MET assignment 2
MET 180 Structure and Properties of Materials
MET 180 Structure and Properties of Materials
Week 15
CHAPTER 11:
Phase Diagrams
Content
1. Components and Phases
2. Phase Diagrams
3. Eutectic, Eutectoid and Peritectic Systems
4. Iron - Carbon (Fe-C) System
5. Summary
4
ISSUES TO ADDRESS...
• When we combine two elements...
what is the resulting equilibrium state?
• In particular, we specify...
-- the composition (e.g., wt% Cu - wt% Ni), and
-- the temperature (T)
then...
How many phases form?
What is the composition of each phase?
What is the amount of each phase?
Chapter 11: Phase Diagrams
Phase B
Phase A
Nickel atom Copper atom
5
Phase Equilibria: Solubility Limit
Question: What is the solubility limit for sugar in
water at 20°C?
Answer: 65 wt% sugar. At 20°C, if C < 65 wt% sugar+water: syrup
At 20°C, if C > 65 wt% sugar+water: syrup + sugar
65
• Solubility Limit: Maximum concentration for
which only a single phase
solution exists.
Sugar/Water Phase Diagram
S u
g a
r
T e
m p
e ra
tu re
(° C
) 0 20 40 60 80 100
C = Composition (wt% sugar)
L (liquid solution
i.e., syrup)
Solubility Limit L
(liquid)
+ S
(solid sugar)20
40
60
80
100
W a
te r
Fig. 11.1,
Callister & Rethwisch 9e.
• Solution – solid, liquid, or gas solutions, single phase
• Mixture – more than one phase
6
• Components: The elements or compounds which are present in the alloy
(e.g., Copper-zinc brass: the components are Cu and Zn)
• Phases: The physically and chemically distinct material regions
that form (e.g., α and β).
Aluminum-
Copper
Alloy
Components and Phases
α (darker phase)
β (lighter phase)
7
70 80 1006040200
T e
m p
e ra
tu re
( °
C )
C = Composition (wt% sugar)
L (liquid solution
i.e., syrup)
20
100
40
60
80
0
L (liquid)
+ S
(solid sugar)
Effect of Temperature & Composition • Altering T can change # of phases: path A to B.
• Altering C can change # of phases: path B to D.
water-
sugar
system
Fig. 11.1, Callister &
Rethwisch 9e.
D (100°C,C = 90) 2 phases
B (100°C,C = 70) 1 phase
A (20°C,C = 70) 2 phases
8
Criteria for Solid Solubility
Crystal Structure
electroneg r (nm)
Ni FCC 1.9 0.1246
Cu FCC 1.8 0.1278
• Both have the same crystal structure (FCC) and have similar
electro-negativities and atomic radii suggesting high mutual
solubility.
Simple system (e.g., Ni-Cu solution)
• Ni and Cu are totally soluble in one another for all proportions.
9
• A phase is homogenous portion of a material system that has uniform physical and chemical characteristics.
• Every pure material is considered to be a phase; so also is every solid, liquid and gaseous solution.
Phase Diagrams
• System is an alloy consisting of the same components (e.g., the iron–carbon system)
10
• The understanding of phase diagrams for alloy systems is extremely important because there is a strong correlation between microstructure and mechanical properties.
• The development of microstructure of an alloy is related to the characteristics of its phase diagram.
• In addition, phase diagrams provide valuable information about melting, casting, and crystallization.
Phase Diagrams
11
• The physical and mechanical properties of a material depend on the microstructure.
• In metal alloys, microstructure is characterized by the number of phases present, their proportions, and the manner in which they are distributed.
Phase Diagrams
• The microstructure of an alloy depends on alloying elements present, their concentrations, and the heat treatment of the alloy
12
Phase Diagrams • Indicate phases as a function of T, C, and P.
• For this course: - binary systems: just two components.
- independent variables: T and C (P = 1 atm is almost always used).
Phase
Diagram
for Cu-Ni
system
Fig. 11.3(a), Callister & Rethwisch 9e.
• 2 phases:
L (liquid) α (FCC solid solution)
• 3 different phase fields:
L
L + α
α
wt% Ni20 40 60 80 1000 1000
1100
1200
1300
1400
1500
1600 T(°C)
L (liquid)
α
(FCC solid solution)
13
Cu-Ni
phase
diagram
Isomorphous Binary Phase Diagram
• Phase diagram: Cu-Ni system.
