Anti-residue full cream koumiss powder canning equipment and use method
Through the design of the anti-residue and discharge device, the problem of floating and residual whole-fat horse milk powder floating during the loading process is solved, and quantitative loading and efficient milk powder canning process are realized.
Patent Information
- Application Number
- CN202510716576.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-30
- Publication Date
- 2025-07-08
AI Technical Summary
The existing whole-fat sour horse milk powder canning equipment can easily cause milk powder to float up during the loading process, causing residues and waste, and at the same time, it is impossible to adjust the amount of milk cans.
The anti-residue flutter device and the discharge device are adopted, and quantitative loading and avoiding residues are achieved through the exhaust and rotary scraping bar structure, combined with the filter plate and the pneumatic telescopic rod.
It effectively avoids the floating and residue of whole-fat acid horse milk powder, realizes quantitative loading, reduces waste and cleaning workload, and improves loading efficiency.
Smart Images

Figure CN120270580A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of milk powder production and canning, and particularly to an anti-residue whole-fat kumiss milk powder canning device and a usage method thereof. Background Art
[0002] A patent application with the publication number CN116767590A discloses a milk powder production and canning device facilitating the treatment of milk powder residue, including a bottom plate. A bracket is fixedly arranged at the upper end of the bottom plate, and a machine body is installed on the bracket. A feeding mechanism is arranged on the machine body, and a spiral feeding rod is arranged on the feeding mechanism. One side of the upper end of the spiral feeding rod is fixedly provided with a scraper, and the scraper abuts against the inner side wall of the machine body. The spiral feeding rod is arranged inside the machine body, and a connecting shaft is rotatably sleeved in the middle of the upper end of the machine body. The present invention can freely move the storage device, making the storage device more convenient during handling and use. At the same time, the stability of the storage device can be ensured, and the situation that the milk powder blocks the discharge pipe during discharging can be effectively prevented, making the milk powder more smooth during discharging, and the discharging efficiency of the milk powder can be increased.
[0003] Nutritional research shows that kumiss is closest to human breast milk and has very high nutritional value. Compared with cow milk, kumiss also has much higher nutritional value. Acid kumiss is a beverage fermented from kumiss milk, which further improves the nutritional value of kumiss milk. Its production steps mainly include low-temperature disinfection and sterilization of fresh kumiss milk, adding lactic acid bacteria or yeast for fermentation to obtain acid kumiss, treating the yogurt with two layers of film, then performing low-temperature distillation and concentration, and finally obtaining the end product - whole-fat acid kumiss milk powder through spray drying.
[0004] In the prior art including the above patent, when the produced whole-fat acid kumiss milk powder falls into the milk tank during loading, the gas pressure at the lower end increases due to the gas pressure of the upper whole-fat acid kumiss milk powder falling, resulting in the upward movement of the lower-end gas and driving a small amount of whole-fat acid kumiss milk powder to float. The floating whole-fat acid kumiss milk powder will stain the outside of the tank, causing residue and waste of a small amount of milk powder. At the same time, the existing whole-fat acid kumiss milk powder canning equipment cannot adjust the amount loaded into the milk tank.
[0005] Therefore, an anti-residue whole-fat acid kumiss milk powder canning device and a usage method thereof are needed to solve the above problems. Summary of the Invention
[0006] The purpose of the present invention is to provide an anti-residue whole-fat acid kumiss milk powder canning device and a usage method thereof to solve the technical problems raised in the above background art.
[0007] To achieve the above object, the present invention provides the following technical solutions: An anti-residue whole-fat acid horse milk powder canning device and its use method, including a loading tank, a first blanking pipe is provided at the bottom of the loading tank, a first blanking port is opened on the first blanking pipe, the blanking port is communicated with an anti-residue overflow prevention device, a top cover is provided at the top of the loading tank, an anti-residue discharging device is installed on the top cover, and the outer circle of the first blanking pipe is connected to a docking device.
