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Additionally, the use of crumb rubber could lead to RCA bituminous mixtures with higher fatigue life in medium traffic roads.
In addition, the increase of the calcination temperature leads to the formation of anatase/rutile mixtures with higher quantity of rutile.
However, longer RAP/virgin aggregate mixing times could result in recycled hot asphalt mixtures with higher stiffness modulus and better homogeneity.
The pursuit of high early-age strength concrete has led to mixtures with higher heat of hydration rates at early ages which produces higher temperatures and an overall increased risk of cracking.
Test results showed that CNN models from binary images of mastics and aggregates could success classify different asphalt mixtures with higher reliability than CNN model from images of air voids.
Binary mixtures has much higher areas compared with the pure oxides being the oxide morphology of mixtures with higher than 50 mol% RuO2 contents very similar to Ti/RuO2.
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The microstructural properties were examined using SEM and EDS on mixtures with high volume of SCMs.
Low temperature cracking potential is a primary concern for asphalt mixtures with high RAP contents.
For mixtures with high hydrogen content, anomalous stabilization and blow-off behavior has been observed.
Utilizing the developed models, three optimum FS-LWSCC mixtures with high statistical desirability were formulated and tested.
Utilizing the developed models, three optimum expanded clay LWSCC (EC-LWSCC) mixtures with high statistical desirability were formulated and tested.
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