Traceable live-line work insulated gloves

By embedding a radio frequency identification chip in the insulating glove, the problem of inefficiently detecting insulation performance in existing technologies has been solved, enabling efficient traceability management and intelligent detection, and improving the management efficiency of insulating gloves.

CN224670909UActive Publication Date: 2026-08-25TIANJIN SHUANGAN LABOR PROTECTION RUBBER
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Patent Information

Application Number
CN202521681507.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-08
Publication Date
2026-08-25
Estimated Expiration
2035-08-08

AI Technical Summary

Technical Problem

Existing insulating gloves are difficult to test efficiently for electrical performance after long-term use, leading to increased maintenance costs and workload.

Method used

An RFID chip is embedded in an insulating glove to enable contactless data exchange via radio frequency signals, and a reader is used for periodic testing.

Benefits of technology

It has enabled efficient traceability management of insulating gloves, reduced testing difficulty and maintenance costs, and improved management efficiency by more than 60%.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an insulation glove for live working with traceability, including glove body, the one side of glove body is equipped with the mounting groove, the one side fixed mounting of mounting groove has installation structure, and installation structure includes chip mounting carrier, and chip mounting carrier is detachable installation with mounting groove, and the inside plug -in of chip mounting carrier has insulating chip. The utility model discloses, and the insulating chip is radio frequency identification chip, is a kind of non-contact automatic identification technology, and identification and data exchange to target object are realized through radio frequency signal. Its core principle is to utilize the space coupling (electromagnetic induction or electromagnetic propagation) of radio frequency signal, and establish wireless communication between reader and electronic tag, to achieve the purpose of identification, tracking and management object, therefore, when carrying out periodic inspection to insulation glove, only needs to use scanning equipment to scan insulating chip, can detect the data of glove, carries out maintenance replacement.
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Description

Technical Field

[0001] This utility model relates to the field of insulating gloves, specifically to a traceable insulating glove for live-line work. Background Technology

[0002] Insulating gloves are an important piece of personal protective equipment, primarily used to protect the wearer's hands from electrical hazards. They play a vital role in electrical work, electrical maintenance, laboratory operations, and other work environments involving high or low voltage currents.

[0003] However, insulating gloves require regular electrical performance testing during long-term use to ensure their insulation performance does not deteriorate. This testing is challenging, significantly increasing maintenance costs and workload. Therefore, there is an urgent need to design a traceable insulating glove for live-line work to address these issues. Utility Model Content

[0004] The purpose of this invention is to provide a traceable insulating glove for live-line work, in order to address the aforementioned shortcomings in the prior art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: A traceable insulating glove for live-line work includes a glove body, a mounting groove on one side of the glove body, and a mounting structure fixedly mounted on one side of the mounting groove. The mounting structure includes a chip mounting carrier, which is detachably mounted to the mounting groove. An insulating chip is inserted and removed from the inside of the chip mounting carrier.

[0006] By adopting the above-described utility model, the insulating chip is a radio frequency identification (RFID) chip, a non-contact automatic identification technology that uses radio frequency signals to identify and exchange data with target objects. Its core principle is to utilize the spatial coupling (electromagnetic induction or electromagnetic propagation) of radio frequency signals to establish wireless communication between the reader and the electronic tag, thereby achieving the purpose of identifying, tracking, and managing objects. Therefore, during the periodic inspection of insulating gloves, only a scanning device is needed to scan the insulating chip to detect the glove's data, allowing for repair or replacement.

[0007] Preferably, the mounting structure further includes two snap-fit ​​components, which are respectively fixedly installed on both sides of the chip mounting carrier. Both sides of the mounting groove are provided with snap-fit ​​grooves that are compatible with the snap-fit ​​components, and an adhesive film is fixedly installed on the bottom of the chip mounting carrier.

[0008] By adopting the above-mentioned utility model, the adhesive film is used to assist the chip mounting carrier in being installed into the glove body, and the snap-fit ​​component can help increase the installation strength after the chip mounting carrier is snapped into the glove body.

[0009] Preferably, the mounting structure further includes a sealing tape, which is fixedly installed on the other side of the chip mounting carrier and is in contact with the glove body.

[0010] By adopting the above-mentioned utility model, the sealing tape is used to seal and fix the chip mounting carrier after installation, so that the insulating chip will not slip out of the glove body.

[0011] Preferably, the glove body is composed of a rubber layer, a plastic layer, and a latex layer, which are bonded together, with the latex layer located on the innermost side and the rubber layer on the outermost side.

[0012] By adopting the above-mentioned utility model, the rubber layer serves as an insulating layer, the plastic layer strengthens the glove body, and the rubber layer increases the overall viscosity of the glove body to facilitate the handling of materials.

