Multi-module electric control integrated device for automatic production line of leather maintenance cream
The intelligent manufacturing system, which integrates multi-module electronic control devices, has solved the problems of heating efficiency, stirring speed, and delivery speed in the production of leather care cream, thereby improving equipment safety and production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- SHANDONG LABOR VOCATIONAL & TECHN COLLEGE
- Filing Date
- 2026-03-19
- Publication Date
- 2026-04-17
AI Technical Summary
Existing leather care cream production equipment has shortcomings in heating efficiency and safety, stirring speed adjustment, and post-production delivery speed, which affect production efficiency and equipment safety.
The device employs a multi-module integrated electronic control unit, including a feeding module, an emulsification module, and a molding module. Through the integrated electronic control system, industrial data is managed and processed, and the heating, stirring, and delivery speeds are automatically adjusted to achieve intelligent manufacturing.
It improves heating efficiency and safety, ensures appropriate stirring speed, avoids equipment damage, increases production efficiency and product delivery speed, and optimizes the overall production process.
Smart Images

Figure CN121869183A_ABST
Abstract
Description
Technical Field
[0001] This disclosure relates to the field of molecular multi-module electrical control integrated equipment technology, and in particular to a multi-module electrical control integrated device for an automated production line of leather care cream. Background Technology
[0002] In the production and processing of leather care cream, in order to ensure the production quality and processing efficiency, it is often necessary to use multi-module electrical control integrated equipment for industrial data storage, industrial cloud storage, industrial data management, big data storage, big data management, industrial data processing, industrial data acquisition, and industrial data processing to ensure the automated control of the leather care cream production line. This is an essential electrical control equipment for the intelligent manufacturing equipment industry.
[0003] Patent application CN201611248461.6 discloses an integrated modular device for building intelligence. It utilizes a central processing unit (CPU) whose communication terminal is connected to a Building Automation System (BAS) processing unit (BAS). The BAS processing unit's control output is output to the control input of a field control unit, and the field control unit's output is output to field devices. This integrated control feature, where the CPU outputs data to the field control unit via the BAS, simplifies the topology. The centralized control structure significantly reduces system risks, greatly improving system reliability, flexibility, and scalability. The temperature and humidity controller measures temperature and humidity, calculates the valve's adjustment output, and the intelligent valve generates the corresponding valve opening. The number of intelligent valves is related to the air conditioning system structure. The on / off controller is used to start and stop the unit, monitor the air conditioning status, and generate alarms. This system control exhibits distributed control characteristics. The output of the first router module is connected to the input of the transceiver, which in turn connects to the input of the IGBT optocoupler. The IGBT optocoupler's output is connected to the input of the solid-state relay, which in turn connects to the control input of the air conditioning unit's electrically controlled valve. The feedback terminal of the electrically controlled valve is connected to the input of a potentiometer, which in turn connects to the input of a digital-to-analog converter (DAC). The DAC's output is connected to the enable terminal of the IGBT optocoupler. Since the transceiver output controls the IGBT optocoupler, which in turn controls the coil of the solid-state relay, the bridge wall of the solid-state relay controls the electrically controlled valve. The electrically controlled valve outputs a feedback signal to the potentiometer, which, by adjusting the IGBT optocoupler's output, drives the electrically controlled valve. The patent application number is CN202111221466.The invention patent 0 discloses a fault self-diagnostic integrated display screen for diesel locomotives. An external communication module is used for information interaction with other devices on the locomotive bus and for transmitting information to the main control module for analysis and processing. This analysis and processing includes: the main control module parsing the information transmitted from each communication submodule into corresponding data according to the corresponding communication protocol, displaying it according to the application program settings, integrating multiple control and display functions into the display screen, and self-diagnosing whether the locomotive display screen has any faults. An RS232 communication submodule is used to receive satellite positioning information and reconnection information, and transmit this information to the main control module for analysis and processing. The reconnection information includes: location, time, date, speed, and reconnection details. This includes: the locomotive number, engine control status, electric braking status, diesel engine status, traction force value, traction power, and fuel quantity of the coupled locomotives. The coupled locomotive module is used for transmitting coupled locomotive information. This information interaction includes: the main control module transmitting coupled data to the coupled locomotive module via the RS232 communication submodule, and then transmitting it to the coupled locomotives via the coupled locomotive router. This locomotive display screen is mainly used in the crane of a certain Harmony diesel locomotive. It can replace most commonly used driver's console switches, instruments, indicator lights, and locomotive displays, making the entire driver's console more streamlined. It can perform fault self-diagnosis, accurately diagnosing and predicting faults in the locomotive display screen itself through real-time data acquisition and comparison, facilitating users to troubleshoot and resolve faults in advance.
[0004] According to its publicly available technical solutions, existing molecular marker-assisted breeding equipment has several drawbacks. First, during the production and processing of leather care cream, it cannot effectively guarantee heating efficiency and safety, easily resulting in low heating efficiency affecting production efficiency, or high heating efficiency that is detrimental to the production safety of leather care cream. Second, it cannot automatically adjust the stirring speed according to the equipment's working conditions, easily resulting in high stirring speed leading to equipment damage, or low stirring speed affecting production efficiency. Third, after the production process is completed, the emulsification of the leather care cream leads to insufficient delivery speed, reducing work efficiency. Summary of the Invention
[0005] This disclosure aims to at least partially address one of the technical problems in the related art.
