1. Field of the Invention
The present disclosure relates to the art of speakers and, particularly to a micro-speaker for converting electrical signals including audio information to audible sounds.
2. Description of Related Art
With the continuing development of audio and sound technology, micro-speaker have been widely used in electronic devices, such as cellular phones, PDAs (personal digital assistants), and so on.
A micro-speaker related to the present invention includes a case defining a sound hole, a frame attached to the case for forming a chamber, a magnetic circuit defining a magnetic gap, a diaphragm located in the chamber, and a voice coil attached to the bottom of the diaphragm. While electrified, the voice coil will be activated to vibrate by the electromagnetic Ampere Force and further drives the diaphragm to vibrate, which converts the electrical signals to sound waves. The voice coil and the diaphragm need sufficient space to vibrate for ensuring good acoustic performance. However, as the trend of the volume of the micro-speaker is smaller and smaller, space provided for the diaphragm to vibrate is accordingly reduced and limited.
Therefore, it is desirable to provide a micro-speaker which can overcome the above-mentioned problems.
Many aspects of the embodiment can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present disclosure. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Referring to
The frame 10 includes a pair of first longitudinal sidewalls 100, a pair of second transverse sidewalls 101, and a receiving room 102 formed between the first longitudinal sidewalls 100 and the first transverse sidewalls 101. The yoke 14 is received in the receiving room 102. The frame 10 further defines four semi-columned protrusions 104 extending upwardly and perpendicularly from the corresponding four corners thereof. The pair of first transverse sidewalls 101 each defines a slot 103 substantially spanning most height thereof and formed at the center thereof.
The yoke 14 includes a base wall 140, a pair of second longitudinal sidewalls 141 extending upwardly and perpendicularly from a longitudinal outer periphery of the base wall 140, and a pair of second transverse sidewalls 142 extending upwardly and perpendicularly from a transverse outer periphery of the base wall 140. The base wall 140 and the second sidewalls 141, 142 cooperatively define a receiving chamber 143 therebetween. Top ends of the second transverse sidewalls 142 of the yoke 14 are located below and restricted by the first transverse sidewalls 101. Another word, when assembled, the second transverse sidewalls 142 are positioned in the slots 103. Thus, the yoke 14 is positioned in the frame 10.
The magnet 15 is attached on the top of the base wall 140. The pole plate 16 is attached to a top surface of the magnet 15. The magnet 15 and the pole plate 16 are received in the receiving chamber 143 of the yoke 14, and are coaxial with the yoke 14. The shape and configuration of the magnet 15 is substantially same as the pole plate 16. An outer diameter of the magnet 15 and an outer diameter of the pole plate 16 are smaller than an inner diameter of the yoke 14. Thereby, outer peripheral side surfaces of the magnet 15 and the pole plate 16, and the second sidewalls 141, 142 of the yoke 14, cooperatively define an annular gap 17 (referring to
The diaphragm 12 includes a central area 120 in a center thereof, a joint area 122 at an outer periphery thereof, and a connecting area 121 between the central area 120 and the joint area 122. The central area 120, the joint area 122 and the connecting area 121 are coaxial with the connecting plate 13, the magnet 15 and the pole plate 16. The connecting area 121 is curved upwardly or downwardly to form an annular bugle or concave. In fact, the joint area 122 is the periphery covered by the case 19, as mentioned above.
Referring to
The case 19 attaches onto the frame 10 to cover the joint area 122 of the diaphragm 12. The case 19 includes a base 190, and a sound outlet 191 formed in the center of the base 190. The base 190 defines four semi-columned recesses 192 at the four corners thereof to engage with the corresponding protrusions 104 of the frame 10, thereby the mechanical connection between the frame 10 and the case 19 is obtained and secured. Sound generated by the micro-speaker 1 is transmitted to the outside of the micro-speaker 1 through the sound outlet 191.
When an electric current is applied to the voice coil 11, a magnetic field loop is produced in the vibrating system and the magnetic system. Thus, the voice coil 11 is activated to move by the electromagnetic Ampere force, and accordingly, the connecting plate 13 and the diaphragm 12 are driven to vibrate by the voice coil 11, which produces sound waves.
It is to be understood, according to the Right-Hand Rule: the electromagnetic force F applied to voice coil 11 can be calculated by the formula: F=BIL, wherein B is the magnetic flux passing through the voice coil 11 in the magnetic field generated by the voice coil 11 and the yoke 14, the magnet 15 and the pole plate 16; I is the current flowing through the voice coil 11; L is the effective length of the voice coil 11 in the magnetic field. In the present micro-speaker 1, the voice coil 11 is wrapped on the second part 1311 of the connecting plate 13, the first part 1310 is oblique to the central portion 130, and the central portion 130 is connected with the bottom of the central portion 120 of the diaphragm 12. With the above-mentioned configuration, the length L of the voice coil 11 is increased compared with the conventional micro-speaker with the voice coil directly attached to the bottom of the diaphragm. Specifically, the magnetic force F is varied related to the current I, the magnetic flux B and the length L, when the current I and the magnetic field B are invariable, the force F of the voice coil 11 in the magnetic field is increased based on the increasing length L. Meanwhile, when the force F is increased enough, the low frequency bandwidth of the sound of the micro-speaker is expanded, thereby the sound output quality of the micro-speaker 1 is improved.
It is to be understood, however, that even though numerous characteristics and advantages of the present embodiment have been set forth in the foregoing description, together with details of the structures and functions of the embodiment, the disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
Number | Date | Country | Kind |
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2010 2 0231935 U | Jun 2010 | CN | national |
Number | Name | Date | Kind |
---|---|---|---|
3573396 | Schoengold | Apr 1971 | A |
6496590 | Proni | Dec 2002 | B2 |
7113813 | Shimokawatoko et al. | Sep 2006 | B2 |
Number | Date | Country | |
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20110311093 A1 | Dec 2011 | US |