Wearable power monitoring equipment

The wearable power monitoring device, designed with a bite action control mechanism and detachable functional modules, solves the problems of inconvenient operation and insufficient flexibility of existing equipment, and achieves efficient and safe power monitoring.

CN223943863UActive Publication Date: 2026-02-27YINCHUAN POWER SUPPLY COMPANY OF STATE GRID NINGXIA ELECTRIC POWER
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Patent Information

Application Number
CN202423302008.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-31
Publication Date
2026-02-27
Estimated Expiration
2034-12-31

AI Technical Summary

Technical Problem

Existing wearable power monitoring devices are inconvenient to operate and lack flexibility, affecting monitoring efficiency and safety.

Method used

A wearable power monitoring device was designed. Through a biting action control mechanism, the device can be operated flexibly by using pressure sensors and an airbag system. It integrates a display screen and detachable functional modules, including a camera, an infrared imaging device, and an ultrasonic detection sensor, and can quickly adjust its position and functions.

Benefits of technology

It improves operational flexibility and safety, enhances equipment adaptability, frees up hands for other operations, and improves monitoring efficiency and accuracy.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A wearable power monitoring device comprises: a safety helmet; the helmet brim is arranged on the safety helmet; the driving belt is rotationally mounted above the cap brim, and a clamping groove is formed in the driving belt; the driving module is fixedly installed on the safety helmet, the driving module is provided with a driving rod, and the driving rod is meshed with the clamping groove of the driving belt and used for driving the driving belt to rotate; the control device is arranged on the safety helmet, and the control device is used for obtaining a human body control instruction and generating a control signal; the driving module is used for acquiring the control signal and driving the driving belt to rotate according to the control signal; the display screen is fixedly mounted at the bottom end of the front side of the brim in a turnover manner; and the function module is detachably mounted on the driving belt, and the function module is in signal connection with the display screen. Through an occlusion action control mechanism and a modular design, a handheld device is not needed, and the flexibility and the working efficiency are remarkably improved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of power monitoring equipment, and particularly relates to a wearable power monitoring equipment. BACKGROUND

[0002] In the existing field of power monitoring and maintenance, conventional monitoring equipment is usually applied to open-close and power distribution room environments. The power monitoring equipment includes handheld or fixedly installed cameras, sensors and the like. These devices need to be manually adjusted in position and angle by workers during operation to adapt to different monitoring requirements. These traditional devices are relatively bulky in structure and are not easy to quickly deploy and adjust. In a complex power environment, workers often need to operate these devices while ensuring safety, which not only affects the monitoring efficiency but also increases the complexity of operation and safety hazards.

[0003] Chinese Patent CN 209946301U discloses a wearable monitoring equipment, which integrates a detection device and a display device on a safety helmet and outputs diagnostic information through the display device. However, the position of the device integrated on the safety helmet lacks flexibility in adjustment, making it difficult for workers to obtain an ideal monitoring viewing angle in a variable working environment. These limitations not only reduce work efficiency but also affect the accuracy and safety of monitoring due to blocked vision or inconvenience in operation.

[0004] Therefore, the existing technology has obvious limitations in achieving efficient and accurate power monitoring, and there are problems such as inconvenience in operation, insufficient flexibility and safety hazards. CONTENT OF THE UTILITY MODEL

[0005] Therefore, it is necessary to provide a wearable power monitoring equipment to solve the problems of inconvenient operation and insufficient flexibility of the wearable monitoring equipment in the prior art.

[0006] A wearable power monitoring equipment comprises:

[0007] a safety helmet 1;

[0008] a brim 2 arranged on the safety helmet 1;

[0009] a drive belt 3 rotatably arranged above the brim 2, the drive belt 3 being provided with a clamping groove;

[0010] a drive module 4 fixedly arranged on the safety helmet 1, the drive module 4 being provided with a drive rod 41, the drive rod 41 being engaged with the clamping groove of the drive belt 3 and used for driving the drive belt 3 to rotate;

[0011] A control device 5 is arranged on the safety helmet 1, and is configured to acquire human control instructions and generate a control signal; the driving module 4 is configured to acquire the control signal and drive the driving belt 3 to rotate according to the control signal.

