A waterproof, breathable, hair styling glove manufacturing process

By employing a composite process of perforated polyurethane coating and nail tips on hairdressing gloves, the problems of slow processing speed and misalignment/falling off of simulated nails have been solved, achieving efficient and stable production of hairdressing gloves and improving the operational comfort and safety of hairdressers.

CN120963056BActive Publication Date: 2026-04-07ZHEJIANG EAST ASIA GLOVE CO LTD
View PDF 4 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-08-14
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing hairdressing gloves are slow in the processing of artificial nails, have inconsistent yield rates, and the artificial nails are prone to misalignment and falling off during use, affecting the massage comfort and safety of hairdressers.

Method used

Using gloves impregnated with a porous polyurethane coating as the base material, and nail clippers are combined, the glove is expanded and then laminated. Adhesive is used to bond the nail clippers to the glove, ensuring a perfect fit. The process is automated to achieve high-efficiency lamination.

Benefits of technology

This improved the connection stability between the simulated nails and gloves, reduced production costs, ensured product uniformity and safety, and enhanced the operational comfort of hairdressers.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120963056B_ABST
    Figure CN120963056B_ABST
Patent Text Reader

Abstract

The present application relates to the cosmetic and hairdressing gloves manufacturing technical field, especially relates to a waterproof and breathable hairdressing gloves manufacturing process, comprising the following steps: positioning, arranging, gluing and compounding, in the compounding step, gloves impregnated with a hole type polyurethane coating are used as waterproof and breathable gloves matrix, matched with nail pieces, in the filling and swelling state of gloves, the filling and supporting state of gloves wearing is simulated, the compounding processing of nail pieces is carried out, and then the perfect coincidence of gloves and nail pieces is realized, the problems that the nail pieces are dislocated due to force pulling when wearing gloves are avoided, the production cost is low, the product stability is good, and the standard is unified.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The present application relates to the field of manufacturing technology of cosmetic and hairdressing gloves, in particular to a manufacturing process of waterproof and breathable hairdressing gloves. BACKGROUND

[0002] In the hairdressing industry, the hard work of haircutting and hairdressing is often overlooked, especially the hair washing process, which poses a continuous threat to the health of the hands of practitioners. Hairdressers need to repeat the hair washing operation dozens of times a day, and their hands are immersed in warm water with shampoo and conditioner for a long time, with an average daily contact time of more than 4 hours. This high frequency and long time immersion gradually damages the oil barrier of the skin on the hands, leading to an imbalance in the water content of the stratum corneum, resulting in dryness and peeling, and even cracking, swelling and deformation. The palm lines of some practitioners may become blurred due to long-term erosion, and the skin on the fingertips may thicken like calluses.

[0003] In addition, the operation habits specific to the industry further exacerbate the occupational risk. In order to improve the comfort of massage, most hair washing and massage personnel will keep the length of their nails at 0.5-1 cm, but this seemingly reasonable practice hides a double risk: on the one hand, the nail gap is easy to retain chemical components and dirt in the washing and conditioning products, which may cause cross infection when contacting the customer's scalp, especially when the customer's scalp has minor damage, the risk of infection will increase significantly; on the other hand, long nails may scratch the customer's skin if not handled properly when combing the hair or pressing the scalp, leading to service disputes.

[0004] However, although conventional gloves can protect the hands of hairdressers, they do not have nails, which greatly reduces the comfort of hairdressers' massage.

[0005] As disclosed in Chinese patent application No. 201822236670.X, a kind of wear-resistant latex gloves, including glove body, lengthening barrel, containing cavity, convex, adhesive block and artificial nail, the glove body and lengthening barrel have four layers including cotton yarn layer, heat preservation layer, latex layer and wear-resistant coating, the cotton yarn layer is located in the innermost side, the heat preservation layer is arranged between the cotton yarn layer and the latex layer, the latex layer is sprayed with wear-resistant coating on the outside, the containing cavity is arranged at the wrist of the glove body and the end of the lengthening barrel away from the glove body, the convex is arranged at the palm center and the five fingers of the glove body, the adhesive block is arranged between the cotton yarn layer and the heat preservation layer, and the artificial nail is arranged on the glove body corresponding to the big toe finger nail part.

[0006] Although the above technical solution gives the latex gloves with artificial nails, the existing production of artificial nails is mostly processed by hand, the processing speed is slow, the consistency of the finished product rate is poor, and when the artificial nails are compounded with the gloves by hand, the gloves are mostly compounded with artificial nails in the unfilled state, which causes the artificial nails to dislocate and fall off with the expansion of the gloves during subsequent use of the gloves.

[0007] Therefore, a manufacturing process capable of improving the manufacturing quality of the beauty and hair care gloves with artificial nails is needed. SUMMARY

[0008] To solve the above problems, the present application provides a waterproof and breathable hairdressing glove manufacturing process, which uses gloves impregnated with a hole type polyurethane coating as a waterproof and breathable glove base, cooperates with a nail sheet, and performs composite processing of the nail sheet in a filled and expanded state of the glove to simulate the filled and supported state of the glove when worn, thereby realizing perfect coincidence of the glove and the nail sheet, avoiding the problem of dislocation of the nail sheet caused by stress and pulling during subsequent wearing of the glove, and having low production cost, good product stability, and uniform standards.

