Journal of Applied Polymer Science · 1970 · 62 citations · 29 references
Radical EmissionEngineeringDegradation ReactionVinyl ChlorideOrganic ChemistrySame Activation EnergyChemistryPolymersChemical EngineeringPlastic DegradationThermodynamicsRadiation ChemistryPolymer ChemistryPhotochemistryBiochemistryRadical (Chemistry)Polymer StabilityPhysical ChemistryPhotodegradationHalogenationPvc StructuresLow TemperaturesI. KineticsNatural SciencesPolymer ScienceActivation EnergyChemical Kinetics
Abstract The dehydrochlorination reaction arising thermally and from exposure to γ‐radiation has been followed, under vacuum, in the temperature range from 80° to 130°C by measuring the pressure of the evolved volatiles. The catalytic action of HCl, which was recently established, has been observed also at these low temperatures. In agreement with previous data, a free‐radical mechanism has been accepted to be operating in the radiation‐induced reaction, which has been found to be linearly dependent on dose rate and essentially independent of temperature. Assuming the thermal dehydrochlorination to proceed according to the same mechanism, its activation energy, lying within the range of values reported in the literature, represents the activation energy for the thermal process of radical formation by dissociation of normal and anomalous structures in PVC macromolecular chains. Since this value appears to be substantially constant in the temperature range from 90° to 240°C, it can be established whether the dissociation reactions of all the PVC structures are regulated by the same activation energy or, more simply, only one of these structures is concerned.
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W.C. Geddes · Rubber Chemistry and Technology · 1967 · 169 citations
Radiation Chemistry of Polyvinyl Chloride
A. A. Miller · The Journal of Physical Chemistry · 1959 · 110 citations
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