Statistical analysis of thermal conductivity experimentally measured in water-based nanofluids

Author:

Tielke J.1ORCID,Maas M.23,Castillo M.1,Rezwan K.23,Avila M.13

Affiliation:

1. University of Bremen, Center of Applied Space Technology and Microgravity (ZARM), Am Fallturm, 2, 28359 Bremen, Germany

2. University of Bremen, Advanced Ceramics, Am Biologischen Garten, 2, 28359 Bremen, Germany

3. MAPEX Center for Materials and Processes, University of Bremen, 28359 Bremen, Germany

Abstract

Nanofluids are suspensions of nanoparticles in a base heat-transfer liquid. They have been widely investigated to boost heat transfer since they were proposed in the 1990s. We present a statistical correlation analysis of experimentally measured thermal conductivity of water-based nanofluids available in the literature. The influences of particle concentration, particle size, temperature and surfactants are investigated. For specific particle materials (alumina, titania, copper oxide, copper, silica and silicon carbide), separate analyses are performed. The conductivity increases with the concentration in qualitative agreement with Maxwell’s theory of homogeneous media. The conductivity also increases with the temperature (in addition to the improvement due to the increased conductivity of water). Surprisingly, only silica nanofluids exhibit a statistically significant effect of the particle size, whereby smaller particles lead to faster heat transfer. Overall, the large scatter in the experimental data prevents a compelling, unambiguous assessment of these effects. Taken together, the results of our analysis suggest that more comprehensive experimental characterizations of nanofluids are necessary to estimate their practical potential.

Publisher

The Royal Society

Subject

General Physics and Astronomy,General Engineering,General Mathematics

Reference111 articles.

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