Intelligent helmet worn for delivery and transport capacity
By integrating a control module and a double-layer circuit board design into the smart helmet, the issues of camera integration and installation stability have been resolved, resulting in higher camera integration and image clarity, and improved wearing comfort.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- BEIJING SANKUAI ONLINE TECH CO LTD
- Filing Date
- 2025-07-10
- Publication Date
- 2026-05-19
AI Technical Summary
The smart helmets currently worn by delivery personnel have poor camera integration, require additional connection cables, and are unstable in installation, easily becoming loose or falling off.
A control module is set up in the smart helmet, with the camera integrated into the control module. It interacts with the terminal or system backend through the communication component. The sound playback component is set on the side of the helmet, and the camera is exposed on the front outer side. The space utilization is optimized by using a double-layer circuit board, and the wiring harness is embedded in the inside of the helmet.
It improves the integration and installation stability of the camera, simplifies the assembly complexity, and enhances the clarity of image information and wearing comfort.
Smart Images

Figure CN224250812U_ABST
Abstract
Description
Technical Field
[0001] This disclosure relates to a smart helmet worn by delivery personnel. Background Technology
[0002] Many existing smart helmet designs worn by delivery personnel (such as food delivery riders) lack cameras, making it impossible to collect image information related to driving or delivery orders. Some helmets have separately configured cameras, which are additionally mounted on the top or side of the helmet shell, for example, by adhesive or magnetic attachment. However, this design has the following problems: First, the camera integration is poor, requiring delivery personnel to connect to the camera via a terminal device (such as a mobile phone) to obtain the image information captured by the camera. Furthermore, if it is necessary to connect the camera to the smart helmet's control module, an additional cable is required. Second, the camera's installation on the helmet is not stable enough and is prone to loosening or even falling off due to bumps, vibrations, or long-term use. Summary of the Invention
[0003] A primary objective of this disclosure is to overcome at least one of the deficiencies of the prior art described above and to provide a smart helmet for delivery personnel to wear.
[0004] To achieve the above objectives, the present disclosure adopts the following technical solution:
[0005] According to one aspect of this disclosure, a smart helmet for delivery personnel is provided, comprising a helmet shell, a control module, and a sound playback component; the control module is mounted on the helmet shell and corresponds to the wearer's facial area; the control module is provided with a camera, a microphone, and a communication component; the camera extends forward and is exposed on the front outer side of the helmet shell, for capturing images related to driving or delivery orders; the microphone is used to receive voice related to driving or delivery orders; the communication component is used for information interaction between the control module and a terminal or system backend, the communication component receiving signals from the camera or the microphone and sending them to the terminal or system backend; the sound playback component is disposed on the side of the helmet shell, for playing voice related to driving or delivery orders, the communication component receiving signals from the terminal or system backend and sending them to the sound playback component for playback.
[0006] According to one embodiment of this disclosure, the control module is mounted on the inner front part of the helmet shell.
[0007] According to one embodiment of this disclosure, a first mounting groove is provided on the inner front side of the helmet shell, and the control module is disposed in the first mounting groove; the front of the helmet shell is also provided with a first channel connecting the bottom of the first mounting groove and the outer front side of the helmet shell, and the camera extends through the first channel and is exposed on the outer front side of the helmet shell.
[0008] According to one embodiment of this disclosure, the control module has a rearward-facing rear side that is flush with the inner side of the helmet shell and together forms a smooth arc surface that is contoured to the forehead area of the delivery unit.
[0009] According to one embodiment of this disclosure, the control module is provided with an illumination lamp, which is exposed on the front outer side of the helmet shell and is used to provide illumination in conjunction with the shooting requirements of the camera.
[0010] According to one embodiment of this disclosure, the control module includes a housing; two circuit boards are disposed inside the housing, the two circuit boards are arranged at intervals along the thickness direction of the helmet shell where the control module is mounted, and are respectively a first board closer to the helmet shell and a second board farther away from the helmet shell; wherein, the camera is connected to the first board; the audio receiving component and the communication component are disposed on the second board.
[0011] According to one embodiment of this disclosure, the control module includes a housing having a downward-facing lower end face; wherein: the control module is provided with a first camera control button located on the lower end face and used to perform operations related to the shooting of the camera; and / or, the control module is provided with a data interface located on the lower end face and used to connect a data cable to realize data interaction.
[0012] According to one embodiment of this disclosure, the sound receiving component includes a first sound receiving component and a second sound receiving component; the first sound receiving component is used to capture sound including ambient sound when the camera records video; the second sound receiving component is used to capture voice during a voice call.
[0013] According to one embodiment of this disclosure, the control module has a downward-facing lower end face, on which the first microphone is exposed; and / or, the control module has a rearward-facing rear side face, on which the second microphone is exposed.
[0014] According to one embodiment of this disclosure, the control module is provided with a helmet-wearing sensor, which is exposed on the rear side of the control module and faces the forehead area of the delivery personnel, for detecting whether the smart helmet is properly worn by the delivery personnel.
[0015] According to one embodiment of this disclosure, the communication component includes a Bluetooth module disposed within the housing of the control module and used for information interaction between the control module and a terminal. The Bluetooth module receives signals from the camera or the microphone and sends them to the terminal. Alternatively, the smart helmet worn by the delivery personnel further includes a networking module disposed on the upper inner side of the helmet shell. The networking module is connected to the control module via a first wiring harness and used for information interaction between the control module and the system backend. The networking module receives signals from the camera or the microphone and sends them to the system backend.
