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Gaganyaan’s Thermal Protection System

Published 21 Aug 2026. Access the PDF directly or read the stored explanation below.

UPSC Daily Current Affairs Science & Technology English 21 Aug 2026

Gaganyaan’s Thermal Protection System

Prelims:

Science & Technology

Mains:

GS Paper III: Science & Technology, Indigenisation of technology and development of new technology

Current relevance:

The Gaganyaan crew module will face extreme heat during atmospheric re-entry. To protect the spacecraft and its crew, it will use an ablative Thermal Protection System (TPS) that absorbs and dissipates heat while maintaining the module’s structural integrity and safe internal conditions.


Highlights:

Atmospheric Re-entry Challenges:

1.        The Gaganyaan crew module will enter Earth's atmosphere at an extremely high velocity of about 7,500–8,000 m/s.

2.      More than 99% of its kinetic energy will be dissipated into the atmosphere as heat, but even the small portion directed back towards the module could melt it without adequate protection.

3.      Some exterior regions of the crew module may experience temperatures as high as 1,800°C.

4.      Once atmospheric descent begins, there is no provision to abort the mission, while the rapid descent and continuously changing deceleration forces provide little scope for manual crew intervention.

5.      Therefore, the spacecraft's systems must be sufficiently robust and reliable to withstand extreme re-entry conditions.


Ablative Heat Shield Working mechanism:

1.        Gaganyaan uses an ablative Thermal Protection System, which protects the spacecraft by sacrificing its outer layers through physical and chemical processes.

2.      The TPS absorbs intense thermal energy and chemically decomposes to form solid char and outgassing vapours, carrying heat away as the material burns off.

3.      The escaping gases also create a cooler boundary layer, reducing the transfer of intense heat into the crew module.

4.      Despite being only around 30–35 mm thick, the TPS is designed to maintain structural integrity by keeping the module's temperature safely below 150°C.

5.      Carbon phenolic and silica phenolic are examples of ablative thermal-protection materials.


Types of Thermal Protection Systems:

A TPS is predominantly classified into three types depending on how it removes heat:

1.        Ablative TPS: Removes heat by allowing protective material to decompose and shed its outer layers. It is primarily a single-use system.

2.      Radiative TPS: Absorbs re-entry heat and releases it back as electromagnetic radiation, mainly infrared. Since it remains intact, it is suitable for reusable re-entry vehicles.

3.      Heat Sink TPS: Protects the spacecraft by absorbing thermal energy and increasing its own temperature without melting or undergoing a phase change; copper and aluminium are examples.


Reasons for the Selection of Ablative TPS for Gaganyaan:

1.        An ablative TPS is a proven and highly robust solution suited to Gaganyaan's single-use crew module design.

2.      It can withstand extreme and fluctuating thermal loads without requiring complex or delicate surface maintenance.

3.      Compared with reusable radiative systems, it avoids expensive manufacturing, specialised inspection and complex installation processes, making it a safer and more cost-effective option.

4.      ISRO has prior experience with ablative technology: the Space Capsule Recovery Experiment (SRE) used carbon phenolic material, while the LVM-3/CARE mission in 2014 successfully demonstrated crew-module re-entry using an ablative TPS.

5.      These experiences provide the technological foundation for the thermal protection system being used in Gaganyaan.

 

Source: THE HINDU - https://www.thehindu.com/sci-tech/science/how-gaganyaans-thermal-protection-system-will-survive-re-entry-explained/article71369185.ece

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