| name | eddy-current-testing |
| description | Eddy current testing (ECT) — electromagnetic induction fundamentals, Lenz's law, skin depth and frequency selection, absolute vs differential probe configurations, impedance plane analysis, lift-off effect, phase angle analysis, coil design (surface, encircling, internal), sensitivity to crack orientation, material conductivity and permeability effects, multifrequency ECT, pulsed ECT, ASNT/ASTM E309 standards, flaw sizing and calibration. |
| metadata | {"priority":7,"promptSignals":{"phrases":["eddy current","ECT","eddy current testing","impedance plane","skin depth"],"minScore":3}} |
Eddy Current Testing — Complete Skill
Electromagnetic Fundamentals
Faraday's Law and Eddy Current Generation
Faraday's Law:
EMF = −dΦ/dt [induced EMF proportional to rate of change of magnetic flux; Φ = B × A]
Eddy current generation:
AC coil → time-varying magnetic field B → induces eddy currents in nearby conductor (Lenz's law: currents oppose change in flux)
Eddy currents create secondary magnetic field opposing primary → total impedance of coil changes
Discontinuities, conductivity changes, geometry changes → alter eddy current flow → detectable impedance change
Coil impedance:
Z = R + jωL [R = resistance; ω = 2πf; L = inductance]
In air (no specimen): Z₀ = R₀ + jωL₀
Near specimen: Z = R_effective + jωL_effective [changed by coupling to specimen]
Display on impedance plane: X-axis = resistance; Y-axis = inductive reactance (ωL)
Skin Depth and Frequency Selection
Skin Effect
Skin depth (standard penetration depth):
δ = √(ρ/(π × f × μ)) [m]
Where: ρ = electrical resistivity [Ω·m]; f = test frequency [Hz]; μ = absolute permeability = μ₀μᵣ [H/m]
μ₀ = 4π × 10⁻⁷ H/m; μᵣ = 1 for non-magnetic materials (Al, Ti, Cu, austenitic SS)
Alternative form:
δ = 503/√(f × σ × μᵣ) [mm; σ in MS/m]
Rule of thumb: signal amplitude decays to 37% (1/e) at depth δ; effectively negligible at 3δ
Frequency selection:
For surface crack detection: f_high → δ small → concentrate energy near surface → high sensitivity to surface flaws
For subsurface/through-wall: f_low → δ large → deeper penetration
Test depth ≈ 1.5–2δ practical limit for flaw detection with SNR
Example:
Aluminum 2024-T3: σ = 17.8 MS/m; μᵣ = 1
δ at 1 kHz: 503/√(1000 × 17.8 × 1) = 503/133.4 = 3.77 mm [good for subsurface Al]
δ at 100 kHz: 503/√(100,000 × 17.8 × 1) = 503/1334 = 0.377 mm [surface crack inspection]
Carbon steel: σ ≈ 10 MS/m; μᵣ ≈ 100–500 (ferromagnetic) → δ ≈ 0.5 mm at 1 kHz
Ferromagnetic materials: permeability dominates; skin depth very shallow; magnetic noise masks flaw signals
Solution: magnetize to saturation (removes permeability variation) before ECT, or use remote-field ECT (RFECT)
Probe Configurations
Surface Probes
Absolute probe: single coil; measures total impedance; sensitive to gradual property changes (conductivity, thickness); drifts with temperature/lift-off
Differential probe: two coils in opposition; cancels gradual changes; sensitive to rapid changes (pits, cracks); insensitive to gradual taper
Pencil probe: small diameter (1–6 mm); high spatial resolution; use for fine cracks, corrosion pitting; limited scanning speed
Pancake probe: larger diameter; average over larger area; use for conductivity mapping, large area scanning
Reflection probe: driver-pickup configuration; driver coil generates field; pickup coil measures induced signal; separates drive from receive
Encircling (Feed-Through) Probes
For tubing and bars:
Coil encircles specimen; test speed high (0.1–1 m/s); 360° coverage for OD flaws
Fill factor η = (d_specimen/d_coil)² → η closer to 1 = better coupling; η typically 0.7–0.95
Internal (Bobbin) Probes:
For heat exchanger tube inspection; probe travels inside tube
Through-transmission or reflection configurations; detect OD, ID, and wall thickness anomalies
Rotating probe: adds rotational scan for axial flaws (circumferential cracks missed by bobbin alone)
Impedance Plane Analysis
Phase Angle and Signal Interpretation
Impedance plane diagram:
Operating point on plane determined by: material conductivity, permeability, geometry, lift-off, frequency
Moving along "lift-off line" (probe raised from surface): signal moves left along near-horizontal path
Crack signal: deviation from lift-off line; phase angle between crack signal and lift-off line used for flaw characterization
Phase angle for depth estimation:
Phase lag with depth: β = z/δ [z = depth below surface; δ = skin depth]
Phase shift ≈ 57° per skin depth (1 radian per δ)
Deeper flaw → greater phase lag → use phase angle to estimate depth (calibrated on reference notches)
Signal amplitude:
Amplitude decreases with depth (exponential decay)
Amplitude also depends on flaw volume and orientation perpendicular to eddy current flow
