1. Field of the Invention
This invention relates to a sound control unit and a sound system.
2. Description of Related Art
Referring to
Each of the speaker units 105A, 105B, and 105C is provided with a driving voice coil and a magnetic circuit for driving a diaphragm in response to the inputted sound signal.
The operation of the conventional sound reproducing unit will be described.
Although the speaker system inside the bus is, as shown in
In case of the double driving type speaker system 104A, the sound signal inputted to the driving voice coils 109 of the two front-radiating speaker units 105A vibrates the diaphragm coupled to a bobbin to which the driving voice coil 109 is fixed, thereby radiating a sound to the front. Further, the sound signal inputted to the driving voice coil 109 of the auxiliary speaker unit 105B radiates the sound to the rear of the front-radiating speaker units 105A so as to complement the vibrations of the front-radiating speaker units 105A. As a result, in the double driving type speaker system 104A, the front-radiating speaker units 105A inside the closed inner space 120A radiate bass enhanced by the aide of the radiation from the auxiliary speaker unit 105B inside the closed inner space 120B.
On the other hand, in case of the single driving type speaker system 104B, the sound signal inputted to the driving voice coils 109 of the two front-radiating speaker units 105C vibrates the diaphragm coupled to the bobbin to which the driving voice coil 109 is fixed, thereby radiating a sound to the front. That is, in the single driving type speaker system 104B, the sound is radiated only by the front-radiating speaker units 105C inside the closed inner space 120C having a closed inner space or an opening plane.
In any driving type speaker systems, the closed inner space virtually determines the minimum resonance frequency and the steepness of the resonance characteristics which define the limit of bass reproduction, and those members of different kind of diaphragm and the supporting system which constitute the speaker unit, as well as by the member constants determines the treble characteristics.
The conventional sound system thus arranged as described above, in case of the double driving type speaker system, needs the auxiliary speaker for enhancing the bass in addition to the two front-radiating speaker units. Further, the speaker cabinet has the closed inner space for the auxiliary speaker unit in addition to that for the front radiating speaker units, which complicates the structure of the speaker cabinet, bringing about an increase in the cost of the sound system.
In addition, the auxiliary speaker unit succeeds in synchronization (following-up) in the same phase in the vibration-sound radiating region relating to the bass reproduction of the front-radiating speaker units. In the vibration-sound radiating region relating to the treble reproduction, however, the auxiliary speaker unit fails in synchronization in the same phase with the increase in the number of vibrations. In this kind of frequency region in which synchronization cannot accomplish, once it comes to the worst vibrating conditions, the vibration amplitude of the auxiliary speaker unit becomes antiphase to the vibration amplitude of the front-radiating speaker units, resulting in the occurrence of distortion in sound. Further, a gain in the weight of the speaker system causes an increase in the cost of the bus itself and the specific fuel consumption of the bus resulting from the fortification, or the like, as a measure to be taken for safety.
On the other hand, in case of the single driving type speaker system, it is necessary to widen the closed inner space in order to attain good bass reproduction characteristics. As a result, the speaker cabinet becomes large in size and weight, a rate of the occupied volume inside the bus becomes large, and the cost of the bus itself and the specific fuel consumption of the bus increase due to the fortification, or the like, as a measure to be taken for safety. Even in case the speaker unit is a so-called bass-reflex (bass reflection) type having a partial opening so as to make the inner space smaller to a certain degree, the structure of the speaker cabinet becomes complicated and therefore a measure must be taken to secure dust proofing, leading to an increase in the cost of the sound system.
The present invention has been made to solve the above and other problems to provide a sound control unit for implementing good bass reproduction characteristics with a small-sized, lightweight and inexpensive speaker system.
Further, an object of the present invention is to provide a small-sized, lightweight and inexpensive sound system for implementing good bass reproduction characteristics with a small-sized, lightweight and inexpensive speaker system.
In order to attain the above and other objects, a sound control unit according to the present invention comprises signal generating means for generating a feedback signal in response to an input of a vibration detecting signal from a vibration detecting coil which detects vibrations of a vibration member of a speaker; and signal control means for controlling, by the feedback signal, a sound signal inputted to a driving voice coil of the speaker.
