Green food packaging machine
By combining the brine separation component and the Wogan mandarin orange quantitative scooping component, along with the electric slide rail and fan, the problem of incomplete moisture removal in Wogan mandarin orange packaging machines is solved, enabling rapid and thorough drying and efficient packaging of Wogan mandarin oranges.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- JISHOU MUNICIPAL AGRI & RURAL AFFAIRS BUREAU
- Filing Date
- 2023-02-08
- Publication Date
- 2026-06-05
AI Technical Summary
Existing Wogan packaging machines are inefficient and incomplete in removing moisture, causing the Wogan oranges to rot in the packaging boxes and affecting the packaging quality.
The system utilizes a brine separation component and a quantitative scooping component for Wogan oranges within the cylinder, combined with components such as an electric slide rail, a filter frame, and a blower. Through the movement and oscillation of the filter frame, along with air drying and quantitative packaging, the surface of the Wogan oranges is quickly and thoroughly cleaned.
This technology enables rapid and thorough cleaning of the surface of Wogan oranges, improving packaging quality and efficiency, and ensuring the storage stability of Wogan oranges during transportation.
Smart Images

Figure CN116040014B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of food processing, and more particularly to a green food packaging machine. Background Technology
[0002] As living standards continue to improve, people have higher and higher requirements for the health of food. Green food refers to safe and high-quality edible agricultural products and related products that are produced in a good ecological environment, produced in accordance with green food standards, subject to full-process quality control, and have obtained the right to use the green food logo. In the production and processing of green food, raw materials are usually introduced into packaging boxes for packaging operations.
[0003] Among green fruits, the Wogan mandarin orange is plump, with a festive appearance, tender flesh, thin skin, and abundant juice, resulting in a sweet, mild, and refreshing taste with low acidity. It is also highly nutritious, containing a large amount of vitamins, making it a popular choice. Before packaging and transporting Wogan mandarins, they need to be washed to remove impurities and pesticide residues. After washing, they are quantitatively packaged using a packaging machine before being transported to their destination. However, because some moisture remains after washing, most existing packaging machines simply spin-dry the surface of the mandarins. This method doesn't completely remove all the moisture, potentially causing the mandarins to rot inside the packaging box, affecting the packaging quality. Furthermore, the spin-drying process requires repeated spinning, leading to low efficiency. Summary of the Invention
[0004] In view of this, the present invention provides a green food packaging machine that can more quickly and thoroughly remove moisture from the surface of Wogan oranges and package them in a quantitative manner.
[0005] The technical implementation scheme of the present invention is as follows: a green food packaging machine, comprising a cylinder, a protective cover, a brine separation component, a tangerine quantitative scooping component, a connecting rod, steel plates, a folding frame, a dispensing machine, a glue supply pipe, and a timer switch. The protective cover is fixedly connected to one side of the top of the cylinder. The brine separation component is disposed on the cylinder. The tangerine quantitative scooping component is disposed on the brine separation component and connected to the cylinder. The connecting rod is disposed on the brine separation component. Steel plates are fixedly connected to both ends of the lower part of the connecting rod. The two steel plates are symmetrically arranged. The folding frame is disposed on the brine separation component. The dispensing machine is fixedly connected to the top of the folding frame. The glue supply pipe is connected to the top of the dispensing machine and communicates with the dispensing machine. The timer switch is disposed on the brine separation component. The dispensing machine is electrically connected to the timer switch.
[0006] More preferably, the brine separation component includes an inclined mounting frame, a slotted support plate, a filter screen, dividing strips, and guardrails. The inclined mounting frame is fixedly connected to one side of the upper part of the cylinder body and is located inside the protective cover. The connecting rod is fixedly connected to one side of the inclined mounting frame. The slotted support plate is fixedly connected to the inclined mounting frame and has a sliding groove. A perforated cardboard box is placed on the slotted support plate, and both steel plates are in contact with the perforated cardboard box. The folding frame is fixedly connected to the top of the slotted support plate on the side away from the connecting rod. The timer switch is fixedly connected to the top of the slotted support plate on the side near the folding frame. A reflux chamber is provided on the inclined mounting frame. The filter screen is fixedly connected to the top of the inclined mounting frame and is located above the reflux chamber. Four dividing strips are evenly spaced on the top of the inclined mounting frame and are all located above the filter screen. Guardrails are fixedly connected to the left and right sides of the top of the inclined mounting frame, and the two guardrails are symmetrically arranged. The filter screen is located between the two guardrails.
