A French fry cutting machine
By designing a potato slicing machine with cross-cutting horizontal and vertical blades, the tedious potato slicing problem in French fry processing was solved, achieving a highly efficient potato slicing process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- ZHUCHENG XINZHENGDA MACHINERY CO LTD
- Filing Date
- 2024-04-03
- Publication Date
- 2026-05-26
AI Technical Summary
In existing technologies, the process of cutting chunks of potatoes into strips during the processing of French fries is cumbersome, time-consuming, and labor-intensive, which affects production efficiency.
This slicing machine uses horizontal and vertical blades that are perpendicular to each other. By cutting the potatoes crosswise, the horizontal and vertical blades can directly turn the potatoes from chunks into strips. The horizontal blades have notches to provide space for the vertical blades to move and prevent them from colliding with each other.
It simplifies the potato slicing process, improves processing efficiency, reduces labor consumption, and enables rapid potato slicing.
Smart Images

Figure CN118144038B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the technical field of cutting equipment, and in particular to a fry cutter for processing French fries. Background Technology
[0002] French fries are a classic Western-style fried fries, typically long and crispy, golden brown with a soft interior and a rich texture. A popular fast food, they are commonly found in Western restaurants, fast food outlets, and restaurant chains. The process involves cutting potatoes into strips to facilitate frying. Whether done manually or mechanically, the potatoes are first sliced, and then the slices are cut into strips. This method is tedious, especially when processing large quantities of potatoes, consuming significant time and manpower and severely impacting production efficiency. Summary of the Invention
[0003] To solve the above-mentioned technical problems, the present invention provides a French fry cutting machine, the specific technical solution of which is as follows:
[0004] A French fry cutting machine includes a processing box and horizontal and vertical blade groups installed on the left and right sides of the processing box;
[0005] The processing box is placed at an angle so that one of its inner corners is at the lowest end of the processing box, so that the potatoes can fall naturally to that inner corner position.
[0006] The cross blade assembly consists of a first movable plate and multiple cross blades arranged side by side on the first movable plate, each cross blade having multiple notches;
[0007] The vertical blade assembly consists of a second movable plate and multiple vertical blades arranged side by side on the second movable plate;
[0008] The horizontal and vertical blades are perpendicular to each other. The horizontal blade cuts the potato horizontally, and the vertical blade cuts the potato vertically. The notch on the horizontal blade is used to provide space for the intersection of the vertical and horizontal blades. Multiple elongated holes are opened on the side wall of the processing box to allow the horizontal blades to pass through. The second moving plate is slidably located inside the processing box.
[0009] Furthermore, the vertical blade assembly also includes a support rod fixed on the processing box and multiple movable sleeves slidably mounted on the support rod. Each movable sleeve has a slot at its bottom and is slidably mounted on the vertical blade through the slot. The movable sleeve and the vertical blade are elastically connected by a first leaf spring.
[0010] Multiple movable sleeves are equipped with adjustment mechanisms, which are used to adjust the position between two adjacent movable sleeves.
[0011] Furthermore, the adjustment mechanism includes a support column installed on the top of each movable sleeve, a connecting arm rotatably provided on each support column, and the middle part of the connecting arm is connected to the support column, one end of the connecting arm is rotatably connected to the connecting arm on its adjacent side, and the other end of the connecting arm is rotatably connected to the connecting arm on its other adjacent side.
[0012] Among them, a slider is provided on a connecting arm near the inner wall of the machining box in one of the multiple movable sleeves, and the connecting arm and the slider are rotatably connected. The slider can slide on the inner wall of the machining box along the direction of vertical tool movement, and the slider is fixed to the machining box by a lock nut.
[0013] Furthermore, the processing box is equipped with an extrusion column parallel to the support rod. The extrusion column can slide along the direction of vertical blade movement. The extrusion column is connected to the processing box through a second leaf spring.
[0014] The extrusion column and each movable sleeve are provided with teeth on their side walls, and the extrusion column and the movable sleeve are engaged by the teeth.
[0015] Furthermore, a first cylinder is laterally slidable on the outer wall of the processing box. Both the extended end and the fixed end of the first cylinder are provided with support arms. One support arm is connected to the first moving plate, and the other support arm is connected to the second moving plate.
