Cutting device capable of controlling cutter distance for processing crunchy rice candy

By introducing longitudinal cutting, separating, and heat dissipation components into the rice candy cutting device, the problem of sticking on the cut surface of the rice candy was solved, achieving efficient cutting and shaping, reducing the difficulty of manual sorting, and improving production efficiency and product quality.

CN121753875AInactive Publication Date: 2026-03-31CHONGQING JIANGJIN DISTRICT JINPIN SIMIANSHAN RICE KRISPIE TREATS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-01-21
Publication Date
2026-03-31
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the cutting process, residual heat on the cut surface of rice candy causes the syrup to adhere strongly, resulting in sticking of the cut surfaces, which affects the molding quality and increases the difficulty and cost of manual sorting.

Method used

A cutting device with controllable blade spacing was designed, comprising a longitudinal cutting component, a first separating component, and a transverse cutting component. A cooling fan is used to dissipate heat from the cutting surface, and the separating component is used to physically separate the rice candies to prevent them from sticking together.

Benefits of technology

This improved the cutting and shaping quality of rice candy, reduced the workload and production costs of subsequent manual sorting, and ensured rapid curing of the cut surfaces and consistent specifications.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of crunchy rice candy processing, and discloses a cutter-distance-controllable cutting device for crunchy rice candy processing, which comprises a base, a conveying frame is mounted on the base, a first conveying belt and a second conveying belt are mounted on the conveying frame, and limiting plates are mounted on two sides of the conveying frame and used for limiting two sides of crunchy rice candies. A heat dissipation cover is arranged on the right side of the base, first heat dissipation fans are installed on the two sides in the heat dissipation cover, a second heat dissipation fan is installed on the top of the heat dissipation cover, and the longitudinal cutting assembly is arranged on the base and used for cutting conveyed crunchy rice candies into strips, and the longitudinal cutting distance can be adjusted; physical separation treatment after longitudinal cutting and transverse cutting of the crunchy rice candies can be achieved through the first separation assembly and the second separation assembly, adhesion of the cut faces of the crunchy rice candies due to syrup in a waste heat state is avoided, the forming quality of cut crunchy rice candy materials is improved, the operation intensity of follow-up manual sorting is reduced, and the processing cost is reduced.
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Description

Technical Field

[0001] This invention relates to the field of rice candy processing technology, specifically a cutting device for rice candy processing with controllable blade spacing. Background Technology

[0002] Rice candy is a traditional snack made primarily from glutinous rice, white sugar, and maltose, supplemented with oil, peanuts, sesame seeds, and other ingredients. It is produced through processes such as sugar boiling, mixing, pressing, and cutting into pieces. It is characterized by its crispy texture, sweet but not greasy taste, and convenient portability. The production process of rice candy requires cutting into pieces.

[0003] The working principle of the rice candy cutting device is as follows: the pressed rice candy is conveyed to the longitudinal cutting station via a conveyor belt, where it is cut into several strips by the longitudinal cutting blade. The strips of rice candy are then conveyed to the transverse cutting station, where they are further cut into blocks of a preset size by the transverse cutting blade. However, there are significant technical defects in the actual production process: the strips of rice candy cut by the longitudinal cutting blade and the blocks of rice candy cut by the transverse cutting blade have residual heat at the cut surfaces, resulting in the syrup at the cut surfaces still having strong adhesion. Traditional production lines do not have an immediate separation and cooling mechanism after cutting, so the strips and blocks of rice candy naturally accumulate and come into contact during the conveying process. The syrup in the residual heat state is prone to sticking together, causing damage to the edges of the cut blocks and poor consistency in specifications. This not only seriously affects the quality of the rice candy cutting and forming, but also greatly increases the labor intensity and production cost of subsequent manual sorting.

[0004] To address this issue, those skilled in the art have proposed a cutting device for processing rice candy with controllable blade spacing, in order to solve the problems mentioned in the background. Summary of the Invention

[0005] The purpose of this invention is to provide a cutting device for processing rice candy with controllable blade spacing, so as to solve the problems mentioned in the background art.

