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The diffusion of adsorbed O and H on the surface plays a measurable role in the reaction, increasing the maximum production rates as the diffusion rate increases.
In previous research, maximum production rates can be achieved if the workers are arranged in sequence from slowest to fastest [Bartholdi, J. J., & Eisenstein, D. D. (1996). A production line that balances itself, Operations Research, 44(1), 21 34].
We propose that this dichotomy exists because pathway-engineering approaches begin with the assumption that internal cellular pathways limit maximum production rates.
Regardless, these strictly intracellular pathway engineering approaches will fail when the assumption is incorrect; that is, when molecular transport limits maximum production rates.
In comparison, the maximum production rates of A and R are expected to be only 10 to 20 molecules/hr for typical parameters, and decay rates are slower still.
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The maximum production rate of the aimed product SO2 and the optimal exterior wall temperature profile and reactants pressure profile are obtained by using nonlinear programming method.
These production rates are the maximum production rate estimates and range from 0.73 to 0.79 × 10−8 cm3 STP g−1 Ma−1.
The reactor inoculated with EHTG REHTGG) attained a maximum production rate of 2.7 l H2 l−1day−1 in steady state.
Optimization is used to yield the maximum production rate by using reprocessing machine selection and design strategies.
The result shows that the production rate of SO2 of optimal reactor with the maximum production rate has an increase of more than 7%.
Key production parameters like the maximum production rate and corresponding air injection rate during field application are calculated with reservoir engineering approach and material balance theory.
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greater production rates
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