[0016] The inner wall of the processing box is provided with a ridge for limiting the movement position of the second moving plate away from the first moving plate, and the outer wall of the processing box is provided with a ridge for moving the first cylinder away from the second moving plate.
[0017] Furthermore, the first movable plate is slidably connected to its support arm, and its sliding direction is along the direction when the vertical blade is adjusted. The first movable plate and its support arm are connected by a second cylinder.
[0018] Furthermore, the processing box consists of an arc-shaped storage slot and a bottom plate that seals the bottom opening of the storage slot, with the bottom plate rotatably connected to the storage slot.
[0019] The base plate is inclinedly provided with a first adjusting arm, a motor is fixed on the outer wall of the receiving slot plate, a turntable is driven on the motor, and a second adjusting arm is eccentrically rotated on the end face of the turntable. The second adjusting arm is rotatably connected to the first adjusting arm.
[0020] Furthermore, the output end of the motor is connected to the turntable via a rotating shaft. An extension plate is provided on the rotating shaft. The rotating shaft passes through the extension plate and is rotatably connected to it. A sliding sleeve is slidably fitted on the extension plate. The sliding sleeve is fixedly connected to the second adjusting arm. The extension plate is parallel to the second adjusting arm.
[0021] The turntable has an eccentrically positioned push post on its end face, and an arc-shaped groove plate is slidably fitted on the outer side of the push post. The arc-shaped groove plate is fixedly connected to the second adjusting arm. When the bottom plate is closed, the arc-shaped groove plate is coaxial with the turntable.
[0022] The advantages of this invention are:
[0023] By using multiple horizontal and vertical blades perpendicular to each other to cut the potatoes in a cross-cutting motion, the potatoes can be directly transformed from chunks into strips, thus completing the potato strip cutting process in one go. This method greatly simplifies the potato strip cutting process and improves work efficiency.
[0024] By creating multiple notches on the horizontal blade, space can be provided for the vertical blade to move when the horizontal blade and the vertical blade intersect, preventing the horizontal blade and the vertical blade from colliding and thus preventing them from intersecting. Attached Figure Description
[0025] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0026] Figure 1 This is a schematic diagram of the structure of the present invention;
[0027] Figure 2 yes Figure 1 Right view structural diagram;
[0028] Figure 3 yes Figure 1 Enlarged schematic diagram of the middle cross blade assembly;
[0029] Figure 4 yes Figure 3 Right view structural diagram;
[0030] Figure 5 yes Figure 1 Enlarged structural diagram of the central vertical cutter group;
[0031] Figure 6 yes Figure 5 A magnified oblique view of the central support rod structure;
[0032] Figure 7 yes Figure 1 Schematic diagram of the disassembled structure of the middle processing box;
[0033] Figure 8 yes Figure 1 Enlarged schematic diagram of the central turntable structure;
[0034] Figure 9 yes Figure 2 Enlarged schematic diagram of the central turntable structure;
[0035] Reference numerals: 1. Machining box; 2. Horizontal blade assembly; 3. Vertical blade assembly; 4. First moving plate; 5. Horizontal blade; 6. Notch; 7. Second moving plate; 8. Vertical blade; 9. Support rod; 10. Moving sleeve; 11. First leaf spring; 12. Support column; 13. Connecting arm; 14. Slider; 15. Extrusion column; 16. Second leaf spring; 17. First cylinder; 18. Support arm; 19. Second cylinder; 20. Storage slot plate; 21. Base plate; 22. First adjusting arm; 23. Second adjusting arm; 24. Motor; 25. Turntable; 26. Rotating shaft; 27. Extension plate; 28. Sliding sleeve; 29. Pulley; 30. Arc-shaped slot plate. Detailed Implementation
[0036] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0037] In the description of this invention, it should be noted that the orientations or positional relationships indicated by terms such as "center", "up", "down", "left", "right", "vertical", "horizontal", "inner", and "outer" are based on the orientations or positional relationships shown in the accompanying drawings. They are only for the convenience of describing this invention 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 invention.
[0038] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to fixed connections, detachable connections, or integral connections; they can refer to mechanical connections or electrical connections; they can refer to direct connections or indirect connections through an intermediate medium; and they can refer to the internal communication between two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances. This embodiment is written in a progressive manner.
