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Incineration of inedible biomass in a regenerative life support system - update of development activities at ARC

机译:再生寿命支持系统中无法焚烧现代生物质 - 弧形的发展活动更新

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Of the many competing technologies for resource recovery from solid wastes for long-duration manned missions such as a lunar or Mars base, incineration technology is one of the most promising and certainly the most well developed in a terrestrial sense. Various factors are involved in the design of an optimum fluidized bed incinerator for inedible biomass. The factors include variability of moisture in the biomass, the ash content, and the amount of fuel nitrogen in the biomass. The crop mixture in the waste will vary; consequently the nature of the waste, the nitrogen content, and the biomass heating values will vary as well. Variation in feed will result in variation in the amount of contaminants such as nitrogen oxides that are produced in the combustion part of the incinerator. The incinerator must be robust enough to handle this variability. Research at NASA Ames Research Center using the fluidized bed incinerator has yielded valuable data on system parameters and variables. In the last year, process modifications were carried out to improve the energy efficiency and the contaminant cleanup of the existing fluidized bed incinerator. An experimental evaluation of the power usage and the catalytic cleanup by the system was conducted.
机译:在许多竞争技术中,从固体废物中恢复到长期载人的令人伤害的任务,如月球或火星基地,焚烧技术是最有前途的,肯定是陆地意义上最良好的。各种因素参与了最佳流化床焚烧炉的设计,用于不可食用的生物量。因素包括生物质中水分,灰分含量和生物质中的燃料氮量的可变性。废物中的作物混合物将变化;因此,废物的性质,氮含量和生物质加热值也会变化。进料的变化将导致焚烧液中燃烧部分中产生的污染物如氮氧化物的变化。焚烧炉必须足够强大以处理这种可变性。 NASA AMES研究中心的研究使用流化床焚烧炉在系统参数和变量上产生了有价值的数据。在去年,进行了处理修改,以提高现有流化床焚烧炉的能效和污染物清理。进行了对电力使用和系统催化清洁的实验评估。

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