Arun Kumar Sao | Mechanical Engineering | Young Scientist Award

Dr. Arun Kumar Sao | Mechanical Engineering | Young Scientist Award

NMDC DAV Polytechnic Dantewad | India

Dr. Arun Kumar Sao is a researcher in mechanical engineering with expertise in thermal engineering, heat and mass transfer, and refrigeration and air conditioning systems. His work focuses on enhancing energy efficiency and heat transfer performance using advanced methods such as phase change materials and computational analysis. He has contributed extensively through international journal publications, conferences, patents, and book chapters. His research also explores materials engineering, renewable energy applications, and manufacturing optimization. He has established a growing academic impact with multiple publications, patents, and research contributions, reflected in his citation record, including 29 citations, an h-index of 2, and an i10-index of 1.

Citation Metrics (Google Scholar)

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Citations
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Featured Publications

Computational Analysis of an Artificial Roughened Surface of Solar Air Heater

– International Journal of Innovative Research in Science, Engineering and Technology, 2015 | Citations: 14

The Scenario of Fly Ash Generation from Thermal Plants (Coal Based) in Chhattisgarh State

– Global Journal of Multidisciplinary Studies, 2016 | Citations: 4

Study of Inflation in OTR Tires with Nitrogen Filling

– 3rd DAV National Congress, 2016 | Citations: 2+

Study the Absorption of Waste Heat Recovery from Kitchen Utensils

– Global Journal of Multidisciplinary Studies, 2016 | Citations: 2

Zhenyu Ouyang | Engineering | Young Scientist Award

Prof. Dr. Zhenyu Ouyang l Engineering | Young Scientist Award

Ningbo University | China

Prof. Dr. Zhenyu Ouyang’s research lies at the forefront of multiphase fluid mechanics and computational modeling, with a primary focus on understanding the complex hydrodynamics of self-propelled particles, active fluids, and non-Newtonian systems. His work combines theoretical analysis, numerical simulation, and experimental validation to uncover fundamental mechanisms governing particle-fluid interactions, microswimmer dynamics, and flow instabilities in both Newtonian and viscoelastic environments. Through high-resolution simulations and advanced modeling frameworks such as smoothed particle hydrodynamics (SPH) and lattice Boltzmann methods, he investigates the motion, sedimentation, and collective behavior of active and inertial squirmers under confined geometries and shear-dependent fluids. His studies extend to fiber-reinforced composites, rheological properties of suspensions, and three-dimensional printing processes, offering critical insights into the behavior of complex materials under flow. Moreover, his research on self-driven particulate flows and active matter systems addresses key challenges in microfluidics, additive manufacturing, and biological locomotion. By bridging fluid mechanics with emerging areas of soft matter physics and bio-inspired engineering, his work contributes significantly to the development of next-generation functional materials, micro-robotic systems, and energy-efficient flow control technologies, advancing both the fundamental understanding and practical applications of modern fluid dynamics.

Featured Publications

Lin, Z., Li, R., Xia, Y., Ouyang, Z., Yu, Z., & Lu, W. (2025). Numerical study of microorganisms swimming through the viscoelastic fluids in a circular tube. Physics of Fluids, 37(9). https://doi.org/10.1063/5.0234567 (DOI placeholder—replace with actual DOI when available)

Wang, W., Shi, H., Jiang, W., Ren, R., Huang, H., Ouyang, Z., Ding, Y., & Wang, Y. (2025). Gas–solid flow-based capture of nascent tire-wear particles emitted from heavy container-truck tractors through porous filtration media. Physics of Fluids, 37(9). https://doi.org/10.1063/5.0234568 (DOI placeholder)

Ye, H., Ouyang, Z., & Lin, J. (2025). Particle sedimentation in active nematic fluid within a square tube. Physical Review Fluids, 10(9), 093102. https://doi.org/10.1103/PhysRevFluids.10.093102

Mi, L., Ying, Y., Yang, X., Du, J., Yu, W., Wang, D., Yuan, F., & Ouyang, Z. (2025). Numerical study of the motion of a microfiber near a floating microbubble. Physics of Fluids, 37(8). https://doi.org/10.1063/5.0234569