CN218734840U - Wireless earphone and double-ear-real wireless earphone - Google Patents

Wireless earphone and double-ear-real wireless earphone Download PDF

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Publication number
CN218734840U
CN218734840U CN202222623358.2U CN202222623358U CN218734840U CN 218734840 U CN218734840 U CN 218734840U CN 202222623358 U CN202222623358 U CN 202222623358U CN 218734840 U CN218734840 U CN 218734840U
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China
Prior art keywords
shell
antenna
ear
wireless
wireless headset
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CN202222623358.2U
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Chinese (zh)
Inventor
张湘
付荣
李源
郭深慧
杨先歌
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Lanto Electronic Ltd
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Lanto Electronic Ltd
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Priority to CN202222623358.2U priority Critical patent/CN218734840U/en
Priority to TW111213076U priority patent/TWM640881U/en
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Publication of CN218734840U publication Critical patent/CN218734840U/en
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Abstract

The application discloses wireless earphone and wireless earphone of ears really. The wireless headset includes: the device comprises a shell, a main board, an antenna, a reflecting board and a broadcasting unit; the shell comprises an ear handle shell, a corner shell connected to the top end of the ear handle shell and an ear insertion shell matched and fixed with the corner shell; the main board is arranged in a cavity in the ear handle shell; the antenna is arranged on the clearance area of the mainboard; the reflecting plate is arranged in a cavity in the ear handle shell and positioned on one side of the ear handle shell facing into the ear shell, and reflects the radio-frequency signal emitted by the antenna; the broadcasting unit is arranged in the corner shell and connected with an antenna arranged on the mainboard, and broadcasts audio signals received by the antenna. Therefore, the directional performance of broadband high gain is realized, stable radio frequency signal output can be provided, signal interference and interruption are prevented, and meanwhile, the influence of electromagnetic radiation on the head of a user is reduced when the user wears the wireless earphone.

