Cellular bubble feed forming apparatus with a correction function

CN117533854BActive Publication Date: 2026-05-29YUANCHUANGXIANG (SUZHOU) NEW MATERIAL TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
YUANCHUANGXIANG (SUZHOU) NEW MATERIAL TECH CO LTD
Filing Date
2023-12-25
Publication Date
2026-05-29

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Abstract

The application belongs to the technical field of heat insulation film processing equipment, and particularly relates to a honeycomb bubble feeding forming equipment with a deviation rectifying function. The equipment comprises a feeding machine box, a processing machine base and a winding machine base. The lower end of the feeding machine box is installed on the upper surface of the processing machine base. The winding machine base is located on one side of the processing machine base. The inner bottom wall of the processing machine base is fixedly connected with a first mounting rod. The honeycomb bubble feeding forming equipment with the deviation rectifying function is provided with a deviation rectifying mechanism installed in the processing machine base. The heat insulation film passes through the surface of the deviation rectifying mechanism. The heat insulation film is conveyed through the sliding grooves on the surface of the deviation rectifying cylinder. When the heat insulation film deviates, the deviation rectifying cylinder is driven to rotate by the driving motor and the first transmission mechanism. The clockwise and counterclockwise rotation of the deviation rectifying cylinder is used to switch the left deviation groove and the right deviation groove. The heat insulation film is rectified and guided. Therefore, the deviation rectifying mechanism has the characteristic of being convenient for rectifying the heat insulation film.
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Description

Technical Field

[0001] This invention relates to the field of heat insulation film processing equipment technology, and in particular to a honeycomb bubble feeding and forming equipment with a correction function. Background Technology

[0002] A production equipment for honeycomb bubble reflective aluminum heat insulation film disclosed on a Chinese patent website (publication number: CN115871246A) solves the problems of uneven composite temperature often leading to poor surface flatness of the aluminum foil in traditional heat insulation film production equipment, resulting in small bubbles within the round bubbles and poor appearance, thus reducing the yield rate and producing a large number of defective products; and the technical problems that often prevent the production speed from being increased and reduce the production capacity due to temperature issues. However, the following problems still exist:

[0003] During transportation, the insulation film is prone to shifting, which can lead to incomplete seams or tearing, reducing the product's appearance and performance, and consequently lowering its quality standards. Secondly, shifting also incurs additional costs, including repairing damaged products, increasing production time and resources, and placing economic pressure on the company. Most importantly, the reduced product quality caused by shifting can lead to customer complaints, damaging the company's reputation and customer satisfaction, negatively impacting its long-term development, and making the product unsuitable for use. Summary of the Invention

[0004] To address the technical problem that existing heat insulation film production equipment is not convenient for correction, this invention proposes a honeycomb bubble feeding and forming equipment with correction function.

[0005] The present invention proposes a honeycomb bubble feeding and forming device with a correction function, comprising a feeding machine box, a processing machine base and a winding machine base. The lower end of the feeding machine box is installed on the upper surface of the processing machine base, and the winding machine base is located on one side of the processing machine base. A first mounting rod is fixedly connected to the inner bottom wall of the processing machine base, and a correction mechanism is installed on the upper surface of the first mounting rod. The correction mechanism includes a correction cylinder.

[0006] A second mounting rod is fixedly connected to the inner top wall of the processing machine base, and a tensioning mechanism is installed on the lower side wall surface of the second mounting rod, the tensioning mechanism including a tensioning roller;

[0007] A cleaning mechanism is installed on the side wall surface of the second mounting rod, which is located directly above the tensioning mechanism. The cleaning mechanism includes an electrostatic adsorption membrane.

[0008] Preferably, a first transmission mechanism is rotatably connected to one side surface of the upper end of the first mounting rod via a rotating shaft, and a mounting plate is rotatably connected to the other side surface of the upper end of the first mounting rod via a rotating shaft. The mounting plate is disc-shaped, and the output end of the first transmission mechanism is connected to the side wall surface of the mounting plate via a rotating shaft. The first transmission mechanism and the mounting plate are located on opposite sides of the mounting plate.

