Goose liver slicing device
By designing the cutting, transmission and collection mechanisms of the goose liver slicing device, the problem of goose liver slice adhesion was solved, efficient and continuous cutting and automatic collection were achieved, and the integrity and appearance quality of the slices were improved.
Patent Information
- Application Number
- CN202511008658.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-22
- Publication Date
- 2025-09-19
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
When existing slicing devices are used to cut goose liver, slices tend to adhere to the cutter or the bottom of the support plate, affecting the continuity of the slicing operation and increasing the intensity of manual cleaning and maintenance work.
A goose liver slicing device including cutting, transmission and collection mechanisms was designed. The reciprocating motion of the cutting blade was achieved by using a limit spring, a buffer spring and a transmission structure. Combined with a sliding filter plate and a collection tube, the goose liver slices and debris were automatically separated and collected.
It achieves efficient and continuous cutting of goose liver slices, ensuring the integrity and appearance quality of the slices, while improving the automation level and cleanliness of the device and reducing manual cleaning and maintenance work.
Smart Images

Figure CN120663367A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of food processing equipment, in particular to a goose liver slicing device. Background Art
[0002] In the high-end food processing sector, goose liver, due to its unique taste and nutritional value, is often used in high-end dishes such as foie gras pâté and pan-fried goose liver. Slicing the goose liver is a key step in the processing process, requiring slices of uniform thickness, a smooth surface, and intact tissue structure to ensure the quality and aesthetics of the final product.
[0003] Currently, most common slicing devices on the market are general-purpose mechanical structures. In actual application, since goose liver contains a lot of fat and has a soft texture, the slices are easy to stick to the tool or the bottom of the support plate after cutting and are difficult to fall off automatically. This not only affects the continuity of subsequent slicing operations, but also increases the workload of manual cleaning and maintenance. Summary of the Invention
[0004] The object of the present invention is to provide a goose liver slicing device to solve the problems raised in the above background technology.
[0005] To solve the above technical problems, the present invention is achieved through the following technical solutions: The present invention is a goose liver slicing device, comprising an operating table and a support frame, and is characterized in that it also includes: A cutting mechanism is provided on a support frame, the cutting mechanism comprising a drive box provided on top of the support frame, the support frame being fixedly connected to an operating table, a fixing frame being provided below the drive box, and the cutting mechanism being used for sawing the foie gras; The transmission mechanism is arranged in the drive box, and the transmission mechanism includes a drive motor fixedly installed in the drive box, a rotating shaft is fixedly installed on the output shaft of the drive motor, the right end of the rotating shaft rotates and extends outside the drive box, and a circular plate is provided on the right side of the rotating shaft. The transmission mechanism is used to push the circular plate to move to achieve filtration; The collecting mechanism is arranged on the supporting frame, and the collecting mechanism includes a collecting box fixedly installed on the right side of the supporting frame, a storage box is arranged on the left side of the supporting frame, a collecting pipe is arranged through the supporting frame, and a discharge trough is opened at the bottom of the collecting pipe. The collecting mechanism is used to remove the debris from the cut goose liver and retain the complete sliced goose liver.
[0006] Furthermore, the cutting mechanism includes a driving box fixedly mounted on the top of the supporting frame, a fixing frame fixedly mounted on the bottom of the driving box, a limiting inclined groove is provided on the fixing frame, a limiting rod is fixedly mounted in the limiting inclined groove, a rectangular limiting block is slidingly sleeved on the limiting rod, the rectangular limiting block slides through the limiting inclined groove, and a limiting spring is sleeved on the limiting rod.
[0007] Furthermore, the front end of the limit spring is fixedly connected to the limit bevel, the end of the limit spring is fixedly connected to the rectangular limit block, a rotating rod is rotatably installed on the left side of the rectangular limit block, a rubber sleeve is fixed on the rotating rod, a rectangular plate is fixedly installed on the right side of the rectangular limit block, and a cutting blade is provided under the rectangular plate.
[0008] Furthermore, several buffer springs are fixedly installed on the top of the cutting blade, and the top ends of several of the buffer springs are fixedly connected to the rectangular plate. Several limit plates are fixedly installed on the top of the cutting blade, and the top ends of several of the limit plates slide and extend into the rectangular plate. Several movable plates with grooves are fixedly installed on the top of the limit plates, and the movable plates with grooves are slidably connected to the rectangular plate.
