通过使用格子博尔茨曼方法对方圆筒的微型控制来增强水力动力学力
Ahmed Refaie Ali1, Waqas Sarwar Abbasi2, Rabia Younus2
1Department of Mathematics and Computer Science, Faculty of Science, Menoufia University, Shebin El Kom 32511, Menofia, Egypt. ahmed.refaie@science.menofia.edu.eg.
Scientific reports
|July 5, 2024
概括
小的控制气显著减少了四方气周围的流动诱导力. 使用Lattice Boltzmann方法 (LBM) 识别的抑制完全开发的流量 (SFDF) 模式提供了最低的流体力,证明了有效的流量控制.
科学领域:
- 流体动力学 流体动力学
- 计算流体力学计算流体力学
背景情况:
- 像方圆圆柱体这样的悬崖体上的流动诱导力在工程中至关重要.
- 控制这些力量对于结构完整性和性能至关重要.
研究的目的:
- 为了研究小型控制气对四方气周围的流体动力学的影响.
- 为了识别不同的流动模式和量化力减少.
主要方法:
- 使用格子博尔茨曼方法 (LBM) 进行数值模拟.
- 改变了主气和控制气之间的间隙 (L) (大小为主气1/5).
主要成果:
- 确定了四种流动模式:单体模式 (SBR),剪切层重新连接 (SLR),抑制完全发达的流动 (SFDF) 和间歇性脱落 (IS).
- 对阻力系数 (CD) 实现了 ~31% 的显著降低,对阻力系数 (CDrms) 和升力系数 (CLrms) 的平方中位数的根值分别降低了 ~90% 和 ~81%.
- 在SFDF系统中,最低的流体力是最低的.
结论:
- 小型控制气可以有效地减轻流动诱导的力和控制流动特征.
- 格子博尔兹曼法 (LBM) 是一种适合分析这种流体流量问题的计算工具.
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