Metallic Bonding and Materials
4. Alloys
Learning outcomes
- I can define an alloy.
- I can explain how alloys differ from pure metals.
- I can describe how alloying changes material properties.
- I can identify common alloys and their uses.
- I can explain why alloys are important in engineering.
What Is an Alloy?
An alloy is a mixture containing a metal and one or more other elements.
The additional elements may be:
- Other metals.
- Nonmetals.
- A combination of both.
Examples include:
- Steel – mainly iron and carbon.
- Stainless steel – mainly iron with chromium and other elements.
- Brass – copper and zinc.
- Bronze – mainly copper and tin.
- Solder – commonly mixtures based on tin with other metals.
Alloys are designed to combine or improve useful material properties.
Pure Metals
A pure metal contains essentially one metallic element.
In a simplified particle model, the atoms in a pure metal are approximately the same size and arranged in a regular metallic structure.
Examples include pure:
- Copper.
- Aluminum.
- Iron.
- Gold.
- Silver.
The particles form a giant metallic lattice containing positive metal ions and delocalized electrons.
Alloys Are Mixtures
An alloy is a mixture, not usually a single pure compound with one fixed composition.
This means the proportion of the different elements can often be changed.
For example, different types of steel contain different amounts of:
- Carbon.
- Chromium.
- Nickel.
- Manganese.
- Other elements.
Changing the composition changes the properties of the material.
This allows engineers to design alloys for particular purposes.
The Structure of a Pure Metal
In a simplified model of a pure metal, similarly sized particles form regular layers.
These layers can move relative to one another when sufficient force is applied.
Because metallic bonding remains effective as the layers move, many pure metals are:
- Malleable.
- Ductile.
- Relatively easy to shape.
What Happens When Another Element Is Added?
When another element is added to a metal, its atoms may have a different size from the atoms of the original metal.
These atoms disrupt the regular arrangement.
The lattice becomes less uniform.
This can make it more difficult for layers of atoms to move past one another.
Therefore:
alloying can change the mechanical properties of a metal.
Why Alloys Are Often Harder
Consider a pure metal.
The similarly sized atoms form relatively regular layers.
When force is applied:
layers can slide relatively easily
Now add differently sized atoms.
The regular layers become distorted.
The added atoms can interfere with the movement of the layers.
Therefore:
alloying → disrupted lattice → movement becomes more difficult → greater hardness or strength
This is one of the most important reasons alloys are created.
Alloying Does Not Simply Make Every Metal Stronger
Alloying can change many properties, not just strength.
Depending on the elements and composition, an alloy may have altered:
- Hardness.
- Strength.
- Ductility.
- Malleability.
- Electrical conductivity.
- Thermal conductivity.
- Corrosion resistance.
- Density.
- Melting behavior.
- Appearance.
Some properties may improve while others become less desirable.
Engineering therefore involves choosing an appropriate balance of properties.
Substitutional Alloys
In a substitutional alloy, atoms of another element replace some of the original metal atoms in the lattice.
This works particularly well when the atoms have reasonably similar sizes.
A simplified arrangement might look like:
A A A A
A B A A
A A A B
B A A A
where A represents the main metal and B represents another element.
Brass is an important example involving copper and zinc.
Interstitial Alloys
In an interstitial alloy, smaller atoms fit into spaces between larger metal atoms.
A major example is:
steel
Carbon atoms are much smaller than iron atoms and can occupy spaces within the iron structure.
These carbon atoms interfere with movement through the lattice and can significantly change the mechanical properties of the material.
Steel
Steel is one of the world's most important engineering materials.
It consists mainly of:
iron + carbon
Different steels can also contain other elements.
Compared with pure iron, suitable steels can provide improved combinations of:
- Strength.
- Hardness.
- Toughness.
- Durability.
This makes steel useful for an enormous range of applications.
Uses of Steel
Steel is used in:
- Buildings.
- Bridges.
- Vehicles.
- Railways.
- Tools.
- Machinery.
- Ships.
- Pipelines.
- Appliances.
Different types of steel are selected for different applications.
