of one end of the fixed shaft is engaged with the outer surface of one end of the output shaft of the first stepper motor through a connecting belt, a plurality of storage grooves are arranged on the upper end edge of the turntable, a filling bottle is placed in each of the storage grooves, a limiting device is arranged on the upper end of the turntable, and a connecting hole is arranged at the lower end of each of the storage grooves.
[0007] It needs to be explained in the scheme that the storage bin includes a bin body, the bin body is provided with a feeding bin and a discharging bin, and the bin body is fixedly connected with a first hydraulic device at the upper end of the feeding bin, one end of a first hydraulic shaft of the first hydraulic device penetrates through and is slidably connected to the upper end of the bin body and the feeding bin, and is fixedly connected with an extrusion plate, the outer surface of the extrusion plate is slidably connected to the inner surface of the feeding bin, and the lower ends of the feeding bin and the discharging bin are penetrated through by a communication pipe, and one side of the upper ends of the feeding bin and the discharging bin is respectively provided with a feeding pipe or a discharging pipe, and one end of the discharging pipe is provided with a quantitative device.
[0008] It is further worth mentioning that the lower edge of the rotating disc is provided with a clamping groove with a dovetail-shaped cross section, and the upper edge of the cylindrical base is provided with a protruding guide with a dovetail-shaped cross section, and the outer surface of the protruding guide is slidably connected with the inner surface of the clamping groove.
[0009] It needs to be further explained that the output shaft of the first stepping motor and the fixed shaft are provided with first limiting plates on both sides of the connecting belt, and the outer surface of the other end of the output shaft of the first stepping motor is provided with a gear.
[0010] As a preferred embodiment, the second hydraulic shaft of the second hydraulic device is fixedly connected with a connecting head at the upper end, the outer surface of the connecting head can be slidably connected to the inner surface of the connecting hole, and the upper end of the second drive bin is fixedly connected with a symmetrical fixed plate, and the outer surface of the second hydraulic shaft is slidably connected to the middle part of the symmetrical fixed plate.
[0011] As a preferred embodiment, the limiting device includes a small servo motor and symmetrical sliding plates, the output shaft of the servo motor is threadedly connected to the middle part of the extension plate provided on one side of the symmetrical sliding plate, the middle part of the extension plate provided on the other side of the symmetrical sliding plate is slidably connected with a sliding shaft, one end of the sliding shaft is fixedly connected to one side of the servo motor, the output shaft of the servo motor and the other end of the sliding shaft are fixedly connected with a second limiting plate, the middle part of the symmetrical sliding plate is arc-shaped, and the opposite sides are provided with sliding pads.
[0012] As a preferred embodiment, the outer surface of the lower end of the discharging funnel is fixedly connected with a connecting ring, the inner surface of the connecting ring is provided with a buffer pad, and the lowermost end of the discharging funnel is provided with a short pipe.
[0013] As a preferred embodiment, the infrared positioning device includes an infrared receiver and a plurality of infrared emitters, the infrared receiver is arranged on the middle part of the outer surface of the bottom end of the support, and the plurality of infrared emitters are uniformly arranged on the curved surface of the rotating disc.
[0014] As a preferred implementation, the quantitative device comprises a first fixed bin provided at the upper end and a positioning bin or a quantitative bin and a second fixed bin provided at the lower end, a first one-way valve or a second stepper motor is installed in the first fixed bin and the second fixed bin respectively, and a buoyancy plate is slidably connected to the inner surface of the quantitative bin, a discharge pipe is fixedly connected to the lower end of the buoyancy plate on one side of the upper end of the buoyancy plate, and a sliding column is fixedly connected to the other side of the upper end of the buoyancy plate, the sliding column penetrates into the positioning bin at the upper end and is fixedly connected with a first connecting block, a second connecting block is threadedly connected to the upper end of the driving shaft of the second stepper motor, the second connecting block penetrates and is slidably connected to the outer surface of the positioning column at the middle part, the positioning column is fixedly connected to the upper and lower ends of the positioning bin, the lower surface of one end of the second connecting block and the upper surface of one end of the first connecting block are slidably connected, a pressure sensor is installed on the lower surface of one end of the second connecting block, a through hole is provided at the lower end of the quantitative bin, and a second one-way valve is fixedly connected to the lower end of the through hole.
