Corrugated paper production process

By using the combination of funnel components and stirring components in the corrugated paper production process, the problems of raw material clumping and uneven mixing are solved, efficient mixing effect is achieved, and agitation efficiency is enhanced.

CN120443494APending Publication Date: 2025-08-08DONGGUAN JIU LONG PAPER IND CO LTD
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Patent Information

Application Number
CN202510364102.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-26
Publication Date
2025-08-08

AI Technical Summary

Technical Problem

In the existing corrugated paper production process, raw materials are prone to agglomeration during the discharge process, resulting in uneven mixing and cannot be mixed in multiple reverse directions, which affects the friction between the stirring mechanism and the raw materials, making it difficult to achieve rapid and efficient mixing.

Method used

The funnel assembly is combined with the stirring assembly and the bevel gear linkage assembly, and the stirring assembly drives the funnel assembly to rotate to achieve uniform discharge and disperse discharge. The movement of the bevel gear linkage assembly drives the rotation of the multiple reverse rotating cylinder assembly to increase the friction between the raw materials and the cylinder wall and improve the mixing effect.

Benefits of technology

Effectively prevent the cutting blockage, achieve uniform cutting and efficient mixing, enhance the breaking effect of raw materials, and improve mixing uniformity and stirring efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a corrugated paper production process, and belongs to the technical field of corrugated paper production, raw materials are poured onto a funnel assembly and fall under gravity, during falling, stirring is carried out through a stirring assembly to avoid blanking blockage, and meanwhile, the stirring assembly drives an I-shaped wheel assembly to drive the funnel assembly to rotate, so that the raw materials are fully stirred. The functions of uniform discharging and dispersed discharging are achieved under rotation of the funnel assembly, the caking problem caused by raw material gathering discharging is avoided, in addition, in the discharging process, rotation of the funnel assembly and cooperation of the bevel gear linkage assembly drive the funnel assembly to move up and down, and therefore the auxiliary discharging effect is achieved; and the stirring assembly is matched to further improve the discharging effect and the blocking prevention effect, rotation of the stirring assembly synchronously drives the bevel gear linkage assembly to move, and the bevel gear linkage assembly moves to drive the multiple reverse rotating cylinder assemblies to rotate, so that the efficient mixing function is achieved.
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Description

Technical Field

[0001] The invention relates to corrugated paper production, in particular to a corrugated paper production process, and belongs to the technical field of corrugated paper production. Background Art

[0002] The corrugated paper production process generally includes pulping, papermaking, corrugated forming, post-processing and other major links, as follows:

[0003] pulping

[0004] Raw material preparation: The main raw materials are waste paper or virgin wood pulp. Recycled waste paper must be sorted to remove impurities such as plastic and metal to ensure the purity and quality of the raw materials. Virgin wood pulp must be blended and processed according to production requirements.

[0005] Crushing: Put the prepared raw materials into the pulper, add an appropriate amount of water, and crush the raw materials into small pieces or fibers through mechanical stirring and shearing force to form a pulp suspension.

[0006] Refining: The shredded pulp enters the refiner, and the refiner's grinding disc further processes the fibers to make them fibrillated, increase the specific surface area and flexibility of the fibers, and improve the bonding force between the fibers to meet the quality requirements of subsequent papermaking.

[0007] Screening and impurity removal: Use equipment such as slag removers and pressure screens to remove impurities such as sand, metal chips, and unbroken fiber bundles from the pulp to ensure the purity and uniformity of the pulp.

[0008] In the prior art, when pulping, a large amount of concentrated material is easily discharged during the feeding process, and then agglomerates when entering the corrugated paper production equipment. After agglomeration, it is difficult to mix evenly, and even multiple mixing is difficult to achieve a uniform mixing effect;

[0009] 2. In addition, it is impossible to perform multiple reverse-direction mixing during the mixing process to increase the friction between the stirring mechanism and the raw materials, thereby achieving the functions of rapid mixing and efficient mixing;

[0010] For this reason, a corrugated paper production process is designed to solve the above problems. Summary of the Invention