• System is:
Fig. 11.3(a), Callister & Rethwisch 9e
-- binary i.e., 2 components:
Cu and Ni.
-- isomorphous i.e., complete solubility of one
component in another;
α phase field extends from
0 to 100 wt% Ni. wt% Ni20 40 60 80 1000 1000
1100
1200
1300
1400
1500
1600 T(°C)
L (liquid)
α
(FCC solid solution)
wt% Ni20 40 60 80 1000 1000
1100
1200
1300
1400
1500
1600 T(°C)
L (liquid)
α (FCC solid
solution)
Cu-Ni
phase
diagram
14
Phase Diagrams: Determination of phase(s) present
• Rule 1: If we know T and Co, then we know: -- which phase(s) is (are) present.
• Examples:
A(1100°C, 60 wt% Ni): 1 phase: α
B(1250°C, 35 wt% Ni):
2 phases: L + α
B (1 2 5 0 ºC ,3 5 )
A(1100ºC,60)
Fig. 11.3(a), Callister & Rethwisch 9e
15
wt% Ni
20
1200
1300
T(°C)
L (liquid)
α
(solid)
30 40 50
Cu-Ni
system
Phase Diagrams: Determination of phase compositions
• Rule 2: If we know T and C0, then we can determine: -- the composition of each phase.
• Examples:
TA A
35 C0
32 CL
At TA = 1320°C:
Only Liquid (L) present CL = C0 ( = 35 wt% Ni)
At TB = 1250°C:
Both α and L present
CL = Cliquidus ( = 32 wt% Ni)
Cα = Csolidus ( = 43 wt% Ni)
At TD = 1190°C:
Only Solid (α) present
Cα = C0 ( = 35 wt% Ni)
Consider C0 = 35 wt% Ni
D TD
tie line
4 Cα 3
Fig. 11.3(b), Callister & Rethwisch 9e.
B TB
16
• Rule 3: If we know T and C0, then can determine: -- the weight fraction of each phase.
• Examples:
At TA : Only Liquid (L) present
WL = 1.00, Wa = 0
At TD : Only Solid (α ) present
WL = 0, Wα = 1.00
Phase Diagrams: Determination of phase weight fractions
wt% Ni
20
1200
1300
T(°C)
L (liquid)
α
(solid)
30 40 50
Cu-Ni
system
TA A
35 C0
32 CL
B TB
D TD
tie line
4 Cα 3
R S
At TB : Both α and L present
73.0 3243
3543 =
-
- =
= 0.27
WL = S
R +S
Wα = R
R +S
Consider C0 = 35 wt% Ni
Fig. 11.3(b), Callister & Rethwisch 9e.
17
• Tie line – connects the phases in equilibrium with each other – also sometimes called an isotherm
The Lever Rule
What fraction of each phase?
Think of the tie line as a lever
(teeter-totter)
ML Mα
R S
wt% Ni
20
1200
1300
T(°C)
L (liquid)
α
(solid)
30 40 50
B TB
tie line
C0 CL Cα
SR
18
• Phase diagram: Cu-Ni system.
Fig. 11.4, Callister &
Rethwisch 9e.
• Consider
microstuctural
changes that
accompany the
cooling of a
C0 = 35 wt% Ni alloy
Example: Cooling of a Cu-Ni Alloy
wt% Ni 20
1200
1300
30 40 50 110 0
L (liquid)
α
(solid)
T(°C)
A
35 C0
L: 35 wt%Ni
Cu-Ni
system
4635
43 32
α: 43 wt% Ni
L: 32 wt% Ni
Bα: 46 wt% Ni L: 35 wt% Ni
C
E L: 24 wt% Ni
α: 36 wt% Ni
24 36 D
α: 35 wt% Ni
19
Mechanical Properties: Cu-Ni System
• Effect of solid solution strengthening on:
-- Tensile strength (TS) -- Ductility (%EL)
Fig. 11.5(a), Callister & Rethwisch 9e.
T e
n s ile
S tr
e n
g th
( M
P a
)
Composition, wt% Ni Cu Ni 0 20 40 60 80 100
200
300
400
TS for pure Ni
TS for pure Cu
E lo
n g
a ti o
n (
% E
L )
Composition, wt% Ni Cu Ni 0 20 40 60 80 100
20
30
40
50
60
%EL for pure Ni
%EL for pure Cu
Fig. 11.5(b), Callister & Rethwisch 9e.
