Glove machine production line
Through the improvement of adsorption separation and hot press forming devices, the existing film glove production line has solved the problems of high equipment costs, large power loss and inconvenient limits, and the rapid separation and molding of film gloves have been achieved, which has improved production efficiency and product quality.
Patent Information
- Application Number
- CN202510486121.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-17
- Publication Date
- 2025-07-08
AI Technical Summary
The existing disposable film glove production line equipment has high investment costs, large power loss, inconvenient limits of film coils and easy to fall off, affecting production efficiency and product quality.
Adsorption separation device and hot press forming device are used, combined with an electric heating rod and a thermostat for constant temperature heating, and a centrifugal exhaust fan is used to achieve rapid separation and positioning limit of the film, and the film is transmitted and molded through a motor-driven transmission belt system.
It realizes rapid separation and molding of film gloves, reduces equipment costs, improves production efficiency, reduces power consumption, and simplifies the replacement and limiting operation of film coils.
Smart Images

Figure CN120269745A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of glove production, and more specifically, to a glove machine production line. Background Art
[0002] Due to the advantages of low cost, acid and alkali resistance, good isolation effect, and convenient wearing, disposable plastic gloves are widely used in industries such as medical, electronics, food processing, scientific research, and fast food to provide hygiene and safety protection, thus becoming the most economical protective supplies. With the expansion of the application scope of disposable plastic gloves and the high replacement frequency, their usage amount shows an increasing trend year by year. Among them, the production of disposable film gloves requires the use of a glove machine production line (i.e., a mechanical processing production line).
[0003] In recent years, with the research and development of biodegradable plastics, biodegradable gloves have emerged. Disposable biodegradable gloves are generally produced by thermally pressing two film sheets of a tubular film together through a mold, then sending the continuous tubular film to a cutting mechanism for cutting through a conveying roller, and finally removing the surplus material around the gloves to complete the production of disposable biodegradable gloves. However, the existing disposable glove production lines on the market have the following problems: (1) The existing mechanical processing production line for disposable film gloves usually adopts the method of thermal pressing and then shearing and separating the film sheets, which increases the equipment investment cost of the production line and extends the floor area of the production line; (2) The heating of the hot pressing and forming device of the existing mechanical processing production line for disposable film gloves adopts a comprehensive heating method, which not only increases the power consumption but also causes the phenomenon of overheating and damage of the film, affecting the quality of disposable gloves and increasing the defective rate; (3) The film unwinding structure of the existing mechanical processing production line for disposable film gloves is relatively complex, which causes inconvenience for the limit support of film coils of different sizes and subsequent replacement.
[0004] In view of the problems in the related art, no effective solution has been proposed yet. Summary of the Invention
[0005] (I) Technical Problems to be Solved
[0006] In view of the deficiencies of the prior art, the present invention provides a glove machine production line, which has the advantages of easy product separation, hot pressing and cutting, limit support for film coils of any size, and anti-dropping, thereby solving the problems in the above background art.
[0007] (II) Technical Solutions
[0008] To achieve the above advantages of easy product separation, hot pressing and cutting, limit support for film coils of any size, and anti-dropping, the specific technical solutions adopted by the present invention are as follows:
[0009] A glove machine production line includes a base. A unwinding device is fixed to the left end of the base, and two unwinding rods are installed in parallel on the upper part inside the unwinding device. The top surface of the base is successively installed with a conveying device, a hot pressing and forming device, and an adsorption and separation device from left to right. Inside the conveying device, an upper driving roller and a lower driving roller are arranged in parallel, and the roller shafts at the right ends of the upper driving roller and the lower driving roller both extend to the outside of the conveying device. A first motor is fixedly installed on the side wall surface of the conveying device, and a first transmission belt wound and connected to the upper driving roller and the lower driving roller is arranged at the output end of the first motor. Inside the adsorption and separation device, a waste adsorption roller is installed through a shaft seat on the upper part, and a glove adsorption shell connected to the inner wall of the adsorption and separation device is arranged below the waste adsorption roller. A group of edge adsorption holes are opened at both ends of the waste adsorption roller, and a group of central adsorption holes are opened in the middle of the top surface of the glove adsorption shell. A protective shell is fixed to the left side wall of the adsorption and separation device, and a centrifugal air extractor is installed inside the protective shell. An air extraction pipe is communicated with the air suction port of the centrifugal air extractor, and the upper end of the air extraction pipe is connected to the cavity of the waste adsorption roller through an air extraction nozzle, and the lower end of the air extraction pipe is connected to the glove adsorption shell through another air extraction nozzle. A waste winding frame is fixed to the top of the adsorption and separation device through bolts, and a belt conveyor is installed at the lower part inside the adsorption and separation device.
