QualifiedMedium risk

Air compressor won't start or keeps cutting out

The workshop compressor hums without starting, trips its overload or the breaker, or starts and cuts out before reaching pressure. Nearly always one of four things: start capacitor, pressure switch/unloader, head pressure it can't start against, or a supply that sags.

Safety first

Two stored energies here: capacitors hold charge (discharge safely before testing) and the tank holds air — never crack fittings on a pressurised tank, and isolate electrically before touching anything. Vent per the machine's procedure.

Isolate, lock out / tag out, and prove dead before working unless a live test is specifically required, authorised, and carried out under proper supervision. Always follow local regulations, your site procedures, and the equipment manufacturer's documentation.

Apprentice mode

Full walk-through — the why, what readings mean, mistakes & safety.

Likely causes

Ranked from most to least likely.

  1. 1

    Failed start capacitor (single-phase units)

    Most likely

    The classic hum-no-start. The cap dries out or bulges, the motor can't develop starting torque, and the overload takes it out a few seconds later.

  2. 2

    Unloader valve not venting the head

    #2

    If the little hiss after each stop is missing, the pump stays pressurised — and the motor is asked to start against a wall. Hums, strains, trips.

  3. 3

    Pressure switch faulty or badly set

    #3

    Burnt contacts never call for a start; a mis-set or drifted switch short-cycles the machine or never cuts back in.

  4. 4

    Supply voltage sagging under starting load

    #4

    The long skinny extension lead special. Starting current through a thin lead drops the voltage exactly when the motor needs it most — hums, trips, and everyone blames the compressor.

  5. 5

    Motor or pump mechanically tight

    Least likely

    Seized pump bearings, tight rings after a rebuild, or a failing motor bearing raise the starting torque past what's available.

Reports are saved on this device to reflect what you actually find.

Testing sequence

Work through one test at a time. Expected reading and what each result means.

On the tools? Job Mode shows one test at a time with thumb-sized buttons — your place and readings carry straight over.

Enter Job Mode
Test 1 of 4
1

Vent the tank (per procedure) and try a start from EMPTY. Listen for the unloader's hiss when it stops.

Expected reading

Starts happily empty: the problem is starting under pressure — unloader or non-return valve. No hiss after stopping backs that up.

If it passes

Chase the unloader/NRV on the pneumatic side — the electrics are likely fine.

If it fails

Won't start even empty: it's electrical or mechanical — capacitor first.

Mark this test
View all expected readings at once
1. Vent the tank (per procedure) and try a start from EMPTY. Listen for the unloader's hiss when it stops.
Starts happily empty: the problem is starting under pressure — unloader or non-return valve. No hiss after stopping backs that up.
2. Isolate, discharge, and test the start capacitor: visual (bulge/leak) then capacitance against its printed rating.
Measured capacitance close to the label (within the tolerance printed on it — commonly a single-digit percentage band).
3. Measure the voltage AT THE COMPRESSOR'S terminals during a start attempt (min/max capture helps), especially if it's on an extension lead.
Voltage holding up through the start — a deep sag (down toward the low 200s or worse on a 230 V supply) is starving the motor.
4. Check the pressure switch contacts (isolated: continuity closed below cut-in) and bar the pump over by hand — isolated and vented — feeling for tight spots.
Switch closing cleanly at cut-in pressure; pump turning over smoothly by hand.

Fault-finding flowchart

The same logic as a decision tree.

  1. 1
    start

    Compressor won't start / cuts out

    → step 2
  2. 2
    decision

    Does it start fine from an EMPTY tank?

    Yes→ step 3No→ step 4
  3. 3
    result

    Starting against head pressure — unloader valve / non-return valve on the pneumatic side.

  4. 4
    decision

    Does the start capacitor test at its rated µF?

    Yes→ step 5No→ step 6
  5. 5
    decision

    Does the voltage at the machine hold up during the start attempt?

    Yes→ step 7No→ step 8
  6. 6
    result

    Replace the capacitor like-for-like (µF and voltage).

  7. 7
    result

    Check the pressure switch, then bar the pump over — tight mechanicals or a tired motor from here.

  8. 8
    result

    Supply sag — proper lead or a correctly sized fixed circuit.

Common mistakes apprentices make

  • Replacing the capacitor without checking the unloader — the new cap dies the same death starting against head pressure.
  • Testing supply voltage at the wall while the compressor starves at the end of 30 m of bargain extension lead.
  • Winding the pressure switch up to 'fix' short cycling and cooking the motor instead.
  • Cracking fittings on a tank that's still holding pressure.

When to stop & escalate

Pump rebuilds, ring/bearing work and anything on the pressure vessel itself belong with a compressor mechanic — and pressure vessels have their own inspection rules on industrial sites. A motor drawing high with everything else proven good is a rewind-or-replace economics decision.

If you're past your competence, authorisation, or the safe limits of the job — stop and hand it on. There's no fault worth getting hurt over.

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