A hammering food processing device
Through the design of the linkage frame and hammering blocks, the multi-directional hammering and cleaning of the pounding food processing equipment is realized, which solves the problems of uneven hammering and meat moving out of the range, and has good energy-saving effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- XUZHOU COLLEGE OF INDAL TECH
- Filing Date
- 2025-06-23
- Publication Date
- 2026-05-29
AI Technical Summary
The existing pounding mechanism of food processing equipment has a single direction of movement, which leads to uneven pounding. After repeated pounding, the meat is prone to move out of the pounding range.
It adopts a linkage frame and hammer block design, and drives the positioning shaft to rotate through a push-pull cylinder, so that the four hammer blocks alternately hammer along the X and Y axes. The hammer plate is cleaned by the needle column and conical groove structure, ensuring the uniformity and cleanliness of the hammering.
It achieves uniform and clean pounding, solves the problem of uneven pounding, improves energy utilization, and has a good energy-saving effect.
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Figure CN120549108B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to agricultural and sideline product processing equipment, specifically a pounding-type food processing equipment. Background Technology
[0002] The pounding food processing equipment is a mechanical tool specifically designed for meat processing. It mainly uses a mechanical structure to simulate the traditional hand-pounding of meat, changing the physical structure of the meat. It is widely used in the pre-processing of products such as steaks, patties, minced meat, and meatballs, and has the effects of breaking down muscle fibers, improving tenderness, promoting marinating and flavor absorption, and improving product appearance.
[0003] In the prior art, such as Chinese Patent Publication No. CN117617292A, a beef deep-processing pounding and crushing equipment is disclosed, including a frame, a crushing box fixedly installed at the bottom of the frame, and a placement plate slidably disposed inside the crushing box. A pounding mechanism for pounding beef on the placement plate is provided at the top of the frame, and a lifting mechanism for pushing out the beef is provided at the bottom of the placement plate. A pushing component for feeding and unloading beef is also provided on the frame. The pounding mechanism includes support frames fixedly installed on both sides of the top of the frame, and movable plates respectively installed on the two support frames. Several equidistantly distributed pounding blades (first and second) are fixedly installed on the two movable plates. This invention facilitates more thorough and fine pounding of beef, greatly improving the pounding and crushing effect, enhancing the quality of the finished beef product, and avoiding the situation where existing pounding and crushing equipment does not thoroughly pound the beef, thus affecting the taste of the finished beef product.
[0004] Although the aforementioned patent utilizes two sets of opposing, spaced-apart pounding blades to alternately pound beef, solving the problem of meat shifting position and difficulty in effectively gathering during the pounding process in traditional food pounding equipment, the pounding mechanism of this equipment moves in a single direction. It can only simply improve the pounding range and pounding uniformity. After multiple poundings, the meat will still move to areas outside the range of the pounding mechanism, and it cannot completely solve the problem of pounding uniformity.
[0005] Therefore, a pounding food processing device is proposed to solve the problems mentioned in the background art. Summary of the Invention
[0006] The purpose of this invention is to provide a pounding food processing device to solve the problem of the pounding mechanism mentioned in the background art having a single movement direction, which can only simply improve the pounding range and pounding uniformity. After multiple poundings, the meat will still move to an area outside the range of the pounding mechanism, and the problem of pounding uniformity cannot be completely solved.
[0007] To achieve the above objectives, the present invention provides the following technical solution: a hammering food processing device, comprising: a container, a linkage frame, and hammering blocks. The container includes an outer enclosure, with a top plate and a bottom plate fixedly connected to the top and bottom of the outer enclosure, respectively. The linkage frame consists of four components distributed around the four corners of the container. Each linkage frame includes two right-angle connecting rods arranged symmetrically at the top and bottom. A right-angle hole is formed on the outer surface of the right-angle connecting rod near the right angle, and an end hole is formed near the outer end of the right-angle connecting rod. A positioning shaft is fixedly connected between the inner walls of adjacent right-angle holes, and an insert shaft is rotatably connected between the inner walls of adjacent end holes. The hammering blocks consist of four components arranged symmetrically in a cross shape inside the container, including a collision block. A horizontally placed slide rail is fixedly installed on one side of the outer surface of the collision block, and a slide bar is symmetrically slidably connected to the outer surface of the slide rail. The insert shaft and the slide bar are rotatably connected.
