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赤泥-礦渣-水泥基全尾砂膠結充填料的性能與微觀結構

Performance and microstructure of cemented whole-tailings backfilling materials based on red mud,slag and cement

  • 摘要: 為了克服膠結充填成本高,解決尾礦、赤泥大量堆存而危害環境的問題,實驗制備出以赤泥為主要膠凝組分的全尾砂膠結充填材料.該充填料試塊在強度上優于用水泥制備的全尾砂膠結充填料試塊,抗壓強度達到R28=7MPa,滿足礦山充填要求.所配制的充填料有良好的流動性、保水性好、不泌水且成本大大低于水泥膠結充填材料.利用X射線衍射(XRD)和掃描電鏡(SEM)對該充填材料的水化產物和微觀結構進行了研究.結果表明,原料中的礦物相經水化反應后生成了大量的鈣礬石和結晶程度低的復雜凝膠,它們交織在一起使體系結構致密,具有較好的力學性能.

     

    Abstract: In order to solve the problems of high cost in mine backfilling and environmental pollution brought by the stockpiling of tailings and red mud, cemented whole-tailings backfilling materials were prepared with red mud as the main component in cementitious materials. The backfilling materials have a higher compressive strength than those prepared with cement. The compressive strength of samples made of the backfilling materials cured for 28 d was up to 7 MPa, which meets the requirements of materials for mine backfilling. In addition, the new backfilling materials have good workability such as applicable flow plasticity, good water-retaining property, non-bleeding and a much lower cost than traditional cemented backfilling materials. The hydrated products and their microstructures of the hardened samples were analyzed by XRD and SEM. The results showed that most of the raw materials were transformed into ettringite and low crystallized complexity gel during the hydration reaction. As hydration went on, the structure became much denser with the interlacing of ettringite and gel, and thus good mechanical properties were obtained.

     

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