Discharging device for quick-frozen food processing
By introducing deicing and anti-stick components and automatic feeding components into the quick-frozen food discharge device, packaging damage and food spoilage caused by ice scraps is solved, and efficient and continuous food discharge and production line automation is achieved.
Patent Information
- Application Number
- CN202510564968.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-30
- Publication Date
- 2025-06-27
AI Technical Summary
In the existing quick-frozen food processing technology, the food is easily damaged by the presence of ice slags when discharged, and water stains will form after the ice slags melt, resulting in accelerated melting and deterioration of subsequent foods.
A discharge device including a deicing and anti-adhesive assembly is designed to remove ice slags by vibration hitting the bottom plate, and to achieve continuous and efficient food discharge through the automatic feeding assembly to reduce stagnation time.
Effectively remove ice scraps from food surfaces, prevent packaging damage and food spoilage, and improve the food discharge speed and the continuity and automation of the production line.
Smart Images

Figure CN120207936A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of food discharging, and particularly relates to a discharging device for processing frozen foods. Background Art
[0002] Food processing refers to the processing activities of directly using agricultural, forestry, animal husbandry, and fishery products as raw materials, including cereal milling, feed processing, vegetable oil and sugar processing, slaughtering and meat processing, aquatic product processing, as well as the processing of foods such as vegetables, fruits, and nuts, and the processing of potatoes, dehydrated vegetables, and canned vegetables. It is a type of the broad agricultural product processing industry. A common method in food processing is to quickly freeze foods to extend their shelf life. During the quick-freezing process, the moisture in the foods will rapidly form tiny ice crystals, which will damage the cell structure of microorganisms, making it impossible for them to grow and reproduce normally. At the same time, the low-temperature environment will also reduce the metabolic activities of microorganisms, further inhibiting their growth, thereby extending the shelf life of foods and maintaining the freshness of foods.
[0003] In a quick-freezing machine, the moisture in foods will form ice crystals. Due to the relatively fast quick-freezing speed, the ice crystals may be unevenly distributed. When the foods are discharged from the quick-freezing machine, the temperature changes, and the ice crystals on the surface may partially melt due to slight warming and then quickly refreeze in the low-temperature environment, thus forming ice chips. The presence of ice chips may scratch or damage the packaging materials of the foods, and when the formed ice chips are discharged from the foods, they are likely to fall at the discharge port. After the fallen ice chips melt, they will form water stains around the discharge port, and the subsequent frozen foods discharged are likely to accelerate the melting of the foods because they touch the water stains, thereby accelerating the spoilage of the foods. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to overcome the above-mentioned disadvantages of the prior art and provide a discharging device for processing frozen foods.
[0005] The technical solution adopted to solve the above technical problem is: a discharging device for processing frozen foods, including a quick-freezing component. A continuous discharging component is arranged on one side of the quick-freezing component. An automatic feeding component is installed on the continuous discharging component. The automatic feeding component is symmetrically arranged. A conveying component is installed on the side of the continuous discharging component away from the quick-freezing component. A receiving component is fixedly arranged on the side of the conveying component away from the automatic feeding component. The continuous discharging component includes a connecting plate fixedly connected to one side of the quick-freezing component. The connecting plate and the quick-freezing component are installed and connected through a plurality of fixing bolts. A support side plate is fixedly connected to the connecting plate. A blanking slide plate is fixedly installed between the support side plates. A fixing support frame is fixedly installed at the lower end of the support side plates. An installation cavity is formed in the fixing support frame. An ice removing and anti-sticking component is installed in the installation cavity.
[0006] Through the above technical solution, after the ice removal and anti-sticking component removes the ice scum on the surface of the frozen food, the automatic feeding component takes over and sends out the frozen food, reducing the stagnation time in the production process, contributing to the continuous and efficient operation of the production line, and having a relatively high degree of automation.
[0007] Further, a fixing thin plate is fixedly connected to the lower end of the supporting side plate. One side of the fixing thin plate is inclined. The fixing thin plate is made of stainless steel. Sliding grooves are respectively formed on the two supporting side plates. An ice removal groove is formed between the blanking slide plate and the fixing thin plate.
