A two-station toast slicing device
By designing a dual-station toast slicing device, two toast blocks are sliced alternately and in parallel, solving the problem of low efficiency of existing equipment and improving the overall efficiency and equipment utilization of the production line.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- FOSHAN RUIPUHUA PACKING MACHINERY CO LTD
- Filing Date
- 2025-08-08
- Publication Date
- 2026-07-07
AI Technical Summary
Existing toast slicing equipment can only process one piece of toast at a time, resulting in low slicing efficiency. This cannot match the high-efficiency operation of toast slicing equipment and creates a production bottleneck.
Design a dual-station toast slicing device, setting up two slicing modules and a selection feeding component to realize the alternating parallel slicing of two toast blocks. By working together with the feeding module and the slicing module, the slicing efficiency is improved.
Effectively matching the slicing speed of the toast slicing device improves the overall efficiency of the production line, avoids toast slice accumulation, and enhances equipment utilization and corporate economic benefits.
Smart Images

Figure CN224467018U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of food processing technology, and in particular to a dual-station toast slicing device. Background Technology
[0002] In the industrial production of toast, a large block of toast is typically first produced by a forming machine. This block then undergoes a cutting process, where a toast slicing device cuts it into slices of a predetermined thickness. After cutting, these tightly stacked slices are separated individually (i.e., sliced) and transported separately for subsequent individual packaging.
[0003] In existing technologies, there are specialized toast slicer devices for the toast slicer process. These devices typically include: a toast conveyor mechanism for carrying and transporting large slices of toast, a slicer mechanism for separating stacked toast slices one by one, and a toast slice conveyor mechanism for receiving and transporting individual, separated toast slices. Their core function is to achieve the physical separation of the toast slices and the sequential output of individual toast slices.
[0004] However, currently widely used toast slicing equipment generally suffers from a significant efficiency bottleneck: its slicing mechanism is typically designed to process only one slice of toast (i.e., a stack of toast slices) at a time. This processing mode greatly limits slicing efficiency.
[0005] Furthermore, in automated production lines, toast slicing equipment typically needs to be directly connected to the upstream toast slicing unit. Because toast slicing equipment is usually highly efficient and can quickly and continuously produce cut toast slices, the downstream toast slicing equipment is limited by its single-piece processing capacity, and its processing speed often cannot match the slicing speed.
[0006] This imbalance in speed between upstream and downstream processes inevitably leads to the accumulation of sliced toast at the slicing station. To alleviate this accumulation, the production line has to passively reduce the speed of the upstream slicing equipment, creating a production bottleneck. This not only restricts the overall production line capacity but also reduces equipment utilization and the company's economic benefits. Utility Model Content
[0007] The technical problem to be solved by this utility model is to provide a dual-station toast slicing device to solve one or more technical problems existing in the prior art, and at least provide a beneficial option or create conditions.
[0008] The solution to the technical problem of this utility model is:
[0009] A dual-station toast slicing device is provided, comprising a first direction, a second direction, and a third direction that are orthogonal to each other. The device includes a pushing module with a toast moving channel. The toast moving channel has a toast input end, a first output end, and a second output end. The first output end and the second output end are located on the same side of the toast input end in the first direction, and the first output end or the second output end is arranged along the second direction. The pushing module is used to alternately output toast blocks input from the toast input end to the first output end or the second output end. The toast slicer module comprises two components: a first slice conveying component, which has a slice input end and a slice output end; the slice input ends of the two first slice conveying components are respectively connected to the first output end and the second output end; a slice component, which is disposed at the slice output end; the slice component is used to slice the toast block, so that adjacent toast slices are separated; and a second slice conveying component, which is connected to the slice output end, and conveys the individual toast slices after slicing.
[0010] As a further improvement to the above technical solution, the slicing component includes: a slicing driving unit, which is fixedly disposed; a slicing unit, which is provided with a slicing connecting part and a slicing execution part, the slicing connecting part being installed on the execution end of the slicing driving unit, the slicing driving unit driving the slicing execution part to move along the slicing path; the slicing path is provided with a lower slicing pole, and during the process of the slicing unit moving downward to the lower slicing pole, the slicing execution part pushes the upper end of the toast slice, causing the toast slice to tilt away from the slicing input end.