[0008] Preferably, the outer enclosure is cross-shaped, and four clearance grooves are provided on the outer surfaces of the top plate and the bottom plate. The clearance grooves are centrally symmetrically distributed. A downwardly extending outer bracket is fixedly connected between the outer surfaces of the outer enclosure. The outer surface of the collision block is in contact with the inner wall of the outer enclosure, and the outer surface of the insertion shaft is in slidable contact with the inner wall of the clearance groove.
[0009] The above scheme consists of an outer enclosure, a top plate, and a bottom plate forming the outer shell of the device. A clearance groove is used to avoid the insertion shaft during movement. An outer bracket is used to support the outer shell of the device. The collision block slides inside the outer enclosure, which has a limiting function. The clearance groove limits the insertion shaft. The insertion shaft, slide bar, and slide rail limit each other. At the same time, the insertion shaft with a restricted movement path indirectly limits the positioning shaft through a right-angle connecting rod, ensuring the stable operation of the device.
[0010] Preferably, an electric push rod is installed at the center of the bottom of the outer support, a bracket is fixedly connected to the top of the electric push rod, a tray is placed on the top of the bracket, the top of the tray penetrates the outer surface of the bottom plate and the top of the tray and the top of the bottom plate are on the same plane, and a feed hopper is fixedly connected to the center of the top of the top plate.
[0011] With the above solution: when the electric actuator pushes the bracket upward, it can press the tray onto the bottom of the base plate. The tray has a double-layer design. The upper part of the bracket uses a limiting post to limit the wider part of the bottom of the tray, while the narrower part of the upper part of the tray is used to extend to the top of the base plate and form a plane with the top of the base plate. When the electric actuator retracts, the tray can be removed.
[0012] Preferably, an extension frame is fixedly connected to the outer surface of one of the positioning shafts. The extension frame is U-shaped and a vertically arranged push-pull shaft is fixedly connected between its inner top and inner bottom. A cylinder frame is fixedly connected to the outer surface of the outer enclosure near the extension frame. A push-pull cylinder is rotatably connected to the outer surface of the cylinder frame. The telescopic end of the push-pull cylinder is rotatably connected to the push-pull shaft.
[0013] The above solution involves using an extension bracket to mount the push-pull shaft and a cylinder bracket to mount the push-pull cylinder. In use, the push-pull cylinder is activated to extend or retract, which in turn drives the push-pull shaft to rotate, thereby driving subsequent components such as right-angle connecting rods and insert shafts to move.
[0014] Preferably, a sealing ring is slidably disposed between the inner walls of the clearance groove, the sealing ring and the right-angle connecting rod are fixedly connected to each other, and the outer surface of the insert shaft penetrates the outer surface of the sealing ring.
[0015] The above solution involves a sealing ring that passes through a shaft and connects to a right-angle connecting rod. As the right-angle connecting rod swings, the sealing ring moves accordingly and seals the clearance groove, preventing beef from falling out of the gap without affecting the operation of the equipment.
[0016] Preferably, the outer surface of the other side of the collision block is provided with multiple connecting grooves, and connecting columns extending outward are slidably connected between the inner walls of the connecting grooves. Hammering plates are fixedly connected between the ends of the multiple connecting columns, and springs are provided between the end faces of the connecting columns and the inner walls of the connecting grooves.
