Gum dipping device and glove gum dipping system

By incorporating a stirring assembly and a flow guiding component into the impregnation device, the problems of complex structure and glue residue generation were solved, resulting in cost reduction and increased production efficiency.

CN116587502BActive Publication Date: 2026-02-10李全
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Patent Information

Application Number
CN202310592249.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-05-24
Publication Date
2026-02-10
Estimated Expiration
2043-05-24

AI Technical Summary

Technical Problem

Existing dipping equipment has a complex structure and high manufacturing cost, and the adhesive liquid is prone to generating adhesive residue during use, which affects production efficiency.

Method used

A stirring assembly is installed in the glue tank. The stirring assembly includes multiple rotating shafts and flow guiding components. Flow guiding surfaces are set on both sides of the flow guiding components to form flow guiding intervals with gradually changing widths. The rotation of the rotating shafts drives the glue to circulate, reducing the undulations and unevenness of the glue surface and simplifying the structure of the moving parts.

Benefits of technology

It reduced manufacturing costs, decreased the generation of adhesive residue, improved the quality of adhesive impregnation and production efficiency, and extended the equipment cleaning cycle.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application provides a dipping device and a glove dipping system. The dipping device comprises a glue tank, a stirring assembly, the stirring assembly comprising a plurality of rotating shafts, at least one flow guide component and a first driving component, the rotating shafts being provided with stirring blades, the rotating shafts being arranged side by side and rotatably arranged in the glue tank, the flow guide component being arranged between two adjacent rotating shafts, one side of the flow guide component forming a first flow guide surface, and the other side of the flow guide component forming a second flow guide surface, wherein the first flow guide surface and the adjacent rotating shaft form a first flow guide interval, and the second flow guide surface and the adjacent rotating shaft form a second flow guide interval, and along the rotating direction of the rotating shaft, the width of the first flow guide interval gradually increases upwards, and the width of the second flow guide interval gradually increases downwards. The structure of the dipping device is simplified to reduce the manufacturing cost, and the generation of glue residues is reduced to improve the dipping quality and production efficiency.
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Description

Technical Field

[0001] This invention relates to mechanical devices, and more particularly to a dipping apparatus and a glove dipping system. Background Technology

[0002] Gloves are common items in daily life and industrial production, with rubber-dipped gloves being widely used in industrial production due to their good protective properties. In the production of work gloves, the outer surface of the glove body needs to be dipped in rubber. During processing, the glove body is typically placed on a hand mold, and driven by a conveyor chain, the hand mold moves the glove body to the dipping device, immersing it in the rubber solution to complete the dipping process. However, since the rubber solution in the dipping device is generally made of natural latex or nitrile latex, it is necessary to ensure that the rubber solution maintains circulation within the device to prevent the formation of a rubber film on the surface. For example, Chinese Patent Publication No. CN218256264 U discloses a dipping tank and glove dipping system, which uses a chain to drive a guide rod to circulate within the tank, preventing the surface of the rubber solution from drying and forming a skin. Simultaneously, an agitator is installed at the bottom of the tank to ensure the rubber solution at the bottom of the tank continues to circulate. The complex structure and high manufacturing cost result from the need to incorporate both a circulating guide rod and a stirrer within the housing. More importantly, the frequent contact and friction between the chain and sprocket within the housing negatively impacts the adhesive, leading to adhesive residue. This necessitates frequent cleaning of the housing, disrupting continuous equipment operation and reducing production efficiency. Therefore, the technical problem this invention aims to solve is to design a simple, low-cost technology that minimizes adhesive residue generation. Summary of the Invention

[0003] The technical problem to be solved by the present invention is to provide a dipping device and a glove dipping system, which simplifies the structure of the dipping device to reduce manufacturing costs and reduces the generation of glue residue to improve dipping quality and production efficiency.

