Nanotechnology

Author:

Grove Jim1,Vanikar Suneel2,Crawford Gary3

Affiliation:

1. Federal Highway Administration, Office of Pavement Technology, 2711 South Loop Drive, Suite 4502, Ames, Iowa 50010.

2. Room E73-302, HIPT-20, Federal Highway Administration, Office of Pavement Technology, 1200 New Jersey Avenue SE, Washington, DC 20590.

3. Room E73-438, HIPT-20, Federal Highway Administration, Office of Pavement Technology, 1200 New Jersey Avenue SE, Washington, DC 20590.

Abstract

This paper outlines cement and concrete properties that challenge engineers and discusses the benefits that could be derived from changes in the smallest structure of cementitious and other concrete materials. Concrete is the most widely used building material in the world. Roman concrete structures still exist today. Even with concrete's versatility and durability, certain properties continue to pose challenges. The ability to modify essential molecular building blocks provides the potential to make great strides in reducing or eliminating numerous mechanisms that can compromise the life of concrete. This paper discusses current durability challenges specific to transportation structures—both bridges and pavements—and the role that nanotechnology can play in addressing these issues. In structural concrete, applications could include improved tensile strength, increased ductility, reduced permeability, and reduced shrinkage. These enhancements could significantly reduce maintenance costs and greatly extend the life of most structures. Reduced shrinkage, modification of the hydration process, minimized thermal movement, reduced permeability, and improved workability would greatly extend pavement life. Nanotechnology could play a key role in environmental stewardship through significant reduction in the carbon footprint, as well as by making the cement production process more efficient. Properties that adversely affect the construction process are also feasible applications of this technology. Other modifications of the properties of concrete that could greatly increase concrete life include the following: decreasing volume change, improved mechanical performance, greater freeze–thaw resistance, reduced water migration, improved air system stability, improved properties of marginal-quality aggregates, and improved curing methods.

Publisher

SAGE Publications

Subject

Mechanical Engineering,Civil and Structural Engineering

Reference10 articles.

Cited by 15 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Resistance against sulphate attack in concrete by addition of nano alumina;Materials Today: Proceedings;2022

2. An overview of mechanical and thermal properties of nano concrete;PROCEEDING OF THE 1ST INTERNATIONAL CONFERENCE ON ADVANCED RESEARCH IN PURE AND APPLIED SCIENCE (ICARPAS2021): Third Annual Conference of Al-Muthanna University/College of Science;2022

3. A Systematic Literature Review on the Effect of Seawater as A Promising Material on the Physical and Mechanical Performance of Concrete;International Journal of Sustainable Construction Engineering and Technology;2021-10-31

4. Characterisation studies on the particle size effect of calcium carbonate in high-strength concrete;Magazine of Concrete Research;2021-07

5. Structural Characterization, Synthesis and Application of Zincite Nanoparticles as Fuel Additive;Journal of Cluster Science;2021-03-26

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