A bridge and a cutting tool, for example, do not require exactly the same properties.
Carbon Content in Steel
Changing the carbon content changes the properties of steel.
In general, increasing carbon can increase:
hardness and strength
but can reduce properties such as:
ductility
This illustrates an important engineering principle:
improving one property may involve sacrificing another.
The ideal material depends on its intended use.
Stainless Steel
Stainless steel contains iron combined with chromium and commonly other elements such as nickel.
Chromium is especially important because it allows a thin protective chromium-rich oxide layer to form on the surface.
This layer greatly improves resistance to corrosion.
Stainless steel is therefore widely used in:
- Kitchen equipment.
- Cutlery.
- Medical instruments.
- Food-processing equipment.
- Architecture.
- Industrial equipment.
Why Stainless Steel Resists Corrosion
Ordinary iron can react with oxygen and water and undergo corrosion.
Chromium in stainless steel forms a very thin, strongly adhering protective oxide layer.
This layer limits further attack on the metal underneath.
If the surface is lightly damaged, the protective layer can reform when sufficient oxygen is available.
This behavior is called passivation.
Brass
Brass is primarily an alloy of:
copper + zinc
Brass can have useful combinations of:
- Corrosion resistance.
- Strength.
- Workability.
- Appearance.
It is used in:
- Musical instruments.
- Plumbing fittings.
- Decorative objects.
- Screws.
- Valves.
- Hardware.
Bronze
Traditional bronze is mainly an alloy of:
copper + tin
Bronze has been used for thousands of years.
Depending on composition, bronze can provide useful:
- Strength.
- Hardness.
- Corrosion resistance.
- Wear resistance.
Applications include:
- Sculptures.
- Bearings.
- Bushings.
- Bells.
- Marine components.
- Historical tools and weapons.
Solder
Solder is an alloy designed to join metal components.
Modern electronic solders are often based on:
tin combined with metals such as silver and copper
Historically, tin-lead solders were widely used, but lead-free alternatives are now common in electronics.
A useful solder must melt at a suitable temperature so that components can be joined without melting the components themselves.
Aluminum Alloys
Pure aluminum has many useful properties, including:
- Low density.
- Corrosion resistance.
- Malleability.
- Good conductivity.
However, pure aluminum may not be strong enough for some structural applications.
Adding other elements can produce much stronger aluminum alloys.
Common alloying elements can include:
- Magnesium.
- Silicon.
- Copper.
- Zinc.
Aluminum Alloys in Aircraft
Aircraft require materials that combine:
low mass + useful strength
Aluminum alloys can provide this combination.
Reducing aircraft mass can reduce the amount of energy required for flight.
However, the material must still withstand substantial forces.
This makes the strength-to-weight ratio important.
Titanium Alloys
Titanium alloys are important in applications requiring combinations of:
- High strength.
- Relatively low density.
- Corrosion resistance.
- Performance at elevated temperatures.
They are used in areas such as:
- Aerospace engineering.
- High-performance machinery.
- Some medical devices.
Their excellent properties can be valuable despite relatively high production costs.
Why Not Always Use Pure Metals?
Pure metals can have useful properties, but they may not provide the best combination needed for a particular application.
For example, an engineer may require a material that is:
- Strong.
- Hard.
- Corrosion resistant.
- Lightweight.
- Heat resistant.
- Durable.
A pure metal may satisfy only some of these requirements.
Alloying allows properties to be adjusted.
Engineering Is About Trade-Offs
There is rarely one material that is ideal in every way.
For example:
Material A
Very strong but:
- Heavy.
- Expensive.
Material B
Lightweight but:
- Relatively weak.
Material C
Corrosion resistant but:
- Difficult to manufacture.
Engineers must determine which combination of properties is most important.
Alloys provide a way of tailoring materials to meet these requirements.
Properties Engineers Consider
When selecting an alloy, engineers may consider:
Strength
Can the material withstand forces without failing?
Hardness
Can it resist scratching, indentation, or wear?
Toughness
Can it absorb energy without fracturing?
Ductility
Can it deform significantly before breaking?
Malleability
Can it be shaped during manufacturing?