[0011] The main purpose of the present invention is to provide a corrugated paper production process, in which the raw materials are screened by the funnel assembly and then fall under gravity. When falling, they are stirred by the stirring assembly to avoid blockage of the material discharge, and the stirring assembly drives the I-wheel assembly to drive the funnel assembly to rotate simultaneously. The rotation of the funnel assembly realizes the functions of uniform and dispersed material discharge, and avoids the problem of agglomeration caused by the aggregation of raw materials. In addition, during the material discharge process, the rotation of the funnel assembly and the cooperation of the bevel gear linkage assembly drive the funnel assembly to move up and down, thereby achieving the effect of auxiliary material discharge, and cooperating with the stirring assembly to further improve the effect of material discharge and prevent blockage. The rotation of the stirring assembly synchronously drives the movement of the bevel gear linkage assembly, and the movement of the bevel gear linkage assembly drives the rotation of the multiple reverse rotating cylinder assembly to realize efficient mixing function, increase the friction between the raw material and the cylinder wall, and improve the technical effect of breaking up the raw material.

[0012] The purpose of the present invention can be achieved by adopting the following technical solutions:

[0013] A corrugated paper production process includes an outer shell, an inner groove limit ring is installed on the top of the outer shell through a feeding cylinder, and a funnel assembly is arranged inside the inner groove limit ring and slides up and down inside the inner groove limit ring;

[0014] The top side of the discharge barrel is provided with a stirring assembly which penetrates the funnel assembly through a motor frame. The bottom of the stirring assembly is driven by a bevel gear linkage assembly, which is linked to a multiple reverse rotating barrel assembly.

[0015] The output end of the stirring assembly drives the funnel assembly to rotate through the I-wheel assembly;

[0016] An upper and lower adjusting ring assembly is arranged at the bottom of the funnel assembly to drive the funnel assembly to move up and down.

[0017] Preferably, the funnel assembly includes a feed funnel, an outer gear ring, a discharge pipe, a guide bin, a guide plate, an inner groove limit ring and a discharge port;

[0018] An inner groove limit ring is installed on the inner wall of the discharge barrel, and upper and lower sliding rings are inserted into the inner groove limit ring. An outer gear ring is installed on the top of the upper and lower sliding rings, and a feeding funnel is installed on the inner side of the outer gear ring. The bottom of the feeding funnel is connected to a discharge pipe, and the bottom of the discharge pipe is connected to a guide bin. The side of the guide bin is integrally formed with a downward-inclined guide plate, and the bottom of the guide plate is provided with discharge ports at equal intervals.

[0019] Preferably, the stirring assembly includes a through stirring rod, a stirring motor, and a motor frame;

[0020] A stirring motor is installed at the top end of the motor frame, and a through stirring rod is installed on the output end of the stirring motor through the motor frame. The through stirring rod passes through the feeding funnel and the discharge pipe to the inside of the outer shell.

[0021] Preferably, the bevel gear linkage assembly includes a bottom crossbar, a linkage gear, a first bevel gear, and a second bevel gear;

[0022] A second bevel gear is installed on the bottom of the outer side of the stirring rod, and the outer side of the second bevel gear is meshed with the first bevel gear. The first bevel gear is installed through the bottom cross bar, and multiple sets of linkage gears are installed on the bottom cross bar. The linkage gears are meshed with the multiple reverse rotating drum assembly to drive the multiple reverse rotating drum assembly to rotate.

[0023] Preferably, the multiple counter-rotating drum assembly comprises an outer mixing drum, an inner mixing drum and a bottom gear;

[0024] The outer mixing drum and the inner mixing drum are staggered and sleeved. The bottom of the outer mixing drum and the inner mixing drum are both installed with bottom gears. The linkage gears and the bottom gears are meshed with each other. The linkage gears on the bottom cross bar are staggered and meshed with the bottom gears at the bottom of the outer mixing drum and the inner mixing drum, and the outer mixing drum and the inner mixing drum are adjusted to rotate in opposite directions.

[0025] Preferably, the I-shaped wheel assembly includes a first I-shaped wheel, a transmission belt, a second I-shaped wheel, a vertical transmission rod, and an adjustment gear;

[0026] A first working-shaped wheel is installed at the output end of the stirring motor, a transmission belt is provided on the outer side of the first working-shaped wheel, and a second working-shaped wheel is provided on the other end inside the transmission belt. A vertical transmission rod is installed at the bottom of the second working-shaped wheel, and an adjusting gear for driving the outer gear ring is installed at the bottom of the vertical transmission rod.

