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Loads simulations as performed to obtain design loads on wind turbines, requires wind turbulence as an input, characterized by parameters associated with the turbulence length scale, dissipation and anisotropy.
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Both design-point and part-load simulations have been performed.
Constant and variable amplitude loading simulations are run to compare the results with experimental data.
The periodic boundary conditions are developed for the off-axis loading simulations.
Load analyses are done usually by experimental methods since the accuracy of load simulations are often not precise enough.
A full set comprising 2048 load simulations is gradually reduced to subsets and the results are compared to each other.
The sizes of the holes have been also evaluated by carrying out numerical thermal loading simulations on honeycomb sandwich specimen models impacted at high speed.
The ReaxFF interatomic potential is employed to study crystallite failure via covalent and hydrogen bond rupture in constant strain-rate tensile loading simulations.
The results of the finite element study showed that the crack patterns on the test specimens are in good agreement with the stress distributions obtained from the impact loading simulations.
The drive-train model is configured for a 5 MW power capacity and coupled to the corresponding wind turbine and load simulations are carried out under turbulent wind following the guidelines from the IEC 61400-1 standard.
Tryptophan load simulations with and without vitamin B-6 deficiency showed altered metabolite concentrations consistent with published data.
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