A path-integral theory predicts kinetic helicity lowers turbulent magnetic diffusivity but raises scalar diffusivity; the effect is driven by an assumed helicity-dependent correlation time, which the paper's Table 1 does not support.
Helicity effect on turbulent passive and active scalar diffusivities
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abstract
Turbulent flows are known to produce enhanced effective magnetic and passive scalar diffusivities, which can fairly accurately be determined with numerical methods. It is now known that, if the flow is also helical, the effective magnetic diffusivity is reduced relative to the nonhelical value. Neither the usual second-order correlation approximation nor the various $\tau$ approaches have been able to capture this. Here we show that the helicity effect on the turbulent passive scalar diffusivity works in the opposite sense and leads to an enhancement. We have also demonstrated that the correlation time of the turbulent velocity field increases with the kinetic helicity. This is a key point in the theoretical interpretation of the obtained numerical results. Simulations in which helicity is being produced self-consistently by stratified rotating turbulence resulted in a turbulent passive scalar diffusivity that was found to be decreasing with increasing rotation rate.
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physics.flu-dyn 1years
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Theory of the kinetic helicity effect on turbulent diffusion of magnetic and scalar fields
A path-integral theory predicts kinetic helicity lowers turbulent magnetic diffusivity but raises scalar diffusivity; the effect is driven by an assumed helicity-dependent correlation time, which the paper's Table 1 does not support.