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PMID: 40044974 Published · epublish English Journal Article

Impact of straight slot impingement jets on heat transfer enhancement of TiO2/H2O nanofluid flow in a square channel: CFD analysis.

Scientific reports ·Vol. 15 ·No. 1 ·2025-03-05 ·页码 7728

Kumar A, Maithani R, Sharma S, Srivastav A, Alam T, Haque Siddiqui MI, Dobrotă D, Cofaru NF, Ashraf I

Abstract

This study presents a computational fluid dynamics (CFD) analysis of heat transfer and pressure drop in a straight slot impingement jet, utilizing [Formula: see text] nanofluid within a square duct. The working fluid comprises [Formula: see text] nanoparticles (diameter dp = 25 nm) suspended in water at a volume fraction (ϕ) of 2.5%. The investigation of different values of Reynolds numbers (Re) from 8,000 to 17,000, with variations in different geometrical parameters such as slot jet height ratio ([Formula: see text]: 0.3-0.6), spanwise pitch ratio ([Formula: see text]: 0.18-0.45), and streamwise pitch ratio ([Formula: see text]: 0.88-1.30). Three-dimensional numerical simulations are conducted using the ANSYS CFD module, incorporating the RNG k-ε turbulence model to solve governing equations in a turbulent regime. The CFD results show strong agreement with both the experimental results and empirical correlations results with similar geometrical configurations and flow conditions for a plain-wall square duct. The deviations are around 6% for the Nusselt number ([Formula: see text]) and 3% for the friction factor ([Formula: see text]), demonstrating the reliability of the CFD model. The [Formula: see text] nanofluid exhibits a notable enhancement in heat transfer performance compared to pure water. Variations in [Formula: see text], [Formula: see text] and [Formula: see text] significantly influence [Formula: see text], with the optimal configuration ([Formula: see text] = 0.5, [Formula: see text] = 0.3, [Formula: see text] = 0.97) yielding the highest heat transfer enhancement across most Reynolds numbers. The thermohydraulic performance parameter (THPP) ranges from 0.97 to 1.04, reaching its peak at Re = 8,000 for [Formula: see text]= 0.5, [Formula: see text] = 0.3, [Formula: see text]= 0.97. These findings highlight the potential of impingement jet cooling with nanofluids for thermal management in industrial applications, offering enhanced heat transfer efficiency through direct fluid impact on target surfaces.

Keywords
Energy Impingement jet Nanofluid Pressure drop
作者与单位
共 9 位作者,点击展开单位 / ORCID
Kumar Anil
School of Advanced Engineering, UPES, Dehradun, Uttarakhand, India.
Maithani Rajesh
School of Advanced Engineering, UPES, Dehradun, Uttarakhand, India.
Sharma Sachin
School of Advanced Engineering, UPES, Dehradun, Uttarakhand, India.
Srivastav Ayushman
School of Advanced Engineering, UPES, Dehradun, Uttarakhand, India.
Alam Tabish
Architecture, Planning and Energy Efficiency, CSIR-Central Building Research Institute, Roorkee, 247667, India. [email protected].
Haque Siddiqui Md Irfanul
Department of Mechanical Engineering, College of Engineering, King Saud University, Riyadh, 12372, Saudi Arabia.
Dobrotă Dan
Faculty of Engineering, Department of Industrial Engineering and Management, Lucian Blaga University of Sibiu, Sibiu, 550024, Romania.
Cofaru Nicolae-Florin
Faculty of Engineering, Department of Industrial Engineering and Management, Lucian Blaga University of Sibiu, Sibiu, 550024, Romania.
Ashraf Intesaaf
Mechanical Engineering Department, UCL, London, WC1E, UK.
Article Info
Journal
Scientific reports
Abbr.
Sci Rep
ISSN
2045-2322
Corresponding email
Published
2025-03-05
电子出版
2025-00-05
页码
7728
Language
English
Country/Region
England
NLM ID
101563288
基金资助
King Saud University · RSPD2025R996
勘误 / 撤稿关联
ErratumIn
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