Auxiliary tool for outdoor distribution network

By integrating safety monitoring blocks on the insulated safety helmet, using components such as microcontrollers and infrared sensors to detect staff status and remote help functions, the problem that the current insulated safety helmet cannot detect staff status and seek help in a timely manner is solved.

CN119969678APending Publication Date: 2025-05-13ANXI COUNTY POWER SUPPLY CO OF STATE GRID FUJIAN ELECTRIC POWER CO LTD
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Patent Information

Application Number
CN202510259919.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-06
Publication Date
2025-05-13

AI Technical Summary

Technical Problem

The insulated safety helmet cannot detect and determine the status of the staff, and it is impossible to seek help in a timely manner when an accident occurs.

Method used

Design an auxiliary tool for outdoor distribution networking, including an insulated safety helmet and a safety monitoring block, which has a built-in microcontroller, human infrared sensor, micro motor, status feedback buttons and buzzer. These components enable the detection of staff status and remote help function.

Benefits of technology

The protection and status detection of the staff's heads are realized, and the staff's status is detected and determined every 30 minutes. When the staff is in an accident state, it can achieve timely help through buzzer and remote message transmission.

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Abstract

The invention provides an auxiliary tool for an outdoor distribution network, and relates to the technical field of outdoor distribution network safety protection, and the auxiliary tool comprises an insulating safety helmet, a safety monitoring block body is installed at the top end of a helmet body of the insulating safety helmet, and a human body infrared sensor and a micro motor are embedded in the bottom end face of the safety monitoring block body; a state feedback key is fixedly installed on the edge of the top end face of the safety monitoring block, the state of a worker is detected and judged once every thirty minutes, when the worker is in an accident state and cannot call for help, a message can be remotely sent to a monitoring center at the first time in cooperation with timing feedback of a second timing module, and the safety of the worker is guaranteed. According to the insulating safety helmet, the information can be sent to the monitoring center, so that a worker in the monitoring center can timely know the information, the state of the worker can be judged through telephone communication and the like, and the problems that the existing insulating safety helmet detects and judges the state of the worker, and when the worker has an accident and cannot call for help, the insulating safety helmet cannot play a corresponding help-seeking role are solved.
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Description

Technical Field

[0001] The invention relates to the technical field of outdoor power distribution network safety protection, in particular to an auxiliary tool for outdoor power distribution network. Background Art

[0002] When working in outdoor distribution networks, workers need to wear insulating helmets, insulating gloves and other auxiliary tools to avoid injuries such as electric shock while working in the distribution network. However, the existing insulating helmets only have a single head protection function and cannot detect and determine the status of the workers. When a worker has an accident, such as being unable to move or unconscious, and is unable to call for help, the insulating helmet cannot perform the corresponding rescue function, which is insufficient. Summary of the invention

[0003] In view of this, the purpose of the present invention is to provide an auxiliary tool for outdoor distribution networks, which solves the problem that the existing insulating safety helmet can detect and determine the status of the staff, and when the staff has an accident and cannot call for help, the insulating safety helmet cannot play the corresponding rescue function.

[0004] To achieve the above-mentioned purpose, the present invention adopts the following technical scheme: an auxiliary tool for outdoor power distribution network, comprising an insulating safety helmet (1), wherein a safety monitoring block (101) is installed at the top of the body of the insulating safety helmet (1), and the bottom of the safety monitoring block (101) is located at the top of the body wearing cavity of the insulating safety helmet (1), and a microcontroller (1015) is arranged inside the safety monitoring block (101); a human infrared sensor (106) and a micro motor (107) are embedded in the bottom end surface of the safety monitoring block (101), and the human infrared sensor (106) and the micro motor (107) are both electrically connected to the microcontroller (1015); and a group of status feedback buttons (105) are fixedly installed at the edge of the top end surface of the safety monitoring block (101), the status feedback buttons (105) are touch switches, and the status feedback buttons (105) are electrically connected to the microcontroller (1015).

[0005] In a preferred embodiment, a thread groove (108) is provided at the center of the top surface of the safety monitoring block (101), and a group of power switches (109) are fixedly installed on the bottom surface of the inner end of the thread groove (108). The power switch (109) is a touch switch, and the button end of the power switch (109) faces upward. The power switch (109) is electrically connected to the microcontroller (1015).

[0006] In a preferred embodiment, a stud (3) is rotatably mounted on the inner thread of the thread groove (108), and the height of the stud (3) is half of the depth of the thread groove (108); an embedding groove (301) with an elliptical groove structure is opened at the axial center of the top surface of the stud (3), and an embedding block (2) with a matching structural size is inserted into the embedding groove (301), and a twisting opening (201) with a hexagonal structure is opened at the axial center of the embedding block (2).

