Construction Materials
Predict durability, optimize mix designs, and ensure long-term performance through comprehensive pore structure analysis and permeability characterization.
Pore structure governs transport properties and long-term concrete performance
Critical period for pore structure refinement
Design strength and durability achieved
Degradation mechanisms tracking
Lower w/c ratios produce refined pore structures with enhanced durability properties.
SCMs refine pore structure through pozzolanic reactions and filler effects.
Controlled air void system provides freeze-thaw durability without compromising strength.
Porosity evolution during autogenous healing of cracks monitored via MIP.
| Property | Test Method | Standard | Typical Values |
|---|---|---|---|
| Pore size distribution | Mercury intrusion | ASTM D4404 | 10 nm - 100 μm range |
| Total porosity | MIP or water saturation | ASTM C642 | 8-15% for normal concrete |
| Permeability | Rapid chloride test | ASTM C1202 | <2000 Coulombs |
| Air void analysis | Microscopy + MIP | ASTM C457 | Spacing <200 μm |
| Freeze-thaw | Rapid cycling | ASTM C666 | DF >80% after 300 cycles |
| Carbonation | Phenolphthalein + MIP | EN 14630 | <5 mm/year penetration |
Challenge: Design 100-year service life concrete for offshore platform
Solution: Ultra-high performance concrete with optimized pore structure
Challenge: Prevent premature deterioration from freeze-thaw and deicing salts
Solution: Air-entrained HPC with silica fume and optimized air void system
Challenge: Ultra-low permeability for radiation shielding over 60+ years
Solution: High-density concrete with nano-silica pore refinement
Expert porosimetry testing for mix design optimization and durability assessment