[0012] A display screen 6 is reversibly fixedly arranged at the front bottom end of the brim 2.

[0013] A functional module 7 is detachably arranged on the driving belt 3, and is signal-connected with the display screen 6.

[0014] Preferably, the control device 5 comprises:

[0015] Two fitting air bags 56 are fixedly arranged on the inner walls of the safety helmet 1 and correspond to the temporalis positions of the human head;

[0016] A top air bag 58 is arranged on the inner wall top of the safety helmet 1 and corresponds to the top position of the human head;

[0017] A communication pipe 57 is connected at two ends to the fitting air bag 56 and the top air bag 58, respectively;

[0018] A pressure sensor 55 is arranged at the connection between the communication pipe 57 and the top air bag 58, and is configured to generate a control signal according to the pressure of the fitting air bag 56.

[0019] Preferably, the control device 5 further comprises:

[0020] An elastic reset seat 51 is fixedly arranged on the rear side of the outer wall of the safety helmet 1;

[0021] A button 52 is movably clamped on the outer wall of the elastic reset seat 51, and the movable extension of the button 52 extends into the inner cavity of the top air bag 58;

[0022] Two extension rods 53 are each fixedly connected at one end with the button 52;

[0023] Two fixed rings 54 are each fixedly arranged at the other end of each extension rod 53 in a horizontal state;

[0024] The pressure sensor 55 is arranged in the fixed ring 54, and the pressure sensor 55 is located at the opening of the communication pipe 57.

[0025] Preferably, the functional module 7 comprises:

[0026] At least one installation seat 71 is detachably arranged on the driving belt 3;

[0027] A housing 72 is fixedly arranged on the seat 71;

[0028] Two dismounting buttons 73 are arranged at the upper and lower ends of the seat 71 respectively.

[0029] Preferably, the seat 71 comprises:

[0030] A back plate 711 is arranged at the back side of the seat 71, and a limiting protrusion 712 is arranged on the outer wall of the back side of the back plate 711;

[0031] A transverse protrusion 713 is fixedly arranged at the middle position of the back plate 711 in the horizontal direction and between the two limiting protrusions 712;

[0032] A telescopic needle 714 is arranged in the inner wall of the transverse protrusion 713 and can be connected to the driving belt 3.

[0033] Preferably, the seat 71 further comprises:

[0034] A power supply seat 715 comprises a power input end and a power output end, which are connected to the upper and lower ends of the telescopic needle 714 respectively, and the telescopic needle 714 is made of conductive material.

[0035] Preferably, the driving belt 3 is further connected to a battery, which is arranged on the safety helmet 1, and a metal power supply strip 31 is arranged on the driving belt 3 and fixedly arranged on the inner side of the driving belt 3 in a circular ring shape.

[0036] A plurality of connecting protrusions 32 are fixedly arranged on the outer wall of the driving belt 3, and the connecting protrusions 32 are arranged adjacent to each other, and the transverse protrusion 713 is located between the two connecting protrusions 32 adjacent to each other.

[0037] A plug-in groove 33 is arranged on the inner wall of the connecting protrusion 32 at the upper and lower ends of the transverse protrusion 713.

[0038] A contact point 34 is connected to the metal power supply strip 31 and located in the plug-in groove 33 and can contact the telescopic needle 714.

[0039] Preferably, the limiting protrusion 712 is in the shape of an isosceles trapezoid, and the side away from the back plate 711 is the lower base.

[0040] The connecting groove of the driving belt 3 is provided with an isosceles trapezoidal space corresponding to the limiting protrusion 712, and the lower base of the isosceles trapezoidal space is close to one side of the driving belt 3.

[0041] The isosceles trapezoidal structure of the limiting protrusion 712 is clamped with the isosceles trapezoidal space of the driving belt 3.