[0009] Furthermore, several rectangular grooves are opened on the left side of the rectangular plate, and several sliding grooves are opened on the grooved movable plate. Several telescopic springs are fixedly installed in the sliding grooves, and several trapezoidal limit blocks are fixedly installed on the left ends of the telescopic springs. The left ends of several trapezoidal limit blocks are in contact with the inner wall of the rectangular plate.
[0010] Furthermore, the transmission mechanism includes a rotating block fixedly mounted on the rotating shaft, an adaptive spring fixedly installed in the rotating block, a trapezoidal block fixedly installed at the front end of the adaptive spring, the trapezoidal block is slidingly connected to the rotating block, a rectangular hollow plate is fixedly mounted on the rotating block, the rectangular hollow plate is communicated with the rotating block, and a T-shaped slot is provided in the rectangular hollow plate.
[0011] Furthermore, a return spring is fixedly installed on the left inner wall of the T-shaped groove, a T-shaped sealing block is fixedly installed on the right end of the return spring, a ball is rotatably installed on the right side of the T-shaped sealing block, and the rectangular hollow plate and the rotating block are both in a sealed state.
[0012] Furthermore, a T-shaped limit slide bar is installed on the driving box and slides through it. A sleeve spring is sleeved on the T-shaped limit slide bar. The left end of the sleeve spring is fixedly connected to the T-shaped limit slide bar. The right end of the sleeve spring is fixedly connected to the driving box. An L-shaped plate is fixedly installed on the right end of the T-shaped limit slide bar. The end of the L-shaped plate is fixedly connected to the circular plate.
[0013] Furthermore, the collection mechanism includes a storage box fixedly installed on the left side of the support frame, the bottom end of the collection pipe is communicated with the storage box, a sliding filter plate slides through the collection pipe, a fixed plate is fixedly installed on the bottom of the operating table, a rectangular limiting slide rod is fixedly installed on the front side of the fixed plate, and the front end of the rectangular limiting slide rod slides through the sliding filter plate.
[0014] Furthermore, a compression spring is sleeved on the rectangular limiting slide rod, the front end of the compression spring is fixedly connected to the sliding filter plate, the end of the compression spring is fixedly connected to the fixed plate, a plurality of rectangular filter holes are opened at the bottom of the sliding filter plate, a special-shaped transmission plate is fixedly installed on the right side of the circular plate, the special-shaped transmission plate slides through the operating table, and a trapezoidal adaptation plate is fixedly installed on the front of the sliding filter plate.
[0015] The present invention has the following beneficial effects: (1) The present invention provides a goose liver slicing device. During the continuous descent of the cutting blade, the cutting blade will contact the surface of the operating table. As the rectangular plate continues to descend, the buffer spring is compressed and deformed, and the limit plate rises and extends into the interior of the rectangular plate, driving the grooved movable plate to rise synchronously. At this time, the grooved movable plate pushes the multiple trapezoidal limit blocks to move upward. Since the multiple telescopic springs are previously in a compressed state, when the trapezoidal limit blocks rise to contact the rectangular groove, under the elastic force of the telescopic springs, the trapezoidal limit blocks automatically extend out of the rectangular groove. This action pushes the goose liver slices adhered to the side of the rectangular plate to detach and fall onto the sliding filter plate in the collection tube below, thereby achieving effective separation of the goose liver slices from the rectangular plate and avoiding residue affecting subsequent cutting operations. At the same time, after the trapezoidal block rotates out of the rubber sleeve, the rectangular limit block returns to its original position under the reset elastic force of the limit spring, driving the entire transmission structure to return to its initial position, realizing the reciprocating lifting and lowering motion of the cutting blade. Through this continuous action cycle, combined with the uniform advancement of the goose liver, the device can achieve efficient, accurate and continuous cutting of the goose liver, ensuring the integrity of the slices and the stability of the operation. The present invention provides a goose liver slicing device. When in use, goose liver at -18°C is placed under a cutting blade, and a driving motor is started to rotate clockwise. The driving motor drives the rotating shaft to rotate, and the rotating shaft further drives the rotating block to rotate, and the rotating block drives the trapezoidal block to rotate synchronously. During the clockwise rotation, the plane of the trapezoidal block contacts the rubber sleeve, and the rubber sleeve plays a role in shock absorption and noise reduction. Under the push of the trapezoidal block, the rubber sleeve drives the rotating rod to move, and the