PS 26050HARDWAREMedTech / BioTech / HealthTechHeavy R&D

High Altitude Performance Optimization and Robust Design of Anti-Drone System.

DRDODepartment of Defence Production /IDEX
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30-Second Plain English Summary

Anti-drone jammers and directed energy counter-UAS systems deployed at high-altitude Himalayan forward posts (Ladakh/Sikkim >14,000 ft) suffer severe RF power amplifier overheating, sub-zero battery failure, and reduced RF beam propagation in thin air. Build an AI-assisted high-altitude anti-drone optimization and thermal-RF simulation platform that dynamically tunes RF jamming frequencies, manages thermal Peltier cooling, and maximizes jammer neutralization range.

5-Dimension Strategic ScorecardOverall Score: 4.2 / 5.0
Innovation
4.4 / 5
36h Feasibility
4 / 5
Uniqueness
3.8 / 5
Jury Appeal
4.2 / 5
Tech Depth
4.8 / 5
Recommended System Architecture Pipeline
Radar / RF Scanner Inputs -> C2 Tactical Threat Engine -> Protocol-Aware SDR Jammer Synthesizer -> Closed-Loop Thermal Controller -> DRDO Tactical Air-Defense Console
Hardware Bill of Materials (BOM) & Cost BreakdownEstimated component unit economics in Indian Rupee (INR)
Prototype Unit Cost:1,74,500
ComponentSpecificationQtyEst. Cost
Wideband Direction-Finding Software Defined Radio (1MHz - 6GHz)Rapid RF spectrum scanner detecting rogue drone telemetry and video links in high-altitude borders124,500
Dual Optical & Long-Wave Infrared (LWIR) Heated Gimbal CameraAnti-icing heated optical payload detecting drone thermal exhaust in freezing Ladakh weather138,000
Multi-Band 20W Directional RF Jamming Power AmplifiersHigh-gain amplifier targeting 2.4GHz, 5.8GHz ISM and GPS/NavIC navigation bands218,000
Ruggedized Pan-Tilt Positioner with Low-Viscosity Synthetic LubricantsHigh-torque pan-tilt gimbal designed for subzero wind loads and micro-radian tracking accuracy129,000
NVIDIA Jetson AGX Orin Industrial AI Processing UnitExecutes real-time optical/RF drone detection and trajectory prediction in thin-air environments165,000
Power Input: 24V DC / 230V AC Hybrid Military Generator / Cold-Rated Battery
Form Factor: Mil-Spec IP67 Hardened Tripod / Mast-Mounted Defense Enclosure
Architecture & Prototyping Strategy: Two-tier presentation strategy: (1) Hackathon Benchtop MVP (~₹15k–₹25k) with HackRF One SDR + pan-tilt servo mount + USB webcam + software jammer trigger; (2) Border Defense System (~₹1.74L) with 6GHz wideband SDR, dual heated LWIR gimbal, 20W directional jammer, and Jetson AGX Orin.
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Official Government Problem Description
• Background: Anti-drone systems are deployed for detection, tracking, identification and neutralization of unauthorized drones threatening strategic, defence and critical infrastructure assets. The operational performance of anti-drone systems is generally optimized for standard environmental conditions; however, their behavior changes significantly in high altitude regions. High altitude environments are characterized by extreme cold temperatures, low atmospheric pressure, reduced air density, dust, snow, and high wind conditions. These factors influence the performance of mechanical, electrical, electronic, RF, electro-optical and stabilization subsystems. Components such as cables, motors, connectors, bearings, batteries, sensors and precision positioning mechanisms may experience altered material properties, increased rigidity, thermal stresses and degraded operational characteristics. For precision systems requiring micro-radian level pointing, tracking and stabilization accuracy, even minor changes in cable flexibility, structural dynamics, lubrication properties and component response can lead to significant degradation in system performance. Therefore, there is a requirement to develop an anti-drone system with suitable design methodologies and component selection approaches to ensure reliable performance in harsh high-altitude operational conditions. • Description: The above statement envisages the development of a high-altitude capable antidrone system with robust environmental tolerance and sustained operational effectiveness under extreme climatic and atmospheric conditions. The system shall assess the impact of low temperature, low pressure, dust ingress, high wind loads, thermal cycling and reduced atmospheric density on overall system performance and develop suitable mitigation methodologies. • A portable or deployable anti-drone system architecture with optimized mechanical, electrical, RF and electro-optical subsystems shall be developed. The system shall incorporate: • Robust design methodologies for maintaining detection, tracking and engagement accuracy at high altitude. • Suitable component selection and qualification for reliable operation in harsh environments. • Compensation mechanisms for environmental effects impacting system dynamics, stabilization, pointing accuracy and sensor performance. • Thermal management and environmental protection methodologies for critical components and subsystems. • Adaptive control algorithms, health monitoring techniques and predictive performance assessment methods to minimize environmental impact on operational capability. Special emphasis shall be given to understanding and compensating the influence of temperature-induced cable rigidity, component derating, structural deformation, wind disturbances and sensor drift, particularly in systems demanding high precision pointing and tracking performance. • Expected Solution: Development of a robust anti-drone system optimized for high-altitude operation, incorporating: • Environmental hardening and ruggedized system design suitable for extreme cold, low pressure, dust and high wind conditions. • Appropriate component selection, qualification and validation methodologies for high-altitude deployment. • Compensation techniques to minimize environmental effects on system stabilization, pointing accuracy, tracking performance and sensing capability. • Thermal control, protective packaging and subsystem reliability enhancement measures. • Modelling, simulation and field evaluation methodologies for assessing antidrone system performance under representative high-altitude operational scenarios. The final system should demonstrate reliable detection, identification, tracking and neutralization capability with minimal performance degradation under high-altitude environmental conditions, while maintaining the desired operational intent and precision requirements.
AI & PPT Citation Format

Smart India Hackathon 2026 Problem Statement PS-26050: "High Altitude Performance Optimization and Robust Design of Anti-Drone System.", Ministry: DRDO. Strategy & Architecture via SIH ONE (https://sihone.pages.dev/ps/26050)

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