Claims
- 1. An active R-C circuit comprising:a fully-differential amplifier; a pair of single-ended buffers; and a resistor-capacitor network connecting the output of the fully-differential amplifier to the inputs of the pair of single-ended buffers configuring the fully-differential amplifier, pair of single-ended buffers and resistor-capacitor network as a hybrid devoid of inductors and realizing a transfer function providing substantial elimination of a receiver path signal associated with a communication medium comprising capacitively coupled non-ideal transformers and transmission lines; wherein the transfer function is represented by the relationship h=k(s-z1)(s-z2)(s-z3)(s-p1)(s-p2)(s-p3)(s-p4), wherein s=j(2πf), p=poles and z=zeroes.
- 2. The active R-C circuit according to claim 1 wherein the transfer function is operational to provide substantially the same level of hybrid rejection as that provided by a hybrid circuit that employs inductors to achieve a desired hybrid rejection associated with the communication medium comprising capacitively coupled non-ideal transformers and transmission lines.
- 3. An active R-C circuit comprising:a pair of fully-differential amplifiers; and a resistor-capacitor network connecting the inputs of the pair of fully-differential amplifiers to realize a transfer function associated with substantial elimination of a receiver path signal associated with a communication medium comprising capacitively coupled non-ideal transformers and transmission lines, the pair of fully-differential amplifiers and the resistor-capacitor network configured as a hybrid devoid of inductors; wherein the transfer function is represented by the relationship h=k(s-z1)(s-z2)(s-z3)(s-p1)(s-p2)(s-p3)(s-p4),wherein s=j(2πf), p=poles and z=zeroes.
- 4. The active R-C circuit according to claim 3 wherein the transfer function is operational to provide substantially the same level of hybrid rejection as that provided by a hybrid circuit that employs inductors to achieve a desired hybrid rejection associated with the communication medium comprising capacitively coupled non-ideal transformers and transmission lines.
- 5. A method of providing a desired hybrid rejection, the method comprising the steps of:providing an active inductor-free R-C circuit comprising a fully-differential amplifier, a pair of single-ended buffers; and a resistor-capacitor network connecting the fully-differential amplifier and the pair of single-ended buffers such that the fully-differential amplifier, pair of single-ended buffers and the resistor-capacitor network realize a hybrid transfer function consisting of three zeros and four poles; connecting the active R-C circuit into a communication system that employs a communication medium comprising transformers; and processing a transmitted signal passing through the active R-C circuit such that the processed signal is combined with a second signal associated with the communication system to substantially prevent the transmitted signal from passing through a receiver path to provide substantially an equal level of hybrid rejection as that provided by a hybrid circuit that employs inductors to achieve a desired hybrid rejection associated with a communication medium comprising capacitively coupled non-ideal transformers and transmission lines.
- 6. A method of providing a desired hybrid rejection, the method comprising the steps of:providing an inductor-free active R-C circuit comprising a pair of fully-differential amplifiers and a resistor-capacitor network connecting the pair of fully-differential amplifiers to realize a hybrid transfer function consisting of three zeros and four poles; connecting the active R-C circuit into a communication system that employs a communication medium comprising transformers; and substantially processing a transmitted signal passing through the active R-C circuit such that the processed signal is combined with a second signal associated with the communication system to substantially prevent the transmitted signal from passing through a receiver path to provide substantially an equal level of hybrid rejection as that provided by a hybrid circuit that employs inductors to achieve a desired hybrid rejection associated with a communication medium comprising capacitively coupled non-ideal transformers and transmission lines.
- 7. The method of claim 5 wherein the transfer function is represented by the relationship h=k(s-z1)(s-z2)(s-z3)(s-p1)(s-p2)(s-p3)(s-p4),wherein s=j(2πf), p=poles and z=zeroes.
- 8. The method of claim 6 wherein the transfer function is represented by the relationship h=k(s-z1)(s-z2)(s-z3)(s-p1)(s-p2)(s-p3)(s-p4),wherein s=j(2πf), p=poles and z=zeroes.
- 9. The active R-C circuit according to claim 1 wherein the transfer function has three zeroes and four poles.
- 10. The active R-C circuit according to claim 3 wherein the transfer function has three zeroes and four poles.
CLAIM TO PRIORITY OF PROVISIONAL APPLICATION
This application claims priority under 35 U.S.C. §119(e)(1) of provisional application serial number 60/406,748, filed Aug. 30, 2002, by Richard K. Hester.
US Referenced Citations (9)
Provisional Applications (1)
|
Number |
Date |
Country |
|
60/406748 |
Aug 2002 |
US |