globalchange  > 全球变化的国际研究计划
项目编号: 1604457
项目名称:
SusChEM: Nanostructural Stability of Alkali-Activated (N,K)-ASH Geopolymer Cements for Sustainable and Resilient Civil Infrastructure
作者: Wil Srubar III
承担单位: University of Colorado at Boulder
批准年: 2016
开始日期: 2016-07-01
结束日期: 2019-06-30
资助金额: 299838
资助来源: US-NSF
项目类别: Standard Grant
国家: US
语种: 英语
特色学科分类: Engineering - Chemical, Bioengineering, Environmental, and Transport Systems
英文关键词: k ; n ; portland cement ; ash gel ; ash geopolymer gel ; presence ; alkali-activated ; geopolymer-based ; long-term durability ; long-term ; next-generation civil infrastructure construction material ; low-carbon alternative ; durable geopolymer-based alternative ; pollutant removal potential ; novel geopolymer cement ; research ; quantitative x-ray diffraction ; global carbon dioxide emission ; chemical degradation ; phase ; nanostructural stability ; chemical degradation mechanism ; experimental phase ; water infrastructure application ; civil infrastructure application ; preliminary research ; alternative cementitious material ; alkali-activated material ; service-life performance ; atomic-scale change ; deionized water ; metakaolin-based alkali-activated geopolymer cement ; novel waste ; technical foundation ; fundamental knowledge ; fourier-transform infrared spectroscopy ; geopolymer cement ; vital next step ; chemical environmental stressor ; carbon dioxide ; magic angle ; geopolymer-based cementitious material ; nuclear magnetic resonance ; material science ; time-dependent stability ; atomic-scale degradation ; infrastructure sustainability ; stormwater infrastructure construction material
英文摘要: This research aims to enhance infrastructure sustainability by advancing the materials science of alternative cementitious materials that reduce ecological impacts associated with Portland cement manufacture. The results from this work, which concerns the long-term durability of novel geopolymer cements, should aid in ensuring the resiliency and service-life performance of next-generation civil infrastructure construction materials. Furthermore, this research aims to lay the technical foundation for the science and engineering of novel waste- and stormwater infrastructure construction materials that leverage the pollutant removal potentials of secondary (zeolitic) structures that may form in alkali-activated materials. Manufacture of portland cement is responsible for approximately 8 percent of global carbon dioxide emissions. While preliminary research by the PI (and others) has shown that fly ash- and metakaolin-based alkali-activated geopolymer cements can provide a durable, low-carbon alternative to Portland cement (especially for water infrastructure applications), the actual physical and chemical degradation mechanisms of (N,K)-ASH gels in geopolymer cements are poorly understood. Understanding and controlling these mechanisms is a vital next step to ensure both the sustainability and long-term durability of geopolymer-based cementitious materials prior to their widespread use in civil infrastructure applications.

The specific objective of this research is to investigate the time-dependent stability of (N,K)-ASH geopolymer gel nanostructures in the presence of both physical and chemical environmental stressors. Fundamental knowledge on the nanostructural stability of (N,K)-ASH gels is necessary to produce sustainable, durable geopolymer-based alternatives to conventional portland cement. The research program is organized into three experimental phases. In Phase I, the structure and properties of synthetic (N,K)-ASH geopolymer gels will be characterized at the nano-, micro-, and mesoscale. In Phase II, atomic-scale degradation of (N,K)-ASH gels in the presence of (1) deionized water, (2) carbon dioxide, and (3) acidic media will be investigated using a combination of magic angle spinning nuclear magnetic resonance, Fourier-transform infrared spectroscopy, and quantitative x-ray diffraction. In Phase III, the physical and chemical degradation of metakaolin-based (N,K)-ASH gels will be investigated and compared
to the atomic-scale changes observed in pure (N,K)-ASH geopolymer gels.
资源类型: 项目
标识符: http://119.78.100.158/handle/2HF3EXSE/92013
Appears in Collections:全球变化的国际研究计划
科学计划与规划

Files in This Item:

There are no files associated with this item.


Recommended Citation:
Wil Srubar III. SusChEM: Nanostructural Stability of Alkali-Activated (N,K)-ASH Geopolymer Cements for Sustainable and Resilient Civil Infrastructure. 2016-01-01.
Service
Recommend this item
Sava as my favorate item
Show this item's statistics
Export Endnote File
Google Scholar
Similar articles in Google Scholar
[Wil Srubar III]'s Articles
百度学术
Similar articles in Baidu Scholar
[Wil Srubar III]'s Articles
CSDL cross search
Similar articles in CSDL Cross Search
[Wil Srubar III]‘s Articles
Related Copyright Policies
Null
收藏/分享
所有评论 (0)
暂无评论
 

Items in IR are protected by copyright, with all rights reserved, unless otherwise indicated.