rotating rod further drives the rectangular limit block to slide in the limit inclined groove. At this time, the limit spring is compressed and deformed due to the force, and the rectangular limit block then drives the rectangular plate to move obliquely downward along the limit inclined groove, and the rectangular plate drives the cutting blade to descend, slicing the goose liver, realizing a saw-like cutting action. This structural design can effectively complete the complete slicing of the goose liver, reduce tissue damage caused by traditional extrusion cutting, and significantly improve the integrity and appearance quality of the goose liver slices. (3) The present invention provides a goose liver slicing device. After the goose liver is cut, the driving motor is reversed to drive the rotating block to rotate counterclockwise, thereby driving the trapezoidal block to rotate counterclockwise synchronously. At this time, the inclined surface of the trapezoidal block will contact the rubber sleeve. Since the rectangular limit block connected to the rubber sleeve has contacted the groove wall of the limit inclined groove and is in a fixed state, the rubber sleeve as a whole remains stationary. Under this action, the trapezoidal block slides toward the inside of the rotating block during the relative movement between its inclined surface and the rubber sleeve, causing the adaptive spring to be compressed and deformed. As the trapezoidal block moves into the rotating block, the gas in the internal cavity of the rotating block is compressed and enters the T-slot through the internal channel, pushing the T-shaped sealing block to move away from the rectangular hollow plate. In this process, the reset The spring is stretched and deformed, and at the same time, the T-shaped sealing block drives the ball to separate from the rectangular hollow plate and hit the circular plate outward. The circular plate then drives the L-shaped plate to move synchronously, and further drives the T-shaped limit slide bar in the drive box to move, causing the sleeve spring to compress and deform. At the same time, the circular plate also drives the special-shaped transmission plate to displace, providing a power basis for the subsequent cleaning structure. When the trapezoidal block is completely separated from the rubber sleeve, the T-shaped limit slide bar is quickly reset under the elastic force of the sleeve spring, thereby driving the special-shaped transmission plate to complete the reciprocating movement. This coherent mechanical linkage process not only realizes the automatic reset of the device, but also provides a stable power source for the subsequent automatic cleaning components, ensuring that the equipment maintains an efficient and clean working state during continuous operation. (4) The present invention provides a goose liver slicing device. During the reciprocating movement of the special-shaped transmission plate, it periodically contacts the trapezoidal adaptive plate and pushes the sliding filter plate to generate displacement under the action of the inclined surface. At this time, the compression spring is compressed and stores elastic potential energy. When the special-shaped transmission plate returns and breaks away from the contact with the trapezoidal adaptive plate, the sliding filter plate is quickly reset under the elastic force of the compression spring, thereby realizing the back and forth swinging of the sliding filter plate. The reciprocating swinging action helps the goose liver slices that fall on the sliding filter plate to slide on its inclined surface and finally slide into the storage box below for orderly collection. At the same time, the goose liver debris generated during the cutting process is automatically screened into the collection box at the bottom through the rectangular filter holes on the sliding filter plate, realizing the effective separation of the goose liver slices and debris. This structural design not only improves the collection integrity of the goose liver slices, but also effectively guarantees the appearance quality and cleanliness of the goose liver slices after slicing, further improving the automation level and practicality of the entire device.
[0016] Of course, any product implementing the present invention does not necessarily need to achieve all of the advantages described above at the same time. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.
[0018] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 It is a partial structural schematic diagram of the present invention; Figure 3 For the present invention Figure 2 Schematic diagram of the enlarged structure of A; Figure 4 For the present invention Figure 2 Schematic diagram of the enlarged structure of B; Figure 5 It is a schematic diagram of a top view of a partially sectional structure of the present invention; Figure 6 For the present invention Figure 5 Schematic diagram of the enlarged structure of C in the middle; Figure 7 For the present invention Figure 5 Schematic diagram of the enlarged structure of D in the middle; Figure 8 It is a side cross-sectional structural schematic diagram of the present invention; Figure 9 It is a bottom view structural schematic diagram of the present invention; Figure 10 For the present invention Figure 9 Schematic diagram of the enlarged structure of E in the middle.
