I finally got around to checking the inrush current on my windlass, and it turned out to be more interesting than I expected.
Setup:[/b]I made a shunt from 8 m of 16 mm² copper cable. I chose that length so the voltage drop would be in actual volts, not millivolts buried in the scope’s noise. Resistance came out to about 16 mΩ after calibration with a known current. The shunt went on the positive feed between the battery and the windlass main relay/contactor.
I also took some measurements directly at the battery terminals, but for a few complicated reasons they turned out to be invalid. I’ll need to redo those before I can share anything useful from them. So the numbers below are all taken right at the windlass input.
Gear:* Hantek DSO2D15 oscilloscope, DC-coupled, bandwidth limit OFF.
* 100:1 probes (being careful not to let the scope magic smoke out).-
I should have used 1:1 or better still my 10:1 probes but i started with the assumption I would also measure the back-emf voltages - which i didn't do in the end. 😉
Scope’s noise floor is a bit rubbish on anything but clean mains, but by using higer resistances I could get good results.
* Windlass:
1500 W QUICK Antares, 12 V, 10 mm chain, anchored in 16 m at the time.

When the relay closed, the contact bounce was huge. The scope showed a clear two-phase “ringing” pattern — a primary bounce, then a secondary one a few milliseconds later.
I’m sure it’s real and not a measurement glitch because it was consistent across multiple runs.
No LoadContact bounce voltage: +7.00 V to –4.56 V → 11.84 V p-p
Bounce current: 11.84 V / 0.016 Ω ≈ 740 A p-p (first ~30 ms)
Inrush peak: 215 A at ~15 ms, then tapering to ~63 A steady.
Moderate LoadContact bounce voltage: +9.80 V to –9.00 V → 18.80 V p-p
Bounce current: 18.80 V / 0.016 Ω ≈ 1,175 A p-p (first ~30 ms).
Contact bounce current p-p = 1,175 A p-p (first ~30 ms).
Measured inrush (example): 4.00 V across 16 mΩ →
So 4 V over 16 mΩ corresponds to 250 A.
Takeaways
The peak bounce current is massive — over 1.1 kA for < 30mS
That’s a lot of stress on the relay contacts, wiring, and anything else in the circuit.
The two-phase bounce could be down to mechanical contact rebound mixed with the motor and wiring acting like a resonant circuit.
- I have added more screen grabs from my oscilloscope - in the first post