Quantitative canning structure for instant meat cans

By designing rotating rings and spiral/vortex-shaped diversion strips in the canned meat can structure, the problem of residual spoilage pollution in the canned meat canned structure is solved, and a cleaner and more efficient raw material discharge is achieved.

CN223014987UActive Publication Date: 2025-06-24SHANGHAI RONGLIAN FOOD TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422283918.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-19
Publication Date
2025-06-24
Estimated Expiration
2034-09-19

AI Technical Summary

Technical Problem

In the existing canned meat canned structure, raw materials are easily retained on the inner wall of the mechanism, causing the raw materials to deteriorate and contaminate new raw materials.

Method used

A fast-eating canned can structure with a rotating ring and a flow guide strip is designed. The flow guide strip is composed of a first flow guide portion, a second flow guide portion and a third flow guide portion. The spiral and vortex-shaped flow guide portions are closely attached to the inner wall of the body, driving the raw materials to be discharged through the discharge pipe, and scraping the raw materials on the inner wall when rotated.

Benefits of technology

It effectively avoids the residue and spoilage of raw materials, and achieves a cleaner and more efficient raw material discharge during canning.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of meat can processing, in particular to a quantitative canning structure for instant meat cans, which comprises a body, a feeding pipe and a feeding pipe. The rotating ring is rotationally arranged in the body, and flow guide strips are fixedly arranged on the rotating ring in a circumferential array mode; the flow guide strips are tightly attached to the inner wall of the body. According to the quantitative canning structure for the instant meat cans, the first flow guide part, the second flow guide part and the third flow guide part are attached to the inner wall of the body, the inner wall of the conical bottom of the body and the inner wall of the discharging pipe respectively, and therefore when the flow guide strips rotate, raw material parts attached to the inner walls are scraped off and discharged out of the interior of the body; and therefore, the situation that new raw materials are polluted after internal raw materials are left and deteriorated is effectively avoided.
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Description

Technical Field

[0001] The utility model relates to the technical field of canned meat processing, in particular to a quantitative canning structure for instant meat cans. Background Art

[0002] During the processing of meat cans, canning operations are carried out through a quantitative canning mechanism.

[0003] The disclosed quantitative canning structure for instant meat cans with the publication number CN215591053U and the publication date of January 21, 2022, includes a square blanking bucket. A rotating shaft is arranged inside the square blanking bucket. A roller is arranged on the rotating shaft. An aggregate port is arranged on the side wall of the roller. A motor is arranged on one side of the square blanking bucket. One end of the rotating shaft is connected to the driving shaft of the motor. A rotating rod is arranged on the inner wall of the square blanking bucket. A pressing plate is connected to the rotating rod. The pressing plate is located above the roller. One end of the rotating rod extends out of the square blanking bucket and is connected to a pressing rod.

[0004] In the prior art including the above patent, although quantitative canning can be achieved, raw materials are likely to remain on the inner wall of the mechanism. The remaining raw materials deteriorate and are likely to contaminate new raw materials. Summary of the Utility Model

[0005] The purpose of the utility model is to provide a quantitative canning structure for instant meat cans to solve the technical problem that raw materials are likely to remain inside the mechanism in the prior art.

[0006] To achieve the above purpose, the utility model provides the following technical scheme: A quantitative canning structure for instant meat cans, comprising:

[0007] A main body, at the bottom of which a blanking pipe is rotatably arranged;

[0008] A rotating ring, which is rotatably arranged inside the main body. Guide strips are fixedly arranged on the rotating ring in a circumferential array;

[0009] Among them, the guide strips are closely attached to the inner wall of the main body. The guide strips include a first guide part, a second guide part and a third guide part. Both the first guide part and the second guide part are arranged in a spiral shape, and the spiral directions of the two are the same. The second guide part is arranged in a vortex shape.

[0010] Preferably, it further includes a fixed rod fixedly arranged on the main body, on which a second gear is rotatably arranged, and arc-shaped grooves are symmetrically arranged on the second gear.