[0039] like Figures 1 to 9 As shown, a French fry cutting machine of the present invention includes a processing box 1 and a horizontal blade group 2 and a vertical blade group 3 installed on the left and right sides of the processing box 1.
[0040] The processing box 1 is placed at an angle so that one of its inner corners is located at the lowest end of the processing box 1, so that the potatoes can fall naturally to that inner corner position.
[0041] The cross blade assembly 2 consists of a first movable plate 4 and multiple cross blades 5 arranged side by side on the first movable plate 4. Each cross blade 5 has multiple notches 6.
[0042] The vertical blade group 3 is composed of a second movable plate 7 and a plurality of vertical blades 8 arranged side by side on the second movable plate 7;
[0043] The horizontal blade 5 and the vertical blade 8 are perpendicular to each other. The horizontal blade 5 cuts the potato horizontally, and the vertical blade 8 cuts the potato vertically. The notch 6 on the horizontal blade 5 is used to provide space for the intersection of the vertical blade 8 and the horizontal blade 5. Multiple elongated holes are provided on the side wall of the processing box 1 for the horizontal blade 5 to pass through. The second moving plate 7 is slidably located inside the processing box 1.
[0044] In detail, the processing box 1 is tilted, and the opening of the processing box 1 is also tilted upwards. This allows the potato to fall naturally into the inner corner of the lowest point inside the processing box 1 when it is placed through the opening, thus positioning the potato and preventing it from moving randomly during cutting. Multiple horizontal blades 5 and multiple vertical blades 8 are arranged with this inner corner as the base point, and the horizontal blades 5 or vertical blades 8 are parallel to the tilted bottom surface of the processing box 1. When it is necessary to cut the potato into strips, the potato is placed into the processing box 1, and the first moving plate 4 and the second moving plate 8 are pushed... The two moving plates 7 move relative to each other. The first moving plate 4 can push multiple horizontal blades 5 through multiple long holes on the processing box 1 to insert into the processing box 1 and cut the potatoes. At the same time, the second moving plate 7 can push multiple vertical blades 8 to move towards the potatoes and cut them. The horizontal blades 5 cut the potatoes horizontally, and the vertical blades 8 cut the potatoes vertically, thus cutting the potatoes in a cross manner. At this time, the shape of the potatoes can be cut from blocks into strips in one go. When the horizontal blades 5 and the vertical blades 8 intersect, the vertical blades 8 can be inserted into the notch 6 on the horizontal blades 5, thus providing space for the vertical blades 8 to move.
[0045] By using multiple horizontal blades 5 and multiple vertical blades 8 perpendicular to each other to cross-cut the potatoes, the potatoes can be directly transformed from chunks into strips, thus completing the potato strip cutting process in one go. This method can greatly simplify the potato strip cutting process and improve work efficiency.
[0046] By opening multiple notches 6 on the horizontal blade 5, space can be provided for the vertical blade 8 to move when the horizontal blade 5 and the vertical blade 8 intersect, thus preventing the horizontal blade 5 and the vertical blade 8 from colliding and thus preventing them from intersecting.
[0047] Furthermore, the vertical blade assembly 3 also includes a support rod 9 fixed on the processing box 1 and a plurality of movable sleeves 10 slidably mounted on the support rod 9. Each movable sleeve 10 has a slot at its bottom and is slidably mounted on the vertical blade 8 through the slot. The movable sleeve 10 and the vertical blade 8 are elastically connected by a first leaf spring 11.
[0048] Among them, multiple movable sleeves 10 are provided with adjustment mechanisms, which are used to adjust the position between two adjacent movable sleeves 10.
[0049] In detail, due to the guidance of the movable sleeve 10 and the elastic connection of the first leaf spring 11, the vertical blade 8 can be limited by the movable sleeve 10 and the first leaf spring 11. The vertical blade 8 only needs to contact the second movable plate 7. Due to the action of the first leaf spring 11, the vertical blade 8 and the second movable plate 7 are pressed tightly together. When the second movable plate 7 moves, it can push the vertical blade 8 to slide on the movable sleeve 10. At this time, the first leaf spring 11 undergoes elastic deformation. When it is necessary to adjust the specifications of the potato strips after cutting, it is only necessary to adjust the distance between two adjacent movable sleeves 10 through the adjustment mechanism. At this time, the movable sleeve 10 can drive the vertical blade 8 to move synchronously, thereby adjusting the distance between two adjacent vertical blades 8. In this way, the cutting work of various potato strip specifications can be completed. The movable sleeve 10 can move on the support rod 9. With the help of the support rod 9, the movable sleeve 10 and the vertical blade 8 can be limited.
