A processing method and device for window lining paper
By combining the rotating shell and the color-developing mechanism, the color-changing block of the protractor is driven by high-temperature oxygen to display the accurate angle, which solves the problems of visual fatigue and low detection efficiency in the prior art, and realizes efficient detection of the molding of the inner lining paper.
Patent Information
- Application Number
- CN202411409116.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-10
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2044-10-10
AI Technical Summary
The existing smoke-lined paper molding detection device can easily lead to visual fatigue of the inspector, low detection efficiency and easy damage to the device, and poor practicality.
The coordinated design of the rotating shell, driving mechanism, sensor, protractor, transmission mechanism and color development mechanism is adopted to drive the protractor color change block to display the accurate angle, and combine it with the detection mechanism to detect the integrity of the aluminum foil liner paper coating.
It reduces visual fatigue of the inspector, improves detection efficiency and practicality of the device, can accurately display the angle value and detect the integrity of the coating at the crease of the aluminum foil liner paper.
Smart Images

Figure CN119394926B_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of cigarette lining paper detection, and in particular relates to a processing method and equipment for window lining paper. Background Art
[0002] Cigarette lining paper refers to the packaging paper lining the inner layer of cigarette boxes. It is generally made of aluminum foil composite paper or vacuum aluminum-coated paper. It plays a certain role in moisture-proof isolation, aroma preservation and moisture retention for cigarettes. The lining paper needs to go through multiple steps during the processing. Among them, the molding degree detection of the lining paper is also an important process. The molding degree of the paper is tested to ensure that it can achieve the expected shape and shaping effect during the packaging process.
[0003] In the prior art, a Chinese patent discloses a device for measuring the degree of forming of cigarette liner paper (publication number: CN206311484U). Its main structure includes a workbench with a horizontal surface, a slit for the cigarette liner paper to pass through and penetrate the horizontal surface on the workbench; a vertical surface at a 90° angle to the horizontal surface, the intersection of the vertical surface and the horizontal surface being perpendicular to the slit; a protractor embedded in the vertical surface, the 90° scale of the protractor being aligned with the slit; and a pressing block provided on the horizontal surface for pressing the cigarette liner paper.
[0004] In actual use, the above patent uses different colors to mark the 10-degree grid on the protractor surface, which makes it easier for inspectors to read the angle value more intuitively and quickly. At the same time, LED lights are embedded in the vertical surface to enable inspectors to see the scale of the protractor accurately and clearly. However, there are still corresponding disadvantages in actual use: there are too many different colors on the protractor surface, and long-term observation can easily cause visual fatigue and mental deterioration of the inspector, causing harm, thereby reducing the inspector's detection efficiency and effectiveness. In addition, the LED lights are prone to damage during long-term use, and require time-consuming and labor-intensive replacement, which reduces the practicality of the device. Summary of the Invention
[0005] Technical problems solved
[0006] In order to solve the problems raised in the above-mentioned background technology, the present invention provides a processing method and equipment for window lining paper, which has the advantages of convenient operation, not easy to cause visual fatigue, and improved detection effect and efficiency. Through the coordinated design of structures such as the rotating shell, driving mechanism, sensor, protractor, transmission mechanism, base, and color display mechanism, the single numerical scale at the position of the color-changing block on the protractor can change color, highlighting the accurate angle value, not easy to cause visual fatigue to the inspector, and can effectively improve the inspection effect and efficiency of the inspector. It is not easy to be damaged, thereby improving the practicality of the device.
[0007] Technical Solution
[0008] To achieve the above-mentioned object, the present invention provides the following technical solution: a processing device for window lining paper, comprising a base, a rotatable rotating shell is provided in the middle of the upper surface of the base, a placement channel for placing aluminum foil lining paper is opened on the upper surface of the rotating shell, a driving mechanism for driving the rotating shell to rotate is provided on the right side of the upper surface of the base, a sensor is provided on the left side of the upper surface of the base, a protractor is rotatably mounted on the lower part of the left side wall of the rotating shell via a rotating shaft, a transmission mechanism for driving the protractor to rotate is provided on the front part of the rotating shell and the upper surface of the base, and a color display mechanism for changing the color of the numerical scale of the protractor is provided in the inner cavity of the rotating shell;
[0009] The color development mechanism includes a mounting shell fixedly mounted on the top of the inner cavity of the rotating shell, a liquid storage chamber for storing hydrogen peroxide solution is opened on the upper right side of the mounting shell, a reaction chamber is opened on the lower right side of the mounting shell, a reaction shell is movably mounted in the inner cavity of the reaction chamber through a bearing, a partition for placing manganese dioxide crystals is provided in the inner cavity of the reaction shell, an air storage chamber for storing high-temperature air is opened at the front part of the mounting shell, a conveying mechanism is provided on the front and rear sides of the reaction chamber, two electrically controlled valves connected to the inner cavity of the air storage chamber are distributed on the front and rear sides of the left side of the bottom surface of the mounting shell, a heat conduction block is provided below the electrically controlled valve, the inner cavity of the electrically controlled valve is connected to the inner cavity of the heat conduction block through a connecting piece, a heat transfer pipe is provided on the lower left side of the heat conduction block, a color changing block is fixedly mounted on the numerical scale of the protractor, the color changing block is a thermochromic organic material, and a detection mechanism for crease damage of the aluminum foil layer is provided on the right side of the heat conduction block;
[0010] The bottom surface of the inner cavity of the heat conductive block is provided with a docking hole adapted to the heat transfer tube, a sealing member is provided in the inner cavity of the docking hole, the left end of the heat transfer tube is movably connected to the color changing block, a pushing member is provided in the inner cavity of the gas storage cavity, the sensor is electrically connected to the electric control valve, and discharge holes are provided on the inner cavity and the partition of the reaction shell.
[0011] In the above technical solution, preferably, the transmission mechanism includes support shafts symmetrically fixedly installed on the front and rear sides of the middle part of the base, a turntable fixedly installed on the right end of the protractor shaft, a connecting rod movably installed on the left side of the front side wall of the rotating shell through a bearing, a first docking wheel fixedly installed at the rear end of the connecting rod, a second docking wheel rotatably installed on the lower part of the front side wall of the rotating shell through a rotating shaft, two transmission pulleys coaxially connected to the front end of the connecting rod and the front end of the second docking wheel, and a transmission belt movably sleeved on the two transmission pulleys; wherein, the outer ring wall of the first docking wheel is movably connected to the outer ring of the right side wall of the turntable, the outer ring wall of the second docking wheel is movably connected to the outer surface of the support shaft, and the diameters of the first docking wheel, the turntable, the second docking wheel and the support shaft are the same.
[0012] In the above technical solution, preferably, the driving mechanism includes a mounting groove provided on the right side of the upper surface of the base, a hydraulic cylinder fixed on the right side of the inner cavity of the mounting groove, a pin head fixedly installed on the left output shaft end of the hydraulic cylinder, a support rod hinged to the lower left part of the inner cavity of the mounting groove, and a slider hinged to the upper part of the support rod; wherein, the left side wall of the slider is connected to the right side wall of the rotating shell for up and down sliding connection, a vertical groove is provided on the support rod, a pin rod is fixedly installed in the inner cavity of the pin head, and the pin rod is movably connected to the inner cavity of the vertical groove.
