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Master of Engineering Aeronautics and Astronautics

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University of Southampton Malaysia

Master of Engineering Aeronautics and Astronautics

university icon
University of Southampton Malaysia

Master of Engineering Aeronautics and Astronautics

Qualification
Master's Degree
Duration
4 years
Intake
SepSep
English Requirement
IELTS 6.0
Offer Letter
Free
Class Type
Physical
Course Fee for International Students
First year from MYR 59,950 excludes 6% SST & other fees
Estimated total tuition from ~MYR 239,800 4 years programme
Published fees don't include possible scholarships and YourUni discounts — most students pay less than the sticker price.

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University of Southampton Malaysia ?

The Master of Engineering in Aeronautics & Astronautics program at the University of Southampton Malaysia offers advanced studies and specialized training in the field of aeronautics and astronautics. Graduates from this program are highly sought after by renowned global companies in the industry. This program provides students with comprehensive knowledge and practical skills in areas such as aircraft design, propulsion systems, aerospace materials, space exploration, and satellite technology. By enrolling in this program, students will gain a deep understanding of the latest technologies, industry trends, and research advancements in the field. The program's curriculum emphasizes hands-on projects, research opportunities, and industry collaborations, enabling students to develop practical expertise and critical thinking abilities. Graduates of the Master of Engineering in Aeronautics & Astronautics program at the University of Southampton Malaysia possess the necessary qualifications and expertise to excel in their careers. They are equipped to contribute to the development of innovative aerospace technologies, design and optimize aircraft and spacecraft systems, conduct research in cutting-edge aerospace fields, and make significant contributions to the advancement of the industry. Their skills and knowledge are highly valued by leading companies in the aerospace sector, making them highly sought after in the job market.

Entry Requirement

  • A-Level

ABB/A*A*C/A*AC/AAC including grade A in Mathematics and grade A/B in Physics

  • IB Diploma

Pass with 36 points overall, 18 points required at Higher Level, including 6 points at Higher Level in Physics and 6 points at Higher Level in Mathematics (Analysis and Approaches) or 7 at Higher Level in Mathematics (Applications and Interpretation)

  • STPM

A-BB, including Mathematics and Physics

 

For other qualifications and certificates (e.g., UEC, Foundation, STAM, etc..) please contact our educational consultants or submit your application for Admission assessment.

Future Career

  • UAV/Drone Design Engineer
  • Spacecraft Systems Engineer
  • Satellite Engineer
  • Fluid Dynamics Engineer
  • Aerospace Materials Engineer
  • Management Consultant
  • An Introduction to Design
  • Mechanics, Structures and Materials
  • ThermoFluids
  • Electrical and Electronics Systems
  • Introduction to Aeronautics and Astronautics
  • Mathematics for Engineering and the Environment
  • Systems Design and Computing
  • Engineering Management and Law
  • Mathematics for Engineering and the Environment Part II
  • Aerodynamics
  • Astronautics
  • Systems Design and Computing
  • Materials and Structures
  • Engineering Management and Law
  • Propulsion
  • Mechanics of Flight
  • Individual Project
  • Aerothermodynamics
  • Aerospace Control Systems
  • Aircraft Structural Design

Optional Modules:

  • Accounting and Finance for Engineers
  • Advanced Computational Methods I
  • Advanced Finite Element Analysis
  • Advanced Partial Differential Equations
  • Advanced Photovoltaics, Fuel Cells and Batteries
  • Aeroacoustics
  • Aeroelasticity
  • Aerospace Control Design
  • Aerothermodynamics
  • Aircraft Propulsion
  • Aircraft Structures
  • Applications of CFD
  • Automobile Systems
  • Automotive Propulsion
  • Biological Flow
  • Biomaterials
  • Composites Engineering Design and Mechanics
  • Computational Methods in Biomedical Engineering Design
  • Concurrent Spacecraft Design
  • Control and Instrumentation
  • Design Search and Optimisation (DSO) – Principles, Methods, Parameterizations and Case Studies
  • Experimental Methods for Aerodynamics
  • Failure of Materials and Components
  • Finite Element Analysis in Solid Mechanics
  • Flow Control
  • Heat Transfer and Applications
  • Human Factors in Engineering
  • Hypersonic & High Temperature Gas Dynamics
  • Manufacturing and Materials
  • Materials for Transport Applications
  • Operational Research
  • Optimisation
  • Orthopaedic Biomechanics
  • Principles of Photovoltaics, Fuel Cells and Batteries
  • Race Car Aerodynamics
  • Renewable Energy from Environmental Flows: Wind, Wave and Tide
  • Space Environment
  • Spacecraft Instrumentation
  • Spacecraft Orbital Mechanics
  • Spacecraft Propulsion
  • Spacecraft Structural Design
  • Sustainable energy systems, resources and usage
  • Turbulence
  • Wing Aerodynamics
  • Group Design Project
  • Advanced Management

Optional modules:

  • Accounting and Finance for Engineers
  • Advanced Computational Methods I
  • Advanced Finite Element Analysis
  • Advanced Partial Differential Equations
  • Advanced Photovoltaics, Fuel Cells and Batteries
  • Aeroacoustics
  • Aeroelasticity
  • Aerospace Control Design
  • Aerothermodynamics
  • Aircraft Propulsion
  • Aircraft Structures
  • Applications of CFD
  • Automobile Systems
  • Automotive Propulsion
  • Biological Flow
  • Biomaterials
  • Composites Engineering Design and Mechanics
  • Computational Methods in Biomedical Engineering Design
  • Concurrent Spacecraft Design
  • Control and Instrumentation
  • Design Search and Optimisation (DSO) – Principles, Methods, Parameterizations and Case Studies
  • Experimental Methods for Aerodynamics
  • Failure of Materials and Components
  • Finite Element Analysis in Solid Mechanics
  • Flow Control
  • Heat Transfer and Applications
  • Human Factors in Engineering
  • Hypersonic & High Temperature Gas Dynamics
  • Manufacturing and Materials
  • Materials for Transport Applications
  • Operational Research
  • Optimisation
  • Orthopaedic Biomechanics
  • Principles of Photovoltaics, Fuel Cells and Batteries
  • Race Car Aerodynamics
  • Renewable Energy from Environmental Flows: Wind, Wave and Tide
  • Space Environment
  • Spacecraft Instrumentation
  • Spacecraft Orbital Mechanics
  • Spacecraft Propulsion
  • Spacecraft Structural Design
  • Sustainable energy systems, resources and usage
  • Turbulence
  • Wing Aerodynamics
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