[0006] Therefore, the purpose of this disclosure is to provide a multi-module electrical control integrated device for an automated production line of leather care cream.
[0007] To achieve the above objectives, this disclosure provides a multi-module electrical control integrated device for an automated production line of leather care cream, comprising: a feeding module, an emulsification module, and a molding module. The feeding module includes a material cylinder and an upper plate. A support assembly is installed at the bottom of the upper plate, the support assembly including a lower plate and support legs. A metering assembly is installed at the bottom of the material cylinder, the metering assembly including a connecting pipe and a flow valve. A discharging assembly is installed on the upper plate, the discharging assembly including a hopper and a discharging pipe. The emulsification module includes a tank and a bottom cavity. The bottom of the tank is bolted to the top of the lower plate. A rotating assembly is installed on the tank, the rotating assembly including a motor and a rotor. A heating assembly is installed inside the bottom cavity, the heating assembly including a heating plate and a movable plate. A lifting assembly is installed at the bottom of the tank, the lifting assembly including a motor and a screw. A limit assembly is installed inside the bottom cavity. The components include a conduit and a notch. An external temperature control module is connected to the tank body, including a temperature sensor and integrated electronic control. The forming module includes a sleeve and a pipe arrangement. The sleeve is installed at the bottom of the lower plate. A dispensing assembly is installed on the sleeve, including an outlet pipe and an auxiliary material box. A transmission assembly is installed on the sleeve, including a support sleeve and a gear. A drive assembly is installed on the support sleeve, including a motor and a prism. An adjustment assembly is installed on the outside of the prism, including a gear and an electromagnet. A mixing assembly is installed on the inside of the sleeve, including an outer screw plate and an inner screw plate. A flow guiding assembly is installed on the outer screw plate, including an inner cylinder and a support rod. A speed changing assembly is installed on the support rod, including a gear ring and a gear ring. A sealing assembly is installed on the inner cylinder, including a clamping plate and a bushing.
[0008] Optionally, the upper plate is welded to the top of the support leg, the lower plate is welded to the middle of the support leg, the lower plate is located at the bottom of the upper plate, the support legs are evenly distributed around the upper and lower plates, the material cylinder is bolted to the top of the upper plate, the bottom of the tank is bolted to the top of the lower plate, the top of the connecting pipe is welded to the bottom of the material cylinder, the bottom of the connecting pipe is bolted to the top of the tank, the flow valve is installed inside the connecting pipe, the material cylinder is connected to the tank through the connecting pipe, the hopper is bolted to the top of the upper plate, the top of the discharge pipe is welded to the bottom of the hopper, the bottom of the discharge pipe is bolted to the top of the tank, and the hopper is connected to the top of the tank through the discharge pipe.
[0009] Optionally, the bottom cavity is welded to the bottom of the tank, the motor is bolted to the top of the tank, the bottom end of the vane is installed on the bottom of the inner side of the tank, the top end of the vane passes through the inner wall of the top of the tank through a sealing ring and is keyed to the output shaft of the motor, the temperature sensor is bolted to one side of the tank, one end of the temperature sensor extends to the inner side of the tank, and the temperature sensors are distributed at the top and bottom of the tank.
[0010] Optionally, the second motor is bolted to the outer side of the bottom of the cavity, the outer side of the flap is clamped to the inner wall of the cavity, the heating plate is welded to the top of the flap, a threaded opening is provided at the center of the flap, the outer side of the screw is threaded to the inner side of the threaded opening, the bottom end of the screw passes through the inner wall of the bottom of the cavity through a sealing ring and is keyed to the output shaft of the second motor, the bottom end of the conduit is welded to the inner wall of the bottom of the cavity, the top end of the conduit is welded to the bottom of the tank, the flap is sleeved on the outer side of the conduit, the conduits are evenly distributed on the inner side of the cavity, and notches are provided at the top and bottom ends of the conduits. The inner side of the cavity is filled with heat transfer oil.
[0011] Optionally, the top end of the outlet pipe is welded to the bottom of the other side of the tank body, the bottom end of the outlet pipe is bolted to the top of one end of the sleeve, the tank body is connected to the sleeve through the outlet pipe, the auxiliary material box is bolted to the top of the lower plate, the bottom of the auxiliary material box is connected to the sleeve through a pipe, the drain pipe is welded to the bottom of the other end of the sleeve, and solenoid valves are installed on the outlet pipe, drain pipe, and pipe.
[0012] Optionally, the support sleeve is bolted to the outer side of one end of the sleeve, the first gear is mounted on the inner side of the support sleeve via a rotating shaft, the first gear is evenly distributed on the inner side of the sleeve, the third motor is bolted to the outer side of the support sleeve, one end of the prism is welded to the output shaft of the third motor, the electromagnet is bolted to the third motor, the electromagnet is sleeved on the outer side of one end of the prism via a bearing, the second gear is sleeved on the outer side of one end of the prism, the second gear is connected to the electromagnet via a spring, and the first gear is evenly distributed around the second gear.
[0013] Optionally, both the first and second toothed rings are installed on the inner side of the support sleeve. The first toothed ring is set on the outer side of the first gear, and the first toothed ring meshes with the first gear. The second toothed ring is located at the center of the first toothed ring, and the second gear is embedded in the inner side of the second toothed ring or meshes with the first gear.