20
Eutectic Systems
Cu-Ag
system
L (liquid)
α L + α L+ββ
α + β
C, wt% Ag 20 40 60 80 1000
200
1200 T(°C)
400
600
800
1000
CE
TE 8.0 71.9 91.2 779°C
• Eutectic reaction
L α + β cooling
heating
• Eutectic means “easily melted”.
• Upon cooling, a liquid phase is transformed into the two solid phases at the temperature TE; the opposite reaction occurs upon heating.
21
2 components has a special composition
with a min. melting T.
Fig. 11.6, Callister & Rethwisch 9e
Binary - Eutectic Systems
• 3 single phase regions
(L, α, β)
• Limited solubility:
α: mostly Cu
β: mostly Ag
• TE : No liquid below TE
: Composition at
temperature TE
• CE
Ex.: Cu-Ag system
Cu-Ag
system
L (liquid)
α L + α L+ββ
α + β
C, wt% Ag 20 40 60 80 1000
200
1200 T(°C)
400
600
800
1000
CE
TE 8.0 71.9 91.2 779°C
cooling
heating
• Eutectic reaction
L(CE) α(CαE) + β(CβE)
22
• For a 40 wt% Sn-60 wt% Pb alloy at 150°C, determine: -- the phases present
Ex. 1: Pb-Sn Eutectic System
Answer: α + β
-- the phase compositions
-- the relative amount of each phase L+α
L+β
α + β
200
T(°C)
18.3
C, wt% Sn
20 60 80 1000
300
100
L (liquid)
α 183°C
61.9 97.8 β
Pb-Sn
system
150
40 C0
11 Cα
99 Cβ
SR
Answer: Cα = 11 wt% Sn Cβ = 99 wt% Sn
Wα = Cβ - C0 Cβ - Cα
= 99 - 40
99 - 11 =
59
88 = 0.67
S R+S
=
Wβ = C0 - Cα Cβ - Cα
= R
R+S
= 29
88 = 0.33=
40 - 11
99 - 11
Answer:
Fig. 11.7, Callister & Rethwisch 9e.
23
Answer: Cα = 17 wt% Sn
-- the phase compositions
• For a 40 wt% Sn-60 wt% Pb alloy at 220°C, determine: -- the phases present:
Ex. 2: Pb-Sn Eutectic System
-- the relative amount
of each phase
Wα = CL - C0
CL - Cα =
46 - 40
46 - 17
= 6
29 = 0.21
WL = C0 - Cα
CL - Cα =
23
29 = 0.79
L+β
α + β
200
T(°C)
C, wt% Sn
20 60 80 1000
300
100
L (liquid)
α β
L+ α
183°C
Pb-Sn system
40 C0
46 CL
17 Cα
220 SR
Answer: α + L
CL = 46 wt% Sn
Answer:
Fig. 11.7, Callister & Rethwisch 9e.
24
• For alloys for which
C0 < 2 wt% Sn
• Result: at room temperature -- polycrystalline with grains of
α phase having
composition C0
Microstructural Developments
in Eutectic Systems I
0
L+ α 200
T(°C)
C, wt% Sn 10
2
20 C0
300
100
L
α
30
α +β
400
(room T solubility limit)
TE (Pb-Sn System)
α L
L: C0 wt% Sn
α: C0 wt% Sn
Fig. 11.10, Callister &
Rethwisch 9e.
25
• For alloys for which
2 wt% Sn < C0 < 18.3 wt% Sn
• Result:
at temperatures in α + β range
-- polycrystalline with α grains
and small β-phase particles
Fig. 11.11, Callister &
Rethwisch 9e.
Microstructural Developments
in Eutectic Systems II
Pb-Sn system
L + α
200
T(°C)
C, wt% Sn 10
18.3
200 C0
300
100
L
α
30
α + β
400
(sol. limit at TE)
TE
2 (sol. limit at Troom)
L
α
L: C0 wt% Sn
α β
α: C0 wt% Sn
26
• For alloy of composition C0 = CE • Result: Eutectic microstructure (lamellar structure)
-- alternating layers (lamellae) of α and β phases.
Fig. 11.12, Callister &
Rethwisch 9e.
Microstructural Developments
in Eutectic Systems III
Fig. 11.13, Callister & Rethwisch 9e.
