Food detection device with frozen food unfreezing and slicing functions
By designing a food detection device equipped with radio frequency thawing and automatic slice sampling functions, the problem of poor detection efficiency and effect of frozen food in the prior art is solved, a fast and automatic detection process is realized, and the detection efficiency and effect are improved.
Patent Information
- Application Number
- CN202510318788.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-18
- Publication Date
- 2025-06-27
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
When conducting frozen food testing, existing food testing devices need to thaw, slitting and sampling, resulting in poor detection efficiency and effectiveness and are susceptible to external factors.
A food detection device with the function of thawing and slicing of frozen food is designed, including a processing bin and a testing module body, equipped with a slice module, a feeding mechanism, a feeding mechanism and a feeding mechanism, which can be quickly thawed through a radio frequency generator, and automatic slice and sampling of food is realized through a transmission unit and a reciprocating unit.
It realizes rapid thawing and automatic slice sampling of frozen foods, reduces the thawing time and inconvenience of sampling process, improves detection efficiency and effect, and reduces the impact of external factors on food samples.
Smart Images

Figure CN120214237A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of food detection, and specifically to a food detection device with the function of thawing and slicing frozen food. Background Art
[0002] The safety detection of frozen food is a key measure to ensure that frozen food meets safety standards and quality requirements in all aspects such as production, processing, storage, transportation, and sales. The safety detection of frozen food is of great significance for protecting public health, maintaining social stability, and promoting the healthy development of the food industry. Through detection, potential food safety problems can be discovered and handled in a timely manner, preventing unqualified food from entering the market, thereby protecting the legitimate rights and interests of consumers. At the same time, detection also helps to improve the quality awareness and self-discipline ability of food enterprises, and promotes the food industry to develop in a safer, healthier, and more sustainable direction.
[0003] At present, food detection devices can only perform food detection work. When frozen food needs to be sampled for detection, first, the frozen food needs to be thawed, then the food is manually cut and sampled, and then the food detection work can be carried out. However, during the process of thawing, cutting, and then sending it into the detection equipment, it is easy for the food to be affected by the outside world under a long time and operation, which greatly affects the detection efficiency and detection effect of frozen food.
[0004] Combining the above problems, we will find that existing food detection devices on the market are very difficult to avoid the above-mentioned problems simultaneously when in use, and even if they can be solved, they need to be solved with the cooperation of external tools, thus unable to achieve the desired effect. Therefore, we propose a food detection device with the function of thawing and slicing frozen food. Summary of the Invention
[0005] The purpose of the present invention is to provide a food detection device with the function of thawing and slicing frozen food to solve the problems raised in the above background art.
[0006] To achieve the above purpose, the present invention provides the following technical solution: A food detection device with the function of thawing and slicing frozen food, including a processing chamber and a detection module main body. A slicing module is arranged on the upper left side inside the processing chamber. Feeding mechanisms and a material distribution mechanism are respectively arranged on both sides inside the processing chamber. Radio frequency generators are fixedly installed on the front and rear sides inside the processing chamber respectively, and the two radio frequency generators are respectively located on the front and rear sides of the feeding mechanism. A guiding mechanism communicating with the processing chamber is arranged on one side of the detection module main body;
[0007] The material distribution mechanism includes a material distribution frame, which is fixedly installed inside the processing bin, and the material distribution frame is located below one side of the feeding mechanism. A transmission unit is fixedly installed on the back of the material distribution frame, and the second conveyor belt and the third conveyor belt are respectively connected to each other through the transmission unit on both sides inside the material distribution frame. A first fixed frame and a second fixed frame are respectively fixedly installed on the lower end and the right side of the lower end of the material distribution frame, a reciprocating unit connected to the transmission unit is arranged inside the first fixed frame, a vibration unit connected to the transmission unit is arranged inside the second fixed frame, one side of the second fixed frame is connected to a material discharge frame through the vibration unit, and the lower end of the material distribution frame is fixedly connected to a guide conveyor frame, and one side of the guide conveyor frame is connected to the material guiding mechanism.
[0008] Preferably, a pressure sensor is fixedly mounted on the bottom of the detection module body, a storage rack is mounted on the top of the pressure sensor, and a metal detection module and a visual detection module are fixedly mounted on one side and the top of the inner wall of the detection module body, respectively.
[0009] Preferably, the transmission unit includes a second motor fixedly installed on the rear side of the processing bin, a third gear is fixedly installed on the output end of the second motor, a first synchronous belt is meshed with an outer wall of the third gear, and the second transmission shaft and the third transmission shaft are rotatably connected on both sides of the inside of the material distribution frame, the second conveyor belt is connected to one side of the inside of the material distribution frame through the second transmission shaft, and the third conveyor belt is connected to the other side of the inside of the material distribution frame through the third transmission shaft, one side of the second conveyor belt is higher than one side of the third conveyor belt, one end of the second transmission shaft and the third transmission shaft both pass through the material distribution frame, and the second transmission A fourth gear is fixedly mounted on the outer walls of the shaft and one end of the third transmission shaft, and both sides of the first synchronous belt are respectively meshed with the outer walls of the fourth gear, and the outer wall of the first synchronous belt is transmission connected to the reciprocating unit, and a first synchronous wheel is fixedly mounted on one side of the outer wall of the third transmission shaft, and a second synchronous belt is meshed with the outer wall of the first synchronous wheel, and the first rotating shaft is rotationally connected to the inside of the second fixed frame, and one end of the first rotating shaft passes through the second fixed frame, and a second synchronous wheel is fixedly mounted on the outer wall of one end of the first rotating shaft, and the lower side of the second synchronous belt is meshed with the outer wall of the second synchronous wheel, and the first rotating shaft is transmission connected to the vibration unit.
