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Plant age affects the long-term growth responses to reduced total pressure and oxygen partial pressure.

机译:植株年龄影响对总压和氧气分压降低的长期生长响应。

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摘要

Fundamental to the future of space exploration is the development of advanced life support systems capable of maintaining crews for significant periods without re-supply from Earth. Bioregenerative life support systems harness natural ecosystem processes and employ plant photosynthesis and transpiration to produce food, supply oxygen, and regenerate water while consuming carbon dioxide. Proposed Lunar and Martian exploration has prompted interest into the effects of hypobaria on plant development. Reduced atmospheric pressure conditions will reduce the pressure gradient between the structure and the local environment thereby decreasing the engineering requirements, leakage and mass required to construct the growth facility. To establish the optimal conditions for reduced pressure plant growth structures it is essential to determine the atmospheric pressure limits required for plant development and growth. Due to its physiological importance, oxygen will compose a significant portion of this atmosphere. The effects of reduced atmospheric pressure and decreased oxygen partial pressures on plant germination, growth and development were assessed in the University of Guelph's hypobaric plant growth chambers. Treatments included a range of total pressures from 10 to 98 kPa and oxygen partial pressures from 2 to 20 kPa. Results demonstrated that reduced atmospheric pressure had minimal effect on plant growth, net carbon exchange rate and transpiration if the physiologically important gases including carbon dioxide, oxygen and water vapour, were maintained above threshold levels. The reduction of oxygen partial pressures below 7 kPa had drastic consequences across all atmospheric pressures with poor germination, seedling establishment and growth. It is evident that the response of plants grown at reduced pressures from young seedlings differs from that of older plants that were established at ambient conditions and then subjected to the atmospheric adjustment. The young plant tissues adapt in response to the extreme conditions and maintain productivity despite the limited atmosphere.
机译:太空探索未来的基础是先进的生命支持系统的开发,该系统能够在不重新提供地球的情况下长时间维持机组人员。生物再生生命支持系统利用自然生态系统过程,利用植物的光合作用和蒸腾作用来生产食物,提供氧气并在消耗二氧化碳的同时再生水。拟议的月球和火星探测活动引起了人们对下鞭毛对植物发育的影响的兴趣。降低的大气压条件将减小结构与局部环境之间的压力梯度,从而降低工程要求,建造生长设施所需的泄漏量和质量。为了建立减压植物生长结构的最佳条件,必须确定植物发育和生长所需的大气压极限。由于其生理重要性,氧气将构成该气氛的很大一部分。在Guelph大学的低压植物生长室中评估了大气压力降低和氧分压降低对植物发芽,生长和发育的影响。处理包括10到98 kPa的总压力范围和2到20 kPa的氧分压范围。结果表明,如果将包括二氧化碳,氧气和水蒸气在内的生理重要气体保持在阈值以上,降低的气压对植物生长,净碳交换速率和蒸腾作用的影响最小。低于7 kPa的氧气分压降低在所有大气压下均具有严重后果,发芽,幼苗生长和生长均较差。显然,年轻幼苗在减压下生长的植物的反应与在环境条件下建立并随后进行大气调节的老植物的反应不同。尽管大气有限,幼小植物组织仍能适应极端条件并保持生产力。

著录项

  • 作者

    Wehkamp, Cara Ann P.;

  • 作者单位

    University of Guelph (Canada).;

  • 授予单位 University of Guelph (Canada).;
  • 学科 Agriculture Horticulture.;Biology Plant Physiology.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 135 p.
  • 总页数 135
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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