[0013] In the above technical solution, preferably, the conveying mechanism includes two feed channels symmetrically opened on the front and back sides of the inner cavity of the reaction chamber, a spiral rod is provided in the inner cavity of the feed channel, the inner cavity top surface of the feed channel is connected with the inner cavity bottom of the liquid storage chamber, one end of the feed channel is connected with an assembly chamber, a crankshaft is movably installed in the inner cavity of the assembly chamber through a bearing, a connecting channel connected to the lower part of the inner cavity of the gas storage chamber is opened in the middle of the left side of the inner cavity of the reaction chamber, the inner cavities of the two assembly cavities are respectively connected with the inner cavity middle of the connecting channel through docking channels, a connecting shell is movably sleeved on the crankshaft, and the left side wall of the connecting shell is fixedly installed laterally There is a sealing push rod; wherein, the left side of the sealing push rod extends into the inner cavity of the docking channel, a one-way air inlet valve for introducing high-temperature air is provided on the right side of the inner cavity of the connecting channel, and a one-way air outlet valve for exporting high-temperature air is provided on the left side of the inner cavity of the connecting channel. One end of the spiral rod is fixedly connected to one end of the crankshaft, and the other end of the spiral rod is fixedly connected to the inner cavity of the reaction shell through a bracket. One end of the crankshaft passes through the outside of the inner cavity of the assembly cavity, and a roller is fixedly installed on one end of the crankshaft. Two guide rails are symmetrically fixedly installed on the front and rear sides of the upper surface of the base, and the bottom of the roller is movably connected to the upper surface of the guide rail.
[0014] In the above technical solution, preferably, the pushing member includes a slide plate that moves up and down in the air storage chamber and two compression springs symmetrically and vertically arranged on the front and rear sides of the upper surface of the slide plate; the upper and lower ends of the compression spring are respectively fixedly connected to the upper surface of the slide plate and the top surface of the inner cavity of the air storage chamber.
[0015] In the above technical solution, preferably, the connecting part includes an external connecting tube connected to the bottom of the electric control valve, a vertical rod vertically fixed in the inner cavity of the external connecting tube by a support rod, a ventilation groove is provided at the bottom end of the vertical rod, and a ventilation hole connected to the ventilation groove is provided at the lower part of the outer surface of the vertical rod, and an internal connecting tube is sealed and slidably connected in the inner cavity of the external connecting tube; wherein, the inner cavity of the internal connecting tube is in contact with the outer surface of the vertical rod, the bottom end of the internal connecting tube is fixedly connected to the upper surface of the heat-conducting block, and the inner cavity of the internal connecting tube is connected to the inner cavity of the heat-conducting block, and the outer surface of the external connecting tube is movably sleeved with a tension spring, and the upper and lower ends of the tension spring are respectively fixedly connected to the bottom surface of the mounting shell and the upper surface of the heat-conducting block.
[0016] In the above technical solution, preferably, the detection mechanism includes a groove provided on the right side wall of the heat conductive block, a water storage chamber provided in the middle of the heat conductive block, a pressure chamber provided in the middle of the heat conductive block and located below the water storage chamber, a sealing block that moves laterally in the inner cavity of the pressure chamber, a branch pipe that is laterally fixedly installed on the right side wall of the sealing block, a spray pipe that is provided in the inner cavity of the groove and communicates with the branch pipe, a rotating roller that is rotatably installed on the upper part of the inner cavity of the groove via a rotating shaft, liquid inlet holes that are circumferentially equidistantly provided on the left side of the outer surface of the branch pipe, and a linkage assembly provided on the rotating roller and the spray pipe;
[0017] Among them, the inner cavity of the water storage chamber is connected with the lower part of the inner cavity of the reaction chamber through a hose, and a liquid outlet hole connected with the pressure chamber is opened on the right side of the bottom surface of the inner cavity of the water storage chamber. A one-way liquid outlet valve for introducing water into the pressure chamber is provided in the inner cavity of the liquid outlet hole, and a group of one-way nozzles are connected to the right side wall of the spray pipe.
[0018] In the above technical solution, preferably, the linkage assembly includes two abutment rods symmetrically and vertically fixedly installed on the front and rear sides of the inner cavity of the rotating shell, two abutment wheels fixedly sleeved on the front and rear rotating shafts of the rotating roller and movably connected to the left side wall of the abutment rod, a first rotating wheel fixedly sleeved on the rotating shaft of the rotating roller, a second rotating wheel rotatably installed on the front and rear sides of the inner cavity of the groove through the rotating shaft, and a connecting pin eccentrically fixedly installed on the side wall of the second rotating wheel, which is used to connect the connecting pin to the spray pipe; wherein, the two ends of the rotating rod are respectively hinged to the connecting pin and the spray pipe.
[0019] In the above technical solution, preferably, the sealing member includes a sealing block movably connected to the inner cavity of the docking hole and a spring seat arranged above the sealing block; wherein, the upper and lower ends of the spring seat are fixedly connected to the upper surface of the sealing block and the top surface of the inner cavity of the heat conductive block respectively, the top end of the heat transfer tube is movably connected to the bottom surface of the sealing block, a through hole is opened circumferentially on the upper part of the heat transfer tube, and the right end of the heat transfer tube is connected to the jet shell.
[0020] A method for using a window lining paper processing device includes the following steps:
[0021] S1: In an initial state, the rotating housing is in a horizontal state, and the aluminum foil lining paper is passed through the placement channel with the aluminum foil side facing upward, and the left bottom surface of the aluminum foil lining paper is affixed to the left upper surface of the base to cover the sensor;
[0022] S2: The driving mechanism drives the rotating shell to flip to a vertical state so as to fold the aluminum foil lining paper. During the flipping process, the conveying mechanism can convey the hydrogen peroxide solution stored in the liquid storage chamber to the reaction shell to mix with the manganese dioxide crystals placed in the inner cavity barrier of the reaction shell to react, thereby quickly generating high-temperature oxygen and water in the reaction chamber. When the conveying mechanism is in operation, the generated high-temperature oxygen can be conveyed to the gas storage chamber for storage.