[0042] Preferably, the control device 5 further comprises a pickup arranged on the safety helmet 1, used for acquiring a sound instruction and converting it into an electrical signal instruction; the control device 5 is used for acquiring the electrical signal instruction and generating a control signal; and the driving module 4 is used for acquiring the control signal and driving the driving belt 3 to rotate according to the control signal.

[0043] Compared with the prior art, the application has the beneficial effects that the work staff can easily control the equipment when their hands are busy through the occlusion action control mechanism, improving the flexibility and safety of operation. The detachable and replaceable design of the functional module integrates the multifunctional monitoring equipment into the wearable safety helmet, which can quickly replace and adjust the position function of the monitoring tools such as the camera, infrared imaging device and ultrasonic detection sensor to adapt to different monitoring needs, enhance flexibility and expand application scenarios. In addition, by integrating the display screen, the work staff can obtain monitoring data and images in real time without holding the equipment, freeing their hands for other operations. BRIEF DESCRIPTION OF DRAWINGS

[0044] Figure 1 is a structural schematic view of a first angle of the wearable power use monitoring equipment provided by the embodiment of the application.

[0045] Figure 2 is a structural schematic view of a second angle of the wearable power use monitoring equipment provided by the embodiment of the application.

[0046] Figure 3 is a bottom view structural schematic view of the wearable power use monitoring equipment provided by the embodiment of the application.

[0047] Figure 4 is a structural schematic view of the wearable power use monitoring equipment provided by the embodiment of the application.

[0048] Figure 5 is a structural schematic view of a single functional module provided by the embodiment of the application.

[0049] Figure 6 is Figure 2 is an enlarged view of A in

[0050] Figure 7 is a structural schematic view of a back plate provided by the embodiment of the application.

[0051] Figure 8 is a structural schematic view of a power supply seat provided by the embodiment of the application.

[0052] Figure 9Figure is a structural schematic diagram of the plug-in slot and the contact point provided by the embodiment of the present application.

[0053] In the figure: safety helmet 1, brim 2, driving device, driving belt 3, metal power supply strip 31, clamping protrusion 32, plug-in slot 33, contact point 34, driving device 4, driving rod 41, control device 5, elastic reset seat 51, button 52, extension rod 53, fixing ring 54, pressure sensor 55, fitted air bag 56, communication pipe 57, top air bag 58, display screen 6, function module 7, installation seat 71, back plate 711, limiting protrusion 712, transverse protrusion 713, telescopic needle 714, power supply seat 715, shell 72, dismounting knob 73, dismounting knob cap 731, dismounting knob handle 732. DETAILED DESCRIPTION

[0054] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the embodiments. Obviously, the drawings described in the following are some embodiments of the present application, and other drawings can also be obtained by those skilled in the art without any creative effort on the basis of these drawings.

[0055] The present application provides a wearable power use monitoring device, which can be applied in opening and closing and power distribution room and the like. The wearable power use monitoring device provided by the present application can be configured to the head of a maintenance worker, and is arranged in the form of a safety helmet, that is, has the function of a safety helmet, and also has the effect of other power monitoring assistance.

[0056] Please refer to Figures 1 to 9 The wearable power use monitoring device provided by the embodiment of the present application comprises a safety helmet 1, a brim 2, a driving belt 3, a driving device 4, a control device 5, a display screen 6 and a function module 7.

[0057] The safety helmet 1 can be worn on the head of a worker. The brim 2 is arranged on the safety helmet 1. The driving belt 3 is rotatably clamped above the brim 2 of the safety helmet 1, and the driving belt 3 is arranged horizontally. The driving device 4 is fixedly installed on the back of the safety helmet 1. The driving device 4 is provided with a driving rod 41 for driving the driving belt 3 to rotate circumferentially. The display screen 6 is arranged on the front bottom end of the brim 2 and can be flipped. The function module 7 is arranged on the driving belt 3 and is signal connected with the display screen 6. The control device 5 is arranged on the safety helmet 1 and is used for acquiring a human body control instruction and generating a control signal. The driving device 4 acquires the control signal and drives the driving belt 3 to rotate according to the control signal, so as to change the position of the function module 7 and further switch the function.

