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Pole erosion measurements for the development model of the Magnetically Shielded Miniature Hall Thruster (MaSMi-DM)
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X-57 “Maxwell” High-Lift Propeller Testing and Model Development
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Gas-Particle Interaction Model Development in Plume Surface Interaction Erosion and Cratering
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Numerical Investigation of Flame Propagation for Explosion Risk Modeling Development
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Numerical Investigation of Flame Propagation for Explosion Risk Modeling Development
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Nonlinear Propellant Slosh Damping Testing, Analysis, and Implementation for Launch Vehicle Flight Controls Part 1: Testing, Analysis and Model Development
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Life Cycle Cost Modeling of High-Speed Commercial Aircraft - Final Review - AnyLogic Model Development
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Carmel Valley Urban Development: Modeling Land Cover Change to Understand Conservation Outcomes in Coastal California
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Cultivating Tomorrow's Earth Observation Users: The NASA DEVELOP Model for Geospatial Capacity Building
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Intelligent Change Detection System: Autonomous Intelligent Machine Agent Model Development
NASA’s significant role in facilitating the harmonious integration of unmanned aircraft systems (UAS), with other aerial vehicles operating in the National Airspace System (NAS), has revealed a need for more advanced technological tools than are being utilized currently. This technology would lend itself to significantly assisting Direct-Action Aviation Personnel (DAAP) with the ingress and egress of UAS operations within the NAS. Providing research findings that would reduce technical barriers, associated with UAS-NAS integration, has been a persistent effort by both NASA and the FAA. One such research effort, pursued by NASA’s Transformative Tools and Technologies – Revolutionary Aviation Mobility (T3-RAM) project, is the development of an autonomous intelligent machine (AIM) agent that would aid DAAP functioning as implemented in remote ground control stations (RGCS). This evolution of the “human-machine” symbiosis, within the aviation environment, is necessary for many reasons. For example, there are projections of large increases to the 864,000 registered UAS and 45,000 aviation operations taking place in the NAS each day. With a data output range from 1 to 20 terabytes per flight or each aerial vehicle, which is projected to have proportional rate increase to that of registered UASs. It is evident, that due to the projected increase of UASs and their generated data, the human-agent’s data managing capabilities will be quickly overwhelmed by the enormous amounts of data emanating in the NAS. The research efforts presented in this paper puts forward results from the development, assessment, and verification of a previously conceptualized AIM-Agent that combats actionable-data (information) errors resulting from the visual perception phenomenon known as “change blindness” (CB). CB has been identified as one of the main culprits of information erroring encountered within the ground control station operator (GCSO) community.
Intelligent Change Detection System: Autonomous Intelligent Machine Agent Model Development
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Leveraging Local Communities, Partner-Driven Decision-Making, and Earth Observations to Enhance the NASA DEVELOP Model
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Risk Model Development for Radiation-induced Parkinson’s Disease Mortality and Consequence for Space Exploration
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Melt Pond Conditions on Declining Arctic Sea Ice Over 1979–2016: Model Development, Validation, and Results
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Modeling methane emissions from arctic lakes: Model development and site‐level study
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Calibration of Airframe and Occupant Models for Two Full-Scale Rotorcraft Crash Tests
Two full-scale crash tests of an MD-500 helicopter were conducted in 2009 and 2010 at NASA Langley's Landing and Impact Research Facility in support of NASA s Subsonic Rotary Wing Crashworthiness Project. The first crash test was conducted to evaluate the performance of an externally mounted composite deployable energy absorber under combined impact conditions. In the second crash test, the energy absorber was removed to establish baseline loads that are regarded as severe but survivable. Accelerations and kinematic data collected from the crash tests were compared to a system integrated finite element model of the test article. Results from 19 accelerometers placed throughout the airframe were compared to finite element model responses. The model developed for the purposes of predicting acceleration responses from the first crash test was inadequate when evaluating more severe conditions seen in the second crash test. A newly developed model calibration approach that includes uncertainty estimation, parameter sensitivity, impact shape orthogonality, and numerical optimization was used to calibrate model results for the second full-scale crash test. This combination of heuristic and quantitative methods was used to identify modeling deficiencies, evaluate parameter importance, and propose required model changes. It is shown that the multi-dimensional calibration techniques presented here are particularly effective in identifying model adequacy. Acceleration results for the calibrated model were compared to test results and the original model results. There was a noticeable improvement in the pilot and co-pilot region, a slight improvement in the occupant model response, and an over-stiffening effect in the passenger region. This approach should be adopted early on, in combination with the building-block approaches that are customarily used, for model development and test planning guidance. Complete crash simulations with validated finite element models can be used to satisfy crash certification requirements, thereby reducing overall development costs.