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1.
Life Sci Space Res (Amst) ; 39: 26-42, 2023 Nov.
Artículo en Inglés | MEDLINE | ID: mdl-37945086

RESUMEN

The Light Ion Detector for ALTEA (LIDAL) is a new instrument designed to measure flux, energy spectra and Time of Flight of ions in a space habitat. It was installed in the International Space Station (Columbus) on January 19, 2020 and it is still operating. This paper presents the results of LIDAL measurements in the first 17 months of operation (01/2020-05/2022). Particle flux, dose rate, Time of Flight and spectra are presented and studied in the three ISS orthogonal directions and in the different geomagnetic regions (high latitude, low latitude, and South Atlantic Anomaly, SAA). The results are consistent with previous measurements. Dose rates range between 1.8 nGy/s and 2.4 nGy/s, flux between 0.21 particles/(sr cm2 s) and 0.32 particles/(sr cm2 s) as measured across time and directions during the full orbit. These data offer insights concerning the radiation measurements in the ISS and demonstrate the capabilities of LIDAL as a unique tool for the measurement of space radiation in space habitats, also providing novel information relevant to assess radiation risks for astronauts.


Asunto(s)
Radiación Cósmica , Monitoreo de Radiación , Vuelo Espacial , Nave Espacial , Actividad Solar , Monitoreo de Radiación/métodos , Dosis de Radiación , Iones
2.
Life Sci Space Res (Amst) ; 18: 1-11, 2018 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-30100142

RESUMEN

As manned spaceflights beyond low Earth orbit are in the agenda of Space Agencies, the concerns related to space radiation exposure of the crew are still without conclusive solutions. The risk of long-term detrimental health effects needs to be kept below acceptable limits, and emergency countermeasures must be planned to avoid the short-term consequences of exposure to high particle fluxes during hardly predictable solar events. Space habitat shielding cannot be the ultimate solution: the increasing complexity of future missions will require astronauts to protect themselves in low-shielded areas, e.g. during emergency operations. Personal radiation shielding is promising, particularly if using available resources for multi-functional shielding devices. In this work we report on all steps from the conception, design, manufacturing, to the final test on board the International Space Station (ISS) of the first prototype of a water-filled garment for emergency radiation shielding against solar particle events. The garment has a good shielding potential and comfort level. On-board water is used for filling and then recycled without waste. The successful outcome of this experiment represents an important breakthrough in space radiation shielding, opening to the development of similarly conceived devices and their use in interplanetary missions as the one to Mars.


Asunto(s)
Astronautas , Radiación Cósmica/efectos adversos , Protección Radiológica/instrumentación , Trajes Espaciales/normas , Vestuario , Humanos , Modelos Teóricos , Fantasmas de Imagen , Dosis de Radiación , Traumatismos por Radiación/etiología , Traumatismos por Radiación/prevención & control , Vuelo Espacial
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