Glove
By incorporating flexible LED light strips covering the fingers and a power supply component with replaceable batteries into the pilot gloves, the problems of insufficient lighting range and battery life of existing gloves have been solved, achieving all-around lighting and convenient battery replacement, thus improving the safety and efficiency of pilots' operations at night or in low-light environments.
Patent Information
- Application Number
- CN202520243239.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-14
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-02-14
AI Technical Summary
Existing pilot gloves have limited illumination range, which cannot meet the extensive lighting needs under complex flight conditions, and the non-replaceable batteries result in insufficient battery life, affecting operational safety at night or in low-light environments.
A glove has been designed, comprising a glove body, a light-emitting component, and a power supply component. The light-emitting component is distributed throughout the finger area, and the power supply component can be replaced within the mounting cavity. It uses a flexible LED light strip and a replaceable battery, and is connected via a control circuit board and wires to achieve omnidirectional lighting and convenient battery replacement.
It expands the lighting area, improves the uniformity and usability of lighting, extends the service life of gloves, ensures the reliability and safety of pilots in complex flight missions, and provides clear visual support.
Smart Images

Figure CN223886319U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of aviation glove technology, and more particularly to gloves. Background Technology
[0002] In the field of military aviation, pilot safety and operational efficiency are of paramount importance. Especially at night or in low-light conditions, pilots rely on external light sources for instrument reading, gesture communication, and environmental awareness. This requires pilots' gloves to not only provide basic protection but also incorporate lighting design to improve operational efficiency and safety.
[0003] Most pilot gloves currently on the market are of traditional design, focusing on warmth, durability, and flexibility, but they have the following shortcomings:
[0004] (1) Some improved gloves attempt to embed LED light strips in the fingertips or back of the hand for illumination. However, this design often only provides localized illumination and cannot meet the needs of pilots for a wide range of illumination under complex flight conditions. Limited illumination range may cause pilots to have difficulty reading instruments, communicating with gestures, or perceiving their surroundings, thus affecting flight safety.
[0005] (2) Currently available luminous gloves typically employ a built-in battery design. Once the battery is depleted, the entire glove needs to be recharged or replaced. This process is not only time-consuming and resource-intensive but may also affect the continuity of flight missions. Especially during emergency or long-duration flight missions, insufficient battery life becomes a key factor limiting the effectiveness of the gloves. The non-replaceable nature of the battery means that the gloves may lose their illumination function due to depletion of power at critical moments, thereby affecting the pilot's operational efficiency and safety at night or in low-light environments, and increasing flight risks.
[0006] Therefore, gloves are urgently needed to address, to some extent, the technical problems existing in the current technology. Utility Model Content
[0007] The purpose of this application is to provide a glove that, to a certain extent, expands the lighting area and facilitates the replacement of power supply components.
[0008] This invention provides a glove, including a glove body, a light-emitting component, and a power supply component;
[0009] The glove body has a mounting cavity formed at a preset position on the palm side, and the power supply component is disposed in the mounting cavity; the mounting cavity can be closed or opened to seal the power supply component in the mounting cavity or to remove the power supply component from the mounting cavity for replacement.
[0010] The light-emitting component has a light-emitting part, which is distributed on the back side of the glove body at the positions corresponding to the fingers; the power supply component is electrically connected to the light-emitting component, and can supply power to the light-emitting component to make the light-emitting part emit light.
[0011] In the above technical solution, the glove body further includes an outer layer and an inner lining layer sewn together with the outer layer and close to the hand;
[0012] The outer layer and the inner lining layer are sewn together at the preset position to form a frame structure, so that the outer layer and the inner lining layer form the mounting cavity at the preset position;
[0013] The surface layer is provided with a zipper at the position of the mounting cavity. Opening the zipper can open the mounting cavity; closing the zipper can close the mounting cavity.
[0014] In the above technical solution, the light-emitting component further includes a flexible LED light strip that can serve as the light-emitting part;
[0015] An installation space is formed between the surface layer and the inner lining layer; the flexible LED light strip is located in the installation space and is disposed on the inner lining layer on the back of the hand;
[0016] The flexible LED light strip corresponds to the finger position and extends along the finger's extension direction to cover the entire finger.
