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OXIDATION OXIDATIVE STABILITY

The procedure most commonly employed (NF M 07-047 or ASTM D 2274) Is to age the diesel fuel for 16 hours while bubbling oxygen into it at 95°C. The gums and sediment obtained are recovered by filtration and weighed. There is no official French specification regarding oxidation stability however, in their own specifications, manufacturers have set a maximum value of 1.5 mg/100 ml. [Pg.247]

Oxidation stability (distillate fuel oil) NF M 07-047 ISO/DlS 12205 ASTM D 2274 Measurement of precipitate after 16 h of oxygen sparging at 95°C... [Pg.449]

Oxidation stability (gasoline) (induction period) NFM 07-012 ISO/DlS 7536 ASTM D 525 Time necessary for a sample bomb under oxygen pressure to reach the critical induction point... [Pg.449]

Thermal Oxidative Stability. ABS undergoes autoxidation and the kinetic features of the oxygen consumption reaction are consistent with an autocatalytic free-radical chain mechanism. Comparisons of the rate of oxidation of ABS with that of polybutadiene and styrene—acrylonitrile copolymer indicate that the polybutadiene component is significantly more sensitive to oxidation than the thermoplastic component (31—33). Oxidation of polybutadiene under these conditions results in embrittlement of the mbber because of cross-linking such embrittlement of the elastomer in ABS results in the loss of impact resistance. Studies have also indicated that oxidation causes detachment of the grafted styrene—acrylonitrile copolymer from the elastomer which contributes to impact deterioration (34). [Pg.203]

Oxidative Stability. Ben2otrifluoride resists ring oxidation. In contrast, chromic acid readily oxidi2es 3-aminoben2otrifluoride to ttifluoroacetic acid in 95% yield (287). [Pg.329]

HalogenatedFluids. Chlorocarbons, fluorocarbons, or combinations of the two are used to form lubricating fluids (see Chlorocarbons and CHLOROHYDROCARBONS Fluorine COMPOUNDS, ORGANIC). Generally, these fluids are chemically inert, essentially nonflammable, and often show excellent resistance to solvents. Some have outstanding thermal and oxidation stability, because they are completely unreactive even in Hquid oxygen, and extremely low volatility. [Pg.265]

Hydroxyethyl cellulose (HEC), a nonionic thickening agent, is prepared from alkali cellulose and ethylene oxide in the presence of isopropyl alcohol (46). HEC is used in drilling muds, but more commonly in completion fluids where its acid-degradable nature is advantageous. Magnesium oxide stabilizes the viscosity-building action of HEC in salt brines up to 135°C (47). HEC concentrations are ca 0.6—6 kg/m (0.2—21b/bbl). [Pg.179]

The greatest source of contamination is extraneous matter. Atmospheric dirt, for example, is always a serious threat. It can enter the oil system through vents, breathers, and seals. Its primary effect is equipment wear, but plugging of oil lines and ports, and reduced oxidation stability of the oil are also serious effects. [Pg.550]

Impurities in mineral fillers can have serious effects. Coarse particles (grit) will lead to points of weakness in soft polymers which will therefore fail under stresses below that which might be expected. Traces of copper, manganese and iron can affect the oxidative stability whilst lead may react with sulphur-containing additives or sulphurous fumes in the atmosphere to give a discoloured product. [Pg.127]

In terms of processing there is no need for pre-drying PCHE granules, a standard extruder screw as used for polycarbonate may be used and discs are said to release well from the mould. Question marks remain on the oxidative stability of the polymer and on the quality of adhesion of the reflective layer but Dow claim that metallising is possible. [Pg.275]

In addition to the elastomers already described, others, have been produced on an experimental scale. These include the perfluoroalkylenetriazines with their unsurpassed thermal oxidative stability for an elastomer but with many offsetting disadvantages, and polyfthiocarbonyl fluoride). It is probably true to say that material does not have any outstanding desirable property that cannot now be matched by an alternative and commercially available material. [Pg.383]

The absence of both secondary and tertiary C—H bonds leads to a high measure of oxidative stability. Oxidation does take place when thin films are heated in air to temperatures above 300°C and causes cross-linking but this is of little practical significance. The absence of double bonds gives a very good but not absolute resistance to ozone. [Pg.572]

