Executive Development Programme in Spacecraft Thermal Protection System Performance
-- ViewingNowThe Executive Development Programme in Spacecraft Thermal Protection System Performance is a comprehensive certificate course designed to equip learners with essential skills for career advancement in the space industry. This program focuses on the critical area of Spacecraft Thermal Protection Systems (TPS), which is integral to the successful operation of spacecraft in extreme environments.
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⢠Spacecraft Thermal Protection System (TPS) Fundamentals: Introduction to TPS, its importance, and functions in spacecraft. Understanding various types of TPS, such as ablative, radiative, and regenerative.
⢠Thermodynamics and Heat Transfer: Basics of thermodynamics, heat transfer mechanisms, and their significance in TPS design. Conduction, convection, and radiation heat transfer modes.
⢠Materials for TPS: Overview of materials used in TPS, including ceramics, composites, and high-temperature alloys. Properties, advantages, and limitations of each type of material.
⢠TPS Design and Analysis: Principles of designing a TPS for different spacecraft and missions. Thermal analysis techniques, including computational fluid dynamics (CFD) and finite element analysis (FEA).
⢠TPS Testing and Validation: Methods for testing and validating TPS performance under simulated space conditions. Ground-based testing facilities and techniques.
⢠Space Environment and Thermal Effects: Understanding the space environment and its impact on spacecraft TPS. Orbital mechanics, solar radiation, and micrometeoroids.
⢠Spacecraft Re-entry and Atmospheric Entry: Thermal challenges during spacecraft re-entry and atmospheric entry. Aerothermodynamics, shock wave formation, and high-temperature material response.
⢠Advanced TPS Technologies: Emerging trends and technologies in TPS, including advanced materials, nanotechnology, and 3D printing. Future research directions and opportunities.
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