Insulating boot

By integrating conductive materials and voltage detection components in the insulating shoe, the voltage is sensed in a humid environment and alarm is issued, solving the safety hazards caused by leakage in the soaked water of power equipment facilities and ensuring the safety of maintenance personnel.

CN223220025UActive Publication Date: 2025-08-15PETROCHINA CO LTD
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Patent Information

Application Number
CN202422229760.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-11
Publication Date
2025-08-15
Estimated Expiration
2034-09-11

AI Technical Summary

Technical Problem

During the rainy season, power equipment facilities are prone to leakage when soaked in water, and maintenance personnel have safety hazards of electric shock when entering the live area.

Method used

An insulating boot is designed, including a sole, a first conductive component, a shoe upper, a shoe barrel, a voltage detection component and a second conductive component. The voltage sensing system is formed by connecting the conductive material to form a voltage sensing system, which can emit an alarm when a voltage above 100V is sensed, indicating a leakage phenomenon.

Benefits of technology

It effectively avoids electric shock accidents for maintenance personnel, and safe entry is prompted through low voltage alarms to reduce safety hazards.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to an insulating boot which comprises a sole, a first conductive part, an upper, a boot cylinder, a voltage detection part and a second conductive part, the first conductive part is arranged along the peripheral side of the sole, one end of the upper is connected with the sole, one end of the boot cylinder is connected with the upper, the voltage detection part is arranged on the boot cylinder, and the second conductive part is arranged in the height direction of the insulating boot. One end of the second conductive part is connected with the voltage detection part, and the other end extends to the first conductive part which is fixedly connected with the second conductive part. When an operator wears the insulating boots and enters a humid environment or an environment with water on the ground, and the soles of the insulating boots sense voltage above 100V, voltage signals are transmitted to the voltage detection part through the first conductive part and the second conductive part, and the voltage detection part gives out a ticking alarm sound, so that the operator wears the insulating boots to warn the operator. And an operator is prompted that the electric leakage phenomenon exists in the electrical equipment at the current position, and the voltage over 100V exists on the ground, so that the operator is forbidden to enter.
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Description

Technical Field

[0001] The utility model relates to the technical field of parts storage, in particular to an insulating boot. Background Art

[0002] Power equipment and facilities are widely distributed. During the annual rainy season, many low-lying areas often become submerged in water, such as streetlight poles in residential areas, office building lighting systems, lawn lighting in green belts, distribution rooms, and building distribution cabinets. Submerged equipment and facilities may experience electrical leakage, posing a significant safety hazard to maintenance personnel who enter live areas and are at high risk of electric shock and injury, posing a significant safety hazard. To address this issue, we have developed an inductive, automatic alarm insulated boot featuring a simple structure, a very compact design, wide applicability, and low manufacturing cost. Utility Model Content

[0003] The present application provides an insulating boot that can sense a voltage of a preset intensity and sound an alarm when maintenance personnel are performing maintenance, reminding the personnel that there is a leakage in the current area, thereby avoiding accidents of electric shock and casualties among the personnel and reducing safety hazards.

[0004] The present application provides an insulating boot, comprising: a sole; a first conductive component, arranged along the circumferential side of the sole; an upper, one end of which is connected to the sole; a shoe shaft, one end of which is connected to the upper; a voltage detection component, arranged on the shoe shaft; a second conductive component, arranged along the height direction of the insulating boot, one end of which is connected to the voltage detection component, and the other end of which extends to the first conductive component, and the second conductive component is fixedly connected to the first conductive component.

[0005] In some optional embodiments, the sole is made of insulating rubber.

[0006] In some optional embodiments, the shoe upper is made of insulating rubber.

[0007] In some optional embodiments, the shoe shaft is made of insulating rubber.

[0008] In some optional embodiments, the first conductive component is made of conductive rubber.

[0009] In some optional embodiments, the voltage detection component is a electroscope, and a probe of the electroscope is in contact with the second wire component.