[0058] The driving strip of the driving belt 3 can be provided with various functional modules used in power monitoring and maintenance work, such as a camera, an infrared imaging device, an ultrasonic detection sensor, and a lighting lamp, which are arranged in a modular and detachable manner on the driving belt 3. The driving belt 3 can rotate to change the positions of the various functional modules 7 arranged thereon. The functional modules 7 described above can transmit the signals obtained to the display screen 6 arranged below the brim 2. When the functional modules 7 are not used, the display screen 6 can be folded and stored at the bottom end of the brim 2. The angle of the display screen 6 can be adjusted as needed. When the display screen 6 is opened, it will not block the main line of sight of the worker. At the same time, the environmental information obtained by the functional modules 7 can be displayed on the display screen 6 in the form of an image, so that the worker can free his hands when performing power environment inspection and maintenance monitoring, and provide a high-convenience use effect.

[0059] In addition, the wearable power use monitoring device is also provided with a control device 5, which is mainly used to control the driving device 4 to change the position of the functional module 7. Specifically, the control device 5 can obtain the biting action of the wearer. The wearer can control the triggering of the control device 5 through the biting action to achieve the required functions, such as controlling the driving device 4 to rotate forward or reverse to change the position of the functional module 7 located at the front side of the safety helmet 1, to calibrate the position of the functional module 7, and to adjust the required functional module to the optimal position.

[0060] In some monitoring scenarios, such as in the case of single-person maintenance, the worker's hands may be holding or maintaining a certain power connection state, or trying to change the power line, but often need to observe the corresponding connection instrument reaction or instrument state. The position faced by the worker may not be at the same angle as the corresponding connection instrument, so the position of the functional module needs to be rotated to make the image obtained by the functional module one of the monitoring target objects, and then the worker operates the current line, without the cooperation of multiple people, the use scenario of single-person monitoring and maintenance can be improved more efficiently. For example, assuming that the functional module 7 is a camera, during the starting of the driving device 4, the image obtained by the camera will also change, and the image is displayed in real time on the display screen 6, so the worker can know whether the current position of the camera reaches the required position according to the image displayed on the display screen 6.

[0061] As Figures 1 to 3As shown, in some embodiments, the control device 5 further comprises: a pressure sensor 55, two fitting air bags 56, a communication pipe 57 and a top air bag 58. The two fitting air bags 56 are fixedly arranged on both sides of the inner wall of the safety helmet 1 and correspond to the temporalis muscle position of the human head. The top air bag 58 is fixedly arranged on the top of the inner wall of the safety helmet 1 and corresponds to the position on the top of the human head. The communication pipe 57 is connected to the fitting air bags 56 and the top air bag 58 at both ends. The pressure sensor 55 is arranged at the connection between the communication pipe 57 and the top air bag 58. The pressure sensor 55 is used to generate a control signal according to the pressure change of the fitting air bags 56.

[0062] In this embodiment, the control device 5 ingeniously utilizes the physiological characteristics of the human body to achieve a control mechanism through the cooperative work of the pressure sensor 55, the fitting air bags 56, the communication pipe 57 and the top air bag 58. The pressure sensor 55 is installed at the connection between the communication pipe 57 and the top air bag 58. Its main function is to detect the pressure change inside the air bag according to the muscle change of the human head. The fitting air bags 56 are fixed on both sides of the inner wall of the safety helmet 1 and correspond to the temporalis muscle of the wearer. The top air bag 58 is located at the top of the head. When the wearer performs a biting action, these air bags will produce a pressure change due to the contraction of the temporalis muscle. The communication pipe 57 connects the fitting air bags 56 and the top air bag 58 to form a pressure transmission system, so that the pressure change generated by the biting action can be transmitted to the pressure sensor 55.

[0063] When the wearer performs a biting action, the temporalis muscle protrudes, causing the pressure inside the fitting air bag 56 to increase. This pressure change is transmitted to the top air bag 58 through the communication pipe 57 and is finally detected by the pressure sensor 55. The sensor generates corresponding control signals according to the detected pressure change. These signals are then sent to the driving device 4. After receiving the signals, the driving device 4 controls the driving rod 41 to drive the driving belt 3 to rotate, thereby changing the position of the functional module 7 or realizing function switching. Since the control signals are generated by the physiological action of the wearer himself, they have high responsiveness and personalization, so that the device can more accurately meet the actual needs of the staff.

