Investigation of surface structure-wettability coupling on heat transfer and flow characteristics in nanochannels
Author:
Publisher
Elsevier BV
Subject
Industrial and Manufacturing Engineering,Energy Engineering and Power Technology
Reference44 articles.
1. A hybrid battery thermal management system for electric vehicles under dynamic working conditions;Yue;Int. J. Heat Mass Transf.,2021
2. Advanced approaches and applications of energy footprints toward the promotion of global sustainability;Chen;Appl. Energy.,2020
3. Investigation the atomic arrangement and stability of the fluid inside a rough nanochannel in both presence and absence of different roughness by using of accurate nano scale simulation;Alipour;Physica A.,2019
4. Exergy optimization of a solar collector in flat plate shape equipped with elliptical pipes filled with turbulent nanofluid flow: a study for thermal management;Rostami;Water.,2020
5. Heat transfer and fluid flow analysis using nanofluids in diamond-shaped cavities with novel obstacles;Aghaei;Eng. Appl. Comp. Fluid.,2021
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