[0011] Preferably, it further includes a fixing plate fixedly arranged on the main body, on which a rotating rod is rotatably arranged, and a first gear meshing with the second gear is fixedly arranged on the rotating rod.

[0012] Preferably, it further includes a support frame fixedly arranged on the top of the main body, on which a motor is fixedly arranged, and the output end of the motor is fixedly connected with a rotating shaft.

[0013] Preferably, the rotating shaft and the rotating ring are fixedly connected by a connecting rod.

[0014] Preferably, the rotating shaft and the rotating rod are connected by belt drive.

[0015] In the above technical solution, a quantitative canning structure for instant meat cans provided by the present utility model has the following beneficial effects: driving the rotating ring to rotate, thereby driving the guiding strip to rotate, the rotation of the guiding strip drives the first guiding part, the second guiding part and the third guiding part to rotate, the first guiding part rotates and generates an obliquely downward thrust on the raw materials through the spiral surface of the first guiding part, thereby driving the raw materials to move into the conical bottom of the main body, the second guiding part rotates, and continues to generate an obliquely downward thrust on the raw materials entering the conical bottom of the main body through the vortex surface on the second guiding part, so that the raw materials in the conical bottom of the main body move towards the feeding pipe, the third guiding part rotates, thereby continuing to generate an obliquely downward thrust on the raw materials entering the feeding pipe, so as to discharge the raw materials through the feeding pipe for canning, and it is not easy to be blocked. The first guiding part, the second guiding part and the third guiding part are respectively arranged in close fit with the inner wall of the main body, the inner wall of the conical bottom of the main body and the inner wall of the feeding pipe. Thus, when the guiding strip rotates, the raw material part adhering to the inner wall is scraped off and discharged from the inside of the main body, so that the discharging is cleaner, effectively avoiding the pollution of new raw materials by the residual and deteriorated raw materials inside. Description of the Drawings

[0016] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required to be used in the embodiments. Obviously, the drawings described below are only some embodiments recorded in the present utility model. For those of ordinary skill in the art, other drawings can also be obtained according to these drawings.

[0017] Figure 1 It is a top-down three-dimensional structure schematic diagram provided by an embodiment of the present utility model;

[0018] Figure 2 It is a bottom-up three-dimensional structure schematic diagram provided by an embodiment of the present utility model;

[0019] Figure 3 It is a front-sectional structure schematic diagram provided by an embodiment of the present utility model;

[0020] Figure 4 It is a top-down three-dimensional structure schematic diagram of the guiding strip provided by an embodiment of the present utility model;

[0021] Figure 5Schematic diagram of the upward perspective three-dimensional structure of the diversion bar provided by the embodiment of the present utility model.

[0022] Explanation of reference numerals:

[0023] 1. Body; 11. Feed inlet; 12. Support frame; 13. Fixed plate; 131. Rotating rod; 1311. First pulley; 1312. First gear; 14. Fixed rod; 141. Second gear; 1411. Arc groove; 15. Feed pipe; 2. Motor; 21. Rotating shaft; 211. Second pulley; 212. Connecting rod; 3. Belt; 4. Rotating ring; 5. Diversion bar; 51. First diversion part; 52. Second diversion part; 53. Third diversion part. Detailed implementation manners

[0024] In order to enable those skilled in the art to better understand the technical solutions of the present utility model, the present utility model will be further introduced in detail below with reference to the accompanying drawings.

[0025] As Figures 1-5 shown, a quantitative canning structure for instant meat cans includes:

[0026] A body 1, at the bottom of which a feed pipe 15 is rotatably arranged;

[0027] A rotating ring 4, which is rotatably arranged inside the body 1, and diversion bars 5 are fixedly arranged on the rotating ring 4 in a circumferential array;

[0028] Among them, the diversion bar 5 is closely attached to the inner wall of the body 1. The diversion bar 5 includes a first diversion part 51, a second diversion part 52 and a third diversion part 53. Both the first diversion part 51 and the second diversion part 52 are arranged in a spiral shape, and the spiral directions of the two are the same. The second diversion part 52 is arranged in a vortex shape.

