Overview
The distinctive features of the program are:
1) The program has been designed to educate engineers with specialty in Mechanical & Aerospace Engineering (hereinafter – MAE) based on student centered learning concept.
2) A common core curriculum which is composed of a broad set of courses in natural science and humanities has been incorporated. The common core curriculum will help to bring out students’ skills and competencies in English language and communication, competence in Kazakh language, conceptual knowledge in Kazakh history, numerical literacy, fundamental knowledge in natural and social sciences, research skills and ethics, digital literacy, critical thinking, ethics, and leadership.
3) The program has been arranged to allow specialization in an engineering discipline at the end of the common first year of study.
4) The program provides an integrated broad-based foundation and specialist learning in the MAE context and it has a balance between theoretical knowledge and practical skills with focus on current industry practices including research and development.
5) The program strategic direction is set in consultation with the Industrial Advisory Board (hereinafter - IAB) that comprises representatives from Regional Industries, Professional Associations, and Government Agencies.
6) The program is designed in accordance with the requirements specified in the ABET manual & guidelines. In terms of engineering content, five major teaching areas in MAE have been identified, namely a) Thermofluids & Energy Applications, b) Materials & Manufacturing, c) Design & Analysis, d) System Dynamics & Control and e) Aerospace Engineering are covered in the program. Fundamental & advanced courses are offered for each teaching area along with elective courses that provide the required depth and are introduced during students’ senior years.
7) The program provides an appropriate integration of engineering sciences, mathematics, mechanics and materials, core subjects include Fluid Mechanics, Thermodynamics, Heat Transfer, Controls, Computer Aided Design & Engineering, Dynamics, Machine Elements & Mechanical Systems Design. These are essential elements for students to become chartered engineer in their career.
8) Hands-on learning is based on time spent in laboratory and workshop for subjects including the majority of offered courses.
9) Research-integrated teaching is emphasized in the curriculum where students will be taught how to collect data and results from literature, develop research method and engineering solution, make use of their knowledge and current technology to verify hypothesis and draw conclusion. Opportunities in participating in research projects will be provided.
10) Students may participate in an interdisciplinary design project (hereinafter – IDP) in which students of different engineering disciplines will work as a team in design, analysis, and manufacture of innovative engineering products.
11) A capstone project is included in the curriculum in which students can gain experience from working in a group integrating earlier course components.
12) Student centered learning is adopted in the capstone design project to promote lifelong learning. In the project, students are required to give oral and poster presentations which are in addition to project reports. Students in groups are choosing the topics they are interested in and the project implementation is according to their division of labor. This form of learning characterizes each student’s interests, abilities, and learning styles. Project supervisors act as the facilitators during the process.
General information
  • Campus: Astana, Kazakhstan
  • Language: English
  • Delivery mode: Full time, on-campus
  • Duration: 4 years
  • Total ECTS credit: 248
Program Aims
  1. Acquire strong fundamental scientific and technological knowledge base with critical thinking skills necessary for life-long learning and to pursue a variety of aerospace and/or mechanical engineering careers in industry, academic, and research within Kazakhstan or abroad.
  2. Apply engineering skills incorporating the use of standards, computers, experiments, and realistic constraints to analyze, design, and solve problems associated with the aerospace and/or mechanical engineering profession.
  3. Understand the moral obligations, ethical standards, and professional integrity of aerospace and/or mechanical engineering practice and have an awareness of safety, legal, environmental, and social impact on the role of the engineering professional in a multicultural, global economy.
  4. Develop the foundation for leadership through the abilities to communicate effectively technical and professional information as well as to work independently or as member in teams.
Key Advantages
  • Flexible specialisation through advanced electives
    in areas such as aerodynamics, aerospace propulsion, unmanned aerial vehicle design, additive manufacturing, clean energy, nuclear power engineering, MEMS, HVAC, maintenance engineering, and optimisation.
    1
  • Integrated mechanical and aerospace engineering education
    that combines a broad engineering foundation with specialised knowledge in mechanical systems, energy technologies, manufacturing, and aerospace engineering.
    2
  • Practical training with modern engineering software
    including CAD, computer-aided engineering, numerical modelling, finite element analysis, computational fluid dynamics, and control-system simulation.
    3
  • Project-based and research-integrated learning
    through interdisciplinary projects, laboratory assignments, research opportunities, and a final-year Capstone Project.
    4
  • Hands-on experience in laboratories and workshops
    where students design, manufacture, assemble, test, and analyse engineering components and systems.