[0008] Preferably, the anti-residue overflow prevention device includes a second blanking pipe, a second blanking port is opened on the second blanking pipe, the second blanking port is communicated with the first blanking port, an anti-overflow port is opened at the bottom of the second blanking pipe away from the second blanking port, the anti-overflow port is slidably connected to a unidirectional air intake structure, a first filter plate is arranged above a plurality of the unidirectional air intake structures, the first filter plate is connected to the inner wall of the second blanking pipe, a perforation is opened in the second blanking pipe above the first filter plate, the perforation is communicated with one end of an air extraction pipe, an exhaust hole is opened at the upper end of the perforation, the exhaust hole is communicated with a unidirectional exhaust structure, the other end of the air extraction pipe is communicated with the bottom of an air extraction tank, the inner wall of the air extraction tank is slidably connected to an air extraction piston, the top of the air extraction piston is connected to the output end of a first electric push rod, and the first electric push rod is connected to the air extraction tank Preferably, the anti-residue discharging device includes a motor, the motor is connected to the top cover, the output end of the motor passes through the top cover and is connected to a first discharging plate, the outer circle of the output end of the motor is connected to both ends of symmetrically arranged scraping bars, the scraping bars are in sliding contact with the inner wall of the loading tank, hexagonal holes are opened in the output end of the motor and the first discharging plate, the hexagonal holes are in transmission connection with a hexagonal rod, and the bottom of the hexagonal rod is connected to a second discharging plate.
[0009] Preferably, a through circular hole is opened in the hexagonal rod, a threaded hole is opened at the bottom of the hexagonal hole at the output end of the motor, one end of an adjusting screw rod is rotatably connected to the second discharging plate, the other end of the adjusting screw rod passes through the circular hole and is in threaded connection with the threaded hole, guide rail bars are symmetrically arranged at the top of the second discharging plate, the guide rail bars are rotatably connected to the second blanking pipe, the bottom of the first discharging plate is in rotational contact with the top of the first blanking pipe, and the top of the second blanking plate is in rotational contact with the bottom of the second blanking pipe.
[0010] Preferably, a pipe orifice is opened at the top of the top cover, the inner circle of the bottom of the pipe orifice is connected to a second filter plate, a leakage hole is opened in the middle of the second filter plate, the leakage hole is connected to the outer circle of a rubber port, the top of the pipe orifice is snap-connected to a sealing cover, and arc-shaped grooves are symmetrically opened in the top cover.
[0011] Preferably, the docking device includes an annular tube, the inner ring of the annular tube is connected to the outer ring of the first feeding tube, the bottom of the annular tube is connected to equidistant and vertically arranged pneumatic telescopic rods, the output end of the pneumatic telescopic rods is connected to a rubber cover, the annular tube is connected to one end of the air intake pipe, the other end of the air intake pipe is connected to the bottom of the air intake tank, the inner wall of the air intake tank is slidably connected to the outer ring of the air intake piston, the top of the air intake piston is connected to the output end of the second electric push rod, and the second electric push rod is connected to the air intake tank.
[0012] Preferably, a canning device and a method for using the canned full-fat acid horse milk powder to prevent residual fat comprises the following steps: S1: When loading, a small amount of whole-fat acid mare's milk powder that floats up is driven by the first electric push rod to move the vacuum piston upward to drive the vacuum, and then the vacuum pipe and the one-way air intake structure open the anti-splash port to vacuum, so that the floating whole-fat acid mare's milk powder is collected and stored in the second discharge pipe between the first filter plate and the one-way air intake structure, thereby further avoiding that when the whole-fat acid mare's milk powder falls into the milk tank, the gas at the lower end is increased by the gas pressure of the falling whole-fat acid mare's milk powder at the upper end, causing the gas at the lower end to move upward and drive a small amount of whole-fat acid mare's milk powder to float up, causing the floating whole-fat acid mare's milk powder to touch the outer edge of the tank after loading is completed, causing residue and a small amount of milk powder to be wasted, further saving workload while collecting the small amount of wasted whole-fat acid mare's milk powder, and the one-way exhaust structure can discharge the drawn gas when the first electric push rod is reset, without bringing out a small amount of collected whole-fat acid mare's milk powder.
[0013] S2: The output end is driven by the motor to rotate at a fixed value of 90 degrees, so that the output end can drive the second discharge plate and the first discharge plate to rotate 90 degrees. When the upper end of the first discharge plate causes the first discharge port and the second discharge port to open, the second discharge plate will cause the first discharge port and the second discharge port to be closed, so that the first discharge port and the second discharge port are filled with full-fat acid mare's milk powder, thereby realizing quantitative loading of full-fat acid mare's milk powder into the milk tank. At the same time, during rotation, the scraper bar will rotate and scrape the inner wall of the loading tank to avoid residual full-fat acid mare's milk powder. By turning the adjusting screw, the guide bar of the second discharge plate will drive the second discharge pipe and the first discharge pipe to slide, thereby adjusting the volume of the second discharge port and the first discharge port, and further being able to load different amounts of full-fat acid mare's milk powder according to different milk tank sizes.
