Chapter 10

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T-T-T diagram (isothermal transformation diagram). • Eutectoid temperature ... Chapter 10. 6. Iron-Carbon Isothermal Transformation. • Thermal treatment curve  ...
Chapter 10 Phase Transformations in Metals

Materials Science

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The Kinetics of Solid-State Reactions • Obstacles in solid-state transformation – Diffusion – Energy increase

• Phase transformation stages – Nucleation: at grain boundaries – growth

• Kinetics (time-dependent) y = 1 – exp(-ktn) T = constant

• Rate of transformation • Characterization of transformation Materials Science

r=

1

S-Curve

t0.5

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Temperature Dependence

r = Ae − Q / RT

Percent recrystallization for pure copper

Materials Science

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Iron-Carbon Isothermal Transformation • Pearlite

γ (0.76wt %C ) ⇔ α (0.022wt %C ) + Fe3C (6.7 wt %C )

Materials Science

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Iron-Carbon Isothermal Transformation •

T-T-T diagram (isothermal transformation diagram) • Eutectoid temperature • Supercooling • Phase regions



Transformation rate • Pearlite nucleation



This curve only valid for eutectoid composition

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Iron-Carbon Isothermal Transformation • Thermal treatment curve

Materials Science

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Iron-Carbon Isothermal Transformation • Coarse pearlite

Materials Science

• Fine pearlite

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Iron-Carbon Isothermal Transformation

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Iron-Carbon Isothermal Transformation • Coarse pearlite

Materials Science

• Fine pearlite

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Iron-Carbon Isothermal Transformation • Bainite

Upper bainite

Pearlite vs. Bainite

(300 ~ 540 oC)

•Competitive

Lower bainite (200 ~ 300 oC)

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Iron-Carbon Isothermal Transformation • Spheroidite – From pearlite or bainite – Heated about 700 oC for 18 ~24 hours – Driving force • Reduction of α - Fe3C phase boundary area

Materials Science

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Iron-Carbon Isothermal Transformation • Martensite – Nonequilibrium singlephase – From diffusionless transformation of austenite – Rapid quenching – Occurs instantaneously – Time-independent – Competitive with pearlite and bainite – Body-centered tetragonal (BCT) – Supersaturated solid solution

Materials Science

Lath

Lenticular

(less than 0.6 wt% C)

(more than 0.6 wt% C)

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Iron-Carbon Isothermal Transformation

Materials Science

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Iron-Carbon Isothermal Transformation 1.

2.

3.

Rapidly cool to 350 oC, hold for 104 s, and quench to room temperature. Rapidly coo to 250 oC, hold for 100 s, and quench to room temperature. Rapidly cool to 650 oC, hold for 20 s, rapidly cool to 400 oC, hold for 103 s, and quench to room temperature.

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Iron-Carbon Isothermal Transformation

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Continuous Cooling Transformation Diagram Shift to longer time and lower temperature

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Continuous Cooling Transformation Diagram

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Critical Quenching Rate •

The minimum rate of quenching to generate 100% martensite.

Materials Science

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Mechanical Behavior of Pearlite • Cementite is very hard and brittle.

• Fine pearlite is harder and stronger than coarse pearlite. Materials Science

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Mechanical Behavior of Spheroidite • •

Less boundary area per unit volume in spheroidite Spheroidized steels are extremely ductile.

Materials Science

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Mechanical Behavior of Bainite •

Bainite is stronger and harder than pearlite.

Upper bainite

Pearlite vs. Bainite

(300 ~ 540 oC)

•Competitive

Lower bainite (200 ~ 300 oC)

Materials Science

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Mechanical Behavior of Martensite • • •

Martensite is the hardest and strongest and most brittle (negligible ductility). Related to interstitial carbon atoms. Volume increase during phase transformation.

Materials Science

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Tempered Martensite •

Heat treatment martensite between 250 ~ 650 oC. • Internal stress is relieved. • Ductility and toughness are enhanced. martensite (BCT, single phase) Æ tempered martensite (ferrite + cementite)

9300 X Materials Science

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Temperature and Time Influence on Tempering

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Iron-Carbon Transformation

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Iron-Carbon Transformation

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Mechanical Behavior

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Mechanical Behavior

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Mechanical Behavior

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Mechanical Behavior

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