[0017] The above solution allows the connecting column to slide inside the connecting groove. By increasing the elastic force generated by the spring, the impact block and the hammer plate are elastically connected, which mainly prevents the hammer plate from being rigidly squeezed.
[0018] Preferably, the outer surface of the hammer plate has multiple conical grooves arranged near the bottom, and the outer surface of the impact block near the hammer plate has multiple needle columns fixedly connected to it, with the outer surface of the needle columns passing through the conical grooves.
[0019] The above scheme involves a conical groove composed of conical and circular sections. By setting needles, the needles pierce the beef, further damaging the beef tissue and improving the hammering effect. Initially, the needle tip and the surface of the hammering plate are on the same plane. When the hammering plate is pressed close to the impact block, the needles protrude to the outside. As the hammering plate resets, the needles retract back into the conical groove.
[0020] Preferably, a bearing is embedded inside the conical groove near the side of the collision block, and a threaded sleeve is fixedly connected between the inner walls of the bearing, with the threads on the outer surface of the needle column penetrating the outer surface of the threaded sleeve.
[0021] The above scheme involves bearings that are used to rotatably connect the threaded sleeve inside the tapered groove, allowing the threaded sleeve to rotate flexibly within the tapered groove. The needle and the threaded sleeve are engaged by internal and external threads, so the rotatable threaded sleeve rotates as it moves on the surface of the needle.
[0022] Preferably, a tapered sleeve is fixedly connected to the outer surface of the threaded sleeve near the hammer plate, the outer surface of the tapered sleeve is in contact with the inner wall of the tapered groove, and the outer surface of the needle column is in slidable contact with the inner wall of the tapered sleeve.
[0023] The above solution works as follows: Since the threaded sleeve rotates as it moves across the needle post surface, the conical sleeve connected to the threaded sleeve can rotate while moving across the needle post surface. In use, after the needle post protrudes from the outside of the hammering plate and pierces into the beef, as the needle post re-enters the conical groove, the conical sleeve will rotate and move relative to the surface of the conical groove. In this state, the beef adhering to the needle post surface will be peeled off. This design is simple and can both clean the needle post surface and prevent the beef from adhering to it and detaching from the hammering area.
[0024] Compared with the prior art, the beneficial effects of the present invention are:
[0025] 1. When using this invention, the entire linkage frame can move in synergy by using a push-pull cylinder in conjunction with a push-pull shaft to drive one of the positioning shafts to reciprocate. This drives the four hammer blocks to hammer the beef in pairs. The hammer blocks in pairs will be in an alternating motion state and will impact the beef along the X and Y axes respectively. This design can produce a gathering effect without additional structures and solves the problem that the unidirectional movement of the hammering mechanism will cause some meat to gradually move out of the hammering range, thus completely solving the problem of uneven hammering.
[0026] 2. When using this invention, the hammering effect on the beef is improved by adding needles to the surface of the impact block. The hammering plate is elastically connected to the impact block using springs and other connecting parts, avoiding damage caused by rigid hammering. On this basis, the bearings, threaded sleeves, tapered sleeves and threads on the surface of the needles in the tapered groove cooperate, so that when the hammering plate moves, the tapered sleeves will move in a rotating state on the surface of the needles, thereby scraping off the beef adhering to the surface. This avoids the problem of some beef adhering to the needles and detaching from the hammering area during the hammering process, and has the advantages of cleaning and improving the hammering effect.
[0027] 3. In this invention, the equipment only requires one push-pull cylinder to provide driving force to complete multi-directional pounding during the beef pounding process. Furthermore, the movement of the impact block in conjunction with the spring can complete the cleaning of the needle column and prevent meat from sticking together. It has a high energy utilization rate and good energy-saving effect. Attached Figure Description
[0028] Figure 1 This is a perspective view of a pounding food processing device according to the present invention;
[0029] Figure 2 This is a cross-sectional view of the container of a pounding food processing device according to the present invention;
[0030] Figure 3 This is a schematic diagram of the bracket structure of a pounding food processing equipment according to the present invention;
[0031] Figure 4 This is a partial three-dimensional view of a pounding food processing device according to the present invention;
[0032] Figure 5 This is a schematic diagram of the linkage frame structure of a pounding food processing device according to the present invention.