[0023] S3: After the aluminum foil liner paper is turned over, wait for eight seconds, and then slowly drive the rotating shell again through the driving mechanism to drive the aluminum foil liner paper to turn back. At the same time, when the rotating shell turns over, the protractor is driven to rotate through the transmission mechanism. When the aluminum foil liner paper is turned back, the part that is in contact with the surface of the base will be tilted up. When the sensor detects that the bottom surface of the aluminum foil liner paper is separated from the upper surface of the base, the sensor sends an electrical signal to control the driving mechanism to stop operating, so that the rotating shell drives the aluminum foil liner paper to stop turning;
[0024] S4: The sensor controls the electric control valve to open, and the pusher moves downward to squeeze the high-temperature oxygen in the gas storage chamber, which can drive the heat conductive block to move downward through the connecting member, so that the heat transfer tube can enter the inner cavity of the heat conductive block through the docking hole. When the heat transfer tube is connected to the inner cavity of the heat conductive block, the high-temperature oxygen in the gas storage chamber enters the heat transfer tube from the inner cavity of the heat conductive block through the connecting member. The heat of the high-temperature oxygen is transferred to the color-changing block through the heat transfer tube, which can cause the single numerical scale on the protractor that contacts the color-changing block to change color, highlighting the accurate angle value;
[0025] S5: At the same time, when the heat conductive block moves downward, it can drive the detection mechanism to operate, and the detection mechanism can drive the aluminum foil lining paper to move upward, so that the fold of the aluminum foil lining paper enters the placement channel. At the same time, the detection mechanism can spray water produced by the mixed reaction of hydrogen peroxide solution and manganese dioxide crystals on the aluminum foil coating surface of the aluminum foil lining paper. After the inspector takes out the aluminum foil lining paper, he can observe whether there are water stains on the back of the aluminum foil lining paper, thereby facilitating the inspection of the integrity of the aluminum foil coating at the fold of the aluminum foil lining paper after it is folded.
[0026] Beneficial effects
[0027] Compared with the prior art, the present invention has the following beneficial effects:
[0028] 1. The present invention adopts the coordinated design of the rotating shell, driving mechanism, sensor, protractor, transmission mechanism, base, color development mechanism and other structures. When the rotating shell drives the aluminum foil lining paper to flip vertically, the hydrogen peroxide solution stored in the liquid storage chamber can be transported to the reaction shell through the conveying mechanism to mix with the manganese dioxide crystals placed in the inner cavity compartment of the reaction shell to react, quickly generating high-temperature oxygen and water. When the rotating shell drives the aluminum foil lining paper to flip back, the sensor detects that the bottom surface of the aluminum foil lining paper is separated from the upper surface of the base, the rotating shell drives the aluminum foil lining paper to stop flipping, and at the same time the sensor controls the electric control valve to open, pushing the member downward. The movement squeezes the high-temperature oxygen in the gas storage chamber, which can drive the heat-conducting block to move downward through the connecting piece, and can enable the heat transfer tube to enter the inner cavity of the heat-conducting block through the docking hole. When the heat transfer tube is connected with the inner cavity of the heat-conducting block, the high-temperature oxygen in the gas storage chamber enters the heat transfer tube from the inner cavity of the heat-conducting block through the connecting piece. The heat of the high-temperature oxygen is transferred to the color-changing block through the heat transfer tube, which can cause the single numerical scale of the color-changing block position on the protractor to change color, highlighting the accurate angle value, and is not easy to cause visual fatigue to the inspector. It can effectively improve the inspection effect and efficiency of the inspector, and is not easy to be damaged, thereby improving the practicality of the device.
[0029] 2. The present invention is designed with the cooperation of structures such as the heat conductive block and the detection mechanism. When the heat conductive block moves downward, it can drive the detection mechanism to operate, and the detection mechanism can drive the aluminum foil lining paper to move upward, so that the fold of the aluminum foil lining paper enters the placement channel. At the same time, the detection mechanism can spray water produced by the mixed reaction of hydrogen peroxide solution and manganese dioxide crystals onto the aluminum foil coating surface of the aluminum foil lining paper. After the inspector takes out the aluminum foil lining paper, he can observe whether there are water stains on the back of the aluminum foil lining paper, thereby facilitating the inspection of the integrity of the aluminum foil coating at the fold after the aluminum foil lining paper is folded, avoiding the problem that traditional lining paper processing equipment is inconvenient to inspect the integrity of the coating at the fold after the aluminum foil lining paper is turned over. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] Figure 1 It is a schematic diagram of the structure of the present invention;
[0031] Figure 2 It is a right side structural schematic diagram of the present invention;
[0032] Figure 3 This is a schematic diagram of the initial state of the present invention;
[0033] Figure 4 It is a front cross-sectional structural diagram of the rotating shell of the present invention;
[0034] Figure 5 It is a structural schematic diagram of the transmission mechanism of the present invention;
[0035] Figure 6 Schematic diagram of the structure of the color development mechanism of the present invention;
[0036] Figure 7 This is a schematic diagram of the right side cross-sectional structure of the installation shell, liquid storage chamber, and reaction chamber of the present invention;
[0037] Figure 8 This is a schematic diagram of the top view and cross-section of the mounting shell, gas storage chamber, and reaction chamber of the present invention;
[0038] Figure 9 It is a schematic diagram of a partial top view and cross-section of the spiral rod, reaction shell and partition of the present invention;
[0039] Figure 10 This is a schematic diagram of the left side cross-sectional structure of the mounting shell and the air storage chamber of the present invention;
[0040] Figure 11 It is a partial cross-sectional structural schematic diagram of the connecting piece of the present invention;
[0041] Figure 12 It is a partial front cross-sectional structural diagram of the heat conducting block, the sealing member and the detection mechanism of the present invention;
[0042] Figure 13 It is a structural schematic diagram of the rotating rod, linkage assembly, branch pipe, sealing block and spray pipe of the present invention.
