Aeronautical Engineering (MEng)
The course builds on the principles of aerospace materials, taught in first year, and expands and discusses these principles to engineering materials, particularly those employed in the aircraft industry. The course will equip you with sufficient knowledge to evaluate the balance of engineering properties required in relation to an application and to select appropriate metallic and composite materials. You will also be made aware of the motivation for studying materials and knowledge of emerging materials for future aerospace applications.
On successfully completing this module, you should be able to:
Introduction to Materials and Materials Selection: brief overview of materials from Materials 1 and motivations; CES software, selection methodologies, including effect of shape.
Metals and Metal Structures: equilibrium constitution and phase diagrams, case studies. Driving force for structural change. Kinetics of structural change; diffusive transformations, nucleation and displacive transformations. Case studies.
Steels and Alloys: steels for shafts, gears and undercarriages. Types, heat treatment and properties. Case studies in steels.
Light Alloys: Aluminium Alloys; wrought aluminium alloys. 2xxx and 7xxx series and Li containing alloys, heat treatment and properties. Titanium and Magnesium Alloys; types, properties and applications.
Polymers: their mechanical properties, including overview of laboratory (polymer fracture).
Composites: their architectures and mechanical properties, particularly strength (WWFE) and toughness, including overview of mode 1 (DCB) test.
Ceramics: Sensitivity to defects and Weibull analysis.
Nanomaterials: Introduction to Nano materials, including processing, manufacture and application.
Fatigue: HCF, LCF and crack growth Paris lax, stages of development of fatigue cracks including persistent slip bands, striations and features of fatigue failures, S-N curves - Basquin’s, Goodman’s and Miner’s laws, crack initiation and growth, LCF – Coffin-Manson law, effect of mean stress, stress concentration, stress rate, cumulative damage.
Creep: nature of creep deformation and fracture, relation between stress, creep rate and temperature, correlation of creep data by Larson-Miller parameter. Nickel alloys – blades and discs.
Oxidation and Corrosion: electrochemical principles of oxidation and corrosion, anode and cathode reactions. Corrosion in metals and alloys.
Natural and multifunctional materials: overview of natural materials, using wood as a case study. Overview of multifunctional materials, including smart, morphing and structural power.
The module will be delivered primarily through large-class lectures introducing the key concepts and methods, supported by a variety of delivery methods combining the traditional and the technological. The content is presented via a combination of slides, whiteboard and visualiser.
This module presents opportunities for both formative and summative assessment.
|Assessment type||Assessment description||Weighting||Pass mark|