[0027] Preferably, the upper and lower adjustment ring assemblies include an upper arc-shaped member, a lower arc-shaped member, a bottom ring, an inner bearing, a sliding bar, an outer fixing frame and an upper limit plate;

[0028] An upper arc-shaped piece is installed at the bottom of the guide bin, an external fixing frame is installed on the top side of the lower material barrel, a motor frame is installed on the top of the external fixing frame, an upper limit plate is installed at the bottom of the external fixing frame, and the bottom of the upper limit plate is slidably connected to the top of the inner mixing drum and the outer mixing drum, the top of the inner mixing drum and the outer mixing drum are inserted into the upper limit plate and embedded in the upper limit plate through an upper limit sliding ring whose width is greater than that of the outer mixing drum and the inner mixing drum, and the top of the inner mixing drum and the outer mixing drum are fixed to the limiting sliding ring;

[0029] The end of the upper limit plate is installed with a lower arc-shaped part that cooperates with the upper arc-shaped part through a bottom ring. A sliding bar that slides on the inside of the guide bin is inserted into the outside of the guide bin. An inner bearing is installed on the inside of the sliding bar, and the inner wall of the inner bearing is fixed to the stirring rod.

[0030] Preferably, a fixing ring is installed on the outer side of the outer shell, a side support leg is installed on the outer side of the fixing ring, a support base is installed on the bottom of the side support leg, and a discharge barrel is integrally formed on the bottom of the outer shell.

[0031] Preferably, a bottom stirring head is installed through the bottom of the stirring rod, and a bottom stirring blade is installed on the outer side of the bottom stirring head.

[0032] Beneficial technical effects of the present invention:

[0033] The present invention provides a corrugated paper production process, which falls under gravity and is stirred by a stirring component during the fall to avoid material blockage. The stirring component simultaneously drives the I-type wheel component to drive the funnel component to rotate. The rotation of the funnel component realizes the functions of uniform and dispersed material discharge, and avoids the problem of caking caused by the aggregation of raw materials. In addition, during the material discharge process, the rotation of the funnel component and the cooperation of the bevel gear linkage component drive the funnel component to move up and down, thereby achieving the effect of auxiliary material discharge, and cooperates with the stirring component to further improve the material discharge effect and the effect of preventing material blockage. The rotation of the stirring component synchronously drives the movement of the bevel gear linkage component, and the movement of the bevel gear linkage component drives the rotation of the multiple reverse rotating cylinder components to realize efficient mixing function, increase the friction between the raw material and the cylinder wall, and improve the technical effect of breaking up the raw material. BRIEF DESCRIPTION OF THE DRAWINGS

[0034] Figure 1 This is a schematic diagram of the overall three-dimensional structure of a device from a first perspective according to a preferred embodiment of a corrugated paper production process of the present invention.

[0035] Figure 2 This is a schematic diagram of the overall three-dimensional structure from a second perspective of a preferred embodiment of a corrugated paper production process according to the present invention.

[0036] Figure 3 This is a schematic diagram of the overall three-dimensional structure from a first perspective of a device (excluding the shell) according to a preferred embodiment of a corrugated paper production process of the present invention.

[0037] Figure 4 This is a schematic diagram of the overall three-dimensional structure of the device (excluding the shell) from a second perspective according to a preferred embodiment of a corrugated paper production process of the present invention.

[0038] Figure 5 This is a schematic diagram of the three-dimensional structure of a feed funnel and a transmission component combination from a first perspective according to a preferred embodiment of a corrugated paper production process of the present invention.

[0039] Figure 6 The present invention is a schematic diagram of a three-dimensional structure of a mixing assembly and a gear transmission rod assembly according to a preferred embodiment of a corrugated paper production process.

[0040] Figure 7 This is a schematic diagram of the third perspective structure of a feed hopper and a transmission assembly according to a preferred embodiment of a corrugated paper production process of the present invention.

[0041] Figure 8 This is a schematic diagram of the three-dimensional structure of a feed funnel and a transmission component combination from a third perspective according to a preferred embodiment of a corrugated paper production process of the present invention.

[0042] Figure 9 For the present invention Figure 7 A magnified view of the structure at point a in FIG.

[0043] Figure 10 The figure is a schematic diagram of the three-dimensional structure of a feed funnel according to a preferred embodiment of a corrugated paper production process of the present invention.