[0004] This invention provides an impregnation apparatus, comprising:

[0005] plastic boxes;

[0006] A stirring assembly includes multiple rotating shafts and at least one flow guide component. The rotating shafts are provided with stirring blades. The multiple rotating shafts are arranged side by side and rotatably disposed in the glue tank. The flow guide component is disposed between two adjacent rotating shafts. One side of the flow guide component forms a first flow guide surface, and the other side of the flow guide component forms a second flow guide surface.

[0007] Wherein, a first flow guiding interval is formed between the first guide surface and the adjacent rotating shaft, and a second flow guiding interval is formed between the second guide surface and the adjacent rotating shaft; along the rotation direction of the rotating shaft, the width of the first flow guiding interval gradually increases upwards, and the width of the second flow guiding interval gradually increases downwards.

[0008] Preferably, the first flow guide interval forms an upward-flowing fluid with a gradually decreasing velocity, and the second flow guide interval forms a downward-flowing fluid with a gradually decreasing velocity.

[0009] Preferably, the top of the first flow guide interval forms a liquid outlet region that slows down the fluid flow rate, and the top of the second flow guide interval forms a liquid absorption region that reduces the amount of liquid absorbed.

[0010] Preferably, the stirring assembly includes a plurality of the flow guiding components, a first flow guiding interval and a second flow guiding interval located between two adjacent flow guiding components, wherein the fluid output from the first flow guiding interval flows toward the second flow guiding interval, and a portion of the fluid is drawn into the second flow guiding interval.

[0011] Preferably, both the first guide surface and the second guide surface are curved surfaces, with the first guide surface extending upward at an angle and the second guide surface extending upward at an angle.

[0012] Preferably, both the first guide surface and the second guide surface are inclined surfaces, with the first guide surface extending upward at an inclined angle and the second guide surface extending upward at an inclined angle.

[0013] Preferably, the flow guiding component has a hollow structure.

[0014] Preferably, the flow guiding component includes a top plate, a bottom plate, a first flow guiding plate, a second flow guiding plate, and two end plates. The first flow guiding plate and the second flow guiding plate are arranged back to back. The top plate is located above the bottom plate. The top plate and the bottom plate are disposed between the first flow guiding plate and the second flow guiding plate. The top plate, the bottom plate, the first flow guiding plate, and the second flow guiding plate are disposed between the two end plates.

[0015] Preferably, the flow guiding component further includes a support beam disposed between the top plate and the bottom plate.

[0016] Preferably, both ends of the flow guiding component are detachably installed in the glue box.

[0017] Preferably, the bottom of the glue box is also provided with an inlet / outlet pipe, and a flexible tube is connected to the inlet / outlet pipe; the glue box is also provided with a clamping assembly, the clamping assembly has an openable clamping space, and the flexible tube passes through the clamping space.

[0018] Preferably, the clamping assembly includes a driving component, a first clamping component, and a second clamping component, with the clamping space formed between the first clamping component and the second clamping component. The driving component is configured to drive the first clamping component to move or rotate relative to the second clamping component. The second clamping component is disposed on the glue box, and the flexible tube is located between the first clamping component and the second clamping component.

[0019] The present invention also provides a glove dipping system, comprising a frame, a conveyor chain, hand molds, and mold rods. The conveyor chain is disposed on the frame, and the mold rods are disposed on the conveyor chain and move cyclically with the conveyor chain. Each mold rod is provided with at least one hand mold. The invention is characterized by further comprising the aforementioned dipping device, which is disposed on the frame.

[0020] The impregnation apparatus and glove impregnation system provided by this invention, by arranging a stirring assembly in a glue tank, with a flow guiding component between two rotating shafts, and flow guiding surfaces on both sides of the flow guiding component, wherein a first flow guiding surface forms a first flow guiding interval with an upwardly gradually increasing width between it and an adjacent rotating shaft, and a second flow guiding surface forms a second flow guiding interval with a downwardly gradually increasing width between it and an adjacent rotating shaft, during the rotation of the shafts, the stirring blades will drive the glue liquid in the glue tank to flow accordingly. During the upward flow of the glue liquid driven by the stirring blades in the first flow guiding interval, due to the gradual increase in the width of the first flow guiding interval... This slows down the flow rate of the adhesive liquid rising with the stirring blades, allowing it to flow upwards more evenly and reducing surface bulges. Similarly, for the stirring blades moving in the second guide interval, because the top area of ​​the second guide interval is narrow, the amount of adhesive liquid carried into the second guide interval by the stirring blades is less as the stirring blades carry the adhesive liquid downwards, thus reducing surface depressions. In this way, while ensuring the circulation of adhesive liquid in the glue tank, the surface of the adhesive liquid remains relatively stable, thereby improving the quality of impregnation.

