Quality detection device for beef processing

Through the combination of the pressure component and the water collection component, the problems of uneven force and untimely water collection in the detection of water-injected beef are solved, uniform squeezing and rapid water collection are achieved, and the accuracy and efficiency of detection are improved.

CN120609703AInactive Publication Date: 2025-09-09HUBEI HONGFU AGRI & ANIMAL HUSBANDRY CO LTD
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Patent Information

Application Number
CN202510826120.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-19
Publication Date
2025-09-09
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

When using the traditional extrusion method to test water-injected beef, the uneven surface of the beef leads to uneven force, affecting the accuracy and reliability of the test; the existing device cannot quickly collect the squeezed water, causing the measurement results to underestimate the degree of water injection, and the extrusion process may destroy the integrity of the tissue.

Method used

The pressure component is used for multi-point uniform squeezing, combined with the water collection component to quickly collect and filter water, ensuring uniform squeezing and rapid water collection, preventing evaporation or absorption, and improving detection accuracy.

Benefits of technology

It achieves uniform squeezing of water-injected beef and rapid water collection, ensures the accuracy and reliability of test results, avoids local overload and impurity influence, and improves test efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of beef quality detection, and particularly discloses a beef processing quality detection device which comprises a detection table, a pressure assembly is arranged at the top end of the detection table, a water collection assembly is arranged in an inner cavity of the detection table, a controller is arranged on the outer surface of the detection table, and the water collection assembly is located under the pressure assembly. The beef to be detected can be uniformly extruded at multiple points through the pressure assembly, so that the beef can be uniformly extruded when the outer surface of the beef is uneven, local overload is avoided, uniform stress of the whole beef is ensured, moisture in the beef is uniformly discharged, and the accuracy and reliability of detection are ensured; according to the device, water discharged by beef can be rapidly collected through the water collecting assembly, meanwhile, water generated in the extrusion process can be filtered, impurities are prevented from entering the finally measured water, an alarm can be given in time when a filter screen is blocked, a worker can conveniently carry out maintenance, and the detection efficiency and accuracy are improved.
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Description

Technical Field

[0001] The present application relates to the technical field of beef quality detection, and in particular to a quality detection device for beef processing. Background Art

[0002] With rising living standards, consumers are placing increasingly stringent demands on beef quality, focusing not only on taste and nutritional value but also safety. However, the market is plagued by issues such as selling inferior products as genuine ones and adulterating products, which severely harm consumers. Water-injected beef is a common, substandard product on the market and a relatively common quality issue. Unscrupulous individuals often inject sewage and other substances into the beef, denaturing the beef's fibrous tissue. This degrades the meat's quality, making it easily perishable and tastes poor, while also significantly reducing its nutritional value. Using water-injected beef for product processing severely harms consumers, necessitating appropriate quality testing of water-injected beef.

[0003] The existing technology still has the following problems:

[0004] 1. In the traditional extrusion method, the beef to be tested is placed in an extrusion device to squeeze out the water in the beef. The weight of the beef before and after extrusion is measured by a weighing instrument to determine whether it is water-injected meat. Since the surface of the beef is not smooth as a whole, it is easy to cause uneven contact between the extrusion device and the outer surface of the beef during extrusion. The uneven force will cause some parts of the water-injected meat to be under excessive pressure, while other parts will be under too little pressure. The uneven force will cause water to seep out quickly from the parts with greater force, forming local water stains or water marks, while other parts will see less water. This cannot accurately reflect the overall water injection level of the water-injected meat, affecting the accuracy and reliability of the test.

[0005] 2. Existing quality inspection devices are unable to quickly collect water from water-injected meat. If the squeezed water is not quickly collected, the water will be reduced due to evaporation, infiltration, or absorption by the surrounding environment, resulting in the final measured water volume being lower than the actual amount of water squeezed out of the meat, thereby underestimating the degree of water injection in the water-injected meat and affecting the accuracy of the test results. In addition, the impact and pressure of the water flow during the extrusion process may destroy the integrity of these tissues, causing some tissue debris or impurities on the meat surface to flow out along with the squeezed water. If these impurities are not processed during the collection process, the accuracy of the data detection will be easily reduced. Summary of the Invention

[0006] Because the overall surface of the beef is not flat, it is easy to cause uneven contact between the extrusion equipment and the outer surface of the beef during extrusion. The uneven force will cause some parts of the water-injected meat to bear too much pressure, while other parts have too little pressure. The uneven force will cause water to seep out quickly from the parts with large force, forming local water stains or water marks, while other parts have less water seepage, which cannot accurately reflect the overall water injection level of the water-injected meat, affecting the accuracy and reliability of the detection. It is impossible to quickly collect the water in the water-injected meat. If the squeezed water is not collected quickly, the water will be reduced due to evaporation, infiltration or absorption by the surrounding environment, resulting in the final measured water volume being lower than the actual water volume squeezed out of the meat, thereby underestimating the water injection level of the water-injected meat, affecting the accuracy of the detection results, etc. The purpose of the present invention is to provide a quality detection device for beef processing to solve the above-mentioned shortcomings.