[0016] According to one embodiment of this disclosure, the smart helmet worn by the delivery personnel includes two sound-emitting components, which are located on the left and right sides of the helmet shell, respectively, and correspond to the ear areas on both sides of the delivery personnel.
[0017] According to one embodiment of this disclosure, wherein: a function button is provided on the side of the helmet shell, the function button is connected to the control module, the function button is used for button interaction related to delivery order operations of the delivery task, and sends button interaction signals through the communication component; and / or, a volume adjustment button is provided on the side of the helmet shell, the volume adjustment button is connected to the control module or the sound playback component, and is used for button interaction related to adjusting the volume of the sound playback component; and / or, a second camera control button is provided on the side of the helmet shell, the second camera control button is connected to the control module, and is used for button interaction related to shooting operations of the camera.
[0018] According to one embodiment of this disclosure, the smart helmet worn by the delivery personnel further includes a taillight module and a battery. The taillight module is disposed on the rear inner side of the helmet shell and partially exposed on the rear outer side of the helmet shell. The battery is disposed on the rear inner side of the helmet shell. The battery is connected to the control module and the taillight module via a second wiring harness for power supply.
[0019] According to one embodiment of this disclosure, a second mounting groove is provided on the inner rear side of the helmet shell, and the battery and the taillight module are jointly disposed in the second mounting groove; the rear of the helmet shell is also provided with a second channel connecting the bottom of the second mounting groove and the outer rear side of the helmet shell, and the taillight module is partially exposed on the outer front side of the helmet shell through the second channel.
[0020] According to one embodiment of this disclosure, the smart helmet worn by the delivery personnel further includes a network module and a battery; the network module is connected to the control module via a first wiring harness for information interaction between the control module and the system backend, and the network module receives signals from the camera or the microphone and sends them to the system backend; the battery is connected to the control module and the network module via a second wiring harness for power supply; the microphone is connected to the control module via a third wiring harness; a first mounting slot for accommodating the control module is provided on the inner front side of the helmet shell; a second mounting slot for accommodating the battery is provided on the inner rear side of the helmet shell; the upper part of the helmet shell... The inner side of the helmet shell is provided with a third mounting slot to accommodate the networking module; the inner side of the helmet shell is provided with a first wire groove connecting the first mounting slot and the second mounting slot, a second wire groove connecting the second mounting slot and the third mounting slot, and a third wire groove connecting the side of the helmet shell and the second mounting slot. The first wire groove, the second wire groove, and the second mounting slot together form a channel connecting the first mounting slot and the second mounting slot, and the channel is centrally arranged in the width direction of the helmet shell; wherein, the first wire harness is disposed in the first wire groove; the second wire harness is disposed in the channel; and the third wire harness is disposed in the first wire groove and the third wire groove.
[0021] As can be seen from the above technical solution, the advantages and positive effects of the smart helmet worn by delivery personnel proposed in this disclosure are as follows:
[0022] The smart helmet for delivery personnel disclosed herein includes a helmet shell, a control module, and a sound-emitting component. The control module is mounted on the helmet shell and corresponds to the wearer's face area. The control module is equipped with a camera, a sound-receiving component, and a communication component. The camera extends forward and is exposed on the front outer side of the helmet shell. The communication component receives signals from the camera or the sound-receiving component and transmits them to a terminal or system backend. Through the above structural design, this disclosure utilizes a camera to capture images related to driving or delivery orders. Based on image information acquisition, the camera is integrated into the control module, eliminating the need for an additional connection between the camera and the helmet shell, and eliminating the need for external cables to connect to the control module for signal transmission. This improves the integration of the camera in the smart helmet, enhances the overall structural integrity of the smart helmet, and simplifies assembly complexity. Furthermore, mounting the camera on the helmet shell via the control module provides a more stable installation, preventing loosening or detachment, and also improving the clarity of the captured image information. Attached Figure Description
[0023] The various objectives, features, and advantages of this disclosure will become more apparent from the following detailed description of preferred embodiments of the disclosure taken in conjunction with the accompanying drawings. The drawings are merely illustrative illustrations of the disclosure and are not necessarily drawn to scale. In the drawings, the same reference numerals always denote the same or similar parts. Wherein:
[0024] Figure 1 This is a perspective view of a smart helmet worn by delivery personnel according to an exemplary embodiment;
[0025] Figure 2 yes Figure 1 The diagram shows a three-dimensional representation of the smart helmets worn by delivery personnel from another perspective.
[0026] Figure 3 yes Figure 2 A three-dimensional exploded view;
[0027] Figure 4 yes Figure 1 The image shown is a bottom view of the smart helmets worn by delivery personnel.
[0028] Figure 5 yes Figure 1 The image shown is a bottom view of the helmet shell.
[0029] Figure 6 and Figure 7 They are Figure 2 The control module is shown in a three-dimensional schematic diagram from two different perspectives;
[0030] Figure 8 yes Figure 6 The diagram shows a cross-sectional view of the control module.
[0031] Figure 9 yes Figure 6 A three-dimensional schematic diagram of part of the control module structure is shown.
