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Under the optimum conditions such as current density of 15 A/m2, hydraulic retention time of 30 min and electrode surface area of 5 m2 resulted in maximum hydrogen gas production (0.8 mL/L) and COD reduction (99%).
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Nano-crystalline F-doped SnO2 micro-sensor showed maximum sensitivity for hydrogen gas and little sensitivities for other gases at a heater voltage of 0.7 V.
Response time is the time needed for the resistance of the gas sensor to obtain 90% of the maximum resistance when hydrogen gas is introduced into an environment of nitrogen.
In the NHF (pH 5.5), maximum hydrogen concentration in the gas was achieved 44 and 20 h after the second addition of arabinose or glucose addition, respectively.
% which tested by KNT to investigate the performance of PAR in different direction gas flow conditions to see maximum hydrogen recombination rate.
Fig. 2 Hydrogen gas sensing behaviour in the dark at 100 °C. a Maximum and minimum point for 100 cycles.
By applying the proposed experimental configuration, a hydrogen gas stream of higher flow rates was generated with a maximum conversion efficiency of NaBH4.
b Response of CuO NWs sensors toward hydrogen gas Fig. 3 Hydrogen gas sensing behaviour for UV activated sensor working at 100 °C. a Maximum and minimum point for 100 cycles.
This produces, among other things, hydrogen gas.
Hydrogen gas is highly combustible with oxygen.
Modifying a Hummer to run on hydrogen gas requires some engine work and hydrogen gas tanks.
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