[0017] In the above technical solution, the power supply component further includes a power supply component, a switching component, and a control circuit board;
[0018] The power supply component is disposed in the mounting cavity; the power supply component is connected to the control circuit board via a first wire;
[0019] The flexible LED light strip is connected to the control circuit board via a second wire, and the control circuit board enables the flexible LED light strips corresponding to the fingers to be connected in series.
[0020] The switch assembly is disposed on any one of the second wires, and the LED flexible light strip is turned on and off by turning the switch assembly off or on.
[0021] In the above technical solution, the switching assembly further includes a switch, a rubber pad, and a gasket;
[0022] The surface layer corresponds to the second conductor and has mounting holes at preset points, and the gasket is sewn into the mounting holes;
[0023] The rubber pad is sewn onto the gasket, and an installation compartment is formed between the rubber pad and the gasket, and the switch is disposed in the installation compartment.
[0024] In the above technical solution, the rubber pad is further provided with a groove corresponding to the position of the switch and facing the inward of the pad.
[0025] The switch is disposed within the groove.
[0026] In the above technical solution, the power supply component further includes a battery, a connecting piece, a positive circuit, a negative circuit, and a first docking plug;
[0027] The positive terminal of the battery is connected to the positive terminal circuit via the connecting piece, and the negative terminal of the battery is connected to the negative terminal circuit via the connecting piece.
[0028] The positive terminal circuit, the end opposite to the connecting piece, and the negative terminal circuit, the end opposite to the connection, are both connected to the first docking plug; the first docking plug is connected to the control circuit board via the first wire.
[0029] In the above technical solution, the power supply component further includes a PVC film;
[0030] The PVC film covers the battery, the connecting piece, the connection between the connecting piece and the positive electrode circuit, and the connection between the connecting piece and the negative electrode circuit.
[0031] In the above technical solution, the power supply component further includes a second docking plug; the second docking plug is provided on the second wire connecting the thumb and the control circuit board.
[0032] Compared with the prior art, this application has the following beneficial effects:
[0033] This application provides a glove, including a glove body, a light-emitting component, and a power supply component;
[0034] The glove body has a mounting cavity formed at a preset position on the palm side, and the power supply component is disposed in the mounting cavity; the mounting cavity can be closed or opened to seal the power supply component in the mounting cavity or to remove the power supply component from the mounting cavity for replacement.
[0035] The light-emitting component has a light-emitting part, which is distributed on the back side of the glove body at the positions corresponding to the fingers; the power supply component is electrically connected to the light-emitting component, and can supply power to the light-emitting component to make the light-emitting part emit light.
[0036] In summary, this application incorporates light-emitting components at the corresponding finger positions, ensuring ample illumination for each finger and improving the uniformity and practicality of the lighting effect. This provides pilots with clearer and more comprehensive visual support for operations at night or in low-light environments. Furthermore, the replaceable battery significantly extends the continuous use time of the glove and ensures that pilots can replace the battery at any time during missions, maintaining continuous illumination. This design effectively solves the problem of insufficient battery life, enhances the reliability and practicality of the glove in complex flight missions, and provides strong support for flight safety. Attached Figure Description
[0037] To more clearly illustrate the technical solutions in the specific embodiments of this application or the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this application. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0038] Figure 1 A schematic diagram of the flat structure of the palm side and back side of the glove provided in this application for the left hand;
[0039] Figure 2 A schematic diagram of the switching assembly in the glove provided in this application;
[0040] Figure 3 A structural schematic diagram of the power supply component in the glove provided in this application;
[0041] Figure 4 A schematic diagram of the structure of the back side of the glove for the left hand provided in this application;
[0042] Figure 5 A schematic diagram of the palm side of the glove for the left hand provided in this application;
[0043] Figure 6 The three-dimensional structural diagram of the gloves provided in this application.
[0044] Reference numerals: 1-Glove body; 102-Frame structure; 103-Mounting cavity; 104-Zipper; 2-Light-emitting component; 201-LED flexible light strip; 3-Power supply component; 301-Power supply element; 302-Switch component; 303-Control circuit board; 304-First wire; 305-Second wire; 306-Switch; 307-Rubber pad; 308-Gasket; 309-Groove; 310-Battery; 311-Connecting piece; 312-Positive circuit; 313-Negative circuit; 314-PVC film; 315-Second mating plug; 316-First mating plug. Detailed Implementation
[0045] The following detailed embodiments are provided to help the reader gain a comprehensive understanding of the methods, apparatus, and / or systems described herein. However, various changes, modifications, and equivalents of the methods, apparatus, and / or systems described herein will be apparent after understanding the disclosure of this application. For example, the order of operations described herein is merely illustrative and is not limited to the order set forth herein; changes that will be apparent after understanding the disclosure of this application are possible, except for operations that must occur in a specific order. Furthermore, for clarity and brevity, descriptions of features known in the art may be omitted.