[0032] The annotations in the attached figures are explained as follows:
[0033] 100. Helmet shell; 203. Second plate;
[0034] 101. First assembly slot; 204. First radio receiver component;
[0035] 102. First channel; 205. Second microphone;
[0036] 103. Second assembly slot; 207. Lighting lamp;
[0037] 105. Third assembly slot; 208. First camera control button;
[0038] 106. First cable slot; 209. Data interface;
[0039] 107. Second groove; 210. Helmet wearing sensor;
[0040] 108. Third groove; 211. Inner lining layer;
[0041] 109. Channel; 212. Through hole;
[0042] 110. Air duct opening; 213. Lighting button;
[0043] 111. Face mask; 214. Camera indicator light;
[0044] 200. Control module; 300. Camera;
[0045] 201. Housing; 410. Sound output component;
[0046] 2011. Rear side; 420. Function buttons;
[0047] 2012. Bottom surface; 430. Volume control buttons;
[0048] 2013. Main body; 440. Second camera control button;
[0049] 2014. Extension Unit; 500. Networking Module;
[0050] 202. First plate; 600. Taillight module;
[0051] 700. Battery. Detailed Implementation
[0052] Typical embodiments embodying the features and advantages of this disclosure will be described in detail in the following description. It should be understood that this disclosure can have various variations in different embodiments without departing from the scope of this disclosure, and the descriptions and drawings therein are illustrative in nature and not intended to limit this disclosure.
[0053] In the following description of various exemplary embodiments of this disclosure, reference is made to the accompanying drawings, which form part of this disclosure, and which illustrate by way of example different exemplary structures, systems, and steps that can implement various aspects of this disclosure. It should be understood that other specific embodiments of the components, structures, exemplary devices, systems, and steps may be used, and structural and functional modifications may be made without departing from the scope of this disclosure. Furthermore, while the terms “above,” “between,” “within,” etc., may be used in this specification to describe different exemplary features and elements of this disclosure, these terms are used herein only for convenience, such as the orientation according to the examples described in the accompanying drawings. Nothing in this specification should be construed as requiring a specific three-dimensional orientation of the structure to fall within the scope of this disclosure.
[0054] See Figure 1 This illustration represents a three-dimensional schematic diagram of a smart helmet worn by delivery personnel according to the present disclosure. In this exemplary embodiment, the smart helmet proposed in this disclosure is illustrated as an example of a helmet used for food delivery personnel. It will be readily understood by those skilled in the art that various modifications, additions, substitutions, deletions, or other changes may be made to the specific embodiments described below in order to apply the relevant designs of this disclosure to other use scenarios, and these changes are still within the scope of the principles of the smart helmet proposed in this disclosure.
[0055] like Figure 1 As shown, in one embodiment of this disclosure, the smart helmet worn by delivery personnel includes a helmet shell 100, a face mask 111, a control module 200, and a sound-emitting component 410. (See also...) Figures 2 to 9 , Figure 2 The image shows a representative stereoscopic illustration of a smart helmet from another perspective; Figure 3 China representatively shows Figure 2 A three-dimensional exploded view; Figure 4 The image shows a representative top view of a smart helmet; Figure 5 The image shows a representative bottom view of the helmet shell 100; Figure 6 and Figure 7 The diagrams show representative three-dimensional schematics of the control module 200 from two different perspectives.
[0056] Figure 8 A representative cross-sectional schematic diagram of the control module 200 is shown in the figure; Figure 9The figure shows a representative three-dimensional schematic diagram of part of the structure of the control module 200. The structure, connection method, and functional relationship of the main components of the smart helmet proposed in this disclosure will be described in detail below with reference to the above figures.
[0057] like Figure 1 , Figure 2 and Figure 6 As shown, in one embodiment of this disclosure, the control module 200 is mounted on the helmet shell 100 and corresponds to the wearer's facial area. The control module 200 includes a camera 300, a microphone, and a communication component. The camera 300 extends forward and is exposed on the front outer side of the helmet shell 100. The camera 300 is used to capture images related to driving or delivery orders. For example, the camera 300 can be used as a dashcam to capture video or images of delivery riders riding or walking. Alternatively, the camera 300 can be used as a recognition device to capture images of street views, storefronts, and receipts, which can then be used by the terminal or backend server to collect relevant information or to provide auxiliary functions or judgment markers such as street view navigation prompts, route planning, rider arrival at the store, and rider pickup. The microphone is used to receive voice messages related to driving or delivery orders. The communication component is used for information interaction between the control module 200 and the terminal or system backend. The communication component receives signals from the camera 300 or the microphone and sends them to the terminal or system backend. The terminal can be, for example, an electronic device such as a mobile phone, tablet, or smartwatch used for delivery, while the system backend can be understood as the backend server of the platform system. The audio playback component 410 is located on the side of the helmet shell 100 and is used to play voice messages related to driving or delivery orders, such as telephone voice messages, navigation announcements, and order-related voice messages. The communication component receives signals from the terminal or system backend and sends them to the audio playback component 410 for playback. Through this structural design, this disclosure utilizes the camera 300 to capture images related to driving or delivery orders. Based on image information acquisition, the camera 300 is placed in the control module 200. The camera 300 does not require additional connection to the helmet shell 100, nor does it need to be connected to the control module 200 via an external cable to transmit signals. This improves the integration of the camera 300 in the smart helmet, enhances the overall structural integrity of the smart helmet, and simplifies assembly complexity. In addition, the camera 300 is installed on the helmet shell 100 via the control module 200, which can achieve a more stable installation effect and avoid problems such as loosening or detachment. On this basis, it can also improve the clarity of the captured image information.
[0058] like Figure 2As shown, in one embodiment of this disclosure, the control module 200 can be mounted on the inner front side of the helmet shell 100. Through the above structural design, this disclosure facilitates the installation of the control module 200 and allows the helmet shell 100 to protect the control module 200 and its associated camera 300, reducing the impact of the external environment on the control module 200.
