Claims
- 1. A thermoelectric cooler circuit comprising:
a temperature sensor in thermal communication with a component; a thermoelectric cooler in thermal communication with the component; and a power amplifier electrically coupled to the thermoelectric cooler, the power amplifier operating as a controlled current source to efficiently supply current to the thermoelectric cooler when maximum cooling of the component is required.
- 2. The thermoelectric cooler circuit of claim 1, wherein the temperature sensor comprises a thermistor.
- 3. The thermoelectric cooler circuit of claim 2 further including a voltage divider circuit, wherein the thermistor is included in the voltage divider circuit.
- 4. The thermoelectric cooler circuit of claim 2, wherein the voltage drop across the thermistor is compared to a reference voltage which corresponds to the voltage drop across the thermistor when the thermistor is operated at a desired setpoint temperature.
- 5. The thermoelectric cooler circuit of claim 1, wherein the thermoelectric cooler has an optimal operating current which corresponds with a maximum cooling requirement of the component.
- 6. The thermoelectric cooler circuit of claim 1, wherein the impedance of the thermoelectric cooler drops substantially all of a supply voltage when meeting a maximum cooling requirement of the component.
- 7. The thermoelectric cooler circuit of claim 1, wherein the power amplifier is a power FET.
- 8. A method of operating thermoelectric cooler circuitry comprising:
placing a temperature sensor and a thermoelectric cooler in thermal communication with a component to be temperature-controlled, the temperature sensor and the thermoelectric cooler being electrically coupled to a power amplifier; sensing the temperature of the component using the temperature sensor; and operating the power amplifier as a controlled current source to supply current to the thermoelectric cooler at near-perfect efficiency when maximum cooling of the component is required.
- 9. The method of claim 8, wherein the temperature sensor is a thermistor.
- 10. The method of claim 8, comprising providing a voltage divider circuit and a regulated supply voltage and integrating the thermistor into the voltage divider circuit.
- 11. The method of claim 8 further comprising initial:
selecting the thermoelectric cooler to have an optimal operating current that corresponds with the maximum cooling requirement of the component, and selecting the thermoelectric cooler to have an impedance that drops substantially all of the supply voltage when the thermoelectric cooler is operated to provide a maximum cooling requirement to the component.
- 12. The method of claim 8 further comprising operating the power amplifier using a power supply voltage of approximately 5 volts or less.
1. PRIORITY
[0001] This is a divisional U.S. patent application Ser. No. 09/769,082, filed Jan. 24, 2001, the disclosure of which is incorporated herein by reference, to which priority under 35 U.S.C. § 120 is claimed.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09769082 |
Jan 2001 |
US |
Child |
10639872 |
Aug 2003 |
US |