Intelligent helmet worn for delivery and transport capacity
By placing the microphone inside the helmet cavity and protecting the cable with a cover, the problem of easy damage to external components is solved, resulting in a longer cable life, more comfortable wear, and reduced maintenance costs.
Patent Information
- Application Number
- CN202520479436.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-18
- Publication Date
- 2026-01-30
- Estimated Expiration
- 2035-03-18
AI Technical Summary
In the smart helmets currently worn by delivery personnel, external components are prone to damage, resulting in high maintenance costs and poor wearing comfort.
The microphone is placed inside the helmet shell cavity, connected to the interaction module via a flexible cable, and covered with a cover. The cover fits snugly against the inside of the helmet to protect the cable and makes contact with the delivery person's forehead. It adopts a detachable connection structure.
It extends the lifespan of the cord, improves wearing comfort, reduces maintenance costs, and enhances the user experience.
Smart Images

Figure CN223845043U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present disclosure relates to a smart helmet worn by a delivery worker. BACKGROUND
[0002] The existing smart helmet worn by a delivery worker has external components such as earphone modules arranged outside the helmet shell. These external components are exposed and are prone to damage, resulting in the need to replace the soft wire or the entire earphone module and receiver connected to the soft wire, which causes high maintenance costs. In addition, when the delivery worker wears the helmet, the comfort level is also poor. SUMMARY
[0003] One of the main purposes of the present disclosure is to overcome at least one of the above-mentioned defects of the prior art, and to provide a smart helmet worn by a delivery worker which is not prone to damage and has better comfort level.
[0004] To achieve the above-mentioned purpose, the present disclosure adopts the following technical solutions:
[0005] According to one aspect of the present disclosure, a smart helmet worn by a delivery worker is provided, wherein the smart helmet comprises a helmet shell, an interaction module, a receiver, and a cover; the interaction module is arranged on the outside of the helmet shell; the receiver is arranged in a region corresponding to the forehead of the delivery worker in the inner cavity of the helmet shell, and the receiver is connected to the interaction module via a soft wire, the soft wire being arranged in the inner cavity of the helmet shell; the cover is arranged on the inner side of the helmet shell and covers the soft wire; the side of the cover facing the helmet shell is fitted to the shape of part of the wall surface of the inner cavity of the helmet shell, and at least part of the side of the cover facing away from the helmet shell is used to contact the forehead of the delivery worker.
[0006] According to one of the embodiments of the present disclosure, the cover is detachably connected to the inner side of the helmet shell, and the soft wire is at least partially located in the gap formed between the cover and the inner side of the helmet shell.
[0007] According to one of the embodiments of the present disclosure, the cover and the helmet shell are connected via a detachable connection structure, which is one of a Velcro, a snap, a buckle, or a combination of multiple thereof.
[0008] According to one of the embodiments of the present disclosure, at least part of the receiver (310) is covered by the cover.
[0009] According to one of the embodiments of the present disclosure, the receiver at least partially protrudes from the inner side of the helmet shell; wherein the cover is provided with a receiving groove (410) which is shaped to match the shape of the part of the receiver (310) protruding from the inner side of the helmet shell (100), and the receiving groove is used to accommodate at least part of the receiver.
[0010] According to one of the embodiments of the present disclosure, the receiver is provided with a receiver element; wherein the groove wall of the receiving groove is provided with a receiver hole, and the receiver element is exposed to the receiver hole.
[0011] According to one of the embodiments of the present disclosure, the helmet shell comprises a helmet shell body and an inner liner; the inner liner is arranged on the inner side of the helmet shell body; wherein the soft wire part is located on the inner side of the inner liner, and the cover is arranged on the inner side of the inner liner.
[0012] According to one of the embodiments of the present disclosure, the inner side of the helmet shell is provided with a wire groove, the soft wire part is accommodated in the wire groove, and the cover covers the wire groove.
[0013] According to one of the embodiments of the present disclosure, the smart helmet comprises two interaction modules, and the two interaction modules are arranged on the left and right sides of the helmet shell respectively; the receiver is connected to the two interaction modules via two soft wires respectively; wherein the cover covers the two soft wires.
[0014] According to one of the embodiments of the present disclosure, the smart helmet comprises a soft wire microphone, and the soft wire microphone comprises the receiver and the soft wire; one end of the soft wire is connected to the microphone, and the other end is detachably connected to the interaction module.
