Xiaoyu Li , Yongkang Hao , Ziang Zhu , Anjun Li , Zhuangjun Wu , Xiaogang Xu , Fuyao Wang
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引用次数: 0
Abstract
The heat absorption efficiency of particles in a solar receiver is significantly affected by internal flow characteristics. A detailed investigation of the transient behavior of bubbles is essential for optimizing receiver design and improving its control. The present work investigates the transient flow characteristics and heat transfer in a fluidized bed particle solar receiver through numerical simulations with a Eulerian-Eulerian framework. The results reveal that the gas volume fraction showed significant temporal fluctuations, with increased gas flow rates and higher axial positions promoting the formation of larger gas core structures. The transient distribution of bubble diameters was obtained and analyzed. As the axial position and inlet flow rate increased, the growth rate of the cumulative curve declined, leading to a reduced cumulative probability of smaller bubbles. The power spectral energy was predominantly concentrated in the 0–1 Hz frequency range. With higher inlet flow rates, the spectral energy peak shifted leftward, indicating an extended period of bubble diameter variation. Finally, wall-to-bed heat transfer was analyzed. Higher flow rates led to improved temperature distribution and wall-to-bed heat transfer coefficient, but beyond a critical threshold, further increases would hinder effective heat transfer.
期刊介绍:
The International Journal of Thermal Sciences is a journal devoted to the publication of fundamental studies on the physics of transfer processes in general, with an emphasis on thermal aspects and also applied research on various processes, energy systems and the environment. Articles are published in English and French, and are subject to peer review.
The fundamental subjects considered within the scope of the journal are:
* Heat and relevant mass transfer at all scales (nano, micro and macro) and in all types of material (heterogeneous, composites, biological,...) and fluid flow
* Forced, natural or mixed convection in reactive or non-reactive media
* Single or multi–phase fluid flow with or without phase change
* Near–and far–field radiative heat transfer
* Combined modes of heat transfer in complex systems (for example, plasmas, biological, geological,...)
* Multiscale modelling
The applied research topics include:
* Heat exchangers, heat pipes, cooling processes
* Transport phenomena taking place in industrial processes (chemical, food and agricultural, metallurgical, space and aeronautical, automobile industries)
* Nano–and micro–technology for energy, space, biosystems and devices
* Heat transport analysis in advanced systems
* Impact of energy–related processes on environment, and emerging energy systems
The study of thermophysical properties of materials and fluids, thermal measurement techniques, inverse methods, and the developments of experimental methods are within the scope of the International Journal of Thermal Sciences which also covers the modelling, and numerical methods applied to thermal transfer.