Bias is the single setting that decides whether your linear runs clean and lives a long life, or distorts, splatters across the band, and cooks its finals on the first hard key-up. It's also the setting most often skipped or guessed at. This is the calm, repeatable way to do it — whether you're running RF MOSFETs, bipolar power transistors, or glass.
The goal of Class-AB bias is simple: set just enough idle ("quiescent") current so each device is already slightly turned on before any RF drive arrives. That eliminates the crossover distortion you'd get from a cold Class-B stage, without wasting the power and heat of a true Class-A design. Get it right and your SSB sounds clean and your IMD stays low. Get it wrong in either direction and you've got a problem.
What "bias" actually controls
Every amplifying device needs a small standing current to operate in its linear region. In a transistor that means setting the gate (MOSFET) or base (BJT) voltage so a defined drain/collector current flows with no signal. In a tube it means setting the grid bias so a defined plate (or cathode) current flows at idle. That standing current is your quiescent current, or Iq.
- Too little Iq (cold): the device shuts fully off between RF half-cycles → crossover distortion, raspy audio, and splatter onto adjacent channels.
- Too much Iq (hot): wasted dissipation, excess heat, and on bipolar devices the real risk of thermal runaway — current rises with temperature, which raises temperature, which raises current.
What you need on the bench
- A current meter in the main DC supply line (or the amp's built-in meter) reading the total idle draw.
- A good DMM for bias voltage.
- A dummy load on the output — never set bias into an antenna.
- A way to remove RF drive (key with no audio / no carrier) so you're measuring idle only.
- The device datasheet, and your build's recommended Iq target.
Setting bias on a solid-state amp (MOSFET / BJT)
- Start cold. Turn the bias pot fully to minimum (lowest Iq) before powering up. This is the step people skip and regret.
- Power up with no drive. Apply normal supply voltage, no RF in. Watch the idle current — it should read near zero at minimum bias.
- Bring up Iq slowly. Advance the bias pot until the idle current reaches the target for your design. As a general rule of thumb, RF power devices in an SSB linear are biased to a modest standing current per device — tens to a few hundred milliamps depending on the part — but always use the figure your build or the device datasheet specifies. Sneak up on it; don't spin the pot.
- Let it stabilize. Iq will drift up as the heatsink warms. Wait a few minutes and re-trim back to target at operating temperature. This is the difference between a stable amp and one that creeps hot.
- Verify under drive, then re-check idle. Run a short test transmission into the dummy load, then return to idle and confirm Iq held its setting.
Setting bias on a tube amp
The idea is identical — set idle plate current — but the method depends on the bias scheme:
- Fixed bias: a negative grid voltage sets idle plate current; adjust the bias supply pot to the tube's recommended resting plate current.
- Cathode bias: a cathode resistor self-sets the operating point; you change it by changing the resistor value, not a pot.
Always set tube idle current to the manufacturer's published figure for your plate voltage. Over-biasing a sweep tube or a 3-500Z to chase a few extra watts just shortens its life and dirties your signal.
Quick sanity checklist
- Bias pot started at minimum? ✓
- Idle current set to the spec'd Iq at operating temperature? ✓
- Push-pull halves balanced? ✓
- Set into a dummy load, not an antenna? ✓
- Re-checked after a warm-up and a test transmission? ✓
Do those five things and your linear will run clean, stay legal-sounding on the band, and last. Skip them and you're rolling dice with your finals.
Want the full bias setup for real builds?
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Educational reference only. Always follow your specific device datasheet and build documentation, and verify all values independently. Working on high-voltage and RF equipment carries real risk — if you're unsure, get help from an experienced builder.