Claims
- 1. A louspeaker apparatus comprising a woofer driver with a frequency response range of 20 Hz to 150 Hz, a lower midrange driver with a frequency response range of 150 Hz to 800 Hz, an upper midrange driver with a frequency response range of 800 Hz to 5000 Hz and a tweeter driver with a frquency response range of 5000 Hz to 20,000 Hz that are connected to a signal input terminal and a ground terminal, with a connection to said input terminal being made through a crossover filter network, which includes the following circuitry:
- a 5.1 millihenry first inductor having one terminal thereof connected to said input terminal,
- a 5.1 millihenry second inductor connected between the other terminal of said first inductor and one terminal of said woofer driver which has its other terminal connected to said ground terminal,
- a 3.2 millihenry third inductor mutually coupled to said second inductor and having one terminal thereof connected at said connection of said second inductor to said woofer,
- a 100 microfarad first capacitor connected between the other terminal of said third inductor and said ground terminal,
- a 220 microfarad second capacitor connected between said connection of said first inductor to said second inductor and said ground terminal,
- a 100 microfarad third capacitor having one terminal thereof connected to said input terminal,
- a 1.55 millihenry fourth inductor having one terminal thereof connected to the other terminal of said third capacitor,
- a 1.7 millihenry fifth inductor connected between the other terminal of said fourth inductor and one terminal of said lower midrange driver which has its other terminal connected to said ground terminal,
- a 30 ohm first resistor conencted between said ground terminal and said connection of said fifth inductor to said lower midrange driver,
- a 757 microhenry sixth inductor mutually coupled to said fifth inductor and having one terminal thereof connected at said connection of said fifth inductor to said lower midrange driver,
- a 16 microfarad fourth capacitor connected between said ground terminal and the other terminal of said sixth inductor,
- a 36 microfarad fifth capacitor connected between said ground terminal and said connection of said fourth inductor to said fifth inductor,
- an 8.4 millihenry seventh inductor having one terminal thereof connected at said connection of said third capacitor to said fourth inductor,
- a 470 microfarad sixth capacitor connected between said ground terminal and the other terminal of said seventh inductor,
- a 16 microfarad seventh capacitor having one terminal thereof connected at said connection of said third capacitor to said fourth inductor,
- a 757 microhenry eighth inductor connected between said ground terminal and the other terminal of said seventh capacitor,
- a 14 microfarad eighth capacitor having one terminal thereof connected at said connection of said eighth inductor to said seventh capacitor,
- a 320 microhenry ninth inductor having one terminal theroef connected to the other terminal of said eighth capacitor,
- a 540 microhenry tenth inductor connected between the other terminal of said ninth inductor and one terminal of said upper midrange driver which has its other terminal connected to said ground terminal,
- a 30 ohm second resistor connected between said ground terminal and said connection of said tenth inductor to said upper midrange driver,
- a 215 microhenry eleventh inductor mutually coupled to said tenth inductor and having one terminal thereof connected at said connection of said tenth inductor to said upper midrange driver,
- a 3.3 microfarad ninth capacitor connected between said ground terminal and the other terminal of said eleventh inductor,
- a 10 microfarad tenth capacitor connected between said ground terminal and said connection of said ninth inductor to said tenth inductor,
- a 2.1 millihenry twelfth inductor having one terminal thereof connected at said connection of said eighth capacitor to said ninth inductor,
- a 24 microfarad elventh capacitor connected between said ground terminal and the other terminal of said twelfth inductor,
- a 3.0 microfarad twelfth capacitor having one terminal thereof connected to said connection of said eighth capacitor to said ninth inductor,
- a 170 microhenry thirteenth inductor connected between said ground terminal and the other terminal of said twelth capacitor,
- a 1.0 microfarad thirteenth capacitor having one terminal thereof connected at said connection of said twelth capacitor to said thirteenth inductor,
- a 1.68 microfarad fourteenth capacitor having one terminal thereof connected to both the other terminal of said thirteenth capacitor and one terminal of said tweeter driver, which has its other terminal connected to said ground terminal,
- a 540 microhenry fourteenth inductor mutually coupled with said thirteeth inductor and connected between said ground terminal and the other terminal of said fourteenth capacitor,
- a 15 ohm third resistor connected between said ground terminal and said connection of said fourteenth capacitor to said thirteenth capacitor,
- said circuit elements in said crossover filter network and said drivers operating in combination to provide separate and adjacently disposed audio output transfer functions for said drivers within the overall transfer function for audio output from said loudspeaker apparatus and also to provide transmission zeros in said transfer function for audio output from said loudspeaker apparatus at frequencies outside the flat ranges of frequencies over which substantially no attenuation occurs for said drivers to assure that said flat range of frequencies for each said driver is exclusive and distinct from said flat ranges of frequencies for said other drivers.
