A conveying device and method for glove production

By designing the conveying device for glove production, using a hand mold kit, inflatable hole and electronic pressure gauge to detect sealing, the problem of water leakage during the conveying process of rubber gloves is solved, automatic detection and processing is realized, and production efficiency and quality are improved.

CN119262660BActive Publication Date: 2025-07-22JIANGYAN DISTRICT LIHUA GLOVES FACTORY
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Patent Information

Application Number
CN202411679696.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-22
Publication Date
2025-07-22
Estimated Expiration
2044-11-22

AI Technical Summary

Technical Problem

Existing glove conveying equipment lacks the function of testing the sealing properties of rubber gloves, resulting in possible water leakage during production and transportation.

Method used

A conveyor device for production of gloves is designed, including a symmetrically arranged bracket, a rotary connecting roller and a conveyor belt. A hand mold kit is provided on the conveyor belt with a limiting plate and a mounting plate. The sealing property is detected through the inflatable hole and an electronic pressure gauge. When air leakage is lost, the hand mold kit flips and peels the gloves, and the automatic separation and flip of the gloves are achieved through the ply plate and the L-shaped block.

Benefits of technology

It realizes automatic sealing detection of rubber gloves during the transportation process, timely peel off air leakage gloves and differentiate treatment, improving production efficiency and quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a conveying device and method for glove production, which relates to the technical field of conveying devices for glove production. A conveying device for glove production includes symmetrically arranged brackets, and further includes: a connecting roller rotatably connected to the brackets; a conveyor belt rotatably arranged on the connecting rollers of the symmetrically arranged brackets, and limiting plates are fixedly connected to both ends of the connecting roller for limiting the conveyor belt; during the use of the present invention, it can not only convey and transfer rubber gloves on a long-distance production line, but also automatically detect the airtightness of rubber gloves during the conveying process. Moreover, when air leakage is detected, the leaking rubber gloves can be automatically peeled off from the hand mold kit, and the rubber gloves can be turned over to increase differentiated features and effectively avoid confusion. This device is used in the conveying process of rubber gloves and can effectively improve production efficiency and production quality.
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Description

Technical Field

[0001] The present invention belongs to the technical field of conveying devices for glove production, and specifically relates to a conveying device for glove production. Background Art

[0002] During the glove production process, it is usually necessary to convey gloves between different process equipment. Therefore, glove conveying equipment is particularly important in the processing and production of gloves;

[0003] Among glove categories, the demand for rubber gloves is particularly prominent, and the quality of rubber gloves determines the user experience of rubber gloves; rubber gloves are usually used to completely isolate the hand from the contacted object, such as liquid. Therefore, the sealing performance of rubber gloves is particularly important. If rubber gloves are damaged during production, transportation, etc., water leakage will occur during use. However, the existing glove conveying line lacks the function of testing the sealing performance of rubber gloves during the glove conveying process. For this reason, a conveying device for glove production is proposed to perform a sealing test during the process of conveying gloves on a production line. Summary of the Invention

[0004] The technical problem to be solved by the present invention is to overcome the deficiencies of the prior art and provide a conveying device for glove production that can overcome or at least partially solve the above problems.

[0005] To solve the above technical problem, the basic concept of the technical solution adopted by the present invention is: a conveying device for glove production, including symmetrically arranged brackets, and further including: a connecting roller rotatably connected to the brackets; a conveyor belt rotatably arranged on the connecting rollers of the symmetrically arranged brackets, and limit plates are fixedly connected to both ends of the connecting roller to limit the conveyor belt; mounting plates circumferentially arranged on the outer periphery of the conveyor belt, and the mounting plates are symmetrically arranged on the conveyor belt; a hand mold kit located on the mounting plates, L-shaped blocks are slidably connected to both side surfaces of the hand mold kit, and gloves are put on the hand mold kit; an inflation hole is opened on the hand mold kit; two guiding members are respectively arranged on both sides of the conveyor belt, and the guiding members are close to the upper surface of the conveyor belt; two horizontally reciprocating third cylinders are respectively arranged on both sides at one end in the moving direction of the conveyor belt, and a clamping plate is fixedly connected to the telescopic end of the third cylinder. When the hand mold kit with gloves moves from the inclined area to the horizontal area of the guiding member, gas is inflated into the gloves through the inflation hole, and the air pressure inside the gloves is detected by an electronic air pressure gauge. When the gloves leak air, the hand mold kit turns downward, and the L-shaped blocks turn over and peel off the gloves from the hand mold kit and drop them on the conveyor belt. When the gloves do not leak air, when the gloves reach one end of the conveyor belt, the symmetric third cylinders clamp the gloves through the clamping plates, so that the gloves are separated from the hand mold kit and placed loosely on the conveyor belt.