[0009] The above technical solution utilizes a first transmission mechanism to drive the mounting plate, thereby facilitating the deflection of the mounting plate and its surface structure.

[0010] Preferably, the side wall surface of the mounting plate is fixedly connected to one end surface of the correction cylinder, and the other end of the correction cylinder is provided with a sliding groove, a left deviation groove and a right deviation groove. The left deviation groove and the right deviation groove are located on both sides of the sliding groove. The inner side wall surface of the mounting plate is rotatably connected to a sliding rod through a bearing, and a plurality of the sliding rods are arranged in a ring array on the surface of the mounting plate with the axis of the mounting plate as the array center.

[0011] The above technical solution utilizes the groove on the inner wall of the correction cylinder, so that a part of the sliding rod is located in the groove, thereby facilitating the correction of the heat insulation film on the surface of the sliding rod by the side wall of the correction cylinder.

[0012] Preferably, a drive motor is mounted on the upper surface of the machining base via a fixing member, and the output shaft of the drive motor is connected to the input end of the first transmission mechanism.

[0013] The above technical solution utilizes a drive motor to provide power for the rotation of the correction cylinder through a first transmission mechanism, thereby facilitating the control of the correction cylinder.

[0014] Preferably, a tensioning plate is fixedly connected to the lower side wall surface of the second mounting rod. The tensioning plate is in the shape of an inverted triangle. An adjusting box is fixedly inserted into the lower side wall surface of the tensioning plate. A sleeve is rotatably sleeved on the outer surface of the tensioning roller through a bearing. A rotating shaft is fixedly connected to both ends of the tensioning roller. A sliding groove is opened on the side wall surface of the adjusting box. The inner wall of the sliding groove is slidably connected to the inner wall of the rotating shaft.

[0015] The above technical solution utilizes the surface rotational connection between the sleeve and the tension roller, which facilitates the heat insulation film to drive the sleeve to rotate.

[0016] Preferably, the lower end of the first transmission mechanism is connected to a second transmission mechanism, and a winding wheel is fixedly sleeved on the output end and the end surface of the rotating shaft of the second transmission mechanism. A cable is fixedly connected to the surface of two adjacent winding wheels. An auxiliary roller is rotatably connected to the upper side wall surface of the tensioning plate through a rotating shaft. A third transmission mechanism is fixedly connected to the middle side wall surface of the tensioning plate.

[0017] Through the above technical solution, when the drive motor is in use, the second transmission mechanism winds the cable through the winding wheel, thereby driving the tension roller to lift. The first, second and third transmission mechanisms are all composed of two transmission wheels with external transmission belts, and are installed and wrapped by the outer shell. In some transmission mechanisms, gear sets with different gear ratios can be added for transmission according to actual needs.

[0018] Preferably, the lower end of the second transmission mechanism is rotatably connected to a cleaning roller via a rotating shaft. The cleaning roller is located directly above the tensioning roller. A cleaning strip is fixedly connected to the outer surface of the cleaning roller. Multiple cleaning strips are arranged in a circular array on the outer surface of the cleaning roller with the axis of the cleaning roller as the array center. The cleaning strips are made of soft rubber. The surface of the cleaning strip is slidably connected to the upper surface of the sleeve. The upper surface of the third transmission mechanism is connected to a drive gear via a rotating shaft.

[0019] The above technical solution utilizes a cleaning strip made of soft rubber, which facilitates the cleaning strip to scrape the surface of the tension roller while the tension roller squeezes and lifts the cleaning strip.

[0020] Preferably, a cleaning box is fixedly connected to the side wall surface of the second mounting rod, and a suction groove is provided on the lower surface of the cleaning box. The interior of the suction groove is connected to the interior of the cleaning box. The distribution of the lower openings of the two suction grooves is aligned with the distribution of the two auxiliary rollers. An stretching roller and a film roller are rotatably connected to the inner wall of the cleaning box through bearings.

