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Reaction rates oxidations

As tire reaction leading to tire complex involves electron transfer it is clear that tire activation energy AG" for complex fonnation can be lowered or raised by an applied potential (A). Of course, botlr tire forward (oxidation) and well as tire reverse (reduction) reaction are influenced by A4>. If one expresses tire reaction rate as a current flow (/ ), tire above equation C2.8.11 can be expressed in tenns of tire Butler-Volmer equation (for a more detailed... [Pg.2718]

Dialkylaminoethyl acryhc esters are readily prepared by transesterification of the corresponding dialkylaminoethanol (102,103). Catalysts include strong acids and tetraalkyl titanates for higher alkyl esters and titanates, sodium phenoxides, magnesium alkoxides, and dialkyitin oxides, as well as titanium and zirconium chelates, for the preparation of functional esters. Because of loss of catalyst activity during the reaction, incremental or continuous additions may be required to maintain an adequate reaction rate. [Pg.156]

In a polluted or urban atmosphere, O formation by the CH oxidation mechanism is overshadowed by the oxidation of other VOCs. Seed OH can be produced from reactions 4 and 5, but the photodisassociation of carbonyls and nitrous acid [7782-77-6] HNO2, (formed from the reaction of OH + NO and other reactions) are also important sources of OH ia polluted environments. An imperfect, but useful, measure of the rate of O formation by VOC oxidation is the rate of the initial OH-VOC reaction, shown ia Table 4 relative to the OH-CH rate for some commonly occurring VOCs. Also given are the median VOC concentrations. Shown for comparison are the relative reaction rates for two VOC species that are emitted by vegetation isoprene and a-piuene. In general, internally bonded olefins are the most reactive, followed ia decreasiag order by terminally bonded olefins, multi alkyl aromatics, monoalkyl aromatics, C and higher paraffins, C2—C paraffins, benzene, acetylene, and ethane. [Pg.370]

Tocotrienols differ from tocopherols by the presence of three isolated double bonds in the branched alkyl side chain. Oxidation of tocopherol leads to ring opening and the formation of tocoquinones that show an intense red color. This species is a significant contributor to color quaUty problems in oils that have been abused. Tocopherols function as natural antioxidants (qv). An important factor in their activity is their slow reaction rate with oxygen relative to combination with other free radicals (11). [Pg.124]

Computer Models, The actual residence time for waste destmction can be quite different from the superficial value calculated by dividing the chamber volume by the volumetric flow rate. The large activation energies for chemical reaction, and the sensitivity of reaction rates to oxidant concentration, mean that the presence of cold spots or oxidant deficient zones render such subvolumes ineffective. Poor flow patterns, ie, dead zones and bypassing, can also contribute to loss of effective volume. The tools of computational fluid dynamics (qv) are useful in assessing the extent to which the actual profiles of velocity, temperature, and oxidant concentration deviate from the ideal (40). [Pg.57]

The temperature of esterification has a significant influence on isomerization rate, which does not proceed above 50% at reaction temperatures below 150°C. In resins produced rapidly by using propylene oxide and mixed phthaUc and maleic anhydrides at 150°C, the polyester polymers, which can be formed almost exclusively in the maleate conformation, show low cross-linking reaction rates with styrene. [Pg.315]

The action of redox metal promoters with MEKP appears to be highly specific. Cobalt salts appear to be a unique component of commercial redox systems, although vanadium appears to provide similar activity with MEKP. Cobalt activity can be supplemented by potassium and 2inc naphthenates in systems requiring low cured resin color lithium and lead naphthenates also act in a similar role. Quaternary ammonium salts (14) and tertiary amines accelerate the reaction rate of redox catalyst systems. The tertiary amines form beneficial complexes with the cobalt promoters, faciUtating the transition to the lower oxidation state. Copper naphthenate exerts a unique influence over cure rate in redox systems and is used widely to delay cure and reduce exotherm development during the cross-linking reaction. [Pg.319]

Further improvements in reaction rates and polymerization control have led to the commercial availabihty of poly(ethylene oxide) of varying molecular weights. [Pg.342]

The reaction is exothermic reaction rates decrease with increased carbon number of the oxide (ethylene oxide > propylene oxide > butylene oxide). The ammonia—oxide ratio determines the product spht among the mono-, di-, and trialkanolamines. A high ammonia to oxide ratio favors monoproduction a low ammonia to oxide ratio favors trialkanolamine production. Mono- and dialkanolamines can also be recycled to the reactor to increase di-or trialkanolamine production. Mono- and dialkanolamines can also be converted to trialkanolamines by reaction of the mono- and di- with oxide in batch reactors. In all cases, the reaction is mn with excess ammonia to prevent unreacted oxide from leaving the reactor. [Pg.7]

