1. Field of Invention
The present invention relates to an acoustic transducer device for noise processing, and more particularly to an acoustic transducer device for noise processing capable of switching between a feed-forward noise cancellation mode and a feed-back noise cancellation mode.
2. Related Art
People are apt to be fretful when they are affected by noises. If a person has been under a noisy environment for a long time, a permanent hearing impairment may even be caused. Therefore, in recent years, technologies for cancelling noise are continuously proposed. In the field of earphones, early noise cancellation technology is based on structural improvements. For example, ear covers or ear muffs with a good sound isolation effect are selected. Generally, such earphones are capable of isolating noises above 800 Hz, but have a poor sound isolation effect against noises below 800 Hz, especially low frequency noises. Hence, such a technology that is commonly called “passive noise cancellation” cannot perfectly solve the noise problem completely. For this reason, an electronic noise cancellation technology called “active noise cancellation” is frequently proposed recently in order to eliminate the deficiencies of “passive noise cancellation”. The “active noise cancellation” technology may be classified into the following two types: feed-forward noise cancellation technology and feed-back noise cancellation technology.
Accordingly, the present invention is directed to an acoustic transducer device integrating a feed-forward noise cancellation technology and a feed-back noise cancellation technology, so as to achieve the advantages of both two different noise cancellation technologies.
In order to achieve the above objective, an acoustic transducer device is provided, which includes a body, a speaker, a microphone, and a processor. The body has a cavity, a sound exit, and a sound entrance. The cavity is in communication with the sound exit. The speaker is disposed within the cavity and outputs a generated sound signal to an exterior via the sound exit. The microphone is disposed within the body adjacent to the speaker, and is selectively in communication with the cavity or the sound entrance. The processor is electrically connected to both the speaker and the microphone. When the microphone is in communication with the cavity, the microphone receives a sound signal within the cavity and transmits the sound signal to the processor, and the processor outputs an anti-signal to the speaker for the sound signal that is defined as a noise. In contrast, when the microphone is in communication with the sound entrance but is not in communication with the cavity, the microphone receives an external sound signal and transmits the external sound signal to the processor, and the processor outputs an anti-signal to the speaker for the sound signal that is defined as a noise.
The microphone of the acoustic transducer device of the present invention is selectively in communication with the cavity to receive the sound signal therein or in communication with the exterior to receive the external sound signal, so as to form a feed-forward noise cancellation mode together with the processor when receiving the external sound signal, and form a feed-back noise cancellation mode together with the processor when receiving the sound signal in the cavity. In comparison with the prior art, both manufacturers and customers can determine whether to switch the acoustic transducer device to the feed-forward mode or the feed-back mode according to a desired sound performance in manufacturing or use.
Further areas of applicability of the present invention will become apparent from the detailed description provided hereinafter. It should be understood that the detailed description and specific examples, while indicating the preferred embodiment of the invention, are intended for purposes of illustration only and are not intended to limit the scope of the invention.
The present invention will become more fully understood from the detailed description given herein below for illustration only, and thus are not limitative of the present invention, and wherein:
An acoustic transducer device according to a preferred embodiment of the present invention is described below with reference to the accompanying drawings.
When the microphone 50 is in communication with the cavity 31, the microphone 50 receives a sound signal within the cavity 31 and transmits the sound signal to the processor 60, and the processor 60 outputs an anti-signal to the speaker 40 for the sound signal that is defined as a noise. In contrast, when the microphone 50 is in communication with the sound entrance 33 and is not in communication with the cavity 31, the microphone 50 receives an external sound signal and transmits the external sound signal to the processor 60, and the processor 60 outputs an anti-signal to the speaker 40 for the sound signal that is defined as a noise.