[0011] As a further improvement to the above technical solution, the output terminal of the slicing unit and the slicing driving unit are detachably and fixedly connected.
[0012] As a further improvement to the above technical solution, the segmentation unit is detachably threaded to the output end of the segmentation drive unit.
[0013] As a further improvement to the above technical solution, the cross-section of the segmented execution part is larger than the cross-section of the segmented connection part.
[0014] As a further improvement to the above technical solution, the segmentation driving unit is a rotary driving device, and the segmentation path is a circular path.
[0015] As a further improvement to the above technical solution, the first slice conveying assembly includes: a slice main conveying line, which is used to support and convey the toast blocks, so that the toast blocks move from the slice input end to the slice output end.
[0016] As a further improvement to the above technical solution, the segmented conveying assembly further includes: two side limiting conveying lines, which are respectively arranged on both sides of the segmented main conveying line, and the side limiting conveying lines work synchronously and at the same speed as the segmented main conveying line.
[0017] As a further improvement to the above technical solution, the feeding module includes: a front feeding component, the front feeding component including: a first feeding drive unit, the first feeding drive unit being fixedly disposed; a second feeding drive unit, the first feeding drive unit driving the second feeding drive unit to move along a first direction; a feeding unit, the second feeding drive unit driving the feeding unit to move along a third direction; and a selection feeding component, the selection feeding component including: a first selection drive unit, the first selection drive unit being fixedly disposed; a second selection drive unit, the second selection drive unit being installed at the output end of the first selection drive unit, the first selection drive unit driving the second selection drive unit to move along a second direction; and a selection feeding unit, the selection feeding unit being installed at the output end of the second selection drive unit, the second selection drive unit driving the selection feeding unit to move along a third direction.
[0018] As a further improvement to the above technical solution, the conveying direction of the first segmented conveying component is parallel to the second direction; the number of the selected feeding components is set to two, and the selected feeding components correspond one-to-one with the segmented modules; the stroke of the selected feeding unit is greater than the sum of the conveying distance of the corresponding first segmented conveying component and the width of the toast moving channel.
[0019] The beneficial effects of this utility model are: by setting two slicing modules and selecting a feeding component, this solution can simultaneously slice two loaves of bread. The two slicing modules work alternately and in parallel, which can greatly improve the slicing efficiency to match the slicing speed of the bread slicing device, thereby improving the production efficiency of the factory.
[0020] This invention relates to the field of food processing technology. Attached Figure Description
[0021] To more clearly illustrate the technical solutions in the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly explained below. Obviously, the described drawings are only a part of the embodiments of this utility model, and not all of them. Those skilled in the art can obtain other design schemes and drawings based on these drawings without creative effort.
[0022] Figure 1 This is a schematic diagram of the overall structure of an embodiment of the present utility model;
[0023] Figure 2 yes Figure 1 A magnified view of part A in the middle;
[0024] Figure 3 This is a top view of an embodiment of the present invention.
[0025] Figure 4 This is a schematic diagram of the overall structure of the feeder assembly according to an embodiment of the present invention;
[0026] Figure 5 This is a schematic diagram of the overall structure of the selective feeding component according to an embodiment of the present utility model;
[0027] Figure 6 This is a structural schematic diagram of the selective feeding component from another angle according to an embodiment of the present invention;
[0028] Figure 7 This is a schematic diagram of the overall structure of the first segmented conveying component, segmented component, etc., according to an embodiment of this utility model;
[0029] Figure 8 This is a structural schematic diagram of the first segmented conveying component, segmented component, and other structures from another angle according to an embodiment of this utility model;
[0030] Figure 9 This is a partial structural schematic diagram of an embodiment of the present utility model.