[0021] By using the above technical solution, the distribution of the lower opening of the suction trough is aligned with the distribution of the two auxiliary rollers, which facilitates the heat insulation film to pass under the suction trough.

[0022] Preferably, the two membrane rollers are located above the two stretching rollers, and the two ends of the electrostatic adsorption membrane are respectively wound around the surfaces of the two membrane rollers. The surface of the electrostatic adsorption membrane is slidably connected to the surface of the stretching rollers. The electrostatic adsorption membrane is trapezoidal under the action of the stretching rollers and the membrane rollers. Both ends of the membrane rollers are fixedly sleeved with transmission gears. The upper end of the third transmission mechanism is located inside the cleaning box, and the surface of the transmission gear meshes with the surface of the drive gear.

[0023] The above technical solution utilizes an extension roller to slide the electrostatic adsorption film across the upper opening of the suction trough, thereby facilitating the adsorption of impurities on the surface of the heat insulation film by the electrostatic adsorption film.

[0024] Preferably, a detection rod is fixedly connected to the upper surface of the cleaning box, and a laser displacement sensor is installed on the lower surface of the end of the detection rod.

[0025] The above technical solution utilizes signal connections between the drive motor and the laser displacement sensor and the control system of the feeder box, thereby facilitating the monitoring and driving of the drive motor and the laser displacement sensor.

[0026] The beneficial effects of this invention are as follows:

[0027] 1. By installing a correction mechanism inside the processing machine base, the heat insulation film passes over the surface of the correction mechanism and is conveyed through the sliding groove on the surface of the correction cylinder. When the heat insulation film deviates, the correction cylinder is driven to rotate by the drive motor and the first transmission mechanism. The clockwise and counterclockwise rotation of the correction cylinder switches between the left and right deviation grooves, thereby correcting and guiding the heat insulation film. This makes the correction mechanism easy to correct the deviation of the heat insulation film.

[0028] 2. By setting a second transmission mechanism to connect the tensioning mechanism and the correction mechanism, when the correction mechanism is in use, the drive motor drives the take-up wheel in the tensioning mechanism through the second transmission mechanism, which in turn causes the second transmission mechanism to lift the tensioning roller through the take-up wheel and the cable, so that the heat insulation film is relaxed, which makes it easier for the correction mechanism to perform correction operation on the heat insulation film.

[0029] 3. By installing a cleaning mechanism above the tensioning mechanism, the cleaning roller in the cleaning mechanism scrapes and cleans the surface of the sleeve through the cleaning strip. At the same time, the cleaning roller drives the membrane roller through the third transmission mechanism, so that the electrostatic adsorption membrane slides over the surface of the heat insulation film and adsorbs the impurities on the surface of the heat insulation film, thereby cleaning the heat insulation film and preventing the impurities on the surface of the heat insulation film from affecting the use of the correction mechanism. Attached Figure Description

[0030] Figure 1 This is a schematic diagram of a honeycomb bubble feeding and forming device with a correction function proposed in this invention;

[0031] Figure 2 This is a perspective view of the processing base structure of a honeycomb bubble feeding and forming equipment with correction function proposed in this invention;

[0032] Figure 3 This is a three-dimensional view of the cleaning box structure of a honeycomb bubble feeding and forming device with correction function proposed in this invention;

[0033] Figure 4 This is a perspective view of the sliding rod structure of a honeycomb bubble feeding and forming device with a correction function proposed in this invention.

[0034] Figure 5 This is a three-dimensional view of the correction cylinder structure of a honeycomb bubble feeding and forming device with correction function proposed in this invention;

[0035] Figure 6 This is a three-dimensional view of the tension plate structure of a honeycomb bubble feeding and forming device with correction function proposed in this invention;

[0036] Figure 7 This is a cross-sectional view of the adjusting box structure of a honeycomb bubble feeding and forming device with correction function proposed in this invention.

[0037] Figure 8 This is a cross-sectional view of the cleaning box structure of a honeycomb bubble feeding and forming device with a correction function proposed in this invention.