[0015] According to one of the embodiments of the present disclosure, the smart helmet comprises two interaction modules, and the two interaction modules are arranged on the left and right sides of the helmet shell respectively; wherein the receiver is located on a plane perpendicular to the connecting line between the two interaction modules.
[0016] According to one of the embodiments of the present disclosure, the smart helmet further comprises a visor; the visor is rotatably connected to the outer side of the helmet shell; and the interaction module is located on the rear side of the connecting position where the helmet shell and the visor are rotatably connected.
[0017] According to one of the embodiments of the present disclosure, the helmet shell comprises a helmet shell body and an inner liner; the inner liner is arranged on the inner side of the helmet shell body; a first air outlet is arranged on the rear part of the helmet shell body; an air outlet groove is arranged on the outer surface of the inner liner corresponding to the position of the first air outlet; the groove bottom of the air outlet groove is provided with a second air outlet penetrating through the inner liner, and the second air outlet is arranged at least partially staggered with the first air outlet.
[0018] From the above technical solutions, the smart helmet worn by the delivery driver provided by the present disclosure has the following advantages and positive effects:
[0019] The smart helmet worn by the delivery driver provided by the present disclosure comprises a helmet shell, an interactive module, a receiver and a covering piece; the interactive module is arranged on the outer side of the helmet shell; the receiver is arranged in the inner cavity of the helmet shell and corresponds to the area of the forehead of the delivery driver; the receiver is connected to the interactive module through a soft wire, and the soft wire is arranged in the inner cavity of the helmet shell; the covering piece is arranged on the inner side of the helmet shell and covers the soft wire; the side of the covering piece facing the helmet shell is matched with the shape of part of the wall surface of the inner cavity of the helmet shell, and at least part of the side of the covering piece away from the helmet shell is used to contact the forehead of the delivery driver. Through the above structural design, the present disclosure can protect the soft wire by using the covering piece, avoid the soft wire arranged on the inner side of the helmet shell from being directly exposed and being easily damaged by collision, and prolong the service life of the soft wire. In addition, the present disclosure can separate the soft wire from the head of the delivery driver by using the covering piece, improve the comfort of the delivery driver when wearing, and improve the user experience. BRIEF DESCRIPTION OF DRAWINGS
[0020] The various objectives, features and advantages of the present disclosure will become more apparent from the following detailed description of the preferred embodiments of the present disclosure, taken in conjunction with the accompanying drawings. The accompanying drawings are merely exemplary illustrations of the present disclosure and are not necessarily drawn to scale. In the drawings, like reference numerals always designate the same or similar components. Among them:
[0021] Figure 1 is a structural schematic view of the smart helmet worn by the delivery driver from one perspective according to an exemplary embodiment;
[0022] Figure 2 is Figure 1 is a structural schematic view of the smart helmet worn by the delivery driver from another perspective;
[0023] Figure 3 is Figure 2 is an enlarged schematic view of part A in
[0024] Figure 4 is Figure 2 is an exploded schematic view of the smart helmet worn by the delivery driver;
[0025] Figure 5 yes Figure 4 An enlarged schematic diagram of part B in the diagram;
[0026] Figure 6 This is a partially enlarged schematic diagram of a smart helmet worn by delivery personnel, according to another exemplary embodiment.
[0027] Figure 7 This is a structural schematic diagram of a smart helmet worn by delivery personnel according to another exemplary embodiment;
[0028] Figure 8 yes Figure 7 An enlarged schematic diagram of part C in the diagram;
[0029] Figure 9 yes Figure 7 The image shows a top view of the smart helmets worn by delivery personnel.
[0030] Figure 10 This is a structural schematic diagram of a smart helmet worn by delivery personnel according to another exemplary embodiment;
[0031] Figure 11 This is a partially enlarged schematic diagram of a smart helmet worn by delivery personnel, according to another exemplary embodiment.
[0032] Figure 12 It is along Figure 11 The sectional view made by the straight line EE in the figure.
