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The deterioration and environmental impact of binary cements containing thermally activated coal mining waste due to calcium leaching

机译:钙浸出对含热活化煤开采废料的二元水泥的降解和环境影响

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Calcium-leaching processes can potentially degrade the structure of a concrete matrix. This problem is studied here through the progressive dissolution of Ca2+ in both ordinary Portland cement pastes (C-0) and binary cement blends (C-20) containing 20% thermally Activated Coal Mining Waste (ACMW).(1) A series of accelerated tests are conducted that involve the immersion of these cement pastes in a 6 M ammonium nitrate solution at a temperature of 20 degrees C for 7 and for 21 days. A rise in paste porosity was observed, due to increased capillary pore sizes of between 5 and 0.1 mu m. In the case of the 20% ACMW pastes (C-20), calcium leaching decreased, probably as a consequence of the pozzolanic effect of the ACMW, while potassium and magnesium leaching increased, due to the presence of the phyllosilicates in the ACMW. The paste compounds most affected by leaching were Ca(OH)(2), C(6)AS(3)H(32), and C(4)A (C) over barH(12). In general terms, it can be concluded that the incorporation of ACMW into binary cements slightly reduces the calcium leaching phenomena. Concerning the environmental impact assessment, the substitution of 20% OPC by ACMW reduced CO2 emissions by as much as 12% and improved energy efficiency by using approximately 19% fewer fossil resources. (C) 2018 Published by Elsevier Ltd.
机译:钙浸出过程可能会破坏混凝土基质的结构。通过在普通波特兰水泥浆(C-0)和含20%热活化采煤废料(ACMW)的二元水泥混合物(C-20)中逐渐溶解Ca2 +来研究此问题。(1)一系列加速进行的测试涉及将这些水泥浆浸入20 M的温度的6 M硝酸铵溶液中7天和21天。由于增加了5至0.1微米之间的毛细孔尺寸,因此观察到了糊剂孔隙率的上升。在20%ACMW糊剂(C-20)的情况下,钙的浸出减少了,这可能是ACMW的火山灰作用的​​结果,而钾和镁的浸出增加了,因为ACMW中存在了页硅酸盐。受浸出影响最大的糊状化合物是在barH(12)上的Ca(OH)(2),C(6)AS(3)H(32)和C(4)A(C)。总的来说,可以得出结论,将ACMW掺入二元水泥中会稍微减少钙的浸出现象。关于环境影响评估,用ACMW替代20%的OPC可减少多达12%的CO2排放,并通过减少约19%的化石资源来提高能源效率。 (C)2018由Elsevier Ltd.发布

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