[0009] To achieve the above object, the present application provides the following technical scheme:

[0010] A waterproof and breathable hairdressing glove manufacturing process, comprising the following steps:

[0011] Step a, positioning, positioning the gloves to make the gloves internally active and filled and supported;

[0012] Step b, arrangement, arranging the nail sheet according to the finger distribution arrangement position of the gloves positioned in step a;

[0013] Step c, gluing, gluing the installation part of the nail sheet corresponding to the finger tip of the glove or the bonding part of the nail sheet and the glove finger;

[0014] Step d, compounding, bonding the finger tip part of the glove and the nail sheet through glue, so that the nail sheet is fixed to the finger tip part of the glove.

[0015] In step d, when the finger tip part of the glove and the nail sheet are compounded, the finger tip part of the glove is filled with a medium that expands and is close to the nail sheet.

[0016] In addition, the present application also provides a composite device for preparing the waterproof and breathable hairdressing glove according to any one of the above, comprising:

[0017] A first turntable mechanism, a second turntable mechanism, a glove supporting mechanism, a nail sheet bearing mechanism, and a linking and compounding mechanism;

[0018] The first rotating disc mechanism and the second rotating disc mechanism are arranged side by side on the workbench, and the first rotating disc mechanism and the second rotating disc mechanism are arranged to rotate at the same angular velocity;

[0019] The glove supporting mechanism is arranged in a plurality of groups, the glove supporting mechanism is arranged in a circumferential array on the first rotating disc mechanism, and the glove supporting mechanism supports the gloves;

[0020] The nail piece carrying mechanism is arranged one-to-one with the glove supporting mechanism, the nail piece carrying mechanism is arranged in a circumferential array on the second rotating disc mechanism, and the nail piece carrying mechanism positions the arranged nail pieces;

[0021] The connecting composite mechanism is arranged between the first rotating disc mechanism and the second rotating disc mechanism, the connecting composite mechanism drags the corresponding glove supporting mechanism to move, so that the gloves positioned and supported are moved to the corresponding nail piece carrying mechanism, and are composed with the nail pieces.

[0022] As an improvement, the first rotating disc mechanism and the second rotating disc mechanism each include a driving member and a rotating disc, and the driving member drives the rotating disc to rotate.

[0023] As an improvement, the glove supporting mechanism includes a mounting seat, a supporting rod, and a supporting hand mold;

[0024] The mounting seat is fixed to the upper end surface of the rotating disc of the first rotating disc mechanism;

[0025] The supporting rod is arranged through the mounting seat, and the mounting seat locks and positions the circumferential freedom degree of the supporting rod;

[0026] The supporting hand mold is sleeved on the supporting rod, the supporting hand mold is shaped with the glove, the volume of the supporting hand mold is smaller than the volume of the supported glove, and the supporting hand mold is relatively arranged to slide along the axis of the supporting rod.

[0027] As an improvement, the supporting hand mold and the mounting seat are detachably connected through a magnetic element;

[0028] A clamping ring is sleeved on the end portion of the supporting hand mold close to the mounting seat, the clamping ring is arranged to move along the axis of the supporting hand mold, and the clamping ring tightly seals the open end portion of the glove sleeved on the supporting hand mold.

[0029] As an improvement, the supporting rod and the supporting hand mold are hollow inside to form a filling channel, and the filling channel of the supporting rod is arranged in communication with a filling mechanism through a pipeline;

[0030] A plurality of discharge holes are distributed on the supporting hand mold, and the medium in the supporting hand mold is filled into the glove through the discharge holes to fill and support the glove.

[0031] As an improvement, the nail plate carrying mechanism is a support seat, and the top of the support seat is provided with a positioning groove for arranging and positioning the nail plates. The outer recess of the positioning groove forms an assembly groove that fits the finger part of the glove.

[0032] As an improvement, along the rotation path of the second turntable mechanism, a feeding mechanism and an adhesive coating mechanism are sequentially provided for feeding nails and applying adhesive to the nail tip carrier mechanism.

[0033] As an improvement, the connecting composite mechanism includes a linear drive component, a lifting drive component, and a retaining ring;

[0034] The linear drive component is horizontally positioned between the first turntable mechanism and the second turntable mechanism;

[0035] The lifting drive component is driven by the linear drive component to reciprocate between the first turntable mechanism and the second turntable mechanism;

[0036] The retaining ring is installed on the pushing end below the lifting drive component, and the retaining ring engages with the slot of the glove support mechanism.