Conductivity effect:
Higher σ → operating point moves up-right on impedance plane (higher inductive reactance)
Conductivity measurement: calibrate with known standards (ASTM E1004)
Lift-Off Effect
Probe-to-Surface Distance
Lift-off: spacing between probe and surface; creates large impedance change that can mask flaw signals
Lift-off effect more severe at lower frequencies
Methods to reduce lift-off sensitivity:
- Use high frequency (shorter skin depth; less coupling change per unit lift-off)
- Use differential probe (common-mode rejection of lift-off)
- Maintain consistent probe-to-surface contact (spring-loaded probe holders)
- Electronic lift-off compensation (phase rotation to align lift-off along horizontal)
Lift-off compensation:
Rotate impedance plane display so lift-off signal is horizontal → flaw signals appear as vertical excursions → separate with vertical gate
Multifrequency and Pulsed ECT
Multifrequency ECT (MF-ECT)
Application: heat exchanger tube inspection
Simultaneously apply 2–4 frequencies → characterize flaw type and depth
Mix frequencies to suppress specific signals (support plate signals, deposits) while retaining flaw response
Frequency mixing: algebraic combination of channels to cancel geometric signals
Typical frequency sets for carbon steel tubes:
Primary: 100 Hz (main flaw detection; ~1.5 mm penetration)
Secondary: 300 Hz (OD differentiation)
Mix: subtract weighted channels to suppress support plate signal
Pulsed ECT (PEC)
PEC principle: pulse excitation → broadband frequency content → single measurement gives depth information from time-domain response
Time-gating: early time = surface/near-surface; late time = deep
Advantage: works through non-conductive coatings (paint, insulation up to 100 mm with PEC-in-insulation probes)
Calibration and Standards
Reference Standards
Calibration block: same material, heat treatment, surface condition as test article
Reference notches: EDM slots at known depths (e.g., 10%, 20%, 40%, 60%, 80% of wall thickness)
Flat-bottom holes: for subsurface detection calibration
Circular holes: for conductivity calibration
ASTM E309: ECT standard practice for tubular products (ferromagnetic)
ASTM E376: ECT for thickness measurement
ASTM E690: ECT for nonferromagnetic heat exchanger tubing
ASTM E1004: conductivity measurement by ECT
ASTM E2884: eddy current array inspection
Sensitivity and Flaw Sizing
Signal-to-noise ratio (SNR):
Minimum SNR for reliable detection: ≥ 3:1 (amplitude); ≥ 6 dB
Calibration: set gain so 20% through-wall notch gives screen height of 80% FSH (full-screen height); report any indication ≥ 20% FSH
Flaw length sizing:
6 dB drop method: length = distance between half-amplitude points (-6 dB from peak)
ASME Code Case 2863: ECT for heat exchanger tubes; plugging criterion = indication ≥ 20% depth
Limitations and Applicable Standards
ECT limitations:
- Ferromagnetic materials: permeability variations mask flaw signals → requires magnetic saturation or DC bias
- Orientation sensitivity: cracks parallel to eddy current flow are poorly detected (≤ 30° to current → signal ↓ significantly)
- Depth limit: ≈ 2–3 skin depths practical maximum
- Requires trained operator for impedance plane interpretation
| Standard | Scope |
|---|
| ASNT SNT-TC-1A | ECT operator certification levels (I, II, III) |
| ASTM E309 | ECT for steel tubular products |
| ASTM E690 | ECT for nonferromagnetic heat exchanger tubes |
| ASTM E1004 | Conductivity by ECT |
| ASTM E2884 | Eddy current array testing |
| ASME V Article 8 | ECT for ASME code applications |
| ISO 15548 | ECT equipment characterization |
| EN 1711 | ECT for welds |
Output
Provide: test configuration (probe type: surface/encircling/bobbin; absolute vs differential; coil diameter [mm]; frequency [Hz]; fill factor η if tubular), material properties (conductivity σ [MS/m]; μᵣ; skin depth δ = 503/√(fσμᵣ) [mm]; effective inspection depth = 1.5δ [mm]), frequency selection rationale (f selected for target depth; δ at f; confirm target depth ≤ 1.5δ), calibration (reference standard: material, notch depths [%WT]; gain setting: reference indication at [%FSH]; SNR ≥ 3:1 confirmed), impedance plane setup (lift-off compensation: phase rotated; flaw gate: amplitude threshold [%FSH]; phase gate if applicable), scan parameters (scan increment [mm]; test speed [m/s] for tubular; total scan coverage confirmed), indications (location; amplitude [%FSH]; phase angle [°]; estimated depth from phase calibration [mm or %WT]; length by 6dB drop [mm]; disposition: accept/reject/further evaluate), and applicable standard (ASTM E309 for ferromagnetic tubes; ASTM E690 for non-ferromagnetic HX tubes; ASME V Article 8 for code applications; ASTM E1004 for conductivity).