Intelligent temperature control milk pasteurization device
By using a modular heating plate and a servo motor-driven screw system, the capacity of the milk pasteurization device is intelligently adjusted, solving the problem that existing devices cannot adapt to the amount of milk, achieving more efficient heating and cooling control, and improving energy efficiency.
Patent Information
- Application Number
- CN202511171424.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-20
- Publication Date
- 2025-11-25
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing milk pasteurization equipment cannot adjust the capacity of the sterilization unit according to the amount of milk, resulting in resource waste and insufficient energy efficiency.
It adopts a modular heating plate design, combined with a servo motor drive screw and slide system. The rotation of the screw drives the slide and upright plate to move, adjusting the accommodating space of the built-in slot and accommodating cavity. With the help of temperature sensors and water pumps, the heating and cooling process is controlled to achieve the adaptation of the accommodating space.
It enables flexible adjustment of heating or cooling space based on milk volume, improves energy efficiency, avoids resource waste in unused areas, and achieves more efficient milk pasteurization.
Smart Images

Figure CN121003244A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of milk pasteurization, in particular to an intelligent temperature control milk pasteurization device. BACKGROUND
[0002] Milk is the milk squeezed from female cows, one of the oldest natural beverages, known as white blood [1]. Milk is a uniform fluid, with inherent flavor of milk, sweet and mellow taste, and has the effects of supplementing protein, calcium, calming and so on. Before drinking milk, it needs to be pasteurized. Pasteurization is a process of killing pathogenic microorganisms in milk by heating while retaining nutrients as much as possible.
[0003] At present, the milk pasteurization device cannot adjust the containing space of the pasteurization device according to the amount of milk, so that when small capacity milk is pasteurized, all the heating plates need to be started, which wastes resources, and cannot be adjusted adaptively according to the amount of milk, which is not energy-saving and efficient.
[0004] Therefore, in view of the above, the existing structure and defects are improved, and an intelligent temperature control milk pasteurization device is provided. SUMMARY
[0005] In view of the deficiencies of the prior art, the present application provides an intelligent temperature control milk pasteurization device, which solves the problems raised in the background art.
[0006] To achieve the above purpose, the following technical scheme is adopted: an intelligent temperature control milk pasteurization device, comprising an outer frame and a threaded connection pipe, an inner groove is arranged in the inner part of the outer frame, a containing cavity is installed in the middle part of the outer frame, and an inner plate is arranged in the inner part of the containing cavity, a connecting vertical plate is installed on one side of the outer surface of the inner plate, and a connecting assembly for auxiliary movement is arranged on the top of the connecting vertical plate, the connecting assembly comprises a top plate, a drive assembly for volume adjustment is installed at one end of the top plate, the drive assembly comprises a servo motor, a lead screw, a sliding seat and a vertical plate, a lead screw is installed at the output end of the servo motor, a sliding seat is arranged on the outer surface of the lead screw, and vertical plates are installed on both sides of the sliding seat, a heating plate is arranged on the outer surface of the inner groove in the inner part of the outer frame, a reserved cover is threadedly connected to both sides of the inner part of the outer frame, the threaded connection pipe is threadedly arranged on both sides of the outer frame, a water pump is installed at one end of the threaded connection pipe, a temperature sensor is installed on the outer surface of the inner plate, and a rubber layer is arranged on the outer surface of the top plate.
[0007] Further, a top cover is fixedly installed on the top of the outer frame by bolts, the inner part of the top cover is in a hollow structure, and the shape of the top cover is consistent with the shape of the inner groove.
[0008] Further, a closing cover is provided at the top of the accommodation cavity, and a threaded cover is installed inside the closing cover by threading, and an auxiliary frame is provided on one side inside the closing cover.
[0009] Further, there are two sets of the outer frames, and the structures of the two sets of outer frames are exactly the same.
[0010] Further, a base is provided at the bottom of the outer frame, and a fixing plate is installed between the two sets of outer frames.
[0011] Further, a servo motor is provided in the middle of the fixing plate, and a lead screw is rotatably installed inside the fixing plate.
[0012] Further, an external plate is provided inside the built-in groove, and the external plate has a "mouth" - shaped structure.
[0013] Further, the connection component further includes a first connecting plate and a second connecting plate, and the second connecting plate is slidably arranged at the bottom of the first connecting plate.
[0014] Further, a transfer plate is fixedly installed at the top of the first connecting plate through bolts, and a vertical plate is installed at one end of the transfer plate.
