Mr. Sunil Kumar | Energy Management | Best Researcher Award

Mr. Sunil Kumar | Energy Management | Best Researcher Award

Jamia Millia Islamia , India 

Profile 

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🌱 Early Academic Pursuits

Sunil Kumar embarked on his academic journey with a Bachelor of Technology (B.Tech) in Electrical Engineering from MDU University, Rohtak, India, in 2012. His early academic pursuits laid a strong foundation in electrical systems, which sparked his interest in renewable energy technologies. Building on this foundation, he pursued a Master of Technology (M.Tech) in Power System Drives from J.C. Bose University of Science & Technology, YMCA, Faridabad, India, in 2018. During his master’s, Sunil Kumar honed his skills in power systems, specializing in the integration of renewable energy sources, microgrid protection, and energy management.

His dedication to learning and innovation led him to pursue a Doctor of Philosophy (Ph.D.) at the prestigious Central University of Jamia Millia Islamia, New Delhi, India. This academic progression reflects his consistent passion for understanding complex systems in the power sector, focusing on emerging technologies and optimizations in the domain of electrical engineering.

⚡ Professional Endeavors

Currently a Research Scholar at Jamia Millia Islamia, Sunil Kumar’s research is centered on addressing key challenges in renewable energy and microgrid protection. His work involves exploring concepts such as Loadability, Synchro-phasor Unit (PMU), and innovative optimization techniques to solve real-world problems related to energy management. His keen interest in hybrid optimization algorithms has driven him to design groundbreaking methods that integrate the strengths of Golden Jackal Optimization (GJO) and Gradient Descent Optimization (GDO) to improve the efficiency and performance of microgrid systems.

Sunil’s professional endeavors also involve collaborating with distinguished scholars like Dr. Ikbal Ali and Anwar Shahzad Siddiqui. These collaborations have helped him engage in meaningful research, publish in high-impact journals, and contribute to the field of renewable energy and electrical engineering.

🔬 Contributions and Research Focus

Sunil Kumar’s contributions to electrical engineering research are both innovative and impactful. His primary focus revolves around renewable energy, microgrid protection, and the enhancement of energy management systems. A key highlight of his research is the development of a hybrid optimization algorithm that merges GJO and GDO. This hybrid method stands out for its ability to enhance convergence speed, improve robustness in diverse search spaces, and efficiently handle large-scale optimization problems.

Some of his notable publications include:

  1. “Protection of Microgrid Feeder Based on Impedance Angle Assisted by Synchro Phasor Unit” (2024) – Published in Journal of Renewable Energy and Environment, this paper showcases his contribution to enhancing microgrid feeder protection using advanced impedance angle techniques.
  2. “Performance Analysis of Different Solar Models Based on the Solar Cell Parameters” (2021) – Published in Indian Journal of Pure & Applied Physics, this study evaluates the performance of various solar models, contributing to the understanding of solar energy optimization.
  3. “DC Microgrid Designed for the Integration of Wind and Solar Energy Sources” (2023) – Featured in AIP Proceedings, this paper presents a novel approach to integrating wind and solar energy into a microgrid system, emphasizing sustainable energy solutions.

🏆 Accolades and Recognition

Though early in his career, Sunil Kumar’s dedication to research and academic excellence has been recognized through various platforms. His research papers have been published in reputed journals such as Journal of Renewable Energy and Environment, Indian Journal of Pure & Applied Physics, and AIP Proceedings. These publications have not only contributed to his recognition in the academic community but have also demonstrated his expertise in renewable energy technologies, making him a promising researcher in his field.

In addition to his publications, Sunil’s innovative hybrid optimization algorithm has garnered attention for its potential to revolutionize energy management processes in microgrid systems. This recognition highlights his contribution to advancing solutions for global energy challenges.

🌍 Impact and Influence

Sunil Kumar’s research has significant implications for the broader field of electrical engineering, especially in the areas of renewable energy and microgrid protection. His work on hybrid optimization methods has the potential to influence the design and management of energy systems worldwide, making them more efficient, reliable, and sustainable.