[0010] Further, an upper forming roller and a lower forming roller are installed in parallel inside the hot pressing and forming device, and the roller shafts at the right ends of the upper forming roller and the lower forming roller both extend to the outside of the hot pressing and forming device. Palm-shaped glove hot pressing molds are fixed on the surfaces of the upper forming roller and the lower forming roller. A second motor is fixed to the right side wall of the hot pressing and forming device, and a second transmission belt wound and connected to the upper forming roller and the lower forming roller is arranged at the output end of the second motor. Circular through cavities are opened at the axles of the upper forming roller and the lower forming roller, and electric heating rods are inserted and installed inside the circular through cavities. Rectangular openings are opened on both the left and right sides of the hot pressing and forming device. Guide seats are installed on the roller shafts of the upper forming roller and the lower forming roller, and the guide seat of the lower forming roller is fixedly connected to the inner side surface of the rectangular opening. One end of the electric heating rod is fixed with a mounting foot plate, and the mounting foot plate is fixedly connected to the guide seat of the upper forming roller through screws. A threaded column is inserted and installed at the top of the hot pressing and forming device, and a nut in contact with the top surface of the hot pressing and forming device is installed on the surface of the threaded column. The lower end of the threaded column extends into the rectangular opening and is connected to the guide seat of the upper forming roller.
[0011] Further, two square rods are fixed to the upper part inside the unwinding device, and square sleeves are sleeved on the surfaces of each square rod. A forked limiting clip is welded on the side of the square sleeve facing the unwinding rod, and a plum blossom knob abutted against the square rod is installed on the outer surface of the square sleeve in a threaded manner.
[0012] Further, the guiding seat is composed of a supporting block and a bearing seat. U-shaped guiding sleeves are fixed on the left and right sides of the guiding seat of the upper forming roller, and the U-shaped guiding sleeves are connected to the inner side surface of the rectangular opening.
[0013] Further, a vertical plate is welded on the surface of the waste winding frame, and a third motor is fixedly installed on the surface of the vertical plate. The output end of the third motor is fixedly provided with a winding rod through a coupling, and a guiding roller is installed on the upper side of the adsorption and separation device corresponding to the waste winding frame.
[0014] Further, an anti-static conveyor belt is installed inside the belt conveyor in a driving manner, and the anti-static conveyor belt is located directly below the glove adsorption shell.
[0015] Further, a slope is arranged on one side surface of the glove adsorption shell corresponding to the central adsorption hole, and a gap is reserved between the glove adsorption shell and the waste adsorption roller.
[0016] Further, the inside of the waste adsorption roller is of a hollow structure, and a circular insertion hole is opened on the roller shaft at the left end of the waste adsorption roller.
[0017] Further, rubber sheaths are wrapped on the surfaces of the upper driving roller and the lower driving roller, and screws connected to the upper driving roller and the lower driving roller are respectively inserted through both ends of the rubber sheaths.
[0018] Further, screw holes are opened on the surface of the unwinding device facing the base, and screws connected to the base are inserted through the screw holes. A film conveying port is opened on the upper surface of the unwinding device.
[0019] (III) Beneficial Effects
[0020] Compared with the prior art, the present invention provides a glove machine production line, which has the following beneficial effects:
[0021] (1) By starting the centrifugal exhaust fan to work, the two air extraction nozzles on the air extraction pipe respectively suck the air inside the glove adsorption shell and the waste adsorption roller. As the double-layer film after hot pressing and slitting passes through the gap between the glove adsorption shell and the waste adsorption roller, combined with the continuous winding of the double-layer film by the winding rod installed at the output end of the third motor, the central adsorption hole of the glove adsorption shell sucks the disposable glove in the middle of the double-layer film, and the waste adsorption roller sucks the film waste through the edge adsorption holes at both ends thereof, realizing the adsorption separation of the disposable glove and the film waste. Until the disposable glove slides into the belt conveyor under the action of the slope and is conveyed out. By adopting this structure, it is easy to quickly separate the disposable glove and the film waste, and the transmission by the belt conveyor is convenient for later packaging.