[0006] To achieve the above objectives, the present invention provides the following technical solution: A cutting device for processing rice candy with controllable blade spacing includes a base, a conveyor frame mounted on the base, a first conveyor belt and a second conveyor belt mounted on the conveyor frame, and limit plates mounted on both sides of the conveyor frame for limiting the movement of the rice candy on both sides. A heat dissipation shroud is provided on the right side of the base, and a first cooling fan is mounted on both sides inside the heat dissipation shroud, and a second cooling fan is mounted on the top. The device also includes: A longitudinal cutting assembly, which is mounted on a base, is used to cut the conveyed rice candy into strips and the longitudinal cutting spacing can be adjusted. The first separating component is disposed inside the heat sink and connected to the longitudinal cutting component. The strips of rice candy cut by the longitudinal cutting component will enter the first separating component to achieve physical separation of the strips of rice candy. A cross-cutting component, which is mounted on a base, is used to cut the strips of rice candy cut by the longitudinal cutting component into pieces; The cross-cutting assembly includes several connecting rods and cross-cutting blades installed at the bottom of the connecting rods. A lifting frame is installed on the base, and a second telescopic component is installed on the lifting frame. The telescopic end of the second telescopic component is equipped with the lifting frame. An adjustment assembly and a second separating assembly are provided between the lifting frame and the several connecting rods. The adjustment assembly is used to adjust the spacing of the several cross-cutting blades. The block-shaped rice candy cut by the cross-cutting assembly is pushed synchronously by the second separating assembly, and the block-shaped rice candy on the front and back sides will gradually separate during the pushing process.

[0007] As a preferred embodiment of the present invention, the longitudinal cutting assembly includes a longitudinal cutting frame mounted on a base and located above a first conveyor belt. A rotating shaft is rotatably arranged on the side wall of the longitudinal cutting frame, and a rotating drum is mounted on the rotating shaft. Sliding grooves are opened on both sides of the rotating drum, and a plurality of sliding frames are slidably arranged in the sliding grooves. A longitudinal cutting blade is mounted on the circular outer wall of the sliding frame, and a first telescopic member connected to the outer wall of the rotating drum is mounted on the side wall of the sliding frame. The rotating shaft is connected to a power component.

[0008] As a preferred embodiment of the present invention, the power component includes a drive component mounted on the side wall of the longitudinal cutting frame, a second bevel gear mounted on the output end of the drive component, and a first bevel gear meshing with the second bevel gear mounted on the end of the rotating shaft.

[0009] As a preferred embodiment of the present invention, the first separating component includes two fixed rods mounted on the conveyor frame, a plurality of movable frames corresponding to the sliding frame are slidably arranged on the fixed rods, a partition is installed at the bottom of the movable frame, and a heat dissipation hole is provided at the top of the partition, and a connecting frame that is rotatably connected to the sliding frame is provided at one end of the movable frame near the sliding frame.

[0010] As a preferred embodiment of the present invention, the adjustment assembly includes adjustment slots formed on both sides of the lifting frame, a plurality of adjustment blocks corresponding to the connecting rods are slidably arranged in the adjustment slots, an adjustment frame is installed at the bottom of the adjustment block, and a third telescopic member connected to the lifting frame is installed on the adjustment block.

[0011] As a preferred embodiment of the present invention, the second separating component includes an elastic element, a separating element, and a pushing element. The elastic element is disposed within the adjusting frame and connected to the connecting rod. The separating element is disposed between the elastic element and the lifting frame. The pushing element is disposed at both ends of the lifting frame.

[0012] As a preferred embodiment of the present invention, the elastic element includes a guide rod and a limiting rod installed in the adjusting frame. A guide block connected to a connecting rod is slidably disposed on the guide rod, and a limiting block that slidably cooperates with the limiting rod is disposed on the guide block. The limiting block is connected to the inner wall of the adjusting frame by a spring.

[0013] As a preferred embodiment of the present invention, the separator includes a pushing groove formed in a plurality of guide blocks, and the inclination angle of the pushing groove in the plurality of guide blocks decreases sequentially from the longitudinal cutting frame to the transverse cutting frame. Two mounting rods are installed on the top of the adjusting frame, and a base plate is installed at the bottom of the mounting rod. A sliding plate is slidably arranged on the mounting rod, and a pushing plate that contacts the surface of the pushing groove is installed at the bottom of the sliding plate.

[0014] As a preferred embodiment of the present invention, the pushing member includes a fourth telescopic member installed at both ends of the lifting frame, and the telescopic end of the fourth telescopic member is equipped with a linkage plate that cooperates with the sliding plate.