[0029] Specifically, the raw materials are put into the inside of the body 1 through the feed inlet 11 at the top of the body 1. During canning, the rotating ring 4 is driven to rotate, thereby driving the diversion bar 5 to rotate. The rotation of the diversion bar 5 drives the first diversion part 51, the second diversion part 52 and the third diversion part 53 to rotate. The first diversion part 51 rotates and generates an obliquely downward thrust on the raw materials through the spiral surface of the first diversion part 51, thereby driving the raw materials to move into the conical bottom of the body 1. The second diversion part 52 rotates, and continues to generate an obliquely downward thrust on the raw materials entering the conical bottom of the body 1 through the vortex surface of the second diversion part 52, so that the raw materials in the conical bottom of the body 1 converge and move towards the feed pipe 15. The third diversion part 53 rotates, thereby continuing to generate an obliquely downward thrust on the raw materials entering the feed pipe 15, so as to discharge the raw materials through the feed pipe 15 for canning, and it is not easy to be blocked.

[0030] Furthermore, the first guide portion 51, the second guide portion 52 and the third guide portion 53 are respectively arranged to fit the inner wall of the main body 1, the inner wall of the conical bottom of the main body 1 and the inner wall of the discharge pipe 15, so that when the guide bar 5 rotates, the raw material part adhering to the inner wall is scraped off and discharged from the interior of the main body 1, thereby making the discharge cleaner and effectively avoiding the internal raw material residue from deteriorating and contaminating the new raw material.

[0031] In the above technology, the driving rotating ring 4 rotates, thereby driving the guide bar 5 to rotate, and the rotation of the guide bar 5 drives the first guide part 51, the second guide part 52 and the third guide part 53 to rotate. The first guide part 51 rotates and generates an oblique downward thrust on the raw material through the spiral surface of the first guide part 51, thereby driving the raw material to move into the conical bottom of the body 1. The second guide part 52 rotates, and the vortex surface on the second guide part 52 continues to generate an oblique downward thrust on the raw material entering the conical bottom of the body 1, so that the raw material in the conical bottom of the body 1 is gathered and moved to the downward material pipe 15. The third guide part 53 rotates, thereby continuing to generate an oblique downward thrust on the raw materials entering the discharge pipe 15, so that the raw materials are discharged through the discharge pipe 15 for canning, and are not prone to blockage. The first guide part 51, the second guide part 52 and the third guide part 53 are respectively arranged in contact with the inner wall of the main body 1, the inner wall of the conical bottom of the main body 1 and the inner wall of the discharge pipe 15, so that when the guide bar 5 rotates, the raw material part adhering to the inner wall is scraped off and discharged from the inside of the main body 1, thereby making the discharge cleaner and effectively avoiding the internal raw material from deteriorating and contaminating the new raw material.

[0032] As a further embodiment of the present invention, the present invention further comprises a fixing rod 14 fixedly arranged on the main body 1 , on which a second gear 141 is rotatably arranged, and an arc groove 1411 is symmetrically opened on the second gear 141 .

[0033] Specifically, during canning, the second gear 141 is driven to rotate at the same time. When the second gear 141 rotates to the point where the arc groove 1411 corresponds to the discharge port of the discharge pipe 15, the raw material is discharged through the discharge pipe 15 under the push of the guide bar 5. After the second gear 141 rotates 180 degrees, the discharge port of the discharge pipe 15 is blocked by the second gear 141. When the canned bottle is replaced, the second gear 141 continues to rotate, and the discharge port of the discharge pipe 15 corresponds to another arc groove 1411 to continue discharging the material, and so on and so forth, thereby achieving continuous quantitative canning and effectively improving the canning efficiency.

