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The Effects of Deformation on the Electrical Resistivity of Molybdenum Single Crystals

L. D. Whitmire, F. R. Brotzen

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Abstract

I Z (.Single crystals of high-purity molybdenum were 0 " : l ) -c/o( p .K 4 ' 3 ' Y htp3rmed at temperatures from 195 to 473OK, and the effect of deformation on the electrical resistivity was determined. of point and line defects some crystals were annealed at 473OK. To separate the resistivity componentsThe rate of resistivity increase with strain was nearly linear and was strongly dependent upon the deformation temperature.Point defects are annealed out without any effect on the flow stress.At low temperatures the flow stress is a linear function of the square root of the resistivity increase attributable to dislocations.

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I Z (.Single crystals of high-purity molybdenum were 0 " : l ) -c/o( p .K 4 ' 3 ' Y htp3rmed at temperatures from 195 to 473OK, and the effect of deformation on the electrical resistivity was determined. of point and line defects some crystals were annealed at 473OK. To separate the resistivity componentsThe rate of resistivity increase with strain was nearly linear and was strongly dependent upon the deformation temperature.Point defects are annealed out without any effect on the flow stress.At low temperatures the flow stress is a linear function of the square root of the resistivity increase attributable to dislocations.

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Available abstract

I Z (.Single crystals of high-purity molybdenum were 0 " : l ) -c/o( p .K 4 ' 3 ' Y htp3rmed at temperatures from 195 to 473OK, and the effect of deformation on the electrical resistivity was determined. of point and line defects some crystals were annealed at 473OK. To separate the resistivity componentsThe rate of resistivity increase with strain was nearly linear and was strongly dependent upon the deformation temperature.Point defects are annealed out without any effect on the flow stress.At low temperatures the flow stress is a linear function of the square root of the resistivity increase attributable to dislocations.

Key concepts: Electrical resistivity and conductivity, Molybdenum, Materials science, Deformation (meteorology), Metallurgy, Composite material, Electrical engineering, Engineering

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