[0038] In the diagram: 1. Feeding machine housing; 2. Processing machine base; 3. Rewinding machine base; 4. First mounting rod; 5. Correcting cylinder; 51. First transmission mechanism; 52. Mounting plate; 53. Sliding groove; 54. Left deviation groove; 55. Right deviation groove; 56. Sliding rod; 57. Drive motor; 6. Second mounting rod; 7. Tensioning roller; 71. Tensioning plate; 72. Adjusting box; 73. Sleeve; 74. Rotating shaft; 75. Sliding groove; 76. Second transmission mechanism; 77. Rewinding wheel; 78. Cable; 79. Auxiliary roller; 710. Third transmission mechanism; 8. Electrostatic adsorption film; 81. Cleaning roller; 82. Cleaning strip; 83. Drive gear; 84. Cleaning box; 85. Stretch roller; 86. Film roller; 87. Transmission gear; 9. Laser displacement sensor. Detailed Implementation

[0039] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.

[0040] Reference Figures 1-8 A honeycomb bubble feeding and forming device with a correction function includes a feeding machine box 1, a processing machine base 2 and a winding machine base 3. The lower end of the feeding machine box 1 is installed on the upper surface of the processing machine base 2, and the winding machine base 3 is located on one side of the processing machine base 2. A first mounting rod 4 is fixedly connected to the inner bottom wall of the processing machine base 2. A correction mechanism is installed on the upper surface of the first mounting rod 4. The correction mechanism includes a correction cylinder 5.

[0041] A second mounting rod 6 is fixedly connected to the inner top wall of the processing machine base 2. A tensioning mechanism is installed on the lower side wall surface of the second mounting rod 6. The tensioning mechanism includes a tensioning roller 7.

[0042] A cleaning mechanism is installed on the side wall surface of the second mounting rod 6. The cleaning mechanism is located directly above the tensioning mechanism and includes an electrostatic adsorption film 8.

[0043] To correct the deviation of the heat insulation film, a first transmission mechanism 51 is rotatably connected to one side of the upper end of the first mounting rod 4 via a rotating shaft, and a mounting plate 52 is rotatably connected to the other side of the upper end of the first mounting rod 4 via a rotating shaft. The mounting plate 52 is disc-shaped. The output end of the first transmission mechanism 51 is connected to the side wall surface of the mounting plate 52 via a rotating shaft. The first transmission mechanism 51 and the mounting plate 52 are located on opposite sides of the mounting plate 52. The first transmission mechanism 51 drives the mounting plate 52, thereby facilitating the deflection of the mounting plate 52 and its surface structure. The side wall surface of the mounting plate 52 is fixedly connected to one end of the correction cylinder 5. The other end of the correction cylinder 5 is provided with a sliding groove 53, a left deflection groove 54, and a right deflection groove 55. 54 and right offset groove 55 are located on both sides of sliding groove 53. The inner wall surface of mounting plate 52 is rotatably connected to sliding rod 56 through bearing. Multiple sliding rods 56 are arranged in a ring array on the surface of mounting plate 52 with the axis of mounting plate 52 as the array center. The inner wall of the correction cylinder 5 is provided with a groove, so that part of the sliding rod 56 is located in the groove, thereby facilitating the correction of the heat insulation film on the surface of the sliding rod 56 by the side wall of the correction cylinder 5. The upper surface of the processing base 2 is equipped with a drive motor 57 through a fixing member. The output shaft of the drive motor 57 is connected to the input end of the first transmission mechanism 51. The drive motor 57 provides power for the rotation of the correction cylinder 5 through the first transmission mechanism 51, thereby facilitating the control of the correction cylinder 5.

[0044] By installing a correction mechanism inside the processing machine base 2, the heat insulation film passes over the surface of the correction mechanism and is conveyed through the sliding groove 53 on the surface of the correction cylinder 5. When the heat insulation film deviates, the correction cylinder 5 is driven to rotate by the drive motor 57 and the first transmission mechanism 51. The clockwise and counterclockwise rotation of the correction cylinder 5 switches between the left deviation groove 54 and the right deviation groove 55, thereby correcting and guiding the heat insulation film. This makes the correction mechanism easy to correct the heat insulation film.

