دانلود مقاله ISI انگلیسی شماره 98856
ترجمه فارسی عنوان مقاله

بررسی عملکرد یک سیستم ذخیره انرژی حرارتی پنهان با دمای بالا با استفاده از آلومینیوم

عنوان انگلیسی
Investigation on the performance of a high-temperature packed bed latent heat thermal energy storage system using Al-Si alloy
کد مقاله سال انتشار تعداد صفحات مقاله انگلیسی
98856 2017 15 صفحه PDF
منبع

Publisher : Elsevier - Science Direct (الزویر - ساینس دایرکت)

Journal : Energy Conversion and Management, Volume 150, 15 October 2017, Pages 500-514

ترجمه کلمات کلیدی
ذخیره انرژی حرارتی همراه با حرارت، تخت بسته بندی شده، مواد تشکیل دهنده آلومینیوم آلیاژ آلومینیوم، انتقال حرارت تابشی، بازده انتقال انرژی،
کلمات کلیدی انگلیسی
Latent heat thermal energy storage; Packed bed; Al-Si alloy phase change material; Radiation heat transfer; Energy transfer efficiency;
پیش نمایش مقاله
پیش نمایش مقاله  بررسی عملکرد یک سیستم ذخیره انرژی حرارتی پنهان با دمای بالا با استفاده از آلومینیوم

چکیده انگلیسی

High-temperature energy storage system plays an important role in improving the efficiency of the concentrated solar power plants. The latent heat thermal energy storage (LHTES) is one of the most competitive thermal energy storage approaches because of the large heat storage density and approximately constant temperature during the phase change process. The Al-Si alloy has been considered as the high-temperature phase change material (PCM) used in the LHTES system because of its advantages such as large latent heat, suitable phase change temperature, high thermal conductivity and cost-effective. A three-dimensional numerical model of the packed bed LHTES system, using Al-25 wt%Si alloy as the PCM and air as the heat transfer fluid (HTF), is built to investigate the performance of the system based on the enthalpy-porosity model and surface-to-surface radiation model. The numerical model is validated through comparing with the experimental results reported in literature. The performance of the system is evaluated from the aspects of charging/discharging time, energy transfer efficiency and mean power. The results indicate that the PCM shows better performance than the rock in the energy storage system due to the involvement of latent heat and high thermal conductivity of the PCM. The influences of the radiation heat transfer and inlet temperature of the HTF on the system performance are also investigated. It is found that the radiation heat transfer shows a significant effect on the heat transfer in the high-temperature LHTES system. The temperature difference between the inlet temperature and phase change temperature dominates the charging/discharging time because the phase change time accounts for a large proportion in the total charging/discharging time. The effect of the wall thickness of the thermal energy storage unit is also studied and the results suggest that the wall thickness of the thermal energy storage unit cannot be neglected because of its relatively large thermal resistance.