超声波对蔗糖结构的影响及其对土基碱活性材料可控缓凝的影响

Pitabash Sahoo, Souradeep Gupta
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引用次数: 0

摘要

用碱活化的粘合剂稳定建筑和拆除活动中挖掘出来的土壤,可以制造低碳建筑材料。本研究探讨了非超声(S)和超声蔗糖(USS)在含粘土含量为42.5%的开挖红土(EAAM)碱活化材料中的缓凝效果。研究了蔗糖用量和超声对EAAM水化动力学、凝固和结构形成的影响。等温量热法的研究结果表明,在初始12小时内,水化动力学延迟30 - 65%,导致凝结延迟50 - 60%,EAAM的结构积聚较慢。这导致比对照(0%蔗糖)具有更高的流动性和更长的流动保持时间。通过解耦GGBS和FA对水化的影响,发现蔗糖对GGBS的缓凝作用比FA更明显,这是由于蔗糖与富钙位点的相互作用比铝酸盐更强。在EAAM中加入2%的USS比添加2%的S产生更高的延迟。这是由于超声诱导蔗糖分子分解而形成的酸性副产物,导致pH值降低和静电排斥。与S相比,添加了USS的EAAM的致密微观结构在潮湿条件下的强度保持率显著提高,表明水分敏感性降低。由于后期水化作用增强,蔗糖-EAAM在28天的湿抗压强度比对照EAAM高30 - 48%。总的来说,蔗糖可以通过“绿色”过程从废弃生物质中制备,可以作为一种潜在的化学混合物用于土基碱活化结构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Effect of ultrasonication on sucrose structure and its influence on controlled retardation of earth-based alkali-activated materials

Effect of ultrasonication on sucrose structure and its influence on controlled retardation of earth-based alkali-activated materials
Excavated soil from construction and demolition activities can be stabilized by alkali-activated binders to manufacture low-carbon construction materials. This research attempts to investigate the efficacy of non-sonicated (S) and sonicated sucrose (USS) as a controlled retarder in alkali-activated materials containing excavated lateritic soil (EAAM) (clay content of 42.5 %). Influences of sucrose dosage and sonication on hydration kinetics, setting, and structural build-up of EAAM have been investigated. Findings from isothermal calorimetry show 30 – 65 % retardation in hydration kinetics leading to a 50 – 60 % delay in setting and slower structural build-up of EAAM during the initial 12 h. This results in higher flowability and superior flow retention for longer duration than the control (0 % sucrose). By decoupling the effect on hydration of GGBS and FA, it is found that sucrose has a more dominant retarding effect on GGBS compared to FA, attributed to its stronger interaction with calcium-rich sites than aluminates. The addition of 2 % USS to EAAM results in higher retardation compared to 2 %S. This is attributed to the formation of acidic byproducts due to sonication-induced breakdown of sucrose molecules, leading to reduced pH and electrostatic repulsion. The densified microstructure of EAAM with USS compared to that with S results in a noticeable improvement in strength retention under wet conditions, suggesting reduced moisture sensitivity. Due to enhanced hydration at later ages, sucrose-EAAM possesses 30 – 48 % higher wet compressive strength than the control EAAM at the 28-day mark. Overall, sucrose, which can be prepared from waste biomass through “green” processes, can be a potential chemical admixture for earth-based alkali-activated constructions.
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