[0007] More preferably, the tangerine quantitative scooping component includes an electric slide rail, a slider, a strip plate, a torsion rod, a protective sleeve, a torsion spring, a filter frame, and a fixing rod. The upper part of the inner wall on both sides of the cylinder is fixedly connected to the electric slide rail. The two electric slide rails are symmetrically arranged. A slider is slidably connected to each of the two electric slide rails. A strip plate is fixedly connected to each of the two sliders. A torsion rod is rotatably connected to the lower part of each of the two strip plates. A protective sleeve is fixedly connected to one end of each of the two torsion rods. A torsion spring is connected between the protective sleeve and the strip plate. A filter frame is fixedly connected between the two protective sleeves. Five filter pockets are evenly spaced on the filter frame. A fixing rod is fixedly connected to the upper part of each of the two electric slide rails.
[0008] More preferably, it also includes a delay-stop component, which is disposed on the guardrail and connected to the first electric slide rail. The delay-stop component includes a support rod, a swing pressure frame, a second torsion spring, a guide plate, a pull frame, a return spring, an inclined plate, and a short rod. The support rod is fixedly connected between the upper parts of the two guardrails. The swing pressure frame is rotatably connected to the support rod. The second torsion spring is connected between the two guardrails and the swing pressure frame. The upper parts of the two first electric slide rails are fixedly connected to the guide plates. The pull frames are slidably connected to the guide plates and the pull frames. The return spring is connected between the guide plates and the pull frames. The lower ends of the two pull frames are fixedly connected to the inclined plates, which are located above the first slider. The two inclined plates are provided with inclined surfaces. The upper ends of the two pull frames are fixedly connected to the short rods, which are slidably connected to the swing pressure frame.
[0009] More preferably, it also includes a corrugated plate, with corrugated plates fixedly connected to the left and right sides of the inclined mounting bracket near the filter frame, and the corrugated plates are located above the torsion bar.
[0010] More preferably, it also includes a fan, which is fixedly connected between the tops of the two guardrail panels.
[0011] More preferably, it also includes silicone pads, with five silicone pads fixedly connected to the bottom of the swing pressure frame.
[0012] Compared with the prior art, the present invention has the following advantages:
[0013] 1. The electric slide rail drives the slider to move upward, which in turn moves the filter frame upward. As the filter frame moves upward, it uses the filter bag to quantitatively scoop up the cleaned tangerines from the tank. At the same time, the filter bag drains the water from the tangerines. When the filter frame moves upward, it swings and tilts, pouring the tangerines onto the filter screen. The filter screen filters out the salt water from the tangerines, so that they can be quickly and quantitatively packaged in the future.
[0014] 2. After the Wogan oranges roll into the perforated cardboard box, the staff pushes the perforated cardboard box along the slotted support plate. The folding frame pushes the two top covers of the perforated cardboard box downwards, closing and pressing the perforated cardboard box. At the same time, the glue dispensing machine applies glue to the top of the perforated cardboard box to seal the top cover, thus quickly packaging the Wogan oranges.
[0015] 3. When the filter rack swings and pours the tangerines onto the filter screen, the swinging pressure frame will limit the position of the tangerines on the filter screen, allowing the tangerines to stay on the filter screen for a longer period of time. This allows the water on the tangerines to flow down fully, drying them and thoroughly cleaning the surface moisture, so that the packaged tangerines can be better stored and transported.
[0016] 4. When the torsion bar moves upward, it will be continuously squeezed and swung by the corrugated plate, which will cause the filter frame to tilt and swing towards the side closer to the inclined mounting bracket. However, at this time, the inclined mounting bracket will block the tangerine, and the tangerine will not fall off. The continuous swing of the filter frame will quickly shake the tangerine, shake off the water on the surface of the tangerine, further accelerate the draining of the tangerine, and thus clean the water on the surface of the tangerine more quickly and thoroughly.