[0008] Through the above technical solution, after the food is frozen, it discharges from the discharge port in sequence. The food slides onto the fixing thin plate through the blanking slide plate, and the shaken-off ice scum falls from the fixing thin plate at the ice removal groove for centralized collection.
[0009] Further, the quick-freezing component includes a quick-freezing machine body. A plurality of quick-freezing installation doors are symmetrically installed on one side of the quick-freezing machine body. Fixing pull rods are respectively fixedly installed on the plurality of quick-freezing installation doors. Supporting feet are respectively fixedly connected to the four corners of the bottom surface of the quick-freezing machine body. A discharge port is fixedly arranged on one side of the quick-freezing machine body.
[0010] Further, the automatic feeding component includes a first fixed shaft fixedly connected to the fixed support frame. A first installation part is rotatably connected to the first fixed shaft. The first installation part is fixedly installed with a hydraulic cylinder. One end of the hydraulic cylinder is slidably connected with a telescopic rod. A second installation part is fixedly connected to the telescopic rod. A second fixed shaft is rotatably connected to the second installation part. One end of the second fixed shaft away from the second installation part is rotatably connected with an L-shaped rod. A third fixed shaft and a fourth fixed shaft are respectively fixedly connected to the upper surface of the fixed support frame. A connecting rod is rotatably connected to the upper end of the third fixed shaft. The upper end of the fourth fixed shaft is rotatably connected to the corner of the L-shaped rod. The other ends of the connecting rod and the L-shaped rod are respectively rotatably connected with a fixed block. The fixed block is fixedly installed with a feeding arm.
[0011] Through the above technical solution, the hydraulic cylinders on both sides are started to push the telescopic rods. The telescopic rods extend to push the second fixed shaft on the second installation part. With the cooperation of the second fixed shaft, one end of the L-shaped rod rotates around the fourth fixed shaft. The rotation of the L-shaped rod drives the feeding arm to move. And under the limiting action of the connecting rod and the third fixed shaft, the feeding arms on both sides cooperate with each other to fix the frozen food on the fixing thin plate and convey it to the conveying component.
[0012] Further, the conveying component includes a fixed mounting chassis fixedly connected to the fixed support frame. An installation plate frame is fixedly connected to the upper end of the fixed mounting chassis. A driven shaft and a driving shaft are symmetrically arranged inside the installation plate frame. The driven shaft and the driving shaft are rotatably connected to the installation plate frame. A first driving motor is fixedly connected to one side of the installation plate frame. The output end of the first driving motor is fixedly connected to the driving shaft. A conveyor belt is sleeved on the driven shaft, and the other end of the conveyor belt is sleeved on the outer wall of the driving shaft.
[0013] Through the above technical solution, the first driving motor drives the driving shaft to rotate, and then the driving shaft transmits power to the driven shaft, driving the conveyor belt to rotate, and stably conveying the processed frozen food.
[0014] Further, the material receiving component includes a fixed base, and a placement box is installed on the fixed base. Plug-in slots are symmetrically opened on one side of the placement box away from the conveying component.
[0015] Through the above technical solution, the processed frozen food can be stably conveyed into the placement box, and finally, relevant operators can fork out the placement box from the fixed base by a forklift.
[0016] Further, the ice removal and anti-sticking component includes a frame support seat fixedly installed in the installation cavity. A plurality of sliding grooves are evenly opened on the frame support seat. A driving shaft penetrates through the lower end of the frame support seat. The driving shaft is rotatably connected to the frame support seat. A second driving motor is fixedly connected to one side of the frame support seat. The output end of the second driving motor is fixedly installed at one end of the driving shaft. A plurality of second cam plates are evenly fixedly connected to the driving shaft. A plurality of first cam plates are evenly fixedly connected to the driving shaft. The first cam plates and the second cam plates are arranged in a staggered manner in sequence. The second cam plates and the first cam plates are respectively arranged in the sliding grooves. Cam link rods are rotatably connected inside the second cam plates and the first cam plates respectively. The other ends of the cam link rods are rotatably connected to a fixed seat, and a slapping bottom plate is fixedly installed on the fixed seat.
