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The systems studied here reveal that the reinforcement increases with decreasing filler size.
We have also noticed that the fluidization of the membrane is a common feature for all systems studied here.
We verified that collisions with a velocity of 250 m/s are bouncing for all collision systems studied here, while at vanishing velocity, collisions are sticking.
Nevertheless, from a practical point of view, based on the systems studied here, the possibility to design CdS nanocomposites with a predetermined band gaps has been demonstrated.
For the systems studied here, the simulations suggest that the 5 8 turn population does not correlate strictly with activity, in agreement with earlier mutational studies.
For this purpose, a dwell-time based stability condition of Yan and Özbay (2008) is used for the class of switched time delay systems studied here.
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For the system studied here, phase inversion does not occur under no-flow conditions.
The behaviour of the system studied here is compared with that of the corresponding (Ag0.5,Tl0.5 NO3 + DMSO systems, previously investigated.
The behaviour of the system studied here is compared with that of the corresponding aqueous mixtures, previously by other authors.
Unlike in the companion paper where the system was seeded after each avalanche, the system studied here was driven by a continuous external input.
However, the graphene system studied here is subject to thermal motion as well as bombardment, and the impinging particle should not be included in Brillouin zone integration.
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