[0014] Optionally, the outer threaded plate is welded to the outer side of the inner cylinder, the outer side of the outer threaded plate is clamped to the inner wall of the sleeve, the inner threaded plate is welded to the inner wall of the inner cylinder, the outer side of the support rod is welded to the inner wall of one end of the inner cylinder, one end of the support rod passes through the inner wall of one end of the sleeve through a sealing ring and extends to the inner side of the support sleeve, and both toothed ring one and toothed ring two are bolted to the outer side of one end of the support rod.
[0015] Optionally, the inner cylinder has openings at both ends, the outer side of the clamping plate is clamped to the inner wall of the opening, the clamping plate is installed at one end of the inner cylinder, a support rod is welded to the outer threaded plate, the bushing is integrally formed on the clamping plate, the bushing is sleeved on the outer side of the support rod, the bushing is connected to the support rod by a torsion spring, and the width of the clamping plate matches the shape of the outer threaded plate.
[0016] Optionally, the integrated electronic control is installed at the bottom of the lower plate, and a pressure sensor is installed on the sleeve by bolts. The temperature sensor and the pressure sensor are connected to the integrated electronic control by wires. The integrated electronic control is connected to the flow valve, motor two, solenoid valve, motor three and electromagnet by wires.
[0017] The technical solution provided in this disclosure may include the following beneficial effects: In operation, to upgrade the intelligent manufacturing equipment industry, integrated electronic control stores, manages, and processes industrial data, including industrial cloud storage, industrial data management, big data storage, and big data management. This data is used to control the equipment's operation. Liquid raw materials are added to the inside of different hoppers, and the integrated electronic control controls the flow valves as needed to automatically achieve the required raw material proportions. Different solid raw materials are then weighed and discharged into the tank through a hopper and discharge pipe. Temperature sensors collect the temperature inside the tank, thus acquiring industrial data. The integrated electronic control then processes and controls the heating plate and motor, which in turn drive the rotating... The blade emulsifies the raw materials. When there is a large temperature difference between the top and bottom of the tank, or when the overall temperature is high, the heating plate automatically shuts off. Motor 2 drives the movable plate and heating plate downwards via a screw, separating the heating plate from the bottom of the tank and instantly stopping heating to prevent residual heat from damaging the raw materials. After the temperature inside the tank cools down, Motor 2 pushes the movable plate and heating plate upwards via a screw. The heating plate moves the heat transfer oil upwards and presses it against the bottom of the tank. Excess heat transfer oil flows downwards to the bottom of the cavity through notches and conduits, preventing gaps between the heating plate and the tank, improving heat conduction and heating efficiency, and reducing energy waste. During operation, the integrated electronic control system stores, stores, and manages the processing data in an industrial cloud.
[0018] During use, the emulsified raw material is fed into the inner side of the sleeve through the outlet pipe. Then, flavorings, antibacterial agents, or preservatives are added into the sleeve through the auxiliary material box. Current and pressure are collected by the current sensor of motor three and the pressure sensor inside the sleeve to achieve industrial data acquisition. The integrated electronic control system then processes and controls the operation of motor three and the electromagnet. When the pressure inside the sleeve and the current of motor three are high, the electromagnet attracts gear two through magnetic force. Gear two compresses the spring and moves to the right on the outer side of the prism, aligning gear two with gear one. Motor three drives gear two through the prism, gear two drives gear one, gear one drives the gear ring one to rotate, which in turn drives the support rod to rotate inside the sleeve. The support rod drives the outer and inner screw plates to rotate on the outer and inner sides of the inner cylinder, respectively. The outer screw plate pushes the raw material on the outer side of the inner cylinder to the right in a spiral motion, while the inner screw plate pushes the raw material inside the inner cylinder to the right. The raw material on the side is pushed to the left by a spiral, and the raw material on the inner side of the inner cylinder is pushed by the pressure of the inner spiral plate to push the clamping plate. The clamping plate rotates from the inside of the clamping opening to the outside through the bushing and supported by the support rod. This allows the raw material to circulate through the openings at both ends of the inner cylinder. The rotation of the outer and inner spiral plates makes the raw material stir up and down, thereby improving the mixing efficiency of the raw material. When the pressure of the raw material and the current of motor three are low, the electromagnet is turned off, and the spring pushes gear two to the left. Motor three drives gear two through the prism, and gear two directly drives the support rod through the gear ring two, increasing the rotation speed of the outer and inner spiral plates, thereby increasing the mixing speed of the raw material. It can automatically realize the adjustment of the mixing speed to avoid insufficient mixing efficiency or equipment damage. During the operation, the processing data is stored, industrial cloud storage and industrial data management are performed through integrated electronic control.
[0019] During use, after the raw materials are mixed and processed to produce the leather care cream, the drain pipe is opened, and motor three is turned on in reverse. The outer and inner screw plates rotate in opposite directions. The inner screw plate pushes the leather care cream located inside the inner cylinder to the right in a spiral motion, allowing the leather care cream to flow through the opening to the outside of the inner cylinder. The outer screw plate pushes the leather care cream on the outside of the inner cylinder to the left in a spiral motion. The clamping plate located inside the opening at the left end of the inner cylinder will not rotate due to the obstruction of the inner cylinder and the support of the bushing and support rod, thus sealing the opening. This allows the leather care cream located outside the inner cylinder inside the sleeve to be quickly discharged outward through the drain pipe under the squeezing and pushing of the outer screw plate. During the discharge of the leather care cream, the drive mode is adjusted by the pressure changes of the pressure sensor and the current changes of motor three to improve the discharge efficiency of the leather care cream, thereby effectively improving the production efficiency of the leather care cream.