Description

Wireless earphone and double-ear-real wireless earphone
Technical Field
The application relates to the technical field of electronic equipment, in particular to a wireless earphone and a binaural wireless earphone.
Background
Along with the rapid development of the wireless Bluetooth technology, the wireless Bluetooth device is more convenient for the life of people. Among them, TWS + (True Wireless Stereo plus) is a latest Wireless bluetooth technology, and is an upgraded version of True Wireless Stereo (TWS) technology.
The TWS + technology adopts the Bluetooth equipment to synchronously and directly send audio signals to the left earphone and the right earphone for playing, and does not need to be connected with the right earphone in a matching way through the left earphone, so that the TWS + technology has the advantages of low delay, low power consumption and the like. Because the TWS + technology adopts double-ear simultaneous transmission, the left earphone and the right earphone do not need to be connected in a matching way, and when the left earphone and the right earphone are switched to be used, the wireless earphone adopting the TWS + technology cannot have the problem of signal disconnection.
However, because the antenna provided in the existing wireless headset radiates the radio frequency signal in the form of electromagnetic wave, there is usually no special design for the radiation pattern of the antenna, and there is a problem that the antenna exerts an electromagnetic radiation effect on the head of the user.
Therefore, how to provide a wireless headset and a binaural wireless headset to solve the above problems is an urgent need for those skilled in the art to solve the problems.
SUMMERY OF THE UTILITY MODEL
The embodiment of the application provides a wireless earphone and a binaural wireless earphone, which can effectively solve the problem that an antenna arranged in the existing wireless earphone brings electromagnetic radiation influence to the head of a user because no special radiation field type design exists.
In order to solve the technical problem, the present application is implemented as follows:
the application provides a wireless headset, it includes: the device comprises a shell, a main board, an antenna, a reflecting board and a broadcasting unit; the shell comprises an ear handle shell, a corner shell connected to the top end of the ear handle shell and an ear insertion shell matched and fixed with the corner shell; the main board is arranged in the cavity in the ear handle shell; the antenna is arranged on the clearance area of the mainboard; the reflecting plate is arranged in the cavity in the ear handle shell and positioned on one side of the ear handle shell facing the ear handle shell, and reflects the radio-frequency signal emitted by the antenna; the broadcasting unit is arranged in the corner shell and connected with the antenna arranged on the mainboard, and broadcasts the audio signal received by the antenna.
The present application further provides a binaural true wireless headset, which includes: including two wireless earphones of this application, two wireless earphones are left earphone and right earphone respectively, and wherein, left earphone and right earphone receive the audio signal who comes from electronic device respectively.
In the embodiment of the application, the high-gain directional performance is realized by the arrangement of the reflecting plate in the ear handle shell (namely, the reflecting plate is positioned on one side of the ear handle shell facing the ear inlet shell), stable radio-frequency signal output can be provided, signal interference and interruption are prevented, and meanwhile, after a user wears the wireless earphone, the electromagnetic radiation is also isolated from the head of the user, so that the influence of the electromagnetic radiation on the head of the user is reduced.
Drawings
The accompanying drawings, which are included to provide a further understanding of the application and are incorporated in and constitute a part of this application, illustrate embodiment(s) of the application and together with the description serve to explain the application and not to limit the application. In the drawings:
fig. 1 is a perspective view of a first embodiment of a wireless headset according to the present application;
FIG. 2 is an exploded view of one embodiment of the wireless headset of FIG. 1;
fig. 3 is a schematic view of the wireless headset of fig. 1;
fig. 4 is a first perspective assembly view of the wireless headset of fig. 2 without the housing;
FIG. 5 is a second perspective assembly view of the wireless headset of FIG. 2 without the housing;
fig. 6 is a combined schematic view of an embodiment of the wireless headset of fig. 2 without the corner housing and the in-ear housing;
FIG. 7 is a combined schematic view of an embodiment of a wireless headset according to the present application without a corner housing and an in-ear housing;
fig. 8 is a combined schematic view of another embodiment of a wireless headset according to the present application that does not include a corner housing and an in-ear housing;
FIG. 9 is an enlarged view of area A of FIG. 6; and
fig. 10 is a radiation pattern of the plane of Theta =90 ° for the antenna of the wireless headset of fig. 2 operating at a frequency of 2.43 GHz.
Detailed Description
The embodiments of the present invention will be described below with reference to the accompanying drawings. In the drawings, the same reference numerals denote the same or similar components or method flows.
It will be understood that the terms "comprises" and/or "comprising," when used in this specification, specify the presence of stated features, integers, method steps, operations, and/or components, but do not preclude the presence or addition of further features, integers, method steps, operations, components, and/or groups thereof.
It will be understood that when an element is referred to as being "connected" or "coupled" to another element, it can be directly connected or coupled to the other element or intervening elements may be present. In contrast, when an element is described as being "directly connected" or "directly coupled" to another element, there are no intervening elements present.