[0010] In some optional embodiments, the second conductive component is made of conductive rubber.

[0011] In some optional embodiments, the second conductive component is bonded to the shoe shaft and the shoe upper by glue.

[0012] In some optional embodiments, the second conductive component is welded to the first conductive component.

[0013] In some optional embodiments, the first conductive component is bonded to the peripheral side of the sole by glue.

[0014] Compared with the prior art, the present invention has the following technical effects:

[0015] The present application provides insulating boots, comprising: a sole, a first conductive component, an upper, a shoe shaft, a voltage detection component, and a second conductive component. The first conductive component is disposed along the circumference of the sole, one end of the upper is connected to the sole, and one end of the shoe shaft is connected to the upper. The voltage detection component is disposed on the shoe shaft. The second conductive component is disposed along the height of the insulating boot, one end of the upper is connected to the voltage detection component, and the other end extends to the first conductive component. The second conductive component is fixedly connected to the first conductive component. When an operator wearing the insulating boots enters a humid environment or a wet environment, and the sole of the insulating boots senses a voltage of 100V or more, the voltage signal is transmitted to the voltage detection component via the first and second conductive components. The voltage detection component then emits a "beep" alarm sound, notifying the operator that the electrical equipment at the current location has a leakage, and a voltage of 100V or more to the ground is present, prohibiting entry. When electrical equipment or lines discharge to the ground, step voltage will be generated. The step voltage gradually decreases from the center to the outside. When people come into contact with the step voltage, it goes from low voltage to high voltage. When the alarm insulating boots send out an alarm signal, the staff is exposed to low voltage. It is very safe for operators to enter the leakage area wearing alarm insulating boots. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] The above and / or additional aspects and advantages of the present invention will become apparent and readily understood from the description of the embodiments in conjunction with the following drawings, in which:

[0017] Figure 1 A structural schematic diagram of the insulating boots provided by an embodiment of the utility model is shown.

[0018] in, Figure 1 The corresponding relationship between the reference numerals and component names is as follows:

[0019] 1-sole; 2-first conductive component; 3-upper; 4-shoe barrel; 5-voltage detection component; 6-second conductive component. DETAILED DESCRIPTION

[0020] In order to more clearly understand the above-mentioned objectives, features and advantages of the present invention, the present invention is further described in detail below in conjunction with the accompanying drawings and specific embodiments. It should be noted that the embodiments of the present application and the features therein can be combined with each other without conflict.

[0021] In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Therefore, the scope of protection of the present invention is not limited to the specific embodiments disclosed below.

[0022] Power equipment and facilities are widely distributed. During the annual rainy season, many low-lying areas often become submerged in water, such as streetlight poles in residential areas, office building lighting systems, lawn lighting in green belts, distribution rooms, and building distribution cabinets. Submerged equipment and facilities may experience electrical leakage, posing a significant safety hazard to maintenance personnel who enter live areas and are at high risk of electric shock and injury, posing a significant safety hazard. To address this issue, we have developed an inductive, automatic alarm insulated boot featuring a simple structure, a very compact design, wide applicability, and low manufacturing cost.

[0023] The present application provides an insulating boot that can sense a voltage of a preset intensity and sound an alarm when maintenance personnel are performing maintenance, reminding the personnel that there is a leakage in the current area, thereby avoiding accidents of electric shock and casualties among the personnel and reducing safety hazards.

[0024] The present application provides an insulating boot, which includes: a sole 1; a first conductive component 2, arranged along the circumferential side of the sole 1; an upper 3, one end of which is connected to the sole 1; a shoe shaft 4, one end of which is connected to the upper 3; a voltage detection component 5, which is arranged on the shoe shaft 4; a second conductive component 6, arranged along the height direction of the insulating boot, one end of which is connected to the voltage detection component 5, and the other end of which extends to the first conductive component 2, and the second conductive component 6 is fixedly connected to the first conductive component 2.

