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The experimental ΔKth of a Fe-0.017C Fe-0.017Ceel wtth maximum carbon content was approximately 40.5% higher than conventionally predicted resteel by Murakami's equation.
It is also observed that rice husk, biomass with maximum oxygen content, yields lowest calorific value syngas and biomass with maximum carbon content, saw dust, contributes to highest gas yield under the same operating conditions.
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The minimum carbon content is 1.8%%.
After a maximum in substitutional carbon content is reached, a further increase of carbon fraction leads to a reduction of the strain.
The film H/E ratio showed a maximum at film carbon contents ranging between 15 and 30 at.% and at elevated substrate temperatures from 340 °C to 520 °C.
The model could predict the ratio of total organic carbon content to a maximum error of only ∼6%.
In TiCx/a-C RMS of CPD nonlinear depends on the carbon content and reaches maximum at CC = 44 at.%.
The microalgal consortium reached a maximum C conversion efficiency (i.e. ratio between carbon content produced and carbon supplied through light photosynthetic C conversion and acetate) of 3.6%.
The maximum hardness of 32 GPa was obtained at the carbon content of 36.7 at% by applying substrate bias of −100 V.
By contrast, almost homogeneous carbon atomic distribution of the concentration near the average carbon content was observed in the wire with maximum tensile strength aged at 150 °C for 30 min.
Coating with a maximum hardness and lowest friction coefficient was obtained by optimizing the carbon content.
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