Radiometric and Actinometric Traceability for Photopolymer Processing
Segurola, Juan
Photopolymer processes are often described by an irradiance, exposure time and nominal wavelength. Those quantities are not sufficient to establish what radiation reached a sample. Detector responsivity, spectral bandwidth, spatial non-uniformity, angle, distance, window transmission, temporal modulation and sample geometry can produce different exposures while the displayed settings remain identical. Chemical actinometers add a valuable reaction-based measurement but do not remove these dependencies; they introduce their own absorption, quantum-yield, conversion and analytical boundaries.
This review develops a traceability architecture for radiation used in photopolymer processing. It distinguishes spectral irradiance, band-integrated irradiance, radiant exposure, spectral photon exposure and chemically measured photon quantity. It connects national-scale spectral-irradiance calibration to working instruments, sample-plane mapping and in-process checks while preserving uncertainty at every transfer. Radiometers and actinometers are treated as complementary: the former measures a physical radiation field through a calibrated responsivity, whereas the latter reports a photochemical response under a defined spectral and geometrical condition. The review proposes procedures for spectral mismatch, pulsed or modulated sources, imaging systems, area mapping and cross-platform transfer. The central conclusion is that an exposure setting becomes comparable only when the measurand, plane, spectrum, geometry, timing and uncertainty are fixed.
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DOI de esta versión 10.5281/zenodo.22842498 · Todas las versiones en Zenodo