[0020] Additional aspects and advantages of this disclosure will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of this disclosure. Attached Figure Description
[0021] The above and / or additional aspects and advantages of this disclosure will become apparent and readily understood from the following description of the embodiments taken in conjunction with the accompanying drawings, in which: Figure 1 This is a schematic diagram of the structure of a multi-module electronic control integrated device for an automated production line of leather care cream, as proposed in one embodiment of this disclosure. Figure 1 ; Figure 2 This is a schematic diagram of the structure of a multi-module electronic control integrated device for an automated production line of leather care cream, as proposed in one embodiment of this disclosure. Figure 2 ; Figure 3 This is a schematic diagram of the flap structure of the multi-module electronic control integrated device for an automated production line of leather care cream according to an embodiment of this disclosure. Figure 1 ; Figure 4 This is a schematic diagram of the flap structure of the multi-module electronic control integrated device for an automated production line of leather care cream according to an embodiment of this disclosure. Figure 2 ; Figure 5 This is a schematic diagram of the support structure of the multi-module electrical control integrated device for an automated production line of leather care cream according to an embodiment of this disclosure; Figure 6 This is a schematic diagram of the structure of motor three in the multi-module electrical control integrated device of the automated production line for leather care cream according to an embodiment of this disclosure; Figure 7 This is a schematic diagram of the inner cylinder of the multi-module electronic control integrated device for an automated production line of leather care cream, as proposed in one embodiment of this disclosure. Figure 1 ; Figure 8 This is a schematic diagram of the inner cylinder of the multi-module electronic control integrated device for an automated production line of leather care cream, as proposed in one embodiment of this disclosure. Figure 2 ; Figure 9 This is a schematic diagram of the inner cylinder of the multi-module electronic control integrated device for an automated production line of leather care cream, as proposed in one embodiment of this disclosure. Figure 3 ; Figure 10 This is a cross-sectional view of a multi-module electronic control integrated device for an automated production line of leather care cream according to an embodiment of this disclosure; As shown in the figure: 1. Upper plate; 2. Lower plate; 3. Support leg; 4. Cylinder; 5. Hopper; 6. Connecting pipe; 7. Flow valve; 8. Discharge pipe; 9. Tank body; 10. Motor 1; 11. Rotary vane; 12. Temperature sensor; 13. Integrated electronic control; 14. Bottom cavity; 15. Heating plate; 16. Hinged plate; 17. Motor 2; 18. Screw; 19. Guide tube; 20. Notch; 21. Discharge pipe; 22. 23. Auxiliary material box; 24. Sleeve; 25. Pipe; 26. Support sleeve; 27. Gear 1; 28. Motor 3; 29. Prism; 30. Gear 2; 31. Electromagnet; 32. Spring; 33. Gear ring 1; 34. Gear ring 2; 35. Inner cylinder; 36. Outer threaded plate; 37. Inner threaded plate; 38. Support rod; 39. Opening; 40. Support rod; 41. Clamping plate; 42. Bushing; 43. Pressure sensor. Detailed Implementation
[0022] Embodiments of this disclosure are described in detail below, examples of which are illustrated in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are used only to explain this disclosure, and should not be construed as limiting this disclosure. Rather, embodiments of this disclosure include all variations, modifications, and equivalents falling within the spirit and scope of the appended claims.