[0015] Compared with the prior art, the quantitative filling structure for shampoo production provided by the present application has at least the following beneficial effects:
[0016] (1) By controlling the first hydraulic shaft of the first hydraulic device to press down, the pressing plate is pressed down, so that the raw materials in the feeding bin enter the discharge bin through the communication pipe, and then enter the filling bottle through the discharge pipe, the quantitative device, the discharge funnel and the short pipe, so that the filling amount of the shampoo can be changed into the hydraulic value of the first hydraulic device, so that the quantitative filling of the shampoo can be more conveniently controlled, and when the raw materials in the feeding bin are used up, the first hydraulic shaft of the first hydraulic device is recovered, and then the feeding pipe flows into the raw materials. Due to the principle of the communicating vessel, the raw material heights of the feeding bin and the discharge bin remain the same, so that the above operation can be repeated, and the automation and precision are high.
[0017] (2) The output shaft of the limiting device is driven to rotate, thereby driving the sliding plate connected by threads to move. Because the position and movement track of the sliding plate are limited by the output shaft and the sliding shaft, the symmetrical sliding plates can only move relatively or separate relatively, so that the filling bottle can be fixed at the center position of the storage groove at all times, thereby facilitating the later filling. Then, the first stepper motor is driven to rotate the turntable. When the signal emitted by the infrared emitter of the infrared positioning device is received by the infrared receiver, it is transmitted to the control center. The control center controls the first stepper motor to stop working, so that the turntable stops. At this time, the control center controls the second hydraulic device to make the second hydraulic shaft work upward, so that the filling bottle moves upward by a certain height, and the bottle mouth of the filling bottle is attached to the connecting ring of the discharge funnel, so that the spraying during filling of the filling bottle can be prevented, and the stability is increased.
[0018] (3) according to the need of quantitative device, the second stepping motor moves the second connecting block to the appropriate position, when the raw material in the quantitative bin drags the buoyancy plate to rise to a certain height, the first connecting block of the sliding column extrudes the pressure sensor of the second connecting block, the pressure sensor transmits the electric signal to the control device, the control device controls the first one-way valve to close and the second one-way valve to open, after a period of time, the control device controls the first one-way valve to open and the second one-way valve to close, then repeat the above operation, the degree of automation is high, and the output of the raw material can be determined according to the height of the second connecting block, which is convenient to control and simple to operate. BRIEF DESCRIPTION OF DRAWINGS
[0019] Figure 1 It is the front structure schematic diagram of the novel;
[0020] Figure 2 It is the base structure schematic diagram of the novel;
[0021] Figure 3 It is the limiting device structure schematic diagram of the novel;
[0022] Figure 4 It is the storage bin structure schematic diagram of the novel;
[0023] Figure 5 It is the discharge funnel structure schematic diagram of the novel;
[0024] Figure 6 It is the support structure schematic diagram of the novel;
[0025] Figure 7 It is the quantitative device structure schematic diagram of the novel.
[0026] In the figure: 1, support; 2, control device; 3, storage bin; 301, bin body; 302, feeding bin; 303, discharging bin; 304, first hydraulic device; 3041, first hydraulic shaft; 3042, feeding pipe; 305, communication pipe; 306, discharging pipe; 307, metering device; 3071, first fixed bin; 3072, metering bin; 3073, positioning bin; 3074, second fixed bin; 3075, first one-way valve; 3076, buoyancy plate; 3077, second one-way valve; 3078, sliding column; 3079, first connecting block; 3080, second connecting block; 3081, driving shaft; 3082, positioning column; 3083, pressure sensor; 3084, second stepper motor; 308, extrusion plate; 4, base; 401, first driving bin; 402, second driving bin; 403, protruding guide; 5, rotating disc; 501, clamping groove; 502, fixed shaft; 503, first limiting plate; 504, connecting belt; 505, connecting hole; 506, storage groove; 6, limiting device; 601, servo motor; 602, sliding shaft; 603, output shaft; 604, second limiting plate; 605, sliding plate; 606, extension plate; 7, filling bottle; 8, infrared positioning device; 801, infrared receiver; 802, infrared emitter; 9, first stepper motor; 10, second hydraulic device; 1001, second hydraulic shaft; 1002, fixed plate; 1003, connecting head; 11, discharging funnel; 1101, connecting ring; 1102, buffer pad; 1103, short pipe. DETAILED DESCRIPTION
[0027] The present application will be further described below in conjunction with the embodiments.