[0033] Figure 6 This is a perspective view of the hammering block of a hammering food processing device according to the present invention;
[0034] Figure 7 This is a cross-sectional view of the hammering block of a pounding food processing device according to the present invention;
[0035] Figure 8 This is a schematic diagram of the conical sleeve structure of a pounding food processing device according to the present invention;
[0036] Figure 9 This is a partial top view of a pounding food processing device according to the present invention;
[0037] Figure 10 This is a diagram showing the different working positions of the hammer block in a pounding food processing device according to the present invention.
[0038] In the diagram: 1. Container; 101. Outer enclosure; 102. Top plate; 103. Bottom plate; 104. Feed hopper; 105. Clearance groove; 106. Cylinder frame; 107. Push-pull cylinder; 108. Support plate; 109. Outer support; 110. Electric actuator; 111. Bracket; 2. Linkage frame; 201. Positioning shaft; 202. Right-angle connecting rod; 203. Right-angle hole; 204. End 205. Insert shaft; 206. Extension frame; 207. Push-pull shaft; 208. Sealing ring; 3. Hammering block; 301. Impact block; 302. Slide rail; 303. Slide bar; 304. Connecting groove; 305. Connecting column; 306. Spring; 307. Hammering plate; 308. Needle column; 309. Tapered groove; 310. Bearing; 311. Threaded sleeve; 312. Tapered sleeve. Detailed Implementation
[0039] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0040] Example: Please refer to Figures 1-10 As shown, the present invention provides a technical solution: a hammering food processing device, comprising: a container 1, a linkage frame 2, and a hammering block 3. The container 1 includes an outer enclosure 101, with a top plate 102 and a bottom plate 103 fixedly connected to the top and bottom of the outer enclosure 101, respectively. The linkage frame 2 is provided in four parts and is distributed around the four corners of the outer side of the container 1. Each linkage frame 2 includes two right-angle connecting rods 202 arranged symmetrically at the top and bottom. A right-angle hole 203 is provided on the outer surface of the right-angle connecting rod 202 near the right angle, and an end hole 204 is provided on the outer end of the right-angle connecting rod 202. The inner walls of adjacent right-angle holes 203 are fixedly connected. The device is equipped with a positioning shaft 201, and an insert shaft 205 is rotatably connected between the inner walls of adjacent end holes 204. The number of hammer blocks 3 is set to four and arranged symmetrically in a cross shape inside the container 1, including a collision block 301. A horizontal slide rail 302 is fixedly installed on one side of the outer surface of the collision block 301. A slide bar 303 is symmetrically slidably connected to the outer surface of the slide rail 302. The insert shaft 205 and the slide bar 303 are rotatably connected. During the operation of this device, the maximum rotation angle of the positioning shaft 201 in the initial state is 45° in the forward direction and 45° in the reverse direction. Whenever the positioning shaft 201 rotates 45° in the forward or reverse direction, one set of hammer blocks 3 in a relatively opposite position will be in complete contact.
[0041] The outer enclosure 101 is cross-shaped. Four clearance grooves 105 are provided on the outer surfaces of both the top plate 102 and the bottom plate 103. These clearance grooves 105 are centrally symmetrically distributed. A downwardly extending outer support 109 is fixedly connected between the outer surfaces of the outer enclosure 101. The outer surface of the collision block 301 is in contact with the inner wall of the outer enclosure 101, and the outer surface of the insertion shaft 205 is in sliding contact with the inner wall of the clearance grooves 105. The outer enclosure 101, top plate 102, and bottom plate 103 constitute the outer structure of the device. The housing and the clearance groove 105 are used to avoid the insertion shaft 205 during the movement. The outer bracket 109 is used to support the housing of the device. The collision block 301 slides inside the outer enclosure 101 and has a limiting function. The clearance groove 105 limits the insertion shaft 205. The insertion shaft 205, the slide bar 303, and the slide rail 302 limit each other. At the same time, the insertion shaft 205, whose movement path is restricted, indirectly limits the positioning shaft 201 through the right-angle connecting rod 202, thus ensuring the stable operation of the device.
