EN1: Metals & Alloys
Ferrous and non-ferrous metals, alloying, heat treatment and the properties that make each suitable for engineering applications.
Ferrous and non-ferrous metals, alloying, heat treatment and the properties that make each suitable for engineering applications.
Ferrous and non-ferrous metals, alloying, heat treatment and the properties that make each suitable for engineering applications.
For Metals & Alloys, you must know:
Q: Explain the difference between ferrous and non-ferrous metals, giving two examples of each.
Q: Why is stainless steel resistant to corrosion?
Q: Describe how heat treatment can change the properties of a high-carbon steel.
Q: Why is aluminium widely used in aerospace engineering despite being more expensive than steel?
Q: Compare the properties and uses of brass and bronze.
✗ All metals are magnetic. ✓ Only ferrous metals (containing iron) are magnetic; non-ferrous metals such as aluminium and copper are not.
✗ Stainless steel does not rust because it contains no iron. ✓ Stainless steel does contain iron but also chromium, which forms a protective oxide layer preventing rust.
✗ Aluminium is weak and unsuitable for structural applications. ✓ Pure aluminium is relatively soft but aluminium alloys can achieve strengths comparable to some steels while remaining lightweight.
✗ Annealing makes metal harder. ✓ Annealing makes metal softer and more ductile by heating and slow cooling; hardening requires quenching.
Evaluate the suitability of aluminium alloy versus stainless steel for the frame of a lightweight portable generator. Consider mechanical properties, corrosion resistance, cost and weight. [8 marks]
Aluminium alloy is significantly lighter than stainless steel (density approximately 2.7 g/cm3 vs 7.9 g/cm3), making it far more suitable for a portable product where weight is a critical design requirement. A lighter frame improves portability and reduces user fatigue. However, aluminium alloys typically have lower tensile strength than stainless steel, so thicker sections or additional bracing may be needed to achieve equivalent structural rigidity, which partially offsets the weight advantage. Both materials offer excellent corrosion resistance, but through different mechanisms: stainless steel relies on its chromium oxide layer, while aluminium forms a natural alumina layer. Both are adequate for an outdoor generator. Cost is a significant factor: aluminium alloy is generally more expensive per kilogram than stainless steel, and the manufacturing processes (e.g. extrusion, CNC machining) can add cost. However, the weight saving reduces transport costs and improves the product's market appeal. In conclusion, aluminium alloy is the better choice for a portable generator frame because the weight advantage is the overriding requirement for portability, despite the higher material cost and the need for careful structural design to compensate for lower strength.
AO1 (Knowledge & Understanding): Demonstrate knowledge and understanding of metals & alloys, including materials, manufacturing processes and engineering systems relevant to AQA 8852 & WJEC Eduqas 5799QA.
AO2 (Application): Apply knowledge and understanding of metals & alloys to analyse, design and manufacture engineering solutions.
AO3 (Evaluation): Evaluate engineering solutions, making reasoned judgements about material choices, manufacturing processes, performance and practical considerations, constructing supported arguments.
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