[0006] Preferably, the hand mold kit includes a first hand mold which has a palm and five fingers corresponding to the glove. Grooves are formed on both side surfaces of the first hand mold, and avoidance grooves are formed on both side surfaces of the first hand mold for avoiding the L-shaped blocks.

[0007] Preferably, the hand mold kit includes a second hand mold which includes a palm. Sunk grooves are formed on both side surfaces of the palm of the second hand mold, and recessed grooves are formed on both side surfaces of the second hand mold. The L-shaped blocks are located in the recessed grooves.

[0008] Preferably, a connecting cylinder is fixedly connected to the mounting plate. A connecting rod is slidably and rotatably connected in the connecting cylinder. Both ends of the connecting rod penetrate through both ends of the connecting cylinder. A piston is fixedly connected to the connecting rod located inside the connecting cylinder. An air cavity is formed between the piston and the connecting cylinder. When the end of the connecting rod close to the guiding member moves from the inclined area to the horizontal area, the connecting rod is pushed, so that the piston squeezes the gas in the air cavity and leads it into the inflation hole; the electronic air pressure gauge is installed on the connecting cylinder and communicated with the air cavity, and an intake check valve is fixedly communicated with the connecting cylinder.

[0009] Preferably, a spring is sleeved on the connecting rod. One end of the spring is fixedly connected to the piston, and the other end of the spring is fixedly connected to the bottom wall of the connecting cylinder.

[0010] Preferably, a connecting shaft is fixedly connected to the end of the connecting rod close to the mounting plate, and a mounting block is fixedly connected to the end of the connecting shaft away from the connecting rod. The hand mold kit is installed on the mounting block. Second cylinders are arranged on both sides of the conveyor belt. A friction pad is fixedly connected to the telescopic end of the second cylinder. The friction pad is located in the horizontal area of the guiding member; a friction wheel is fixedly connected to the end of the connecting rod away from the mounting plate. The friction wheel corresponds to the friction pad. When the glove leaks air, the corresponding second cylinder pushes the friction pad close to the horizontal area. When the friction wheel passes by the friction pad, the connecting rod rotates 90 degrees, so that the hand mold kit is turned downward.

[0011] Preferably, a connecting frame is fixedly connected to the connecting rod, and a first cylinder is fixedly connected to the connecting frame. The L-shaped block is installed on the telescopic end of the first cylinder.

[0012] Preferably, the connecting pipe on the first cylinder passes through the mounting plate, and a second air duct is provided in the connecting rod, one end of the second air duct passes through the outer periphery of the connecting rod close to the guide member, and an air outlet at the other end of the second air duct passes through the outer periphery of the connecting rod, and a sealing sleeve is fixedly connected to the bottom wall of the connecting tube, and is used to seal the air outlet when the air outlet is located in the air cavity; a first air duct is also provided in the connecting rod, one end of the first air duct passes through the outer periphery of the connecting rod and is connected to the air cavity, and the other end of the first air duct leads to the inflation hole.

[0013] Preferably, it also includes electric slides located on both sides of one end of the conveyor belt in the forward direction, and the third cylinder is installed on the slide seat of the electric slide.

[0014] A method for using a conveying device for glove production mainly comprises the following steps:

[0015] S1. Put the rubber gloves on the hand model kit, and the conveyor belt conveys the rubber gloves in the forward direction of the conveyor belt while rotating;

[0016] S2. When the hand model kit provided with the rubber glove passes through the guide, the rubber glove is automatically inflated, and the sealing is tested by an electronic pressure gauge;

[0017] S3. The qualified rubber gloves are separated from the hand model kit by the splint and fall onto the conveyor belt;

[0018] S4. The unqualified rubber gloves are peeled off from the hand mold kit by the L-shaped block and fall onto the conveyor belt;

[0019] S5. Complete the rubber gloves production and conveying operations.