[0050] Furthermore, the adjustment mechanism includes a support column 12 installed on the top of each movable sleeve 10, and a connecting arm 13 is rotatably provided on each support column 12. The middle part of the connecting arm 13 is connected to the support column 12, one end of the connecting arm 13 is rotatably connected to the connecting arm 13 on the adjacent side, and the other end of the connecting arm 13 is rotatably connected to the connecting arm 13 on the other adjacent side.
[0051] Among them, a slider 14 is provided on a connecting arm 13 near the inner wall of the processing box 1 in the plurality of movable sleeves 10, and the connecting arm 13 and the slider 14 are rotatably connected. The slider 14 can slide on the inner wall of the processing box 1 along the moving direction of the vertical blade 8, and the slider 14 is fixed on the processing box 1 by a lock nut.
[0052] In detail, multiple support columns 12 and multiple connecting arms 13 can form a scissor structure. When the angle of one connecting arm 13 is adjusted, multiple connecting arms 13 can move synchronously, thereby adjusting the distance between two adjacent connecting arms 13 and realizing the equidistant adjustment of multiple vertical blades 8. The slider 14 and its locking nut can lock the angle of the connecting arm 13. That is, when the locking nut is tightened, the position of the slider 14 is fixed, and the angle of multiple connecting arms 13 is fixed. When the locking nut is loosened, the angle of the connecting arm 13 can be adjusted by sliding the slider 14.
[0053] Furthermore, the processing box 1 is provided with an extrusion column 15 parallel to the support rod 9. The extrusion column 15 can slide along the moving direction of the vertical blade 8. The extrusion column 15 is connected to the processing box 1 through the second leaf spring 16.
[0054] The sidewalls of the extrusion column 15 and each movable sleeve 10 are provided with teeth, and the extrusion column 15 and the movable sleeve 10 are engaged by the teeth.
[0055] In detail, the second leaf spring 16 provides elastic thrust to the extrusion column 15, thereby extruding the extrusion column 15 into the movable sleeve 10. With the help of teeth, the position of the extrusion column 15 on the movable sleeve 10 can be locked, thereby improving the stability of the movable sleeve 10 and the vertical blade 8.
[0056] Furthermore, a first cylinder 17 is laterally slidably provided on the outer wall of the processing box 1. Both the extended end and the fixed end of the first cylinder 17 are provided with support arms 18. One support arm 18 is connected to the first moving plate 4, and the other support arm 18 is connected to the second moving plate 7.
[0057] The inner wall of the processing box 1 is provided with a ridge for limiting the movement position of the second moving plate 7 away from the first moving plate 4, and the outer wall of the processing box 1 is provided with a ridge for moving the first cylinder 17 away from the second moving plate 7.
[0058] In detail, when the first cylinder 17 extends or retracts, the two support arms 18 can drive the first moving plate 4 and the second moving plate 7 to move relative to each other, thereby providing power to the horizontal blade group 2 and the vertical blade group 3. At the same time, the ridge setting can limit the movement position of the first cylinder 17 and the second moving plate 7, thereby limiting the movement position of the first moving plate 4 and the second moving plate 7.
[0059] After the potatoes are cut, the horizontal blade 5 moves away from the vertical blade 8, and the end of the horizontal blade 5 facing the vertical blade 8 is hidden in the elongated hole. This makes it easy to block the potato strips cut on the horizontal blade 5 inside the processing box 1 with the help of the inner wall of the processing box 1, thereby separating the potato strips from the horizontal blade 5.
[0060] Furthermore, the first movable plate 4 is slidably connected to its support arm 18, and its sliding direction is along the direction when the vertical blade 8 is adjusted. The first movable plate 4 and its support arm 18 are connected by a second cylinder 19.