[0017] Through the above technical solution, the vibration of the slapping bottom plate can make the ice slag on the surface of the frozen food fall off, avoiding the accumulation of ice slag on the food surface and affecting the product appearance. It also prevents the ice slag on the surface from possibly accelerating the oxidation and dehydration process of the food, increasing the surface moisture of the food, causing microbial growth, and affecting the shelf life and quality stability of the food. At the same time, the vibration of the slapping bottom plate can also quickly separate the food adhered in the machine, and can quickly separate a large number of foods in a short time, greatly improving the discharging speed of the food from the freezer.
[0018] Further, a buffer pad is fixedly connected to the slapping bottom plate, and the buffer pad is made of rubber.
[0019] Through the above technical solution, the buffer pad fixedly connected to the slapping bottom plate can slow down the slapping force on the fixed thin plate, thereby extending the service life of the fixed thin plate.
[0020] The beneficial effects of the present invention are as follows: (1) By designing the ice removal and anti-sticking component, the vibration of the slapping bottom plate can make the ice scum on the surface of the frozen food fall off, avoiding the accumulation of ice scum on the food surface and affecting the product appearance. It also prevents the ice scum on the surface from possibly accelerating the oxidation and dehydration process of the food, increasing the surface moisture of the food, causing the growth of microorganisms, and affecting the shelf life and quality stability of the food. At the same time, the vibration of the slapping bottom plate can also quickly separate the food stuck in the machine, and can quickly separate a large number of foods in a short time, greatly improving the discharging speed of the food from the quick-freezing machine. And because the connection postures between the second cam plate and the first cam plate and the driving shaft are different, the alternating movement of multiple groups of slapping bottom plates can be realized to slap and vibrate the upper fixed thin plate. Compared with the ordinary vibration mechanism that needs time to return to the initial position after each slapping to perform the next slapping, there is a slapping interval. The alternating movement of multiple groups of slapping bottom plates can achieve almost continuous slapping, greatly increasing the number of slaps per unit time and having a higher vibration frequency, so as to more efficiently remove ice scum and separate the stuck food; (2) By designing the supporting ice removal and anti-sticking component and the automatic feeding component, after the ice removal and anti-sticking component removes the ice scum on the surface of the frozen food, the automatic feeding component takes over and sends out the frozen food, reducing the stagnant time in the production process, helping to realize the continuous and efficient operation of the production line, and having a relatively high degree of automation. Brief Description of the Drawings
[0021] Figure 1 is the first perspective three-dimensional structure diagram of the present invention; Figure 2 is the second perspective three-dimensional structure diagram of the present invention; Figure 3 is the three-dimensional structure diagram of the conveying component and the material receiving component of the present invention; Figure 4 is the three-dimensional structure diagram of the continuous discharging component of the present invention; Figure 5 is the three-dimensional structure diagram of the automatic feeding component of the present invention; Figure 6 is the internal structure diagram of the fixed support frame of the present invention; Figure 7 is the cross-sectional view of the fixed support frame of the present invention; Figure 8 is the three-dimensional structure diagram of the ice removal and anti-sticking component of the present invention; Figure 9 is the three-dimensional structure diagram of the driving shaft of the present invention.
