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According to the reports the sludge density 52 55% [ 88] showed the maximum reactor performance.
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One of the main shortcomings of existing multifunctional reactor concepts for the autothermal coupling of endothermic and exothermic reactions is inefficient heat integration leading to excessive maximum temperatures or poor reactor performance.
Experimental results confirmed the theoretically predicted increase of the reactor performance under periodic operation exceeding the maximum obtainable performance under steady-state conditions.
Sensitivity analysis of the model shows that parameters such as dispersion coefficient and maximum specific growth rate have to be accurately estimated for the correct prediction of reactor performance.
The CHAMP-DDIR reactor performance has been analyzed using a simplified transport model with which conditions for maximum performance, e.g. highest volumetric power density, were identified.
While the maximum catalyst temperature, the average catalyst temperature and the sulfur dioxide conversion decrease consistently as an extinction point is approached, these reactor performance measures vary non-monotonically away from an extinction point.
The reactor performance was monitored regularly by measuring effluent COD and colour from the reactor.
Increased thermal management allows maximum reactor temperatures above 1400°C.
Fixed criteria are used for reactor conversion, maximum reactor temperature, and pressure drop.
To understand this behavior better, we look at the maximum reactor temperature, presented in Fig. 15.
Membranes are incorporated to improve reactor performance.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com