[0025] Specifically, the insulating boots include: a sole 1, a first conductive component 2, an upper 3, a shoe shaft 4, a voltage detection component 5, and a second conductive component 6. The first conductive component 2 is arranged along the circumference of the sole 1, one end of the upper 3 is connected to the sole 1, and one end of the shoe shaft 4 is connected to the upper 3. The voltage detection component 5 is arranged on the shoe shaft 4. The second conductive component 6 is arranged along the height of the insulating boot, one end is connected to the voltage detection component 5, and the other end extends to the first conductive component 2. The second conductive component 6 is fixedly connected to the first conductive component 3. When an operator wearing the insulating boots enters a humid environment or a wet environment, if the sole 1 of the insulating boots senses a voltage of 100V or above, the voltage signal is transmitted to the voltage detection component 5 through the first conductive component 2 and the second conductive component 6. The voltage detection component 5 then emits a "beep" alarm sound, notifying the operator that the electrical equipment at the current location has a leakage and a voltage of 100V or above to the ground, prohibiting entry. When electrical equipment or lines discharge to the ground, step voltage will be generated. The step voltage gradually decreases from the center to the outside. When people come into contact with the step voltage, it goes from low voltage to high voltage. When the alarm insulating boots send out an alarm signal, the staff is exposed to low voltage. It is very safe for operators to enter the leakage area wearing alarm insulating boots.

[0026] In some optional embodiments, the sole 1 is made of insulating rubber.

[0027] Specifically, when an operator wearing insulating boots enters a humid environment or one with water on the ground, the sole 1 is made of insulating rubber to prevent external current from being transmitted to the operator. When the sole 1 of the insulating boot senses a voltage of more than 100V, the voltage signal is transmitted to the voltage detection component 5 through the first conductive component 2 and the second conductive component 6. The voltage detection component 5 emits a "beep, beep, beep" alarm sound, prompting the operator that the electrical equipment at the current location has a leakage phenomenon and a voltage of more than 100V to the ground, prohibiting personnel from entering. When electrical equipment or lines discharge to the ground, a step voltage is generated. The step voltage gradually decreases from the center to the outside. When a person is exposed to the step voltage, it is from low voltage to high voltage. When the alarm insulating boots send an alarm signal, the worker is exposed to low voltage. It is very safe for operators wearing alarm insulating boots to enter the leakage area.

[0028] In some optional embodiments, the material of the shoe upper 3 is insulating rubber.

[0029] Specifically, when an operator wearing insulating boots enters a humid environment or one with water on the ground, the sole 1 and upper 3 are made of insulating rubber to prevent external current from being transmitted to the operator. When the sole 1 of the insulating boot senses a voltage above 100V, the voltage signal is transmitted to the voltage detection component 5 through the first conductive component 2 and the second conductive component 6. The voltage detection component 5 emits a "beep, beep, beep" alarm sound, prompting the operator that the electrical equipment at the current location has a leakage phenomenon and a voltage of more than 100V to the ground, prohibiting the operator from entering. When electrical equipment or lines discharge to the ground, a step voltage is generated. The step voltage gradually decreases from the center to the outside. When a person is exposed to the step voltage, it progresses from low voltage to high voltage. When the alarm insulating boots send an alarm signal, the worker is exposed to low voltage. It is very safe for operators wearing alarm insulating boots to enter a leakage area.

[0030] In some optional embodiments, the shoe shaft 4 is made of insulating rubber.

[0031] Specifically, when an operator wearing insulating boots enters a humid environment or one with water on the ground, the sole 1, upper 3, and shaft 4 are made of insulating rubber to prevent external current from being transmitted to the operator. When the sole of the insulating boot senses a voltage of more than 100V, the voltage signal is transmitted to the voltage detection component 5 through the first conductive component 2 and the second conductive component 6. The voltage detection component 5 emits a "beep, beep, beep" alarm sound, prompting the operator that the electrical equipment at the current location has a leakage phenomenon and a voltage of more than 100V to the ground, prohibiting entry. When electrical equipment or lines discharge to the ground, a step voltage is generated. The step voltage gradually decreases from the center to the outside. When a person is exposed to the step voltage, it is from low voltage to high voltage. When the alarm insulating boots send an alarm signal, the worker is exposed to low voltage. It is very safe for operators wearing alarm insulating boots to enter a leakage area.