[0007] In a preferred embodiment, a storage battery (1010) is provided inside the safety monitoring block (101), and a power display (103) and a charging socket (104) are installed on the side end surface of the safety monitoring block (101), and the power display (103) and the charging socket (104) are both electrically connected to the storage battery (1010); a buzzer (102) is also installed on the top end surface of the safety monitoring block (101), and the buzzer (102) is electrically connected to the microcontroller (1015).

[0008] In a preferred embodiment, the safety monitoring block (101) is further provided with a first timing module (1011), a second timing module (1012) and a 5G module (1013), and the first timing module (1011), the second timing module (1012) and the 5G module (1013) are all electrically connected to the microcontroller (1015), and the 5G module (1013) is connected to the monitoring center (1014) via a wireless network transmission.

[0009] In a preferred embodiment, the timing value of the first timing module (1011) is thirty minutes; when the timing value of the first timing module (1011) is reached, the first timing module (1011) feeds back a signal to the microcontroller (1015), and the microcontroller (1015) controls the micromotor (107) and the second timing module (1012) to start; when the status feedback button (105) is in a pressed start state, the status feedback button (105) feeds back a signal to the microcontroller (1015), and the microcontroller (1015) controls the micromotor (107) and the second timing module (1012) to turn off; the timing value of the second timing module (1012) is one minute; when the timing value of the second timing module (1012) is reached, the second timing module (1012) feeds back a signal to the microcontroller (1015), and the microcontroller (1015) controls the 5G module (1013) to wirelessly send a message to the monitoring center (1014), and simultaneously controls the buzzer (102) to start.

[0010] Compared with the prior art, the present invention has the following beneficial effects: the present application is worn on the head of the staff, and on the basis of realizing protection for the staff's head, the staff's status is detected and determined once every thirty minutes, and the staff is reminded by the vibration generated by the micro motor, and when the staff is in a normal state, the staff realizes safety feedback of the detection and determination by pressing the status feedback button, and when the staff is in an accident state and cannot realize calling for help, the timing feedback of the second timing module can be used to remotely send a message to the monitoring center at the first time, so that the staff in the monitoring center can know the message in time, and the status of the staff can be determined by telephone communication and other means. When the communication fails, it can be temporarily determined that an accident has occurred and people can be sent for rescue in time. In addition, when the present application sends the message remotely, it also controls the start of the buzzer, so that the high-decibel buzzing of the buzzer can replace the staff to call for help to the surrounding. BRIEF DESCRIPTION OF THE DRAWINGS

[0011] Figure 1 The top axonometric structure diagram of the present application is shown; Figure 2 The bottom axonometric structure schematic diagram of the present application is shown; Figure 3 It shows a schematic diagram of the structure of the insert and the stud in the disassembled state of the present application; Figure 4 This application shows Figure 3 A schematic diagram of the partially enlarged structure at center A; Figure 5 A partial cross-sectional enlarged structural schematic diagram of the thread groove portion of the present application is shown; Figure 6 shows a system block diagram of the present application; Reference numerals list 1. Insulating safety helmet; 101. Safety monitoring block; 102. Buzzer; 103. Power display; 104. Charging socket; 105. Status feedback button; 106. Human infrared sensor; 107. Micro motor; 108. Threaded groove; 109. Power switch; 1010. Battery; 1011. First timing module; 1012. Second timing module; 1013. 5G module; 1014. Monitoring center; 1015. Microcontroller; 2. Embedded block; 201. Twisting opening; 3. Stud; 301. Embedded groove. DETAILED DESCRIPTION

[0012] The present invention will be further described below in conjunction with the accompanying drawings and embodiments.

[0013] It should be noted that the following detailed descriptions are illustrative and are intended to provide further explanation of the present application. Unless otherwise specified, all technical and scientific terms used herein have the same meanings as those commonly understood by those skilled in the art to which the present application belongs.

[0014] It should be noted that the terms used herein are only for describing specific embodiments and are not intended to limit the exemplary embodiments according to the present application; as used herein, unless the context clearly indicates otherwise, the singular form is also intended to include the plural form. In addition, it should be understood that when the terms "comprise" and / or "include" are used in this specification, they indicate the presence of features, steps, operations, devices, components and / or their combinations.

