{"@type": "dcat:Dataset", "accessLevel": "public", "bureauCode": ["026:00"], "contactPoint": {"@type": "vcard:Contact", "fn": "Jason Derleth", "hasEmail": "mailto:jason.e.derleth@nasa.gov"}, "description": "&lt;p&gt;Our Phase I study demonstrated that&amp;nbsp;muons, the long-range charged component of GCR showers, can penetrate SSBs on the order of a km in diameter or less, providing&amp;nbsp;information on their interior structure. Muons produced in Earth&amp;rsquo;s atmosphere have been applied to image the interior of large&amp;nbsp;objects, such as the Great Pyramids and volcanos. In Phase I, we found that the production of muons in the solid surfaces of airless&amp;nbsp;bodies is much smaller than in Earth&amp;rsquo;s atmosphere. Nevertheless, the flux of transmitted muons is sufficient to detect inclusions within&amp;nbsp;an asteroid or comet in a reasonable period of time, ranging from hours to weeks, depending on the size of the SSB and the density&amp;nbsp;contrast, position and size of the inclusion. The intrinsic spatial resolution of muon radiography (&amp;ldquo;muography&amp;rdquo;) is on the scale of&amp;nbsp;a few meters. The spatial resolution that can be achieved in practice depends on signal intensity and integration time, the angular&amp;nbsp;resolution of the muon tracker (hodoscope) and details of data reduction and analysis methodology.&lt;/p&gt;&lt;p&gt;Our Phase II project will continue to assess remaining unknowns for the application of muography to determining the interior&amp;nbsp;structure of SSBs, assess risks for implementation, and provide a roadmap for development of SSB muography beyond the NIAC&amp;nbsp;program. To achieve our objectives, we will work on four interrelated tasks:&lt;/p&gt;&lt;ul&gt;&lt;li&gt;Signal and background characterization: Characterize the production and transmission of muons and secondary particle backgrounds&amp;nbsp;made by cosmic ray showers in SSBs;&lt;/li&gt;&lt;li&gt;Imaging studies: Develop methods to determine the density structure of SSB interiors and near-surface features from radiographic and&amp;nbsp;tomographic data;&lt;/li&gt;&lt;li&gt;Instrument design: Using simulations and bench-top laboratory experiments, investigate specific concepts for the design of compact&amp;nbsp;hodoscopes that can be deployed on a spacecraft or in situ;&lt;/li&gt;&lt;li&gt;Synthesis: Determine the range of applicability of the concept, identify the steps needed for maturation of the concept, and explore&amp;nbsp;concepts for a pilot muography mission.&lt;/li&gt;&lt;/ul&gt;&lt;p&gt;Successful implementation of SSB muography requires a thorough understanding of muon production and transmission as well as&amp;nbsp;sources of background. Phase I demonstrated that muon production is sensitive to the density of the top-most meter of the regolith.&amp;nbsp;Thus, unknown variations in regolith density may obscure interior structure. Limb imaging of muons and the use of radar data&amp;nbsp;to remotely map near-surface density will be explored as possible ways to mitigate variations in muon production. A compact,&amp;nbsp;inexpensive system that could be deployed on a spacecraft or in situ appears to be feasible and warrants further study. A successful&amp;nbsp;design must be capable of separately measuring the transmitted muon signal from the primary GCRs and secondary particles that&amp;nbsp;scatter into the field-of-view of the hodoscope. This can be accomplished, for example, using Cherenkov radiators to reject lower&amp;nbsp;energy scattered particles and to determine particle direction. Concepts for imaging systems identified in Phase I will be scrutinized.&lt;/p&gt;&lt;p&gt;Phase II will be carried out by a multidisciplinary project team with broad experience in cosmic ray physics, remote sensing,&amp;nbsp;meteoritics and planetary science. While the development of muography for SSBs is risky, the potential benefits are significant.&amp;nbsp;There are presently no established methods to directly characterize the interior structure and macroporosity of an asteroid or comet.&amp;nbsp;Muography could provide a direct and cost-effective means of probing the interior density structure.", "distribution": [{"@type": "dcat:Distribution", "downloadURL": "http://techport.nasa.gov/xml-api/14336", "format": "XML", "mediaType": "application/xml"}], "identifier": "TECHPORT_14336", "issued": "2014-08-01", "keyword": ["active", "nasa-headquarters", "project"], "landingPage": "http://techport.nasa.gov/view/14336", "modified": "2025-03-31", "programCode": ["026:000"], "publisher": {"@type": "org:Organization", "name": "Space Technology Mission Directorate"}, "references": ["http://techport.nasa.gov/doc/home/TechPort_Advanced_Search.pdf", "http://techport.nasa.gov/fetchFile?objectId=3447", "http://techport.nasa.gov/fetchFile?objectId=3448", "http://techport.nasa.gov/fetchFile?objectId=3456", "http://techport.nasa.gov/fetchFile?objectId=6560", "http://techport.nasa.gov/fetchFile?objectId=6561", "http://techport.nasa.gov/fetchFile?objectId=6584", "http://techport.nasa.gov/home"], "temporal": "2014-08-01T00:00:00Z/2016-07-01T00:00:00Z", "title": "Deep Mapping of Small Solar System Bodies with Galactic Cosmic Ray Secondary Particle Showers Project"}