[0059] like Figures 2 to 5 As shown, in one embodiment of this disclosure, a first mounting groove 101 may be provided on the inner front side of the helmet shell 100, and the control module 200 is disposed within the first mounting groove 101. A first channel 102 may also be provided on the front of the helmet shell 100, connecting the bottom of the first mounting groove 101 and the outer front side of the helmet shell 100. The camera 300 extends through the first channel 102 and is exposed on the outer front side of the helmet shell 100. Through the above structural design, this disclosure utilizes the first mounting groove 101 to house the control module 200, enabling the control module 200 to be arranged inside the helmet shell 100 while avoiding excessive space occupation by the control module 200 within the helmet shell 100, thus ensuring wearing space and comfort for delivery personnel.
[0060] like Figure 2 and Figure 4 As shown, based on the structural design of the control module 200 disposed in the first mounting slot 101, in one embodiment of this disclosure, the control module 200 has a rear side surface 2011 facing backward (or towards the face of the delivery personnel). This rear side surface 2011 is flush with the inner side surface of the helmet shell 100, and the two together form a smooth arc surface, which is a contoured design to the forehead area of the delivery personnel. Through the above structural design, this disclosure further ensures that the control module 200 does not protrude from the inner side surface of the helmet shell 100, that is, the control module 200 is fully accommodated in the first mounting slot 101, avoiding pressure on the face or other parts of the head of the delivery personnel, and further improving wearing comfort. Furthermore, the smart helmet proposed in this disclosure may also include an inner liner (not shown in the figures), which is disposed on the inner side surface of the helmet shell 100. When the rear side surface 2011 of the control module 200 is flush with and contoured to the inner side surface of the helmet shell 100, the arrangement of the inner liner can be further facilitated. Alternatively, the inner liner may have a notch corresponding to the control module 200 (or the first mounting slot 101) to facilitate the assembly and disassembly of the control module 200. Furthermore, an inner liner layer 211 may be provided on the inner side of the control module 200, so that after the control module 200 is installed, the inner liner layer 211 can form a complete inner liner structure together with the inner liner of the helmet shell 100. In addition, the aforementioned inner liner, inner liner layer 211, etc., can be made of materials such as EVA.
[0061] It should be noted that the rear side 2011 of the housing 201 shown in some of the drawings is actually the surface of the inner lining 211 provided on the rear side 2011 of the housing 201 that is away from the housing 201. In some other embodiments of this disclosure, when the control module 200 is not provided with the inner lining 211, the rear side 2011 of the housing 201 is exposed.
[0062] like Figure 6 As shown, in one embodiment of this disclosure, the control module 200 may be equipped with a lighting lamp 207, which is exposed on the front outer side of the helmet shell 100 and provides illumination to meet the shooting needs of the camera 300. Of course, the lighting lamp 207 can also provide illumination independently, for example, as a headlamp. Furthermore, the lower end face 2012 of the shell 201 may be provided with a lighting button 213, which can be used to control the on / off state of the lighting lamp 207 or adjust its brightness.
[0063] like Figure 6 As shown, in one embodiment of this disclosure, the lower end face 2012 of the housing 201 may also be provided with a camera indicator light 214. The camera indicator light 214 can emit light when the camera 300 is working, or emit light of different colors when the camera 300 is in different working modes, so that the delivery personnel can know the working status of the camera 300 through the illumination status of the camera indicator light 214.
[0064] like Figures 6 to 9 As shown, in one embodiment of this disclosure, the control module 200 may include a housing 201. Two circuit boards are disposed within the housing 201, spaced apart along the thickness direction of the helmet shell 100 where the control module 200 is mounted. The two circuit boards are a first board 202 closer to the helmet shell 100 and a second board 203 farther from the helmet shell 100. A camera 300 is connected to the first board 202. A microphone and a communication component can be respectively disposed on the second board 203. Through this structural design, this disclosure utilizes two circuit boards to house different functional devices or components, thereby improving space utilization in the direction perpendicular to the inner side of the helmet shell 100 (i.e., the rear side 2011 of the control module 200). If all the aforementioned functional devices or components are arranged on a single circuit board, the resulting board area would be large, occupying a significant amount of space inside the helmet shell 100. This would lead to an excessively large control module 200, making it difficult to install and remove, and would also encroach on the space available for other structures within the helmet shell 100 (such as the air duct 110 on the front of the helmet shell 100). In contrast, this disclosure employs a double-layer circuit board design, which significantly reduces the surface area of the control module 200, lowers the difficulty of its installation and removal, and facilitates the arrangement of other structures within the helmet shell 100.
[0065] like Figures 6 to 8 As shown, based on the structural design of the control module 200 including the housing 201, in one embodiment of this disclosure, the housing 201 may include a main body 2013 and an extension 2014. One end of the extension 2014 is connected to the side of the main body 2013 near the helmet shell 100, and the other end of the extension 2014 extends forward and has an opening exposed on the front outer side of the helmet shell 100. Based on this, a camera 300 is disposed within the extension 2014, with one end of the camera 300 connected to the circuit board (e.g., the first board 202) of the control module 200, and the other end exposed in the opening. The helmet shell 100 is provided with a first channel 102 through which the extension 2014 passes. Through the above structural design, this disclosure utilizes the extension 2014 of the housing 201 to partially enclose the camera 300, thereby protecting the camera 300, preventing the camera 300 from directly contacting the helmet shell 100 (e.g., the inner wall of the first channel 102), improving the shooting stability and reliability of the camera 300, and extending its service life.