[0034] As a further embodiment of the present invention, the present invention further comprises a fixing plate 13 fixedly arranged on the main body 1 , on which a rotating rod 131 is rotatably arranged, and on the rotating rod 131 a first gear 1312 meshing with the second gear 141 is fixedly arranged.

[0035] Specifically, the driving rotating rod 131 rotates, thereby driving the first gear 1312 to rotate, and then driving the second gear 141 meshing with the first gear 1312 to rotate. When the first gear 1312 rotates one week, the second gear 141 rotates 180 degrees. When the second gear 141 rotates to the arc-shaped groove 1411 corresponding to the discharge port of the material discharge pipe 15, the raw material is discharged through the material discharge pipe 15 under the push of the guide strip 5. When the second gear 141 rotates 180 degrees, the discharge port of the material discharge pipe 15 is blocked by the second gear 141. After replacing the canned bottle, the second gear 141 continues to rotate, and the discharge port of the material discharge pipe 15 corresponds to another arc-shaped groove 1411 to continue discharging. In this way, continuous quantitative canning is achieved.

[0036] As a further embodiment provided by the present utility model, it further includes a support frame 12 fixedly arranged on the top of the body 1, on which a motor 2 is fixedly arranged, and the output end of the motor 2 is fixedly connected with a rotating shaft 21.

[0037] Specifically, the rotating shaft 21 and the rotating ring 4 are fixedly connected through a connecting rod 212. The driving motor 2 drives the rotating shaft 21 to rotate, thereby driving the rotating ring 4 to rotate through the support frame 12, and then driving the guide strip 5 to rotate. The rotation of the guide strip 5 drives the first guide part 51, the second guide part 52 and the third guide part 53 to rotate. The first guide part 51 rotates and generates an obliquely downward thrust on the raw material through the spiral surface of the first guide part 51, thereby driving the raw material to move into the conical bottom of the body 1. The second guide part 52 rotates and continues to generate an obliquely downward thrust on the raw material entering the conical bottom of the body 1 through the vortex surface on the second guide part 52, so that the raw material in the conical bottom of the body 1 moves towards the material discharge pipe 15. The third guide part 53 rotates, thereby continuously generating an obliquely downward thrust on the raw material entering the material discharge pipe 15, so as to discharge the raw material through the material discharge pipe 15 for canning, and it is not easy to be blocked.

[0038] As a further embodiment provided by the present utility model, the rotating shaft 21 and the rotating rod 131 are connected by a belt 3.

[0039] Specifically, the rotating shaft 21 rotates to drive the second pulley 211 provided on the rotating shaft 21 to rotate, thereby driving the first pulley 1311 provided on the rotating rod 131 to rotate through the belt 3, thereby driving the rotating rod 131 to rotate, thereby driving the first gear 1312 to rotate, thereby driving the second gear 141 meshing with the first gear 1312 to rotate. When the first gear 1312 rotates one week, the second gear 141 rotates 180 degrees. When the second gear 141 rotates to the arc-shaped groove 1411 corresponding to the discharge port of the blanking pipe 15, the raw material is discharged through the blanking pipe 15 under the push of the guiding strip 5. When the second gear 141 rotates 180 degrees, the discharge port of the blanking pipe 15 is blocked by the second gear 141. After replacing the canned bottle, the second gear 141 continues to rotate, and the discharge port of the blanking pipe 15 corresponds to another arc-shaped groove 1411 to continue blanking. In this way, continuous quantitative canning is achieved without an additional driving source to drive the rotation of the rotating rod 131, further simplifying the structure and saving equipment costs.

