Food rod inserting mechanism

By designing a food insert mechanism, the automatic insertion of lollipop sticks is achieved using components such as rotating rings and drive columns, solving the problem of low insertion efficiency of block-shaped candies in existing technologies and improving processing efficiency and convenience.

CN223860128UActive Publication Date: 2026-02-03江苏海特尔机械有限公司
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202520514816.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-24
Publication Date
2026-02-03
Estimated Expiration
2035-03-24

AI Technical Summary

Technical Problem

In existing lollipop processing methods, inserting block-shaped candies into the stick is inefficient and usually relies on manual operation, resulting in low processing efficiency.

Method used

A food insert mechanism was designed, including components such as a fixed plate, a rotating ring, an insertion abutment plate, a separation abutment plate, a material carrying block, a through-drive column, an external push column, and a push rod. The rotating ring drives the through-drive column and the external push column to rotate, thereby realizing the automatic insertion of the insert into the block sugar.

Benefits of technology

This technology automates the lollipop stick insertion process, improving processing efficiency and convenience while reducing the need for manual operation.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223860128U_ABST
    Figure CN223860128U_ABST
Patent Text Reader

Abstract

A food rod inserting mechanism comprises a fixing disc, an inserting abutting plate, a separating abutting plate, a rotating ring sleeve, a material carrying block, a penetrating driving column, an outer pushing column, a pushing rod and an inserting rod. The rotating ring sleeve rotates to drive the penetrating connection driving column and the outer pushing column to rotate, the outer end of the penetrating connection driving column is pressed by the inserting abutting plate in an abutting mode and enables the penetrating connection driving column to move towards the interior of the rotating ring sleeve, and the penetrating connection driving column drives the pushing rod to move towards the interior of the penetrating connection channel and abuts against the inserting rod to be inserted into the charging groove. And then the rotating ring sleeve continues to rotate to drive a penetrating connection driving column and an outer pushing column to rotate, then the outer pushing column rotates along with the rotating ring sleeve and abuts against a separation abutting plate, the outer pushing column is pressed by the separation abutting plate to move towards the outer side, the penetrating connection driving column moves outwards, and the penetrating connection driving column moves outwards. And the penetrating driving column drives the push rod to move towards the outer side, so that the push rod is reset to facilitate subsequent feeding of new insertion rods, and machining is convenient and efficient.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model belongs to the field of food processing machinery manufacturing, and particularly relates to a food insert mechanism. Background Technology

[0002] As people's demands for food development increase, the development of food machinery is also increasing. Existing food processing structures are diverse. Among them, lollipops, as a relatively novel food, have various processing methods. Current lollipop processing generally requires inserting a stick into one end of a block of candy to form the lollipop structure. However, the current process of inserting the stick into the block of candy is very inefficient, and the stick is usually inserted manually, which is also inefficient. Therefore, it is necessary to develop a stick insertion structure for block of candy to improve the efficiency and convenience of the operation. Utility Model Content

[0003] To address the shortcomings of the existing technology, the present invention provides a food insert mechanism that is efficient and convenient to operate.

[0004] To solve the above problems, the technical solution adopted by this utility model is as follows:

[0005] A food insert mechanism includes a fixed plate, an insertion abutment plate, a separation abutment plate, a rotating ring, a material carrying block, a through-drive post, an outward push post, a push rod, and an insert rod. The rotating ring is mounted on one side of the fixed plate, and the rotating ring is rotatably mounted on one side of the fixed plate. The insertion abutment plate and the separation abutment plate are mounted on the inner side of the fixed plate. Multiple material carrying blocks are evenly mounted around the outer periphery of the rotating ring, each carrying block having a loading groove, and the carrying blocks are located at the outer end of the rotating ring. Multiple through-channels are evenly mounted around the outer periphery of the rotating ring, and the through-channels are located at the inner end of the rotating ring. Each through-channel corresponds to and communicates with a loading groove in one of the material carrying blocks. Multiple through-drive posts are evenly mounted through the rotating ring, and the through-drive posts are slidably mounted on the rotating ring. The outer ends of the through-drive posts extend to the outside of the rotating ring, and an outward push post is mounted on the upper side of the outer end of each through-drive post. A push rod is installed above the drive column. The push rod slides through the through-channel of the rotating ring. A plug is installed in each through-channel, and the push rod and plug correspond one to one. The rotating ring rotates, causing the drive column and the push column to rotate. As the rotating ring rotates, the outer end of the drive column is pressed by the insertion abutment plate, causing the drive column to move into the rotating ring. The drive column drives the push rod to move into the through-channel and presses the plug into the loading slot. The rotating ring continues to rotate, causing the drive column and the push column to rotate, causing the drive column to disengage from the insertion abutment plate. Then, the push column rotates with the rotating ring and presses against the separation abutment plate. The push column is pressed outward by the separation abutment plate, causing the drive column to move outward. The drive column drives the push rod to move outward, causing the push rod to reset.