Corrosion resistance
Can it resist chemical attack from its environment?
Density
Is low mass important?
Conductivity
Does it need to conduct electricity or thermal energy?
Cost
Is the material economically practical?
Alloying and Electrical Conductivity
Pure metals such as copper can have extremely high electrical conductivity.
Adding other atoms disrupts the regular metallic structure and can increase the scattering of moving electrons.
Therefore, alloying often:
reduces electrical conductivity
This demonstrates another trade-off.
An alloy might become mechanically stronger while becoming a poorer electrical conductor.
Example: Copper Versus Brass
Copper is an excellent electrical conductor.
Brass contains:
copper + zinc
Brass is generally less electrically conductive than pure copper.
However, brass can offer useful:
- Mechanical properties.
- Corrosion resistance.
- Machinability.
Therefore:
copper is excellent for electrical wiring
while:
brass is useful for fittings, hardware and many mechanical components.
The best material depends on the application.
Alloying and Corrosion Resistance
Some alloying elements can greatly improve resistance to corrosion.
Stainless steel is the classic example.
Adding sufficient chromium to an iron-based alloy allows a protective oxide layer to form.
This makes stainless steel suitable for environments where ordinary steel may corrode more readily.
Alloying and Melting Behaviour
Pure metals generally have a characteristic melting point at a given pressure.
Many alloys melt over a range of temperatures, although some specific alloy compositions have sharply defined melting behavior.
Engineers can use alloy composition to obtain useful melting characteristics.
This is particularly important for:
- Soldering.
- Casting.
- Manufacturing processes.
Comparing Pure Metals and Alloys
| Feature | Pure Metal | Alloy |
|---|---|---|
| Composition | Mainly one element | Metal + one or more other elements |
| Particle arrangement | More regular | Often more disrupted |
| Layer movement | Often easier | Can be more difficult |
| Hardness | Often lower | Can be higher |
| Strength | Varies | Can be improved |
| Conductivity | Often relatively high | Often reduced by alloying |
| Properties | Determined by one metal | Can be tailored through composition |
These are general trends rather than rules that apply to every alloy.
Worked Example: Why Steel Is Stronger Than Pure Iron
Steel contains iron and carbon.
Small carbon atoms occupy positions within the iron structure and affect how easily parts of the lattice can move.
This can make deformation more difficult.
Therefore, suitable steels can be harder and stronger than pure iron.
The reasoning is:
added carbon → lattice movement becomes more difficult → increased resistance to deformation
Worked Example: Choosing a Material for Electrical Wire
Suppose an engineer must choose between pure copper and a stronger copper alloy.
For ordinary electrical wiring, conductivity is extremely important.
Pure copper generally has higher conductivity.
Therefore, its combination of:
- High conductivity.
- Ductility.
- Useful strength.
makes it highly suitable.
The stronger alloy might be preferable in an application where mechanical strength matters more than maximum electrical conductivity.
Worked Example: Choosing an Aircraft Material
An aircraft component must be:
- Strong.
- Lightweight.
- Durable.
Pure aluminum is lightweight but may not provide enough strength for the particular component.
An appropriate aluminum alloy may provide much greater strength while remaining relatively lightweight.
Therefore, the alloy can provide a better:
strength-to-weight ratio
Worked Example: Kitchen Equipment
A kitchen surface must:
- Resist corrosion.
- Be durable.
- Be easy to clean.
- Maintain its appearance.
Stainless steel is often suitable because alloying iron with chromium and other elements produces excellent corrosion resistance and useful mechanical properties.
Why Alloys Matter in Engineering
Modern engineering depends heavily on alloys.
Buildings, vehicles, aircraft, electronics, medical equipment and machines all require materials with carefully selected properties.
Alloys allow engineers to modify materials for specific applications.
The basic design process is:
identify required properties
↓
select suitable elements
↓
control alloy composition and processing
↓
produce desired material properties
↓
use the alloy for an appropriate application
Materials Science
The study of how the structure of materials affects their properties is part of materials science.
Alloys provide an excellent example of the relationship:
composition → structure → properties → applications
Changing the composition changes the microscopic structure.
