SHEN Qianchun,WANG Yan,WANG Xinran,et al.Research Progress on the Relationship Between Soil Organic Carbon and Heavy Metals in Greenhouse Agroecosystems[J].HEILONGJIANG AGRICULTURAL SCIENCES,2023,(06):101-107.[doi:10.11942/j.issn1002-2767.2023.06.0101]
温室农业生态系统土壤有机碳与重金属关系研究进展
- Title:
- Research Progress on the Relationship Between Soil Organic Carbon and Heavy Metals in Greenhouse Agroecosystems
- 文章编号:
- 20
- Keywords:
- soil organic carbon; heavy metals in soil; organic fertilizer; planting years; greenhouse agroecosystems
- 文献标志码:
- A
- 摘要:
- 温室农业生态系统作为农田生态系统的一部分,因种植的高肥需求以及连作的特点导致其与农田生态系统不同,在已有的研究中,温室农业生态系统中的土壤有机碳和重金属的含量要高于农田生态系统。土壤有机碳作为土壤肥力的基础,同时还影响着温室气体的排放,在生态系统碳循环中占据着重要地位。土壤重金属作为土壤重要的污染物之一,它在土壤中的富集、迁移、淋溶影响着农作物和环境的质量,还会对人体健康造成威胁。因此本文综述了土壤有机碳和土壤重金属的研究进展,以及二者在农田生态系统中的关系,为后续研究二者在温室农业生态系统中的关系做铺垫。研究表明,影响农田土壤有机碳和重金属的因素主要有大气沉降、灌溉、肥料的施用,而温室土壤的影响因素主要为有机肥的不合理施用和种植年限,虽然过量施用有机肥和增加种植年限能够有效增加土壤有机碳,但是这也造成土壤重金属在土壤中富集。土壤有机碳会络合吸附土壤中的重金属离子,并且还会引起土壤酸化,进而提高重金属的有效性和迁移性,二者之间呈现正相关性,所以合理控制土壤有机碳输入会在一定程度上减少温室农业生态系统土壤重金属的污染。
- Abstract:
- As a part of farmland ecosystem, greenhouse agricultural ecosystem is widely planted in China. Different from farmland planting, due to the high fertilizer demand of greenhouse planting and the characteristics of continuous cropping, the content of soil organic carbon and heavy metals in greenhouse agricultural ecosystem is higher than that in farmland ecosystem in previous studies. Soil organic carbon, as the basis of soil fertility, also affects greenhouse gas emissions, and plays an important role in ecosystem carbon cycle. As one of the most important pollutants in soil, the concentration, migration and leaching of heavy metals in soil affect the quality of crops and the environment, and also pose a threat to human health. Therefore, the paper reports the research progress of soil organic carbon and soil heavy metals, as well as the specific relationship between them in the farmland ecosystem, which paves the way for the follow-up research on the relationship between them in the greenhouse agricultural ecosystem. Studies have shown that the factors affecting the organic carbon and heavy metals in farmland soil mainly include atmospheric sedimentation, irrigation and fertilizer application. The factors affecting greenhouse planting are mainly the unreasonable application of organic fertilizer and the planting years. Although excessive application of organic fertilizer and increasing the planting years can effectively increase the organic carbon in soil, it also causes the enrichment of heavy metals in soil. Soil organic carbon will complexly adsorb heavy metal ions in soil and cause soil acidification, which will improve the availability and migration of heavy metals. There is a positive correlation between the two. Therefore, reasonable control of soil organic carbon input will reduce soil heavy metal pollution to a certain extent.