[0033] The annotations in the attached figures are explained as follows:
[0034] 100. Helmet shell;
[0035] 101. Connection location;
[0036] 110. Helmet shell;
[0037] 111. First row of air vents;
[0038] 120. Inner liner;
[0039] 121. Ventilation duct;
[0040] 122. Second air vent;
[0041] 130. Ventilation opening;
[0042] 200. Interactive module;
[0043] 310. Radio;
[0044] 320. Flexible wire;
[0045] 330. Connector;
[0046] 400. cover;
[0047] 410. accommodation groove;
[0048] 500. eyewear;
[0049] L. connecting line;
[0050] O. center point;
[0051] S. reference plane. DETAILED DESCRIPTION
[0052] Embodiments embodying the features and advantages of the present disclosure will be described in detail hereinafter. It should be understood that the present disclosure can be embodied in many different forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and fully convey the scope of the disclosure to those skilled in the art.
[0053] In the following description of various example embodiments of the present disclosure, reference is made to the accompanying drawings, which form a part hereof, and in which are shown by way of illustration various example structures, systems, and steps in which aspects of the present disclosure can be practiced. It is to be understood that other specific arrangements of parts, structures, example devices, systems, and steps can be utilized and that structural and functional modifications can be made without departing from the scope of the present disclosure. Also, while the terms "over," "between," "inner," "outer," and the like can be used in the description of various example features and elements of the present disclosure, these terms are used in the context of the specific example embodiments being discussed and are not intended to limit the scope of the present disclosure. Any use of such terms in the present description should be interpreted accordingly.
[0054] Referring to Figure 1 , a structural schematic diagram of the smart helmet worn by the delivery personnel in a perspective view is shown. In this example embodiment, the smart helmet worn by the delivery personnel is exemplified by a helmet worn by a take-out rider. It is easy for those skilled in the art to understand that various modifications, additions, substitutions, deletions, or other changes can be made to the specific embodiments described below in order to apply the relevant design of the present disclosure to other types of helmets, and these changes are still within the scope of the smart helmet worn by the delivery personnel proposed by the present disclosure.
[0055] As shown in Figure 1 , in an embodiment of the present disclosure, the smart helmet worn by the delivery personnel proposed by the present disclosure includes a helmet shell 100, an interaction module 200, a radio receiver 310, and a cover 400. For reference, see Figures 2 to 5 , Figure 2Fig. 6 shows a schematic view of the structure of the smart helmet worn by the delivery force from another perspective; Figure 3 Fig. 7 shows an enlarged schematic view of part A in Fig. 6. Figure 2 Fig. 8 shows an enlarged schematic view of part B in Fig. 6.
[0056] Figure 4 Fig. 9 shows an exploded schematic view of the smart helmet worn by the delivery force, in which specifically the cover 400 is detached from the helmet shell 100. Figure 5 Fig. 10 shows a schematic view of the structure of the smart helmet worn by the delivery force from another perspective; Figure 4 Fig. 11 shows an enlarged schematic view of part A in Fig. 10.
[0057] As shown in Fig. 1, the smart helmet worn by the delivery force comprises a helmet shell 100, a cover 400, a display 200, a camera 300, a microphone 500, a speaker 600, a power supply 700, a communication module 800, a storage module 900, a processor 1000, a sensor 1100, a GPS module 1200, a gyroscope 1300, a memory 1400, and a communication interface 1500. Figures 1 to 5As shown, in an embodiment of the present disclosure, the interaction module 200 is arranged on the outside of the helmet shell 100. The interaction module 200 can be understood as a headset module with voice interaction, i.e., capable of realizing the functions of receiving sound and playing voice (e.g., playing music, making or receiving a call, voice ordering), for example, the interaction module 200 can correspond to the area of the side ear of the delivery staff. The interaction module 200 can also have other interaction modes, such as interaction for controlling actions, i.e., the delivery staff realizes other control functions (e.g., confirming an order) by manipulating the relevant control components (e.g., buttons, etc.) of the interaction module 200. The sound receiver 310 is arranged in the area corresponding to the forehead of the delivery staff in the inner cavity of the helmet shell 100, and the sound receiver 310 can realize the function of receiving sound. The sound receiver 310 is connected to the interaction module 200 via the soft wire 320, and the soft wire 320 is arranged in the inner cavity of the helmet shell 100. The cover 400 is arranged in the inner cavity of the helmet shell 100, and the cover 400 covers the soft wire 320. Among them, the side of the cover 400 facing the helmet shell 100 is fitted with the shape of part of the inner wall surface of the helmet shell 100, and at least part of the side of the cover 400 facing away from the helmet shell 100 is used to contact the forehead of the delivery staff. The soft wire 320 is at least partially located in the gap formed between the cover 400 and the inner side of the helmet shell 100. The so-called "gap" can be formed by the recess structure formed by the cover 400 itself and the inner side of the helmet shell 100 together, or it can be formed by the recess structure (such as the wire slot described below) arranged by the cover 400 and the inner side of the helmet shell 100 together, or it can be formed by the recess structure formed by the cover 400 itself and the recess structure arranged by the inner side of the helmet shell 100 together. Through the above structural design, the present disclosure can protect the soft wire 320 by using the cover 400, avoid the direct exposure of the soft wire 320 located on the inner side of the helmet shell 100 and be easily damaged by bumps, and prolong the service life of the soft wire 320. In addition, the present disclosure can use the cover 400 to separate and pad between the soft wire 320 and the head of the delivery staff, improve the comfort of the delivery staff when wearing, and improve the user experience.