As with the polysulphones, the deactivated aromatic nature of the polymer leads to a high degree of oxidative stability, with an indicated UL Temperature Index in excess of 250°C for PEEKK. The only other melt-processable polymers in the same league are poly(phenylene sulphides) and certain liquid crystal polyesters (see Chapter 25). [Pg.604]

Matsumoto, T. and Mochida, I., Oxygen distribution in oxidatively stabilized mesophase pitch fiber, Carbon, 1993,31(1), 143 147. [Pg.138]

Hydrogenation of the conjugated C=C bonds to increase oxidative stability and... [Pg.503]

Solid SBR is often prefened to natural rubber because of its better thermal oxidative stability, higher abrasion resistance and easier processability. Solid SBRs are generally grouped into three families according to the production method. [Pg.587]

Resistance to weathering. Zinc oxide and magnesium oxide stabilize poly-chloroprene against dehydrochlorination. Further, zinc oxide helps vulcanize the rubber, and magnesium oxide reacts with /-butyl phenolic resin to produce a resinate which improves heat resistance of solvent-borne polychloroprene adhesives. [Pg.629]

Antioxidant activity is not a linear function of concentration. As the antioxidant level increases, less and less improvement in oxidative stability is noted. Therefore, only enough antioxidant should be added to rubber adhesives, typically 1 to 2 phr. [Pg.643]

Oxidative stability is highly important because it deals with the degradation of polymers under actual performance conditions. Oxidative stability, as applied to urethanes, refers to the combination of oxygen and heat or oxygen and light that causes degradation of urethanes. [Pg.802]

A study was done measuring the thermal oxidative stability of polyurethanes made from PPG polyols, varying the isocyanate curative. Oxygen absorption was... [Pg.803]

Lube oil extraction plants often use phenol as solvent. Phenol is used because of its solvent power with a wide range of feed stocks and its ease of recovery. Phenol preferentially dissolves aromatic-type hydrocarbons from the feed stock and improves its oxidation stability and to some extent its color. Phenol extraction can be used over the entire viscosity range of lube distillates and deasphalted oils. The phenol solvent extraction separation is primarily by molecular type or composition. In order to accomplish a separation by solvent extraction, it is necessary that two liquid phases be present. In phenol solvent extraction of lubricating oils these two phases are an oil-rich phase and a phenol-rich phase. Tne oil-rich phase or raffinate solution consists of the "treated" oil from which undesirable naphthenic and aromatic components have been removed plus some dissolved phenol. The phenol-rich phase or extract solution consists mainly of the bulk of the phenol plus the undesirable components removed from the oil feed. The oil materials remaining... [Pg.231]

A major development in fluoroplastks is the recent small scale production of Teflon AF, a noncrystaUme (amorphous) fluorocarbon polymer with a high glass transition temperature (240 °C) This optically transparent TFE copolymer is soluble m certan fluorocabons and has the same chemical and oxidative stability as crystallme TFE homopolymers [5]... [Pg.1101]

Bismuth oeeurs mainly as bismite (a-Bi203), bismuthinite (Bi2S3) and bismutite [(Bi0)2C03] very oeeasionally it oeeurs native, in assoeiation with Pb, Ag or Co ores. The main eommereial souree of the element is as a byproduet from Pb/Zn and Cu plants, from whieh it is obtained by special processes dependent on the nature of the main product. Sulfide ores are roasted to the oxide and then reduced by iron or charcoal. Because of its low mp, very low solubiUty in Fe, and fairly high oxidative stability in air, Bi can be melted and cast (like Pb) in iron and steel vessels. Like Sb, the metal is too brittle to roll, draw, or extrude at room temperature, but above 225°C Bi can be worked quite well. [Pg.550]

Catalytic oxidation reactions in ionic liquids have been investigated only very recently. This is somewhat surprising in view of the well loiown oxidation stability of ionic liquids, from electrochemical studies [11], and the great commercial importance of oxidation reactions. Moreover, for oxidation reactions with oxygen, the nonvolatile nature of the ionic liquid is of real advantage for the safety of the reaction. While the application of volatile organic solvents may be restricted by the formation of explosive mixtures in the gas phase, this problem does not arise if a nonvolatile ionic liquid is used as the solvent. [Pg.232]


