Showing posts with label DRDO. Show all posts
Showing posts with label DRDO. Show all posts

Friday, August 14, 2026

Chandigarh Scientists Develop Acoustic Anti-Drone System To Neutralise UAVs Without Bullets Or Lasers


Scientists at the Central Scientific Instruments Organisation have unveiled a new acoustic-based anti-drone system, Times of India reported.

The technology is designed to disable unauthorised unmanned aerial vehicles in mid-air, at a time when India faces persistent threats from small, low-cost drones used for cross-border smuggling and other covert operations.

The system works by directing high-intensity sound waves at a drone’s internal balance sensors. This causes the drone to lose stability and potentially crash within seconds. The project has been funded by IHUB-NTIHAC, a technology innovation and cybersecurity hub established at IIT-Kanpur. Plans are now underway to move the technology towards commercial production and deployment.

The CSIO is actively seeking industrial partners with the technical expertise to transfer the technology into commercial manufacturing and marketing. This step is seen as crucial to scaling up the acoustic detector for widespread use.

Unlike conventional jammers that disrupt radio signals, the CSIO system targets the drone’s internal Micro-Electro-Mechanical System gyroscopes. These sensors measure rotational speed and angular velocity, enabling the drone’s flight computer to maintain balance.

By directing sound at these sensors, the system forces them to oscillate uncontrollably, generating false readings. The drone’s computer then attempts to correct movements that are not actually occurring, leading to instability, wobbling, drifting or tumbling from the sky.

Because the system interferes with the drone’s internal balance mechanism rather than its communication link, it can also disable fully automated UAVs that do not rely on remote-control signals. This makes it particularly effective against autonomous platforms.

India continues to face growing threats from drones used for smuggling narcotics, weapons and counterfeit currency across borders. The large-scale deployment of drones during Operation Sindoor last year highlighted the expanding role of unmanned platforms in modern warfare.

Rogue operators are increasingly adopting advanced methods such as encrypted communication, forged KYC-based SIM cards and GPS-enabled systems to evade detection.

Experts note that acoustic-based anti-drone systems are primarily intended for short-range detection, generally covering a few hundred metres. They are especially useful in urban or densely built environments where radar-based detection may be less effective. Such systems can provide an additional layer within a multi-tier air defence network.

An Air Force officer explained that acoustic systems are designed for point defence against micro and nano drones. They can complement radar and radio-frequency jammers, offering simple, effective and highly mobile protection. Acoustic sensors are capable of detecting different types of drones, making them versatile in varied operational scenarios.

However, acoustic counter-drone technology has limitations. Its detection range is restricted, and performance can decline in areas with high background noise.

Environmental conditions such as strong winds and unsuitable temperatures can also reduce effectiveness.

For this reason, acoustic systems are best used alongside other counter-drone technologies rather than as standalone solutions.

The CSIO technology includes a dual-action capability that protects authorised drones operating in the same airspace. Its attack and protection modules function independently and feature a modular design that can be integrated into existing commercial off-the-shelf hardware.

The organisation has already submitted an expression of interest to scale up the technology for commercialisation. It is now seeking industrial partners capable of taking the acoustic detector into production and marketing, marking a significant step towards strengthening India’s indigenous counter-drone capabilities.

Agencies


Midhani Secures GE Aerospace S400 Lab Approval, First In India


Mishra Dhatu Nigam Limited (MIDHANI), the Hyderabad-based defence public-sector undertaking, has achieved a significant milestone by becoming the first Indian company to secure GE Aerospace’s S400 approval for its metallic-material testing laboratory.

This qualification strengthens MIDHANI’s credentials in the global aerospace supply chain and highlights its commitment to international standards of quality and technical excellence.

The company announced on Thursday that it had received Independent and International Metallic Material Laboratory (S400) approval for a wide range of chemical, mechanical and metallurgical testing. MIDHANI described the recognition as a reflection of its dedication to quality and global benchmarks in metallic-material testing.

The approval is expected to enhance its position in the aerospace industry and contribute to India’s growing capabilities in advanced materials. The company also expressed gratitude to GE Aerospace for its confidence and collaboration.

It is important to note that despite the shared name, the S400 approval has no connection to Russia’s S-400 air-defence system. GE Aerospace’s S400 approval is a qualification for laboratories that test metallic materials, particularly those serving its supply chain.

It confirms that a laboratory has demonstrated the technical capabilities and quality systems required to conduct specified chemical, mechanical and metallurgical tests to GE Aerospace standards.

According to Metallurgical Solutions Inc., an Ohio-based laboratory approved under the program, approvals are granted for a defined scope of tests and do not necessarily cover every test conducted by a laboratory. Certified laboratories also undergo regular surveillance audits to maintain compliance.

The announcement had an immediate impact on MIDHANI’s stock performance. Shares rose sharply, closing 8.91% higher at ₹444.85 on August 13, after touching an intraday high of ₹456.60. The shares had closed at ₹408.45 in the previous session, reflecting strong investor confidence in the company’s achievement.

MIDHANI, established in 1973 and commencing commercial production in 1983, operates under the Department of Defence Production in the Ministry of Defence. It received Miniratna Category-I status in 2009.

The company specialises in producing special steels, superalloys and titanium alloys, with applications across defence, space and nuclear energy. Its materials are designed for high strength, toughness, corrosion resistance and performance at elevated temperatures. Strategic customers include ISRO, DRDO, HAL and the Department of Atomic Energy.

The company has supplied specialised metals and materials for projects such as ISRO’s LVM-3 rocket and Chandrayaan missions, the Akash missile system and the TEJAS fighter-jet program.

It has also provided nuclear-grade materials to the 500-MWe Prototype Fast Breeder Reactor in Kalpakkam, Tamil Nadu.

Beyond aerospace and defence, MIDHANI undertakes the armouring of vehicles and helicopters and manufactures Bulletproof Jackets, Patkas and shields. Its portfolio extends to biomedical implants including bone plates, screws, knee and hip prostheses and intramedullary nails.

MIDHANI operates several manufacturing facilities in Hyderabad, an armouring facility in Rohtak, Haryana, and a 50:50 joint venture with National Aluminium Co. Ltd. (NALCO) called Utkarsha Aluminium Dhatu Nigam Ltd., which is establishing an aluminium-alloy plant in Nellore, Andhra Pradesh. Its 2026 brochure lists testing facilities covering chemical and mechanical analysis, metallography and nondestructive examination, underscoring its comprehensive capabilities.

This achievement of securing GE Aerospace’s S400 approval marks a pivotal step for MIDHANI in establishing itself as a globally recognised supplier of advanced metallic materials. It reinforces India’s ambition to build a robust aerospace ecosystem and highlights the company’s role in supporting both domestic and international aerospace programs.

