DocumentCode :
3025926
Title :
Experimental Research on Application of Nano-Concrete to Reduce Roughness Coefficient
Author :
Deng Shaoyun
Author_Institution :
Xian Univ. of Sci. & Technol., Xian, China
fYear :
2013
fDate :
29-30 June 2013
Firstpage :
572
Lastpage :
574
Abstract :
In order to research on the application of nano-concrete to reduce roughness coefficient, and considering that roughness coefficient and calculating it are fundamental issues in hydraulic engineering. Also, analyzing the correct evaluation of flow rate and interaction with other hydraulic parameters such as velocity, shape and type of section, and flow pattern, is one of the most important problems in fluid mechanics, and considering that the possibility of minimizing roughness on designing of hydraulic structures and irrigation networks in order to increase velocity and then the flow rate at different sections, are subjects which have been noted by researches and industrial entrepreneurs since years ago. the author of the article had done a series of experiments, the effects of using silicate nano-particles in the floor coating of the channels have been studied in a hydraulic laboratory flume. Through this experimental research, we could had known that adding Nano-Silicate to the concrete mixture will cause the active SiO2 to mix with the free calcium hydroxide available in the micro holes of the concrete and produce unsolved calcium silicate, and eventually cause the structure of the cement to become more dense and become less penetrable causing the concrete to be more resistant. By using this product, we can produce smooth and homogenous surfaces in the upper surface that can increase the flow rate and velocity of fluid in channels, clarifiers and crests of dams.
Keywords :
concrete; dams; fluid mechanics; geotechnical engineering; nanoparticles; surface roughness; active silicon dioxide; calcium silicate; channel floor coating; clarifiers; concrete microholes; concrete mixture; dam crests; flow pattern parameter; flow rate; flow rate evaluation; fluid mechanics; fluid velocity; free calcium hydroxide; hydraulic engineering; hydraulic laboratory flume; hydraulic parameters; hydraulic structure design; irrigation network design; nanoconcrete; nanosilicate; roughness coefficient reduction; roughness minimization; section type parameter; shape parameter; silicate nanoparticles; smooth homogenous surfaces; upper surface; velocity parameter; Coatings; Concrete; Floors; Laboratories; Rough surfaces; Surface roughness; Experimental Research; Nano-concrete; Rroughness Coefficient;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Digital Manufacturing and Automation (ICDMA), 2013 Fourth International Conference on
Conference_Location :
Qingdao
Type :
conf
DOI :
10.1109/ICDMA.2013.135
Filename :
6598056
Link To Document :
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