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首页> 外文期刊>Marine Georesources & Geotechnology >Elevated curing temperature-associated strength and mechanisms of reactive MgO-activated industrial by-products solidified soils
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Elevated curing temperature-associated strength and mechanisms of reactive MgO-activated industrial by-products solidified soils

机译:活性MgO活化工业副产物固化土固化温度相关强度升高及机理

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Alkali-activated industrial by-products (granulated blast furnace slag, Class F fly ash) by traditional alkali activator (such as NaOH and Na2SiO3) serves as a partial replacement for Portland cement in soil stabilization projects and suffers from environmental and technical problems. Reactive MgO - a greener and more practical alternative has recently emerged as a potential activator for slag and fly ash, but its micromechanisms of alkaline activation still need to be deeply investigated for strength improvement of soils. Hence, this study focuses on the strength and hydration properties of reactive MgO-slag and MgO-fly ash solidified soils, especially incorporating the impact of elevated curing temperature. Reactive MgO is proved to be excellent as a novel activator for activation of slag and fly ash, and their activating efficiency increases with elevated curing temperature that helps to remarkably enhance the compressive strength of soils. The major hydration products for reactive MgO-slag solidified soils, detected jointly by X-ray diffraction, scanning electron microscopy and thermogravimetric/differential thermogravimetric tests, are calcium silicate hydrate gels and hydrotalcite-like phases. The primary hydration products for MgO-fly ash solidified soils are magnesium silicate hydrate gels and Mg(OH)(2). That is just the intrinsic reason why the microstructure of solidified soils becomes much denser and the mechanical behavior is significantly improved. The minor carbonate phases such as magnesium carbonate and/or calcite are also observed in reactive MgO-slag and MgO-fly ash solidified soils, depending on the period of exposure to air. The curing temperature and binder amount are proved to be the two major factors governing the hydration process of reactive MgO-slag and MgO-fly ash blends. A higher curing temperature and binder amount can generate more hydration products, but their chemical compositions such as accurate element ratios need to be investigated in the future study.
机译:传统碱活化剂(如NaOH和Na2SiO3)的碱活化工业副产品(粒化高炉矿渣、F级粉煤灰)在土壤稳定项目中作为硅酸盐水泥的部分替代品,存在环境和技术问题。活性氧化镁是一种更环保、更实用的替代品,最近已成为矿渣和粉煤灰的潜在活化剂,但其碱性活化的微观机理仍需深入研究,以提高土壤的强度。因此,本研究重点关注活性MgO渣和MgO粉煤灰固化土的强度和水化性能,特别是结合固化温度升高的影响。活性氧化镁被证明是活化矿渣和粉煤灰的新型活化剂,其活化效率随着固化温度的升高而提高,有助于显著提高土壤的抗压强度。通过X射线衍射、扫描电子显微镜和热重/差示热重测试共同检测的反应性MgO渣固化土壤的主要水化产物是硅酸钙水合物凝胶和水滑石相。MgO-粉煤灰固化土壤的主要水化产物是硅酸镁水合物凝胶和Mg(OH)(2)。这正是固化土壤的微观结构变得更加致密和机械性能显着改善的内在原因。在活性 MgO-炉渣和 MgO-粉煤灰固化土壤中也观察到次要的碳酸盐相,例如碳酸镁和/或方解石,具体取决于暴露于空气的时间。固化温度和粘结剂用量是影响活性MgO渣和MgO粉煤灰共混物水化过程的两大因素。较高的固化温度和粘结剂用量可以产生更多的水化产物,但其化学成分(如准确的元素比)需要在未来的研究中进行研究。

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