This application claims the priority benefit of Taiwan Patent Application Serial Number 097141921 filed Oct. 31, 2008, the full disclosure of which is incorporated herein by reference.
1. Field of the Invention
The invention relates to an electronic device with an electro-acoustic transducer, and more particularly, to an electronic device with an electret electro-acoustic transducer
2. Description of the Related Art
Loudspeakers are a kind of device to make sound. The principle of making sound for the loudspeakers is to move the diaphragms thereof by electrical signals to push the air. Nowadays, the loudspeakers have been broadly used in electronic devices with the function of making sound, such as mobile phones, personal digital assistants (PDAs) and laptop computers.
One of the common loudspeakers is so-called dynamic loudspeaker. The principle of making sound for the dynamic loudspeaker is to drive a current through the voice coil to produce a magnet field. This magnetic field causes the voice coil to react to the magnetic field from a permanent magnet fixed to the frame of the loudspeaker thereby moving the diaphragm attached with the voice coil. Although such dynamic loudspeaker can provide very good quality of sound, the loudspeaker has a considerable thickness because its sound chamber is large. When such dynamic loudspeakers are used in the above-mentioned portable electronic devices, the thickness of these electronic devices cannot be reduced.
An electronic device with an electret electro-acoustic transducer according to the present invention is provided. The electret electro-acoustic transducers of the electronic devices have a greatly smaller thickness than the traditional dynamic loudspeakers. Therefore, the available space inside the electronic device can be increased.
In the first embodiment, the electronic device with an electro-acoustic transducer of the present invention includes a housing having a plurality of openings penetrating between the inner surface and the outer surface thereof. An electro-acoustic transducer is disposed on the inner surface of the housing. The electro-acoustic transducer includes a first electret diaphragm positioned on the inner surface of the housing. The first electret diaphragm includes a first film body and a first electrode layer formed on the lower surface of the first film body. The first film body is made of dielectric material and has static charges. A first conductive plate as an electrode is stacked on the upper surface of the first film body and has a plurality of openings. In addition, at least one first spacer is disposed between the first electret diaphragm and the first conductive plate to keep a predetermined distance therebetween.
In the second embodiment, the electronic device with an electro-acoustic transducer further includes a second conductive plate functioning as an electrode as compared with the electronic device of the first embodiment. The second conductive plate is stacked on the first conductive plate and has a plurality of openings. An isolation layer made of porous air-permeable membrane is disposed between first and second conductive plates. In addition, a second electret diaphragm is positioned on the second conductive plate and includes a second film body and a second electrode layer formed on the upper surface of the second film body. The second film body is made of dielectric material and has static charges. A sound absorbing layer is attached to the second electrode layer. Furthermore, at least one second spacer is disposed between the second electret diaphragm and second conductive plate to keep a predetermined distance therebetween.
In the third embodiment, the electronic device with an electro-acoustic transducer of the present invention includes a housing having a plurality of openings penetrating between the inner surface and the outer surface thereof. An electro-acoustic transducer is disposed on the inner surface of the housing. The electro-acoustic transducer includes a conductive plate as an electrode that is disposed on the inner surface of the housing and has a plurality of openings. An electret diaphragm is stacked on the conductive plate and includes a film body and an electrode layer formed on the upper surface of the film body. The film body is made of dielectric material and has static charges. In addition, at least one spacer is disposed between the electret diaphragm and conductive plate to keep a predetermined distance therebetween. A sound absorbing layer is attached to the electrode layer.
In the fourth embodiment, the electronic device with an electro-acoustic transducer is substantially the same as the electronic device of the third embodiment. The difference between them is in that the electro-acoustic transducer of the electronic device in this embodiment includes a conductive layer coated on the inner surface of the housing to replace the conductive plate of the third embodiment.
The foregoing, as well as additional objects, features and advantages of the invention will be more readily apparent from the following detailed description, which proceeds with reference to the accompanying drawings.
a is a cross-sectional view of the electronic device with an electro-acoustic transducer according to the first embodiment of the present invention, wherein the back cover is separated from the body of the electronic device.
b is a cross-sectional view of the electronic device with an electro-acoustic transducer according to the first embodiment of the present invention, wherein the back cover is attached to the body of the electronic device.
a is a cross-sectional view of the electronic device with an electro-acoustic transducer according to the second embodiment of the present invention, wherein the back cover is separated from the body of the electronic device.
b is a cross-sectional view of the electronic device with an electro-acoustic transducer according to the second embodiment of the present invention, wherein the back cover is attached to the body of the electronic device.
a is a cross-sectional view of the electronic device with an electro-acoustic transducer according to the third embodiment of the present invention, wherein the back cover is separated from the body of the electronic device.
b is a cross-sectional view of the electronic device with an electro-acoustic transducer according to the third embodiment of the present invention, wherein the back cover is attached to the body of the electronic device.
a is a cross-sectional view of the electronic device with an electro-acoustic transducer according to the fourth embodiment of the present invention, wherein the back cover is separated from the body of the electronic device.
b is a cross-sectional view of the electronic device with an electro-acoustic transducer according to the fourth embodiment of the present invention, wherein the back cover is attached to the body of the electronic device.