Referring to fig. 1 to 5, fig. 1 is a perspective view of a wireless headset according to a first embodiment of the present disclosure, fig. 2 is an exploded view of the wireless headset of fig. 1, fig. 3 is a perspective view of the wireless headset of fig. 1, fig. 4 is a first perspective combination view of the wireless headset of fig. 2 without a housing, and fig. 5 is a second perspective combination view of the wireless headset of fig. 2 without a housing. As shown in fig. 1 to 5, in the present embodiment, the wireless headset 1 includes: the device comprises a shell 11, a main board 12, an antenna 13, a reflecting board 14 and a broadcasting unit 17; the shell 11 comprises an ear handle shell 111, a corner shell 112 connected to the top end of the ear handle shell 111, and an ear insertion shell 113 fixed with the corner shell 112 in a matching manner; the main board 12 is disposed in the cavity 1111 inside the ear stem housing 111; the antenna 13 is arranged on the clearance area 121 of the mainboard 12; the reflecting plate 14 is disposed in the cavity 1111 in the ear stem housing 111, and is located on a side of the ear stem housing 111 facing the ear housing 113, and reflects the radio frequency signal emitted by the antenna 13; the broadcasting unit 17 is disposed in the corner housing 112 and connected to the antenna 13 disposed on the main board 12, and broadcasts the audio signal received by the antenna 13. Wherein, the antenna 13 radiates the radio frequency signal in the form of electromagnetic wave; the material of the housing 11 may be, but is not limited to, plastic; the motherboard 12 may be, but is not limited to, a Printed Circuit Board (PCB); the antenna 13 may be, but is not limited to, a ceramic antenna; the reflective plate 14 may be made of, but not limited to, a conductive metal material, or the reflective plate 14 may be a Laser-Direct-structuring (LDS) antenna or a Flexible Printed Circuit (FPC) antenna (i.e., the reflective plate 14 reflects electromagnetic waves radiated from the antenna 13 toward the ear housing 113 by the antenna 13 through a metal radiator on the LDS antenna or the FPC antenna); the public address unit 17 may include, but is not limited to, a speaker.
By the arrangement of the reflection plate 14 in the ear handle shell 111, even if the antenna 13 has no special radiation pattern design, the reflection plate 14 can reflect the electromagnetic wave radiated by the antenna 13 towards the ear-entering shell 113, so that after the wireless earphone 1 is worn by a user, the reflection plate 14 isolates the electromagnetic radiation from the head of the user, and the influence of the electromagnetic radiation on the head of the user is reduced. In addition, the reflector 14 can reflect the electromagnetic wave radiated by the antenna 13 in a direction away from the ear housing 113, thereby achieving high-gain directional performance, providing stable rf signal output, and preventing signal interference and interruption.
In an embodiment, a length L2 of the reflective plate 14 parallel to the extending direction D2 of the ear handle housing 111 is greater than a length L3 of the clearance area 121 parallel to the extending direction D2 of the ear handle housing 111, and the reflective plate 14 corresponds to the position where the antenna 13 is disposed. In an example, the length L2 of the reflection plate 14 is greater than the length L1 of the main plate 12 parallel to the extending direction D2 of the ear-stem housing 111, so as to effectively isolate the electromagnetic radiation from the head of the user and reduce the influence of the electromagnetic radiation on the head of the user after the wireless headset 1 is worn by the user (as shown in fig. 6, fig. 6 is a combined schematic view of an embodiment in which the wireless headset of fig. 2 does not include a corner housing and an ear-in housing). In another example, the length L2 of the reflective plate 14 is greater than the length L3 of the clearance area 121, so as to isolate most of the electromagnetic radiation from the head of the user after the user wears the wireless headset 1, thereby reducing the influence of the electromagnetic radiation on the head of the user (as shown in fig. 7 and 8, fig. 7 is a combined schematic view of an embodiment in which the wireless headset according to the present application does not include a corner housing and an ear housing, and fig. 8 is a combined schematic view of another embodiment in which the wireless headset according to the present application does not include a corner housing and an ear housing).
In an embodiment, the reflection plate 14 may be a U-shaped reflection plate, and the concave surface 141 of the U-shaped reflection plate faces the main board 12 (as shown in fig. 4 and 5) to reflect the electromagnetic waves radiated by the antenna 13 in a direction away from the ear housing 113, thereby achieving high-gain directional performance. The concave surface 141 of the U-shaped reflection plate has a curvature radius, and the sizes of different curvature radii correspond to different radiation field types of the wireless headset 1; that is, the radiation pattern of the wireless headset 1 (i.e., the reflection direction of the electromagnetic wave is controlled by the different curvature radii) can be adjusted by designing the concave surface 141 with different curvature radii.
In one embodiment, referring to fig. 3, the contour of the reflection plate 14 can match the inner contour of the ear-stem housing 111 (i.e. the ear-stem housing 111 is a round rod-shaped hollow housing, and the radius of curvature of the concave surface 141 of the reflection plate 14 is the same as the radius of the ear-stem housing 111), so as to facilitate the assembly of the wireless headset 1.
In one embodiment, the reflector 14 is spaced apart from the main plate 12 by a gap; specifically, referring to fig. 7, the reflection plate 14 of fig. 7 is not connected to the main board 12 and is not commonly grounded. In another embodiment, the reflector 14 is connected to the main board 12 and is common ground; specifically, referring to fig. 4, 6 and 8, the reflection plate 14 of fig. 4, 6 and 8 is connected to the main plate 12 and is grounded, so that the reflection effect can be greatly increased.
In an embodiment, the antenna 13 may be a ceramic antenna, enabling the wireless headset 1 to conform to a miniaturized design. The ceramic antenna may adopt an Inverted F Antenna (IFA) structure and be coupled to the ground pin to generate a 2.4 gigahertz (GHz) to 2.5GHz (i.e., 2.4GHz band) resonance.
