0.91 Ω resistor colour code
Four bands: White · Brown · Silver · Gold. The first two give the digits, the third multiplies, the fourth states how far off the real part may be.
Below 1 Ω a resistor stops being a resistor in the usual sense. Values like this sit in series with a load so a circuit can measure the current through them, or they limit inrush. The silver multiplier band is what takes the value under one ohm — and nothing takes it below 0.1 Ω, because no colour means ×0.001. Smaller shunts exist; their value is printed on the body instead.
Nominal
0.91 Ω
0.91 ohms
Real range at ±5%
0.8645 Ω – 0.9555 Ω
A gold band allows this much drift.
Series
E24
A current-sense value. Rarely in a hobby parts drawer.
Band by band
| Band | Colour | Meaning |
|---|---|---|
| 1 | White | 1st digit — 9 |
| 2 | Brown | 2nd digit — 1 |
| 3 | Silver | Multiplier — ×0.01 |
| 4 | Gold | Tolerance — ±5% |
How much it can take
Current and dissipation across the resistor, and the package you need. The suggested rating keeps a factor of two in hand, which is what anyone building a board actually does.
| Across it | Current | Dissipated | Package to pick |
|---|---|---|---|
| 3.3 V | 3.63 A | 12 W | no standard part — needs a power resistor or a heatsink |
| 5 V | 5.49 A | 27.5 W | no standard part — needs a power resistor or a heatsink |
| 12 V | 13.2 A | 158 W | no standard part — needs a power resistor or a heatsink |
| 24 V | 26.4 A | 633 W | no standard part — needs a power resistor or a heatsink |
What you can actually get
Standard on paper, absent from the shelf.
0.91 Ω is a proper E24 value, but no part carrying it is currently held for assembly. The nearest value you will actually find is 1 Ω.
Assembly stock from the JLCPCB library, read 2026-09-24. That is what a board house will place for you — not everything a distributor sells.
The same value, marked differently
Values that can overlap this one
At ±5% the tolerance bands of neighbouring values run into each other. A part sold as one of these could measure the same as a 0.91 Ω — which is why measuring beats reading when it matters.
If you do not have one
Standard values that land within 1% of 0.91 Ω when combined.