[0015] Example: Please refer to Figures 1 to 6 : The present application proposes an auxiliary tool for outdoor power distribution network, comprising: an insulating safety helmet 1, a safety monitoring block 101 is installed on the top of the body of the insulating safety helmet 1, and the bottom of the safety monitoring block 101 is located at the top of the body wearing cavity of the insulating safety helmet 1, and a microcontroller 1015 is arranged inside the safety monitoring block 101; a human infrared sensor 106 and a micro motor 107 are embedded in the bottom end surface of the safety monitoring block 101, and the human infrared sensor 106 and the micro motor 107 are electrically connected to the microcontroller 1015; a group of status feedback buttons 105 are fixedly installed on the edge of the top surface of the safety monitoring block 101, and the status feedback buttons 105 adopt a touch switch, and the status feedback buttons 105 are connected to the microcontroller 1015. The safety monitoring block 101 is electrically connected to the microcontroller 1015; a thread groove 108 is provided at the center of the top surface of the safety monitoring block 101, and a group of power switches 109 are fixedly installed on the bottom surface of the inner end of the thread groove 108. The power switch 109 adopts a touch switch, and the button end of the power switch 109 faces the upper side. The power switch 109 is electrically connected to the microcontroller 1015; a stud 3 is rotatably installed on the inner thread of the thread groove 108, and the height of the stud 3 is half of the depth of the thread groove 108; an elliptical groove structure is provided at the axial center of the top surface of the stud 3, and an embedded block 2 matching its structural size is inserted in the embedded groove 301, and a torsional opening 201 with a hexagonal structure is provided at the axial center of the embedded block 2.

[0016] In this embodiment, a battery 1010 is provided inside the safety monitoring block 101, and a separate power supply is realized through the battery 1010. A power display 103 and a charging socket 104 are installed on the side end face of the safety monitoring block 101. The power display 103 and the charging socket 104 are both electrically connected to the battery 1010, so the remaining power of the battery 1010 is displayed through the power display 103. When the battery 1010 is insufficient, the charging operation can also be realized through the charging socket 104; a buzzer 102 is also installed on the top surface of the safety monitoring block 101, and the buzzer 102 is electrically connected to the microcontroller 1015.

[0017] In this embodiment, the safety monitoring block 101 is further provided with a first timing module 1011, a second timing module 1012 and a 5G module 1013, and the first timing module 1011, the second timing module 1012 and the 5G module 1013 are all electrically connected to the microcontroller 1015, and the 5G module 1013 is connected to the monitoring center 1014 wireless network transmission connection; the timing value of the first timing module 1011 is thirty minutes; when the timing value of the first timing module 1011 is reached, the first timing module 1011 feedbacks a signal to the microcontroller 1015, and the microcontroller 1015 controls the micromotor 1 07 and the second timing module 1012 are started; when the status feedback button 105 is in the pressed start state, the status feedback button 105 feedbacks a signal to the microcontroller 1015, and the microcontroller 1015 controls the micromotor 107 and the second timing module 1012 to be turned off; the timing value of the second timing module 1012 is one minute; when the timing value of the second timing module 1012 is reached, the second timing module 1012 feedbacks a signal to the microcontroller 1015, and the microcontroller 1015 controls the 5G module 1013 to wirelessly send a message to the monitoring center 1014, and at the same time controls the buzzer 102 to start.

[0018] The working principle of this embodiment: Before the staff in the monitoring center 1014 go outdoors to work on the distribution network, they insert the block 2 into the embedding groove 301, and use the hexagonal wrench to turn the stud 3 downward along the threaded groove 108 to make the stud 3 press against the button end of the power switch 109, thereby starting the application, while the block 2 remains in the monitoring center 1014. The embedding groove 301 is designed to be an elliptical groove structure, so that without the cooperation of the block 2, the stud 3 cannot be turned along the threaded groove 108 by common tools, thereby preventing the staff from closing the application when working on the distribution network outdoors; After the application is started, the infrared signal of the staff is sensed in real time by the human infrared sensor 106. When the staff takes off the insulating helmet 1, the human infrared sensor 106 cannot sense the infrared signal of the staff, and its feedback signal is given to the microcontroller 1015. The microcontroller 1015 controls the 5G module 1013 to wirelessly send a message to the monitoring center 1014, so that the staff in the monitoring center 1014 can communicate with them by phone in time to understand the specific situation; After the application is started, the timing value of the first timing module 1011 is reached every thirty minutes, and the feedback signal is given to the microcontroller 1015, and the microcontroller 1015 controls the micromotor 107 and the second timing module 1012 to start. Since the insulating safety helmet 1 is worn on the head of the worker, the worker can feel the vibration generated when the micromotor 107 is started. When the worker is in a normal state, he can press the state feedback button 105 at this time, and the state feedback button 105 feedback signal is given to the microcontroller 1015, and the microcontroller 1015 controls the micromotor 107 and the second timing module 1012 to turn off; when the worker is in an accident, the state feedback button 105 feedback signal is given to the microcontroller 1015, and the microcontroller 1015 controls the micromotor 107 and the second timing module 1012 to turn off. Therefore, when the person is in a certain state, such as being unable to move or being unconscious, and is unable to ask for help, when the timing value of the second timing module 1012 is reached, the second timing module 1012 feeds back a signal to the microcontroller 1015, and the microcontroller 1015 controls the 5G module 1013 to wirelessly send a message to the monitoring center 1014, so that the staff in the monitoring center 1014 can communicate with him by phone in time to understand the specific situation. When the telephone communication fails, it can be temporarily determined that an accident has occurred and rescue needs to be sent in time. The present application also controls the buzzer 102 to start at the same time, so as to use the high-decibel buzzing of the buzzer 102 to replace the staff in calling for help to the surrounding.