    5
  • Industry-informed and internationally oriented education
    supported by an Industrial Advisory Board and opportunities to participate in summer courses, research projects, internships, workshops, and conferences.
    6
  • Balanced theoretical and practical preparation
    focused on modern engineering design, analysis, research, manufacturing, and current industry practices.
    7
  • Five major study areas
    Thermofluids and Energy Applications, Materials and Manufacturing, Design and Analysis, System Dynamics and Control, and Aerospace Engineering.
    8
Learning Outcomes
On successful completion of the program students will be able to:
  1. Identify, formulate, and solve complex engineering problems by applying principles of engineering, science, and mathematics.
  2. Apply engineering design to produce solutions that meet specified needs with consideration of public health, safety, and welfare, as well as global, cultural, social, environmental, and economic factors.
  3. Develop and conduct appropriate experimentation, analyze and interpret data, and use engineering judgment to draw conclusions.
  4. Communicate effectively with a range of audiences.
  5. Recognize ethical and professional responsibilities in engineering situations and make informed judgments, which must consider the impact of engineering solutions in global, economic, environmental, and societal contexts.
  6. Acquire and apply new knowledge as needed, using appropriate learning strategies.
  7. Function effectively on a team whose members together provide leadership, create a collaborative and inclusive environment, establish goals, plan tasks, and meet objectives.
Covers the fundamentals of:
  • Engineering mechanics, statics, and dynamics
  • Mechanical systems and machine-element design
  • Engineering materials and manufacturing processes
  • Fluid mechanics and computational fluid dynamics
  • Vehicle and aerospace propulsion systems
  • Engineering thermodynamics and heat transfer
  • Structural mechanics and engineering analysis
  • Computer-aided design and engineering
  • System dynamics and control
  • Aerodynamics and flight mechanics
  • Focus is on core knowledge, field exposure, and technical foundations
Curriculum
Year 1. Fall and Spring Semester (34 ECTS)
Year 2. Fall and Spring Semester (30 ECTS)
Year 3. Fall and Spring Semester (30 ECTS)
Year 4. Fall and Spring Semester (30 ECTS)
Elective Courses
MAE 500 - Unmanned Aerial Vehicle Design
MAE 467 - Heating, Ventilation and Air Conditioning
MAE 469 - Fundamentals of Space Flight Dynamics
MAE 468 - Introduction to Aerospace Propulsion
MAE 458 - Nuclear Power Plants Engineering
ENG 300 - Interdisciplinary Project
MAE 451 - Unmanned Aerial Vehicle Design
MAE 350 - Structural Mechanics II
MAE 351 - Vehicle Propulsion Systems
MAE 450 - Additive Manufacturing
MAE 452 - Computer Aided Geometric Design
MAE 453 - Fire Engineering
MAE 455 - Flight Performance and Mechanics
MAE 456 - Materials and Manufacturing II
MAE 457 - Feasibility Analysis of Clean Energy Technologies
MAE 460 - Advanced Topics in Computational Fluid Dynamics
MAE 462 - Multiphase Systems
MAE 463 - Micro-Electro-Mechanical Systems (MEMS) and Microsystems Technology
MAE 464 - Mechanics of Soft Materials
MAE 465 - Introduction to Maintenance Engineering
MAE 466 - Application of Optimization in Mechanical and Aerospace Engineering
Core modules
The list of core modules
Elective Courses
Where do our graduates work?
  • Career opportunities
    • Mechanical Engineer
    • Aerospace Engineer
    • Mechanical Design Engineer
    • CAD or CAE Engineer
    • Manufacturing Engineer
    • Materials Engineer
    • Automotive or Vehicle Systems Engineer
    • Aerodynamics Engineer
    • Thermal or Fluids Engineer
    • Control Systems Engineer
    • Maintenance and Reliability Engineer
    • HVAC Engineer
    • Energy Systems Engineer
    • Additive Manufacturing Engineer
    • Unmanned Aerial Vehicle Engineer
    • Project Engineer
    • Research and Development Engineer
  • Where?
    • Airbus
    • Rolls-Royce
    • Air Astana
    • VietJet
    • Alstom
    • Air Liquide
    • Kazakhstan Paramount Engineering
    • Wabtec
    • Ghalam
    • MCS Egypt, and others.
Admissions & Apply now
Admissions
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Admission
53 Kabanbay Batyr Ave
Astana city, Republic of Kazakhstan