[0017] 5. The blower will blow air onto the filter screen. When the Wogan oranges fall onto the filter screen, the blower can accelerate the drying of the moisture on the surface of the Wogan oranges, thereby cleaning the moisture on the surface of the Wogan oranges more quickly and thoroughly, and improving the quality of subsequent Wogan orange packaging. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the first three-dimensional structure of the present invention.
[0019] Figure 2 This is a schematic diagram of the second three-dimensional structure of the present invention.
[0020] Figure 3 This is a partial three-dimensional structural diagram of the brine separation component and the tangerine quantitative scooping component of the present invention.
[0021] Figure 4 This is a schematic diagram of a first partial three-dimensional structure of the brine separation component of the present invention.
[0022] Figure 5 For the present invention Figure 4 A magnified three-dimensional structural diagram of A in the middle.
[0023] Figure 6 This is a partial three-dimensional structural diagram of the present invention.
[0024] Figure 7 This is a partial three-dimensional structural diagram of the brine separation component and the time-delay residence component of the present invention.
[0025] Figure 8 This is a schematic diagram of a second partial three-dimensional structure of the brine separation component of the present invention.
[0026] Figure 9 This is a partial cross-sectional three-dimensional structural schematic diagram of the brine separation component of the present invention.
[0027] Figure 10 This is a partial cross-sectional perspective view of the brine separation component and the tangerine quantitative retrieval component of the present invention.
[0028] Figure 11 For the present invention Figure 10 A magnified three-dimensional structural diagram of B.
[0029] Figure 12 This is a partial cross-sectional three-dimensional structural schematic diagram of the Wogan mandarin orange quantitative scooping component of the present invention.
[0030] Figure 13 This is a partial three-dimensional structural diagram of the quantitative retrieval component and the time-delaying dwell component of the present invention.
[0031] Figure 14 This is a partial three-dimensional structural diagram of the time-delay pause component of the present invention.
[0032] The components in the attached diagram are labeled as follows: 1. Cylinder body; 101. Perforated cardboard box; 2. Protective cover; 31. Angled mounting bracket; 32. Slotted support plate; 33. Return chamber; 34. Filter screen; 35. Dividing strip; 36. Guardrail plate; 41. Electric slide rail one; 42. Slider one; 43. Strip plate; 44. Torsion rod; 45. Protective sleeve; 46. Torsion spring one; 47. Filter screen frame; 48. Fixing rod; 51. Connecting rod; 52. Steel sheet; 61. Folding frame; 62. Dispensing machine; 63. Glue supply pipe; 64. Timer switch; 81. Support rod; 82. Swinging pressure frame; 83. Torsion spring two; 84. Guide plate; 85. Pulling frame; 86. Return spring; 87. Angled panel; 88. Short rod; 9. Wave plate; 10. Fan; 11. Silicone pad. Detailed Implementation
[0033] All standard parts used in this invention can be purchased from the market, and irregular parts can be customized according to the description and drawings. The specific connection methods of each part adopt conventional methods such as bolts, rivets, welding, and bonding that are mature in the prior art, and will not be described in detail here.
[0034] Example 1
[0035] A green food packaging machine, such as Figures 1-13 As shown, the device includes a cylinder 1, a protective cover 2, a brine separator, a tangerine quantitative scooping component, a connecting rod 51, a steel sheet 52, a folding frame 61, a dispensing machine 62, a glue delivery pipe 63, and a timer switch 64. The protective cover 2 is bolted to one side of the top of the cylinder 1. The brine separator is mounted on the cylinder 1 and is used to remove moisture from the surface of the tangerines. The tangerine quantitative scooping component is mounted on the brine separator and connected to the cylinder 1, and is used to quantitatively scoop tangerines. The connecting rod 51 is mounted on the brine separation component. Steel plates 52 are welded to both ends of the lower part of the connecting rod 51. The two steel plates 52 are arranged symmetrically. The folding frame 61 is mounted on the brine separation component. The dispensing machine 62 is bolted to the top of the folding frame 61. The glue delivery pipe 63 is connected to the top of the dispensing machine 62 and communicates with the dispensing machine 62. The glue delivery pipe 63 is vertically arranged. The timer switch 64 is mounted on the brine separation component. The dispensing machine 62 is electrically connected to the timer switch 64.