[0066] like Figure 2 , Figure 4 and Figure 6 As shown, in one embodiment of this disclosure, the housing 201 of the control module 200 may have a downward-facing lower end face 2012. The control module 200 may be equipped with a first camera control button 208, located on the lower end face 2012. The first camera control button 208 is used to perform operations related to the shooting of the camera 300, such as starting shooting, stopping shooting, pausing shooting, and continuous shooting. Different control functions can be associated with different operation actions, such as single-click, double-click, and long-press. Through the above structural design, the first camera control button 208 is provided on the lower end face 2012 of the housing 201 of the control module 200, facilitating touch and pressing operations and improving operational convenience.
[0067] like Figure 2 , Figure 4 and Figure 6 As shown, in one embodiment of this disclosure, the lower end face 2012 of the housing 201 of the control module 200 is still taken as an example. The control module 200 may be provided with a data interface 209, which is located on the lower end face 2012. The data interface 209 is used to connect a data cable to achieve data interaction. Through the above structural design, this disclosure provides a data interface 209 on the lower end face 2012 of the housing 201 of the control module 200, which facilitates the insertion and removal of the data cable and the data interface 209, improving ease of use.
[0068] like Figure 6 and Figure 7As shown, in one embodiment of this disclosure, the sound receiving component may include a first sound receiving component 204 and a second sound receiving component 205 (not shown in the figures). The first sound receiving component 204 is used to capture ambient sound when the camera 300 records video. The second sound receiving component 205 is used to capture voice during a voice call. Through the above structural design, this disclosure uses different sound receiving components to capture ambient sound and voice during a voice call, enabling different sound receiving schemes to be configured for different types of sound receiving functions, such as placement and component selection, further optimizing the sound receiving component's targeting for different sound receiving functions. In other embodiments of this disclosure, the same component may be used to achieve the sound receiving function for various sounds, and this embodiment is not the only one.
[0069] Based on the structural design of the sound receiving components including a first sound receiving component 204 and a second sound receiving component 205, in one embodiment of this disclosure, the first sound receiving component 204 can be an electret microphone.
[0070] Based on the structural design of the microphone components including the first microphone component 204 and the second microphone component 205, in one embodiment of this disclosure, the second microphone component 205 can be a silicon microphone.
[0071] like Figure 6 As shown, in one embodiment of this disclosure, based on the structural design of the sound receiving component including a first sound receiving component 204 and a second sound receiving component 205, the control module 200 has a downward-facing lower end surface 2012, on which the first sound receiving component 204 can be exposed. Through this structural design, since the first sound receiving component 204 is used to collect sound including ambient noise when the camera 300 records video, placing it on the lower end surface 2012 of the housing 201 can reduce or avoid the first sound receiving component 204 being obstructed by the delivery vehicle head, thus optimizing the sound reception effect.
[0072] like Figure 8 As shown, in one embodiment of this disclosure, based on the structural design of the microphone component including a first microphone component 204 and a second microphone component 205, the control module 200 has a rearward-facing rear side surface 2011, on which the second microphone component 205 can be exposed. Specifically, the second microphone component 205 can be located in the area near its lower end face 2012 of the rear side surface 2011 of the housing 201. Through the above structural design, since the second microphone component 205 is used to collect voice during voice calls, this disclosure places it on the inner side of the housing 201, which can be closer to the head (voice position) of the delivery vehicle, thus optimizing the sound reception effect.
[0073] like Figure 7 and Figure 8As shown, in one embodiment of this disclosure, the control module 200 may be equipped with a helmet-wearing sensor 210. This helmet-wearing sensor 210 is exposed on the rear side 2011 of the control module 200, facing the forehead area of the delivery personnel. The helmet-wearing sensor 210 is used to detect whether the smart helmet is properly worn by the delivery personnel. For example, when the terminal obtains or does not obtain proper wearing information, the system backend can accordingly mark the delivery personnel in the APP on the delivery personnel's terminal (e.g., marked as helmet worn and helmet not worn). Alternatively, if the terminal does not obtain proper wearing information, the system backend can accordingly mark the delivery personnel as unacceptable for orders in the APP on the delivery personnel's terminal, thereby improving safety. Figure 7 The inner liner 211 provided on the rear side 2011 of the housing 201 is shown. The inner liner 211 may be provided with a through hole 211, which is used to avoid the helmet wearing sensor 210 exposed on the rear side 2011. By observing the position of the through hole 211, the arrangement of the helmet wearing sensor 210 on the rear side 2011 can be understood.
[0074] like Figure 8 As shown, in one embodiment of this disclosure, the communication component may include a Bluetooth module, which is disposed in the housing 201 of the control module 200. The Bluetooth module is used for information interaction between the control module 200 and the terminal. The Bluetooth module receives signals from the camera 300 or the audio receiver and sends them to the terminal.
[0075] like Figures 2 to 4 As shown, in one embodiment of this disclosure, the smart helmet proposed in this disclosure may further include a networking module 500, which is disposed on the upper inner side of the helmet shell 100. The networking module 500 is connected to the control module 200 via a first wiring harness (not shown in the figures) and is used for information interaction between the control module 200 and the system backend. The networking module 500 receives signals from the camera 300 or the audio receiver and sends them to the system backend. Through the above structural design, this disclosure utilizes the networking module 500 to realize the networking between the control module 200 (i.e., the smart helmet) and the system backend. Since the networking module 500 is disposed on the upper part of the helmet shell 100, the obstruction of the networking module 500 by the helmet shell 100 or the delivery person's head is reduced, further improving the networking signal strength.
