Claims
- 1. An amplifier, comprising:
a pair of cathode-coupled pentode vacuum tubes, a first pentode of the pair having a control grid configured to receive an input signal, and a second pentode of the pair having a control grid configured to be coupled to an input reference signal; and a cascaded voltage regulator having a first stage configured to generate a plate reference voltage for providing voltage to a plate of each pentode, and a second stage configured to generate a screen reference voltage based on the plate reference voltage for providing voltage to a screen grid of each pentode, wherein the amplifier can be configured to generate a pair of complementary output signals at the plates of the pentodes proportional to the input signal.
- 2. The amplifier of claim 1, comprising:
a pair of screen grid resistors. each screen grid resistor having a first terminal connected to the screen reference voltage and a second terminal connected to the screen grid of a respective one of the pentodes.
- 3. The amplifier of claim 2, wherein the screen grid resistors are unequal by an amount proportional to an amount of mismatch between the pair of complementary output signals at the plates of the pentodes.
- 4. The amplifier of claim 2, comprising:
an R-C network coupled between the plates of the pentodes.
- 5. The amplifier of claim 1, comprising:
a common cathode resistor having a first terminal connected to the cathodes of the pentodes and a second terminal connected to a cathode reference voltage.
- 6. The amplifier of claim 5, wherein the cascaded voltage regulator is configured to generate the cathode reference voltage.
- 7. The amplifier of claim 1, wherein a portion of the input reference signal is proportional to at least one of the pair of complementary output signals.
- 8. The amplifier of claim 1, comprising:
a pair of substantially equal plate resistors, each plate resistor having a first terminal connected to the plate reference voltage and a second terminal connected to the plate of a respective one of the pentodes.
- 9. The amplifier of claim 1, each stage of the cascaded voltage regulator comprising:
a resistor having a first terminal connected to an output of the stage; a diode having a first terminal connected to a second terminal of the resistor and a second terminal connected to a ground reference, the diode having a turn-on voltage related to the reference voltage generated by the stage; and a voltage regulating device having an output terminal connected to the output of the stage, an input terminal connected to an input reference voltage, and a control terminal connected to a control bias reference, wherein the input reference voltage of the second stage corresponds to the plate reference voltage at the output of the first stage.
- 10. The amplifier of claim 9, the cascaded voltage regulator comprising:
a transformer having a primary winding connected to an AC line voltage and secondary winding configured to generate an AC reference voltage proportional to the AC line voltage; a bridge-rectifier circuit coupled to the secondary winding of the transformer for generating a DC reference voltage; and a filter network coupled to the bridge-rectifier circuit for generating a filtered DC reference voltage, wherein the input reference voltage of the first stage corresponds to the filtered DC reference voltage.
- 11. An amplifier, comprising:
a pair of vacuum tubes, each vacuum tube having a control grid configured to receive a respective control bias signal; a grid bias circuit having independent segments configured to generate the respective control bias signals; and a servo circuit having a pair of inputs, each input coupled to a cathode of a respective one of the vacuum tubes, and an output detachably coupled to one segment of the grid bias circuit, wherein the servo circuit can be configured to adjust the control bias signal for one of the vacuum tubes until a plate current in the one vacuum tube is substantially equal to a plate current in the other vacuum tube.
- 12. The amplifier of claim 11, the servo circuit comprising:
a difference amplifier having a pair of inputs corresponding to the pair of servo circuit inputs, and an output configured to generate an error signal proportional to a difference of cathode voltages of the vacuum tubes, the error signal is used to adjust the control bias signal of the one vacuum tube.
- 13. The amplifier of claim 12, comprising:
a pair of substantially equal cathode resistors, each cathode resistor having a first terminal connected to a cathode reference voltage and a second terminal connected to the cathode of a respective one of the vacuum tubes, wherein the cathode voltage of each vacuum tube corresponds to a voltage drop across a respective one of the cathode resistors.
- 14. The amplifier of claim 11, each segment of the grid bias circuit comprising:
a tapped resistor having a first variable resistor coupled between a first grid reference voltage and a variable center tap of the tapped resistor, and a second variable resistor coupled between the center tap and a second grid reference voltage, wherein the respective control bias signal generated by each segment is proportional to a voltage at the center tap of each tapped resistor.
- 15. The amplifier of claim 14, the servo circuit comprising:
a difference amplifier having a pair of inputs corresponding to the pair of servo circuit inputs, and an output configured to generate an error signal proportional to a difference of cathode voltages of the vacuum tubes; and a variable current shunt having a control input coupled to the output of the difference amplifier, and an output detachably coupled to the second variable resistor of the one grid bias circuit segment at a terminal opposite the center tap, wherein the output of the variable current shunt corresponds to the output of the servo circuit and is configured to draw current through the first and second variable resistors of the one grid bias circuit segment in an amount proportional to the error signal to adjust the control bias signal of the one vacuum tube.
- 16. The amplifier of claim 14, wherein the tapped resistor of the one grid bias circuit segment is configured to generate a control bias signal corresponding to a near-cutoff plate current in the one vacuum tube when the output of the servo circuit is detached from the one grid bias circuit segment.
- 17. The amplifier of claim 11, wherein each control grid is configured to receive one of a complementary pair of audio signals.
- 18. The amplifier of claim 11, wherein a plate of each vacuum tube is coupled to a respective end of a primary winding of an audio output transformer.
- 19. The amplifier of claim 11, wherein a plate of each vacuum tube is coupled to a respective terminal of a speaker.
- 20. An amplifier, comprising:
a pair of cathode-coupled pentode vacuum tubes, a first pentode of the pair having a control grid configured to receive an input signal, and a second pentode of the pair having a control grid configured to be coupled to an input reference signal; a cascaded voltage regulator having a first stage configured to generate a plate reference voltage for providing voltage to a plate of each pentode, and a second stage configured to generate a screen reference voltage based on the plate reference voltage for providing voltage to a screen grid of each pentode; a second pair of vacuum tubes, each vacuum tube of the second pair having a control grid configured to receive a respective control bias signal and one of a pair of complementary output signals generated at the plates of the pentodes proportional to the input signal; a grid bias circuit having independent segments configured to generate the respective control bias signals; and a servo circuit having a pair of inputs, each input coupled to a cathode of a respective one of the vacuum tubes of the second pair, and an output detachably coupled to one segment of the grid bias circuit, wherein the servo circuit can be configured to adjust the control bias signal for one of the vacuum tubes of the second pair until a plate current in the one vacuum tube is substantially equal to a plate current in the other vacuum tube of the second pair.
RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/438,688, titled “Push-Pull Power Amplifier”, filed on Jan. 8, 2003, and of U.S. Provisional Application No. 60/499,773, titled “Servo Offset Control of Power Tubes in a Push-Pull Amplifier”, filed on Sep. 3, 2003, the entire contents of which are incorporated here by reference.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60438688 |
Jan 2003 |
US |
|
60499773 |
Sep 2003 |
US |