[0007] The present application provides a quality inspection device for beef processing, comprising an inspection platform, a pressure assembly is provided at the top of the inspection platform, a water collection assembly is provided in the inner cavity of the inspection platform, a controller is provided on the outer surface of the inspection platform, the water collection assembly is located directly below the pressure assembly, the pressure assembly comprises a fixed frame, the fixed frame is fixedly connected to the outer surface of the inspection platform, a pressure mechanism is provided in the inner cavity of the fixed frame, a movable plate is provided at the bottom end of the pressure mechanism, a buffer mechanism is provided at the bottom end of the movable plate, a pressure frame is provided at the bottom end of the buffer mechanism, a uniform extrusion mechanism is provided on the inner wall of the pressure frame, and there are three uniform extrusion mechanisms.

[0008] Furthermore, the pressure mechanism includes a threaded rod, which is rotatably connected to the inner cavity of the fixed frame, a first motor is provided on the outer surface of the fixed frame, and a controller can be used to control the operation of the first motor. The output end of the first motor is socketed with the threaded rod, and a moving block is socketed at both ends of the threaded rod. The upper surface of the moving block is slidably connected to the fixed frame, and the moving block and the threaded rod are connected by threads. The threads at both ends of the threaded rod are in opposite directions. The two sides of the moving block are rotatably connected with a first connecting bar, and the end of the first connecting bar away from the moving block is rotatably connected to the moving plate. The moving plate and the fixed frame are slidably connected. A limiting rod is fixedly installed on the upper surface of the moving plate, and the limiting rod and the fixed frame are slidably connected.

[0009] Furthermore, the buffer mechanism includes a fixed rod, which is fixedly connected to the inner wall of the pressure frame, a first spring is provided in the middle part of the fixed rod, both ends of the fixed rod are slidably connected to a slide seat, the inner cavity of the slide seat is rotatably connected to a second connecting strip, the end of the second connecting strip away from the slide seat is rotatably connected to a connecting block, the connecting block is fixedly connected to the lower surface of the movable plate, and the first spring is located between the two slide seats.

[0010] Furthermore, the uniform extrusion mechanism includes a fixed plate, a first limit block is fixedly installed on the lower surface of the fixed plate, the inner cavity of the first limit block is slidably connected to the slider, the inner cavity of the slider is rotatably connected to the third connecting bar, the two ends of the fixed plate are rotatably connected to the fourth connecting bar, the end of the third connecting bar away from the slider is rotatably connected to the pressure block, and the outer surface of the pressure block is fixedly installed with an extrusion plate.

[0011] Furthermore, one end of the fourth connecting bar away from the fixed plate is rotatably connected to the pressure block, the fixed plate and the bottom wall of the pressure frame are fixedly connected, and there is a gap between the extrusion plates.

[0012] Furthermore, the water collection assembly includes a water collection frame, a card block is fixedly installed on the inner wall of the water collection frame, a first floating mechanism is provided in the inner cavity of the water collection frame, a second floating mechanism is provided in the inner cavity of the water collection frame, a water collection mechanism is provided in the middle part of the lower surface of the water collection frame, a second motor is provided below the water collection mechanism, a scale line is provided on the outer surface of the second motor, and a controller can be used to control the operation of the second motor. The water collection frame and the inner wall of the detection table are fixedly connected.

[0013] Furthermore, the first floating mechanism includes a support plate, a first sliding rod is provided at the four corners of the support plate, a third spring is sleeved on the outer surface of the first sliding rod, the third spring is located between the support plate and the first sliding rod, the bottom end of the first sliding rod is fixedly connected to the inside of the water collecting frame, the support plate and the first sliding rod are slidably connected, the lower surface of the support plate and the upper surface of the block are tightly fitted, a fixing ring is fixedly installed in the middle part of the support plate, a protrusion is fixedly installed on the lower surface of the fixing ring, an extrusion rod is provided below the fixing ring, the bottom end of the extrusion rod is fixedly connected to the connecting plate, and a rotating rod is fixedly installed in the middle part of the connecting plate, the output end of the second motor is sleeved on the rotating rod, the extrusion rod and the fixing ring are fitted, the protrusion is raised in the middle, and the two ends are flush with the fixing ring.

[0014] The gear train is meshed with the first gear and the second gear is meshed with the second gear, and the gear train is meshed with the second gear and the second gear is fixed to the bottom surface of the support plate, and the top end of the second gear train is meshed with the bottom surface of the support plate, and the top end of the second gear train is meshed with the second gear. The water collecting plate and the water collecting frame are slidably connected, and the support plate and the water collecting frame are slidably connected, and there is a gap between the water collecting plate and the bottom wall of the water collecting frame.

[0015] Furthermore, the water collection mechanism includes a water collecting cylinder, a bottom cover is engaged with the bottom end of the water collecting cylinder, a slide groove is provided on the outer surface of the water collecting cylinder, a filter screen is slidably connected to the inner cavity of the water collecting cylinder, a baffle is fixedly connected to both ends of the filter screen, the outer surface of the baffle is connected to a bolt by threaded rotation, a fixed block is fixedly installed on the outer surface of the water collecting cylinder, a button is provided on the upper surface of the fixed block, an alarm is fixedly installed on the lower surface of the fixed block, the button and the alarm are electrically connected, and pressing the button controls the alarm to sound an alarm, a third slide rod is fixedly installed on the upper surface of the fixed block, and a sixth spring is sleeved on the outer surface of the third slide rod.

[0016] Furthermore, the bolt is located directly above the button, the baffle plate and the third sliding rod are slidably connected, the sixth spring is located between the fixed block and the baffle plate, the baffle plate and the water collecting cylinder are slidably connected, the rotating rod and the filter screen are rotatably connected, the rotating rod and the water collecting cylinder are rotatably connected, the water collecting cylinder and the middle part of the lower surface of the water collecting frame are fixedly connected, the baffle plate and the water collecting frame are slidably connected, a connecting port is opened in the middle part of the lower surface of the water collecting frame, the water outlet pipe on the lower surface of the water collecting plate passes through the connecting port and is located above the inner cavity of the water collecting cylinder.