[0037] The beneficial effects of this invention are as follows:

[0038] (1) The present invention uses a glove with a porous polyurethane coating as a waterproof and breathable glove base, and combines it with a nail plate. The nail plate is processed in a composite manner to simulate the filling and support state when the glove is in a filled and expanded state, thereby achieving a perfect fit between the glove and the nail plate. This avoids the problem of misalignment of the nail plate when the glove is worn due to force and pulling. The production cost is low, the product stability is good, and the standard is uniform.

[0039] (2) When the present invention is used to bond gloves and nail tips, it is preferred to use nail tips as the carrier substrate of the composite adhesive. The nail tips are curved and the grooves formed by the curved surfaces are recessed downwards. The composite adhesive is filled in the grooves. When the gloves and nail tips are bonded, the composite adhesive in the grooves is continuously diffused and extended outwards by the expansion and compression of the gloves, and then evenly distributed between the nail tips and the gloves, resulting in uniform bonding and good stability.

[0040] (3) By setting up a glove support mechanism, the present invention uses a support hand mold as the initial support carrier for the glove, so that the glove can form an expansion effect. Then, when the glove is combined with the nail plate, the glove support mechanism fills the glove with gas or liquid medium, so that each finger part of the glove expands, forming an effect similar to that of wearing a glove. Since the gas or liquid medium is flexible, the expansion force of each finger part of the glove is uniform, which can perfectly fit the curved surface of the nail plate, forming a composite extrusion, further improving the composite effect of the glove and the nail plate.

[0041] (4) This invention optimizes the design of the support hand mold and uses a clamping ring to quickly position and install the glove and the support hand mold, thereby improving the assembly speed. At the same time, it seals the opening of the glove to ensure the sealing of the glove during filling and to ensure the uniformity of the glove expansion.

[0042] (5) The present invention uses magnetic elements as quick-release connectors to quickly connect the support hand mold and the mounting base, so that when the first turntable mechanism drives the support hand mold to rotate and switch, the support hand mold will not detach outward due to centrifugal force, ensuring the stability of the support hand mold, and at the same time, it is convenient for the operator to quickly put gloves on the support hand mold.

[0043] In summary, this invention has the advantages of high bonding strength between gloves and nail clippers, good stability, resistance to detachment and misalignment, and high degree of automation, and is especially suitable for the field of waterproof and breathable hair glove production technology. Attached Figure Description

[0044] Figure 1 This is a photograph of the actual gloves of this invention;

[0045] Figure 2 This is a process flow diagram of Embodiment 1 of the present invention;

[0046] Figure 3 This is a three-dimensional schematic diagram of the composite device in Embodiment 2 of the present invention. Figure 1 ;

[0047] Figure 4 This is a three-dimensional schematic diagram of the composite device in Embodiment 2 of the present invention. Figure 2 ;

[0048] Figure 5 This is a three-dimensional structural diagram of the first turntable mechanism of the present invention;

[0049] Figure 6 This is a three-dimensional structural diagram of the mounting base of the present invention;

[0050] Figure 7 This is a schematic diagram of the three-dimensional structure of the glove support mechanism of the present invention. Figure 1 ;

[0051] Figure 8 This is a schematic diagram of the three-dimensional structure of the glove support mechanism of the present invention. Figure 2 ;

[0052] Figure 9 This is a three-dimensional structural diagram of the second turntable mechanism of the present invention;

[0053] Figure 10 This is a three-dimensional structural diagram of the nail plate support mechanism of the present invention;

[0054] Figure 11This is a schematic diagram of the three-dimensional structure of the connecting composite mechanism of the present invention;

[0055] Figure 12 This is a partial structural diagram of the glove support mechanism in Embodiment 3 of the present invention. Figure 1 ;

[0056] Figure 13 This is a partial structural diagram of the glove support mechanism in Embodiment 3 of the present invention. Figure 2 ;

[0057] Figure 14 This is a schematic diagram of the three-dimensional structure of the hand mold in Embodiment 3 of the present invention;

[0058] Figure 15 for Figure 14 Enlarged schematic diagram of the structure at point A in the middle;

[0059] Figure 16 This is a schematic diagram of the three-dimensional structure of the clamping ring of the present invention;

[0060] Figure 17 This is a three-dimensional structural diagram of the feeding mechanism in Embodiment 4 of the present invention;

[0061] Figure 18 This is a three-dimensional structural diagram of the adhesive coating mechanism in Embodiment 4 of the present invention.

[0062] Numbering in the diagram: Glove 100, Nail tip 101, First turntable mechanism 1, Drive component 11, Turntable 12, Composite station 111, Detachment station 112, Mounting station 113, Second turntable mechanism 2, Waiting-to-composite station 211, Loading station 212, Glue application station 213, Glove support mechanism 3, Slot 30, Mounting base 31, Sealing gasket 300, Extrusion block 301, End cap 302, Mounting plate 311, Sleeve 312, Limiting groove 313, Support rod 32, Quick connector 320, Limiting block 321, Support hand mold 33, Discharge hole 331, Guide groove 332, Angled guide groove 333 Horizontal guide groove 334, positioning groove 335, magnetic element 34, clamping ring 35, positioning pin 351, spring 352, handle 353, nail clipper bearing mechanism 4, positioning groove 41, assembly groove 42, base plate 401, upright plate 402, positioning plate 403, connecting composite mechanism 5, linear drive component 51, lifting drive component 52, retaining ring 53, filling mechanism 6, hose 61, rotary joint 62, pump 63, feeding mechanism 7, hopper 71, carrying plate 711, linear module 712, feeding robot 72, vacuum adsorption head 73, gluing mechanism 8, gluing robot 81, gluing head 82, worktable 9. Detailed Implementation

[0063] 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, and 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.