[0031] In the diagram, 100 is the frame; 200 is the feeding module; 210 is the front feeding assembly; 211 is the first feeding drive unit; 212 is the second feeding drive unit; 213 is the feeding unit; 214 is the front feeding limit unit; 220 is the selection feeding assembly; 221 is the selection feeding unit; 222 is the first selection drive unit; 223 is the second selection drive unit; 300 is the slicing module; 310 is the first slicing conveyor assembly; 311 is the main slicing conveyor line; 312 is the side limit conveyor line; 320 is the slicing assembly; 321 is the slicing drive unit; 322 is the slicing stepper motor; 323 is the slicing roller; 324 is the slicing unit; 325 is the slicing execution part; 326 is the slicing connection part; and 330 is the second slicing conveyor assembly. Detailed Implementation
[0032] The following will clearly and completely describe the concept, specific structure, and technical effects of this utility model in conjunction with embodiments and accompanying drawings, so as to fully understand the purpose, features, and effects of this utility model. Obviously, the described embodiments are only a part of the embodiments of this utility model, not all of them. Other embodiments obtained by those skilled in the art based on the embodiments of this utility model without creative effort are all within the scope of protection of this utility model. Furthermore, all connections / linkages mentioned herein do not simply refer to direct contact between components, but rather to the ability to form a better connection structure by adding or reducing connecting accessories according to specific implementation conditions. The various technical features in this invention can be combined interactively without contradicting each other.
[0033] In the description of this utility model, it should be understood that the directional descriptions, such as up, down, front, back, left, right, etc., indicate the directional or positional relationship based on the directional or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0034] In the description of this utility model, "several" means one or more, "multiple" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. If "first" or "second" is used in the description, it is only for the purpose of distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features, or implicitly indicating the order of the indicated technical features.
[0035] Currently widely used toast slicing equipment generally suffers from a significant efficiency bottleneck: its slicing mechanism is typically designed to process only one slice of toast (i.e., a stack of toast slices) at a time. This processing mode greatly limits slicing efficiency.
[0036] Furthermore, in automated production lines, toast slicing equipment typically needs to be directly connected to the upstream toast slicing unit. Because toast slicing equipment is usually highly efficient and can quickly and continuously produce cut toast slices, the downstream toast slicing equipment is limited by its single-piece processing capacity, and its processing speed often cannot match the slicing speed.
[0037] This imbalance in speed between upstream and downstream processes inevitably leads to the accumulation of sliced toast at the slicing station. To alleviate this accumulation, the production line has to passively reduce the speed of the upstream slicing equipment, creating a production bottleneck. This not only restricts the overall production line capacity but also reduces equipment utilization and the company's economic benefits.
[0038] To solve the aforementioned technical problems, this solution proposes a dual-station toast slicing device to improve the economic benefits of enterprises.
[0039] Reference Figures 1 to 3 A dual-station toast slicing device is provided, comprising a first direction, a second direction, and a third direction, which are orthogonally arranged to each other. The first direction is parallel to the X-axis in the figure, the second direction is parallel to the Y-axis in the figure, and the third direction is parallel to the Z-axis in the figure, with the third direction being a vertical direction.
[0040] This toast slicing device includes: a frame 100, a feeding module 200, and a slicing module 300.
[0041] Reference Figures 1 to 4 The feeding module 200 includes a front feeding component 210 and a selective feeding component 220.
[0042] The feeding module 200 is equipped with a toast moving channel, which has a toast input end, a first output end, and a second output end.
[0043] Specifically, in this embodiment, baffles are provided on both sides of the toast moving channel. The baffles are adjusted relative to the frame 100 in the second direction by means of a slide rail and a locking mechanism (such as bolt tightening type), so that the width of the toast moving channel can be flexibly adjusted to accommodate toast blocks of different sizes.
[0044] The first output terminal and the second output terminal are located on the same side of the toast input terminal in the first direction. The first output terminal and the second output terminal are arranged along the second direction and are symmetrically arranged.
[0045] Reference Figure 1 , Figure 3 , Figure 5 , Figure 6 The function of the feeding module 200 is to alternately output the toast blocks input from the toast input end to the first output end or the second output end.
[0046] Specifically, the feeder assembly 210 includes a first pusher drive unit 211, a second pusher drive unit 212, and a pusher unit 213.
[0047] The first pusher drive unit 211 is fixedly mounted on the frame 100. The first pusher drive unit 211 is configured as a synchronous belt linear module, and the driving direction of the first pusher drive unit 211 is parallel to the first direction. In other embodiments, the first pusher drive unit 211 can also be configured as a ball screw linear module or a linear motor linear module. Those skilled in the art can select the specific structure of the first pusher drive unit 211 according to actual needs.