[0010] Preferably, the reciprocating unit includes a second rotating shaft rotatably connected to the lower end of the material distributing frame. A fifth gear is fixedly installed on the outer wall of one end of the second rotating shaft. Teeth are fixedly installed on the outer wall of the first synchronous belt, and the teeth are meshed with the outer wall of the fifth gear. A first eccentric wheel is fixedly installed on the outer wall of the second rotating shaft. A support frame is slidably connected inside the first fixed frame. One side of the top of the support frame is in contact with the outer wall of the first eccentric wheel. On the other side of the top of the support frame, a guide plate is fixedly installed, and the guide plate extends between the second conveyor belt and the third conveyor belt.
[0011] Preferably, a first groove is formed at the lower end of the inner wall of the first fixed frame. Both sides of the support frame extend into the inside of the first groove. A first positioning rod penetrating the support frame is fixedly installed inside the first groove. The outer wall of the first positioning rod is slidably connected to the support frame. A first spring is sleeved on the lower end of the outer wall of the first positioning rod. The bottom of the first spring is fixedly connected to the bottom of the first groove, and the top of the first spring is fixedly connected to the bottom of the support frame.
[0012] Preferably, a support block is fixedly installed on one side of the guide plate. An opening is formed on the outer wall of the third conveyor belt. One side of the support block extends into the inside of the opening, and the inner wall of the opening is slidably connected to the outer wall of the support block.
[0013] Preferably, the vibration unit includes a connecting frame slidably connected to the lower side inside the second fixed frame. A second eccentric wheel is fixedly installed on the outer wall of the first rotating shaft. The top of the connecting frame is in contact with the outer wall of the second eccentric wheel. A second positioning rod is fixedly installed at the lower end inside the second fixed frame. The top of the second positioning rod penetrates the connecting frame, and the outer wall of the second positioning rod is slidably connected to the connecting frame. A second spring is movably sleeved on the outer wall of the second positioning rod. The bottom of the second spring is fixedly connected to the lower end inside the second fixed frame, and the top of the second spring is fixedly connected to the bottom of the connecting frame. A second groove is formed at the lower end of the inner wall of the second fixed frame. Protrusions are fixedly installed on both sides of the connecting frame, and one side of the protrusions is slidably connected to the inside of the second groove. The feeding frame is fixedly installed on one side of the connecting frame.
[0014] Preferably, the feeding mechanism includes a feeding rack, the feeding rack is fixedly mounted on one side inside the processing bin, the feeding rack is located below one side of the slicing module, the feeding rack is rotatably connected to the inside of the first transmission shaft, the inside of the feeding rack is connected to the first conveyor belt through the first transmission shaft, one end of the first transmission shaft passes through the feeding rack, a second gear is fixedly mounted on one end of the first transmission shaft, a first motor is fixedly mounted on the back side of the feeding rack, a first gear is fixedly mounted on the output end of the first motor, the outer wall of the first gear is meshed with the outer wall of the second gear, a drain outlet is provided on the outer wall of the first conveyor belt, a limit plate is fixedly mounted on the outer wall of the first transmission shaft, the outer wall of the limit plate is slidably connected to the inner wall of the drain outlet, and a guide unit is fixedly mounted on one side of the inner wall of the feeding rack.
[0015] Preferably, the guide unit includes a material receiving rack, which is fixedly mounted on one side of the inner wall of the material feeding rack, the top of the material receiving rack passes through the material feeding rack, a support rod is fixedly mounted on one side of the inner wall of the material feeding rack, the outer wall of the support rod is sleeved with a guide plate, and the two sides of the top of the guide plate are respectively overlapped with the inner wall of the bottom of the material receiving rack.
[0016] Preferably, the material guiding mechanism comprises a through slot, which is provided on one side of the detection module body, one side of the through slot is communicated with the processing chamber, the interior of the through slot is rotatably connected with a material guiding rack, one side of the material guiding rack is docked with a guide conveying rack, the interior of the material guiding rack is rotatably connected with a material guiding conveying belt, an electric push rod is fixedly installed at the lower end of the interior of the through slot, the output end of the electric push rod is fixedly connected with a top plate, the top of the top plate is fitted with the bottom of the material guiding rack, a baffle is fixedly installed on one side of the material guiding rack, a slope is provided at the lower end of one side of the through slot, and the bottom of the baffle is in conflict with the slope.