[0017] The technical solution provided by this application has at least the following technical effects or advantages:

[0018] 1. The use of a pressure component effectively solves the problem of the traditional extrusion method in which the beef to be tested is placed in an extrusion device to squeeze out the moisture in the beef, and the weight of the beef before and after extrusion is measured by a weighing instrument to determine whether it is water-injected meat. Since the surface of the beef is not flat as a whole, it is easy to cause uneven contact between the extrusion device and the outer surface of the beef during extrusion. The uneven force will cause some parts of the water-injected meat to be under excessive pressure, while other parts will be under too little pressure. The uneven force will cause water to seep out quickly from the parts with high force, forming local water stains or water marks, while other parts will see less water, which cannot accurately reflect the overall water injection degree of the water-injected meat, affecting the accuracy and reliability of the detection. The present invention can perform multi-point uniform extrusion on the beef to be tested through the pressure component, which is convenient for uniform extrusion of the beef when the outer surface of the beef is uneven, avoiding local overload, ensuring uniform force on the beef as a whole, and evenly discharging the moisture inside the beef, thereby ensuring the accuracy and reliability of the detection. In addition, it has a certain buffering effect during the extrusion process to prevent the beef from being damaged by excessive rigidity and direct excessive force.

[0019] 2. The use of a water collection component effectively solves the problem that existing quality inspection devices are unable to quickly collect water from water-injected meat. If the squeezed water is not quickly collected, the water will be reduced due to evaporation, infiltration, or absorption by the surrounding environment, resulting in the final measured water volume being lower than the actual water volume squeezed out of the meat, thereby underestimating the water injection degree of the water-injected meat and affecting the accuracy of the test results. In addition, the impact and pressure of the water flow during the extrusion process may destroy the integrity of these tissues, causing some tissue debris or impurities on the meat surface to flow out along with the squeezed water. If they are not processed during the collection process, the accuracy of the data detection will easily be reduced. The present invention can quickly collect the water discharged by the beef through the water collection component, preventing the water from being reduced due to evaporation, infiltration, or absorption by the surrounding environment, resulting in the final measured water volume being lower than the actual water volume squeezed out of the meat, further improving the accuracy of the test data. At the same time, it can filter the water generated during the extrusion process to prevent impurities from entering the water finally measured, and can timely alarm when the filter is clogged, facilitating maintenance by staff, and improving the efficiency and accuracy of detection. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 This is a schematic diagram of the overall structure of the embodiment of the present application;

[0021] Figure 2 This is a schematic diagram of the pressure assembly structure in an embodiment of the present application;

[0022] Figure 3 This is a schematic diagram of the pressure mechanism structure in the embodiment of the present application;

[0023] Figure 4 Schematic diagram of the cross-section of the uniform extrusion mechanism structure in the embodiment of the present application;

[0024] Figure 5 This is a schematic structural diagram of the water collection component in an embodiment of the present application;

[0025] Figure 6 Schematic diagram of the cross-section of the water collection component structure in the embodiment of the present application;

[0026] Figure 7 This is a schematic structural diagram of the first floating mechanism in an embodiment of the present application;

[0027] Figure 8 This is a schematic diagram of the first rack structure in an embodiment of the present application;

[0028] Figure 9 Schematic diagram of the fixing ring structure in the embodiment of the present application;

[0029] Figure 10 Schematic diagram of the filter structure in the embodiment of the present application;

[0030] Figure 11For the embodiment of this application Figure 10 A magnified schematic diagram of the structure at point A in the middle.

[0031] In the figure: 1. test table; 2. pressure assembly; 21. fixed frame; 22. pressure mechanism; 221. threaded rod; 222. first motor; 223. moving block; 224. first connecting bar; 225. limiting rod; 23. moving plate; 24. buffer mechanism; 241. fixed rod; 242. first spring; 243. slide; 244. second connecting bar; 245. connecting block; 25. pressure frame; 26. uniform extrusion mechanism; 261. fixed plate; 262. first limiting block; 263. slide; 264. third connecting bar; 265. fourth connecting bar; 266. pressure block; 267. extrusion plate; 3. water collection assembly; 31. water collection frame; 32. clamping block; 33. first floating mechanism; 331. Support plate; 332. First slide bar; 333. Third spring; 334. Fixing ring; 335. Protrusion; 336. Extrusion bar; 337. Connecting plate; 338. Rotating bar; 34. Second floating mechanism; 341. Water collecting plate; 342. Second slide bar; 343. Fourth spring; 344. Second limiting block; 345. First rack; 346. Gear; 347. Second rack; 35. Water collecting mechanism; 351. Water collecting cylinder; 352. Bottom cover; 353. Slide; 354. Filter; 355. Shielding plate; 356. Bolt; 357. Fixing block; 358. Button; 359. Alarm; 3510. Third slide bar; 3511. Sixth spring; 36. Second motor. DETAILED DESCRIPTION

[0032] The surface of the beef is not smooth as a whole, which may easily lead to uneven contact between the extrusion equipment and the outer surface of the beef during extrusion. The present invention can perform multi-point uniform extrusion on the beef to be tested through a pressure component, so as to facilitate uniform extrusion of the beef when the outer surface of the beef is uneven, avoid local overload, ensure that the overall force on the beef is uniform, and discharge the moisture inside the beef evenly. For the water that cannot be quickly collected from the water-injected meat, the present invention can quickly collect the water discharged from the beef through a water collection component, preventing the moisture from being reduced due to evaporation, infiltration or absorption by the surrounding environment, resulting in the final measured water amount being lower than the actual amount of water squeezed out of the meat, thereby further improving the accuracy of the test data.