[0023] like Figure 1 , Figure 7 , Figure 8 , Figure 9 and Figure 10As shown in the present disclosure, an embodiment of an automated production line for leather care cream proposes a multi-module electrical control integrated device, comprising: a feeding module, which includes a material cylinder 4 and an upper plate 1, a support assembly installed at the bottom of the upper plate 1, the support assembly including a lower plate 2 and support legs 3, a metering assembly installed at the bottom of the material cylinder 4, the metering assembly including a connecting pipe 6 and a flow valve 7, and a discharging assembly installed on the upper plate 1, the discharging assembly including a hopper 5 and a discharging pipe 8; and an emulsification module, which includes a tank 9 and a bottom cavity 14, the bottom of the tank 9 being bolted to the top of the lower plate 2, and a rotating assembly installed on the tank 9, the rotating assembly including a motor 10 and a rotor 11, the bottom cavity 14... A heating assembly is installed on the inner side of the tank 9, which includes an electric heating plate 15 and a movable plate 16. A lifting assembly is installed at the bottom of the tank 9, which includes a motor 17 and a screw 18. A limiting assembly is installed on the inner side of the bottom cavity 14, which includes a conduit 19 and a notch 20. A temperature control module is externally connected to the tank 9, which includes a temperature sensor 12 and an integrated electronic control 13. A forming module is also included, which includes a sleeve 23 and a pipe 24. The sleeve 23 is installed at the bottom of the lower plate 2. A dispensing assembly is installed on the sleeve 23, which includes an outlet pipe 21 and an auxiliary material box 22. A transmission assembly is installed on the sleeve 23, which includes a support sleeve 25 and a gear. Wheel 26, a drive assembly is installed on the support sleeve 25, the drive assembly includes a motor 27 and a prism 28, an adjustment assembly is installed on the outside of the prism 28, the adjustment assembly includes a gear 29 and an electromagnet 30, a mixing assembly is installed on the inside of the sleeve 23, the mixing assembly includes an outer threaded plate 35 and an inner threaded plate 36, a flow guiding assembly is installed on the outer threaded plate 35, the flow guiding assembly includes an inner cylinder 34 and a support rod 37, a speed changing assembly is installed on the support rod 37, the speed changing assembly includes a gear ring 32 and a gear ring 33, a sealing assembly is installed on the inner cylinder 34, the sealing assembly includes a clamping plate 40 and a bushing 41, and openings 38 are provided at both ends of the inner cylinder 34. The outer side of plate 40 is clamped to the inner wall of opening 38. Plate 40 is installed at one end of inner cylinder 34. Support rod 39 is welded to outer threaded plate 35. Bushing 41 is integrally formed on plate 40 and sleeved on the outer side of support rod 39. Bushing 41 is connected to support rod 39 by torsion spring. The width of plate 40 matches the shape of outer threaded plate 35. Integrated electronic control 13 is installed at the bottom of lower plate 2. Pressure sensor 42 is installed on sleeve 23 by bolts. Temperature sensor 12 and pressure sensor 42 are connected to integrated electronic control 13 by wires. Integrated electronic control 13 is connected to flow valve 7, motor 2 17, solenoid valve, motor 3 27 and electromagnet 30 by wires.
[0024] Understandably, during use, after the raw material mixing and processing are completed and the leather conditioner cream is produced, the drain pipe 24 is opened, and the motor 27 is turned on in reverse. The outer screw plate 35 and the inner screw plate 36 rotate in opposite directions. The inner screw plate 36 pushes the leather conditioner cream located inside the inner cylinder 34 to the right in a spiral motion, allowing the leather conditioner cream to flow through the opening 28 to the outside of the inner cylinder 34. The outer screw plate 35 pushes the leather conditioner cream on the outside of the inner cylinder 34 to the left in a spiral motion. The retaining plate 40 located inside the opening 38 at the left end of the inner cylinder 34... The cylinder 34 is blocked and the bushing 41 and support rod 39 do not rotate, so the clamping plate 40 seals the opening 38. This allows the leather care cream located outside the inner cylinder 34 inside the sleeve 23 to be quickly discharged outward through the discharge pipe 24 under the squeezing and pushing of the outer screw plate 35. During the discharge of the leather care cream, the driving mode is adjusted by the pressure change of the pressure sensor 42 and the current change of the motor 27 to improve the discharge efficiency of the leather care cream, thereby effectively improving the production efficiency of the leather care cream.
[0025] like Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 10As shown, the upper plate 1 is welded to the top of the support leg 3, the lower plate 2 is welded to the middle of the support leg 3, and the lower plate 2 is located at the bottom of the upper plate 1. The support legs 3 are evenly distributed around the upper plate 1 and the lower plate 2. The material cylinder 4 is bolted to the top of the upper plate 1, and the bottom of the tank body 9 is bolted to the top of the lower plate 2. The top of the connecting pipe 6 is welded to the bottom of the material cylinder 4, and the bottom of the connecting pipe 6 is installed on the top of the tank body 9 through a flange. The flow valve 7 is installed inside the connecting pipe 6. The material cylinder 4 is connected to the upper plate 1. Pipe 6 is connected to tank body 9. Hopper 5 is bolted to the top of upper plate 1. The top end of discharge pipe 8 is welded to the bottom of hopper 5, and the bottom end of discharge pipe 8 is bolted to the top of tank body 9. Hopper 5 is connected to the top of tank body 9 via discharge pipe 8. Bottom cavity 14 is welded to the bottom of tank body 9. Motor 10 is bolted to the top of tank body 9. The bottom end of rotor 11 is installed at the bottom of the inner side of tank body 9, and the top end of rotor 11 passes through the top of tank body 9 via a sealing ring. The inner wall of the tank 9 is connected to the output shaft of the motor 10 by a key. The temperature sensor 12 is bolted to one side of the tank 9, with one end extending to the inner side of the tank 9. The temperature sensors 12 are distributed at the top and bottom of the tank 9. The motor 17 is bolted to the outer side of the bottom of the bottom cavity 14. The outer side of the flap 16 is clamped to the inner wall of the bottom cavity 14. The heating plate 15 is welded to the top of the flap 16. A screw hole is opened at the center of the flap 16. The screw 1... The outer side of the screw 18 is threaded into the inner side of the screw hole. The bottom end of the screw 18 passes through the inner wall of the bottom of the bottom cavity 14 through a sealing ring and is keyed to the output shaft of the motor 17. The bottom end of the conduit 19 is welded to the inner wall of the bottom of the bottom cavity 14. The top end of the conduit 19 is welded to the bottom of the tank 9. The flap 16 is fitted on the outer side of the conduit 19. The conduits 19 are evenly distributed on the inner side of the bottom cavity 14. The top and bottom ends of the conduits 19 are provided with notches 20. The inner side of the bottom cavity 14 is filled with heat transfer oil.
