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Lesson Sources and induction · Induction and spikes

Induced voltage spikes

Open an inductive DC circuit and the coil’s collapsing flux induces a voltage spike — often hundreds or thousands of volts — as the inductor tries to keep current flowing (Lenz). Arcs pit relay contacts and destroy transistors. Fix: give current a controlled path — freewheel diode on DC, MOV or RC snubber on AC/DC, or a parallel resistor so energy dissipates safely instead of across the opening gap.

1

When spikes happen

While coil current is steady, flux is steady — little induced EMF.

Interrupt current (open switch, transistor off, contact bounce) → flux collapses fast → large dΦ/dt → large induced voltage per e = −L (ΔI/Δt).

The minus sign is Lenz: induced EMF polarity opposes the decrease of current — it adds in series to push current through whatever path exists.

If the only path is air between opening contacts, voltage rises until arc ionizes the gap — spike energy goes into heat and pitting.

2

How high can it go?

Spike magnitude depends on:

  • Inductance L
  • How fast current changes (Δt very small → huge EMF)
  • Total resistance of the loop during collapse

Example logic: 1.5 H coil, current drops 2 A in 5 ms:

|EMF| ≈ L × ΔI/Δt = 1.5 × (2 / 0.005) = 600 V

Open switch with infinite gap resistance → inductor attempts any voltage needed to maintain current — arcs measured in kV on small control coils are common without suppression.

3

Safe decay with a parallel resistor

Resistor in parallel with coil (or coil+driver): when supply opens, induced current circulates through coil + resistor — series path.

Higher resistance → higher peak voltage, slower decay.

Lower resistance → lower peak, faster energy burn.

Trade heat in resistor vs contact damage. Often used on large DC contactors where diode drop is unacceptable for fast release timing.

4

Freewheel (flyback) diode — DC workhorse

Silicon diode across coil, cathode to positive side of coil (reverse-biased while coil energized).

Switch on: diode blocks; coil charges normally.

Switch opens: induced polarity forward-biases diode → current circulates through coil + diode → voltage clamped ~0.7 V (silicon) across the loop.

Energy dissipates as heat in coil wire and diode. DC only — AC reversals would short half-cycles through the diode.

Perfect for PLC-driven relays, solenoids, small DC motors field windings where release delay of one τ path is acceptable.

5

MOV — bidirectional clamp for AC or DC

Metal oxide varistor (MOV) connects across coil (or supply lines). Normally megohms of resistance.

When voltage exceeds rating (e.g., 140 V on 120 V control), MOV resistance drops sharply in nanoseconds — clamps spike.

Used on AC relays, motor starters, line-side protection — conducts either polarity.

Choose rating above normal operating V but below insulation breakdown of sensitive parts.

Common on surge strips and across starter coils in MCC buckets.

6

RC snubber and contact protection

Resistor + capacitor in series across contacts absorbs switching energy and limits dV/dt on solid-state outputs.

Tuned for coil L and supply — too small C → still arcs; too large → leakage or slow release.

Manufacturer kits often specify snubber module per contactor family.

Combine strategies on harsh loads: diode internal to DC coil driver + MOV at board input.

7

Design habits for the field

  • Never drive bare coil from transistor/PLC output without suppression spec.
  • Replace pitted contacts with root-cause fix — snubber missing beats filing contacts every month.
  • DC diode polarity wrong = short on energize — verify cathode to +V side of coil.
  • AC coil → no single diode; use MOV or RC rated for AC.
  • Scope or transient recorder on first article if spikes exceed device absolute max.
8

Field case

Situation. New building: hundreds of 24 VDC damper actuators on one PLC output card. Within six months, 30% of outputs fail shorted. Coil drivers have no diodes; actuators are inductive 0.5 H class.

Root cause: Each off command generates spike across open collector; integrated driver dies before mechanical limit is reached.

Fix: External diode at each actuator (or relay with suppressed coil), verify release still meets control sequence, replace failed modules once — not monthly.

In the field

Symptom

Pitted contacts, failed PLC outputs, nuisance GFCI, RF noise on open

Where to look

Coil suppression missing/wrong polarity, cable length, switching device rating

Likely causes

  1. No diode/MOV, AC snub on DC only, open circuit with no decay path

What to measure

  1. Peak V on scope at open
  2. verify diode orientation cold

What not to do

  • “Just file contacts”
  • reverse-bias diode across DC coil

Checklist

  • I explain spike as Lenz response to fast ΔI
  • I use e ≈ L(ΔI/Δt) for order-of-magnitude estimates
  • I wire flyback diode for DC (cathode to + coil)
  • I choose MOV for AC or bidirectional clamp
  • I know resistor parallel lowers peak but burns energy
  • I treat spikes as normal unless suppressed

Common mistakes

Symptom Typical cause Action
Short on energize Diode backwards Flip diode; fuse check
Still arcing AC coil Diode only (DC fix) Install MOV/RC rated for AC
Slow release after fix Diode path extends τ Accept or add zener/resistor network
Spike kills distant electronics No clamp at coil Suppress at source, not only at panel