The integration of renewable energy sources into microgrids is a crucial step toward achieving global energy sustainability. Sunil’s research directly contributes to this goal by addressing key technical challenges and offering innovative solutions that enhance the performance of microgrids. His work could potentially influence future developments in smart grid technologies and sustainable energy management.

🚀 Legacy and Future Contributions

As Sunil Kumar continues his academic journey, his future contributions to electrical engineering and renewable energy are likely to leave a lasting impact. His focus on energy management optimization, coupled with his innovative

approach to microgrid protection, positions him as a thought leader in the energy sector. With the ongoing rise of renewable energy technologies, Sunil’s expertise in hybrid optimization algorithms will be crucial in addressing the complex challenges of integrating renewable sources into existing power systems.

Looking ahead, Sunil Kumar aims to expand his research into more advanced areas such as artificial intelligence (AI)-driven energy management, real-time optimization of power systems, and the development of resilient microgrid systems. His goal is to create smart, adaptive systems capable of handling the growing demands of global energy consumption while reducing reliance on non-renewable energy sources.

His continued collaboration with experts in the field, coupled with his dedication to innovation, will likely result in the development of novel methods and solutions that could reshape the landscape of renewable energy and smart grid systems. Sunil’s legacy will be marked by his commitment to fostering a sustainable energy future, making a significant impact on the global push toward green energy.

In the coming years, Sunil Kumar’s work is expected to influence both academic research and practical applications in renewable energy, leading to more efficient energy systems and contributing to the global effort to combat climate change. His research will not only help in advancing microgrid technologies but will also inspire future researchers to explore innovative solutions for global energy challenges.

By continually pushing the boundaries of electrical engineering and renewable energy research, Sunil Kumar is set to leave a lasting legacy that will benefit both academic communities and real-world applications for generations to come.

Notable Publications

Performance Analysis of Different Solar Models Based on the Solar Cell Parameters

Authors: I Ali, S Kumar, AS Siddiqui

Journal: Indian Journal of Pure & Applied Physics (IJPAP)

Year: 2022

Control of Wind Energy Connected Single Phase Grid with MPPT for Domestic Purposes

Authors: S Kumar, I Ali, AS Siddiqui

Journal: Proceedings of the 2022 2nd International Conference on Intelligent Technologies (CONIT)

Year: 2022

Protection of Microgrid Feeder Based on Impedance Angle Assisted by Synchro Phasor Unit

Authors: S Kumar, I Ali, AS Siddiqui

Journal: Journal of Renewable Energy and Environment

Year: 2024

Fault Detection Analysis of Active Distribution Network Based on Rate of Change of Frequency using RTDS and PMUs

Authors: F Rasool, M Anas, S Kumar, I Ali

Journal: Proceedings of the 2023 9th IEEE India International Conference on Power Electronics (IICPE)

Year: 2023

DC Microgrid Designed for the Integration of Wind and Solar Energy Sources

Authors: P Kant, P Singhal, S Kumar, S Gupta

Journal: AIP Conference Proceedings

Year: 2023

SALOUA MERAZGA-Energy Storage-Best Researcher Award -2736

Dr. SALOUA MERAZGA-Energy Storage-Best Researcher Award 

CRTSE-Algeria 

Author Profile 

Early Academic Pursuits

Saloua Merazga began her academic journey in the field of physics at CONSTANTINE University, where she obtained her Licence degree in Physics in 2007. Her growing interest in the specialized area of thin films led her to pursue a Master’s degree, which she completed in 2009 with a thesis titled "Crystallization of thin films of amorphous silicon carbide". This period marked the beginning of her deep engagement with materials science, particularly focusing on silicon carbide, which would remain a central theme throughout her career.

Professional Endeavors

Merazga's professional career has been characterized by a blend of teaching and research. From 2010 to 2012, she served as a part-time professor at both Constantine University and USTHB University in Algeria. These roles allowed her to share her knowledge and inspire the next generation of physicists. Following this, she spent a year teaching at a high school in Algeria, further expanding her teaching portfolio.

Her transition to full-time research came in June 2016 when she joined the Research Center of Semiconductor Technology for Energetic (CRTSE) in Algeria as a physicist researcher. During her tenure at CRTSE, her research concentrated on the nanostructuring of silicon via electrochemical anodization, the deposition of palladium nanoparticles using electroless methods, and the synthesis of magnesium-based alloys for electrochemical hydrogen storage applications.

