Amarendra Uttam | Heat Trasfer | Best Researcher Award

Mr. Amarendra Uttam | Heat Trasfer | Best Researcher Award

Research Scholar at Rajiv Gandhi Institute of Petroleum Technology | India

Mr. Amarendra Uttam is a dedicated researcher and academic professional in Chemical and Biochemical Engineering whose work centers on the development, optimization, and scale-up of salt-hydrate-based phase change materials for advanced thermal energy storage, bringing forward innovative insights into latent heat storage, thermal management, and material performance enhancement through experimental and numerical evaluation; he is currently pursuing doctoral research at the Rajiv Gandhi Institute of Petroleum Technology with a thesis emphasizing experimental and numerical investigation of Na₂SO₄·10H₂O-based PCM composites, phase stability improvement, scalability assessment, and COMSOL-based simulation modeling for building and industrial applications, following an academic foundation in Mechanical Engineering through B.Tech. and M.Tech. programs that strengthened his expertise in thermodynamics, heat transfer, and energy systems; his published works highlight contributions to PCM-based thermal energy storage, polyurethane-encapsulated salt hydrates, multi-scale storage performance, PCM-integrated building cooling systems, and material behavior analysis under different operational conditions, along with research on MOF-based dye removal and salt-hydrate modification techniques; he has presented his research at national and international conferences, demonstrating interdisciplinary competence and delivering solutions relevant to sustainable development and energy-efficient technologies; his teaching experience spans several engineering institutes where he taught core subjects such as Engineering Thermodynamics, Applied Thermodynamics, Heat and Mass Transfer, Engineering Mechanics, and Theory of Machines while also serving in administrative roles including project coordination and placement cell responsibilities; proficient in COMSOL Multiphysics, FORTRAN, C, and computational modeling, he continues to advance research in thermal energy storage materials, passive cooling technologies, and PCM system design, establishing himself as a committed educator, researcher, and contributor to next-generation energy solutions.

Profile: Google scholar

Featured Publications:

Uttam, A., Purohit, B. K., Le, M. T., & Sistlais, V. S. (n.d.). Disodium phosphate dodecahydrate salt hydrate-based approach for thermal energy storage systems. Journal of Technical Education Science, 18(Special Issue 01), 1–7.

Uttam, A., Kumar, B., & Sistla, V. S. (n.d.). Performance analysis of a multi-scale thermal energy storage system with varying volumes using polyurethane-encapsulated sodium sulphate decahydrate for building applications. Energy and Buildings, 347.

Uttam, A., Kumar, B., & Sistla, V. S. (n.d.). Development of Na₂SO₄·10H₂O salt hydrate PCMs for thermal energy storage in building systems: A scale-up approach. ChemistrySelect, 10(43), e04616.

Uttam, A., Kumar, B., & Sistla, V. S. (n.d.). Performance analysis of a multi-scale scaled thermal energy storage system with varying volumes using polyurethane-encapsulated sodium sulphate decahydrate for building applications. Energy and Buildings, Article 116390.

Uttam, A., & Sarkar, J. (n.d.). Performance analysis of phase change material-based air-conditioning system. In 2nd International Conference on Emerging Trends in Engineering & Technology (Oral Presentation).

Assoc. Prof. Dr. Li-Bo Chen | Fluid Interaction | Best Researcher Award

Assoc. Prof. Dr. Li-Bo Chen | Fluid Interaction | Best Researcher Award

Associate Professor | College of Chemistry and Chemical Engineering, Chongqing University of Science and Technology | China

