Aluminum profile discharging and distributing device

The flipping assembly and hydraulic assembly of the aluminum profile out-of-frame material distribution device achieve orderly layered stacking and stable storage of aluminum foil rolls and aluminum foil paper, solving the problems of uncontrolled movement caused by air blowing and deformation caused by mechanical pushing, and improving storage efficiency and material protection.

CN120664337AInactive Publication Date: 2025-09-19ANHUI WEIKA DOORS & WINDOWS CO LTD
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Patent Information

Application Number
CN202511082285.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-04
Publication Date
2025-09-19
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the existing technology, the movement trajectory of aluminum foil rolls and aluminum foil paper is out of control during the air blowing conveying process, resulting in disordered stacking and plastic deformation of the material. In addition, the traditional push-plate sorting mechanism is prone to cause stacking stress concentration, resulting in surface indentation and structural damage.

Method used

An aluminum profile out-of-frame material separation device is used, including a cutting device, a storage box, a flip assembly and a hydraulic assembly. The guide plate and crank transmission mechanism of the flip assembly are used to achieve orderly layered stacking and automatic alignment of aluminum foil rolls and aluminum foil paper. Aluminum foil paper is used to cover the aluminum foil roll to limit its shaking and displacement.

Benefits of technology

It effectively reduces the risk of deformation or damage of aluminum foil rolls due to stacking stress concentration, improves space utilization in the storage box, and ensures orderly layered stacking and stable storage of aluminum foil rolls and aluminum foil paper.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the field of aluminum profile machining, and discloses an aluminum profile out-of-frame distributing device which comprises a cutting device, a storage box is arranged at the tail end of the cutting device, an overturning assembly is arranged over the storage box, the overturning assembly is installed on the inner side of a material blocking plate in an inclined state in a normal state, a rotating shaft rotates to drive a crank transmission mechanism, and the crank transmission mechanism drives the rotating shaft to rotate. The crank transmission mechanism is driven to extrude damping liquid in the hydraulic assembly, so that the push rod is pushed to lift, and the storage box reciprocates and inclines with the cylindrical rod as the circle center; the aluminum foil rolls are covered with the aluminum foil paper through the overturning assemblies, all layers of aluminum foil rolls are separated through the aluminum foil paper, and the risk that the aluminum foil rolls deform or are damaged due to local stress concentration caused by mutual stacking of the aluminum foil rolls is reduced; and meanwhile, when the aluminum foil roll is extruded by the aluminum foil paper, the aluminum foil roll can be limited from shaking in the storage box, jumping or dislocation of the aluminum foil roll in the vertical direction can be restrained, and assistance is provided for maintaining the relative stable state of materials in the storage box.
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Description

Technical Field

[0001] The present invention relates to the field of aluminum profile processing, and in particular to an aluminum profile frame-discharging and material-dividing device. Background Art

[0002] During the aluminum foil processing process, in order to adapt to different application requirements, aluminum foil is usually processed simultaneously into aluminum foil rolls and aluminum foil paper using cutting components on the same production line, and then transported to the same collection frame through a blowing device. Although this integrated production method can reduce equipment costs, aluminum foil rolls and aluminum foil paper need to be mixed and stored in a limited space.

[0003] In the existing technology, the aluminum foil rolls and aluminum foil paper are caused to enter the collection box through air blowing. Although this simplifies the transportation method, it will cause the movement trajectory of the aluminum foil rolls and aluminum foil paper to be out of control, the landing points to be randomly scattered, the postures to be flipped and offset, and the stacking and overlapping to be disordered, making it difficult to accurately and automatically arrange them in a neat state; and the traditional push-plate sorting mechanism mechanically forces the aluminum foil rolls and aluminum foil paper to abut the box wall to achieve the alignment of the aluminum foil rolls and aluminum foil paper, but because the aluminum foil material is soft and has low bending stiffness, it is easy to cause plastic deformation and stacking stress concentration, resulting in surface indentation and even structural damage. Summary of the Invention

[0004] In response to the shortcomings of the existing technology, the purpose of the present invention is to provide an aluminum profile out-of-frame material distribution device, which solves the problems of uncontrolled movement trajectory and disordered stacking of aluminum foil rolls and aluminum foil paper caused by air blowing conveying in the existing technology, as well as plastic deformation of materials and stacking stress concentration caused by forced mechanical pushing.