[0058] As Figure 4 and Figure 5 As shown, in an embodiment of the present disclosure, the cover 400 is detachably connected to the inner side of the helmet shell 100. Through the above structural design, the present disclosure can realize the convenient disassembly of the cover 400 and the helmet shell 100, thereby facilitating the maintenance or replacement of the cover 400 or the soft wire 320.
[0059] Based on the structural design of the cover 400 being detachably connected to the helmet shell 100, in one embodiment of this disclosure, the cover 400 and the helmet shell 100 can be connected via a detachable connection structure, which can be one or a combination of Velcro, snaps, buckles, and zippers. Through the above structural design, this disclosure provides a simple detachable structure for the cover 400, which is easy to assemble and disassemble.
[0060] like Figure 2 , Figure 4 and Figure 5 As shown, in one embodiment of this disclosure, at least a portion of the microphone 310 may be covered by the cover 400. Through the above structural design, this disclosure utilizes the cover 400 to protect the microphone 310, preventing it from being directly exposed and easily damaged by impacts, thus extending the service life of the microphone 310.
[0061] Based on the structural design of the cover 400 covering the microphone 310, in one embodiment of this disclosure, the portion of the cover 400 covering the microphone 310 can adopt a structural design that facilitates sound propagation. For example, the aforementioned portion of the cover 400 can be provided with several sound-permeable holes, thereby enhancing sound propagation and reducing the impact on the microphone function when the cover 400 covers the microphone 310. Furthermore, the portion of the cover 400 covering the microphone 310 can be made of different materials than other portions, for example, see [reference needed]. Figure 6 The dotted filling and unfilled portions of the cover 400 shown represent different materials. (It should be understood that in other figures, the dotted filling of the cover 400 is only to highlight the presence of the cover 400 and does not limit its material.) Figure 6 (Whether the materials in the illustrated embodiments are the same) Specifically, the part of the cover 400 that covers the microphone 310 can be made of a hard and relatively thin material, such as metal or plastic, while other parts of the cover 400 (e.g., the part that covers the flexible cord 320) can be made of a soft and relatively thick material, such as fabric or leather (and can be further filled with soft filler, etc.). Accordingly, on the one hand, the hard and thin part can be used to cover the microphone, reducing the impact of the cover 400 on the microphone 310's reception function and improving the protection of the microphone 310. On the other hand, since these parts of the cover 400 are in direct contact with the delivery head, the above design can further improve the comfort when wearing it.
[0062] See Figure 6 , Figure 6 The diagram shows a partially enlarged schematic representation of a smart helmet worn by delivery personnel, embodying the principles of this disclosure, in another exemplary embodiment, wherein the specific enlarged area can be referred to... Figure 5 RegardingFigure 4 The magnified area, and Figure 6 The structure is shown when the cover 400 is removed from the helmet shell 100.
[0063] Taking the structural design of the cover 400 covering the microphone 310 as an example, such as Figure 6 As shown, in one embodiment of this disclosure, the microphone 310 at least partially protrudes from the inner side of the helmet shell 100. Based on this, the cover 400 may be provided with a receiving groove 410, the shape of which matches the shape of the portion of the microphone 310 protruding from the inner side of the helmet shell 100, and the receiving groove 410 is used to accommodate at least a portion of the microphone 310. Through the above structural design, this disclosure achieves a better coverage and protection effect for the microphone 310 by the cover 400.
