Experimental Study of Turbulent Flow and Heat Transfer Behaviors Over a Micro-Rib-Dimple-Structured Surface

Author:

Zheng Kuan1,Tian Wei1,Zhang Peng2,Rao Yu2,Hu Hui3

Affiliation:

1. School of Aeronautics and Astronautics, Shanghai Jiao Tong University, Shanghai 200240, China

2. School of Mechanical Engineering, Shanghai Jiao Tong University, Shanghai 200240, China

3. Department of Aerospace Engineering, Iowa State University, Ames, IA 50011

Abstract

Abstract An experimental study was conducted to characterize the evolution of turbulent boundary layer flow over a micro-rib-dimple-structured surface. In addition to measuring the surface pressure distribution and detailed flow field inside the dimple cavity, the heat transfer performance over the rib-dimpled surface was investigated using transient liquid crystal thermography. The flow field measurements were correlated with the heat transfer measurements to elucidate the underlying physical mechanism of the improvement in thermal efficiency due to the micro-rib structure. It was found that, compared to the dimpled surface, the micro-rib structure induces a stronger downwash flow and acts as a turbulator to enhance the turbulent mixing of the downstream flow, which significantly restricts the flow separation and the recirculating flow inside the dimple cavity. The dominant flows inside the dimple cavity are the downwash and successive upwash flows, which significantly enhance the turbulent mixing and, consequently, improve the heat transfer performance over the rib-dimpled surface. The measurements of the pressure loss and heat transfer performance indicated that the rib-dimpled surface has an overall thermal efficiency approximately 12–16% higher than that of the dimpled surface owing to the micro-rib structure.

Funder

National Natural Science Foundation of China

Publisher

ASME International

Subject

Mechanical Engineering

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1. Flow and heat transfer characteristics of gas turbine blade channels with compound V-rib-dimple structures;International Communications in Heat and Mass Transfer;2024-09

2. Investigation on flow characteristics and its effect on heat transfer enhancement in a wedge channel with combination of circular, oblong, teardrop, and pencil pin fins;International Journal of Turbo & Jet-Engines;2024-05-31

3. Heat Transfer Enhancement in the Internal Convection Cooling of Gas Turbine Blades With Compound V Ribs and Spherical Dimples Arrangements;Proceeding of Proceedings of the 27th National and 5th International ISHMT-ASTFE Heat and Mass Transfer Conference December 14-17, 2023, IIT Patna, Patna-801106, Bihar, India;2024

4. An advanced aero-thermodynamic study of a heart-shaped dimpled pipe;International Journal of Heat and Mass Transfer;2023-09

5. Experimental and Numerical Study of Heat Transfer and Turbulent Flow in a Rotating channel with V Rib-Dimple Hybrid Structures;International Journal of Thermal Sciences;2023-05

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