[0005] The purpose of this disclosure can be achieved through the following technical solutions:

[0006] The aluminum profile out-of-frame distributing device includes: a cutting device, a storage box is provided at the end of the cutting device, and a material blocking plate is provided at the end of the storage box away from the cutting assembly, and a flip assembly is provided directly above the storage box. Under normal conditions, the flip assembly is installed in an inclined state on the inner side of the material blocking plate;

[0007] The flip assembly includes a guide plate and a rotating shaft, and the side of the guide plate close to the baffle plate is higher than the side close to the cutting assembly, and one end of the rotating shaft is connected to a crank transmission mechanism;

[0008] The lower end of the crank transmission mechanism is sealed with a hydraulic component;

[0009] The hydraulic assembly includes a push rod;

[0010] A cylindrical rod is rotatably provided in the middle of the bottom side of the storage box, and the two ends of the hydraulic assembly are respectively located on both sides of the cylindrical rod. A push rod is sealed at one end of the hydraulic assembly away from the crank transmission mechanism, and the upper end of the push rod is in contact with the bottom surface of the storage box;

[0011] The bottom surface of the storage box is provided with an inclined plate;

[0012] The rotating shaft rotates to drive the crank transmission mechanism, which drives the crank transmission mechanism to squeeze the damping fluid in the hydraulic assembly, thereby pushing the push rod up and down, causing the storage box to tilt back and forth with the cylindrical rod as the center of the circle;

[0013] The 0°-180° rotation phase of the guide plate rotation axis corresponds to the storage box swinging down toward the baffle plate side, and the 180°-360° rotation phase corresponds to the storage box lifting up toward the baffle plate side.

[0014] In some disclosures, a first baffle is fixed to one side of the storage box, and a gap is left between the guide plate and the first baffle, and the width of the gap is greater than the length of the aluminum foil roll.

[0015] In some disclosures, the crank transmission mechanism includes a crank, a connecting rod and a piston rod. The crank is fixed to the end of the rotating shaft, and the outer side of the crank is rotatably connected to the connecting rod. The end of the connecting rod away from the crank is rotatably connected to the piston rod, and the lower end of the piston rod passes through the hydraulic assembly.

[0016] In some disclosures, the hydraulic assembly further includes a hydraulic cylinder, the lower end of the cylindrical rod is provided with a hydraulic cylinder, one end of the hydraulic cylinder is located directly below the piston rod, and the other end of the hydraulic cylinder is in sliding engagement with the push rod.

[0017] In some disclosures, the upper end of the push rod is rotatably connected to a support plate, and the upper end surface of the support plate is in contact with the lower end surface of the storage box.

[0018] In some disclosures, the guide plate and the inclined plate are inclined in opposite directions.

[0019] In some disclosures, a limiting assembly is provided at the downwardly inclined end of the guide plate, and the limiting assembly includes a second baffle, a telescopic rod and a first support cavity, and the telescopic rod is fixed to the lower end of the second baffle, and the first support cavity is slidingly provided below the second baffle.

[0020] In some disclosures, a support rod is provided at the lower end of the guide plate, and second support cavities are slidably provided at both ends of the support rod, and the second support cavity and the first support cavity form a communication structure through a hose.

[0021] In some disclosures, a support spring is provided between the second support cavity and the support rod.

[0022] In some disclosures, a flexible layer is provided on a side of the material baffle plate close to the storage box, and the flexible layer is filled with cotton.

[0023] The nouns, conjunctions or adjectives involved in the above technical solution are explained as follows:

[0024] A fixed connection is a connection in which parts or components are fixed without any relative movement;

[0025] A rotational connection is a connection between parts that allows the parts to rotate relative to each other;

[0026] Threaded connection is a detachable fixed connection with the advantages of simple structure, reliable connection, and easy assembly and disassembly. It is widely used in mechanical engineering and connection structure fields.

[0027] A sliding connection is a connection between parts that allows the parts to slide relative to each other.

