MOBILE CALL DEVICE AND DUAL FREQUENCY RECEIVER USED THEREBY
20180109870 ยท 2018-04-19
Inventors
Cpc classification
H04R23/02
ELECTRICITY
H04R2499/11
ELECTRICITY
H04R17/00
ELECTRICITY
International classification
H04R1/24
ELECTRICITY
Abstract
A mobile call device includes a housing having a received-sound outputting opening, a sound device for outputting a sound signal, a frequency-dividing circuit electrically connected to the sound device to receive the sound signal and dividing the sound signal into a low-frequency signal and a high frequency signal, and a dual frequency receiver assembled in the housing and corresponding to the received-sound outputting opening. The dual frequency receiver includes a mount including a first fixing member and a second fixing member, a ceramic vibration member fixedly assembled to the second fixing member and electrically connected to the frequency-dividing circuit to receive the high-frequency signal, and a receiver component fixedly assembled to the first fixing member and including a sound-outputting portion corresponding to and facing the ceramic vibration member. The receiver component is electrically connected to the frequency-dividing circuit to receive the low-frequency signal.
Claims
1. A mobile call device, comprising: a housing having a received-sound outputting opening; a sound device for outputting a sound signal; a frequency-dividing circuit electrically connected to the sound device and adapted to receive the sound signal, wherein the frequency-dividing circuit further divides the sound signal into a low-frequency signal and a high-frequency signal; and a dual frequency receiver assembled in the housing and corresponding to the received-sound outputting opening, wherein the dual frequency receiver comprises a mount, a ceramic vibration member, and a receiver component, wherein: the mount comprises a first fixing member and a second fixing member; the ceramic vibration member is fixedly assembled to the second fixing member and electrically connected to the frequency-dividing circuit to receive the high-frequency signal; and the receiver component is fixedly assembled to the first fixing member, the receiver component comprises a sound-outputting portion corresponding to and facing the ceramic vibration member, the receiver component is electrically connected to the frequency-dividing circuit to receive the low-frequency signal.
2. The mobile call device according to claim 1, wherein the frequency-dividing circuit is assembled on the mount.
3. The mobile call device according to claim 1, further comprising a sound buffering member located on a surface of the ceramic vibration member.
4. A dual frequency receiver, comprising: a mount comprising a first fixing member and a second fixing member; a ceramic vibration member fixedly assembled to the second fixing member; and a receiver component fixedly assembled to the first fixing member, wherein the receiver component comprises a sound-outputting portion corresponding to and facing the ceramic vibration member.
5. The dual frequency receiver according to claim 4, further comprising a frequency-dividing circuit electrically connected to the receiver component and the ceramic vibration member, respectively, wherein the frequency-dividing circuit divides a sound signal into a low-frequency signal and a high-frequency signal, transmits the high-frequency signal to the ceramic vibration member, and transmits the low-frequency signal to the receiver component.
6. The dual frequency receiver according to claim 5, wherein the frequency-dividing circuit is assembled on the mount.
7. The dual frequency receiver according to claim 4, wherein the mount comprises a first surface and a second surface at opposite sides thereof, the mount comprises a through hole for communicating between the first surface and the second surface, the through hole corresponds to the sound-outputting portion and the ceramic vibration member.
8. The dual frequency receiver according to claim 7, wherein the first fixing member comprises at least two protruding blocks protruding from the first surface of the mount, and the receiver component is engaged between the protruding blocks.
9. The dual frequency receiver according to claim 7, wherein the second fixing member comprises a receiving cavity recessed from the second surface of the mount, and the ceramic vibration member is received in the receiving cavity.
10. The dual frequency receiver according to claim 9, wherein an upper surface of the ceramic vibration member is flush with the second surface.
11. The dual frequency receiver according to claim 9, wherein the second fixing member further comprises at least one recess recessed toward the first surface from a portion of the second surface and communicating with the through hole.
