基于计算流体力学的磁场对提高阶梯式太阳能蒸发器性能的影响分析

IF 1.5 4区 工程技术 Q3 ENGINEERING, MECHANICAL
K. Samadi, H. R. Goshayeshi, V. Nejati, S. R. Saleh, I. Chaer
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引用次数: 0

摘要

本研究的重点是通过使用数值求解方法研究螺线管施加磁场的影响,从而提高太阳能海水淡化装置的性能。本研究的计算基于一个有七个步骤的太阳能海水淡化装置。由于氧气是顺磁性气体,因此可以通过螺线管施加外部磁场来检查太阳能海水淡化装置中的潮湿气流。该问题的控制方程采用有限体积法离散化。在忽略和考虑磁场强度影响的情况下,从流动流线、速度等值线图和压力等方面研究了螺线管产生的外加磁场的影响。研究了三种不同的 NI 组合(N 为螺线管匝数,I 为电流强度),其值分别为 2.5 × 104、2.5 × 105 和 10 × 105。对于 NI = 10 × 105 的外加磁场,观察到蒸发率在太阳能海水淡化水滑道的所有阶段都达到了最大值,从而提高了太阳能海水淡化装置的水蒸发率。在太阳能海水淡化装置的所有部分,蒸发率大约都达到了最大值 1.02 × 10-1(kg/s)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Computational Fluid Dynamics-Based Analysis of Magnetic Field Effect on Improvement the Performance of Stepped Solar Still

Computational Fluid Dynamics-Based Analysis of Magnetic Field Effect on Improvement the Performance of Stepped Solar Still

Computational Fluid Dynamics-Based Analysis of Magnetic Field Effect on Improvement the Performance of Stepped Solar Still

This study focuses on improving the performance of a solar-powered desalination unit by investigating the effect of a magnetic field applied by a solenoid using a numerical solution method. The calculations in this work are based on a solar desalination device with seven steps. Since oxygen is a Paramagnetic gas the moist airflow in this solar desalination could be checked by applying an external magnetic field through a solenoid. The governing equations for the problem have been discretized using the finite volume method. The effects of the applied magnetic field generated by the solenoid are investigated in terms of flow streamlines, contour plots of velocity, and pressure, both in ignoring and considering the influence of magnetic field intensity. Three different combinations of NI (N is the number of solenoid turns, and I is the electric current intensity) are examined with values of 2.5 × 104, 2.5 × 105, and 10 × 105. For the applied magnetic field with NI = 10 × 105, it has been observed that the evaporation rate reaches its maximum value in all stages of the solar desalination water slide, resulting in an increased water evaporation rate in the solar desalination device. The evaporation rate has approximately reached the maximum value of 1.02 × 10−1 (kg/s) in all parts of the solar desalination device.

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来源期刊
Experimental Techniques
Experimental Techniques 工程技术-材料科学:表征与测试
CiteScore
3.50
自引率
6.20%
发文量
88
审稿时长
5.2 months
期刊介绍: Experimental Techniques is a bimonthly interdisciplinary publication of the Society for Experimental Mechanics focusing on the development, application and tutorial of experimental mechanics techniques. The purpose for Experimental Techniques is to promote pedagogical, technical and practical advancements in experimental mechanics while supporting the Society''s mission and commitment to interdisciplinary application, research and development, education, and active promotion of experimental methods to: - Increase the knowledge of physical phenomena - Further the understanding of the behavior of materials, structures, and systems - Provide the necessary physical observations necessary to improve and assess new analytical and computational approaches.
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