This application claims the priority of Taiwan Patent Application No. 111119397, filed on May 25, 2022, entitled “THIN SPEAKER,” and the disclosure of which is incorporated herein by reference.
The present invention relates to a loudspeaker, and more particularly, to a thin loudspeaker.
Nowadays, loudspeakers (speakers) can be mainly categorized into piezoelectric type, electrostatic type and dynamic type by the operation principle.
The reasons that piezoelectric loudspeakers could produce sound are piezoelectric material can be deformed to push vibration diaphragms. The piezoelectric loudspeakers have a simple structure and do not require an external sound box. The disadvantage of the piezoelectric loudspeakers is large distortion and unstable operation. In addition, since the area of a piezoelectric element when compared with the area of a diaphragm is relatively small, the piezoelectric loudspeakers are unable to produce large amplitude, resulting in poor efficiency of sound production. Furthermore, the piezoelectric loudspeakers can only achieve superior performance in a high-frequency range, and exhibit poor performance and high distortion in a low-frequency range. Although the piezoelectric loudspeakers use a thin diaphragm as a sound-producing element, it requires additional configuration for connecting a driving circuit, a conductive structure of the piezoelectric element, and a fixed frame supporting the vibration diaphragm. Therefore, the structures of the piezoelectric loudspeakers are still quite complicated, resulting in increased manufacturing costs.
Electrostatic loudspeakers produce sound based on the principle that unlike charges attract each other and like charges repel each other: a very light vibration diaphragm is covered with one type of charges, and one large parallel stator is provided to each of both sides of the electrostatic diaphragm; the two parallel stators generate a uniform magnetic field, which drives the diaphragm to vibrate. The related invention patent is Taiwan laid-open No. TW 201204062A, entitled “Electrostatic speaker and manufacturing method thereof and conducting plate of the speaker.” The disadvantages of the electrostatic speakers are that they are inefficient, easy to absorb dust (because its area is lager), and the bigger the diaphragm, the higher the distortion. Besides, the electrostatic speakers are driven by a high DC power supply, and thus an external bulky and expensive amplifier is required.
Dynamic loudspeakers produce diaphragm vibration by making an energized conducting wire move in a magnetic field to lead the conducting wire to vibrate a diaphragm. The related invention patent is US laid-open No. US 20210168480A1, entitled “Speaker Device.” The dynamic loudspeakers include permanent magnets, coils and sound boxes, whose structure require large magnets and long coils to generate enough force to push the diaphragm. Therefore, it is difficult to minimize the size due to volume of magnets and weight of coils.
Moreover, a thin loudspeaker similar to the dynamic loudspeakers is Taiwan invention patent No. TW 1451769 entitled “Electro-acoustic transducer and method of manufacturing the same,” whose structure includes a magnetic field generator, a magnet and a flexible insulating substrate. In this invention patent, a cavity creates a long distance between the magnet and the magnetic field generator, which causes the magnetic force to decay, and decreases the efficiency of sound production.
In view of the above problems of the prior art, the present invention improves the deficiencies of the prior art, and proposes a lightweight and low-cost thin loudspeaker.
The present invention provides a thin loudspeaker, comprising: a magnet; and a coil diaphragm, including a plurality of planar coils and a membrane, wherein the membrane has a plurality of laminated substrates, and the plurality of planar coils are interconnected, stacked and respectively formed on the substrates; wherein the magnet is disposed to contact the underside of the coil diaphragm along the common central axis of the plurality of planar coils.
In one embodiment of the present invention, the membrane is a flexible circuit board.
In one embodiment of the present invention, the thin loudspeaker further comprises a resonance box, interacting with the magnet and the coil diaphragm.
In one embodiment of the present invention, the thin loudspeaker further comprises a magnet holder, wherein the magnet is attached to the resonance box by the magnet holder.
In one embodiment of the present invention, the thin loudspeaker further comprises a fixing ring, wrapping around the coil diaphragm.