[0017] Compared with the prior art, the present invention has the following beneficial effects:
[0018] 1. The present invention drives the first conveyor belt and the second conveyor belt to move through the transmission unit to transport food. During the transportation process, the transmission unit is connected to the reciprocating unit through transmission, so that the guide plate can intermittently move downward and quickly reset, so that a single sample falls onto the guide conveyor frame and enters the detection module body through the material guide mechanism, thereby realizing slicing, thawing and detection in one, which can effectively reduce the thawing time and the inconvenience caused by the transportation process of slicing and sampling, reduce the influence of external factors on food samples, and effectively improve the detection efficiency and detection effect of frozen food.
[0019] 2. Before the food slices fall into the feeding rack in the present invention, they will pass through the guiding unit. At this time, one side of the top of the guiding plate overlaps with one side of the inner wall of the receiving rack, and the food slices fall into the feeding rack from one side of the guiding plate and the receiving rack. When the food slices pass through the receiving rack and the guiding plate, the guiding plate rotates under the impact of the food slices, so that the top of the guiding plate overlaps with the other side of the inner wall of the receiving rack, that is, the next food slice falls into the receiving rack through the other side of the receiving rack and the guiding plate, effectively avoiding multiple food slices from stacking together, and further avoiding sampling multiple food slices simultaneously in the subsequent sampling process.
[0020] 3. In the present invention, the sample of the food slices can be introduced into the main body of the detection module through the material guiding mechanism, and subsequent food slices are prevented from entering the main body of the detection module. And the subsequent food slices are exported through the slope, avoiding the influence of multiple food slices on the detection work. Brief Description of the Drawings
[0021] Figure 1 is a schematic diagram of the overall structure of the present invention;
[0022] Figure 2 is a schematic sectional view of the present invention;
[0023] Figure 3 is a schematic diagram of the structure of the feeding mechanism of the present invention;
[0024] Figure 4 is a front view schematic diagram of the material distribution mechanism of the present invention;
[0025] Figure 5 is a rear view schematic diagram of the material distribution mechanism of the present invention;
[0026] Figure 6 is a schematic diagram of the structure of the reciprocating unit of the present invention;
[0027] Figure 7 is a schematic diagram of the structure of the vibration unit of the present invention;
[0028] Figure 8 is a schematic diagram of the structure of the material guiding mechanism of the present invention.
[0029] In the figure: 1, processing bin; 2, main body of the detection module; 3, slicing module; 4, radio frequency generator; 5, feeding mechanism; 51, feeding rack; 52, first transmission shaft; 53, first conveyor belt; 5301, water drainage opening; 5302, limiting plate; 54, first motor; 55, first gear; 56, second gear; 57, guiding unit; 5701, material receiving rack; 5702, support rod; 5703, guiding plate; 6, material distributing mechanism; 61, material distributing rack; 62, transmission unit; 6201, second motor; 6202, third gear; 6203, first synchronous belt; 6204, second transmission shaft; 6205, third transmission shaft; 6206, fourth gear; 6207, first synchronous pulley; 6208, second synchronous belt; 6209, first rotating shaft; 6210, second synchronous pulley; 63, second conveyor belt; 64, third conveyor belt; 6401, opening; 6402, support block; 65, first fixing frame; 66, reciprocating unit; 6601, second rotating shaft; 6602, fifth gear; 6603, tooth; 6604, first eccentric wheel; 6605, support frame; 6606, first groove; 6607, first positioning rod; 6608, first spring; 6609, guiding plate; 67, guiding and conveying rack; 68, second fixing frame; 69, vibrating unit; 6901, connecting frame; 6902, second eccentric wheel; 6903, second positioning rod; 6904, second spring; 6905, second groove; 6906, convex block; 610, material placing rack; 7, material guiding mechanism; 71, through groove; 72, material guiding rack; 73, material guiding conveyor belt; 74, electric push rod; 75, top plate; 76, slope; 77, baffle; 8, pressure sensor; 9, storage rack; 10, metal detection module; 11, vision detection module. Specific embodiments
[0030] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0031] Embodiment 1: Please refer to Figures 1-8 , the present invention provides a technical solution: A food detection device with a frozen food thawing and slicing function, including a processing bin 1 and a main body of the detection module 2. A slicing module 3 is arranged on the upper left side inside the processing bin 1. A feeding mechanism 5 and a material distributing mechanism 6 are respectively arranged on both sides inside the processing bin 1. Radio frequency generators 4 are fixedly installed on the front and rear sides inside the processing bin 1 respectively. The two radio frequency generators 4 are respectively located in front of and behind the feeding mechanism 5. A material guiding mechanism 7 communicating with the processing bin 1 is arranged on one side of the main body of the detection module 2;
[0032] The material distribution mechanism 6 includes a material distribution rack 61. The material distribution rack 61 is fixedly installed inside the processing bin 1. The material distribution rack 61 is located below one side of the feeding mechanism 5. A transmission unit 62 is fixedly installed on the back of the material distribution rack 61. The two sides inside the material distribution rack 61 are respectively drivingly connected with a second conveyor belt 63 and a third conveyor belt 64 through the transmission unit 62. A first fixing rack 65 and a second fixing rack 68 are respectively fixedly installed at the lower end and the right side of the lower end of the material distribution rack 61. A reciprocating unit 66 drivingly connected with the transmission unit 62 is arranged inside the first fixing rack 65. A vibration unit 69 drivingly connected with the transmission unit 62 is arranged inside the second fixing rack 68. A discharging rack 610 is connected to one side of the second fixing rack 68 through the vibration unit 69. The lower end of the material distribution rack 61 is fixedly connected with a guiding conveyor rack 67. One side of the guiding conveyor rack 67 is butted against the material guiding mechanism 7.