[0015] Further, ultraviolet disinfection lamps are provided on both sides and the top of the inner wall of the auxiliary frame, and a connecting vertical plate is slidably installed inside the auxiliary frame.
[0016] The present invention provides an intelligent temperature - controlled milk pasteurization device, which has the following beneficial effects:
[0017] 1. For the intelligent temperature - controlled milk pasteurization device, the heating plates are modularly designed, and each module can be independently controlled, which is convenient for adapting the heating according to the milk volume area, more energy - saving, and can avoid the heating of the heating plates in the area without milk. Through the design of the servo motor, the lead screw can be driven to rotate. Through the rotation of the lead screw, the slide seat can be driven to move up or down, and the vertical plate connected to the slide seat moves accordingly. Thus, the top plate and the connecting vertical plate connected to the vertical plate move accordingly. When the external plate at the bottom of the connecting vertical plate moves upward in the built - in groove, the accommodation space inside the built - in groove can be reduced, which is beneficial to adjusting the size of the water area for heating or cooling space, and is convenient for the accommodation space of the built-in groove to adapt to the accommodation space of the accommodation cavity.
[0018] 2. This intelligent temperature-controlled milk pasteurization device uses a lead screw to rotate a sliding block, causing it to move up or down. The vertical plate connected to the sliding block moves accordingly, as do the top plate and connecting vertical plate. This causes the outer plate at the bottom of the connecting vertical plate to move downwards within the internal tank. As the outer plate moves downwards, the internal tank's capacity increases, facilitating a larger heating or cooling area. Simultaneously, the design of the first connecting plate, second connecting plate, and adapter plate synchronously moves the internal plate within the tank downwards, adjusting the capacity of the tank and internal tank. This allows the heating or cooling space to be matched to the milk volume, facilitating pasteurization. The synchronized adjustment of the heating or cooling space to the milk volume effectively improves the efficiency of milk pasteurization.
[0019] 3. This intelligent temperature-controlled milk pasteurization device can extract heated water from the built-in tank using a threaded connecting pipe and a water pump design. With the temperature monitoring of a temperature sensor, which is connected to the water pump control via a solenoid valve, the water pump can be turned on or off when the temperature reaches the preset value. This facilitates heating and cooling of the container and allows for easy adjustment according to usage needs. In addition, the threaded connecting pipe is threaded to the reserved opening on the outer frame, allowing users to adapt the installation according to the required water inlet height. The reserved opening that is not in use is closed with a reserved cap thread. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the overall structure of an intelligent temperature-controlled milk pasteurization device according to the present invention.
[0021] Figure 2 This is a schematic diagram of the drive component structure of an intelligent temperature-controlled milk pasteurization device according to the present invention.
[0022] Figure 3 This is a schematic diagram of the connection components of an intelligent temperature-controlled milk pasteurization device according to the present invention.
[0023] Figure 4 This is a schematic cross-sectional view of the outer frame of an intelligent temperature-controlled milk pasteurization device according to the present invention.
[0024] Figure 5 This is a schematic diagram of the connection and distribution structure of the built-in plate and the external plate of the intelligent temperature-controlled milk pasteurization device of the present invention.
[0025] Figure 6 This is a schematic cross-sectional view of the auxiliary frame structure of an intelligent temperature-controlled milk pasteurization device according to the present invention.
[0026] In the diagram: 1. Outer frame; 2. Top cover; 3. Sealing cover; 4. Threaded cover; 5. Base; 6. Threaded connecting pipe; 7. Water pump; 8. Reserved cover; 9. Drive assembly; 901. Servo motor; 902. Lead screw; 903. Slide; 904. Vertical plate; 10. Connecting assembly; 1001. First connecting plate; 1002. Second connecting plate; 1003. Top plate; 11. Auxiliary frame; 12. Built-in groove; 13. Temperature sensor; 14. Built-in plate; 15. External plate; 16. Connecting vertical plate; 17. Ultraviolet disinfection lamp; 18. Heating plate; 19. Fixing plate; 20. Adapter plate; 21. Receiving cavity; 22. Rubber layer. Detailed Implementation
[0027] The embodiments of the present invention will be described in further detail below with reference to the accompanying drawings and examples. The following examples are for illustrative purposes only and should not be construed as limiting the scope of the invention.