[0043] In the figure: 1. base; 2. rotating shell; 3. placement channel; 4. driving mechanism; 41. hydraulic cylinder; 42. pin head; 43. support rod; 44. slider; 5. sensor; 6. protractor; 7. color display mechanism; 71. mounting shell; 72. liquid storage chamber; 73. reaction chamber; 74. reaction shell; 75. gas storage chamber; 76. electric control valve; 77. heat transfer block; 78. heat transfer tube; 79. color change block; 8. transmission mechanism; 81. support shaft; 82. turntable; 83. connecting rod; 84. first docking wheel; 85. second docking wheel; 86. drive pulley; 87. drive belt; 9. conveying mechanism; 91 , feed channel; 92, screw rod; 93, assembly chamber; 94, crankshaft; 95, connecting channel; 96, docking channel; 97, connecting shell; 98, sealing push rod; 99, roller; 910, guide rail; 10, connecting piece; 11, detection mechanism; 111, water storage chamber; 112, pressure chamber; 113, sealing block; 114, branch pipe; 115, spray pipe; 116, rotating roller; 117, liquid inlet hole; 12, linkage assembly; 121, abutting rod; 122, abutting wheel; 123, first rotating wheel; 124, second rotating wheel; 125, rotating rod; 13, pushing member; 14, sealing member. DETAILED DESCRIPTION
[0044] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0045] like Figures 1 to 13 As shown, the present invention provides a processing device for window lining paper, including a base 1, a rotatable rotating shell 2 is provided in the middle of the upper surface of the base 1, and a placement channel 3 for placing aluminum foil lining paper is opened on the upper surface of the rotating shell 2. A driving mechanism 4 for driving the rotating shell 2 to rotate is opened on the right side of the upper surface of the base 1, and a sensor 5 is provided on the left side of the upper surface of the base 1. The sensor 5 can be a light sensor. A protractor 6 is rotatably installed on the lower part of the left side wall of the rotating shell 2 via a rotating shaft. A transmission mechanism 8 for driving the protractor 6 to rotate is provided on the front part of the rotating shell 2 and the upper surface of the base 1. A color display mechanism 7 for changing the color of the numerical scale of the protractor 6 is provided in the inner cavity of the rotating shell 2;
[0046] The color development mechanism 7 includes a mounting shell 71 fixedly mounted on the top of the inner cavity of the rotating shell 2, a liquid storage chamber 72 for storing hydrogen peroxide solution is provided on the upper right side of the mounting shell 71, a reaction chamber 73 is provided on the lower right side of the mounting shell 71, a reaction shell 74 is movably mounted in the inner cavity of the reaction chamber 73 through a bearing, a partition is provided in the inner cavity of the reaction shell 74 for placing manganese dioxide crystals, an air storage chamber 75 for storing high-temperature air is provided at the front of the mounting shell 71, and air delivery chambers are provided on the front and rear sides of the reaction chamber 73. The feeding mechanism 9 has two electrically controlled valves 76 disposed on the left side of the bottom surface of the mounting housing 71, which are connected to the inner cavity of the air storage chamber 75. A heat transfer block 77 is disposed below the electrically controlled valve 76. The inner cavity of the electrically controlled valve 76 is connected to the inner cavity of the heat transfer block 77 via a connector 10. A heat transfer tube 78 is disposed below and on the left side of the heat transfer block 77. A color-changing block 79 is fixedly mounted on the numerical scale of the protractor 6. The color-changing block 79 is made of a thermochromic organic material. A detection mechanism 11 for detecting creases and damages in the aluminum foil layer is disposed to the right of the heat transfer block 77.
[0047] The bottom surface of the inner cavity of the heat conducting block 77 is provided with a docking hole adapted to the heat transfer tube 78, a sealing member 14 is provided in the inner cavity of the docking hole, the left end of the heat transfer tube 78 is movably connected to the color changing block 79, a pushing member 13 is provided in the inner cavity of the gas storage cavity 75, the sensor 5 is electrically connected to the electric control valve 76, and a discharge hole is provided on the inner cavity and the partition of the reaction shell 74; the sealing member 14 includes a blocking block movably connected to the inner cavity of the docking hole and a spring seat provided above the blocking block; wherein, the upper and lower ends of the spring seat are The two ends are fixedly connected to the upper surface of the blocking block and the inner cavity top surface of the heat conducting block 77 respectively, the top end of the heat transfer tube 78 is movably connected to the bottom surface of the blocking block, a through hole is opened in the upper circumference of the heat transfer tube 78, and the right end of the heat transfer tube 78 is connected to the jet shell; the pusher 13 includes a slide that moves up and down in the air storage chamber 75 and two compression springs symmetrically arranged vertically on the front and rear sides of the upper surface of the slide; the upper and lower ends of the compression spring are fixedly connected to the upper surface of the slide and the inner cavity top surface of the air storage chamber 75 respectively.
[0048] When in use, the driving mechanism 4 drives the rotating shell 2 to flip to a vertical state so that the aluminum foil lining paper can be folded 90 degrees. In the process of flipping to the vertical state, when the rotating shell 2 flips, the conveying mechanism 9 can transport the hydrogen peroxide solution stored in the liquid storage chamber 72 to the reaction shell 74 for mixed reaction with the manganese dioxide crystals placed in the inner cavity compartment of the reaction shell 74, and quickly generate high-temperature oxygen and water in the reaction chamber 73. When the conveying mechanism 9 is in operation, the generated high-temperature oxygen can be transported to the gas storage chamber 75 for storage. After the aluminum foil lining paper flips 90 degrees, wait for eight seconds, and then slowly drive the rotating shell 2 to flip the aluminum foil lining paper back again through the driving mechanism 4. At the same time, when the rotating shell 2 flips, the protractor 6 is driven to rotate through the transmission mechanism 8. When the aluminum foil lining paper flips back, the part that is in contact with the surface of the base 1 will be tilted up. When the sensor 5 detects that the bottom surface of the aluminum foil lining paper is separated from the upper surface of the base 1 At this time, the sensor 5 sends an electrical signal to control the driving mechanism 4 to stop operating, causing the rotating shell 2 to stop turning the aluminum foil lining paper. At the same time, the sensor 5 controls the electric control valve 76 to open, and the pusher 13 moves downward to squeeze the high-temperature oxygen in the gas storage chamber 75. The connector 10 can drive the heat conductive block 77 to move downward, allowing the heat transfer pipe 78 to enter the inner cavity of the heat conductive block 77 through the docking hole. When the heat transfer pipe 78 is connected to the inner cavity of the heat conductive block 77, the high-temperature oxygen in the gas storage chamber 75 enters the heat transfer pipe 78 from the inner cavity of the heat conductive block 77 through the connector 10. The heat of the high-temperature oxygen is transferred to the color-changing block 79 through the heat transfer pipe 78, causing the single numerical scale on the protractor 6 that contacts the color-changing block 79 to change color, highlighting the accurate angle value, and not causing visual fatigue to the inspector. It can effectively improve the inspection effect and efficiency of the inspector, and is not easy to be damaged, thereby improving the practicality of the device.
[0049] It should be noted that when the heat-conducting block 77 moves downward, it can drive the detection mechanism 11 to operate, and the detection mechanism 11 can drive the aluminum foil lining paper to move upward, so that the fold of the aluminum foil lining paper enters the placement channel 3. At the same time, the detection mechanism 11 can spray water produced by the mixed reaction of hydrogen peroxide solution and manganese dioxide crystals on the aluminum foil coating surface of the aluminum foil lining paper. After the inspector takes out the aluminum foil lining paper, he can observe whether there are water stains on the back of the aluminum foil lining paper, so as to facilitate the inspection of the integrity of the aluminum foil coating at the fold after the aluminum foil lining paper is folded, avoiding the problem that traditional lining paper processing equipment is not convenient for inspecting the integrity of the coating at the fold after the aluminum foil lining paper is turned over.
[0050] like Figure 5As shown, the transmission mechanism 8 includes a support shaft 81 symmetrically fixedly mounted on the front and rear sides of the middle part of the base 1, a turntable 82 fixedly mounted on the right end of the rotating shaft of the protractor 6, a connecting rod 83 movably mounted on the left side of the front side wall of the rotating shell 2 through a bearing, a first docking wheel 84 fixedly mounted on the rear end of the connecting rod 83, a second docking wheel 85 rotatably mounted on the lower part of the front side wall of the rotating shell 2 through a rotating shaft, two transmission pulleys 86 coaxially connected to the front end of the connecting rod 83 and the front end of the second docking wheel 85, and a transmission belt 87 movably sleeved on the two transmission pulleys 86; wherein, the outer ring wall of the first docking wheel 84 is movably connected to the outer ring of the right side wall of the turntable 82, and the outer ring wall of the second docking wheel 85 is movably connected to the outer surface of the support shaft 81, and the first docking wheel 84 has the same diameter as the turntable 82, the second docking wheel 85 and the support shaft 81.