Other techniques include oxidative, steam atmosphere (33), and molten salt (34) pyrolyses. In a partial-air atmosphere, mbber pyrolysis is an exothermic reaction. The reaction rate and ratio of pyrolytic filler to ok products are controlled by the oxygen flow rate. Pyrolysis in a steam atmosphere gives a cleaner char with a greater surface area than char pyroly2ed in an inert atmosphere however, the physical properties of the cured compounded mbber are inferior. Because of the greater surface area, this pyrolytic filler could be used as activated carbon, but production costs are prohibitive. Molten salt baths produce pyroly2ed char and ok products from tine chips. The product characteristics and quantities depend on the salt used. Recovery of char from the molten salt is difficult. [Pg.15]

Meta.1 Oxides. Halogen-containing elastomers such as polychloropreae and chlorosulfonated polyethylene are cross-linked by their reaction with metal oxides, typically ziac oxide. The metal oxide reacts with halogen groups ia the polymer to produce an active iatermediate which then reacts further to produce carbon—carbon cross-links. Ziac chloride is Hberated as a by-product and it serves as an autocatalyst for this reaction. Magnesium oxide is typically used with ZnCl to control the cure rate and minimize premature cross-linking (scorch). [Pg.236]

Equation 20 is the rate-controlling step. The reaction rate of the hydrophobes decreases in the order primary alcohols > phenols > carboxylic acids (84). With alkylphenols and carboxylates, buildup of polyadducts begins after the starting material has been completely converted to the monoadduct, reflecting the increased acid strengths of these hydrophobes over the alcohols. Polymerization continues until all ethylene oxide has reacted. Beyond formation of the monoadduct, reactivity is essentially independent of chain length. The effectiveness of ethoxylation catalysts increases with base strength. In practice, ratios of 0.005—0.05 1 mol of NaOH, KOH, or NaOCH to alcohol are frequendy used. [Pg.246]


See other pages where Reaction rates oxidations is mentioned: [Pg.46]    [Pg.50]    [Pg.22]    [Pg.265]    [Pg.174]    [Pg.46]    [Pg.50]    [Pg.22]    [Pg.265]    [Pg.174]    [Pg.50]    [Pg.50]    [Pg.938]    [Pg.953]    [Pg.1098]    [Pg.1106]    [Pg.2502]    [Pg.276]    [Pg.659]    [Pg.265]    [Pg.6]    [Pg.35]    [Pg.35]    [Pg.340]    [Pg.342]    [Pg.46]    [Pg.515]    [Pg.171]    [Pg.171]    [Pg.222]    [Pg.369]    [Pg.400]    [Pg.457]    [Pg.73]    [Pg.258]    [Pg.134]    [Pg.347]    [Pg.348]    [Pg.479]    [Pg.523]    [Pg.219]    [Pg.481]    [Pg.36]    [Pg.538]   
See also in sourсe #XX -- [ Pg.527 , Pg.537 , Pg.538 ]




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Acetaldehyde, ammonia reaction oxidation rate

Alkenes oxidation reaction rate

Carbon monoxide oxidation— reaction rate

Catalytic propylene oxidation reaction rate

Fatty acids relative oxidation reaction rates

Hydrogen oxidation reaction , rate

Hydrogen oxidation reaction , rate constant

Inorganic oxidation reactions involving dissolved oxygen, rates

Linoleic acid relative oxidation reaction rate

Linolenic acid relative oxidation reaction rate

Nitric oxide reaction mechanisms rate constants

Oleic acid relative oxidation reaction rate

Oxidation reaction rate anisotropy

Oxidation-reduction reaction rate

Propylene oxide oxidation— reaction rate

Rate Constants for Reactions in Gas-phase Hydrocarbon Oxidation

Rates of inorganic oxidation reactions

Rates of inorganic oxidation reactions involving dissolved oxygen

Reaction rate, catalytic SO2 oxidation

Reaction rate, catalytic SO2 oxidation catalyst

Reaction rate, catalytic SO2 oxidation increasing bed thickness

Reaction rate, catalytic SO2 oxidation increasing gas input

Reaction rate, catalytic SO2 oxidation offset

Reaction rate, catalytic SO2 oxidation reasons

Reaction rate, catalytic SO2 oxidation temperature

Reaction rate, catalytic SO2 oxidation temperature effect

Reaction rate, catalytic SO2 oxidation using higher vanadium

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