[0033] In order to better understand the above technical solution, the above technical solution will be described in detail below with reference to the accompanying drawings and specific implementation methods.

[0034] See also Figure 1As shown, a quality inspection device for beef processing includes an inspection platform 1, a pressure component 2 is provided on the top of the inspection platform 1, a water collecting component 3 is provided in the inner cavity of the inspection platform 1, and a controller is provided on the outer surface of the inspection platform 1. The water collecting component 3 is located directly below the pressure component 2. The beef to be inspected is weighed, and then the beef to be inspected is placed on the water collecting component 3. The beef is squeezed by the pressure component 2 to discharge the moisture of the beef. After the squeezing is completed, the inside of the water collecting component 3 is controlled to shake so that the water can be quickly collected. Finally, the beef and the discharged water are weighed respectively to detect the water injection amount of the beef.

[0035] See also Figure 1 and Figure 2 As shown, the pressure component 2 includes a fixed frame 21, which is fixedly connected to the outer surface of the detection platform 1. The inner cavity of the fixed frame 21 is provided with a pressure mechanism 22, and the bottom end of the pressure mechanism 22 is provided with a movable plate 23, and the bottom end of the movable plate 23 is provided with a buffer mechanism 24. The bottom end of the buffer mechanism 24 is provided with a pressure frame 25, and the inner wall of the pressure frame 25 is provided with a uniform extrusion mechanism 26. There are three uniform extrusion mechanisms 26. The position of the movable plate 23 in the inner cavity of the fixed frame 21 is controlled by the pressure mechanism 22, so that the buffer mechanism 24 drives the pressure frame 25 to press down, thereby causing the uniform extrusion mechanism 26 to squeeze the beef placed on the water collection component 3. The uniform extrusion mechanism 26 facilitates a uniform downward pressure on the beef, so that each part of the beef is subjected to uniform force, thereby evenly discharging the moisture of the water-injected beef, thereby improving the accuracy of the detection data.

[0036] See also Figure 2 and Figure 3As shown, the pressure mechanism 22 includes a threaded rod 221, which is rotatably connected to the inner cavity of the fixing frame 21. A first motor 222 is provided on the outer surface of the fixing frame 21. A controller can be used to control the operation of the first motor 222. The output end of the first motor 222 is sleeved with the threaded rod 221. Both ends of the threaded rod 221 are sleeved with a moving block 223. The upper surface of the moving block 223 is slidably connected to the fixing frame 21. The moving block 223 and the threaded rod 221 are connected by threads. The threads at both ends of the threaded rod 221 are in opposite directions. The two sides of the moving block 223 are rotatably connected with the first connecting bar 224. The first connecting bar 224 is rotatably connected to the moving plate 23 at one end away from the moving block 223, and the moving plate 23 is slidably connected to the fixed frame 21. A limit rod 225 is fixedly installed on the upper surface of the moving plate 23, and the limit rod 225 is slidably connected to the fixed frame 21. The buffer mechanism 24 includes a fixed rod 241, which is fixedly connected to the inner wall of the pressure frame 25. A first spring 242 is provided at the middle part of the fixed rod 241. Both ends of the fixed rod 241 are slidably connected to the sliding seat 243. The inner cavity of the sliding seat 243 is rotatably connected to the second connecting bar 244. The second connecting bar 244 is away from the sliding seat 2 One end of 43 is rotatably connected to a connecting block 245, and the connecting block 245 is fixedly connected to the lower surface of the movable plate 23. The first spring 242 is located between the two slides 243. When the beef is squeezed, the threaded rod 221 is driven to rotate by controlling the operation of the first motor 222. The rotation of the threaded rod 221 drives the movable block 223 to move on the threaded rod 221. The movement of the threaded rod 221 drives the first connecting bar 224 to rotate on the movable block 223. The rotation of the first connecting bar 224 drives the movable plate 23 to slide in the inner cavity of the fixed frame 21, thereby driving the pressure frame 25 to press down, and the buffer mechanism 24 is used for buffering to prevent the beef from being damaged by direct downward pressure due to excessive rigidity. As the uniform extrusion mechanism 26 and the beef contact the movable plate 23 and continue to press down, the slide 243 slides on the fixed rod 241, squeezing the first spring 242, causing the second connecting strip 244 to rotate in the inner cavity of the slide 243. The rotation of the second connecting strip 244 drives the distance between the movable plate 23 and the pressure frame 25 to decrease, and the squeezing force of the uniform extrusion mechanism 26 on the beef gradually increases, so that the uniform extrusion mechanism 26 will not immediately exert a large pressure on the beef, thereby facilitating the control of the squeezing force and improving the fault tolerance of the detection.

