The use of artificial neural networks to predict the effect of sulphate attack on the strength of cemented paste backfill

被引:0
|
作者
L. Orejarena
Mamadou Fall
机构
[1] University of Ottawa,Department of Civil Engineering
关键词
Cemented paste backfill; Sulphate attacks; Unconfined compressive strength; Prediction model; Remblais cimentés; Attaques sulfatées; Résistance à la compression simple; Modèle de prévision;
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摘要
The growing use of cemented paste backfill (CPB) as a ground support method in mining and also as an environmentally friendly alternative for mine waste disposal demands a better understanding of the different processes that affect its strength. Due to its nature as cement based material, CPB is prone to the progressive loss of strength with sulphate attacks under certain conditions. The paper provides a background to sulphate attacks in CPB and artificial neural networks (ANN) and presents a model to predict the unconfined compressive strength of a CPB under sulphate attack, based on different water cement ratios, binder composition and binder content.
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页码:659 / 670
页数:11
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