[0022] Reference numerals: 1, quick-freezing component; 11, quick-freezing machine body; 12, quick-freezing installation door; 13, fixed pull rod; 14, support foot; 15, discharge port; 2, continuous discharge component; 21, fixed support frame; 22, installation cavity; 23, support side plate; 24, connecting plate; 25, sliding groove; 26, fixed thin plate; 27, blanking slide plate; 28, deicing groove; 3, automatic feeding component; 30, first fixed shaft; 31, first installation part; 32, hydraulic cylinder; 33, telescopic rod; 34, second installation part; 35, second fixed shaft; 36, L-shaped rod; 37, third fixed shaft; 38, fourth fixed shaft; 39, connecting rod; 310, fixed block; 311, feeding arm; 4, conveying component; 41, fixed installation base frame; 42, installation plate frame; 43, driven shaft; 44, conveyor belt; 45, driving shaft; 46, first driving motor; 5, material receiving component; 51, fixed base; 52, placement box; 53, insertion slot; 6, deicing and anti-sticking component; 60, frame support seat; 61, sliding groove; 62, driving shaft; 63, second driving motor; 64, first cam plate; 65, second cam plate; 66, cam connecting rod; 67, fixed seat; 68, slapping bottom plate; 69, buffer pad. Detailed implementation mode
[0023] In order to make the purpose, technical solution and advantages of the present invention clearer, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.
[0024] As Figures 1-9 shown, a discharge device for quick-frozen food processing in this embodiment includes a quick-freezing component 1. A continuous discharge component 2 is arranged on one side of the quick-freezing component 1. An automatic feeding component 3 is installed on the continuous discharge component 2. The automatic feeding component 3 is symmetrically arranged. A conveying component 4 is installed on the side of the continuous discharge component 2 away from the quick-freezing component 1. A material receiving component 5 is fixedly arranged on the side of the conveying component 4 away from the automatic feeding component 3; the continuous discharge component 2 includes a connecting plate 24 fixedly connected to one side of the quick-freezing component 1. The connecting plate 24 and the quick-freezing component 1 are installed and connected by a plurality of fixing bolts. A support side plate 23 is fixedly connected to the connecting plate 24. A blanking slide plate 27 is fixedly installed between the support side plates 23. A fixed support frame 21 is fixedly installed at the lower end of the support side plate 23. An installation cavity 22 is opened in the fixed support frame 21. A deicing and anti-sticking component 6 is installed in the installation cavity 22. After the deicing and anti-sticking component 6 removes the ice scum on the surface of the quick-frozen food, the automatic feeding component 3 takes over to send out the quick-frozen food, reducing the stagnant time in the production process, contributing to the continuous and efficient operation of the production line, and having a relatively high degree of automation.
[0025] As Figures 1-7As shown, a fixed thin plate 26 is fixedly connected to the lower end of the supporting side plate 23. One side of the fixed thin plate 26 is inclined. The fixed thin plate 26 is made of stainless steel. Sliding grooves 25 are respectively formed on the two supporting side plates 23. An ice removal groove 28 is formed between the blanking slide plate 27 and the fixed thin plate 26. After the food is frozen, it is discharged from the discharge port 15 in sequence. The food slides onto the fixed thin plate 26 through the blanking slide plate 27, and the shaken ice slag falls from the fixed thin plate 26 through the ice removal groove 28 for centralized collection.
[0026] As Figure 1 and Figure 2 As shown, the quick-freezing assembly 1 includes a quick-freezing machine body 11. A plurality of quick-freezing installation doors 12 are symmetrically installed on one side of the quick-freezing machine body 11. Fixed pull rods 13 are respectively fixedly installed on the plurality of quick-freezing installation doors 12. Supporting feet 14 are respectively fixedly connected to the four corners of the bottom surface of the quick-freezing machine body 11. A discharge port 15 is fixedly arranged on one side of the quick-freezing machine body 11.