[0032] In some optional embodiments, the first conductive component 2 is made of conductive rubber.

[0033] Specifically, when an operator wearing insulating boots enters a humid environment or one with water on the ground, the sole 1, upper 3, and shaft 4 are made of insulating rubber to prevent external current from being transmitted to the operator. When the sole 1 of the insulating boot senses a voltage above 100V, the voltage signal is transmitted to the voltage detection component 5 through the conductive rubber. The voltage detection component 5 emits a "beep, beep, beep" alarm sound, prompting the operator that the electrical equipment at the current location has a leakage phenomenon and a voltage of more than 100V to the ground, prohibiting the operator from entering. When electrical equipment or lines discharge to the ground, a step voltage is generated. The step voltage gradually decreases from the center outward. When a person is exposed to the step voltage, the voltage increases from low to high. When the alarm insulating boots send an alarm signal, the worker is exposed to low voltage. It is very safe for operators wearing alarm insulating boots to enter leaking areas.

[0034] In some optional embodiments, the second conductive component 6 is made of conductive rubber.

[0035] Specifically, measure the circumference of the insulating boot and the height of the shoe shaft 4. The first and second conductive components 2, 6 are both 1 cm wide conductive rubber sheets. Cut the conductive rubber sheet into 1 cm wide strips. Connect the first and second conductive components 2, 6 together by welding. This strip is then wrapped around the upper 3 of the insulating boot and secured with glue. A static tester compartment is fixed two-thirds of the way up the outer edge of the boot. A waterproof static tester is then placed in the static tester compartment. The conductive rubber on the outer edge of the boot is then extended upward to the static tester sensor head and connected. This does not affect the performance of the insulating boot; the static tester can be removed during the withstand voltage test. The working principle of the insulating boots provided in the present application is: a circle of conductive rubber is wrapped around the upper 3 and sole 1 of the insulating boot, and a GSY micro-electrode with a 0.1-10kV electrical testing range is installed on the outer boot wall of the insulating boot. The probe of the electrode is connected to the conductive rubber of the sole 1 with conductive rubber. When the operator wears the insulating boots and enters a humid environment or an environment with water on the ground, the sole 1, upper 3, and shaft 4 are made of insulating rubber to prevent external current from being transmitted to the staff. When the sole 1 of the insulating boot senses a voltage of more than 100V, the voltage signal is transmitted to the voltage detection component 5 through the conductive rubber. The voltage detection component 5 emits a "beep" alarm sound, prompting the operator that the electrical equipment at the current location has a leakage phenomenon and there is a voltage of more than 100V to the ground, and people are prohibited from entering. When electrical equipment or lines discharge to the ground, step voltage will be generated. The step voltage gradually decreases from the center to the outside. When people come into contact with the step voltage, it goes from low voltage to high voltage. When the alarm insulating boots send out an alarm signal, the staff is exposed to low voltage. It is very safe for operators to enter the leakage area wearing alarm insulating boots.

[0036] In some optional embodiments, the voltage detection component 5 is an electroscope, and a probe of the electroscope is in contact with the second conductive component 6 .

[0037] Specifically, the probe of the electroscope is connected to the conductive rubber of the sole 1 with conductive rubber. When an operator wearing insulating boots enters a humid environment or a wet environment, the sole 1, upper 3, and shaft 4 are made of insulating rubber to prevent external current from being transmitted to the operator. When the sole 1 of the insulating boot senses a voltage above 100V, the voltage signal is transmitted to the voltage detection component 5 through the conductive rubber. The voltage detection component 5 emits a "beep, beep, beep" alarm sound, prompting the operator that the electrical equipment at the current location has a leakage phenomenon and a voltage of more than 100V to the ground, prohibiting the operator from entering. When electrical equipment or lines discharge to the ground, a step voltage is generated. The step voltage gradually decreases from the center to the outside. When a person is exposed to the step voltage, the voltage increases from low to high. When the alarm insulating boots send an alarm signal, the worker is exposed to low voltage. It is very safe for operators wearing alarm insulating boots to enter the leakage area.