[0040] Working principle: The raw material is put into the interior of the main body 1 through the feeding port 11 at the top of the main body 1. During canning, the driving motor 2 drives the rotating shaft 21 to rotate, thereby driving the rotating ring 4 to rotate through the support frame 12, thereby driving the guiding strip 5 to rotate. The rotation of the guiding strip 5 drives the first guiding part 51, the second guiding part 52 and the third guiding part 53 to rotate. The first guiding part 51 rotates and generates a downward oblique thrust on the raw material through the spiral surface of the first guiding part 51, thereby driving the raw material to move towards the conical bottom of the main body 1. The second guiding part 52 rotates and continues to generate a downward oblique thrust on the raw material entering the conical bottom of the main body 1 through the vortex surface on the second guiding part 52, so that the raw material in the conical bottom of the main body 1 converges and moves towards the blanking pipe 15. The third guiding part 53 rotates, thereby continuously generating a downward oblique thrust on the raw material entering the blanking pipe 15, so as to discharge the raw material through the blanking pipe 15 for canning, and it is not easy to be blocked. The rotating shaft 21 rotates to drive the second pulley 211 provided on the rotating shaft 21 to rotate, thereby driving the first pulley 1311 provided on the rotating rod 131 to rotate through the belt 3, thereby driving the rotating rod 131 to rotate, thereby driving the first gear 1312 to rotate, thereby driving the second gear 141 meshing with the first gear 1312 to rotate. When the first gear 1312 rotates one week, the second gear 141 rotates 180 degrees. When the second gear 141 rotates to the arc-shaped groove 1411 corresponding to the discharge port of the blanking pipe 15, the raw material is discharged through the blanking pipe 15 under the push of the guiding strip 5. When the second gear 141 rotates 180 degrees, the discharge port of the blanking pipe 15 is blocked by the second gear 141. After replacing the canned bottle, the second gear 141 continues to rotate, and the discharge port of the blanking pipe 15 corresponds to another arc-shaped groove 1411 to continue blanking. In this way, continuous quantitative canning is achieved without an additional driving source to drive the rotation of the rotating rod 131, further simplifying the structure and saving equipment costs.

[0041] The above only describes certain exemplary embodiments of the present utility model by way of illustration. Without doubt, for those of ordinary skill in the art, the described embodiments can be modified in various different ways without departing from the spirit and scope of the present utility model. Therefore, the above drawings and description are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present utility model.

Claims

1. A quantitative canning structure for instant meat cans, characterized in that: include: The main body (1) has a feeding tube (15) rotatably arranged at the bottom thereof; A rotating ring (4) which is rotatably arranged inside the body (1), and guide strips (5) are fixedly arranged on the rotating ring (4) in a circular array; The guide strip (5) is closely attached to the inner wall of the body (1); the guide strip (5) comprises a first guide portion (51), a second guide portion (52) and a third guide portion (53); the first guide portion (51) and the second guide portion (52) are both arranged in a spiral shape, and the spiral directions of the two are the same; the second guide portion (52) is arranged in a vortex shape.

2. The instant meat canned quantitative filling structure according to claim 1, characterized in that: It also comprises a fixing rod (14) fixedly arranged on the main body (1), on which a second gear (141) is rotatably arranged, and the second gear (141) is symmetrically provided with arc grooves (1411).

3. The instant meat canned quantitative filling structure according to claim 1, characterized in that: It also comprises a fixing plate (13) fixedly arranged on the body (1), on which a rotating rod (131) is rotatably arranged, and on which a first gear (1312) meshing with a second gear (141) is fixedly arranged.

4. The instant meat canned quantitative filling structure according to claim 1, characterized in that: It also comprises a support frame (12) fixedly arranged on the top of the main body (1), on which a motor (2) is fixedly arranged, and an output end of the motor (2) is fixedly connected to a rotating shaft (21).

5. The instant meat canned quantitative filling structure according to claim 4, characterized in that: The rotating shaft (21) and the rotating ring (4) are fixedly connected via a connecting rod (212).

6. The instant meat canned quantitative filling structure according to claim 4, characterized in that: The rotating shaft (21) and the rotating rod (131) are connected to each other via a belt (3).

Citation Information

Patent Citations

  • Quantitative canning structure for instant meat cans

    CN215591053U