参考文献/References:
[1]曾希柏,白玲玉,李莲芳,等.山东寿光不同利用方式下农田土壤有机质和氮磷钾状况及其变化[J].生态学报,2009,29(7):3737-3746.[2]农业农村部.农业农村部关于加快推进设施种植机械化发展的意见[J].中华人民共和国农业农村部公报,2020(7):13-15.[3]张凯.温室农业土壤特性的调查与评价[D].洛阳:河南科技大学,2015.[4]王艳.中国温室农业生态系统碳平衡研究[D].杭州:浙江大学,2010.[5]国务院.国务院关于印发土壤污染防治行动计划的通知[J].中华人民共和国国务院公报,2016(17):9-18.[6]胡文友,黄标,马宏卫,等.南方典型设施蔬菜生产系统镉和汞累积的健康风险[J].土壤学报,2014,51(5):1045-1055.[7]孙艳征,曹文会.不同种植年限温室土壤铅的空间分布特征[J].安徽农业科学,2015,43(19):62-65.[8]魏婷婷.郑州东区生态系统碳循环研究[D].郑州:河南农业大学,2008.[9]郑聚锋,陈硕桐.土壤有机质与土壤固碳[J].科学,2021,73(6):13-17.[10](赵永存,徐胜祥,王美艳,等.中国农田土壤固碳潜力与速率:认识、挑战与研究建议[J].中国科学院院刊,2018,33(2):191-197.[11]万小楠,赵珂悦,吴雄伟,等.秸秆还田对冬小麦-夏玉米农田土壤固碳、氧化亚氮排放和全球增温潜势的影响[J].环境科学,2022,43(1):569-576.[12]BOUCHER O,RANDALL D,ARTAXO P,et al.Contribution of working group | to the fifth assessment report of the intergovernmental panel on climate change:clouds and aerosols[M]//STOCKER T,QIN D H,PLATTNER G K,et al.Climate Change 2013.New York:Cambridge University Press,2013:571-658.[13]王树会,陶雯,梁硕,等.长期施用有机肥情景下华北平原旱地土壤固碳及N2O排放的空间格局[J].中国农业科学,2022,55(6):1159-1171.[14]徐均华,黄国强,菅攀峰,等.土壤有机碳研究进展及在农田生产中的应用[J].耕作与栽培,2018(2):64-68,23.[15]DIXON R K.Mitigation and adaptation strategies for global change[J].Mitigation & Adaptation Strategies for Global Change,2002,7(2):321-322.[16]WANG Y,TAO F,CHEN Y,et al.Interactive impacts of climate change and agricultural management on soil organic carbon sequestration potential of cropland in China over the coming decades[J].Science of The Total Environment,2022,817:153018.[17]SUN W,YAO H,ZHANG W,et al.Carbon sequestration and its potential in agricultural soils of China[J].Global Biogeochemical Cycles,2010,24(3):GB3001.[18]TAO F,PALOSUO T,VALKAMA E,et al.Cropland soils in China have a large potential for carbon sequestration based on literature survey[J].Soil and Tillage Research,2019,186:70-78.[19]SIX J,CONANT R T,PAUL E A,et al.)〗Stabilization mechanisms of soil organic matter:implications for C-saturation of soils[J].Plant and Soil,2002,241(2):155-176.[20]陈富荣,梁红霞,邢润华,等.安徽省土壤固碳潜力及有机碳汇(源)研究[J].土壤通报,2017,48(4):843-851.[21]FOLEY J A.Global consequences of land use:connecting issues,connecting scales[C]//ASA-CSSA-SSSA,Chicago:2006.[22]CHANG J,WU X,WANG Y,et al.Does growing vegetables in plastic greenhouses enhance regional ecosystem services beyond the food supply? [J].Frontiers in Ecology and the Environment,2013,11(1):43-49.[23]WANG Y,XU H,WU X,et al.Quantification of net carbon flux from plastic greenhouse vegetable cultivation:a full carbon cycle analysis[J].Environmental Pollution,2011,159(5):1427-1434.