[0033] A pressure sensor 8 is fixedly installed at the bottom inside the detection module main body 2. A placing rack 9 is installed on the top of the pressure sensor 8. A metal detection module 10 and a vision detection module 11 are respectively fixedly installed on one side and the top of the inner wall of the detection module main body 2; the sliced samples of frozen food after thawing are subjected to weighing detection, metal detection and vision detection, and different functional detection structures can be replaced according to needs.
[0034] As a further limitation of the material distribution mechanism 6 of the present invention, the transmission unit 62 includes a second motor 6201 fixedly installed at the rear side inside the processing bin 1. The output end of the second motor 6201 is fixedly installed with a third gear 6202. The outer wall of the third gear 6202 is engaged with a first synchronous belt 6203. The two sides inside the material distribution frame 61 are respectively rotatably connected with a second transmission shaft 6204 and a third transmission shaft 6205. The second conveyor belt 63 is drivingly connected to one side inside the material distribution frame 61 through the second transmission shaft 6204. The third conveyor belt 64 is drivingly connected to the other side inside the material distribution frame 61 through the third transmission shaft 6205. One side of the second conveyor belt 63 is higher than one side of the third conveyor belt 64. One ends of the second transmission shaft 6204 and the third transmission shaft 6205 both penetrate through the material distribution frame 61. The outer walls of one ends of the second transmission shaft 6204 and the third transmission shaft 6205 are both fixedly installed with a fourth gear 6206. The two sides of the first synchronous belt 6203 are respectively engaged with the outer walls of the fourth gears 6206. The outer wall of the first synchronous belt 6203 is drivingly connected to the reciprocating unit 66. One side of the outer wall of the third transmission shaft 6205 is fixedly installed with a first synchronous pulley 6207. The outer wall of the first synchronous pulley 6207 is engaged with a second synchronous belt 6208. The inside of the second fixed frame 68 is rotatably connected with a first rotating shaft 6209. One end of the first rotating shaft 6209 penetrates through the second fixed frame 68. The outer wall of one end of the first rotating shaft 6209 is fixedly installed with a second synchronous pulley 6210. The lower side of the second synchronous belt 6208 is engaged with the outer wall of the second synchronous pulley 6210. The first rotating shaft 6209 is drivingly connected to the vibration unit 69; the transmission unit 62 can provide power to the reciprocating unit 66 and the vibration unit 69 simultaneously.
[0035] The reciprocating unit 66 includes a second rotating shaft 6601. The second rotating shaft 6601 is rotatably connected to the lower end of the material distribution frame 61. The outer wall of one end of the second rotating shaft 6601 is fixedly installed with a fifth gear 6602. The outer wall of the first synchronous belt 6203 is fixedly installed with teeth 6603. The teeth 6603 are engaged with the outer wall of the fifth gear 6602. The outer wall of the second rotating shaft 6601 is fixedly installed with a first eccentric wheel 6604. The inside of the first fixed frame 65 is slidably connected with a support frame 6605. One side of the top of the support frame 6605 is in contact with the outer wall of the first eccentric wheel 6604. The other side of the top of the support frame 6605 is fixedly installed with a guide plate 6609. The guide plate 6609 extends into the space between the second conveyor belt 63 and the third conveyor belt 64; through the reciprocating unit 66, it is convenient to carry out the sampling work of unit samples.
[0036] At the lower end of the inner wall of the first fixing frame 65, a first groove 6606 is provided. Both sides of the support frame 6605 extend into the interior of the first groove 6606. A first positioning rod 6607 passing through the support frame 6605 is fixedly installed inside the first groove 6606. The outer wall of the first positioning rod 6607 is slidably connected to the support frame 6605. A first spring 6608 is sleeved on the lower end of the outer wall of the first positioning rod 6607. The bottom of the first spring 6608 is fixedly connected to the bottom of the first groove 6606, and the top of the first spring 6608 is fixedly connected to the bottom of the support frame 6605; this can effectively stabilize the position of the support frame 6605 and prevent the support frame 6605 from shifting. At the same time, the first spring 6608 facilitates the support frame 6605 to drive the guide plate 6609 to reset.
[0037] One side of the guide plate 6609 is fixedly installed with a support block 6402. An opening 6401 is provided on the outer wall of the third conveyor belt 64. One side of the support block 6402 extends into the interior of the opening 6401. The inner wall of the opening 6401 is slidably connected to the outer wall of the support block 6402; through the support block 6402 and the opening 6401, it can prevent the food slices that have slipped from being clamped between the guide plate 6609 and the third conveyor belt 64.