Further, a sound system according to the present invention comprises a speaker unit having fixed to predetermined positions of the vibration member a driving voice coil for driving a vibration member in response to an inputted sound signal, and a vibration detecting coil for detecting a vibration of the vibration member to generate a vibration detecting signal; sound signal output means which applies a signal processing to a sound source signal inputted from a predetermined sound source to output a sound signal inputted to the driving voice coil; and sound control means for controlling the sound signal outputted from the sound signal output means by a feedback signal generated in response to the input of the vibration detecting signal from the vibration detecting coil so as to input the sound signal to the driving voice coil.
Therefore, according to the present invention, by controlling a minimum resonance frequency and a Q factor of the resonance characteristic, good bass reproduction characteristics can be implemented with a small-sized, lightweight and inexpensive speaker system.
The above and other objects and the attendant advantages of the present invention will become readily apparent by reference to the following detailed description when considered in conjunction with the accompanying drawings wherein:
Referring to
A pair of lead wires (not shown) are provided for connecting the driving voice coil 6 and the vibration detecting coil 7 to terminals provided in the cabinet 3.
Referring to
The operation of the sound reproducing unit of the first embodiment will then be described.
In the sound reproducing unit 106, various kinds of sound source signals (TUNER, TAPE, CD, AUX) are inputted to the selector 107 from a tuner, a cassette tape player, a CD player, and other sound source devices. The selector 107 selects one sound source out of these various kinds of sound sources in accordance with the selecting operation and inputs it to the amplifier 108. The amplifier 108 amplifies this sound source signal to output a sound signal (AS).
In the MFB signal control unit 11, the vibration displacement calculating part 12 calculates, in response to the input of the vibration detecting signal from the vibration detecting coil 7, the amount of displacement of the coil bobbin 5 in
The processed signal generating part 14 receives an input of the vibration displacement detecting signal to generate a feedback signal for controlling a minimum resonance frequency, and receives an input of the vibration speed detecting signal to generate a feedback signal for controlling a Q factor indicative of a steepness of resonance characteristics of the minimum resonance frequency. After mixing the generated two feedback signals, a built-in amplifier (not shown) performs amplification, attenuation, or the like, and thereafter the feedback signal (FS) is inputted to one terminal of the adder 15. The sound signal (AS) outputted from the sound reproducing unit 106 is inputted to the other terminal of the adder 15. The adder 15 outputs a sound signal AS′ which is obtained by mixing the sound signal AS with the feedback signal FS inputted from the processed signal generating part 14, and inputs the sound signal AS′ to the driving voice coil 6.
As a result, by the Fleming's left-hand rule, the coil bobbin 5 to which the driving voice coil 6 is fixed vibrates. Then, the diaphragm 8 connected to the coil bobbin 5 is vibrated to produce a sound. Further, by the Fleming's right-hand rule, as a result of vibration of the coil bobbin 5, an induced current is generated in the vibration detecting coil 7. The amplitude of this vibration detecting signal is nearly proportional to the amount of displacement of the coil bobbin 5, and the value of differentiation (a rate of change) of the amplitude detecting signal is nearly proportional to the speed of vibration of the coil bobbin 5.
In case the MFB signal control unit 11 is applied, a minimum resonance frequency f0′ is controlled by the feedback signal for controlling the minimum resonance frequency which is generated in response to the vibration displacement detecting signal, so as to lower the minimum resonance frequency f0′ to the bass region than the conventional minimum resonance frequency characteristic f0. Therefore, the bass characteristics of the portions of the output sound pressure level frequency characteristics F2 (Q1), F2 (Q2), F2 (Q3) indicated by thick lines are improved as compared with that of the conventional output sound pressure level frequency characteristic F1 as shown by a thin line. Further, by means of the feedback signal for controlling the Q factor of the resonance characteristics generated in response to the vibration speed detecting signal, the steepness in the waveform of the impedance characteristics Z2 (Q1), Z2 (Q2), Z2 (Q3) indicated by thick lines having resonance characteristics are controlled, so that the rising characteristics (so-called shoulder characteristics) of the output sound pressure frequency characteristics F2 (Q1), F2 (Q2), F2 (Q3) are controlled.
