| name | elastomer-design |
| description | Elastomer design — rubber compound selection (NBR/EPDM/FKM/Silicone/HNBR), shore hardness, modulus-hardness correlation, Mooney-Rivlin hyperelastic model, fatigue, compression set, ASTM D412/D624. |
| metadata | {"priority":7,"promptSignals":{"phrases":["elastomer design","rubber design","rubber compound","hyperelastic model","Mooney-Rivlin","shore hardness rubber","rubber fatigue"],"minScore":3}} |
Elastomer Design — Complete Skill
Elastomer Types and Selection
NBR (Nitrile Butadiene Rubber)
T_range: -40 to +120°C (standard); -40 to +150°C (peroxide-cured)
Media resistance: petroleum oils, fuel, mineral hydraulic fluid, water
Limitations: aromatic solvents (toluene), ketones, ozone, UV
Hardness range: 40–90 Shore A
Applications: O-rings for petroleum service, seals, gaskets, hose
HNBR (Hydrogenated NBR): T_max to 150°C; better aging; automotive transmission
EPDM (Ethylene-Propylene-Diene Monomer)
T_range: -50 to +150°C; steam service to 175°C (peroxide)
Media resistance: water, steam, ketones, alcohols, phosphate ester hydraulic fluid (Skydrol)
Limitations: petroleum oils, fuel — CANNOT use with hydrocarbons
Applications: HVAC seals, water pipe gaskets, automotive weather-stripping, brake fluid service
FKM (Fluoroelastomer, Viton)
T_range: -20 to +200°C (standard); -40 to +200°C (specialty)
Media resistance: petroleum, aromatic solvents, acids, hot water
Limitations: ketones, amines, glycol brake fluid, low-temperature sealing below -20°C
Applications: chemical processing, aerospace fuel seals, exhaust systems
High cost: 5–15× NBR; justified for critical chemical service
FFKM (Perfluoroelastomer, Chemraz, Kalrez)
T_max = 300°C; chemical resistance to almost all media
Extremely high cost; semiconductor processing, aggressive chemical service
Silicone (VMQ, PVMQ)
T_range: -60 to +200°C; special grades to -100°C (PVMQ)
Media resistance: ozone, UV, oxygen, dry heat
Limitations: petroleum oils, hydrocarbons (very poor); low mechanical strength (S_u ≈ 5–10 MPa)
Applications: medical, food grade, electrical insulation, static seals in extreme temperature
CR (Chloroprene/Neoprene)
T_range: -35 to +100°C; ozone/weather resistant; moderate oil resistance
Applications: outdoor gaskets, weather seals, bridge bearings, bearing pads
PTFE (Thermoplastic, not true elastomer)
Not viscoelastic; hardness ~65 Shore D; very low friction (μ = 0.04–0.1)
Filled PTFE (glass, graphite): higher stiffness; improved wear
Applications: dynamic seals (rotary), bushings, diaphragms
Mechanical Properties
Shore A Hardness → Approximate Young's Modulus
| Shore A | E [MPa] |
|---|
| 30 | 1.0 |
| 40 | 1.4 |
| 50 | 2.0 |
| 60 | 3.0 |
| 70 | 4.5 |
| 80 | 7.5 |
| 90 | 15–20 |
Gent-Thomas approximation:
E ≈ 0.0981 × 10^(0.0235 × (Shore_A - 100)) [MPa; rough formula]
Shear modulus: G = E/(2(1+ν)); ν ≈ 0.499 for unfilled; G ≈ E/3
Compression Set
Test: ASTM D395 Method B; compress 25% for 24hr; release; measure recovery
Compression set CS: CS = (t₀ - t₂)/(t₀ - t₁) × 100% [t₀ initial; t₁ compressed; t₂ recovered]
Good seal: CS < 25%; poor: CS > 40%
FKM: CS = 15–25% at 200°C; NBR: 20–35% at 100°C
Tensile Properties (ASTM D412)
Dumbbell specimen; elongation at break = 200–600% typical