[0038] The vibration unit 69 includes a connecting frame 6901. The connecting frame 6901 is slidably connected to the lower side inside the second fixing frame 68. A second eccentric wheel 6902 is fixedly installed on the outer wall of the first rotating shaft 6209. The top of the connecting frame 6901 is in contact with the outer wall of the second eccentric wheel 6902. A second positioning rod 6903 is fixedly installed at the lower end inside the second fixing frame 68. The top of the second positioning rod 6903 passes through the connecting frame 6901. The outer wall of the second positioning rod 6903 is slidably connected to the connecting frame 6901. A second spring 6904 is movably sleeved on the outer wall of the second positioning rod 6903. The bottom of the second spring 6904 is fixedly connected to the lower end inside the second fixing frame 68, and the top of the second spring 6904 is fixedly connected to the bottom of the connecting frame 6901. A second groove 6905 is provided at the lower end of the inner wall of the second fixing frame 68. Both sides of the connecting frame 6901 are fixedly installed with convex blocks 6906. One side of the convex block 6906 is slidably connected to the interior of the second groove 6905. The feeding rack 610 is fixedly installed on one side of the connecting frame 6901; through the vibration unit 69, the feeding rack 610 can be continuously vibrated to prevent food from sticking to the feeding rack 610.
[0039] Driven by the transmission unit 62, the first conveyor belt 53 and the second conveyor belt 63 move, which facilitates the transportation of food. During the transportation process, the transmission unit 62 is drivingly connected to the reciprocating unit 66, enabling the guide plate 6609 to intermittently move downward and quickly reset, so that a single sample can fall onto the guiding and conveying rack 67 and enter the detection module main body 2 through the material guiding mechanism 7, thus realizing the integration of slicing, thawing, and detection, effectively reducing the thawing time and the inconvenience caused by the transfer process of slicing and sampling, reducing the impact of external factors on food samples, and effectively improving the detection efficiency and detection effect of frozen food.
[0040] The specific implementation of this embodiment is as follows: After the frozen food is sliced by the slicing module 3, it falls into the feeding mechanism 5, and during the feeding process, the radio frequency generator 4 quickly thaws the food slices. The radio frequency generator 4 uses electromagnetic waves to heat and thaw the food slices. These electromagnetic waves will form an electromagnetic field in space. When the food slices are placed in the radio frequency thawing device, the polar molecules inside the material will quickly rotate and rub against each other under the action of the electromagnetic field, thereby generating heat and achieving the thawing effect. When the thawed food slices fall onto the second conveyor belt 63 in the dividing rack 61, the second motor 6201 drives the third gear 6202 to rotate, so that the third gear 6202 drives the fourth gear 6206 to rotate through the first synchronous belt 6203, so as to drive the second conveyor belt 63 and the third conveyor belt 64 to operate and feed through the second transmission shaft 6204 and the third transmission shaft 6205, so that the sliced food falls into the discharging rack 610. While the third transmission shaft 6205 is rotating, the third transmission shaft 6205 drives the first rotating shaft 6209 to rotate through the first synchronous pulley 6207, the first synchronous belt 6203 and the second synchronous pulley 6210, so that the second eccentric wheel 6902 drives the connecting frame 6901 to move longitudinally, and through the elastic force of the second spring 6904, and through the second positioning rod 6903, the second groove 6905 and the convex block 6906 to stably connect the position of the connecting frame 6901, so that the connecting frame 6901 drives the discharging rack 610 to vibrate continuously and quickly, thereby preventing the food slices from sticking to the discharging rack 610. When the teeth 6603 on the outer wall of the first synchronous belt 6203 move to the position of the fourth gear 6206, the teeth 6603 drive the fifth gear 6602 to rotate, so that the fifth gear 6602 drives the first eccentric wheel 6604 to rotate through the second rotating shaft 6601. Under the rotation of the first eccentric wheel 6604, the support frame 6605 moves downward and drives the guide plate 6609 downward at the same time. When the guide plate 6609 moves to the lowest position, the food slices falling from the second conveyor belt 63 are guided into the guiding conveyor rack 67 by the guide plate 6609. When the teeth 6603 completely pass over the position of the fifth gear 6602, the first eccentric wheel 6604 no longer exerts pressure on the support frame 6605, so that the support frame 6605 drives the guide plate 6609 to reset under the support of the first spring 6608, so as to prevent multiple food samples from falling into the guiding conveyor rack 67 at the same time, thereby completing the sampling work, and enabling the food samples to enter the detection module main body 2 through the guiding conveyor rack 67 and the feeding mechanism 7 for detection work.
[0041] Embodiment 2: Please refer to Figures 1-8 , the present invention provides a technical solution: a food detection device with a function of thawing and slicing frozen food, and the present invention makes corresponding improvements to the technical problems mentioned in the background art.