Agencies


Thursday, August 13, 2026

2,400 GaN TRMs, One Deadly Radar: Virupaksha To Power 12 New Sukhois


HAL to deliver 12 New Su‑30MKI jets with indigenous Radar And EW systems by 2029

Hindustan Aeronautics Ltd has confirmed that twelve new Su‑30MKI fighter jets will be delivered by 2029. These aircraft are being built with more than fifty percent indigenous content, marking a significant step in India’s drive for self‑reliance in advanced defence technology. The inclusion of locally developed systems is intended to reduce dependence on foreign suppliers and simplify long‑term maintenance.

The new aircraft will incorporate advanced systems that go beyond earlier production batches. Among the most notable upgrades is the integration of the Virupaksha radar, which features 2,400 Gallium Nitride transmit‑receive modules.

This radar is expected to provide a substantial increase in detection range, resilience against jamming, and overall situational awareness. It represents one of the most ambitious indigenous radar developments undertaken for a frontline combat aircraft.

Alongside the radar, the jets will be fitted with a new indigenous electronic warfare suite. This system is designed to enhance survivability by detecting, analysing, and countering hostile emissions. It will include radar warning receivers, jamming pods, and advanced signal processing capabilities.

Together, these systems will allow the aircraft to operate more effectively in contested environments where electronic warfare plays a decisive role.

The project is not limited to the twelve new aircraft. A broader upgrade program for the existing Su‑30MKI fleet is also planned. This will involve the introduction of new avionics, radars, flight control systems, and infrared search‑and‑track sensors.

The phased approach will ensure that the entire fleet benefits from enhanced detection and engagement abilities, addressing long‑standing concerns about the limitations of older radar systems.

HAL’s Nashik facility, which has already produced over 220 Su‑30MKI under licence from Russia, will be the centre of this revival in production.

The order, valued at ₹11,000 crore, was signed in December 2024 to replace aircraft lost in accidents. The facility is also expected to handle the ₹60,000‑crore upgrade program, with support from the Defence Research and Development Organisation and contributions from private industry.

The first deliveries are scheduled for 2027‑28, with the remainder to follow by 2029. This timeline ensures that the Indian Air Force will begin receiving upgraded aircraft within the next two years.

The combination of new production and fleet‑wide upgrades will keep the Su‑30MKI relevant well into the 2050s, even as fifth‑generation and unmanned systems become more prominent in aerial warfare.

The integration of indigenous systems such as the Virupaksha radar and electronic warfare suite reflects a broader strategic push. India is seeking to strengthen its technological independence while simultaneously enhancing combat effectiveness.

These developments will allow the Su‑30MKI to remain a cornerstone of India’s air power projection strategy, capable of operating in future network‑centric battlefields.

Agencies


Beyond BrahMos: India’s Defence Export Future In Drones And Smart Weapons


India’s defence exports have surged to a record ₹38,424 crore in FY26, with BrahMos leading the charge, but the next boom is expected to come from drones, loitering munitions, precision-guided weapons, advanced electronics, and autonomous systems.

The country is now positioning itself to achieve its ambitious ₹50,000-crore export target by 2029-30 by diversifying beyond missiles into cutting-edge technologies.

India’s defence export story has long been dominated by the BrahMos supersonic cruise missile, which remains the flagship of its global sales. However, the changing nature of warfare is reshaping demand. Modern conflicts increasingly rely on drones, loitering munitions, precision-guided systems, electronic warfare, and autonomous platforms rather than only traditional missiles, tanks, or fighter jets.

The fiscal year 2026 saw exports rise nearly 63% from the previous year, with India supplying defence equipment to over 80 countries. The number of exporters has also grown to 145, reflecting the expanding ecosystem of private firms and public sector units contributing to this surge. Private companies accounted for ₹17,353 crore of exports, while defence PSUs contributed ₹21,071 crore.

Among the emerging technologies, drones are at the forefront. Armed UAVs, Kamikaze drones, and long-range loitering munitions are attracting global interest.

Systems like IG Defence’s KAL drone, capable of flying up to 1,000 km with a payload of 50 kg, exemplify India’s push into autonomous strike platforms. These systems are cheaper than traditional missiles yet highly effective, making them attractive to countries seeking cost-efficient modernisation.

Precision-guided munitions and smart bombs are another area of focus. DRDO, in collaboration with IIT-Madras and Munitions India, is working on converting conventional artillery shells into precision-guided rounds. This reflects a shift towards selling not just platforms but also the critical electronics and guidance systems that make weapons smarter.

Electronic warfare systems, radars, and counter-UAS technologies are also gaining traction. Products like the Akash air-defence system, Swathi weapon-locating radar, Pinaka rocket launchers, and ATAGS artillery guns have already found overseas buyers. Armenia, the Philippines, and other countries have placed orders, signalling confidence in India’s expanding portfolio.

Beyond platforms, the “intelligence layer” inside weapons—fuses, sensors, and guidance electronics—is becoming a major export opportunity.

Companies like Ammunic Systems argue that India’s future lies in exporting the brains of weapons, not just the hardware. This could open a much larger market, as nations seek subsystems to upgrade their existing arsenals.

India’s defence industry is also diversifying into aircraft components, helicopters, fast interceptor boats, torpedoes, and protective equipment. Bangalore-based firms are contributing significantly to avionics and electronics, strengthening India’s reputation as a supplier of advanced subsystems.

The government’s target of ₹50,000 crore in defence exports by 2029-30 appears achievable given current momentum. Global geopolitical tensions are driving rearmament, and India’s mix of affordability, indigenous innovation, and expanding product range positions it well to capture this demand.

The next phase of India’s defence export boom will not be defined by a single weapon like BrahMos but by a broad basket of technologies—drones, precision electronics, autonomous systems, and smart munitions. By focusing on these areas, India aims to secure its place as a major global defence exporter in the coming decade.

Agencies


BrahMos‑2 Hypersonic Missile To Deliver Tri‑Service Mach 8 Strike


India is advancing the BrahMos‑2 hypersonic cruise missile as part of its next‑generation strike capability.

The missile is being designed for deployment from land, sea and air platforms, making it a tri‑service weapon that can be adapted for the Army, Navy and Air Force. It is being developed under the India‑Russia defence partnership, combining Russian hypersonic propulsion expertise with Indian navigation and guidance systems.

The missile is reported to have a top speed of around Mach 8, which is nearly three times faster than the current BrahMos. At such velocity, it would cover hundreds of kilometres in minutes, leaving defenders with very little time to detect, track or intercept.

Its potential range is expected to fall between 600 kilometres and 1,500 kilometres, depending on the final configuration and testing outcomes.

One of the defining features of BrahMos‑2 is its tri‑service adaptability. The Army could deploy it from mobile ground launchers near border areas, giving frontline units a rapid strike option. The Air Force could launch it from fighter aircraft such as the Sukhoi Su‑30MKI, extending aerial strike capability deep into adversary territory. The Navy could integrate it into warships equipped with vertical launch systems, enhancing fleet defence and long‑range maritime strike capacity.