[0042] An electric push rod 110 is installed at the center of the bottom of the outer support 109. A bracket 111 is fixedly connected to the top of the electric push rod 110. A tray 108 is placed on the top of the bracket 111. The top of the tray 108 penetrates the outer surface of the base plate 103 and the top of the tray 108 and the top of the base plate 103 are on the same plane. A feed hopper 104 is fixedly connected to the center of the top of the top plate 102. When in use, when the electric push rod 110 pushes the bracket 111 upward, it can press the tray 108 onto the bottom of the base plate 103. The tray 108 has a double-layer design. The bracket 111 uses a limiting post to limit the wider part of the bottom of the tray 108, while the narrower part of the top of the tray 108 is used to extend to the top of the base plate 103 and form a plane with the top of the base plate 103. When the electric push rod 110 retracts, the tray 108 can be removed.
[0043] One of the positioning shafts 201 has an extension frame 206 fixedly connected to its outer surface. The extension frame 206 is U-shaped and has a vertically arranged push-pull shaft 207 fixedly connected between its inner top and inner bottom. A cylinder frame 106 is fixedly connected to the outer surface of the outer enclosure 101 near the extension frame 206. A push-pull cylinder 107 is rotatably connected to the outer surface of the cylinder frame 106. The extension end of the push-pull cylinder 107 is rotatably connected to the push-pull shaft 207. The extension frame 206 is used to install the push-pull shaft 207, and the cylinder frame 106 is used to install the push-pull cylinder 107. In use, the push-pull cylinder 107 is activated to extend and retract, which drives the push-pull shaft 207 to move, thereby driving the positioning shaft 201 to rotate, and then driving the subsequent right-angle connecting rod 202, insert shaft 205 and other components to move.
[0044] A sealing ring 208 is slidably disposed between the inner surface walls of the clearance groove 105. The sealing ring 208 and the right-angle connecting rod 202 are fixedly connected to each other, and the outer surface of the insert shaft 205 penetrates the outer surface of the sealing ring 208. The sealing ring 208 is penetrated by the insert shaft 205 and connected to the right-angle connecting rod 202. During the swing of the right-angle connecting rod 202, the sealing ring 208 will follow the movement and seal the clearance groove 105 to prevent beef from falling out of the gap, while not affecting the operation of the equipment.
[0045] Multiple connecting grooves 304 are provided on the outer surface of the other side of the impact block 301. Connecting posts 305 extending outward are slidably connected between the inner walls of the connecting grooves 304. Hammering plates 307 are fixedly connected between the ends of the multiple connecting posts 305. Springs 306 are provided between the end faces of the connecting posts 305 and the inner walls of the connecting grooves 304. The connecting posts 305 can slide inside the connecting grooves 304. By increasing the elastic force generated by the springs 306, the impact block 301 and the hammering plate 307 are elastically connected, which mainly serves to avoid the rigid compression of the hammering plate 307.
[0046] Multiple conical grooves 309 are arranged on the outer surface of the hammer plate 307 near the bottom. Multiple needle posts 308 are fixedly connected to the outer surface of the impact block 301 near the side of the hammer plate 307. The outer surface of the needle posts 308 passes through the conical grooves 309. The conical grooves 309 are composed of conical and circular grooves. By setting the needle posts 308, they can pierce the beef, thereby further destroying the beef tissue and improving the hammering effect. In the initial state, the piercing end of the needle post 308 and the surface of the hammer plate 307 are on the same plane. When the hammer plate 307 is pressed close to the impact block 301, the needle posts 308 will protrude to the outside. As the hammer plate 307 resets, the needle posts 308 will retract back into the conical grooves 309.