[0020] After adopting the above technical scheme, the present invention has the following beneficial effects compared with the prior art: during use, the present invention can not only transport and transfer rubber gloves on a long-distance production line, but also automatically detect the sealing of the rubber gloves during the transportation process, and when air leakage is detected, the leaking rubber gloves can be automatically peeled off from the hand mold kit, and the rubber gloves can be turned over to increase the distinguishing features and effectively avoid confusion. The device is used in the conveying process of rubber gloves to effectively improve production efficiency and production quality. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] In the attached picture:

[0022] Figure 1 This is a schematic diagram of the three-dimensional structure of a conveying device for glove production proposed by the present invention;

[0023] Figure 2 A top view of a conveying device for glove production proposed by the present invention;

[0024] Figure 3 Schematic diagram of the structure of the third cylinder and the clamping plate of a conveying device for glove production proposed by the present invention;

[0025] Figure 4 Schematic diagram of the structure of the second cylinder and the friction pad of a conveying device for glove production proposed by the present invention;

[0026] Figure 5 For a conveying device for glove production proposed by the present invention Figure 4 Schematic diagram of the structure at position A;

[0027] Figure 6 Schematic diagram of the structure of the mounting plate and the connecting cylinder of a conveying device for glove production proposed by the present invention;

[0028] Figure 7 Schematic diagram of the structure of the connecting rod and the air cavity of a conveying device for glove production proposed by the present invention;

[0029] Figure 8 Schematic diagram of the structure of the connecting rod and the air cavity of a conveying device for glove production proposed by the present invention;

[0030] Figure 9 Schematic diagram of the structure of the first air duct, the second air duct and the air outlet of a conveying device for glove production proposed by the present invention;

[0031] Figure 10 Schematic diagram of the structure of the second hand mold of a conveying device for glove production proposed by the present invention.

[0032] In the figure: 1, bracket; 11, conveyor belt; 12, mounting plate; 13, connecting cylinder; 131, connecting rod; 132, piston; 133, air cavity; 134, spring; 135, friction wheel; 136, electronic pressure gauge; 137, intake check valve; 14, connecting shaft; 142, mounting block; 143, first air duct; 15, first hand mold; 151, groove; 152, inflation hole; 150, second hand mold; 1501, sink; 1502, recessed groove; 16, first cylinder; 161, connecting frame; 162, L-shaped block; 163, connecting frame; 164, connecting pipe; 165, second air duct; 166, air outlet; 167, sealing sleeve; 17, guiding member; 171, inclined area; 172, horizontal area; 18, second cylinder; 181, friction pad; 19, electric sliding table; 191, third cylinder; 192, clamping plate; 2, transmission belt. Detailed implementation mode

[0033] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the following will clearly and completely describe the technical solutions in the embodiments in conjunction with the accompanying drawings in the embodiments of the present invention. The following embodiments are used to illustrate the present invention but are not intended to limit the scope of the present invention.

[0034] Embodiment 1: Refer to Figures 1 - 10 , a conveying device for glove production, including symmetrically arranged brackets 1, and further including: a connecting roller rotatably connected to the bracket 1; a conveyor belt 11 rotatably arranged on the connecting rollers of the symmetric brackets 1, and limit plates are fixedly connected to both ends of the connecting roller to limit the conveyor belt 11; mounting plates 12 circumferentially arranged on the outer periphery of the conveyor belt 11, and the mounting plates 12 are symmetrically arranged on the conveyor belt 11; a hand mold kit located on the mounting plate 12, and L-shaped blocks 162 are slidably connected to both sides of the hand mold kit, and the two L-shaped blocks 162 are connected by a connecting frame 163 to put the glove on the hand mold kit; an inflation hole 152 is opened on the hand mold kit; two guiding members 17 are respectively arranged on both sides of the conveyor belt 11, and the guiding members 17 are close to the upper surface of the conveyor belt 11; two horizontally reciprocating third cylinders 191 are respectively arranged on both sides at one end in the moving direction of the conveyor belt 11, and a clamping plate 192 is fixedly connected to the telescopic end of the third cylinder 191. When the hand mold kit with the glove moves from the inclined area 171 to the horizontal area 172 of the guiding member 17, the inflation hole 152 inflates the glove with gas, and the air pressure in the glove is detected by an electronic pressure gauge 136. When the glove leaks air, the hand mold kit flips downward, and the L-shaped block 162 turns over and peels off the glove from the hand mold kit and drops it on the conveyor belt 11. When the glove does not leak air, when the glove reaches one end of the conveyor belt 11, the symmetric third cylinders 191 clamp the glove through the clamping plates 192, so that the glove is separated from the hand mold kit and placed loosely on the conveyor belt 2;