[0014] S3: By opening the top cover and then connecting the rubber port, the loading tank can be loaded with full-fat acid mare's milk powder. At the same time, the internal air pressure increases during loading. In order to avoid the floating full-fat acid mare's milk powder from being thrown out, the second filter plate can exhaust the air without discharging the floating full-fat acid mare's milk powder, thereby avoiding the pollution caused by residual full-fat acid mare's milk powder outside the loading tank; when the milk tank is located at the bottom of the second discharge port, the second electric push rod will push the air intake piston to move down along the inner wall of the air intake tank to intake air, and the air intake through the air intake pipe will cause the pneumatic telescopic rod to extend and retract to cover the upper end of the milk tank with the rubber cover, thereby avoiding the full-fat acid mare's milk powder from being thrown out during loading.
[0015] Compared with the prior art, the present invention has the following beneficial effects: (1) In order to avoid residual whole-fat acid-marine milk powder, a small amount of whole-fat acid-marine milk powder that floats up during loading is driven by the first electric push rod to move the air pump piston upward to drive the air pumping, and then the air pumping pipe and the one-way air intake structure open the anti-splash port to pump air, so that the floating whole-fat acid-marine milk powder is collected and stored in the second discharge pipe between the first filter plate and the one-way air intake structure, thereby further preventing the whole-fat acid-marine milk powder from falling into the milk tank. The gas at the lower end is increased by the pressure of the gas at the upper end. A small amount of full-fat acid-marine milk powder is driven to float, so that after loading is completed, the floating full-fat acid-marine milk powder touches the outer edge of the tank, causing residue and a small amount of milk powder to be wasted. The structure further saves the cleaning workload while collecting the small amount of wasted full-fat acid-marine milk powder. At the same time, the one-way exhaust structure can discharge the drawn air when the first electric push rod is reset, and the first filter plate uses a 200-mesh microporous filter plate, so that the full-fat acid-marine milk powder can be filtered without bringing out a small amount of collected full-fat acid-marine milk powder. (2) The output end is driven by the motor to rotate at a fixed value of 90 degrees, so that the output end can drive the second discharge plate and the first discharge plate to rotate 90 degrees. When the upper end of the first discharge plate causes the first discharge port and the second discharge port to open, the second discharge plate causes the first discharge port and the second discharge port to close, so that the first discharge port and the second discharge port are filled with full-fat acid horse milk powder, thereby realizing quantitative loading of full-fat acid horse milk powder into the milk tank. At the same time, the scraper bar will rotate and scrape the inner wall of the loading tank to avoid residual full-fat acid horse milk powder. By rotating the adjusting screw, the guide bar of the second discharge plate will drive the second discharge pipe and the first discharge pipe to slide, thereby adjusting the volume of the second discharge port and the first discharge port, and further being able to load different amounts of full-fat acid horse milk powder according to different milk tank sizes; (3) By opening the top cover and then docking the rubber port, the loading tank can be loaded with whole-fat acid horse milk powder. At the same time, the internal air pressure increases during loading. To prevent the floating whole-fat acid horse milk powder from spilling out, the second filter plate can exhaust and filter the floating whole-fat acid horse milk powder, and at the same time, it will not discharge the floating whole-fat acid horse milk powder, thus avoiding pollution caused by the residue of whole-fat acid horse milk powder outside the loading tank. And the second filter plate () is preferably a micro-hole filter plate with [specific number] meshes, so as to filter the whole-fat acid horse milk powder. Brief Description of the Drawings
[0016] Figure 1 It is a schematic structural diagram of the whole invention; Figure 2 It is a schematic structural diagram of the first part of the invention; Figure 3 It is a schematic structural diagram of the first blanking pipe and the second blanking pipe of the invention; Figure 4 It is a schematic structural diagram of the anti-residue and anti-spill device in the invention; Figure 5 It is a partial cross-sectional view of the anti-residue and anti-spill device in the invention; Figure 6 It is a schematic structural diagram of the anti-residue discharging device in the invention; Figure 7 It is Figure 6 The enlarged view at B in Figure 8 It is Figure 2 The enlarged view at A in Figure 9 It is a schematic structural diagram of the top cover in the invention; Figure 10 It is a schematic structural diagram of the docking device in the invention.