[0022] (2) The present invention starts the electric heating rods in the upper forming roller and the lower forming roller through an external thermostat for constant-temperature heating, so that the heat generated by the electric heating rods is transferred to the glove hot-pressing die on the surfaces of the upper forming roller and the lower forming roller in the form of heat conduction. At this time, as the output end of the second motor drives the upper forming roller and the lower forming roller to rotate synchronously through the second transmission belt, the double-layer film passing through the gap between the upper forming roller and the lower forming roller is successively hot-pressed and formed by the glove hot-pressing die until disposable film gloves are successively formed on the parts of the surfaces of the double-layer film in contact with the glove hot-pressing die. Compared with the prior art, the upper forming roller and the lower forming roller with glove hot-pressing dies and the electric heating rods embedded at their axles enable the heating heat to reach the position of the glove hot-pressing die, and a shearing structure of disposable gloves is formed through the corresponding glove hot-pressing die, which is easy to separate from the waste later while meeting the rapid forming of disposable gloves.
[0023] (3) The present invention moves the square sleeve along the length direction of the square rod, so that the fork-shaped limit clamp on the square sleeve moves to the tail of the unwinding rod, making the fork-shaped limit clamp contact the end face of the film coil on the unwinding rod. Then, by rotating the plum blossom knob threadedly installed on the surface of the square sleeve, the plum blossom knob abuts against the surface of the square rod to lock the square sleeve and maintain the stability of the contact between the fork-shaped limit clamp and the end face of the film coil. With this structure, different from the existing film coil unwinding device, the position of the fork-shaped limit clamp can be flexibly adjusted according to the actual length of the coil to realize the support and limit during the film coil unwinding stage, which has the advantages of preventing the film coil on the unwinding rod from falling off and facilitating the quick replacement of the film coil. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the embodiments. Obviously, the following-described drawings are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0025] Figure 1 is the overall structural schematic diagram of a glove machine production line according to an embodiment of the present invention;
[0026] Figure 2 is the rear view of a glove machine production line according to an embodiment of the present invention;
[0027] Figure 3 is the structural schematic diagram of the hot-pressing forming device;
[0028] Figure 4 is the structural schematic diagram of the conveying device;
[0029] Figure 5 is the structural schematic diagram of the adsorption and separation device;
[0030] Figure 6 It is the right view of the adsorption separation device;
[0031] Figure 7 It is the sectional view of the upper forming roller;
[0032] Figure 8 It is the structural schematic diagram of the square rod;
[0033] Figure 9 It is the structural schematic diagram of the waste material winding rack.
[0034] In the figure:
[0035] 1. Base; 2. Unwinding device; 3. Conveying device; 4. Hot pressing and forming device; 5. Adsorption separation device; 6. Belt conveyor; 7. Waste material winding rack; 8. Unwinding rod; 9. Square rod; 10. First motor; 11. Upper driving roller; 12. First transmission belt; 13. Lower driving roller; 14. Lower forming roller; 15. Upper forming roller; 16. Rectangular opening; 17. Guide seat; 18. Threaded column; 19. Second motor; 20. Second transmission belt; 21. Nut; 22. Glove hot pressing die; 23. Rubber sleeve; 24. Guide roller; 25. Winding rod; 26. Glove adsorption shell; 27. Central adsorption hole; 28. Slope; 29. Waste material adsorption roller; 30. Edge adsorption hole; 31. Protective shell; 32. Centrifugal exhaust fan; 33. Exhaust pipe; 34. Electric heating rod; 35. Installation foot plate; 36. Square sleeve; 37. Plum blossom knob; 38. Fork-shaped limit clip; 39. Vertical plate; 40. Third motor. Detailed implementation manners
[0036] To further illustrate each embodiment, the present invention provides attached drawings. These attached drawings are part of the disclosure of the present invention, mainly used to illustrate the embodiments, and can be combined with the relevant descriptions in the specification to explain the operating principle of the embodiments. With reference to these contents, those of ordinary skill in the art should be able to understand other possible implementation manners and the advantages of the present invention. The components in the figures are not drawn to scale, and similar component symbols are usually used to represent similar components.