[0064] In the description of this invention, it should be understood that the terms "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," and "counterclockwise," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.

[0065] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this invention, "a plurality of" means two or more, unless otherwise explicitly specified.

[0066] Example 1:

[0067] like Figures 1-2 As shown, a manufacturing process for waterproof and breathable hair styling gloves includes the following steps:

[0068] Step a, Positioning: Position the gloves by fitting them on to provide internal padding support.

[0069] Step b: Arrange the fingernails according to the finger distribution of the gloves as positioned in step a.

[0070] Step c: Apply glue to the fingertips of the glove where the nail clips are attached or to the areas where the nail clips and the fingers of the glove fit together.

[0071] Step d, bonding: attach the fingertips of the glove to the nail clippers using glue, thus fixing the nail clippers to the fingertips of the glove.

[0072] In step d, when the fingertips of the glove are bonded to the nail plate, the fingertips of the glove are filled with a medium and expand to come closer to and adhere to the nail plate.

[0073] Specifically, the gloves are manufactured using an impregnation molding process. The gloves are impregnated with a porous polyurethane coating, and ultrafine bubbles are injected into the slurry through mechanical foaming. A perforating agent is added to ensure the micropores permeate during the slurry gelation process. The pore size is positioned between liquid and gaseous water molecules. The diameter of the micropores is designed to allow gas molecules to pass through while preventing liquid molecules, such as water droplets, from penetrating. The relatively large spacing between gas molecules (like air) allows them to easily pass through the glove's micropores during diffusion, thus achieving the glove's waterproof and breathable functions.

[0074] Furthermore, by combining nail tips with gloves, nail tips are formed on the fingers of the gloves to replace nails, creating a simulated nail effect. This allows the finished waterproof and breathable hairdressing gloves to be used in the beauty and hairdressing industry, thus replacing the fingers of practitioners while providing them with protection.

[0075] Furthermore, to ensure the bonding effect and stability of the gloves and nail tips, a medium is filled into the inside of the gloves during the bonding process. This medium fills the gloves, creating an effect similar to the expansion of the gloves when worn by a person. In particular, the finger areas of the gloves are in an expanded state, where the curved surfaces of the nail tips fit perfectly with the curved surfaces of the fingers, thus achieving bonding stability between the gloves and nail tips. Moreover, bonding the gloves and nail tips in an expanded state, compared to bonding them in a folded and compressed state, effectively prevents the nail tips from being stretched as the gloves expand, and also avoids the gloves from tearing due to stretching during prolonged wear.

[0076] It should also be noted that when the gloves of the present invention are filled using a medium, it is preferable to use a gas or a liquid. The gas used is air, and the liquid used is liquid water. It is important to emphasize that the breathability of the gloves does not prevent the filling and expansion of the gloves by gas. As mentioned above, the breathability of gloves generally refers to the property of the material to allow gases such as air to pass through, which depends on the tiny pores or special structures inside the rubber. However, the size of these pores is much smaller than the amount of gas that needs to be contained during inflation, and is insufficient to prevent the gloves from expanding under air pressure. For example, a balloon made of breathable rubber will still expand significantly after inflation, although it may leak air faster than an impermeable balloon, but the expansion process is inevitable. Liquid water, on the other hand, does not have the problem of leakage at all. However, due to the high density of liquid water, it will cause gravity concentration, resulting in uneven local expansion. Therefore, the medium used in the present invention is preferably air or water vapor. Water vapor is the gaseous form of water, and its density is much lower than that of liquid water.

[0077] It is worth emphasizing that by using gas as a filling medium, when the glove and nail tip are bonded together with glue, the gas filling medium inside the glove leaks outward. On the one hand, this makes the glue inside the nail tip more evenly dispersed, and on the other hand, it opens up the pores on the glove, making it easier for the glue to fill the pores and improving the bonding strength between the nail tip and the glove.

[0078] Example 2:

[0079] Referring to Example 1, the difference between Example 2 and Example 1 lies in the following:

[0080] like Figure 3 and Figure 11 As shown, a composite apparatus for preparing the waterproof and breathable hairdressing gloves described in Example 1 includes:

[0081] First turntable mechanism 1, second turntable mechanism 2, glove support mechanism 3, nail plate bearing mechanism 4, and connecting composite mechanism 5;

[0082] The first turntable mechanism 1 and the second turntable mechanism 2 are arranged side by side on the worktable 9, and the first turntable mechanism 1 and the second turntable mechanism 2 are arranged to rotate at the same angular velocity;

[0083] The glove support mechanism 3 is provided in several groups. The glove support mechanism 3 is arranged in a circular array on the first turntable mechanism 1, and the glove support mechanism 3 supports the glove 100.