[0017] In the figure: 1 - loading tank, 11 - first blanking pipe, 12 - first blanking port, 2 - anti-residue and anti-spill device, 21 - second blanking pipe, 22 - second blanking port, 23 - first filter plate, 24 - anti-spill port, 241 - one-way air intake structure, 25 - air extraction pipe, 26 - air extraction tank, 27 - air extraction piston, 28 - first electric push rod, 29 - one-way exhaust structure, 3 - top cover, 31 - pipe orifice, 32 - second filter plate, 33 - rubber port, 34 - sealing cover, 341 - arc groove, 4 - anti-residue discharging device, 41 - motor, 42 - scraping strip, 43 - first discharging plate, 44 - hexagonal rod, 45 - second discharging plate, 451 - guide rail strip, 46 - adjusting screw, 5 - docking device, 51 - annular pipe, 52 - pneumatic telescopic rod, 53 - rubber cover, 54 - second electric push rod, 55 - air intake tank, 56 - air intake pipe. Detailed Description of the Invention
[0018] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0019] Please refer to Figure 1-10 , a technical solution provided by the present invention: an anti-residue whole-fat acid horse milk powder canning device and a usage method thereof, including a loading tank 1, in which whole-fat acid horse milk powder is loaded. A first discharge pipe 11 is provided at the bottom of the loading tank 1, and a first discharge opening 12 is opened in the first discharge pipe 11. The discharge opening is communicated with an anti-residue and spill prevention device 2. A top cover 3 is provided at the top of the loading tank 1, and an anti-residue discharge device 4 is installed on the top cover 3. The outer circle of the first discharge pipe 11 is connected to a docking device 5.
[0020] The anti-residue ejection device 2 includes a second discharge pipe 21, the second discharge pipe 21 is provided with a second discharge port 22, the second discharge port 22 is connected with the first discharge port 12, and an anti-pouring port 24 is provided at the bottom of the second discharge pipe 21 away from the second discharge port 22. The anti-pouring port 24 is slidably connected with a one-way air intake structure 241. The one-way air intake structure 241 is a block, a symmetrically arranged connecting rod and a symmetrically arranged spring. The block is located at the upper end of the anti-pouring port 24, the connecting rod is slidably connected to the inner wall of the anti-pouring port 24, and the springs are symmetrically arranged at the lower end of the anti-pouring port 24, and the two springs are respectively sleeved on the outer rings of the two connecting rods. The one-way air intake structure 241 is composed of a stopper, a symmetrically arranged connecting rod and a symmetrically arranged spring. The stopper is located at the upper end of the anti-pouring port 24, the connecting rod is slidably connected to the inner wall of the anti-pouring port 24, and the springs are symmetrically arranged at the lower end of the anti-pouring port 24, and the two springs are respectively sleeved on the outer rings of the two connecting rods. A first filter plate 23 is arranged above the air structure 241, and the first filter plate 23 is connected to the inner wall of the second feed pipe 21. A perforation is arranged in the second feed pipe 21 above the first filter plate 23, and the perforation is connected to one end of the air extraction pipe 25. An exhaust hole is arranged at the upper end of the perforation, and the exhaust hole is connected to the one-way exhaust structure 29. The one-way exhaust structure 29 includes a slider and a spring. The slider has an exhaust groove, and the exhaust hole is slidably connected to one end of the slider, and the other end of the slider is connected to one end of the spring, and the other end of the spring is connected to the outer wall of the second feed pipe 21. The other end of the air extraction pipe 25 is connected to the bottom of the air extraction tank 26, and the inner wall of the air extraction tank 26 is connected to the air extraction tank 26. The piston 27 is slidably connected, and the top of the air-extracting piston 27 is connected to the output end of the first electric push rod 28, and the first electric push rod 28 is connected to the air-extracting tank 26. When loading, a small amount of full-fat acid horse milk powder floating up is driven by the first electric push rod 28 to move the air-extracting piston 27 upward to drive the air extraction, and then the anti-pouring port 24 is opened through the air extraction pipe 25 and the one-way air intake structure 241 to extract air, so that the floating full-fat acid horse milk powder is collected and entered into the second discharge pipe 21 between the first filter plate 23 and the one-way air intake structure 241 for storage, so as to further prevent the lower end gas from being affected by the upper when the full-fat acid horse milk powder falls into the milk tank. The gas pressure at the lower end increases as the full-fat acid mare's milk powder falls, causing the gas at the lower end to move upward, driving a small amount of full-fat acid mare's milk powder to float up, causing the floating full-fat acid mare's milk powder to touch the outer edge of the tank after loading, resulting in residue and a small amount of milk powder being wasted. The structure further saves the cleaning workload while collecting the small amount of wasted full-fat acid mare's milk powder. At the same time, the one-way exhaust structure 29 can discharge the drawn air when the first electric push rod 28 is reset, and the first filter plate 23 uses a 200-mesh microporous filter plate, so that the full-fat acid mare's milk powder can be filtered without bringing out a small amount of collected full-fat acid mare's milk powder.