The propulsion system is central to the missile’s design. BrahMos‑2 is expected to use a scramjet engine, which is an air‑breathing supersonic combustion ramjet. This technology allows the missile to sustain hypersonic speeds by using atmospheric oxygen rather than carrying oxidisers onboard. Maintaining Mach 8 flight over long distances is a major engineering challenge, and the scramjet is critical to achieving this performance.

Reports suggest the missile may use the indigenous G3OM navigation system and multi‑satellite guidance, enabling accuracy within a few metres. Such precision at hypersonic speed would make the missile extremely difficult to counter.

The range of BrahMos‑2 is a significant leap from earlier BrahMos variants. The original missile had a range of about 300 kilometres, later extended in newer versions. India’s entry into the Missile Technology Control Regime in 2016 allowed greater scope for developing longer‑range systems.

With BrahMos‑2 potentially reaching 1,500 kilometres, Indian forces could strike deep inside adversary territory without crossing borders with aircraft or ground troops.

This extended range would provide the Army with more deployment options, the Air Force with enhanced strike depth, and the Navy with greater reach across the Indo‑Pacific. The missile is therefore being built around three core capabilities: extreme speed, extended range and tri‑service adaptability.

Its final specifications will depend on ongoing development and testing, but the project represents a major step in India’s pursuit of advanced long‑range hypersonic strike systems.

Agencies


Wednesday, August 12, 2026

Astra Microwave Emerges As Lowest Bidder For AMCA Radar AAAU


Astra Microwave Products has emerged as the lowest bidder (L1) for the Active Antenna Array Unit (AAAU) to equip four radar prototypes for India’s Advanced Medium Combat Aircraft (AMCA), with Bharat Electronics Limited (BEL) positioned as L2.

This marks a critical step in the DRDO-LRDE led radar development program under ADA’s framework, with contract finalisation expected within a month.

Astra Microwave’s selection as L1 bidder underscores its growing dominance in India’s indigenous radar ecosystem. The AAAU is the technological core of an Active Electronically Scanned Array (AESA) radar, housing hundreds to thousands of transmit/receive modules that enable electronic beam steering without mechanical movement.

This allows simultaneous multi-target tracking, rapid mode switching, and resilience against electronic jamming. For the AMCA, which is India’s flagship fifth-generation stealth fighter project, the AAAU will be pivotal in ensuring long-range detection and survivability against advanced threats.

The bidding process specifically covers the development of AAAU components for four initial radar prototypes. These prototypes will form the backbone of the AMCA’s sensor suite, enabling integration testing and validation before full-scale production.

The Electronics and Radar Development Establishment (LRDE), under DRDO, is steering the radar development, while the Aeronautical Development Agency (ADA) oversees the broader aircraft program. This layered leadership ensures that radar development aligns seamlessly with airframe and mission system requirements.

The announcement was made during Astra Microwave’s Q1 FY27 earnings call, where company leadership confirmed its emergence as L1. The formal contract development is anticipated to be finalised within a month, positioning Astra Microwave to begin work on the AAAU prototypes.

BEL, ranked as L2, remains a key partner in India’s radar ecosystem and may contribute to integration and production scaling once the prototypes are validated.

This development mirrors Astra Microwave’s earlier success in securing major contracts for the Uttam AESA radar, including a ₹2,205 crore order from Hindustan Aeronautics Limited (HAL) for 122 AAAUs and 121 Interface Frames.

The company’s proven track record in delivering radar subsystems for TEJAS MK-1A, Su-30MKI upgrades, and AEW&C platforms strengthens confidence in its ability to meet AMCA’s demanding requirements.

The AMCA project itself represents India’s most ambitious aerospace initiative, aimed at producing a stealth-capable, multirole fighter with advanced avionics, sensors, and weapons integration.

The radar system, with its AAAU at the core, will be critical in providing the aircraft with situational awareness, electronic warfare resilience, and precision targeting capabilities. Successful execution of the AAAU prototypes will mark a decisive milestone in the AMCA’s path toward flight testing and eventual induction.

Astra Microwave’s emergence as L1 bidder not only reinforces its role as a leading private-sector defence electronics supplier but also highlights India’s broader push for self-reliance in advanced military technologies. With the AMCA radar prototypes now moving closer to development, India is set to strengthen its indigenous capabilities in fifth-generation fighter technology.

Agencies


India Seeks Two More Industry Partners For Indigenous Expendable Turbojet Engine


India is seeking two additional Indian industry partners to support the mass production of an indigenous expendable turbojet engine, marking a shift from technology demonstration to the creation of a broader production ecosystem.

The initiative is being pursued by the Defence Research and Development Organisation’s Gas Turbine Research Establishment, or GTRE, which is based in Bangalore and is India’s principal organisation for military gas-turbine research.

The search for additional partners follows the successful development of India’s first indigenous expendable turbojet engine in the 350-kilogram thrust class.

The engine was designed by GTRE and manufactured and assembled by Hyderabad-based Azad Engineering, which was selected as the initial industry partner.

Azad Engineering completed and delivered the first engine to GTRE on 22 July 2026. The delivery represented an important transition from laboratory development to industrial realisation.

The latest move indicates that GTRE does not intend to rely on a single private-sector company for future production. Instead, it is seeking to distribute manufacturing responsibilities among multiple Indian companies capable of producing the engine in significant numbers. This approach is expected to improve production capacity, create industrial redundancy and reduce the risks associated with depending on one supplier for a critical propulsion system.

An expendable turbojet engine is designed for a single mission or a limited number of operating hours. Unlike the engines used in fighter aircraft and transport planes, it is not required to function reliably for thousands of flight hours or to undergo repeated maintenance and overhaul cycles.  The engine is instead optimised for simplicity, compactness, reliability, affordability and ease of manufacture. Once installed in a missile, unmanned aircraft or loitering munition, the engine powers the platform during its mission and is not recovered for reuse.

This makes expendable propulsion particularly suitable for weapons and unmanned platforms where the cost of the engine must remain proportionate to the cost of the overall system. The engine developed by GTRE belongs to the 350-kilogram thrust class. Its design is based on a single-spool turbojet configuration comprising a four-stage axial-flow compressor, an annular combustor, a single-stage uncooled axial-flow turbine and a fixed-exit nozzle.

The architecture is considerably simpler than that of a modern fighter engine. It does not require the sophisticated high-temperature materials, cooling arrangements, afterburner systems, variable-area nozzles or long-life maintenance features associated with combat aircraft propulsion.

The absence of turbine cooling helps reduce design and manufacturing complexity. It also makes the engine suitable for expendable applications, in which the turbine is required to operate reliably for a short mission rather than remain serviceable for years.

The propulsion system is expected to support a range of military platforms, including cruise missiles, anti-ship missiles, jet-powered loitering munitions, target drones and unmanned aerial vehicles.

It could also be adapted for other air-breathing weapons and autonomous systems that require a compact jet engine capable of sustaining flight over considerable distances. The engine’s availability could be particularly important for India’s expanding inventory of long-range unmanned platforms and precision-strike weapons.