[0037] According to an embodiment of the present invention, a glove machine production line is provided.
[0038] Now, the present invention will be further described in combination with the attached drawings and specific implementation manners. As Figures 1-9As shown in the figure, a glove machine production line according to an embodiment of the present invention includes a base 1. A unwinding device 2 is fixed to the left end of the base 1. Two unwinding rods 8 are installed in parallel on the upper part inside the unwinding device 2. A conveying device 3, a hot pressing and forming device 4, and an adsorption and separation device 5 are installed on the top surface of the base 1 in sequence from left to right. An upper driving roller 11 and a lower driving roller 13 are arranged in parallel inside the conveying device 3. The roller shafts at the right ends of the upper driving roller 11 and the lower driving roller 13 extend to the outside of the conveying device 3. A first motor 10 is fixedly installed on the side wall surface of the conveying device 3. A first transmission belt 12 wound and connected to the upper driving roller 11 and the lower driving roller 13 is arranged at the output end of the first motor 10. A waste material adsorption roller 29 is installed on the upper part inside the adsorption and separation device 5 through a shaft seat. A glove adsorption shell 26 connected to the inner wall of the adsorption and separation device 5 is arranged below the waste material adsorption roller 29. A group of edge adsorption holes 30 are opened at both ends of the waste material adsorption roller 29. A group of central adsorption holes 27 are opened in the middle of the top surface of the glove adsorption shell 26. A protective shell 31 is fixed to the left side wall of the adsorption and separation device 5. A centrifugal air blower 32 is installed inside the protective shell 31. An air suction pipe 33 is communicated with the air suction port of the centrifugal air blower 32. The upper end of the air suction pipe 33 is connected to the cavity of the waste material adsorption roller 29 through an air suction nozzle. The lower end of the air suction pipe 33 is communicated with the glove adsorption shell 26 through another air suction nozzle. A waste material winding frame 7 is fixed to the top of the adsorption and separation device 5 through bolts. A belt conveyor 6 is installed at the lower part inside the adsorption and separation device 5. In the present invention, a servo controller is provided for the first motor 10, the second motor 19, and the third motor 40 to control the rotation speeds of the first motor 10, the second motor 19, and the third motor 40. The wiring diagram of the power components and the power supply are common knowledge in the art. And the present invention mainly aims to protect mechanical devices, so the control method and wiring layout are not explained in detail in the present invention.
[0039] In one embodiment, an upper forming roller 15 and a lower forming roller 14 are installed in parallel inside the hot pressing and forming device 4. The roller shafts at the right ends of the upper forming roller 15 and the lower forming roller 14 extend to the outside of the hot pressing and forming device 4. Palm-shaped glove hot pressing molds 22 are fixed on the surfaces of the upper forming roller 15 and the lower forming roller 14. A second motor 19 is fixed on the right side wall of the hot pressing and forming device 4. A second drive belt 20 wound around the upper forming roller 15 and the lower forming roller 14 is arranged at the output end of the second motor 19. Circular through cavities are provided at the axles of the upper forming roller 15 and the lower forming roller 14. Electric heating rods 34 are inserted and installed inside the circular through cavities. Rectangular openings 16 are provided on both the left and right sides of the hot pressing and forming device 4. Guide seats 17 are installed on the roller shafts of the upper forming roller 15 and the lower forming roller 14. The guide seat 17 of the lower forming roller 14 is fixedly connected to the inner side surface of the rectangular opening 16. One end of the electric heating rod 34 is fixed with a mounting foot plate 35, and the mounting foot plate 35 is fixedly connected to the guide seat 17 of the upper forming roller 15 by screws. A threaded column 18 is inserted and installed at the top of the hot pressing and forming device 4. A nut 21 in contact with the top surface of the hot pressing and forming device 4 is installed on the surface of the threaded column 18. The lower end of the threaded column 18 extends into the rectangular opening 16 and is connected to the guide seat 17 of the upper forming roller 15. In this application, the forming principle of disposable gloves is as follows: The upper forming roller 15 and the lower forming roller 14 that roll synchronously are adopted, so that after the glove hot pressing molds 22 of the two are combined, the hot pressing and slitting of the double-layer film are realized through the heat conducted by the electric heating rods 34. Among them, the electric heating rods 34 are also equipped with a temperature controller and a temperature sensor. The principle of constant temperature heating is a well-known prior art and will not be described in detail.
