1. Field of the Invention
The invention relates to an electronic device, and more particularly to an electronic device with an internal microphone array.
2. Description of the Related Art
A microphone array is capable of clearly receiving sound from a particular direction while avoiding surrounding noise, and is often applied in high-quality audio recorders or communications devices.
A typical microphone array includes a number of microphones disposed in tandem. Referring to
The disclosed microphones 11 and 12 are placed in an open space for achieving directivity. Most electronic devices (cellular phones, personal digital assistants, notebook computer, etc.), however, have plastic or metal housings, which are acoustic isolators. Acoustic isolators block audio signals increasing difficulty with microphone placement. Specifically, microphone array performance, acceptable in an open space, deteriorates when disposed in a housing of an electronic device, because reception of external sound is hindered by the housing. Also, sound leakage and cross talk between the microphones need to be avoided when the microphone array is disposed in the housing of an electronic device.
The invention provides an electronic device comprising an internal microphone array capable of adequate performance.
The electronic device in accordance with an exemplary embodiment of the invention includes a front cover, a circuit board, a flexible holder, and a plurality of microphones. The front cover comprises a plurality of wall portions, a plurality of storage spaces encircled by the wall portions, and a plurality of acoustic openings connecting to the storage spaces. The flexible holder comprises a plurality of hollow bodies squeezed into the storage spaces, and a base connecting the hollow bodies. The microphones are electrically connected to the circuit board and squeezed into the hollow bodies of the flexible holder.
The above-mentioned electronic device can be modified in various ways. In another exemplary embodiment of the invention, for example, the hollow bodies have top holes connected to the acoustic openings of the front cover. The diameter of the top holes exceeds that of the acoustic openings to form cavities between the front cover, the flexible holder, and the microphones.
In another exemplary embodiment of the invention, for another example, the electronic device further includes a foam disposed in the cavities.
In another exemplary embodiment of the invention, the base of the flexible holder is held between the circuit board and the wall portions of the front cover.
In another exemplary embodiment of the invention, the hollow bodies have bottom holes through which the microphones are mounted on the circuit board.
In another exemplary embodiment of the invention, the microphones are mounted on the circuit board by surface-mount technology.
In another exemplary embodiment of the invention, the electronic device includes a front cover, a circuit board, a plurality of flexible holders, and a plurality of microphones. The front cover includes a plurality of wall portions, a plurality of storage spaces encircled by the wall portions, and a plurality of acoustic openings connecting to the storage spaces. The flexible holders have hollow bodies squeezed into the storage spaces. The microphones are electrically connected to the circuit board and squeezed into the hollow bodies of the flexible holders.
In another exemplary embodiment of the invention, the hollow bodies have top holes connected to the acoustic openings.
In another exemplary embodiment of the invention, the diameter of the top holes exceeds that of the acoustic openings to form cavities between the front cover, the flexible holders, and the microphones
In another exemplary embodiment of the invention, the electronic device further includes foam disposed in the cavities.
In another exemplary embodiment of the invention, the diameter of the top holes substantially equals that of the acoustic openings.
In another exemplary embodiment of the invention, the hollow bodies have bottom holes. The microphones comprise terminal pins passing through the bottom holes and electrically connecting to the circuit board
In another exemplary embodiment of the invention, the hollow bodies have bottom holes through which the microphones are mounted on the circuit board
In another exemplary embodiment of the invention, the microphones are mounted on the circuit board by surface-mount technology
In another exemplary embodiment of the invention, the wall portions of the front cover contact the circuit board.
In another exemplary embodiment of the invention, the wall portions of the front cover are spaced apart from the circuit board.
In another exemplary embodiment of the invention, the flexible rubber is made of rubber.
In another exemplary embodiment of the invention, the microphones comprise two omni-directional microphones.
In another exemplary embodiment of the invention, the microphones constitute a microphone array.
The electronic device of the invention may be a notebook computer, a cellular phone, a personal digital assistant (PDA), a global positioning system (GPS) receiver, a liquid crystal display (LCD), a speakerphone, or others.
A detailed description is given in the following embodiments with reference to the accompanying drawings.
The invention can be more fully understood by reading the subsequent detailed description and examples with references made to the accompanying drawings, wherein:
The following description is of the best-contemplated mode of carrying out the invention. This description is made for the purpose of illustrating the general principles of the invention and should not be taken in a limiting sense. The scope of the invention is best determined by reference to the appended claims.
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As described, the diameter D2 of the top hole 263 of the flexible holder 26 exceeds the diameter d2 of the acoustic opening 211 of the front cover 21. Thus, a cavity 268 is formed between the front cover 21, the flexible holder 26, and the microphone 24. The cavity 268 is as small as possible, for reducing the size of the flexible holder 26 to a minimum, saving space in the notebook computer 2, and maintaining good performance of the microphones 24.