Many such systems depend on imported propulsion units. Import dependence can create delays, raise procurement costs and expose operational programs to export restrictions, political pressure and supply-chain disruption.

An indigenous engine would give Indian designers greater control over the propulsion system, including its dimensions, mounting arrangements, fuel requirements, control architecture and integration with the host platform.

Domestic production could also allow the engine to be modified for different missions. A missile may require a compact, low-cost engine with a short operating time, while a loitering munition or unmanned aircraft may require better endurance and fuel efficiency.

The move to identify two more industry partners suggests that GTRE is preparing for a structured production model rather than a limited batch of development engines. According to the available production plan, the broader objective is to manufacture approximately 300 engines over a period of five years.

The initial phase is expected to involve the selection of two Indian companies, with each company required to supply three engines over an 18-month period. This first stage would allow GTRE to evaluate the industrial capabilities of the selected companies before issuing a subsequent request for information covering larger production quantities.
The staged model is intended to ensure that companies are assessed not only on their ability to manufacture individual components but also on their capacity to carry out complete engine production, assembly, integration and quality assurance.

The partners will need to demonstrate competence in high-precision aerospace manufacturing.

They are likely to require capabilities in the production of compressor blades, turbine components, combustion-chamber assemblies, shafts, casings, nozzles and other parts that must operate under demanding mechanical and thermal conditions.

The manufacturing process may involve advanced machining, precision grinding, investment casting, fabrication of high-temperature alloys, surface treatment, balancing and non-destructive testing. Engine production also requires strict control over dimensional tolerances. Even small deviations in compressor or turbine components can affect airflow, vibration levels, fuel consumption and overall engine performance.

The selected companies will therefore have to establish robust inspection, traceability and documentation systems. They will also need to maintain aerospace-quality procedures throughout the production chain, including the procurement of materials, component manufacture, sub-assembly, final assembly and acceptance testing.

GTRE’s partnership with Azad Engineering demonstrated the value of combining government research and development with private-sector manufacturing expertise. GTRE retained responsibility for the engine’s design and technological development, while Azad Engineering converted that design into a manufactured and assembled engine.

The company’s role covered end-to-end manufacturing, assembly and integration. This model enabled the DRDO laboratory to focus on propulsion technology while relying on industrial expertise for production execution.

The participation of additional companies could help expand this model across the Indian aerospace sector. It could also encourage companies that have traditionally supplied aerospace components to move into higher-value system manufacturing.

India has a growing network of private firms involved in precision engineering, aerospace components, defence systems, additive manufacturing and advanced materials. However, building a complete gas-turbine engine remains substantially more demanding than producing individual parts. The real test will be whether the new partners can achieve repeatable production quality, maintain delivery schedules and manufacture engines that perform consistently across multiple batches.

The search for additional partners must also be viewed against the background of India’s long-standing difficulties in developing indigenous aircraft engines.

The Kaveri engine program, initiated to power the Light Combat Aircraft, generated valuable expertise but did not achieve the required performance for installation on the aircraft.

The experience nevertheless helped India develop knowledge in compressors, combustion systems, turbines, afterburners, materials and engine testing. The new expendable turbojet is not a replacement for a fighter engine. Its thrust level, operating profile and intended use are entirely different from those of a high-thrust afterburning turbofan required for combat aircraft.

Even so, mastering a smaller and less complex engine can help strengthen the country’s wider propulsion ecosystem. It provides opportunities to improve the domestic supply chain, train engineers and technicians, validate manufacturing processes and develop companies that may later participate in larger propulsion projects. The development also complements India’s efforts to establish industrial partners for more advanced aero-engine programs.

GTRE has separately sought an Indian development-cum-production partner for an Advanced High Thrust Class Aero Engine intended to support future combat-aircraft requirements. That effort involves far more demanding challenges, including the design and manufacture of a high-pressure core, advanced turbine materials, sophisticated cooling systems, digital engine controls and long-duration reliability.

India is also pursuing international cooperation for a high-thrust fighter engine, including discussions with major foreign engine manufacturers.

The expendable turbojet effort therefore occupies a different position within the national propulsion strategy. It offers a nearer-term opportunity to build practical production experience while the country continues to pursue much more challenging combat-aircraft engine objectives.

Another related effort involves the Small Turbo Fan Engine, or STFE, an expendable engine intended for future long-range land-attack cruise missiles. The STFE production plan reportedly envisages around 300 engines over five years, with an initial phase involving two industrial companies supplying three engines each over an 18-month period.

For India, the significance of the initiative lies in this combination of technology, industrial capacity and operational relevance. A small expendable engine may not attract the same attention as a high-thrust fighter turbofan, but it can have an immediate effect on the country’s ability to produce missiles, drones and other autonomous weapons at scale. The decision to seek two more industry partners suggests that GTRE is preparing to make that capability a sustained part of India’s defence-manufacturing base.

Agencies


Tuesday, August 11, 2026

Indigenous Advanced High Thrust Class Engine Propels India Into Fifth-Generation League


The indigenous development of an advanced high thrust class engine represents a major stride in India’s aerospace self-reliance. The initiative is built on co-design and co-development principles, ensuring both know-how and know-why are embedded within the process.

The product guarantee is shared between the engine house and the joint design authority, reflecting a collaborative approach that integrates academia and industry.

The performance parameters are ambitious. The thrust-to-weight ratio is targeted at greater than ten, while hot parts life is expected to exceed two thousand hours.

The engine is designed to be modular, enabling easier maintenance and upgrades. It is optimised for super cruise thrust, allowing sustained supersonic flight without afterburner, and incorporates reduced signature features to enhance stealth.

The fan section is a three-stage unit with a five-to-one pressure ratio. It is highly loaded with wide chord blades, offering high efficiency and a strong surge margin. The use of blisks improves structural integrity and reduces weight.

The high-pressure compressor is a five-stage system with a six-point-five-to-one pressure ratio. It employs active tip clearance control to maintain efficiency under varying conditions. Blisks are again used here to enhance durability and performance.

The combustor is a high-intensity annular design. It is engineered for low pressure loss and reduced emissions. Advanced fuel injection systems are integrated, alongside sophisticated liner cooling techniques to ensure reliability under extreme thermal loads.

The high-pressure turbine is highly loaded and designed to withstand a maximum turbine entry temperature of two thousand Kelvin. Advanced cooling methods are applied, and single crystal blades are coated with electron beam or physical vapour deposition thermal barrier coatings. The disc design is damage tolerant, using powder metallurgy for enhanced resilience.

The low-pressure turbine is shrouded and features single crystal blades with advanced cooling. Powder metallurgy discs are employed, and the rotor and stator are bolted-less, improving reliability. A contra-rotating configuration is adopted to maximise efficiency.

The afterburner is designed for thrust vectoring and high thrust boost. It operates screech-free and incorporates advanced liner cooling. A convergent-divergent nozzle with ceramic matrix composite flaps ensures durability under extreme conditions.