[0045] To tension the heat insulation film, a tensioning plate 71 is fixedly connected to the lower side wall of the second mounting rod 6. The tensioning plate 71 is inverted triangular in shape, and an adjusting box 72 is fixedly inserted into the lower side wall of the tensioning plate 71. A sleeve 73 is rotatably sleeved on the outer surface of the tensioning roller 7 via a bearing. Rotating shafts 74 are fixedly connected to both ends of the tensioning roller 7. A groove 75 is formed on the side wall of the adjusting box 72, and the inner wall of the groove 75 is slidably connected to the inner wall of the rotating shaft 74. The sleeve 73 is rotatably connected to the surface of the tensioning roller 7, thereby facilitating the rotation of the sleeve 73 by the heat insulation film. A second transmission mechanism 76 is connected to the lower end of the first transmission mechanism 51. Both the output end of mechanism 76 and the end surface of rotating shaft 74 are fixedly fitted with take-up wheels 77. The surfaces of two adjacent take-up wheels 77 are fixedly connected with cables 78. The upper side wall surface of tension plate 71 is rotatably connected with auxiliary rollers 79 via a rotating shaft. The middle side wall surface of tension plate 71 is fixedly connected with a third transmission mechanism 710. When in use, the second transmission mechanism 76 winds the cables 78 through the take-up wheels 77, thereby driving the tension rollers 7 to lift. The first transmission mechanism 51, the second transmission mechanism 76, and the third transmission mechanism 710 are all composed of two transmission wheels with external transmission belts, and are installed and wrapped by a housing.

[0046] The tensioning mechanism and the correction mechanism are connected by a second transmission mechanism 76. When the correction mechanism is in use, the drive motor 57 drives the take-up roller 77 in the tensioning mechanism through the second transmission mechanism 76. This causes the second transmission mechanism 76 to lift the tensioning roller 7 through the take-up roller 77 and the cable 78, which loosens the heat insulation film and makes it easier for the correction mechanism to perform correction operations on the heat insulation film.

[0047] To clean the heat insulation film, a cleaning roller 81 is rotatably connected to the lower end of the second transmission mechanism 76 via a rotating shaft. The cleaning roller 81 is located directly above the tension roller 7. A cleaning strip 82 is fixedly connected to the outer surface of the cleaning roller 81. Multiple cleaning strips 82 are arranged in a circular array around the axis of the cleaning roller 81 on the outer surface of the cleaning roller 81. The cleaning strips 82 are made of soft rubber, and their surfaces are slidably connected to the upper surface of the sleeve 73. A drive gear 83 is connected to the upper surface of the third transmission mechanism 710 via a rotating shaft. The cleaning strips 82 are made of soft rubber, which facilitates scraping the surface of the tension roller 7 while simultaneously allowing the tension roller 7 to squeeze and lift the cleaning strips 82. A cleaning box 84 is fixedly connected to the side wall surface of the second mounting rod 6. A suction groove is provided on the lower surface of the cleaning box 84, and the interior of the suction groove is connected to the interior of the cleaning box 84. The two suction grooves are connected to each other. The distribution of the end openings is aligned with the distribution of the two auxiliary rollers 79. The inner wall of the cleaning box 84 is rotatably connected to the stretching roller 85 and the film roller 86 via bearings. The distribution of the lower end opening of the suction groove is aligned with the distribution of the two auxiliary rollers 79, so that the heat insulation film can pass under the suction groove. The two film rollers 86 are located above the two stretching rollers 85. The two ends of the electrostatic adsorption film 8 are respectively wound around the surface of the two film rollers 86. The surface of the electrostatic adsorption film 8 is slidably connected to the surface of the stretching roller 85. The electrostatic adsorption film 8 is trapezoidal in shape under the action of the stretching roller 85 and the film roller 86. The two ends of the film roller 86 are fixedly sleeved with transmission gears 87. The upper end of the third transmission mechanism 710 is located inside the cleaning box 84. The surface of the transmission gear 87 meshes with the surface of the drive gear 83. The stretching roller 85 is used to slide the electrostatic adsorption film 8 through the upper end opening of the suction groove, so that the electrostatic adsorption film 8 can adsorb impurities on the surface of the heat insulation film.