[0015] The present invention has the following advantages: The present invention uses a first conveyor belt to transport rice candy to the longitudinal cutting station. After the longitudinal cutting component cuts the rice candy strips into strips, the strips of rice candy enter the first separating component to physically separate adjacent strips. In this area, a first cooling fan will dissipate heat, accelerating the solidification rate of the syrup on the cut surface of the rice candy. Subsequently, the strips of rice candy are transported to the transverse cutting station, located on a second conveyor belt. After the transverse cutting component presses down and cuts the strips of rice candy, a pushing component will push several blocks of rice candy to move synchronously along the second conveyor belt. During the pushing process, the blocks of rice candy on the front and back sides will gradually separate. Then, the second cooling fan will dissipate heat from the separated blocks of rice candy. The first and second separating components can achieve physical separation of the rice candy after longitudinal and transverse cutting, preventing the cut surfaces of the rice candy from sticking together due to residual heat from the syrup, improving the forming quality of the rice candy cuttings, reducing the intensity of subsequent manual sorting, and lowering processing costs. Attached Figure Description

[0016] Figure 1 A schematic diagram of a cutting device for processing rice candy with controllable blade spacing; Figure 2 A schematic diagram of a cutting device for processing rice candy with controllable blade spacing, without the heat sink. Figure 3 A schematic diagram of the longitudinal cutting component and the first separating component in a cutting device for processing rice candy with controllable blade spacing; Figure 4 A schematic diagram of the lifting frame in a cutting device for processing rice candy with controllable blade spacing; Figure 5This is a schematic diagram of the adjusting component in a cutting device for processing rice candy with controllable blade spacing; Figure 6 for Figure 5 A magnified view of a section at point A in the middle; Figure 7 This is a schematic diagram of the structure of the second separating component in a cutting device for processing rice candy with controllable blade spacing; Figure 8 This is a schematic diagram of the internal structure of the guide block in a cutting device for processing rice candy with controllable blade spacing; Figure 9 A schematic diagram of the structure of the first and second conveyor belts in a cutting device for processing rice candy with controllable blade spacing; Figure 10 This is a schematic diagram of the internal structure of the heat sink in a cutting device for processing rice candy with controllable blade spacing.

[0017] In the diagram: 101, base; 102, conveyor frame; 103, first conveyor belt; 104, second conveyor belt; 105, limiting plate; 106, heat sink; 2. longitudinal cutting assembly; 201, longitudinal cutting frame; 202, rotating shaft; 203, rotating drum; 204, chute; 205, sliding frame; 206, longitudinal cutting blade; 207, first telescopic component; 208, first bevel gear; 209, second bevel gear; 210, driving component; 3. first partition assembly; 301, fixing rod; 302, movable frame; 303, partition plate; 304, heat dissipation hole; 305, connecting frame; 4. cross-cutting assembly; 401 402. Cross-cutting frame; 403. Second telescopic component; 404. Lifting frame; 405. Connecting rod; 406. Cross-cutting blade; 5. Adjustment assembly; 507. Adjustment groove; 508. Adjustment block; 509. Adjustment frame; 5000. Third telescopic component; 600. Second partition assembly; 601. Guide rod; 602. Guide block; 603. Limiting rod; 604. Limiting block; 605. Spring; 606. Mounting rod; 607. Base plate; 608. Slide plate; 609. Push plate; 610. Pushing spur groove; 611. Fourth telescopic component; 612. Linkage plate; 7. First cooling fan; 8. Second cooling fan. Detailed Implementation

[0018] The technical solution of the present invention will be further described in detail below with reference to specific embodiments.