Contributions and Research Focus

Merazga’s research has predominantly focused on the properties and applications of thin films of amorphous silicon carbide. This work has significant implications for developing advanced materials for energy applications, such as antireflection coatings and passivation layers for solar cells. Her PhD thesis, completed in 2015, explored these applications in depth, highlighting the potential of silicon carbide in improving the efficiency and durability of solar energy devices.

From October 2020 to the present, Merazga has continued her research at CRTSE, shifting her focus towards the synthesis of TiO2/Li4Ti5O12 (LTO) nanoparticles and LTO/Si composites. These materials are critical for the development of high-performance anodes in lithium-ion batteries. Her work includes detailed electrochemical measurements of these powders, contributing to advancements in battery technology, which is crucial for the growing demand for efficient and sustainable energy storage solutions.

The development and deployment of energy storage technologies are crucial for advancing the transition to a sustainable energy future. Battery storage, particularly lithium-ion batteries, has seen significant advancements and cost reductions, making it the most widely used ESS for both grid-scale and residential applications. Innovations in other storage methods, such as flow batteries and solid-state batteries, are also being explored to improve performance and safety. Additionally, energy storage supports grid modernization efforts by providing ancillary services such as frequency regulation, voltage support, and black start capabilities. As the global push towards decarbonization intensifies, energy storage will play an increasingly vital role in ensuring a resilient, efficient, and clean energy system.

Accolades and Recognition

Throughout her career, Merazga has been recognized for her contributions to the field of physics and materials science. She has been involved in several high-profile research projects and has undertaken multiple internships abroad, which have enriched her expertise and broadened her research capabilities. Notable among these are her internships at GABES University in 2013, where she worked on the elaboration of amorphous silicon carbide thin films using PECVD techniques, and at the PMC Laboratory at Ecole polytechnique in Palaiseau, France, where she focused on passivation layers for monocrystalline solar cells.

In April-May 2019, Merazga completed a two-month internship at the FC Lab Research Federation in Belfort, France, where she synthesized Mg2-x Alx Ni alloys prepared by ball milling for electrochemical hydrogen storage. These international experiences have not only bolstered her technical skills but also facilitated valuable collaborations with leading researchers in her field.

Impact and Influence on Energy Storage

Merazga’s work has had a significant impact on the field of thin films and nanomaterials, particularly in the context of energy applications. Her research on silicon carbide and lithium-ion battery materials has contributed to the advancement of technologies that are critical for renewable energy and storage solutions. By focusing on the synthesis and characterization of advanced materials, she has provided valuable insights into improving the performance and efficiency of these technologies.

Her publications, which include collaborative works with prominent researchers like Amer Brighet, Aissa Keffous, and Kamel Mirouh, have been well-received in the scientific community. These publications underscore her role as a key contributor to the development of new materials for energy applications, reinforcing her status as an influential figure in her field.

Legacy and Future Contributions

Looking ahead, Merazga’s ongoing research promises to yield further advancements in materials science, particularly in the realm of energy storage and conversion. Her work on lithium-ion battery anodes and hydrogen storage materials is poised to contribute significantly to the development of next-generation energy solutions.

Her dedication to teaching and mentoring young scientists ensures that her legacy will include not only her scientific contributions but also the inspiration and guidance she provides to future researchers. As she continues to push the boundaries of what is possible in materials science, Merazga's work will undoubtedly play a pivotal role in shaping a more sustainable and energy-efficient future

Energy storage refers to the capture of energy produced at one time for use at a later time, enabling a balance between energy supply and demand. This technology is pivotal in the integration of renewable energy sources, such as solar and wind, which are intermittent by nature. Energy storage systems (ESS) can store excess energy generated during periods of low demand and release it when demand peaks, thereby enhancing the reliability and stability of the power grid. Various forms of energy storage include batteries, pumped hydroelectric storage, compressed air energy storage, and thermal storage. These technologies differ in terms of capacity, efficiency, and application, but all contribute to reducing greenhouse gas emissions by maximizing the use of clean energy.