[0019] In the accompanying drawings, the components represented by the reference numerals are as follows: In the figure: 1. operating table; 101. support frame; 102. drive box; 103. fixed frame; 104. limiting inclined slot; 105. limiting rod; 106. rectangular limiting block; 107. limiting spring; 108. rotating rod; 109. rubber sleeve; 110. rectangular plate; 111. cutting blade; 112. buffer spring; 113. limiting plate; 114. movable plate with groove; 115. rectangular slot; 116. telescopic spring; 117. trapezoidal limiting block; 2. driving motor; 201. rotating shaft; 202. rotating block; 20 3. Adaptive spring; 204. Trapezoidal block; 205. Rectangular hollow plate; 206. T-slot; 207. Return spring; 208. T-shaped sealing block; 209. Ball; 210. T-shaped limiting slide bar; 211. Sleeve spring; 212. L-shaped plate; 213. Circular plate; 3. Collection box; 301. Storage box; 302. Collection tube; 303. Sliding filter plate; 304. Fixed plate; 305. Rectangular limiting slide bar; 306. Compression spring; 307. Rectangular filter hole; 308. Special-shaped transmission plate; 309. Trapezoidal adaptive plate. DETAILED DESCRIPTION
[0020] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0021] See also Figures 1-10 As shown, the present invention is a goose liver slicing device, comprising an operating table 1 and a support frame 101, characterized in that it also includes: The cutting mechanism is arranged on the support frame 101. The cutting mechanism includes a drive box 102 arranged on the top of the support frame 101. The support frame 101 is fixedly connected to the operating table 1. A fixing frame 103 is arranged below the drive box 102. The cutting mechanism is used to saw-cut the goose liver; The transmission mechanism is arranged in the drive box 102. The transmission mechanism includes a drive motor 2 fixedly installed in the drive box 102. A rotating shaft 201 is fixedly installed on the output shaft of the drive motor 2. The right end of the rotating shaft 201 rotates and extends outside the drive box 102. A circular plate 213 is provided on the right side of the rotating shaft 201. The transmission mechanism is used to push the circular plate 213 to move to achieve filtration; The collecting mechanism is arranged on the support frame 101. The collecting mechanism includes a collecting box 3 fixedly installed on the right side of the supporting frame 101, a storage box 301 is provided on the left side of the supporting frame 101, a collecting pipe 302 is provided through the supporting frame 101, and a discharge trough is provided at the bottom of the collecting pipe 302. The collecting mechanism is used to remove the debris from the cut goose liver and retain the complete sliced goose liver.
[0022] like Figure 1 and Figure 3 As shown, the cutting mechanism includes a driving box 102 fixedly mounted on the top of the supporting frame 101, a fixing frame 103 fixedly mounted on the bottom of the driving box 102, a limiting inclined groove 104 is provided on the fixing frame 103, a limiting rod 105 is fixedly mounted in the limiting inclined groove 104, a rectangular limiting block 106 is slidingly sleeved on the limiting rod 105, the rectangular limiting block 106 slides through the limiting inclined groove 104, and a limiting spring 107 is sleeved on the limiting rod 105.
[0023] At the same time, after the trapezoidal block 204 rotates away from the rubber sleeve 109, the rectangular limit block 106 returns to its original position under the reset force of the limit spring 107, driving the entire transmission structure to return to its initial position, realizing the reciprocating lifting and lowering motion of the cutting blade 111. Through this continuous action cycle, combined with the uniform advancement of the goose liver, the device can achieve efficient, precise and continuous cutting of the goose liver, ensuring the integrity of the slices and the stability of the operation.
[0024] like Figure 3 and Figure 4 As shown, the front end of the limit spring 107 is fixedly connected to the limit bevel 104, and the end of the limit spring 107 is fixedly connected to the rectangular limit block 106. A rotating rod 108 is rotatably installed on the left side of the rectangular limit block 106, and a rubber sleeve 109 is fixedly provided on the rotating rod 108. A rectangular plate 110 is fixedly installed on the right side of the rectangular limit block 106, and a cutting blade 111 is provided below the rectangular plate 110.
[0025] As the cutting blade 111 continues to descend, the cutting blade 111 contacts the surface of the operating table 1 as the rectangular plate 110 continues to descend.
[0026] like Figure 4 As shown, a plurality of buffer springs 112 are fixedly installed on the top of the cutting blade 111, and the top ends of the plurality of buffer springs 112 are fixedly connected to the rectangular plate 110. A plurality of limit plates 113 are fixedly installed on the top of the cutting blade 111, and the top ends of the plurality of limit plates 113 slide and extend into the rectangular plate 110. A movable plate 114 with a groove is fixedly installed on the top of the plurality of limit plates 113, and the movable plate 114 with a groove is slidably connected to the rectangular plate 110.
