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"Chapter 1 - The Op Amp's Place in the World" - HTL Wien 10

"Chapter 1 - The Op Amp's Place in the World" - HTL Wien 10

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Wireless Systems<br />

13-2<br />

Signal @<br />

– <strong>10</strong>4 dBm<br />

( Interferer @<br />

– 13 dBm )<br />

900<br />

MHz<br />

Duplexer LNA<br />

Image<br />

Rejection<br />

Filter 1 1st IF<br />

35 MHz<br />

B/W<br />

Image<br />

Rejection<br />

Filter 2<br />

RFLO<br />

2nd<br />

Mixer<br />

2nd<br />

RFLO<br />

SAW<br />

Filter<br />

(660 MHz)<br />

Image<br />

Rejection<br />

Filter 3<br />

200 kHz<br />

B/W<br />

(222.7 MHz)<br />

1st IF<br />

Amp<br />

2nd<br />

IF Amp<br />

AGC LPF<br />

Figure 13–1. A Typical GSM Cellular Base Station Receiver Block Diagram<br />

17.3<br />

MHz<br />

ADC<br />

fs = 52 MHz<br />

<strong>The</strong> receiver conta<strong>in</strong>s two mixer stages rem<strong>in</strong>iscent of a classic superhetrodyne receiver<br />

with good selectivity. <strong>The</strong> process of hetrodyn<strong>in</strong>g <strong>in</strong>volves <strong>the</strong> translation of one frequency<br />

to ano<strong>the</strong>r by <strong>the</strong> use of a mixer and local oscillator (LO) offset at <strong>the</strong> proper frequency<br />

to convert <strong>the</strong> RF signal to <strong>the</strong> desired IF. <strong>The</strong> LO signal is at a much higher level than<br />

<strong>the</strong> RF signal. In Figure 13–1, <strong>the</strong> 900 MHz RF signal is picked up by <strong>the</strong> antenna and<br />

amplified by a low-noise amplifier (LNA). After be<strong>in</strong>g sufficiently amplified by <strong>the</strong> LNA to<br />

overcome <strong>the</strong> noise level, <strong>the</strong> RF signal passes through a bandpass filter (BPF) used to<br />

provide image rejection and sufficient selectivity prior to <strong>the</strong> first stage mix<strong>in</strong>g.<br />

High selectivity prevents adjacent channel energy from gett<strong>in</strong>g <strong>in</strong>to <strong>the</strong> <strong>in</strong>put of <strong>the</strong> ADC<br />

and decreas<strong>in</strong>g <strong>the</strong> receiver dynamic range. A strong signal <strong>in</strong> an adjacent channel<br />

causes <strong>in</strong>termodulation products <strong>in</strong> <strong>the</strong> receiver that can result <strong>in</strong> loss of <strong>the</strong> received signal.<br />

<strong>The</strong> band-pass filter is implemented with a surface acoustic wave (SAW) filter. <strong>The</strong><br />

SAW filter provides very sharp edges to <strong>the</strong> passband, with m<strong>in</strong>imum ripple and phase<br />

distortion.<br />

<strong>The</strong> first stage mixer down-converts <strong>the</strong> band-limited RF signal with <strong>the</strong> LO signal, produc<strong>in</strong>g<br />

a number of new frequencies <strong>in</strong> <strong>the</strong> spectrum, <strong>in</strong>clud<strong>in</strong>g <strong>the</strong> sum frequency component,<br />

<strong>the</strong> difference frequency component, and spurious responses. <strong>The</strong> first stage IF filter<br />

provides sufficient filter<strong>in</strong>g after <strong>the</strong> mix<strong>in</strong>g circuit. It selects <strong>the</strong> difference frequency<br />

component while reject<strong>in</strong>g <strong>the</strong> sum frequency component and undesirable spurious responses.<br />

Pass<strong>in</strong>g <strong>the</strong> difference frequency component on to <strong>the</strong> next stage of <strong>the</strong> receiver<br />

makes it much easier to provide <strong>the</strong> ga<strong>in</strong> and filter<strong>in</strong>g needed for proper receiver function-

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