[0044] In the figure: 1-outer shell, 101-fixing ring, 102-side support leg, 103-support base, 104-discharging barrel;

[0045] 2-feeding funnel, 201-external gear ring, 202-discharging pipe, 203-guide bin, 204-guide plate, 205-inner groove limiting ring, 206-discharging port;

[0046] 3- bottom stirring blade, 301- bottom stirring head;

[0047] 4-external mixing drum, 401-inner mixing drum, 402-bottom gear;

[0048] 5-external fixator, 501-upper limit plate;

[0049] 6-through stirring rod, 601-stirring motor, 602-motor frame;

[0050] 7-first profile wheel, 701-transmission belt, 702-second profile wheel, 703-vertical transmission rod, 704-adjustment gear;

[0051] 8-bottom crossbar, 801-linking gear, 802-first bevel gear, 803-second bevel gear;

[0052] 9-upper arc-shaped part, 901-bottom ring, 902-lower arc-shaped part, 903-inner bearing, 904-sliding bar. DETAILED DESCRIPTION

[0053] In order to make the technical solution of the present invention more clear and specific to those skilled in the art, the present invention is further described in detail below with reference to embodiments and drawings, but the embodiments of the present invention are not limited thereto.

[0054] like Figures 1-10 As shown, a corrugated paper production process provided in this embodiment includes an outer shell 1, an inner groove limiting ring 205 is installed on the top of the outer shell 1 through a discharge barrel 104, and a funnel assembly is provided in the inner groove limiting ring 205 to slide up and down in the inner groove limiting ring 205;

[0055] The top side of the discharge barrel 104 is provided with a stirring assembly penetrating the funnel assembly through the motor frame 602. The bottom of the stirring assembly is driven by a bevel gear linkage assembly, which is linked to a multiple reverse rotating barrel assembly.

[0056] The output end of the stirring assembly drives the funnel assembly to rotate through the I-wheel assembly;

[0057] The bottom of the funnel assembly is provided with an upper and lower adjustment ring assembly to drive the funnel assembly to move up and down. The overall working principle is: by pouring the raw materials into the funnel assembly, it falls under gravity, and is stirred by the stirring assembly during the falling to avoid blockage of the material discharge. The stirring assembly simultaneously drives the wheel assembly to drive the funnel assembly to rotate. The rotation of the funnel assembly realizes the function of uniform and dispersed material discharge, and avoids the problem of agglomeration caused by the aggregation of raw materials. In addition, during the material discharge process, the rotation of the funnel assembly and the cooperation of the bevel gear linkage assembly drive the funnel assembly to move up and down, thereby achieving the effect of auxiliary material discharge, and cooperates with the stirring assembly to further improve the effect of material discharge and prevent material blockage. The rotation of the stirring assembly synchronously drives the movement of the bevel gear linkage assembly, and the movement of the bevel gear linkage assembly drives the rotation of the multiple reverse rotating barrel assembly to achieve efficient mixing function, increase the friction between the raw materials and the barrel wall, and improve the technical effect of breaking up the raw materials.

[0058] In this embodiment, the funnel assembly includes a feed funnel 2, an outer gear ring 201, a discharge pipe 202, a guide bin 203, a guide plate 204, an inner groove limit ring 205 and a discharge port 206;

[0059] An inner groove limit ring 205 is installed on the inner wall of the discharge barrel 104, and upper and lower sliding rings are inserted into the inner groove limit ring 205. An outer gear ring 201 is installed on the top of the upper and lower sliding rings, and a feeding funnel 2 is installed on the inner side of the outer gear ring 201. The bottom of the feeding funnel 2 is connected to the discharge pipe 202, and the bottom of the discharge pipe 202 is connected to the guide bin 203. The side of the guide bin 203 is integrally formed with a downward-inclined guide plate 204, and the bottom of the guide plate 204 is provided with discharge ports 206 at equal intervals.

[0060] Local working principle: by pouring raw materials into the feed funnel 2, the raw materials enter the guide bin 203 through the discharge pipe 202, and enter the guide plate 204 through the guide bin 203. A discharge port 206 is opened at the bottom of the guide plate 204, and the raw materials leak into the outer shell 1 through the discharge port 206. The inner groove limit ring 205 cooperates with the upper and lower sliding rings to provide a movement basis for the feed funnel 2 to slide up and down.

