Anti-explosion monitoring helmet
By introducing a cooling fan and a data acquisition system into the explosion-proof helmet, the problems of heat accumulation and comfort during prolonged wear have been solved, while the remote communication capability has been enhanced, expanding its application range.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-05
- Publication Date
- 2026-04-10
AI Technical Summary
Existing explosion-proof helmets are prone to heat buildup and sweat accumulation when worn for extended periods, reducing wearing comfort. They also lack remote communication capabilities, limiting their application areas.
An explosion-proof monitoring helmet was designed, which includes a cooling fan, air duct and air outlet for effective heat dissipation, and is equipped with a data acquisition mechanism, including a high-definition camera, microphone, speaker, controller body, etc., to support remote communication and data acquisition.
The heat dissipation system solves the problem of stuffiness when wearing the garment for extended periods, and the remote communication function improves the convenience for the wearer and the efficiency of safety monitoring.
Smart Images

Figure CN224098825U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a kind of explosion-proof monitoring helmet, belong to helmet field. BACKGROUND
[0002] Explosion-proof helmet is a kind of safety equipment to protect the wearer from head and face to resist the impact injury or other potential injury during work.
[0003] To improve the protection effect, the overall structure of part of the existing explosion-proof helmet is relatively closed, and long-term wearing may cause the accumulation of heat and sweat on the head, reduce the wearing comfort, and most of them only have simple protection effect, and do not have remote communication function, so that the application field of explosion-proof helmet is limited. CONTENT OF UTILITY MODEL
[0004] In view of the deficiencies in the prior art, the utility model aims to provide an explosion-proof monitoring helmet.
[0005] To achieve the above-mentioned purpose, the utility model is realized by the following technical scheme:
[0006] An explosion-proof monitoring helmet, comprising a helmet body, a main ridge is provided on the top of the helmet body, a ventilation hole is provided on the side edge of the helmet body, a chin strap is provided on the bottom of the helmet body, an explosion-proof buffer mechanism is provided in the helmet body, an installation cavity is provided on the back side of the helmet body, a cooling fan is provided in the installation cavity, the cooling fan is connected with the air conveying pipeline through the connecting frame, the air conveying pipeline extends to the top of the helmet body, an air outlet is provided on the bottom of the air conveying pipeline, the bottom end of the air outlet is matched with the explosion-proof buffer mechanism, and a data acquisition mechanism is provided on the front end of the helmet body.
[0007] Further, the explosion-proof buffer mechanism comprises a first protective layer provided on the inner wall of the helmet body, a second protective layer is provided below the first protective layer, a flow space is formed between the second protective layer and the first protective layer, a plurality of elastic buffer blocks are connected in the flow space, a flexible pad layer is provided below the second protective layer, an internal frame layer is provided below the flexible pad layer, the edge of the internal frame layer is connected with the inner wall of the helmet body, and a plurality of breathable pad layers are connected on the inner wall of the internal frame layer.
[0008] Further, a plurality of reinforcing blocks are provided on the top of the breathable pad layer, buckles are provided on the top of the reinforcing blocks, a plurality of clamping grooves matched with the buckles are provided on the inner wall of the internal frame layer, a plurality of flow-through holes are provided on the breathable pad layer, and a plurality of flow-through channels penetrating through the inner wall of the internal frame layer are provided in the flow space.
[0009] Further, the data acquisition mechanism comprises a high-definition camera arranged at the front end of the helmet body, a laser positioning lamp, an LED illuminating lamp, microphones and speakers arranged at the left and right sides of the helmet body, and a controller body arranged in the inner wall of the rear part of the helmet body, wherein the controller body is internally provided with a main control chip, a flash memory module, a GPS positioning chip, an audio and video signal processor, and a wireless transmission module.
[0010] Further, the input end of the audio and video signal processor is electrically connected with the output end of the microphone, the speaker, and the high-definition camera respectively, and the output end of the audio and video signal processor is electrically connected with the input end of the flash memory module.
[0011] Further, the output end of the flash memory module is bidirectionally electrically connected with the input end of the main control chip, and the output end of the main control chip is in communication connection with the input end of the mobile communication transmitter-receiver through the wireless transmission module.
[0012] Further, the model of the controller body is LED2013-X controller, the signal of the mobile communication transmitter-receiver is a 5G mobile communication transmitter-receiver, and the laser positioning lamp is a pumped solid diode.