[0051] When in use, the rotating shell 2 flips with the support shaft 81 as the axis. When the rotating shell 2 flips, it drives the second docking wheel 85 to move on the support shaft 81, and the second docking wheel 85 can rotate on its own. Therefore, when the second docking wheel 85 rotates on its own, it can drive the connecting rod 83 to drive the first docking wheel 84 to drive the turntable 82 to rotate at the same angle through the transmission pulley 86 and the transmission belt 87, so that the turntable 82 can drive the protractor 6 to rotate. The inspector can detect the rebound angle of the liner paper through the corresponding numerical scale of the protractor 6.
[0052] like Figure 2 As shown, the driving mechanism 4 includes a mounting groove provided on the right side of the upper surface of the base 1, a hydraulic cylinder 41 fixed to the right side of the inner cavity of the mounting groove, a pin head 42 fixedly installed at the left output shaft end of the hydraulic cylinder 41, a support rod 43 hinged to the lower left part of the inner cavity of the mounting groove, and a slider 44 hinged to the upper part of the support rod 43; wherein, the left side wall of the slider 44 is connected to the right side wall of the rotating shell 2 for vertical sliding connection, a vertical groove is provided on the support rod 43, a pin rod is fixedly installed in the inner cavity of the pin head 42, and the pin rod is movably connected to the inner cavity of the vertical groove.
[0053] During use, the hydraulic cylinder 41 can drive the pin head 42 to operate, and the pin head 42 drives the support rod 43 to rotate when it moves, so that the support rod 43 can drive the slider 44 to drive the rotating shell 2 to flip.
[0054] like Figure 2 、 Figure 7 and Figure 8As shown, the conveying mechanism 9 includes two feed channels 91 symmetrically opened on the front and rear sides of the inner cavity of the reaction chamber 73, a screw rod 92 is provided in the inner cavity of the feed channel 91, the inner cavity top surface of the feed channel 91 is connected to the inner cavity bottom of the liquid storage chamber 72, one end of the feed channel 91 is connected to the assembly chamber 93, and a crankshaft 94 is movably installed in the inner cavity of the assembly chamber 93 through a bearing. A connecting channel 95 communicating with the lower part of the inner cavity of the gas storage chamber 75 is provided in the middle of the left side of the inner cavity of the reaction chamber 73, and the inner cavities of the two assembly cavities 93 are respectively connected to the inner cavity middle of the connecting channel 95 through a docking channel 96. A connecting shell 97 is movably sleeved on the crankshaft 94, and a sealing member is fixedly installed laterally on the left side wall of the connecting shell 97. Sealing push rod 98; wherein, the left side of the sealing push rod 98 extends into the inner cavity of the docking channel 96, a one-way air inlet valve for introducing high-temperature air is provided on the right side of the inner cavity of the connecting channel 95, and a one-way air outlet valve for exporting high-temperature air is provided on the left side of the inner cavity of the connecting channel 95. One end of the spiral rod 92 is fixedly connected to one end of the crankshaft 94, and the other end of the spiral rod 92 is fixedly connected to the inner cavity of the reaction shell 74 through a bracket. One end of the crankshaft 94 passes through the outside of the inner cavity of the assembly cavity 93, and a roller 99 is fixedly installed on one end of the crankshaft 94. Two guide rails 910 are symmetrically fixedly installed on the front and back sides of the upper surface of the base 1, and the bottom of the roller 99 is movably connected to the upper surface of the guide rail 910.
[0055] During use, when the rotating shell 2 flips, it drives the roller 99 to move on the guide rail 910. The roller 99 can rotate and drive the crankshaft 94 to drive the screw rod 92 to rotate. When the screw rod 92 rotates, the hydrogen peroxide solution in the liquid storage chamber 72 can be transported to the reaction shell 74 to mix and react with the manganese dioxide crystals, generating high-temperature oxygen and water in the reaction chamber 73. At the same time, when the crankshaft 94 rotates, it drives the connecting shell 97 to drive the sealing push rod 98 to compress the high-temperature oxygen in the reaction chamber 73 into the gas storage chamber 75 for storage.
[0056] like Figure 6 and Figure 10 As shown, the connecting member 10 includes an external connecting tube connected to the bottom of the electric control valve 76, a vertical rod vertically fixed in the inner cavity of the external connecting tube by a support rod, a ventilation groove is provided at the bottom end of the vertical rod, and a ventilation hole connected to the ventilation groove is provided at the lower part of the outer surface of the vertical rod, and the inner cavity of the external connecting tube is sealed and slidably connected with the inner connecting tube up and down; wherein, the inner cavity of the inner connecting tube is fitted with the outer surface of the vertical rod, the bottom end of the inner connecting tube is fixedly connected to the upper surface of the heat-conducting block 77, and the inner cavity of the inner connecting tube is connected to the inner cavity of the heat-conducting block 77, and the outer surface of the external connecting tube is movably sleeved with a tension spring, and the upper and lower ends of the tension spring are respectively fixedly connected to the bottom surface of the mounting shell 71 and the upper surface of the heat-conducting block 77.
[0057] During use, the sensor 5 controls the electric control valve 76 to open, and the pusher 13 moves downward to squeeze the high-temperature oxygen in the air storage chamber 75. The high-temperature oxygen enters the inner cavity of the external connecting pipe, which can push the internal connecting pipe to drive the heat conductive block 77 to move downward and combine with the heat transfer pipe 78. When the heat transfer pipe 78 enters the inner cavity of the heat conductive block 77 through the docking hole, the top of the internal connecting pipe moves downward to the bottom of the vent hole, and the high-temperature oxygen in the external connecting pipe can enter the inner cavity of the heat conductive block 77 from the inner cavity of the internal connecting pipe through the vent hole and the vent groove. Then, the high-temperature oxygen enters the inner cavity of the heat transfer pipe 78 from the inner cavity of the heat conductive block 77, transferring the high-temperature heat to the color-changing block 79. At the same time, the high-temperature air is sprayed onto the aluminum foil coating surface of the aluminum foil lining paper through the jet shell, which can remove the water sprayed on the aluminum foil coating surface.