[0042] As a further limitation of the feeding mechanism 5 of the present invention, the feeding mechanism 5 includes a feeding rack 51, the feeding rack 51 is fixedly installed on one side of the processing chamber 1, the feeding rack 51 is located below one side of the slicing module 3, the feeding rack 51 is internally rotatably connected to a first transmission shaft 52, the feeding rack 51 is internally connected to a first conveyor belt 53 through the first transmission shaft 52, one end of the first transmission shaft 52 passes through the feeding rack 51, one end of the first transmission shaft 52 is fixedly installed with a second gear 56, the back of the feeding rack 51 is fixedly installed with a first motor 54, and the output end of the first motor 54 is connected to the first conveyor belt 53. A first gear 55 is fixedly installed, and the outer wall of the first gear 55 is meshed with the outer wall of the second gear 56. A drain port 5301 is provided on the outer wall of the first conveyor belt 53. A limit plate 5302 is fixedly installed on the outer wall of the first transmission shaft 52. The outer wall of the limit plate 5302 is slidably connected to the inner wall of the drain port 5301. A guide unit 57 is fixedly installed on one side of the inner wall of the feeding rack 51. By adopting first gears 55 and second gears 56 of different sizes, the first conveyor belt 53 can slowly perform the conveying work, and the water generated after thawing can be drained out through the drain port 5301.
[0043] The guide unit 57 includes a material receiving rack 5701, which is fixedly installed on one side of the inner wall of the material feeding rack 51. The top of the material receiving rack 5701 passes through the material feeding rack 51. A support rod 5702 is fixedly installed on one side of the inner wall of the material feeding rack 51. The outer wall of the support rod 5702 is sleeved with a guide plate 5703. The two sides of the top of the guide plate 5703 are respectively overlapped with the inner wall of the bottom of the material receiving rack 5701 to achieve the effect of diversion.
[0044] Before the food slices fall into the feeding rack 51, they will pass through the receiving rack 5701. At this time, one side of the top of the guide plate 5703 overlaps one side of the inner wall of the receiving rack 5701, and the food slices fall into the feeding rack 51 from one side of the guide plate 5703 and the receiving rack 5701. When the food slices pass through the receiving rack 5701 and the guide plate 5703, the guide plate 5703 is rotated under the collision of the food slices so that the top of the guide plate 5703 overlaps the other side of the inner wall of the receiving rack 5701, that is, the next food slice passes through the receiving rack 5701 and the other side of the guide plate 5703 and falls into the receiving rack 5701, thereby effectively avoiding multiple food slices from being stacked together, and further avoiding the simultaneous sampling of multiple food slices in the subsequent sampling process.
[0045] The specific implementation of this embodiment is as follows: The first motor 54 drives the second gear 56 to rotate through the first gear 55, so that the second gear 56 drives the first transmission shaft 52 to rotate, providing power for the first conveyor belt 53. When the food slices cut by the slicing module 3 fall, the food slices enter the receiving rack 5701. At this time, one side of the top of the guide plate 5703 is lapped on one side of the inner wall of the receiving rack 5701, and the food slices fall into the feeding rack 51 from one side of the guide plate 5703 and the receiving rack 5701. When the food slices pass through the receiving rack 5701 and the guide plate 5703, the guide plate 5703 rotates on the outer wall of the support rod 5702 under the collision of the food slices, so that the top of the guide plate 5703 is lapped on the other side of the inner wall of the receiving rack 5701, that is, the next food slice falls into the receiving rack 5701 through the other side of the receiving rack 5701 and the guide plate 5703, to prevent the food slices from stacking together. The food slices falling on the first conveyor belt 53 are thawed by the radio frequency of the radio frequency generator 4, and the thawed food slices fall into the distribution rack 61.
[0046] Embodiment 3: Please refer to Figures 1-8 , the present invention provides a technical solution: a food detection device with a function of thawing and slicing frozen food, and the present invention makes corresponding improvements to the technical problems mentioned in the background art.
[0047] As a further limitation of the material guiding mechanism 7 of the present invention, the material guiding mechanism 7 includes a through groove 71 opened on one side of the detection module main body 2. One side of the through groove 71 is communicated with the processing chamber 1. A material guiding rack 72 is rotatably connected inside the through groove 71. One side of the material guiding rack 72 is butted against the guiding and conveying rack 67. A material guiding conveyor belt 73 is rotatably connected inside the material guiding rack 72. An electric push rod 74 is fixedly installed at the lower end inside the through groove 71. The output end of the electric push rod 74 is fixedly connected with a top plate 75. The top of the top plate 75 is attached to the bottom of the material guiding rack 72. A baffle 77 is fixedly installed on one side of the material guiding rack 72. A slope 76 is opened at the lower end of one side of the through groove 71. The bottom of the baffle 77 abuts against the slope 76; it is convenient to introduce the food slice sample into the detection module main body 2 and close the detection module main body 2 after introducing the sample to prevent multiple food slices from entering.
[0048] Through the material guiding mechanism 7, the sample of the food slices can be introduced into the detection module main body 2, and subsequent food slices can be prevented from entering the detection module main body 2. And the subsequent food slices are exported through the slope 76 to prevent multiple food slices from entering and affecting the detection work.
[0049] The specific implementation of this embodiment is as follows: after the guide conveyor frame 67 guides the food slices into the guide rack 72, the guide conveyor belt 73 can slide the food slices into the storage rack 9, and the pressure sensor 8 is triggered when the food slices fall into the storage rack 9, so that the pressure sensor 8 plays a weighing role and triggers the electric push rod 74 at the same time, so that the electric push rod 74 drives one side of the guide rack 72 to move upward, so that one side of the guide rack 72 fits with the top of the through groove 71, and then the baffle 77 plays the role of blocking the through groove 71, preventing subsequent food slices from entering the detection module body 2, and the subsequent blocked food slices will be led out through the slope 76 and merged with the food slices led out by the material discharging rack 610, so as to facilitate the subsequent material taking work, and after the food slices that have been detected are taken out, the electric push rod 74 drives the top plate 75 to return to its original position, and after losing the support of the top plate 75, the guide rack 72 drives the baffle 77 to return to its original position.