[0040] In one embodiment, two square rods 9 are fixed on the upper part inside the unwinding device 2. Square sleeves 36 are sleeved and installed on the surfaces of each square rod 9. Fork-shaped limit clips 38 are welded on the surfaces of the square sleeves 36 facing the unwinding rod 8. A plum blossom knob 37 abutted against the square rod 9 is installed on the outer surface of the square sleeve 36 by threading. With this structure, by rotating the plum blossom knob 37 installed on the surface of the square sleeve 36 by threading, the plum blossom knob 37 is abutted against the surface of the square rod 9 to lock the square sleeve 36, maintaining the stability of the contact between the fork-shaped limit clip 38 and the end face of the film coil, preventing the film coil from falling off during the unwinding stage, and facilitating the replacement of the film coil.
[0041] In one embodiment, the guide seat 17 is composed of a support block and a bearing seat. U-shaped guide sleeves are fixed on the left and right sides of the guide seat 17 of the upper forming roller 15, and the U-shaped guide sleeves are connected to the inner side surface of the rectangular opening 16. With this structure, combined with the above settings of the threaded column 18 and the nut 21, it is easy to adjust the gap between the upper forming roller 15 and the lower forming roller 14 by rotating the nut 21, and maintain the stability of the height adjustment of the upper forming roller 15 through the U-shaped guide sleeve.
[0042] In one embodiment, a vertical plate 39 is welded to the surface of the waste winding rack 7, and a third motor 40 is fixedly installed on the surface of the vertical plate 39. The output end of the third motor 40 is fixedly connected with a winding rod 25 through a coupling. A guiding roller 24 is installed on the upper side of the adsorption and separation device 5 corresponding to the waste winding rack 7. With this structure, by starting the third motor 40 on the vertical plate 39 to work, the winding rod 25 installed at the output end of the third motor 40 continuously winds the film waste. Combining with the guiding function of the guiding roller 24, it is easy to separate the film waste and the disposable gloves.
[0043] In one embodiment, an anti-static conveyor belt is installed inside the belt conveyor 6, and the anti-static conveyor belt is located directly below the glove adsorption shell 26. With this structure, it is easy to prevent the accumulation and release of static electricity, which is beneficial to the subsequent picking and packaging of disposable gloves.
[0044] In one embodiment, a slope 28 is provided on one side surface of the glove adsorption shell 26 corresponding to the central adsorption hole 27, and a gap is reserved between the glove adsorption shell 26 and the waste adsorption roller 29. With this structure, it is easy for the film to pass through, and it is beneficial to introduce the separated disposable gloves into the belt conveyor 6.
[0045] In one embodiment, the inside of the waste adsorption roller 29 is a hollow structure, and a circular insertion hole is provided in the roller shaft at the left end of the waste adsorption roller 29. With this structure, the air extraction nozzle at the upper end of the air extraction pipe 33 can communicate with the cavity of the waste adsorption roller 29, and it is easy to adsorb the film waste during the rotation of the waste adsorption roller 29.
[0046] In one embodiment, rubber sleeves 23 are wrapped on the surfaces of the upper driving roller 11 and the lower driving roller 13, and screws connected to the upper driving roller 11 and the lower driving roller 13 are respectively inserted through both ends of the rubber sleeves 23. With this structure, it is easy to replace the rubber sleeves 23 with different thicknesses to meet the unwinding of film coils with different thicknesses.
[0047] In one embodiment, screw holes are provided on the surface of the unwinding device 2 facing the base 1, and screws connected to the base 1 are inserted through the screw holes. A film conveying port is provided on the upper surface of the unwinding device 2. Through the screw holes, it is easy to connect the unwinding device 2 with the base 1. Through the film conveying port, it is easy to convey the film to the conveying device 3.
