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Exhaust control

A 0.3619-g sample of tetrachloropicolinic acid, C6HNO2CI4, is dissolved in distilled water, transferred to a 1000-mL volumetric flask, and diluted to volume. An exhaustive controlled-potential electrolysis of a 10.00-mL portion of this solution at a spongy silver cathode requires 5.374 C of charge. What is the value of n for this reduction reaction ... [Pg.506]

ALUMDJUMCOMPOUNDS - ALUMINIUMOXIDE(ALUMINA) - ACTIVATED] (Vol 2) -in automotive exhaust catalyst [EXHAUST CONTROL, AUTOMOTIVE] (Vol 9)... [Pg.252]

FLUORINECOMPOUNDS,ORGANIC - DIRECTFLUORINATION] (Vol 11) Exhaust control, automotive... [Pg.387]

Control of NO emissions from nitric acid and nitration operations is usually achieved by NO2 reduction to N2 and water using natural gas in a catalytic decomposer (123—126) (see Exhaust control, industrial). NO from nitric acid/nitration operations is also controlled by absorption in water to regenerate nitric acid. Modeling of such absorbers and the complexities of the NO —HNO —H2O system have been discussed (127). Other novel control methods have also been investigated (128—129). Vehicular emission control is treated elsewhere (see Exhaust control, automotive). [Pg.391]


See other pages where Exhaust control is mentioned: [Pg.14]    [Pg.15]    [Pg.19]    [Pg.28]    [Pg.32]    [Pg.47]    [Pg.173]    [Pg.174]    [Pg.191]    [Pg.387]    [Pg.461]    [Pg.490]    [Pg.509]    [Pg.570]    [Pg.613]    [Pg.641]    [Pg.661]    [Pg.672]    [Pg.680]    [Pg.681]    [Pg.710]    [Pg.718]    [Pg.724]    [Pg.771]    [Pg.771]    [Pg.815]    [Pg.815]    [Pg.853]    [Pg.879]    [Pg.885]    [Pg.915]    [Pg.924]    [Pg.948]    [Pg.949]    [Pg.959]    [Pg.967]    [Pg.997]    [Pg.1045]    [Pg.1046]    [Pg.1050]    [Pg.1054]    [Pg.1060]    [Pg.1078]    [Pg.1082]    [Pg.1083]    [Pg.1091]   
See also in sourсe #XX -- [ Pg.249 ]




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