...
首页> 外文期刊>Nature reviews Cancer >Suitability of four woody plant species for the phytostabilization of a zinc smelting slag site after 5years of assisted revegetation
【24h】

Suitability of four woody plant species for the phytostabilization of a zinc smelting slag site after 5years of assisted revegetation

机译:四种木质植物物种对辅助再训练5年后锌冶炼渣部位的植物化物种的适用性

获取原文
获取原文并翻译 | 示例
           

摘要

PurposeZinc smelting activity generates large volumes of highly toxic waste slags and poses a potential extreme environmental risk for the surrounding areas. The establishment of a vegetation cap for the phytostabilization of abandoned mine tailing heaps using plants is usually considered a beneficial approach. This study aimed to evaluate the suitability of phytostabilization of zinc smelting slag using four woody plants combined with organic amendments, to investigate the distribution of heavy metals in the slag-plant system, and to better understand how the direct revegetation of a zinc smelting slag site can influence the mobility and geochemical fraction of heavy metals.Materials and methodsSlags were collected from the areas planted with vegetation (Arundo donax, Broussonetia papyrifera, Robinia pseudoacacia, and Cryptomeria fortunei) and a bare area in a zinc smelting waste slag site using an indigenous method. Physicochemical properties were determined with the usual procedures. The geochemical fraction and bioavailability of heavy metals was determined using the three-step modified European Community Bureau of Reference (BCR) sequential extraction and diethylene triamine pentaacetic acid (DTPA) sequential extraction schemes. Heavy metal concentrations (Cu, Pb, Zn, and Cd) in the slag and plant samples were also measured.Results and discussionVegetation planted directly in the zinc smelting waste slag significantly enhanced the nutrient accumulation and reduced the bioavailability of heavy metals (Cu, Zn, and Cd) with the exception of A. donax for Zn and Cd. The presence of four woody plants increased the bioavailability of Pb. Sequential extraction revealed that revegetation reduced the acid-soluble extractable fraction and increased the fraction of heavy metals associated with the Fe/Mn oxy(hydr)oxides or organic matter. This is attributed to the establishment of plant-enhanced weathering of minerals in the waste slag that resulted in the formation of an amount of dissolved metals, and the amount of dissolved metals was partly redistributed into the soluble extractable fraction of the zinc smelting waste slag. The final concentration of metals (Cu, Pb, Zn, and Cd) in the soluble extractable fraction is dependent on the dynamics of metals induced by root activity in the rhizosphere. Much lower levels of heavy metals with lower translocation factors accumulated in the four woody plants than in the associated slags.ConclusionsWe conclude that the studied four woody plants showed a beneficial vegetation cover and phytostabilization potential within 5years of revegetation. These woody plants have the potential for high heavy metal tolerance and low heavy metal accumulation. Therefore, these woody plants could be used for revegetation and phytostabilization of zinc smelting slag sites under field conditions.
机译:目的渗透活性产生大量的高度毒性废渣,为周边地区带来潜在的极端环境风险。使用植物的废弃矿井尾堆植物植被建立植被盖通常被认为是一种有益的方法。本研究旨在评估使用四种木本植物与有机修改结合的锌冶炼渣的植物肥化素化的适用性,研究了炉渣系统中重金属的分布,并更好地了解熔融炉渣的直接植被方式可以影响重金属的流动性和地球化学分数。从种植植被(Arundo Donax,Broussonetia papyrifera,Rocinia假期的区域的材料和方法,以及使用土着冶炼废渣部位的裸露区域方法。用常规程序确定物理化学性质。使用三步修改的欧洲社区参考(BCR)顺序提取和二亚乙基三胺五乙酸(DTPA)连续提取方案测定重金属的地球化学级分和生物利用度。还测量了渣和植物样品中的重金属浓度(Cu,Pb,Zn和Cd)。结果和讨论直接在熔融废渣中直接种植,显着增强了营养积累并降低了重金属的生物利用度(Cu,Zn和CD)除了A. Zn和CD的友组。存在四种木质植物的存在增加了Pb的生物利用度。序贯提取显示,再培炼减少了酸可溶的可萃取部分,并增加了与Fe / Mn氧(氢)氧化物或有机物质相关的重金属的级分。这归因于在废渣中建立植物增强风化,导致形成溶解金属的量,并将溶解的金属的量分别被重新分布到熔炼废渣的可溶性可提取的级分中。可溶性可提取部分中的金属(Cu,Pb,Zn和Cd)的最终浓度取决于根际在根际生物活性诱导的金属的动态。在四个木本植物中积累的易位因子较低的重金属水平远低于相关的渣。结论,研究我们的四个木质植物在5年内显示出有益的植被覆盖和植物植被覆盖潜力。这些木质植物具有高重金属耐受性和低重金属积聚的潜力。因此,在现场条件下,这些木质植物可用于锌冶炼渣部位的锌肥化和植物。

著录项

相似文献

  • 外文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号