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盐胶结充填料的强度发展与自干燥。

Strength development and self-desiccation of saline cemented paste backfill.

机构信息

Department of Civil Engineering, University of Ottawa, 161 Colonel By, Ottawa, ON, K1N 6N5, Canada.

出版信息

Environ Sci Pollut Res Int. 2024 Feb;31(10):14894-14911. doi: 10.1007/s11356-024-32200-9. Epub 2024 Jan 29.

Abstract

Given that many mines around the world are located in areas where fresh water is scarce, and companies are being held to increasingly stringent sustainability and environmental responsibility standards, many mines are looking to use locally available saline groundwater or seawater as mixing water in cemented paste backfill (CPB). However, the impacts of this decision on key engineering properties of CPB (e.g. strength and self-desiccation) that affect its mechanical stability need to be better understood to allow confident selection of this practical and more sustainable solution. Thus, the effect of mixing water salinity and binder type on the strength (unconfined compressive strength, UCS) development and self-desiccation (measured by suction and volumetric water content) of CPB is explored in this research. NaCl concentrations from 0 to 300 g/L were used in CPB made with silica tailings and Portland cement type I (PC). Concentrations of 10 and 35 g/L were found to moderately increase UCS, while a concentration of 100 g/L had comparable UCS to non-saline CPB and a concentration of 300 g/L was found to significantly decrease UCS over all curing times. The overall trend is 10 g/L > 35 g/L > 0 g/L > 100 g/L > 300 g/L. The UCS of the 60-day-old CPB with a NaCl of 300 g/L is significantly lower, registering a 26% decrease compared to the UCS of the 60-day-old CPB without salt. In contrast, the UCS of the 60-day-old CPBs containing 10 g/L and 35 g/L of salt exhibits a notable improvement, being 15% and 10% higher, respectively, than the UCS of the 60-day-old CPB without salt. Water content and suction monitoring were conducted up to 28 days of curing time, and it was found that suction only slightly contributed to UCS gain of the saline CPB, and high salt contents (100 and 300 g/L) significantly inhibited the self-desiccation ability of CPB due to inhibition of cement hydration by the excessive amount of salt. The increase in strength of both saline and non-saline samples was attributed primarily to the increase in cement hydration products, while the increased strength of the samples with salinities of 10 and 35 g/L was mainly attributed to the enhancement of the binder hydration due to the low amount of salt and the presence of Friedel's salt in the pores. The effect of PC replacement by 25 to 75% with slag on CPB with 35 g/L mixing water salinity was also studied. Slag replacement of 50% and higher resulted in significantly higher UCS over most curing times. Suction likely moderately contributed to UCS of the saline CPB with slag, in addition to the presence of Friedel's salt in the pores and the acceleration of cement and slag hydration by the presence of NaCl.

摘要

鉴于世界上许多矿山都位于淡水稀缺的地区,并且公司被要求越来越严格地遵守可持续性和环境责任标准,许多矿山都希望使用当地可用的咸地下水或海水作为胶结膏体充填料(CPB)的混合水。然而,为了允许有信心地选择这种实用且更可持续的解决方案,需要更好地了解这一决策对 CPB 的关键工程特性(例如强度和自干燥)的影响,这些特性会影响其机械稳定性。因此,本研究探讨了混合水盐度和粘结剂类型对 CPB 强度(无侧限抗压强度,UCS)发展和自干燥(通过吸力和体积含水量测量)的影响。CPB 中使用了二氧化硅尾矿和波特兰水泥 I 型(PC),其 NaCl 浓度为 0 至 300 g/L。发现 10 和 35 g/L 的浓度适度提高了 UCS,而 100 g/L 的浓度与非咸 CPB 的 UCS 相当,而 300 g/L 的浓度在所有固化时间内均明显降低 UCS。总体趋势为 10 g/L>35 g/L>0 g/L>100 g/L>300 g/L。300 g/L NaCl 的 60 天 CPB 的 UCS 明显较低,与无盐的 60 天 CPB 的 UCS 相比,降低了 26%。相比之下,含有 10 g/L 和 35 g/L 盐的 60 天 CPB 的 UCS 有明显的提高,分别比无盐的 60 天 CPB 的 UCS 高 15%和 10%。在 28 天的养护时间内进行了水分含量和吸力监测,发现吸力仅对咸 CPB 的 UCS 增长略有贡献,而高盐含量(100 和 300 g/L)由于过多的盐抑制了水泥水化,因此显著抑制了 CPB 的自干燥能力。盐水和非盐水样强度的增加主要归因于水泥水化产物的增加,而盐度为 10 和 35 g/L 的样品强度的增加主要归因于由于盐含量低和孔中存在弗氏盐,从而增强了粘结剂的水化作用。还研究了用 25%至 75%的矿渣替代波特兰水泥对 35 g/L 混合水盐度的 CPB 的影响。在大多数固化时间内,矿渣替代率为 50%及以上时,UCS 明显更高。除了孔中存在弗氏盐以及存在 NaCl 加速水泥和矿渣水化之外,矿渣的存在可能还适度促进了盐水 CPB 的 UCS。

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