[0064] Based on the structural design of the receiving groove 410 provided in the cover 400, in one embodiment of this disclosure, the microphone 310 is provided with a receiving element, through which sound is received into the microphone 310. Furthermore, a receiving hole can be provided in the groove wall of the receiving groove 410 corresponding to the receiving element, and the receiving element is exposed through the receiving hole. Through the above structural design, this disclosure, while utilizing the receiving groove 410 to accommodate and protect the microphone 310, can further reduce the impact of the cover 400 on the microphone 310's reception function by utilizing the receiving hole.
[0065] In one embodiment of this disclosure, at least a portion of the cover 400 may be made of fabric. Through this design, since the cover 400 comes into direct contact with the delivery person's head, this disclosure further enhances wearing comfort. Furthermore, when the cover 400 is detachably attached to the helmet shell 100, the use of fabric allows for easy cleaning of the removed cover 400. In other embodiments of this disclosure, at least a portion of the cover 400 may also be made of other materials such as leather. Additionally, at least a portion of the cover 400 (e.g., the portion in contact with the delivery person's head) may be filled with padding, such as sponge, to provide cushioning and a soft feel when worn by the delivery person, further improving safety and wearing comfort.
[0066] like Figures 2 to 5 As shown, in one embodiment of this disclosure, the helmet shell 100 may include a helmet shell 110 and an inner liner 120. The inner liner 120 is disposed inside the helmet shell 110. Furthermore, the flexible cable 320 may be partially located inside the inner liner 120, and the cover 400 may be disposed inside the inner liner 120.
[0067] Based on the structural design that the helmet shell 100 comprises the inner liner 120, in an embodiment of the present disclosure, the material of the inner liner 120 can be foamed sponge.
[0068] In an embodiment of the present disclosure which is not shown in the drawings, the inner side of the helmet shell 100 (for example, the inner liner 120) can be provided with a wire slot, the soft wire 320 is partially accommodated in the wire slot, the cover 400 covers the wire slot, and then the gap between the cover 400 and the wire slot is formed, and the soft wire 320 is partially arranged in the gap, that is, the cover 400 covers part of the soft wire 320. Through the above structural design, the present disclosure uses the wire slot to accommodate the soft wire 320, avoids directly arranging the soft wire 320 inside the helmet shell 100, and can further improve the protection of the soft wire 320 and the comfort when wearing.
[0069] Referring to Figures 7 to 9 , Figure 7 representatively shows a structural schematic diagram of the smart helmet worn by the delivery personnel in another exemplary embodiment which can embody the principles of the present disclosure; Figure 8 representatively shows Figure 7 an enlarged schematic diagram of part C in Figure 9 representatively shows Figure 7 a top view of the smart helmet worn by the delivery personnel.
[0070] As shown in Figures 7 to 9 , in an embodiment of the present disclosure, the smart helmet worn by the delivery personnel proposed by the present disclosure can comprise two interaction modules 200, and the two interaction modules 200 are respectively arranged on the left and right sides of the helmet shell 100, for example, the two interaction modules 200 can respectively correspond to the regions of the left and right ears of the delivery personnel. On this basis, the receiver 310 can be connected to the two interaction modules 200 via the two soft wires 320 respectively. The cover 400 can cover the two soft wires 320. In some other embodiments of the present disclosure, when the smart helmet worn by the delivery personnel comprises two interaction modules 200 and the receiver 310 is connected to the two interaction modules 200 via the two soft wires 320 respectively, the smart helmet worn by the delivery personnel can also comprise two covers 400, and the two covers 400 cover the two soft wires 320 respectively.
[0071] As shown in Figure 9 , based on the structural design that the smart helmet worn by the delivery personnel comprises two interaction modules 200, in an embodiment of the present disclosure, the receiver 310 can be located on a plane perpendicular to the connecting line L between the two interaction modules 200. Further, a reference plane S is defined, which is perpendicular to the connecting line L between the two interaction modules 200 and passes through the center point O of the connecting line L, and on this basis, the arrangement position of the receiver 310 can be located on the reference plane.
[0072] like Figure 3 As shown, in one embodiment of this disclosure, the smart helmet worn by delivery personnel may include a wired microphone, which includes the aforementioned microphone 310 and the aforementioned wired cable 320. One end of the wired cable 320 is connected to the microphone, and the other end is detachably connected to the interaction module 200. For example, the other end of the wired cable 320 may be provided with a connector 330, and can be detachably plugged into an interface (e.g., an exposed 3.5mm audio female connector) of the interaction module 200 via the connector 330. Through this structural design, this disclosure enables the removal and replacement of the wired microphone, avoiding the need to replace the entire interaction module 200 when components such as the microphone 310 and the wired cable 320 are damaged, further reducing maintenance costs and extending the product's lifespan.