[0061] In this embodiment, the stirring assembly includes a through stirring rod 6, a stirring motor 601, and a motor frame 602;

[0062] A stirring motor 601 is installed at the top end of the motor frame 602 , and a through stirring rod 6 is installed at the output end of the stirring motor 601 through the motor frame 602 . The through stirring rod 6 passes through the feeding funnel 2 and the discharge pipe 202 to the inside of the outer shell 1 .

[0063] Local working principle: By starting the stirring motor 601, the stirring rod 6 is driven to rotate, and the rotation of the stirring rod 6 is synchronously driven to move the bevel gear linkage assembly, and synchronously rotated inside the discharge pipe 202 to achieve stirring of the discharged raw materials to prevent blockage.

[0064] In this embodiment, the bevel gear linkage assembly includes a bottom crossbar 8, a linkage gear 801, a first bevel gear 802, and a second bevel gear 803;

[0065] A second bevel gear 803 is installed through the bottom of the outer side of the stirring rod 6, and a first bevel gear 802 is engaged with the outer side of the second bevel gear 803. The first bevel gear 802 is installed through the bottom cross bar 8, and multiple sets of linkage gears 801 are installed on the bottom cross bar 8. The linkage gears 801 are engaged with the multiple reverse rotating drum assembly to drive the multiple reverse rotating drum assembly to rotate.

[0066] Local working principle: The second bevel gear 803 is driven to move by the rotation of the stirring rod 6, the first bevel gear 802 is driven to move by the second bevel gear 803, the rotation of the bottom cross bar 8 is adjusted by the first bevel gear 802, the linkage gear 801 is driven to rotate by the bottom cross bar 8, and the movement of the multiple reverse rotation cylinder assembly is adjusted by the linkage gear 801.

[0067] In this embodiment, the multiple counter-rotating drum assembly includes an outer mixing drum 4, an inner mixing drum 401, and a bottom gear 402;

[0068] The outer mixing drum 4 and the inner mixing drum 401 are arranged alternately, and the bottom of the outer mixing drum 4 and the inner mixing drum 401 are both installed with a bottom gear 402, the linkage gear 801 and the bottom gear 402 are engaged with each other, and the linkage gear 801 on the bottom cross bar 8 is alternately engaged with the bottom gear 402 at the bottom of the outer mixing drum 4 and the inner mixing drum 401, and the outer mixing drum 4 and the inner mixing drum 401 are adjusted to rotate alternately in opposite directions.

[0069] Local working principle: By setting the inner mixing drum 401 and the outer mixing drum 4, different inner mixing drums 401 and outer mixing drum 4 are adjusted in cooperation with the linkage gear 801, so that the outer mixing drum 4 and the inner mixing drum 401 rotate in an alternating and opposite direction, so that the outer mixing drum 4 and the inner mixing drum 401 which move in opposite directions can rub the raw materials against each other in the staggered motion to improve the technical effect of breaking up the raw materials and further improve the mixing effect.

[0070] In this embodiment, the profile wheel assembly includes a first profile wheel 7, a transmission belt 701, a second profile wheel 702, a vertical transmission rod 703, and an adjustment gear 704;

[0071] The output end of the stirring motor 601 is equipped with a first working wheel 7, the outer side of the first working wheel 7 is provided with a transmission belt 701, the other end of the inner side of the transmission belt 701 is provided with a second working wheel 702, and the bottom of the second working wheel 702 is equipped with a vertical transmission rod 703, and the bottom of the vertical transmission rod 703 is equipped with an adjusting gear 704 that drives the outer gear ring 201.

[0072] Local working principle: By starting the rotation of the stirring motor 601, the first working wheel 7 is driven to move, the transmission belt 701 is adjusted to move through the first working wheel 7, the second working wheel 702 is adjusted to move through the transmission belt 701, the second working wheel 702 is adjusted to move the vertical transmission rod 703, the vertical transmission rod 703 is adjusted to rotate the adjustment gear 704, the adjustment gear 704 is adjusted to move the outer gear ring 201, and the outer gear ring 201 is used to drive the feed funnel 2 to rotate synchronously.