[0048] Working principle:
[0049] First, sleeved the film coil on the unwinding rod 8 of the unwinding device 2. By moving the square sleeve 36 along the length direction of the square rod 9, the fork-shaped limit clamp 38 on the square sleeve 36 is urged to move to the tail of the unwinding rod 8, so that the fork-shaped limit clamp 38 contacts the end face of the film coil on the unwinding rod 8. Then, by rotating the plum blossom knob 37 installed on the surface thread of the square sleeve 36, the plum blossom knob 37 is urged to abut against the surface of the square rod 9 to lock the square sleeve 36, maintaining the stability of the contact between the fork-shaped limit clamp 38 and the end face of the film coil, preventing the film coil from falling off during the unwinding stage. By starting the first motor 10 of the conveying device 3 to work, the first motor 10 is urged to drive the first transmission belt 12 at its output end to rotate, so that the upper transmission roller 11 and the lower transmission roller 13 in the conveying device 3 rotate synchronously, and the rubber sleeve 23 on their surfaces drags the film coil to unwind. When hot pressing and forming, the electric heating rods 34 in the upper forming roller 15 and the lower forming roller 14 are started to be heated at a constant temperature by an external temperature controller, so that the heat generated by the electric heating rods 34 is transferred to the glove hot pressing die 22 on the surfaces of the upper forming roller 15 and the lower forming roller 14 in the form of heat conduction. At this time, as the output end of the second motor 19 drives the upper forming roller 15 and the lower forming roller 14 to rotate synchronously through the second transmission belt 20, the double-layer film passing through the gap between the upper forming roller 15 and the lower forming roller 14 is successively hot pressed and formed by the glove hot pressing die 22 until the parts of the double-layer film surface in contact with the glove hot pressing die 22 successively form disposable film gloves. Subsequently, by starting the centrifugal air blower 32 to work, the two air extraction nozzles on the air extraction pipe 33 respectively suck the air in the glove adsorption shell 26 and the waste adsorption roller 29. As the double-layer film of hot pressing and slitting passes through the gap between the glove adsorption shell 26 and the waste adsorption roller 29, combined with the continuous winding of the double-layer film by the winding rod 25 installed at the output end of the third motor 40, the central adsorption hole 27 of the glove adsorption shell 26 adsorbs the disposable glove in the middle of the double-layer film, and the waste adsorption roller 29 sucks the film waste through the edge adsorption holes 30 at both ends thereof, realizing the adsorption separation of the disposable glove and the film waste until the disposable glove slides into the belt conveyor 6 and is conveyed out under the action of the slope 28.
[0050] In the present invention, unless otherwise clearly specified and defined, terms such as "installation", "setting", "connection", "fixation", "swivel connection" and the like shall be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or integrated; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements or the interaction relationship between two elements. Unless otherwise clearly defined, for those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.
[0051] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. A glove knitting machine production line, characterized in that, It includes a base (1). A unwinding device (2) is fixed to the left end of the base (1). Two unwinding rods (8) are installed in parallel on the upper part inside the unwinding device (2). On the top surface of the base (1), a conveying device (3), a hot pressing and forming device (4) and an adsorption and separation device (5) are installed in sequence from left to right. Inside the conveying device (3), an upper driving roller (11) and a lower driving roller (13) are arranged in parallel. The roller shafts at the right ends of the upper driving roller (11) and the lower driving roller (13) extend to the outside of the conveying device (3). A first motor (10) is fixedly installed on the side wall surface of the conveying device (3). A first transmission belt (12) connected in a winding manner to the upper driving roller (11) and the lower driving roller (13) is arranged at the output end of the first motor (10). A waste material adsorption roller (29) is installed on the upper part inside the adsorption and separation device (5) through a shaft seat. A glove adsorption shell (26) connected to the inner wall of the adsorption and separation device (5) is arranged below the waste material adsorption roller (29). A group of edge adsorption holes (30) are formed at both ends of the waste material adsorption roller (29). A group of central adsorption holes (27) are formed in the middle of the top surface of the glove adsorption shell (26). A protective shell (31) is fixed to the left side wall of the adsorption and separation device (5). A centrifugal air blower (32) is installed inside the protective shell (31). An air suction pipe (33) is communicated with the air suction port of the centrifugal air blower (32). The upper end of the air suction pipe (33) is connected to the cavity of the waste material adsorption roller (29) through an air suction nozzle. The lower end of the air suction pipe (33) is communicated with the glove adsorption shell (26) through another air suction nozzle. A waste material winding rack (7) is fixed to the top of the adsorption and separation device (5) through bolts. A belt conveyor (6) is installed at the lower part inside the adsorption and separation device (5).
