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8 March, 16:01

If a steel containing 1.88 wt%C is cooled relatively slowly to room temperature, what is the expected weight fraction of pearlite in the as-cooled microstructure? Answer Format: X. XX Unit: unitless (weight fraction)

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  1. 8 March, 18:54
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    The answer is %pearlite = 0.06%

    Explanation:

    according to the exercise we have that the percentage is 1.88% C, therefore, the percentage of perlite is equal to:

    %pearlite = (B*C) / (A*C) = (2-1.88) / (2-0) = 0.06%

    The percentage of cementite is equal to:

    %cementite = (1.88-0) / (2-0) = 0.94%
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