RMIData, LLC — Department of Defense SBIR Phase I: AF161-096

RMIData, LLC — SBIR Phase I award from Department of Defense.

Amount
$147,158
Agency
Department of Defense · Air Force
Program / Phase
SBIR · Phase I
Topic
AF161-096
Solicitation
2016.1
NAICS
Place of performance
CO
Period
2016-06-13 → 2017-03-30

Description

ABSTRACT: The objective of this work is to expand short wave infrared (SWIR) measurement capabilities to ground-viewing radiometers (GVRs) designed, developed, tested, and deployed by the University of Arizona Remote Sensing Group (RSG) to validate the radiometric calibration of sensors onboard Earth-observing satellites. The current version GVR operates at the Radiometric Calibration Test Site (RadCaTS), a well-understood vicarious calibration facility in use by the RSG for over 10 years. RadCaTS instrumentation includes four multispectral ground-viewing radiometers, a meteorological station, and an AERONET Cimel sun photometer. A satellite uplink allows for near real-time processing. Surface reflectance and atmospheric characterization determined by RadCaTS instruments are used as inputs in MODTRAN radiative transfer code to predict top-of-atmosphere spectral radiance (or reflectance) for the time of overpass. Results validate the radiometric calibration of the sensors under test. RadCaTS currently provides NIST-traceable radiometric calibration data, without the requirement for on-site personnel, to government and commercial satellite organizations such as NASA, the European Space Agency (ESA), RapidEye, and DigitalGlobe. The purpose of this work is to validate the lifetime radiometric calibration of geostationary satellite sensors that operate in the 4002500-nm spectral range.This approach is independent of any onboard calibration systems.; BENEFIT: Military, government, and private entities could benefit from the vicarious reflectance-based satellite imager calibration products that could be delivered by VIS/NIR/SWIR GVRs as a result of this SBIR.With Phase II resources, an advanced reflectance-based vicarious calibration system could be configured which could have the following attributes: 1) ruggedized, self-contained, and portable for rapid deployment; and 2) provide for remote, unattended operation anywhere satellite links and power constraints allow. As satellite imagers increase in spatial and spectral resolution, and the need for quick response (temporal resolution) is ever greater, the value of advanced vicarious calibration systems is of increasing importance.