Chabot Nancy L, Peplowski Patrick N, Ernst Carolyn M, Nair Hari, Lucks Michael, Steele R Josh, Lawrence David J
Johns Hopkins University Applied Physics Laboratory, 11100 Johns Hopkins Rd, Laurel, MD 20723 USA.
Earth Planets Space. 2021;73(1):217. doi: 10.1186/s40623-021-01509-x. Epub 2021 Dec 13.
The MEGANE instrument onboard the MMX mission will acquire gamma-ray and neutron spectroscopy data of Phobos to determine the elemental composition of the martian moon and provide key constraints on its origin. To produce accurate compositional results, the irregular shape of Phobos and its proximity to Mars must be taken into account during the analysis of MEGANE data. The MEGANE team is adapting the Small Body Mapping Tool (SBMT) to handle gamma-ray and neutron spectroscopy investigations, building on the demonstrated record of success of the SBMT being applied to scientific investigations on other spacecraft missions of irregularly shaped bodies. This is the first application of the SBMT to a gamma-ray and neutron spectroscopy dataset, and the native, three-dimensional foundation of the SBMT is well suited to MEGANE's needs. In addition, the SBMT will enable comparisons between the MEGANE datasets and other datasets of the martian moons, including data from previous spacecraft missions and MMX's multi-instrument suite.
MMX任务搭载的MEGANE仪器将获取火卫一的伽马射线和中子光谱数据,以确定这颗火星卫星的元素组成,并为其起源提供关键约束条件。为了得出准确的成分结果,在分析MEGANE数据时必须考虑火卫一的不规则形状及其与火星的距离。MEGANE团队正在对小型天体测绘工具(SBMT)进行调整,以处理伽马射线和中子光谱研究,这是基于SBMT在其他针对不规则形状天体的航天器任务科学调查中已被证明的成功记录。这是SBMT首次应用于伽马射线和中子光谱数据集,SBMT的原生三维基础非常适合MEGANE的需求。此外,SBMT将使MEGANE数据集能够与火星卫星的其他数据集进行比较,包括来自以往航天器任务的数据和MMX的多仪器套件数据。