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The Aeronautical Journal· 2026Q2

The infrared lock on range equation: non-linear interplay of source, atmosphere and sensor

Rajat Arora, Ramraj H. Sundararaj, Dinesh Durai, Abhijit Kushari

Short summary

Detection range in infrared systems is fundamentally limited by a geometric contrast threshold, independent of sensor gain, and diminishes non-linearly with atmospheric attenuation.

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Key points

  • Infrared detection range is governed by a nonlinear interplay of target emission, atmospheric attenuation, background, and sensor sensitivity.
  • A geometric contrast limit imposes an absolute upper bound on detectability, irrespective of sensor gain.
  • Detection range responsiveness decreases non-linearly with increasing optical depth, diminishing returns from signature reduction and sensor improvements.
  • Numerical evaluations confirm transitions between signal-limited and atmosphere-limited detection regimes for typical systems.

AI-generated from the title and abstract; the full text is not read.

Abstract

Abstract Infrared signature reduction is widely pursued under the assumption that lowering target radiant intensity directly reduces detection range. However, infrared detection is governed by a nonlinear interaction between target emission, atmospheric attenuation, background accumulation and sensor sensitivity. This study revisits the lock-on range problem by formulating the detection condition as a transcendental implicit equation derived from first-principles radiometric considerations. Analysis reveals the existence of a geometric contrast limit that imposes an absolute upper bound on detectability, independent of sensor gain. Sensitivity analysis further shows that detection-range responsiveness decreases progressively with increasing optical depth, leading to diminishing returns from both infrared signature reduction and sensor performance improvements in a strongly attenuating environment. Numerical evaluation using representative infrared search-and-track and missile-seeker systems confirms the transition between signal-limited and atmosphere-limited detection regimes. The results are further interpreted from both seeker designer and stealth designer perspectives, providing practical insight into how atmospheric conditions govern the effectiveness of sensor improvements and infrared signature suppression.

The authors' abstract, as published at the source. The Aeronautical Journal, 2026 · DOI ↗

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Field: Aerospace Engineering

Aerospace EngineeringEngineering