[0046] The features described herein may be implemented in different forms and should not be construed as being limited to the examples described herein. Rather, the examples described herein have been provided merely to illustrate some of the many feasible ways of implementing the methods, apparatus, and / or systems described herein that will be apparent upon understanding the disclosure of this application.
[0047] Throughout the specification, when an element (such as a layer, region, or substrate) is described as being "on" another element, "connected to" another element, "bonded to" another element, "on" another element, or "covering" another element, it may be directly "on" another element, "connected to" another element, "bonded to" another element, "on" another element, or "covering" another element, or there may be one or more other elements in between. In contrast, when an element is described as being "directly on" another element, "directly connected to" another element, "directly bonded to" another element, "directly on" another element, or "directly covering" another element, there may be no other elements in between.
[0048] As used herein, the term “and / or” includes any one of the relevant items listed and any combination of any two or more items.
[0049] Although terms such as “first,” “second,” and “third” may be used herein to describe individual components, assemblies, regions, layers, or parts, these components, assemblies, regions, layers, or parts are not limited by these terms. Rather, these terms are used only to distinguish one component, assembly, region, layer, or part from another. Therefore, without departing from the teachings of the examples described herein, the first component, assembly, region, layer, or part referred to as the second component, assembly, region, layer, or part may also be referred to as the second component, assembly, region, layer, or part.
[0050] For ease of description, spatial relation terms such as “above,” “upper,” “below,” and “lower” are used herein to describe the relationship between one element and another, as shown in the accompanying drawings. Such spatial relation terms are intended to include not only the orientation depicted in the drawings but also different orientations of the device during use or operation. For example, if the device in the drawings is flipped, an element described as being “above” or “upper” relative to another element will subsequently be “below” or “lower” relative to that other element. Therefore, the term “above” includes both “above” and “below” orientations depending on the spatial orientation of the device. The device may also be positioned in other ways (e.g., rotated 90 degrees or in other orientations), and the spatial relation terms used herein will be interpreted accordingly.
[0051] The terminology used herein is for the purpose of describing various examples only and is not intended to limit this disclosure. Unless the context clearly indicates otherwise, the singular form is also intended to include the plural form. The terms “comprising,” “including,” and “having” enumerate the stated features, quantities, operations, components, elements, and / or combinations thereof, but do not exclude the presence or addition of one or more other features, quantities, operations, components, elements, and / or combinations thereof.
[0052] Variations in the shapes shown in the accompanying drawings may occur due to manufacturing techniques and / or tolerances. Therefore, the examples described herein are not limited to the specific shapes shown in the accompanying drawings, but include changes in shape that may occur during manufacturing.
[0053] The features of the examples described herein can be combined in various ways that will be apparent upon understanding the disclosure of this application. Furthermore, although the examples described herein have a wide variety of constructions, other constructions are possible, as will be apparent upon understanding the disclosure of this application.
[0054] The following is combined with Figures 1-6 This application provides a detailed description of a glove.
[0055] This application provides a glove, including a glove body 1, a light-emitting component 2, and a power supply component 3;
[0056] The glove body 1 has a mounting cavity 103 formed at a preset position on the palm side, and the power supply component 3 is disposed in the mounting cavity 103; the mounting cavity 103 can be closed or opened so that the power supply component 3 is sealed in the mounting cavity 103 or removed from the mounting cavity 103 for replacement.
[0057] The light-emitting component 2 has a light-emitting part, which is distributed on the back side of the glove body 1 at the positions corresponding to the fingers; the power supply component 3 is electrically connected to the light-emitting component 2, and can supply power to the light-emitting component 2 so that the light-emitting part emits light.