[0036] The brine separation component includes an inclined mounting frame 31, a slotted support plate 32, a filter screen 34, dividing strips 35, and a guardrail 36. The inclined mounting frame 31 is bolted to one side of the upper part of the cylinder 1 and is located inside the protective cover 2. The connecting rod 51 is bolted to one side of the inclined mounting frame 31. The slotted support plate 32 is bolted to the inclined mounting frame 31 and has a sliding groove. A perforated cardboard box 101 is placed on the slotted support plate 32, and both steel plates 52 are in contact with the perforated cardboard box 101. The folding frame 61 is bolted to the top of the slotted support plate 32 away from the connecting rod 51. On one side, the timer switch 64 is bolted to the top of the slotted support plate 32 near the folding frame 61. The inclined mounting frame 31 has a return cavity 33. The filter screen 34 is bolted to the top of the inclined mounting frame 31. The filter screen 34 is located above the return cavity 33. Four dividing strips 35 are evenly spaced on the top of the inclined mounting frame 31. All four dividing strips 35 are located above the filter screen 34. The dividing strips 35 are inclined. Guardrail plates 36 are bolted to the left and right sides of the top of the inclined mounting frame 31. The two guardrail plates 36 are symmetrically arranged. The filter screen 34 is located between the two guardrail plates 36.
[0037] The tangerine quantitative scooping component includes an electric slide rail 41, a slider 42, a strip plate 43, a torsion rod 44, a protective sleeve 45, a torsion spring 46, a filter screen frame 47, and a fixing rod 48. The upper part of the inner walls on both sides of the cylinder 1 is bolted to the electric slide rail 41. The two electric slide rails 41 are symmetrically arranged, and each of the two electric slide rails 41 is slidably connected to a slider 42. Each of the two sliders 42 is bolted to a strip plate 43. The lower part of each strip plate 43 rotates... The device is connected by a torsion bar 44. One end of each torsion bar 44 is fixedly connected to a protective sleeve 45. A torsion spring 46 is connected between the protective sleeve 45 and the strip plate 43 via a hook. The torsion spring 46 is sleeved on the torsion bar 44 and is located inside the protective sleeve 45. A filter frame 47 is bolted between the two protective sleeves 45. Five filter pockets are evenly spaced on the filter frame 47. A fixing rod 48 is fixedly connected to the upper part of each of the two electric slide rails 41.
[0038] In actual operation, the staff first adds salt water to the tank 1, then pours the sorted tangerines into the tank 1. The salt water will soak and wash away the impurities remaining on the surface of the tangerines. Since the tangerines will float on the water surface, and the filter rack 47 is slightly lower than the water surface, the tangerines will float on the filter bag of the filter rack 47. Next, the staff opens the perforated cardboard box 101 and places it on the slotted support plate 32. Two steel plates 52 will limit the top cover on both sides of the perforated cardboard box 101, keeping the perforated cardboard box 101 in an open state so that the tangerines can be put into the perforated cardboard box 101 later. Then, the staff introduces glue into the glue delivery pipe 63 and simultaneously activates two electric slide rails 41. The electric slide rails 41 will drive the slider 1 42 and strip plate 43 move upward together. The upward movement of strip plate 43 will drive torsion rod 44 and protective sleeve 45 to move upward together. The upward movement of the two protective sleeves 45 will drive filter frame 47 to move upward. The upward movement of filter frame 47 will drive the tangerines on the filter bag to move upward together, quantitatively scooping up the tangerines. At the same time, the net bag of filter frame 47 will