[0021] Meanwhile, by eliminating the need for a chain-driven guide rod, the simplified structure of the moving parts helps reduce manufacturing costs. Furthermore, the glue in the glue tank is not constricted by friction between the sprocket and chain, effectively extending the cleaning cycle of the glue tank, reducing the number of times the equipment needs to be shut down for cleaning, and thus improving production efficiency. Attached Figure Description

[0022] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0023] Figure 1 This is a schematic diagram of the structure of an embodiment of the impregnation apparatus of the present invention;

[0024] Figure 2 This is a cross-sectional view of an embodiment of the impregnation apparatus of the present invention;

[0025] Figure 3 for Figure 2 A magnified view of a portion of region M in the middle;

[0026] Figure 4 for Figure 1 Schematic diagram of the middle guide component;

[0027] Figure 5 for Figure 1 Schematic diagram of the adhesive flow principle in the intermediate impregnation device;

[0028] Figure 6 This is a schematic diagram of an embodiment of the glove dipping system of the present invention.

[0029] Figure label:

[0030] Frame 100, conveyor chain 200, mold rod 300, hand mold 400, glue dipping device 500;

[0031] Glue box 1;

[0032] Stirring component 2;

[0033] 21. Rotating shaft; 22. Flow guiding component; 23. First driving component; 24. Stirring blade;

[0034] Top plate 221, bottom plate 222, first guide plate 223, second guide plate 224, end plate 225, support beam 226;

[0035] First guide surface 201, second guide surface 202;

[0036] Inlet / outlet pipe 3;

[0037] Flexible tube 31;

[0038] Clamping component 4;

[0039] Second driving component 41, first clamping component 42, second clamping component 43. Implementation

[0040] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0041] Example 1, as Figures 1-5 As shown, the present invention provides an impregnation apparatus, comprising:

[0042] Glue box 1;

[0043] The stirring assembly 2 includes multiple rotating shafts 21, at least one flow guide component 22, and a first driving component 23. The rotating shafts 21 are provided with stirring blades 24. The multiple rotating shafts 21 are arranged side by side and rotatably disposed in the plastic box 1. A flow guide component 22 is provided between two adjacent rotating shafts 21. A first flow guide surface 201 is formed on one side of the flow guide component 22, and a second flow guide surface 202 is formed on the other side of the flow guide component. The first driving component 23 is configured to drive the rotating shafts 21 to rotate.

[0044] Wherein, a first flow guiding interval is formed between the first guide surface and the adjacent rotating shaft 21, and a second flow guiding interval is formed between the second guide surface and the adjacent rotating shaft 21; along the rotation direction of the rotating shaft 21, the width of the first flow guiding interval gradually increases upward, and the width of the second flow guiding interval gradually increases downward.

[0045] Specifically, this application provides a glue-dipping apparatus, which is equipped with a glue tank 1 to hold the glue liquid. In order to ensure that the surface of the glue liquid in the glue tank 1 does not dry and peel, and to ensure that the glue liquid continuously circulates in the glue tank, it is necessary to stir the glue liquid in the glue tank 1 to make the glue liquid circulate in the glue tank 1. However, during the stirring process, it is also necessary to ensure that the surface of the glue liquid remains in a stable flow state without large fluctuations.

[0046] Therefore, the stirring assembly 2 configured on the glue tank 1 in this application mainly relies on multiple rotating shafts 21 to rotate in the glue tank 1 to achieve the circulation of glue liquid. Furthermore, by configuring the flow guiding component 22 to guide the flow of glue liquid to reduce the undulation of the glue liquid surface, the glue liquid can be circulated in the glue tank 1 while also obtaining a more stable glue liquid surface.

