gopinsora / ESPRSSO32 Smart Scale AI Auto Layout [Example] 95P6

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Understanding Schematic Design

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Multiple decoupling capacitors on the ESP32’s power pins serve to filter noise across a very wide frequency range. Each value has its own “sweet-spot” impedance vs. frequency curve, so by combining them you get low impedance from DC up into the hundreds of megahertz.

Table


Capacitor ValuePurposeFrequency Range Filtered
10 µF (bulk)Holds up the rail for large, slow transients (e.g. Wi-Fi bursts)DC – a few MHz
0.1 µF (mid-range)Local energy reservoir for medium-speed switching~1 MHz – 50 MHz
0.01 µF or less (high-freq)Snubs very fast spikes and RF noise50 MHz – hundreds MHz
By placing:
– a large bulk cap close to your regulator,
– a 100 nF right beside the ESP32 IC1, and
– a small high-frequency cap (e.g. 10 nF or lower) right at the power pin itself
you ensure that switching currents and RF bursts from the ESP32 have a low-impedance path to ground at all relevant frequencies, preventing supply-rail dips, oscillation, and RF-induced glitches.
Find bulk capacitor
Find high-frequency cap
Layout guidelines from datasheet
Routing practice
311 days

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    ESPRSSO32 Smart Scale AI Auto Layout [Example] 95P6

    ESPRSSO32 Smart Scale AI Auto Layout [Example] 95P6 thumbnail
    Learn how to use AI Auto Layout on this ESP32 Espresso Smart Scale! In one click you’ll see AI Auto Layout perform magic. Pay close attention to how we recommend creating rulesets, zones, and fanouts. By copying the setup in this example on your own project, you’ll have a fully routed board in no time!

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