A quantitative canning device based on efficient sterilization of infant nutritional rice flour

By combining the cylinder and the positioning pin with the servo motor and UV sterilization component, the problems of rice flour spillage and incomplete disinfection during the canning process are solved, and efficient quantitative canning and disinfection of infant and young children's nutritious rice flour are achieved, avoiding waste and sticking.

CN115743669BActive Publication Date: 2025-09-05GANJIANG NEW DISTRICT LONGPING DIETARY NUTRITIONAL FOOD CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202211383098.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-11-07
Publication Date
2025-09-05
Estimated Expiration
2042-11-07

AI Technical Summary

Technical Problem

There is a certain distance between the existing device and the rice flour can, which causes the infant nutritional rice flour to easily spill out during the quantitative canning process, resulting in a waste of raw materials.

Method used

A cylinder telescopic rod is used to drive the movement of the protective tube, extending the discharge channel at the bottom of the powder can cavity, and the rice noodle can is positioned in combination with the positioning pin. The servo motor drives the transmission component and the UV ultraviolet sterilization component to realize the automatic entry and exit and double disinfection of the rice noodle can. The scraper is combined to prevent adhesion, ensuring the quantitative and disinfection effect of the rice noodle can.

Benefits of technology

Effectively prevent rice noodles from spilling, achieve quantitative and efficient disinfection of canned rice noodles, reduce raw material waste, improve disinfection efficiency, and prevent adhesion and blockage.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN115743669B_ABST
    Figure CN115743669B_ABST
Patent Text Reader

Abstract

The present invention relates to the technical field of quantitative canning of rice noodles, and in particular to a quantitative canning device based on the efficient sterilization of infant nutritional rice noodles. A quantitative canning device based on the efficient sterilization of infant nutritional rice noodles is provided, which can position a rice noodle can and prevent the rice noodles from spilling out during canning, thereby causing waste of raw materials. A quantitative canning device based on the efficient sterilization of infant nutritional rice noodles comprises a base and a powder canning cavity, etc. The upper front side of the base is connected to the powder canning cavity by bolts. The present invention drives the protective tube to move by a cylinder telescopic rod, thereby extending the discharge channel at the bottom of the powder canning cavity, so that the rice noodles can directly enter the rice noodle can for canning, and can prevent the rice noodles from spilling out, thereby causing waste of raw materials. During the canning operation, the rice noodle can will be positioned by the action of a positioning pin, so that it is always located directly below the powder canning cavity, thereby facilitating subsequent quantitative canning.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The invention relates to the technical field of quantitative canning of rice flour, in particular to quantitative canning equipment based on efficient sterilization of infant nutritional rice flour. Background Art

[0002] Infant nutritional rice flour refers to a modern scientific complementary food that is made through modern nutritional science and technology, using original high-quality millet or rice as the main raw material, sugars, vegetables and other nutritious foods as selective ingredients, and adding nutrients and mineral trace elements for mixed processing. It can supplement nutrition for infants and young children. Infant nutritional rice flour is relatively purer and closer to adult food, which can meet the growth needs of infants and young children. After the production of infant nutritional rice flour is completed, the infant nutritional rice flour needs to be canned in a quantitative manner to facilitate the sale of infant nutritional rice flour. When canning infant nutritional rice flour, the existing device disinfects the rice flour can, and then adds infant nutritional rice flour in a quantitative manner into the rice flour can to complete the quantitative canning of infant nutritional rice flour. However, there is a certain distance between the unloading device and the rice flour can in this process, which can easily cause the infant nutritional rice flour to spill and cause waste.

[0003] Therefore, a quantitative canning device based on the efficient sterilization of infant nutrition rice flour is developed, which can locate the rice flour can and avoid spilling the rice flour during canning and causing waste of raw materials. Summary of the Invention

[0004] In order to overcome the disadvantage that there is a certain distance between the existing device and the rice noodle can, which easily causes the infant and young children's nutritious rice noodles to spill out and cause waste when the material is discharged, a quantitative canning device based on the efficient sterilization of infant and young children's nutritious rice noodles is provided, which can position the rice noodle can and avoid the rice noodles from spilling out and causing waste of raw materials during canning.

[0005] The technical implementation scheme of the present invention is: a quantitative canning device based on the efficient sterilization of infant nutritional rice noodles, including a base, a powder canning cavity, a first servo motor, a first spiral blade, a first UV ultraviolet sterilization component, an automatic canning mechanism and an anti-splashing mechanism. The front side of the upper part of the base is connected to the powder canning cavity by bolts, the top of the powder canning cavity is connected to the first servo motor by bolts, the output shaft of the first servo motor is connected to the first spiral blade, the top of the powder canning cavity is connected to the first UV ultraviolet sterilization component, the base is provided with an automatic canning mechanism for driving the rice noodle can to automatically enter and exit, and the powder canning cavity is provided with an anti-splashing mechanism for preventing the rice noodles from splashing during canning, resulting in waste of raw materials.