[0047] A bearing 310 is embedded inside the tapered groove 309 near the side of the collision block 301. A threaded sleeve 311 is fixedly connected between the inner walls of the bearing 310. The threads on the outer surface of the needle post 308 penetrate the outer surface of the threaded sleeve 311. The bearing 310 is mainly used to rotatably connect the threaded sleeve 311 inside the tapered groove 309, so that the threaded sleeve 311 can rotate flexibly in the tapered groove 309. The needle post 308 and the threaded sleeve 311 are engaged by internal and external threads, so the rotatable threaded sleeve 311 will rotate when it moves on the surface of the needle post 308.
[0048] A tapered sleeve 312 is fixedly connected to the outer surface of the threaded sleeve 311 near the hammer plate 307. The outer surface of the tapered sleeve 312 is in contact with the inner wall of the tapered groove 309, and the outer surface of the needle post 308 is in sliding contact with the inner wall of the tapered sleeve 312. Since the threaded sleeve 311 rotates during the movement of the needle post 308, the tapered sleeve 312 connected to the threaded sleeve 311 can move and rotate on the surface of the needle post 308. In use, after the needle post 308 protrudes from the outside of the hammer plate 307 and pierces into the beef, as the needle post 308 re-enters the conical groove 309, the tapered sleeve 312 will rotate and move relative to the surface of the conical groove 309. In this state, the beef adhering to the surface of the needle post 308 will be peeled off. This design structure is simple and can both clean the surface of the needle post 308 and prevent the beef from adhering and detaching from the hammering area.
[0049] The overall effect and working principle of the device are as follows: When in use, the beef to be pounded is fed into the equipment from the feed hopper 104. The beef will fall onto the base plate 103 and be positioned between the four hammer plates 307. During use, the push-pull cylinder 107 is activated to repeatedly extend and retract. During the extension and retraction of the push-pull cylinder 107, the extension frame 206 is pushed and pulled through the push-pull shaft 207. At this time, the positioning shaft 201 connected to the extension frame 206 will rotate. When the positioning shaft 201 rotates, the right-angle connecting rod 202 fixed at its top and bottom will rotate around the positioning shaft 201. Each time the right-angle connecting rod 202 rotates, it will drive one of the two insert shafts 205. One slider 303 moves closer to the center of the equipment, while simultaneously moving the other slider 303 away from the center. During this process, the two sliders 303 simultaneously move two adjacent collision blocks 301. The sliders 303 slide along the slide rail 302 and the collision blocks 301, moving from the center of the collision blocks 301 to both sides. As the collision blocks 301 move, another slider 303 on the same slide rail 302 moves in the same direction and, through its connected insertion shaft 205, drives the corresponding right-angle connecting rod 202 to rotate. Therefore, when the push-pull cylinder 107 is activated, it drives one set of positioning shafts 201 and... When the right-angle connecting rod 202 rotates, the other positioning shafts 201 and the right-angle connecting rod 202 will move synchronously. In this state, the two opposing collision blocks 301 will move closer to or further away from the center of the equipment, and the two sets of collision blocks 301 will move alternately. Whenever the positioning shaft 201 rotates 45° clockwise or counterclockwise, the distance between one set of collision blocks 301 will be minimized, and the needle posts 308 and the hammering plate 307 on the surfaces of the two collision blocks 301 will be completely in contact. At this time, the needle posts 308 can effectively destroy the high-toughness tissues such as beef fascia, while the hammering plate 307 will simultaneously compress the spring 306 through the connecting post 305 after impacting the beef. The device minimizes pressure and avoids damage to the equipment caused by forced compression. As the hammering plate 307 continuously impacts and pounds the beef, it effectively breaks down the muscle fibers of the beef, improving tenderness. When using this device to pound beef, the two sets of hammering blocks 3, arranged in a cross shape, alternately pound the beef along the X and Y axes. When the beef is impacted by the two hammering blocks 3 in the X-axis direction, it will gather into a long strip corresponding to the Y-axis direction. After being pounded in the Y-axis direction, it will gather again and distribute along the X-axis direction. The gathering effect can be produced without any extra structure, and it solves the problem that the unidirectional movement of the pounding mechanism will cause some meat to gradually move out of the pounding range, thus completely solving the problem of uneven pounding.