[0061] In detail, since the spacing between two adjacent vertical blades 8 can be adjusted, the width of the notch 6 on the horizontal blade 5 needs to meet the range of motion of the vertical blade 8. Thus, during cutting, there is a gap between the notch 6 and the vertical blade 8, and the potatoes in this gap cannot be effectively cut. At this time, the first moving plate 4 is moved by the second cylinder 19, so that multiple horizontal blades 5 move synchronously. In this way, the uncut potatoes can be completely cut through the inner side wall of the notch 6, thus realizing the potato slicing work.
[0062] In practical use, since the size difference of the potato strips is not significant, the adjustment distance of the vertical blades 8 is small, and the width of the notch 6 only needs to meet the cutting requirements. At the same time, since the multiple vertical blades 8 are adjusted at equal intervals, and the multiple notches 6 on the horizontal blades 5 move synchronously when the second cylinder 19 moves, there is a small difference in the gap between the notches 6 and the vertical blades 8 after the multiple vertical blades 8 are adjusted. At this time, in order to separate the potato strips, the continuous extension and retraction of the second cylinder 19 can be used to vibrate the multiple horizontal blades 5, so as to facilitate the separation of the potato strips that are not completely separated, thereby realizing the cutting of potato strips. In addition, this method can also make it easy to loosen the potato strips from the horizontal blades 5 and the vertical blades 8, and avoid sticking.
[0063] Furthermore, the processing box 1 is composed of an arc-shaped storage slot 20 and a bottom plate 21 that seals the bottom opening of the storage slot 20, and the bottom plate 21 is rotatably connected to the storage slot 20.
[0064] The base plate 21 is inclinedly provided with a first adjusting arm 22, and a motor 24 is fixed on the outer wall of the receiving slot plate 20. A turntable 25 is driven on the motor 24. A second adjusting arm 23 is eccentrically rotated on the end face of the turntable 25. The second adjusting arm 23 is rotatably connected to the first adjusting arm 22.
[0065] In detail, after the potatoes are cut, the potato strips in the storage tray 20 can be naturally dropped by opening the bottom plate 21, thereby realizing the discharge work. The motor 24 can drive the second adjusting arm 23 to perform eccentric movement through the turntable 25. The second adjusting arm 23 can drive the bottom plate 21 to open or close through the first adjusting arm 22.
[0066] Furthermore, the output end of the motor 24 is connected to the turntable 25 via a rotating shaft 26. An extension plate 27 is provided on the rotating shaft 26. The rotating shaft 26 passes through the extension plate 27 and is rotatably connected to it. A sliding sleeve 28 is slidably sleeved on the extension plate 27. The sliding sleeve 28 is fixedly connected to the second adjusting arm 23. The extension plate 27 is parallel to the second adjusting arm 23.
[0067] The turntable 25 is provided with an eccentrically positioned pin 29 on its end face. An arc-shaped groove plate 30 is slidably fitted on the outer side of the pin 29. The arc-shaped groove plate 30 is fixedly connected to the second adjusting arm 23. When the base plate 21 is closed, the arc-shaped groove plate 30 is coaxial with the turntable 25.
[0068] In detail, the extension plate 27 and the sliding sleeve 28 can provide guidance for the second adjusting arm 23, that is, the length direction of the second adjusting arm 23 is always perpendicular to the axis of the turntable 25. In this way, when the base plate 21 rotates and causes the first adjusting arm 22 and the second adjusting arm 23 to tilt, the directional relationship between the second adjusting arm 23 and the axis of the turntable 25 remains unchanged, and the axis of the arc-shaped groove plate 30, the axis of the turntable 25 and the second adjusting arm 23 can be coplanar.
[0069] When the turntable 25 rotates, the turntable 25 can move the arc-shaped groove plate 30 by the lever 29. The arc-shaped groove plate 30 can drive the bottom plate 21 to open or close by the second adjusting arm 23 and the first adjusting arm 22. At this time, the second adjusting arm 23 can drive the sliding sleeve 28 to slide on the extension plate 27, and the second adjusting arm 23 can drive the extension plate 27 to rotate on the rotating shaft 26 by the sliding sleeve 28. When the lever 29 moves to the lower side of the turntable 25, the arc-shaped groove plate 30 is coaxial with the turntable 25. At this time, the arc-shaped groove plate 30 no longer moves, that is, the bottom plate 21, the first adjusting arm 22 and the second adjusting arm 23 no longer move, and the bottom plate 21 remains closed. This period of time is used for cutting potatoes into strips.
