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Controlled low-strength material using industrial hazardous waste incinerator bottom slag and refined kaolin

机译:使用工业危险废物焚烧炉底渣和精制高岭土控制的低强度材料

摘要

The main purpose of this paper is to study the effect of kaolin addition on the performance of Controlled Low-Strength Material (CLSM) made using industrial hazardous waste incinerator bottom slag. Various mix formulatiuons of CLSM were made with the incinerator bottom slag, kaolin, and cement. Amount of cement added varied from 0 to 40 percent of weight of slag. Amount of kaolin added were 25, 50, 75, and 100 percent of weight of cement. Water content was adjusted to get sufficient flowability. The CLSM mixes prepared were tested for setting time, bleeding, and corrosivity in fresh state. Tests like compressive strength, California Bearing Ratio (CBR), Initial Surface Absorption (ISAT), settlement, and water absorption, were conducted on the hardened CLSM. Compressive strength tests were conducted at 7, 14, and 28 days on 70.7 mm cubes. Heavy metals analysis for bleed and leachate water was also conducted on the CLSM mixes. The 28 days compressive strength of CLSM tested ranged from 0.36 to 4.40 MPa. CBR values ranged from 10 to 46, and ISAT values at 1 hour from 0.56 to 4.76 mL/m2/s. None of the twelve heavy metals tested exceeded the threshold limits. It is concluded that the kaolin addition in CLSM using incinerator slag showed reduction in the compressive strength, but improved performance with regard to ISAT, CBR, and water absorption. It is concluded that the incinerator slag can be developed as a new sustainable construction material in CLSM.
机译:本文的主要目的是研究添加高岭土对工业有害废物焚烧炉底渣制成的受控低强度材料(CLSM)性能的影响。用焚化炉底渣,高岭土和水泥制成各种CLSM混合配方。水泥的添加量为炉渣重量的0%至40%。高岭土的添加量为水泥重量的25%,50%,75%和100%。调节水含量以获得足够的流动性。测试了所制备的CLSM混合物在新鲜状态下的凝固时间,渗出和腐蚀性。在硬化的CLSM上进行了抗压强度,加利福尼亚承载比(CBR),初始表面吸收(ISAT),沉降和吸水率等测试。在70.7毫米的立方体上第7、14和28天进行抗压强度测试。还对CLSM混合物进行了重金属的渗出水和渗滤液水分析。测试的CLSM的28天抗压强度为0.36至4.40 MPa。 CBR值范围从10到46,1小时的ISAT值从0.56到4.76 mL / m2 / s。测试的十二种重金属均未超过阈值限制。结论是,使用焚烧炉渣在CLSM中添加高岭土显示出抗压强度降低,但ISAT,CBR和吸水率方面的性能有所改善。结论是,焚烧炉渣可作为CLSM中的一种新型可持续建筑材料。

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