[0058] In summary, this application incorporates light-emitting components 2 at the corresponding finger positions, ensuring ample illumination for each finger and improving the uniformity and practicality of the lighting effect. This provides pilots with clearer and more comprehensive visual support for operations at night or in low-light environments. Furthermore, the replaceable battery 310 significantly extends the continuous use time of the glove and ensures that pilots can replace the battery 310 at any time during missions, maintaining continuous illumination. This design effectively solves the problem of insufficient battery life, enhances the reliability and practicality of the glove in complex flight missions, and provides strong protection for flight safety.
[0059] In this embodiment, the glove body further includes an outer layer and an inner lining layer sewn integrally with the outer layer and close to the hand;
[0060] The outer layer and the inner lining layer are sewn together at a predetermined position to form a frame structure 102, so that the outer layer and the inner lining layer form an installation cavity 103 at the predetermined position;
[0061] A zipper 104 is provided on the surface layer at the position of the mounting cavity 103. Pulling open the zipper 104 can open the mounting cavity 103; pulling or closing the zipper 104 can close the mounting cavity 103.
[0062] Specifically, the preset position refers to the end of the palm near the wrist. That is, the outer layer and the inner lining layer form a mounting cavity 103 at the end of the palm near the wrist, which ensures stability when wearing the glove and avoids interference from the power supply component 3 on the glove's operational flexibility.
[0063] In summary, this application cleverly incorporates an installation cavity 103, enabling quick and convenient replacement of the battery 310 assembly. By employing a standardized, high-capacity replaceable battery 310 assembly, not only is the continuous usage time of the glove significantly extended, but it also ensures that pilots can replace the battery 310 at any time during a mission, maintaining continuous illumination of the glove. This design effectively solves the problem of insufficient battery 310 endurance, improves the reliability and practicality of the glove in complex flight missions, and provides strong protection for flight safety.
[0064] In addition, this application uses stitching thread to directly sew a frame structure 102 with circles on the outer layer and the inner lining layer. The battery 310 assembly can be directly placed in the installation space formed above, without the need for additional space and materials to fix the battery 310 assembly. In this respect, the battery 310 assembly is deeply integrated with the glove body. Compared with the existing low flexibility and comfort, this application not only improves the integration of the glove, but also significantly reduces the weight and volume of the glove, thereby ensuring the pilot's operational accuracy and comfort under complex flight conditions.
[0065] In this embodiment, the light-emitting component 2 further includes a flexible LED light strip 201 that can serve as a light-emitting part;
[0066] An installation space is formed between the surface layer and the inner lining layer; the LED flexible light strip 201 is located in the installation space and is placed on the inner lining layer on the back of the hand;
[0067] The LED flexible light strip 201 corresponds to the finger position and extends along the finger's extension direction to cover the entire finger.
[0068] In summary, flexible LED light strips 201 are evenly distributed and spread throughout the lining layer on the back of the hand, corresponding to the finger positions. This expands the illumination area. By expanding the illumination area and evenly distributing the LED light strips, the illumination range is significantly improved, meeting the extensive lighting needs of pilots at night or in low-light environments.
[0069] Furthermore, since the outer layer and the lining layer are sewn together as a single unit, an installation space is created between them. The flexible LED light strip 201 is precisely positioned within this space and sewn to the lining layer using stitching and loops. This achieves deep integration of the flexible LED light strip 201 with the glove body. Combined with three-dimensional cutting technology, this ensures that the glove maintains its luminous function while remaining lightweight, breathable, and allowing for good freedom of hand movement. This design not only improves the glove's integration but also significantly reduces its weight and volume, thereby ensuring the pilot's operational precision and comfort under complex flight conditions.
[0070] In addition, LED flexible light strips 201 are evenly distributed and spread on the lining layer on the back of the hand and corresponding to the finger positions. Each finger can not only be fully illuminated, but also the uniformity and practicality of the lighting effect are improved, providing clearer and more comprehensive visual support for pilots to operate at night or in low light environments.
[0071] In this embodiment, the power supply component 3 further includes a power supply member 301, a switch component 302, and a control circuit board 303;
[0072] The power supply component 301 is disposed in the mounting cavity 103; the power supply component 301 is connected to the control circuit board 303 through the first wire 304;
[0073] The LED flexible light strip 201 is connected to the control circuit board 303 via the second wire 305, and the control circuit board 303 enables the LED flexible light strips 201 corresponding to the fingers to be connected in series.
[0074] The switch assembly 302 is disposed on any one of the second wires 305, and the LED flexible light strip 201 is turned on and off by turning the switch assembly 302 off or off.