See other pages where OXIDATION OXIDATIVE STABILITY is mentioned: [Pg.300]    [Pg.389]    [Pg.282]    [Pg.314]    [Pg.311]    [Pg.265]    [Pg.265]    [Pg.237]    [Pg.512]    [Pg.344]    [Pg.463]    [Pg.309]    [Pg.411]    [Pg.489]    [Pg.241]    [Pg.119]    [Pg.119]    [Pg.128]    [Pg.716]    [Pg.719]    [Pg.751]    [Pg.802]    [Pg.803]    [Pg.804]    [Pg.961]    [Pg.365]    [Pg.110]   
See also in sourсe #XX -- [ Pg.31 , Pg.143 ]




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1,2,3-Triazoles, computed stability formation from 1,2,4-triazine 4-oxides

Acrylonitrile-butadiene-styrene thermal oxidative stability

Aluminum oxides, stability diagram

Amine oxide stabilizers

And oxidative stability

Anti-oxidation, Stabilization, and Improvement of Bioavailability

Approaches to the Improvement of Metal Oxide Structure Stability

Aromatic oils oxidative stability

Assessment of Oxidative Stability for Lipids

Atmospheric oxidation, stability

Biodiesel oxidative stability

Bismuth oxide stabilizers

Bomb oxidation stability

Butter, oxidative stability

Calculations of the Electrolyte Oxidation Stability

Calorimetry oxidation stability evaluation

Canolol oxidative stability

Cerium oxide stabilizers

Chemical stability oxidation

Chemical stability oxidation reduction effects

Conductivity, oxidation stability measurement

Conjugated linoleic acid oxidative stability

Coordination polymers oxidative stability

Covalent hydrates, oxidation stabilization

Dairy products, oxidation stability

Differential scanning calorimetry oxidative stability determined using

Docosahexaenoic acid oxidative stability

Eicosapentaenoic acid oxidative stability

Electrolyte oxidative stability

Electrolytes stabilized bismuth oxide

Electrolytes stabilized cerium oxide

Electrostatic stabilization, metal oxide

Erbia-stabilized bismuth oxide

Fast oxidation of oil for correlation with its oxidative stability

Fuel cell membranes oxidative stability

Grease oxidation stability

Greases, oxidative stability

Gums, oxidation stability

High Oxidation Stability

High-temperature, oxidative stability

High-temperature, oxidative stability polymers

High-temperature, oxidative stability search

Hydraulic fluids oxidation stability

Hydrogen peroxide oxidation stability evaluation

Induction times oxidation stability

Infrared spectroscopy oxidative stability

Instability of Metal Oxide Parameters and Approaches to Their Stabilization

Ionization potentials, electron affinities and stabilities of oxidation states

Linoleic acid oxidative stability

Linolenic acid, oxidative stability

Lipid stability measurements oxidation techniques

Lipids oxidation/stability

Lubricants oxidative stability

Lubrication Oxidation Stability

Mayonnaise oxidative stability

MeOH Oxidation Catalyst Stability

Mechanical stability ethylene oxide-fatty alcohol

Metal oxide solid electrolytes yttria-stabilized zirconia

Metal oxide stability

Metal oxide-based compounds thermal stability

Monomer stabilization thermal oxidative polymerization

Naphthenic oils oxidation stability

Olefin copolymers oxidative stability

Organic materials, oxidative stability

Oxalic acid, oxidation stability

Oxidation base-stabilized systems

Oxidation drug stability

Oxidation protein stability

Oxidation stability

Oxidation stability aromatics, effect

Oxidation stability composition

Oxidation stability mechanism

Oxidation stability of aviation fuels

Oxidation stability of gasoline

Oxidation stability oxygen uptake

Oxidation stability peroxides

Oxidation stability sulfur compounds

Oxidation stability test, diesel fuels

Oxidation stability testing

Oxidation stability, separators

Oxidation state, stabilization

Oxidation states stabilities

Oxidation-reduction stability relationships

Oxidative Stability of Biodiesel by P-DSC

Oxidative Stability of Rosins

Oxidative addition adduct stability

Oxidative cleavage stability

Oxidative quality/stability tests

Oxidative stability

Oxidative stability

Oxidative stability Fire resistant materials

Oxidative stability Linear poly

Oxidative stability canolol effect

Oxidative stability derivatives

Oxidative stability electron spin resonance spectroscopy

Oxidative stability imaging chemiluminescence

Oxidative stability measurement

Oxidative stability of biodiesel

Oxidative stability of conjugated linoleic acid

Oxidative stability of lipids

Oxidative stability of polymers

Oxidative stability of urethane