[0048] The second pushing drive unit 212 is fixedly installed at the output end of the first pushing drive unit 211. The second pushing drive unit 212 is configured as a linear cylinder, and its driving direction is parallel to a third direction. In other embodiments, the second pushing drive unit 212 can also be configured as a linear motor. Those skilled in the art can select the specific driving method of the second pushing drive unit 212 according to actual needs.
[0049] The pushing unit 213 is a sheet metal component with a pushing plate at its lower end. The pushing plate is used to push the toast block to move in the first direction, thereby pushing the toast block to the first output end and the second output end.
[0050] In other embodiments, the driving direction of the first pushing unit 213 can be set to be parallel to a third direction, and the driving direction of the second pushing unit 212 can be set to be parallel to the first direction. Those skilled in the art can select the specific driving directions of the first pushing unit 211 and the second pushing unit 212 according to actual needs, so as to ensure that the pushing unit 213 can be driven to move along the first direction and the third direction.
[0051] Specifically, in this embodiment, the forward feeding assembly 210 further includes a forward feeding limiting unit 214. The forward feeding limiting unit 214 is located at the end of the toast moving channel away from the toast input end. The forward feeding limiting unit 214 is a plate-shaped component and is adjustablely mounted on the frame 100. The position of the forward feeding limiting unit 214 relative to the frame 100 can be adjusted along a first direction. Specifically, the forward feeding limiting unit 214 is fixed with an adjusting rod. The frame 100 is provided with an adjusting through hole and a locking through hole through which the adjusting rod passes. The locking through hole communicates with the adjusting through hole, and a locking screw is threaded into the locking through hole. When the tail end of the locking screw abuts against the outer circumferential surface of the adjusting rod, the forward feeding limiting unit 214 is locked in place. The forward feeding limiting unit 214 is used to limit the forward movement of the toast block.
[0052] The selection feeding assembly 220 includes: a selection feeding unit 221, a first selection drive unit 222, and a second selection drive unit 223.
[0053] The first selection drive unit 222 is fixedly mounted on the frame 100, and is positioned above the first output terminal and the second output terminal. Specifically, in this embodiment, the first selection drive unit 222 is configured as a synchronous belt linear module. In other embodiments, the first pusher drive unit 211 can also be configured as a ball screw linear module or a linear motor linear module. Those skilled in the art can select the specific structure of the first pusher drive unit 211 according to actual needs.
[0054] The second selection drive unit 223 is fixedly installed at the output end of the first selection drive unit 222. The first selection drive unit 222 drives the second selection drive unit 223 to move along the second direction. The second selection drive unit 223 is configured as a linear cylinder. In other embodiments, the second selection drive unit 223 can also be configured as a linear motor or other conventional linear drive device. Those skilled in the art can select the specific structure of the second selection drive unit 223 according to actual needs.
[0055] The selection feeding unit 221 is a sheet metal component, and its lower end has a selection push plate for pushing the toast block to move in a second direction. The selection feeding unit 221 is fixedly installed at the output end of the second selection drive unit 223, and the second selection drive unit 223 drives the selection feeding unit 221 to move in a third direction.
[0056] Reference Figure 1 , Figure 3 , Figures 7 to 9 The number of segmentation modules 300 is set to two. The two segmentation modules 300 are arranged on both sides of the pusher module 200 along the second direction, and the two segmentation modules 300 are symmetrically arranged.
[0057] Specifically, the slicing module 300 includes: a first slicing conveying component 310, a slicing component 320, and a second slicing conveying component 330.
[0058] Specifically, the conveying direction of the first slice conveying assembly 310 is parallel to the second direction. The two ends of the first slice conveying assembly 310 are respectively configured as a slice input end and a slice output end. The slice input end is used to connect with either the first output end or the second output end, allowing the toast block to move from the pusher module 200 to the slice module 300. The slice input ends of the first slice conveying assemblies 310 of both slice modules 300 are respectively connected to the first output end and the second output end.
[0059] Specifically, in this embodiment, the first segmented conveying assembly 310 includes: a segmented main conveying line 311 and a side limiting conveying line 312.