[0070] The above description is only a preferred embodiment of the present invention. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present invention, and these improvements and modifications should also be considered within the scope of protection of the present invention.
Claims
1. A French fry cutting machine, characterized in that, Includes a machining box and horizontal and vertical blade sets installed on the left and right sides of the machining box; The processing box is placed at an angle so that one of its inner corners is at the lowest end of the processing box, so that the potatoes can fall naturally to that inner corner position. The cross blade assembly consists of a first movable plate and multiple cross blades arranged side by side on the first movable plate, each cross blade having multiple notches; The vertical blade assembly consists of a second movable plate and multiple vertical blades arranged side by side on the second movable plate; The horizontal and vertical blades are perpendicular to each other. The horizontal blade cuts the potato horizontally, and the vertical blade cuts the potato vertically. The notch on the horizontal blade is used to provide space for the intersection of the vertical and horizontal blades. The side wall of the processing box has multiple elongated holes for the horizontal blades to pass through. The second moving plate slides inside the processing box. The vertical blade assembly also includes a support rod fixed on the processing box and multiple movable sleeves slidably mounted on the support rod. Each movable sleeve has a slot at its bottom and is slidably mounted on the vertical blade through the slot. The movable sleeve and the vertical blade are elastically connected by a first leaf spring. Among them, multiple movable sleeves are equipped with adjustment mechanisms, which are used to adjust the position between two adjacent movable sleeves, that is, the vertical blade can meet the requirements of adjusting the distance between two adjacent vertical blades while satisfying the condition of horizontal cutting. The adjustment mechanism includes a support column installed on the top of each movable sleeve, a connecting arm rotatably provided on each support column, the middle part of the connecting arm being connected to the support column, one end of the connecting arm being rotatably connected to the connecting arm on its adjacent side, and the other end of the connecting arm being rotatably connected to the connecting arm on its other adjacent side. Among them, a slider is provided on a connecting arm near the inner wall of the machining box in multiple movable sleeves, and the connecting arm and the slider are rotatably connected. The slider can slide on the inner wall of the machining box along the direction of vertical tool movement, and the slider is fixed to the machining box by a lock nut. A first cylinder is slidably mounted on the outer wall of the processing box. Both the extended end and the fixed end of the first cylinder are equipped with support arms. One support arm is connected to the first moving plate, and the other support arm is connected to the second moving plate. The inner wall of the processing box is provided with a ridge for limiting the movement position of the second moving plate away from the first moving plate, and the outer wall of the processing box is provided with a ridge for limiting the movement position of the first cylinder away from the second moving plate. The first movable plate is slidably connected to its support arm, and its sliding direction is along the direction when the vertical blade is adjusted. The first movable plate and its support arm are connected by a second cylinder.
2. A French fry cutting machine for processing according to claim 1, characterized in that, The processing box is equipped with an extrusion column parallel to the support rod. The extrusion column can slide along the direction of vertical blade movement. The extrusion column is connected to the processing box through a second leaf spring. The extrusion column and each movable sleeve are provided with teeth on their side walls, and the extrusion column and the movable sleeve are engaged by the teeth.
3. A French fry cutting machine as described in claim 1, characterized in that, The processing box consists of an arc-shaped storage slot and a bottom plate that seals the bottom opening of the storage slot. The bottom plate is rotatably connected to the storage slot. The base plate is inclinedly provided with a first adjusting arm, a motor is fixed on the outer wall of the receiving slot plate, a turntable is driven on the motor, and a second adjusting arm is eccentrically rotated on the end face of the turntable. The second adjusting arm is rotatably connected to the first adjusting arm.
4. A French fry cutting machine for processing French fries as described in claim 3, characterized in that, The output end of the motor is connected to the turntable via a rotating shaft. An extension plate is provided on the rotating shaft. The rotating shaft passes through the extension plate and is rotatably connected to it. A sliding sleeve is slidably fitted on the extension plate. The sliding sleeve is fixedly connected to the second adjusting arm. The extension plate is parallel to the second adjusting arm. The turntable has an eccentrically positioned push post on its end face, and an arc-shaped groove plate is slidably fitted on the outer side of the push post. The arc-shaped groove plate is fixedly connected to the second adjusting arm. When the bottom plate is closed, the arc-shaped groove plate is coaxial with the turntable.