| name | abrasive-wear |
| description | Abrasive wear — Archard wear law, two-body vs. three-body abrasion, hardness ratio, abrasion-resistant steels, ceramics, rubber liners, slurry wear, ASTM G65/G105/G75 testing. |
| metadata | {"priority":7,"promptSignals":{"phrases":["abrasive wear","wear resistance","abrasion resistant","Archard wear","slurry wear","erosion wear","wear rate"],"minScore":3}} |
Abrasive Wear — Complete Skill
Wear Mechanisms
Two-body abrasion: hard asperity or particle slides against softer surface; grooving, ploughing
Three-body abrasion: loose particle rolls/slides between two surfaces; lower wear rate than two-body (~1/3 to 1/10)
High-stress grinding abrasion: particle crushed between surfaces; harder abrasive needed
Low-stress scratching abrasion: particle slides; hardness ratio governs
Archard Wear Law
Volume worn:
V = K × W × L / H [m³; K = wear coefficient; W = normal load [N]; L = sliding distance [m]; H = hardness of softer surface [Pa]]
Wear rate:
Q = dV/dL = K × W / H [m³/m = m²]
Specific wear rate: k = K/H [m²/N = m³/(N·m)]
Wear coefficient K:
| Wear pair | K |
|---|
| Unlubricated metals | 10⁻³ – 10⁻² |
| Mild steel on hardened steel | 10⁻⁴ |
| Hardened steel on hardened steel | 10⁻⁵ – 10⁻⁴ |
| Ceramics | 10⁻⁶ – 10⁻⁵ |
| UHMWPE (polymer) | 10⁻⁷ – 10⁻⁵ |
Hardness Ratio Effect
Critical hardness ratio: H_abrasive / H_material
- Ratio < 0.8: slight wear (ploughing only)
- Ratio 0.8–1.2: transition regime
- Ratio > 1.2: severe abrasive wear (cutting dominant)
Rule: material hardness should exceed abrasive hardness by ≥ 20% to achieve "slight wear" regime
Abrasive hardness reference:
| Abrasive | Mohs | HV approx |
|---|
| Silica (quartz) | 7 | 1100 |
| Alumina (Al₂O₃) | 9 | 2000 |
| Silicon carbide | 9+ | 2500 |
| Diamond | 10 | 8000 |
Wear-Resistant Material Selection
Abrasion-Resistant Steels
Brinell hardness (HB) and grades:
| Grade | HB | C% | Notes |
|---|
| AR200 | 200 | 0.18 | Mild; formable |
| AR400 | 400 | 0.30 | Most common; good toughness |
| AR450 | 450 | 0.35 | Higher wear resistance |
| AR500 | 500 | 0.40 | Best AR steel; low toughness |
| Hardox 600 | 600 | 0.50 | Ultra high hardness |
AR400 wear life vs. mild steel: ~4× improvement in abrasion; ~2× in impact abrasion
Hardfacing overlay: Chromium carbide (Cr₇C₃) on mild steel; HV 700–900; use where AR400 insufficient
White Cast Iron / High-Chromium Iron
High-Cr iron (15–28% Cr): M₇C₃ carbides; HV 700–900
Hardness: 550–800 HB; brittle (low toughness)
Use for: pump impellers, crusher liners, mill liners
Tungsten Carbide Composites
WC-Co cermet: HV 1000–1500; excellent two-body abrasion; brittle against impact
WC-Ni (corrosion resistant alternative to WC-Co)
Use for: cutting tools, valve seats, slurry pump components
Ceramics (Alumina, SiC, Si₃N₄)
Al₂O₃: HV 1500–2000; chemical inert; use for fine particle abrasion
SiC: HV 2500; high thermal conductivity; high-temperature abrasion
Application: chute liners, cyclone liners, pipe elbows
Rubber Liners
Natural rubber: best for < 5 mm particle size; excellent energy absorption
SBR, neoprene: corrosion + abrasion combination
Shore A hardness 40–60 for maximum abrasion resistance
Cut-off: use metal above 10–12 mm particle (rubber not effective for coarse rock)
UHMWPE
Ultra-high molecular weight polyethylene; excellent chemical resistance + abrasion
Specific wear rate k ≈ 10⁻⁷ m³/(N·m); low friction coefficient (μ ≈ 0.1)
Slurry Wear
Erosion-corrosion wear in slurries:
W_total = W_erosion + W_corrosion + W_synergy
Synergy term: 20–60% of total loss in acidic slurries
Miller number (ASTM G75): standard test; higher number = more abrasive slurry
Slurry pump impeller material selection:
| Application | Material |
|---|
| Coarse, non-corrosive | High-Cr white iron |
| Fine, corrosive | Duplex SS or rubber |
| Fine, high-pH | Natural rubber |
| High-T, coarse | Ni-Hard 4 |
Slurry velocity limits:
Deposition velocity: V_c = F_L × √(2gD(S_s - S_l)/S_l) [Durand equation; F_L = 0.9–1.8; S_s, S_l = specific gravities; D = pipe ID [m]]
Minimum: V ≥ V_c × 1.1 (operating margin)
Maximum wear: V ≤ 3–4 m/s for dense slurries
Standard Tests
ASTM G65 — Dry Sand/Rubber Wheel:
Load 130 N; 6000 rev; sand flow 300–390 g/min
Reports volume loss [mm³]; relative volume loss vs. AR400 reference
Discriminates: low-stress (non-impact) abrasion
ASTM G105 — Wet Sand/Rubber Wheel:
Similar wheel test with slurry; simulates wet abrasion conditions
ASTM G75 — Miller Slurry Abrasivity:
Standard specimen; reciprocating motion in test slurry; mass loss at 2 hr
ASTM B611 — Rotating Wheel with Abrasive Slurry:
Wet abrasion using alumina slurry; ceramics and hard coatings
Field correlation factor:
Lab wear rate (ASTM G65) × application factor (typically 3–10×) → field wear rate
Factor depends on: impact severity, slurry concentration, corrosion, temperature
Design Rules
Chute/hopper lining:
AR400 for most applications; use 500 or Hardox 600 where AR400 < 1 year life
Target liner thickness: t = (D_particle / 10) × correction factor; minimum 10 mm
Slope > 45° + material angle of repose for mass flow; eliminates dead zones
Pipe elbows (slurry):
Use ceramic-lined (Al₂O₃) or replaceable liner; T-type for slurry (not standard elbows)
Wall thickness: t = (V_slurry / V_max)² × t_base [proportional to velocity squared]
Impact angle effect (erosion):
Ductile metals: max wear at 15–30° impact angle
Brittle materials (ceramics): max wear at 90° (normal impact)
Rubber: max wear at 90°
Output
Provide: wear mechanism classification (two-body/three-body/impact-abrasion), material hardness ratio vs. abrasive (H_mat/H_abrasive), recommended material and grade (AR400/AR500/WC-Co/Al₂O₃/rubber), ASTM G65 volume loss [mm³] for comparison, estimated wear rate [mm/year] at operating conditions, replacement interval [months], liner thickness [mm], slurry velocity vs. deposition limit (if slurry application), and relevant standard (ASTM G65/G75/G105).