The present invention relates to a speaker.
Japanese Patent Unexamined Publication No. 2004-7332 discloses a speaker shown in
However, when such a speaker structure is employed, suspension holder 6 is formed so as to have at least the same level of rigidity as that of diaphragm 3. This causes the driving load of magnetic circuit 1 to increase. As a result, it is difficult to improve the driving efficiency of a speaker.
A speaker includes a frame, a magnetic circuit, a voice coil unit, a diaphragm, and a damper. The magnetic circuit is supported by the frame. The voice coil unit is inserted into a magnetic gap provided in the magnetic circuit and can move in the magnetic gap. The diaphragm is coupled to the frame via an edge at its outer peripheral end and coupled to the voice coil unit at its inner peripheral end. The damper is provided at a part that is lower than the diaphragm and nearer to the magnetic circuit and coupled to the frame at its outer peripheral end and to the voice coil unit at its inner peripheral end. The damper includes a corrugated structure portion at its inner peripheral side and a leaf spring at its outer peripheral side.
With such a configuration, the distortion of the speaker can be suppressed and the driving efficiency can be improved.
Hereinafter, a first exemplary embodiment of the present invention is described with reference to drawings. In the description, the same reference numerals are given to the same configurations as those mentioned above as a background art.
Furthermore, voice coil unit 2 (hereinafter, referred to as coil unit 2) has a structure in which coil 2b is wound around the outer periphery of cylindrical main body 2a. In the structure, coil unit 2 is inserted into magnetic gap 8 and moves in the magnetic gap in the vertical direction, which vibrates diaphragm 3 coupled to the upper outer periphery of coil unit 2. On the upper end of coil unit 2, dust cap 9 is provided in order to prevent dust from entering.
Diaphragm 3 is a sound generation source of a speaker and includes, as a main material, pulp and resin having both high rigidity and internal loss. Diaphragm 3 is coupled to an open end of frame 5 via edge 4 protruding upward at its outer peripheral end and fixed to coil unit 2 at its inner peripheral end. Edge 4 is formed of a material such as urethane, foamed rubber, SBR rubber, and cloth in order to minimize the moving load applied to diaphragm 3.
Damper 12 includes corrugated structure portion 10 at its inner periphery and leaf spring (or plate spring) 11 at its outer periphery. Corrugated structure portion 10 and leaf spring 11 are coupled together by coupling portion 13 having a predetermined region. The inner peripheral end of corrugated structure portion 10 is coupled to a part that is lower than a part where diaphragm 3 is fixed to coil unit 2 and nearer to magnetic circuit 1. To the outer peripheral end of corrugated structure portion 10, leaf spring 11 is fixed as a separate body. The outer periphery of leaf spring 11 is coupled to frame 5. Corrugated structure portion 10 is formed in a corrugated sheet and has a ring structure surrounding coil unit 2. In this structure, corrugated structure portion expands and contracts in accordance with the movement of coil unit 2. Furthermore, similar to edge 4 provided on diaphragm 3, corrugated structure portion 10 is formed of a material such as urethane, foamed rubber, SBR rubber and cloth in order to minimize the moving load applied to diaphragm 3.
When a sound signal is applied to coil 2b of coil unit 2, coil unit 2 responds to a magnetic field in magnetic gap 8 and moves in the vertical direction. Due to this movement, diaphragm 3 vibrates and sound is output from a speaker. In particular, since leaf spring 11 is provided on the outer peripheral end of corrugated structure portion 10, the distortion of the speaker is suppressed. In addition, the driving efficiency of the speaker is enhanced.
Originally, damper 12 is coupled to frame 5 and coil unit 2 at its both ends respectively and suppresses the rolling occurring at the time when coil unit 2 moves. In order that damper 12 can easily follow the movement of coil unit 2, damper 12 has corrugated structure portion 10 formed in a corrugated sheet, providing elasticity and suppressing the rolling. The rolling refers to as a phenomenon in which force acting on coil unit 2 becomes asymmetric for some reasons, so that coil unit 2 vibrates in the lateral direction not in the vertical direction which is original movable direction.
In the case where corrugated structure portion 10 formed in a corrugated sheet is provided, when the amount of amplitude of coil unit 2 is small, large load may not be applied by the movement of coil unit 2. However, when the amount of amplitude of coil unit 2 becomes larger than a predetermined amount, the load becomes large rapidly.
Then, in this exemplary embodiment, the outer periphery of corrugated structure portion 10 is coupled to frame 5 via leaf spring 11. Thus, the movable range of coil unit 2 is increased. When corrugated structure portion 10 is loaded, stress is applied to leaf spring 11. In accordance with this stress, leaf spring 11 is elastically deformed. The movable range of coil unit 2 by corrugated structure portion 10 alone is 1 to 2 mm each in the upper and lower portions. Meanwhile, the movable range of coil unit 2 by damper 12 including leaf spring 11 becomes 5 to 10 mm each in the upper and lower portions. That is to say, when the amplitude exceeds the amplitude limit of corrugated structure portion 10, leaf spring 11 moves, thus enabling large amplitude.
