A Hierarchical Modeling 51猎奇入口 of Absorbing Aerosol Impacts on Precipitation Characteristics and Extremes
Journal of Advances in Modeling Earth Systems American Geophysical Union (AGU) 18:6 (2026) e2025MS005400
Abstract:
Mid鈥怚nfrared Compositional Spectral Parameters for the Lunar Thermal Mapper Instrument Onboard Lunar Trailblazer
Earth and Space Science 13:5 (2026)
Abstract:
The Lunar Trailblazer mission launched in February of 2025 with the goal of characterizing lunar surface water through a targeted campaign. One instrument on the mission, the Lunar Thermal Mapper (LTM), was tasked with measuring the surface temperature to compare with maps of the form and abundance of water on the lunar surface. LTM's secondary science goals were to identify regolith composition and thermophysical properties as exhibited by mid鈥恑nfrared spectral features. Here we show the utility of LTM in distinguishing lunar regolith composition with its 11 narrow bands. Five spectral parameter products were developed to aid in early identification of regions of interest for follow鈥恛n spectral analyses. These products include the Christiansen feature (CF) value, weighted absorption center (WAC) value, WAC band depth, Transparency Roll鈥恛ff, and a Diviner CF value equivalent. These products would be used mainly to flag these regions for more detailed follow鈥恥p study with the entire spectral capabilities of the mission instrumentation. The Lunar Thermal Mapper (LTM) is one of two instruments on the Lunar Trailblazer mission launched in February 2025. LTM's primary goal is to provide surface temperature measurements for the lunar surface, in particular for identifying and mapping water on the Moon. LTM is also capable of identifying the compositional and physical properties of different rocks on the surface. Here, we test those capabilities and determine five methods for quickly distinguishing bulk properties of the lunar rocks that can be used by the community to identify regions of interest for further investigation. Mid鈥恑nfrared compositional parameters were created and tested for the Lunar Trailblazer mission Spectral parameters can distinguish bulk silicate mineralogy, and identify regions of compositional interest The Christiansen feature roll鈥恛ff parameter can provide an initial identification of areas with distinct thermophysical properties Mid鈥恑nfrared compositional parameters were created and tested for the Lunar Trailblazer mission Spectral parameters can distinguish bulk silicate mineralogy, and identify regions of compositional interest The Christiansen feature roll鈥恛ff parameter can provide an initial identification of areas with distinct thermophysical propertiesThe Lunar Trailblazer Lunar Thermal Mapper Instrument
Journal of Geophysical Research Planets American Geophysical Union (AGU) 131:5 (2026)
Abstract:
Abstract The Lunar Thermal Mapper (LTM) instrument is a UK Space Agency funded infrared radiometer designed and built for the National Aeronautics and Space Administration Lunar Trailblazer mission launched in February 2025. LTM is a pushbroom imaging filter radiometer with 15 channels that cover the wavelength range from 6.25 to 100聽渭m with a 40鈥70聽m/pixel ground sampling. Lunar Trailblazer's mission is to understand the form, abundance and distribution of water across the lunar surface. LTM provides an independent measure of temperature to investigate thermal effects on water's mapped distribution as well as an independent measure of surface mineralogy. The LTM instrument's 15 infrared channels include four broadband temperature sensing channels (6.25鈥12.5, 12.5鈥25, 25鈥50 and 50鈥100聽渭m) plus 11 additional narrow band (鈭40聽cm 鈭1 ) filters from 鈭7鈥10聽渭m to map and discriminate silicate composition. We review the LTM design and calibration campaign at the University of Oxford's Space Instrumentation facility and show that the instrument has sensitivity from 400聽K with a Noise Equivalent Temperature Difference of <0.1聽K to <1聽K at 110聽K for typical integration times (e.g.,聽30聽Hz readout) from a nominal 70鈥130聽km lunar orbit design altitude. Plain Language Summary This paper describes the Lunar Thermal Mapper instrument for NASA's Lunar Trailblazer mission. Lunar Thermal Mapper is a thermal imaging system designed to sense the temperature and composition of the lunar surface using the thermal infrared. By sensing the temperature environment of the Moon, Lunar Thermal Mapper supports the Trailblazer's mission to map water on the lunar surface. Key Points The Lunar Thermal Mapper (LTM) instrument will measure thermal infrared radiation from the Moon across from 400聽K to <110聽K The LTM instrument completed assembly, testing, calibration and integration on the Lunar Trailblazer spacecraft The LTM instrument demonstrated sensitives of <0.1聽K at 400聽K and <1聽K at 110聽K during ground testing and calibrationDiurnal Variability Modulates Episodic Convection in Hothouse Climates Over Ocean and Swamp鈥怢ike Surface Conditions
Journal of Advances in Modeling Earth Systems Wiley 18:2 (2026) e2025MS004992
Abstract:
Plain Language Summary: In hot and wet 鈥渉othouse鈥 climate conditions, rainfall transitions from a pattern that fluctuates from about a mean of 3 mm day 鈭 1 ${\text{day}}^{-1}$ to more intense outbursts that are separated by multi鈥恉ay dry spells. Previous studies on hothouse climates did not consider the role of the diurnal cycle even though it strongly controls precipitation in Earth's current climate. This study uses radiative鈥恈onvective equilibrium simulations to investigate the impact of rising temperatures on the transition to hothouse conditions, incorporating the diurnal cycle with both swamp鈥恖ike and open ocean surface conditions. We find that episodic precipitation occurs at surface temperatures above 322 K even when accounting for the diurnal cycle. However, the diurnal cycle significantly influences the timing of convection and rainfall at high temperatures with precipitation primarily starting late at night or in the early morning.3D Modeling of Moist Convective Inhibition in Idealized Sub-Neptune Atmospheres
The Astrophysical Journal American Astronomical Society 995:1 (2025) 41