Claims
- 1. An amplifying circuit coupled in a negative-feedback configuration, receiving an input voltage and providing an output voltage, comprising
(a) a driving circuit receiving said input voltage and a control signal, and providing said output voltage; said driving circuit in said negative-feedback configuration being characterized by a first transfer function calculated from said control signal to said input voltage; said first transfer function having a pole at a first frequency; and (b) a controller circuit receiving said input voltage and providing said control signal; said controller circuit being characterized by a second transfer function calculated from said input voltage to said control signal; said second transfer function having at least two poles in the frequency range from zero hertz to said first frequency.
- 2. The amplifying circuit of claim 1 wherein
(a) said second transfer function comprises at least one pair of complex-conjugate poles with a quality factor of at least two in the amplifying circuit's signal band.
- 3. The amplifying circuit of claim 1 wherein the magnitude of the product of said first transfer function and said second transfer function is greater than unity at all frequencies below said first frequency divided by fifty.
- 4. The amplifying circuit of claim 1 wherein the magnitude of the product of said first transfer function and said second transfer function is less than unity at all frequencies higher than said first frequency divided by three.
- 5. The amplifying circuit of claim 1 wherein
(a) the driving circuit comprises a first input stage; (b) the controller circuit comprises a second input stage; and (c) said second input stage is designed to have a wider linear input range than said first input stage.
- 6. The amplifying circuit of claim 5 wherein
(a) said second input stage is a least six deci bell more linear than said first input stage when compared with respect to a sinusoidal input signal with a magnitude of one tenth of a volt and oscillating at the amplifying circuit's highest signal-band frequency.
- 7. The amplifying circuit of claim 5 wherein
(a) resistors are used to linearize said second input stage.
- 8. The amplifying circuit of claim 5 wherein
(a) negative feedback is used to linearize said second input stage.
- 9. The amplifying circuit of claim 5 wherein
(a) the transconductance of said first input stage is substantially higher than the transconductance of said second input stage.
- 10. The amplifying circuit of claim 1 wherein
(a) the voltage swing at any node in said controller circuit is substantially smaller than the swing of said output voltage.
- 11. The amplifying circuit of claim 1 further comprising
(a) an impedance element providing negative feedback for said amplifying circuit; and (b) a digital-to-analog converter providing a current signal flowing through said impedance element.
- 12. The amplifying circuit of claim 11 wherein
(a) said impedance element has a relatively higher impedance at frequencies in the amplifying circuit's signal band.
- 13. A method for linearizing a negative-feedback system, which receives an input signal and provides an output signal, comprising the steps of:
(a) providing a linear network generating an error signal as a linear function of said input signal and said output signal; (b) generating a first signal proportional to said error signal; the phase delay of said first signal with respect to said error signal being negligible in a first frequency range wider than said negative-feedback system's bandwidth; (c) generating a second signal by selectively amplifying the error signal's spectral components in said negative-feedback system's signal band with a filter of at least second order; and (d) generating said output signal by combining said first signal and said second signal.
- 14. The method of claim 13 wherein the step of generating said second signal is implemented to have a better large-signal linearity than the large-signal linearity of the generation of said first signal.
- 15. The method of claim 13 wherein the step of generating said output signal comprises the steps of:
(a) generating a sum signal by adding said first signal and said second signal; and (b) integrating the sum signal.
- 16. The method of claim 13 wherein said error signal is a voltage signal, and the step of generating said first signal comprises the step of:
(a) generating a differential current signal using a transconductance stage comprising a differential pair.
- 17. The method of claim 16 wherein the absolute level of distortion produced by said differential pair, when providing a full-scale output signal during normal operation, may be substantially higher than the distortion level reflected by the error signal.
- 18. The method of claim 13 wherein the step of generating said second signal comprises the step of
(a) providing negative feedback.
- 19. The method of claim 13 wherein the step of calculating said second signal comprises the step of
(a) amplifying the error signal with a circuit having a pair of complex-conjugate poles at a high signal-band frequency.
- 20. The method of claim 13 wherein the step of generating said second signal comprises the step of
(a) providing a linear filter, which would have poles and zeros essentially equivalent to those of a chebychev high-pass filter, if configured in the unity-gain configuration.
- 21. A digital-to-analog converter system, receiving a digital input signal and providing a voltage output signal, comprising
(a) a load having a first terminal and a second terminal across which said voltage output signal is defined; (b) an operational amplifier having an inverting input terminal and a non-inverting output terminal; the output terminal being connected to said load; (c) an impedance element connected between said operational amplifier's inverting input terminal and non-inverting output terminal; (d) a first digital-to-analog converter receiving said digital input signal and providing a first current signal directly to said load; and (e) a second digital-to-analog converter receiving said digital input signal and providing a second current signal to the inverting input terminal of said operational amplifier.
- 22. The digital-to-analog converter system of claim 21 further comprising
(a) means to adjust the gain of said first digital-to-analog converter such that the current provided through said operational amplifier's output terminal is reduced.
- 23. The digital-to-analog converter system of claim 21 further comprising
(a) means to adjust the reactive component of said impedance element's impedance.
- 24. The digital-to-analog converter system of claim 21 further comprising
(a) a third digital-to-analog converter receiving the first-order difference of said digital input signal and providing a third current signal to said load; and (b) means to adjust the gain of said third digital-to-analog converter.
- 25. The digital-to-analog converter system of claim 21 wherein
(a) said operational amplifier includes a signal path having a pair of complex-conjugate poles at a frequency which is at least one thousandth and at most one tenth of said operational amplifier's unity-gain frequency.
Priority Claims (1)
| Number |
Date |
Country |
Kind |
| PCT/IB99/01279 |
Jul 1999 |
IB |
|
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This invention is based on and claims priority from PCT application PCT/IB99/01279 filed Jul. 13, 1999, which is based on and claims priority from U.S. Provisional Patent Application No. 60/092,625 filed Jul. 13, 1998.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60092625 |
Jul 1998 |
US |