[0064] As Figure 3As shown, in some embodiments, further, the control device 5 further comprises: a resilient reset seat 51, a button 52, two extension rods 53 and a fixed ring 54. The resilient reset seat 51 is fixedly arranged on the rear side of the outer wall of the safety helmet 1; the button 52 can be pressed into or popped out and is clamped on the outer wall of the resilient reset seat 51, and the movable part of the button 52 extends into the inner cavity of the top air bag 58; the two extension rods 53 are fixedly connected at one end to the two sides of the end of the button 52 located in the inner cavity of the top air bag 58; and the fixed ring 54 is fixedly arranged in a horizontal state on the other end of the extension rod 53, and the fixed ring 54 is provided with a pressure sensor 55 inside, which can cover or open the communication pipe 57 following the extension rod 53.

[0065] Further, the control device 5 enables the fitting air bag 56 inside the safety helmet 1 to be adjusted according to the head shape of different users, avoiding the problem of control difference due to different head shapes, so the device also has a resilient reset seat 51 fixedly arranged on the rear side of the outer wall of the safety helmet 1 to provide stable support for the entire assembly; the button 52 is designed to be pressed in or popped out and clamped on the resilient reset seat 51, and when pressed once, it is clamped on the resilient reset seat 51, and when pressed again, it is popped out and reset, allowing users to change the connection state between the top air bag 58 and the fitting air bag 56 through a simple pressing action; the extension rod 53, the fixed ring 554 and the pressure sensor 55 located on the fixed ring 554 all move and reset following the button 52, and the built-in pressure sensor 55 can detect pressure changes according to the pressure difference between the top air bag 58 and the side air bag, and then generate a control signal.

[0066] The working principle is as follows: when different users wear the safety helmet 1, first ensure that the button 52 is in the popped-out state, ensure that the fitting air bag 56 is in communication with the top air bag 58, and then wear the safety helmet 1. The fitting air bag 56 is tightly fitted on both sides of the temporal muscle of the user's head, and in this process, the excess air in the fitting air bag 56 enters the top air bag 58 through the communication pipe 57, ensuring that the fitting air bag 56 is self-adaptively fitted on the temporal muscle of the current user. Then press the button 52, the extension rod 53 is pushed, and at the same time, the fixed ring 54 and the pressure sensor 55 block the communication pipe 57; when an adjustment signal is needed, the user can force the temporal muscle to protrude by biting and squeeze the fitting air bag 56, at which time a pressure difference is generated between the fitting air bag 56 and the top air bag 58. This pressure change is sensed by the pressure sensor 55, which immediately converts this change into an electrical signal or through other controllers or digital-to-analog converters for conversion; ultimately, the required function switching is realized, improving the work efficiency of daily inspection and maintenance in the electric opening and closing station and the distribution room.

[0067] It can also be understood that the number of pressure sensors 55 is two, which can be configured to sense the pressure changes of a specific orientation, to achieve more complex use scenarios, for example, the biting action of the human mouth can use the left or right muscle, when using the left biting muscle, the left temporal muscle protrudes, which can be captured by the left pressure sensor 55 through the aforementioned capture process, thereby forcing the driving device 4 to drive the driving belt 3 and the functional module 7 to move to the left, when using the right biting muscle, the right temporal muscle protrudes, and for the same reason, it can force the driving device 4 to drive the driving belt 3 and the functional module 7 to move to the right, achieving the technical effect of easily driving the functional module 7 to move in the specified direction.

[0068] In some other embodiments, the control device 5 further comprises a sound pickup device arranged on the safety helmet 1, which is used to obtain sound instructions and convert them into electrical signal instructions; the control device 5 is used to obtain the electrical signal instructions and generate control signals; and the driving device 4 is used to obtain the control signals and drive the driving belt 3 to rotate according to the control signals. The wearer can control the driving belt 3 to rotate through voice control, so as to adjust the functional module to the appropriate position.

