Improving efficiency and stability of improved circular solar photovoltaic structures via multi-directional functionally graded materials: A computer simulation validated by hybrid machine learning algorithm and experimental datasets

The enhancement of solar photovoltaic (PV) structures remains a critical area of research for improving energy efficiency and structural stability. This study investigates the role of multi-directional functionally graded materials (FGMs) in optimizing the performance of circular solar PV systems. A...

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Vydáno v:Materials today communications Ročník 46; s. 112816
Hlavní autoři: Han, Simeng, Li, Jialing
Médium: Journal Article
Jazyk:angličtina
Vydáno: Elsevier Ltd 01.06.2025
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ISSN:2352-4928, 2352-4928
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Abstract The enhancement of solar photovoltaic (PV) structures remains a critical area of research for improving energy efficiency and structural stability. This study investigates the role of multi-directional functionally graded materials (FGMs) in optimizing the performance of circular solar PV systems. A computational simulation approach is adopted to model the impact of FGMs on thermal, mechanical, and electrical properties. To ensure the reliability of the simulation outcomes, a hybrid machine learning (ML) algorithm is employed, integrating experimental datasets for validation. The ML framework refines predictive accuracy by combining supervised learning techniques with experimental data-driven optimization. The results indicate that the application of FGMs significantly improves power output, enhances thermal resistance, and reinforces structural integrity under varying environmental conditions. Additionally, the hybrid ML validation demonstrates strong correlation with empirical findings, reinforcing the feasibility of the proposed material design approach. This research highlights the potential of FGMs in next-generation solar energy systems, offering a pathway for the development of high-performance PV structures with enhanced operational lifespan. The study contributes to advancing computational modeling and machine learning integration in renewable energy research, providing a robust methodology for optimizing solar PV technologies. Future work will focus on further experimental validation and scalability assessments for industrial applications. The findings provide valuable insights into the design of more efficient and durable solar PV systems, paving the way for innovative advancements in sustainable energy technologies. [Display omitted]
AbstractList The enhancement of solar photovoltaic (PV) structures remains a critical area of research for improving energy efficiency and structural stability. This study investigates the role of multi-directional functionally graded materials (FGMs) in optimizing the performance of circular solar PV systems. A computational simulation approach is adopted to model the impact of FGMs on thermal, mechanical, and electrical properties. To ensure the reliability of the simulation outcomes, a hybrid machine learning (ML) algorithm is employed, integrating experimental datasets for validation. The ML framework refines predictive accuracy by combining supervised learning techniques with experimental data-driven optimization. The results indicate that the application of FGMs significantly improves power output, enhances thermal resistance, and reinforces structural integrity under varying environmental conditions. Additionally, the hybrid ML validation demonstrates strong correlation with empirical findings, reinforcing the feasibility of the proposed material design approach. This research highlights the potential of FGMs in next-generation solar energy systems, offering a pathway for the development of high-performance PV structures with enhanced operational lifespan. The study contributes to advancing computational modeling and machine learning integration in renewable energy research, providing a robust methodology for optimizing solar PV technologies. Future work will focus on further experimental validation and scalability assessments for industrial applications. The findings provide valuable insights into the design of more efficient and durable solar PV systems, paving the way for innovative advancements in sustainable energy technologies. [Display omitted]
ArticleNumber 112816
Author Han, Simeng
Li, Jialing
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  givenname: Jialing
  surname: Li
  fullname: Li, Jialing
  email: candyteddy@163.com
  organization: School of Artificial intelligence, Chongqing Youth Vocational & Technical College, Chongqing 401320, China
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Keywords Circular solar photovoltaic structure
Computer simulation
Multi-physics simulation
Poroelasticity
Zigzag theory
Hybrid machine learning algorithm
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Snippet The enhancement of solar photovoltaic (PV) structures remains a critical area of research for improving energy efficiency and structural stability. This study...
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Publisher
StartPage 112816
SubjectTerms Circular solar photovoltaic structure
Computer simulation
Hybrid machine learning algorithm
Multi-physics simulation
Poroelasticity
Zigzag theory
Title Improving efficiency and stability of improved circular solar photovoltaic structures via multi-directional functionally graded materials: A computer simulation validated by hybrid machine learning algorithm and experimental datasets
URI https://dx.doi.org/10.1016/j.mtcomm.2025.112816
Volume 46
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