[0084] The nail plate carrying mechanism 4 is provided in a one-to-one correspondence with the glove support mechanism 3. The nail plate carrying mechanism 4 is arranged in a circular array on the second turntable mechanism 2. The nail plate 101 is positioned and arranged by the nail plate carrying mechanism 4.

[0085] The connecting composite mechanism 5 is disposed between the first turntable mechanism 1 and the second turntable mechanism 2. The connecting composite mechanism 5 drags the corresponding glove support mechanism 3 to move, so that the glove 100 that has obtained positioning support moves to the corresponding nail plate bearing mechanism 4 and is composited with the nail plate 101.

[0086] Specifically, the first turntable mechanism 1 and the second turntable mechanism 2 have the same structure, both including a driving component 11 and a turntable 12. The driving component 11 drives the turntable 12 to rotate. The driving component 11 is preferably a servo motor. The turntable 12 is horizontally arranged. The number of glove support mechanisms 3 and nail plate carrying mechanisms 4 is preferably four sets. The glove support mechanisms 3 are distributed on the first turntable mechanism 1. The position on the first turntable mechanism 1 directly opposite the second turntable mechanism 2 is the composite station 111. Along the rotation direction of the first turntable mechanism 1, the glove removal station 112 and the glove loading station 113 are arranged in sequence behind the composite station 111. The corresponding nail plate carrying mechanisms 4 are distributed on the second turntable mechanism 2. The position on the second turntable mechanism 2 directly opposite the composite station 111 is the composite station 211. Along the rotation direction of the second turntable mechanism 2, the nail plate loading station 212 and the glue application station 213 are arranged in sequence behind the composite station 211.

[0087] To further explain, the connecting composite mechanism 5 set between the composite station 111 and the station to be composited 211 moves the glove 100 at the composite station 111 above the station to be composited 211, so that the finger parts of the glove 100 are above the corresponding nail plates 101. At this time, the glove 100 is not yet filled with a medium, and there is still a gap between the finger parts and the nail plates 101. Afterwards, the medium is filled in, causing the glove to expand, and the finger parts to fit together with the nail plates, thus achieving the composite between the glove 100 and the nail plates 101. The composite of the glove 100 and the nail plates 101 is completed. After the glue dries, the medium inside the glove 100 is discharged, the glove 100 shrinks, and the nail plate 101 is detached from the nail plate bearing mechanism 4. Then, the connecting laminating mechanism 5 brings the laminated glove 100 back to the laminating station 111. Although the glove 100 has finished shrinking at this time, due to the support and positioning of the glove support mechanism 3, the shrinkage range of the glove 100 is not large. Therefore, there will be no misalignment between the newly laminated glove 100 and the nail plate 101. Then, the glove is detached at the detachment station 112, and a new glove 100 to be laminated is put on again at the upper garment station 113.

[0088] like Figures 5-8 As shown, in a preferred embodiment, the glove support mechanism 3 includes a mounting base 31, a support rod 32, and a support hand mold 33;

[0089] The mounting base 31 is fixed to the upper end surface of the turntable of the first turntable mechanism 1. The mounting base 31 is composed of a mounting plate 311 and a sleeve 312. The inner side wall of the sleeve 312 is recessed with a limit groove 313.

[0090] The support rod 32 is mounted on the mounting base 31. A limiting block 321 protrudes from the outer side wall of the support rod 32. The limiting block 321 is interlocked with the limiting groove 313 to lock and limit the circumferential degree of freedom of the support rod 32.

[0091] The support hand mold 33 is sleeved on the support rod 32. The inner wall of the support hand mold 33 is also provided with a structure similar to the limiting groove 313, so that the circumferential degree of freedom of the support hand mold 33 is locked by the limiting block 321 of the support rod 32. However, the support hand mold 33 can still slide relative to the axis of the support rod 32, so that the connecting composite mechanism 5 can drive the glove 100 to move. The support hand mold 33 is set in the same shape as the glove, and the volume of the support hand mold 33 is smaller than the volume of the glove after support. This allows the glove 100 to be smoothly sleeved on the support hand mold 33. On the one hand, when the glove 100 is composite with the nail plate 101, it can reduce the volume of medium filling and increase the expansion speed of the glove 100. On the other hand, when the glove 100 is initially supported and moves to the nail plate bearing mechanism 4, it can more accurately make the finger part of the glove 100 and the nail plate 101 on the nail plate bearing mechanism 4 complete the alignment and cooperation, ensuring the composite accuracy of the glove 100 and the nail plate 101.