Referring to
In order to make the film body 122 carry static charges, the film body 122 originally without static charges carried thereon is required to be subjected to a polarizing process. For example, a corona charging process can be used to polarize the film body 122 to generate static charges therein and thereon after the electrode layer 124 is formed on the film body 122. The material suitable for the film body 122 can be fluorinated ethylene propylene (FEP), Polytetrafluoroethene (PTFE), Polyvinylidene Fluoride (PVDF), silicon dioxide (SiO2) or other fluoride polymers. Furthermore, the edge of the electret diaphragm 120 is required to be fixed to prevent the electret diaphragm 120 from movement. To have the electro-acoustic transducer 180 of the present embodiment work, electrical signals having the same phase and opposite phase with the original sound signal, i.e. differential signals have to be applied to the conductive plate 140 and electrode layer 124, respectively so that the electret diaphragm 120 is subject to the Coulomb forces from the conductive plate 140 and electrode layer 124 to bring about a push-pull effect. The push-pull effect will cause the electret diaphragm 120 to vibrate in accordance with the electrical signals. The vibration of the electret diaphragm 120 pushes the air to make sounds. The sounds can travel through the openings 114 to the outside of the housing 110 thereby a user can hear the sounds.
In addition, since the sounds made by the electret diaphragm 120 can also travel through the openings 142 of the conductive plate 140 and be bounced back by the elements above the conductive plate 140, the upper surface of the conductive plate 140 is spaced a predetermined distance, said more that 1 mm apart from the elements above the conductive plate 140 to prevent the echo from degrading the performance of the electro-acoustic transducer 180. Alternatively, a sound absorbing layer 160 made of, such as glass fiber, sponge or nonwoven can be attached to the upper surface of the conductive plate 140 to absorb the sounds traveling through the openings 142. The sound absorbing layer 160 has a thickness of 1 to 5 mm. Moreover, at least one spacer 170 with a thickness of 30 to 50 μm and corresponding to the spacer 150 is positioned between the electrode layer 124 and the inner surface 112 of the housing 110 to keep the electrode layer 124 from contact with the housing 110. Furthermore, the spacer 150 can be made of adhesive material, such as double-sided tape to attach the conductive plate 140 and film body 122 together.
Referring to
Similarly, the film body 222 originally without static charges carried thereon is also required to be polarized in order to generate static charges therein and thereon. The material suitable for the film body 222 can be FEP, PTFE, PVDF, silicon dioxide or other fluoride polymers. Furthermore, the edge of the electret diaphragm 220 is also required to be fixed to prevent the electret diaphragm 220 from movement. To have the electro-acoustic transducer 280 of the present embodiment work, a first electrical signal having the same phase with the original sound signal have to be applied to the conductive plate 140 and the electrode layer 224 and a second electrical signal having opposite phase with the original sound signal is applied to the electrode layer 124 and the conductive plate 240. In this manner, the electret diaphragms 120 and 220 will be subject to the Coulomb forces from the conductive plates 140, 240 and electrode layers 124, 224 to vibrate and make sounds in accordance with the first and second electrical signals. The sounds made by the electret diaphragm 220 can travel through the isolation layer 290 and openings 114 to the outside of the housing 110. The electro-acoustic transducer 280 with double electret diaphragms can make double (3 dB) sounds than the electro-acoustic transducer 180 with only a single electret diaphragm.
Referring to
Similarly, the film body 322 originally without static charges carried thereon is also required to be polarized in order to generate static charges therein and thereon. The material suitable for the film body 322 can be FEP, PTFE, PVDF, silicon dioxide or other fluoride polymers. Furthermore, the edge of the electret diaphragm 320 is also required to be fixed to prevent the electret diaphragm 320 from movement. To have the electro-acoustic transducer 380 of the present embodiment work, an electrical signal has to be applied to the conductive plate 340 and electrode layer 324 thereby the electret diaphragm 320 can vibrate to make sounds in accordance with the electrical signal.
Referring to
The electro-acoustic transducers 180, 280, 380 and 480 of the electronic devices 100, 200, 300 and 400 are disposed on the housing 110 and the housing 110 can be a front cover, side cover or back cover of the electronic devices 100, 200, 300 and 400. It will be appreciated that the electro-acoustic transducers 180, 280, 380 and 480 have to be electrically connected to other elements, such as circuit boards in the electronic devices 100, 200, 300 and 400 in order to work. Referring back to
According to the present invention, the spacers of the electro-acoustic transducers can be discrete spacers. However, it should be understood that the above discrete spacers can be replaced with the sheets formed with a plurality of openings thereon.
The electronic devices of the present invention can be portable electronic devices, such as mobile phones, personal digital assistants (PDAs) or laptop computers. Since the electro-acoustic transducers of the electronic devices according to the present invention have a greatly smaller thickness than the traditional dynamic loudspeakers, the available space inside the electronic device can be increased. In addition, the electro-acoustic transducers of the electronic devices according to the present invention can be mounted on the back covers. Therefore, the thickness of the electronic devices can be further reduced and the available space inside the electronic device can also be further increased. Moreover, since the electret surfaces of the electret diaphragms of the electro-acoustic transducers according to the first and second embodiments of the present invention face the insides of the electronic devices, the electret surfaces therefore get rid of the contamination of the dust and moisture to avoid the malfunction of the electret diaphragms.
Although the preferred embodiments of the invention have been disclosed for illustrative purposes, those skilled in the art will appreciate that various modifications, additions and substitutions are possible, without departing from the scope and spirit of the invention as disclosed in the accompanying claims.
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