Claims
- 1. A power sensing RF termination comprising:
a first and second temperature sensitive resistors connected at a first common junction; a switching means for connecting either an RF input or a DC power reference to the first common junction; a first switch for connecting either a DC voltage source or a first resistor to the first temperature sensitive resistor, the first switch and the first temperature sensitive resistor connected at a second common junction; and a second resistor connected with the second temperature sensitive resistor at a third common junction.
- 2. The power sensing RF termination in accordance to claim 1 wherein the first temperature sensitive resistor has a positive temperature coefficient of resistance and the second temperature sensitive resistor has a negative temperature coefficient of resistance.
- 3. The power sensing RF termination in accordance to claim 2 wherein the first and second temperature sensitive resistors have substantially the same temperature coefficient of resistance and substantially the same nominal resistance at room temperature.
- 4. The power sensing RF termination in accordance to claim 1, wherein a third resistor is connected in series to the DC voltage source such that the third resistor is connected between the DC voltage source and the first switch when the first switch is closed to apply the DC voltage source to the power sensing RF termination.
- 5. The power sensing RF termination in accordance to claim 1, wherein the switching means comprises a second switch which either connects or disconnects the RF input to a first capacitor, said capacitor being connected to the first common junction.
- 6. The power sensing RF termination in accordance to claim 5, wherein the switching means further comprises a third switch which either connects or disconnects the DC power reference to a fourth resistor, said fourth resistor being connected to the first common junction.
- 7. The power sensing RF termination in accordance to claim 1, wherein a second capacitor is connected between the second common junction and a ground reference and wherein a third capacitor is connected between the third common junction and a ground reference.
- 8. The power sensing RF termination in accordance to claim 1 wherein the first and second temperature sensitive resistors are seen by the RF input to be connected in parallel.
- 9. The power sensing RF termination in accordance to claim 1, wherein a fifth resistor is connected between the second common junction and a first output terminal, a sixth resistor is connected between the first common junction and a second output terminal, and a seventh resistor is connected between the third common junction and a third output terminal.
- 10. A method for calibrating a power sensing RF termination comprising a first temperature sensitive resistor having first and second terminals, a second temperature sensitive resistor having third and fourth terminals, said second terminal of the first temperature sensitive resistor being connected to the third terminal of the second temperature sensitive resistor and forming a common junction, a third resistor connected between the first terminal and ground and a fourth resistor connected between the fourth terminal and ground which method comprises:
supplying a DC power reference to the RF termination in the absence of an RF input; measuring a first voltage corresponding to the voltage at the first terminal of the first temperature sensitive resistor, a second voltage corresponding to the voltage at the common junction, and a third voltage corresponding to the voltage at the fourth terminal of the second temperature sensitive resistor; and determining the power absorbed in the first and second temperature sensitive resistors from the measurements of the first, second, and third voltages.
- 11. The method in accordance with claim 10 wherein the first temperature sensitive resistor has a positive temperature coefficient of resistance and the second temperature sensitive resistor has a negative temperature coefficient of resistance.
- 12. The power sensing RF termination in accordance to claim 11 wherein the first and second temperature sensitive resistors have substantially the same temperature coefficient of resistance and substantially the same nominal resistance at room temperature.
- 13. The method in accordance with claim 10 wherein the step of determining the power in the first and second temperature sensitive resistors further comprises determining a first current in the first temperature sensitive resistor and a second current in the second temperature sensitive resistor.
- 14. The method in accordance with claim 11, wherein a table is formed correlating the power absorbed in the first and second temperature sensitive resistors to the ratio between the resistance value of the first or second temperature sensitive resistor and the sum of the resistance values of the first and second temperature sensitive resistors.
- 15. The method in accordance with claim 11 wherein a table is formed correlating the power absorbed in the first and second temperature sensitive resistors to the ratio between a voltage drop across the first or second temperature sensitive resistor and the voltage drop across the first and second temperature sensitive resistors.
- 16. The method in accordance with claim 15, wherein the table is formed over the range of the power for which the power sensing RF termination is used.
- 17. A power sensing RF termination comprising:
first and second temperature sensitive resistors connected at a first common junction; and a means for calibrating the power sensing RF termination.
- 18. The power sensing RF termination in accordance with claim 17, wherein the means for calibrating the power sensing termination comprises:
a switching means for connecting either an RF input or a DC power reference to the first common junction; a first switch for connecting either a DC voltage source or a first current detecting means to the first temperature sensitive resistor, the first switch and the first temperature sensitive resistor connected at a second common junction; and a second current detecting means connected to the second temperature sensitive resistor at a third common junction.
- 19. The power sensing RF termination in accordance with claim 18 wherein the first temperature sensitive resistor has a positive temperature coefficient of resistance and the second temperature sensitive resistor has a negative temperature coefficient of resistance.
- 20. The power sensing RF termination in accordance to claim 19 wherein the first and second temperature sensitive resistors have substantially the same temperature coefficient of resistance and substantially the same nominal resistance at room temperature.
Parent Case Info
[0001] This is a continuation-in-part of copending application Ser. No. 08/866,959, filed Jun. 2, 1997, which is a continuation-in-part of application Ser. No. 08/773,394, filed Dec. 27, 1996.
Continuations (1)
|
Number |
Date |
Country |
Parent |
09670938 |
Sep 2000 |
US |
Child |
10263007 |
Oct 2002 |
US |
Continuation in Parts (2)
|
Number |
Date |
Country |
Parent |
08866959 |
Jun 1997 |
US |
Child |
09670938 |
Sep 2000 |
US |
Parent |
08773394 |
Dec 1996 |
US |
Child |
08866959 |
Jun 1997 |
US |