Additional components include the inlet casing, intermediate casing, bypass duct, gearbox, oil system, fuel system, and control software. The engine controller and associated accessories are integrated to provide precise management of performance and safety.

Engine integration covers configuration control, air and oil system integration, engine dynamics, and overall safety and reliability. These aspects ensure the engine can be seamlessly adapted into aircraft platforms.

Testing involves final assembly and instrumentation, followed by ground, altitude, and flight trials. Certification and qualification processes are rigorous, ensuring compliance with international standards.

The colour-coded framework highlights responsibilities. Red denotes engine house primary responsibility with transfer of technology. Blue indicates GTRE primary with engine house secondary. Grey represents technology development initiated through collaboration with academia and industry.

This project is part of the broader Atmanirbharta in aerospace initiative, emphasising indigenous aero engine development. The date of reference is seventh January two thousand twenty-five, marking a milestone in India’s aerospace roadmap.

Globally, advanced fighter engines such as the American F119 and F135, or the Russian AL-41F1, set benchmarks in thrust-to-weight ratios, durability, and stealth optimisation. India’s effort aims to match or surpass these standards, reducing dependence on foreign suppliers and strengthening strategic autonomy.

The integration of single crystal blade technology, advanced cooling, and modular design reflects cutting-edge practices seen in leading aerospace nations. The inclusion of thrust vectoring and super cruise capability places the engine in the category of fifth-generation propulsion systems.

The collaboration between Bangalore-based GTRE, engine houses, and academic institutions mirrors international models where industry-academia partnerships accelerate innovation. This approach ensures that India builds not only manufacturing capacity but also design expertise, critical for sustaining long-term aerospace competitiveness.

The indigenous high thrust class engine is therefore not just a technological achievement but a strategic necessity. It underpins future combat aircraft programs, supports aerospace industry growth, and contributes to national security by reducing reliance on imported propulsion systems.

IDN (With Agency Inputs)


India's Sets Clear Pathway For An Advanced High Thrust Class Aero Engine


India’s long-delayed quest for an indigenous high-thrust fighter engine is moving toward a decisive phase, with the DRDO’s Gas Turbine Research Establishment (GTRE) seeking an industrial partner for a 120-kN-class Advanced High Thrust Class Aero Engine.

The proposed GTRE–SAFRAN cooperation is expected to combine Indian design authority and intellectual-property ownership with French expertise in advanced turbine technology, while establishing domestic manufacturing, testing and lifecycle-support capabilities for the AMCA MK-2 and other future combat aircraft.

The most likely interpretation of India’s plan for the Advanced High Thrust Class Aero Engine (AHTCE) is a two-layer arrangement: GTRE/DRDO would retain Indian design authority and strategic control, while France’s SAFRAN would serve as the International Engine House for clean-sheet co-development and transfer of critical high-thrust engine technologies; an Indian Development-Cum-Production Partner would then industrialise, manufacture, integrate, test and certify the engine in India.

The proposed powerplant is expected to begin in the approximately 110–120 kN afterburning-turbofan class, with a growth path toward 130–140 kN, primarily for the AMCA MK-2 and potentially later TEJAS MK-2, unmanned combat aircraft and future fighter platforms.

The partnership is reportedly intended to include comprehensive technology transfer, including hot-section technologies, advanced materials, single-crystal turbine blades, specialised coatings, precision manufacturing, digital engine control and engine-testing know-how, with India retaining design control and intellectual-property rights.

The initial AMCA variant would continue to use the GE-F414, while the indigenous engine would be targeted at the later AMCA MK-2. The program is expected to run for roughly 10–12 years, with early design and core-development work followed by ground testing, prototype construction, flight qualification and certification, potentially leading to production around the mid-2030s.

However, the arrangement should not yet be described as a fully signed production contract: as of 5 August 2026, the SAFRAN–GTRE proposal had reportedly reached the Cabinet Committee on Security, with approval expected before final negotiations and contract signing.

What The Plan Actually Contains

Indian Lead Agency: GTRE, a DRDO laboratory, would remain the design authority and provide engineering data, materials support, design outputs and technical oversight.

Key Foreign Technology Partner: SAFRAN is the most likely partner, although earlier reporting indicated that Rolls-Royce and other international engine houses had also been considered. The public record confirms the direction of cooperation but does not establish that the final contract had been signed by 11 August 2026. There is speculation that the AMCA engine deal may be cleared by the CCS on August 15.

Indian Industrial Partner: A Development-cum-Production Partner would convert GTRE’s engineering work into a flight-worthy engine. The arrangement could involve a consortium, with a lead integrator supported by Indian private-sector manufacturers and specialist suppliers.

Engine Architecture: The reported target is an afterburning turbofan in the 110–120 kN class, with later growth toward 140 kN. At roughly 120 kN, it would provide substantially more thrust than the approximately 84 kN F404 engine used by the TEJAS MK-1 family.

Manufacturing Responsibility: The Indian partner would undertake production engineering, tooling, raw-material procurement, component manufacture, sub-assembly, final assembly, quality assurance, documentation and support for certification.

Technical Scope: The AHTCE is described as comprising 11 subsystems, 34 assemblies, 125 sub-assemblies and approximately 2,500 components. These include the compressor, combustor, turbines, afterburner, exhaust nozzle, gearbox, oil and fuel systems and digital engine-control units.

Development Quantity: The EOI specifies a tentative requirement for 18 development engines over a 10-year period. A later production contract could cover up to 200 engines, subject to government approval and user requirements.

Likely Applications: The principal application is AMCA MK-2, but the engine could also support future TEJAS MK-2 configurations, unmanned combat aircraft and other advanced Indian fighter programs.

Strategic Objective: The program is broader than merely producing an engine for AMCA. Its purpose is to create a domestic capability to design, manufacture, test, certify, maintain and upgrade high-thrust military aero-engines, addressing the long-standing weakness exposed by the Kaveri program and India’s continuing dependence on imported engines.

Important Qualification

There are currently two related but distinct descriptions of the program. The January 2026 GTRE EOI formally concerns the selection of an Indian Development-cum-Production Partner for the AHTCE; it does not itself name SAFRAN or guarantee a production contract.

Separately, reporting since August 2025 has identified SAFRAN as India’s preferred international co-development partner for a 120 kN-class AMCA engine.

Therefore, the safest formulation is that India appears to be building a GTRE-led, SAFRAN-supported, Indian-industry-executed national aero-engine program, but the final contractual structure, financial commitment, intellectual-property wording, prototype schedule and exact thrust-growth plan should be treated as reported or proposed until the CCS approval and formal agreement are publicly confirmed.

IDN (With Agency Inputs)


India’s Next Engine Push: Powering Missiles And Drones Beyond Fighter Jets


India is simultaneously pursuing two distinct propulsion paths. On one hand, the country is working towards developing a jet engine capable of powering a fighter aircraft, Times of India reported.

