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Significant reduction in energy for plant-growth lighting in space using targeted LED lighting and spectral manipulation

机译:使用有针对性的LED照明和光谱操纵,可显着减少空间植物生长照明的能源

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Bioregenerative life-support systems involving photoautotrophic organisms will be necessary to sustain long-duration crewed missions at distant space destinations. Since sufficient sunlight will not always be available for plant growth at many space destinations, efficient electric-lighting solutions are greatly needed. The present study demonstrated that targeted plant lighting with light-emitting diodes (LEDs) and optimizing spectral parameters for close-canopy overhead LED lighting allowed the model crop leaf lettuce (Lactuca sativa L. cv. 'Waldmann's Green') to be grown using significantly less electrical energy than using traditional electric-lighting sources. Lettuce stands were grown hydroponically in a growth chamber controlling temperature, relative humidity, and CO_2 level. Several red:blue ratios were tested for growth rate during the lag phase of lettuce growth. In addition, start of the exponential growth phase was evaluated. Following establishment of a 95% red + 5% blue spectral balance giving the best growth response, the energy efficiency of a targeted lighting system was compared with that of two total coverage (untargeted) LED lighting systems throughout a crop-production cycle, one using the same proportion of red and blue LEDs and the other using white LEDs. At the end of each cropping cycle, whole-plant fresh and dry mass and leaf area were measured and correlated with the amount of electrical energy (kWh) consumed for crop lighting. Lettuce crops grown with targeted red + blue LED lighting used 50% less energy per unit dry biomass accumulated, and the total coverage white LEDs used 32% less energy per unit dry biomass accumulated than did the total coverage red + blue LEDs. An energy-conversion efficiency of less than 1 kWh/g dry biomass is possible using targeted close-canopy LED lighting with spectral optimization. This project was supported by NASA grant NNX09AL99G.
机译:涉及光合自养生物的生物再生生命支持系统对于维持在遥远太空目的地的长期载人飞行任务将是必要的。由于在许多空间目的地中不一定总是有足够的阳光用于植物生长,因此非常需要高效的电照明解决方案。本研究表明,使用发光二极管(LED)进行有针对性的植物照明并优化密顶架空LED照明的光谱参数可使模型作物生菜(Lactuca sativa L. cv。'Waldmann's Green')显着生长。与使用传统的电光源相比,电能更少。生菜架在控制温度,相对湿度和CO_2水平的生长室内水培生长。在莴苣生长的滞后期,测试了几种红色:蓝色比率的生长速率。另外,评估了指数生长期的开始。建立95%的红色+ 5%的蓝色光谱平衡以提供最佳的生长响应后,将目标照明系统的能源效率与整个作物生产周期中两个总覆盖(非目标)LED照明系统的能源效率进行了比较,其中一个使用相同比例的红色和蓝色LED以及其他使用白色LED的LED。在每个种植周期结束时,测量整株植物的新鲜和干燥质量以及叶面积,并将其与作物照明所消耗的电能(kWh)相关联。使用有针对性的红色+蓝色LED照明种植的莴苣作物每单位干燥生物量积累的能源减少了50%,而白色LED的总覆盖量每单位干燥生物量积累的能量比红色+蓝色LED减少了32%。使用具有光谱优化功能的有针对性的封闭式LED照明,可以实现低于1 kWh / g干燥生物质的能量转换效率。该项目得到了NASA资助NNX09AL99G的支持。

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