[0028] Beneficial effects of the present disclosure:

[0029] 1. Aluminum foil is covered on top of the aluminum foil roll by the flip assembly, and aluminum foil is used as a barrier between each layer of aluminum foil roll, which helps to reduce the risk of deformation or damage of the aluminum foil roll due to local stress concentration caused by stacking. At the same time, the aluminum foil roll is squeezed by the aluminum foil, which can limit the vertical jump or misalignment of the aluminum foil roll when the storage box shakes, thereby helping to maintain the relative stability of the materials in the storage box.

[0030] 2. At the same time, the crank transmission structure is driven to move by the flipping component, thereby causing the storage box to tilt, effectively realizing the automatic collection, orderly layered stacking and preliminary alignment of the aluminum foil rolls and aluminum foil papers, which is conducive to increasing the space utilization in the storage box. BRIEF DESCRIPTION OF THE DRAWINGS

[0031] In order to more clearly illustrate the embodiments of the present disclosure or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, for ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.

[0032] Figure 1 is a schematic diagram of the overall structure of an embodiment of the present disclosure;

[0033] Figure 2 is a schematic diagram of the overall structure of the storage box according to an embodiment of the present disclosure;

[0034] Figure 3 This is an embodiment of the present disclosure Figure 2 Schematic diagram from above;

[0035] Figure 4 is an AA isometric cross-sectional diagram in the main view of an embodiment of the present disclosure;

[0036] Figure 5Schematic diagram of the overall structure of the limit assembly, the flip assembly and the crank transmission mechanism of the embodiment of the present disclosure;

[0037] Figure 6 Schematic diagram of the overall structure of the crank transmission mechanism and hydraulic assembly of the embodiment of the present disclosure;

[0038] Figure 7 It is a schematic diagram of the connection structure between the limit assembly and the support rod in an embodiment of the present disclosure.

[0039] In the figure: 1. cutting device; 2. storage box; 21. inclined plate; 22. first baffle; 23. cylindrical rod; 3. baffle plate; 31. flexible layer; 4. flip assembly; 41. guide plate; 42. rotating shaft; 5. crank transmission mechanism; 51. crank; 52. connecting rod; 53. piston rod; 6. hydraulic assembly; 61. push rod; 62. hydraulic cylinder; 611. support plate; 7. limit assembly; 71. second baffle; 72. telescopic rod; 73. first support cavity; 8. support rod; 81. second support cavity; 82. hose; 83. support spring. DETAILED DESCRIPTION

[0040] The following will be combined with the accompanying drawings in the embodiments of the present disclosure to clearly and completely describe the technical solutions in the embodiments of the present disclosure. Obviously, the embodiments described are only part of the embodiments of the present disclosure, not all of the embodiments. Based on the embodiments of the present disclosure, all other embodiments obtained by ordinary technicians in this field without making any creative efforts are within the scope of protection of the present disclosure.

[0041] Please refer to Figures 1 to 7 The aluminum profile out-of-frame material distribution device includes: a cutting device 1, a storage box 2 is provided at the end of the cutting device 1, and a baffle plate 3 is provided at the end of the storage box 2 away from the cutting component, and a flip component 4 is provided just above the storage box 2. Under normal conditions, the flip component 4 is installed on the inner side of the baffle plate 3 in an inclined state;

[0042] The turning assembly 4 includes a guide plate 41 and a rotating shaft 42. The side of the guide plate 41 close to the baffle plate 3 is higher than the side close to the cutting assembly. One end of the rotating shaft 42 is connected to the crank transmission mechanism 5.

[0043] The lower end of the crank transmission mechanism 5 is sealed with a hydraulic assembly 6;

[0044] The hydraulic assembly 6 includes a push rod 61;

[0045] A cylindrical rod 23 is rotatably provided in the middle of the bottom side of the storage box 2. The two ends of the hydraulic assembly 6 are respectively located on both sides of the cylindrical rod 23. The end of the hydraulic assembly 6 away from the crank transmission mechanism 5 is sealed with a push rod 61, and the upper end of the push rod 61 is in contact with the bottom surface of the storage box 2.

[0046] The bottom surface of the storage box 2 is provided with an inclined plate 21;

[0047] The rotating shaft 42 rotates to drive the crank transmission mechanism 5, which drives the crank transmission mechanism 5 to squeeze the damping fluid in the hydraulic assembly 6, thereby pushing the push rod 61 up and down, causing the storage box 2 to tilt back and forth with the cylindrical rod 23 as the center.