[0069] As shown in Figure 1 , Figure 4 , Figure 5 , Figure 7 and Figure 8 , in some embodiments, the functional module 7 further comprises at least one mounting seat 71, a shell 72, and two disassembly buttons 73. The at least one mounting seat 71 is arranged on the driving belt 3 in a detachable manner; the shell 72 is fixedly arranged on the mounting seat 71; and the two disassembly buttons 73 are arranged at the upper and lower ends of the mounting seat 71, respectively.

[0070] In the present embodiment, the functional module 7 is arranged with emphasis on modularity and convenience, wherein the mounting seat 71 is a basic component, allowing the shell 72 of the functional module 7 to be flexibly detached and installed on the driving belt 3 as a whole. It can be understood that the shell 72 can be arranged and installed with required functional modules, such as a camera and an infrared sensor, according to needs, to provide corresponding real-time information for the staff.

[0071] As shown in Figure 8As shown, in some embodiments, further, the seating seat 71 includes: a back plate 711, a limiting protrusion 712, a transverse protrusion 713 and a telescopic needle 714, the back plate 711 is located at the back side of the seating seat 71, and two limiting protrusions 712 are arranged on the back side outer wall of the back plate 711; the transverse protrusion 713 is fixedly arranged in the middle position of the back plate 711 in the horizontal direction and is located between the two limiting protrusions 712; the telescopic needle 714 is arranged in the inner wall of the transverse protrusion 713 in a telescopic manner, and the telescopic needle 714 can be connected to the driving belt 3. The back plate 711, the limiting protrusion 712, the transverse protrusion 713 and the telescopic needle 714 realize the effect of quick and stable connection with the driving belt 3. The back plate 711 serves as the main support structure of the seating seat 71, the two limiting protrusions 712 arranged on the back side outer wall thereof play a positioning role in the assembly into the driving belt 3, and the assembly action can be performed only after the correct position of the seating seat 71 on the driving belt 3 is ensured. The transverse protrusion 713 is located in the middle of the back plate 711 and between the two limiting protrusions 712, further enhancing the stability of the seating seat 71. The two disassembly buttons 73 are respectively located at the upper and lower ends of the seating seat 71, so that the staff can quickly install or remove the current functional module 7. The disassembly button 73 has a disassembly button cap 731 and a disassembly button handle 732, and the telescopic needle 714 has a certain elasticity. When the disassembly button cap 731 is pressed, the upper and lower telescopic needles 714 are brought together through the disassembly button handle 732. That is, from the outside, the upper and lower telescopic needles 714 will be retracted into the inner wall of the transverse protrusion 713 at this time. When the disassembly button cap 731 is released, the telescopic needle 714 is extended and can be connected to the driving belt 3, realizing the fixed connection of the seating seat 71 and the driving belt 3.

[0072] Further, as shown, Figure 8 The seating seat 71 further includes a power supply seat 715, which is arranged on the shell 72 of the functional module 7. The power supply seat 715 includes a power input end and a power output end, and the power input end and the power output end are respectively connected to the telescopic needle 714, which is made of a metal conductive material.

[0073] The related functional components, modules and the like of the functional module 7 can be connected to the power supply through the power supply seat 715 on the shell 72. The power supply seat 715 is responsible for providing the required power for the shell 72. The power supply seat 715 includes a power input end and a power output end, and the two ends are connected to the driving belt 3 through the telescopic needle 714. The telescopic needle 714 is made of a metal conductive material, which ensures good electrical conductivity and allows current to be transmitted from the driving belt 3 to the power supply seat 715, thereby supplying power to the shell 72.

