Thermal treatment of polyethylene terephthalate in a vacuum
Thermal treatment of polyethylene terephthalate in vacuum
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Thermal treatment of polyethylene terephthalate in vacuum
Temperature effects on irradiation cross linking of linear polyethylene
Specific heat of extended molecular chain single crystals of polyethylene measured with differential scanning calorimeter
Crystal structure of polyethylene terephthalate after various crystallization methods
External shunt capacitance effects upon electron irradiation induced voltage pulses from polyethylene terephthalate insulated ribbon wire
Fabrication and testing of battery separator material of modified polyethylene film
Infrared spectral analysis of chain folding in polyethylene terephthalate
Electron microscopical study of polyethylene terephthalate crystal structure
Infrared determination of orientation process in polyethylene terephthalate
Seeding of supercooled polyethylene with extended chain crystals
Electron irradiation from 20 keV to 1 MeV used to study effects on polyethylene terephthalate capacitor-type meteoroid detector
Superheating of linear high polymer polyethylene crystals, evaluating time dependence of melting, differential thermal analysis and calorimeter techniques
Temperature dependence of viscous and elastic properties of low density polyethylene melt
Elasticity of low density polyethylene - evaluation of crystal and noncrystal orientation from X-ray diffraction and birefringence
Morphology of strain-induced crystallization of polyethylene terephthalate
Mechanical properties of polyethylene terephthalate at cryogenic temperatures
Rough surface recrystallization of heated polyethylene extended-chain crystals
A matched set of five tissue-equivalent proportional counters (TEPCs), embedded at the centers of 0 (bare), 3, 5, 8 and 12-inch-diameter polyethylene spheres, were flown on the Shuttle flight STS-81 (inclination 51.65 degrees, altitude approximately 400 km). The data obtained were separated into contributions from trapped protons and galactic cosmic radiation (GCR). From the measured linear energy transfer (LET) spectra, the absorbed dose and dose-equivalent rates were calculated. The results were compared to calculations made with the radiation transport model HZETRN/NUCFRG2, using the GCR free-space spectra, orbit-averaged geomagnetic transmission function and Shuttle shielding distributions. The comparison shows that the model fits the dose rates to a root mean square (rms) error of 5%, and dose-equivalent rates to an rms error of 10%. Fairly good agreement between the LET spectra was found; however, differences are seen at both low and high LET. These differences can be understood as due to the combined effects of chord-length variation and detector response function. These results rule out a number of radiation transport/nuclear fragmentation models. Similar comparisons of trapped-proton dose rates were made between calculations made with the proton transport model BRYNTRN using the AP-8 MIN trapped-proton model and Shuttle shielding distributions. The predictions of absorbed dose and dose-equivalent rates are fairly good. However, the prediction of the LET spectra below approximately 30 keV/microm shows the need to improve the AP-8 model. These results have strong implications for shielding requirements for an interplanetary manned mission.