On the other, it is building a new family of compact jet engines designed for cruise missiles and drones. This dual-track approach reflects both the strategic need for indigenous fighter propulsion and the growing importance of small, expendable engines for unmanned systems.

The Defence Research and Development Organisation’s Gas Turbine Research Establishment has announced the successful development of a 350 kg class expendable turbojet engine. Such engines are typically used in cruise missiles, drones, and increasingly in jet-powered loitering munitions.

The United States’ Tomahawk missile, for example, employs a 400 kg class engine producing around 4 kN thrust. India’s Long Range Land Attack Cruise Missile uses a 450 kg class Small Turbofan Engine, placing it in the same category of compact powerplants.

India’s armed forces have already begun integrating these technologies into operational systems. The army has ordered 106 Agniveg jet-powered loitering munitions. These weapons are designed to penetrate deep into enemy territory with a Circular Error Probable of less than five metres.

Being jet-powered, they fly at significantly higher speeds than the Iranian Shahed or Russian Geran drones, making them more effective in contested environments. This capability allows India to strike targets deep inside adversary territory with precision.

The propulsion ecosystem has reached a turning point with the demonstration of a Rotating Detonation Engine in the 5 kN thrust class by private firm D-Propulse. This test, conducted at a certified facility, marks a departure from the sub-scale experiments that have dominated global RDE research.

The ability to sustain a stable supersonic detonation wave with an integrated aerospike nozzle at higher thrust levels places India among a select group of nations with this capability.

Rotating Detonation Engines are notable for their simplicity and efficiency. By eliminating complex turbine blades, they reduce manufacturing costs and enable mass production of attrition-tolerant cruise missiles.

Fuel efficiency gains of 15–25% translate directly into longer ranges or extended loiter times without increasing missile size or weight. This allows aircraft to carry more precision standoff weapons per sortie, enhancing operational effectiveness.

Engines in the 5–10 kN thrust range are ideally suited for tactical missiles carrying warheads of 100–200 kg. Such systems would be smaller, faster, and more cost-effective than current designs.

Looking ahead, RDEs could power supersonic cruise missiles, high-altitude drones, and even replace conventional upper stages in launch vehicles. Combined-cycle drones integrating gas turbines with detonation stages are also a possibility in the longer term.

The proof motor demonstrated by D-Propulse was designed with aerodynamic and geometric constraints of a flight vehicle, showing clear operational intent. The combustor diameter, annular flow channel, injector placement, ignition sequencing, and nozzle geometry were configured to mirror deployable weapon systems. Challenges such as cyclic pressure shocks, heat fluxes, and preventing upstream detonation wave travel were addressed through advanced materials and nozzle engineering.

Despite these achievements, significant hurdles remain. Preventing inlet unstart caused by backpressure is critical, as it can destabilise the propulsion system. The vibro-acoustic profile of detonation engines requires advanced dampening solutions similar to those used in scramjets.

The current demonstration achieved Technology Readiness Level 5, validating the design in a relevant operational environment, but it was still conducted on a static rig with pre-conditioned feeds. Flight conditions will introduce additional complexities such as angle-of-attack distortions and fluctuating pressures.

The decision to move directly to a 5 kN thrust class rather than remain confined to smaller demonstrators reflects confidence in scaling and thermal management. Successfully pairing a pressure-gain combustor with an aerospike nozzle demonstrates mastery over expansion dynamics and flow-field management.

This achievement is unprecedented in the air-breathing RDE domain and positions India alongside the United States, Russia, and China, though much of their work remains classified or confined to lower thrust levels.

Transitioning from test rig to operational deployment will require endurance testing, materials validation, and integration with flight systems. The severe vibro-acoustic loads, thermal stresses, and structural fatigue associated with detonation combustion must be addressed.

Integration into missiles, drones, or launch vehicles will also demand advances in avionics, guidance, and systems engineering. Materials research, coatings, and cooling strategies will be critical to withstand detonation environments.

Indigenous RDE capability strengthens India’s expertise in advanced combustion and opens avenues for new platform designs. Sustained investment, rigorous testing, and collaboration with academia and research institutions will be essential to translate these developments into operational reality.

The demonstration of a 5 kN air-breathing rotating detonation engine marks a historic milestone, signalling India’s entry into an elite club of nations with demonstrated macro-scale capability in detonation propulsion.

Agencies


TEJAS To AMCA: India’s Indigenous Fighter Aircraft Evolution Accelerates


The development of India’s indigenous fighter aircraft follows a clear technological pathway from TEJAS MK-1A to TEJAS MK-2 and ultimately to the Advanced Medium Combat Aircraft. Each stage builds upon the proven systems of the previous generation, ensuring continuity, reduced risk, and accelerated timelines.

TEJAS MK-2 is not starting from scratch. It is designed on a strong foundation, with nearly sixty‑five to seventy percent of technology, systems, and know‑how shared with TEJAS MK-1A. This commonality shortens development time and reduces technical risk.

Several systems remain similar between MK-1A and MK-2. The fly‑by‑wire architecture philosophy is retained. The mission computer continues with high commonality. Cockpit layout and philosophy remain consistent, supported by glass displays and pilot interface systems such as HOTAS and HMI. 

The stores management system and weapons integration framework are carried forward. Radar architecture from the Uttam family is reused. Electronic warfare software architecture from DARE and UEWS remains common.

The datalink system is preserved. Software development tools are reused. Test infrastructure such as Iron Bird, HIL, and SIL continues to support development. Flight test team experience is invaluable and rated very high. Certification processes under CEMILAC are already established. Composite manufacturing know‑how is mature. The supply chain and vendor ecosystem are strengthened by continuity.

This reuse of proven technology is described as “Proven. Reused. Accelerated.” It explains why TEJAS MK-2 is expected to reach Initial Operational Clearance faster than a clean‑sheet design.

The benefits to TEJAS MK-2 from TEJAS MK-1A are significant. Development time is shorter. Technical risk is lower. Costs are reduced. The ecosystem and manpower are mature. The path to IOC is faster. The systems are proven in the Indian operational context.

TEJAS MK-2 benefits from TEJAS MK-1A through proven technologies and architecture, mature software and avionics, an established manufacturing ecosystem, experienced teams and processes, validated test and certification systems, and operational feedback from the Indian Air Force.

The Advanced Medium Combat Aircraft benefits from TEJAS MK-2 in several ways. Advanced aerodynamics including canards, LERX, and intakes are refined. Experience with F414 engine integration is gained.

Higher power and thermal management systems are developed. Advanced flight control law experience is accumulated. Sensor and electronic warfare integration maturity is achieved. System integration at a larger scale is validated.

The indigenous capability growth pathway is clearly defined. TEJAS MK-1A built the foundation and proved the way. TEJAS MK-2 builds on strength, evolving and enhancing capability. AMCA is built for the future, representing a leap ahead and leadership in advanced combat aircraft.