[0026] Understandably, in order to upgrade the intelligent manufacturing equipment industry, the integrated electronic control unit 13 stores, manages, and processes industrial data of the equipment through industrial cloud storage, industrial data management, big data storage, and big data management; it also controls the operation of the equipment by processing, acquiring, and processing industrial data. Liquid raw materials are added to the inside of different material cylinders 4, and the integrated electronic control unit 13 controls the flow valve 7 as needed to automatically achieve the required raw material proportioning. Different solid raw materials are then weighed and fall into the inside of the tank 9 through the hopper 5 and the discharge pipe 8. The temperature sensor 12 collects the temperature inside the tank 9 to achieve industrial data acquisition. The integrated electronic control unit 13 then processes and controls the heating plate 15 and the second motor 17 to operate. The first motor 10 drives the rotary vane 11 to feed the raw materials... During emulsification processing, when the temperature difference between the top and bottom of the tank 9 is large, or the overall temperature is high, the heating plate 15 is automatically shut off. The motor 17 drives the movable plate 16 and the heating plate 15 downward through the screw 18, separating the heating plate 15 from the bottom of the tank 9, instantly stopping heating and preventing residual heat from damaging the raw materials. After the temperature inside the tank 9 cools down, the motor 17 drives the movable plate 16 and the heating plate 15 upward through the screw 18. The heating plate 15 drives the heat transfer oil upward and presses it against the bottom of the tank 9. Excess heat transfer oil flows downward through the notch 20 and the conduit 19 to the bottom of the bottom cavity 14, preventing gaps between the heating plate 15 and the tank 9, improving heat conduction and heating efficiency, and reducing energy waste. During the operation, the integrated electronic control 13 stores the processing data, performs industrial cloud storage, and manages industrial data.
[0027] like Figure 5 , Figure 6 , Figure 7 , Figure 8 and Figure 10As shown, the top end of the outlet pipe 21 is welded to the bottom of the other side of the tank body 9, and the bottom end of the outlet pipe 21 is bolted to the top of one end of the sleeve 23. The tank body 9 is connected to the sleeve 23 through the outlet pipe 21. The auxiliary material box 22 is bolted to the top of the lower plate 2, and the bottom of the auxiliary material box 22 is connected to the sleeve 23 through a pipe. The discharge pipe 24 is welded to the bottom of the other end of the sleeve 23. Solenoid valves are installed on the outlet pipe 21, the discharge pipe 24, and the pipe. The support sleeve 25 is bolted to the outer side of one end of the sleeve 23. Gear 26 is mounted on the inner side of the support sleeve 25 via a rotating shaft. Gear 26 is evenly distributed on the inner side of the sleeve 23. Motor 27 is bolted to the outer side of the support sleeve 25. One end of the prism 28 is welded to the output shaft of motor 27. Electromagnet 30 is bolted to motor 27. Electromagnet 30 is sleeved on the outer side of one end of prism 28 via a bearing. Gear 26... 9 gears are fitted onto the outer side of one end of the prism 28. The second gear 29 is connected to the electromagnet 30 via a spring 31. The first gear 26 is evenly distributed around the second gear 29. The first gear ring 32 and the second gear ring 33 are both installed inside the support sleeve 25. The first gear ring 32 is fitted onto the outer side of the first gear 26 and meshes with the first gear 26. The second gear ring 33 is located at the center of the first gear ring 32. The second gear 29 is embedded inside the second gear ring 33 or meshes with the gear. The outer threaded plate 35 is welded to the outer side of the inner cylinder 34, and the outer side of the outer threaded plate 35 is clamped on the inner wall of the sleeve 23. The inner threaded plate 36 is welded to the inner wall of the inner cylinder 34. The outer side of the support rod 37 is welded to the inner wall of one end of the inner cylinder 34. One end of the support rod 37 passes through the inner wall of one end of the sleeve 23 through a sealing ring and extends to the inner side of the support sleeve 25. The toothed ring 32 and the toothed ring 33 are both installed on the outer side of one end of the support rod 37 by bolts.
[0028] Understandably, during use, the emulsified raw material is fed into the inside of the sleeve 23 through the outlet pipe 21, and then fragrances, antibacterial agents, or preservatives are added into the sleeve 23 through the auxiliary material box 22. Current and pressure are collected by the current sensor 42 inside the sleeve 23 and the motor 27, realizing industrial data acquisition. The integrated electronic control unit 13 then processes and controls the operation of the motor 27 and the electromagnet 30. When the pressure inside the sleeve 23 and the current of the motor 27 are high, the electromagnet... 30 magnetically attracts gear 29, which compresses spring 31 and moves to the right on the outer side of prism 28, aligning gear 29 with gear 26. Motor 3 27 drives gear 29 via prism 28, which in turn drives gear 26. Gear 26 drives gear ring 32, which in turn drives support rod 37 to rotate inside sleeve 23. Support rod 37 drives outer screw plate 35 and inner screw plate 36 to rotate on the outer and inner sides of inner cylinder 34, respectively. Outer screw plate 35 spirals the material on the outer side of inner cylinder 34 to the right. The inner screw plate 36 pushes the material inside the inner cylinder 34 to the left in a spiral motion, causing the material inside the inner cylinder 34 to push the clamping plate 40 under the pushing pressure of the inner screw plate 36. The clamping plate 40 rotates outward from the inside of the clamping opening 38 through the bushing 41 and supported by the support rod 39, thereby causing the material to circulate through the openings 38 at both ends of the inner cylinder 34. The rotation of the outer screw plate 35 and the inner screw plate 36 causes the material to be stirred up and down, thereby improving the mixing efficiency of the material. When the pressure of the material and the current of the motor 327 are relatively high... When the electromagnet 30 is turned off, the spring 31 pushes the gear 29 to the left. The motor 3 27 drives the gear 29 through the prism 28. The gear 29 directly drives the support rod 37 through the gear ring 33, increasing the rotation speed of the outer screw plate 35 and the inner screw plate 36, thereby increasing the mixing speed of the raw materials. It can automatically adjust the mixing speed to avoid insufficient mixing efficiency or equipment damage. During the operation, the integrated electronic control 13 stores the processing data, performs industrial cloud storage and industrial data management.
