ENGINEERING MATERIALS — QUICK REVISION
BASIC CRYSTALLOGRAPHY
- Crystal: Atoms arranged in a regular, repeating pattern.
- Unit Cell: Smallest repeating unit of a crystal.
- Coordination Number: Number of nearest-neighbour atoms.
- APF: Atomic Packing Factor = Volume occupied by atoms / Volume of unit cell.
- Allotropy: Same element existing in different crystal structures.
| Structure | Atoms/Unit Cell | Coordination No. | APF | Examples |
|---|---|---|---|---|
| SC | 1 | 6 | 0.52 | Polonium |
| BCC | 2 | 8 | 0.68 | α-Fe, Cr, W |
| FCC | 4 | 12 | 0.74 | Al, Cu, Ni, Ag |
| HCP | 6 | 12 | 0.74 | Mg, Zn, Ti |
- Most closely packed: FCC & HCP.
- BCC: Generally stronger and less ductile than FCC.
- FCC: High ductility and good formability.
- α-Fe: BCC.
- γ-Fe: FCC.
- δ-Fe: BCC.
Crystal Defects
- Point defects: Vacancy, interstitial, substitutional.
- Line defect: Dislocation — edge and screw.
- Surface defects: Grain boundary, twin boundary.
- Volume defects: Voids, cracks, inclusions.
ALLOYS & PHASE DIAGRAMS
- Alloy: Mixture of two or more elements, with at least one being a metal.
- Substitutional alloy: Solute atoms replace solvent atoms. Example: Brass = Cu + Zn.
- Interstitial alloy: Small atoms occupy spaces between larger atoms. Example: Steel = Fe + C.
Important Phase-Diagram Terms
| Term | Meaning |
|---|---|
| Liquidus | Above it → completely liquid |
| Solidus | Below it → completely solid |
| Solvus | Separates solid solution from two-solid-phase region |
| Eutectic | Liquid → Solid 1 + Solid 2 |
| Eutectoid | Solid 1 → Solid 2 + Solid 3 |
Gibbs Phase Rule
\[ F = C – P + 2 \]
For condensed systems at constant pressure:
\[ F = C – P + 1 \]
- F: Degrees of freedom
- C: Components
- P: Phases
Lever Rule
- Fraction of α = \( \dfrac{C_\beta – C_0}{C_\beta – C_\alpha} \)
- Fraction of β = \( \dfrac{C_0 – C_\alpha}{C_\beta – C_\alpha} \)
IRON–CARBON PHASE DIAGRAM
| Phase | Important Features |
|---|---|
| Ferrite (α) | BCC; soft; very low carbon solubility |
| Austenite (γ) | FCC; higher carbon solubility |
| Cementite (Fe₃C) | Very hard and brittle |
| Pearlite | Ferrite + Cementite |
| Ledeburite | Austenite + Cementite initially |
| δ-Ferrite | BCC; high-temperature phase |
- Eutectoid composition: ≈ 0.76–0.77% C.
- Eutectoid temperature: ≈ 727°C.
- Eutectoid reaction: Austenite → Ferrite + Cementite.
| Material | Approx. Carbon Content |
|---|---|
| Low-carbon steel | 0.05–0.30% |
| Medium-carbon steel | 0.30–0.60% |
| High-carbon steel | 0.60–1.0/1.2% |
| Cast iron | > ~2.1% |
HEAT TREATMENT
Heat Treatment = Controlled heating + holding + cooling to modify material properties.
| Process | Main Purpose | Cooling |
|---|---|---|
| Annealing | Softening, ductility, stress relief | Very slow |
| Normalizing | Grain refinement, strength improvement | Air |
| Hardening | Increase hardness & strength | Rapid quenching |
| Tempering | Reduce brittleness; improve toughness | Controlled cooling |
| Spheroidizing | Improve machinability | Slow/controlled |
| Case Hardening | Hard surface + tough core | Surface treatment |
- Annealing: Produces soft and ductile material; reduces internal stresses.
- Normalizing: Air cooling; finer grains than full annealing.
- Hardening: Austenitize + quench → forms martensite.
- Tempering: Reheating hardened steel below critical temperature → brittleness ↓ and toughness ↑.
- Quenching severity: Air < Oil < Water < Brine.
TTT & CCT
- TTT: Time–Temperature–Transformation; mainly constant-temperature transformation.
- CCT: Continuous Cooling Transformation; transformation during continuous cooling.
- Martensite: Very hard; forms by rapid quenching; diffusionless transformation.
FERROUS METALS
Ferrous metals: Metals containing iron as the principal constituent.