Li-Bo Chen – Associate Professor at the College of Chemistry and Chemical Engineering, Chongqing University of Science and Technology, distinguished researcher in polymer processing, computational fluid dynamics, and multiphase flow, recognized for his innovative studies on the formation mechanism of hierarchically crystalline structures under coupled external fields in multi-melt multi-injection molding through combined simulation and experiment, his pioneering simulation and experimental investigations into the formation and evolution of hierarchical crystalline structures at the multi-melt flow interface, his detailed analysis on the effects of convective schemes and geometric reconstruction schemes on the interface of multiple melt flows in polymer systems, his advanced exploration of particle migration dynamics toward interfaces and the development of tailored directional migration strategies in multiphase melt processing, his collaborative work on multifunctional thermal management materials with excellent heat dissipation and generation capability for next-generation electronics, his contribution to the design of three-dimensional printing phase-change-based heat sinks for cooling electronic devices, his leadership in addressing brittle fracture in polylactic acid blown film processing, his development of novel multi-melt multi-shot injection molding platforms, his significant contributions in resolving numerical diffusion and oscillation in non-Newtonian fluid interfacial simulations, his impactful discoveries on particle migration mechanisms in multiphase melt processing, his entrepreneurial achievement in commercializing solid-solid phase change powders for building energy efficiency through a spin-off company, his strong record of securing national and provincial research funding including competitive grants from the National Natural Science Foundation of China, his successful collaborations with leading enterprises such as PetroChina and Sinopec on new material development and novel equipment R&D, his authorship of numerous SCI-indexed publications, his granted patents and pending applications, his active memberships in professional committees in chemical, pharmaceutical, and advanced materials fields, and his growing reputation as a versatile researcher and innovator whose work bridges fundamental theory, computational modeling, industrial applications, and sustainable technology development.

Profile:  Orcid

Featured Publications:

Chen, L.-B., Tao, Z.-X., Song, C., Lu, Z., Yi, Y.-X., Cao, Y., Huang, Y.-H., Liu, Z.-Y., & Yang, M.-B. (2025). Dynamics of particle migration toward interface and tailored directional migration strategy in multiphase melt processing. Polymer Composites.

Huang, Y., Chen, L., Zheng, S., Wu, X., Liu, L., Zhang, K., Ke, K., Liu, Z., Yang, W., & Yang, M. (2021). A facile and rapid approach to lotus-seedpod-structured electronic skin for monitoring diverse physical stimuli. Advanced Materials Technologies, 6(7), e2001084.

Chen, L.-B., Huang, Y.-H., Zhao, X., Liu, L., Gu, J.-D., Liu, Z.-Y., Yang, W., Fu, X.-R., & Yang, M.-B. (2021). Simulation and experimental studies on the formation and evolution of hierarchical crystalline structures at the multi-melt flow interface. Composites Part A: Applied Science and Manufacturing, 144, 106269

Huang, Y., Chen, L., Zheng, S., Wu, X., Liu, L., Ke, K., Liu, Z., Yang, W., & Yang, M. (2020). A new insight into multi-tier structure tailoring: Synchronous utilization of particle migration and incompatible interface separation under shear flow. Polymer, 202, 122384.

Chen, L.-B., Huang, Y.-H., Liu, L., Zhao, X., Liu, Z.-Y., Yang, W., & Yang, M.-B. (2020). Formation mechanism of hierarchically crystalline structures under coupled external fields in multi-melt multi-injection molding: Simulation and experiment. Composites Part B: Engineering, 188, 107770.

Feng, C.-P., Chen, L.-B., Tian, G.-L., Bai, L., Bao, R.-Y., Liu, Z.-Y., Ke, K., Yang, M.-B., & Yang, W. (2020). Robust polymer-based paper-like thermal interface materials with a through-plane thermal conductivity over 9 W m−1 K−1. Chemical Engineering Journal, 388, 123784.

Huang, Y., Liu, Z., Chen, R., Zheng, S., Feng, C., Chen, L., Yang, W., & Yang, M. (2019). Highly anisotropic functional conductors fabricated by multi-melt multi-injection molding (M³IM): A synergetic role of multiple melt flows and confined interface. Composites Science and Technology, 171, 263–270.

Feng, C.-P., Chen, L.-B., Tian, G.-L., Bai, L., Bao, R.-Y., Liu, Z.-Y., Ke, K., Yang, M.-B., & Yang, W. (2019). Multifunctional thermal management materials with excellent heat dissipation and generation capability for future electronics. ACS Applied Materials & Interfaces, 11(20), 18739–18745.