[0013] The utility model discloses the beneficial effects of:
[0014] Through the design of the explosion-proof buffering mechanism, when the helmet is hit by external objects, the first protective layer inside the helmet body moves towards the second protective layer and presses the elastic buffer blocks to realize elastic buffering, at the same time, the sponges in the flexible pad layer and the breathable pad layer can realize the second wave pressure buffering, thereby avoiding the impact injury of the wearer.
[0015] Through the design of the heat dissipation fan, the air conveying pipeline and the air outlet nozzle, when normally worn, the head of the human body is an important heat dissipation part, but the helmet wraps the head of the wearer, after wearing for a period of time, the wearer will feel hot, at this time, the heat dissipation fan is started, the heat dissipation fan transports air flow from the outside to the air conveying pipeline, the air flow guided by the arc surface of the air conveying pipeline will flow into the flow space inside the helmet body through the air outlet nozzle, the flowing air flow will enter the gap between the internal frame layer and the breathable pad layer through the flow-through channels, then the air flow will be transported to the head of the wearer through the flow-through holes on the breathable pad layer, thereby solving the problem of hotness of the wearer when wearing the helmet for a long time.
[0016] Through the design of the data acquisition mechanism, in use, the remote central control end can perform real-time remote operation safety record supervision and data acquisition and processing through the data acquisition mechanism, the remote operation safety record supervision is that: photographing and video recording can be performed through the high-definition camera, the operation environment can be illuminated through the LED illuminating lamp, safe operation is ensured, real-time remote communication can be performed through the microphone and the loudspeaker, the convenience of employee operation is improved; the data acquisition and processing is that: the audio and video data photographed by the high-definition camera are collected, remote real-time communication and GPS positioning of the operator are performed, the movement track of the operator is recorded, subsequent analysis is facilitated. BRIEF DESCRIPTION OF DRAWINGS
[0017] In order to more clearly illustrate the technical scheme in the embodiments of the present application or the prior art, the drawings needed to be used in the embodiments will be briefly introduced as follows, obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor on the premise of the drawings.
[0018] Figure 1 It is a total structure schematic diagram of the explosion-proof monitoring helmet of the present application.
[0019] Figure 2 It is an internal structure schematic diagram of the helmet body of the explosion-proof monitoring helmet of the present application.
[0020] Figure 3 It is a breathable cushion layer structure schematic diagram of the explosion-proof monitoring helmet of the present application.
[0021] Figure 4 It is a partial structure schematic diagram of the explosion-proof monitoring helmet of the present application.
[0022] Figure 5 It is a principle block diagram of the explosion-proof monitoring helmet of the present application.
[0023] In the figure, 1 is a helmet body, 2 is a main ridge, 3 is a band, 4 is a ventilation hole, 5 is a first protective layer, 6 is a second protective layer, 7 is a flow space, 8 is an elastic buffer block, 9 is a flexible cushion layer, 10 is an internal frame layer, 11 is a buckle, 12 is a reinforcing block, 13 is a breathable cushion layer, 14 is a flow channel, 15 is a flow hole, 16 is a cooling fan, 17 is a connecting frame, 18 is a wind conveying pipeline, 19 is a wind outlet, 20 is a main control chip, 21 is a flash memory module, 22 is a GPS positioning chip, 23 is an audio and video signal processor, 24 is a microphone, 25 is a loudspeaker, 26 is a high-definition camera, 27 is a laser positioning lamp, 28 is an LED illuminating lamp, 29 is a wireless transmission module, and 30 is a mobile communication transmitter-receiver. DETAILED DESCRIPTION
[0024] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all the other embodiments obtained by the ordinary skilled in the art without creative labor fall within the protection scope of the utility model.
[0025] Please refer to Figures 1-5 The utility model provides a kind of explosion-proof monitoring helmet technical scheme, including helmet body 1, the top of the helmet body 1 is equipped with main ridge 2, the side of the helmet body 1 is equipped with vent hole 4, the bottom of the helmet body 1 is equipped with harness 3, the inside of the helmet body 1 is equipped with explosion-proof buffer mechanism, the rear side of the helmet body 1 is equipped with mounting cavity, the inside of the mounting cavity is provided with cooling fan 16, cooling fan 16 is connected with air conveying pipeline 18 by connecting frame 17, air conveying pipeline 18 extends to the top of the helmet body 1, the bottom of air conveying pipeline 18 is provided with air outlet 19, the bottom end of air outlet 19 is matched with the explosion-proof buffer mechanism, the front end of the helmet body 1 is equipped with data acquisition mechanism;Through the design of cooling fan 19, air conveying pipeline 18 and air outlet 19, when normally wearing, since the head of human body is important heat dissipation part, helmet body will be wrapped in the head of wearer, after wearing for a period of time, wearer can feel hot, at this time, start cooling fan 16, cooling fan 16 transports airflow from outside to air conveying pipeline 18, airflow is guided by the arc surface of air conveying pipeline 18 and will enter into the flow space 7 inside the helmet body 1 along air outlet 19, flowing airflow will enter into the gap between internal frame layer 10 and air-permeable pad layer 13 through several flow channels 14, then, airflow will be transported to the head of wearer through several flow-through holes 15 on air-permeable pad layer 13, to solve the problem of hot of wearer wearing helmet for a long time.