[0050] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device.
[0051] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A food detection device with the function of thawing and slicing frozen food, comprising a processing chamber (1) and a detection module body (2), characterized in that: A slicing module (3) is arranged on the left side of the upper end of the processing chamber (1), a feeding mechanism (5) and a material dividing mechanism (6) are arranged on both sides of the processing chamber (1), a radio frequency generator (4) is fixedly installed on the front and rear sides of the processing chamber (1), and the two radio frequency generators (4) are respectively located on the front and rear sides of the feeding mechanism (5), and a material guiding mechanism (7) connected to the processing chamber (1) is arranged on one side of the detection module body (2); The material distribution mechanism (6) comprises a material distribution frame (61), the material distribution frame (61) is fixedly installed inside the processing bin (1), the material distribution frame (61) is located below one side of the feeding mechanism (5), a transmission unit (62) is fixedly installed on the back of the material distribution frame (61), the two sides inside the material distribution frame (61) are respectively connected to the second conveyor belt (63) and the third conveyor belt (64) through the transmission unit (62), and the lower end and the right side of the lower end of the material distribution frame (61) are respectively fixedly installed with a first fixed frame (65) and a second fixed frame (66) and a third fixed frame (67). A second fixed frame (68), wherein a reciprocating unit (66) connected to the transmission unit (62) is disposed inside the first fixed frame (65), a vibration unit (69) connected to the transmission unit (62) is disposed inside the second fixed frame (68), one side of the second fixed frame (68) is connected to a material placing frame (610) via the vibration unit (69), the lower end of the material distribution frame (61) is fixedly connected to a guide conveying frame (67), and one side of the guide conveying frame (67) is connected to a material guiding mechanism (7).
2. A food detection device with the function of thawing and slicing frozen food according to claim 1, characterized in that: A pressure sensor (8) is fixedly mounted at the bottom of the detection module body (2), a storage rack (9) is mounted on the top of the pressure sensor (8), and a metal detection module (10) and a visual detection module (11) are fixedly mounted on one side and the top of the inner wall of the detection module body (2), respectively.
3. A food detection device with the function of thawing and slicing frozen food according to claim 1, characterized in that: The transmission unit (62) comprises a second motor (6201) fixedly mounted on the rear side of the processing bin (1); a third gear (6202) is fixedly mounted on the output end of the second motor (6201); an outer wall of the third gear (6202) is meshed with a first synchronous belt (6203); the second transmission shaft (6204) and the third transmission shaft (6205) are rotatably connected on both sides of the inside of the distribution rack (61); the second conveyor belt (63) is transmission-connected to one side of the inside of the distribution rack (61) via the second transmission shaft (6204); the third conveyor belt (64) is transmission-connected to the other side of the inside of the distribution rack (61) via the third transmission shaft (6205); one side of the second conveyor belt (63) is higher than one side of the third conveyor belt (64); one end of the second transmission shaft (6204) and the third transmission shaft (6205) both pass through the distribution rack (61); the second transmission shaft (6204) and A fourth gear (6206) is fixedly mounted on the outer wall of one end of the third transmission shaft (6205); both sides of the first synchronous belt (6203) are respectively meshed with the outer wall of the fourth gear (6206); the outer wall of the first synchronous belt (6203) is transmission-connected to the reciprocating unit (66); a first synchronous wheel (6207) is fixedly mounted on one side of the outer wall of the third transmission shaft (6205); the outer wall of the first synchronous wheel (6207) is meshed with the second synchronous belt (6208); the interior of the second fixed frame (68) is rotationally connected with a first rotating shaft (6209); one end of the first rotating shaft (6209) passes through the second fixed frame (68); a second synchronous wheel (6210) is fixedly mounted on the outer wall of one end of the first rotating shaft (6209); the lower side of the second synchronous belt (6208) is meshed with the outer wall of the second synchronous wheel (6210); the first rotating shaft (6209) is transmission-connected to the vibration unit (69).
4. A food detection device with the function of thawing and slicing frozen food according to claim 3, characterized in that: The reciprocating unit (66) includes a second rotating shaft (6601), which is rotatably connected to the lower end of the distribution frame (61); a fifth gear (6602) is fixedly installed on the outer wall of one end of the second rotating shaft (6601); teeth (6603) are fixedly installed on the outer wall of the first synchronous belt (6203); the teeth (6603) are meshed with the outer wall of the fifth gear (6602); a first eccentric wheel (6604) is fixedly installed on the outer wall of the second rotating shaft (6601); a support frame (6605) is slidably connected to the inside of the first fixed frame (65); one side of the top of the support frame (6605) is in contact with the outer wall of the first eccentric wheel (6604); a guide plate (6609) is fixedly installed on the other side of the top of the support frame (6605); the guide plate (6609) extends between the second conveyor belt (63) and the third conveyor belt (64).