[0013] Preferably, the surface of the glove body is fixedly fitted with a wear-resistant component to enhance its wear resistance.

[0014] By adopting the above-mentioned utility model, the wear-resistant layer can effectively reduce the wear caused by friction and scratching during the use of gloves, thereby extending the service life of gloves.

[0015] Preferably, a plurality of adhesive reinforcements are fixedly installed on the surface of the glove body, the adhesive reinforcements are attached to one side of the latex layer, and the adhesive reinforcements are located above the wear-resistant parts.

[0016] By adopting the above-mentioned utility model, the adhesive reinforcement can increase the overall adhesive strength of the glove body, thereby making it easier for workers to grip tools.

[0017] In the above technical solution, the traceable insulating gloves for live-line work provided by this utility model have the following beneficial effects: This traceable live-line working insulating glove uses a radio frequency identification (RFID) chip as its insulating chip. This non-contact automatic identification technology uses radio frequency signals to identify and exchange data with target objects. Its core principle is to utilize the spatial coupling (electromagnetic induction or electromagnetic propagation) of radio frequency signals to establish wireless communication between the reader and the electronic tag, thereby achieving the purpose of identifying, tracking, and managing objects. Therefore, during regular inspections of the insulating gloves, only a scanning device is needed to scan the insulating chip to detect the glove's data and allow for repair or replacement. Attached Figure Description

[0018] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this utility model. For those skilled in the art, other drawings can be obtained based on these drawings.

[0019] Figure 1 This is a schematic diagram of a planar structure provided for one embodiment of the present utility model.

[0020] Figure 2 This is a three-dimensional structural disassembly diagram provided for one embodiment of the present utility model.

[0021] Figure 3 This is a three-dimensional structural disassembly diagram of an embodiment of the present invention.

[0022] Figure 4 This is a schematic cross-sectional view of the glove body planar structure provided in one embodiment of the present invention.

[0023] 1. Glove body; 10. Rubber layer; 11. Plastic layer; 12. Latex layer; 13. Mounting groove; 2. Wear-resistant parts; 3. Adhesive reinforcement parts; 4. Mounting structure; 40. Chip mounting carrier; 41. Snap-fit ​​parts; 42. Sealing tape; 43. Adhesive film; 5. Insulating chip. Detailed Implementation

[0024] To enable those skilled in the art to better understand the technical solution of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings.

[0025] like Figure 1-4 As shown in the figure, the present invention provides a traceable live-line working insulating glove, including a glove body 1. A mounting groove 13 is provided on one side of the glove body 1. A mounting structure 4 is fixedly installed on one side of the mounting groove 13. The mounting structure 4 includes a chip mounting carrier 40. The chip mounting carrier 40 and the mounting groove 13 are detachably installed. An insulating chip 5 is inserted and removed from the inside of the chip mounting carrier 40.

[0026] Specifically, in this embodiment, the mounting structure 4 further includes two snap-fit ​​pieces 41, which are fixedly installed on both sides of the chip mounting carrier 40. Both sides of the mounting groove 13 are provided with snap-fit ​​grooves that are compatible with the snap-fit ​​pieces 41. An adhesive film 43 is fixedly installed on the bottom of the chip mounting carrier 40. The mounting structure 4 also includes a sealing tape 42, which is fixedly installed on the other side of the chip mounting carrier 40 and is in contact with the glove body 1.

[0027] This utility model provides a traceable insulating glove for live-line work. Before use, the adhesive film 43 at the bottom of the chip mounting carrier 40 is pasted into the mounting groove 13 on one side of the glove body 1. During the installation process, the snap-fit ​​pieces 41 on both sides of the chip mounting carrier 40 are snapped into the snap-fit ​​grooves on both sides of the mounting groove 13. After the installation is completed, the insulating chip 5 is placed in the chip mounting carrier 40. During the installation process, the sealing tape 42 is attached to the surface of the glove body 1 to complete the overall installation of the insulating chip 5.

[0028] In another embodiment of this utility model, the glove body 1 is divided into a rubber layer 10, a plastic layer 11, and a latex layer 12. The rubber layer 10, the plastic layer 11, and the latex layer 12 are bonded together, with the latex layer 12 located on the innermost side and the rubber layer 10 located on the outermost side. A wear-resistant component 2 for increasing wear resistance is fixedly installed on the surface of the glove body 1. A plurality of adhesive reinforcing components 3 are fixedly installed on the surface of the glove body 1. The adhesive reinforcing components 3 are bonded to one side of the latex layer 12 and are located above the wear-resistant component 2.

[0029] This utility model provides a traceable insulating glove for live-line work. After installation, workers can put on the glove body 1 for use. During use, the wear-resistant part 2 can increase the wear resistance of the glove body 1, while the adhesive reinforcement part 3 can increase the adhesive strength of the glove body 1, making it easier to grip the tools.