drain the water from the tangerines. The upward movement of torsion rod 44 will contact and be squeezed by fixed rod 48. The squeezed torsion rod 44 will swing, and torsion spring 46 will be twisted. The swing of torsion rod 44 will drive the protective sleeve 45 and filter frame 47 to swing together. The swing of filter frame 47 will tilt towards the side closer to filter screen 34. The tangerines on filter bag of filter frame 47... The oranges will fall onto the filter screen 34, and the dividing strip 35 will separate them. The oranges on the filter screen 34 will roll into the perforated cardboard box 101. At the same time, the filter screen 34 will filter out the salt water on the oranges. The filtered salt water will flow back into the cylinder 1 through the return chamber 33. Then, the operator pushes the perforated cardboard box 101 along the slotted support plate 32 towards the side closer to the dispensing machine 62. As the perforated cardboard box 101 moves, it will disengage from the two steel plates 52. The perforated cardboard box 101 will then contact the folding frame 61. The folding frame 61 will push the two upper covers of the perforated cardboard box 101 downwards, closing and pressing the perforated cardboard box 101. As the perforated cardboard box 101 continues to move, it will contact the timer switch 64. Press and hold the timer switch 64 to start the dispensing machine 62. The dispensing machine 62 will start applying glue to the top of the perforated cardboard box 101, sealing the top cover of the perforated cardboard box 101. The perforated cardboard box 101 will continue to move and will contact the folding frame 61 and the timer switch 64. When the timer switch 64 is no longer pressed, the dispensing machine 62 will turn off and stop dispensing glue, thus packaging the Wogan oranges. Then, the electric slide rail 41 will drive the slider 42 and the strip plate 43 to reset downwards together. The downward reset of the strip plate 43 will drive the torsion rod 44 and the protective sleeve 45 to reset downwards together. The downward reset of the torsion rod 44 will disengage from the torsion spring 46. The downward reset of the two protective sleeves 45 will drive the filter frame 47 to reset downwards.
[0039] Example 2
[0040] Based on Example 1, such as Figures 5-7 As shown, it also includes a time-delaying component, which is mounted on the guardrail panel 36 and connected to the electric slide rail 41. The time-delaying component extends the time the tangerine remains on the filter screen 34, allowing the water on the tangerine to drain fully, thus drying the tangerine and thoroughly removing moisture from its surface. The time-delaying component includes a support rod 81, a swinging pressure frame 82, a torsion spring 83, a guide plate 84, a pulling frame 85, a return spring 86, a slanted panel 87, and a short rod 88. The support rod 81 is hinged between the upper parts of the two guardrail panels 36 and is horizontally positioned. The swinging pressure frame 82 is rotatably connected to the support rod 81. The two guardrail panels 36 are connected to the swinging pressure frame 82 via... A torsion spring 83 is connected to the hook. Both torsion springs 83 are sleeved on the support rod 81. Guide plates 84 are bolted to the upper part of both electric slide rails 41. Pulling frames 85 are slidably connected to the two guide plates 84 respectively. A return spring 86 is connected between the guide plate 84 and the pull frame 85 through a hook. The return spring 86 is sleeved on the pull frame 85. The lower end of both pull frames 85 is bolted to the inclined plate 87. The inclined plate 87 is located above the slider 42. Both inclined plates 87 are provided with inclined surfaces. Short rods 88 are fixedly connected to the upper end of both pull frames 85 respectively. Both short rods 88 are slidably connected to the swing pressure frame 82. The short rods 88 are set horizontally.