[0092] like Figure 4 , Figure 7 , Figure 8 As shown, to facilitate the filling of the medium, the support rod 32 and the support hand mold 33 are hollow to form a filling channel. The filling channel of the support rod 32 is connected to the filling mechanism 6 through a pipe. A quick connector 320 is provided at the part where the support rod 32 connects to the filling mechanism 6. The filling mechanism 6 is composed of a hose 61, a rotary joint 62 and a pump 63. The hose 61 is connected to the quick connector 320 and the rotary joint 62 respectively. The rotary joint 62 can ensure that the hose 61 rotates with the support hand mold 33. The rotary joint 62 is an existing joint structure, and its structure will not be described in detail here. The pump 63 can be selected according to the filling medium, and the pump 63 is a suction-pump integrated pump structure.

[0093] The support hand mold 33 has a plurality of discharge holes 331 distributed on it. The medium inside the support hand mold 33 is filled into the glove through the discharge holes 331, filling the support glove setting so that the glove 100 can expand evenly, forming an expansion effect similar to that of wearing an arm.

[0094] Furthermore, to ensure a proper seal between the support hand mold 33 and the support rod 32, a rubber sealing gasket 300 is provided at the end where the support hand mold 33 and the support rod 32 are fitted together. An extrusion block 301 is pressed onto the outside of the sealing gasket 300. The sealing gasket 300 and the extrusion block 301 are connected and fixed to the end of the support hand mold 33 by threads through an end cap 302 on the outer circumferential side. The extrusion block 301 also has threads on its outside, which connect with the threads on the end cap 302. It is worth emphasizing that the support hand mold 33, the support rod 32, and the extrusion block 301 are all made of lightweight materials, preferably aluminum alloy.

[0095] like Figures 9-10 As shown, the nail plate carrying mechanism 4 is a support base. The top of the support base is provided with a positioning groove 41 for arranging and positioning the nail plates 10. The outer recess of the positioning groove 41 forms an assembly groove 42 that fits the finger part of the glove. Specifically, the support base consists of a base plate 401, a vertical plate 402 and a positioning plate 403. The base plate 401 and the vertical plate 402 are arranged perpendicularly. The positioning plate 403 is located on the top of the vertical plate 402. The positioning groove 41 and the assembly groove 42 are arranged on the upper surface of the positioning plate 403. The positioning groove 41 is shaped to match the nail plate 101. The assembly groove 42 is the shape of the lower half of the expanded glove 100. After the glove 100 is supported by the support hand mold 33, its volume is still smaller than the size of the expanded glove. Therefore, after the glove 100 is supported by the support hand mold 33, it can still smoothly enter the assembly groove 42. At the same time, after the glove 100 and the nail plate 101 are combined, the glove that has shrunk after the medium is removed can still be smoothly separated from the assembly groove 42.

[0096] like Figure 11 As shown, at the composite station 111, the connecting composite mechanism 5 that drags the glove 100 to the composite station 211 includes a linear drive 51, a lifting drive 52, and a retaining ring 53.

[0097] The linear drive 51 is horizontally disposed between the first turntable mechanism 1 and the second turntable mechanism 2. The linear drive 51 is preferably an electric linear slide module.

[0098] The lifting drive component 52 is driven by the linear drive component 51 to reciprocate between the first turntable mechanism 1 and the second turntable mechanism 2. The lifting drive component 52 is preferably an electric cylinder or a pneumatic cylinder.

[0099] The retaining ring 53 is installed on the pushing end below the lifting drive component 52, and the retaining ring 53 engages with the retaining groove 30 of the glove support mechanism 3.

[0100] It should be noted that initially, the lifting drive 52 is located directly above the composite station 111. The lifting drive 52 drives the retaining ring 53 to descend, and the retaining ring 53 is engaged in the slot 30 on the end cap 302. Then, the linear drive 51 drives the glove 100 to move towards the composite station 211 through the retaining ring 53 until the glove 100 is inserted into the assembly slot 42, so that the fingertips of the glove 100 correspond one-to-one with the positioning slots 41. After the glove 100 and the nail plate 101 are composited, the medium is discharged from the glove 100. The linear drive 51 drives the glove back to the composite station 111 through the retaining ring 53. After it is in place, the retaining ring 53 is driven back to the position by the lifting drive 52.

[0101] It should be emphasized that the action commands of the first turntable mechanism 1, the second turntable mechanism 2, the glove support mechanism 3, the nail plate bearing mechanism 4, and the connecting composite mechanism 5 are all controlled by the control box. Sensors are installed at the composite station 111 and the waiting composite station 211 to determine whether the glove 100 is in place, and thus determine the sequence of action commands between the mechanisms. Since the control of the action commands of each mechanism in this application is a conventional equipment PLC electrical control structure, the specific electrical control structure will not be described here.