- 2. A loudspeaker system comprising in combination:
- at least first and second loudspeaker drivers:
- first crossover filter network network means connected to said first loudspeaker driver and having first inductance means, first capacitance means, and first resistance means arranged to pass, in a first transfer function relationship, first signals of a first frequency range which first signals have a substantially flat signal amplitude response over said first frequency range and arranged to accept first unwanted signal portions whose frequencies are higher than the frequencies of said first frequency range;
- said first crossover filter network means further including second inductance means and second capacitance means designed and arranged with respect to said first inductance means, to said first capacitance means, and to said first resistance means to add a zero of transmission characteristic, to said first transfer function relationship, at a frequency higher than the frequency of said first frequency range whereby said first unwanted signal portions are attenuated at a rate of 40 db per octave or greater;
- second crossover filter network means connected to said second loudspeaker driver and having third inductance means, third capacitance means, and third resistance means arranged to pass, in a second transfer function relationship, second signals of a second frequency range having a frequencies higher than said first frequency range which second signals have a substantially flat signal amplitude response over said second frequency range and arranged to accept second unwanted signal portions whose frequencies are outside of said second frequency range and lower than frequencies of said second frequency range;
- said second crossover filter network means further including fourth inductance means and fourth capacitance means designed and arranged with respect to said third inductance means, to said third capacitance means and to said third resistance means to add a zero of transmission characteristic to said second transfer function relationship at a frequency lower than the frequencies of said second frequency range so that said second unwanted signal portions are attenuated at a rate of 40 db per octave or greater, whereby when said first unwanted signal portions and said second unwanted signal portions have amplitudes of 10 db below said amplitude responses respectively of said first and second signals the frequency difference between said first and second unwanted signal portions is sufficiently small that said first and second unwanted signals portions are barely audible.
- 3. A loudspeaker system according to claim 2 wherein
- said frequency difference between said first and second unwanted signal portions is 1/3 octave or less.
- 4. A loudspeaker system according to claim 2 wherein
- said first inductance means is mutually coupled to said second inductance means and wherein said third inductance means is mutually coupled to said fourth inductance means.
- 5. A loudspeaker system comprising in combination: at least first, second, third and fourth loudspeaker drivers; first crossover filter network means connected to said first loudspeaker driver and having first inductance means, first capacitance means, and first resistance means arranged to pass, in a first transfer function relationship, first signals of a first frequency range which first signals have a substantially flat signal amplitude response over said first frequency range and arranged to accept first unwanted signal protions whose frequencies are higher than the frequencies of said first frequency range;
- said first crossover filter network means further including second inductane means and second capacitance means designed and arranged with respect to said first inductance means, to said first capacitance means, and to said first resistance means to add a zero of transmission characteristic, to said first transfer function relationship, at a frequency higher that the frequencies of said first frequency range whereby said first unwanted signal portions are attenuated at a rate of 40 db per octave or greater;
- second crossover filter network means connected to said second loudspeaker driver and having third inductance means, third capacitance means, and third resistance means arranged to pass, in a second transfer functions relationship, second signals of a second frequency range having frequencies higher than said first frequency range and which second signals have a substantially flat signal amplitude response over said second frequency range and arranged to accept second and third unwanted signal portions whose frequencies are outside of said second frequency range and which second unwanted signals have frequencies which are loser than the frequencies of said second frequency range and which third unwanted signals have frequencies which are higher than the frequencies of said second frequency range;
