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Dynamic properties and environmental impact of waste red mud-treated loess under adverse conditions

机译:废红泥浆处理黄土在不利条件下的动态特性和环境影响

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摘要

Under the combination of heavy loading and high moisture content, the metastable structure of natural loess can easily lead to uneven settlement and damage the overlying infrastructure. Using traditional binder such as cement has harmful impact on the environment, especially due to resource consumption and carbon emission. This research has identified the feasibility of using red mud waste as a partial replacement of cement for loess subgrade treatment in terms of dynamic properties and environmental impact. The performance of loess treated with a combination of waste red mud (RM) and small amount of cement additive (C) is evaluated by considering the complex engineering geological conditions.The results show that dynamic stress (sigma(d)) and moisture content (w) have a more significant influence on the dynamic properties of RMC-treated loess compared with confining pressure (sigma(3)) and loading frequency (f). Higherwshows a remarkable reduction in the dynamic load resistance of treated loess, yet the addition of RMC still can improve the microstructure and water sensitivity of loess. Specifically, the failure dynamic stress (sigma(df)) and the maximum dynamic elastic modulus (E-dmax) of the treated loess at higherware found to be 100% and 400% higher than those of untreated loess respectively. RMC treatment also improved the dynamic cohesive (c(d)) value from 23.2 to 173.6 kPa compared with untreated loess. In addition, the leaching toxicity and radiation of RMC-treated loess indicate that it does not pose any risk to the groundwater. Finally, revised Monismith model has been developed based on the proposed formula for predicting power indexb, which can be capable of describing the long-term deformation stability under cyclic loading.
机译:在重载和高水分含量的组合下,天然黄土的亚稳结构很容易导致沉降不均匀,损坏覆盖基础设施。使用水泥等传统粘合剂对环境产生有害影响,特别是由于资源消耗和碳排放。该研究确定了使用红泥废物作为在动态性能和环境影响方面进行黄土路基治疗的水泥部分替代的可行性。通过考虑复杂的工程地质条件,评价用废红泥(RM)和少量水泥添加剂(C)的组合处理的黄土的性能。结果表明动态应力(Sigma(D))和水分含量( w)对与限制压力(Sigma(3))和装载频率(F)相比,对RMC处理过的黄土的动态性质具有更大的影响。更高的迹象在经过处理过的黄土的动态载荷电阻下显着降低,但增加了RMC仍然可以提高黄土的微观结构和水敏感性。具体地,经过较高的软件的经处理黄土的失效动态应力(Sigma(DF))和最大动态弹性模量(E-DMAX)分别比未处理的黄土更高的100%和400%。与未经处理的黄土相比,RMC治疗还改善了23.2至173.6 KPA的动态粘性(C(d))值。此外,RMC处理黄土的浸出毒性和辐射表明它不会对地下水产生任何风险。最后,已经基于预测电力指数的所提出的公式开发了修订的蒙思模型,这能够描述在循环载荷下的长期变形稳定性。

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