[0006] More preferably, the automatic can feeding mechanism includes a mounting seat, a second servo motor, a transmission assembly, a bearing seat and a second UV ultraviolet sterilization assembly. The second servo motor is connected to the front side of the upper left part of the mounting seat by bolts, the upper part of the mounting seat is provided with a transmission assembly, the transmission assembly is connected to the bearing seat, the output shaft of the second servo motor is connected to the left part of the transmission assembly, and the left and right parts of the mounting seat are connected to the second UV ultraviolet sterilization assembly.

[0007] More preferably, the anti-splashing mechanism includes a cylinder, a protective tube, an annular frame, a locking pin and a first return spring. The cylinder is connected to the front side of the upper part of the base by bolts, the protective tube is slidably connected to the bottom of the powder tank filling chamber, the cylinder telescopic rod is connected to the protective tube, the protective tube is connected to the annular frame, three locking pins are slidably connected to the annular frame, and the first return spring is connected between the locking pin and the annular frame.

[0008] More preferably, it also includes a positioning mechanism for assisting in the correction and adjustment of the position of the rice noodle pot, the positioning mechanism includes a guide bracket, a connecting bracket, a positioning member, a second return spring, a first mounting bracket, a rotating member, a connecting member and a lower moving frame, the front side of the lower part of the base is connected to the first mounting bracket by a bolt, the front of the first mounting bracket is rotatably connected to the rotating member, the lower moving frame is connected to the rotating member, the upper sides of the front and rear parts of the lower moving frame are both rotatably connected to the connecting member, the connecting member is rotatably connected to the connecting bracket, the front and rear sides of the mounting seat are connected to the guide brackets, the guide brackets are slidably connected to the corresponding connecting brackets, the top of the connecting brackets are slidably connected to the positioning member, and the second return spring is connected between the positioning member and the connecting bracket.

[0009] More preferably, it also includes a sterilization mechanism for disinfecting the inner wall of the rice noodle jar, the sterilization mechanism includes a connecting frame and a third UV ultraviolet sterilization component, the protective tube is connected to the connecting frame, and the connecting frame is connected to the third UV ultraviolet sterilization component.

[0010] More preferably, it also includes a powder replenishing mechanism for timely replenishing rice noodles, the powder replenishing mechanism includes a powder placement tank, a second mounting bracket, a feed pipe, a third servo motor and a second spiral blade, the upper rear side of the base is connected to the powder placement tank by bolts, the rear side of the base is connected to the second mounting bracket by bolts, a feed pipe is connected between the powder placement tank and the powder tank filling cavity, the top of the feed pipe is connected to the third servo motor, and the second spiral blade is connected to the output shaft of the third servo motor.

[0011] More preferably, it further includes an anti-sticking mechanism for preventing rice noodles from sticking and being unable to be fed normally. The anti-sticking mechanism includes a rotating frame and a scraper. The first servo motor output shaft is connected to the rotating frame, and the rotating frame is connected to the scraper.

[0012] More preferably, the transmission assembly includes four gear sets and two chains, the upper part of the mounting seat is rotatably connected to the four gear sets, the chains are wound between the front sides of the gear sets, and the chains are also wound between the rear sides of the gear sets.

[0013] More preferably, the second UV ultraviolet sterilization component includes two support frames and two disinfection lamps. The front and rear sides of the upper left and right parts of the mounting base are connected to the support frames, and the disinfection lamps are rotatably connected to the support frames.

[0014] More preferably, the front portion of the feed pipe is tilted downward to facilitate the rice flour to flow directly into the powder canning cavity.

[0015] Compared with the prior art, the present invention has the following advantages: 1. The present invention drives the protective tube to move by the cylinder telescopic rod, thereby extending the discharge channel at the bottom of the powder can filling cavity, so that rice noodles can directly enter the rice noodle can for canning, and at the same time can avoid the rice noodles from spilling out and causing waste of raw materials. During the canning operation, the rice noodle can will be positioned under the action of the positioning pin, so that it is always located directly below the powder can filling cavity, which is convenient for subsequent quantitative canning.

[0016] 2. The present invention drives the transmission component to move through the second servo motor output shaft, so that the supporting seat drives the rice noodle can to move automatically, thereby achieving the effect of automatic loading and unloading. At the same time, the rice noodle can is doubly disinfected by the second UV ultraviolet sterilization component during loading and unloading, thereby improving the disinfection efficiency and enhancing the disinfection effect.