- said second crossover filter network means further including fourth inductance means and fourth capacitance means designed and arranged with respect to said third inductance means, to said third capacitance means and to said third resistance means to add a first and second zero of transmission characteristic to said second transfer function relationship respectively at a frequency lower than the frequencies of said second frequency range and at a frquency higher than the frequencies of said second frequency range so that both said second and third unwanted signal portions are attenuated at a rate of 40 db per octave or greater, whereby when said first unwanted signal portions adnd said second unwanted signal portions have amplitudes of 10 db below said amplitude response respectively of said first and second signals the frequency difference between said first and second unwanted signal portions is sufficiently small that said first sand second unwanted signal portions are barely audible;
- third crossover filter network means connected to said third loudspeaker driver and having fifth inductance means, fifth capacitance means, and fifth resistance means arranged to pass, in a third transfer function relationship, third signals of a third frequency range having frequencies higher than said second frequency range and which third signals have a substasntially flat signal amplitude response over said third frequency range and arranged to accept fourth and fifth unwanted signal portions whose frequencies are outside of said third frequency range and which fourth unwanted signal portions have frequencies which are lower than the frequencies of said third frequency range and which fifth unwanted signals have frequencies which are higher than the frequencies of said third frequency range;
- said third crossover filter network means further including sixth inductance means and sixth capacitance means designed and arranged with respect to said fifth inductance means, to said fifth capacitance means and to said fifth resistance means to add a first and second zero of transmission characteristic to said third transfer function relationship respectively at a frequency lower than the frequencies of said third frequency range and at a frequency higher than the frequencies of said third frequency range so that both said fourth and fifth unwanted signal portions are attenuated at a rate of 40 db per octave or greater, whereby when said third unwanted signal portions and said fourth unwanted signal portions have amplitudes of 10 db below said amplitude responses respectively of said second and third signals the frequency difference between said third and fourth unwanted signal portions is sufficiently small that said third and fourth unwanted signal portions are barely audible;
- fourth crossover filter network means connected to said fourth louspeaker driver and having seventh inductance means, seventh capacitance means, and seventh resistance means arranged to pass, in a fourth transfer function relationship, fourth signals of a fourth frequency range having frequencies higher than said third frequency range and which fourth signals have a substantially flat signal amplitude response over said fourth frequency range and arranged to accept sixth unwanted signal portions whose frequencies are outside of said fourth frequency range and which sixth unwanted signal portions have frequecies which are lower than the frequencies of said fourth frequency range;
- said fourth crossover filter network means further including eighth inductance means and eighth capacitance means designed and arranged with respect to said seventh inductance means, to said seventh capacitance means and to said seventh resistance means to add a zero of transmission characteristic to said fourth transfer function relationship at a frequency lower than the frequecies of said fourth frequency range so that said sixth unwanted signal portions are attenuated at a rate of 40 db per octave or greater, whereby when said fifth unwanted signal portions and said sixth unwanted signal portions have amplitudes of 10 db below said amplitude responses respectively of said third and fourth signals the frequency difference between said fifth and sixth unwanted signal portions is sufficiently small that said fifth and sixth unwanted signal portions are barely audible.
- 6. A loudspeaker system according to claim 5 wherein
- the difference in frequency between said first unwanted signal portions and said second unwanted signal portions and between said third unwanted signal portions and said fourth unwanted signal portions and between said fifth unwanted signal portions and said sixth unwanted signal portions is each 1/3 octave or less.
CROSS REFERENCE TO RELATED APPLICATIONS
This application is a continuation of application Ser. No. 539,996 which was a continuation-in-part of application Ser. No. 230,442 that was filed on Feb. 2, 1981, which application was a continuation-in-part of application Ser. No. 78,034 that was filed Sept. 24, 1979, all now abandoned.
US Referenced Citations (9)
Continuations (1)
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539996 |
Oct 1983 |
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Continuation in Parts (2)
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230442 |
Feb 1981 |
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78034 |
Sep 1979 |
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