[0073] In this embodiment, the upper and lower adjustment ring assembly includes an upper arc-shaped member 902, a lower arc-shaped member 902, a bottom ring 901, an inner bearing 903, a sliding bar 904, an outer fixing frame 5 and an upper limit plate 501;

[0074] An upper arc-shaped member 9 is installed at the bottom of the guide bin 203, an external fixing frame 5 is installed on the top side of the discharge barrel 104, a motor frame 602 is installed on the top of the external fixing frame 5, an upper limit plate 501 is installed at the bottom of the external fixing frame 5, and the bottom of the upper limit plate 501 is slidably connected to the top of the inner mixing drum 401 and the outer mixing drum 4, the top of the inner mixing drum 401 and the outer mixing drum 4 are inserted into the upper limit plate 501 and embedded in the upper limit plate 501 through an upper limit sliding ring whose width is greater than that of the outer mixing drum 4 and the inner mixing drum 401, and the top of the inner mixing drum 401 and the outer mixing drum 4 are fixed to the limiting sliding ring;

[0075] The end of the upper limit plate 501 is installed with a lower arc-shaped part 902 that cooperates with the upper arc-shaped part 9 through a bottom ring 901. A sliding bar 904 that slides on the inside of the material guide bin 203 is inserted into the outside of the material guide bin 203. An inner bearing 903 is installed on the inside of the sliding bar 904, and the inner wall of the inner bearing 903 is fixed to the stirring rod 6 that passes through it.

[0076] Local working principle: The rotation of the material guide bin 203 synchronously drives the upper arc part 9 and the lower arc part 902 to move in an offset manner, thereby driving the material guide bin 203 to move up and down with the cooperation of the upper arc part 9 and the lower arc part 902, and by setting the sliding bar 904 and the inner bearing 903, the rotation of the stirring rod 6 is not affected.

[0077] In this embodiment, a fixing ring 101 is installed on the outside of the outer shell 1, a side support leg 102 is installed on the outside of the fixing ring 101, a support base 103 is installed on the bottom of the side support leg 102, and a discharge barrel 104 is integrally formed at the bottom of the outer shell 1.

[0078] In this embodiment, a bottom stirring head 301 is installed through the bottom of the stirring rod 6 , and a bottom stirring blade 3 is installed on the outer side of the bottom stirring head 301 .

[0079] Partial working principle: The bottom stirring blade 3 is provided to realize the bottom stirring function and prevent the problem of sedimentation.

[0080] The above are only further embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes based on the technical solutions and concepts of the present invention within the scope disclosed by the present invention, which fall within the scope of protection of the present invention.

Claims

1. A corrugated paper production process, characterized in that: The invention relates to a pulper for a corrugated paper production process, comprising an outer shell (1), an inner groove limiting ring (205) installed on the top of the outer shell (1) via a lower barrel (104), and a funnel assembly arranged inside the inner groove limiting ring (205) and sliding up and down inside the inner groove limiting ring (205); The top side of the discharge barrel (104) is provided with a stirring assembly penetrating the funnel assembly through the motor frame (602), the bottom of the stirring assembly is driven by a bevel gear linkage assembly, and the bevel gear linkage assembly is linked to a multiple reverse rotation barrel assembly; The output end of the stirring assembly drives the funnel assembly to rotate through the I-wheel assembly; An upper and lower adjusting ring assembly is arranged at the bottom of the funnel assembly to drive the funnel assembly to move up and down.

2. A corrugated paper production process according to claim 1, characterized in that: The funnel assembly comprises a feed funnel (2), an outer gear ring (201), a discharge pipe (202), a guide bin (203), a guide plate (204), an inner groove limiting ring (205) and a discharge port (206); An inner groove limiting ring (205) is installed on the inner wall of the discharge barrel (104), and an upper and lower sliding rings are inserted into the inner groove limiting ring (205). An outer gear ring (201) is installed on the top of the upper and lower sliding rings, and a feeding funnel (2) is installed on the inner side of the outer gear ring (201). The bottom of the feeding funnel (2) is connected to a discharge pipe (202), and the bottom of the discharge pipe (202) is connected to a guide bin (203). A downwardly inclined guide plate (204) is integrally formed on the side of the guide bin (203), and discharge ports (206) are opened at equal intervals at the bottom of the guide plate (204).