Therefore, by performing the optimum control considering the entire system, good bass reproduction characteristics can be implemented with a small-sized, lightweight and inexpensive speaker system. In this case, the appropriately designed circuit factor of the MFB signal control unit 11 implements the good bass reproduction characteristics and the radiation of noiseless sound over the entire frequency range.
As described above, according to the first embodiment, the minimum resonance frequency and the Q factor of the resonance characteristics are electrically controlled by mixing the sound signal to be outputted from the conventional sound reproducing unit 106 with the feedback signal. Therefore, good bass reproduction characteristics can be implemented with a small-sized, lightweight and inexpensive speaker system without using a plurality of speaker units in a single speaker system (in a single cabinet) and without widening the inner space thereof.
In addition, according to the first embodiment, good bass reproduction characteristics can be implemented with a small-sized, lightweight and inexpensive speaker system by electrical processing in accordance with the vibration displacement and the vibration speed of the vibration member.
Further, by an appropriate control considering the entire system, good bass reproduction characteristics can be implemented with a small-sized, lightweight and inexpensive speaker system.
Still further, since the adder 15 adds the sound signal outputted from the sound reproducing unit 106 to the feedback signal outputted from the processed signal generating part 14, good bass reproduction characteristics can be implemented by a simple, small-sized, lightweight and inexpensive speaker system.
By adding the MFB signal control unit 11 to the sound reproducing unit 106 in the conventional sound system for the bus, as shown in
While in the above-described first embodiment, an arrangement has been taken that the MFB signal control unit 11 is added to the sound reproducing unit 106 in the conventional sound system for the bus, in the second embodiment, the conventional sound reproducing unit 106 is modified to newly construct the sound system of the present invention.
For example, the sound source signal outputted from the selector 107 of the sound reproducing unit 106 in
As described above, according to the second embodiment, an arrangement is made so that the feedback signal generated by the sound control means (MFB signal control unit 11) is mixed with the sound signal from the sound signal output means, and that the minimum resonance frequency and the Q factor of the resonance characteristics are electrically controlled. Therefore, without using a plurality of speaker units in a single speaker system, and without widening the inner space thereof, good bass reproduction characteristics can be implemented by a small-sized, lightweight and inexpensive speaker system. Besides, the second embodiment exerts the same effects as the first embodiment.
In each of the above-described embodiments, the vibration detecting coil 7 of the speaker unit is electromagnetically coupled to the magnetic circuit of the speaker unit within a range of displacement of the coil bobbin 5, and fixed to the position where a vibration detecting signal is generated. Therefore, even in case where the amplitude of the sound signal and the displacement of the coil bobbin 5 become maximum, the vibration detecting coil 7 generates the vibration detecting signal. Thus, there is no such possibility that the feedback loop of the sound system will come off, causing oscillations, or the like.
While in each of the above-described embodiments, a description has been made about the sound system for a bus and about the sound control unit which is applied to the sound system, the range of application of the present invention is not limited to the above-described embodiments. Naturally, it is needless to say that the sound control unit and the sound system according to this invention are applicable to mobile bodies such as vehicles other than a bus, ships, airplanes, or the like, and also to the systems for indoor facilities for other than mobile bodies.
It is readily apparent that the above-described sound control unit and the sound system meet all of the objects mentioned above and also have the advantage of wide commercial utility. It should be understood that the specific form of the invention herein above described is intended to be representative only, as certain modifications within the scope of these teachings will be apparent to those skilled in the art.
Accordingly, reference should be made to the following claims in determining the full scope of the invention.
Number | Date | Country | Kind |
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2001-224854 | Jul 2001 | JP | national |
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5-183978 | Jul 1993 | JP |
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Number | Date | Country | |
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20030021427 A1 | Jan 2003 | US |