[0041] When slider 42 moves upward, it contacts the inclined panel 87 and pushes the inclined panel 87 away from the inclined mounting bracket 31. The movement of the inclined panel 87 will cause the pull bracket 85 and short rod 88 to move, compressing the return spring 86. The movement of the two short rods 88 will cause the swing pressure bracket 82 to swing upward, and the torsion spring 83 will be torsion. When slider 42 continues to move upward, it will disengage from the inclined panel 87. The return of the torsion spring 83 will cause the swing pressure bracket 82 to swing downward and return to its original position. The return of the return spring 86 will cause the inclined panel 87, pull bracket 85, and short rod 88 to return to their original positions. When the filter frame 47 swings and pours the orange onto the filter screen 34, the swing pressure bracket 82... The filter screen 34 will be positioned to limit the time the tangerines remain on it, allowing the water to drain down and dry. This effectively removes the moisture from the surface of the tangerines. Then, the electric slide rail 41 drives the slider 42 to return to its original position. The electric slide rail 41 will then drive the slider 42 to move upward again. The upward movement of the slider 42 will bring it into contact with the inclined panel 87 again and push the inclined panel 87 away from the inclined mounting bracket 31. This will cause the swinging pressure bracket 82 to swing upward. The upward swinging pressure bracket 82 will no longer hold the tangerines, and they will roll into the perforated cardboard box 101 for packaging.
[0042] Example 3
[0043] Based on Example 1, such as Figure 7 As shown, it also includes a corrugated plate 9. The corrugated plate 9 is connected to the left and right sides of the inclined mounting bracket 31 near the filter frame 47 by pins. The corrugated plate 9 is located above the torsion rod 44.
[0044] When the torsion rod 44 moves upward, it will contact the corrugated plate 9 and be continuously squeezed and swung by the corrugated plate 9. The torsion spring 46 will be continuously twisted, which will drive the filter frame 47 to continuously tilt and swing towards the side closer to the inclined mounting bracket 31. However, at this time, the inclined mounting bracket 31 will block the orange, and the orange will not fall off. The continuous swing of the filter frame 47 will quickly shake the orange, shake off the water on the surface of the orange, further accelerate the drainage of the orange, and thus more quickly and thoroughly clean the water on the surface of the orange. When the torsion rod 44 continues to move upward, it will disengage from the corrugated plate 9. When the torsion rod 44 moves downward, it will re-contact the corrugated plate 9 and be continuously squeezed and swung by the corrugated plate 9. When the torsion rod 44 continues to move downward, it will disengage from the corrugated plate 9.
[0045] Example 4
[0046] Based on Example 1, such as Figure 1 As shown, it also includes a fan 10, which is bolted between the tops of the two guardrail panels 36.
[0047] When the staff starts the electric slide rail 41, they also start the fan 10. The fan 10 blows air onto the filter screen 34. When the Wogan orange falls onto the filter screen 34, the fan 10 can accelerate the drying of the moisture on the surface of the Wogan orange, thereby cleaning the moisture on the surface of the Wogan orange more quickly and thoroughly, and improving the quality of the subsequent Wogan orange packaging.
[0048] Example 5
[0049] Based on Example 1, such as Figure 14 As shown, it also includes silicone pads 11. Five silicone pads 11 are fixedly connected to the bottom of the swing pressure frame 82. The silicone pads 11 are elastic.
[0050] Because the silicone pad 11 has a certain degree of elasticity, it can protect the Wogan orange when the swinging pressure frame 82 holds it in place, thus preventing the swinging pressure frame 82 from crushing the Wogan orange.
[0051] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of this invention is defined by the appended claims and their equivalents.