[0037] See also Figure 2 and Figure 4As shown, the uniform extrusion mechanism 26 includes a fixed plate 261, a first limiting block 262 is fixedly installed on the lower surface of the fixed plate 261, the inner cavity of the first limiting block 262 is slidably connected to the slider 263, the inner cavity of the slider 263 is rotatably connected to the third connecting bar 264, both ends of the fixed plate 261 are rotatably connected to the fourth connecting bar 265, the end of the third connecting bar 264 away from the slider 263 is rotatably connected to the pressure block 266, the outer surface of the pressure block 266 is fixedly installed with an extrusion plate 267, the end of the fourth connecting bar 265 away from the fixed plate 261 is rotatably connected to the pressure block 266, the fixed plate 261 is fixedly connected to the bottom wall of the pressure frame 25, and there is a gap between the extrusion plates 267. Since the surface of the beef is not flat as a whole, it is easy to cause uneven contact with the outer surface of the beef during extrusion. In this application, the extrusion plate 267 contacts the outer surface of the beef and The meat generates pressure. During the downward pressing process of the pressure frame 25, when the beef contacted by the extrusion plate 267 is uneven, the slider 263 slides in the inner cavity of the first limit block 262, driving the third connecting bar 264 and the fourth connecting bar 265 to rotate, so that the distance between each pressure block 266 and the fixed plate 261 changes, so that the pressure block 266 drives the extrusion plate 267 to move in contact with the outer surface of the beef, that is, the lower surface of each extrusion plate 267 can be in close contact with the outer surface of the beef. The gap between the extrusion plates 267 is used to adjust the pressure of the extrusion plate 267 on the beef. The extrusion plate 267 can move in a small range under the movement of the pressure block 266, so that the extrusion plate 267 can achieve multi-point uniform extrusion according to the flatness of the outer surface of the beef, thereby achieving uniform extrusion of the water-injected beef, accurately reflecting the overall water injection degree of the water-injected beef, and improving the accuracy and reliability of the detection.

[0038] See also Figure 5 and Figure 6As shown, the water collecting component 3 includes a water collecting frame 31, the inner wall of the water collecting frame 31 is fixedly installed with a block 32, the inner cavity of the water collecting frame 31 is provided with a first floating mechanism 33, the inner cavity of the water collecting frame 31 is provided with a second floating mechanism 34, and the middle part of the lower surface of the water collecting frame 31 is provided with a water collecting mechanism 35, and a second motor 36 is provided below the water collecting mechanism 35. The outer surface of the second motor 36 is provided with a scale line, and the controller can be used to control the operation of the second motor 36. The water collecting frame 31 is fixedly connected to the inner wall of the detection table 1, and the beef is placed on the first floating mechanism 33. The beef is squeezed by the pressure component 2 to discharge the water in the beef. After the squeezing is completed, a large amount of water remains in the first floating mechanism 33 If it is left still for a long time, a lot of time will be wasted. The water content will be reduced due to evaporation, infiltration or absorption by the surrounding environment, resulting in the final measured water volume being lower than the actual water content squeezed out of the meat, and the detection time will be wasted. By controlling the operation of the second motor 36, the first floating mechanism 33 is driven to shake in the inner cavity of the water collecting frame 31. The shaking of the first floating mechanism 33 drives the second floating mechanism 34 to shake in the inner cavity of the water collecting frame 31, thereby driving the water in the first floating mechanism 33 to flow quickly to the second floating mechanism 34. The second floating mechanism 34 also shakes at the same time, causing the water to quickly flow into the water collecting mechanism 35 for centralized collection, and the water collecting mechanism 35 can filter impurities to further improve the accuracy of the detection data.

[0039] See also Figure 6 、 Figure 7 、 Figure 8 and Figure 9As shown, the first floating mechanism 33 includes a support plate 331, and first sliding rods 332 are provided at the four corners of the support plate 331. The outer surface of the first sliding rod 332 is sleeved with a third spring 333. The third spring 333 is located between the support plate 331 and the first sliding rod 332. The bottom end of the first sliding rod 332 is fixedly connected to the inside of the water collecting frame 31. The support plate 331 and the first sliding rod 332 are slidably connected. The lower surface of the support plate 331 and the upper surface of the block 32 are tightly fitted. A fixing ring 334 is fixedly installed in the middle part of the support plate 331, and a protrusion 335 is fixedly installed on the lower surface of the fixing ring 334. An extrusion rod 336 is provided below the fixing ring 334, and the bottom end of the extrusion rod 336 is fixedly connected to a connecting plate 337. The middle part of 337 is fixedly installed with a rotating rod 338, the output end of the second motor 36 is sleeved with the rotating rod 338, the extrusion rod 336 is fitted with the fixing ring 334, the convex block 335 is convex in the middle, and the two ends are flush with the fixing ring 334, the second floating mechanism 34 includes a water collecting plate 341, the two ends of the water collecting plate 341 are fixedly installed with a second slide bar 342, the outer surface of the second slide bar 342 is sleeved with a fourth spring 343, the second slide bar 342 and the water collecting frame 31 are slidably connected, so that the water collecting plate 341 can slide back and forth in the inner cavity of the water collecting frame 31, the fourth spring 343 is located between the water collecting frame 31 and the water collecting plate 341, the four corners of the water collecting plate 341 are convex and the middle is concave, and the middle part of the lower surface of the water collecting plate 341 is connected with a water outlet pipe. 1 is fixedly installed with a second limit block 344 on the inner wall of the second limit block 344, and the inner cavity of the second limit block 344 is slidably connected to the first rack 345. The inner cavity of the second limit block 344 is rotatably connected to the gear 346. The inner cavity of the second limit block 344 is slidably connected to the second rack 347. The gear 346 and the first rack 345 are meshed, and the gear 346 and the second rack 347 are meshed. The second rack 347 is fixedly connected to the lower surface of the support plate 331. There is a gap between the top of the second limit block 344 and the lower surface of the support plate 331. The bottom end of the first rack 345 fits the upper surface of the water collecting plate 341. The water collecting plate 341 and the water collecting frame 31 are slidably connected. The support plate 331 and the water collecting frame 31 are slidably connected. There is a gap between the water collecting plate 341 and the bottom wall of the water collecting frame 31. After the pressure component 2 has completed the extrusion, some water is still slowly flowing on the water collecting component 3. When the water squeezed out of the beef is quickly collected, the second motor 36 drives the rotating rod 338 to rotate, and the rotation of the rotating rod 338 drives the connecting plate 337 to rotate. The rotation of the connecting plate 337 drives the extrusion rod 336 to rotate. The rotation of the extrusion rod 336 drives the extrusion rod 336 to squeeze the protrusion 335. The protrusion 335 is squeezed and drives the fixing ring 334 to move upward. The upward movement of the fixing ring 334 drives the support plate 331 to slide on the first sliding rod 332. The elastic force of the third spring 333 drives the support plate 331 to move downward so that the support plate 331 and the block 32 fit together. During the continuous rotation of the rotating rod 338, the support plate 331 is driven to move back and forth.The second gear 347 is rotated by the second gear 346, and the rotation of the gear 346 drives the first gear 345 to slide down the inner cavity of the second limit block 344. The downward movement of the first gear 345 drives the first gear 345 to squeeze the water collecting plate 341, so that the water collecting plate 341 squeezes the fourth spring 343, that is, the second sliding bar 342 slides in the inner cavity of the water collecting frame 31, and the elastic force of the fourth spring 343 drives the water collecting plate 341 to swing back and forth up and down, and the four corners of the water collecting plate 341 are higher and the middle is concave, so that the water flowing into the water collecting plate 341 from the support plate 331 quickly flows into the water collecting mechanism 35 for collection, which is convenient for subsequent measurement.