[0075] Specifically, the control circuit board 303 has small control components, such as resistors and diodes, and may also be equipped with a controller. The specific connection method is understandable to those skilled in the art and will not be described in detail here. As for the controller, an existing model can be used, which can be connected by wires. This application does not protect the control part of the controller. The circuit board here simply connects multiple LED flexible light strips 201 in series.
[0076] Specifically, after assembling the light-emitting components 2, a hand-sewing technique is used. The arranged light-emitting components 2 are then secured to the lining layer on the back of the hand using stitches in the form of loops. This method ensures that the light-emitting components 2 will not shift or loosen during use, thus guaranteeing the normal use and durability of the light-emitting gloves.
[0077] Specifically, the switch assembly 302 is located on the back side of the glove body 1, near the base of the index finger and close to the thumb, and is tightly connected to the control circuit board 303. It is used to control the activation and deactivation of the entire light-emitting assembly 2. This design not only facilitates quick operation by the pilot during flight but also further enhances the glove's practicality and convenience. When the switch assembly 302 is activated, the flexible LED light strip 201 illuminates, providing necessary lighting support for the pilot.
[0078] In summary, when the pilot needs lighting, they simply touch the switch assembly 302 to activate the circuit. At this time, the power supply component 301 transmits electrical energy to the control circuit board 303, which then distributes the energy to the flexible LED strips 201 on each finger, forming a series circuit. Upon receiving the electrical energy, the flexible LED strips 201 quickly convert it into light energy, causing all the flexible LED strips 201 on all fingers to light up simultaneously, providing the pilot with comprehensive lighting support.
[0079] In this embodiment, the switch assembly 302 further includes a switch 306, a rubber pad 307, and a gasket 308;
[0080] The surface layer corresponds to the second conductor 305 and has mounting holes at preset positions, and the gasket 308 is sewn into the mounting holes;
[0081] The rubber pad 307 is sewn onto the gasket 308, and a mounting cavity is formed between the rubber pad 307 and the gasket 308. The switch 306 is located in the mounting cavity.
[0082] In this embodiment, the rubber pad 307 is further recessed into the position of the switch 306 and facing the pad 308 with a groove 309.
[0083] The switch 306 is located in the recess 309.
[0084] Specifically, the groove 309 is adapted to the size of the switch 306.
[0085] In summary, by providing a groove 309 on the rubber pad 307 and placing the switch 306 inside the groove 309, a tight fit is achieved between the switch 306, the rubber pad 307, and the gasket 308. This fundamentally avoids the problem of the connection function with the switch 306 failing due to the displacement of the light-emitting component 2 during operation, and ensures the stable operation of the entire power supply component 3 and the light-emitting component 2.
[0086] In this embodiment, the power supply component 301 further includes a battery 310, a connecting piece 311, a positive electrode circuit 312, and a negative electrode circuit 313;
[0087] The positive terminal of battery 310 is connected to positive circuit 312 via connecting piece 311, and the negative terminal of battery 310 is connected to negative circuit 313 via connecting piece 313.
[0088] One end of the positive circuit 312 away from the connecting piece 311 and the other end of the negative circuit 313 away from the connecting piece are connected to the first docking plug 316; the first docking plug 316 is connected to the control circuit board 303 through the first wire 304.
[0089] Specifically, the mounting cavity 103 is placed on the side of the glove's palm near the wrist, close to the little finger. This flat and stable position facilitates the fixation and protection of the battery 310. However, when the power supply component 301 and the control circuit board 303 are connected, due to structural layout limitations, a mismatch in the connection length of the first wire 304 may occur. To solve this problem, a first docking plug 316 is used to connect with the first wire 304. In this process, the first docking plug 316, as a key tool for connecting the two circuits, has a shell made of flame-retardant insulating nylon material and built-in acid-washed brass terminals to ensure strong conductivity and stable performance. This design ensures that the introduction of the first docking plug 316 will not have any negative impact on the overall application of the light-emitting component 2. In addition, while ensuring the efficient and stable operation of the light-emitting component 2, this application also incorporates an innovative design of a replaceable battery 310. Through a simple plug-and-play operation, the pilot can quickly replace the battery 310 without a complicated disassembly or charging process, thus ensuring the glove's continuous illumination capability under prolonged or high-intensity use. This design not only greatly improves the convenience and practicality of the glove but also effectively extends its service life.
