Title :
Conversion matrix and gain of self-oscillating mixers
Author :
Claassen, Manfred ; Güttich, Ulrich
Author_Institution :
Lehrstuhl fuer Allgemeine Elektrotech. & Angewandte Elektronik, Tech. Univ. Munchen, West Germany
fDate :
1/1/1991 12:00:00 AM
Abstract :
The conversion matrix of self-oscillating mixers is derived from the bias-, amplitude-, and frequency-dependent admittance of the active device together with its dynamic current-voltage characteristic. Components at the image frequency are also taken into account. With this matrix and the circuit admittances at the different frequencies involved, the conversion gain can be expressed. For better insight into the relevant mechanisms, the conversion gain is subdivided into the amplitude response of the self-excited oscillation to an input signal and the demodulation caused by the device internal rectification. The formalism is applied to a simplified model of an oscillating BARITT diode. The resulting analytical expressions allow a discussion of the influence of different device and circuit parameters as well as a qualitative and quantitative comparison with experimental results from a self-oscillating BARITT-diode mixer operating in the V-band at 60 GHz
Keywords :
BARITT diodes; microwave oscillators; mixers (circuits); semiconductor device models; solid-state microwave circuits; solid-state microwave devices; 60 GHz; EHF; V-band; active device; amplitude dependent admittance; amplitude response; analytical expressions; bias dependent admittance; circuit admittances; circuit parameters; conversion gain; conversion matrix; demodulation; device internal rectification; dynamic current-voltage characteristic; experimental results; formalism; frequency-dependent admittance; image frequency; oscillating BARITT diode; quantitative comparison; self-excited oscillation; self-oscillating BARITT-diode mixer; self-oscillating mixers; simplified model; Admittance; Amplitude modulation; Circuits; Diodes; Doppler radar; Frequency conversion; Gunn devices; Image converters; Mixers; Oscillators;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on