[0027] As Figures 1-5 As shown, the automatic feeding assembly 3 includes a first fixed shaft 30 fixedly connected to the fixed support frame 21. A first installation part 31 is rotatably connected to the first fixed shaft 30. The first installation part 31 is fixedly installed with a hydraulic cylinder 32. One end of the hydraulic cylinder 32 is slidably connected with a telescopic rod 33. A second installation part 34 is fixedly connected to the telescopic rod 33. A second fixed shaft 35 is rotatably connected to the second installation part 34. One end of the second fixed shaft 35 away from the second installation part 34 is rotatably connected with an L-shaped rod 36. Third fixed shafts 37 and fourth fixed shafts 38 are respectively fixedly connected to the upper surface of the fixed support frame 21. A connecting rod 39 is rotatably connected to the upper end of the third fixed shaft 37. The upper end of the fourth fixed shaft 38 is rotatably connected to the corner of the L-shaped rod 36. Fixed blocks 310 are respectively rotatably connected to the other ends of the connecting rod 39 and the L-shaped rod 36. The fixed blocks 310 are fixedly installed with the feeding arms 311. The hydraulic cylinders 32 on both sides are started to push the telescopic rods 33. The telescopic rods 33 extend to push the second fixed shaft 35 on the second installation part 34. With the cooperation of the second fixed shaft 35, one end of the L-shaped rod 36 rotates around the fourth fixed shaft 38. The rotation of the L-shaped rod 36 drives the feeding arm 311 to move. And under the limiting action of the connecting rod 39 and the third fixed shaft 37, the feeding arms 311 on both sides cooperate with each other to fix the quick-frozen food on the fixed thin plate 26 and convey it to the conveying assembly 4.
[0028] As Figures 1-3As shown, the conveying assembly 4 includes a fixed mounting base frame 41 fixedly connected to the fixed support frame 21. At the upper end of the fixed mounting base frame 41, a mounting plate frame 42 is fixedly connected. Inside the mounting plate frame 42, a driven shaft 43 and a driving shaft 45 are symmetrically arranged. The driven shaft 43 and the driving shaft 45 are rotatably connected to the mounting plate frame 42. On one side of the mounting plate frame 42, a first driving motor 46 is fixedly connected. The output end of the first driving motor 46 is fixedly connected to the driving shaft 45. A conveyor belt 44 is sleeved on the driven shaft 43, and the other end of the conveyor belt 44 is sleeved on the outer wall of the driving shaft 45. The first driving motor 46 drives the driving shaft 45 to rotate, and then the driving shaft 45 transmits power to the driven shaft 43, driving the conveyor belt 44 to rotate, and stably conveying the processed frozen food; the receiving assembly 5 includes a fixed base 51. A placement box 52 is installed on the fixed base 51. On the side of the placement box 52 away from the conveying assembly 4, insertion slots 53 are symmetrically opened. The processed frozen food can be stably conveyed into the placement box 52, and finally, relevant operators can fork out the placement box 52 from the fixed base 51 with a forklift.
[0029] As Figures 1-9 As shown, the ice removal and anti-sticking assembly 6 includes a frame support seat 60 fixedly installed in the installation cavity 22. A plurality of sliding grooves 61 are evenly opened on the frame support seat 60. A driving shaft 62 penetrates through the lower end of the frame support seat 60. The driving shaft 62 is rotatably connected to the frame support seat 60. On one side of the frame support seat 60, a second driving motor 63 is fixedly connected. The output end of the second driving motor 63 is fixedly installed at one end of the driving shaft 62. A plurality of second cam plates 65 are evenly fixedly connected to the driving shaft 62. A plurality of first cam plates 64 are evenly fixedly connected to the driving shaft 62. The first cam plates 64 and the second cam plates 65 are arranged alternately in sequence. The second cam plates 65 and the first cam plates 64 are respectively arranged in the sliding grooves 61. Cam link rods 66 are respectively rotatably connected inside the second cam plates 65 and the first cam plates 64. The other ends of the cam link rods 66 are rotatably connected to a fixed seat 67. A slapping bottom plate 68 is fixedly installed on the fixed seat 67. The vibration of the slapping bottom plate 68 can make the ice debris on the surface of the frozen food fall off, avoiding the accumulation of ice debris on the food surface and affecting the product appearance. It also prevents the ice debris on the surface from possibly accelerating the oxidation and dehydration process of the food, increasing the surface moisture of the food, causing the growth of microorganisms, and affecting the shelf life and quality stability of the food. At the same time, the vibration of the slapping bottom plate 68 can also quickly separate the food adhered in the machine, and can quickly separate a large number of foods in a short time, greatly improving the speed of the food discharging from the freezer; a buffer pad 69 is fixedly connected to the slapping bottom plate 68. The buffer pad 69 is made of rubber. The buffer pad 69 fixedly connected to the slapping bottom plate 68 can slow down the slapping force on the fixed thin plate 26, thereby extending the service life of the fixed thin plate 26.