[0040] See also Figure 6 、 Figure 10 and Figure 11As shown, the water collecting mechanism 35 includes a water collecting cylinder 351, and a bottom cover 352 is engaged at the bottom end of the water collecting cylinder 351. The bottom cover 352 can be removed from the bottom end of the water collecting cylinder 351 to facilitate the discharge of water in the water collecting cylinder 351. A slide groove 353 is provided on the outer surface of the water collecting cylinder 351, and a filter screen 354 is slidably connected to the inner cavity of the water collecting cylinder 351. The two ends of the filter screen 354 are fixedly connected with a baffle 355, and the outer surface of the baffle 355 is connected to a bolt 356 by threaded rotation. A fixing block 357 is fixedly installed on the outer surface of the water collecting cylinder 351, and a button 358 is provided on the upper surface of the fixing block 357. An alarm 359 is fixedly installed on the lower surface of the fixing block 357. The button 358 and the alarm 359 are electrically connected, and The pressing of the button 358 controls the alarm 359 to sound an alarm. The third slide bar 3510 is fixedly installed on the upper surface of the fixed block 357. The outer surface of the third slide bar 3510 is sleeved with the sixth spring 3511. The bolt 356 is located directly above the button 358. The baffle plate 355 is slidably connected to the third slide bar 3510. The sixth spring 3511 is located between the fixed block 357 and the baffle plate 355. The baffle plate 355 is slidably connected to the water collecting cylinder 351. The rotating rod 338 is rotatably connected to the filter screen 354. The rotating rod 338 is rotatably connected to the water collecting cylinder 351. The water collecting cylinder 351 is fixedly connected to the middle part of the lower surface of the water collecting frame 31. The baffle plate 355 is slidably connected to the water collecting frame 31. The middle part of the lower surface of the water collecting frame 31 A connecting port is provided, and a water outlet pipe on the lower surface of the water collecting plate 341 passes through the connecting port and is located above the inner cavity of the water collecting cylinder 351. The water entering the water collecting plate 341 is filtered through the filter screen 354 to prevent residue from entering the inner cavity of the water collecting cylinder 351. The water capacity and weight collected in the inner cavity of the water collecting cylinder 351 can be read through the scale lines on the water collecting cylinder 351, and the water in the inner cavity of the water collecting cylinder 351 can also be taken out through the bottom cover 352 for easy weighing or subsequent laboratory testing. When the filter screen 354 is clogged, the increase in moisture in the filter screen 354 drives the overall weight of the filter screen 354 to increase. The increase in the weight of the filter screen 354 causes the filter screen 354 to slide in the inner cavity of the slide groove 353, so that the filter screen 354 drives the baffle 355 to move downward The downward movement of the baffle plate 355 drives the baffle plate 355 to slide downward on the outer surface of the third slide bar 3510 and squeezes the sixth spring 3511. At this time, the baffle plate 355 drives the bolt 356 to move downward, and the downward movement of the bolt 356 drives the bolt 356 to squeeze the button 358. The squeezing of the button 358 drives the alarm 359 to sound an alarm, reminding the staff that the filter screen 354 is blocked and needs timely maintenance. At the same time, the sixth spring 3511 can buffer the water flowing down from the water collecting plate 341 to prevent the water from exerting a large impact force on the filter screen 354 during the flow, so that the water can be buffered when flowing into the upper surface of the filter screen 354, avoiding splashing of water flow and causing the water in the water-injected meat to flow out and affect the detection accuracy.