[0058] like Figure 12 As shown, the detection mechanism 11 includes a groove formed in the right side wall of the heat conductive block 77, a water storage chamber 111 formed in the middle of the heat conductive block 77, a pressure chamber 112 formed in the middle of the heat conductive block 77 and located below the water storage chamber 111, a sealing block 113 that moves laterally within the inner cavity of the pressure chamber 112, a branch pipe 114 that is laterally fixedly mounted on the right side wall of the sealing block 113, a spray pipe 115 that is disposed in the inner cavity of the groove and communicates with the branch pipe 114, a rotating roller 116 that is rotatably mounted on the upper portion of the inner cavity of the groove via a rotating shaft, liquid inlet holes 117 that are circumferentially equidistantly formed on the left side of the outer surface of the branch pipe 114, and a linkage assembly 12 disposed on the rotating roller 116 and the spray pipe 115;
[0059] Among them, the inner cavity of the water storage chamber 111 is connected to the lower part of the inner cavity of the reaction chamber 73 through a hose, and a liquid outlet hole connected to the pressure chamber 112 is opened on the right side of the bottom surface of the inner cavity of the water storage chamber 111. A one-way liquid outlet valve for introducing water into the pressure chamber 112 is provided in the inner cavity of the liquid outlet hole, and a group of one-way nozzles are connected to the right side wall of the spray pipe 115.
[0060] During use, the water generated by the reaction in the reaction chamber 73 enters the water storage chamber 111 through the hose. During the downward movement of the heat conductive block 77, the linkage assembly 12 can drive the rotating roller 116 to rotate. When the rotating roller 116 rotates, it can drive the aluminum foil lining paper to move upward, so that the fold of the aluminum foil lining paper enters the inner cavity of the placement channel 3. At the same time, when the rotating roller 116 rotates, it drives the spray pipe 115 to move back and forth. When the spray pipe 115 moves back and forth, it can suck the water in the water storage chamber 111 into the pressure chamber 112 through the branch pipe 114, the sealing block 113 and the liquid inlet 117, and spray it onto the aluminum foil coating surface of the aluminum foil lining paper through the spray pipe 115.
[0061] like Figure 13As shown, the linkage assembly 12 includes two abutment rods 121 symmetrically and vertically fixedly installed on the front and rear sides of the inner cavity of the rotating shell 2, two abutment wheels 122 fixedly sleeved on the front and rear rotating shafts of the rotating roller 116 and movably connected to the left side wall of the abutment rod 121, a first rotating wheel 123 fixedly sleeved on the rotating shaft of the rotating roller 116, a second rotating wheel 124 rotatably installed on the front and rear sides of the inner cavity of the groove through the rotating shaft, a connecting pin eccentrically fixedly installed on the side wall of the second rotating wheel 124, and a rotating rod 125 for connecting the connecting pin with the spray pipe 115; wherein, the two ends of the rotating rod 125 are respectively hinged to the connecting pin and the spray pipe 115.
[0062] During use, the heat conductive block 77 drives the abutment wheel 122 to move on the abutment rod 121 during its downward movement, and the abutment wheel 122 rotates to drive the rotating roller 116 to rotate. The rotation of the rotating roller 116 can drive the aluminum foil lining paper to move. At the same time, when the rotating roller 116 rotates, under the action of the first rotating wheel 123, the second rotating wheel 124 and the rotating rod 125, it can drive the spray pipe 115 to move back and forth to spray water.
[0063] A method for using a window lining paper processing device includes the following steps:
[0064] S1: In the initial state, the rotating shell 2 is in a horizontal state, and the aluminum foil lining paper is passed through the placement channel 3 with the aluminum foil side facing upward, and the left bottom surface of the aluminum foil lining paper is attached to the left upper surface of the base 1 to cover the sensor 5;
[0065] S2: When the hydraulic cylinder 41 operates, it can drive the pin head 42 to operate. When the pin head 42 moves, it drives the support rod 43 to rotate, so that the support rod 43 can drive the slider 44 to drive the rotating shell 2 to flip. When the rotating shell 2 flips to a vertical state, the aluminum foil lining paper can be folded 90 degrees. In the process of flipping to the vertical state, when the rotating shell 2 flips, it drives the roller 99 to move on the guide rail 910. The roller 99 can rotate and drive the crankshaft 94 to drive the screw rod 92 to rotate. When the screw rod 92 rotates, the hydrogen peroxide solution in the liquid storage chamber 72 can be transported to the reaction shell 74 to mix and react with the manganese dioxide crystals, generating high-temperature oxygen and water in the reaction chamber 73. At the same time, when the crankshaft 94 rotates, it drives the connecting shell 97 to drive the sealing push rod 98 to compress the high-temperature oxygen in the reaction chamber 73 and store it in the gas storage chamber 75;
[0066] S3: After the aluminum foil lining paper is flipped 90 degrees, wait for eight seconds, and then slowly drive the rotating shell 2 through the driving mechanism 4 to drive the aluminum foil lining paper to flip back. At the same time, the rotating shell 2 flips around the support shaft 81 as the axis. When the rotating shell 2 flips, it drives the second docking wheel 85 to move on the support shaft 81, and the second docking wheel 85 can rotate. Therefore, when the second docking wheel 85 rotates, it can drive the connecting rod 83 to drive the first docking wheel 84 to drive the turntable 82 to rotate at the same angle through the transmission pulley 86 and the transmission belt 87, so that the turntable 82 can drive the protractor 6 to rotate. When the aluminum foil lining paper is flipped back, the part that is in contact with the surface of the base 1 will be tilted. When the sensor 5 detects that the bottom surface of the aluminum foil lining paper is separated from the upper surface of the base 1, the sensor 5 sends an electrical signal to control the driving mechanism 4 to stop operating, so that the rotating shell 2 drives the aluminum foil lining paper to stop flipping;
[0067] S4: The sensor 5 controls the electric control valve 76 to open, and the pusher 13 moves downward to squeeze the high-temperature oxygen in the gas storage chamber 75. The pusher 13 moves downward to squeeze the high-temperature oxygen in the gas storage chamber 75, and the high-temperature oxygen enters the inner cavity of the external connecting tube, which can push the internal connecting tube to drive the heat conducting block 77 to move downward and combine with the heat transfer tube 78. When the heat transfer tube 78 enters the inner cavity of the heat conducting block 77 through the docking hole, the top of the internal connecting tube moves downward to the bottom of the vent hole, and the high-temperature oxygen in the external connecting tube can enter the inner cavity of the heat conducting block 77 from the inner cavity of the internal connecting tube through the vent hole and the vent groove. Then, the high-temperature oxygen enters the inner cavity of the heat transfer tube 78 from the inner cavity of the heat conducting block 77, transferring the high-temperature heat to the color-changing block 79, which can cause the single numerical scale on the protractor 6 that contacts the color-changing block 79 to change color, highlighting the accurate angle value;
[0068] S5: At the same time, when the heat-conducting block 77 moves downward, the water generated by the reaction in the reaction chamber 73 enters the water storage chamber 111 through the hose. During the downward movement of the heat-conducting block 77, the abutting wheel 122 is driven to move on the abutting rod 121. The abutting wheel 122 rotates and drives the rotating roller 116 to rotate. When the rotating roller 116 rotates, it can drive the aluminum foil lining paper to move upward, so that the fold of the aluminum foil lining paper enters the placement channel 3. At the same time, when the rotating roller 116 rotates, the first rotating wheel 123 and the second rotating wheel 124 and the rotating roller 116 rotate. Under the action of the moving rod 125, the spray pipe 115 can be driven to move back and forth. When the spray pipe 115 moves back and forth, the water in the water storage chamber 111 can be sucked into the pressure chamber 112 through the branch pipe 114, the sealing block 113 and the liquid inlet hole 117, and the water is sprayed out through the spray pipe 115 onto the aluminum foil coating surface of the aluminum foil lining paper. After the inspector takes out the aluminum foil lining paper, he can observe whether there is any water stain on the back of the aluminum foil lining paper, which makes it convenient to detect the integrity of the aluminum foil coating at the crease after the aluminum foil lining paper is folded.