[0048] By installing a cleaning mechanism above the tensioning mechanism, the cleaning roller 81 in the cleaning mechanism scrapes and cleans the surface of the sleeve 73 with the cleaning strip 82. At the same time, the cleaning roller 81 drives the membrane roller 86 through the third transmission mechanism 710, so that the electrostatic adsorption membrane 8 slides over the surface of the heat insulation film and adsorbs the impurities on the surface of the heat insulation film, thereby cleaning the heat insulation film and preventing the impurities on the surface of the heat insulation film from affecting the use of the correction mechanism.

[0049] Working principle:

[0050] In use, the heat insulation film is produced by the feeding machine box 1 and then enters the processing machine base 2. The tensioning mechanism in the processing machine base 2 tensions the heat insulation film. The tension cable 78 is in the maximum tension state. The tensioning roller 7 falls by its own gravity and tensions the heat insulation film. At the same time, the correction cylinder 5 transports the heat insulation film through the sliding groove 53. The winding machine base 3 winds up the end of the heat insulation film and provides power for the operation of the heat insulation film.

[0051] When the laser displacement sensor 9 detects that the heat insulation film has shifted, the drive motor 57 drives the correction cylinder 5 to rotate through the first transmission mechanism 51. The correction cylinder 5 switches the sliding groove 53 to the left deviation groove 54 or the right deviation groove 55 to transport the heat insulation film and change the guidance of the heat insulation film.

[0052] At the same time, the drive motor 57 drives the winding wheel 77 in the adjustment box 72 to wind the cable 78 through the second transmission mechanism 76, so that the tension roller 7 is lifted upward under the action of the cable 78 and the rotating shaft 74, the heat insulation film on the surface of the tension roller 7 is relaxed, and the upper end of the tension roller 7 squeezes the cleaning strip 82 on the surface of the cleaning roller 81 through the sleeve 73.

[0053] When the laser displacement sensor 9 detects that the heat insulation film is flat, the tensioning mechanism and the correction mechanism are reset. At the same time, the heat insulation film drives the cleaning roller 81 to rotate through the sleeve 73. Meanwhile, the third transmission mechanism 710 drives the two film rollers 86 to rotate through the drive gear 83 and the transmission gear 87. The two film rollers 86 respectively wind up and unwind the electrostatic adsorption film 8. The electrostatic adsorption film 8 slides over the upper surface of the heat insulation film and adsorbs impurities on the surface of the heat insulation film.

