Zeng Ye, Liu Xiaoheng, Lai Yi, Huang Xianliang, Mao Bin, Gao Ting, Shen Yang
Institute of Biomedical Engineering, West China School of Preclinical and Forensic Medicine, Sichuan University, Chengdu 610041, China.
Sheng Wu Yi Xue Gong Cheng Xue Za Zhi. 2010 Aug;27(4):785-9.
The distribution of shear stress on the bottom of the parallel plate flow chamber under different inlet velocities was analyzed by numerical simulation. In the present experimental study, the projection planes of the relative errors at 0.7% level were obtained, and then the efficient region and the actual entrance length were further corrected by introducing the concept of relative error. The results showed that the efficient region of the chamber increased with the direction of length while the inlet velocity was increased, and the actual entrance length was much greater than that of the theoretical entrance length. Therefore, in accordance to the needed range of shear stress in experiment and to the needed efficient region area, the optimum design of the flow chamber is necessary.
通过数值模拟分析了不同入口速度下平行板流动腔底部的剪应力分布。在本实验研究中,获得了0.7%水平下相对误差的投影平面,然后通过引入相对误差的概念进一步修正了有效区域和实际入口长度。结果表明,随着入口速度的增加,流动腔的有效区域沿长度方向增大,且实际入口长度远大于理论入口长度。因此,根据实验中所需的剪应力范围和所需的有效区域面积,对流动腔进行优化设计是必要的。