[0069] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.
[0070] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. A processing device for window lining paper, characterized in that: The invention comprises a base (1), wherein a rotatable rotating shell (2) is provided in the middle of the upper surface of the base (1), a placement channel (3) for placing aluminum foil lining paper is provided on the upper surface of the rotating shell (2), a driving mechanism (4) for driving the rotating shell (2) to rotate is provided on the right side of the upper surface of the base (1), a sensor (5) is provided on the left side of the upper surface of the base (1), a protractor (6) is installed on the lower part of the left side wall of the rotating shell (2) through a rotating shaft, a transmission mechanism (8) for driving the protractor (6) to rotate is provided on the front part of the rotating shell (2) and the upper surface of the base (1), and a color display mechanism (7) for changing the color of the numerical scale of the protractor (6) is provided in the inner cavity of the rotating shell (2); The color development mechanism (7) comprises a mounting shell (71) fixedly mounted on the top of the inner cavity of the rotating shell (2); a liquid storage chamber (72) for storing hydrogen peroxide solution is provided on the upper right side of the mounting shell (71); a reaction chamber (73) is provided on the lower right side of the mounting shell (71); a reaction shell (74) is movably mounted in the inner cavity of the reaction chamber (73) via a bearing; a partition for placing manganese dioxide crystals is provided in the inner cavity of the reaction shell (74); an air storage chamber (75) for storing high-temperature air is provided on the front portion of the mounting shell (71); and a conveying mechanism ( 9), two electrically controlled valves (76) are distributed on the front and back of the left side of the bottom surface of the mounting shell (71) and are connected to the inner cavity of the gas storage cavity (75); a heat conducting block (77) is provided below the electrically controlled valve (76); the inner cavity of the electrically controlled valve (76) is connected to the inner cavity of the heat conducting block (77) through a connector (10); a heat transfer pipe (78) is provided on the left side below the heat conducting block (77); a color changing block (79) is fixedly installed on the numerical scale of the protractor (6); the color changing block (79) is a thermochromic organic material; a detection mechanism (11) for detecting creases and damages of the aluminum foil layer is provided on the right side of the heat conducting block (77); The bottom surface of the inner cavity of the heat-conducting block (77) is provided with a docking hole adapted to the heat transfer tube (78), a sealing member (14) is provided in the inner cavity of the docking hole, the left end of the heat transfer tube (78) is movably connected to the color-changing block (79), a pushing member (13) is provided in the inner cavity of the gas storage chamber (75), the sensor (5) is electrically connected to the electric control valve (76), and the inner cavity and the partition of the reaction shell (74) are provided with discharge holes; the conveying mechanism (9) includes two feed channels (91) symmetrically provided on the front and rear sides of the inner cavity of the reaction chamber (73), a screw rod (92) is provided in the inner cavity of the feed channel (91), and the inner cavity top surface of the feed channel (91) is connected to the liquid storage chamber (72) The bottom of the inner cavity of the reaction chamber (73) is connected, one end of the feed channel (91) is connected to the assembly chamber (93), and a crankshaft (94) is movably installed in the inner cavity of the assembly chamber (93) through a bearing. A connecting channel (95) is opened in the middle of the left side of the inner cavity of the reaction chamber (73) and is connected to the lower part of the inner cavity of the gas storage chamber (75). The inner cavities of the two assembly chambers (93) are respectively connected to the middle of the inner cavity of the connecting channel (95) through a docking channel (96). A connecting shell (97) is movably sleeved on the crankshaft (94), and a sealing push rod (98) is fixedly installed on the left side wall of the connecting shell (97); wherein the left side of the sealing push rod (98) extends into the inner cavity of the docking channel (96), and the connecting channel (95) A one-way air inlet valve for introducing high-temperature air is provided on the right side of the inner cavity, and a one-way air outlet valve for guiding high-temperature air is provided on the left side of the inner cavity of the connecting channel (95). One end of the screw rod (92) is fixedly connected to one end of the crankshaft (94), and the other end of the screw rod (92) is fixedly connected to the inner cavity of the reaction shell (74) through a bracket. One end of the crankshaft (94) passes through the inner cavity of the assembly cavity (93), and a roller (99) is fixedly installed on one end of the crankshaft (94). Two guide rails (910) are symmetrically fixedly installed on the front and rear sides of the upper surface of the base (1), and the bottom of the roller (99) is movably connected to the upper surface of the guide rail (910); the connecting member (10) includes a connecting member. An external connecting pipe passing through the bottom of the electric control valve (76) is fixed vertically to a vertical rod in the inner cavity of the external connecting pipe through a support rod, a ventilation groove is provided at the bottom end of the vertical rod, and a ventilation hole connected to the ventilation groove is provided at the lower part of the outer surface of the vertical rod, and an internal connecting pipe is sealed and slidably connected up and down in the inner cavity of the external connecting pipe; wherein, the inner cavity of the internal connecting pipe is fitted with the outer surface of the vertical rod, the bottom end of the internal connecting pipe is fixedly connected to the upper surface of the heat conducting block (77), and the inner cavity of the internal connecting pipe is connected to the inner cavity of the heat conducting block (77), and a tension spring is movably sleeved on the outer surface of the external connecting pipe, and the upper and lower ends of the tension spring are fixedly connected to the bottom surface of the mounting shell (71) and the upper surface of the heat conducting block (77) respectively;The detection mechanism (11) comprises a groove provided on the right side wall of the heat-conducting block (77), a water storage chamber (111) provided in the middle of the heat-conducting block (77), a pressure chamber (112) provided in the middle of the heat-conducting block (77) and located below the water storage chamber (111), a sealing block (113) which moves laterally in the inner cavity of the pressure chamber (112), a branch pipe (114) which is laterally fixedly installed on the right side wall of the sealing block (113), a spray pipe (115) which is provided in the inner cavity of the groove and communicates with the branch pipe (114), a rotating roller (116) which is rotatably installed on the upper part of the inner cavity of the groove via a rotating shaft, liquid inlet holes (117) which are equidistantly provided on the left side of the outer surface of the branch pipe (114) in the circumferential direction, and a linkage assembly (12) provided on the rotating roller (116) and the spray pipe (115); The inner cavity of the water storage chamber (111) is connected to the lower inner cavity of the reaction chamber (73) through a hose, a liquid outlet hole connected to the pressure chamber (112) is provided on the right side of the inner cavity bottom surface of the water storage chamber (111), a one-way liquid outlet valve for introducing water into the pressure chamber (112) is provided in the inner cavity of the liquid outlet hole, and a group of one-way spray heads are connected to the right side wall of the spray pipe (115); the linkage assembly (12) includes two abutment rods (121) symmetrically and vertically fixedly installed on the front and rear sides of the inner cavity of the rotating shell (2), and a fixed sleeve is provided on the rotating roller (111). 16) two abutment wheels (122) movably connected to the left side wall of the abutment rod (121) on the front and rear rotating shafts, a first rotating wheel (123) fixedly sleeved on the rotating shaft of the rotating roller (116), a second rotating wheel (124) rotatably installed on the front and rear sides of the inner cavity of the groove through the rotating shaft, a connecting pin eccentrically fixedly installed on the side wall of the second rotating wheel (124), and a rotating rod (125) for connecting the connecting pin to the spray pipe (115); wherein the two ends of the rotating rod (125) are respectively hinged to the connecting pin and the spray pipe (115).
