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Triangular and Intergranular Fracture of Ingot Iron During Creep

Lawrence A. Shepard, W.H. Giedt

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Abstract

Note presenting creep tests performed on coarse-grained ingot iron over a temperature range from 700 to 1350 degrees Fahrenheit to find whether the amount of grain-boundary sliding determined the fracture mode, either transgranular or intergranular. Transgranular fractures were obtained at temperatures below 800 degrees Fahrenheit and stresses above 20,000 psi. It is concluded that a vacancy-condensation mechanism is most probably responsible for high-temperature intergranular fracturing in ingot iron.

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Note presenting creep tests performed on coarse-grained ingot iron over a temperature range from 700 to 1350 degrees Fahrenheit to find whether the amount of grain-boundary sliding determined the fracture mode, either transgranular or intergranular. Transgranular fractures were obtained at temperatures below 800 degrees Fahrenheit and stresses above 20,000 psi. It is concluded that a vacancy-condensation mechanism is most probably responsible for high-temperature intergranular fracturing in ingot iron.

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Available abstract

Note presenting creep tests performed on coarse-grained ingot iron over a temperature range from 700 to 1350 degrees Fahrenheit to find whether the amount of grain-boundary sliding determined the fracture mode, either transgranular or intergranular. Transgranular fractures were obtained at temperatures below 800 degrees Fahrenheit and stresses above 20,000 psi. It is concluded that a vacancy-condensation mechanism is most probably responsible for high-temperature intergranular fracturing in ingot iron.

Key concepts: Intergranular corrosion, Ingot, Transgranular fracture, Creep, Metallurgy, Materials science, Grain boundary, Intergranular fracture

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