[0047] In practical use, the first driving component provides power to the rotating shaft 21 from outside the glue tank 1 to drive the rotating shaft 21 to rotate inside the glue tank 1. During the rotation, the rotating shaft 21 drives the glue liquid in the glue tank 1 to flow through the stirring blades 24 mounted on it. When the stirring blades 24 move to the flow guide intervals formed on both sides of the flow guide component 22, different flow guide intervals will have different effects on the flowing glue liquid.

[0048] Preferably, the top of the first flow guide interval forms a liquid outlet region that slows down the fluid flow rate, and the top of the second flow guide interval forms a liquid absorption region that reduces the amount of liquid absorbed.

[0049] As the first flow guide interval gradually expands and increases along the flow direction of the adhesive, when the adhesive flows upward with the stirring blade 24 in the first flow guide interval, the increased flow space during the upward flow of the adhesive will gradually slow down the flow rate of the adhesive, ultimately reducing the impact of the upward flowing adhesive on the top liquid surface. As the stirring blade 24 moves towards the second flow guide interval after leaving the first flow guide interval, it will drive the adhesive at the top to flow towards the second flow guide interval, ensuring that the adhesive at the top participates in the circulation flow and does not dry and form a skin on the liquid surface.

[0050] When the stirring blade 24 enters the second flow guide interval, the top opening area of ​​the second flow guide interval is small, which causes the top of the second flow guide interval to draw in a small amount of adhesive under the action of the stirring blade 24, so as to reduce the depression of the adhesive surface at the top of the second flow guide interval.

[0051] Preferably, the stirring assembly 2 includes a plurality of flow guiding components 22, a first flow guiding interval and a second flow guiding interval located between two adjacent flow guiding components 22, wherein the fluid output from the first flow guiding interval flows toward the second flow guiding interval, and a portion of the fluid is drawn in by the second flow guiding interval.

[0052] Specifically, during the movement of the adhesive from the first guide interval towards the second guide interval, only a portion of the adhesive flows into the second guide interval, while the remaining adhesive continues to flow forward. Similarly, during the movement of the adhesive at the bottom of the glue tank 1 from the second guide interval towards the first guide interval, only a portion of the adhesive flows into the first guide interval, while the remaining adhesive continues to flow forward along its flow trend. This creates a large circulating flow path A around the entire rotating shaft 21 and the guide component 22 within the entire glue tank 1, and each rotating shaft 21 itself forms a small circulating flow path B around itself. This provides better uniform mixing of the adhesive within the glue tank 1, allowing the adhesive in the glue tank 1 to fully and effectively participate in the circulating flow, reducing dead zones in the circulation, and ultimately improving the quality of the impregnation.

[0053] The effects of the two flow guide intervals on the adhesive liquid in the adhesive tank 1 during use are as follows: the first flow guide interval is configured to form an upward flow of adhesive liquid with a gradually decreasing flow rate under the action of the stirring blade 24, and the second flow guide interval is configured to form a downward flow of adhesive liquid with a gradually decreasing flow rate under the action of the stirring blade 24.

[0054] Specifically, as the adhesive flows with the stirring blades 24 through the two guide gaps, the increasing width of the guide gaps along the fluid flow direction slows down the fluid flow velocity. This slows down the flow velocity of the adhesive exiting upwards from the first guide gap, reducing the impact on the top liquid surface and maintaining a stable surface, thus improving the quality of the adhesive impregnation.