[0028] Please refer to Figures 1-5 The present application provides a quantitative filling structure for shampoo production, which comprises a support 1 and an infrared positioning device 8. The support 1 is in the shape of a U, and a storage bin 3 is fixedly connected to the upper end of one side of the U-shaped support 1. A discharging funnel 11 is arranged at the lower end of the storage bin 3. A control device 2 is fixedly connected to the outer surface of the bottom end of the support 1. A cylindrical base 4 is fixedly connected to the upper end of the other side of the U-shaped support 1. The cylindrical base 4 is internally provided with a first driving bin 401 and a second driving bin 402. A first stepper motor 9 and a second hydraulic device 10 are respectively fixedly connected to the first driving bin 401 and the second driving bin 402. A rotating disc 5 is slidably connected to the upper end of the cylindrical base 4. A fixed shaft 502 is fixedly connected to the middle of the lower end of the rotating disc 5. The outer surface of one end of the fixed shaft 502 is engaged with the outer surface of one end of the output shaft 603 of the first stepper motor 9 through a connecting belt 504. A plurality of storage grooves 506 are arranged at the upper end edge of the rotating disc 5. A filling bottle 7 is placed in each of the storage grooves 506. A limiting device 6 is arranged at the upper end of each of the storage grooves 506. A connecting hole 505 is arranged at the lower end of each of the storage grooves 506.
[0029] Further as Figure 4 illustrated, it is worth noting that the storage bin 3 comprises a bin body 301, the bin body 301 is provided with a feeding bin 302 and a discharging bin 303, and the bin body 301 is fixedly connected with the first hydraulic device 304 at the upper end of the feeding bin 302, one end of the first hydraulic shaft 3041 of the first hydraulic device 304 penetrates and is slidably connected to the upper end of the bin body 301 and the feeding bin 302 and is fixedly connected with the extrusion plate 308, the outer surface of the extrusion plate 308 is slidably connected to the inner surface of the feeding bin 302, and the lower ends of the feeding bin 302 and the discharging bin 303 are penetrated by the communication pipe 305, and one side of the upper ends of the feeding bin 302 and the discharging bin 303 is respectively provided with a feeding pipe 3042 or a discharging pipe 306, one end of the discharging pipe 306 is provided with a quantitative device 307, the first hydraulic shaft 3041 of the first hydraulic device 304 is controlled to be pressed down by the control device 2, that is, the extrusion plate 308 is pressed down, so that the raw materials in the feeding bin 302 enter the discharging bin 303 through the communication pipe 305, and then enter the filling bottle 7 through the discharging pipe 306, the quantitative device 307, the discharging funnel 11 and the short pipe 1103, which can change the filling amount of the shampoo into the hydraulic value of the first hydraulic device 304, so that the quantitative filling of the shampoo can be more conveniently controlled, and when the raw materials in the feeding bin 302 are used up, the first hydraulic shaft 3041 of the first hydraulic device 304 is recovered, and then the feeding pipe 3042 flows into the raw materials, due to the principle of the communication device, the raw material heights of the feeding bin 302 and the discharging bin 303 remain the same, so that the above operation can be repeated, and the automation and precision are high.
[0030] Further as Figure 2 illustrated, it is worth noting that the edge of the lower end of the rotating disc 5 is provided with a clamping groove 501 with a dovetail-shaped cross section, and the edge of the upper end of the cylindrical base 4 is provided with a convex guide 403 with a dovetail-shaped cross section, the outer surface of the convex guide 403 is slidably connected with the inner surface of the clamping groove 501, and the shape and connection relationship of the convex guide 403 and the clamping groove 501 limit the position and motion trail of the rotating disc 5.
[0031] Further as Figure 2 illustrated, it is worth noting that the fixed shaft 502 and the output shaft 603 of the first stepping motor 9 are provided with first limiting plates 503 on both sides of the connecting belt 504, and the outer surface of the other end of the output shaft 603 of the first stepping motor 9 is provided with a gear, and the first limiting plates 503 limit the position and motion trail of the connecting belt 504.