[0028] like Figures 1-6As shown in the figure, the present invention provides a technical solution: an intelligent temperature-controlled milk pasteurization device, including an outer frame 1, a top cover 2, a sealing cover 3, a threaded cover 4, a base 5, a threaded connecting pipe 6, a water pump 7, a reserved cover 8, a driving component 9, a servo motor 901, a screw rod 902, a sliding seat 903, a vertical plate 904, a connecting component 10, a first connecting plate 1001, a second connecting plate 1002, a top plate 1003, an auxiliary frame 11, an internal groove 12, a temperature sensor 13, an internal plate 14, an external plate 15, a connecting vertical plate 16, an ultraviolet disinfection lamp 17, a heating plate 18, a fixing plate 19, a transfer plate 20, a receiving cavity 21 and a rubber layer 22. An internal groove 12 is provided inside the outer frame 1, and an external plate 15 is provided inside the internal groove 12, and the external plate 15 is in a "mouth" - shaped structure. The top of the outer frame 1 is fixedly installed with a top cover 2 through bolts, and the inside of the top cover 2 is in a hollow structure, and the shape of the top cover 2 is the same as that of the internal groove 12. The bottom of the outer frame 1 is provided with a base 5. A fixing plate 19 is installed between two outer frames 1. A servo motor 901 is provided in the middle of the fixing plate 19, and a screw rod 902 is rotatably installed inside the fixing plate 19. There are two outer frames 1, and the structures of the two outer frames 1 are exactly the same. The two outer frames 1 are convenient for synchronously placing different kinds of milk for sterilization treatment. At the same time, the two outer frames 1 are convenient for synchronously adjusting the water area heating or cooling space to adapt to the milk volume. A receiving cavity 21 is installed in the middle of the outer frame 1, and an internal plate 14 is provided inside the receiving cavity 21. A sealing cover 3 is provided at the top of the receiving cavity ...... It should be noted that the original text seems to be incomplete in the English translation part. The content after "a sealing cover 3 is provided at the top of the receiving cavity ......" is missing in the original Chinese text you provided. If you can complete the original text accurately, I can provide a more complete and accurate translation.For easy adjustment according to usage needs, the threaded connecting pipe 6 is threaded to the reserved port in the outer frame 1, allowing users to adapt the installation according to the required water inlet height. Unused reserved ports are sealed by the threaded cover 8. A temperature sensor 13 is installed on the outer surface of the inner plate 14, and a rubber layer 22 is provided on the outer surface of the top plate 1003. Rotating the threaded cover 4 opens the milk inlet, facilitating the injection of milk into the receiving cavity 21. The electric heating design of the heating plate 18 heats the milk in the receiving cavity 21, and the heating temperature can be monitored by the temperature sensor 13, allowing for continued or paused heating using the heating plate 18 based on the monitored temperature. The 18 module features a modular design, with each module capable of independent control. This allows for customized heating based on milk volume, resulting in greater energy savings and preventing heating of areas without milk. The servo motor 901 drives the lead screw 902, which in turn moves the slide 903 up or down. The vertical plate 904 connected to the slide 903 moves accordingly, causing the top plate 1003 and connecting vertical plate 16 connected to it to move as well. This causes the outer plate 15 at the bottom of the connecting vertical plate 16 to move upwards within the internal groove 12. As the outer plate 15 moves upwards, the internal space of the internal groove 12 decreases, facilitating adjustments to the heating or cooling space of the water. The size is designed to accommodate the space of the built-in groove 12 and the space of the receiving cavity 21. When the outer plate 15 moves upward, the design of the first connecting plate 1001, the second connecting plate 1002, and the adapter plate 20 can simultaneously move the built-in plate 14 inside the receiving cavity 21 upward, and simultaneously adjust the space in the receiving cavity 21 and the built-in groove 12. This facilitates the adaptation of the water heating or cooling space to the milk capacity, and facilitates the pasteurization of the milk. Conversely, when the screw 902 is rotated in the opposite direction, the rotation of the screw 902 can drive the slide 903 to move up or down, and the vertical plate 904 connected to the slide 903 moves accordingly. As a result, the top plate 1003 and the connecting vertical plate 16 connected to the vertical plate 904 move accordingly, thus... The outer plate 15 at the bottom of the connecting plate 16 moves downward within the inner groove 12. This downward movement of the outer plate 15 increases the internal space of the inner groove 12, facilitating a larger heating or cooling area for the receiving cavity 21. Simultaneously, the design of the first connecting plate 1001, the second connecting plate 1002, and the adapter plate 20 synchronously moves the inner plate 14 within the receiving cavity 21 downward, adjusting the space within the receiving cavity 21 and the inner groove 12. This allows the heating or cooling space to be matched with the milk volume, facilitating pasteurization. The synchronized adjustment of the heating or cooling space to the milk volume effectively improves the efficiency of milk pasteurization.
