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The electron fields were matched to the photon supraclavicular field in the superior region.
The en face electron fields were designed from a single isocenter and gantry angle with different energy beams using different cutouts that matched on the skin.
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The responses of this design in photon and electron fields are presented here, contrasted against those of the existing PHE eye dosemeter, with respect to the operational quantity Hp 3,E,θ) and both current and suggested values for the absorbed dose per fluence risk profile for the lens of the eye.
For each treatment or control group, at least 200 cells from randomly chosen transmission electron microscopy fields were observed.
The resulting electron density fields are assessed with in situ records.
Fields were reduced to exclude the spinal cord at 40 Gy and a posterior electron-matching field was applied.
In this paper, the principle of differential algebraic method is applied to practical electron lenses whose electric/magnetic fields are in the forms of discrete arrays, for example, the files computed by FEM or FDM method.
The enhancement of electron field emission was successfully obtained from carbon nanofiber (CNF) bundles separately grown on Ni grains in Ni Cr alloy compared with that from CNF bundles on pure nickel.
The dominating applications in the electron beam radiation field are cross-linking of cable insulation, electronic treatment of plastic tubes, and sterilization of medical products and food (Woods and Pikaev (1994) and Bradley 1984).
Electron field dose calculations were done with Monte Carlo.
The enhanced electron field emission characteristics were analyzed using the density functional theory calculations for metal grafted graphene ribbon.
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