[0060] The main conveyor line 311 is used to support and convey the toast blocks. The conveying direction of the main conveyor line 311 is parallel to the second direction. The main conveyor line 311 moves the toast blocks from the slice input end to the slice output end.
[0061] The segmented main conveyor line 311 is fixedly installed on the frame 100. The segmented main conveyor line 311 is configured as a conveyor belt structure. In other embodiments, the segmented main conveyor line 311 can also be configured as other conventional conveying structures. Those skilled in the art can select the specific structure of the segmented main conveyor line 311 according to actual needs.
[0062] Two side-limiting conveyor lines 312 are provided, and the two side-limiting conveyor lines 312 are respectively set on both sides of the slicing main conveyor line 311 in the first direction. The side-limiting conveyor lines 312 are also set as conveyor belt structures. The side-limiting conveyor lines 312 are used to limit the sides of the toast blocks to prevent the toast blocks from shifting during transportation, thereby ensuring that the slicing assembly 320 can smoothly slice the toast blocks.
[0063] The side limiting conveyor line 312 operates synchronously and at the same speed as the segmented main conveyor line 311 to ensure that the conveying speed of the two sides and the bottom of the toast block is the same, thereby ensuring the normal transport of the toast block.
[0064] Specifically, in this embodiment, the side limiting conveyor line 312 and the segmented main conveyor line 311 are driven by the same driving device so that the side limiting conveyor line 312 and the segmented main conveyor line 311 can run synchronously. The drive wheel of the side limiting conveyor line 312 and the drive wheel of the segmented main conveyor line 311 are respectively fixed to two bevel gears with the same parameters. The two bevel gears mesh with each other. The drive wheel of the side limiting conveyor line 312 and the drive wheel of the segmented main conveyor line 311 are transmitted through two bevel gears with the same parameters, thereby driving the conveyor belt of the side limiting conveyor line 312 and the conveyor belt of the segmented main conveyor line 311 to operate at the same speed.
[0065] In other embodiments, the side limiting conveyor line 312 and the segmented main conveyor line 311 may also be driven by multiple separate driving devices, but it is necessary to ensure that the side limiting conveyor line 312 and the segmented main conveyor line 311 can run synchronously at the same speed. Those skilled in the art can select the driving structure of the side limiting conveyor line 312 and the segmented main conveyor line 311 according to actual needs.
[0066] The sharding component 320 is located at the sharding output end. Specifically, the sharding component 320 includes a sharding driver unit 321 and a sharding unit 324.
[0067] The segmented drive unit 321 includes a segmented stepper motor 322 and a segmented roller 323. The segmented roller 323 is fixedly installed at the output end of the segmented stepper motor 322, and multiple segmented mounting holes are provided on the outer periphery of the segmented roller 323.
[0068] The two ends of the segmentation unit 324 are respectively provided as a segmentation execution part 325 and a segmentation connection part 326. The segmentation connection part 326 is threadedly connected to the segmentation mounting hole of the segmentation roller 323, thereby realizing the detachable fixation of the segmentation unit 324 and the segmentation roller 323. In other embodiments, other structures (such as snap-fit grooves and snap-fit blocks) can also be used to realize the detachable connection between the segmentation unit 324 and the segmentation roller 323. Those skilled in the art can select the detachable connection structure between the segmentation unit 324 and the segmentation drive unit 321 according to actual needs.
[0069] Specifically, in this embodiment, the interface of the slicing execution unit 325 is larger than the cross-section of the slicing connection unit 326, thereby increasing the contact area between the slicing execution unit 325 and the toast slice, so as to avoid the toast slice being damaged due to the contact area between the slicing execution unit 325 and the toast slice being too small during the slicing process.
[0070] The slice driving unit 321 drives the slice execution unit 325 of the slice unit 324 to move along the slice path. Specifically, in this embodiment, the slice path is set as a circular path. The slice path has a lower slice pole, which is the lowest point of the slice path. During the process of the slice unit 324 moving to the lower slice pole, the slice execution unit 325 pushes the upper end of the toast slice, causing the toast slice to tilt away from the slice connection end.