The journey from MK-1A to MK-2 and from MK-2 to AMCA is described as continuous indigenous excellence. India is stronger today and aims to be unstoppable tomorrow.

The aircraft are designed, developed, and built in India, for India, by India, with pride. The Aeronautical Development Agency highlights this as part of Atmanirbhar Bharat and Atmanirbhar Defence.

Additional context shows that TEJAS MK-1A has already entered service with the Indian Air Force, with contracts signed for over eighty aircraft. TEJAS MK-2 is expected to be a medium‑weight fighter with greater payload capacity, advanced avionics, and enhanced survivability.

It will integrate the General Electric F414 engine, providing higher thrust compared to the F404 engine of MK-1A. AMCA is planned as a fifth‑generation stealth fighter, incorporating advanced radar‑absorbing materials, internal weapons bays, and supercruise capability.

The development pathway ensures that India does not repeat mistakes of starting afresh with each project. Instead, it builds layer upon layer of proven systems, reducing costs and timelines. This approach mirrors successful strategies adopted by nations such as the United States with the F‑16 leading to the F‑35, and by European nations with the Eurofighter leading to future sixth‑generation projects.

India’s defence aviation ecosystem in Bangalore has matured significantly, with Hindustan Aeronautics Limited, ADA, DRDO laboratories, and a growing private sector supply chain contributing to the effort. Composite manufacturing facilities, avionics integration centres, and flight test teams are now experienced in handling complex projects.

The TEJAS MK-2 is expected to carry a payload of over six and a half tons, compared to the MK-1A’s capacity of around three and a half tons. It will feature canards for improved manoeuvrability, larger fuselage for increased fuel, and advanced avionics including Uttam AESA radar.

AMCA will take these advancements further, aiming for stealth shaping, internal weapons carriage, and advanced sensor fusion.

This pathway represents not only technological progress but also strategic independence. By building on indigenous systems, India reduces reliance on foreign suppliers and strengthens its defence industrial base.

The journey from MK-1A to MK-2 and AMCA is a symbol of national pride and technological resilience.

IDN (With Agency Inputs)


Mumbai Start-Up Breaks Western Monopoly With Indigenous Missile Cooling Technology


A Mumbai-based start-up, Techno Defence Pvt Ltd, has successfully developed an indigenous Joule-Thomson (JT) Cooler for missile seekers, breaking a long-standing Western monopoly and opening up a high-value defence export market, Business Line reported.

The innovation, achieved with DRDO support, is now attracting international interest but remains subject to strict Missile Technology Control Regime (MTCR) restrictions.

The breakthrough began with a chance meeting between IIT-Bombay alumnus Dr Pravin Salinkar and a DRDO lab director around 2017–2018. Salinkar, aged 75, accepted the challenge of developing a critical defence technology.

Alongside fellow IIT-Mumbai alumnus Sudarshan Saraf, he co-founded Techno Defence Pvt Ltd, assembling a small team of engineers and technicians, mostly women, to tackle the project.

By 2020, the team secured funding under DRDO’s Technology Development Fund (TDF) scheme to design and build the JT Cooler. This miniature, lightweight, vibration-free device rapidly chills infrared sensors and focal plane arrays in missiles to cryogenic temperatures of approximately –196 °C.

Such cooling is essential because infrared seekers generate their own thermal energy at ambient temperatures, producing background noise known as dark current. This noise can overwhelm weak infrared signals from distant targets, causing the missile to lose track. The JT Cooler suppresses this internal noise, enabling precise target detection and tracking.

The JT Cooler is a strategic technology controlled under the MTCR and previously possessed only by countries such as the United States, France, and Israel. It is not required for missiles that rely on satellite navigation systems, but for infrared-guided seekers it is indispensable.

Techno Defence’s design differs from foreign models, relying on specialised production techniques and equipment developed in collaboration with small-scale and cottage industries. The assembly process demands skilled work under microscopes, pure materials, and clean environments, all subject to stringent quality controls to meet defence-grade reliability standards.

By 2023–24, the project was completed and handed over to DRDO for trials, which proved successful. The indigenous JT Cooler has now positioned India as a credible player in a niche but strategically vital defence technology domain.

The innovation has already attracted interest from foreign buyers, though exports require special permits due to MTCR restrictions. This marks a significant step in India’s defence self-reliance program, reducing dependence on imports and strengthening the country’s technological sovereignty.

Techno Defence operates as a joint venture with Technocraft Industries (India) Limited, giving the project a strong industrial base.

The company has also collaborated with DRDO’s Solid State Physics Laboratory and Research Centre Imarat, ensuring scientific depth and operational credibility. The JT Cooler joins a growing list of indigenous defence technologies that India is developing to meet both domestic needs and international demand.

The lean manufacturing success story highlights how a small team, leveraging local industries and innovative design, cracked one of the most complex engineering challenges in missile technology.

It demonstrates India’s ability to compete in high-value defence markets, while also showcasing the role of DRDO’s funding programs in nurturing private-sector innovation.

Agencies


Monday, August 10, 2026

TEJAS MK-2 Prototypes To Feature BEL Communication And Night Flying LRU Systems For Faster IOC Transition


BEL’s development of the Communication System and Night Flying LRUs (Line Replaceable Units) for the TEJAS MK-2 marks a decisive step toward ensuring that the prototypes closely mirror the final operational configuration, according to a report in Alpha Defense. 

This alignment is expected to compress the transition from flight testing to Initial Operational Clearance (IOC), potentially accelerating induction timelines for the Indian Air Force.

The TEJAS MK-2 is being equipped with advanced communication systems, notably the indigenously developed Software Defined Radio‑2 (SDR‑2). This multi‑band, multi‑mode, multi‑channel system provides secure voice and data communication across line‑of‑sight and beyond‑line‑of‑sight domains.

It supports diverse waveforms including frequency hopping, mobile ad hoc networking, and SATCOM protocols, ensuring interoperability with allied forces and resilience in contested environments. The SDR‑2’s compliance with Software Communications Architecture standards allows seamless upgrades without hardware changes, a critical advantage for long‑term adaptability.

BEL’s role extends to developing Night Flying Line Replaceable Units (LRUs), which are essential for enhancing operational flexibility.

These LRUs include avionics modules optimised for low‑visibility missions, integrating with cockpit displays, navigation systems, and sensor suites. Their inclusion at the prototype stage ensures that flight testing will validate systems already aligned with final combat requirements, reducing the need for extensive retrofits later.

The Defence Electronics Application Laboratory has also advanced Mobile Ad‑Hoc Networking (MANET) technologies for the MK-2. MANET enables dynamic, self‑organising communication networks between aircraft, ground stations, and relay nodes without fixed infrastructure.

This capability is vital for modern network‑centric warfare, allowing real‑time data sharing and situational awareness across dispersed assets. Together with SDR, MANET ensures robust connectivity in both conventional and asymmetric combat scenarios.