[0076] In one embodiment of this disclosure, the smart helmet also includes a network module 500. In one embodiment of this disclosure, the network module 500 can be an LTE module, for example, the LTE module includes a 4G motherboard, a 4G antenna, and a SIM card.
[0077] like Figure 3 and Figure 5As shown, based on the structural design of the smart helmet, which also includes a network module 500, in one embodiment of this disclosure, a third mounting slot 105 can be provided on the upper inner side of the helmet shell 100, and the network module 500 is disposed in the third mounting slot 105. Through the above structural design, this disclosure utilizes the third mounting slot 105 to set the network module 500, which enables the network module 500 to be arranged inside the helmet shell 100, and avoids the network module 500 occupying too much space inside the helmet shell 100, thus ensuring the wearing space and comfort of delivery personnel.
[0078] like Figure 4 As shown, in one embodiment of this disclosure, the smart helmet proposed in this disclosure may include two sound-emitting components 410. These two sound-emitting components 410 are respectively located on the left and right sides of the helmet shell 100, and the two sound-emitting components 410 correspond to the ear areas on both sides of the delivery vehicle. Through the above structural design, this disclosure can further improve the sound emission effect of the sound-emitting components 410, enhance the listening experience of the delivery vehicle, and optimize the user experience.
[0079] like Figure 1 and Figure 3 As shown, in one embodiment of this disclosure, a function button 420 may be provided on the side of the helmet shell 100. The function button 420 is connected to the control module 200. The function button 420 is used for button interaction related to delivery orders of delivery tasks, and sends button interaction signals through a communication component. It can also be used for functions such as making and receiving calls and turning the device on and off. The function button 420 may adopt a waterproof button structure design.
[0080] like Figure 1 and Figure 3 As shown, in one embodiment of this disclosure, a volume adjustment button 430 may be provided on the side of the helmet shell 100. The volume adjustment button 430 is connected to the control module 200 or the sound playback component 410 and is used to handle button interactions related to adjusting the volume of the sound playback component 410. The volume adjustment button 430 may be designed as a waterproof button.
[0081] like Figure 1 and Figure 3 As shown, in one embodiment of this disclosure, a second camera control button 440 is provided on the side of the helmet shell 100. This second camera control button 440 is connected to the control module 200 and is used to handle button interactions related to shooting operations of the camera 300. Accordingly, in Figure 1In the illustrated embodiment, the smart helmet proposed in this disclosure includes at least two camera control buttons: a first camera control button 208 disposed on the lower end face 2012 of the control module 200 and a second camera control button 440 disposed on the side of the helmet shell 100. This further improves the convenience of delivery operation interaction and allows for the selection of more convenient buttons for interaction according to different scenario needs.
[0082] like Figures 2 to 4 As shown, in one embodiment of this disclosure, the smart helmet may further include a taillight module 600 and a battery 700. The taillight module 600 is disposed on the rear inner side of the helmet shell 100, and a portion of the taillight module 600 is exposed on the rear outer side of the helmet shell 100. The taillight module 600 may include LEDs or photoresistors, for example, five LEDs and one photoresistor. The battery 700 is disposed on the rear inner side of the helmet shell 100. The battery 700 is connected to the control module 200 and the taillight module 600 via a second wiring harness (not shown in the figures) for power supply. The capacity of the battery 700 may be, for example, 3500mAh. Furthermore, when the smart helmet includes a networking module 500, the battery 700 may also be connected to the networking module 500 via the wiring harness to power the networking module 500. Through the above structural design, since the control module 200 has a large weight due to the structure of the camera 300, and the battery 700 is also a component with a large weight, this disclosure arranges the control module 200 and the battery 700 at the front and rear of the helmet shell 100 respectively, which can achieve the overall front-to-back gravity balance of the smart helmet, so that the overall center of gravity is kept in the middle area of the smart helmet, improving the stability and comfort of wearing.
[0083] like Figure 3 and Figure 5 As shown, based on the structural design of the smart helmet including a taillight module 600 and a battery 700, in one embodiment of this disclosure, a second mounting groove 103 can be provided on the inner rear side of the helmet shell 100, and the battery 700 and the taillight module 600 are jointly disposed in the second mounting groove 103. A second channel (not shown in the figures) is also provided at the rear of the helmet shell 100, connecting the bottom of the second mounting groove 103 and the outer rear side of the helmet shell 100. The taillight module 600 is partially exposed on the outer front side of the helmet shell 100 via the second channel. Through the above structural design, this disclosure utilizes the second mounting groove 103 to house the taillight module 600 and the battery 700, enabling the taillight module 600 and the battery 700 to be arranged inside the helmet shell 100, and avoiding excessive occupation of the internal space of the helmet shell 100 by the taillight module 600 and the battery 700, thus ensuring the wearing space and comfort of delivery personnel.
[0084] As mentioned above, when the smart helmet proposed in this disclosure includes a networking module 500 and a battery 700 (or a taillight module 600), and the control module 200, the battery 700 and the networking module 500 are respectively designed with mounting slots embedded in the inner side of the helmet shell 100, each mounting slot can be connected by multiple wire channels, thereby realizing the embedding and embedding of each component and related wiring harness in the inner side of the helmet shell 100.
