Optimizing the Temperature and Chemical Stability of Fly Ash Aluminosilicate Composites at the Nanoscale
Optimizing the Temperature and Chemical Stability of Fly Ash Aluminosilicate Composites at the Nanoscale
批准号:
1727346
负责人:
Claire White
金额:
$32.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-08-01 至 2021-07-31
中文摘要
该研究项目的重点是了解和优化用于高温应用的低蕴含能胶凝复合材料的温度和抗碳化性能,如防火墙和耐火材料。由于材料制造和运输的需要,波特兰水泥和耐火混凝土在社会上的使用占了相当大的能源利用量。此外,由于主要强度成分的分解,波特兰水泥基混凝土在高温下不能充分发挥作用,导致昂贵的维修和更换。在这个项目中进行的研究将促进在建筑和耐火材料工业中使用工业副产品,从而鼓励进一步减少与这些部门有关的能源利用。该项目的研究成果将被纳入与能源和环境有关的高中教学模块。关于促进和鼓励在科学、技术、工程和数学领域代表性不足的少数群体,包括年轻女性,该项目将使高中和本科实习生能够在夏季和整个学年接受研究培训。本研究项目的目的是利用多方面的实验方法,揭示和优化基于铝硅酸盐化学的化学活化胶凝复合材料的高温稳定性和抗碳化性。环境温度下的反应动力学和凝固时间将使用超声波分析结合等温量热法进行研究,其中钙基添加剂将用于控制凝固时间和短期力学行为。化学活化偏高岭土和粉煤灰基浆料的分子结构将在高温下使用x射线对分布函数分析和红外光谱来阐明,该项目将包括在同步加速器设施中使用原位碳化/高温测量。此外,考虑到胶凝材料对脱水引起的开裂和机械性能损失的敏感性,氧化铝颗粒和纤维增强对铝硅酸盐复合材料微观结构(和原子)行为的影响将通过同步加速器和实验室x射线显微断层扫描来揭示。最终,该项目将产生关于低温下低蕴含能量铝硅酸盐水泥的原子和微观结构行为的基本知识,其长期目标是将这种材料整合到传统混凝土由于暴露于高温和腐蚀性化学物质而迅速降解的应用中。
英文摘要
This research project centers on understanding and optimizing the temperature and carbonation resistance of low embodied energy cementitious composites for elevated temperature applications, such as fire walls and refractory materials. Use of Portland cement and refractory concrete in society accounts for a sizable amount of energy utilization due to the need for material manufacturing and transportation. Furthermore, Portland cement-based concrete does not perform adequately at elevated temperatures due to decomposition of the main strength-giving constituent, leading to costly repair and replacement. The research to be conducted in this project will promote the use of industrial byproducts in the construction and refractory industries, and therefore encourage further reductions in energy utilization associated with these sectors. The research outcomes of this project will be incorporated into high school teaching modules on materials relating to energy and the environment. In regards to promoting and encouraging underrepresented minorities in science, technology, engineering and mathematics, including young females, this project will enable high school and undergraduate interns to be trained in research during summers and over the academic year.The objective of this research project is to uncover and optimize the elevated temperature stability and carbonation resistance of chemically-activated cementitious composites, based on aluminosilicate chemistry, using a multifaceted experimental approach. Ambient temperature reaction kinetics and setting times will be investigated using ultrasonic analysis combined with isothermal calorimetry, where calcium-based additives will be utilized to control setting times and short-term mechanical behavior. The molecular structure of chemically-activated metakaolin- and fly ash-based pastes will be elucidated using X-ray pair distribution function analysis and infrared spectroscopy for a range of elevated temperatures, and the project will include the use of in situ carbonation/elevated temperature measurements at synchrotron facilities. Furthermore, given the susceptibility of cementitious materials to dehydration-induced cracking and loss of mechanical properties, the impact of alumina particle and fiber reinforcement on the microstructural (and atomic) behavior of the aluminosilicate composite will be uncovered using synchrotron and lab-based X-ray microtomography. Ultimately this project will generate the fundamental knowledge on the atomic and microstructural behavior of low embodied energy aluminosilicate cements at elevated temperatures, with the long-term aim of integrating this material into applications where conventional concrete quickly degrades due to exposure to high temperatures and aggressive chemicals.
期刊论文(3)
专著(0)
科研奖励(0)
会议论文
Atomic structural evolution of calcium-containing alkali-activated metakaolin exposed to fire conditions
含钙碱激活偏高岭土在火灾条件下的原子结构演化
DOI:
--
发表时间:
2019
期刊:
6th International Workshop on Concrete Spalling due to Fire Exposure
影响因子:
--
作者:
[Alventosa, Karina, White, Claire E]
通讯作者:
White, Claire E
Alkali-activated materials: the role of molecular-scale research and lessons from the energy transition to combat climate change
碱激活材料:分子尺度研究的作用以及应对气候变化的能源转型的经验教训
DOI:
10.21809/rilemtechlett.2019.98
发表时间:
2019
期刊:
RILEM Technical Letters
影响因子:
--
作者:
[White, Claire]
通讯作者:
White, Claire
DOI:
10.1016/j.cemconres.2021.106453
发表时间:
2021-04-18
期刊:
CEMENT AND CONCRETE RESEARCH
影响因子:
11.4
作者:
[Alventosa, Karina M. L., White, Claire E.]
通讯作者:
White, Claire E.
EAGER: Increased Service Life of Sustainable Cements via Electric Fields
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批准号:2243059
-
项目类别:Standard Grant
-
资助金额:$30.0万
-
财政年份:2023
-
负责人:Claire White
-
依托单位:
CAREER: SusChEM: Controlling Carbonation Degradation in Sustainable Cements by Stabilizing Amorphous Calcium Carbonate
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批准号:1553607
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项目类别:Continuing Grant
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资助金额:$54.97万
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财政年份:2016
-
负责人:Claire White
-
依托单位:
Sulfate Attack Mechanisms in Geopolymers: Measurements and Modeling at the Nanoscale
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批准号:1362039
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项目类别:Standard Grant
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资助金额:$29.99万
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财政年份:2014
-
负责人:Claire White
-
依托单位:
海外基金