[0071] In other embodiments, the slicing drive unit 321 can also be configured as a linear drive motor. The slicing drive unit 321 drives the slicing execution part 325 of the slicing unit 324 to reciprocate along a straight slicing path, and causes the contact point between the slicing unit 324 and the toast slice to deviate from the center plane of the toast slice, so that the toast slice tilts away from the slicing connection end during the process of the slicing unit 324 pressing down on the toast slice. The slicing path can also be configured as an elliptical path, a polygonal path, etc. Those skilled in the art can select the specific shape of the slicing path and the specific structure of the slicing drive unit 321 according to actual needs to ensure that the toast slice tilts due to eccentric thrust.
[0072] The second segmented conveyor assembly 330 is configured as a conveyor belt structure. In other embodiments, the second segmented conveyor assembly 330 may also be configured as other conventional conveyor structures. Those skilled in the art can select the specific structure of the second segmented conveyor assembly 330 according to actual needs.
[0073] The second slice conveying component 330 is connected to the slice output end and conveys the individual slices of toast after slicing.
[0074] Specifically, in this embodiment, the number of selection feeding components 220 is set to two, and the two selection feeding components 220 are set one-to-one with the slicing module 300. The stroke of the selection feeding component 220 is greater than the sum of the stroke of the first slicing conveying component 310 and the width of the toast moving channel, so that the selection feeding component 220 can play two roles: 1. It can push the tail end of the toast block, so that the toast block enters the slicing module 300 in the second direction; 2. During the slicing process of the slicing module 300, the selection feeding component 220 keeps in contact with the tail end of the toast block, thereby preventing the toast slice at the tail end from tipping over during the slicing process, thus ensuring that the slicing device can slice the toast block normally.
[0075] Since the toast slicing device is connected to the toast cutting device, the toast cutting device has a higher working efficiency. If a single slicing module 300 is used to connect to the toast cutting device, the working efficiency of the single slicing module 300 is relatively slower than that of the toast cutting device. This will cause the toast blocks to accumulate, resulting in lower production efficiency.
[0076] This solution, by setting up two slicing modules 300 and cooperating with the selected feeding component 220, can simultaneously slice two loaves of bread. The two slicing modules 300 work alternately and in parallel, which can greatly improve the slicing efficiency to match the slicing speed of the bread slicing device, thereby improving the factory's production efficiency.
[0077] The dual-station toast slicing device in this solution completes the process of pushing, diverting, slicing and outputting toast in sequence through a series of automated control actions during actual operation.
[0078] The following section will systematically describe the workflow of the material feeding module 200 and the two segmentation modules 300 in conjunction with their coordinated operation. The entire process is controlled and executed based on a programmable logic controller (PLC) or an industrial embedded control system.
[0079] After the toast slicing device finishes slicing the toast block, the sliced toast block is moved to the toast input end (conveyed by hand or conveyor belt). Then the forward feeding component 210 works, and the first pushing drive unit 211 drives the pushing unit 213 to move along the first direction, thereby pushing the toast block to move.
[0080] When the toast block moves to the first output end and the second output end, the forward feeding component 210 is reset, the first pushing drive unit 211 drives the pushing unit 213 to return along the first direction, and the second pushing drive unit 212 drives the pushing unit 213 to rise, so as to avoid the pushing unit 213 from obstructing the toast block. The forward feeding component 210 waits to execute the next toast block forward feeding action.
[0081] One of the selection feeding components 220 is working, and the first selection drive unit 222 drives the selection feeding unit 221 to move along the second direction. The selection feeding unit 221 pushes the toast block into the corresponding slicing module 300. The slicing module 300 is working. The first slicing conveying component 310 of the slicing module 300 first performs a rapid conveying step. The slicing main conveying line 311 and the side limiting conveying line 312 rapidly convey the toast block so that the front end of the toast block moves quickly to the slicing execution end.
