Chapter 4 - Imperfections in Solids - Questions and Problems - Page 136: 4.16

$C_{Fe} $= 0.9887 wt % $C_{C} $= 0.0019 wt% $C_{Cr} $ = 0.0094 wt%

Given: alloy that contains 105 kg of Fe, 0.2 kg of C, and 1.0 kg of Cr Required: composition by weight Solution: Using the modified form of Equation 4.3: For Fe: $C_{Fe} = \frac{m_{Fe}}{m_{Fe} + m_{C} +m_{Cr}} \times 100 = \frac{105 kg}{105 kg + 0.2 kg +1.0 kg} \times 100 $= 98.87 wt% For C, $C_{C} = \frac{m_{C}}{m_{Fe} + m_{C} +m_{Cr}} \times 100 = \frac{0.2 kg}{105 kg + 0.2 kg +1.0 kg} \times 100 $= 0.19 wt% For Cr, $C_{Cr} = \frac{m_{Cr}}{m_{Fe} + m_{C} +m_{Cr}} \times 100 = \frac{1.0 kg}{105 kg + 0.2 kg +1.0 kg} \times 100 $= 0.94 wt%