[0085] Specifically, such as Figure 4 and Figure 5 As shown, in one embodiment of this disclosure, the networking module 500 is connected to the control module 200 via a first wiring harness. The battery 700 is connected to both the control module 200 and the networking module 500 via a second wiring harness. The audio playback component 410 is connected to the control module 200 via a third wiring harness. A first mounting slot 101 for accommodating the control module 200 is provided on the inner front side of the helmet shell 100. A second mounting slot 103 for accommodating the battery 700 is provided on the inner rear side of the helmet shell 100. A third mounting slot 105 for accommodating the networking module 500 is provided on the inner upper side of the helmet shell 100. The inner side of the helmet shell 100 is provided with a first wire groove 106 connecting the first mounting groove 101 and the second mounting groove 103, a second wire groove 107 connecting the second mounting groove 103 and the third mounting groove 105, and a third wire groove 108 connecting the side of the helmet shell 100 and the second mounting groove 103. The first wire groove 106, the second wire groove 107, and the second mounting groove 103 together form a channel 109 connecting the first mounting groove 101 and the second mounting groove 103, and the channel 109 is centrally located in the width direction of the helmet shell 100. Based on this, a first wire harness is disposed in the first wire groove 106. A second wire harness is disposed in the channel 109. A third wire harness is disposed in the first wire groove 106 and the third wire groove 108.
[0086] It should be noted that the smart helmets worn by delivery personnel shown in the accompanying drawings and described in this specification are merely a few examples among many smart helmets capable of employing the principles of this disclosure. It should be clearly understood that the principles of this disclosure are by no means limited to any detail or component of the smart helmets worn by delivery personnel shown in the accompanying drawings or described in this specification.
[0087] In summary, the smart helmet for delivery personnel proposed in this disclosure includes a helmet shell 100, a control module 200, and a sound output component 410. The control module 200 is mounted on the helmet shell 100 and corresponds to the wearer's facial area. The control module 200 is equipped with a camera 300, a sound receiving component, and a communication component. The camera 300 extends forward and is exposed on the front outer side of the helmet shell 100. The communication component receives signals from the camera 300 or the sound receiving component and sends them to a terminal or system backend. Through the above structural design, this disclosure utilizes the camera 300 to capture images related to driving or delivery orders. Based on the acquisition of image information, the camera 300 is placed in the control module 200. The camera 300 does not need to be additionally connected to the helmet shell 100, nor does it need to be connected to the control module 200 via an external cable to transmit signals. This improves the integration of the camera 300 in the smart helmet, which is beneficial to improving the overall structural integrity of the smart helmet and simplifying assembly complexity. In addition, the camera 300 is installed on the helmet shell 100 via the control module 200, which can achieve a more stable installation effect and avoid problems such as loosening or detachment. On this basis, it can also improve the clarity of the captured image information.
[0088] The foregoing describes and / or illustrates exemplary embodiments of smart helmets for delivery personnel according to the present disclosure. However, the embodiments of the present disclosure are not limited to the specific embodiments described herein; rather, components and / or steps of each embodiment may be used independently and separately from other components and / or steps described herein. Each component and / or step of one embodiment may also be used in combination with other components and / or steps of other embodiments. In describing the elements / components / etc. described and / or illustrated herein, the terms “a,” “an,” and “the above” are used to indicate the presence of one or more elements / components / etc. The terms “comprising,” “including,” and “having” are used to indicate an open-ended inclusion and mean that additional elements / components / etc. may exist in addition to those listed. Furthermore, the terms “first” and “second,” etc., in the claims and specification are used only as illustrative marks and are not intended to limit the numerical scope of the subject matter.
[0089] Although the smart helmets for delivery personnel proposed in this disclosure have been described with respect to different specific embodiments, those skilled in the art will recognize that modifications may be made to the implementation of this disclosure within the spirit and scope of the claims.
Claims
1. A smart helmet worn by a delivery capacity wearer, characterized in that, include: Helmet shell (100); A control module (200) is mounted on the helmet shell (100) and corresponds to the wearer's face area; the control module (200) is equipped with a camera (300), a microphone, and a communication component; the camera (300) extends forward and is exposed on the front outer side of the helmet shell (100) for capturing images related to driving or delivery orders; the microphone is used to receive voice related to driving or delivery orders; the communication component is used for information interaction between the control module (200) and a terminal or system backend, and the communication component receives signals from the camera (300) or the microphone and sends them to the terminal or system backend; and A sound playback component (410), which is disposed on the side of the helmet shell (100), is used to play voice related to driving or delivery orders. The communication component receives signals from the terminal or system backend and sends them to the sound playback component (410) for playback.
2. The smart helmet worn by the delivery capacity, according to claim 1, characterized in that, The control module (200) is mounted on the inner front part of the helmet shell (100).
3. The smart helmet worn by the delivery capacity, according to claim 1, characterized in that, The helmet shell (100) has a first mounting groove (101) on the inner front side, and the control module (200) is disposed in the first mounting groove (101); the helmet shell (100) also has a first channel (102) on the front side that connects the bottom of the first mounting groove (101) and the outer front side of the helmet shell (100), and the camera (300) extends through the first channel (102) and is exposed on the outer front side of the helmet shell (100).
4. The smart helmet worn by the delivery capacity according to claim 2, characterized in that, The control module (200) has a rearward-facing rear side (2011) that is flush with the inner side of the helmet shell (100) and together forms a smooth arc surface that is designed to mimic the shape of the forehead area of the delivery unit.
5. The smart helmet worn by the delivery capacity according to claim 1, characterized in that, The control module (200) is equipped with a lighting lamp (207), which is exposed on the front outer side of the helmet shell (100) and is used to provide lighting for the shooting needs of the camera (300).