[0026] Please refer to Figures 2-3The explosion-proof buffering mechanism comprises a first protective layer 5 arranged on the inner wall of the helmet body 1, a second protective layer 6 arranged below the first protective layer 5, a flowing space 7 formed between the first protective layer 5 and the second protective layer 6, a plurality of elastic buffering blocks 8 connected in the flowing space 7, a flexible cushion layer 9 arranged below the second protective layer 6, an internal frame layer 10 arranged below the flexible cushion layer 9, the edges of the internal frame layer 10 being connected with the inner wall of the helmet body 1, a plurality of air-permeable cushion layers 13 connected on the inner wall of the internal frame layer 10, a plurality of reinforcing blocks 12 arranged on the top of the air-permeable cushion layers 13, buckles 11 arranged on the top of the reinforcing blocks 12, clamping grooves matched with the buckles 11 arranged on the inner wall of the internal frame layer 10, a plurality of flow-through holes 15 arranged on the air-permeable cushion layers 13, and a plurality of flow-through channels 14 arranged in the flowing space 7 and penetrating through the inner wall of the internal frame layer 10.
[0027] Referring to Figure 1 and Figure 5The data acquisition mechanism includes a high-definition camera 26 arranged at the front end of the helmet body 1, a laser positioning lamp 27, an LED illuminating lamp 28, a microphone 24 and a loudspeaker 25 arranged at the left and right sides of the helmet body 1, and a controller body arranged in the inner wall of the rear part of the helmet body 1. In addition, in order to adapt to different application scenarios, the microphone 24 and the loudspeaker 25 can also be arranged in the form of earphones mounted in the interior of the helmet body 1, thereby improving the call effect. The controller body is internally provided with a main control chip 20, a flash memory module 21, a GPS positioning chip 22, an audio and video signal processor 23, and a wireless transmission module 29. The input end of the audio and video signal processor 23 is electrically connected with the output end of the microphone 24, the loudspeaker 25 and the high-definition camera 26 respectively. The output end of the audio and video signal processor 23 is electrically connected with the input end of the flash memory module 21. The output end of the flash memory module 21 is bidirectionally and electrically connected with the input end of the main control chip 20. The output end of the main control chip 20 is in communication connection with the input end of a mobile communication transmitter-receiver 30 through the wireless transmission module 29. The model of the controller body is LED2013-X controller. The signal of the mobile communication transmitter-receiver 30 is a 5G mobile communication transmitter-receiver. The laser positioning lamp 27 is a pump solid diode. Through the design of the data acquisition mechanism, during use, the remote central control end can perform real-time remote operation safety record supervision work and data acquisition and processing work through the data acquisition mechanism. The remote operation safety record supervision is that: the high-definition camera 26 can be used for photographing and video recording, the LED illuminating lamp 28 can be used for illuminating the operation environment to ensure safe operation, and the microphone 24 and the loudspeaker 25 can be used for real-time remote communication, thereby improving the convenience of employee operation. The data acquisition and processing is that: the audio and video data collected by the high-definition camera 26 are collected, remote real-time communication is performed, the GPS position of the operator is located, the moving track of the operator is recorded, and subsequent analysis is facilitated.
