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High strength concrete (HSC) is widely adopted in marine structures, long-span bridges and high-rise buildings, where long-term impermeability and stable volume are critical to structural durability. Polycarboxylate superplasticizer(PCE) acts as a core functional admixture that directly alters cement dispersion, hydration kinetics and internal pore distribution. Improper PCE dosage can easily lead to excessive chloride penetration, severe self-shrinkage, or early cracking.
This laboratory research sets six gradient PCE dosages ranging from 0% to 1.5% for C70 concrete. A full set of test methods, including electric flux, seepage height ratio, non-contact shrinkage measurement, and mercury intrusion porosimetry (MIP), is used to quantify how PCE content affects impermeability, early self-shrinkage, long-term drying shrinkage, and pore microstructure. The study identifies the optimal PCE dosage to balance durability and volume stability, providing reliable mix design guidance for engineers and ready-mix producers.
| Group | PCE Dosage | 28d Electric Flux © | 7d Seepage Height Ratio (%) |
| PC-0 | 0% | 994 | 100 |
| PC-0.3 | 0.3% | 711 | 75 |
| PC-0.6 | 0.6% | 652 | 58 |
| PC-0.9 | 0.9% | 620 | 42 |
| PC-1.2 | 1.2% | 648 | 49 |
| PC-1.5 | 1.5% | 680 | 57 |
Impermeability improves continuously as PCE dosage rises from 0% to 0.9%. Without a superplasticizer, cement-aggregate mixtures severely aggregate, forming massive interconnected capillary pores that accelerate water and chloride-ion penetration. At a 0.9% dosage, the electric flux drops to 620 C, and the seepage ratio reaches 42%. The electrostatic repulsion and steric hindrance of PCE fully disperse cement flocs, cut the effective water-binder ratio and refine pore structures.
Once the dosage exceeds 0.9%, performance reverses. Excess PCE causes bleeding and segregation, damaging the aggregate-paste interfacial transition zone (ITZ) and generating new connected permeable channels. The delayed hydration effect also reduces early hydration product filling capacity, leading to higher electric flux and seepage height.
| Group | 1d Self | 3d Self | 7d Self | 14d Dry | 28d Dry | 60d Dry |
| PC-0 | 280 | 390 | 450 | 480 | 520 | 550 |
| PC-0.3 | 240 | 330 | 380 | 500 | 540 | 580 |
| PC-0.6 | 210 | 290 | 340 | 510 | 560 | 610 |
| PC-0.9 | 190 | 260 | 320 | 520 | 570 | 630 |
| PC-1.2 | 220 | 290 | 350 | 540 | 590 | 650 |
| PC-1.5 | 250 | 330 | 380 | 560 | 620 | 680 |
| Group | Total Porosity | Avg Pore Size(nm) | <20nm harmless | 20–50nm less harmful | >50nm harmful |
| PC-0 | 18.6% | 58 | 32.5% | 28.7% | 38.8% |
| PC-0.3 | 16.2% | 49 | 38.6% | 32.4% | 29.0% |
| PC-0.6 | 14.5% | 41 | 45.2% | 35.8% | 19.0% |
| PC-0.9 | 12.3% | 32 | 52.8% | 37.5% | 9.7% |
| PC-1.2 | 13.1% | 36 | 48.6% | 35.1% | 16.3% |
| PC-1.5 | 14.5% | 43 | 42.3% | 32.7% | 25.0 |
Polycarboxylate superplasticizer dosage is a decisive factor governing the impermeability and shrinkage performance of C70 high-strength concrete. The 0.9 dosage threshold divides performance trends: below 0.9%, PCE disperses cement, optimizes pore grading and enhances durability; above 0.9%, segregation and delayed hydration degrade pore structure and structural stability.
For bridges, marine engineering and high-rise HSC projects, controlling PCE admixture at 0.9% effectively lowers chloride penetration risk and suppresses early shrinkage cracking, greatly improving the long-term service life of concrete structures.

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