[0030] The working principle of this embodiment is as follows. The staff puts food into the quick-freezing component 1. After the food is quick-frozen, it discharges from the discharge port 15 in sequence. The food slides onto the fixed thin plate 26 through the blanking slide plate 27. The power supply of the second drive motor 63 is started. The output end of the second drive motor 63 drives the drive shaft 62 to rotate, so that the drive shaft 62 drives a plurality of second cam plates 65 and the first cam plate 64 to rotate. The plurality of second cam plates 65 and the first cam plate 64 respectively drive the cam link 66 to rotate. The cam link 66 transmits the power to the slapping bottom plate 68, so that the slapping bottom plate 68 can reciprocate up and down along the chute 61. Since the connection postures between the second cam plate 65 and the first cam plate 64 and the drive shaft 62 are different, the alternate movement of a plurality of slapping bottom plates 68 can be realized to slap and vibrate the upper fixed thin plate 26; The ice slag on the fixed thin plate 26 is shaken off from the food, and the mutually adhered foods can also be separated by vibration. The shaken-off ice slag falls from the deicing groove 28 through the fixed thin plate 26 and is centrally collected; At the same time, the hydraulic cylinders 32 on both sides are started to push the telescopic rods 33. The telescopic rods 33 extend to push the second fixed shaft 35 on the second mounting part 34. With the cooperation of the second fixed shaft 35, one end of the L-shaped rod 36 rotates around the fourth fixed shaft 38. The rotation of the L-shaped rod 36 drives the feeding arm 311 to move. And under the limiting action of the connecting rod 39 and the third fixed shaft 37, the feeding arms 311 on both sides cooperate with each other to fix the quick-frozen food on the fixed thin plate 26 and convey it to the conveying component 4; The first drive motor 46 drives the driving shaft 45 to rotate, and then the driving shaft 45 transmits the power to the driven shaft 43 to drive the conveyor belt 44 to rotate, and stably conveys the processed quick-frozen food into the placement box 52. Finally, the relevant operator can fork out the placement box 52 from the fixed base 51 by a forklift.
[0031] The above is only a preferred embodiment of the present invention and is not intended to limit the protection scope of the present invention.
Claims
1. A discharging device for quick-frozen food processing, comprising a quick-freezing component (1), a continuous discharging component (2) being arranged on one side of the quick-freezing component (1), an automatic feeding component (3) being mounted on the continuous discharging component (2), the automatic feeding components (3) being symmetrically arranged, a conveying component (4) being mounted on the side of the continuous discharging component (2) away from the quick-freezing component (1), and a receiving component (5) being fixedly arranged on the side of the conveying component (4) away from the automatic feeding component (3); The continuous discharge assembly (2) comprises a connecting plate (24) fixedly connected to one side of the quick freezing assembly (1); the connecting plate (24) and the quick freezing assembly (1) are connected by a plurality of fixing bolts; a supporting side plate (23) is fixedly connected to the connecting plate (24); a blanking slide plate (27) is fixedly installed between the supporting side plates (23); a fixed support frame (21) is fixedly installed at the lower end of the supporting side plate (23); a mounting cavity (22) is provided in the fixed support frame (21); and a deicing and anti-sticking assembly (6) is installed in the mounting cavity (22).
2. The discharging device for quick-frozen food processing according to claim 1, characterized in that: A fixed thin plate (26) is fixedly connected to the lower end of the supporting side plate (23), one side of the fixed thin plate (26) is inclined, and the fixed thin plate (26) is made of stainless steel. Sliding grooves (25) are respectively provided on the supporting side plates (23) on both sides, and a deicing groove (28) is provided between the blanking slide plate (27) and the fixed thin plate (26).