[0048] The 0°-180° rotation phase of the rotating shaft 42 of the guide plate 41 corresponds to the storage box 2 swinging down toward the baffle plate 3 side, and the 180°-360° rotation phase corresponds to the storage box 2 rising toward the baffle plate 3 side.

[0049] When in use, the driving assembly drives the guide plate 41 to rotate, so that the guide plate 41 rotates to an inclined state with different heights on both sides. At this time, the guide plate 41 forms a slope. When the aluminum foil roll is blown onto the guide plate 41, the aluminum foil roll is affected by gravity and rolls along the guide plate 41 to the end of the guide plate 41, and slides into the bottom of the storage box through the gap between the end of the guide plate 41 and the storage box 2, and makes the innermost aluminum foil roll slide along the inclined plate 21 to the inner side of the storage box 2 until it abuts against the inner wall of the storage box 2 at the lowest end of the inclined plate 21, and the subsequent aluminum foil roll still rolls along the end of the guide plate 41 to the higher end of the inclined plate 21, and then the aluminum foil roll slides downward along the slope under the influence of gravity until it abuts against the aluminum foil roll at the end of the inclined plate 21, so that the aluminum foil roll is flat on the upper end of the inclined plate 21;

[0050] At the same time, when the aluminum foil is blown onto the guide plate 41, the guide plate 41 in the flip assembly 4 rotates along the rotation axis 42 as the center of the circle, so that the aluminum foil on the upper end surface of the guide plate 41 is spread flat on the inner side of the storage box 2 as the guide plate 41 rotates. Since the aluminum foil roll is already there before the aluminum foil enters the storage box 2, after the guide plate 41 rotates, the aluminum foil covers the upper end of the aluminum foil roll below and is spread above the aluminum foil roll. Since the diameters of the aluminum foil rolls are the same, when the aluminum foil is tangent to the aluminum foil roll below, a slope parallel to the inclined plate 21 is naturally formed, providing a smooth rolling path for the aluminum foil roll above the aluminum foil, which is conducive to the smooth movement of the subsequent aluminum foil rolls.

[0051] At the same time, when the guide plate 41 rotates 0 to 180 degrees with the rotating shaft 42 as the center, when the guide plate 41 rotates, the damping fluid in the hydraulic assembly 6 is driven to move to the side away from the crank transmission mechanism 5 through the crank transmission mechanism 5, thereby pushing the push rod 61 in the hydraulic assembly 6 to slide vertically upward, so that the storage box rotates with the cylindrical rod 23 as the center, thereby forming a height difference on both sides of the cylindrical rod 23 in the storage box 2. At this time, the aluminum foil rolls in the storage box 2 slide from the high end of the storage box 2 to the low end, so that one end of the multiple aluminum foil rolls in the storage box 2 is flush with the side wall of the storage box 2, and when the guide plate 41 rotates 180 to 360 degrees with the rotating shaft 42 as the center, the storage box 2 is deflected in the opposite direction with the cylindrical rod 23 as the center, so that the aluminum foil roll slides back to a state of being in contact with the side wall of the storage box 2, so that the end faces of the aluminum foil roll are aligned. In the process of the guide plate 41 rotating 180 to 360 degrees with the rotating shaft 42 as the center, the aluminum foil covers the aluminum foil roll below to avoid the situation where the aluminum foil roll is not smoothly slid due to premature covering. At the same time, after the aluminum foil covers the aluminum foil roll, the lower aluminum foil roll is restricted by the aluminum foil to have a smaller movement range during the shaking of the storage box 2, which can maintain the stability of the lower aluminum foil roll. When the storage box 2 shakes, the vertical displacement of the lower aluminum foil roll is restricted, and the up and down jumping or misalignment of the lower aluminum foil roll is suppressed, thereby reducing the risk of collision or displacement from an orderly position.

[0052] The guide plate 41 rotates the linked crank transmission mechanism 5 to drive the hydraulic assembly 6, which in turn pushes the push rod 61 to tilt the storage box 2 back and forth at a specific angle with the cylindrical rod 23 as the center, thereby aligning the aluminum foil rolls in the box. At the same time, gravity is used to cause the scattered aluminum foil rolls to slide toward the side wall when the storage box 2 is tilted, and then slide toward the other side wall again when it is tilted in the opposite direction, promoting the natural alignment of the end faces of the aluminum foil rolls during the sliding process, thereby helping to reduce damage to the aluminum foil rolls during the alignment process.

