Near-term lander experiments for growing plants on Mars: requirements for information on chemical and physical properties of Mars regolith.

Andrew C Schuerger, Douglas W Ming, Horton E Newsom, Robert J Ferl, Christopher P McKay
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Abstract

In order to support humans for long-duration missions to Mars, bioregenerative Advanced Life Support (ALS) systems have been proposed that would use higher plants as the primary candidates for photosynthesis. Hydroponic technologies have been suggested as the primary method of plant production in ALS systems, but the use of Mars regolith as a plant growth medium may have several advantages over hydroponic systems. The advantages for using Mars regolith include the likely bioavailability of plant-essential ions, mechanical support for plants, and easy access of the material once on the surface. We propose that plant biology experiments must be included in near-term Mars lander missions in order to begin defining the optimum approach for growing plants on Mars. Second, we discuss a range of soil chemistry and soil physics tests that must be conducted prior to, or in concert with, a plant biology experiment in order to properly interpret the results of plant growth studies in Mars regolith. The recommended chemical tests include measurements on soil pH, electrical conductivity and soluble salts, redox potential, bioavailability of essential plant nutrients, and bioavailability of phytotoxic elements. In addition, a future plant growth experiment should include procedures for determining the buffering and leaching requirements of Mars regolith prior to planting. Soil physical tests useful for plant biology studies in Mars regolith include bulk density, particle size distribution, porosity, water retention, and hydraulic conductivity.

在火星上种植植物的近期着陆器实验:对火星风化层化学和物理特性信息的要求。
为了支持人类在火星上的长期任务,生物再生高级生命支持系统(ALS)已经被提出,该系统将使用高等植物作为光合作用的主要候选者。水培技术被认为是ALS系统中植物生产的主要方法,但使用火星风化层作为植物生长介质可能比水培系统有几个优势。使用火星风化层的优点包括植物必需离子的生物可利用性,植物的机械支持,以及一旦到达表面就很容易获得材料。我们建议在近期的火星登陆任务中必须包括植物生物学实验,以便开始确定在火星上种植植物的最佳方法。其次,我们讨论了一系列土壤化学和土壤物理测试,这些测试必须在植物生物学实验之前进行,或者与植物生物学实验一起进行,以便正确解释火星风化层中植物生长研究的结果。推荐的化学测试包括测量土壤pH值、电导率和可溶性盐、氧化还原电位、基本植物营养素的生物利用度和植物毒性元素的生物利用度。此外,未来的植物生长实验应包括在种植前确定火星风化层的缓冲和浸出要求的程序。对火星风化层植物生物学研究有用的土壤物理测试包括体积密度、粒度分布、孔隙度、保水性和水力导电性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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