| name | material-testing |
| description | Material testing — tensile testing (ASTM E8), hardness (Brinell/Rockwell/Vickers), Charpy impact, creep testing, fracture toughness KIC, fatigue S-N curve generation, DIC. |
| metadata | {"priority":7,"promptSignals":{"phrases":["material testing","tensile test","hardness test","Charpy test","material characterization","stress strain curve","coupon test"],"minScore":4}} |
Material Testing — Complete Skill
Tensile Testing (ASTM E8 / ISO 6892-1)
Specimen
Round or flat bar specimens (dog-bone shape)
Gauge length L₀ (standard: 50mm or 4D round)
Reduced section diameter D (round) or width W × thickness t (flat)
Measurements
Engineering stress: S = F/A₀ (original area)
Engineering strain: e = (L-L₀)/L₀ = ΔL/L₀
True stress: σ = F/A (instantaneous) = S(1+e)
True strain: ε = ln(L/L₀) = ln(1+e)
Properties Extracted
Elastic modulus: E = slope of linear region [GPa]
Proportional limit: highest stress in linear region
0.2% offset yield strength (Sy): stress at 0.2% permanent strain (most used)
Ultimate tensile strength (Sut): maximum engineering stress
Fracture strength: stress at fracture (lower than Sut due to necking)
Elongation at fracture (A%): (L_f - L₀)/L₀ × 100%
Reduction of area (Z%): (A₀ - A_f)/A₀ × 100%
Strain Rate Effects
Standard rate: strain rate 0.01-0.1 mm/(mm·min) [quasi-static]
High rate: split-Hopkinson bar (SHPB) for 10²-10⁴ s⁻¹
Rate sensitivity: σ = K ε̇^m (power law); m = strain rate sensitivity
Ramberg-Osgood Model (Fitting)
ε = σ/E + (σ/K)^(1/n)
K = strength coefficient, n = strain hardening exponent
Fit from plastic portion of σ-ε curve (log-log: log(σ_pl) vs. log(ε_pl))
n = slope, K = intercept (true fracture stress)
Hardness Testing
Brinell (HB) — ASTM E10
10mm tungsten ball, 3000 kgf (steel), 500 kgf (Al)
Dwell: 10-15 seconds
HB = 2F/(πD(D-√(D²-d²))) where d = indent diameter
Measures: large area average (forgiving of inclusions)
Cannot use on: case-hardened surface (ball penetrates through)
Rockwell (HRC, HRB) — ASTM E18
HRC: 150 kgf, diamond cone (Brale) — hard steels (>HRC 20)
HRB: 100 kgf, 1/16" ball — soft materials (70HRB ≈ HRC 0)
HRA: 60 kgf, diamond — cemented carbide, thin case
Fast, direct readout, minor vs. major load system
Cannot use thin sections: HRC requires >1.5mm
Vickers (HV) — ASTM E92
136° diamond pyramid, loads 1-120 kgf
HV = 1.854 F/d² (d = average diagonal, mm, F in kgf)
Scales from HV 1 (microindentation) to HV 30 (macro)
Most versatile — works on any material, any thickness, case-hardened layers
HV and HB agree numerically below HB 350: HV ≈ HB × 1.05
Knoop (HK) — Microhardness
Elongated diamond pyramid; small load (1-200 gf)
Used for: anisotropic materials, thin coatings, individual phases/grains
HK ≈ HV × 1.1 (typically)
Hardness Conversion (Approximate)
ASTM E140 tables are the reference — formula below is approximate only:
HRC ≈ 60 - 12.5 × log(HB) [rough, for HB 200-400]
Sut (MPa) ≈ 3.45 × HB [carbon/alloy steels, HB < 400]
Charpy V-Notch Impact Test (ASTM E23)
Procedure
10×10×55mm specimen, 2mm V-notch (or U-notch)
Pendulum energy 300 J absorbed = energy absorbed [J] or [ft-lb]
Test at multiple temperatures → ductile-brittle transition curve
Energy Absorbed (CVN) Results
Upper shelf: ductile fracture, high CVN (100-250 J for structural steel)
Lower shelf: brittle fracture, low CVN (<20 J)
