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January 22, 2026Urban Science0 citationsOpen Access

Non-Imaging Optics as Radiative Cooling Enhancers: An Empirical Performance Characterization

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ESEdgar SaavedraGCGuillermo del CampoIGIgnacio Gómez

Key Points

  • This research aims to explore the enhancement of radiative cooling performance using non-imaging optics in real-world conditions.
  • Conducted indoor screening with an infrared lamp to measure heat gain suppression of RC film.
  • Performed outdoor rooftop tests on aluminum plates with varying orientations and CPC integration.
  • Validated results using a modified solar thermal unit to assess RC effects in a water circuit.
  • Achieved an 88 °C temperature reduction in controlled settings compared to a black-painted reference.
  • Demonstrated peak daytime temperature reductions near 8 °C with CPC integration under outdoor conditions.
  • Showed that the combination of CPC optics and RC strips could amplify water temperature reduction significantly.

Abstract

Radiative cooling (RC) offers a passive pathway to reduce surface and system temperatures by emitting thermal radiation through the atmospheric window, yet its daytime effectiveness is often constrained by geometry, angular solar exposure, and practical integration limits. This work experimentally investigates the use of passive non-imaging optics, specifically compound parabolic concentrators (CPCs), as enhancers of RC performance under realistic conditions. A three-tier experimental methodology is followed. First, controlled indoor screening using an infrared lamp quantifies the intrinsic heat gain suppression of a commercial RC film, showing a temperature reduction of nearly 88 °C relative to a black-painted reference. Second, outdoor rooftop experiments on aluminum plates assess partial RC coverage, with and without CPCs, under varying orientations and tilt angles, revealing peak daytime temperature reductions close to 8 °C when CPCs are integrated. Third, system-level validation is conducted using a modified GUNT ET-202 solar thermal unit to evaluate the transfer of RC effects to a water circuit absorber. While RC strips alone produce modest reductions in water temperature, the addition of CPC optics amplifies the effect by factors of approximately three for ambient water and nine for water at 70 °C. Across all configurations, statistical analysis confirms stable, repeatable measurements. These results demonstrate that coupling commercially available RC materials with non-imaging optics provides consistent and measurable performance gains, supporting CPC-assisted RC as a scalable and retrofit-friendly strategy for urban and building energy applications while calling for longer-term experiments, durability assessments, and techno-economic analysis before deriving definitive deployment guidelines.

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Cite This Study

Saavedra et al. (2026) studied this question.

synapsesocial.com/papers/6971be2c642b1836717e2cdfhttps://doi.org/10.3390/urbansci10010064
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