Claims

1. An auxiliary tool for outdoor power distribution network, comprising an insulating safety helmet (1), characterized in that: A safety monitoring block (101) is installed at the top of the body of the insulating safety helmet (1), and the bottom of the safety monitoring block (101) is located at the top of the body wearing cavity of the insulating safety helmet (1), and a microcontroller (1015) is arranged inside the safety monitoring block (101); a human infrared sensor (106) and a micro motor (107) are embedded in the bottom surface of the safety monitoring block (101), and the human infrared sensor (106) and the micro motor (107) are both electrically connected to the microcontroller (1015); a group of status feedback buttons (105) are fixedly installed at the edge of the top surface of the safety monitoring block (101), the status feedback buttons (105) are touch switches, and the status feedback buttons (105) are electrically connected to the microcontroller (1015).

2. An auxiliary tool for outdoor distribution network according to claim 1, characterized in that: A thread groove (108) is provided at the center of the top surface of the safety monitoring block (101), and a group of power switches (109) are fixedly installed on the bottom surface of the inner end of the thread groove (108). The power switch (109) is a touch switch, and the button end of the power switch (109) faces upward. The power switch (109) is electrically connected to the microcontroller (1015).

3. An auxiliary tool for outdoor distribution network according to claim 2, characterized in that: A stud (3) is rotatably mounted on the inner thread of the thread groove (108), and the height of the stud (3) is half of the depth of the thread groove (108); an embedding groove (301) with an elliptical groove structure is provided at the axial center of the top surface of the stud (3), and an embedding block (2) with a matching structural size is inserted into the embedding groove (301), and a twisting opening (201) with a hexagonal structure is provided at the axial center of the embedding block (2).

4. An auxiliary tool for outdoor distribution network according to claim 3, characterized in that: A storage battery (1010) is provided inside the safety monitoring block (101), and a power display (103) and a charging socket (104) are installed on the side end surface of the safety monitoring block (101), and the power display (103) and the charging socket (104) are both electrically connected to the storage battery (1010); a buzzer (102) is also installed on the top end surface of the safety monitoring block (101), and the buzzer (102) is electrically connected to the microcontroller (1015).

5. An auxiliary tool for outdoor distribution network according to claim 4, characterized in that: The safety monitoring block (101) is also provided with a first timing module (1011), a second timing module (1012) and a 5G module (1013), and the first timing module (1011), the second timing module (1012) and the 5G module (1013) are all electrically connected to the microcontroller (1015), and the 5G module (1013) is connected to the monitoring center (1014) via a wireless network transmission.

6. An auxiliary tool for outdoor distribution network according to claim 5, characterized in that: The timing value of the first timing module (1011) is thirty minutes; when the timing value of the first timing module (1011) is reached, the first timing module (1011) feeds back a signal to the microcontroller (1015), and the microcontroller (1015) controls the micromotor (107) and the second timing module (1012) to start; when the status feedback button (105) is in a pressed start state, the status feedback button (105) feeds back a signal to the microcontroller (1015), and the microcontroller (1015) controls the micromotor (107) and the second timing module (1012) to turn off; the timing value of the second timing module (1012) is one minute; when the timing value of the second timing module (1012) is reached, the second timing module (1012) feeds back a signal to the microcontroller (1015), and the microcontroller (1015) controls the 5G module (1013) to wirelessly send a message to the monitoring center (1014), and simultaneously controls the buzzer (102) to start.