[0032] The scheme has the following working process: first, the limiting device 6 drives its output shaft 603 to rotate, thereby driving the threaded sliding plate 605 to move, because the position and motion trail of the sliding plate 605 are limited by the output shaft 603 and the sliding shaft 602, so the symmetrical sliding plate 605 can only move relatively or separate relatively, thereby being able to fix the filling bottle 7 at the center position of the storage groove 506 all the time, then the first stepping motor 9 drives the rotating disc 5 to rotate, when the signal emitted by the infrared emitter 801 of the infrared positioning device 8 is received by the infrared receiver 802, it is transmitted to the control device 2, the control device 2 controls the first stepping motor 9 to stop working, thereby stopping the rotating disc 5, and at this time the control device 2 controls the second hydraulic device 10, so that the second hydraulic shaft 1001 thereof operates upward, thereby being able to make the filling bottle 7 move upward by a height, so that the bottle mouth of the filling bottle 7 is attached to the connecting ring 1101 of the discharge hopper 11, finally the control device 2 controls the first hydraulic shaft 3041 of the first hydraulic device 304 to press down, that is, the extrusion plate 308 is pressed down, thereby causing the raw materials in the feeding bin 302 to enter the discharge bin 303 through the communication pipe 305, then from the discharge bin 303 through the discharge pipe 306, the quantitative device 307 (according to the quantitative requirement, the second connecting block 3080 is moved to the appropriate position through the second stepping motor 3084 of the quantitative device 307, when the raw materials in the quantitative bin 3072 drag the buoyancy plate 3076 to rise to a certain height, the first connecting block 3079 of the sliding column 3078 extrudes the pressure sensor 3083 of the second connecting block 3080, the pressure sensor 3083 transmits an electric signal to the control device 2, the control device 2 controls the first one-way valve 3075 to close and the second one-way valve 3077 to open, after a period of time, the control device 2 controls the first one-way valve 3075 to open and the second one-way valve 3077 to close, then the above operation is repeated), the discharge hopper 11 and the short pipe 1103 enter the filling bottle 7, so that the filling amount of the shampoo can be changed into the hydraulic value of the first hydraulic device 304, thereby being able to control the quantitative filling of the shampoo more conveniently, and when the raw materials in the feeding bin 302 are used up, the first hydraulic shaft 3041 of the first hydraulic device 304 is recovered, then the feeding pipe 3042 flows into the raw materials, due to the principle of the communication device, the raw material heights of the feeding bin 302 and the discharge bin 303 are kept the same, then the above operation can be repeated.
[0033] According to the above working process can be known: through the control device 2 control first hydraulic device 304 first hydraulic shaft 3041 down, that is, the extrusion plate 308 down, so that the raw material in the feed bin 302 through the communication pipe 305 into the discharge bin 303, then from the discharge pipe 306, quantitative device 307 and discharge funnel 11 and short pipe 1103 into the filling bottle 7, can make the filling amount of shampoo into the hydraulic value of the first hydraulic device 304, so as to control the quantitative filling of shampoo more conveniently, and when the raw material in the feed bin 302 is used up, the first hydraulic shaft 3041 of the first hydraulic device 304 is recovered, then the feed pipe 3042 flows into the raw material, due to the principle of communication, the raw material height of the feed bin 302 and the discharge bin 303 is kept the same, so that the above operation can be repeated, the automation and precision are high, the position and movement track of the rotating disc 5 are limited through the shape and connection relationship of the convex guide 403 and the clamping groove 501, and the position and movement track of the connecting belt 504 are limited through the first limiting plate 503.
[0034] Further as shown in Figure 2 It is worth noting that the upper end of the second hydraulic shaft 1001 of the second hydraulic device 10 is fixedly connected with the connecting head 1003, the outer surface of the connecting head 1003 can be connected with the inner surface of the connecting hole 505, and the upper end of the second drive bin 402 is fixedly connected with the symmetrical fixed plate 1002, the middle part of the symmetrical fixed plate 1002 is slidably connected with the outer surface of the second hydraulic shaft 1001. Through the second hydraulic device 10, the filling bottle 7 can be moved up by a height, so that the bottle mouth of the filling bottle 7 can be matched with the connecting ring 1101 of the discharge funnel 11, thereby preventing the spraying of the filling bottle 7 and increasing the stability.