Oxidative stability of vegetable oils

Oxidative stability omega

Oxidative stability phosphine oxide

Oxidative stability temperatures

Oxidative stability testing

Oxidative stability thermogravimetric analysis

Oxidative stability weight loss

Oxidative stability, blending

Oxidative stability, blending poly

Oxidative stability, encapsulated orange

Oxidative stabilizers

Oxidative stabilizers

Oxides Stabilized Zirconia

Oxides stability constants

Oxides stability diagram

Oxidizing agents, acetal stability

Paraffinic oils oxidation stability

Phosphine Oxide and Phosphonate-Stabilized Anions

Photo stability oxidation

Photo-oxidative stability

Photoelectrochemical Stability of Oxide Layers

Poly oxidation stability

Poly oxidative stability

Polyethylene oxidative stability

Polyethylene oxide) shear stability

Polymers oxidative stability

Polypropylene oxidative stability

Polytetrafluoroethylene oxide, stability

Porous silicon stabilization electrochemical oxidation

Porous silicon stabilization oxidation

Porous silicon stabilization thermal oxidation

Poultry oxidative stability

Protein stabilization oxidation

Pyrolysis processes oxidation stabilization

Rancimat™, oxidation stability measurement

Reclaimed Oxidation Stability

Relative Stabilities of Oxidation States

Rosins, oxidative stability

Service life oxide stability effects

Silicon oxides, stability diagram

Silicone Oxidation Stability

Silicone fluids, oxidative stabilization

Silicones oxidative stability

Solid-oxide fuel cells temperature stability

Stabilities of iron oxides

Stability against oxidation

Stability anodic oxide

Stability of Bulk Metal Oxides

Stability of Oxide Surfaces

Stability of Some Oxidation States

Stability of Surface Oxides in an Oxygen Environment

Stability of iron oxide suspensions

Stability of metal oxides

Stability of oxidation stales

Stability of oxidation states

Stability oxidation degradation

Stability oxides

Stability oxides

Stability perovskite oxides

Stability to atmospheric oxidation

Stability to oxidants

Stability to oxidation

Stability transition metal oxide insertion

Stability, oxidation indices

Stabilization against Thermal-Oxidative Degradation

Stabilization of On and High Oxidation States

Stabilization of Polyamides Against Thermal Oxidation

Stabilization of Polyethylene against Thermo-oxidative Degradation

Stabilization of Polyolefins Against Oxidative Destruction

Stabilization of oxidation states

Stabilization of the Oxide Interface

Stabilization of unstable d-metal oxidation

Stabilization of unstable d-metal oxidation states

Stabilization of unstable d-metal oxidation states by complex formation

Stabilization of unusual oxidation states

Stabilization of unusual oxidation states by coordination

Stabilizers oxidation

Standard Test Method for Thermal-Oxidative Stability of Polypropylene Using a Specimen Rotator Within an Oven

Storage oxidation stability

Structural stabilities of Mn(IV) oxides

Synthetic Oxidation Stability

Synthetic lubricants oxidative stability

Temporal Stabilization of Porous Silicon Through Oxidation

The Activity-Stability Parameterization of Homogeneous Green Oxidation Catalysts

The Morphological Stability of Boundaries During Metal Oxidation

The Stabilization of High Oxidation States

The Stabilization of Oxidation States

The Stabilization of Oxidation States R. S. Nyholm and M. L. Tobe

The Stabilization of Oxidation States, and Reduction Potentials

Thermal Analysis and Measurement of Oxidation Stability

Thermal and oxidative stability

Thermal oxidative stability

Thermal-oxidation stability

Thermo-oxidation, stabilized

Thermo-oxidative stability

Thermo-oxidative stability degradation mechanism

Thermo-oxidative stabilization

Thiobarbituric acid reactive substances oxidation stability

Transuranium elements oxidation state stability

Trends in the Stability of Oxidation States

Triphenylphosphine oxide stability

Vegetable oils oxidative stability

Virgin Oxidation Stability

Vitamin oxidative stability

Volatile acids, oxidation stability measurement

Yttrium oxide partially stabilized zirconia

Yttrium oxide zirconia stabilization

Yttrium-stabilized zirconium oxide

Zinc group oxides, stabilities

Zinc oxide heat stabilization

Zinc oxide light stabilization

Zirconium oxide calcium-stabilized

Zirconium oxide partially-stabilized

Zirconium oxide stabilized

Zirconium oxide yttria-stabilized

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