1. The Mechanics of Contact Bounce: Why Contacts Weld on Start
When a contactor coil is energized, the magnetic force accelerates the moving armature toward the stationary E-core at velocities exceeding 1.5 m/s. Upon mechanical collision, kinetic energy is reflected into the contact springs, causing the movable contacts to bounce open and re-close 1 to 4 times within a 1–5 ms window.
Under AC-3 motor starting conditions, the contactor makes against locked-rotor inrush current (\(6\text{to}8 \times I_\text{FLC}\)). During each momentary micro-separation:
- The current density at the microscopic asperities (A-spots) exceeds \(10^6\text{A/cm}^2\).
- Joule heating instantly melts the silver-cadmium-oxide (AgCdO) or silver-tin-oxide (AgSnO\(_2\)) contact alloy.
- When the contacts slam shut during the final make, molten metal bridges solidify, resulting in contact welding that prevents subsequent tripping.
2. Inductive Kickback Physics: \(V = -L \frac{di}{dt}\)
An electromagnetic contactor coil stores magnetic energy proportional to its inductance and current: \(E = \frac{1}{2} L I^2\). When a mechanical switch or PLC transistor output opens the circuit, current attempts to fall to zero almost instantaneously (\(dt \to 0\)):
Faraday's Law of Induction: For a typical 230 V AC contactor coil with \(L = 2.5\text{H}\) and \(I = 0.1\text{A}\) interrupting in \(100\text{ns}\), the induced back-EMF theoretically exceeds \(25,000\text{V}\), limited only by air breakdown and winding capacitance.
3. Arc Chute De-Ionization and Lorentz Blowout
When main power contacts separate under heavy motor load, an arc forms in air. Modern contactors extinguish this arc using de-ionizing splitter plates:
- Lorentz Force Propulsion (\(\mathbf{F} = \mathbf{I} \times \mathbf{B}\)): The magnetic field produced by current-carrying copper runners propels the arc upward away from the silver contacts and into the arc chute.
- Series Voltage Division: The ferromagnetic steel plates chop the single arc into \(N\) smaller series arcs. Each micro-arc requires an anode-cathode voltage drop of \(\approx 20\text{--}30\text{V}\), raising the total arc voltage above the supply voltage.
- Thermal Quenching: The massive cold steel plates absorb thermal energy, cooling the plasma below the \(3,500\text{K}\) ionization threshold, preventing re-ignition at current zero.
Companion Motor Engineering Guides
Calculate motor inrush currents, running costs, and protection settings in our Motor Current Calculator and Direct-on-Line Starting Guide.
Open Motor Current Calculator →