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ADMV7320 Datasheet(PDF) 23 Page - Analog Devices |
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ADMV7320 Datasheet(HTML) 23 Page - Analog Devices |
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23 / 29 page ![]() Data Sheet ADMV7320 Rev. C | Page 23 of 29 THEORY OF OPERATION The ADMV7320 is a fully integrated SiP, I/Q upconverter that is made up of three functional blocks: a mixer and LO path, an envelope detector, a VGA, and a power detector, and a power amplifier and power detector. MIXER AND LO PATH The first functional block is a gallium arsenide (GaAs) I/Q upconverter driven by a 6× LO multiplier. The 6× multiplier allows the use of a lower frequency range LO input signal between 13.4 GHz and 14.6 GHz. The 6× multiplier is implemented using a cascade of 3× and 2× multipliers. LO buffer amplifiers are included on chip to allow a typical LO drive level of 4 dBm for typical performance. The LO path feeds a quadrature splitter followed by on-chip baluns that drive the I and Q mixer cores. The mixer cores comprise of singly balanced passive mixers. The RF outputs of the I and Q mixers are then summed through an on-chip Wilkinson power combiner, which is then fed into the second functional block. ENVELOPE DETECTOR, VGA, AND POWER DETECTOR The second functional block is a VGA (see Figure 81). The VGA utilizes multiple gain stages and staggered voltage variable attenuation stages to form a low noise, high linearity variable gain amplifier. The first stage of the VGA is a low noise preamp. A portion of the signal is coupled away and further amplified before driving an on-chip envelope detector. The envelope detector provides an output that is proportional to the peak envelope power of the incoming signal. The preamp is followed by the first voltage variable attenuator in the signal path. Then, a second stage amplifier provides additional gain and isolation before driving the second variable attenuator block. Three cascaded gain stages follow the second variable attenuator. At the output of the second stage, another coupler taps off a small portion of the output signal. The coupled signal is presented to an on-chip diode detector for external monitoring of the output power. A matched reference diode, Detector 1 (DET1), is included to help correct for detector temperature dependencies. A typical application circuit for the power detector is shown in Figure 83. See the Applications Information section for further details on biasing the different blocks. The output of the VGA then feeds into the third functional block of the ADMV7320. POWER AMPLIFIER AND POWER DETECTOR The third block is a power amplifier that uses four cascaded gain stages to form the amplifier, see Figure 82.At the output of the last stage, a coupler taps off a small portion of the output signal. The coupled signal is presented to an on-chip diode detector for external monitoring of the output power. A matched reference diode, Detector 2 (DET2), is included to help correct for detector temperature dependencies. DET1_REF DET1_OUT OUTPUT ENVELOPE DETECTOR INPUT VGA_CTL12 ENV_DET Figure 81. Variable Gain Amplifier Circuit Architecture DET2_REF DET2_OUT OUTPUT INPUT Figure 82. Power Amplifier Circuit Architecture |
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