[0021] The anti-residue discharging device 4 includes a motor 41. The motor 41 is connected to the top cover 3. The output end of the motor 41 passes through the top cover 3 and is connected to the first discharge plate 43. Both ends of the symmetrically arranged scraping bars 42 are connected to the outer circle of the output end of the motor 41. The scraping bars 42 are in sliding contact with the inner wall of the loading tank 1. Hexagonal holes are formed in both the output end of the motor 41 and the first discharge plate 43, and the hexagonal holes are in transmission connection with a hexagonal rod 44. The bottom of the hexagonal rod 44 is connected to the second discharge plate 45. By driving the output end of the motor 41 to rotate at a fixed value of 90 degrees, the output end can drive the second discharge plate 45 and the first discharge plate 43 to rotate 90 degrees. When the upper end of the first discharge plate 43 causes the first discharge opening 12 and the second discharge opening 22 to open, the second discharge plate 45 will cause the first discharge opening 12 and the second discharge opening 22 to close, so that the first discharge opening 12 and the second discharge opening 22 are filled with whole-fat acid horse milk powder, thereby realizing the quantitative loading of whole-fat acid horse milk powder into the milk tank. At the same time, when rotating, the scraping bars 42 will rotate and scrape the inner wall of the loading tank 1 to avoid residual whole-fat acid horse milk powder.
[0022] A through circular hole is formed in the hexagonal rod 44. A threaded hole is formed at the bottom of the hexagonal hole at the output end of the motor 41. One end of an adjusting screw rod 46 is rotatably connected to the second discharge plate 45. The other end of the adjusting screw rod 46 passes through the circular hole and is in threaded connection with the threaded hole. Guide rail bars 451 are symmetrically arranged at the top of the second discharge plate 45. The guide rail bars 451 are rotatably connected to the second discharge pipe 21. The bottom of the first discharge plate 43 is in rotational contact with the top of the first discharge pipe 11. The top of the second discharge plate is in rotational contact with the bottom of the second discharge pipe 21. By rotating the adjusting screw rod 46, the guide rail bars 451 of the second discharge plate 45 will drive the second discharge pipe 21 to slide between the first discharge pipe 11, so as to adjust the volume of the second discharge opening 22 and the first discharge opening 12, and further be able to load different amounts of whole-fat acid horse milk powder according to the sizes of different milk tanks.
[0023] A pipe opening 31 is formed at the top of the top cover 3. The inner circle at the bottom of the pipe opening 31 is connected to a second filter plate 32. A leakage hole is formed in the middle of the second filter plate 32, and the leakage hole is connected to the outer circle of a rubber port 33. The top of the pipe opening 31 is snap-connected to a cover 34. Arc-shaped grooves 341 are symmetrically formed in the top cover 3. By opening the top cover 3 and then docking the rubber port 33, the loading tank 1 can be loaded with whole-fat acid horse milk powder. At the same time, the internal air pressure increases during loading. To avoid the floating whole-fat acid horse milk powder from spilling out, the second filter plate 32 can exhaust and filter the floating whole-fat acid horse milk powder, and at the same time, it will not discharge the floating whole-fat acid horse milk powder, thus avoiding pollution caused by residual whole-fat acid horse milk powder outside the loading tank 1. And the second filter plate 32 is selected as a 200-mesh microporous filter plate, so as to filter the whole-fat acid horse milk powder.