[0073] In one embodiment of this disclosure, the smart helmet worn by delivery personnel may further include a goggle 500. The goggle 500 is rotatably connected to the outside of the helmet shell 100. The helmet shell 100 has a connection position 101 for rotatably connecting to the goggle 500, and the interaction module 200 may be located behind this connection position 101. Through this structural design, this disclosure improves the rationality of the layout of the components of the smart helmet worn by delivery personnel, and avoids interference from the interaction module 200 or the flexible cable 320 on the arrangement and rotation of the goggle 500.
[0074] See Figure 10 , Figure 10 The diagram illustrates, in another exemplary embodiment, a structural schematic of a smart helmet worn by delivery personnel that embodies the principles of this disclosure, specifically showing the structure of the smart helmet worn by delivery personnel from a rear-view perspective.
[0075] like Figure 10 As shown, in one embodiment of this disclosure, the smart helmet worn by delivery personnel is equipped with a ventilation structure. Specifically, the helmet shell 100 is provided with a plurality of ventilation openings 130, and some of the ventilation openings 130, depending on their location, specifically perform air intake (e.g., some ventilation openings 130 located at the front of the helmet) and exhaust (e.g., some ventilation openings 130 located at the rear of the helmet). Furthermore, when the helmet shell 100 includes a helmet outer shell 110 and an inner liner 120, ventilation structures can be provided at corresponding positions on both the outer shell and the inner liner 120. Through the above structural design, this disclosure can utilize the ventilation openings 130 to achieve airflow, facilitating heat dissipation and cooling of the smart helmet worn by delivery personnel in hot environments, thereby improving comfort.
[0076] See Figure 11 and Figure 12 , Figure 11The diagram shows a partially enlarged schematic of a smart helmet worn by delivery personnel, which embodies the principles of this disclosure, in another exemplary embodiment, specifically showing a partially enlarged structure of the rear of the smart helmet worn by the delivery personnel. Figure 12 The middle section represents the direction along Figure 11 The sectional view made by the straight line EE in the figure.
[0077] Taking the structural design of the helmet shell 100 with ventilation openings 130 as an example, such as Figure 11 and Figure 12 As shown, in one embodiment of this disclosure, the helmet shell 100 includes a helmet shell 110 and an inner liner 120, the inner liner 120 being disposed inside the helmet shell 110. Based on this, a first vent 111 may be provided at the rear of the helmet shell 110. The term "rear" refers to the portion facing backward when the delivery person is normally wearing the smart helmet, or, if the smart helmet is divided by a line connecting the two ears and the center of the top of the head, the portion located behind this dividing line (the side facing away from the face) can be understood as the aforementioned rear portion. A ventilation groove 121 may be provided on the outer surface of the inner liner 120 at a position corresponding to the first vent 111. A second vent 122 penetrating the inner liner 120 is provided at the bottom of the ventilation groove 121, and the second vent 122 is at least partially offset from the first vent 111, so that the airflow from the second vent 122 (the airflow direction can be referred to...) Figure 12 The airflow direction is reversed within the exhaust duct 121 (as indicated by the arrow in the image) before being discharged through the first exhaust port 111. Through this structural design, the present disclosure improves the exhaust port structure at the rear of the through-hole, reversing the flow direction of the airflow discharged through the exhaust port. This prevents the airflow from blowing directly and rapidly inside the helmet, reducing the risk of catching a cold or other discomfort during delivery and improving wearing comfort.
[0078] 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 that can employ 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.
[0079] In summary, the smart helmet for delivery personnel proposed in this disclosure includes a helmet shell 100, an interaction module 200, a microphone 310, and a cover 400. The interaction module 200 is mounted on the outside of the helmet shell 100. The microphone 310 is disposed in the inner cavity of the helmet shell 100 corresponding to the area of the delivery personnel's forehead. The microphone 310 is connected to the interaction module 200 via a flexible cable 320, which is disposed in the inner cavity of the helmet shell 100. The cover 400 is disposed on the inner side of the helmet shell 100, covering the flexible cable 320. The side of the cover 400 facing the helmet shell 100 conforms to the shape of a portion of the inner wall of the helmet shell 100, and at least a portion of the side of the cover 400 facing away from the helmet shell 100 is used to contact the forehead of the delivery personnel. Through the above structural design, this disclosure utilizes the cover 400 to protect the flexible cable 320, preventing the flexible cable 320 located inside the helmet shell 100 from being directly exposed and easily damaged by impacts, thus extending the service life of the flexible cable 320. Furthermore, this disclosure utilizes the cover 400 as a spacer between the flexible cable 320 and the delivery person's head, improving the comfort of the delivery person when wearing the helmet and enhancing the user experience.