[0035] Further as shown in Figure 3 It is worth noting that the limiting device 6 comprises a small servo motor 601 and a symmetrical sliding plate 605, the output shaft 603 of the servo motor 601 is threadedly connected with the middle part of the extension plate 606 provided on one side of the symmetrical sliding plate 605, the middle part of the extension plate 606 provided on the other side of the symmetrical sliding plate 605 is slidably connected with the sliding shaft 602, one end of the sliding shaft 602 is fixedly connected with one side of the servo motor 601, the output shaft 603 of the servo motor 601 and the other end of the sliding shaft 602 are fixedly connected with the second limiting plate 604, the middle part of the symmetrical sliding plate 605 is arc-shaped, and sliding pads are provided on opposite sides. Through the limiting device 6, the filling bottle 7 can be always fixed at the center position of the storage groove 506, thereby facilitating the later filling.
[0036] Further as shown in Figure 6As shown, it is worth noting that the lower end of the discharge funnel 11 is fixedly connected with a connecting ring 1101, and the inner surface of the connecting ring 1101 is provided with a buffer pad 1102, and the lowermost end of the discharge funnel 11 is provided with a short pipe 1103. Through the discharge funnel 11, the connecting ring 1101, the buffer pad 1102 and the short pipe 1103, the spraying of the filling bottle 7 during filling can be prevented, and the stability thereof is increased.
[0037] Further as shown Figure 1 As shown, it is worth noting that the infrared positioning device 8 includes an infrared receiver 801 and a plurality of infrared emitters 802, the infrared receiver 801 is arranged on the outer surface of the middle part of the bottom end of the support 1, and the plurality of infrared emitters 802 are uniformly arranged on the curved surface of the rotating disc 5. Through the infrared positioning device 8, the electrical element of the device 2 can be controlled by the control device 2.
[0038] Further as shown Figure 7 As shown, it is worth noting that the quantitative device 307 includes a first fixed bin 3071 and a positioning bin 3073 arranged at the upper end or a quantitative bin 3072 and a second fixed bin 3074 arranged at the lower end, a first one-way valve 3075 or a second stepper motor 3084 is respectively installed in the first fixed bin 3071 and the second fixed bin 3074, a buoyancy plate 3076 is slidably connected to the inner surface of the quantitative bin 3072, a discharge pipe 306 is fixedly connected to the lower end of the buoyancy plate 3076 through the upper end of one side of the buoyancy plate 3076, a sliding column 3078 is fixedly connected to the upper end of the other side of the buoyancy plate 3076, the sliding column 3078 penetrates into the positioning bin 3073 through the upper end, and a first connecting block 3079 is fixedly connected to the upper end of the sliding column 3078, a second connecting block 3080 is threadedly connected to the upper end of the driving shaft 3081 of the second stepper motor 3084, the second connecting block 3080 is slidably connected to the outer surface of the positioning column 3082 through the middle part, the positioning column 3082 is fixedly connected to the upper and lower ends of the positioning bin 3073, the lower surface of one end of the second connecting block 3080 and the upper surface of one end of the first connecting block 3079 are slidably connected, a pressure sensor 3083 is installed on the lower surface of one end of the second connecting block 3080, a through hole is arranged at the lower end of the quantitative bin 3072, and a second one-way valve 3077 is fixedly connected to the lower end of the through hole of the quantitative device 307. Through the quantitative device 307, the output of the raw material can be determined according to the height of the second connecting block 3080, which is convenient to control and simple to operate.