[0030] The insulating chip 5 proposed in this application is a novel RFID chip. RFID (Radio Frequency Identification) is a non-contact automatic identification technology that uses radio frequency signals to identify target objects and exchange data. Its core principle is to utilize the spatial coupling (electromagnetic induction or electromagnetic propagation) of radio frequency signals to establish wireless communication between the reader and the electronic tag, thereby achieving the purpose of identifying, tracking, and managing objects. RFID technology is now widely used in many fields and has formed a complete industrial chain.

[0031] This application innovatively embeds RFID chips into insulating gloves used for live-line work, filling a technological gap in the PPE field and endowing the gloves with full-process traceability and intelligent management capabilities. The chip employs a flexible packaging process to ensure that it does not affect the glove's insulation performance or wearing comfort. Simultaneously, it can store key information such as production batch, insulation test data, manufacturing date, and logistics trajectory. During manufacturing, data such as raw material batch, vulcanization process parameters, and withstand voltage test results for each glove are written to the chip in real time. Quality inspectors can quickly verify product quality using handheld readers, preventing substandard products from entering the market. During logistics and transportation, RFID readers installed on turnover boxes and transport vehicles automatically collect transportation route and temperature and humidity environmental data. In the event of severe vibration or abnormal temperature and humidity, the system immediately issues an alert, ensuring stable glove performance. In warehousing management, fixed readers at warehouse entrances identify incoming gloves in batches, automatically updating inventory location information. Combined with an intelligent warehousing system, this achieves "first-in, first-out" (FIFO) and reduces the risk of inventory backlog. In the retail stage, consumers or power workers can scan the glove chip to view complete quality inspection reports and usage instructions. Enterprises can also use data feedback to optimize product iteration. This end-to-end information integration model improves the management efficiency of insulating gloves by more than 60%, and reduces the quality traceability response time from several days to minutes, providing a more reliable guarantee for safe power operations.

[0032] Working principle: Before use, the adhesive film 43 at the bottom of the chip mounting carrier 40 is attached to the mounting groove 13 on one side of the glove body 1. During installation, the snap-fit ​​pieces 41 on both sides of the chip mounting carrier 40 are snapped into the snap-fit ​​grooves on both sides of the mounting groove 13. After installation, the insulating chip 5 is placed inside the chip mounting carrier 40. During installation, the sealing tape 42 is attached to the surface of the glove body 1 to complete the overall installation of the insulating chip 5. After installation, the worker can put on the glove body 1 for use. During use, the wear-resistant part 2 can increase the wear resistance of the glove body 1, and at the same time, the adhesive reinforcement part 3 can increase the adhesive strength of the glove body 1, making it easier to grip the tool.

[0033] The foregoing description only illustrates certain exemplary embodiments of the present invention. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.

Claims

1. A traceable insulating glove for live-line work, comprising a glove body (1), characterized in that, The glove body (1) has an installation groove (13) on one side, and an installation structure (4) is fixedly installed on one side of the installation groove (13). The installation structure (4) includes a chip mounting carrier (40). The chip mounting carrier (40) and the installation groove (13) are detachably installed. An insulating chip (5) is inserted and removed from the inside of the chip mounting carrier (40).

2. The traceable insulating glove for live-line work according to claim 1, characterized in that, The mounting structure (4) also includes two snap-fit ​​pieces (41), which are fixedly installed on both sides of the chip mounting carrier (40). Both sides of the mounting groove (13) are provided with snap-fit ​​grooves that are compatible with the snap-fit ​​pieces (41). An adhesive film (43) is fixedly installed on the bottom of the chip mounting carrier (40).

3. The traceable insulating glove for live-line work according to claim 1, characterized in that, The mounting structure (4) also includes a sealing tape (42), which is fixedly installed on the other side of the chip mounting carrier (40) and is in contact with the glove body (1).

4. The traceable insulating glove for live-line work according to claim 1, characterized in that, The glove body (1) is divided into a rubber layer (10), a plastic layer (11) and a latex layer (12). The rubber layer (10), plastic layer (11) and latex layer (12) are bonded together. The latex layer (12) is located on the innermost side and the rubber layer (10) is located on the outermost side.

5. The traceable insulating glove for live-line work according to claim 1, characterized in that, The surface of the glove body (1) is fixedly fitted with a wear-resistant part (2) to enhance wear resistance.

6. The traceable insulating glove for live-line work according to claim 5, characterized in that, Multiple adhesive reinforcements (3) are fixedly installed on the surface of the glove body (1). The adhesive reinforcements (3) are attached to one side of the latex layer (12) and are located above the wear-resistant part (2).