[0027] The buffer spring 112 is compressed and deformed, and the limiting plate 113 rises and extends into the interior of the rectangular plate 110, driving the movable plate with grooves 114 to rise synchronously. At this time, the movable plate with grooves 114 pushes the multiple trapezoidal limiting blocks 117 to move upward.
[0028] like Figure 4As shown, a plurality of rectangular grooves 115 are provided on the left side of the rectangular plate 110, and a plurality of sliding grooves are provided on the grooved movable plate 114. Telescopic springs 116 are fixedly installed in the plurality of sliding grooves, and trapezoidal limit blocks 117 are fixedly installed on the left ends of the plurality of telescopic springs 116. The left ends of the plurality of trapezoidal limit blocks 117 are all in contact with the inner wall of the rectangular plate 110.
[0029] Since the multiple telescopic springs 116 were previously in a compressed state, when the trapezoidal limit block 117 rose to contact the rectangular groove 115, under the elastic force of the telescopic spring 116, the trapezoidal limit block 117 automatically extended outward from the rectangular groove 115. This action pushed the goose liver slices adhered to the side of the rectangular plate 110 off and made them fall onto the sliding filter plate 303 in the collection tube 302 below.
[0030] like Figure 6 and Figure 7 As shown, the transmission mechanism includes a rotating block 202 fixedly mounted on the rotating shaft 201, an adaptive spring 203 fixedly installed in the rotating block 202, a trapezoidal block 204 fixedly installed at the front end of the adaptive spring 203, the trapezoidal block 204 is slidably connected to the rotating block 202, a rectangular hollow plate 205 fixedly mounted on the rotating block 202, the rectangular hollow plate 205 is communicated with the rotating block 202, and a T-shaped slot 206 is provided in the rectangular hollow plate 205.
[0031] The driving motor reverses, driving the rotating block 202 to rotate counterclockwise, thereby driving the trapezoidal block 204 to rotate counterclockwise synchronously. At this time, the inclined surface of the trapezoidal block 204 will contact the rubber sleeve 109. Since the rectangular limit block 106 connected to the rubber sleeve 109 has contacted the groove wall of the limit inclined groove 104 and is in a fixed state, the rubber sleeve 109 as a whole remains stationary.
[0032] like Figure 7 As shown, a return spring 207 is fixedly installed on the left inner wall of the T-shaped groove 206, a T-shaped sealing block 208 is fixedly installed on the right end of the return spring 207, and a ball 209 is rotatably installed on the right side of the T-shaped sealing block 208. The rectangular hollow plate 205 and the rotating block 202 are both in a sealed state.
[0033] During this process, the return spring 207 is stretched and deformed, and at the same time, the T-shaped sealing block 208 drives the ball 209 to separate from the rectangular hollow plate 205 and hit the circular plate 213 outward.
[0034] like Figure 5 and Figure 6As shown, a T-shaped limit slide bar 210 is installed on the drive box 102 and slides through it. A sleeve spring 211 is sleeved on the T-shaped limit slide bar 210. The left end of the sleeve spring 211 is fixedly connected to the T-shaped limit slide bar 210. The right end of the sleeve spring 211 is fixedly connected to the drive box 102. An L-shaped plate 212 is fixedly installed on the right end of the T-shaped limit slide bar 210. The end of the L-shaped plate 212 is fixedly connected to the circular plate 213.
[0035] The circular plate 213 then drives the L-shaped plate 212 to move synchronously, and further drives the T-shaped limiting slide bar 210 in the drive box 102 to move, causing the sleeve spring 211 to be compressed and deformed. At the same time, the circular plate 213 also drives the special-shaped transmission plate 308 to move, providing a power basis for the subsequent cleaning structure. When the trapezoidal block 204 is completely separated from the rubber sleeve 109, under the elastic force of the sleeve spring 211, the T-shaped limiting slide bar 210 is quickly reset, thereby driving the special-shaped transmission plate 308 to complete the reciprocating movement.
