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| 988 | _aSpringer_Engineering_2019 | ||
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| 020 | _a9783319095752 | ||
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_a10.1007/978-3-319-09575-2 _2doi |
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_aHandbook of Life Support Systems for Spacecraft and Extraterrestrial Habitats _cedited by Erik Seedhouse, David J Shayler. |
| 264 | 1 |
_aCham _bSpringer International Publishing : _bImprint: Springer _c2019. |
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| 300 |
_a1 recurso en línea (1200 páginas) _b500 ilustraciones, 200 ilustraciones a color |
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_2rdacontent _aTexto _btxt |
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_2rdamedia _aelectrónico _bc |
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_2rdacarrier _arecurso electrónico _bcr |
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_atext file _bPDF |
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| 490 | 0 | _aEngineering (Springer-11647) | |
| 505 | 0 | _aThe Space Environment -- Requirements for Human Survival in Space -- Elements of Spacecraft Environmental Control and Life Support Systems -- Open Regenerative Life Support Systems -- Bioregenerative Life Support Systems -- Space Suits and Extravehicular Activity -- Mission Simulations/Analogs and Research -- Future of Life Support in Space. | |
| 520 | _aThis reference work gathers all of the latest technologies, information, definitions and explanations of spacecraft life support systems, while providing in-depth coverage of the current knowledge of the business of keeping astronauts alive during their missions. It is intended that this MRW be the go-to reference work not only for aerospace engineers, but also for graduate and undergraduate aerospace engineers and space scientists. The area of spacecraft life support is comprised of dozens of specialties and sub-specialties within the fields of engineering, biophysics, and medicine. As space agencies around the world pursue cutting-edge life support technologies, much more information and data is accumulated. When humans move out into the solar system to stay for long durations, the most immediate challenge will be the provision of reliable and robust life support systems in locations devoid of food, air, and water. These life support systems must provide these commodities in each phase of spaceflight, including intra-vehicular activity (IVA) and extra-vehicular activity (EVA). Systems supporting human life must also fulfill myriad requirements: exceptional reliability in the space environment, allowing maintenance and component replacement in space; reduced resupply mass of consumables and spares; the ability to utilize local planetary resources for self sufficiency; and minimized mass power and volume requirements. These requirements will assume ever greater importance as bolder missions are envisioned and more sophisticated life support systems are required. For example, the next decade could see human missions to Mars and a return to the Moon. In the not-so-distant future, there is the prospect of Mars One and the creation of a permanent extraterrestrial colony. It may appear that a suitable environment can be created simply by reproducing terrestrial environmental conditions within a vehicle. In reality, it is first necessary to define the environmental characteristics humans require and match these requirements with the myriad design constraints. This is no easy task, because implementing these environmental parameters within a spacecraft can be challenging, while balancing the various requirements and constraints can test the abilities of even the most gifted aerospace engineer. Yet it is a crucial field of study and the experts contributing to this volume are on the very front lines. | ||
| 650 | 7 |
_2embne _aAstronáutica _9138156 |
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| 650 | 7 |
_2embne _9671960 _aClima espacial |
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| 700 | 1 |
_aSeedhouse, Erik _eeditor _4edt _4http://id.loc.gov/vocabulary/relators/edt _995319 |
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| 700 | 1 |
_aShayler, David J _eeditor _4edt _4http://id.loc.gov/vocabulary/relators/edt |
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| 773 | 0 | _tSpringer Nature Living Reference | |
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_uhttps://go.openathens.net/redirector/universidadeuropea.es?url=https://doi.org/10.1007/978-3-319-09575-2 _zAcceso a este recurso digital (usuarios Universidad Europea de Madrid) |
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_2lcc _cLE |
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