[0029] In the description of this disclosure, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance. Furthermore, in the description of this disclosure, unless otherwise stated, "a plurality of" means two or more.
[0030] Any process or method description in the flowchart or otherwise herein can be understood as representing a module, segment, or portion of code comprising one or more executable instructions for implementing a particular logical function or process, and the scope of preferred embodiments of this disclosure includes additional implementations in which functions may be performed not in the order shown or discussed, including substantially simultaneously or in reverse order depending on the function involved, as will be understood by those skilled in the art to which embodiments of this disclosure pertain.
[0031] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this disclosure. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0032] Although embodiments of the present disclosure have been shown and described above, it is to be understood that the above embodiments are exemplary and should not be construed as limiting the present disclosure. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of the present disclosure.
Claims
1. A multi-module electrical control integrated device for an automated production line of leather care cream, characterized in that, include: The feeding module includes a material cylinder (4) and an upper plate (1). A support component is installed at the bottom of the upper plate (1). The support component includes a lower plate (2) and a support leg (3). A metering component is installed at the bottom of the material cylinder (4). The metering component includes a connecting pipe (6) and a flow valve (7). A discharging component is installed on the upper plate (1). The discharging component includes a hopper (5) and a discharging pipe (8). An emulsification module is provided, comprising a tank (9) and a bottom cavity (14). The bottom of the tank (9) is bolted to the top of the lower plate (2). A rotating assembly is installed on the tank (9), comprising a motor (10) and a blade (11). A heating assembly is installed inside the bottom cavity (14), comprising a heating plate (15) and a movable plate (16). A lifting assembly is installed at the bottom of the tank (9), comprising a motor (17) and a screw (18). A limiting assembly is installed inside the bottom cavity (14), comprising a conduit (19) and a notch (20). A temperature control module is externally connected to the tank (9), comprising a temperature sensor (12) and an integrated electronic control (13). The molding module includes a sleeve (23) and a pipe (24). The sleeve (23) is installed at the bottom of the lower plate (2). A feeding assembly is installed on the sleeve (23). The feeding assembly includes an outlet pipe (21) and an auxiliary material box (22). A transmission assembly is installed on the sleeve (23). The transmission assembly includes a support sleeve (25) and a gear (26). A drive assembly is installed on the support sleeve (25). The drive assembly includes a motor (27) and a prism (28). An adjustment assembly is installed on the outside of the prism (28). The adjusting assembly includes a second gear (29) and an electromagnet (30). A mixing assembly is installed on the inner side of the sleeve (23). The mixing assembly includes an outer screw plate (35) and an inner screw plate (36). A flow guiding assembly is installed on the outer screw plate (35). The flow guiding assembly includes an inner cylinder (34) and a support rod (37). A speed changing assembly is installed on the support rod (37). The speed changing assembly includes a first gear ring (32) and a second gear ring (33). A sealing assembly is installed on the inner cylinder (34). The sealing assembly includes a clamping plate (40) and a bushing (41).
2. The multi-module electrical control integrated device for the automated production line of leather care cream according to claim 1, characterized in that: The upper plate (1) is welded to the top of the support leg (3), the lower plate (2) is welded to the middle of the support leg (3), the lower plate (2) is located at the bottom of the upper plate (1), the support legs (3) are evenly distributed around the upper plate (1) and the lower plate (2), the material cylinder (4) is bolted to the top of the upper plate (1), the bottom of the tank body (9) is bolted to the top of the lower plate (2), the top of the connecting pipe (6) is welded to the bottom of the material cylinder (4), and the connecting pipe (6) is... The bottom end is installed on the top of the tank body (9) through a flange. The flow valve (7) is installed on the inside of the connecting pipe (6). The material cylinder (4) is connected to the tank body (9) through the connecting pipe (6). The hopper (5) is installed on the top of the upper plate (1) by bolts. The top end of the discharge pipe (8) is welded to the bottom of the hopper (5). The bottom end of the discharge pipe (8) is installed on the top of the tank body (9) by bolts. The hopper (5) is connected to the top of the tank body (9) through the discharge pipe (8).