[0055] By arranging a stirring assembly in the glue tank, and placing a flow guide component between two rotating shafts, the flow guide component has flow guide surfaces on both sides. The first flow guide surface forms a first flow guide gap with an upwardly gradually increasing width between itself and the adjacent rotating shaft, and the second flow guide surface forms a second flow guide gap with a downwardly gradually increasing width between itself and the adjacent rotating shaft. During shaft rotation, the stirring blades drive the glue liquid in the glue tank to flow. As the stirring blades drive the glue liquid upwards within the first flow guide gap, the gradually increasing width of the first flow guide gap effectively controls the upward flow of the stirring blades. The rising adhesive slows down the flow rate, allowing it to flow upwards more evenly and reducing surface bulges. Similarly, the stirring blades, which move within the second guide gap, have a narrower top area. As the stirring blades carry the adhesive downwards, less adhesive is drawn into the second guide gap, further reducing surface depressions. This ensures a relatively stable adhesive surface while maintaining proper circulation within the adhesive tank, thus improving the quality of the impregnation.

[0056] Meanwhile, by eliminating the need for a chain-driven guide rod, the simplified structure of the moving parts helps reduce manufacturing costs. Furthermore, the glue in the glue tank is not constricted by friction between the sprocket and chain, effectively extending the cleaning cycle of the glue tank, reducing the number of times the equipment needs to be shut down for cleaning, and thus improving production efficiency.

[0057] Furthermore, both the first guide surface 201 and the second guide surface 202 are curved surfaces, with the first guide surface 201 extending upward at an angle and the second guide surface 202 extending upward at an angle.

[0058] Specifically, the first guide surface 201 and the second guide surface 202 are fitted with the outer peripheral surface of the rotating shaft 21 to form a guide interval with varying width. Taking the fit between the first guide surface 201 and the outer peripheral surface of the rotating shaft 21 as an example, the first guide surface 201 is an arc surface, which is parallel to the cylindrical surface of the matching outer peripheral surface of the rotating shaft 21. In this way, a hyperbolic guide channel can be formed between the first guide surface 201 and the outer peripheral surface of the rotating shaft 21 to smoothly guide the flow of the adhesive.

[0059] Similarly, the first guide surface 201 and the second guide surface 202 can both be inclined surfaces, with the first guide surface 201 extending upwards at an inclined angle and the second guide surface 202 extending upwards at an inclined angle.

[0060] Specifically, the inclined surface can be a single planar structure or a multi-segment planar structure spliced ​​together sequentially, so as to satisfy that the flow guide interval gradually increases in width along the flow direction of the fluid.

[0061] Furthermore, in order to reduce production costs and reduce the amount of adhesive filling the glue box 1, the guide component 22 can be a hollow structure.

[0062] Specifically, after the hollow-structured flow guide component 22 is placed into the glue box 1, the glue injected into the glue box 1 will submerge the flow guide component 22, thereby using the flow guide component 22 to occupy the volume inside the glue box 1, so as to reduce the amount of glue filling.

[0063] The flow guiding component 22 includes a top plate 221, a bottom plate 222, a first flow guiding plate 223, a second flow guiding plate 224, and two end plates 225. The first flow guiding plate 223 and the second flow guiding plate 224 are arranged back to back. The top plate 221 is located above the bottom plate 222. The top plate 221 and the bottom plate 222 are disposed between the first flow guiding plate 223 and the second flow guiding plate 224. The top plate 221, the bottom plate 222, the first flow guiding plate 223, and the second flow guiding plate 224 are disposed between the two end plates 225.

[0064] Specifically, for the flow guiding component 22, in order to form a hollow structure, multiple plates are spliced ​​together to form an integral strip-shaped flow guiding component 22, and the hollow structure of the flow guiding component 22 is formed between the inner walls of the plates.

[0065] After the flow guide component 22 is installed in the glue box 1, since the flow guide component 22 has a hollow structure inside, it can occupy part of the volume of the glue box 1, thereby reducing the total weight of the glue box 1 filled with glue liquid.

[0066] In addition, the flow guiding component 22 also includes a support beam 226, which is disposed between the top plate 221 and the bottom plate 222.

[0067] Specifically, in order to improve the overall structural strength of the hollow flow guide component 22, a support beam 226 can be set inside the flow guide component 22. The support beam 226 can be made of materials such as steel pipe or angle iron to improve the overall structural strength of the flow guide component 22.

