4.7 Article

Microwave irradiation coupled with zero-valent iron that enhances the composite geopolymerization of chromite ore processing residue and its mechanisms

期刊

ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH
卷 28, 期 26, 页码 34824-34837

出版社

SPRINGER HEIDELBERG
DOI: 10.1007/s11356-021-13072-9

关键词

Microwave irradiation; Chromite ore processing residue; Composite materials-based geopolymer; Reduction; Immobilization; Coupling mechanism

资金

  1. Natural Science Foundation of Jiangsu Province [BK20201054]
  2. Basic public research Plan Projects of Zhejiang Province [LGC19E080001]
  3. China Postdoctoral Science Foundation [2020M681774]
  4. Natural Science Foundation of the Jiangsu Higher Education institutions of China [20KJB490001]

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Microwave irradiation was used to enhance the de-contamination of chromite ore processing residue (COPR) dominated by zero-valent iron (ZVI). Factors such as liquid to solid ratios, ZVI to COPR mass ratios, and acid dosage significantly influenced the reduction of COPR in the MW system. The coupled process was found to be more effective in incorporating treated COPR into geopolymer-based crystalline microstructures compared to subsequent ZVI reduction and MW irradiation.
In this work, microwave (MW) irradiation was employed to enhance the zero-valent iron (ZVI)-dominated de-contamination of chromite ore processing residue (COPR). A coupling system and the traditional two-step procedure were both conducted to evaluate the effects of MW irradiation on the reduction and the incorporation of COPR into the composite materials-based geopolymers. The factors including the ratios of liquid to solid, the mass ratios of ZVI to COPR, and the acid dosage had some obvious influence on the reduction of COPR in the MW system. The compressive strengths of 31.54 and 41.56 MPa were determined from the two-step procedure and the coupling system at the COPR dosage of 10% (mass ratio), respectively. The employment of MW irradiation not only strengthened the formation of the geopolymer matrices but also improved the chemical stabilization of Cr species in the solidified blocks. The coupled process was more conducive to incorporating the treated COPR into the geopolymer-based crystalline microstructures compared with the subsequent usage of ZVI reduction and MW irradiation.

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