[0036] like Figure 8 and Figure 10 As shown, the collection mechanism includes a storage box 301 fixedly mounted on the left side of the support frame 101, the bottom end of the collection tube 302 is communicated with the storage box 301, a sliding filter plate 303 slides through the collection tube 302, a fixed plate 304 is fixedly mounted on the bottom of the operating table 1, a rectangular limiting slide rod 305 is fixedly mounted on the front side of the fixed plate 304, and the front end of the rectangular limiting slide rod 305 slides through the sliding filter plate 303.
[0037] The sliding filter plate 303 is quickly reset under the elastic force of the compression spring 306, thereby achieving the back and forth rocking of the sliding filter plate 303. This reciprocating rocking action helps the goose liver slices that fall on the sliding filter plate 303 to slide on its inclined surface and finally slide into the storage box 301 below to complete orderly collection.
[0038] like Figure 9 and Figure 10 As shown, a compression spring 306 is sleeved on the rectangular limiting slide rod 305, the front end of the compression spring 306 is fixedly connected to the sliding filter plate 303, and the end of the compression spring 306 is fixedly connected to the fixed plate 304. A plurality of rectangular filter holes 307 are provided at the bottom of the sliding filter plate 303, and a special-shaped transmission plate 308 is fixedly installed on the right side of the circular plate 213. The special-shaped transmission plate 308 slides through the operating table 1, and a trapezoidal adaptation plate 309 is fixedly installed on the front of the sliding filter plate 303.
[0039] During the reciprocating movement of the special-shaped transmission plate 308, it will periodically contact the trapezoidal adaptation plate 309, and push the sliding filter plate 303 to produce displacement under the action of the inclined surface. At this time, the compression spring 306 is compressed and stores elastic potential energy. When the special-shaped transmission plate 308 returns and breaks away from contact with the trapezoidal adaptation plate 309.
[0040] When in use, place the goose liver at -18°C under the cutting blade 111, start the driving motor 2 to rotate it clockwise, the driving motor 2 drives the rotating shaft 201 to rotate, the rotating shaft 201 further drives the rotating block 202 to rotate, and the rotating block 202 drives the trapezoidal block 204 to rotate synchronously. During the clockwise rotation, the plane of the trapezoidal block 204 will contact the rubber sleeve 109, and the rubber sleeve 109 plays a role in shock absorption and noise reduction. Under the push of the trapezoidal block 204, the rubber sleeve 109 drives the rotating rod 108 to move, and the rotating rod 108 further pushes the rectangular limit block 106 to slide in the limiting inclined groove 104. At this time, the limiting spring 107 is compressed and deformed due to the force, and the rectangular limit block 106 then drives the rectangular plate 110 to move obliquely downward along the limiting inclined groove 104, and the rectangular plate 110 drives the cutting blade 111 to descend, slicing the goose liver to achieve a saw-like cutting action; As the cutting blade 111 continues to descend, the cutting blade 111 will contact the surface of the operating table 1. As the rectangular plate 110 continues to descend, the buffer spring 112 is compressed and deformed, and the limit plate 113 rises and extends into the interior of the rectangular plate 110, driving the grooved movable plate 114 to rise synchronously. At this time, the grooved movable plate 114 pushes the multiple trapezoidal limit blocks 117 to move upward. Since the multiple telescopic springs 116 were previously in a compressed state, when the trapezoidal limit blocks 117 rise to contact with the rectangular groove 115, under the elastic force of the telescopic spring 116, the trapezoidal limit blocks 117 are The limiting block 117 automatically extends outward beyond the rectangular groove 115, which pushes the goose liver slices adhered to the side of the rectangular plate 110 off and causes them to fall onto the sliding filter plate 303 in the collection tube 302 below, thereby effectively separating the goose liver slices from the rectangular plate 110 and preventing residue from affecting subsequent cutting operations. At the same time, after the trapezoidal block 204 rotates away from the rubber sleeve 109, the rectangular limiting block 106 returns to its original position under the return force of the limiting spring 107, driving the entire transmission structure to return to its initial position, realizing the reciprocating lifting and lowering motion of the cutting blade 111. After the foie gras cutting is completed, the driving motor is reversed, driving the rotating block 202 to rotate counterclockwise, thereby driving the trapezoidal block 204 to rotate counterclockwise synchronously. At this time, the inclined surface of the trapezoidal block 204 will contact the rubber sleeve 109. Since the rectangular limit block 106 connected to the rubber sleeve 109 has been in contact with the groove wall of the limit inclined groove 104 and is in a fixed state, the rubber sleeve 109 as a whole remains stationary. Under this action, the trapezoidal block 204 slides toward the inside of the rotating block 