[0054] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

Claims

1. A honeycomb bubble feeding and forming device with a correction function, comprising a feeding machine housing (1), a processing machine base (2), and a winding machine base (3), wherein the lower end of the feeding machine housing (1) is mounted on the upper surface of the processing machine base (2), and the winding machine base (3) is located on one side of the processing machine base (2), characterized in that: The inner bottom wall of the processing machine base (2) is fixedly connected to a first mounting rod (4), and the upper surface of the first mounting rod (4) is equipped with a correction mechanism, which includes a correction cylinder (5). The inner top wall of the processing machine base (2) is fixedly connected to a second mounting rod (6), and a tensioning mechanism is installed on the lower side wall surface of the second mounting rod (6), the tensioning mechanism including a tensioning roller (7). A cleaning mechanism is installed on the side wall surface of the second mounting rod (6), the cleaning mechanism being located directly above the tensioning mechanism, and the cleaning mechanism including an electrostatic adsorption membrane (8). The upper end of the first mounting rod (4) is rotatably connected to a first transmission mechanism (51) via a rotating shaft on one side surface. The upper end of the first mounting rod (4) is rotatably connected to a mounting plate (52) via a rotating shaft on the other side surface. The mounting plate (52) is disc-shaped. The output end of the first transmission mechanism (51) is connected to the side wall surface of the mounting plate (52) via a rotating shaft. The first transmission mechanism (51) and the mounting plate (52) are located on both sides of the mounting plate (52). The side wall surface of the mounting plate (52) is fixedly connected to one end surface of the correction cylinder (5). The other end of the correction cylinder (5) is provided with a sliding groove (53), a left deviation groove (54) and a right deviation groove (55). The left deviation groove (54) and the right deviation groove (55) are located on both sides of the sliding groove (53). The inner side wall surface of the mounting plate (52) is rotatably connected to a sliding rod (56) through a bearing. Multiple sliding rods (56) are arranged in a ring array on the surface of the mounting plate (52) with the axis of the mounting plate (52) as the array center. The upper surface of the machining base (2) is fitted with a drive motor (57) by a fastener, and the output shaft of the drive motor (57) is connected to the input end of the first transmission mechanism (51). A tensioning plate (71) is fixedly connected to the lower side wall surface of the second mounting rod (6). The tensioning plate (71) is in the shape of an inverted triangle. An adjusting box (72) is fixedly inserted into the lower side wall surface of the tensioning plate (71). A sleeve (73) is rotatably sleeved on the outer surface of the tensioning roller (7) through a bearing. A rotating shaft (74) is fixedly connected to both ends of the tensioning roller (7). A sliding groove (75) is opened on the side wall surface of the adjusting box (72). The inner wall of the sliding groove (75) is slidably connected to the inner wall of the rotating shaft (74). The lower end of the first transmission mechanism (51) is connected to the second transmission mechanism (76). The output end of the second transmission mechanism (76) and the end surface of the rotating shaft (74) are both fixedly sleeved with take-up wheels (77). The surfaces of two adjacent take-up wheels (77) are fixedly connected with cables (78). The upper side wall surface of the tension plate (71) is rotatably connected with an auxiliary roller (79) through a rotating shaft. The middle side wall surface of the tension plate (71) is fixedly connected with a third transmission mechanism (710). The lower end of the second transmission mechanism (76) is rotatably connected to a cleaning roller (81) via a rotating shaft. The cleaning roller (81) is located directly above the tension roller (7). A cleaning strip (82) is fixedly connected to the outer surface of the cleaning roller (81). Multiple cleaning strips (82) are arranged in a ring array on the outer surface of the cleaning roller (81) with the axis of the cleaning roller (81) as the array center. The cleaning strips (82) are made of soft rubber. The surface of the cleaning strips (82) is slidably connected to the upper surface of the sleeve (73). The upper surface of the third transmission mechanism (710) is connected to a drive gear (83) via a rotating shaft. A cleaning box (84) is fixedly connected to the side wall surface of the second mounting rod (6). A suction groove is provided on the lower surface of the cleaning box (84). The interior of the suction groove is connected to the interior of the cleaning box (84). The distribution of the lower openings of the two suction grooves is aligned with the distribution of the two auxiliary rollers (79). An extension roller (85) and a film roller (86) are rotatably connected to the inner wall of the cleaning box (84) through a bearing. The two membrane rollers (86) are located above the two stretching rollers (85). The two ends of the electrostatic adsorption membrane (8) are respectively wound around the surfaces of the two membrane rollers (86). The surface of the electrostatic adsorption membrane (8) is slidably connected to the surface of the stretching roller (85). The electrostatic adsorption membrane (8) is trapezoidal under the action of the stretching roller (85) and the membrane roller (86). Both ends of the membrane roller (86) are fixedly sleeved with transmission gears (87). The upper end of the third transmission mechanism (710) is located inside the cleaning box (84). The surface of the transmission gear (87) meshes with the surface of the drive gear (83).

2. The honeycomb bubble feeding and forming equipment with correction function according to claim 1, characterized in that: A detection rod is fixedly connected to the upper surface of the cleaning box (84), and a laser displacement sensor (9) is installed on the lower surface of the end of the detection rod.