The present invention provides a thin loudspeaker, comprising: a plurality of magnets; and a coil diaphragm, including a plurality of planar coils and a membrane, wherein the membrane has two laminated substrates, and the planar coils are interconnected and formed dispersedly on the substrates; wherein the magnets respectively correspond to the planar coils, and are disposed to contact the underside of the coil diaphragm along the central axis of a respective corresponding planar coil.
In one embodiment of the present invention, the membrane is a flexible circuit board.
In one embodiment of the present invention, the thin loudspeaker further comprises a resonance box, interacting with the magnets and the coil diaphragm.
In one embodiment of the present invention, the thin loudspeaker further comprises a plurality of magnet holders, wherein the magnets are attached to the resonance box by the magnet holders.
In one embodiment of the present invention, the thin loudspeaker further comprises a fixing ring, wrapping around the coil diaphragm.
In order to understand the above and other objectives, features, and advantages of the present invention more easily, the following exemplifies the preferred embodiments of the present invention, combined with the accompanying drawings, and describe in detail as follows.
The drawings in the application are just for illustration. Specifically, the proportions, dimensions or appearances of the elements in the drawings are for illustration, and do not represent the proportions, dimensions or appearances of the real elements. For example, the thicknesses, lengths and proportions of the magnet(s) and the diaphragm(s) in the present invention are not presented according to the physical size of a real product. In addition, for the sake of simplicity, a plurality of planar coils in the following may only be presented as a single planar coil in the drawings in some cases. Likewise, in the following, a diaphragm with multiple substrates is only represented as a diaphragm with a single substrate in the drawings in some cases.
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In the case of the single planar coil 122, the magnet 110 is generally disposed below the coil diaphragm 120 along the central axis of the planar coil 122, and preferably contacts the underside of the coil diaphragm 120. In the case of the plurality of planar coils 122, the planar coils 122 are interconnected and stacked, and each planar coil 122 is respectively formed on each substrate of the membrane 124. It should be noted that the planar coils 122 are stacked in accordance with a common central axis. That is, the central axes of the planar coils 122 are overlapped with each other. The magnet 110 is disposed below the coil diaphragm 120 along the common central axis of the planar coils 122. Preferably, the magnet 110 is close to the lower surface of the coil diaphragm 120.
Because the magnetic field B of a planar coil is concentrated at the center point, in a case where a magnet is placed under the center of the planar coil, when current is output from the signal terminals (SP+ and SP−) of a signal amplifier, the planar coil and the magnet interact (repel or attract each other), thereby driving a diaphragm to vibrate so as to produce sound. In a preferred embodiment, the magnet 110 and the coil diaphragm 120 are in contact with each other; however, as long as the magnet 110 and the coil diaphragm 120 are close enough to each other, they can still interact after the planar coil(s) 122 is/are energized. Regarding the preferred embodiment, it will be described in detail below.
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In other modified embodiments, the thin loudspeaker of the present invention can be further simplified to consist of a magnetic diaphragm (or magnetic paper) and a planar coil. Likewise, the planar coil can be optionally covered by the magnetic diaphragm (or not covered by the magnetic diaphragm). Since the magnetic diaphragm is magnetic, when the planar coil is energized, the magnetic field generated by which may interact with the magnetic field of the magnetic diaphragm so as to cause diaphragm vibration.
The structure of the thin loudspeaker in the present invention is simpler when compared with the prior art. The thin loudspeaker produces sound by combining a planar coil and a flexible diaphragm, and cooperating with a mini strong magnet to accomplish diaphragm vibration. The thin loudspeaker of the present invention can be cooperated with various audio amplifiers, and is different from ceramic loudspeakers and electrostatic loudspeakers which require a booster circuit to operate. Therefore, it has advantages in cost and manufacturing process.
The above is only exemplary, rather than restrictive. Any equivalent modifications or changes without departing from the spirit and scope of the present invention should fall within the scope of the appended claims.
Number | Date | Country | Kind |
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111119397 | May 2022 | TW | national |