[0041] In summary, the beef to be tested is placed on the water collecting component 3, and the pressure component 2 is used to squeeze the beef to discharge the water from the beef. After the squeezing is completed, the water collecting component 3 is controlled to shake so that the water can be collected quickly. Finally, the beef and the discharged water are weighed respectively to detect the amount of water injected into the beef. The position of the movable plate 23 in the inner cavity of the fixed frame 21 is controlled by the pressure mechanism 22, so that the buffer mechanism 24 drives the pressure frame 25 to press down, thereby squeezing the beef placed on the water collecting component 3 by the uniform squeezing mechanism 26. The uniform squeezing mechanism 26 facilitates a uniform downward pressure on the beef, so that each part of the beef is evenly stressed, thereby evenly discharging the water from the water-injected beef, thereby improving the accuracy of the test data. The beef is squeezed by the pressure component 2 so that the beef The water inside is discharged. After the extrusion is completed, a large amount of water remains in the first floating mechanism 33. If it is left still for a long time, a lot of time will be wasted. The water will be reduced due to evaporation, infiltration or absorption by the surrounding environment, resulting in the final measured water volume being lower than the actual water volume squeezed out of the meat, and the detection time is wasted at the same time. By controlling the operation of the second motor 36, the first floating mechanism 33 is driven to shake in the inner cavity of the water collecting frame 31. The shaking of the first floating mechanism 33 drives the second floating mechanism 34 to shake in the inner cavity of the water collecting frame 31, thereby driving the water in the first floating mechanism 33 to flow quickly to the second floating mechanism 34. The second floating mechanism 34 also shakes at the same time to make the water quickly flow into the water collecting mechanism 35 for centralized collection, and the water collecting mechanism 35 can filter impurities, further improving the accuracy of the detection data.

[0042] Obviously, those skilled in the art may make various changes and modifications to the present invention without departing from the spirit and scope of the present invention. Thus, if such changes and modifications fall within the scope of the claims and their equivalents, the present invention is intended to include such changes and modifications.

[0043] The above is only a preferred specific implementation method of the embodiment of the present application, but the scope of protection of the present application is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes based on the technical solution and concept of the present application within the technical scope disclosed in the present application, and they should be covered by the scope of protection of the present application.

Claims

1. A quality inspection device for beef processing, comprising a detection table (1), characterized in that: A pressure assembly (2) is provided at the top of the test platform (1), a water collection assembly (3) is provided in the inner cavity of the test platform (1), a controller is provided on the outer surface of the test platform (1), and the water collection assembly (3) is located directly below the pressure assembly (2); The pressure assembly (2) includes a fixed frame (21), the fixed frame (21) is fixedly connected to the outer surface of the detection table (1), the inner cavity of the fixed frame (21) is provided with a pressure mechanism (22), the bottom end of the pressure mechanism (22) is provided with a movable plate (23), the bottom end of the movable plate (23) is provided with a buffer mechanism (24), the bottom end of the buffer mechanism (24) is provided with a pressure frame (25), the inner wall of the pressure frame (25) is provided with a uniform extrusion mechanism (26), and there are three uniform extrusion mechanisms (26).

2. The beef processing quality inspection device according to claim 1, characterized in that: The pressure mechanism (22) includes a threaded rod (221), the threaded rod (221) is rotatably connected to the inner cavity of the fixing frame (21), the outer surface of the fixing frame (21) is provided with a first motor (222), the controller can be used to control the operation of the first motor (222), the output end of the first motor (222) is sleeved with the threaded rod (221), the two ends of the threaded rod (221) are sleeved with a moving block (223), the upper surface of the moving block (223) is slidably connected to the fixing frame (21), and the moving block ( The movable block (223) and the threaded rod (221) are connected by threads, the threads at both ends of the threaded rod (221) are in opposite directions, the two sides of the movable block (223) are rotatably connected to the first connecting strips (224), one end of the first connecting strip (224) away from the movable block (223) is rotatably connected to the movable plate (23), the movable plate (23) and the fixed frame (21) are slidably connected, a limiting rod (225) is fixedly installed on the upper surface of the movable plate (23), and the limiting rod (225) and the fixed frame (21) are slidably connected.

3. The beef processing quality inspection device according to claim 1, characterized in that: The buffer mechanism (24) includes a fixed rod (241), the fixed rod (241) is fixedly connected to the inner wall of the pressure frame (25), a first spring (242) is provided in the middle part of the fixed rod (241), both ends of the fixed rod (241) are slidably connected to a slide seat (243), the inner cavity of the slide seat (243) is rotatably connected to a second connecting strip (244), the end of the second connecting strip (244) away from the slide seat (243) is rotatably connected to a connecting block (245), the connecting block (245) is fixedly connected to the lower surface of the movable plate (23), and the first spring (242) is located between the two slide seats (243).

4. The beef processing quality inspection device according to claim 1, characterized in that: The uniform extrusion mechanism (26) comprises a fixed plate (261), a first limiting block (262) is fixedly mounted on the lower surface of the fixed plate (261), an inner cavity of the first limiting block (262) is slidably connected to a slider (263), an inner cavity of the slider (263) is rotatably connected to a third connecting bar (264), both ends of the fixed plate (261) are rotatably connected to a fourth connecting bar (265), an end of the third connecting bar (264) away from the slider (263) is rotatably connected to a pressure block (266), and an extrusion plate (267) is fixedly mounted on the outer surface of the pressure block (266).