5. A food detection device with the function of thawing and slicing frozen food according to claim 4, characterized in that: A first groove (6606) is provided at the lower end of the inner wall of the first fixing frame (65), and both sides of the support frame (6605) extend into the interior of the first groove (6606) respectively. A first positioning rod (6607) penetrating the support frame (6605) is fixedly installed inside the first groove (6606), and the outer wall of the first positioning rod (6607) is slidably connected to the support frame (6605). A first spring (6608) is sleeved on the lower end of the outer wall of the first positioning rod (6607), and the bottom of the first spring (6608) is fixedly connected to the bottom of the first groove (6606), and the top of the first spring (6608) is fixedly connected to the bottom of the support frame (6605).
6. A food detection device with the function of thawing and slicing frozen food according to claim 4, characterized in that: A support block (6402) is fixedly mounted on one side of the guide plate (6609), an outer wall of the third conveyor belt (64) is provided with an opening (6401), one side of the support block (6402) extends into the interior of the opening (6401), and the inner wall of the opening (6401) is slidably connected to the outer wall of the support block (6402).
7. The food detection device with the function of thawing and slicing frozen food according to claim 3, characterized in that: The vibration unit (69) includes a connecting frame (6901), which is slidably connected to the lower side of the second fixed frame (68); a second eccentric wheel (6902) is fixedly installed on the outer wall of the first rotating shaft (6209); the top of the connecting frame (6901) is in contact with the outer wall of the second eccentric wheel (6902); a second positioning rod (6903) is fixedly installed on the lower end of the second fixed frame (68); the top of the second positioning rod (6903) passes through the connecting frame (6901); the outer wall of the second positioning rod (6903) is slidably connected to the connecting frame (6901); and the second positioning rod (6903) is fixedly installed on the lower end of the second fixed frame (68); A second spring (6904) is movably sleeved on the outer wall of the positioning rod (6903); the bottom of the second spring (6904) is fixedly connected to the lower end inside the second fixed frame (68); the top of the second spring (6904) is fixedly connected to the bottom of the connecting frame (6901); a second groove (6905) is provided at the lower end of the inner wall of the second fixed frame (68); protrusions (6906) are fixedly installed on both sides of the connecting frame (6901); one side of the protrusion (6906) is slidably connected to the inside of the second groove (6905); and the material discharge rack (610) is fixedly installed on one side of the connecting frame (6901).
8. The food detection device with the function of thawing and slicing frozen food according to claim 1, characterized in that: The feeding mechanism (5) comprises a feeding rack (51), the feeding rack (51) being fixedly mounted on one side of the processing chamber (1), the feeding rack (51) being located below one side of the slicing module (3), the feeding rack (51) being rotatably connected to a first transmission shaft (52), the feeding rack (51) being connected to a first conveyor belt (53) via the first transmission shaft (52), one end of the first transmission shaft (52) passing through the feeding rack (51), one end of which being fixedly mounted with a second gear (56), the feeding rack (51) A first motor (54) is fixedly mounted on the back of the feeding rack (51), a first gear (55) is fixedly mounted on the output end of the first motor (54), the outer wall of the first gear (55) is meshed with the outer wall of the second gear (56), a drain port (5301) is provided on the outer wall of the first conveyor belt (53), a limit plate (5302) is fixedly mounted on the outer wall of the first transmission shaft (52), the outer wall of the limit plate (5302) is slidably connected to the inner wall of the drain port (5301), and a guide unit (57) is fixedly mounted on one side of the inner wall of the feeding rack (51).
9. A food detection device with the function of thawing and slicing frozen food according to claim 8, characterized in that: The guide unit (57) comprises a material receiving frame (5701), wherein the material receiving frame (5701) is fixedly mounted on one side of the inner wall of the material feeding frame (51), the top of the material receiving frame (5701) passes through the material feeding frame (51), a support rod (5702) is fixedly mounted on one side of the inner wall of the material feeding frame (51), the outer wall of the support rod (5702) is sleeved with a guide plate (5703), and the two sides of the top of the guide plate (5703) are respectively overlapped with the inner wall of the bottom of the material receiving frame (5701).
10. The food detection device with the function of thawing and slicing frozen food according to claim 1, characterized in that: The material guiding mechanism (7) comprises a through slot (71), wherein the through slot (71) is provided on one side of the detection module body (2), one side of the through slot (71) is connected to the processing chamber (1), the interior of the through slot (71) is rotatably connected to a material guiding frame (72), one side of the material guiding frame (72) is docked with a guide conveying frame (67), the interior of the material guiding frame (72) is rotatably connected to a material guiding conveying belt (73), an electric push rod (74) is fixedly installed at the lower end of the interior of the through slot (71), the output end of the electric push rod (74) is fixedly connected to a top plate (75), the top of the top plate (75) is in contact with the bottom of the material guiding frame (72), a baffle (77) is fixedly installed on one side of the material guiding frame (72), a slope (76) is provided at the lower end of one side of the through slot (71), and the bottom of the baffle (77) is in contact with the slope (76).