Compatibility of modified magnesium slag-based backfill materials to polycarboxylate superplasticizer: Flow, water-film thickness and strength.

Lang Liu, Xiang Ding, Lei Xie, Xiaoyan Zhang, Chengcheng Shao, Shishan Ruan, Yandong Han

Journal: Environmental research 2025;267():120668

PMID: 39706315

Abstract

Fluidity influences the use of backfill materials in the mining industry. A new backfill material-modified magnesium slag-based backfill materials (MFPB)-is made from solid waste from coal and metallurgy. We focus on the compatibility of polycarboxylate water reducing agent (SP) with MFPB and its effect on MFPB performance. The results indicate that: (ⅰ) The Hershel-Bulkley explains the rheological behavior of MFPB slurry, and the rheological parameters of MFPB are greatly impacted by addition of SP. (ⅱ) SP content, both yield stress and viscosity of the MFPB slurry decrease and are lowest at 0.4% SP content. (ⅲ) Rheological and slump experimental results indicate that SP improves MFPB fluidity. By decreasing the basic water requirement of MFPB, raising slurry free water content, water film thickening, and postponing development of flocculated structures in MFPB, SP enhances the fluidity of MFPB. (ⅳ) Microscopic tests (thermogravimetric-derivative thermogravimetry and scanning electron microscopy) demonstrated that the primary reason for the variations in the uniaxial compressive strength of MFPB was the detrimental impact of SP on the flocculated structure. We report the mechanism by which SP influences MFPB performance, and examine the compatibility between SP and MFPB from the perspectives of water film thickness and other factors. The results of this study references for creating high-fluidity MFPB are made.

Copyright © 2024 Elsevier Inc. All rights reserved.

Address: Energy School, Xi'an University of Science and Technology, Xi'an, 710054, China. Electronic address: [email protected].; Energy School, Xi'an University of Science and Technology, Xi'an, 710054, China; Key Laboratory of Western Mines and Hazards Prevention, Ministry of Education of China, Xi'an, 710054, China. Electronic address: [email protected].; Energy School, Xi'an University of Science and Technology, Xi'an, 710054, China; Key Laboratory of Western Mines and Hazards Prevention, Ministry of Education of China, Xi'an, 710054, China. Electronic address: [email protected].; Energy School, Xi'an University of Science and Technology, Xi'an, 710054, China. Electronic address: [email protected].; Energy School, Xi'an University of Science and Technology, Xi'an, 710054, China. Electronic address: [email protected].; Energy School, Xi'an University of Science and Technology, Xi'an, 710054, China. Electronic address: [email protected].; Energy School, Xi'an University of Science and Technology, Xi'an, 710054, China. Electronic address: [email protected].

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