1. Technical Field
The present invention relates to acoustic transducers, and more particularly to an acoustic transducer whose vibrating membrane is centrally provided with a positioning member so as to define a vibratile portion that can vibrate freely, wherein the vibratile portion is peripherally provided with a plurality of elastic members that allow the vibratile portion to perform piston-like vertical vibration, thereby enhancing the sensitivity of the acoustic transducer.
2. Description of Related Art
MEMS microphones are known to have advantages of being compact and easy to manufacture, so are extensively used in mobile phones. A conventional acoustic transducer 80, as shown in
When the acoustic transducer 80 receives acoustic waves and the vibrating membrane 83 deforms in the direction along which the acoustic waves advance, since the vibrating membrane 83 only has its periphery fixed to the base plate 81, the vibrating membrane 83 has its central part deforming more than its peripheral part, so the vibrating membrane 83 now forms an arc with its opening facing downward. This uneven deformation can cause the effective sensing area A of the vibrating membrane 83 significantly smaller than the entire area of the vibrating membrane 83, leading to negative impact on the acoustic transducer 80 in terms of sensitivity and signal-to-noise ratio. Existing approaches to preventing the vibrating membrane from the arched deformation include increasing the thickness of the vibrating membrane and reducing the total area of the vibrating membrane in order to increase the vibrating membrane's rigidity. However, these existing approaches can be subject to increase manufacturing process complexity and manufacturing cost. Hence, there is a need for a feasible technical scheme for solving this problem.
In view of this, the primary objective of the present invention is to provide an acoustic transducer with high sensitivity, wherein the acoustic transducer can have the deformable width of its vibrating membrane controlled so that the vibrating membrane can perform a nearly parallel movement, thereby effectively improving its acoustically receiving sensitivity and signal-to-noise ratio.
For achieving the above objective, the present invention provides an acoustic transducer with high sensitivity, which comprises a base plate, a back plate and a vibrating membrane. The vibrating membrane has its periphery fixed to the base plate and covers an opening of the base plate. The back plate has a positioning member that is connected to the vibrating membrane, so as to define at least one vibratile portion. There are a plurality of elastic member arranged annularly along the periphery of the vibratile portion.
Thereby, the present invention can make the deformable width of the vibratile portion smaller than its entire width without changing the vibrating membrane's thickness or dimensions. The reduced deformable width can increase the rigidity of the vibratile portion. When the acoustic transducer receives acoustic waves, the elastic members deform first and make the vibratile portion to perform vertical vibration in the form of a nearly parallel movement, so as to effectively improve the acoustically receiving sensitivity and signal-to-noise ratio. The present invention is also helpful to the control of process stability and manufacturing costs.
Preferably, the positioning member is a solid column or a hollow column or is formed by a plurality of solid posts to define a single vibratile portion or two or more vibratile portions.
Preferably, the vibrating membrane is round and the positioning member is connected to a center of the vibrating membrane, so that the vibratile portion is circular. Alternatively, when the vibrating membrane is rectangular, the positioning member is linearly presented to define two rectangular vibratile portions that both perform even deformation and movement.
For further illustrating the features of the present invention, the following description, in conjunction with the accompanying drawings and preferred embodiments, is set forth as below. Referring to
As shown in
The vibrating membrane 20 is peripherally fixed to the base plate 10 and covers the opening 14. In the present embodiment, the vibrating membrane 20 is round. Of course, people skilled in the art may make the vibrating membrane be square or in other geometric shapes and correspondingly modify the appearance of the opening 14.
The back plate 30 is covered on the insulation layer 12 and has a surface 35 facing the base plate 10. The surface 35 is separated from the vibrating membrane 20 by a gap G. In addition, the back plate 30 has a positioning member 31 extending from the surface 35 toward the vibrating membrane 20, for prohibiting the central part of the vibrating membrane 20 from vibrating. The back plate 30 further has a plurality of sound holes 33 for allowing acoustic waves to pass therethrough. The number of the sound holes 33 may vary according to practical needs. Depending on the means of packaging, the acoustic transducer 1 may have acoustic waves transmitted from the sound holes 33 to the vibrating membrane 20. Referring to
The elastic members 40 are arranged annularly along the inner and outer peripheries of the vibratile portion 21 that are relatively adjacent to and far from the positioning member 31, respectively. The number of the elastic members 40 may vary according to practical needs.
When an acoustic wave passes through the hollowed portion 13 or the sound holes 33 and reaches the vibrating membrane 20, as shown in
Referring to
In a third embodiment of the present invention, as shown in
The present invention has been described with reference to the preferred embodiments and it is understood that the embodiments are not intended to limit the scope of the present invention. Moreover, as the contents disclosed herein should be readily understood and can be implemented by a person skilled in the art, all equivalent changes or modifications which do not depart from the concept of the present invention should be encompassed by the appended claims.