[0024] The docking device 5 includes an annular pipe 51. The inner ring of the annular pipe 51 is connected to the outer ring of the first blanking pipe 11. The bottom of the annular pipe 51 is communicated with pneumatic telescopic rods 52 arranged equidistantly and vertically. The output end of the pneumatic telescopic rod 52 is connected to a rubber cover 53. One end of the annular pipe 51 is communicated with one end of an air inlet pipe 56, and the other end of the air inlet pipe 56 is communicated with the bottom of an air inlet tank 55. The inner wall of the air inlet tank 55 is slidably connected to the outer ring of an air inlet piston. The top of the air inlet piston is connected to the output end of a second electric push rod 54. The second electric push rod 54 is connected to the air inlet tank 55. When the milk tank is located at the bottom of the second blanking port 22, the second electric push rod 54 will push the lower edge of the air inlet piston to move downward along the inner wall of the air inlet tank 55 to intake air. The intake of air through the air inlet pipe 56 will cause the pneumatic telescopic rod 52 to expand and contract to cover the upper end of the milk tank with the rubber cover 53, thereby avoiding the spillage of whole-fat acid horse milk powder during loading.
[0025] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above exemplary embodiments, and the present invention can be implemented in other specific forms without departing from the spirit or basic characteristics of the present invention. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-restrictive. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be included in the present invention. Any reference signs in the claims should not be regarded as limiting the claimed claims.
Claims
1. A canned equipment for defatted whole-fat acidified mare milk powder, including a loading tank (1), characterized in that: A first discharge pipe (11) is provided at the bottom of the loading tank (1), a first discharge port (12) is formed in the first discharge pipe (11), the discharge port is communicated with an anti-residue and anti-spill device (2), a top cover (3) is provided at the top of the loading tank (1), an anti-residue discharging device (4) is installed on the top cover (3), and the outer ring of the first discharge pipe (11) is connected to a docking device (5).
2. The canned equipment for defatted whole-fat yak milk powder according to claim 1, characterized in that: The anti-residue and anti-spill device (2) includes a second discharge pipe (21), a second discharge port (22) is formed in the second discharge pipe (21), the second discharge port (22) is communicated with the first discharge port (12), an anti-spill port (24) is formed at the bottom of the second discharge pipe (21) far from the second discharge port (22), the anti-spill port (24) is slidably connected to a unidirectional air intake structure (241), a first filter plate (23) is arranged above the plurality of unidirectional air intake structures (241), the first filter plate (23) is connected to the inner wall of the second discharge pipe (21), a perforation is formed in the second discharge pipe (21) above the first filter plate (23), the perforation is communicated with one end of an air extraction pipe (25), an exhaust hole is formed at the upper end of the perforation, the exhaust hole is communicated with a unidirectional exhaust structure (29), the other end of the air extraction pipe (25) is communicated with the bottom of an air extraction tank (26), the inner wall of the air extraction tank (26) is slidably connected to an air extraction piston (27), the top of the air extraction piston (27) is connected to the output end of a first electric push rod (28), and the first electric push rod (28) is connected to the air extraction tank (26).
3. A canned equipment for defatted whole-fat acid mare milk powder according to claim 1, characterized in that: The anti-residue discharging device (4) includes a motor (41), the motor (41) is connected to the top cover (3), the output end of the motor (41) passes through the top cover (3) and is connected to a first discharge plate (43), the outer ring of the output end of the motor (41) is connected to the two ends of symmetrically arranged scraping bars (42), the scraping bars (42) are in sliding contact with the inner wall of the loading tank (1), hexagonal holes are formed in both the output end of the motor (41) and the first discharge plate (43), the hexagonal holes are in transmission connection with a hexagonal rod (44), and the bottom of the hexagonal rod (44) is connected to a second discharge plate (45).
4. A canned equipment for defatted whole-fat acidified mare milk powder according to claim 3, characterized in that: A through circular hole is formed in the hexagonal rod (44), a threaded hole is formed at the bottom of the hexagonal hole at the output end of the motor (41), one end of an adjusting screw rod (46) is rotatably connected to the second discharge plate (45), the other end of the adjusting screw rod (46) passes through the circular hole and is in threaded connection with the threaded hole, guide rail bars (451) are symmetrically arranged at the top of the second discharge plate (45), the guide rail bars (451) are rotatably connected to the second discharge pipe (21), the bottom of the first discharge plate (43) is in rotational contact with the top of the first discharge pipe (11), and the top of the second discharge plate is in rotational contact with the bottom of the second discharge pipe (21).