[0019] Example 1: Please refer to Figures 1-10A cutting device for processing rice candy with controllable blade spacing includes a base 101, on which a conveyor frame 102 is mounted. A first conveyor belt 103 and a second conveyor belt 104 are mounted on the conveyor frame 102. The first conveyor belt 103 and the second conveyor belt 104 are conventional conveying mechanisms, which will not be described in detail here. Limiting plates 105 are installed on both sides of the conveyor frame 102 to limit the movement of the rice candy. A heat dissipation shroud 106 is provided on the right side of the base 101. First cooling fans 7 are installed on both sides inside the heat dissipation shroud 106 to dissipate heat from the rice candy cut into strips. A second cooling fan 8 is installed on the top to dissipate heat from the rice candy cut into blocks. The device also includes: Longitudinal cutting component 2, which is mounted on base 101, is used to cut the conveyed rice candy into strips and the longitudinal cutting spacing can be adjusted. The first separating component 3 is disposed inside the heat dissipation cover 106 and connected to the longitudinal cutting component 2. The strips of rice candy cut by the longitudinal cutting component 2 will enter the first separating component 3 to achieve physical separation of the strips of rice candy. The transverse cutting component 4 is mounted on the base 101 and is used to cut the strip-shaped rice candy cut by the longitudinal cutting component 2 into pieces. The cross-cutting component 4 includes several connecting rods 404 and cross-cutting blades 405 installed at the bottom of the connecting rods 404. A lifting frame 403 is installed on the base 101, and a second telescopic member 402 is installed on the lifting frame 403. The second telescopic member 402 can be configured as a hydraulic rod. The lifting frame 403 is installed at the telescopic end of the second telescopic member 402. An adjustment component 5 and a second separating component 6 are provided between the lifting frame 403 and the several connecting rods 404. The adjustment component 5 is used to adjust the spacing of the several cross-cutting blades 405. The block-shaped rice candy cut by the cross-cutting component 4 is pushed synchronously by the second separating component 6, and the block-shaped rice candy on the front and rear sides will gradually separate during the pushing process.

[0020] The extension and retraction of the second telescopic member 402 can drive the lifting frame 403 to rise and fall, thereby enabling the cross-cutting blade 405 on the connecting rod 404 to press down and cut the strip-shaped rice candy.

[0021] In one instance of this embodiment, please refer to Figure 2 and Figure 3The longitudinal cutting assembly 2 includes a longitudinal cutting frame 201 mounted on a base 101 and located above a first conveyor belt 103. A rotating shaft 202 is rotatably mounted on the side wall of the longitudinal cutting frame 201. A rotating drum 203 is mounted on the rotating shaft 202. Sliding grooves 204 are opened on both sides of the rotating drum 203. A plurality of sliding frames 205 are slidably arranged in the sliding grooves 204. A longitudinal cutting blade 206 is mounted on the circular outer wall of the sliding frame 205. A first telescopic member 207 connected to the outer wall of the rotating drum 203 is mounted on the side wall of the sliding frame 205. A power component is connected to the rotating shaft 202.

[0022] The power component includes a drive component 210 mounted on the side wall of the longitudinal cutting frame 201. A second bevel gear 209 is mounted on the output end of the drive component 210, and a first bevel gear 208 that meshes with the second bevel gear 209 is mounted on the end of the rotating shaft 202.

[0023] The first conveyor belt 103 will transport the rice candy to the longitudinal cutting station, and the limiting plates 105 on both sides of the conveyor frame 102 will limit the rice candy to ensure accurate transport of the rice candy and facilitate longitudinal and transverse cutting operations.

[0024] Specifically, when the drive unit 210 is started, the output shaft of the drive unit 210 rotates. Through the meshing of the first bevel gear 208 and the second bevel gear 209, the rotating shaft 202 can be driven to rotate, causing the rotating drum 203 to rotate, thereby driving the sliding frame 205 to rotate synchronously. This allows the longitudinal cutter 206 on the sliding frame 205 to longitudinally cut the rice candy. As the first conveyor belt 103 continues to convey the rice candy, it is cut into strips.

[0025] In addition, the first telescopic member 207 can adjust the position of several sliding frames 205 in the slide groove 204 by telescopic movement, thereby changing the spacing of several longitudinal cutting blades 206 and realizing the spacing adjustment of the longitudinal cutting blades 206.

[0026] It should be noted that the specific structure of the driving component 210 and the first telescopic component 207 is not limited. Preferably, the driving component 210 is a motor and the first telescopic component 207 is a hydraulic rod.

[0027] In one instance of this embodiment, please refer to Figure 2 and Figure 3 The first separating component 3 includes two fixed rods 301 mounted on the conveyor frame 102. Several movable frames 302 corresponding to the sliding frame 205 are slidably arranged on the fixed rods 301. A partition 303 is installed at the bottom of the movable frame 302, and a heat dissipation hole 304 is provided at the top of the partition 303. A connecting frame 305 that is rotatably connected to the sliding frame 205 is provided at one end of the movable frame 302 near the sliding frame 205.

