Jian-ping Luo(罗剑平), Yong-bo Wang (王永博),Xiang Qiu(邱翔) ,Yu-xian Xia(夏玉显) ,Yu-lu Liu(刘宇陆)
Energy dissipation statistics along the Lagrangian trajectories in three-dimen-sional turbulent flows*
Jian-ping Luo1(罗剑平), Yong-bo Wang1(王永博),Xiang Qiu2(邱翔) ,Yu-xian Xia1(夏玉显) ,Yu-lu Liu3(刘宇陆)
1.2.3.
Sweep, ejection, dispersion, quadrant analysis, turbulent channel flow
Fig. 1 Measured relative contribution from different term of the velocity gradients. The errorbar is the standard deviation from different Lagrangian trajectories
Fig. 2 Experimental cross correlation coefficients between the velocity gradientand the full energydissipation rate along the Lagrangian trajectory. The errorbar indicates the standard deviation from different Lagrangian tra- jectories
Let us recall firstly the homogeneous and isotro- pic relation in the Eulerian frame. The Eq. (2). can be rewritten as
in which stands for the standard deviation. Figure 2 shows the measured , in which the errorbar indicates a standard deviation obtained from different trajectories.Statistically speaking, term A is more correlated with the full energy dissipation rate with a value.It implies that it is more reasonable to choose to instead of the full energy dissipation rate if one has to choose one.Figure 3 shows the measured histogram of , where the Gaussian distribution with the same mean value and standard deviation is illustrated by a solid line. One can observe that the Gaussian distribution nicely fitsthe measured histogram.
We now turn to the coarse-grained energy dissi- pation rate, i.e.
Fig.4Measured cross correlation coefficients for the coarse- grained dissipation rate. The errorbar is a standard deviation from different Lagrangian trajectories
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(October 6, 2015,Accepted November 19, 2017)
©China Ship Scientific Research Center 2018
*Project supported by the National Natural Science Foun- dation of China (Grant Nos.11572203, 11332006).
Jian-ping Luo (1964-), Female, Ph. D., Professor,
E-mail: jp_luo@163.com
Xiang Qiu,
E-mail: Emqiux@163.com