160μm
Micrograph of Pb-Sn eutectic microstructure
Pb-Sn
system
L+β
α + β
200
T(°C)
C, wt% Sn
20 60 80 1000
300
100
L
α β
L+ α
183°C
40
TE
18.3
α: 18.3 wt%Sn
97.8
β: 97.8 wt% Sn
CE 61.9
L: C0 wt% Sn
27
Lamellar Eutectic Structure
Figs. 11.13 & 11.14,
Callister & Rethwisch 9e. a eutectic micro-constituent
Photomicrograph showing the microstructure of a lead–tin alloy of eutectic composition.
This microstructure consists of alternating layers of a lead- rich α-phase solid solution, and a tin-rich β-phase solid solution.
28
• For alloys for which 18.3 wt% Sn < C0 < 61.9 wt% Sn
• Result: α phase particles and a eutectic micro-constituent
Microstructural Developments
in Eutectic Systems IV
WL = (1-Wα) = 0.50
Cα = 18.3 wt% Sn
CL = 61.9 wt% Sn S
R + S Wα = = 0.50
• Just above TE :
• Just below TE :
Cα = 18.3 wt% Sn
Cβ = 97.8 wt% Sn S
R + S Wα = = 0.73
Wβ = 0.2718.3 61.9
SR
97.8
SR
primary α
eutectic α
eutectic β
Fig. 11.15
Pb-Sn
system
L+β200
T(°C)
C, wt% Sn
20 60 80 1000
300
100
L
α β
L+α
40
α+ β
TE
L: C0 wt% Sn Lα L
α
29
L+α L+β
α + β
200
C, wt% Sn20 60 80 1000
300
100
L
α β TE
40
(Pb-Sn System)
Hypoeutectic & Hypereutectic
Fig. 11.7, Callister & Rethwisch
160 μm
eutectic micro-constituent Fig. 11.13
hypereutectic: (illustration only)
β
β β
β β
β
Fig. 11.16 175 μm
α
α
α
α α
α
hypoeutectic: C0 = 50 wt% Sn
Fig. 11.16
T(°C)
61.9
eutectic
eutectic: C0 =61.9wt% Sn
30
Intermetallic Compounds
• For some metal–metal systems, discrete compounds rather than solid solutions may be found on the phase diagram, and these compounds have distinct chemical formulas.
• For the magnesium–lead phase system, the compound Mg2Pb has a composition of 81 wt% Pb.
• It is represented as a vertical line on the diagram, rather than an area.
31
Intermetallic Compounds
Intermetallic compound exists as a line on the diagram - not an area –
because composition of a compound is a fixed value).
Mg2Pb Fig. 11.19, Callister
& Rethwisch 9e.
The magnesium–lead phase diagram
32
• Eutectoid – one solid phase transforms to two other
solid phases
S2 S1+S3
γ α + Fe3C (For Fe-C, 727°C, 0.76 wt% C)
intermetallic compound - cementite
cool
heat
Eutectic, Eutectoid, & Peritectic • Eutectic - liquid transforms to two solid phases
L α + β (For Pb-Sn, 183°C, 61.9 wt% Sn) cool
heat
cool
heat
• Peritectic - liquid and one solid phase transform to a second
solid phase
S1 + L S2
δ + L γ (For Fe-C, 1493°C, 0.16 wt% C)
33
Eutectoid & Peritectic
Cu-Zn Phase diagram
Fig. 11.20, Callister & Rethwisch 9e.
Eutectoid transformation δ γ + e
Peritectic transformation γ + L δ
The Iron – Carbon System
• Of all binary alloy systems, the one that is possibly the most important is that for iron and carbon.
• Both steels and cast irons are essentially iron– carbon alloys.
• Steels are primary structural materials in every technologically advanced culture.
The Iron – Carbon System
The Iron – Carbon System • Pure iron, upon heating, experiences two changes in
crystal structure before it melts.
• At room temperature the stable form, called α-ferrite, has a BCC crystal structure.
• α-ferrite transforms to FCC γ-austenite, at 912°C.
• This austenite persists to 1394°C, at which temperature the FCC austenite reverts back to a BCC phase known as δ-ferrite, which finally melts at 1538°C.
The Iron – Carbon System
• Cementite (Fe3C): iron carbide
• At 6.70 wt% C; the intermediate compound iron carbide, or cementite (Fe3C), is formed.
• Cementite (Fe3C) forms when the solubility limit of carbon in α-ferrite or γ-austenite is exceeded.
• Mechanically, cementite is very hard and brittle; the strength of some steels is greatly enhanced by its presence.
