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Sustainable Thermal Solutions: Enhancing Heat Transfer with Turbulators and Nanofluids

Zafar SaidMechanical and Aerospace Engineering Department College of Engineering United Arab Emirates University Al Ain 15551 United Arab EmiratesAggrey MwesigyeDepartment of Mechanical and Manufacturing Engineering Schulich School of Engineering University of Calgary Calgary Alberta T2N 1N4 CanadaL. Syam SundarDepartment of Mechanical Engineering Prince Mohammad Bin Fahd University Al‐Khobar 31952 Saudi ArabiaArun Kumar TiwariMechanical Engineering Department Institute of Engineering & Technology Dr. A.P.J. Abdul Kalam Technical University Lucknow Uttar Pradesh 226021 IndiaKalidasan BalasubramanianResearch Centre for Nanomaterials and Energy Technology (RCNMET) School of Engineering & Technology Sunway University No. 5, Jalan Universiti, Bandar Sunway Petaling Jaya Selangor Darul Ehsan 47500 MalaysiaHafız Muhammad AliInterdisciplinary Research Center for Sustainable Energy Systems (IRC‐SES) King Fahd University of Petroleum and Minerals Dhahran 31261 Saudi ArabiaEvangelos BellosDepartment of Mechanical Engineering School of Engineering University of West Attica 250 Thivon & Petrou Ralli 12244 Athens GreeceChaerin GimDepartment of Energy Engineering Hanyang University Seoul 04763 Republic of KoreaMohammad Shamsuddin AhmedInstitute for Energy Studies University of North Dakota Grand Forks ND 58202 USAJang‐Yeon HwangDepartment of Energy Engineering Hanyang University Seoul 04763 Republic of Korea
2025en
ABI

Аннотация

Actual performance of heat transfer devices significantly influences the general efficiency of the energy conversion systems. Among all active and passive techniques of heat transfer enhancement, the current review has been focused on turbulators and their integration with nanofluids due to cost‐effectiveness and practicality. The turbulators like coiled tubes, extended fins, and swirl flow devices create local vortices to distort the fluid flow boundary layer, which results in an enhanced convective heat transfer process. Further, the use of nanofluids with improved thermophysical properties can also be considered to see the synergizing effect of turbulators for further enhancements in the heat transfer rates. The present review reflects that, among the different turbulators considered, the wire coil insertion offers better thermal efficiency with reduced pressure drops. Thus, the combined approach using nanofluids and turbulators has ample potential to attain higher heat transfer performance compared to conventional methods. Despite the great development, the full mechanism, especially with nanofluid interactions, is still not well elucidated. Current limitations and future research opportunities are highlighted in this review to emphasize that continuous studies are needed to optimize these techniques in order to have better energy systems.

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