[0028] After the rice candy is cut into strips by the longitudinal cutting component 2, it will directly enter the separation area formed by the adjacent partition 303, thereby physically separating the strips of rice candy and preventing the cut surfaces of the rice candy from accumulating and sticking together due to the residual heat of the syrup.

[0029] Furthermore, as the strip-shaped rice candy moves along the partition 303, the partition 303 is made of a heat-conducting material (such as food-grade aluminum alloy), which allows the heat from the cut surface of the rice candy to be transferred to the partition 303. The airflow generated by the first cooling fan 7, combined with the heat dissipation holes 304 on the partition 303, can dissipate heat, thereby cooling the cut surface of the strip-shaped rice candy before it is conveyed to the cross-cutting assembly 4, so that the syrup on the cut surface can be quickly solidified, making it convenient for the cross-cutting assembly 4 to perform cross-cutting operations.

[0030] Furthermore, since the connecting frame 305 is rotatably connected to the sliding frame 205, the positions of several partitions 303 will also be adjusted synchronously when the spacing of the longitudinal cutter 206 is adjusted.

[0031] In one instance of this embodiment, please refer to Figure 4 and Figure 5 The adjustment component 5 includes adjustment slots 501 on both sides of the lifting frame 403. Several adjustment blocks 502 corresponding to the connecting rod 404 are slidably arranged in the adjustment slots 501. An adjustment frame 503 is installed at the bottom of the adjustment block 502, and a third telescopic member 504 connected to the lifting frame 403 is installed on the adjustment block 502.

[0032] The position of several adjusting blocks 502 connected to them in the adjusting groove 501 can be adjusted by extending and retracting several third telescopic members 504, that is, the position of the adjusting frame 503 connected to the adjusting block 502 is changed, and then the spacing of several connecting rods 404 is changed synchronously by the second dividing component 6, that is, the spacing of several cross-cutting blades 405 is changed, so as to realize the spacing adjustment of the cross-cutting blades 405.

[0033] It should be noted that the specific structure of the third telescopic member 504 is not limited. Preferably, the third telescopic member 504 is set as a hydraulic rod.

[0034] Example 2: Please refer to Figures 1-10 The other contents of this embodiment are the same as those of embodiment 1, except that: the second separating component 6 includes an elastic element, a separating element and a pushing element. The elastic element is disposed in the adjusting frame 503 and connected to the connecting rod 404. The separating element is disposed between the elastic element and the lifting frame 403. The pushing element is disposed at both ends of the lifting frame 403.

[0035] Furthermore, the elastic element includes a guide rod 601 and a limiting rod 603 installed in the adjusting frame 503. A guide block 602 connected to the connecting rod 404 is slidably disposed on the guide rod 601. A limiting block 604 that slidably cooperates with the limiting rod 603 is disposed on the guide block 602. The limiting block 604 is connected to the inner wall of the adjusting frame 503 through a spring 605.

[0036] In the initial state, the spring 605 is in a compressed state. Due to the elastic force of the spring 605 on the limiting block 604, the guide block 602 is located at the end of the guide rod 601 away from the spring 605, thereby initially limiting the cross-cutting blade 405 on the connecting rod 404.

[0037] Furthermore, the separator includes a pushing groove 610 formed in a plurality of guide blocks 602, and the inclination angle of the pushing groove 610 in the plurality of guide blocks 602 decreases sequentially from the longitudinal cutting frame 201 to the transverse cutting frame 401. The top of the adjusting frame 503 is equipped with two mounting rods 606, the bottom end of the mounting rods 606 is equipped with a base plate 607, a sliding plate 608 is slidably arranged on the mounting rods 606, and a pushing plate 609 is installed at the bottom of the sliding plate 608 that contacts the surface of the pushing groove 610.

[0038] In the initial state, the push plate 609 is located at one end of the top of the push chute 610. After the cross-cutting blade 405 completes the cutting of the rice candy strips, the pusher will push the slide plate 608 down. The slide plates 608 corresponding to several cross-cutting blades 405 will descend along the mounting rod 606. The slide plates 608 will drive the push plate 609 down. The force applied to the push chute 610 can push the guide block 602 to slide along the guide rod 601 toward the side of the spring 605, that is, the guide block 602 slides away from the longitudinal cutting assembly 2. This can drive the cross-cutting blade 405 to push the block rice candy to slide along the surface of the second conveyor belt 104, so that the block rice candy is separated from the uncut rice candy strips.

