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Статья

Eco‐friendly approach to thermal energy storage: Assessing the thermal and chemical properties of coconut biochar‐enhanced phase change material

Reji Kumar RajamonyFaculty of Engineering and Technology Parul University Vadodara IndiaJohnny Koh Siaw PawInstitute of Sustainable Energy Universiti Tenaga Nasional (The Energy University) Kajang MalaysiaA.K. PandeyCoE for Energy and Eco‐Sustainability Research Uttaranchal University Dehradun IndiaA.G.N. SofiahInstitute of Sustainable Energy Universiti Tenaga Nasional (The Energy University) Kajang MalaysiaAman YadavFaculty of Mechanical and Automotive Engineering Technology Universiti Malaysia Pahang Al‐Sultan Abdullah Pekan MalaysiaYaw C. TakInstitute of Sustainable Energy Universiti Tenaga Nasional (The Energy University) Kajang MalaysiaTiong Sieh KiongInstitute of Sustainable Energy Universiti Tenaga Nasional (The Energy University) Kajang MalaysiaAsit MohantyInstitute of Power Engineering Universiti Tenaga Nasional (The Energy University), Jalan Ikram‐Uniten Kajang MalaysiaManzoore Elahi M. SoudagarLishui Industrial Technology Research Institute Lishui University Lishui ChinaYasser FouadDepartment of Applied Mechanical Engineering, College of Applied Engineering, Muzahimiyah Branch King Saud University Riyadh Saudi Arabia
2024en
ABI

Аннотация

Abstract Phase change materials (PCMs) can absorb, store, and release substantial latent heat within a specific temperature range during phase transition and have gained huge attention due to environmental concerns and energy crises. However, PCMs have a significant downside in energy storage due to their relatively lower thermal conductivity, leading to inadequate heat transfer (HT) performance. The foremost aim of the research is to synthesize an eco‐friendly coconut shell biochar (CSB) dispersed with organic A46 PCM in the temperature range of 44°C to 46°C to form a green nanocomposite. A two‐step approach is adopted to formulate the nanocomposites with different weight concentrations (0.2% and 0.8%) of green CSB particles. The developed nanocomposite's thermal conductivity and chemical stability were examined using a thermal properties analyzer and a Fourier transforms infrared spectrometer. The developed biochar composites have excellent thermal conductivity (0.39 W/m K) compared with base PCM (0.22 W/m K). Also, the developed nanocomposites were physically mixed together; there were no additional functional groups formed compared to pristine PCM, and the prepared materials were composite. Furthermore, a numerical analysis was performed using two‐dimensional energy modeling software to ascertain the HT rate of A46 composites. These thermally energized green nanocomposites show great promise for thermal energy storage and thermal management applications like battery thermal management, photovoltaic thermal systems, desalination systems, electronic cooling, building applications, and textiles.

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