[0017] 3. The present invention drives the protective tube to move by the telescopic rod of the cylinder, thereby extending the discharge channel at the bottom of the powder can filling cavity, so that the rice noodles can directly enter the rice noodle can for canning, and at the same time can avoid the rice noodles from spilling out and causing waste of raw materials. During the canning operation, the rice noodle can will be positioned under the action of the positioning pin, so that it is always located directly below the powder can filling cavity, which is convenient for subsequent quantitative canning.

[0018] 4. The present invention drives the rotating frame to rotate by the output shaft of the first servo motor, so that the scraper scrapes the inner wall of the powder tank cavity, thereby preventing the rice noodles from sticking to the inner wall of the powder tank cavity and being unable to be discharged normally, and also preventing the rice noodles from clumping and causing blockage. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 This is a schematic diagram of the first three-dimensional structure of the present invention.

[0020] Figure 2 This is a schematic diagram of the second three-dimensional structure of the present invention.

[0021] Figure 3 It is a partial three-dimensional structural cross-sectional view of the present invention.

[0022] Figure 4It is a schematic diagram of the three-dimensional structure of the automatic can feeding mechanism of the present invention.

[0023] Figure 5 It is a schematic diagram of the three-dimensional structure of the anti-splashing mechanism of the present invention.

[0024] Figure 6 This is an enlarged structural diagram of part B of the present invention.

[0025] Figure 7 It is a schematic diagram of the three-dimensional structure of the alignment mechanism of the present invention.

[0026] Figure 8 It is a three-dimensional structural cross-sectional view of the alignment mechanism of the present invention.

[0027] Figure 9 It is a schematic diagram of the three-dimensional structure of the sterilization mechanism of the present invention.

[0028] Figure 10 It is a schematic diagram of the three-dimensional structure of the powder replenishing mechanism of the present invention.

[0029] Figure 11 It is a three-dimensional structural cross-sectional view of the powder replenishing mechanism of the present invention.

[0030] Figure 12 It is a three-dimensional structural cross-sectional view of the anti-adhesion mechanism of the present invention.

[0031] Among them, the above drawings include the following figure marks: 1. base, 2. powder tank cavity, 3. first servo motor, 4. first spiral blade, 5. first UV ultraviolet sterilization component, 6. automatic tank feeding mechanism, 61. mounting seat, 62. second servo motor, 63. transmission component, 64. bearing seat, 65. second UV ultraviolet sterilization component, 7. anti-splashing mechanism, 71. cylinder, 72. protective cylinder, 73. ring frame, 74. positioning pin, 75. first return spring, 8. positioning mechanism, 81. guide Bracket, 82, connecting bracket, 83, positioning member, 84, second return spring, 85, first mounting bracket, 86, rotating member, 87, connecting member, 88, lowering rack, 9, sterilization mechanism, 91, connecting rack, 92, third UV ultraviolet sterilization component, 10, powder replenishing mechanism, 101, powder placement tank, 102, second mounting bracket, 103, feeding pipe, 104, third servo motor, 105, second spiral blade, 11, anti-adhesion mechanism, 111, rotating rack, 112, scraper. DETAILED DESCRIPTION

[0032] First of all, it should be noted that in the various embodiments described, identical components are provided with identical reference numerals or identical component names, wherein the disclosure contained throughout the entire description can be transferred to the same components having the same reference numerals or identical component names. Positional designations selected in the description, such as top, bottom, lateral, etc., also refer to the directly described and illustrated figures and are transferred to the new position in the event of a change in position.

[0033] A quantitative canning device based on efficient sterilization of infant nutrition rice flour, such as Figure 1-Figure 3 As shown, it includes a base 1, a powder canning cavity 2, a first servo motor 3, a first spiral blade 4, a first UV ultraviolet sterilization component 5, an automatic canning mechanism 6 and an anti-splashing mechanism 7. The front side of the upper part of the base 1 is connected to the powder canning cavity 2 by bolts, which is used for automatically canning rice noodles. The top of the powder canning cavity 2 is connected to the first servo motor 3 by bolts. The first spiral blade 4 is connected to the output shaft of the first servo motor 3. The output shaft of the first servo motor 3 is arranged to be downward. The first spiral blade 4 can stir and convey the rice noodles in the powder canning cavity 2, so that the rice noodles are discharged downward for automatic canning. The top of the powder canning cavity 2 is connected to the first UV ultraviolet sterilization component 5. The first UV ultraviolet sterilization component 5 is used to sterilize and disinfect the rice noodles in the powder canning cavity 2 by ultraviolet light. The base 1 is provided with an automatic canning mechanism 6 for driving the rice noodle jar to automatically enter and exit. The powder canning cavity 2 is provided with an anti-splashing mechanism 7 to prevent the rice noodles from splashing during canning, resulting in waste of raw materials.

