Analog Multiplexing with ADC: A Viable Solution?

AI Thread Summary
Multiplexing multiple analog signals and feeding them into an ADC is a common practice, often utilizing a multiplexer (MUX) as part of the sample and hold circuit. The hold capacitor is positioned between the MUX and the ADC input, with the sample time influenced by the MUX switch impedance. However, caution is advised when using this method with sigma-delta ADCs, as the MUX switching rate must be significantly slower than the ADC's clock rate. The discussion emphasizes the feasibility of this approach while highlighting specific considerations for optimal performance. Overall, multiplexing with ADCs is a viable solution when implemented correctly.
dyordyen
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Is it possible? Feasible?
 
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So a bunch of separate ADCs, some network hardware and a bunch of DACs and output amps?
Any reason to do this rather than just an analogue MUX?
 
dyordyen said:
Is it possible? Feasible?

The function of an Analog-to-Digital converter (ADC) is nothing like an analog MUX function. What are you trying to do?
 
Using only ADCs? No, it's not possible.

- Warren
 
Oh wait, I'm sorry... I meant, multiplexing multiple analog signals then feeding it to an ADC...
 
dyordyen said:
Oh wait, I'm sorry... I meant, multiplexing multiple analog signals then feeding it to an ADC...

Yes, that's done all the time. You use the MUX as the sample part of your sample and hold circuit, with the hold cap between the MUX and the ADC input. The sample time depends on the impedance of the MUX switches.
 
dyordyen said:
Oh wait, I'm sorry... I meant, multiplexing multiple analog signals then feeding it to an ADC...

berkeman said:
Yes, that's done all the time. You use the MUX as the sample part of your sample and hold circuit, with the hold cap between the MUX and the ADC input. The sample time depends on the impedance of the MUX switches.

but don't do that with a sigma-delta ADC, unless the MUX switching rate is far, far slower than the clock for the sigma-delta ADC.
 
Thanks guys :)
 
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