2. The glove machine production line according to claim 1, characterized in that, Inside the hot pressing and forming device (4), an upper forming roller (15) and a lower forming roller (14) are installed in parallel, and the roller shafts at the right ends of the upper forming roller (15) and the lower forming roller (14) extend to the outside of the hot pressing and forming device (4). Palm-shaped glove hot pressing molds (22) are fixed on the surfaces of the upper forming roller (15) and the lower forming roller (14). A second motor (19) is fixed on the right side wall of the hot pressing and forming device (4), and a second transmission belt (20) wound and connected to the upper forming roller (15) and the lower forming roller (14) is arranged at the output end of the second motor (19). Circular through cavities are formed at the axles of the upper forming roller (15) and the lower forming roller (14), and electric heating rods (34) are inserted and installed inside the circular through cavities. Rectangular openings (16) are formed on both the left and right sides of the hot pressing and forming device (4). Guide seats (17) are installed on the roller shafts of the upper forming roller (15) and the lower forming roller (14), and the guide seat (17) of the lower forming roller (14) is fixedly connected to the inner side surface of the rectangular opening (16). One end of the electric heating rod (34) is fixed with a mounting foot plate (35), and the mounting foot plate (35) is fixedly connected to the guide seat (17) of the upper forming roller (15) through screws. A threaded column (18) is inserted and installed at the top of the hot pressing and forming device (4), and a nut (21) in contact with the top surface of the hot pressing and forming device (4) is installed on the surface of the threaded column (18). The lower end of the threaded column (18) extends into the rectangular opening (16) and is connected to the guide seat (17) of the upper forming roller (15).
3. The glove-making machine production line according to claim 1, characterized in that Two square rods (9) are fixed on the upper part inside the unwinding device (2), and square sleeves (36) are sleeved and installed on the surfaces of each square rod (9). A fork-shaped limiting clip (38) is welded on the side of the square sleeve (36) facing the unwinding rod (8), and a plum blossom knob (37) abutted against the square rod (9) is installed on the outer surface of the square sleeve (36) by threading.
4. A glove machine production line according to claim 2, characterized in that, The guide seat (17) is composed of a support block and a bearing seat. U-shaped guide sleeves are fixed on both the left and right sides of the guide seat (17) of the upper forming roller (15), and the U-shaped guide sleeves are connected to the inner side surface of the rectangular opening (16).
5. A glove machine production line according to claim 1, characterized in that, A vertical plate (39) is welded on the surface of the waste winding rack (7), and a third motor (40) is fixedly installed on the surface of the vertical plate (39). A winding rod (25) is fixed at the output end of the third motor (40) through a coupling. A guide roller (24) is installed on the upper side of the adsorption and separation device (5) corresponding to the waste winding rack (7).
6. The glove machine production line according to claim 1, characterized in that, An anti-static conveyor belt is installed inside the belt conveyor (6) for transmission, and the anti-static conveyor belt is located directly below the glove adsorption shell (26).
7. A glove machine production line according to claim 1, characterized in that, A slope (28) is arranged on one side surface of the glove adsorption shell (26) corresponding to the central adsorption hole (27), and a gap is reserved between the glove adsorption shell (26) and the waste adsorption roller (29).
8. A glove machine production line according to claim 1, characterized in that, The waste adsorption roller (29) has a hollow structure inside, and a circular insertion hole is formed in the roller shaft at the left end of the waste adsorption roller (29).
9. A glove machine production line according to claim 1, characterized in that, The surfaces of the upper driving roller (11) and the lower driving roller (13) are both wrapped with rubber sleeves (23), and screws connected to the upper driving roller (11) and the lower driving roller (13) are respectively inserted through both ends of the rubber sleeve (23).
10. A glove machine production line according to claim 1, characterized in that, A screw hole is formed on the surface of the unwinding device (2) facing the base (1), and a screw connected to the base (1) is inserted through the screw hole. A film conveying port is formed on the upper surface of the unwinding device (2).