[0028] In use, the remote central control end can perform real-time remote operation safety record supervision and data acquisition and processing through the data acquisition mechanism, the remote operation safety record supervision is that: the high-definition camera 26 can take pictures and videos, the LED illuminating lamp 28 can illuminate the operation environment to ensure safe operation, the microphone 24 and the loudspeaker 25 can realize real-time remote communication, and the convenience of employee operation is improved; the data acquisition and processing is that: the audio and video data collected by the high-definition camera 26 are collected, remote real-time communication and GPS positioning of the operator are performed, the moving track of the operator is recorded, and subsequent analysis is facilitated; when normally worn, since the head of the human body is an important heat dissipation part, the helmet body wraps the head of the wearer, after wearing for a period of time, the wearer will feel hot, at this time, the heat dissipation fan 16 is started, the heat dissipation fan 16 transports air flow from the outside to the air conveying pipeline 18, the air flow guided by the arc surface of the air conveying pipeline 18 will enter the flow space 7 inside the helmet body 1 through the air outlet nozzle 19, the flowing air flow will enter the gap between the internal frame layer 10 and the air permeable pad layer 13 through the plurality of flow-through channels 14, then the air flow will be transported to the head of the wearer through the plurality of flow-through holes 15 on the air permeable pad layer 13, thereby solving the problem of hotness of the wearer when wearing the helmet for a long time; when the helmet is hit by external objects, the first protective layer 5 inside the helmet body 1 will move towards the second protective layer 6 and press the plurality of elastic buffer blocks 8 to realize elastic buffering, at the same time, the sponge in the flexible pad layer 9 and the air permeable pad layer 13 can realize the second wave pressure buffering, thereby avoiding the impact injury of the wearer.
[0029] Although the present specification is described in terms of embodiments, not every embodiment contains only one independent technical solution, and the description manner of the specification is only for the sake of clarity, those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can be combined appropriately to form other embodiments that those skilled in the art can understand.
Claims
1. An explosion-proof monitoring headgear, characterized in that, The utility model provides a safety helmet, including helmet body (1), the top of helmet body (1) is equipped with main ridge (2), the side of helmet body (1) is equipped with air hole (4), the bottom of helmet body (1) is equipped with band (3), the inside of helmet body (1) is equipped with anti -explosion buffer mechanism, the rear side of helmet body (1) is equipped with installation cavity, the inside of installation cavity is provided with heat dissipation fan (16), heat dissipation fan (16) is connected with air conveying pipeline (18) through connecting frame (17), air conveying pipeline (18) extends to the top of helmet body (1), the bottom of air conveying pipeline (18) is provided with air outlet (19), the bottom end of air outlet (19) is matched with anti -explosion buffer mechanism, the front end of helmet body (1) is equipped with data acquisition mechanism.
2. An explosion-proof monitoring helmet according to claim 1, characterized in that The anti -explosion buffer mechanism includes a first protective layer (5) disposed on the inner wall of the helmet body (1), a second protective layer (6) disposed below the first protective layer (5), a flow space (7) formed between the first protective layer (5) and the second protective layer (6), a plurality of elastic buffer blocks (8) connected in the flow space (7), a flexible pad layer (9) disposed below the second protective layer (6), and an inner frame layer (10) disposed below the flexible pad layer (9). The edge of the inner frame layer (10) is connected to the inner wall of the helmet body (1), and a plurality of breathable pad layers (13) are connected to the inner wall of the inner frame layer (10).
3. An explosion-proof monitoring helmet according to claim 2, characterized in that The top of the breathable pad layer (13) is provided with a plurality of reinforcing blocks (12), the top of the reinforcing block (12) is provided with a buckle (11), the inner wall of the inner frame layer (10) is provided with a clamping groove matched with the buckle (11), a plurality of flow-through holes (15) are formed in the breathable pad layer (13), and a plurality of flow-through channels (14) penetrating through the inner wall of the inner frame layer (10) are arranged in the flow space (7).
4. An explosion-proof monitoring helmet according to claim 3, characterized in that The data acquisition mechanism includes a high-definition camera (26) disposed at the front end of the helmet body (1), a laser positioning lamp (27), an LED illuminating lamp (28), a microphone (24) and a loudspeaker (25) disposed on the left and right sides of the helmet body (1), and a controller body disposed in the rear inner wall of the helmet body (1). The controller body is internally provided with a main control chip (20), a flash memory module (21), a GPS positioning chip (22), an audio and video signal processor (23), and a wireless transmission module (29).
5. An explosion-proof monitoring helmet according to claim 4, characterized in that The input end of the audio and video signal processor (23) is electrically connected with the output end of the microphone (24), the loudspeaker (25), and the high-definition camera (26), respectively. The output end of the audio and video signal processor (23) is electrically connected with the input end of the flash memory module (21).
6. An explosion-proof monitoring helmet according to claim 5, characterized in that The output end of the flash memory module (21) is bidirectionally electrically connected with the input end of the main control chip (20). The output end of the main control chip (20) is communicatively connected with the input end of a mobile communication transmitter-receiver (30) through the wireless transmission module (29).
7. An explosion-proof monitoring helmet according to claim 6, characterized in that The model of the controller body is LED2013-X controller, the signal of the mobile communication transceiver (30) is a 5G mobile communication transceiver, and the laser positioning lamp (27) is a pumped solid diode.