Transition range: 15-85% shear fracture appearance
DBTT: temperature at 50% ductile appearance (or 27 J criterion)
Code Requirements
AWS D1.1 Supplementary Requirements: CVN ≥ 20 ft-lb at -20°F (Zone II bridges)
ASTM A709 Gr 50W: 15 ft-lb at +10°F
ASME BPVC: impact testing required for t > 1/2" at T < RTNDT+60°F
Fracture Toughness Testing — K_IC (ASTM E399)
Compact Tension (CT) or Three-Point Bend Specimen
Pre-crack by fatigue cycling to sharp crack
Load to fracture (or 5% load drop)
P_Q from load-displacement record → K_Q → validity checks → K_IC
Validity Requirements
a ≥ 2.5(K_Q/Sy)² — plane strain (thick specimen)
B (thickness) ≥ 2.5(K_Q/Sy)²
W - a ≥ 2.5(K_Q/Sy)²
If all met: K_Q = K_IC (valid plane strain)
K_IC typical values: see fracture-mechanics skill
J-Integral Testing (ASTM E1820)
For materials too tough for ASTM E399 (very high Sy or low K_IC)
Elastic-plastic fracture mechanics
J_IC = K_IC²/(E') where E' = E (plane stress), E/(1-ν²) (plane strain)
Fatigue S-N Curve Generation (ASTM E466, E468)
Test Setup
Rotating bending (R.R. Moore) or axial (servo-hydraulic) or bending fatigue
Stress ratio R = σ_min/σ_max (R=-1 fully reversed, R=0.1 tension-tension)
Test until fracture or 10⁷ cycles (runout)
Number of Specimens
Minimum 6-8 per stress level; 3-5 stress levels
Staircase method for endurance limit estimation (Dixon-Mood)
Log-normal distribution assumed for cycles to failure at each stress level
Data Reduction
Log-log fit: log(N) = A - B×log(σ) → N = C/σ^m
Or: σ = σ_f' × (2N)^b (Basquin) — fatigue strength coefficient and exponent
Statistical: mean curve + 2σ design curve (95% confidence, 50% reliability)
Endurance Limit (Se)
For steels: Se ≈ 0.504 Sut (Shigley, unnotched, R=-1)
Apply Marin factors for actual conditions — see fatigue-life skill
Digital Image Correlation (DIC)
Principle
Random speckle pattern on specimen surface → track displacements optically
2D DIC: in-plane displacements (u, v) from single camera
3D DIC (stereo): full 3D surface displacement (u, v, w)
Full-field strain: ε_x, ε_y, γ_xy computed from displacement gradients
Applications
Strain concentration visualization (compares to FEA predictions)
Crack initiation and propagation tracking
Displacement at inaccessible locations
Large-deformation testing (rubber, soft tissue, metals at high strain)
Accuracy
Typical: strain accuracy ≈ 50-200 με (0.005-0.02%)
Spatial resolution: tied to facet size (typically 5-20× speckle size)
Calibration: stereo setup requires calibration grid
Creep Testing (ASTM E139)
Constant load applied at elevated temperature
Record strain vs. time at constant T and σ
Extract: secondary creep rate ε̇_min, rupture time t_r
Use Larson-Miller analysis for extrapolation — see creep-relaxation skill
Test Report Requirements
- Specimen ID, heat/lot number, chemical composition
- Test date, temperature, humidity (if relevant)
- Equipment calibration status, calibration date
- Number of specimens, statistical reduction method
- Individual results + mean ± standard deviation
- Comparison to specification minimum requirements
- Qualified engineer signature
Output
Provide: test standard (ASTM/ISO), specimen geometry, property extracted (E/Sy/Sut/KIC/CVN/N_f), statistical analysis (n, mean, std), code acceptance criteria, plot type (S-N, σ-ε, load-displacement).