[0090] More specifically, when connecting the circuitry to the power supply component 3 on the back of the glove body 1, special consideration was given to the wiring requirements. Space was reserved for the circuitry to pass through the area where the back of the hand meets the palm during sewing to ensure smooth and stable circuit connections, thereby guaranteeing the overall function and lifespan of the glove.
[0091] Specifically, the battery 310 is a lithium manganese button cell battery 310. Each of the positive and negative terminals of the battery 310 is equipped with a connecting piece 311, used to connect the positive circuit 312 and the negative circuit 313 respectively, to achieve the conduction of electrical signals. The positive circuit 312 is red, while the negative circuit 313 is black for easy differentiation and identification. The positive circuit 312 and the negative circuit 313 are further connected to the first connector 316, forming a complete power supply circuit to provide stable power support for the light-emitting component 2.
[0092] Furthermore, after comparative testing, two 550mAh 3032 lithium manganese button cells were ultimately selected for the battery 310 in series, providing a moderate flight time that will not affect the pilot's normal operation.
[0093] In this embodiment, the power supply component 301 further includes a PVC film 314;
[0094] A PVC film 314 covers the battery 310, the connecting piece 311, the connection point between the connecting piece 311 and the positive circuit 312, and the connection point between the connecting piece 311 and the negative circuit 313.
[0095] Specifically, after ensuring that the battery 310 circuit is correctly and securely connected, the entire battery 310 assembly is tightly wrapped with a layer of PVC film 314. This design not only enhances the structural stability but also effectively fixes the position of the connecting piece 311, preventing it from loosening or shifting during use, thereby ensuring the safety and stability of the power supply component 3 and the entire circuit system.
[0096] In this embodiment, the power supply component 3 further includes a second docking plug 315;
[0097] A second mating plug 315 is provided on the second wire 305 that connects the thumb to the control circuit board 303.
[0098] In summary, five flexible LED light strips 201 are arranged on the back of the fingers, and connected one by one to the control circuit board 303 according to the positive and negative polarity of the circuit. Specifically, considering the special and complex nature of the thumb in daily operation, if the second wire 305 of its flexible LED light strip 201 were directly passed through the back of the hand to connect to the control circuit board 303, it might interfere with the user's normal operation due to the improper length of the second wire 305. Therefore, the second wire 305 is cut off here, and the second connector 315 is used to reconnect and arrange the second wire 305, thereby ensuring the lighting effect while minimizing interference with the user's operation.
[0099] Furthermore, the light-emitting component 2 is tightly integrated with the glove body 1: This application utilizes innovative technical means to tightly integrate the flexible LED light strip 201 with the glove body 1, forming an integrated design. This integration method not only improves the glove's integration and aesthetics but also ensures the stability and durability of the light-emitting component 2. Simultaneously, by employing the connection method of the second connector 315 and the second wire 305, flexible connection and quick replacement between the light-emitting component 2 and the glove body 1 are achieved, further enhancing the glove's practicality and convenience.
[0100] In summary, this application expands the illumination area and improves glove integration through a rational distribution. Specifically, in terms of expanding the illumination area, this application arranges five flexible LED light strips 201 on the back of the fingers of the glove and connects them one by one to the control circuit board 303 according to the positive and negative polarity of the circuit. This layout not only covers the main operating area of the fingers but also ensures that each finger receives sufficient illumination. Compared with traditional glove lighting designs, this application provides a wider illumination range, offering pilots clearer and more comprehensive visual support, thereby significantly improving operational safety and accuracy in nighttime or low-light environments. This technological effect not only provides pilots with safer and more reliable lighting support but also makes the glove design more ergonomic and meets practical operational needs, greatly facilitating pilots' flight operations in nighttime or low-light environments.
[0101] To improve the integration of the glove through reasonable distribution, this application employs a technique that connects the first connector 316 to the first wire 304 and the second connector 315 to the first wire 304, taking into account the special characteristics and complexity of the thumb. This allows for flexible circuit arrangement and reconnection. This design not only avoids interference to the user's operation caused by excessively long or short circuits but also makes the layout of the entire light-emitting component 2 more compact and reasonable. Meanwhile, the power supply component 301 is cleverly placed on the side of the glove's palm near the wrist, near the little finger, and through the same circuit optimization technology, stable and efficient power supply is achieved. Furthermore, the design of the switch component 302 also fully considers the convenience of operation and the overall aesthetics of the glove, further enhancing the glove's integration and user experience.
