Flat-spin recovery system
Spinning technique for low altitude, single parachute recovery system
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Spinning technique for low altitude, single parachute recovery system
Deployment methods using parachutes for balloon inflation, and altitude cycling for inflatable buoyant Venus station
Dynamic stability of Apollo command module with and without drogue parachutes at low subsonic speeds in spin tunnel
Mechanical construction of two types of Gerdien condenser rocket probes, noting instrumentation racks and inflatable parachutes for descent
Space environmental effects on filled elastomers, nylon parachute material and adhesion of metals
Planetary missions continue to grow larger and more complex. Furthermore, the current focus on human exploration of the Moon and Mars, as well as Mars Sample Return(MSR), place increas-ingly stringent requirements on the reliability of the entry, descent, and landing (EDL) system that ensures the safe delivery of payload or crew to their destination. Planetary EDL is an area in which mission designers are critically reliant on modeling and simulation to demonstrate the reliability of the system, as there are no ground facilities that are able to fully test these systems in a flight-relevant environment. NASA’s state-of-the-art modeling and simulation capability must continually evolve to meet the needs of the next generation of planetary EDL. To accomplish this aim, NASA’s Entry Systems Modeling (ESM) Project was formed in 2013and is funded bythe Space Technology Mission Directorate(STMD) and Science Mission Directorate (SMD). ESM is the Agency’s only cross-cutting effort for advancing entry systems modeling and simulation capabilities across a range of technical disciplines and Solar System destinations. ESM is a portfolio project covering a variety of mid-TRL research efforts within four core EDL-related areas of investment: (1) Thermal protection material modeling, (2) Shock layer kinetics and radiation, (3) Aerosciences, and (4) Guidance, navigation, and con-trol. The material modeling group creates detailed material response modelsof thermal protection systems (TPS)from the micro to macro scale, and at the fun-damental and engineering levels. Shock layer kinetics and radiation focuses on radiative heating of space-craft, quantum chemistry and benchmark experiments for validation.Aerosciences is a broad research area that impacts many aspects of entry systems, including parachutes, aerodynamics, and turbulent heating augmentation due to TPS roughness.The guidance, navigation,and control effort under ESM is expanding the capabilities of NASA’s main flight mechanics tool, POST2, for use on high-performance computing architectures and to generalize interoperability with external applications for more detailed end-to-end simula-tion.In addition, several focusedresearch topics have been approvedto augment ESM’s core portfolio. These include efforts for deep post-flight analysis of Mars 2020/MEDLI2 flight data; development ofTPS failure models; improvement of hypersonic wakeflow models; and a recently concluded effort to provide material response models for NuSil-coated PICA heat-shield material. This presentation will discuss each of these investment areas and demonstrate via real mission examples how advances to the state-of-the-art enabled by ESM are directly impacting the missions of today and tomorrow, including InSight, Mars 2020, Mars Sample Return, Orion, and Dragonfly.
Earth-landing systems for mercury, gemini and apollo spacecraft, including parachutes and paragliders
Cardiovascular reaction during parachute training, vibration exposure, and prolonged confinement and isolation as measure of efficiency and endurance of man for space flight training
Earth landing systems describing Mercury drogue and main parachutes, Gemini paraglider and Apollo impact attenuation systems
Systematic theory of parachute-borne blunt probe operating in ionospheric D region
Martian atmosphere sampling by sensors of parachute dropped capsule
Preflight planning and training stages for Gemini V, considering spacecraft test, mission simulators, planetarium, survival and parachute training, etc
Clamp of the slideable jaw type can be applied to moving lines such as cables or ropes. The clamp has a trigger-operated jaw that can be attached to a redrop parachute on a moving tow cable. The trigger mechanism maintains the jaws retracted in the housing until they are released for clamping.
Aerodynamic, structural, and thermal analyses for supersonic planetary entry parachute design
Stress analysis and functions in membrane analysis of scalloped thin walled shells like parachutes
Mission lander maps for parametric data, entry aeroshell, and parachute subsystem used in Mars hard lander study
Transtage and piggyback payloads, planetary entry parachute, Voyager lander, lifting body and Apollo applications programs at Martin Marietta
Large scale parachute tests of aerodynamic decelerator systems at 132,000 ft simulating conditions of Mars atmosphere at 15,000 ft