[0034] After the rice noodles are made, they need to be canned. When canning the rice noodles, the present device can be used for auxiliary quantitative canning. First, the rice noodle can is placed on the automatic can feeding mechanism 6, and then the automatic can feeding mechanism 6, the first servo motor 3 and the anti-splashing mechanism 7 are started. The first UV ultraviolet sterilization component 5 can sterilize the rice noodles in the powder canning cavity 2. Then, the first spiral blade 4 is driven by the output shaft of the first servo motor 3 to rotate, so that the rice noodles move downward to be discharged. At the same time, the automatic can feeding mechanism 6 will drive the rice noodle can to move to the right, and the anti-splashing mechanism 7 will sequentially sterilize the rice noodles. The rice noodle can is positioned and clamped, and the feeding channel at the bottom of the powder can filling cavity 2 is extended at the same time, so that all the rice noodles can enter the rice noodle can, and the rice noodles are prevented from spilling out and causing waste of raw materials. When the canning is completed, the first servo motor 3 and the anti-splashing mechanism 7 make the canned rice noodle can continue to move to the right to discharge the material under the drive of the automatic can feeding mechanism 6. After the discharging is completed, the automatic can feeding mechanism 6 is closed. In summary, the rice noodle can is transported by the automatic can feeding mechanism 6, and then the rice noodle can is positioned and clamped by the anti-splashing mechanism 7, and the feeding channel of the powder can filling cavity 2 is extended to prevent the rice noodles from spilling out.

[0035] like Figure 1 、 Figure 2 、 Figure 4 and Figure 5 As shown, the automatic tank feeding mechanism 6 includes a mounting base 61, a second servo motor 62, a transmission assembly 63, a bearing base 64 and a second UV ultraviolet sterilization assembly 65. The second servo motor 62 is connected to the front side of the upper left portion of the mounting base 61 by bolts. The output shaft of the second servo motor 62 is set to face backward. A transmission assembly 63 is provided on the upper part of the mounting base 61. The transmission assembly 63 includes four gear sets and two chains. The upper part of the mounting base 61 is rotatably connected to four gear sets. A chain is wound between the front sides of the gear sets, and a chain is also wound between the rear sides of the gear sets. The transmission component 63 is connected to a supporting base 64, which is used to place the rice noodle can. The output shaft of the second servo motor 62 is connected to the left part of the transmission component 63. The left and right parts of the mounting base 61 are connected to the second UV ultraviolet sterilization component 65. The second UV ultraviolet sterilization component 65 is used to disinfect and sterilize the rice noodle can. The second UV ultraviolet sterilization component 65 includes two support frames and two disinfection lamps. The front and rear sides of the upper sides of the left and right parts of the mounting base 61 are connected to support frames, and the disinfection lamp is rotatably connected to the support frame.

[0036] When quantitatively canning rice noodles, it is necessary to first place the rice noodle jar on the supporting seat 64, and then start the second servo motor 62. The output shaft of the second servo motor 62 drives the conveying assembly 63 to operate, so that the supporting seat 64 starts to move to the right. During the movement of the supporting seat 64 to the right, the rice noodle jar will be driven to pass through the second UV ultraviolet sterilization assembly 65 on the left. Under the action of the second UV ultraviolet sterilization assembly 65 on the left, the rice noodle jar body is disinfected. Then, as the conveying assembly 63 continues to operate, the supporting seat 64 will drive the rice noodle jar to continue to move to the right. When the supporting seat 64 moves to the bottom of the powder tank filling cavity 2, the second servo motor 62 is turned off, so that the powder tank filling cavity 2 starts to can rice noodles into the rice noodle jar. After the canning is completed, the second servo motor 62 is started again. , so that the supporting seat 64 continues to drive the rice noodle can to move to the right to discharge the materials. During the rightward discharge movement, the rice noodle can filled with rice noodles will pass through the second UV ultraviolet sterilization component 65 on the right to be sterilized again, thereby improving the sterilization effect. After the sterilization is completed, the rice noodle can is removed and the second servo motor 62 is turned off. Repeating the above operation can continuously can the rice noodles in a quantitative manner, and continuously sterilize the rice noodle can during the canning process to improve the sterilization effect. In summary, the transmission component 63 is driven to move by the output shaft of the second servo motor 62, so that the supporting seat 64 drives the rice noodle can to move automatically, thereby realizing the effect of automatic feeding and discharging. At the same time, the rice noodle can is doubly sterilized by the second UV ultraviolet sterilization component 65 during feeding and discharging, thereby improving the sterilization efficiency and enhancing the sterilization effect.