5. The beef processing quality inspection device according to claim 4, characterized in that: One end of the fourth connecting bar (265) away from the fixed plate (261) is rotatably connected to the pressure block (266), the fixed plate (261) and the bottom wall of the pressure frame (25) are fixedly connected, and a gap is provided between the extrusion plates (267).

6. The beef processing quality inspection device according to claim 1, characterized in that: The water collecting assembly (3) comprises a water collecting frame (31), a clamping block (32) is fixedly mounted on the inner wall of the water collecting frame (31), a first floating mechanism (33) is provided in the inner cavity of the water collecting frame (31), a second floating mechanism (34) is provided in the inner cavity of the water collecting frame (31), a water collecting mechanism (35) is provided in the middle part of the lower surface of the water collecting frame (31), a second motor (36) is provided below the water collecting mechanism (35), a scale line is provided on the outer surface of the second motor (36), and the controller can be used to control the operation of the second motor (36). The water collecting frame (31) is fixedly connected to the inner wall of the detection table (1).

7. The beef processing quality inspection device according to claim 6, characterized in that: The first floating mechanism (33) includes a support plate (331), and first slide bars (332) are provided at four corners of the support plate (331). A third spring (333) is sleeved on the outer surface of the first slide bar (332). The third spring (333) is located between the support plate (331) and the first slide bar (332). The bottom end of the first slide bar (332) is fixedly connected to the inside of the water collecting frame (31). The support plate (331) and the first slide bar (332) are slidably connected. The lower surface of the support plate (331) is tightly fitted with the upper surface of the block (32). A fixing ring (334) is fixedly installed in the middle part of the fixing ring (31), a convex block (335) is fixedly installed on the lower surface of the fixing ring (334), an extrusion rod (336) is provided below the fixing ring (334), the bottom end of the extrusion rod (336) is fixedly connected to a connecting plate (337), a rotating rod (338) is fixedly installed in the middle part of the connecting plate (337), the output end of the second motor (36) and the rotating rod (338) are sleeved, the extrusion rod (336) and the fixing ring (334) are fitted, the convex block (335) is raised in the middle, and the two ends are flush with the fixing ring (334).

8. The beef processing quality inspection device according to claim 7, characterized in that: The second floating mechanism (34) includes a water collecting plate (341), and second slide bars (342) are fixedly installed at both ends of the water collecting plate (341). A fourth spring (343) is sleeved on the outer surface of the second slide bar (342). The second slide bar (342) and the water collecting frame (31) are slidably connected. The fourth spring (343) is located between the water collecting frame (31) and the water collecting plate (341). The four corners of the water collecting plate (341) are convex and the middle is concave. The middle part of the lower surface of the water collecting plate (341) is connected to a water outlet pipe. A second limiting block (344) is fixedly installed on the inner wall of the water collecting frame (31). The inner cavity of the second limiting block (344) is slidably connected to the first rack (345). The inner cavity of the second limiting block (344) is connected to the first rack (345). The inner cavity is rotatably connected to a gear (346), the inner cavity of the second limiting block (344) is slidably connected to a second rack (347), the gear (346) and the first rack (345) are meshed, the gear (346) and the second rack (347) are meshed, the second rack (347) and the lower surface of the support plate (331) are fixedly connected, the top end of the second limiting block (344) and the lower surface of the support plate (331) have a gap, the bottom end of the first rack (345) and the upper surface of the water collecting plate (341) are fitted, the water collecting plate (341) and the water collecting frame (31) are slidably connected, the support plate (331) and the water collecting frame (31) are slidably connected, and the water collecting plate (341) and the bottom wall of the water collecting frame (31) have a gap.

9. The beef processing quality inspection device according to claim 8, characterized in that: The water collecting mechanism (35) comprises a water collecting cylinder (351), the bottom end of the water collecting cylinder (351) is engaged with a bottom cover (352), the outer surface of the water collecting cylinder (351) is provided with a slide groove (353), the inner cavity of the water collecting cylinder (351) is slidably connected to a filter screen (354), both ends of the filter screen (354) are fixedly connected to a baffle (355), the outer surface of the baffle (355) is rotatably connected to a bolt (356) through a thread, and the outer surface of the water collecting cylinder (351) is fixedly installed. A fixed block (357) is provided, a button (358) is provided on the upper surface of the fixed block (357), an alarm (359) is fixedly installed on the lower surface of the fixed block (357), the button (358) and the alarm (359) are electrically connected, and pressing the button (358) controls the alarm (359) to sound an alarm, a third slide bar (3510) is fixedly installed on the upper surface of the fixed block (357), and a sixth spring (3511) is sleeved on the outer surface of the third slide bar (3510).

10. The beef processing quality inspection device according to claim 9, characterized in that: The bolt (356) is located directly above the button (358); the shielding plate (355) and the third sliding rod (3510) are slidably connected; the sixth spring (3511) is located between the fixed block (357) and the shielding plate (355); the shielding plate (355) and the water collecting cylinder (351) are slidably connected; the rotating rod (338) and the filter screen (354) are rotatably connected; the rotating rod (338) and the water collecting cylinder (351) are rotatably connected; the water collecting cylinder (351) and the middle portion of the lower surface of the water collecting frame (31) are fixedly connected; the shielding plate (355) and the water collecting frame (31) are slidably connected; a communication port is provided in the middle portion of the lower surface of the water collecting frame (31); the water outlet pipe on the lower surface of the water collecting plate (341) passes through the communication port and is located above the inner cavity of the water collecting cylinder (351).