3. The discharging device for quick-frozen food processing according to claim 1, characterized in that: The quick freezing assembly (1) comprises a quick freezing machine body (11), a plurality of quick freezing installation doors (12) are symmetrically mounted on one side of the quick freezing machine body (11), a fixed pull rod (13) is fixedly mounted on each of the plurality of quick freezing installation doors (12), supporting feet (14) are fixedly connected to the four corners of the bottom surface of the quick freezing machine body (11), and a material discharge port (15) is fixedly arranged on one side of the quick freezing machine body (11).
4. The discharging device for quick-frozen food processing according to claim 1, characterized in that: The automatic feeding assembly (3) comprises a first fixed shaft (30) fixedly connected to the fixed support frame (21); a first mounting portion (31) is rotatably connected to the first fixed shaft (30); the first mounting portion (31) is fixedly installed between the hydraulic cylinder (32); a telescopic rod (33) is slidably connected to one end of the hydraulic cylinder (32); a second mounting portion (34) is fixedly connected to the telescopic rod (33); a second fixed shaft (35) is rotatably connected to the second mounting portion (34); the second fixed shaft (35) is away from the second fixed shaft (35). One end of the second mounting portion (34) is rotatably connected to an L-shaped rod (36); a third fixed shaft (37) and a fourth fixed shaft (38) are respectively fixedly connected to the upper surface of the fixed support frame (21); an upper end of the third fixed shaft (37) is rotatably connected to a connecting rod (39); an upper end of the fourth fixed shaft (38) is rotatably connected to a corner of the L-shaped rod (36); the other ends of the connecting rod (39) and the L-shaped rod (36) are respectively rotatably connected to a fixed block (310); and the fixed block (310) is fixedly mounted between the feeding arm (311).
5. The discharging device for quick-frozen food processing according to claim 4, characterized in that: The conveying assembly (4) comprises a fixed mounting base frame (41) fixedly connected to a fixed support frame (21); a mounting plate frame (42) is fixedly connected to the upper end of the fixed mounting base frame (41); a driven shaft (43) and a driving shaft (45) are symmetrically arranged in the mounting plate frame (42); the driven shaft (43) and the driving shaft (45) are rotatably connected to the mounting plate frame (42); a first driving motor (46) is fixedly connected to one side of the mounting plate frame (42); an output end of the first driving motor (46) is fixedly connected to the driving shaft (45); a conveyor belt (44) is sleeved on the driven shaft (43); and the other end of the conveyor belt (44) is sleeved on the outer wall of the driving shaft (45).
6. The discharging device for quick-frozen food processing according to claim 1, characterized in that: The material receiving assembly (5) comprises a fixed base (51), a placement box (52) is mounted on the fixed base (51), and a plug-in slot (53) is symmetrically provided on a side of the placement box (52) away from the conveying assembly (4).
7. The discharging device for quick-frozen food processing according to claim 1, characterized in that: The deicing and anti-sticking assembly (6) comprises a frame support seat (60) fixedly mounted on the mounting cavity (22), a plurality of slide grooves (61) are evenly arranged on the frame support seat (60), a drive shaft (62) is provided through the lower end of the frame support seat (60), the drive shaft (62) is rotatably connected to the frame support seat (60), a second drive motor (63) is fixedly connected to one side of the frame support seat (60), an output end of the second drive motor (63) is fixedly mounted to one end of the drive shaft (62), and a plurality of drive shafts (61) are evenly fixedly connected to the drive shaft (62). A second cam plate (65), a plurality of first cam plates (64) are evenly and fixedly connected to the driving shaft (62), the first cam plates (64) and the second cam plates (65) are arranged in sequence and staggered, the second cam plates (65) and the first cam plates (64) are respectively arranged in the sliding groove (61), the second cam plates (65) and the first cam plates (64) are respectively rotatably connected to the cam connecting rods (66), the other end of the cam connecting rods (66) is rotatably connected to a fixed seat (67), and a slapping base plate (68) is fixedly installed on the fixed seat (67).
8. The discharging device for quick-frozen food processing according to claim 7, characterized in that: A buffer pad (69) is fixedly connected to the striking base plate (68), and the buffer pad (69) is made of rubber.
Citation Information
Cited By
Raw material conveying device for food processing
CN120504183A