[0080] 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.
[0081] 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, The intelligent helmet comprises: a helmet shell (100); an interaction module (200) arranged on the outside of the helmet shell (100); a receiver (310) arranged in a region corresponding to the forehead of a delivery worker in the inner cavity of the helmet shell (100), the receiver (310) being connected to the interaction module (200) via a soft wire (320), the soft wire (320) being arranged in the inner cavity of the helmet shell (100); a cover (400) arranged on the inside of the helmet shell (100) to cover the soft wire (320), at least part of the side of the cover (400) facing away from the helmet shell (100) being used to contact the forehead of a delivery worker.
2. The smart helmet of claim 1, wherein, The cover (400) is detachably connected to the inside of the helmet shell (100), and the soft wire (320) is at least partially located in the gap formed between the cover (400) and the inner side of the helmet shell (100).
3. The smart helmet of claim 2, wherein, The cover (400) and the helmet shell (100) are connected via a detachable connection structure, which is one of a Velcro, a snap, a buckle, or a combination of multiple thereof.
4. The smart helmet of claim 1, wherein, At least part of the receiver (310) is covered by the cover (400).
5. The smart helmet of claim 4, wherein, The receiver (310) at least partially protrudes from the inner side of the helmet shell (100); wherein the cover (400) is provided with a receiving groove (410) matching the shape of the part of the receiver (310) protruding from the inner side of the helmet shell (100), the receiving groove (410) being used to accommodate at least part of the receiver (310).
6. The smart helmet of claim 5, wherein, The receiver (310) is provided with a receiver element; wherein the groove wall of the receiving groove (410) is provided with a receiver hole, and the receiver element is exposed to the receiver hole.
7. The smart helmet of claim 1, wherein, The helmet shell (100) comprises a helmet shell body (110) and an inner liner (120); the inner liner (120) is arranged on the inside of the helmet shell body (110); wherein part of the soft wire (320) is located on the inside of the inner liner (120), and the cover (400) is arranged on the inside of the inner liner (120).
8. The smart helmet of claim 1, wherein, The inner side of the helmet shell (100) is provided with a wire groove, part of the soft wire (320) is accommodated in the wire groove, and the cover (400) covers the wire groove.
9. The smart helmet of claim 1, wherein, The intelligent helmet comprises two interaction modules (200), which are arranged on the left and right sides of the helmet shell (100) respectively; the receiver (310) is connected to the two interaction modules (200) via two soft wires (320) respectively; wherein the cover (400) covers the two soft wires (320).
10. The smart helmet of claim 1, wherein, The smart helmet comprises a soft-wire microphone, the soft-wire microphone comprising the receiver (310) and the soft wire (320); one end of the soft wire (320) is connected to the microphone, and the other end is detachably connected to the interaction module (200).
11. The smart helmet of claim 1, wherein, The smart helmet comprises two interaction modules (200), which are arranged on the left and right sides of the helmet shell (100) respectively; wherein the receiver (310) is located on a plane perpendicular to the connecting line (L) between the two interaction modules (200).
12. The smart helmet of claim 1, wherein, The smart helmet further comprises: Goggles (500) rotatably connected to the outside of the helmet shell (100); The interaction module (200) is located on the rear side of the connecting position (101) where the helmet shell (100) and the goggles (500) are rotatably connected.
13. The smart helmet of claim 1, wherein, The helmet shell (100) comprises a helmet shell (110) and an inner container (120); the inner container (120) is arranged on the inner side of the helmet shell (110); wherein the rear part of the helmet shell (110) is provided with a first air outlet (111); wherein the position of the outer surface of the inner container (120) corresponding to the first air outlet (111) is provided with an air exhaust groove (121), the groove bottom of the air exhaust groove (121) is provided with a second air outlet (122) penetrating through the inner container (120), and the second air outlet (122) and the first air outlet (111) are at least partially staggered.