论文标题
积极的充电传热增强,可用于部分超疏水振荡圆柱体
Combined active-passive heat transfer enhancement for a partial superhydrophobic oscillating cylinder
论文作者
论文摘要
使用OpenFOAM文库进行了对流式振荡的部分超超吞步缸的对流传热的数值模拟。圆柱体表面的超疏水性已通过部分滑移边界条件解决。将滑动条件施加到固定缸的表面,会导致阻力,RMS提升系数分别降低46%和75%。它还将平均努塞尔特数量增加了55%,伴随着自然脱落频率的21%。还研究了部分超疏水缸,并已经分析了滑动对圆柱体表面不同部分的影响。考虑到力系数的降低,这表明在表面的135个片段上施加滑移是最佳情况,导致阻力和RMS提升系数分别降低了47%和85%。但是,完全超级嗜水缸提供更高的传热速率。关于横向振荡的圆柱体,超疏水性扩展了主要的同步区域,并且与无滑动病例相比,还表现出不同的尾流动态行为。表面上的滑动还导致努塞尔特的平均努塞尔特在锁定状态下的努塞尔数近6倍。基于热性能指数(TPI)的进一步分析证明,对于超疏水缸,可以达到高值TPI = 6。
Numerical simulation of convective heat transfer over a stationary and transversely oscillating partial super-hydrophobic cylinder has been performed using OpenFOAM libraries. Superhydrophobicity of the cylinder surface has been addressed by means of a partial slip boundary condition. Applying the slip condition to the surface of the stationary cylinder causes the drag and the rms lift coefficients to reduce by 46 and 75 percent, respectively. It also augments the average Nusselt number by 55 percent accompanied by a 21 percent increase of the natural shedding frequency. The partially superhydrophobic cylinder has also been investigated and the effects of slip on different sections of the cylinder surface have been analyzed. Considering the reduction of force coefficients, it is shown that the application of slip over a 135 segment of the surface is an optimum case, resulting in a 47 and 85 percent decrease of the drag and the rms lift coefficients, respectively. However, the fully superhydrophobic cylinder provides higher heat transfer rates. Regarding the transversely oscillating cylinder, superhydrophobicity extends the primary synchronization region, and also exhibits different wake dynamics behavior compared to the no-slip case. The slip over surfaces also causes the average Nusselt number to become nearly 6 times greater than the no-slip oscillating cylinder at the lock-in condition. Further analysis based on thermal performance index (TPI) proves that a high value of TPI = 6 can be reached for the superhydrophobic cylinder.