Effects of Stockpiling on Topsoil Biogeochemistry for Semiarid Mine Reclamation.

IF 1.5 4区 工程技术 Q3 METALLURGY & METALLURGICAL ENGINEERING
Mining, Metallurgy & Exploration Pub Date : 2025-01-01 Epub Date: 2025-01-08 DOI:10.1007/s42461-024-01164-2
Jessica Ledesma, Julia W Neilson, Raina M Maier, Alicja Babst-Kostecka, Craig Rasmussen
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Abstract

Stockpiling and storage of topsoil for use in reclamation and revegetation are common practices for many mining operations. However, stockpiling can lead to significant changes in topsoil physical and biogeochemical properties that may be detrimental to reclamation. The objective of this research was to assess the effect of long-term stockpiling on soil biogeochemical properties in a semiarid region. We hypothesized that soil properties would change systematically with depth reflecting a shift to anaerobic conditions and resulting in a general decrease in soil health. To address this hypothesis, boreholes > 20-m deep were drilled into a 14-year-old topsoil stockpile at a copper mine in Arizona and samples collected every ~ 75 cm. Samples were analyzed for soil DNA biomass, texture, general agronomic properties, mineral composition, oxalate and dithionite extraction of active mineral phases, and total elemental composition. Depth profiles revealed non-systematic changes in biogeochemical variables with depth, including variation in soil DNA biomass, organic matter (OM), extractable nitrate (NO3-N) and ammonium (NH4-N) nitrogen, plant-available manganese (Mn) and iron (Fe), and oxalate-extractable Mn and Fe. Differences in biogeochemical properties were associated with zones of variable redox state mediated by OM content and layer depth. Anaerobic zones were observed at depths greater than 4 m where OM > 1%, and aerobic zones were observed at depths up to 15 m where OM < 1%. This study demonstrates the importance of stockpile composition on biogeochemical processes during storage and contributes to improved understanding of topsoil management as a resource for reclamation of degraded mine lands in semiarid environments.

Supplementary information: The online version contains supplementary material available at 10.1007/s42461-024-01164-2.

半干旱矿区复垦屯垦对表土生物地球化学的影响
储存表土用于复垦和植被恢复是许多采矿作业的常见做法。然而,储存可能导致表土物理和生物地球化学性质的重大变化,这可能不利于复垦。本研究的目的是评估长期储存对半干旱区土壤生物地球化学性质的影响。我们假设土壤性质会随着深度系统地发生变化,反映出向厌氧条件的转变,并导致土壤健康状况的普遍下降。为了验证这一假设,我们在亚利桑那州的一个铜矿上钻了一个20米深的钻孔,进入一个14年的表土库,每75厘米采集一次样品。分析了样品的DNA生物量、质地、一般农艺性质、矿物组成、草酸和二硫代盐萃取活性矿物相以及总元素组成。深度剖面揭示了土壤DNA生物量、有机质(OM)、可提取硝态氮(NO3-N)和铵态氮(NH4-N)、植物有效锰(Mn)和铁(Fe)、草酸可提取锰和铁等生物地球化学变量随深度的非系统性变化。生物地球化学性质的差异与有机质含量和层深介导的氧化还原状态变化带有关。在深度大于4 m的地方观察到厌氧区,其中OM为1%;在深度≤15 m的地方观察到好氧区,其中OM为1%。补充信息:在线版本包含补充资料,地址:10.1007/s42461-024-01164-2。
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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来源期刊
Mining, Metallurgy & Exploration
Mining, Metallurgy & Exploration Materials Science-Materials Chemistry
CiteScore
3.50
自引率
10.50%
发文量
177
期刊介绍: The aim of this international peer-reviewed journal of the Society for Mining, Metallurgy & Exploration (SME) is to provide a broad-based forum for the exchange of real-world and theoretical knowledge from academia, government and industry that is pertinent to mining, mineral/metallurgical processing, exploration and other fields served by the Society. The journal publishes high-quality original research publications, in-depth special review articles, reviews of state-of-the-art and innovative technologies and industry methodologies, communications of work of topical and emerging interest, and other works that enhance understanding on both the fundamental and practical levels.
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