[0037] like Figure 1 、 Figure 2 、 Figure 5 and Figure 6As shown, the anti-splashing mechanism 7 includes a cylinder 71, a protective cylinder 72, an annular frame 73, a locking pin 74 and a first return spring 75. The cylinder 71 is connected to the front side of the upper part of the base 1 by bolts. The bottom of the powder can filling chamber 2 is slidably connected to the protective cylinder 72. The telescopic rod of the cylinder 71 is connected to the protective cylinder 72. The protective cylinder 72 can extend the discharge channel at the bottom of the powder can filling chamber 2 to prevent rice noodles from spilling when canning. The protective cylinder 72 is connected to the annular frame 73. Three locking pins 74 are slidably connected to the annular frame 73. The locking pins 74 are used to clamp the top of the rice noodle can and can position the rice noodle can at the same time. A first return spring 75 is connected between the locking pin 74 and the annular frame 73. The first return springs 75 are all wound around the locking pins 74. The end of the first return spring 75 close to the protective cylinder 72 is connected to the annular frame 73, and the end of the first return spring 75 away from the protective cylinder 72 is connected to the locking pin 74.

[0038] When the second servo motor 62 is turned off, the cylinder 71 is started, and the telescopic rod of the cylinder 71 drives the protective cylinder 72 to move downward, thereby extending the discharge channel of the powder tank filling cavity 2, so that the rice noodles can directly enter the rice noodle tank, avoiding the rice noodles from spilling during the entry of the rice noodle tank, causing rice noodles to be wasted. At the same time, the downward movement of the protective cylinder 72 will drive the annular frame 73 to move downward, thereby causing the locking pins 74 to move downward. When the locking pins 74 all contact the rice noodle tank, they will be squeezed by the top of the rice noodle tank, so that the locking pins 74 all slide to the side away from each other, and the first return spring 75 is compressed. At this time, the locking pins 74 will be engaged with the top of the rice noodle tank. At the same time, under the action of the locking pins 74 and the first return spring 75, the rice noodle tank When bottle 72 is in the closed position, the locking pin 74 is moved downwards to release the locking pin 75 from the locking cam 76, and the locking pin 76 is moved downwards to release the locking pin 75. When bottle 72 is in the closed position, the locking pin 74 is moved downwards to release the locking pin 75.

[0039] like Figure 1 、 Figure 2 、 Figure 7 and Figure 8As shown, it also includes a positioning mechanism 8, which includes a guide bracket 81, a connecting bracket 82, a positioning member 83, a second return spring 84, a first mounting bracket 85, a rotating member 86, a connecting member 87 and a lower moving frame 88. The front side of the lower part of the base 1 is connected to the first mounting bracket 85 by bolts. The front of the first mounting bracket 85 is rotatably connected to the rotating member 86. The rotating member 86 has a guide groove. The rotating member 86 is connected to the lower moving frame 88. The lower moving frame 88 is connected to the protective tube 72. The lower moving frame 88 is slidably connected to the guide groove. The upper sides of the front and rear parts of the lower moving frame 88 are both rotatably connected to the connecting member 87. The connecting member 87 is rotatably connected to the lower moving frame 88. It is connected to a connecting bracket 82, and guide brackets 81 are connected to the front and rear sides of the mounting seat 61. The guide brackets 81 are slidably connected to the corresponding connecting brackets 82. The top of the connecting bracket 82 is slidably connected to a positioning member 83. The positioning member 83 can push and position the rice noodle jar, thereby assisting the rice noodle jar to always be located directly below the bottom of the powder tank filling cavity 2. A second return spring 84 is connected between the positioning member 83 and the connecting bracket 82. The second return spring 84 is wound around the positioning member 83. The ends of the second return springs 84 that are close to each other are connected to the positioning member 83, and the ends of the second return springs 84 that are away from each other are connected to the connecting bracket 82.