[0035] A connecting cylinder 13 is fixedly connected to the mounting plate 12. A connecting rod 131 is slidably and rotatably connected in the connecting cylinder 13. Both ends of the connecting rod 131 penetrate through both ends of the connecting cylinder 13. A piston 132 is fixedly connected to the connecting rod 131 located inside the connecting cylinder 13. An air chamber 133 is formed between the piston 132 and the connecting cylinder 13. When the end of the connecting rod 131 close to the guiding member 17 moves from the inclined area 171 to the horizontal area 172, the connecting rod 131 is pushed, so that the piston 132 squeezes the gas in the air chamber 133 into the inflation hole 152; the electronic pressure gauge 136 is installed on the connecting cylinder 13 and is communicated with the air chamber 133. An intake one-way valve 137 is fixedly communicated with the connecting cylinder 13. The intake one-way valve 137 is used to suck air into the air chamber 133 when the piston 132 resets;

[0036] A spring 134 is sleeved on the connecting rod 131. One end of the spring 134 is fixedly connected to the piston 132, and the other end of the spring 134 is fixedly connected to the bottom wall of the connecting cylinder 13;

[0037] A connecting shaft 14 is fixedly connected to one end of the connecting rod 131 close to the mounting plate 12. An installation block 142 is fixedly connected to the end of the connecting shaft 14 away from the connecting rod 131. The hand mold kit is installed on the installation block 142. Second cylinders 18 are arranged on both sides of the conveyor belt 11. A friction pad 181 is fixedly connected to the telescopic end of the second cylinder 18. The friction pad 181 is located in the horizontal area 172 of the guiding member 17. A friction wheel 135 is fixedly connected to the end of the connecting rod 131 away from the mounting plate 12. The friction wheel 135 corresponds to the friction pad 181. It should be understood that convex teeth are provided on the outer circumference of the friction wheel 135, and corresponding concave tooth grooves are provided on the surface of the friction pad 181. Therefore, when the friction wheel 135 contacts the friction pad 181, the convex teeth and concave tooth grooves can prevent the friction wheel 135 from slipping, enabling the connecting rod 131 to meet the rotation angle. When the glove leaks air, the corresponding second cylinder 18 pushes the friction pad 181 close to the horizontal area 172. When the friction wheel 135 passes through the friction pad 181, the connecting rod 131 rotates 90 degrees, causing the hand mold kit to turn downward;

[0038] A connecting frame 161 is fixedly connected to the connecting rod 131. A first cylinder 16 is fixedly connected to the connecting frame 161. An L-shaped block 162 is installed on the telescopic end of the first cylinder 16;

[0039] A connecting pipe 164 on the first cylinder 16 leads into the mounting plate 12. A second air passage 165 is provided in the connecting rod 131. One end of the second air passage 165 penetrates through the outer circumference of the connecting rod 131 close to the guiding member 17. The air outlet 166 at the other end of the second air passage 165 penetrates through the outer circumference of the connecting rod 131. A sealing sleeve 167 is fixedly connected to the bottom wall of the connecting cylinder 13. When the air outlet 166 is located in the air chamber 133, it is used to block the air outlet 166 to prevent the gas in the air chamber 133 from entering the second air passage 165 when the piston 132 squeezes the gas in the air chamber 133; A first air passage 143 is also provided in the connecting rod 131. One end of the first air passage 143 penetrates through the outer circumference of the connecting rod 131 and is connected to the air chamber 133, and the other end of the first air passage 143 leads to the inflation hole 152;