[0050] During the impact and pounding of the beef, whenever the hammering plate 307 is subjected to the reaction force of the beef, it compresses the spring 306 and moves closer to the opposing block 301. Meanwhile, the needles 308 on the surface of the opposing block 301 pass through the conical groove 309 on the surface of the hammering plate 307. As the hammering plate 307 moves away from the beef along with the opposing block 301, the rebounding spring 306 pushes the hammering plate 307 back to its original position. At this time, the needles 308 retract into the conical groove 309. During this process, whenever the needles 308 move inside the conical groove 309... The threaded sleeve 311, which is rotatably connected to the tapered groove 309 via the bearing 310, will rotate due to the characteristics of the thread. When the threaded sleeve 311 rotates, it will drive the tapered sleeve 312 on the surface of the needle post 308 to rotate. Therefore, whenever the hammer plate 307 moves, the tapered sleeve 312 will move on the surface of the needle post 308 in a rotating state, thereby scraping off the beef adhering to its surface. This avoids the problem of some beef adhering to the needle post 308 and detaching from the hammering area during the hammering process, and has the advantages of cleaning and improving the hammering effect.
[0051] After the beef is pounded, the electric push rod 110 is activated to drive the bracket 111 to descend. At this time, the tray 108 placed on the bracket 111 will descend synchronously and expose the discharge port at the center of the bottom plate 103. As the equipment continues to run, the beef will be continuously squeezed in the X and Y axis directions, and then fall from the discharge port in the middle position onto the tray 108 to complete the discharge collection.
[0052] This equipment only requires a single push-pull cylinder 107 to provide driving force during the pounding of beef to complete multi-directional pounding. Furthermore, the movement of the impact block 301, in conjunction with the spring 306, can clean the needle column 308 and prevent meat from sticking together. It has a high energy utilization rate and good energy-saving effect. In addition, the drive source push-pull cylinder 107 in this device can be replaced with a mature reciprocating drive mechanism according to the actual use. When replacing the reciprocating drive mechanism to drive the positioning shaft 201 to rotate, it should be noted that the initial rotation angle of the positioning shaft 201 in both the forward and reverse directions is 45°.
[0053] Among them, the push-pull cylinder 107 and the electric actuator 110 are both existing technologies, and their components and operating principles are publicly available technologies, so they will not be explained in detail here.
[0054] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A pounding-type food processing equipment, characterized in that, include: Container (1), linkage frame (2) and hammer block (3); The container (1) includes an outer enclosure (101), and a top plate (102) and a bottom plate (103) are fixedly connected to the top and bottom of the outer enclosure (101), respectively. The number of linkage frames (2) is set to four and distributed around the four corners of the container (1). Each linkage frame (2) includes two right-angle connecting rods (202) arranged symmetrically on the upper and lower sides. A right-angle hole (203) is opened on the outer surface of the right-angle connecting rod (202) near the right angle. An end hole (204) is opened on the outer end of the right-angle connecting rod (202). A positioning shaft (201) is fixedly connected between the inner walls of the upper and lower adjacent right-angle holes (203). A plug shaft (205) is rotatably connected between the inner walls of the upper and lower adjacent end holes (204). The number of hammer blocks (3) is set to four and arranged symmetrically in a cross shape inside the container (1). The hammer blocks (3) include collision blocks (301). A horizontal slide rail (302) is fixedly installed on one side of the outer surface of the collision block (301). A slide bar (303) is symmetrically slidably connected to the outer surface of the slide rail (302). The insert shaft (205) and the slide bar (303) are rotatably connected.