Referring to fig. 6 and 9, fig. 9 is an enlarged view of a region a of fig. 6, where the antenna 13 may include a feed point 131, a feed layer 132, a ceramic substrate 133, a ground layer 134, a ground layer 135, a bonding pad 136, a bonding pad 137, a parasitic radiator 138, and a main radiator 139; the solder pad 136, the solder pad 137, the parasitic radiator 138 and the main radiator 139 are disposed on the ceramic substrate 133, and the solder pad 136 and the solder pad 137 are soldered on the clearance area 121; the feeding point 131 is connected to the main board 12 and configured to receive a feeding signal; the feed layer 132 is disposed on the clearance area 121, and one end of the feed layer is connected to the feed point 131; the main radiator 139 is connected to the other end of the feed layer 132 to generate resonance based on a feed signal from the feed point 131, and is connected to the ground layer 134 disposed on the clearance area 121; the parasitic radiator 138 is connected to the ground layer 135 disposed on the clearance area 121, and coupled to the main radiator 139 to generate resonance; the ground layer 134 and the ground layer 135 are respectively common to the main board 12. Therefore, the antenna 13 can generate resonance in the 2.4GHz band through the parasitic radiator 138 and the main radiator 139.
Referring to fig. 2, the width W of the main plate 12 may extend along a first direction D1, and the length L1 of the main plate 12 may be parallel to an extending direction D2 of the ear housing 111, wherein the first direction D1 is a direction toward the ear housing 113 of the ear housing 111. The width W of the main board 12 extends along the first direction D1 (i.e., the first surface 122 of the main board 12 on which the antenna 13 is disposed does not face the first direction D1), so as to avoid poor signal reception when the antenna 13 is disposed in the clearance area 121 on the first surface 122, or power loss caused by most of the radiation reflected by the reflector 14. In addition, the first surface 122 provided with the antenna 13 does not face the opposite direction of the first direction D1, so as to avoid the situation that the receiving and transmitting of the antenna 13 are unstable or interrupted when the user touches or manipulates the wireless headset 1. Further, the wireless headset 1 may further include: the battery unit 15, the touch unit 16, the charging pin 18 connected with the main board 12, the FPC board 19 and the small board 20, and the ear-entering shell 113 may be provided with a sound cavity outlet 1131; the battery unit 15 is connected with the main board 12, the touch unit 16, the broadcasting unit 17, the FPC board 19 and the small board 20 to supply power, and connected with the charging pin 18 to obtain power; the touch control unit 16 is used for providing the user to operate and control the wireless headset 1; the broadcasting unit 17 corresponds to the sound cavity outlet 1131 and is used for broadcasting the audio signal received by the antenna 13. The FPC board 19 and the small board 20 are used as carriers for transmitting and connecting signals in the wireless earphone 1; the battery unit 15, the touch unit 16, the FPC board 19 and the small board 20 are disposed in the corner housing 112; the charging pin 18 is disposed in the ear-stem housing 111 and connected to an end of the main board 12 away from the corner housing 112. It should be noted that, in order to avoid the drawing of fig. 2 being too complicated, the drawing of the connecting lines between the components in the wireless headset 1 is omitted.
In one embodiment, since the touch unit 16 for the user to control is disposed in the corner housing 112, in order to avoid unstable or interrupted signal transmission and reception of the antenna 13 when the user touches or controls the wireless headset 1, the clearance 121 is located at an end of the main board 12 away from the corner housing 112.
Please refer to fig. 10, which is a radiation pattern of the plane with Theta =90 ° of the antenna of the wireless headset of fig. 2 operating at a frequency of 2.43 GHz. Fig. 10 is a polar view in which different positions in the circumferential direction represent different vertical (Phi) angles in degrees (deg.) and the distance of the different positions from the coordinate center represents the radiation intensity in decibels (dBi). As shown in fig. 10, in the plane Theta =90 °, the main lobe amplitude maximum is 3.3dBi, the main lobe maximum radiation direction is 170 °, the angular width of the main lobe is 92.3 °, and the side lobe level is-3.0 dBi. Therefore, the antenna 13 of the wireless headset 1 can realize directional design, and because the maximum value of the main lobe amplitude is 3.3dBi, stable signal output can be provided, signal interference and interruption are prevented, and meanwhile, after the user wears the wireless headset 1, electromagnetic radiation is isolated from the head of the user, and the influence of the electromagnetic radiation on the head of the user is reduced.
In addition, the present application also provides a binaural wireless headset, including: the two wireless earphones 1 are respectively a left earphone and a right earphone, and the left earphone and the right earphone respectively receive audio signals from the electronic device, so that a binaural synchronous transmission technology (namely, a TWS + technology) is realized. Wherein the difference between the left earphone and the right earphone is only in the appearance design of the corner housing 112 and the ear-entering housing 113.
To sum up, in this application embodiment, through the setting of the reflecting plate in the ear handle casing (namely the reflecting plate is located ear handle casing towards the one side of going into the ear casing), realize high-gain directional performance, can provide stable radio frequency signal output, prevent signal interference and interrupt, wear wireless earphone at the user simultaneously after, also can keep apart electromagnetic radiation and user's head, reduce the influence of electromagnetic radiation to user's head.
Although the present invention has been described using the above embodiments, it should be noted that these descriptions are not intended to limit the present invention. Rather, this utility model encompasses modifications and similar arrangements that would be apparent to those skilled in the art. The scope of the claims is, therefore, to be construed in the broadest manner to include all such obvious modifications and similar arrangements.