[0040] Also included are electric sliding tables 19 on both sides at one end in the advancing direction of the conveyor belt 11. A third cylinder 191 is installed on the slide of the electric sliding table 19;

[0041] When the device is in use, taking Figure 1 the perspective as an example, the following description of the working principle is based on the conveyor belt 11 rotating clockwise;

[0042] The manual or robotic arm is located on the left side of the conveyor belt 11 and is used to put the rubber gloves on the hand mold kit on the conveyor belt 11. Since the hand mold kit is installed on the outer periphery of the conveyor belt 11 through the mounting plate 12, when the mounting plate 12 is parallel to the length direction of the conveyor belt 11, the hand mold kit will be vertical. At this time, it is easier for the manual or robotic arm to put the rubber gloves on the hand mold kit;

[0043] After the rubber gloves are put on the hand mold kit, under the rotation of the conveyor belt 11, the rubber gloves are conveyed forward by the conveyor belt 11, which enables the rubber gloves to be conveyed and transferred in a production workshop in an assembly line manner. During the movement of the rubber gloves, when the connecting rod 131 moves along the inclined area 171 and the horizontal area 172 of the guiding member 17, the connecting rod 131 will be pushed, causing the piston 132 to slide in the connecting cylinder 13 and squeezing the gas in the air chamber 133. The gas will enter the inflation hole 152 through the first air passage 143 and be discharged. After the rubber gloves are put on the hand mold kit, the inflation hole 152 is located in the rubber gloves. Therefore, the gas will be filled into the rubber gloves. Since the rubber gloves are elastic, when they are put on the hand mold kit, the rubber gloves can closely fit the hand mold kit. Therefore, when the gas in the air chamber 133 is filled into the rubber gloves, no air leakage will occur;

[0044] Therefore, when the rubber gloves and the connecting cylinder 13 move to the horizontal area 172, the connecting rod 131 is no longer pushed. At this time, the pressure of the gas filled into the rubber gloves is constant. Whether the rubber gloves are leaking can be judged by the value of the electronic air pressure gauge 136. When the value of the electronic air pressure gauge 136 is less than the preset value, it means air leakage. When the value of the electronic air pressure gauge 136 is greater than the preset value, or within the positive and negative deviation range of the preset value, it means no air leakage;

[0045] When there is no air leakage, since the connecting rod 131 is pushed, the hand mold kits symmetrically arranged on the conveyor belt 11 will move closer to each other. When moving to the end of the forward direction of the conveyor belt 11, that is, the right side of the conveyor belt 11, the third cylinder 191 on the electric sliding table 19 will push the clamping plate 192 close to the hand mold kit and clamp the front ends of the rubber gloves on the two hand mold kits (it should be understood that when the rubber gloves are put on the hand mold kit, the finger parts of the rubber gloves do not contact the hand mold kit). Subsequently, the sliding seat on the electric sliding table 19 quickly moves away from the conveyor belt 11 direction, separating the rubber gloves from the hand mold kit. When the separated rubber gloves are above the conveyor belt 2, the telescopic end of the third cylinder 191 retracts, causing the rubber gloves to fall on the conveyor belt 2 and move to the next conveying process;

[0046] When the rubber glove leaks air, the second cylinder 18 pushes the friction pad 181 to approach the lower part of the friction wheel 135 at one end of the connecting rod 131 (it should be understood that the second cylinder 18 is located at the rear position in the middle of the horizontal area 172, which enables the electronic pressure gauge 136 to have enough time to judge whether the rubber glove leaks air). When the friction wheel 135 contacts the friction pad 181, the connecting rod 131 will rotate, and drive the spring 134 to undergo a torsional deformation. When the connecting rod 131 rotates, one end of the air outlet 166 of the second air passage 165 will rotate to correspond to one end of the connecting pipe 164, which enables the gas in the high-pressure air pipe connected to the nozzle on the second air passage 165 to be filled into the first cylinder 16, causing the telescopic end of the first cylinder 16 to extend, pushing the L-shaped block 162 towards the front end of the hand mold kit. When the L-shaped block 162 moves, the rubber glove will be turned over, and then the rubber glove will be peeled off from the hand mold kit and fall on the conveyor belt 11. When the connecting rod 131 rotates, it will also drive the hand mold kit to turn downwards, making one end of the hand mold kit face downwards, thus facilitating the rubber glove to fall on the conveyor belt 11 under its own gravity after being peeled off. A collection box is placed at the front end in the advancing direction of the conveyor belt 11 to collect the rubber gloves that do not meet the requirements;

