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2024 | Buch

Photovoltaic Thermal Collectors with Nanofluids and Nano-PCM

verfasst von: Ali H. A. Al-Waeli, Kamaruzzaman Sopian, Hussein A. Kazem, Miqdam T. Chaichan

Verlag: Springer Nature Singapore

Buchreihe : Green Energy and Technology

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Über dieses Buch

This book gives you theory and design of PV/T systems. Are you interested in solar energy? If you are, you must have read about solar panels, or photovoltaics (PV). If you have installed a photovoltaic system, you must have noticed it not to generate the amount of power mentioned in its datasheet. A major issue that PV suffers from is its temperature, which causes a drop in its power. Among the solutions to this issue is to use active cooling methods, such as the hybrid photovoltaic thermal (PV/T) system. These systems can produce electrical and thermal energy simultaneously and within same area. The thermal collector serves to cool down the PV surface temperature, which negatively affects the PV efficiency, to reclaim the efficiency or bring it back close to standard testing conditions value. Moreover, the thermal collector will convey this heat using a working fluid and extract it as thermal energy. On the other hand, the electrical power generated from the PV can be utilized in standalone or grid-connected configuration. Moreover, the book presents a novel PV/T collector which can utilize nanofluids and nano-Phase Change Material (PCM) to enhance its performance in tropical climate conditions. The methods used to develop the heat transfer and energy balance equations are presented as well. PV/T collector numerical simulation using MATLAB and computational fluid dynamic (CFD) was also presented. Finally, the approach of life cycle cost analysis (LCCA) is presented to evaluate PV/T with nanofluid and nano-PCM, economically.

Inhaltsverzeichnis

Frontmatter
Chapter 1. Photovoltaic Thermal (PV/T)
Abstract
This opening chapter presents a comprehensive introduction that encompasses an exploration of PV/T collectors, underpinned by an in-depth review of the relevant literature. The chapter aims to present the technology and the rationale for using it. Moreover, the classifications of PV/T collectors are presented along with a critical assessment to illuminate the trajectory of PV/T technology. In reading the chapter, a broader understanding of the research landscape with regards to PV/T systems is acquired.
Ali H. A. Al-Waeli, Kamaruzzaman Sopian, Hussein A. Kazem, Miqdam T. Chaichan
Chapter 2. Traditional PV/T Collectors
Abstract
In this chapter, the concepts and fundamentals of PV/T collectors are provided in a simplistic manner along with mathematical models that help in evaluating the performance of these systems. The chapter emphasizes traditional PV/T collectors, namely air-based PV/T, water-based PV/T and the combination of air and water as working fluids for PV/T systems. Traditional PV/T collectors are essentially the simplest types that were proposed in the literature. Although the combinational type, which utilizes both air and water, is more complicated. Furthermore, the chapter investigates some of the traditional PV/T design configurations that have been adopted at research level.
Ali H. A. Al-Waeli, Kamaruzzaman Sopian, Hussein A. Kazem, Miqdam T. Chaichan
Chapter 3. State of the Art of PV/T Technology
Abstract
This chapter focuses on the latest developments and achievements in PV/T systems, encompassing innovative configurations employing nanofluids for efficient heat transfer, harnessing phase change materials as advanced thermal storage agents, and integrating cutting-edge heat pipe technology. A comprehensive synthesis of diverse research is presented, elucidating trends through meticulous comparisons and insightful summaries. This chapter delivers a panoramic view of the evolution within PV/T technology, offering readers a deeper understanding of pioneering solutions driving the overall PV/T performance enhancement.
Ali H. A. Al-Waeli, Kamaruzzaman Sopian, Hussein A. Kazem, Miqdam T. Chaichan
Chapter 4. PV/T with Nanofluids and Nano-PCM
Abstract
This chapter discusses PV/T systems with nanofluids and nano-phase change material (nano-PCM) from a design viewpoint. The numerical and energy balance equations are provided, as well as the physical design. In addition, the boundary conditions of a CFD analysis are determined. The element of enhancement of PCM when adding nanoparticles was calculated along with the total PV/T efficiency. Moreover, the methods and methodologies involved in research studies in this topic. Thus, an explanation of the assumptions made and the logic behind each assumption is provided. Moreover, flowcharts for the research activities associated with this topic that covers aspects of research and development such as theoretical analysis, experiments, nanofluid and nano-PCM preparations.
Ali H. A. Al-Waeli, Kamaruzzaman Sopian, Hussein A. Kazem, Miqdam T. Chaichan
Chapter 5. Performance of PV/T with Nanofluid and Nano-PCM
Abstract
This chapter displays the performance of PV/T collectors utilizing nanofluids and nano-PCM based on results and observations from experimental tests and numerical simulations. This chapter is crucial to establishing solid evidence on the performance of this PV/T design. The chapter discusses elements to optimize the performance of the system such as optimum mass flow rate, nanofluid volume fraction and PV/T configuration. Finally, the Life Cycle Cost Analysis (LCCA) is described for PV/T systems.
Ali H. A. Al-Waeli, Kamaruzzaman Sopian, Hussein A. Kazem, Miqdam T. Chaichan
Chapter 6. Life Cycle Cost Analysis
Abstract
This chapter marks the culmination of the book, offering a comprehensive Life Cycle Cost Analysis (LCCA) for PV/T systems integrated with nanofluids and nano-PCM. Building upon the designs explored in Chaps. 4 and 5, this chapter presents a holistic assessment of economic viability. By considering the entire lifecycle, the economic benefits and drawbacks of this PV/T technology are illuminated, providing a conclusive framework for evaluating its long-term sustainability and financial feasibility.
Ali H. A. Al-Waeli, Kamaruzzaman Sopian, Hussein A. Kazem, Miqdam T. Chaichan
Backmatter
Metadaten
Titel
Photovoltaic Thermal Collectors with Nanofluids and Nano-PCM
verfasst von
Ali H. A. Al-Waeli
Kamaruzzaman Sopian
Hussein A. Kazem
Miqdam T. Chaichan
Copyright-Jahr
2024
Verlag
Springer Nature Singapore
Electronic ISBN
978-981-9991-26-6
Print ISBN
978-981-9991-25-9
DOI
https://doi.org/10.1007/978-981-99-9126-6