Choosing a ferrite bead and a common-mode choke
How to choose ferrite beads and common-mode chokes by impedance at the problem frequency, rated current and DC bias, self-resonant frequency and saturation.
Adding a ferrite bead or choke “to see what happens” is cheap, but if the impedance at the problem frequency is low it does nothing, and a resonance can even make things worse.
Selection criteria
- Impedance at the problem frequency: read the value from the datasheet impedance-versus-frequency curve at your frequency. Do not choose on the single 100 MHz figure.
- Check whether the resistive part dominates. At high frequencies a bead absorbs energy as heat when its resistive part is large.
- DC bias: inductance and impedance fall as current flows. Check the curve near the rated current.
- Self-resonant frequency (SRF): above it the part becomes capacitive and loses effectiveness.
- Saturation: a common-mode choke can saturate with large differential current. Check rated current and differential-mode (leakage) inductance.
Things to watch
- A bead in series with a power line can form an LC resonance with nearby capacitors. Calculate the resonant frequency (calculator: LC filter).
- Beads also affect signal quality. On high-speed signals check bandwidth first.
- Placement matters. Put it close to the noise source or connector with a short ground path.
Impedance figures use different measurement conditions per part. Do not conclude from typical values; compare the spectrum before and after on the real board.
Field notes
- Parts such as ferrites are effective at reducing a problem band. However, the noise often did not disappear but moved to another band.
- So apply a ferrite while watching the measurement and re-check the whole band afterwards.
Related calculators
Results and summaries are for reference. For certification and test reports use the latest official standard text and calibrated instrument data.