[0047] The turned-over rubber glove has obvious turning-over features, so it can be avoided from being mixed with the non-turned-over rubber gloves;

[0048] It should be understood that the air outlet 166 of the second air passage 165 is located eccentrically with respect to the axis of the connecting rod 131. The connecting pipe 164 leads into the joint in the mounting plate 12, and the end of the joint close to the connecting rod 131 is open. Therefore, when the connecting rod 131 rotates by 90 degrees, the air outlet 166 can be connected to the connecting pipe 164, and the connecting pipe 164 has a certain degree of extensibility and bendability, and can bend adaptively when the connecting rod 131 rotates;

[0049] When the friction wheel 135 is separated from the friction pad 181, after the thrust received by the connecting rod 131 decreases or when it is separated from the friction pad 181, when the spring 134 returns to its original position, the connecting rod 131 also follows to return to its original position, causing the air outlet 166 to be misaligned with the connecting pipe 164, and the gas no longer enters the connecting pipe 164. The gas filled in the first cylinder 16 will slowly be discharged through the air release valve provided on the first cylinder 16. Therefore, when the rubber glove is subsequently sleeved on the hand mold kit, the piston rod of the first cylinder 16 can be pushed back to the bottom of the first cylinder 16;

[0050] In another embodiment, a tension spring is connected between the piston rod in the first cylinder 16 and the first cylinder 16. Therefore, after the second air passage 165 stops inflating the first cylinder 16, the tension spring pulls the piston rod in the first cylinder 16 to automatically return to its original position, and the gas in the first cylinder 16 is discharged through the air release valve during the return process;

[0051] Therefore, during the use of this device, it can not only convey and transfer rubber gloves on a long-distance production line, but also automatically detect the airtightness of rubber gloves during the conveying process. And when air leakage is detected, the leaking rubber gloves can be automatically peeled off from the hand mold kit, and the rubber gloves can be turned over to increase differentiated features and effectively avoid confusion. This device is used in the conveying process of rubber gloves and can effectively improve production efficiency and production quality.

[0052] Example 2: Refer to Figure 6 , a conveying device for glove production, which is basically the same as Example 1. Further: The hand mold kit includes a first hand mold 15. The first hand mold 15 has a palm and five fingers corresponding to the glove. Grooves 151 are opened on both side surfaces of the first hand mold 15, and avoidance grooves are opened on both side surfaces of the first hand mold 15 for avoiding the L-shaped block 162;

[0053] The setting of the avoidance groove can ensure that when the L-shaped block 162 is pushed, it will not be hindered. The fingers provided on the hand mold kit can prevent the finger part of the rubber glove from drooping after the rubber glove is sleeved and facilitate manual sleeving of the rubber glove on the hand mold kit;

[0054] The provided grooves 151 can enable the gas to quickly fill the rubber glove when the inflation hole 152 is inflated, avoiding inaccurate detection caused by unfilled parts in the rubber glove;

[0055] During the sleeving process, the opening part of the rubber glove is located on the L-shaped block 162.

[0056] Example 3: Refer to Figure 10 , a conveying device for glove production, which is basically the same as Example 1. Further: The hand mold kit includes a second hand mold 150. The second hand mold 150 includes a palm. Sunk grooves 1501 are opened on both side surfaces of the palm of the second hand mold 150, and recessed grooves 1502 are opened on both side surfaces of the second hand mold 150. The L-shaped block 162 is located in the recessed grooves 1502;

[0057] The L-shaped block 162 is located in the recessed grooves 1502, making the surface of the L-shaped block 162 flush with the surface of the second hand mold 150, which can prevent air leakage caused by gaps after the rubber glove is sleeved;

[0058] The second hand mold 150 is set as a palm, which can further facilitate falling off after being peeled off.

