Claims
- 1. A device for amplifying signals for supplying current to a load for a portable electronic unit and simultaneously minimizing power usage, comprising:
- A) a voltage transforming unit having a first differential amplifier, a second differential amplifier and a summer, coupled to receive an input signal that is applied to the first differential amplifier and the second differential amplifier that are arranged to provide outputs to the summer to provide a first current, for transforming the input signal into the first current using a predetermined gain;
- B) adaptive regenerative feedback circuitry having slew-rate based bias current, responsive to the first current and coupled to the voltage transforming unit, for providing output to a multi-transistor final output stage; and
- C) the multi-transistor final output stage that includes first and second preselected transistors that are coupled to the voltage transforming unit to provide feedback to the first differential amplifier and to the second differential amplifier, wherein the multi-transistor final output stage is operably coupled to the adaptive regenerative feedback circuitry, wherein a combined output of the first preselected transistor and the second preselected transistor is provided to a load.
- 2. The device of claim 1 wherein the adaptive regenerative feedback circuitry includes:
- bias control circuitry, operably coupled to the voltage transforming unit, for providing a source/sink current by adjusting a bias current to provide a load pull-up current.
- 3. The device of claim 2 wherein a first transistor and two other transistors of said adaptive regenerative feedback circuitry are p-type metal-oxide-silicon transistors.
- 4. The device of claim 3 wherein the bias control circuitry includes eight transistors, coupled as follows:
- A) a first p-type metal-oxide-silicon transistor for setting bias currents for second and third p-type metal-oxide-silicon transistors, and the first and second preselected transistors;
- B) said second p-type metal-oxide-silicon transistor operably coupled to said third p-type metal-oxide-silicon transistor a mirrored device receiving an output from said third p-type metal-oxide-silicon transistor for, in response to an increase in output source current, increasing the current through a diode-connected MOSFET string;
- C) said third p-type metal-oxide-silicon transistor operably coupled with said second p-type metal-oxide-silicon transistor and the first preselected transistor, a diode-connected device, for, in response to an increase in output source current, providing a signal to said second p-type metal-oxide-silicon transistor for increasing the current, I1+I2, through the diode-connected MOSFET string in response to an output from the voltage-transforming unit indicating positive slew;
- D) the diode-connected MOSFET string, operably coupled to said first and second p-type metal-oxide-silicon transistors including: a first n-type metal-oxide-silicon transistor operably coupled to a fourth p-type metal-oxide-silicon transistor that is operably coupled to a second n-type metaloxide-silicon transistor, wherein the diode-connected MOSFET string is further coupled to a third n-type metal-oxide-silicon transistor that is operably coupled to said third and second p-type metal-oxide-silicon transistors, and to a fifth p-type metal-oxide-silicon transistor that is operably coupled to the voltage transforming unit, in response to current from said first and second p-type metal-oxide-silicon transistors, providing an increased feedback signal for current indicating a positive slew-rate and maintaining an existing feedback signal for current indicating a non-positive slew-rate.
- 5. A device for amplifying signals for supplying current to a load for a portable electronic unit and simultaneously minimizing power usage, comprising:
- A) a voltage transforming unit having a first differential amplifier, a second differential amplifier and a summer, for transforming a received input voltage into a first current using a predetermined gain; and
- B) adaptive regenerative feedback circuitry responsive to the first current for generating a slew-rate based bias current, wherein said regenerative feedback circuitry comprises:
- B1) an adaptive regenerative feedback unit, operably coupled to the voltage transforming unit and to receive the first current from the voltage transforming unit, for providing an adjusting signal for controlling a second current of an output unit wherein the second current is utilized for supplying a source/sink current to the load; and
- B2) the output unit, operably coupled to the voltage transforming unit and to the adaptive regenerative feedback unit, for providing a feedback signal to the voltage transforming unit and for providing the source/sink current for charging/discharging the load.
- 6. The device of claim 5 wherein the adaptive regenerative feedback unit includes:
- bias control circuitry, operably coupled to the voltage transforming unit, for providing feedback to the voltage transforming unit and providing the source/sink current by adjusting the slew-rate based bias current to provide a load pull-up current.
- 7. The device of claim 6 wherein a first transistor and two other transistors of said adaptive regenerative feed back circuitry are p-type metal-oxide-silicon transistors.
- 8. A method for amplifying signals for supplying current to a load for a portable electronic unit and simultaneously minimizing power usage, comprising the steps of:
- A) utilizing a voltage transforming unit having a first differential amplifier, a second differential amplifier and a summer wherein the voltage transforming unit is coupled to receive an input signal that is applied to the first differential amplifier and the second differential amplifier that are arranged to provide outputs to the summer to provide a first current for transforming the input signal into the first current using a predetermined gain;
- B) using an adaptive regenerative feedback circuitry having slew-rate based bias current, wherein the adaptive regenerative feedback circuitry is responsive to the first current and coupled to the voltage transforming unit, and the adaptive regenerative feedback circuitry provides an output to a multi-transistor final output stage; and
- C) utilizing the multi-transistor final output stage that includes first and second preselected transistors that are coupled to the voltage transforming unit to provide feedback to the first differential amplifier and to the second differential amplifier, wherein the multi-transistor final output stage is operably coupled to the adaptive regenerative feedback circuitry, and wherein a combined output of the first preselected transistor and the second preselected transistor is provided to a load.
- 9. The method of claim 8 wherein utilizing the adaptive regenerative feedback circuitry includes the steps of:
- utilizing bias control circuitry, operably coupled to the voltage transforming unit, for providing a source/sink current by adjusting the slew-rate based bias current to provide a load pull-up current.
- 10. The method of claim 9 wherein a first transistor and two other transistors of said adaptive regenerative feedback circuitry are p-type metal-oxide-silicon transistors.
- 11. An amplifier in a liquid crystal display panel for amplifying signals for supplying current to drive columns of the liquid crystal display panel and simultaneously minimizing power usage, the amplifier comprising:
- A) a voltage transforming unit having a first differential amplifier, a second differential amplifier and a summer, coupled to receive an input signal that is applied to the first differential amplifier and the second differential amplifier that are arranged to provide outputs to the summer to provide a first current, for transforming the input signal into the first current using a predetermined gain;
- B) adaptive regenerative feedback circuitry having slew-rate based bias current, responsive to the first current and coupled to the voltage transforming unit, for providing output to a multi-transistor final output stage; and
- C) the multi-transistor final output stage that includes first and second preselected transistors that are coupled to the voltage transforming unit to provide feedback to the first differential amplifier and to the second differential amplifier, wherein the multi-transistor final output stage is operably coupled to the adaptive regenerative feedback circuitry, wherein a combined output of the first preselected transistor and the second preselected transistor is provided to a load.
Parent Case Info
This is a continuation of application Ser. No. 08/433,205, filed May 17, 1995 and now abandoned.
US Referenced Citations (10)
Continuations (1)
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Number |
Date |
Country |
Parent |
433205 |
May 1995 |
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