[0068] Preferably, the two ends of the flow guiding component 22 are detachably installed in the glue box 1.

[0069] Specifically, to facilitate quick and thorough cleaning of adhesive residue in the glue box 1 by operators, the guide component 22 is detachably installed inside the glue box 1. Thus, when it is necessary to remove adhesive residue from the glue box 1, the guide component 22 can be removed, allowing operators to use the space occupied by the guide component 22 to insert tools into the bottom plate of the glue box 1 for thorough and effective cleaning.

[0070] There are several ways to detachably connect the flow guide component 22 to the glue box 1. For example, the flow guide component 22 has threaded holes at both ends, and the glue box 1 has mounting holes. Bolts are passed through the mounting holes and threaded into them to install the flow guide component 22 in the glue box 1. Alternatively, vertically arranged grooves can be provided on opposite side walls of the glue box 1, and sliders can be provided at both ends of the flow guide component 22. The sliders slide into the grooves to complete the installation of the flow guide component 22. Here, no specific detachable installation structure for the flow guide component 22 is limited.

[0071] Based on the above technical solution, optionally, the bottom of the glue box 1 is also provided with an inlet / outlet pipe 3, and a flexible pipe 31 is also connected to the inlet / outlet pipe 3; the glue box 1 is also provided with a clamping assembly 4, the clamping assembly 4 has an openable clamping space, and the flexible pipe 31 passes through the clamping space.

[0072] Specifically, since the adhesive liquid contained in the glue box 1 has characteristics such as high viscosity and easy drying, in order to facilitate the control of the opening and closing of the inlet and outlet pipes 3, a clamping component 4 is used in conjunction with the flexible tube 31.

[0073] Taking advantage of the fact that the flexible tube 31 can deform after being squeezed, when it is necessary to close the inlet and outlet pipes 3, the clamping assembly 4 is used to clamp the flexible tube 31 in the clamping space so that the flexible tube 31 is squeezed and closed, thereby closing the inlet and outlet pipes 3.

[0074] The clamping assembly 4 includes a second driving component 41, a first clamping component 42, and a second clamping component 43. The clamping space is formed between the first clamping component 42 and the second clamping component 43. The second driving component 41 is configured to drive the first clamping component 42 to move or rotate relative to the second clamping component 43. The second clamping component 43 is disposed on the glue box 1, and the flexible tube 31 is located between the first clamping component 42 and the second clamping component 43.

[0075] Specifically, for the clamping assembly 4, the second driving component 41 drives the first clamping component 42 to move closer to or away from the second clamping component 43 to close or open the flexible tube 31.

[0076] Taking the relative movement of the first clamping member 42 with respect to the second clamping member 43 as an example, the flexible tube 31 is located between the first clamping member 42 and the second clamping member 43. When it is necessary to close the inlet / outlet pipe 3, the second driving member 41 drives the first clamping member 42 to move closer to the second clamping member 43, so that the flexible tube 31 is clamped between the first clamping member 42 and the second clamping member 43, thereby closing the inlet / outlet pipe 3. When it is necessary to drain the glue from the glue tank 1 or fill the glue tank 1 with glue, the second driving member 41 drives the first clamping member 42 away from the second clamping member 43.

[0077] The first driving component 23 can be driven by a motor in conjunction with a transmission mechanism to rotate the shaft 21. The transmission mechanism can be a conventional gear or belt drive. As for the second driving component 41, a motor or cylinder can be selected as the driver depending on the operating mode of the first clamping component 42, and no restrictions are imposed here.

[0078] Regarding the physical manifestations of the first clamping component 42 and the second clamping component 43, the first clamping component 42 can be a rod or plate, while the second clamping component 43 can be a plate. In this way, the second clamping component 43 can cooperate with the first clamping component 42 to clamp the flexible tube, and the second clamping component 43 can also act as an installation and fixing component to be fixed on the glue box 1 and meet the installation and fixing requirements of the second driving component 41.