[0059] Example 4: Refer to Figures 1 - 10 , a method for using a conveying device for glove production, mainly including the following steps:

[0060] S1. Slip a rubber glove onto the hand mold kit. As the conveyor belt 11 rotates, it conveys the rubber glove in the advancing direction of the conveyor belt 11.

[0061] S2. When the hand mold kit with the rubber glove on it passes by the guiding member 17, air is automatically inflated into the rubber glove, and a leak test is performed using the electronic pressure gauge 136.

[0062] S3. The qualified rubber gloves are detached from the hand mold kit by the clamping plate 192 and fall onto the conveyor belt 2.

[0063] S4. The unqualified rubber gloves are turned over and peeled off from the hand mold kit by the L-shaped block 162 and fall onto the conveyor belt 11.

[0064] S5. Complete the production and conveying operation of the rubber gloves.

[0065] During the use of the present invention, it can not only convey and transfer rubber gloves on a long-distance production line, but also automatically detect the airtightness of rubber gloves during the conveying process. And when air leakage is detected, the leaking rubber gloves can be automatically peeled off from the hand mold kit, and the rubber gloves can be turned over to increase the differentiating features, effectively avoiding confusion. This device is used in the conveying process of rubber gloves and can effectively improve production efficiency and production quality.

[0066] The above are only the preferred embodiments of the present invention, and do not impose any form of limitation on the present invention. Although the present invention has been disclosed above with the preferred embodiments, it is not intended to limit the present invention. Any person skilled in the art can make some changes or modifications to the above-mentioned technical content to form equivalent embodiments within the scope of the technical solution of the present invention. However, as long as it does not depart from the technical solution of the present invention, any simple modification, equivalent change and modification made to the above embodiments according to the technical essence of the present invention still fall within the scope of the present invention.

Claims

1. A conveying device for glove production, comprising symmetrically arranged brackets (1), characterized in that, It further includes: A connecting roller rotatably connected to the bracket (1); A conveyor belt (11) rotatably arranged on the connecting rollers of the symmetric brackets (1), and limiting plates are fixedly connected to both ends of the connecting roller for limiting the conveyor belt (11); Mounting plates (12) circumferentially arranged on the outer periphery of the conveyor belt (11), and the mounting plates (12) are symmetrically arranged on the conveyor belt (11); A hand mold kit located on the mounting plate (12), and L-shaped blocks (162) are slidably connected to both side surfaces of the hand mold kit, and a glove is put on the hand mold kit; An inflation hole (152) is opened on the hand mold kit; Two guiding members (17) are respectively arranged on both sides of the conveyor belt (11), and the guiding members (17) are close to the upper surface of the conveyor belt (11); Two horizontally reciprocating third cylinders (191) are respectively arranged on both sides at one end in the moving direction of the conveyor belt (11), and a clamping plate (192) is fixedly connected to the telescopic end of the third cylinder (191); When the hand mold kit with a glove sleeved thereon moves from the inclined area (171) of the guiding member (17) to the horizontal area (172), the inflation hole (152) inflates gas into the glove, and the air pressure in the glove is detected by an electronic pressure gauge (136); When the glove leaks air, the hand mold kit turns downward, and the L-shaped block (162) turns over and peels off the glove from the hand mold kit and drops it on the conveyor belt (11); When the glove does not leak air, when the glove reaches one end of the conveyor belt (11), the symmetric third cylinders (191) clamp the glove through the clamping plates (192), so that the glove is separated from the hand mold kit and placed loosely on the conveyor belt (2); A connecting cylinder (13) is fixedly connected to the mounting plate (12), a connecting rod (131) is slidably and rotatably connected in the connecting cylinder (13), both ends of the connecting rod (131) penetrate through both ends of the connecting cylinder (13), a piston (132) is fixedly connected to the connecting rod (131) located in the connecting cylinder (13), and an air chamber (133) is formed between the piston (132) and the connecting cylinder (13); When the end of the connecting rod (131) close to the guiding member (17) moves from the inclined area (171) to the horizontal area (172), the connecting rod (131) is pushed, so that the piston (132) squeezes the gas in the air chamber (133) into the inflation hole (152); The electronic pressure gauge (136) is installed on the connecting cylinder (13) and communicated with the air chamber (133), and an intake one-way valve (137) is fixedly communicated with the connecting cylinder (13); A spring (134) is sleeved on the connecting rod (131), one end of the spring (134) is fixedly connected to the piston (132), and the other end of the spring (134) is fixedly connected to the bottom wall of the connecting cylinder (13); One end of the connecting rod (131) close to the mounting plate (12) is fixedly connected with a connecting shaft (14). One end of the connecting shaft (14) away from the connecting rod (131) is fixedly connected with a mounting block (142). The hand mold kit is mounted on the mounting block (142). On both sides of the conveyor belt (11), there are second cylinders (18). A friction pad (181) is fixedly connected to the telescopic end of the second cylinder (18). The friction pad (181) is located in the horizontal area (172) of the guiding member (17). One end of the connecting rod (131) away from the mounting plate (12) is fixedly connected with a friction wheel (135). The friction wheel (135) corresponds to the friction pad (181). When the glove leaks air, the corresponding second cylinder (18) pushes the friction pad (181) close to the horizontal area (172). When the friction wheel (135) passes through the friction pad (181), the connecting rod (131) rotates 90 degrees to turn the hand mold kit downward.