The Iron – Carbon System
• Eutectic point exists for the iron–iron carbide system, at 4.30 wt% C and 1147°C . This eutectic reaction:
• Eutectoid point exists at a composition of 0.76 wt%C and a temperature of 727°C. This eutectoid reaction:
The Iron – Carbon System
• Pure iron contains less than 0.008 wt% C.
• Iron–carbon alloys that contain between 0.008 and 2.14 wt% C are classified as steels.
• In most steels the microstructure consists of both α and Fe3C phases.
• Cast irons are classified as ferrous alloys that contain between 2.14 and 6.70 wt% C.
40
Iron-Carbon (Fe-C) Phase Diagram • 2 important
points
- Eutectoid (B): γ α +Fe3C
- Eutectic (A): L γ +Fe3C
Fig. 11.23
F e
3 C
( c e
m e
n ti te
)
1600
1400
1200
1000
800
600
400 0 1 2 3 4 5 6 6.7
L
γ
(austenite)
γ+L
γ+Fe3C
α+Fe3C
δ
(Fe) C, wt% C
1148°C
T(°C)
α 727°C = Teutectoid
4.30 Result: Pearlite = alternating layers of α and Fe3C phases
120 μm
Fig. 11.26
0.76
B
γ γ
γγ
A L+Fe3C
Fe3C (cementite-hard)
α (ferrite-soft)
41
F e
3 C
( c e
m e
n ti te
)
1600
1400
1200
1000
800
600
400 0 1 2 3 4 5 6 6.7
L
γ
(austenite)
γ+L
γ + Fe3C
α + Fe3C
L+Fe3C
δ
(Fe) C, wt% C
1148°C
T(°C)
a 727°C
(Fe-C System)
C0
0 .7
6
Hypoeutectoid Steel
Figs. 11.23 and 11.28
Fig. 11.29
proeutectoid ferritepearlite
100 μm Hypoeutectoid steel
α
pearlite
γ γ γ
γ α
α α
γγ γ γ
γ γ
γγ
42
F e
3 C
( c e
m e
n ti te
)
1600
1400
1200
1000
800
600
400 0 1 2 3 4 5 6 6.7
L
γ
(austenite)
γ+L
γ + Fe3C
α + Fe3C
L+Fe3C
δ
(Fe) C, wt% C
1148°C
T(°C)
α 727°C
(Fe-C System)
C0
0 .7
6
Hypoeutectoid Steel
γ
γ γ
γ α
α α
sr Wα = s/(r + s)
Wγ =(1 - Wα) R S
α
pearlite
Wpearlite = Wγ
Wα’= S/(R + S)
W =(1 – Wα’)Fe3C
Fig. 11.29
proeutectoid ferritepearlite
100 μm Hypoeutectoidsteel
Figs. 11.23 and 11.28
F e
3 C
( c e
m e
n ti te
)
1600
1400
1200
1000
800
600
400 0 1 2 3 4 5 6 6.7
L
γ
(austenite)
γ+L
γ + Fe3C
α + Fe3C
L+Fe3C
δ
(Fe) C, wt% C
1148°C
T(°C)
α 727°C
(Fe-C System)
C0
43
Hypereutectoid Steel
0 .7
6 C0
Fe3C
γγ
γ γ
γγ γ γ
γγ γ γ
Fig. 11.32
proeutectoid Fe3C
60 μm Hypereutectoid steel
pearlite
pearlite
Figs. 11.23 and 11.31
F e
3 C
( c e
m e
n ti te
)
1600
1400
1200
1000
800
600
400 0 1 2 3 4 5 6 6.7
L
γ
(austenite)
γ+L
γ + Fe3C
α + Fe3C
L+Fe3C
δ
(Fe) C, wt% C
1148°C
T(°C)
α 727°C
(Fe-C System
C0
Fig. 11.32
proeutectoid Fe3C
60 μm Hypereutectoid steel
pearlite
Figs. 11.23 and 11.31
44
0 .7
6 C0
pearlite
Fe3C
γγ
γ γ
xv
V X
Wpearlite = Wγ
Wα = X/(V + X)
W =(1 - Wα)Fe3C’
W =(1-Wγ)
Wγ =x/(v + x)
Fe3C
Hypereutectoid Steel
45
Example 11.4 on page 372
For a 99.65 wt% Fe–0.35 wt% C alloy at a
temperature just below the eutectoid,
determine the following:
a)The fractions of total ferrite and cementite
phases?
b) The fractions of the proeutectoid ferrite and
pearlite?
c)The fraction of eutectoid ferrite?