[0039] Furthermore, during the process of pushing the block rice candy, the inclination angle of the pushing chute 610 of several guide blocks 602 gradually decreases from left to right, and the height of the pushing chute 610 is the same, so that the movable distance of the guide blocks 602 along the guide rod 601 gradually increases. Thus, while pushing the block rice candy to separate from the uncut strip rice candy, the rice candy on the front and back sides can also be separated. This can effectively prevent the cut surface of the block rice candy from accumulating and adhering due to residual heat syrup. In addition, the second conveyor belt 104 will transport the block rice candy, and the second cooling fan 8 will dissipate heat from the transported block rice candy, so that the syrup on the cut surface of the block rice candy can be quickly solidified.

[0040] After the blocky rice candy is separated, the pusher resets. Under the action of the spring 605, the guide block 602 will reset along the guide rod 601, so that the cross-cutting blade 405 on the connecting rod 404 can also reset. The pusher groove 610 will push the pusher plate 609 to rise and reset along the mounting rod 606.

[0041] Furthermore, the pushing component includes a fourth telescopic component 611 installed at both ends of the lifting frame 403, and the telescopic end of the fourth telescopic component 611 is equipped with a linkage plate 612 that cooperates with the slide plate 608.

[0042] After the cross-cutting blade 405 completes the cutting of the strip-shaped rice candy, the fourth telescopic component 611 will drive the linkage plate 612 to descend. The linkage plate 612 will push several sliding plates 608 to slide down the mounting rod 606 simultaneously, so that the push plate 609 can descend and apply force to the push groove 610, so that the guide block 602 can slide along the guide rod 601.

[0043] Since the linkage plate 612 and several sliding plates 608 do not have a corresponding connection structure, the adjustment component 5 can easily adjust the spacing of several cross-cutting blades 405.

[0044] It should be noted that the specific structure of the fourth telescopic member 611 is not limited. Preferably, the fourth telescopic member 611 is set as a hydraulic rod.

[0045] The working principle of this invention is as follows: the pressed rice candy is placed on the first conveyor belt 103, and the limiting plates 105 on both sides of the conveyor frame 102 limit the rice candy on both sides for precise conveying. The rice candy is conveyed to the longitudinal cutting station by the first conveyor belt 103, so that the longitudinal cutting component 2 can cut the rice candy into strips. Then, the strips of rice candy enter the partitioned areas formed by several partitions 303 to achieve physical separation. The heat of the cut surface of the strips of rice candy is conducted to the partitions 303. At the same time, the first cooling fan 7 dissipates heat from the partitions 303 through the heat dissipation holes 304, thereby heat dissipating the cut surface of the strips of rice candy and allowing it to solidify quickly. The strips of rice candy pass through the partitions 303. After step 3, the rice candy will enter the second conveyor belt 104 and move to the cross-cutting station. At this time, both the first conveyor belt 103 and the second conveyor belt 104 will stop. The cross-cutting component 4 will press down and cross-cut the strip-shaped rice candy. After the cross-cutting is completed, the second separating component 6 will push several block-shaped rice candy to move along the second conveyor belt 104. During the movement, the block-shaped rice candy on the front and back sides will also be separated. Then the second conveyor belt 104 can transport the block-shaped rice candy and the second cooling fan 8 will heat the cut surface of the block-shaped rice candy. The first conveyor belt 103 will also start to transport the strip-shaped rice candy to the cross-cutting station. By repeating the above process, the continuous longitudinal and cross-cutting operation of rice candy can be realized.

[0046] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

[0047] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A cutting device for rice crispies processing with controllable knife distance, comprising a base, a conveying frame is installed on the base, characterized in that, The conveying frame is provided with a first conveying belt and a second conveying belt, and both sides of the conveying frame are provided with limiting plates for limiting the two sides of the rice candy. The longitudinal cutting assembly is arranged on the base and is used for cutting the conveyed rice candy into strips, and the longitudinal cutting interval can be adjusted. The first separating assembly is arranged in the heat sink and is connected with the longitudinal cutting assembly, and the cut rice candy strips enter the first separating assembly to realize physical separation of the rice candy strips. The transverse cutting assembly is arranged on the base and is used for cutting the rice candy strips cut by the longitudinal cutting assembly. The transverse cutting assembly comprises a plurality of connecting rods and transverse cutting knives arranged at the bottom of the connecting rods.

