Temperature (°C) 3000 L 2000 S = (Mg, Fe)O 1000 MgO 20 40 60 Temperature (°C) 3400 3200 L 3000 2800 2600 2400 80 FeO Nb 20 40 60 α 80 W Weight percent FeO Figure 10-18 The equilibrium phase diagram for the MgO-FeO system (for Problems 10-18, 10-19, 10-26, 10-27, 10-34, and 10-38). The dashed curve represents the solidus for non-equilibrium cooling. (Credit: Cengage Learning 2014) Figure 10-19 Weight percent tungsten The equilibrium phase diagram for the Nb-W system (for Problems 10-21, 10-28, 10-29, 10-30, 10-31, 10-35, 10-37, and 10-40). The dashed curve represents the solidus for non-equilibrium cooling. (Credit: Cengage Learning 2014) 10-38 For equilibrium conditions and a MgO-65 wt% FeO ceramic, determine (a) the liquidus temperature; (b) the solidus temperature; (c) the freezing range; (d) the composition of the first solid to form during solidification; (e) the Fil composition of the last liquid to solidify; (f) the phase(s) present, the composition of the phase(s), and the amount of the phase(s) at 1800 °C; and (g) the phase(s) present, the composition of the phase(s), and the amount of the phase(s) at 1600 °C. (See Figure 10-18.)

Elements Of Electromagnetics
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Temperature (°C)
3000
L
2000
S = (Mg, Fe)O
1000
MgO 20
40
60
Temperature (°C)
3400
3200
L
3000
2800
2600
2400
80
FeO
Nb
20
40
60
α
80
W
Weight percent FeO
Figure 10-18 The equilibrium phase diagram for the
MgO-FeO system (for Problems 10-18, 10-19, 10-26,
10-27, 10-34, and 10-38). The dashed curve
represents the solidus for non-equilibrium cooling.
(Credit: Cengage Learning 2014)
Figure 10-19
Weight percent tungsten
The equilibrium phase diagram for the
Nb-W system (for Problems 10-21, 10-28, 10-29,
10-30, 10-31, 10-35, 10-37, and 10-40). The dashed
curve represents the solidus for non-equilibrium cooling.
(Credit: Cengage Learning 2014)
10-38 For equilibrium conditions and a MgO-65 wt% FeO ceramic, determine (a) the
liquidus temperature; (b) the solidus temperature; (c) the freezing range; (d)
the composition of the first solid to form during solidification; (e) the Fil
composition of the last liquid to solidify; (f) the phase(s) present, the
composition of the phase(s), and the amount of the phase(s) at 1800 °C; and (g)
the phase(s) present, the composition of the phase(s), and the amount of the
phase(s) at 1600 °C. (See Figure 10-18.)
Transcribed Image Text:Temperature (°C) 3000 L 2000 S = (Mg, Fe)O 1000 MgO 20 40 60 Temperature (°C) 3400 3200 L 3000 2800 2600 2400 80 FeO Nb 20 40 60 α 80 W Weight percent FeO Figure 10-18 The equilibrium phase diagram for the MgO-FeO system (for Problems 10-18, 10-19, 10-26, 10-27, 10-34, and 10-38). The dashed curve represents the solidus for non-equilibrium cooling. (Credit: Cengage Learning 2014) Figure 10-19 Weight percent tungsten The equilibrium phase diagram for the Nb-W system (for Problems 10-21, 10-28, 10-29, 10-30, 10-31, 10-35, 10-37, and 10-40). The dashed curve represents the solidus for non-equilibrium cooling. (Credit: Cengage Learning 2014) 10-38 For equilibrium conditions and a MgO-65 wt% FeO ceramic, determine (a) the liquidus temperature; (b) the solidus temperature; (c) the freezing range; (d) the composition of the first solid to form during solidification; (e) the Fil composition of the last liquid to solidify; (f) the phase(s) present, the composition of the phase(s), and the amount of the phase(s) at 1800 °C; and (g) the phase(s) present, the composition of the phase(s), and the amount of the phase(s) at 1600 °C. (See Figure 10-18.)
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