[0102] Example 3:

[0103] Referring to Example 1, the difference between Example 2 and Example 1 lies in the following:

[0104] like Figure 12 As shown, the support hand mold 33 and the mounting base 31 are detachably connected by a magnetic element 34. Since the support hand mold 33 can slide relative to the support rod 32, it is necessary to lock the support hand mold 33 to prevent it from being thrown out due to centrifugal force when the support hand mold 33 is rotated by the first turntable mechanism 1. Therefore, it is necessary to set a strong magnetic element 34 to magnetically adsorb and connect it to the mounting base 31 made of magnetic metal material to prevent the support hand mold 33 from being thrown out by centrifugal force, while the connecting composite mechanism 5 can be used to drag and separate the support hand mold 33.

[0105] Specifically, an inlay groove is provided on the side wall of the extrusion block 301 opposite to the mounting base 31, and the magnetic element 34 is embedded in the inlay groove.

[0106] In addition, such as Figures 12-16 As shown, a clamping ring 35 is fitted on the end of the support hand mold 33 near the mounting base 31. The clamping ring 35 is movable along the axis of the support hand mold 33 to clamp and seal the open end of the glove fitted on the support hand mold 33.

[0107] It should be noted that, in order to ensure that the glove 100 can be fixed after being put on the support hand mold 33 and to seal the opening of the glove 100, a clamping ring 35 is provided on the support hand mold 33. The clamping ring 35 can fix the opening end of the glove 100 to the support hand mold 33.

[0108] Specifically, at the location where the clamping ring 35 is installed on the supporting hand mold 33, several sets of guide grooves 332 arranged circumferentially along the axial direction of the supporting hand mold 33 are provided. The guide grooves 332 consist of inclined guide grooves 333, horizontal guide grooves 334, and positioning grooves 335. The corresponding clamping ring 35 is provided with positioning pins 351 that cooperate with the guide grooves 332. The positioning pins 351 move along the guide grooves 332. The clamping ring 35 and the step on the supporting hand mold 33 form a clamping area for fixing the open end of the glove 100. The clamping ring 35 and the end cap 3 A spring 352 is provided between 02. Initially, the positioning pin 351 on the clamping ring 35 is located in the positioning groove 335, and the spring 352 is in a compressed state. At this time, the clamping ring 35 does not clamp and cover the open end of the glove 100. After the positioning pin 351 is removed from the positioning groove 335, it will move along the inclined guide groove 333 under the elastic extrusion force of the spring 352 and abut against the step on the support hand mold 33. Finally, the clamping ring 35 clamps the open end of the glove 100, thereby sealing the glove 100.

[0109] In addition, a handle 353 is provided on the clamping ring 35. By rotating the clamping ring 35 through the handle 353, the positioning pin 351 can be moved within the guide groove 332, making the operation simple and quick.

[0110] Example 4:

[0111] Referring to Example 1, the difference between Example 2 and Example 1 lies in the following:

[0112] like Figure 4 As shown, along the rotation path of the second turntable mechanism 2, a feeding mechanism 7 and a gluing mechanism 8 are sequentially arranged to feed nails and apply glue to the nail tip carrying mechanism 4.

[0113] Among them, such as Figure 17As shown, the feeding mechanism 7 is located at the feeding station 212. The feeding mechanism 7 includes a hopper 71, a feeding robot 72, and a vacuum suction head 73. The hopper 71 is equipped with 5 sets of nail clippers, corresponding to the nail clippers on the five fingers of the glove 100. A carrier plate 711 is provided at the bottom of the hopper 71, on which several nail clippers are stacked. The carrier plate 711 is driven to rise and fall by a linear module 712. As the nail clippers in the hopper 71 are continuously suctioned and grabbed, the height of the nail clippers in the hopper 71 will decrease. At this time, it is necessary to raise the height of the nail clipper stack by the carrier plate 711. The loading robot 72 is located between the hopper 71 and the loading station 212. The loading robot 72 uses a vacuum suction head 73 installed on its free-moving end to suction and grasp the nail piece 101. It should be noted that the nail piece 101 is preferably made of curved PE or PP material. Therefore, the end of the corresponding vacuum suction head 73 will also adopt a corresponding arc design to fit the curved surface of the nail piece. The vacuum suction head 73 is equipped with 5 sets of suction nozzles, each corresponding to a nail piece.

[0114] Furthermore, such as Figure 18 As shown, the glue application mechanism 8 is located at the glue application station 213. The glue application mechanism 8 includes a glue application robot 81 and a glue application head 82. The structure of the glue application robot 81 is similar to that of the feeding robot 72. The glue application head 82 is located at the free moving end of the glue application robot 81. The glue application head 82 is a conventional glue application head structure. The glue application head 82 is connected to the glue tank through a hose. There are 5 sets of glue application heads 82, each corresponding to a set of nail pieces. The glue application head 82 applies the composite glue to the curved groove of the nail piece 101.