2. The controllable knife gap marshmallow processing cutting apparatus of claim 1, wherein, The base is provided with a lifting frame, and the lifting frame is provided with a second telescopic member.

3. The controllable knife gap marshmallow processing cutting apparatus of claim 2, wherein, The lifting frame and the plurality of connecting rods are provided with an adjusting assembly and a second separating assembly.

4. The controllable knife gap marshmallow processing cutting apparatus of claim 2, wherein, The adjusting assembly is used for adjusting the interval of the plurality of transverse cutting knives.

5. The controllable knife gap marshmallow processed cutting apparatus of claim 4, wherein, The second separating assembly synchronously pushes the block-shaped rice candy cut by the transverse cutting assembly, and the block-shaped rice candy on the front and back sides is gradually separated during the pushing process.

6. The controllable knife gap marshmallow processing cutting apparatus of claim 5, wherein, The longitudinal cutting assembly comprises a longitudinal cutting frame arranged on the base and above the first conveying belt.

7. The controllable knife gap marshmallow processing cutting apparatus of claim 6, wherein, A rotating shaft is arranged on the side wall of the longitudinal cutting frame.

8. The controllable knife gap marshmallow processing cutting apparatus of claim 7, wherein, A rotating drum is arranged on the rotating shaft. Sliding grooves are arranged on both sides of the rotating drum. A plurality of sliding frames are slidably arranged in the sliding grooves. The circular outer wall of the sliding frame is provided with a longitudinal cutting knife. The side wall of the sliding frame is provided with a first telescopic member connected with the outer wall of the rotating drum. The rotating shaft is connected with a power member. The power member comprises a driving member arranged on the side wall of the longitudinal cutting frame. The output end of the driving member is provided with a second bevel gear. The end of the rotating shaft is provided with a first bevel gear engaged with the second bevel gear. The first separating assembly comprises two fixed rods arranged on the conveying frame. A plurality of movable frames corresponding to the sliding frames are slidably arranged on the fixed rods. The bottom of the movable frame is provided with a partition plate. The top of the partition plate is provided with heat dissipation holes. The end of the movable frame close to the sliding frame is provided with a connecting frame rotatably connected with the sliding frame. The adjusting assembly comprises adjusting grooves arranged on both sides of the lifting frame. A plurality of adjusting blocks corresponding to the connecting rods are slidably arranged in the adjusting grooves. The bottom of the adjusting block is provided with an adjusting frame. The adjusting block is provided with a third telescopic member connected with the lifting frame. The second separating assembly comprises an elastic member, a separating member and a pushing member. The elastic member is arranged in the adjusting frame and is connected with the connecting rod. The separating member is arranged between the elastic member and the lifting frame. The pushing member is arranged at both ends of the lifting frame. The elastic member comprises a guide rod and a limiting rod arranged in the adjusting frame. The guide rod is slidably provided with a guide block connected with the connecting rod. The guide block is provided with a limiting block slidably matched with the limiting rod. The limiting block is connected with the inner wall of the adjusting frame through a spring. The separating member comprises pushing inclined grooves arranged in a plurality of guide blocks. The inclination angle of the pushing inclined grooves gradually decreases from the longitudinal cutting frame to the transverse cutting frame. The top of the adjusting frame is provided with two mounting rods. The bottom end of the mounting rod is provided with a bottom plate. A sliding plate is slidably arranged on the mounting rod. The bottom of the sliding plate is provided with a pushing plate in contact with the surface of the pushing inclined groove.

9. The controllable knife gap marshmallow processing cutting apparatus of claim 8, wherein, The pushing member comprises fourth telescopic members installed at both ends of the lifting frame, and the telescopic ends of the fourth telescopic members are provided with linkage plates matched with the sliding plates.

10. The controllable knife gap marshmallow processing cutting apparatus of claim 9, wherein, The right side of the base is provided with a heat dissipation cover, two sides in the heat dissipation cover are provided with first heat dissipation fans, and the top is provided with a second heat dissipation fan.