[0029] like Figure 1 , Figure 2 andFigure 6 As shown, the connecting assembly 10 also includes a first connecting plate 1001 and a second connecting plate 1002. The second connecting plate 1002 is slidably disposed on the bottom of the first connecting plate 1001. An adapter plate 20 is fixedly installed on the top of the first connecting plate 1001 by bolts. A vertical plate 904 is installed on one end of the adapter plate 20. Ultraviolet disinfection lamps 17 are provided on both sides and the top of the inner wall of the auxiliary frame 11. A connecting vertical plate 16 is slidably installed inside the auxiliary frame 11. When the top plate 1003 and the connecting vertical plate 16 move up or down due to the rotation of the screw 902, the entire connecting vertical plate 16 can be moved. Inside the auxiliary frame 11, an ultraviolet disinfection lamp 17 is installed. The ultraviolet disinfection lamp 17 can be used to sterilize the connecting plate 16. In addition, when the connecting plate 16 and the top plate 1003 move up or down, the rubber layer 22 connected to the top plate 1003 moves accordingly. The rubber layer 22 is fixed to the auxiliary frame 11, which makes it easy to ensure that the auxiliary frame 11 is kept in a closed state when the top plate 1003 is moved or when it moves, so as to avoid contamination of the milk when adjusting the capacity of the receiving cavity 21.
[0030] In summary, as Figures 1-6As shown, this intelligent temperature-controlled milk pasteurization device allows for the simultaneous placement of different types of milk for pasteurization using two sets of outer frames 1. Simultaneously, the two sets of outer frames 1 facilitate the simultaneous adjustment of the heating or cooling space to match the milk volume. During operation, rotating the threaded cap 4 opens the milk inlet, allowing milk to be injected into the receiving cavity 21. The heating plate 18, with its electric heating design, heats the milk in the receiving cavity 21. The heating temperature is monitored by a temperature sensor 13, allowing for adjustment of heating frequency based on the monitored temperature. Furthermore, the heating plate 18 features a modular design, with each module capable of independent control, facilitating heating adaptation to different milk volume areas and resulting in greater energy efficiency. To prevent heating of the heating plate 18 in areas without milk, a servo motor 901 drives a lead screw 902 to rotate. The rotation of the lead screw 902 moves the slide 903 up or down, and the vertical plate 904 connected to the slide 903 moves accordingly. This causes the top plate 1003 and connecting vertical plate 16 connected to the vertical plate 904 to move as well. Consequently, the outer plate 15 at the bottom of the connecting vertical plate 16 moves upward within the internal groove 12. As the outer plate 15 moves upward, the internal space of the internal groove 12 decreases, facilitating adjustments to the heating or cooling space of the water area. This allows the internal groove 12 to adapt to the internal cavity 21. When the outer plate 15 moves upward, the first connecting plate 1001 and the second connecting plate 1001 can be used to... The design of 002 and the adapter plate 20 synchronously drives the built-in plate 14 inside the receiving cavity 21 to move upward, and synchronously adjusts the receiving space in the receiving cavity 21 and the built-in groove 12, so as to adapt the heating or cooling space of the water to the milk capacity, and facilitate the pasteurization of the milk. Conversely, when the lead screw 902 is rotated in the opposite direction, the rotation of the lead screw 902 can drive the slide 903 to move up or down, and the vertical plate 904 connected to the slide 903 moves accordingly. As a result, the top plate 1003 and the connecting vertical plate 16 connected to the vertical plate 904 move accordingly, so that the outer plate 15 at the bottom of the connecting vertical plate 16 will move downward in the built-in groove 12. When the outer plate 15 moves downward, the receiving space inside the built-in groove 12 can be increased, which can facilitate the expansion of the heating or cooling of the receiving cavity 21. While reducing the surface area, the design of the first connecting plate 1001, the second connecting plate 1002, and the adapter plate 20 simultaneously move the inner plate 14 inside the receiving cavity 21 downwards, adjusting the receiving space in the receiving cavity 21 and the inner tank 12. This facilitates the adaptation of the water heating or cooling space to the milk volume, enabling pasteurization of the milk. The synchronized adjustment of the water heating or cooling space to the milk volume effectively improves the energy efficiency of pasteurization. During heating and cooling, water can be injected into the inner tank 12 through the design of water pipes, water pump 7, and threaded connecting pipe 6. The heating plate 18 can then heat the water in the inner tank 12, and the heating temperature can be monitored using a temperature sensor 13.When milk needs to be cooled after heating, the heated water in the built-in tank 12 can be extracted using the threaded connecting pipe 6 and the water pump 7. Combined with temperature monitoring by the temperature sensor 13, which is connected to the water pump 7 via a solenoid valve, the water pump 7 can be activated or deactivated when the preset temperature is reached. This facilitates heating and cooling of the receiving cavity 21 and allows for easy adjustment according to usage needs. Furthermore, the threaded connecting pipe 6 is threaded to the reserved opening in the outer frame 1, allowing users to adapt the installation according to the required water inlet height. Unused reserved openings are sealed with a threaded cap 8.