[0038] In some optional embodiments, the second conductive component 6 is bonded to the shoe shaft 4 and the shoe upper 3 by glue.

[0039] Specifically, measure the circumference of the insulating boot and the height of the shoe shaft 4. The first and second conductive components 2, 6 are both 1 cm wide conductive rubber sheets. Cut the conductive rubber sheet into 1 cm wide strips. Connect the first and second conductive components 2, 6 together by welding. This strip is then wrapped around the upper 3 of the insulating boot and secured with glue. A static tester compartment is fixed two-thirds of the way up the outer edge of the boot. A waterproof static tester is then placed in the static tester compartment. The conductive rubber on the outer edge of the boot is then extended upward to the static tester sensor head and connected. This does not affect the performance of the insulating boot; the static tester can be removed during the withstand voltage test. The working principle of the insulating boots provided in the present application is: a circle of conductive rubber is wrapped around the upper 3 and sole 1 of the insulating boot, and a GSY micro-electrode with a 0.1-10kV electrical testing range is installed on the outer boot wall of the insulating boot. The probe of the electrode is connected to the conductive rubber of the sole 1 with conductive rubber. When the operator wears the insulating boots and enters a humid environment or an environment with water on the ground, the sole 1, upper 3, and shaft 4 are made of insulating rubber to prevent external current from being transmitted to the staff. When the sole 1 of the insulating boot senses a voltage of more than 100V, the voltage signal is transmitted to the voltage detection component 5 through the conductive rubber. The voltage detection component 5 emits a "beep" alarm sound, prompting the operator that the electrical equipment at the current location has a leakage phenomenon and there is a voltage of more than 100V to the ground, and people are prohibited from entering.

[0040] In some optional embodiments, the second conductive component 6 is welded to the first conductive component 2 .

[0041] Specifically, measure the circumference of the insulating boot and the height of the shoe shaft 4. The first and second conductive components 2, 6 are both 1 cm wide conductive rubber sheets. Cut the conductive rubber sheet into 1 cm wide strips. Connect the first and second conductive components 2, 6 together by welding. This strip is then wrapped around the upper 3 of the insulating boot and secured with glue. A static tester compartment is fixed two-thirds of the way up the outer edge of the boot. A waterproof static tester is then placed in the static tester compartment. The conductive rubber on the outer edge of the boot is then extended upward to the static tester sensor head and connected. This does not affect the performance of the insulating boot; the static tester can be removed during the withstand voltage test. The working principle of the insulating boots provided in the present application is: a circle of conductive rubber is wrapped around the upper 3 and sole 1 of the insulating boot, and a GSY micro-electrode with a 0.1-10kV electrical testing range is installed on the outer boot wall of the insulating boot. The probe of the electrode is connected to the conductive rubber of the sole 1 with conductive rubber. When the operator wears the insulating boots and enters a humid environment or an environment with water on the ground, the sole 1, upper 3, and shaft 4 are made of insulating rubber to prevent external current from being transmitted to the staff. When the sole 1 of the insulating boot senses a voltage of more than 100V, the voltage signal is transmitted to the voltage detection component 5 through the conductive rubber. The voltage detection component 5 emits a "beep" alarm sound, prompting the operator that the electrical equipment at the current location has a leakage phenomenon and there is a voltage of more than 100V to the ground, and people are prohibited from entering.

[0042] In some optional embodiments, the first conductive component 2 is bonded to the peripheral side of the sole 1 by glue.