Changing the structure affects properties.
Those properties determine what the material can be used for.
Common Mistakes
Saying an Alloy Is a Compound
An alloy is generally treated as a mixture containing a metal and other elements.
Saying Alloys Contain Only Metals
Some important alloys contain nonmetals.
Steel contains:
iron + carbon
Carbon is a nonmetal.
Saying Alloys Are Always Stronger
Alloying changes properties, but the effect depends on the composition and processing.
Saying Alloying Improves Every Property
Improving one property can reduce another.
For example:
increased strength may come with reduced ductility
or:
alloying may reduce electrical conductivity.
Confusing Steel and Iron
Iron is an element.
Steel is an iron-based alloy.
Confusing Brass and Bronze
Brass → copper + zinc
Bronze → traditionally copper + tin
Assuming All Steel Is the Same
Many different steels exist with different compositions and properties.
Forgetting the Purpose of Alloying
The main goal is not simply to make a material harder.
Alloying allows material properties to be tailored for particular applications.
Check Your Understanding
1. Define an alloy.
2. How does an alloy differ from a pure metal?
3. Can an alloy contain a nonmetal? Give an example.
4. Why can differently sized atoms make an alloy harder?
5. Explain why pure metal layers may move relatively easily.
6. What is a substitutional alloy?
7. What is an interstitial alloy?
8. What two elements are primarily found in ordinary carbon steel?
9. Why can steel be stronger than pure iron?
10. How can increasing carbon content affect steel?
11. What element is particularly important for the corrosion resistance of stainless steel?
12. Explain why stainless steel resists corrosion.
13. What are the main elements in brass?
14. What are the traditional main elements in bronze?
15. Why are aluminum alloys useful in aircraft?
16. Why might alloying reduce electrical conductivity?
17. Explain why pure copper may be preferred over brass for electrical wiring.
18. Give two properties an engineer might consider when choosing an alloy.
19. Explain why improving one material property can sometimes reduce another.
20. Why are alloys important in engineering?
21. Explain the relationship:
composition → structure → properties → applications
Key Terms
- Alloy – mixture containing a metal and one or more other elements.
- Pure metal – material consisting essentially of one metallic element.
- Alloying – adding other elements to a metal to modify its properties.
- Substitutional alloy – alloy in which some atoms replace atoms of the main metal in the lattice.
- Interstitial alloy – alloy in which smaller atoms occupy spaces between larger metal atoms.
- Steel – iron-based alloy containing carbon.
- Stainless steel – corrosion-resistant iron-based alloy containing chromium.
- Brass – alloy primarily containing copper and zinc.
- Bronze – family of copper alloys, traditionally based mainly on copper and tin.
- Solder – alloy used to join metal components.
- Corrosion resistance – ability of a material to resist chemical deterioration.
- Passivation – formation of a protective surface layer that reduces further corrosion.
- Strength-to-weight ratio – comparison of a material's strength with its mass or density.
- Materials science – study of relationships between material composition, structure, properties and performance.
Key Takeaways
- An alloy is a mixture containing a metal and one or more additional elements.
- The additional elements may be metals or nonmetals.
- Pure metals generally have a more uniform atomic arrangement.
- Added atoms can disrupt the regular metallic structure.
- This can make movement within the lattice more difficult.
- Alloying can increase hardness and strength.
- Alloying can also change ductility, conductivity, corrosion resistance, density and melting behavior.
- Improving one property can sometimes reduce another.
- Steel is mainly an alloy of iron and carbon.
- Different steel compositions produce different properties.
- Stainless steel contains chromium, which greatly improves corrosion resistance.
- Brass is primarily copper and zinc.
- Bronze is traditionally primarily copper and tin.
- Aluminum alloys combine relatively low density with useful strength.
- Alloys are widely used because their properties can be tailored.
- Engineers select materials based on combinations of properties rather than one property alone.
- Alloy composition is chosen according to the intended application.
- Alloying is an important way of controlling the properties of engineering materials.
- The central relationship is:
composition → structure → properties → engineering applications