[0040] When the cam 83 is in contact with the hopper 81, the cam 83 is moved away from the hopper 81, and the second return spring 84 is compressed. At this time, the hopper 81 is pushed by the cam 83 to correct its position, so that the hopper 81 is always located directly below the hopper 81. When the cam 83 is in contact with the hopper 81, the cam 83 is moved away from the hopper 81, and the second return spring 84 is compressed. At this time, the hopper 81 is pushed by the cam 83 to correct its position, so that the hopper 81 is always located directly below the hopper 81. When the hopper 81 is in contact with the hopper 81, the cam 83 is moved away from the hopper 81, and the second return spring 84 is compressed. When the hopper 81 is in contact with the hopper 81, the cam 83 is moved away from the hopper 81, and the second return spring 84 is compressed. The lower frame 88 is moved upward and reset. At this time, as the lower frame 88 is moved upward and reset, the rotating member 86 starts to rotate and reset clockwise, and then the connecting member 87 is moved and reset. As the connecting member 87 is moved and reset, the connecting bracket 82 is driven by the connecting member 87 to slide and reset to the side away from each other, so that the positioning member 83 is out of contact with the rice noodle pot. At this time, the positioning member 83 will slide and reset to the side close to each other under the action of the second reset spring 84. In summary, the telescopic rod of the cylinder 71 is moved downward to move the lower frame 88, so that the rotating member 86 drives the connecting member 87 to move, and the connecting member 87 drives the connecting bracket 82 to slide, thereby causing the positioning member 83 to push and position the rice noodle pot, and adjust and correct the position of the rice noodle pot so that the rice noodle pot can always be directly below the powder canning chamber 2, which is convenient for quantitative canning of rice noodles.

[0041] like Figure 1 and Figure 9 As shown, it also includes a sterilization mechanism 9, which includes a connecting frame 91 and a third UV ultraviolet sterilization component 92. The connecting frame 91 is connected to the protective tube 72, and the connecting frame 91 is connected to the third UV ultraviolet sterilization component 92. The third UV ultraviolet sterilization component 92 can enter the rice noodle can to disinfect the inner wall of the rice noodle can.

[0042] When the telescopic rod of the cylinder 71 drives the protective tube 72 to start moving downward and the rice noodles are quantitatively canned, the protective tube 72 will drive the connecting frame 91 to move downward, thereby causing the third UV ultraviolet sterilization component 92 to move downward, so that the third UV ultraviolet sterilization component 92 enters the rice noodle jar that is not filled with rice noodles to disinfect the inner wall bacteria. Since it takes a certain amount of time to fill the rice noodle can, the inner wall of the rice noodle jar that is not filled with rice noodles can be fully disinfected with bacteria. Afterwards, as the telescopic rod of the cylinder 71 moves upward and resets, the protective tube 72 will drive the connecting frame 91 to move upward and reset, thereby causing the third UV ultraviolet sterilization component 92 to leave the interior of the rice noodle jar. In summary, the protective tube 72 is driven to move by the telescopic rod of the cylinder 71, so that the third UV ultraviolet sterilization component 92 enters the interior of the rice noodle jar for disinfection, thereby improving the disinfection effect of the rice noodle jar and making the rice noodle jar more hygienic.

[0043] like Figure 2 、 Figure 10 and Figure 11 As shown, it also includes a powder replenishing mechanism 10, which includes a powder placing tank 101, a second mounting bracket 102, a feeding pipe 103, a third servo motor 104 and a second spiral blade 105. The upper rear side of the base 1 is connected to the powder placing tank 101 by bolts. The powder placing tank 101 is used to store rice noodles. The rear side of the base 1 is connected to the second mounting bracket 102 by bolts. A feeding pipe 103 is connected between the powder placing tank 101 and the powder tank filling cavity 2. The feeding pipe 103 is used to guide the rice noodles in the powder placing tank 101. 103 passes through the second mounting bracket 102, and the front part of the feeding pipe 103 is tilted downward to facilitate the rice noodles to flow directly into the powder tank cavity 2. The top of the feeding pipe 103 is connected to the third servo motor 104, and the output shaft of the third servo motor 104 is downwardly facing. The output shaft of the third servo motor 104 is connected to a second spiral blade 105, and the second spiral blade 105 is located inside the feeding pipe 103. The rotation of the output shaft of the third servo motor 104 can drive the second spiral blade 105 to rotate, thereby transporting the rice noodles in the powder placement tank 101 upward into the powder tank cavity 2.

[0044] As the rice noodles in the powder tank filling cavity 2 continuously enter the rice noodle tank for canning, when the rice noodles in the powder tank filling cavity 2 are about to be consumed, the third servo motor 104 can be started, and the output shaft of the third servo motor 104 drives the second spiral blade 105 to rotate, so that the rice noodles in the powder placement tank 101 are transported upward under the drive of the second spiral blade 105, and enter the powder tank filling cavity 2 through the inclined guidance of the front part of the feeding pipe 103, thereby achieving the effect of quickly replenishing the rice noodles. When the rice noodles are replenished, the third servo motor 104 can be turned off. In summary, the second spiral blade 105 is driven to rotate by the output shaft of the third servo motor 104, so that the rice noodles in the powder placement tank 101 can be quickly introduced into the powder tank filling cavity 2, thereby achieving the effect of quickly replenishing the rice noodles.