[0039] In summary: first, through the limiting device 6 drive its output shaft 603 rotation, thus driving the threaded connection of the sliding plate 605 movement, because the position and movement track of the sliding plate 605 is limited by the output shaft 603 and sliding shaft 602, so the symmetrical sliding plate 605 can only move or relative separation, thus can always fix the filling bottle 7 in the center of the storage tank 506, then through the first step motor 9 drive turntable 5 rotation, when the infrared emitter 801 of the infrared positioning device 8 emits a signal is received by the infrared receiver 802, will be passed to the control device 2, the control device 2 control first step motor 9 stop working, so that the turntable 5 stop, and at this time the control device 2 control second hydraulic device 10, make its second hydraulic shaft 1001 upward operation, thus can make the filling bottle 7 up a height, make the bottle mouth of the filling bottle 7 fit the connecting ring 1101 of the discharge hopper 11, finally through the control device 2 control the first hydraulic device 304 first hydraulic shaft 3041 down, that is, the extrusion plate 308 down, thus causing the raw material in the feed bin 302 through the communication pipe 305 into the discharge bin 303, then from the discharge bin 303 through the discharge pipe 306, quantitative device 307 (through the second step motor 3084 of the quantitative device 307 according to the quantitative needs, the second connecting block 3080 is moved to the appropriate position, when the raw material in the quantitative bin 3072 drag the buoyancy plate 3076 to rise to a certain height, that is, the first connecting block 3079 of the sliding column 3078 end extrusion second connecting block 3080 pressure sensor 3083, pressure sensor 3083 transmission electric signal to the control device 2, the control device 2 control first check valve 3075 close, the second check valve 3077 open, after a period of time, the control device 2 control first check valve 3075 open, the second check valve 3077 close, then repeat the above operation) and discharge hopper 11 and short pipe 1103 into the filling bottle 7, can make the filling amount of shampoo into the hydraulic value of the first hydraulic device 304, so as to control the quantitative filling of shampoo more conveniently, and when the raw material in the feed bin 302 is used up, the first hydraulic shaft 3041 of the first hydraulic device 304 is recovered, then the feed pipe 3042 flows into the raw material, due to the principle of communication device, the raw material height of the feed bin 302 and the discharge bin 303 will remain the same, then the above operation can be repeated, through the second hydraulic device 10, can make the filling bottle 7 up a height, make the bottle mouth of the filling bottle 7 fit the connecting ring 1101 of the discharge hopper 11, thus can prevent the filling of the filling bottle 7 from spraying, increase its stability, through the limiting device 6, thus can always fix the filling bottle 7 in the center of the storage tank 506, thus facilitate the later filling, through the limiting device 6, thus can always fix the filling bottle 7 in the center of the storage tank 506, thus facilitate the later filling, through the infrared positioning device 8, can help the control device 2 control the electrical elements of the device, through the quantitative device 307,The output of the raw material can be determined according to the height of the second connecting block 3080, so that the control is facilitated and the operation is simple.
[0040] The basic principle, main features and advantages of the present application are shown and described above. It should be understood by those skilled in the art that the present application is not limited by the above examples, and the above examples and descriptions in the specification are only the principles of the present application. Without departing from the spirit and scope of the present application, various changes and improvements can be made to the present application, and these changes and improvements all fall within the scope of the claimed present application. The scope of protection required by the present application is defined by the appended claims and their equivalents.
Claims
1. A quantitative filling structure for shampoo production, comprising a support (1) and an infrared positioning device (8), characterized in that: The support (1) is U-shaped, and a storage bin (3) is fixedly connected to the upper end of one side of the U-shaped support (1). A discharge funnel (11) is provided at the lower end of the storage bin (3). A control device (2) is fixedly connected to one side of the outer surface of the bottom end of the support (1). A cylindrical base (4) is fixedly connected to the middle of the upper end of the other side of the U-shaped support (1). The cylindrical base (4) is provided with a first drive chamber (401) and a second drive chamber (402) inside. A first stepper motor (9) and a second hydraulic device (10) are fixedly connected to the first drive chamber (401) and the second drive chamber (402) respectively. A turntable (5) is slidably connected to the upper end of the cylindrical base (4). A fixed shaft (502) is fixedly connected to the middle of the lower end of the turntable (5). The outer surface of one end of the fixed shaft (502) is engaged with the outer surface of one end of the output shaft (603) of the first step motor (9) through a connecting belt (504). The upper edge of the turntable (5) is provided with several storage slots (506). Each of the several storage slots (506) contains a filling bottle (7). The turntable (5) is provided with a limiting device (6) at the upper end of each storage slot (506). The lower end of each of the several storage slots (506) is provided with a connecting hole (505).
2. The quantitative filling structure for shampoo production according to claim 1, characterized in that: The storage silo (3) includes a silo body (301), which contains an inlet silo (302) and an outlet silo (303). A first hydraulic device (304) is fixedly connected to the upper end of the inlet silo (302) of the silo body (301). The other end of the first hydraulic shaft (3041) of the first hydraulic device (304) is slidably connected to the upper end of the silo body (301) and the inlet silo (302) and is fixedly connected to a... An extrusion plate (308) is slidably connected to the inner surface of the feed hopper (302) on its outer surface. The lower ends of the feed hopper (302) and the discharge hopper (303) are connected by a connecting pipe (305). The upper side of the feed hopper (302) and the discharge hopper (303) are respectively provided with a feed pipe (3042) or a discharge pipe (306). One end of the discharge pipe (306) is provided with a metering device (307).