[0043] Specifically, measure the circumference of the insulating boot and the height of the shoe shaft 4. The first and second conductive components 2, 6 are both 1 cm wide conductive rubber sheets. Cut the conductive rubber sheet into 1 cm wide strips. Connect the first and second conductive components 2, 6 together by welding. This strip is then wrapped around the upper 3 of the insulating boot and secured with glue. A static tester compartment is fixed two-thirds of the way up the outer edge of the boot. A waterproof static tester is then placed in the static tester compartment. The conductive rubber on the outer edge of the boot is then extended upward to the static tester sensor head and connected. This does not affect the performance of the insulating boot; the static tester can be removed during the withstand voltage test. The working principle of the insulating boots provided in the present application is: a circle of conductive rubber is wrapped around the upper 3 and sole 1 of the insulating boot, and a GSY micro-electrode with a 0.1-10kV electrical testing range is installed on the outer boot wall of the insulating boot. The probe of the electrode is connected to the conductive rubber of the sole 1 with conductive rubber. When the operator wears the insulating boots and enters a humid environment or an environment with water on the ground, the sole 1, upper 3, and shaft 4 are made of insulating rubber to prevent external current from being transmitted to the staff. When the sole 1 of the insulating boot senses a voltage of more than 100V, the voltage signal is transmitted to the voltage detection component 5 through the conductive rubber. The voltage detection component 5 emits a "beep" alarm sound, prompting the operator that the electrical equipment at the current location has a leakage phenomenon and there is a voltage of more than 100V to the ground, and people are prohibited from entering.

[0044] In this utility model, the term "plurality" refers to at least two or more than two, unless otherwise specified. Terms such as "installed," "connected," "connected," and "fixed" should be interpreted broadly. For example, "connected" can mean fixed, removable, or integral; "connected" can mean directly or indirectly through an intermediary. Those skilled in the art will understand the specific meanings of these terms in this utility model based on specific circumstances.

[0045] Throughout this specification, terms such as "one embodiment," "some embodiments," and "specific embodiments" mean that the specific features, structures, materials, or characteristics described in conjunction with that embodiment or example are included in at least one embodiment or example of the present invention. In this specification, schematic representations of these terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.

[0046] The above are merely preferred embodiments of the present invention and are not intended to limit the present invention. Those skilled in the art will readily appreciate that the present invention is susceptible to various modifications and variations. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the present invention.

Claims

1. An insulating boot, characterized in that: include: Sole (1); A first conductive component (2) is arranged along the circumference of the sole (1); A shoe upper (3), one end of which is connected to the sole (1); A shoe shaft (4), one end of which is connected to the shoe upper (3); A voltage detection component (5) is provided on the shoe shaft (4); A second conductive component (6) is arranged along the height direction of the insulating boot, one end of which is connected to the voltage detection component (5) and the other end of which extends to the first conductive component (2). The second conductive component (6) is fixedly connected to the first conductive component (2).

2. The insulating boot according to claim 1, characterized in that: The material of the sole (1) is insulating rubber.

3. The insulating boots according to claim 1, characterized in that: The material of the shoe upper (3) is insulating rubber.

4. The insulating boots according to claim 1, characterized in that: The shoe shaft (4) is made of insulating rubber.

5. The insulating boots according to claim 1, characterized in that: The material of the first conductive component (2) is conductive rubber.

6. The insulating boots according to claim 1, characterized in that: The voltage detection component (5) is an electroscope, and a probe of the electroscope is in contact with the second conductive component (6).

7. The insulating boot according to claim 6, characterized in that: The material of the second conductive component (6) is conductive rubber.

8. The insulating boots according to claim 7, characterized in that: The second conductive component (6) is bonded to the shoe shaft (4) and the shoe upper (3) by adhesive.

9. The insulating boot according to claim 8, characterized in that: The second conductive component (6) is welded to the first conductive component (2).

10. The insulating boot according to claim 1, wherein: The first conductive component (2) is bonded to the peripheral side of the sole (1) by adhesive.