The MK-2’s avionics architecture has shifted to a Modular Open Systems Approach, enabling plug‑and‑play integration of weapons and sensors. This reduces certification bottlenecks and accelerates the induction of indigenous systems such as the Uttam AESA radar and Unified Electronic Warfare Suite.

The architecture also supports real‑time sensor fusion, combining radar, infrared search and track, and electronic warfare inputs into a coherent tactical picture. This enhances survivability and lethality in complex threat environments.

By incorporating BEL’s communication and night‑flying systems early, the MK-2 prototypes will be closer to production‑standard aircraft.

This reduces the gap between prototype validation and operational clearance, potentially shortening the IOC timeline. The Indian Air Force, which plans to induct between 110 and 120 MK-2 fighters, stands to benefit from faster squadron replenishment, replacing ageing Mirage 2000, Jaguar, and MiG‑29 fleets more efficiently.

The integration of these systems also reflects India’s broader defence self‑reliance strategy. With licensed production of the GE F414‑INS6 engine underway and indigenous avionics maturing, the MK-2 program demonstrates a coordinated push toward sovereign capability.

The smoother transition from testing to IOC will not only strengthen India’s air combat architecture but also reinforce its aerospace ecosystem by embedding advanced indigenous technologies at the core of frontline fighters.

Agencies


TEJAS MK-1A Upgrade: India’s Kaveri 2.0 Core Overhaul Targets 90kN Thrust To Replace American Engines Reports Business Today


India’s indigenous fighter jet engine effort is entering a decisive new phase with the Gas Turbine Research Establishment’s Kaveri 2.0 core overhaul, Business Today reported.

The Defence Research and Development Organisation is pursuing a complete structural rebirth of the engine, conceived more than four decades ago and separated from the Light Combat Aircraft project in 2008 after performance shortfalls.

The earlier Kaveri Derivative Engine delivered between 49kN and 52kN of thrust, which fell short of modern fighter operational requirements.

The new design represents a fundamental architectural shift rather than an incremental modification. Engineers are now targeting 55kN to 60kN of dry thrust and 90kN to 100kN of maximum wet thrust with an afterburner. This performance threshold is intended to match the American-made General Electric F404 engines currently powering the TEJAS MK-1A.

The GTRE is managing a deliberate two-pronged engine strategy. A heavier 120kN to 140kN engine is being co-developed with French aerospace firm SAFRAN for the fifth-generation Advanced Medium Combat Aircraft under the Advanced High Thrust Class Engine program.

In parallel, Kaveri 2.0 is charted as a dedicated medium-thrust workhorse, specifically designed to replace imported engines on frontline fighters during their mid-life upgrades.

To achieve this leap in performance, GTRE is completely rebuilding the engine core. A redesigned High-Pressure Compressor is central to the overhaul, maximising pressure ratios and fuel efficiency. The new core incorporates single-piece blisks machined from advanced titanium alloys, eliminating air leaks, reducing structural weight, and raising the thrust-to-weight ratio.

Additionally, single-crystal turbine blades are being integrated into the assembly. These blades can tolerate higher internal operating temperatures, boosting thermal efficiency and enabling sustained performance under demanding combat conditions.

The transition to an indigenous 90kN engine carries direct strategic weight for the Indian Air Force. With the current GE F404 engines slated to reach their mid-life replacement cycle in the 2030s, a fully qualified Kaveri 2.0 would provide an in-house alternative.

This reduces foreign hardware dependence and insulates the fleet from international supply chain disruptions that have already delayed deliveries of imported powerplants.

Elements of the Kaveri technology baseline are already in active service. A dry, non-afterburning derivative of the engine successfully powers DRDO’s Ghatak stealth unmanned combat aerial vehicle, demonstrating the adaptability of the design.

The Kaveri 2.0 initiative is not only about replacing engines but also about building a stronger indigenous aerospace propulsion ecosystem. If successful, it will mark a major milestone in India’s journey toward technological independence in one of the most complex fields of defence engineering.

Agencies


Special Winter Gear Fund Sanctioned For CRPF Troops At High-Altitude Bases Post Pahalgam Terror Attack


The Home Ministry has sanctioned over ₹4.54 crore for specialised winter clothing and equipment for CRPF troops stationed at high-altitude Temporary Operating Bases (TOBs) in Jammu and Kashmir, ensuring better survival and combat

The Union Home Ministry has sanctioned over ₹4.54 crore for the Central Reserve Police Force to procure specialised winter clothing and equipment for about 600 troops stationed at high-altitude Temporary Operating Bases in Jammu and Kashmir, strengthening their ability to conduct long-duration patrols and counter-terror operations post the 2025 Pahalgam attack.

A special allocation has been made to ensure CRPF personnel deployed above 6,000 feet are adequately equipped for extreme conditions. The sanctioned amount will cover procurement of gaiters, sleeping bags, snow boots, goggles, insulating mats, rucksacks, gloves, tents, thermal insoles, blankets and rescue bags.

Troops will also receive extreme cold weather clothing developed by the Defence Research and Development Organisation under the Himsuraksha brand, designed specifically for Himalayan conditions.

Most of these items had already been supplied since last year, but in July the Ministry of Home Affairs granted complete authorisation to a CRPF proposal to procure them afresh. This ensures that commandos are better prepared for reconnaissance patrols, survival and combat in snow-bound terrain. The life expectancy of the gear is about two years, and the funds can be revised upwards for fresh procurement when required.

The TOBs, established above 6,000 feet, house CRPF commandos tasked with launching search and assault operations against terrorists hiding in Dhoks, the mud and stone huts scattered across the mountains. Terrorists have long used these arduous terrains to conceal themselves before or after attacks in the plains, making the TOBs strategically vital.

The first TOB was created in July 2025, and by now 55 such bases have been erected across Jammu and Kashmir. Each base accommodates 15–25 armed troops with basic facilities for rest and recuperation. 

One of these bases was instrumental in July 2025 during Operation Mahadev, when security forces eliminated three terrorists responsible for the April Pahalgam attack. That attack in the scenic Baisaran valley had killed 26 people, mostly tourists, and prompted the accelerated establishment of TOBs.

The proposal to create TOBs had been under consideration since 2022–23, but their operationalisation was fast-tracked after the Pahalgam incident. The new fund allocation ensures that troops stationed in these inhospitable regions are not only combat-ready but also capable of sustaining themselves during extended missions.

The equipment, particularly DRDO’s Himsuraksha clothing, is tailored to withstand sub-zero temperatures, heavy snowfall and icy winds, thereby reducing risks of frostbite and hypothermia.

This initiative reflects a broader strategy to strengthen counter-terror operations in Jammu and Kashmir by combining infrastructure with advanced gear. It also underscores the government’s emphasis on indigenous technology, as DRDO-developed equipment is being prioritised.

The TOBs, with their enhanced facilities and gear, are expected to further improve the effectiveness of CRPF operations in the higher reaches, ensuring terrorists cannot exploit the terrain as safe havens.

Agencies