[24]WU X,GE Y,WANG Y,et al.Agricultural carbon )〗flux changes driven by intensive plastic greenhouse cultivation in five climatic regions of China[J].Journal of Cleaner Production,2015,95:265-272.[25]樊德祥,依艳丽,贺忠科,等.沈阳市郊日光温室土壤有机碳组成特征研究[J].土壤通报,2008(4):748-751.[26]LUAN H,SHUO Y,WEI G A O,et al.Changes in organic C stability within soil aggregates under different fertilization patterns in a greenhouse vegetable field[J].Journal of Integrative Agriculture,2021,20(10):2758-2771.[27]LUAN H,GAO W,HUANG S,et al.Partial substitution of chemical fertilizer with organic amendments affects soil organic carbon composition and stability in a greenhouse vegetable production system[J].Soil and Tillage Research,2019,191:185-196.[28]于中阳,李月梅.设施农业土壤有机碳影响因素的研究[J].青海农林科技,2021(1):48-52.[29]郭殿坤,尤孟阳,何朋,等.不同生态系统土壤有机碳矿化的温度敏感性[J].土壤与作物,2022,11(3):261-272.[30]陶宝先,张保华,董杰,等.设施耕作促进农田土壤有机碳矿化[J].农业环境科学学报,2017,36(12):2486-2492.[31]仝利红,蒋珊,祝凌,等.有机种植对温室土壤有机碳库和酶活性的影响[J].中国土壤与肥料,2020(6):75-82.[32]王彤.温室大棚土壤有机碳淋溶迁移研究[D].郑州:中原工学院,2021.[33]张宇浩,方莉,程芳琴.日光节能温室土壤有机碳及组分变化对栽培年限的响应[J].山西农业科学,2013,41(11):1202-1204.[34]LI S,WANG M,ZHAO Z,et al.Adsorption and desorption of Cd by soil amendment:mechanisms and environmental implications in field-soil remediation[J].Sustainability,2018,10(7):2337.[35]王苗苗,孙红文,耿以工,等.农田土壤重金属污染及修复技术研究进展[J].天津农林科技,2018(4):38-41,43.[36]张贵友,王素萍,杜雷,等.武汉市江夏区农田土壤重金属含量及其生态风险评价[J].湖北农业科学,2020,59(17):54-57,136.[37]全国土壤污染状况调查公报[J].中国环保产业,2014(5):10-11.[38]王辉,焦振恒,吴昊,等.铅锌矿周边土壤重金属污染评价方法概述[J].沈阳大学学报(自然科学版),2021,33(4):300-306.[39]成晓梦,孙彬彬,吴超,等.浙中典型硫铁矿区农田土壤重金属含量特征及健康风险[J].环境科学,2022,43(1):442-453.[40]周言凤,苏庆平.土壤重金属形态分析研究综述[J].广东化工,2018,45(22):84-85.[41]TESSIER A,CAMPBELLP G C,BISSON M.Sequential extraction procedure for the speciation of particulate trace metals[J].Analytical Chemistry,1979,51(7):844-851.[42]孙秀敏,陈琼,张键,等.广东某区农田土壤重金属污染现状及潜在生态风险分析[J].当代化工,2021,50(2):293-297.[43]张炜华.厦门市农田土壤重金属纵向迁移、污染来源及健康风险[D].泉州:华侨大学,2020.[44]STERCKEMAN T,DOUAY F,PROIX N,et al.Vertical distribution of Cd,Pb and Zn in soils near smelters in the north of France[J].Environmental Pollution,2000,107(3):377-389.[45]唐世琪,刘秀金,杨柯,等.典型碳酸盐岩区耕地土壤剖面重金属形态迁移转化特征及生态风险评价[J].环境科学,2021,42(8):3913-3923.[46]毛明翠,黄标,李元,等.我国北方典型日光温室蔬菜生产系统土壤重金属积累趋势[J].土壤学报,2013,50(4):835-841.[47]陈永,黄标,胡文友,等.设施蔬菜生产系统重金属积累特征及生态效应[J].土壤学报,2013,50(4):693-702.[48]KALKHAJEH Y K,HUANG B,HUW,et al.Environmental soil quality and vegetable safety under current greenhouse vegetable production management in China[J].Agriculture Ecosystems & Environment,2021,307:107230.[49]GOLUI D,DATTA S P,DWIVEDIB S,et al.Prediction of free metal ion activity in contaminated soils using WHAM VII,baker soil test and solubility model[J].Chemosphere,2020,243:125408.[50]徐岩,李静,方文.有机肥连续施用对菜田重金属行为的影响——基于地球化学模型研究[J].