3. A corrugated paper production process according to claim 2, characterized in that: The stirring assembly includes a through stirring rod (6), a stirring motor (601), and a motor frame (602); A stirring motor (601) is installed at the top end of the motor frame (602), and a through stirring rod (6) is installed at the output end of the stirring motor (601) through the motor frame (602). The through stirring rod (6) passes through the feeding funnel (2) and the discharge pipe (202) to the interior of the outer shell (1).

4. A corrugated paper production process according to claim 2, characterized in that: The bevel gear linkage assembly includes a bottom crossbar (8), a linkage gear (801), a first bevel gear (802), and a second bevel gear (803); A second bevel gear (803) is installed through the bottom of the outer side of the stirring rod (6), and a first bevel gear (802) is meshed on the outer side of the second bevel gear (803). The first bevel gear (802) is installed through the bottom cross bar (8), and multiple sets of linkage gears (801) are sleeved and installed on the bottom cross bar (8). The linkage gears (801) are meshed with the multiple reverse rotation drum assembly to drive the multiple reverse rotation drum assembly to rotate.

5. A corrugated paper production process according to claim 2, characterized in that: The multiple counter-rotating drum assembly includes an outer mixing drum (4), an inner mixing drum (401) and a bottom gear (402); The outer mixing drum (4) and the inner mixing drum (401) are arranged in an interlaced manner. The bottom of the outer mixing drum (4) and the bottom of the inner mixing drum (401) are both equipped with a bottom gear (402). The linkage gear (801) and the bottom gear (402) are meshed with each other. The linkage gear (801) on the bottom cross bar (8) is meshed with the bottom gear (402) at the bottom of the outer mixing drum (4) and the inner mixing drum (401) in an interlaced manner, and the outer mixing drum (4) and the inner mixing drum (401) are adjusted to rotate in opposite directions in an interlaced manner.

6. A corrugated paper production process according to claim 2, characterized in that: The industrial wheel assembly comprises a first industrial wheel (7), a transmission belt (701), a second industrial wheel (702), a vertical transmission rod (703), and an adjusting gear (704); The output end of the stirring motor (601) is provided with a first shaped wheel (7), the outer side of the first shaped wheel (7) is provided with a transmission belt (701), the other end of the inner side of the transmission belt (701) is provided with a second shaped wheel (702), the bottom of the second shaped wheel (702) is provided with a vertical transmission rod (703), and the bottom of the vertical transmission rod (703) is provided with an adjusting gear (704) for driving the outer gear ring (201).

7. A corrugated paper production process according to claim 2, characterized in that: The upper and lower adjustment ring components include an upper arc-shaped member (9), a lower arc-shaped member (902), a bottom ring (901), an inner bearing (903), a sliding bar (904), an outer fixing frame (5) and an upper limit plate (501); An upper arc-shaped member (9) is installed at the bottom of the guide bin (203), an external fixing frame (5) is installed at the top side of the lower material barrel (104), a motor frame (602) is installed at the top of the external fixing frame (5), an upper limit plate (501) is installed at the bottom of the external fixing frame (5), and the bottom of the upper limit plate (501) is slidably connected to the top of the inner mixing drum (401) and the outer mixing drum (4), the top of the inner mixing drum (401) and the outer mixing drum (4) are inserted into the upper limit plate (501) and embedded into the upper limit plate (501) through an upper limit sliding ring having a width greater than that of the outer mixing drum (4) and the inner mixing drum (401), and the top of the inner mixing drum (401) and the outer mixing drum (4) are fixed to the limiting sliding ring; The end of the upper limit plate (501) is installed with a lower arc-shaped member (902) that cooperates with the upper arc-shaped member (9) through a bottom ring (901). A sliding bar (904) that slides on the inner side of the material guide bin (203) is inserted into the outer side of the material guide bin (203). An inner bearing (903) is installed on the inner side of the sliding bar (904). The inner wall of the inner bearing (903) is fixed to the stirring rod (6) that penetrates.

8. A corrugated paper production process according to claim 2, characterized in that: A fixing ring (101) is installed on the outside of the outer shell (1), a side support leg (102) is installed on the outside of the fixing ring (101), a support base (103) is installed on the bottom of the side support leg (102), and a discharge barrel (104) is integrally formed at the bottom of the outer shell (1).

9. A corrugated paper production process according to claim 2, characterized in that: A bottom stirring head (301) is installed through the bottom of the stirring rod (6), and a bottom stirring blade (3) is installed on the outer side of the bottom stirring head (301).