5. The canned equipment for defatted whole-fat acidified horse milk powder according to claim 1, characterized in that: A nozzle (31) is provided at the top of the top cover (3). The inner circle at the bottom of the nozzle (31) is connected to the second filter plate (32). A leakage hole is provided in the middle of the second filter plate (32), and the leakage hole is connected to the outer circle of the rubber port (33). The top of the nozzle (31) is snap-connected to the cover (34). Arc-shaped grooves (341) are symmetrically provided on the top cover (3).
6. The canned equipment for defatted whole-fat yak milk powder according to claim 1, characterized in that: The docking device (5) includes an annular pipe (51). The inner circle of the annular pipe (51) is connected to the outer circle of the first blanking pipe (11). The bottom of the annular pipe (51) is communicated with pneumatic telescopic rods (52) arranged at equal intervals and vertically. The output end of the pneumatic telescopic rod (52) is connected to a rubber cover (53). The annular pipe (51) is communicated with one end of an air inlet pipe (56), and the other end of the air inlet pipe (56) is communicated with the bottom of an air inlet tank (55). The inner wall of the air inlet tank (55) is slidably connected to the outer circle of the air inlet piston. The top of the air inlet piston is connected to the output end of a second electric push rod (54), and the second electric push rod (54) is connected to the air inlet tank (55).
7. The canned equipment for defatted whole-fat yak milk powder according to claim 1, characterized in that: The operation process steps are as follows: S1: When loading, a small amount of floating whole-fat acidified horse milk powder is sucked by driving the air extraction piston (27) to move upward by the first electric push rod (28). Then, air is extracted through the air extraction pipe (25) and the one-way air intake structure (241) to open the anti-flutter port (24), so as to collect the floating whole-fat acidified horse milk powder and store it in the second blanking pipe (21) between the first filter plate (23) and the one-way air intake structure (241). This further prevents the gas at the lower end from being pressurized by the gas falling from the upper end of the whole-fat acidified horse milk powder when it falls into the milk tank, resulting in the upward movement of the gas at the lower end and driving a small amount of whole-fat acidified horse milk powder to float. After loading, the floating whole-fat acidified horse milk powder contaminates the outside of the tank, causing residue and waste of a small amount of milk powder. While further saving workload, the wasted small amount of whole-fat acidified horse milk powder is collected, and the one-way exhaust structure (29) can discharge the sucked air when the first electric push rod (28) is reset, without bringing out a small amount of collected whole-fat acidified horse milk powder; S2: The output end is driven by the motor (41) to rotate at a fixed value of 90 degrees. As a result, the output end can drive the second discharge plate (45) and the first discharge plate (43) to rotate 90 degrees. When the upper end of the first discharge plate (43) causes the first discharge opening (12) and the second discharge opening (22) to open, the second discharge plate (45) will cause the first discharge opening (12) and the second discharge opening (22) to close, so that the first discharge opening (12) and the second discharge opening (22) are filled with whole-fat acid horse milk powder, thus realizing the quantitative loading of whole-fat acid horse milk powder into the milk tank. At the same time, when rotating, the scraping strip (42) will rotate and scrape the inner wall of the loading tank (1) to avoid the residue of whole-fat acid horse milk powder on the inner wall. By rotating the adjusting screw rod (46), the guide rail strip (451) of the second discharge plate (45) will drive the second discharge pipe (21) to slide between the first discharge pipe (11), so as to adjust the volume of the second discharge opening (22) and the first discharge opening (12), and further be able to load different amounts of whole-fat acid horse milk powder according to the sizes of different milk tanks; S3: By opening the top cover (3) and then docking the rubber port (33), the loading tank (1) can be loaded with whole-fat acid horse milk powder. At the same time, the internal air pressure increases during loading. To avoid the floating whole-fat acid horse milk powder from spilling out, the second filter plate (32) can exhaust air, and at the same time, it will not discharge the floating whole-fat acid horse milk powder, thus avoiding the pollution caused by the residue of whole-fat acid horse milk powder outside the loading tank (1); When the milk tank is at the bottom of the second discharge opening (22), the second electric push rod (54) will push the intake piston to move downward along the inner wall of the intake tank (55) for intake. The intake of the intake pipe (56) will cause the pneumatic telescopic rod (52) to expand and contract to cover the rubber cover (53) on the upper end of the milk tank, thus avoiding the spillage of whole-fat acid horse milk powder during loading.
Citation Information
Patent Citations
Milk powder production canning device facilitating milk powder residue treatment
CN116767590A