[0006] Furthermore, multiple through-holes are formed inside the rotating ring; the through-hole driving post slides through the through-holes.

[0007] Furthermore, the push-out columns are arranged in a vertical structure, with the lower end of the push-out column fixedly sleeved on the outer end of the drive column, and the upper end of the push-out column movably connected to the outer end of the push rod.

[0008] Furthermore, the outer end of the push rod is connected to the outer push post, and a screw is screwed to the upper end of the outer push post, with the lower end of the screw pressing against the upper side of the outer end of the push rod.

[0009] Furthermore, the inner side of the loading trough is provided with a guide groove, and the guide groove and the through channel are relatively distributed. The push rod pushes the insertion rod through the through channel and the guide groove.

[0010] Furthermore, the inner surfaces of both the insertion abutment plate and the separation abutment plate are inclined slope structures.

[0011] The beneficial effects of this utility model are as follows:

[0012] This invention utilizes a rotating ring to drive the through-connection drive column and the outer push column. As the rotating ring rotates, the outer end of the through-connection drive column is pressed by the insertion abutment plate, causing it to move inward into the rotating ring. The through-connection drive column then drives the push rod to move inward into the through-connection channel and presses the insert rod into the filling groove, thus allowing the insert rod to connect with the block sugar in the filling groove. The rotating ring continues to rotate, driving the through-connection drive column and the outer push column to rotate, causing the through-connection drive column to disengage from the insertion abutment plate. Subsequently, the outer push column rotates with the rotating ring and presses against the separation abutment plate. The outer push column moves outward under the pressure of the separation abutment plate, causing the through-connection drive column to move outward. The through-connection drive column then drives the push rod to move outward, allowing the push rod to reset and facilitating the subsequent insertion of a new insert rod. This process is convenient and efficient. Attached Figure Description

[0013] Figure 1 This is a schematic diagram of the structure of this utility model.

[0014] Figure 2 This is a schematic diagram of the structure of the insert abutment plate and the through drive column of this utility model.

[0015] Figure 3 This is a top-view enlarged structural diagram of the rotating ring, material block, through-drive column, external push column, and push rod of this utility model.

[0016] Figure 4 This is a cross-sectional structural diagram of the rotating ring, the drive column, the push column, and the push rod of this utility model. Detailed Implementation

[0017] The present invention will now be described in further detail with reference to the accompanying drawings.

[0018] like Figures 1 to 4As shown, a food insert mechanism includes a fixed plate 1, an insertion abutment plate 2, a separation abutment plate 3, a rotating ring 4, a material carrier block 5, a through-drive column 6, an outward push column 7, a push rod 8, and an insert rod. The rotating ring 4 is mounted on one side of the fixed plate 1, and is rotatably mounted on one side of the fixed plate 1. The insertion abutment plate 2 and the separation abutment plate 3 are mounted on the inner side of the fixed plate 1. Multiple material carrier blocks 5 are evenly mounted around the outer perimeter of the rotating ring 4, and each material carrier block 5 has a loading groove 51. The material block 5 is located at the outer end of the rotating ring 4; multiple through channels 41 are evenly opened on the outer periphery of the rotating ring 4, and the through channels 41 are located at the inner end of the rotating ring 4; the through channels 41 are respectively connected to the loading groove 51 of the material block 5; multiple through drive columns 6 are evenly installed on the rotating ring 4, the through drive columns 6 are slidably installed on the rotating ring 4, the outer end of the through drive column 6 extends to the outside of the rotating ring 4, and the upper side of the outer end of the through drive column 6 is equipped with A push rod 8 is installed above the push post 7 and the drive post 6. The push rod 8 slides through the through channel 41 of the rotating ring 4. A plug rod is installed in each through channel 41, and the push rod 8 and the plug rod correspond one-to-one. The rotating ring 4 rotates, causing the drive post 6 and the push post 7 to rotate. The drive post 6 rotates with the rotating ring 4, and the outer end of the drive post 6 is pressed by the insertion abutment plate 2, causing the drive post 6 to move into the rotating ring 4. The push rod 8 is driven to move into the through channel 41 and press the insert rod into the loading groove 51. The rotating ring 4 continues to rotate, driving the through drive column 6 and the outer push column 7 to rotate, causing the through drive column 6 to disengage from the insertion abutment plate 2. Then the outer push column 7 rotates with the rotating ring 4 and presses against the separation abutment plate 3. The outer push column 7 moves outward under the pressure of the separation abutment plate 3, causing the through drive column 6 to move outward. The through drive column 6 drives the push rod 8 to move outward, so that the push rod 8 is reset.

[0019] like Figures 1 to 4 As shown, in order to facilitate the assembly of the drive post 6, a plurality of through-holes 42 are further provided in the rotating ring 4; the drive post 6 is slidably connected to the through-holes 42.

