Enhanced Heat Transfer Efficiency through Formulation and Rheo‐Thermal Analysis of Palm Oil‐Based CNP/SiO2 Binary Nanofluid

纳米流体 棕榈油 材料科学 传热 二进制数 热力学 热的 化学工程 化学 数学 工程类 物理 食品科学 算术
作者
Sridhar Kulandaivel,Wai Keng Ngui,M. Samykano,Reji Kumar Rajamony,Subbarama Kousik Suraparaju,Nurhanis Sofiah Abd Ghafar,Muhamad Mat Noor
出处
期刊:Energy technology [Wiley]
被引量:2
标识
DOI:10.1002/ente.202400314
摘要

The present work addresses the shortcomings of heat transfer fluid behavior by emphasizing solutions for improved stability, enhanced thermal properties, and environmental sustainability. The study introduces an innovative hybrid nanofluid combining silicon dioxide (SiO 2 ) and cellulose nanoparticles (CNP) into analytical‐grade Palm oil, adopting a two‐step methodology. This endeavor represents a significant advancement in exploring SiO 2 –CNP‐Palm oil hybrid nanofluids, positioning them as promising candidates for advanced heat transfer media. Physical characterization analysis confirms the successful integration of SiO 2 and CNP into analytical‐grade Palm oil. The nanosuspensions of CNP‐Palm oil, SiO 2 ‐Palm oil, and SiO 2 /CNP‐Palm oil are prepared at varying volume concentrations. All nanosuspensions demonstrated good stability after ultrasonication, as evidenced by optical performance and sedimentation studies, which endure for up to 60 d. Fourier transform infrared (FT‐IR) analysis further substantiates the chemical stability, revealing no emergence of peaks associated with the diffusion of nano‐additives. The thermogravimetric analysis (TGA) also affirms superior thermal stability in all nanosuspensions compared to base fluids. Rheological studies indicate that Palm oil exhibits Newtonian behavior. The nanofluid containing 0.1 w/v% SiO 2 /CNP nanoparticles exhibits a significant enhancement in thermal conductivity, showcasing an impressive 81.11% improvement. In addition, the nanofluid demonstrates an increase in viscosity with higher nanoparticle concentrations and decreased viscosity with rising temperatures.
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