2. The conveying device for glove production according to claim 1, wherein, The hand mold kit includes a first hand mold (15). The first hand mold (15) has a palm and five fingers corresponding to the glove. Grooves (151) are formed on both side surfaces of the first hand mold (15). Avoidance grooves are formed on both side surfaces of the first hand mold (15) for avoiding the L-shaped block (162).

3. A conveying device for glove production according to claim 1, characterized in that, The hand mold kit includes a second hand mold (150). The second hand mold (150) includes a palm. Sunk grooves (1501) are formed on both side surfaces of the palm of the second hand mold (150). Indented grooves (1502) are formed on both side surfaces of the second hand mold (150). The L-shaped block (162) is located in the indented groove (1502).

4. A conveying device for glove production according to claim 1, characterized in that, A connecting frame (161) is fixedly connected to the connecting rod (131). A first cylinder (16) is fixedly connected to the connecting frame (161). The L-shaped block (162) is mounted on the telescopic end of the first cylinder (16).

5. The conveying device for glove production according to claim 4, wherein A connecting pipe (164) on the first cylinder (16) leads into the mounting plate (12). A second air passage (165) is formed in the connecting rod (131). One end of the second air passage (165) penetrates through the outer periphery of the connecting rod (131) close to the guiding member (17). The air outlet of the other end of the second air passage (165) penetrates through the outer periphery of the connecting rod (131). A sealing sleeve (167) is fixedly connected to the bottom wall of the connecting cylinder (13). When the air outlet (166) is located in the air cavity (133), it is used to block the air outlet (166). A first air passage (143) is further formed in the connecting rod (131). One end of the first air passage (143) penetrates through the outer periphery of the connecting rod (131) and is communicated with the air cavity (133). The other end of the first air passage (143) leads to the inflation hole (152).

6. The conveying device for glove production according to claim 1, characterized in that, It further includes electric slides (19) on both sides at one end in the advancing direction of the conveyor belt (11). A third cylinder (191) is mounted on the slide base of the electric slide (19).

7. A method for using a conveying device for glove production, including the conveying device for glove production according to claim 5, characterized in that, It mainly includes the following steps: S1. Slip a rubber glove onto the hand mold kit. The conveyor belt (11) rotates to convey the rubber glove in the forward direction of the conveyor belt (11). S2. When the hand mold kit with a rubber glove on it passes by the guiding member (17), air is automatically inflated into the rubber glove, and a leak test is conducted using an electronic pressure gauge (136). S3. Qualified rubber gloves are detached from the hand mold kit by the clamping plate (192) and fall onto the conveyor belt (2). S4. Unqualified rubber gloves are turned over and peeled off the hand mold kit by the L-shaped block (162) and fall onto the conveyor belt (11). S5. Complete the production and conveying operation of the rubber gloves.

Citation Information

Patent Citations

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    CN108313378A

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