Example 11.4 on page 372
Figure 11.30
The fraction of pearlite, Wp, may be determined according to
The fraction of proeutectoid α, Wpro_α , is computed as follows
Example 11.4 on page 372 (a) The fractions of total ferrite and cementite phases? Application of the lever rule expressions employing a tie line that extends all the way across the α and Fe3C phase field. Thus, C0 is 0.35 wt% C:
(b) The fractions of proeutectoid ferrite and pearlite? Using the lever rule and a tie line that extends only to the eutectoid composition:
Example 11.4 on page 372 (c) The fraction of eutectoid ferrite?
All ferrite is either as proeutectoid or eutectoid (in the pearlite). Therefore, the sum of these two ferrite fractions will equal the fraction of total ferrite, where Wαe denotes the fraction of the total alloy that is eutectoid ferrite:
49
Example Problem 1
For a 99.6 wt% Fe - 0.40 wt% C steel at a
temperature just below the eutectoid,
determine the following:
a)The compositions of Fe3C and ferrite (α).
b)The amount of cementite (in grams) that forms
in 100 g of steel.
c)The amounts of pearlite and proeutectoid ferrite
(α) in the 100 g.
50
Solution to Example Problem
b) Using the lever rule with
the tie line shown
a) Using the RS tie line just below the eutectoid
Cα = 0.022 wt% C
CFe3C = 6.70 wt% C
F e
3 C
( c e
m e
n ti te
)
1600
1400
1200
1000
800
600
400 0 1 2 3 4 5 6 6.7
L
γ (austenite)
γ+L
γ + Fe3C
α + Fe3C
L+Fe3C
δ
C, wt% C
1148°C
T(°C)
727°C
C0
R S
CFe C3Cα
Amount of Fe3C in 100 g
= (100 g)WFe3C
= (100 g)(0.057) = 5.7 g Fig. 11.23, Callister & Rethwisch 9e.
99.6 wt% Fe - 0.40 wt% C steel
F e
3 C
( c e
m e
n ti te
)
1600
1400
1200
1000
800
600
400 0 1 2 3 4 5 6 6.7
L
γ (austenite)
γ+L
γ + Fe3C
α + Fe3C
L+Fe3C
δ
C, wt% C
1148°C
T(°C)
727°°C
51
Solution to Example Problem (cont.) c) Using the VX tie line just above the eutectoid and
realizing that
C0 = 0.40 wt% C
Cα = 0.022 wt% C
Cpearlite = Cγ = 0.76 wt% C
C0
V X
C
γ
C
α
Amount of pearlite in 100 g
= (100 g)Wpearlite
= (100 g)(0.512) = 51.2 g Fig. 11.23, Callister & Rethwisch 9e.
The amounts of pearlite and proeutectoid ferrite (α) in the 100 g?
F e
3 C
( c e
m e
n ti te
)
1600
1400
1200
1000
800
600
400 0 1 2 3 4 5 6 6.7
L
γ (austenite)
γ+L
γ + Fe3C
α + Fe3C
L+Fe3C
δ
C, wt% C
1148°C
T(°C)
727°°C
52
Solution to Example Problem (cont.) c) Using the VX tie line just above the eutectoid and
realizing that
C0 = 0.40 wt% C
Cα = 0.022 wt% C
Cpearlite = Cγ = 0.76 wt% C
C0
V X
C
γ
C
α
Amount of proeutectoid ferrite in 100 g
= (100 g)Wpro_α
= (100 g)(0.488) = 48.8 g Fig. 11.23, Callister & Rethwisch 9e.
The amounts of pearlite and proeutectoid ferrite (α) in the 100 g?
𝑊𝑝𝑟𝑜_𝛼 = 𝑋
𝑉 + 𝑋 =
0.76 − 0.4
0.76 − 0.022
𝑊𝑝𝑟𝑜_𝛼 = 0.488
53
• Phase diagrams are useful tools to determine:
-- the number and types of phases present,
-- the composition of each phase,
-- and the weight fraction of each phase
given the temperature and composition of the system.
• The microstructure of an alloy depends on
-- its composition, and
-- whether or not cooling rate allows for maintenance of
equilibrium.
• Important phase diagram phase transformations include
eutectic, eutectoid, and peritectic.
Summary