| name | ndt-methods |
| description | Non-Destructive Testing — UT (A/B/C-scan, PAUT, TOFD), RT, MT, PT, ET, VT, AE, thermography. Flaw detection limits, code requirements (AWS D1.1, ASME V, API 1104). |
| metadata | {"priority":7,"promptSignals":{"phrases":["NDT","non-destructive testing","ultrasonic testing","radiography","magnetic particle","liquid penetrant","phased array","TOFD","eddy current"],"minScore":3}} |
Non-Destructive Testing (NDT) — Complete Skill
Ultrasonic Testing (UT)
Principle
Piezoelectric transducer generates ultrasonic pulse → travels through material → reflects from flaws or back wall → time-of-flight → flaw location
Sound velocity: c_steel_long = 5,900 m/s (longitudinal), c_steel_shear = 3,230 m/s (shear)
c = √(E/ρ) for longitudinal; c_s = √(G/ρ) for shear
A-scan
Single waveform: amplitude vs. time (echo location)
Displays: initial pulse, back-wall echo, any flaw echoes between them
Flaw depth: d = t × c/2 (pulse-echo, two-way travel)
B-scan
2D cross-section image: position along scan line vs. depth
Shows: flaw depth profile, embedded flaws
C-scan
Plan view: scanned area with color-coded amplitude or depth
Shows: flaw extent, distribution (used in aircraft/composites inspection)
Phased Array UT (PAUT)
Multiple elements fire with time delays → electronic beam steering + focusing
Advantages: faster scanning, multiple angles without moving probe, better coverage
S-scan (sector scan): sweeps beam angles (e.g., 30°-70°) in one pass
Quantitative flaw sizing: use DAC (Distance Amplitude Correction) + ASME V Article 4
TOFD (Time of Flight Diffraction)
Transmitter + receiver probes, angled beams
Detects: diffracted waves from flaw tips
Flaw height sizing from tip diffraction times: h = |d_bottom - d_top|
Better for: planar flaws (cracks), sizing accuracy ±1 mm (vs. ±3 mm for A-scan pulse-echo)
Combined TOFD + PAUT: covers volumetric + planar flaws
Calibration
Reference block with side-drilled holes (SDH) or flat-bottom holes (FBH)
DAC curve: distance amplitude correction for spherical wave spreading
AWS D1.1: 20% DAC reference sensitivity; report all indications ≥ 20% DAC
Acceptance Criteria
ASME BPVC Sec VIII: no planar flaws > acceptance; rounded flaw length limits per Appendix 4
AWS D1.1 Table 8.3: reject if indication > class limits per joint category and weld size
API 1104 Sec. 9: weld quality requirements for pipeline girth welds
Radiographic Testing (RT)
Principle
X-ray or γ-ray passes through material → attenuated by thickness/density → detected on film/digital detector
Film: radiograph = projected 2D image
Digital: computed radiography (CR) or digital detector array (DDA)
Beer-Lambert: I = I₀ × exp(-μ × t) (μ = linear attenuation coefficient)
Sensitivity: 2% of thickness minimum (IQI/penetrameter wire)
Sources
X-ray (accelerator or tube): 150 kV–15 MeV; variable energy; directable beam
Ir-192: 600 keV γ (most common isotope); half-life = 73.8 days
Co-60: 1.17/1.33 MeV γ; stronger penetration; half-life = 5.3 years; less portable
Se-75: lower energy; thinner material
Image Quality Indicators (IQI)
Wire IQI (ASTM E747): smallest visible wire → sensitivity %
Hole IQI (ASTM E1025/plaque): smallest visible hole
ASME requires: sensitivity ≤ 2% of weld thickness
Acceptance (AWS D1.1 Clause 8.12)
Cracks: not acceptable
Porosity: ≤ aggregate size limits (1/4" max isolated, frequency limits)
Slag: ≤ 2/3 of weld size in length
Incomplete fusion/penetration: not acceptable for critical joints
Magnetic Particle Testing (MT)
Principle
Magnetic field applied → flux leaks at surface/near-surface discontinuity → particles attracted to leak field
Only works on: ferromagnetic materials (carbon steel, ferritic SS, some cast iron)
Not for: austenitic SS, Al, Cu, Ti
Magnetization Methods
Circular magnetization: current through part → detect longitudinal flaws
Longitudinal magnetization: coil or yoke → detect transverse flaws
Yoke (portable): AC or DC; most common field method
AC current: best for surface flaws (skin effect concentrates B near surface)
