| name | glass-engineering |
| description | Glass engineering — silicate/borosilicate/aluminosilicate glass, thermal tempering, chemical strengthening (ion exchange), fracture mechanics of glass, Weibull statistics, architectural glazing (ASTM E1300), automotive windshield, optical glass. |
| metadata | {"priority":7,"promptSignals":{"phrases":["glass engineering","tempered glass","glass fracture","ASTM E1300","chemical strengthening glass","borosilicate glass"],"minScore":3}} |
Glass Engineering — Complete Skill
Glass Types and Properties
Silicate Glass (Soda-Lime)
Composition: SiO₂ 70–73%; Na₂O 12–15%; CaO 10–12%; MgO 1–4%; Al₂O₃ 0–2%
Most common: architectural, automotive, containers
Properties:
- E = 70–74 GPa; ν = 0.23
- σ_tensile (annealed) = 30–45 MPa (highly variable; surface flaws dominate)
- σ_tensile (tempered) = 100–200 MPa (compressive surface residual stress overcomes flaws)
- k = 1.0 W/(m·K); CTE = 9–10 × 10⁻⁶/°C
- T_g (glass transition) ≈ 530°C; T_softening ≈ 700°C
Borosilicate Glass
Composition: SiO₂ 70–80%; B₂O₃ 10–20%; Al₂O₃ 2%; Na₂O 4%
Examples: Pyrex, Duran, N-BK7
Properties:
- E = 63–65 GPa; ν = 0.20
- CTE = 3.3 × 10⁻⁶/°C (much lower than soda-lime → excellent thermal shock resistance)
- T_g ≈ 525°C (Pyrex); up to 600°C for high-boron grades
- Transmission: UV-VIS-NIR (better than soda-lime)
Applications: lab glassware, cookware, telescope mirrors, optical windows, semiconductor equipment
Aluminosilicate Glass
Composition: SiO₂ 55–65%; Al₂O₃ 15–25%; MgO/CaO 10–20%; no boron
Properties:
- E = 75–90 GPa (stiffer than soda-lime)
- CTE = 6–7 × 10⁻⁶/°C (intermediate)
- Excellent for chemical strengthening (mobile Na⁺ + large K⁺ exchange possible)
- T_g ≈ 700–800°C (higher than soda-lime)
Examples: Gorilla Glass (Corning 2318, 3, 4, 6, Victus); Dragontrail (AGC)
Applications: smartphone screens; thin consumer electronics displays
Fused Silica / Quartz Glass
Composition: SiO₂ 99.9%+; naturally occurring quartz or synthetic CVD
Properties:
- E = 72 GPa; ν = 0.17
- CTE = 0.55 × 10⁻⁶/°C (ultra-low; best thermal shock resistance)
- T_g ≈ 1,200°C; T_use (long-term) ≈ 1,000°C
- Transmission: deep UV (180 nm) to IR (4 μm); optical window applications
Applications: semiconductor wafer handling; UV optics; telescope mirrors; fiber optic preform; high-T furnace
Glass Strengthening Methods
Thermal Tempering
Process: heat glass above T_g (620–640°C for soda-lime) → rapid quench with air jets
Mechanism: surface cools first → solidifies; interior still viscous → when interior contracts → surface in compression; interior in tension
Residual stress profile:
σ_surface (compressive): -70 to -200 MPa (negative = compressive)
σ_center (tensile): typically +40 to +100 MPa (must balance surface compression)
Stress profile: parabolic across thickness → σ(z) = σ_s + (σ_center - σ_s) × (2z/t)² [z from center; t = thickness]
Minimum thickness: 3–4 mm (below this → insufficient ΔT for tempering)
Surface compressive stress requirement: ≥ 69 MPa (10,000 psi) per ASTM C1048 (fully tempered)
Heat-strengthened: 24–52 MPa CS — stronger than annealed; weaker than tempered
Failure mode: tempered glass shatters into small, dull dice (safety glass); does not produce large sharp shards
Spontaneous breakage: NiS inclusions → phase transformation → volume change → cracks; < 1 in 1,000 panes (undetectable by inspection; heat soak test mitigates)
Chemical Strengthening (Ion Exchange)
Process: submerge glass in molten KNO₃ at 400–430°C for 4–24 hours; Na⁺ → K⁺ exchange → larger K⁺ creates compressive mismatch
Mechanism: K⁺ ion (radius 1.38 Å) replaces Na⁺ (radius 1.02 Å) → volume mismatch → surface compression
Stress profile:
Compressive stress: −500 to −1,000 MPa at surface (much higher than thermal tempering)
Depth of layer (DoL): 20–100 μm (thin layer → surface-confined compression)
σ_tension (core): +50 to +200 MPa (small because compressive layer is thin)
Gorilla Glass performance:
σ_surface ≈ −700 MPa; DoL ≈ 50 μm; flexural strength ≈ 900–1,200 MPa
Thin possible: down to 0.4 mm (impossible with thermal tempering)
Cannot re-cut or drill after chemical strengthening (releases compressive force → shatters)
Fracture Mechanics of Glass
Stress intensity factor:
K_I = Y × σ × √(πa) [MPa√m; Y = geometry factor; a = crack half-length; σ = applied stress]
Critical condition (Griffith fracture):
K_IC = Y × σ_f × √(πa_c) → σ_f = K_IC / (Y × √(πa_c))
K_IC for soda-lime glass: 0.75 MPa√m (annealed); 0.75 MPa√m (tempered — same bulk toughness but higher residual compression)
Sub-critical crack growth (static fatigue):
v = A × (K/K_IC)^n [crack velocity; n ≈ 16 for glass in humid air; A = environment constant]
Lower load → slower crack growth → delayed failure in humid environments
Design: σ_design = σ_inert × S × (1/n) × (1 - 2/n) × ... [account for time-dependent strength]
Weibull modulus for glass:
σ_f distribution: Weibull with m ≈ 5–10 for abraded soda-lime glass; m = 20–30 for pristine glass
P_failure = 1 - exp[-(σ/σ_0)^m] [σ_0 = characteristic strength; higher m → tighter distribution]
Architectural Glazing (ASTM E1300)
Standard: ASTM E1300 — standard practice for determining load resistance of glass
Glass type codes: AN (annealed), HS (heat-strengthened), FT (fully tempered); SS (single strength), DS (double strength)
Load resistance factor (LR):
LR_glass = NFL × GTF / LS [NFL = non-factored load from ASTM E1300 charts; GTF = glass type factor; LS = load share factor]
NFL determination:
Enter chart with: glass type, thickness, aspect ratio (short side / long side), area → read NFL [kPa]
Example: 6 mm AN glass, 1 m × 1.5 m → NFL ≈ 1.6 kPa (from ASTM E1300 chart 2)
Glass Type Factor (GTF):
| Type | Lite | GTF |
|---|
| Annealed | Single | 1.0 |
| Heat-strengthened | Single | 2.0 |
| Fully tempered | Single | 4.0 |
| IG unit (AN/AN) | Outer/inner | 0.73/0.73 |
Design wind load: per ASCE 7; site-specific; glazing must resist ultimate (factored) wind pressure
Maximum allowable deflection: L/175 (ASTM E1300) or 20 mm (whichever is less) for typical glazing
Automotive Glazing
Windshield: laminated glass — two annealed sheets + PVB (polyvinyl butyral) interlayer
- Fail-safe: cracks but stays in place (PVB holds fragments)
- FMVSS 205: penetration resistance, optical distortion, light transmission ≥ 70%
Side windows: tempered glass (single layer); cracks into dice
Heated rear windows: fine resistive wires embedded in glass or conductive coating
Solar gain control:
Solar reflective coating (IRR): reflects near-IR; reduces solar heat gain (SHGC < 0.3 vs. 0.8 for clear)
Electrochromic glass: variable tint; VT changes 5–80% with applied voltage
Optical Glass
Abbe number (V_d): V_d = (n_d - 1) / (n_F - n_C) [dispersion measure; high V_d = low dispersion = crown glass]
Crown glass: V_d > 50; n_d ≈ 1.45–1.55; low dispersion (BK7, FK51)
Flint glass: V_d < 50; n_d ≈ 1.55–1.95; high dispersion; dense (SF10, SF57)
Optical properties of N-BK7:
n_d = 1.5168; V_d = 64.17; T_g = 557°C; CTE = 7.1 × 10⁻⁶/°C
Transmission: 330 nm – 2.5 μm; standard reference optical glass
Standards
| Standard | Scope |
|---|
| ASTM E1300 | Load resistance of glass in buildings |
| ASTM C1048 | Heat-treated flat glass (HS and FT) |
| ASTM C1279 | Tempered glass — surface stress measurement |
| FMVSS 205 | Glazing materials for motor vehicles |
| ISO 11485 | Glass for buildings — laminated glass |
| ASTM C1422 | Chemically strengthened flat glass |
Output
Provide: glass type (soda-lime/borosilicate/aluminosilicate/fused silica), strengthening method (annealed/HS/FT/chemical), surface compressive stress [MPa] and depth of layer [μm] (chemical), K_IC [MPa√m] and Weibull modulus m, applied load [kPa] (wind or uniform), ASTM E1300 NFL [kPa] and GTF (for architectural), maximum deflection [mm] vs. L/175 limit, sub-critical crack growth consideration (static fatigue), failure mode (dice/laminate hold), and applicable standard (ASTM E1300, ASTM C1048, ASTM C1422).