Moreover, the body 30 also has a sound tube 35. One end of the sound tube 35 is in communication with the cavity 31, and the other end of the sound tube 35 is the sound exit 32. A damping 36 is disposed at the sound exit 32 of the sound tube 35 to block the sand and dust. An ear plug 37 is sleeved outside of the sound tube 35. The ear plug 37 is made of an elastic plastic. As such, a user can conveniently wear the acoustic transducer device 3 by plugging the ear plug 37 into the ear canal.
In addition, in this embodiment, a switch 70 disposed between the cavity 31 and the sound entrance 33 is used to control the microphone 50 to be selectively in communication with the cavity 31 or the sound entrance 33. A first passage 71 and a second passage 72 are formed on the switch 70. When the switch 70 is moved to a first position, the first passage 71 is in communication with the cavity 31 and the accommodating space 34, such that the microphone 50 receives the sound signal within the cavity 31. When the switch 70 is moved to a second position, the second passage 72 is in communication with the sound entrance 33 and the accommodating space 34, such that the microphone 50 receives the sound signal via the sound entrance 33.
When the switch 70 is moved to a position where the first passage 71 is in communication with the cavity 31 and the accommodating space 34, the accommodating space 34 is not in communication with the sound entrance 33, and the microphone 50 directly receives a sound signal produced by the speaker 40 from the cavity 31. That is, the so-called “feed-back noise cancellation” in noise cancellation technologies is achieved. At this time, the first contact set A is electrically connected to the third contact set C, such that the fifth contact E of the processor 60 receives an electrical signal, which drives an internal circuit of the processor 60 to operate and thus generate an anti-sound wave for counteracting a portion of the sound signal produced by the speaker 40 that is defined as a noise, so as to cancel the noise. In contrast, as shown in
As described above, the acoustic transducer device 3 of the present invention can be switched between the feed-forward noise cancellation mode and the feed-back noise cancellation mode by moving the switch 70, and thus can be adjusted to a required state under different sound quality requirements.
In this embodiment, the technology of switching between the feed-forward noise cancellation mode and the feed-back noise cancellation mode can be simply achieved by moving the microphone 50. However, with respect to the design for moving the microphone 50 to be electrically connected to and drive the processor 60, the designs of
When the supporting member 80 is rotated to the left of the shaft 39 in the figure, the microphone 50 is only in communication with the exterior and receives an external sound signal. At this time, the acoustic transducer device 3 is in a feed-forward noise cancellation mode. In contrast, when the supporting member 80 is rotated to the right of the shaft 39, the microphone 50 is only in communication with the cavity 31 and receives a sound signal in the cavity 31. At this time, the acoustic transducer device 3 is in a feed-back noise cancellation mode.
In this embodiment, the technology of switching between the feed-forward noise cancellation mode and the feed-back noise cancellation mode can be simply achieved by rotating the supporting member 80 to make the microphone 50 in communication with the exterior or the cavity 31. However, the designs of
Finally, it should be noted that, the speaker 40 in the above acoustic transducer device 3 is, for example, a dynamic speaker; however, if a balanced armature speaker is used to replace the dynamic speaker, the efficacy that can be achieved in the present invention will not be affected. In addition, the processor 60 is disposed within the body 30 closely adjacent to the speaker 40 in
To sum up, the microphone of the acoustic transducer device of the present invention is selectively in communication with the cavity to receive the sound signal therein or in communication with the exterior to receive the external sound signal, so as to form a feed-forward cancelling noise mode together with the processor when receiving the external sound signal, or form a feed-back noise cancellation mode together with the processor when receiving the sound signal in the cavity. Therefore, both manufacturers and customers can determine whether to switch the acoustic transducer device to the feed-forward mode or the feed-back mode according to a desired sound performance in manufacturing or use. For example, to avoid high-frequency resonance attenuation, the acoustic transducer device may be selectively switched to the feed-forward noise cancellation mode.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present invention without departing from the scope or spirit of the invention. In view of the foregoing, it is intended that the present invention cover modifications and variations of this invention provided they fall within the scope of the following claims and their equivalents.