2. The processing equipment for window lining paper according to claim 1, characterized in that: The transmission mechanism (8) comprises a support shaft (81) symmetrically fixedly mounted on the front and rear sides of the middle of the base (1), a turntable (82) fixedly mounted on the right end of the rotating shaft of the protractor (6), a connecting rod (83) movably mounted on the left side of the front side wall of the rotating shell (2) through a bearing, a first docking wheel (84) fixedly mounted on the rear end of the connecting rod (83), a second docking wheel (85) rotatably mounted on the lower part of the front side wall of the rotating shell (2) through a rotating shaft, two transmission pulleys (86) coaxially connected to the front end of the connecting rod (83) and the front end of the second docking wheel (85), and a transmission belt (87) movably sleeved on the two transmission pulleys (86); wherein the outer ring wall of the first docking wheel (84) is movably connected to the outer ring of the right side wall of the turntable (82), the outer ring wall of the second docking wheel (85) is movably connected to the outer surface of the support shaft (81), and the diameters of the first docking wheel (84), the turntable (82), the second docking wheel (85) and the support shaft (81) are the same.
3. The processing equipment for window lining paper according to claim 1, characterized in that: The driving mechanism (4) comprises a mounting groove provided on the right side of the upper surface of the base (1), a hydraulic cylinder (41) fixed on the right side of the inner cavity of the mounting groove, a pin head (42) fixedly installed on the left output shaft end of the hydraulic cylinder (41), a support rod (43) hingedly connected to the lower left side of the inner cavity of the mounting groove, and a slider (44) hingedly connected to the upper part of the support rod (43); wherein the left side wall of the slider (44) is slidably connected to the right side wall of the rotating shell (2) in an up-and-down manner, a vertical groove is provided on the support rod (43), a pin rod is fixedly installed in the inner cavity of the pin head (42), and the pin rod is movably connected to the inner cavity of the vertical groove.
4. The processing equipment for window lining paper according to claim 1, characterized in that: The pushing member (13) includes a slide plate that moves up and down in the air storage chamber (75) and two compression springs that are symmetrically arranged vertically on the front and rear sides of the upper surface of the slide plate; the upper and lower ends of the compression springs are fixedly connected to the upper surface of the slide plate and the inner cavity top surface of the air storage chamber (75) respectively.
5. The processing equipment for window lining paper according to claim 1, characterized in that: The sealing member (14) comprises a blocking block movably connected to the inner cavity of the docking hole and a spring seat arranged above the blocking block; wherein, the upper and lower ends of the spring seat are fixedly connected to the upper surface of the blocking block and the top surface of the inner cavity of the heat conducting block (77) respectively, the top end of the heat transfer tube (78) is movably connected to the bottom surface of the blocking block, the upper part of the heat transfer tube (78) is provided with a through hole in the circumferential direction, and the right end of the heat transfer tube (78) is connected to the jet shell.
6. A method for using the window lining paper processing equipment according to any one of claims 1 to 5, characterized in that: The following steps are included: S1: In the initial state, the rotating shell (2) is in a horizontal state, the aluminum foil side of the aluminum foil lining paper is passed through the placement channel (3) with the aluminum foil side facing upward, and the left bottom surface of the aluminum foil lining paper is affixed to the left side of the upper surface of the base (1) to cover the sensor (5); S2: The driving mechanism (4) drives the rotating shell (2) to flip to a vertical state, so that the aluminum foil lining paper can be folded 90 degrees. During the process of flipping to the vertical state, when the rotating shell (2) flips, the hydrogen peroxide solution stored in the liquid storage chamber (72) can be transported to the reaction shell (74) through the conveying mechanism (9) to mix and react with the manganese dioxide crystals arranged in the inner cavity partition of the reaction shell (74), and high-temperature oxygen and water are quickly generated in the reaction chamber (73). When the conveying mechanism (9) is in operation, the generated high-temperature oxygen can be transported to the gas storage chamber (75) for storage. S3: After the aluminum foil lining paper is turned over 90 degrees, wait for eight seconds, and then slowly drive the rotating shell (2) again through the driving mechanism (4) to drive the aluminum foil lining paper to turn back. At the same time, when the rotating shell (2) turns over, the protractor (6) is driven to rotate through the transmission mechanism (8). When the aluminum foil lining paper is turned over, the part thereof that is in contact with the surface of the base (1) will be tilted up. When the sensor (5) detects that the bottom surface of the aluminum foil lining paper is separated from the upper surface of the base (1), the sensor (5) sends an electrical signal to control the driving mechanism (4) to stop operating, so that the rotating shell (2) drives the aluminum foil lining paper to stop turning over. S4: The sensor (5) controls the electric control valve (76) to open, and the pusher (13) moves downward to squeeze the high-temperature oxygen in the gas storage chamber (75), and can drive the heat-conducting block (77) to move downward through the connecting member (10), so that the heat transfer tube (78) can enter the inner cavity of the heat-conducting block (77) through the docking hole. When the heat transfer tube (78) is connected to the inner cavity of the heat-conducting block (77), the high-temperature oxygen in the gas storage chamber (75) enters the heat transfer tube (78) from the inner cavity of the heat-conducting block (77) through the connecting member (10). The heat of the high-temperature oxygen is transferred to the color-changing block (79) through the heat transfer tube (78), which can cause the single numerical scale on the protractor (6) that contacts the color-changing block (79) to change color, highlighting the accurate angle value; S5: When the heat conducting block (77) moves downward, the detection mechanism (11) can be driven to operate. The detection mechanism (11) can drive the aluminum foil lining paper to move upward, so that the fold of the aluminum foil lining paper enters the placement channel (3). At the same time, the detection mechanism (11) can spray water produced by the mixed reaction of hydrogen peroxide solution and manganese dioxide crystals on the aluminum foil coating surface of the aluminum foil lining paper. After the inspector takes out the aluminum foil lining paper, he can observe whether there is water stain on the back of the aluminum foil lining paper, thereby facilitating the inspection of the integrity of the aluminum foil coating at the fold of the aluminum foil lining paper after the aluminum foil lining paper is folded.
Citation Information
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