6. The smart helmet worn by the delivery capacity according to claim 1, characterized in that, The control module (200) includes a housing (201); two circuit boards are disposed inside the housing (201), the two circuit boards are arranged at intervals along the thickness direction of the helmet shell (100) where the control module (200) is mounted, and are respectively a first board (202) closer to the helmet shell (100) and a second board (203) farther away from the helmet shell (100); wherein, the camera (300) is connected to the first board (202); the microphone and the communication component are disposed on the second board (203).
7. The smart helmet worn by the delivery capacity according to claim 1, characterized in that, The control module (200) includes a housing (201) having a downward-facing lower end face (2012); wherein: The control module (200) is provided with a first camera control button (208), which is located on the lower end face (2012) and is used to perform operations related to the shooting of the camera (300); and / or The control module (200) is provided with a data interface (209), which is located on the lower end face (2012) and is used to connect a data cable to realize data interaction.
8. The smart helmet worn by the delivery capacity according to claim 1, characterized in that, The sound receiving component includes a first sound receiving component (204) and a second sound receiving component (205); the first sound receiving component (204) is used to collect sound including ambient sound when the camera (300) records video; the second sound receiving component (205) is used to collect voice during voice calls.
9. The smart helmet worn by the delivery capacity, according to claim 8, characterized in that, in: The control module (200) has a downward-facing lower end face (2012), on which the first radio component (204) is exposed; and / or The control module (200) has a rearward-facing rear side (2011), on which the second radio component (205) is exposed.
10. The smart helmet worn by the delivery capacity according to claim 1, characterized in that, The control module (200) is equipped with a helmet wearing sensor (210), which is exposed on the rear side (2011) of the control module (200) and faces the forehead area of the delivery personnel, and is used to detect whether the smart helmet is worn properly by the delivery personnel.
11. The smart helmet worn by delivery personnel according to claim 1, characterized in that: The communication component includes a Bluetooth module, which is disposed within the housing (201) of the control module (200) and is used for information interaction between the control module (200) and the terminal. The Bluetooth module receives signals from the camera (300) or the audio receiver and sends them to the terminal; and / or The smart helmet worn by the delivery personnel also includes a network module (500), which is located on the upper inner side of the helmet shell (100). The network module (500) is connected to the control module (200) via a first wiring harness and is used for information interaction between the control module (200) and the system backend. The network module (500) receives signals from the camera (300) or the microphone and sends them to the system backend.
12. The smart helmet worn by delivery personnel according to claim 1, characterized in that, The smart helmet worn by the delivery personnel includes two sound-emitting components (410), which are located on the left and right sides of the helmet shell (100) respectively, and the two sound-emitting components (410) correspond to the ear areas on both sides of the delivery personnel.
13. The smart helmet worn by delivery personnel according to claim 1, characterized in that: The side of the helmet shell (100) is provided with a function button (420) connected with the control module (200), which is used for button interaction of delivery order related operation of delivery task and sends button interaction signal through the communication component; and / or The side of the helmet shell (100) is provided with a volume adjustment button (430) connected with the control module (200) or the playback component (410), which is used for processing button interaction related to adjusting the volume of the playback component (410); and / or The side of the helmet shell (100) is provided with a second camera control button (440) connected with the control module (200), which is used for processing button interaction related to shooting of the camera (300).
14. The smart helmet worn by the delivery capacity according to claim 1, characterized in that, The smart helmet worn by the delivery force further comprises a tail light module (600) and a battery (700). The tail light module (600) is arranged on the inner side of the rear part of the helmet shell (100) and partially exposed on the outer side of the rear part of the helmet shell (100). The battery (700) is arranged on the inner side of the rear part of the helmet shell (100). The battery (700) is connected with the control module (200) and the tail light module (600) through a second wire harness for power supply.
15. The smart helmet worn by the delivery capacity, according to claim 14, characterized in that, The inner side of the rear part of the helmet shell (100) is provided with a second assembly groove (103), and the battery (700) and the tail light module (600) are arranged in the second assembly groove (103) together. The rear part of the helmet shell (100) is further provided with a second channel communicating the groove bottom of the second assembly groove (103) and the outer side of the rear part of the helmet shell (100), and the tail light module (600) is partially exposed on the outer side of the front part of the helmet shell (100) through the second channel.
16. The smart helmet worn by the delivery force according to claim 1, wherein: The smart helmet worn by the delivery force further comprises a networking module (500) and a battery (700). The networking module (500) is connected with the control module (200) through a first wire harness for information interaction between the control module (200) and the system background. The networking module (500) receives signals of the camera (300) or the sound receiving component and sends them to the system background. The battery (700) is connected with the control module (200) and the networking module (500) through a second wire harness for power supply. The playback component (410) is connected with the control module (200) through a third wire harness. The front inner side of the helmet shell (100) is provided with a first assembly groove (101) accommodating the control module (200); the rear inner side of the helmet shell (100) is provided with a second assembly groove (103) accommodating the battery (700); the upper inner side of the helmet shell (100) is provided with a third assembly groove (105) accommodating the networking module (500); the inner side of the helmet shell (100) is provided with a first wire groove (106) communicating the first assembly groove (101) and the second assembly groove (103), a second wire groove (107) communicating the second assembly groove (103) and the third assembly groove (105), and a third wire groove (108) communicating the side of the helmet shell (100) and the second assembly groove (103), the first wire groove (106), the second wire groove (107) and the second assembly groove (103) together forming a channel (109) communicating between the first assembly groove (101) and the second assembly groove (103), and the channel (109) is arranged centrally in the width direction of the helmet shell (100); Wherein, the first wire harness is arranged in the first wire groove (106); the second wire harness is arranged in the channel (109); and the third wire harness is arranged in the first wire groove (106) and the third wire groove (108).