202 during the relative movement between its inclined surface and the rubber sleeve 109, causing the adaptive spring 203 to be compressed and deformed. As the trapezoidal block 204 moves into the rotating block 202, the gas in the internal cavity of the rotating block 202 is compressed and enters the T-shaped groove 206 through the internal channel, pushing the T-shaped sealing block 2 08 moves in the direction away from the rectangular hollow plate 205. During this process, the return spring 207 is stretched and deformed. At the same time, the T-shaped sealing block 208 drives the ball 209 to separate from the rectangular hollow plate 205 and hit the circular plate 213 outward. The circular plate 213 then drives the L-shaped plate 212 to move synchronously, and further pushes the T-shaped limiting slide bar 210 in the drive box 102 to move, causing the sleeve spring 211 to be compressed and deformed. At the same time, the circular plate 213 also drives the special-shaped transmission plate 308 to move, providing a power basis for the subsequent cleaning structure. When the trapezoidal block 204 is completely separated from the rubber sleeve 109, under the elastic force of the sleeve spring 211, the T-shaped limiting slide bar 210 is quickly reset, thereby driving the special-shaped transmission plate 308 to complete the reciprocating movement; During the reciprocating movement of the special-shaped transmission plate 308, it will periodically contact the trapezoidal adaptive plate 309, and push the sliding filter plate 303 to displace under the action of the inclined surface. At this time, the compression spring 306 is compressed and stores elastic potential energy. When the special-shaped transmission plate 308 returns and breaks away from the contact with the trapezoidal adaptive plate 309, the sliding filter plate 303 is quickly reset under the elastic force of the compression spring 306, thereby realizing the back and forth rocking of the sliding filter plate 303. This reciprocating rocking action helps the goose liver slices that fall on the sliding filter plate 303 to slide on its inclined surface and finally slide into the storage box 301 below for orderly collection; at the same time, the goose liver debris generated during the cutting process is automatically screened through the rectangular filter holes 307 on the sliding filter plate 303 and falls into the collection box 3 at the bottom, realizing effective separation of the goose liver slices and debris.
[0041] The preferred embodiments of the present invention disclosed above are intended only to help illustrate the present invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the present invention to the specific embodiments described. Obviously, many modifications and variations are possible based on the content of this specification. These embodiments are selected and described in detail in this specification to better explain the principles and practical applications of the present invention, thereby enabling those skilled in the art to better understand and utilize the present invention. The present invention is limited only by the claims and their full scope and equivalents.
Claims
1. A goose liver slicing device, comprising an operating table (1) and a support frame (101), characterized in that: Also includes: A cutting mechanism, the cutting mechanism being arranged on a support frame (101), the cutting mechanism comprising a drive box (102) arranged on the top of the support frame (101), the support frame (101) being fixedly connected to the operating table (1), a fixing frame (103) being arranged below the drive box (102), and the cutting mechanism being used for sawing the goose liver; A transmission mechanism, the transmission mechanism being arranged in a drive box (102), the transmission mechanism comprising a drive motor (2) fixedly mounted in the drive box (102), a rotating shaft (201) fixedly mounted on an output shaft of the drive motor (2), the right end of the rotating shaft (201) rotatingly extending outside the drive box (102), a circular plate (213) being arranged on the right side of the rotating shaft (201), and the transmission mechanism being used to push the circular plate (213) to move, thereby achieving filtration; A collecting mechanism is provided on a support frame (101), comprising a collecting box (3) fixedly mounted on the right side of the support frame (101), a storage box (301) being provided on the left side of the support frame (101), a collecting tube (302) being provided through the support frame (101), a discharge trough being provided at the bottom of the collecting tube (302), and the collecting mechanism being used to remove debris from the cut goose liver and retain the complete sliced goose liver.
2. The goose liver slicing device according to claim 1, characterized in that: The cutting mechanism comprises a driving box (102) fixedly mounted on the top of a supporting frame (101); a fixing frame (103) fixedly mounted on the bottom of the driving box (102); a limiting inclined groove (104) is provided on the fixing frame (103); a limiting rod (105) is fixedly mounted in the limiting inclined groove (104); a rectangular limiting block (106) is slidably sleeved on the limiting rod (105); the rectangular limiting block (106) slides through the limiting inclined groove (104); and a limiting spring (107) is sleeved on the limiting rod (105).