[0074] Further, in some embodiments, a way of detachable fixed connection between the back plate 711 and the driving belt 3 is also provided, the limiting protrusion 712 is isosceles trapezoidal structure, and the side away from the back plate 711 is the lower base; wherein the longer side of the two parallel sides of the isosceles trapezoidal structure is the lower base. The clamping groove of the driving belt 3 is provided with an isosceles trapezoidal space corresponding to the limiting protrusion 712, the isosceles trapezoidal space is close to the lower base of the side of the driving belt 3, and the isosceles trapezoidal structure of the limiting protrusion 712 is clamped with the isosceles trapezoidal space of the driving belt 3. When the back plate 711 is detachably fixedly connected with the driving belt 3, it can be clamped into the isosceles trapezoidal space of the driving belt 3 from top to bottom. In this way, the number of back plates can be increased or decreased according to actual work needs, greatly enhancing flexibility.

[0075] Further, in some embodiments, as shown in Figure 6 and Figure 9 The driving belt 3 is also connected with a battery, and the battery is arranged on the safety helmet 1. The driving belt 3 is also provided with a metal power supply strip 31, a plurality of clamping protrusions 32, a plug-in groove 33 and a contact point 34. The metal power supply strip 31 is fixedly arranged on the inner side of the driving belt 3 in a circular ring shape. The plurality of clamping protrusions 32 are fixedly arranged on the outer wall of the driving belt 3, and the plurality of clamping protrusions 32 are arranged adjacent to each other in the up-down direction, and the transverse protrusion 713 is located between the two clamping protrusions 32 adjacent to each other in the up-down direction. The plug-in groove 33 is opened on the inner wall of the clamping protrusion 32 at the upper and lower ends of the transverse protrusion 713, and the contact point 34 is connected with the metal power supply strip 31 and located in the plug-in groove 33, and can contact with the telescopic needle 714.

[0076] It should be noted that the newly added metal power supply strip 31, clamping protrusion 32, plug-in groove 33 and contact point 34 on the driving belt 3 together constitute a complete power supply and connection system, which ensures stable power supply and rapid installation of the functional module 7. The metal power supply strip 31 is in a circular ring shape and is fixed on the inner side of the driving belt 3 as the main power transmission path. The clamping protrusion 32 is fixed on the outer wall of the driving belt 3, which provides structural support and transmission function with the driving device 4, and also provides the plug-in groove 33, which is opened on the inner wall of the clamping protrusion 32 at the two ends of the transverse protrusion 713, for accommodating the contact point 34. The contact point 34 is connected with the metal power supply strip 31 and located in the plug-in groove 33, and is designed to contact with the telescopic needle 714 to realize power transmission.

[0077] In summary, the wearable power use monitoring device provided by the application can be easily controlled by the staff even when their hands are busy through the biting action control mechanism, thereby improving the flexibility and safety of operation. The detachable and replaceable design of the functional module integrates the multifunctional monitoring device into the wearable safety helmet, and the positions of the monitoring tools such as the camera, infrared imaging device and ultrasonic detection sensor can be quickly replaced and adjusted to adapt to different monitoring requirements, thereby enhancing the flexibility and expanding the application scenarios. In addition, through the integrated display screen, the staff can obtain the monitoring data and images in real time without holding the device, thereby freeing their hands for other operations.

[0078] The above is only an embodiment of the application and is not intended to limit the application. The application can have various changes and modifications for those skilled in the art. Any modification, equivalent replacement, improvement, etc. within the spirit and principles of the application shall be included in the scope of the claims of the application.

Claims

1. A wearable power monitoring device, characterized by, Include: Safety helmet (1); Brims (2) are provided on the safety helmet (1); Drive belt (3) is rotatably mounted above the brim (2), the drive belt (3) is provided with a clamping groove; Drive device (4) is fixedly installed on the safety helmet (1), the drive device (4) is provided with a drive rod (41), the drive rod (41) is engaged with the clamping groove of the drive belt (3), for driving the drive belt (3) to rotate; Control device (5) is arranged on the safety helmet (1), the control device (5) is used for obtaining human control instruction, and control signal is generated; the drive device (4) is used for obtaining the control signal, and the drive belt (3) is driven to rotate according to the control signal; Display screen (6) is rotatably fixedly installed at the front bottom end of the brim (2); Functional module (7) is detachably installed on the drive belt (3), the functional module (7) is signal connected with the display screen (6).