Therefore, even when the amount of amplitude of coil unit 2 is increased in this way, with damper 12, the amplitude is not easily diminished. Consequently, the deterioration of the driving efficiency can be suppressed.
The configuration in which corrugated structure portion 10 is coupled to frame 5 via leaf spring 11 is as mentioned before. That is to say, until the movable range of coil unit 2 becomes large to some extent, the power linearity can be secured by corrugated structure portion 10 formed in a corrugated sheet. Furthermore, when the movable range of coil unit 2 becomes a predetermined amount or more and the linearity cannot be easily secured, the linearity can be compensated by the elasticity of leaf spring 11. Therefore, it is desirable that the elastic modulus of leaf spring 11 is set larger (more rigid) than the elastic modulus of corrugated structure portion 10.
Furthermore, it is desirable that corrugated structure portion 10 and leaf spring 11 have different elastic modulus respectively so that they function independently in accordance with the movable range of coil unit 2. By setting the elastic modulus between corrugated structure portion 10 and leaf spring 11, more specifically, the elastic modulus of coupling portion 13 of corrugated structure portion 10 and leaf spring 11 to be larger (more rigid) than the elastic modulus of corrugated structure portion 10 and the elastic modulus of leaf spring 11, the independence of them can be secured. Coupling portion 13 is a portion where corrugated structure portion 10 and leaf spring 11 are overlapped with each other.
An example of the method of setting the elastic modulus of coupling portion 13 of corrugated structure portion 10 and leaf spring 11 to be larger than the elastic modulus of corrugated structure portion 10 and leaf spring 11 includes the following method. The method is described with reference to
Furthermore, in order to secure the power linearity of diaphragm 3 that is a sound generation region of a speaker, a composite of corrugated structure portion 10 and leaf spring 11 is optimized. Furthermore, it is desirable to regulate the relation between the composite of corrugated structure portion 10 and leaf spring 11 and edge 4 provided on diaphragm 3.
That is to say, the important point in this relation is how freely diaphragm 3 that is a substantial sound generation source of the speaker can vibrate in the vertical direction, uniformly. When this point is considered, in order to make the most use of the linearity of diaphragm 3, it is desirable that the elastic modulus of edge 4 provided on diaphragm 3 is set to 0.8 to 1.2 times as the elastic modulus of damper 12 that is a composite of corrugated structure portion 10 and leaf spring 11.
Diaphragm 3, coil unit 2 and corrugated structure portion 10, which are located in a region between edge 4 and leaf spring 11, can be regarded as an integrated rigid body. Therefore, when the distance between edge 4 and leaf spring 11 is increased, the rolling of coil unit 2 can be suppressed and the distortion can be reduced.
Thus, the distance between edge 4 and leaf spring 11 can be increased as compared with the structure shown in
A speaker of the present invention can reduce the distortion of the speaker and improve the driving efficiency. In particular, the speaker of the present invention is useful for a small-sized speaker.
Number | Date | Country | Kind |
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2005-279703 | Sep 2005 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/JP2006/318014 | 9/12/2006 | WO | 00 | 2/12/2007 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2007/037115 | 4/5/2007 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
6735323 | Chang | May 2004 | B1 |
7171015 | Murayama et al. | Jan 2007 | B2 |
7209570 | Funahashi et al. | Apr 2007 | B2 |
7292707 | Kreitmeier et al. | Nov 2007 | B2 |
20050008188 | Harris | Jan 2005 | A1 |
20050175212 | Murayama et al. | Aug 2005 | A1 |
Number | Date | Country |
---|---|---|
1652635 | Aug 2005 | CN |
35-2305 | Feb 1960 | JP |
45-33465 | Oct 1970 | JP |
52-23968 | May 1977 | JP |
62-191295 | Dec 1987 | JP |
63-78496 | May 1988 | JP |
2-133097 | Nov 1990 | JP |
2-133097 | Nov 1990 | JP |
02-133097 | Nov 1990 | JP |
2003-199192 | Jul 2003 | JP |
2004-007332 | Jan 2004 | JP |
10-0500804 | Apr 2005 | KR |
Entry |
---|
Japanese Office Action dated Apr. 20, 2010. |
Chinese Office action dated Jan. 26, 2011. |
Supplementary European Search Report for PCT/JP2006-318014 dated Apr. 21, 2011. |
South Korean Office Action. |
Korean Office Action. |
Number | Date | Country | |
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20120263339 A1 | Oct 2012 | US |