[0102] In addition, this application cleverly incorporates a replaceable battery 310 design, further enhancing the glove's practicality and convenience. Specifically, the mounting cavity 103 designed on the wrist side of the glove's palm near the little finger is not only structurally robust but also easy to replace. By employing a standardized, high-performance replaceable battery 310, pilots can quickly and easily replace the battery 310, thereby ensuring the glove's continuous illumination capability during prolonged or continuous use. This design not only solves the problem of insufficient battery life in traditional luminous gloves but also avoids operational interruptions or safety hazards caused by battery depletion. Simultaneously, the replaceable battery 310 design allows pilots to flexibly adjust the battery 310 compartment according to actual needs, meeting the requirements of different flight missions.
[0103] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application 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 or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.
Claims
1. A glove, characterized in that, Includes the glove body, light-emitting components, and power supply components; The glove body has a mounting cavity formed at a preset position on the palm side, and the power supply component is disposed in the mounting cavity; The mounting cavity can be closed or opened to seal the power supply component within the mounting cavity or to remove the power supply component from the mounting cavity for replacement; The light-emitting component has a light-emitting part, which is distributed on the back side of the glove body at the positions corresponding to the fingers; the power supply component is electrically connected to the light-emitting component, and can supply power to the light-emitting component to make the light-emitting part emit light.
2. The gloves according to claim 1, characterized in that, The glove body includes an outer layer and an inner lining layer sewn integrally with the outer layer and close to the hand; The outer layer and the inner lining layer are sewn together at the preset position to form a frame structure, so that the outer layer and the inner lining layer form the mounting cavity at the preset position; The surface layer is provided with a zipper at the position of the mounting cavity. Opening the zipper can open the mounting cavity; closing the zipper can close the mounting cavity.
3. The gloves according to claim 2, characterized in that, The light-emitting component includes a flexible LED light strip that can serve as the light-emitting part; An installation space is formed between the surface layer and the inner lining layer; the flexible LED light strip is located in the installation space and is disposed on the inner lining layer on the back of the hand; The flexible LED light strip corresponds to the finger position and extends along the finger's extension direction to cover the entire finger.
4. The gloves according to claim 3, characterized in that, The power supply assembly includes a power supply component, a switch assembly, and a control circuit board; The power supply component is disposed in the mounting cavity; the power supply component is connected to the control circuit board via a first wire; The flexible LED light strip is connected to the control circuit board via a second wire, and the control circuit board enables the flexible LED light strips corresponding to the fingers to be connected in series. The switch assembly is disposed on any one of the second wires, and the LED flexible light strip is turned on and off by turning the switch assembly off or on.
5. The gloves according to claim 4, characterized in that, The switching assembly includes a switch, a rubber pad, and a gasket; The surface layer corresponds to the second conductor and has mounting holes at preset points, and the gasket is sewn into the mounting holes; The rubber pad is sewn onto the gasket, and an installation compartment is formed between the rubber pad and the gasket, and the switch is disposed in the installation compartment.
6. The gloves according to claim 5, characterized in that, The rubber pad corresponds to the position of the switch and has a groove recessed into the pad; The switch is disposed within the groove.
7. The gloves according to claim 4, characterized in that, The power supply component includes a battery, a connecting piece, a positive circuit, a negative circuit, and a first docking plug; The positive terminal of the battery is connected to the positive terminal circuit via the connecting piece, and the negative terminal of the battery is connected to the negative terminal circuit via the connecting piece. The positive terminal circuit, the end opposite to the connecting piece, and the negative terminal circuit, the end opposite to the connection, are both connected to the first docking plug; the first docking plug is connected to the control circuit board via the first wire.
8. The gloves according to claim 7, characterized in that, The power supply component also includes a PVC film; The PVC film covers the battery, the connecting piece, the connection between the connecting piece and the positive electrode circuit, and the connection between the connecting piece and the negative electrode circuit.
9. The gloves according to claim 4, characterized in that, The power supply assembly also includes a second docking plug; the second docking plug is provided on the second wire connecting the thumb to the control circuit board.