[0020] like Figures 1 to 4 As shown, in order to facilitate the connection of the drive column 6, the push column 7, and the push rod 8, the push column 7 is further arranged in a vertical structure. The lower end of the push column 7 is fixedly sleeved on the outer end of the drive column 6, and the upper end of the push column 7 is movably connected to the outer end of the push rod 8.

[0021] like Figures 1 to 4 As shown, in order to facilitate the installation of the push rod 8, the outer end of the push rod 8 is further connected to the outer push post 7, and the upper end of the outer push post 7 is screwed with a screw 71, the lower end of the screw 71 pressing against the upper side of the outer end of the push rod 8.

[0022] like Figures 1 to 4 As shown, in order for the insertion rod to be inserted into the guide groove from the through-channel 41, a guide groove 511 is further provided on the inner side of the loading groove 51. The guide groove 511 and the through-channel 41 are positioned opposite each other, and the push rod 8 pushes the insertion rod through the through-channel 41 and the guide groove 511. Furthermore, the inner surfaces of the insertion abutment plate 2 and the separation abutment plate 3 are both inclined slope structures.

[0023] The rotating ring 4 of this invention rotates, causing the through-drive column 6 and the outer push column 7 to rotate. As the rotating ring 4 rotates, the outer end of the through-drive column 6 is pressed by the insertion abutment plate 2, causing the through-drive column 6 to move into the rotating ring 4. The through-drive column 6 drives the push rod 8 to move into the through-channel 41 and presses the insert rod into the filling groove 51, thus allowing the insert rod to be inserted into the block sugar in the filling groove 51. Then, the rotating ring 4 continues to rotate, causing the through-drive column 6 and the outer push column 7 to rotate, causing the through-drive column 6 to disengage from the insertion abutment plate 2. Afterward, the outer push column 7 rotates with the rotating ring 4 and presses against the separation abutment plate 3. The outer push column 7 moves outward under the pressure of the separation abutment plate 3, causing the through-drive column 6 to move outward. The through-drive column 6 drives the push rod 8 to move outward, allowing the push rod 8 to reset and facilitate the subsequent insertion of a new insert rod. This process is convenient and efficient.

[0024] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A food insert mechanism, characterized in that, The device includes a fixed disk, an insertion abutment plate, a separation abutment plate, a rotating ring, a material carrier block, a through-drive column, an external push column, a push rod, and an insert rod. The rotating ring is mounted on one side of the fixed disk, and the rotating ring is rotatably mounted on one side of the fixed disk. An insertion abutment plate and a separation abutment plate are mounted on the inner side of the fixed disk. Multiple material carrier blocks are evenly mounted around the outer perimeter of the rotating ring, each with a loading slot. The material carrier blocks are located at the outer end of the rotating ring. Multiple through-channels are evenly mounted around the outer perimeter of the rotating ring, located at the inner end of the rotating ring. Each through-channel corresponds to and communicates with a loading slot on a material carrier block. Multiple through-drive columns are evenly mounted on the rotating ring, slidingly mounted on the rotating ring. The outer ends of the through-drive columns extend to the outside of the rotating ring. An external push column is mounted on the upper side of the outer end of each through-drive column. A push rod is installed above the moving column; the push rod slides through the through-channel of the rotating ring, and a plug is installed in each through-channel, with the push rod and plug corresponding one to one; the rotating ring rotates, causing the through-drive column and the outer push column to rotate. The through-drive column rotates with the rotating ring, and its outer end is pressed by the insertion abutment plate, causing the through-drive column to move into the rotating ring. The through-drive column drives the push rod to move into the through-channel and presses the plug into the loading slot. The rotating ring continues to rotate, causing the through-drive column and the outer push column to rotate, and causing the through-drive column to disengage from the insertion abutment plate. Then, the outer push column rotates with the rotating ring and presses against the separation abutment plate. The outer push column is pressed outward by the separation abutment plate, causing the through-drive column to move outward. The through-drive column drives the push rod to move outward, causing the push rod to reset.

2. The food insert mechanism according to claim 1, characterized in that, Multiple through-holes are formed inside the rotating ring; the through-hole driving column slides through the through-holes.

3. The food insert mechanism according to claim 1, characterized in that, The push-out columns are arranged in a vertical structure. The lower end of the push-out column is fixedly sleeved on the outer end of the drive column, and the upper end of the push-out column is movably connected to the outer end of the push rod.

4. The food insert mechanism according to claim 3, characterized in that, The outer end of the push rod is connected to the outer push post, and a screw is screwed to the upper end of the outer push post. The lower end of the screw presses against the upper side of the outer end of the push rod.

5. The food insert mechanism according to claim 1, characterized in that, The inner side of the loading trough is provided with a guide groove, and the guide groove and the through channel are relatively distributed. The push rod pushes the insertion rod through the through channel and the guide groove.

6. The food insert mechanism according to claim 1, characterized in that, The inner surfaces of both the insertion abutment plate and the separation abutment plate are inclined slope structures.