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Lighting equipment for a crop growing system in microgravity conditions for space mission.

机译:用于微重力条件下的太空作物种植系统的照明设备。

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The international scientific community has been making efforts towards developing technologies to realize a sustainable spaceflight Bioregenerative Life Support System for food production, water purification, air revitalization, and waste recovery in the International Space Station. Space environment, characterized by the absence of the Earth's gravitational and magnetic fields, of tidal forces, and of the influence of the cyclical events of celestial mechanics, complicates the realization of this kind of system. A critical analysis of the lighting equipment requirements for a crop growing system is presented based on the data and information collected on several Bioregenerative Life Support Systems developed or under development for spaceflight. The study aims to compare different lighting equipment for Bioregenerative Life Support System. Traditional lighting regimes and innovative ones, such as light emitting diode module providing photons in the red and blue regions of the spectrum, was analysed in order to assess the lighting engineering solutions for a crop growing system on-board the International Space Station supported by Italian Space Agency. The lighting system must maximize photon flux in the spectral range to satisfy plant photosynthesis needs, spatial uniformity and energy efficiency while the thermal load must be minimized because natural convection does not exist in microgravity to transfer heat away from the lights. Plants need photosynthetically active radiation in the wavelengths range between 400 and 700 nm for photosynthesis. Besides, it is necessary to control radiation level at 670 and 735 nm which drives the phytochrome response, that is related to plant morphogenesis. Radiation over 750 nm seems not having direct effect on the plant growth and thus needs to be removed as heat via circulation of the chamber air by means of air ventilation..
机译:国际科学界一直在努力开发技术,以实现国际空间站中用于食品生产,水净化,空气再生和废物回收的可持续航天生物再生生命支持系统。以地球重力和磁场,潮汐力以及天体力学周期性事件的影响为特征的空间环境使这种系统的实现变得复杂。根据在几个为航天开发或正在开发的生物再生生命支持系统上收集的数据和信息,对作物生长系统的照明设备要求进行了严格的分析。该研究旨在比较生物再生生命支持系统的不同照明设备。分析了传统的照明方式和创新的照明方式,例如在光谱的红色和蓝色区域提供光子的发光二极管模块,以便评估由意大利支持的国际空间站上的农作物种植系统的照明工程解决方案航天局。照明系统必须在光谱范围内使光子通量最大化,以满足植物的光合作用需求,空间均匀性和能源效率,同时必须最小化热负荷,因为微重力中不存在自然对流以将热量从灯中转移出去。植物需要光合作用的波长在400至700 nm之间的光合作用来进行光合作用。此外,有必要将驱动植物色素形成的光辐射控制在670和735 nm,这与植物的形态发生有关。超过750 nm的辐射似乎对植物的生长没有直接影响,因此需要通过室内通风通过室内空气流通将其作为热量去除。

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