[0053] The aluminum foil provides isolation for the aluminum foil rolls that fall in later. This isolation helps reduce the risk of deformation or damage of the aluminum foil rolls due to local stress concentration caused by stacking.

[0054] By rotating the guide plate 41, and coordinating the crank drive mechanism 5 and the hydraulic assembly 6, the aluminum foil paper can enter the storage box 2 later than the aluminum foil roll, and the end face of the aluminum foil roll can be aligned before the aluminum foil paper covers the aluminum foil roll. The covering of the aluminum foil paper can just limit the large displacement and jump of the lower aluminum foil roll during the subsequent reset tilt.

[0055] Please refer to Figures 2 to 4 A first baffle 22 is fixed to one side of the storage box 2, and a gap is left between the guide plate 41 and the first baffle 22, and the width of the gap is greater than the length of the aluminum foil roll.

[0056] During use, when the aluminum foil falls onto the guide plate 41 before the aluminum foil roll, when the aluminum foil slides along the guide plate 41 to the end of the guide plate 41, the gap between the original end of the guide plate 41 and the storage box 2 is blocked by the aluminum foil, causing the aluminum foil roll located above the aluminum foil to stay above the aluminum foil. When the guide plate 41 rotates, the storage box 2 tilts with the cylindrical rod 23 as the center, and the aluminum foil roll and the aluminum foil are in line contact, while the aluminum foil and the guide plate 41 are in surface contact. After the storage box 2 tilts lower on the left and higher on the right, the aluminum foil roll will slide along the guide plate 41 to the gap between the guide plate 41 and the first baffle 22, and enter the storage box 2 along the gap, and then after the storage box 2 tilts in the opposite direction along the cylindrical rod 23, it will be laid flat on the top of the inclined plate 21 again. When the storage box 2 is tilted with the left side lower and the right side higher, the temporarily stored aluminum foil roll is driven by gravity and slides smoothly along the tilted surface of the aluminum foil paper due to the optimized line contact (low friction rolling characteristics) between the aluminum foil roll and the aluminum foil paper. The sliding direction of the aluminum foil roll is precisely guided to the gap between the first baffle 22 and the guide plate 41, which is beneficial to improving the smoothness of the movement of the aluminum foil roll.

[0057] Please refer to Figure 2 、 Figures 5 and 6 The crank transmission mechanism 5 includes a crank 51, a connecting rod 52 and a piston rod 53. The crank 51 is fixed to the end of the rotating shaft 42, and the outer side of the crank 51 is rotatably connected to the connecting rod 52. The end of the connecting rod 52 away from the crank 51 is rotatably connected to the piston rod 53, and the lower end of the piston rod 53 passes through the hydraulic component 6.

[0058] When the rotating shaft 42 rotates, the connecting shaft of the crank 51 and the connecting rod 52 rotates around the rotating shaft 42 as the center, thereby driving the connecting rod 52 to rotate. When the connecting shaft of the connecting rod 52 and the crank 51 rotates to the top of the crank 51, the support force of the push rod 61 on the storage box 2 is weakened, thereby utilizing the gravity of the storage box 2 to drive the side of the storage box 2 with the second baffle 71 to deflect downward around the cylindrical rod 23 as the center. When the connecting shaft of the connecting rod 52 and the crank 51 rotates to the bottom of the crank 51, the support force of the push rod 61 on the storage box 2 is weakened. , pushing the piston rod 53 downward, thereby moving the damping fluid in the hydraulic assembly 6 to the side close to the push rod 61, and pushing the push rod 61 upward, causing the storage box 2 to deflect in the opposite direction with the cylindrical rod 23 as the center, thereby moving the aluminum foil roll to fit the other inner wall of the storage box 2. Every time the crank 51 transmission structure rotates one circle, the storage box 2 will make a set of reciprocating tilting rotations, thereby forming a complete sorting cycle, ensuring that the covering action neither affects the first sliding nor provides a slope for the secondary sliding.

