Mahmoud Ahmed
Egypt-Japan University of Science and Technology
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Featured researches published by Mahmoud Ahmed.
ASME 2016 International Mechanical Engineering Congress and Exposition | 2016
Ali Radwan; Mahmoud Ahmed; Shinichi Ookawara
The high incident heat flux on the concentrated photovoltaic (CPV) system causes a significant increase in the cell temperature and thus reduces the system efficiency. Therefore, using an efficient cooling technique is of great importance for those systems. In the present study, a new technology for concentrated photovoltaic systems is introduced using a truncated-double layer microchannel heat sink. A comprehensive three-dimensional thermo-fluid model for the photovoltaic layers integrated with a microchannel heat sink was developed. The proposed model was simulated numerically to estimate the solar cell temperature, temperature uniformity, cooling system pumping power, electrical efficiency and thermal efficiency of the CPV system. The numerical results were validated with the available experimental, analytical and numerical results in the literature. In the designed heat sink, various design parameters are investigated such as the truncation length, cooling mass flow rate, concentration ratio, and converging width ratio of the flow channel. Results indicate that increasing the truncated length leads to an increase of solar cell temperature at a constant coolant mass flow rate. The cell temperature varies between 80.1°C and 146.5°C as the truncation length ratio increases from 0 (i.e. single layer microchannel) to 1 respectively at a concentration ratio (CR) of 40 and a cooling mass flow rate (ṁ) of 26.6 g/min. Using the double layer microchannel reduces the consumed pumping power at the same total mass flow rate compared to the single layer microchannel. The Double layer configuration with a truncation length ratio (l/lsc) equal to unity achieves a lower pumping power and solar cell temperature uniformity in comparison to the single layer microchannel.Copyright
ASME 2016 International Mechanical Engineering Congress and Exposition | 2016
Mohamed Emam; Mahmoud Ahmed; Shinichi Ookawara
In the current work, a hybrid system including Concentrated photovoltaic (CPV) and phase change material (PCM) as a heat sink is considered as a single module to achieve high solar conversion efficiency. The main objective is to accelerate the thermal dissipation with a longer thermal regulation period. Thus, a new CPV-PCM system using various configurations of the PCM heat sink and different combinations of PCMs is investigated. This study presents a numerical simulation of the effects of PCM materials and designs on the CPV-PCM system performance. To estimate the thermal performance of the new CPV-PCM system, a comprehensive 2-D model for CPV layers integrated with PCMs is developed. This model couples a thermal model for CPV layers and a thermo-fluid model that considers the phase-change phenomenon using the enthalpy method. The model is numerically simulated at different configurations and combinations of PCM with various ranges of phase transition temperatures. Three different configurations of PCMs are investigated: one with a single cavity, and two with parallel arrangements including three and five cavities. Results indicate that the use of PCM heat sinks with three and five cavities increases the heat transfer inside the PCM and achieves a significant reduction of the solar cell temperature compared with a single cavity CPV-PCM system. Furthermore, thermal regulation effect and temperature uniformity of the CPV-PCM system is enhanced by using various combinations of PCMs.Copyright
Energy Conversion and Management | 2016
Ali Radwan; Mahmoud Ahmed; Shinichi Ookawara
Solar Energy | 2016
Ali Radwan; Shinichi Ookawara; Mahmoud Ahmed
Solar Energy | 2017
Mohamed Emam; Shinichi Ookawara; Mahmoud Ahmed
Energy Conversion and Management | 2018
Mohamed Emam; Mahmoud Ahmed
Energy Conversion and Management | 2017
Radwan M. Elzoheiry; Shinichi Ookawara; Mahmoud Ahmed
Applied Energy | 2017
Ali Radwan; Mahmoud Ahmed
Energy Conversion and Management | 2017
Mahmoud Ahmed; Ali Radwan
Desalination | 2018
Amir Mahmoud; Hassan Fath; Mahmoud Ahmed