In the first embodiment, all of the microphones 24 are omni-directional. In operation, the omni-directional microphones 24 constitute a microphone array to receive external sound via the acoustic openings 211 of the front cover 21. The directivity of the microphone array is determined by the distance between the acoustic openings 211.
The flexible holder 26 not only protects the internal omni-directional microphones 24 from vibrations but also avoids sound leakage. The omni-directional microphones 24 are enclosed by the circuit board 23 and the flexible holder 26, both of which are acoustic isolators. Thus, the omni-directional microphones 24 in the flexible holder 26 merely receive external sound via the acoustic openings 211 of the front cover 21 of the notebook computer 2.
While a notebook computer is utilized for purposes of illustration, it is understood that the invention is equally applicable to a variety of electronic devices including cellular phones, personal digital assistants (PDAs), global positioning system (GPS) receivers, liquid crystal displays (LCDs), speakerphones, and others.
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As described, the diameter D3 of the top hole 363 of the flexible holder 36 exceeds the diameter d3 of the acoustic opening 311 of the front cover 31. Thus, a cavity 368 is formed between the front cover 31, the flexible holder 36, and the microphone 34. The cavity 368 is as small as possible, for reducing the size of the flexible holder 36 to a minimum, saving space in the electronic device 3, and maintaining good performance of the microphones 34.
In the second embodiment, all of the microphones 34 are omni-directional. In operation, the omni-directional microphones 34 constitute a microphone array to receive external sound via the acoustic openings 311 of the front cover 31. The directivity of the microphone array is determined by the distance between the acoustic openings 311.
The flexible holders 36 not only protect the internal omni-directional microphones 34 from vibrations but also avoid sound leakage. The omni-directional microphones 34 are enclosed by the flexible holders 36 which are acoustic isolators. Thus, the omni-directional microphones 34 in the flexible holders 36 merely receive external sound via the acoustic openings 311 of the front cover 31 of the electronic device 3.
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In the third embodiment, all of the microphones 44 are omni-directional. In operation, the omni-directional microphones 44 constitute a microphone array to receive external sound via the acoustic openings 411 of the front cover 41. The directivity of the microphone array is determined by the distance between the acoustic openings 411.
The flexible holders 46 not only protect the internal omni-directional microphones 44 from vibrations but also avoid sound leakage. The omni-directional microphones 44 are enclosed by the flexible holders 46 and the circuit board 43, both of which are acoustic isolators. Thus, the omni-directional microphones 44 in the flexible holders 46 merely receive external sound via the acoustic openings 411 of the front cover 41 of the electronic device 4.
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As described, the diameter D5 of the top hole 563 of the flexible holder 56 exceeds the diameter d5 of the acoustic opening 511 of the front cover 51. Thus, a cavity is formed between the front cover 51, the flexible holder 56, and the microphone 54. The cavity is as small as possible, for reducing the size of the flexible holder 56 to a minimum, saving space in the electronic device 5, and maintaining good performance of the microphones 54. A foam 57 is disposed in the cavity to avoid reception of wind sound and entry of dust.
In the fourth embodiment, all of the microphones 54 are omni-directional. In operation, the omni-directional microphones 54 constitute a microphone array to receive external sound via the acoustic openings 511 of the front cover 51. The directivity of the microphone array is determined by the distance between the acoustic openings 511.
The flexible holders 56 not only protect the internal omni-directional microphones 54 from vibrations but also avoid sound leakage. The omni-directional microphones 54 are enclosed by the flexible holders 56 and the circuit board 53, both of which are acoustic isolators. Thus, the omni-directional microphones 54 in the flexible holders 56 merely receive external sound via the acoustic openings 511 of the front cover 51 of the electronic device 5.
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As described, the diameter D6 of the top hole 663 of the flexible holder 66 exceeds the diameter d6 of the acoustic opening 611 of the front cover 61. Thus, a cavity is formed between the front cover 61, the flexible holder 66, and the microphone 64. The cavity is as small as possible, for reducing the size of the flexible holder 66 to a minimum, saving space in the electronic device 6, and maintaining good performance of the microphones 64. A foam 67 is disposed in the cavity to avoid reception of wind sound and entry of dust.
In the fifth embodiment, all of the microphones 64 are omni-directional. In operation, the omni-directional microphones 64 constitute a microphone array to receive external sound via the acoustic openings 611 of the front cover 61. The directivity of the microphone array is determined by the distance between the acoustic openings 611.
The flexible holders 66 not only protect the internal omni-directional microphones 64 from vibrations but also avoid sound leakage. The omni-directional microphones 64 are enclosed by the flexible holders 66 and the circuit board 63, both of which are acoustic isolators. Thus, the omni-directional microphones 64 in the flexible holders 66 merely receive external sound via the acoustic openings 611 of the front cover 61 of the electronic device 6.
While the invention has been described by way of example and in terms of preferred embodiment, it is to be understood that the invention is not limited thereto. To the contrary, it is intended to cover various modifications and similar arrangements (as would be apparent to those skilled in the art). Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.