Claims
1. A green food packaging machine, characterized by: The device includes a cylinder (1), a protective cover (2), a brine separator, a tangerine quantitative scooping component, a connecting rod (51), a steel sheet (52), a folding frame (61), a dispensing machine (62), a glue delivery pipe (63), and a timer switch (64). The protective cover (2) is fixedly connected to one side of the top of the cylinder (1). The brine separator is located on the cylinder (1). The tangerine quantitative scooping component is located on the brine separator and connected to the cylinder (1). The connecting rod (51) is located on the brine separator. On the component, steel plates (52) are fixedly connected to both ends of the lower part of the connecting rod (51), and the two steel plates (52) are arranged symmetrically. The folding frame (61) is set on the brine separation component. The dispensing machine (62) is fixedly connected to the top of the folding frame (61). The glue delivery pipe (63) is connected to the top of the dispensing machine (62) and communicates with the dispensing machine (62). The timer switch (64) is set on the brine separation component. The dispensing machine (62) is electrically connected to the timer switch (64). The brine separation component includes an inclined mounting bracket (31), a slotted support plate (32), a filter screen (34), a dividing strip (35), and a guardrail plate (36). The inclined mounting bracket (31) is fixedly connected to one side of the upper part of the cylinder (1). The inclined mounting bracket (31) is located inside the protective cover (2). The connecting rod (51) is fixedly connected to one side of the inclined mounting bracket (31). The slotted support plate (32) is fixedly connected to the inclined mounting bracket (31). The slotted support plate (32) has a sliding groove. A perforated cardboard box (101) is placed on the slotted support plate (32). Both steel plates (52) are in contact with the perforated cardboard box (101). The folding frame (61) is fixedly connected to the top of the slotted support plate (32) away from the top. On one side of the connecting rod (51), the timer switch (64) is fixedly connected to the top of the slotted support plate (32) near the folding frame (61). The inclined mounting frame (31) is provided with a return cavity (33). The filter screen (34) is fixedly connected to the top of the inclined mounting frame (31). The filter screen (34) is located above the return cavity (33). The top of the inclined mounting frame (31) is provided with four dividing strips (35) evenly spaced. All four dividing strips (35) are located above the filter screen (34). The left and right sides of the top of the inclined mounting frame (31) are fixedly connected with guardrails (36). The two guardrails (36) are symmetrically arranged. The filter screen (34) is located between the two guardrails (36). The tangerine quantitative scooping component includes an electric slide rail (41), a slider (42), a strip plate (43), a torsion rod (44), a protective sleeve (45), a torsion spring (46), a filter screen frame (47), and a fixing rod (48). The upper part of the inner wall on both sides of the cylinder (1) is fixedly connected to the electric slide rail (41). The two electric slide rails (41) are symmetrically arranged. Slider (42) is slidably connected to each of the two electric slide rails (41). Slider (42) is fixedly connected to each of the two sliders (42). A strip plate (43) is attached to each of the two strip plates (43), and a torsion bar (44) is rotatably connected to the lower part of each of the two torsion bars (44). A protective sleeve (45) is fixedly connected to one end of each of the two torsion bars (44). A torsion spring (46) is connected between the protective sleeve (45) and the strip plate (43). A filter frame (47) is fixedly connected between the two protective sleeves (45). Five filter pockets are evenly spaced on the filter frame (47). A fixing rod (48) is fixedly connected to the upper part of each of the two electric slide rails (41). It also includes a delay-stop component, which is mounted on the guardrail (36) and connected to the electric slide rail (41). The delay-stop component includes a support rod (81), a swing pressure frame (82), a torsion spring (83), a guide plate (84), a pulling frame (85), a return spring (86), a slanted panel (87), and a short rod (88). The support rod (81) is fixedly connected between the upper parts of the two guardrails (36). The swing pressure frame (82) is rotatably connected to the support rod (81). Torsion springs (83) are respectively connected between the two guardrails (36) and the swing pressure frame (82). The upper part of each of the two electric slide rails (41) is fixedly connected to a guide plate (84), and a pull frame (85) is slidably connected to each of the two guide plates (84). A return spring (86) is connected between the guide plate (84) and the pull frame (85). The lower end of each of the two pull frames (85) is fixedly connected to a slanted panel (87). The slanted panel (87) is located above the slider (42). Both of the slanted panels (87) are provided with slant surfaces. The upper end of each of the two pull frames (85) is fixedly connected to a short rod (88). Both of the short rods (88) are slidably connected to the swing pressure frame (82).
2. A green food packaging machine according to claim 1, characterized in that: It also includes a corrugated plate (9), and the corrugated plate (9) is fixedly connected to the left and right sides of the inclined mounting bracket (31) near the filter frame (47), and the corrugated plate (9) is located above the torsion bar (44).
3. A green food packaging machine according to claim 2, characterized in that: It also includes a fan (10), which is fixedly connected between the tops of the two guardrail panels (36).
4. A green food packaging machine according to claim 3, characterized in that: It also includes silicone pads (11), and five silicone pads (11) are fixedly connected to the bottom of the swing pressure frame (82).