[0045] like Figure 3 and Figure 12 As shown, an anti-sticking mechanism 11 is also included. The anti-sticking mechanism 11 includes a rotating frame 111 and a scraper 112. The rotating frame 111 is connected to the output shaft of the first servo motor 3, and the scraper 112 is connected to the rotating frame 111. The scraper 112 can scrape the inner wall of the powder canning cavity 2 to prevent the rice noodles from sticking to the inner wall and being unable to be discharged normally.

[0046] As the output shaft of the first servo motor 3 rotates, the first spiral blade 4 starts to rotate to drive the rice noodles to be discharged, and the rotating frame 111 also rotates together, so that the scraper 112 starts to perform a circular motion, and then scrapes the inner wall of the powder tank cavity 2 to scrape off the rice noodles adhered to the inner wall. On the one hand, it avoids the rice noodles from adhering to the inner wall of the powder tank cavity 2, making it impossible to discharge the rice noodles normally. On the other hand, under the movement of the scraper 112, it can avoid the rice noodles from clumping, which leads to blockage of the discharge pipe at the lower part of the powder tank cavity 2. In summary, the rotating frame 111 is driven to rotate by the output shaft of the first servo motor 3, so that the scraper 112 scrapes the inner wall of the powder tank cavity 2, avoiding the rice noodles from adhering to the inner wall of the powder tank cavity and being unable to discharge normally, and also avoiding the rice noodles from clumping and causing blockage.

[0047] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge of those skilled in the art without departing from the spirit of the present invention.

Claims

1. A quantitative canning device based on the efficient sterilization of infant nutritional rice flour, comprising a base (1), a powder canning chamber (2), a first servo motor (3), a first spiral blade (4) and a first UV ultraviolet sterilization component (5), wherein the upper front side of the base (1) is connected to the powder canning chamber (2) by bolts, the top of the powder canning chamber (2) is connected to the first servo motor (3) by bolts, the output shaft of the first servo motor (3) is connected to the first spiral blade (4), and the top of the powder canning chamber (2) is connected to the first UV ultraviolet sterilization component (5), wherein the first UV ultraviolet sterilization component (5) is connected to the top of the powder canning chamber (2), and the device is characterized in that: The invention also includes an automatic tank feeding mechanism (6) and an anti-splashing mechanism (7). The base (1) is provided with an automatic tank feeding mechanism (6) for driving the rice noodle tank to automatically enter and exit. The powder filling chamber (2) is provided with an anti-splashing mechanism (7) for preventing the rice noodle tank from splashing during filling, thereby wasting raw materials. The automatic tank feeding mechanism (6) includes a mounting seat (61), a second servo motor (62), a transmission assembly (63), a bearing seat (64) and a second UV ultraviolet sterilization assembly (65). The front side of the upper left portion of the mounting seat (61) is connected to the second servo motor (62) by bolts. The upper portion of the mounting seat (61) is provided with a transmission assembly (63). The transmission assembly (63) is connected to the bearing seat (64). The output shaft of the second servo motor (62) is connected to the left portion of the transmission assembly (63). The left and right portions of the mounting seat (61) are both connected to the second UV ultraviolet sterilization assembly (65). The anti-splash mechanism (7) comprises a cylinder (71), a protective tube (72), an annular frame (73), a locking pin (74) and a first return spring (75); the cylinder (71) is connected to the front side of the upper portion of the base (1) by bolts; the bottom of the powder tank chamber (2) is slidably connected to the protective tube (72); the telescopic rod of the cylinder (71) is connected to the protective tube (72); the protective tube (72) is connected to the annular frame (73); three locking pins (74) are slidably connected to the annular frame (73); and a first return spring (75) is connected between the locking pins (74) and the annular frame (73); The invention also includes a positioning mechanism (8) for assisting the rice noodle pot in position correction and adjustment. The positioning mechanism (8) includes a guide bracket (81), a connecting bracket (82), a positioning member (83), a second return spring (84), a first mounting bracket (85), a rotating member (86), a connecting member (87) and a lower moving frame (88). The front side of the lower portion of the base (1) is connected to the first mounting bracket (85) by a bolt. The front portion of the first mounting bracket (85) is rotatably connected to the rotating member (86). A guide groove is provided on the rotating member (86). The rotating member (86) is connected to the lower moving frame (88). The lower moving frame (88) is connected to the protective tube. (72) is connected, the lower moving frame (88) is slidably connected to the guide groove, the upper sides of the front and rear parts of the lower moving frame (88) are rotatably connected with connecting members (87), and the connecting members (87) are rotatably connected with connecting brackets (82), the front and rear sides of the mounting seat (61) are connected with guide brackets (81), and the guide brackets (81) are slidably connected to the corresponding connecting brackets (82), and the tops of the connecting brackets (82) are slidably connected with positioning members (83), and a second return spring (84) is connected between the positioning member (83) and the connecting bracket (82), and the telescopic rod of the cylinder (71) drives the protective tube (72) to move downward. The lower moving frame (88) moves downward, and the lower moving frame (88) slides in the guide groove during the downward movement, so that the rotating member (86) rotates counterclockwise. The counterclockwise rotation of the rotating member (86) drives the connecting member (87) to rotate, so that the connecting brackets (82) slide toward the side close to each other under the guidance of the corresponding guide brackets (81), and then the positioning members (83) move toward the side close to the rice noodle jar. When the positioning members (83) are in contact with the rice noodle jar, the positioning members (83) slide toward the side away from each other, and the second return spring (84) is compressed. The powder can is corrected in position under the push of the positioning member (83), so that the rice noodle can is always located directly below the powder filling chamber (2). When the quantitative filling of rice noodles is completed, the protective tube (72) moves upward and resets under the drive of the telescopic rod of the cylinder (71), thereby causing the lower frame (88) to move upward and reset. The lower frame (88) moves upward and resets, causing the rotating member (86) to start rotating clockwise and reset, thereby causing the connecting member (87) to move and reset. At this time, the connecting bracket (82) slides and resets to the side away from each other under the drive of the connecting member (87), thereby causing the positioning member (83) to be out of contact with the rice noodle can.