[0059] Please refer to Figure 6 The hydraulic assembly 6 also includes a hydraulic cylinder 62. The hydraulic cylinder 62 is provided at the lower end of the cylindrical rod 23, and one end of the hydraulic cylinder 62 is located directly below the piston rod 53. The other end of the hydraulic cylinder 62 is slidably matched with the push rod 61.

[0060] When in use, the two ends of the hydraulic cylinder 62 are oil-tightly matched with the push rod 61 and the piston rod 53 respectively. When the piston rod 53 moves downward, it pushes the damping fluid in the hydraulic cylinder 62 to move toward the side close to the push rod 61, and pushes the push rod 61 to move upward, thereby causing the side of the storage box 2 close to the push rod 61 to deflect upward, thereby deflecting the storage box 2, and the deflection of the storage box 2 is synchronized with the rotation of the guide plate 41, ensuring that the aluminum foil covering and the roll sliding are triggered in the optimal timing window.

[0061] Please refer to Figure 6 The upper end of the push rod 61 is rotatably connected to the support plate 611, and the upper end surface of the support plate 611 is in contact with the lower end surface of the storage box 2.

[0062] During use, when the push plate moves upward, the storage box 2 tilts. At this time, the storage box 2 is tilted relative to the horizontal plane, and the support plate 611 on the upper end surface of the push rod 61 rotates after the storage box 2 deflects, so as to prevent interference between the storage box 2 and the push rod 61. The support plate 611 increases the contact area between the support plate 611 and the storage box 2, which helps to further improve the stability between the push rod 61 and the storage box 2.

[0063] In some embodiments, the upper end of the push rod 61 is movably connected to the lower end surface of the storage box 2 to reduce motion interference between the storage box 2 and the push rod 61 when the storage box 2 rotates.

[0064] Please refer to Figure 4 , the guide plate 41 is inclined in the opposite direction to the inclined plate 21;

[0065] The aluminum foil roll that rolls down along the guide plate 41 to the bottom of the storage box 2 will move to the top of the inclined plate 21. Since the inclination directions of the guide plate 41 and the inclined plate 21 are opposite, the aluminum foil roll that rolls down along the guide plate 41 will fall on the higher end of the inclined plate 21. When the inclination directions of the guide plate 41 and the inclined plate 21 are the same, the aluminum foil roll will roll onto the inclined plate 21 along the lower end of the guide plate 41, and the aluminum foil roll on the inclined plate 21 will roll to the lowest point of the inclined plate 21. At this time, the aluminum foil roll that rolls down on the guide plate 41 will directly hit the aluminum foil plate accumulated on the inclined plate 21, which can easily cause damage to the aluminum foil plate.

[0066] Please refer to Figures 5 to 7 A limit assembly 7 is provided at the downwardly inclined end of the guide plate 41. The limit assembly 7 includes a second baffle 71, a telescopic rod 72 and a first support cavity 73. The telescopic rod 72 is fixed to the lower end of the second baffle 71, and a first support cavity 73 is slidingly provided below the second baffle 71.

[0067] A support rod 8 is provided at the lower end of the guide plate 41 , and second support cavities 81 are slidably provided at both ends of the support rod 8 , and the second support cavity 81 and the first support cavity 73 are connected via a hose 82 to form a communication structure.

[0068] When in use, the second baffle 71 abuts against the outer wall of the storage box 2. Under normal conditions, the second baffle 71 abuts against the end of the guide plate 41. The second baffle 71 is 3-5 cm higher than the end of the guide plate 41 to limit the aluminum foil and the aluminum foil roll from slipping out of the storage box 2. At the same time, it can also prevent the guide plate 41 from being too high and blocking the aluminum foil roll and aluminum foil from entering the top of the storage box 2. At the same time, when the guide plate 41 rotates, the lower end of the guide plate 41 squeezes the support rod 8 downward, thereby causing the support rod 8 to slide downward along the second support cavity 81. At this time, the damping fluid in the second support cavity 81 enters the first support cavity 73 through the hose 82, and pushes the second baffle 71 in the first support cavity 73 to move upward, thereby increasing the height of the second baffle 71 and strengthening the enclosure surrounded by the second baffle 71, so that the second baffle 71 is raised to the dynamic protection height in real time, actively suppressing the aluminum foil from being scattered by centrifugal force.

