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掺入锆铝层状双氢氧化物的矿渣花岗岩地质聚合物水泥的力学性能和耐久性

Mechanical properties and durability of slag granite geopolymer cement incorporated zirconium aluminum layered double hydroxide.

作者信息

Hashem Fayza S, Salam Ahmed T Abdel, Monir Dalia

机构信息

Chemistry Department, Faculty of Science, Ain Shams University, P.O: 11566, Cairo, Egypt.

Faculty of Veterinary Medicine, Cairo University, Cairo, Egypt.

出版信息

Sci Rep. 2025 May 22;15(1):17824. doi: 10.1038/s41598-025-02052-5.

Abstract

This research developed an alkali-activated geopolymer (GP) cement using powdered granite waste (GW), blast furnace slag (BFS), and Zirconium aluminum Layered double hydroxide (Zr-Al-CO LDH). The alkali-activation reactions were promoted using NaOH and NaSiO (1:1) as an alkaline activator. The durability of various GP mixes was tested by examining their mechanical properties against firing up to 800 °C and exposure to high doses of gamma rays. Results indicated that incorporating up to 30% granite powder into the GP mixture resulted in faster setting times: initial setting time decreased by 20%, and final setting time decreased by 33%. This improvement is attributed to the acceleration of alkali-activation reactions and the increased stiffness of the paste, which is due to the surplus soluble silicon ions released from the granite powder. Replacing BFS with 10% GW led to an improvement in strength by approximately 4-6%. However, increasing the replacement ratio resulted in a decline in mechanical properties. Enhancing the 80% BFS and 20% granite waste (GW) mixture with 0.5-1% of Zr-Al-CO LDH significantly increased compression resistance by 37% and 25% at all stages of the alkali activation process. This enhancement in compression resistance is attributed to the nano-filling effect of Zr-Al-CO LDH and its ability to improve the bonding between the BFS and granite particles. Furthermore, BFS (blast furnace slag) reinforced with LDH (layered double hydroxide) showed no loss of strength during durability tests against gamma-ray irradiation at doses up to 1000 kGy. Additionally, it demonstrated thermal stability when fired at temperatures up to 800 °C, in contrast to the GP mix made solely from BFS. This behavior is mainly due to the combined action of granite particles, which serve as energy storage and thermal insulating materials, with the nano-filling and/or absorptivity properties of Zr-Al-CO LDH within the GP matrix which reinforces the geopolymer structure to endure the detrimental impacts of these demanding environments.

摘要

本研究利用粉末状花岗岩废料(GW)、高炉矿渣(BFS)和锆铝层状双氢氧化物(Zr-Al-CO LDH)开发了一种碱激发地质聚合物(GP)水泥。使用NaOH和NaSiO(1:1)作为碱性激发剂来促进碱激发反应。通过检测各种GP混合料在高达800℃的焙烧和高剂量伽马射线照射下的力学性能,来测试其耐久性。结果表明,在GP混合料中掺入高达30%的花岗岩粉会使凝结时间加快:初凝时间缩短20%,终凝时间缩短33%。这种改善归因于碱激发反应的加速以及浆体刚度的增加,这是由于花岗岩粉释放出的多余可溶性硅离子所致。用10%的GW替代BFS可使强度提高约4-6%。然而,替代率的增加会导致力学性能下降。用0.5-1%的Zr-Al-CO LDH增强80%的BFS和20%的花岗岩废料(GW)混合料,在碱激发过程的各个阶段,抗压强度显著提高了37%和25%。抗压强度的这种提高归因于Zr-Al-CO LDH的纳米填充效应及其改善BFS与花岗岩颗粒之间粘结的能力。此外,用LDH(层状双氢氧化物)增强的BFS(高炉矿渣)在高达1000 kGy剂量的伽马射线照射耐久性测试中没有强度损失。此外,与仅由BFS制成的GP混合料相比,它在高达800℃的温度下焙烧时表现出热稳定性。这种行为主要归因于花岗岩颗粒的综合作用,花岗岩颗粒充当储能和隔热材料,以及GP基体中Zr-Al-CO LDH的纳米填充和/或吸收特性,这些特性增强了地质聚合物结构以承受这些苛刻环境的有害影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5a45/12098843/613c6699d02f/41598_2025_2052_Fig1_HTML.jpg

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