Emerging Computational Strategies for Enhancing Heat Transfer in Triple Tube Heat Exchangers
DOI:
https://doi.org/10.24113/ijoscience.v9i11.532Abstract
An advanced efficient solution, for the concentric tube heat transfer between three distinct fluids is that of the triple tube heat exchanger which finds extensive industrial application in such processes as in the food processing industries, pharmaceutical processes and in HVAC applications. Advanced computation approaches of the computational fluid dynamics, optimization techniques, and thermal-structural coupled solutions are now integrated into them for maximum achievable heat transfer efficiency but ensuring compact and reliable designs. Improved designs that include optimized baffles and novel geometries for tubes, such as corrugated, twisted, or coiled shapes, break up laminar flow and enhance thermal mixing. Optimization of flow dynamics through counter flow and more sophisticated flow configurations enhances energy transfer and minimizes losses. However, such designs are faced with challenges in balancing heat transfer with pressure drop, computational complexity, material selection, and fouling management, and solutions require interdisciplinary approaches for sustainable industrial applications. Some emerging trends comprise nanofluids and multi-objective optimization solutions to such issues and obtain enhanced performance from heat exchangers.
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