3. The quantitative filling structure for shampoo production according to claim 1, characterized in that: The turntable (5) has a dovetail-shaped groove (501) at its lower edge, and the cylindrical base (4) has a dovetail-shaped protruding guide (403) at its upper edge. The outer surface of the protruding guide (403) is slidably connected to the inner surface of the groove (501).
4. The quantitative filling structure for shampoo production according to claim 1, characterized in that: The fixed shaft (502) and the output shaft (603) of the first stepper motor (9) are provided with first limiting plates (503) on both sides of the connecting belt (504), and a gear is provided on the outer surface of the other end of the output shaft (603) of the first stepper motor (9).
5. The quantitative filling structure for shampoo production according to claim 1, characterized in that: The upper end of the second hydraulic shaft (1001) of the second hydraulic device (10) is fixedly connected with a connector (1003). The outer surface of the connector (1003) can be slidably connected to the inner surface of the connecting hole (505). A symmetrical fixing plate (1002) is fixedly connected to one side of the upper end of the second drive chamber (402). The middle part of the symmetrical fixing plate (1002) is slidably connected to the outer surface of the second hydraulic shaft (1001).
6. The quantitative filling structure for shampoo production according to claim 1, characterized in that: Each of the limiting devices (6) includes a small servo motor (601) and a symmetrical sliding plate (605). The output shaft (603) of the servo motor (601) is threadedly connected to the middle of an extension plate (606) provided on one side of the symmetrical sliding plate (605). A sliding shaft (602) is slidably connected to the middle of an extension plate (606) provided on the other side of the symmetrical sliding plate (605). One end of the sliding shaft (602) is fixedly connected to one side of the servo motor (601). The other ends of the output shaft (603) of the servo motor (601) and the sliding shaft (602) are both fixedly connected to a second limiting plate (604). The middle of each of the symmetrical sliding plates (605) is arc-shaped, and sliding pads are provided on opposite sides.
7. The quantitative filling structure for shampoo production according to claim 1, characterized in that: A connecting ring (1101) is fixedly connected to the outer surface of the lower end of the discharge funnel (11), a buffer pad (1102) is provided on the inner surface of the connecting ring (1101), and a short tube (1103) is provided at the lowest end of the discharge funnel (11).
8. The quantitative filling structure for shampoo production according to claim 1, characterized in that: The infrared positioning device (8) includes an infrared receiver (801) and several infrared transmitters (802). The infrared receiver (801) is located in the middle of the outer surface of the bottom end of the bracket (1), and several infrared transmitters (802) are evenly arranged on the curved surface of the turntable (5).
9. A quantitative filling structure for shampoo production according to claim 2, characterized in that: The metering device (307) includes a first fixed chamber (3071) and a positioning chamber (3073) at the upper end, or a metering chamber (3072) and a second fixed chamber (3074) at the lower end. A first one-way valve (3075) or a second stepper motor (3074) is installed in the first fixed chamber (3071) and the second fixed chamber (3074), respectively. A buoyancy plate (3076) is slidably connected to the inner surface of the metering chamber (3072). The lower end of the discharge pipe (3076) is fixedly connected through one side of the upper end of the buoyancy plate (3076), and a sliding column (3078) is fixedly connected to the other side of the upper end of the buoyancy plate (3076). The upper end of the sliding column (3078) extends into the positioning chamber (3073) and is fixedly connected to the first one-way valve (3075). A connecting block (3079) is provided, and the upper end of the drive shaft (3081) of the second stepper motor (3084) is threadedly connected to the second connecting block (3080). The middle part of the second connecting block (3080) is slidably connected to the outer surface of the positioning column (3082). The upper and lower ends of the positioning column (3082) are fixedly connected to the upper and lower ends of the positioning chamber (3073). The lower surface of one end of the second connecting block (3080) and the upper surface of one end of the first connecting block (3079) can be fitted and slidably connected. A pressure sensor (3083) is installed on the lower surface of one end of the second connecting block (3080). The lower end of the metering chamber (3072) is provided with a through hole. The metering device (307) is located at the lower end of the through hole and is fixedly connected to the second one-way valve (3077).