[0082] When the front end of the toast block moves to the slicing execution end, the slicing component 320 starts working. The slicing drive unit 321 drives the slicing unit 324 to rotate. During the rotation of the slicing unit 324, the toast slice at the front end will tilt over. After the toast slice tilts over, it falls into the second slicing conveyor component 330. The second slicing conveyor component 330 conveys the toast slice. At the same time, the first slicing conveyor component 310 switches its working state. The main slicing conveyor line 311 and the side limiting conveyor line 312 convey the toast block repeatedly to intermittently convey the toast block. The first slicing conveyor component 310 conveys the toast block to the slicing execution end a specified distance each time. This distance is the thickness of the toast slice, thereby ensuring that the slicing component 320 can perform the slicing operation smoothly.
[0083] When one slice module 300 is working, the forward feeding component 210 continues to convey the toast block. At this time, the selection feeding component 220 corresponding to the other slice module 300 moves the toast block to the other slice module 300, so that the two slice modules 300 work alternately in parallel, thereby effectively improving the working efficiency of this toast slicing device.
[0084] The preferred embodiments of the present invention have been described in detail above. However, the present invention is not limited to the embodiments described. Those skilled in the art can make various equivalent modifications or substitutions without departing from the spirit of the present invention. All such equivalent modifications or substitutions are included within the scope defined by the claims of this application.
Claims
1. A dual-station toast slicing device, characterized in that: The toast slicing device includes three mutually orthogonal directions: a first direction, a second direction, and a third direction. The first and second outputs are located on the same side of the toast input in the first direction and are arranged along the second direction. The pushing module is used to alternately output toast blocks input from the toast input to the first or second output. Two slicing modules are also included. Each slicing module includes: a first slicing conveyor assembly with a slicing input and a slicing output; the slicing inputs of the two first slicing conveyors are respectively connected to the first and second outputs; a slicing component located at the slicing output; the slicing component is used to slice the toast blocks, separating adjacent slices; and a second slicing conveyor assembly connected to the slicing output, which conveys the individual slices after slicing.
2. The toast slicing device according to claim 1, characterized in that: The slicing assembly includes: a slicing driving unit, which is fixedly installed; and a slicing unit, which has a slicing connecting part and a slicing execution part. The slicing connecting part is installed on the execution end of the slicing driving unit, and the slicing driving unit drives the slicing execution part to move along the slicing path. The slicing path has a lower slicing pole. During the process of the slicing unit moving downward to the lower slicing pole, the slicing execution part pushes the upper end of the toast slice, causing the toast slice to tilt away from the slicing input end.
3. The toast slicing device according to claim 2, characterized in that: The segmentation unit is detachably and fixedly connected to the output end of the segmentation driving unit.
4. The toast slicing device according to claim 3, characterized in that: The segmentation unit is detachably threaded to the output end of the segmentation drive unit.
5. The toast slicing device according to claim 2, characterized in that: The cross-section of the segmented execution part is larger than the cross-section of the segmented connection part.
6. The toast slicing device according to claim 2, characterized in that: The segmentation driving unit is a rotary driving device, and the segmentation path is a circular path.
7. The toast slicing device according to claim 1, characterized in that: The first slice conveying assembly includes: a slice main conveying line, which is used to support and convey the toast blocks, so that the toast blocks move from the slice input end to the slice output end.
8. The toast slicing device according to claim 7, characterized in that: The segmented conveying assembly further includes: two side limiting conveying lines, which are respectively arranged on both sides of the segmented main conveying line, and the side limiting conveying lines work synchronously and at the same speed as the segmented main conveying line.
9. The toast slicing device according to claim 1, characterized in that: The feeding module includes: a front feeding component, which includes: a first feeding drive unit, which is fixedly disposed; a second feeding drive unit, which drives the second feeding drive unit to move along a first direction; and a feeding unit, which drives the feeding unit to move along a third direction; and a selection feeding component, which includes: a first selection drive unit, which is fixedly disposed; a second selection drive unit, which is installed at the output end of the first selection drive unit and drives the second selection drive unit to move along a second direction; and a selection feeding unit, which is installed at the output end of the second selection drive unit and drives the selection feeding unit to move along a third direction.
10. The toast slicing device according to claim 9, characterized in that: The conveying direction of the first slice conveying component is parallel to the second direction; the number of the selection feeding components is set to two, and the selection feeding components correspond one-to-one with the slice modules; the stroke of the selection feeding unit is greater than the sum of the conveying distance of the corresponding first slice conveying component and the width of the toast moving channel.