[0069] Please refer to Figure 5 and Figure 7 , a support spring 83 is provided between the second support cavity 81 and the support rod 8;

[0070] When in use, the support rod 8 is driven upward by the support spring 83 until it abuts against the lower end surface of the guide plate 41, which is used to reset the position of the second baffle 71. When the aluminum foil paper and the aluminum foil roll are blown onto the guide plate 41, the second baffle 71 can move downward in time, which is beneficial to reduce the interference of the second baffle 71 on the subsequent aluminum foil paper and aluminum foil roll.

[0071] Please refer to Figures 1 to 2 , a flexible layer 31 is provided on one side of the baffle plate 3 close to the storage box 2, and the flexible layer 31 is filled with cotton;

[0072] When the cut aluminum foil roll and aluminum foil paper move toward the side close to the storage box 2, they hit the flexible layer 31 and fall downward onto the guide plate 41. The cushioning of the flexible layer 31 helps to reduce damage to the aluminum foil roll and aluminum foil paper.

[0073] The aluminum profile discharging and distributing device provided by the present invention will be further described below in conjunction with the accompanying drawings and implementation methods.

[0074] After the cutting process is completed, the aluminum foil roll and aluminum foil paper are blown by the airflow onto the inclined guide plate 41. The aluminum foil roll first rolls along the guide plate 41 to the end, slides into the bottom of the storage box 2 through the gap between the guide plate 41 and the baffle of the storage box 2, the width of which is greater than the length of the aluminum foil roll, and slides along the inclined plate 21 to the inner wall of the lowest end; if the aluminum foil paper reaches the gap first, it blocks the gap through surface contact to form a temporary platform, allowing the subsequent aluminum foil roll to be retained on the upper surface of the aluminum foil paper. At this time, the drive assembly starts, driving the rotating shaft 42 to rotate 0°-180°, and the crank 51 rotates to the top dead center synchronously. The piston rod 53 is relieved of pressure, causing the support force of the push rod 61 to weaken. The storage box 2 swings down toward the baffle side due to gravity, and the aluminum foil roll in the box slides toward the baffle side to achieve the first end-face alignment.

[0075] When the rotating shaft 42 reaches a 180° phase, the guide plate 41 flips, allowing the aluminum foil to cover the aluminum foil roll, forming an isolation layer parallel to the inclined plate 21. The rotating shaft 42 continues to rotate to 360°, and the crank 51 rotates to its bottom dead center, pushing the piston rod 53 downward. The damping fluid in the hydraulic cylinder 62 pushes the push rod 61 upward, causing the baffle side of the storage box 2 to rise and tilt in the opposite direction. The aluminum foil roll slides toward the lower end of the inclined plate 21 for a second alignment with the end face. The newly dropped aluminum foil roll rolls back into place along the aluminum foil isolation layer, and the lower aluminum foil roll is suppressed by the pressure of the aluminum foil. Simultaneously, the guide plate 41 rotates and presses down the support rod 8. The damping fluid in the second support chamber 81 is pressed into the first support chamber 73 through the hose 82, pushing the second baffle 71 from the 3-5 cm reference height to the dynamic protection position, preventing the aluminum foil from deflecting.

[0076] With each rotation of crank 51, storage box 2 completes a lower hem lifting cycle, and the aluminum foil rolls are aligned end-to-end through bidirectional sliding. Flexible layer 31 cushions the initial impact of the aluminum foil rolls and sheets, while support spring 83 pushes second baffle 71 back to its reference height during the reset phase. This entire process is mechanically linked to achieve a closed-loop control of "receiving - temporary storage - covering - bidirectional sorting."

[0077] Throughout this specification, references to terms such as "one embodiment," "example," or "specific example" indicate that a specific feature, structure, material, or characteristic described in conjunction with that embodiment or example is included in at least one embodiment or example of the present disclosure. In this specification, schematic representations of these terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.

[0078] The above shows and describes the basic principles, main features and advantages of the present disclosure. Those skilled in the art should understand that the present disclosure is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present disclosure. Various changes and improvements may be made to the present disclosure without departing from the spirit and scope of the present disclosure, and such changes and improvements shall fall within the scope of the present disclosure.