Claims (12)

1. A wireless headset, comprising:
the shell comprises an ear handle shell, a corner shell connected to the top end of the ear handle shell and an ear insertion shell matched and fixed with the corner shell;
the main board is arranged in a cavity in the ear handle shell;
the antenna is arranged on the clearance area of the mainboard;
the reflecting plate is arranged in the cavity in the ear handle shell, is positioned on one side of the ear handle shell facing the ear inlet shell, and reflects the radio-frequency signal transmitted by the antenna; and
and the broadcasting unit is arranged in the corner shell and is connected and configured on the mainboard, and the antenna is used for broadcasting the audio signal received by the antenna.
2. The wireless headset of claim 1, wherein the reflector plate is spaced apart from the main plate by a gap.
3. The wireless headset of claim 1, wherein the reflective plate is connected to the main board and is common ground.
4. The wireless earphone according to claim 1, wherein a length of the reflection plate parallel to an extending direction of the ear stem housing is larger than a length of the clearance area parallel to the extending direction of the ear stem housing, and the reflection plate corresponds to a disposition position of the antenna.
5. The wireless headset of claim 1, wherein the antenna is a ceramic antenna.
6. The wireless headset of claim 5, wherein the ceramic antenna is in an inverted-F antenna configuration and is coupled to a ground pin.
7. The wireless earphone according to claim 1, wherein the reflection plate is a U-shaped reflection plate, and a concave surface of the U-shaped reflection plate faces the main board.
8. The wireless earphone according to claim 7, wherein the concave surface of the U-shaped reflection plate has a radius of curvature, and different sizes of the radius of curvature correspond to different radiation patterns of the wireless earphone.
9. The wireless headset of claim 7, wherein the ear shell is a circular rod-shaped hollow shell, the concave surface of the U-shaped reflective plate has a radius of curvature, and the radius of curvature of the concave surface of the U-shaped reflective plate is the same as the radius of the ear shell.
10. The wireless headset of claim 1, wherein the clearance zone is located at an end of the main board away from the corner housing.
11. The wireless headset of claim 1, wherein the public address unit comprises a speaker.
12. A binaural wireless headset comprising two wireless headsets as claimed in any of claims 1 to 11, the two wireless headsets being a left headset and a right headset, respectively, wherein the left headset and the right headset receive the audio signal from an electronic device, respectively.
CN202222623358.2U 2022-09-30 2022-09-30 Wireless earphone and double-ear-real wireless earphone Active CN218734840U (en)

Priority Applications (2)

Application Number Priority Date Filing Date Title
CN202222623358.2U CN218734840U (en) 2022-09-30 2022-09-30 Wireless earphone and double-ear-real wireless earphone
TW111213076U TWM640881U (en) 2022-09-30 2022-11-25 Wireless headset and binaural true wireless headset

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202222623358.2U CN218734840U (en) 2022-09-30 2022-09-30 Wireless earphone and double-ear-real wireless earphone

Publications (1)

Publication Number Publication Date
CN218734840U true CN218734840U (en) 2023-03-24

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Family Applications (1)

Application Number Title Priority Date Filing Date
CN202222623358.2U Active CN218734840U (en) 2022-09-30 2022-09-30 Wireless earphone and double-ear-real wireless earphone

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CN (1) CN218734840U (en)
TW (1) TWM640881U (en)

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Publication number Publication date
TWM640881U (en) 2023-05-11

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