2. The apparatus of claim 1, wherein, The control device (5) comprises: Two fitted air bags (56) are fixedly installed on the inner wall of the safety helmet (1) on both sides, and correspond to the temporal muscle position of the human head; Top air bag (58) is installed on the inner wall top of the safety helmet (1), and corresponds to the position of the top of the human head; The communication pipe (57) is connected to the fitted air bag (56) and the top air bag (58) at both ends respectively; Pressure sensor (55) is arranged at the connection of the communication pipe (57) and the top air bag (58), the pressure sensor (55) is used for generating control signal according to the pressure of the fitted air bag (56).

3. The apparatus of claim 2, wherein, The control device (5) further comprises: Elastic reset seat (51) is fixedly arranged on the rear side of the outer wall of the safety helmet (1); Button (52) is movably connected on the outer wall of the elastic reset seat (51), the movable extension of the button (52) extends into the inner cavity of the top air bag (58); Two extension rods (53), one end of each of the extension rods (53) is fixedly connected with the button (52); Two fixed rings (54), each of the fixed rings (54) is fixedly arranged on the other end of each of the extension rods (53) in horizontal state; The pressure sensor (55) is arranged in the fixed ring (54), and the pressure sensor (55) is located at the opening of the communication pipe (57).

4. The apparatus of claim 1 wherein, The functional module (7) comprises: At least one installation seat (71), the installation seat (71) is detachably installed on the drive belt (3); Housing (72) is fixedly arranged on the installation seat (71); Two disassembly buttons (73) are arranged at the upper and lower ends of the installation seat (71) respectively.

5. The apparatus of claim 4, wherein, The installation seat (71) comprises: Back plate (711) and limiting protrusion (712), the back plate (711) is located at the back side of the installation seat (71), and the limiting protrusion (712) is arranged on the back side outer wall of the back plate (711); A transverse protrusion (713) is fixedly arranged at the middle of the back plate (711) in the horizontal direction and between the two limiting protrusions (712); A telescopic needle (714) is telescopically arranged in the inner wall of the transverse protrusion (713), and the telescopic needle (714) can be clamped to the driving belt (3).

6. The apparatus of claim 5, wherein, The mounting seat (71) further comprises: A power supply seat (715) comprising a power input end and a power output end, which are respectively connected to the upper and lower ends of the telescopic needle (714), and the telescopic needle (714) is made of conductive material.

7. The apparatus of claim 6, wherein, The driving belt (3) is further connected with a battery, the battery is arranged on the safety helmet (1), and the driving belt (3) is further provided with a metal power supply strip (31) fixedly arranged in a circular ring shape on the inner side of the driving belt (3); A plurality of clamping protrusions (32) are fixedly arranged on the outer wall of the driving belt (3), and the plurality of clamping protrusions (32) are arranged adjacent to each other in the upper and lower directions, and the transverse protrusion (713) is located between the two clamping protrusions (32) adjacent to each other in the upper and lower directions; An insertion slot (33) is formed in the inner wall of the clamping protrusion (32) at the upper and lower ends of the transverse protrusion (713); A contact point (34) is connected with the metal power supply strip (31) and located in the insertion slot (33), and can contact the telescopic needle (714).

8. The apparatus of claim 5, wherein, Comprise: The limiting protrusion (712) is in isosceles trapezoidal structure, and the side away from the back plate (711) is the lower base; The clamping groove of the driving belt (3) is provided with an isosceles trapezoidal space corresponding to the limiting protrusion (712), and the isosceles trapezoidal space is close to the lower base of the side of the driving belt (3); The isosceles trapezoidal structure of the limiting protrusion (712) is clamped with the isosceles trapezoidal space of the driving belt (3).

9. The apparatus of claim 1, wherein, The control device (5) further comprises: A sound pickup device arranged on the safety helmet (1) for obtaining sound instructions and converting them into electrical signal instructions; The control device (5) is used for obtaining the electrical signal instructions and generating control signals.

Citation Information

Patent Citations

  • Wearable monitoring device

    CN209946301U