[0079] The present invention also provides a glove dipping system, comprising a frame, a conveyor chain, hand molds, and mold rods. The conveyor chain is disposed on the frame, and the mold rods are disposed on the conveyor chain and move cyclically with the conveyor chain. Each mold rod is provided with at least one hand mold. The invention is characterized by further comprising the aforementioned dipping device, which is disposed on the frame.

[0080] Example 2, as Figure 6 As shown, the present invention also provides a glove dipping system, including a frame 100, a conveyor chain 200, a mold rod 300, a hand mold 400, and a dipping device 500. The conveyor chain 200 is disposed on the frame 100, the mold rod 300 is disposed on the conveyor chain 200 and moves cyclically with the conveyor chain 200, and at least one hand mold 400 is disposed on each mold rod 300. The dipping device 500 is disposed on the frame 100.

[0081] Specifically, during the operation of the glove dipping system, a glove is placed on the hand mold 400 configured on the mold rod 300. The mold rod 300 moves with the conveyor chain 200 and moves the glove to the dipping device 500 for dipping treatment.

[0082] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and not to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. A resin impregnation apparatus, characterized in that, include: plastic boxes; A stirring assembly includes multiple rotating shafts and at least one flow guide component. The rotating shafts are provided with stirring blades. The multiple rotating shafts are arranged side by side and rotatably disposed in the glue tank. The flow guide component is disposed between two adjacent rotating shafts. One side of the flow guide component forms a first flow guide surface, and the other side of the flow guide component forms a second flow guide surface. Wherein, a first flow guiding surface and an adjacent rotating shaft form a first flow guiding interval, and a second flow guiding surface and an adjacent rotating shaft form a second flow guiding interval; along the rotation direction of the rotating shaft, the width of the first flow guiding interval gradually increases upwards, and the width of the second flow guiding interval gradually increases downwards; Both ends of the flow guiding component are detachably installed in the glue box; Both the first and second guide surfaces are curved surfaces, with the first guide surface extending upward at an angle and the second guide surface extending upward at an angle; or, both the first and second guide surfaces are inclined surfaces, with the first guide surface extending upward at an angle and the second guide surface extending upward at an angle.

2. The impregnation apparatus according to claim 1, characterized in that, The flow guiding component has a hollow structure.

3. The impregnation apparatus according to claim 2, characterized in that, The flow guiding component includes a top plate, a bottom plate, a first flow guiding plate, a second flow guiding plate, and two end plates. The first flow guiding plate and the second flow guiding plate are arranged back to back. The top plate is located above the bottom plate. The top plate and the bottom plate are disposed between the first flow guiding plate and the second flow guiding plate. The top plate, the bottom plate, the first flow guiding plate, and the second flow guiding plate are disposed between the two end plates.

4. The impregnation apparatus according to claim 3, characterized in that, The flow guiding component also includes a support beam, which is disposed between the top plate and the bottom plate.

5. The impregnation apparatus according to any one of claims 1-4, characterized in that, The bottom of the glue box is also provided with an inlet / outlet pipe, and a flexible tube is connected to the inlet / outlet pipe; the glue box is also provided with a clamping assembly, the clamping assembly has an openable clamping space, and the flexible tube passes through the clamping space.

6. The impregnation apparatus according to claim 5, characterized in that, The clamping assembly includes a driving component, a first clamping component, and a second clamping component, with the clamping space formed between the first clamping component and the second clamping component. The driving component is configured to drive the first clamping component to move or rotate relative to the second clamping component. The second clamping component is disposed on the glue box, and the flexible tube is located between the first clamping component and the second clamping component.

7. A glove dipping system, comprising a frame, a conveyor chain, hand molds, and mold rods, wherein the conveyor chain is disposed on the frame, the mold rods are disposed on the conveyor chain and move cyclically with the conveyor chain, and each mold rod is provided with at least one hand mold, characterized in that, It also includes the impregnation apparatus as described in any one of claims 1-6, the impregnation apparatus being disposed on the frame.

Citation Information

Patent Citations

  • Glue dipping box and glove glue dipping system

    CN218256264U

  • Glue dipping device and glove glue dipping system

    CN220146489U