3. The multi-module electrical control integrated device for the automated production line of leather care cream according to claim 2, characterized in that: The bottom cavity (14) is welded to the bottom of the tank (9). The motor (10) is bolted to the top of the tank (9). The bottom end of the blade (11) is installed on the bottom of the inner side of the tank (9). The top end of the blade (11) passes through the inner wall of the top of the tank (9) through a sealing ring and is keyed to the output shaft of the motor (10). The temperature sensor (12) is bolted to one side of the tank (9). One end of the temperature sensor (12) extends to the inner side of the tank (9). The temperature sensors (12) are distributed at the top and bottom of the tank (9).
4. The multi-module electrical control integrated device for the automated production line of leather care cream according to claim 3, characterized in that: The second motor (17) is bolted to the outer side of the bottom of the cavity (14). The outer side of the flap (16) is clamped to the inner wall of the cavity (14). The heating plate (15) is welded to the top of the flap (16). A threaded opening is provided at the center of the flap (16). The outer side of the screw (18) is threaded into the inner side of the threaded opening. The bottom end of the screw (18) passes through the inner wall of the bottom of the cavity (14) through a sealing ring. The output shaft of the second motor (17) is keyed. The bottom end of the conduit (19) is welded to the inner wall of the bottom of the cavity (14). The top end of the conduit (19) is welded to the bottom of the tank (9). The flap (16) is sleeved on the outer side of the conduit (19). The conduit (19) is evenly distributed on the inner side of the cavity (14). The top and bottom ends of the conduit (19) are provided with notches (20). The inner side of the cavity (14) is filled with heat transfer oil.
5. The multi-module electrical control integrated device for the automated production line of leather care cream according to claim 4, characterized in that: The top end of the outlet pipe (21) is welded to the bottom of the other side of the tank body (9). The bottom end of the outlet pipe (21) is bolted to the top of one end of the sleeve (23). The tank body (9) is connected to the sleeve (23) through the outlet pipe (21). The auxiliary material box (22) is bolted to the top of the lower plate (2). The bottom of the auxiliary material box (22) is connected to the sleeve (23) through a pipe. The drain pipe (24) is welded to the bottom of the other end of the sleeve (23). Solenoid valves are installed on the outlet pipe (21), drain pipe (24) and pipe.
6. The multi-module electrical control integrated device for the automated production line of leather care cream according to claim 5, characterized in that: The support sleeve (25) is bolted to the outer side of one end of the sleeve (23). The first gear (26) is mounted on the inner side of the support sleeve (25) via a rotating shaft. The first gear (26) is evenly distributed on the inner side of the sleeve (23). The third motor (27) is bolted to the outer side of the support sleeve (25). One end of the prism (28) is welded to the output shaft of the third motor (27). The electromagnet (30) is bolted to the third motor (27). The electromagnet (30) is sleeved on the outer side of one end of the prism (28) via a bearing. The second gear (29) is sleeved on the outer side of one end of the prism (28). The second gear (29) is connected to the electromagnet (30) via a spring (31). The first gear (26) is evenly distributed around the second gear (29).
7. The multi-module electrical control integrated device for the automated production line of leather care cream according to claim 6, characterized in that: Both the first toothed ring (32) and the second toothed ring (33) are installed on the inner side of the support sleeve (25). The first toothed ring (32) is sleeved on the outer side of the first gear (26). The first toothed ring (32) meshes with the first gear (26). The second toothed ring (33) is located at the center of the first toothed ring (32). The second gear (29) is embedded in the inner side of the second toothed ring (33) or meshes with the first gear (26).
8. The multi-module electrical control integrated device for the automated production line of leather care cream according to claim 7, characterized in that: The outer threaded plate (35) is welded to the outer side of the inner cylinder (34). The outer side of the outer threaded plate (35) is clamped on the inner wall of the sleeve (23). The inner threaded plate (36) is welded to the inner wall of the inner cylinder (34). The outer side of the support rod (37) is welded to the inner wall of one end of the inner cylinder (34). One end of the support rod (37) passes through the inner wall of one end of the sleeve (23) through a sealing ring and extends to the inner side of the support sleeve (25). The toothed ring one (32) and the toothed ring two (33) are both installed on the outer side of one end of the support rod (37) by bolts.
9. The multi-module electrical control integrated device for the automated production line of leather care cream according to claim 8, characterized in that: The inner cylinder (34) has openings (38) at both ends. The outer side of the clamping plate (40) is clamped on the inner wall of the opening (38). The clamping plate (40) is installed at one end of the inner cylinder (34). A support rod (39) is welded on the outer threaded plate (35). The bushing (41) is integrally formed on the clamping plate (40). The bushing (41) is sleeved on the outer side of the support rod (39). The bushing (41) is connected to the support rod (39) through a torsion spring. The width of the clamping plate (40) matches the shape of the outer threaded plate (35).
10. The multi-module electrical control integrated device for the automated production line of leather care cream according to claim 9, characterized in that: The integrated electronic control (13) is installed at the bottom of the lower plate (2). A pressure sensor (42) is installed on the sleeve (23) by bolts. The temperature sensor (12) and the pressure sensor (42) are connected to the integrated electronic control (13) by wires. The integrated electronic control (13) is connected to the flow valve (7), motor two (17), solenoid valve, motor three (27) and electromagnet (30) by wires.
Citation Information
Patent Citations
Novel building intelligent integration module device
CN106647577A
An integrated display screen for fault self-diagnosis of diesel locomotives
CN113867231B