2. The pounding food processing equipment according to claim 1, characterized in that: The outer enclosure (101) is cross-shaped. The outer surfaces of the top plate (102) and the bottom plate (103) are provided with four clearance grooves (105). The clearance grooves (105) are centrally symmetrically distributed. The outer surfaces of the outer enclosure (101) are fixedly connected with downwardly extending outer supports (109). The outer surface of the collision block (301) is in contact with the inner wall of the outer enclosure (101). The outer surface of the insertion shaft (205) is in contact with the inner wall of the clearance groove (105).
3. The pounding food processing equipment according to claim 2, characterized in that: An electric push rod (110) is installed at the center of the bottom of the outer support (109). A bracket (111) is fixedly connected to the top of the electric push rod (110). A tray (108) is placed on the top of the bracket (111). The top of the tray (108) penetrates the bottom plate (103) and the top of the tray (108) and the top of the bottom plate (103) are on the same plane. A feed hopper (104) is fixedly connected to the center of the top of the top plate (102).
4. The pounding food processing equipment according to claim 1, characterized in that: An extension frame (206) is fixedly connected to the outer surface of one of the positioning shafts (201). The extension frame (206) is U-shaped and a vertically arranged push-pull shaft (207) is fixedly connected between the inner top and the inner bottom. A cylinder frame (106) is fixedly connected to the outer surface of the outer enclosure (101) near the extension frame (206). A push-pull cylinder (107) is rotatably connected to the outer surface of the cylinder frame (106). The extension end of the push-pull cylinder (107) is rotatably connected to the push-pull shaft (207).
5. The pounding food processing equipment according to claim 2, characterized in that: A sealing ring (208) is slidably disposed between the inner surface walls of the clearance groove (105). The sealing ring (208) and the right-angle connecting rod (202) are fixedly connected to each other, and the outer surface of the insert shaft (205) passes through the sealing ring (208).
6. The pounding food processing equipment according to claim 1, characterized in that: The outer surface of the other side of the collision block (301) is provided with a plurality of connecting grooves (304), and connecting columns (305) extending outward are slidably connected between the inner walls of the connecting grooves (304). Hammering plates (307) are fixedly connected between the ends of the plurality of connecting columns (305), and springs (306) are provided between the end face of the connecting column (305) and the inner wall of the connecting groove (304).
7. The pounding food processing equipment according to claim 6, characterized in that: The outer surface of the hammer plate (307) near the bottom has a plurality of conical grooves (309) arranged thereon. The outer surface of the collision block (301) near the hammer plate (307) has a plurality of needles (308) arranged and fixedly connected thereon. The outer surface of the needles (308) passes through the conical grooves (309).
8. The pounding food processing equipment according to claim 7, characterized in that: A bearing (310) is embedded in the conical groove (309) near the side of the collision block (301). A threaded sleeve (311) is fixedly connected between the inner walls of the bearing (310). The thread on the outer surface of the needle column (308) penetrates the inner surface of the threaded sleeve (311).
9. The pounding food processing equipment according to claim 8, characterized in that: A tapered sleeve (312) is fixedly connected to the outer surface of the threaded sleeve (311) near the side of the hammer plate (307), and the outer surface of the tapered sleeve (312) and the inner wall of the tapered groove (309) are in contact.
10. The pounding food processing equipment according to claim 9, characterized in that: The outer surface of the needle column (308) and the inner wall of the conical sleeve (312) slide together.
Citation Information
Patent Citations
Beef deep processing, beating and crushing equipment
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Chopping machine with knocking function for quick-frozen food production
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