Cast Iron
| Type | Main Feature |
|---|---|
| Grey Cast Iron | Graphite flakes; good machinability |
| White Cast Iron | Cementite; very hard and brittle |
| Malleable Cast Iron | Better ductility |
| Ductile/Nodular Iron | Spherical graphite; high toughness |
Steel
- Mild steel: Low carbon; ductile and weldable.
- Medium-carbon steel: Good strength + toughness.
- High-carbon steel: High hardness and wear resistance.
- Stainless steel: Contains at least about 10.5% Cr; corrosion resistant.
- Tool steel: High hardness and wear resistance.
Important Alloying Elements
| Element | Main Effect |
|---|---|
| Cr | Corrosion & wear resistance |
| Ni | Toughness & corrosion resistance |
| Mn | Strength; combines with sulfur |
| Si | Strength; deoxidizer |
| Mo | High-temperature strength |
| W | Hot hardness |
| V | Grain refinement & wear resistance |
| Co | Hot hardness |
| C | Hardness/strength ↑; ductility ↓ |
NON-FERROUS METALS
| Metal/Alloy | Key Facts |
|---|---|
| Aluminium | Low density; corrosion resistant; good electrical conductivity |
| Copper | Excellent electrical & thermal conductivity; highly ductile |
| Brass | Cu + Zn; good corrosion resistance & machinability |
| Bronze | Generally Cu + Sn; good wear & corrosion resistance |
| Magnesium | Very low density; lightweight applications |
| Titanium | High strength-to-weight ratio; excellent corrosion resistance |
| Nickel | High corrosion & heat resistance |
NON-METALLIC MATERIALS
Ceramics
- Inorganic, non-metallic materials.
- High hardness and high melting temperature.
- Excellent wear and corrosion resistance.
- Generally brittle.
- Examples: Glass, cement, alumina, porcelain.
Polymers
| Type | Features | Examples |
|---|---|---|
| Thermoplastics | Soften on heating; can be repeatedly reshaped | PVC, PE, PP, Nylon |
| Thermosetting | Once set, cannot be remelted easily | Bakelite, Epoxy, Melamine |
| Elastomers | Large elastic deformation | Rubber, Neoprene, Silicone |
Composites
- Composite = Matrix + Reinforcement.
- GFRP: Glass Fibre Reinforced Polymer.
- CFRP: Carbon Fibre Reinforced Polymer.
- MMC: Metal Matrix Composite.
- Concrete: Cement matrix + aggregates.
BASICS OF NANO-MATERIALS
- Nanomaterials: Materials having at least one characteristic dimension approximately 1–100 nm.
- At nanoscale, surface area/volume ratio increases significantly.
- Mechanical, electrical, optical and chemical properties can differ from bulk materials.
| Type | Examples |
|---|---|
| 0D | Nanoparticles |
| 1D | Nanowires, Nanotubes |
| 2D | Graphene, Thin films |
| 3D | Nanocomposites |
- CNT: Carbon Nanotube; very high strength and excellent electrical properties.
- Graphene: One-atom-thick carbon layer; very high strength and electrical conductivity.
- Nanoparticles: Used in coatings, catalysts, electronics and biomedical applications.
MECHANICAL PROPERTIES
| Property | Meaning |
|---|---|
| Strength | Ability to resist applied load |
| Hardness | Resistance to indentation, scratching or wear |
| Toughness | Ability to absorb energy before fracture |
| Ductility | Ability to undergo plastic deformation in tension |
| Malleability | Ability to deform under compression |
| Elasticity | Ability to regain original shape |
| Plasticity | Ability to undergo permanent deformation |
| Brittleness | Fracture with little plastic deformation |
| Stiffness | Resistance to elastic deformation |
| Resilience | Energy absorbed within elastic limit |
| Creep | Time-dependent deformation under constant load/stress |
| Fatigue | Failure under repeated/cyclic loading |
| Wear | Progressive material loss from surface |
Important Formulae
- Stress = \( \dfrac{\text{Force}}{\text{Area}} \)
- Strain = \( \dfrac{\text{Change in length}}{\text{Original length}} \)
- Young’s Modulus (E) = \( \dfrac{\text{Stress}}{\text{Strain}} \)
- % Elongation = \( \dfrac{\text{Final length} – \text{Original length}}{\text{Original length}} \times 100 \)
- % Reduction in Area = \( \dfrac{\text{Original area} – \text{Final area}}{\text{Original area}} \times 100 \)
Stress–Strain Curve
- Important points: Proportional limit → Elastic limit → Yield point → Ultimate tensile strength → Fracture.
- Slope of elastic region = Young’s modulus.