Claims

1. Aluminum profile out-of-frame material distribution device, characterized in that: include: A cutting device (1) is provided with a storage box (2) at the end of the cutting device (1), and a material blocking plate (3) is provided at one end of the storage box (2) away from the cutting assembly. A flip assembly (4) is provided directly above the storage box (2), and in a normal state, the flip assembly (4) is installed in an inclined state on the inner side of the material blocking plate (3). The turning assembly (4) comprises a guide plate (41) and a rotating shaft (42), wherein a side of the guide plate (41) close to the material blocking plate (3) is higher than a side close to the cutting assembly, and one end of the rotating shaft (42) is connected to a crank transmission mechanism (5); The lower end of the crank transmission mechanism (5) is sealed with a hydraulic assembly (6); The hydraulic assembly (6) includes a push rod (61); A cylindrical rod (23) is rotatably provided in the middle of the bottom side of the storage box (2), and the two ends of the hydraulic assembly (6) are respectively located on both sides of the cylindrical rod (23). The end of the hydraulic assembly (6) away from the crank transmission mechanism (5) is sealed with a push rod (61), and the upper end of the push rod (61) is in contact with the bottom surface of the storage box (2); The bottom surface of the storage box (2) is provided with an inclined plate (21); The rotating shaft (42) rotates to drive the crank transmission mechanism (5), which drives the crank transmission mechanism (5) to squeeze the damping fluid in the hydraulic assembly (6), thereby pushing the push rod (61) up and down, causing the storage box (2) to tilt back and forth with the cylindrical rod (23) as the center of the circle; The 0°-180° rotation phase of the guide plate (41) rotation shaft (42) corresponds to the storage box (2) swinging down toward the baffle plate (3), and the 180°-360° rotation phase corresponds to the storage box (2) lifting toward the baffle plate (3).

2. The aluminum profile discharging and distributing device according to claim 1, characterized in that: A first baffle (22) is fixed to one side of the storage box (2), and a gap is left between the guide plate (41) and the first baffle (22), and the width of the gap is greater than the length of the aluminum foil roll.

3. The aluminum profile discharging and distributing device according to claim 1, characterized in that: The crank transmission mechanism (5) comprises a crank (51), a connecting rod (52) and a piston rod (53); the crank (51) is fixed to the end of the rotating shaft (42); the outer side of the crank (51) is rotatably connected to the connecting rod (52); the end of the connecting rod (52) away from the crank (51) is rotatably connected to the piston rod (53); the lower end of the piston rod (53) passes through the hydraulic assembly (6).

4. The aluminum profile discharging and distributing device according to claim 3, characterized in that: The hydraulic assembly (6) further includes a hydraulic cylinder (62). The lower end of the cylindrical rod (23) is provided with the hydraulic cylinder (62), and one end of the hydraulic cylinder (62) is located directly below the piston rod (53), and the other end of the hydraulic cylinder (62) is in sliding engagement with the push rod (61).

5. The aluminum profile discharging and distributing device according to claim 4, characterized in that: The upper end of the push rod (61) is rotatably connected to a support plate (611), and the upper end surface of the support plate (611) is in contact with the lower end surface of the storage box (2).

6. The aluminum profile discharging and distributing device according to claim 5, characterized in that: The guide plate (41) and the inclined plate (21) are inclined in opposite directions.

7. The aluminum profile discharging and distributing device according to claim 6, characterized in that: A limit assembly (7) is provided at one end of the guide plate (41) that is tilted downward, and the limit assembly (7) comprises a second baffle (71), a telescopic rod (72) and a first support cavity (73), wherein the telescopic rod (72) is fixed to the lower end of the second baffle (71), and the first support cavity (73) is slidably provided below the second baffle (71).

8. The aluminum profile discharging and distributing device according to claim 7, characterized in that: A support rod (8) is provided at the lower end of the guide plate (41), and second support cavities (81) are slidably provided at both ends of the support rod (8), and the second support cavity (81) and the first support cavity (73) form a communication structure through a hose (82).

9. The aluminum profile discharging and distributing device according to claim 8, characterized in that: A support spring (83) is provided between the second support cavity (81) and the support rod (8).

10. The aluminum profile discharging and distributing device according to claim 1, characterized in that: A flexible layer (31) is provided on one side of the baffle plate (3) close to the storage box (2), and the flexible layer (31) is filled with cotton.