[0115] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A manufacturing process for waterproof and breathable hairdressing gloves, characterized in that, Includes the following steps: Step a, Positioning: Position the gloves by fitting them on to provide internal padding support. Step b: Arrange the fingernails according to the finger distribution of the gloves as positioned in step a. Step c: Apply glue to the fingertips of the glove where the nail clips are attached or to the areas where the nail clips and the fingers of the glove fit together. Step d, bonding: attach the fingertips of the glove to the nail plate using glue to fix the nail plate to the fingertips of the glove. The composite equipment for preparing the aforementioned waterproof and breathable hair styling gloves includes: The system comprises a first turntable mechanism (1), a second turntable mechanism (2), a glove support mechanism (3), a nail plate bearing mechanism (4), and a connecting composite mechanism (5). The first turntable mechanism (1) and the second turntable mechanism (2) are arranged side by side on the worktable (9), and the first turntable mechanism (1) and the second turntable mechanism (2) are arranged to rotate at the same angular velocity; The glove support mechanism (3) is provided in several groups. The glove support mechanism (3) is arranged in a circular array on the first turntable mechanism (1), and the glove support mechanism (3) supports the glove. The nail plate carrying mechanism (4) is provided in a one-to-one correspondence with the glove support mechanism (3). The nail plate carrying mechanism (4) is arranged in a circular array on the second turntable mechanism (2). The nail plate carrying mechanism (4) positions the nail plates after they are arranged. The connecting composite mechanism (5) is located between the first turntable mechanism (1) and the second turntable mechanism (2). The connecting composite mechanism (5) drags the corresponding glove support mechanism (3) to move, so that the glove that has obtained positioning support moves to the corresponding nail plate bearing mechanism (4) and is composited with the nail plate.

2. The manufacturing process for a waterproof and breathable hairdressing glove according to claim 1, characterized in that: In step d, when the fingertips of the glove are bonded to the nail plate, the fingertips of the glove are filled with a medium and expand to come closer to and adhere to the nail plate.

3. The manufacturing process for a waterproof and breathable hairdressing glove according to claim 1, characterized in that: Both the first turntable mechanism (1) and the second turntable mechanism (2) include a driving member (11) and a turntable (12), wherein the driving member (11) drives the turntable (12) to rotate.

4. The manufacturing process for a waterproof and breathable hairdressing glove according to claim 1, characterized in that: The glove support mechanism (3) includes a mounting base (31), a support rod (32), and a support hand mold (33); The mounting base (31) is fixed to the upper surface of the turntable of the first turntable mechanism (1); The support rod (32) is mounted on the mounting base (31), and the mounting base (31) locks and limits the circumferential degree of freedom of the support rod (32); The support hand mold (33) is sleeved on the support rod (32). The support hand mold (33) is set in the same shape as the glove, and the volume of the support hand mold (33) is smaller than the volume of the glove after support. The support hand mold (33) is slidably set relative to the axis of the support rod (32).

5. The manufacturing process for a waterproof and breathable hairdressing glove according to claim 4, characterized in that: The supporting hand mold (33) and the mounting base (31) are detachably connected by a magnetic element (34); A clamping ring (35) is fitted on the end of the support hand mold (33) near the mounting base (31). The clamping ring (35) is movable along the axis of the support hand mold (33) to clamp and seal the opening end of the glove fitted on the support hand mold (33).

6. The manufacturing process for a waterproof and breathable hairdressing glove according to claim 4, characterized in that: The support rod (32) and the support hand mold (33) are hollow inside to form a filling channel. The filling channel of the support rod (32) is connected to the filling mechanism (6) through a pipe. The support hand mold (33) has a plurality of discharge holes (331) distributed on it. The medium inside the support hand mold (33) is filled into the glove through the discharge holes (331) to fill the support glove.

7. The manufacturing process for a waterproof and breathable hairdressing glove according to claim 4, characterized in that: The nail support mechanism (4) is a support seat. The top of the support seat is provided with a positioning groove (41) for arranging and positioning the nails (10). The external recess of the positioning groove (41) forms an assembly groove (42) that is adapted to the finger part of the glove.

8. The manufacturing process for a waterproof and breathable hairdressing glove according to claim 1, characterized in that: Along the rotation path of the second turntable mechanism (2), a feeding mechanism (7) and a coating mechanism (8) are sequentially provided for feeding nails and applying glue to the nail plate bearing mechanism (4).

9. The manufacturing process for a waterproof and breathable hairdressing glove according to claim 4, characterized in that: The connecting composite mechanism (5) includes a linear drive (51), a lifting drive (52), and a retaining ring (53); The linear drive (51) is horizontally positioned between the first turntable mechanism (1) and the second turntable mechanism (2); The lifting drive (52) is driven by the linear drive (51) to reciprocate between the first turntable mechanism (1) and the second turntable mechanism (2); The retaining ring (53) is installed on the pushing end below the lifting drive (52), and the retaining ring (53) engages with the slot (30) of the glove support mechanism (3).

Citation Information

Patent Citations

  • Wear-resistant latex gloves

    CN209315024U

  • Anti-scratching gloves for skin itch and preparation method thereof

    CN111920125A

  • Device for gluing rubber gloves

    CN114669450A

  • Beautifying gloves with finger nails

    CN200994430Y