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National Energy Technology Laboratory NETL

The Advanced Gasification Combustion (AGC) project was developed by the National Energy Technology Laboratory (NETL) and General Electric and Environmental Research Corporation (GE-EER), etc. The AGC process is considered to have three fluidized bed reactors. In reactor 1, coal is partly gasified with steam in the presence of a C02 sorbent. The remaining char together with the C02 sorbent is sent to reactor 2. In reactor 2, char is... [Pg.123]

Production Impacts, Mitigation and Risk Management. US Department of Energy (DOE), National Energy Technology Laboratory (NETL). [Pg.43]

Figure 10.1 United States greenhouse gas emissions (equivalent global warming basis). Reproduced with permission from the National Energy Technology Laboratory (NETL), US Department of Energy. Data taken from Energy Information Administration, Emissions of Greenhouse Gases in the United States 2006 (Washington D.C., November 2007)... Figure 10.1 United States greenhouse gas emissions (equivalent global warming basis). Reproduced with permission from the National Energy Technology Laboratory (NETL), US Department of Energy. Data taken from Energy Information Administration, Emissions of Greenhouse Gases in the United States 2006 (Washington D.C., November 2007)...
Fuel cells are expensive. In 2003, they cost at least 1 million [U.S. Department of Energy s National Energy Technology Laboratory (NETL) and the Electric Power Research Institute (EPRI)]. [Pg.185]

The National Energy Technology Laboratory (NETL) developed a 3-dimensional computational fluid dynamics (CFD) model to allow stack developers to reduce time-consuming build-and-test efforts. As opposed to systems models, 3-dimensional CFD models can address critical issues such as temperature profiles and fuel utilization important considerations in fuel cell development. [Pg.83]

Fig. 16.11. Differential pulse voltammetry for a real sample [supplied by the National Energy Technology Laboratory (NETL)] with three standard additions of mercury solutions, yielding final concentrations of 300, 500, and 700 ppb. An intercept value of 120 ppb was obtained for the unknown mercury concentration. Deposition time, 120 s, at -0.5 V vs. SCE pulse width, 40 msJ pulse delay, 160 ms pulse amplitude, 50 mV sweep rate, 20 mV s. ... Fig. 16.11. Differential pulse voltammetry for a real sample [supplied by the National Energy Technology Laboratory (NETL)] with three standard additions of mercury solutions, yielding final concentrations of 300, 500, and 700 ppb. An intercept value of 120 ppb was obtained for the unknown mercury concentration. Deposition time, 120 s, at -0.5 V vs. SCE pulse width, 40 msJ pulse delay, 160 ms pulse amplitude, 50 mV sweep rate, 20 mV s. ...

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