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Generally noise of both types decreases as the frequency is increased.
This shift increases as the excitation frequency is increased.
The skin effect becomes more pronounced as the frequency is increased.
Furthermore, the power dissipation of all-carbon spin logic is nearly independent of frequency, whereas conventional CMOS circuits dissipate increasing power as clock frequency is increased.
In addition, both of these effects become more marked as the pulse frequency is increased.
In addition, this effect becomes more marked as the pulse frequency is increased.
This phenomenon could appear and disappear as the frequency is increased.
This is consistent with our observation that for clay oil drops in AC fields, we only obtain ribbon formation at very low frequencies (0.1 Hz), and the ring gradually becomes wider as the frequency is increased.
As the stimulus frequency is increased, the force is increased until the maximum is reached, at which point it begins to decrease.
As expected, the elastic modulus shows a changing character in the response, from a viscous liquid towards an elastic solid as the concentration is increased, and a change from elastic to viscous as the shear frequency is increased.
However, fine punctate calcification may not have posterior shadowing though, if the transducer frequency is increased, it may show thin lines.
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