DC current: better for subsurface (deeper penetration of flux)
Media
Wet fluorescent: most sensitive (UV light inspection); specification MIL-STD-1949
Dry powder: outdoor, rough surfaces
Color contrast: black or red particles on white background
Acceptance (ASME BPVC Sec V, Article 7; AWS D1.1 Sec 8)
Linear indications > 1/16" length: reject
Rounded > 3/16" (weld root area < 1/4"): reject per ASME
Must remove indication and retest after repair
Liquid Penetrant Testing (PT)
Process (ASTM E165, ASME V Article 6)
- Surface cleaning (solvent, detergent)
- Apply penetrant → dwell time 5-60 min (type/temperature dependent)
- Remove excess penetrant
- Apply developer → draws penetrant from flaw → visible indication
- Interpret within 10-60 min after developer
Types:
Type I — Fluorescent: UV light inspection, most sensitive, for clean shop environments
Type II — Visible dye: red dye + white developer, no UV light needed
Methods:
Method A — Water washable: fastest, can miss broad/shallow defects
Method C — Solvent removable: best for field/spot inspection
Method D — Post-emulsifiable: most sensitive, complex process
Limitations
Surface-open flaws only (no subsurface detection)
Not for: porous materials, plastics (absorb penetrant)
Temperature: 4-52°C (standard range)
Acceptance
Any relevant linear indication > 1/16": evaluate per code
Relevant rounded indication > 3/16": evaluate
Must clean and retest after repair
Eddy Current Testing (ET)
Principle
AC in probe coil → eddy currents induced in conductive material → flaw disrupts currents → impedance change in probe
Detection: surface and near-surface flaws
Materials: any electrically conductive (not limited to magnetic)
Typical Applications
Aircraft skin inspection, tubing inspection, coating thickness, conductivity measurement
Heat exchanger tube inspection: ET from inside (internal rotary probe)
Standard depth of penetration: δ = √(1/(πfμσ)) [skin depth]
f = frequency; μ = permeability; σ = conductivity
Higher f → shallower penetration; lower f → deeper
Advantages/Limits
Fast scanning; no couplant needed; good for thin materials
Cannot inspect welds volumetrically; limited penetration depth (few mm)
Visual Testing (VT)
Types
Direct VT: eye within 600mm, angle ≥ 30°, ≥ 50 foot-candles illumination
Remote VT: camera, borescope, drone
Enhanced VT: magnification, UV (for PT), dye enhanced
Requirements
AWS D1.1 Clause 6.9: all welds VT first
ASME BPVC: 100% VT required before other NDE
Acceptance: no cracks, incomplete fusion, overlap; size limits for porosity, undercut
Acoustic Emission (AE)
Principle
Crack growth, plastic deformation, corrosion → stress waves → detected by piezo sensors
Passive (no external excitation) — detects ACTIVE defects
Entire structure monitored simultaneously from multiple sensors
Source location: triangulation from arrival time differences
Applications
Pressure vessel proof testing (during pressurization)
Bridge monitoring (crack growth during traffic)
Composite materials (delamination during loading)
Thermographic Testing (IT/IRT)
Active Thermography
Heat applied → thermal camera records cooling/heating
Subsurface voids/delaminations: different thermal diffusivity → hot/cold spots
Flash thermography: pulsed heat, captures thermal wave propagation
Passive IR
Temperature variations from electrical issues, friction, blocked flow
No external heating needed — steady-state abnormalities
NDT Method Selection Matrix
| Flaw Type | Best Methods |
|---|
| Surface cracks (steel) | MT, PT |
| Surface cracks (any conductive) | ET, PT |
| Subsurface cracks/voids | UT (PAUT), RT |
| Weld volumetric flaws | RT, UT |
| Weld planar flaws | PAUT + TOFD |
| Wall thickness measurement | UT (pulse-echo) |
| Corrosion mapping | PAUT C-scan, UT |
| Delamination (composites) | UT C-scan, thermography |
| Leak detection | PT, AE, helium mass spectrometer |
Output
Provide: NDT method selected, code standard (ASME V/AWS D1.1/API 1104), sensitivity/acceptance criteria, flaw size detection limit, required personnel qualification (ASNT Level II/III).