生态学报,2022,42(4):1512-1526.[51]TAO R,JINGGUO W,QING C,et al.The effects of manure and nitrogen fertilizer applications on soil organic carbon and nitrogen in a high-input cropping system[J].PLoS ONE,2014,9(5):e97732.[52]ZHAO Y,LIN S,LIU Y,et al.Application of mixed straw and biochar meets plant demand of carbon dioxide and increases soil carbon storage in sunken solar greenhouse vegetable production[J].Soil Use and Management,2020,36(3):439-448.[53]WAN L,LYU H,QASIM W,et al.Heavy metal and nutrient concentrations in top-and sub-soils of greenhouses and arable fields in East China-effects of cultivation years,management,and shelter[J].Environmental Pollution,2022:119494.[54]贾丽,乔玉辉,陈清,等.我国设施菜田土壤重金属含量特征与影响因素[J].农业环境科学学报,2020,39(2):263-274.[55]张菊,董杰,邓焕广,等.山东聊城不同种植年限蔬菜大棚土壤理化性质的演变[J].土壤通报,2016,47(5):1119-1125.[56]井永苹,李彦,薄录吉,等.不同种植年限设施菜地土壤养分、重金属含量变化及主导污染因子解析[J].山东农业科学,2016,48(4):66-71.[57]薛延丰,石志琦.不同种植年限设施地土壤养分和重金属含量的变化特征[J].水土保持学报,2011,25(4):125-130.[58]SHAKOORM B,NIAZI N K,BIBI I,et al.)〗Unraveling health risk and speciation of arsenic from groundwater in rural areas of Punjab,Pakistan[J].International Journal of Environmental Research and Public Health,2015,12(10):12371-12390.[59]王文栋,任振武,张红英,等.新疆天山中部森林土壤重金属含量及其与土壤理化性质的相关性[J].西北农林科技大学学报(自然科学版),2021,49(3):47-56,66.[60]卢瑛,龚子同,张甘霖,等.南京城市土壤重金属含量及其影响因素[J].应用生态学报,2004,15(1):123-126.[61]谢娜,冯备战,李春亮.不同土地利用方式土壤有机碳变化特征及与重金属的相关性分析[J].中国农学通报,2019,35(26):115-120.[62]刘文政,贾亚琪,殷忠.贵阳污灌区菜地土壤团聚体中有机碳和重金属的含量特征及相关性分析[J].中国无机分析化学,2021,11(5):36-43.[63]王润珑,徐应明,王农,等.天津污灌区菜地土壤团聚体中有机碳和重金属含量特征[J].环境科学学报,2018,38(11):4490-4496.[64]王怡雯,许浩,茹淑华,等.有机肥连续施用对土壤剖面有机碳分布的影响及其与重金属的关系[J].生态学杂志,2019,38(5):1500-1507.
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[J].HEILONGJIANG AGRICULTURAL SCIENCES,2020,(06):44.[doi:10.11942/j.issn1002-2767.2020.08.0044]
[6]曾宪楠.基于文献计量学分析秸秆还田下土壤有机碳研究趋势[J].黑龙江农业科学,2020,(09):125.[doi:10.11942/j.issn1002-2767.2020.09.0125]
[J].HEILONGJIANG AGRICULTURAL SCIENCES,2020,(06):125.[doi:10.11942/j.issn1002-2767.2020.09.0125]
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DONG Zhi-chao,CHENG Quan-guo,LI Ye,et al.Determination and Potential Ecological Risk of Heavy Metals in Soils of Vegetable Greenhouse[J].HEILONGJIANG AGRICULTURAL SCIENCES,2018,(06):90.[doi:10.11942j.issn1002-2767.2018.11.0090]
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GAO Pan.Effects of Deep Loosening and Straw Mulching on Soil Carbon Composition and Maize Yield in Semi-Arid Areas[J].HEILONGJIANG AGRICULTURAL SCIENCES,2024,(06):7.[doi:10.11942/j.issn1002-2767.2024.01.0007]
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备注/Memo
收稿日期:2022-12-23