MECHANICAL TESTING
Destructive Tests
| Test | Main Purpose |
|---|---|
| Tensile Test | Yield strength, UTS, elongation, reduction in area, Young’s modulus |
| Compression Test | Behaviour under compressive load |
| Impact Test | Toughness under sudden loading |
| Fatigue Test | Resistance to cyclic loading |
| Creep Test | Time-dependent deformation at constant load/stress |
- Charpy Test: Specimen supported horizontally.
- Izod Test: Specimen held vertically as a cantilever.
Hardness Tests
| Test | Principle/Indenter |
|---|---|
| Brinell | Hardened steel/tungsten carbide ball |
| Rockwell | Depth of indentation |
| Vickers | Diamond pyramid |
| Shore | Rebound principle |
- Brinell → Ball
- Vickers → Diamond
- Rockwell → Depth
NON-DESTRUCTIVE TESTING (NDT)
NDT: Testing without significantly damaging the component.
| Method | Main Use |
|---|---|
| Visual Testing (VT) | Visible surface defects |
| Dye Penetrant (DPT) | Surface-breaking defects |
| Magnetic Particle (MPT) | Surface/near-surface defects in ferromagnetic materials |
| Ultrasonic (UT) | Internal defects using high-frequency sound |
| Radiographic (RT) | Internal defects using X-rays/Gamma rays |
Quick Memory: DPT → Surface cracks | MPT → Ferromagnetic | UT → Sound waves | RT → X-ray/Gamma rays
CORROSION
Corrosion: Gradual deterioration of a material due to chemical/electrochemical reaction with its environment.
Types of Corrosion
- Dry Corrosion: Direct chemical reaction, usually without liquid electrolyte.
- Wet/Electrochemical Corrosion: Occurs in presence of an electrolyte.
- Uniform Corrosion
- Galvanic Corrosion
- Pitting Corrosion
- Crevice Corrosion
- Intergranular Corrosion
- Stress Corrosion Cracking
- Erosion Corrosion
Galvanic Corrosion
- Occurs when dissimilar metals are electrically connected in an electrolyte.
- Anode → corrodes.
- Cathode → protected relative to anode.
Rusting of Iron
- \( \text{Fe} \rightarrow \text{Fe}^{2+} + 2e^- \)
- Oxygen and water participate in subsequent reactions.
- Rust mainly consists of hydrated iron oxides.
CORROSION PREVENTION & CONTROL
| Method | Examples/Principle |
|---|---|
| Protective Coating | Painting, oiling, greasing, plastic coating |
| Metallic Coating | Galvanizing, tinning, electroplating |
| Cathodic Protection | Make the structure act as cathode |
| Inhibitors | Chemicals that reduce corrosion rate |
| Material Selection | Use corrosion-resistant materials/alloys |
| Design Control | Avoid crevices, water accumulation and dissimilar-metal contact |
Cathodic Protection
- Sacrificial Anode: More active metal such as Zn, Mg or Al is connected to the structure; sacrificial metal corrodes.
- Impressed Current: External DC current keeps the protected structure cathodic.
- Galvanizing → Zinc coating
- Tinning → Tin coating
- Cathodic protection → Structure becomes cathode
- Sacrificial anode → Zn/Mg/Al
⚡ ONE-MINUTE REVISION
- BCC: α-Fe, Cr, W → CN 8 → APF 0.68
- FCC: Al, Cu, Ni → CN 12 → APF 0.74
- HCP: Mg, Zn, Ti → CN 12 → APF 0.74
- SC: CN 6 → APF 0.52
- Pearlite = Ferrite + Cementite
- Cementite = Fe₃C
- Eutectoid: ≈0.76–0.77% C at ≈727°C
- Annealing → Softening
- Normalizing → Grain refinement
- Hardening → Hardness ↑
- Tempering → Brittleness ↓, Toughness ↑
- Martensite → Very hard
- Brass = Cu + Zn
- Bronze = Cu + Sn
- Stainless steel → Cr ≥ ~10.5%
- Thermoplastic → Repeatedly softened
- Thermoset → Cannot be remelted easily
- Nanomaterials → ~1–100 nm
- Ductility → Tensile deformation
- Malleability → Compressive deformation
- Toughness → Energy absorption before fracture
- Hardness → Indentation/wear resistance
- Fatigue → Cyclic loading
- Creep → Time-dependent deformation
- DPT → Surface defects
- MPT → Ferromagnetic materials
- UT → Sound waves
- RT → X-ray/Gamma rays
- Galvanizing → Zinc
- Tinning → Tin
- Cathodic protection → Protected structure becomes cathode