[0031] The embodiments of the present invention are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the invention to the forms disclosed. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described in order to better illustrate the principles and practical application of the invention, and to enable those skilled in the art to understand the invention and to design various embodiments with various modifications suitable for a particular purpose.
Claims
1. A smart temperature-controlled milk pasteurization device, comprising an outer frame (1) and a threaded connecting pipe (6), characterized in that: Inside the outer frame (1), there is a built-in groove (12). In the middle of the outer frame (1), there is an accommodation cavity (21), and inside the accommodation cavity (21), there is a built-in plate (14). On one side outer surface of the built-in plate (14), there is a connecting vertical plate (16), and at the top of the connecting vertical plate (16), there is a connecting component (10) for assisting movement. The connecting component (10) includes a top plate (1003), and at one end of the top plate (1003), there is a driving component (9) for adjusting the volume. The driving component (9) includes a servo motor (901), a丝杆 (902), a sliding seat (903), and a vertical plate (904). The output end of the servo motor (901) is equipped with a丝杆 (902). The outer surface of the丝杆 (902) has a sliding seat (903), and vertical plates (904) are installed on both sides of the sliding seat (903). On the outer surface of the outer frame (1) near the built-in groove (12), there is a heating plate (18). On both sides inside the outer frame (1), there is a reserved cover (8) screwed on. The threaded connecting pipe (6) is threaded on both sides of the outer frame (1), and at one end of the threaded connecting pipe (6), there is a water pump (7). On the outer surface of the built-in plate (14), there is a temperature sensor (13). On the outer surface of the top plate (1003), there is a rubber layer (22).
2. The intelligent temperature-controlled milk pasteurization device according to claim 1, characterized in that: At the top of the outer frame (1), there is a top cover (2) fixedly installed by bolts. The inside of the top cover (2) is of a hollow structure, and the shape of the top cover (2) is the same as that of the built-in groove (12).
3. The intelligent temperature-controlled milk pasteurization device according to claim 1, characterized in that: At the top of the accommodation cavity (21), there is a closed cover (3), and inside the closed cover (3), there is a threaded cover (4) screwed on. On one side inside the closed cover (3), there is an auxiliary frame (11).
4. The intelligent temperature-controlled milk pasteurization device according to claim 1, characterized in that: There are two sets of the outer frame (1), and the structures of the two sets of the outer frame (1) are exactly the same.
5. The intelligent temperature-controlled milk pasteurization device according to claim 4, characterized in that: At the bottom of the outer frame (1), there is a base (5). Between the two sets of the outer frame (1), there is a fixing plate (19).
6. The intelligent temperature-controlled milk pasteurization device according to claim 5, characterized in that: In the middle of the fixing plate (a), there is a servo motor (901). Inside the fixing plate (19), there is a丝杆 (902) rotatably installed.
7. The intelligent temperature-controlled milk pasteurization device according to claim 1, characterized in that: Inside the built-in groove (12), there is an external plate (15), and the external plate (15) is in a "mouth" - shaped structure.
8. The intelligent temperature-controlled milk pasteurization device according to claim 1, characterized in that: The connecting component (10) further includes a first connecting plate (1001) and a second connecting plate (1002), and the second connecting plate (1002) is slidably arranged at the bottom of the first connecting plate (1001).
9. The intelligent temperature-controlled milk pasteurization device according to claim 8, characterized in that: At the top of the first connecting plate (1001), there is a transfer plate (20) fixedly installed by bolts, and at one end of the transfer plate (20), there is a vertical plate (904).
10. The intelligent temperature-controlled milk pasteurization device according to claim 3, characterized in that: On both sides and the top of the inner wall of the auxiliary frame (11), there are ultraviolet disinfection lamps (17), and inside the auxiliary frame (11), there is a connecting vertical plate (16) slidably installed.
Citation Information
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