Tensile strength S_u = 5–25 MPa depending on compound
Tear strength (ASTM D624) = 15–60 kN/m
Hyperelastic Material Models
Mooney-Rivlin (2-parameter)
Strain energy density:
W = C₁₀(Ī₁ - 3) + C₀₁(Ī₂ - 3)
Ī₁, Ī₂ = first and second deviatoric invariants
C₁₀, C₀₁ = material constants (from biaxial tension test data)
Engineering constants:
G = 2(C₁₀ + C₀₁) [shear modulus]
Good for: moderate strains (< 100–150%); typical for seals and mounts
Neo-Hookean (1-parameter)
W = C₁₀(Ī₁ - 3)
G = 2C₁₀
Simpler: valid for small strains (< 50%); no C₀₁ term
Ogden Model (N-parameter)
W = Σ μ_n/α_n × (λ₁^α_n + λ₂^α_n + λ₃^α_n - 3)
More accurate for large deformations; typically N = 3 parameters fit well
Polynomial (Rivlin) Models
W = Σ C_ij(Ī₁ - 3)^i × (Ī₂ - 3)^j [i+j ≥ 1]
Many variations; include Mooney-Rivlin and Neo-Hookean as special cases
Arruda-Boyce (8-chain model)
Physics-based; limited extensibility network; good for high stretch
W = μ Σ C_i(Ī₁^i - 3^i) / λ_m^(2i-2) [Cr, λ_m = network parameters]
ABAQUS/ANSYS hyperelastic material input:
Provide test data (uniaxial tension + equibiaxial + planar shear) → FEA fits C₁₀, C₀₁ automatically
Or specify C₁₀, C₀₁ directly if known
O-Ring Design
Diametral squeeze (radial compression):
Squeeze% = (W_groove - d_wire) / d_wire × 100%
Static seal: 15–20% squeeze (minimum 0.6 mm)
Dynamic rotary: 10–15%
Dynamic reciprocating: 10–12%
Groove dimensions (AS568 O-ring dash sizing):
d_wire = 1.78 mm (100-series), 2.62 mm (200-series), 3.53 mm (300-series), 5.33 mm (400-series)
Groove depth = d_wire × (1 - squeeze/100) ± tolerance
Groove width = 1.4 × d_wire (sufficient for squeeze + thermal expansion + swelling)
Back-up rings: for P > 35 bar (500 psi) in reciprocating service; prevent extrusion into clearance gap
Rubber Fatigue
Crack initiation: generally governed by ozone attack and stress concentration at surface defects
Crack propagation: tearing energy T = dU/dA [J/m²]
T_c ≈ 1000–10,000 J/m² (critical tearing energy for crack growth)
Thomas-Lake crack growth:
dc/dN = A × T^m [m ≈ 2 for many elastomers; A = material constant]
Fatigue life (simple estimate):
N_f ≈ 10^6 cycles at ε_a = 10%; N_f → 10^3 at ε_a = 30% (very rough guidance)
FKM and HNBR significantly better than NBR at equivalent strain amplitude
Ozone cracking: perpendicular cracks on stressed elastomer surfaces exposed to ozone
Threshold: as low as 0.1 ppm ozone + static or dynamic strain
EPDM and CR have excellent ozone resistance; NBR poor
Thermal Aging
Arrhenius prediction:
t_life(T₂) = t_life(T₁) × exp[E_a/R × (1/T₂ - 1/T₁)]
E_a ≈ 0.8–1.4 eV for NBR/EPDM; 0.6–1.0 eV for FKM
ASTM D573: hot air aging; measure retention of tensile strength, elongation, hardness
Acceptance: retention > 70–80% of initial for most specifications
Output
Provide: elastomer type selection (NBR/EPDM/FKM/Silicone/HNBR) with temperature and media justification, Shore A hardness, approximate E [MPa] and G [MPa], Mooney-Rivlin C₁₀ and C₀₁ estimates (or direct from supplier data), compression set CS [%] at service temperature, O-ring dash number and groove dimensions, fatigue life estimate (cycles at design strain amplitude), aging life at service temperature [hours to 50% property retention], applicable standard (ASTM D412, D395, D573, AS568B for O-rings).