2. A quantitative canning device based on efficient sterilization of infant nutritional rice flour according to claim 1, characterized in that: The invention also includes a sterilizing mechanism (9) for sterilizing the inner wall of the rice noodle jar. The sterilizing mechanism (9) includes a connecting frame (91) and a third UV ultraviolet sterilizing component (92). The protective cylinder (72) is connected to the connecting frame (91), and the connecting frame (91) is connected to the third UV ultraviolet sterilizing component (92).

3. A quantitative canning device based on efficient sterilization of infant nutritional rice flour according to claim 2, characterized in that: The invention also includes a powder replenishing mechanism (10) for replenishing rice flour in time. The powder replenishing mechanism (10) includes a powder placing tank (101), a second mounting bracket (102), a feeding pipe (103), a third servo motor (104) and a second spiral blade (105). The upper rear side of the base (1) is connected to the powder placing tank (101) by bolts. The rear side of the base (1) is connected to the second mounting bracket (102) by bolts. The feeding pipe (103) is connected between the powder placing tank (101) and the powder tank filling chamber (2). The top of the feeding pipe (103) is connected to the third servo motor (104). The second spiral blade (105) is connected to the output shaft of the third servo motor (104).

4. A quantitative canning device based on efficient sterilization of infant nutritional rice flour according to claim 3, characterized in that: The invention also includes an anti-adhesion mechanism (11) for preventing rice noodles from sticking together and failing to be fed normally. The anti-adhesion mechanism (11) includes a rotating frame (111) and a scraper (112). The output shaft of the first servo motor (3) is connected to the rotating frame (111), and the scraper (112) is connected to the rotating frame (111).

5. A quantitative canning device based on efficient sterilization of infant nutritional rice flour according to claim 1, characterized in that: The transmission assembly (63) includes four gear sets and two chains. The upper part of the mounting seat (61) is rotatably connected to the four gear sets. The chains are wound between the front sides of the gear sets and the chains are also wound between the rear sides of the gear sets.

6. A quantitative canning device based on efficient sterilization of infant nutritional rice flour according to claim 1, characterized in that: The second UV ultraviolet sterilization assembly (65) comprises two support frames and two disinfection lamps. The front and rear sides of the upper sides of the left and right parts of the mounting seat (61) are both connected to the support frames, and the disinfection lamps are rotatably connected to the support frames.

7. A quantitative canning device based on efficient sterilization of infant nutritional rice flour according to claim 3, characterized in that: The front portion of the feed pipe (103) is tilted downward to facilitate the rice flour to flow directly into the powder canning cavity (2).

Citation Information

Patent Citations

  • Can filling apparatus

    CA2209969A1

  • High-stability anti-spilling powder filling device for cosmetic processing

    CN113002817A