12. The dual frequency receiver according to claim 4, further comprising a sound buffering member on a surface of the ceramic vibration member.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] The disclosure will become more fully understood from the detailed description given herein below for illustration only, and thus not limitative of the disclosure, wherein:
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION
[0025] Please refer to
[0026] The frequency-dividing circuit 105 is electrically connected to the sound device 103 and the dual frequency receiver 100. The frequency-dividing circuit 105 may be implemented by a printed circuit board or a flexible printed circuit board, or may be a partial circuit of the motherboard of the mobile call device 1. Therefore, the frequency-dividing circuit 105 may be assembled to the body 102 or may be assembled on the dual frequency receiver 100. The frequency-dividing circuit 105 is for dividing the sound signal into a high-frequency signal and a low-frequency signal. For example, the frequency-dividing circuit 105 divides the sound signal into high-frequency signals with a range in 2 KHz to 40 KHz and low-frequency signals with a range in 1 Hz to 2 KHz. Alternatively, the frequency-dividing circuit 105 divides the sound signal into high-frequency signals with a range in 10 KHz to 40 KHz and low-frequency signals with a range in 1 Hz to 10 KHz. The foregoing examples are for illustration, embodiments of the frequency-dividing circuit 105 are not limited thereto. It is understood that the frequency-dividing circuit 105 can perform any frequency dividing method capable of dividing a sound signal into a high-frequency signal and a low-frequency signal. Moreover, the range of the high-frequency signal and the range of the low-frequency signal may be partially overlapped or not overlapped.
[0027] Please refer to
[0028] In detail, as shown in
[0029] In this embodiment, the first surface 111 and the second surface 131 are opposite surfaces of the mount 10, and the protruding blocks 113 are protruding away from the second surface 113. The mount 10 further comprises a through hole 15 communicating between the first surface 111 and the second surface 131. The through hole 15 may be on a center portion of the mount 10, and the through hole 15 corresponds to the sound-outputting portion 21 of the receiver component 20 and the ceramic vibration member 30. In other words, the low-frequency sound generated by the receiver component 20 will be transmitted to the through hole 15 and combined with the high-frequency sound generated by the ceramic vibration member 30 for outputting.
[0030] Furthermore, as shown in
[0031] Please refer to
[0032] Moreover, the ceramic vibration member 30 may be made of composite materials. In general, the ceramic vibration member 30 has a thicker flexible layer coated with ceramic materials for outputting high-frequency sounds to perform a better resonance effect. For instance, the ceramic vibration member 30 may be a three-layered structure in which the middle layer is a metal plate 35 and the metal plate 35 is coated by ceramic films 33. Hence, the ceramic vibration member 30 may achieve greater amplitude by the metal plate 35. It is understood that, the foregoing description about the structure of the ceramic vibration member 30 is for illustrative purpose, embodiments of the ceramic vibration member 30 are not limited thereto.
[0033] Please refer to
[0034] In addition, the operation modes of the mobile call device can be switched by a sensor, e.g., the sensor can control the volume of the sound outputted by the dual frequency receiver. When the mobile call device is near the user, the amplitude of the sound is limited, and the dual frequency receiver is switched to a receiver mode for outputting sounds with low volumes. Conversely, when the mobile call device is away from the user, the volume of the sound outputted by the mobile call device can be loudened, and the dual frequency receiver is served as a speaker and switched to an amplified mode. The dual frequency receiver in the amplified mode may further be accomplished by a preset speaker to generate multichannel sounds in a theater mode. It is understood that, the abovementioned operation modes are provided for illustrative purposes, but not a limitation to the mobile call device of the instant disclosure.
[0035] Based on the above, the mobile call device and the dual frequency receiver used by the mobile call device comprise the ceramic vibration member and the receiver component to form the dual frequency receiver. The ceramic vibration member and the receiver component can output sounds with different frequencies by frequency dividing, thereby improving the sound resolution outputted by the mobile call device.
[0036] While the instant disclosure has been described by the way of example and in terms of the preferred embodiments, it is to be understood that the invention need not be limited to the disclosed embodiments. On the contrary, it is intended to cover various modifications and similar arrangements included within the spirit and scope of the appended claims, the scope of which should be accorded the broadest interpretation so as to encompass all such modifications and similar structures.