3. The goose liver slicing device according to claim 2, characterized in that: The front end of the limit spring (107) is fixedly connected to the limit inclined groove (104), and the end of the limit spring (107) is fixedly connected to the rectangular limit block (106). A rotating rod (108) is rotatably mounted on the left side of the rectangular limit block (106), and a rubber sleeve (109) is fixedly mounted on the rotating rod (108). A rectangular plate (110) is fixedly mounted on the right side of the rectangular limit block (106), and a cutting blade (111) is provided below the rectangular plate (110).
4. The goose liver slicing device according to claim 3, characterized in that: A plurality of buffer springs (112) are fixedly mounted on the top of the cutting blade (111), and the top ends of the plurality of buffer springs (112) are fixedly connected to the rectangular plate (110). A plurality of limiting plates (113) are fixedly mounted on the top of the cutting blade (111), and the top ends of the plurality of limiting plates (113) are slidably extended into the rectangular plate (110). A plurality of movable plates (114) with grooves are fixedly mounted on the top of the plurality of limiting plates (113), and the movable plates (114) with grooves are slidably connected to the rectangular plate (110).
5. The goose liver slicing device according to claim 4, characterized in that: The left side of the rectangular plate (110) is provided with a plurality of rectangular grooves (115), and the movable plate with grooves (114) is provided with a plurality of sliding grooves, wherein telescopic springs (116) are fixedly installed in the plurality of sliding grooves, and the left ends of the plurality of telescopic springs (116) are fixedly installed with trapezoidal limiting blocks (117), and the left ends of the plurality of trapezoidal limiting blocks (117) are in contact with the inner wall of the rectangular plate (110).
6. The goose liver slicing device according to claim 1, characterized in that: The transmission mechanism comprises a rotating block (202) fixedly mounted on a rotating shaft (201); an adaptable spring (203) fixedly mounted in the rotating block (202); a trapezoidal block (204) fixedly mounted at the front end of the adaptable spring (203); the trapezoidal block (204) being slidably connected to the rotating block (202); a rectangular hollow plate (205) fixedly mounted on the rotating block (202); the rectangular hollow plate (205) being in communication with the rotating block (202); and a T-shaped slot (206) being provided in the rectangular hollow plate (205).
7. The goose liver slicing device according to claim 6, characterized in that: A return spring (207) is fixedly mounted on the left inner wall of the T-shaped groove (206), a T-shaped sealing block (208) is fixedly mounted on the right end of the return spring (207), and a ball (209) is rotatably mounted on the right side of the T-shaped sealing block (208), and the rectangular hollow plate (205) and the rotating block (202) are both in a sealed state.
8. The goose liver slicing device according to claim 1, characterized in that: A T-shaped limiting slide bar (210) is installed on the driving box (102) and is slidably passed through. A sleeve spring (211) is sleeved on the T-shaped limiting slide bar (210). The left end of the sleeve spring (211) is fixedly connected to the T-shaped limiting slide bar (210). The right end of the sleeve spring (211) is fixedly connected to the driving box (102). An L-shaped plate (212) is fixedly installed on the right end of the T-shaped limiting slide bar (210). The end of the L-shaped plate (212) is fixedly connected to the circular plate (213).
9. The goose liver slicing device according to claim 8, characterized in that: The collecting mechanism comprises a storage box (301) fixedly mounted on the left side of the support frame (101); the bottom end of the collecting pipe (302) is in communication with the storage box (301); a sliding filter plate (303) is slidably passed through the collecting pipe (302); a fixing plate (304) is fixedly mounted on the bottom of the operating table (1); a rectangular limiting slide bar (305) is fixedly mounted on the front side of the fixing plate (304); and the front end of the rectangular limiting slide bar (305) slides through the sliding filter plate (303).
10. The goose liver slicing device according to claim 9, characterized in that: A compression spring (306) is sleeved on the rectangular limiting slide rod (305), the front end of the compression spring (306) is fixedly connected to the sliding filter plate (303), and the rear end of the compression spring (306) is fixedly connected to the fixed plate (304). A plurality of rectangular filter holes (307) are provided at the bottom of the sliding filter plate (303). A special-shaped transmission plate (308) is fixedly installed on the right side of the circular plate (213), and the special-shaped transmission plate (308) slides through the operating table (1). A trapezoidal adaptation plate (309) is fixedly installed on the front of the sliding filter plate (303).