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Cumulative current efficiency

Summary. The semiclassical Boltzmann-Langevin method is extended to calculations of higher cumulants of current. Rs efficiency is demonstrated for mesoscopic diffusive contacts and chaotic cavities. We show that in addition to a dispersion at the inverse RC time characteristic of charge relaxation, higher cumulants of noise have a low-frequency dispersion at the inverse dwell time of electrons in the system. [Pg.257]

In the EBMax process, benzene is fed to the bottom of the liquid-filled multibed reactor. Ethylene is co-fed with the benzene and also between the catalyst beds. Polyethylbenzenes, which are almost exclusively diethylbenzenes, undergo transalkylation with benzene in a second reactor. Mobil-Badger offers both liquid phase and vapor phase transalkylation processes. The vapor phase process removes benzene feed coboilers such as cyclohexane and methylcyclopentane as well as propyl and butylbenzenes. Because the EBMax process produces very low levels of propyl and butylbenzenes, for most applications, the more energy efficient liquid phase process is preferred. Worldwide, there are currently ten licensed EBMax units with a cumulative ethylbenzene production capacity of five million metric tons per year. [Pg.228]


See other pages where Cumulative current efficiency is mentioned: [Pg.169]    [Pg.169]    [Pg.115]    [Pg.312]    [Pg.353]    [Pg.89]    [Pg.349]    [Pg.104]    [Pg.18]    [Pg.227]    [Pg.10]    [Pg.196]    [Pg.531]    [Pg.388]    [Pg.104]    [Pg.580]    [Pg.120]    [Pg.20]    [Pg.427]    [Pg.209]    [Pg.68]    [Pg.605]    [Pg.253]    [Pg.287]    [Pg.368]    [Pg.295]    [Pg.225]   
See also in sourсe #XX -- [ Pg.73 ]




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Current efficiency

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