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不同利用方式下土壤有机碳转化及微生物群落功能多样性变化 被引量:124
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作者 李忠佩 吴晓晨 陈碧云 《中国农业科学》 CAS CSCD 北大核心 2007年第8期1712-1721,共10页
【目的】研究亚热带地区不同土地利用方式下土壤生物和生物化学性状的变化特点,为制订合理的耕作施肥管理措施提供科学参考。【方法】选择亚热带地区的一个小流域,通过田间采样分析,比较了不同土地利用方式下土壤有机碳和养分含量、土... 【目的】研究亚热带地区不同土地利用方式下土壤生物和生物化学性状的变化特点,为制订合理的耕作施肥管理措施提供科学参考。【方法】选择亚热带地区的一个小流域,通过田间采样分析,比较了不同土地利用方式下土壤有机碳和养分含量、土壤有机碳矿化以及土壤微生物生物量和微生物群落功能多样性变化。【结果】土壤有机碳、全N含量、土壤微生物生物量碳氮以及土壤的呼吸强度变化均表现为稻田(菜地)>竹林>园(旱)地,0~15cm、15~30cm稻田(菜地)土壤有机碳和全N含量平均比园(旱)地土壤高76.4%、59.8%和80.8%、67.3%,0~15cm稻田土壤的微生物生物量碳、氮和土壤呼吸强度分别是园(旱)地土壤的6.36倍、3.63倍、3.20倍。土壤微生物代谢熵园(旱)地>林地>稻田,稻田土壤的代谢熵仅为园(旱)地土壤的47.7%。培养期间土壤有机碳矿化量和矿化率稻田>竹林>园(旱)地。土壤细菌数量稻田≥园(旱)地>林地,但真菌和放线菌数量在不同利用方式之间并没有显著差异。土壤微生物的平均吸光值和群落功能多样性指数稻田>园(旱)地>林地。研究还揭示,稻田改种蔬菜5a后,由于大量施用磷肥,土壤速效磷含量显著升高,但土壤有机碳和全氮含量没有明显差异;土壤微生物生物量碳、氮和土壤呼吸强度显著下降了53%、41.5%和41.3%,代谢熵升高了23.6%,土壤有机碳的矿化速率也有下降的趋势;土壤细菌和放线菌数量略有升高但差异不显著,真菌数量显著增加,而土壤微生物群落功能多样性指数却显著下降了。【结论】不同土地利用方式下土壤的生物和生物化学性状有显著不同。稻田利用方式下土壤的有机碳和养分含量、以及土壤有机碳转化过程指标和微生物群落功能多样性等均较该区的旱地和林地土壤高。但若在高肥力稻田上继续过量施用化肥,将有可能造成土壤生物性状和生化功能衰减,导致土壤生物质量退化。 展开更多
关键词 利用方式 土壤有机碳转化 微生物群落功能多样性
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土壤有机碳作用及转化机制研究进展 被引量:118
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作者 张维理 KOLBE H 张认连 《中国农业科学》 CAS CSCD 北大核心 2020年第2期317-331,共15页
对土壤有机碳作用的综述研究显示:直至20世纪末,对于土壤有机碳的研究主要集中于阐明具不同化学结构有机物质在土壤中的功能,如胡敏酸、富里酸、黄腐酸的化学结构特征及在土壤肥力中的作用。中欧近年的研究则更关注按照有机碳在土壤中... 对土壤有机碳作用的综述研究显示:直至20世纪末,对于土壤有机碳的研究主要集中于阐明具不同化学结构有机物质在土壤中的功能,如胡敏酸、富里酸、黄腐酸的化学结构特征及在土壤肥力中的作用。中欧近年的研究则更关注按照有机碳在土壤中的转化特征进行分组,尝试建立这一分组与土壤有机碳功能的关联。按照转化特征,土壤有机碳可分为稳定性有机碳和营养性有机碳两大类型。前者主要指封存于土壤黏粒中的有机碳,很难被土壤微生物分解和矿化。后者主要指通过作物收获后地表及根系残留物、还田秸秆、有机肥施肥进入土壤的有机碳,是土壤有机碳中易于转化的、活跃的组分,也是形成土壤腐殖质和团聚体的主要前体物质。对土壤肥力具有重要意义。多点长期定位试验研究结果显示:土壤有机碳含量实际上表达了土壤中有机碳输入与分解两个过程的动态平衡。当输入量小于矿化量,将导致土壤有机碳含量和土壤肥力下降。当每年输入的有机碳量大于矿化量,土壤有机碳含量会持续上升;直至每年输入量与矿化量相等,土壤有机碳含量不再增加,此时,土壤有机碳含量达到平衡点。在一般农业生产条件下,达到平衡点的时间周期为20-30年。在营养性有机碳投入量过高情况下,这一动态平衡系统也会导致入多出多,达到新的平衡点后,每年会有高量土壤有机物质的矿化,从而引起农田土壤中矿质养分,特别是矿质氮的流失,进入水体及大气环境中。为实现土壤培肥和环境保护双重目标,农田土壤营养性有机碳的投入量应以有机碳的矿化流失不致产生环境风险为宜。新的研究还证实:营养性有机碳进入农田后,在土壤生物作用下分解为一系列短链化合物,再通过生物构建作用与土壤矿物颗粒形成土壤团聚体,并以此对多项土壤肥力性状发挥积极作用。受土壤中腐殖化、有机碳分解等不同过程影响,土壤团聚体持续发生着聚合和崩解,只有持续而丰富的营养性有机碳输入,才能维持土壤中总有机-无机团聚体的稳定度。多点长期定位试验结果揭示:土壤有机碳含量主要取决于气候条件、土壤质地与土地利用类型。在人为因素中,土地利用方式的变化对土壤有机碳含量的影响最大,而施肥、秸秆还田、耕作等农作措施对土壤有机碳含量的影响比较小。耕地土壤上,作物类型不同,其典型的耕作和收获方式不同,收获后存留地表和土壤中的根系残留物数量和质量不同,有机质生成能力不同。在种植有机质消耗性作物时,需要注意在轮作制度中引入有机质增加型作物或施用有机肥料,以保持土壤肥力。 展开更多
关键词 土壤有机 营养性有机 土壤肥力 土壤有机碳转化机制 轮作
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Carbon and Nitrogen Transformations in Surface Soils Under Ermans Birch and Dark Coniferous Forests 被引量:5
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作者 DENG Xiao-Wen HAN Shi-Jie +1 位作者 HU Yan-Ling ZHOU Yu-Mei 《Pedosphere》 SCIE CAS CSCD 2009年第2期230-237,共8页
Soil samples were taken from an Ermans birch (Betula ermanii)-dark coniferous forest (Picea jezoensis and Abies nephrolepis) ecotone growing on volcanic ejecta in the northern slope of Changbai Mountains of Northe... Soil samples were taken from an Ermans birch (Betula ermanii)-dark coniferous forest (Picea jezoensis and Abies nephrolepis) ecotone growing on volcanic ejecta in the northern slope of Changbai Mountains of Northeast China, to compare soil carbon (C) and nitrogen (N) transformations in the two forests. The soil type is Umbri-Gelic Cambosols in Chinese Soil Taxonomy. Soil samples were incubated aerobically at 20℃ and field capacity of 700 g kg^-1 over a period of 27 weeks. The amount of soil microbial biomass and net N mineralization were higher in the Ermans birch than the dark coniferous forest (P 〈 0.05), whereas the cumulative C mineralization (as CO2 emission) in the dark coniferous forest exceeded that in the Ermans birch (P 〈 0.05). Release of the cumulative dissolved organic C and dissolved organic N were greater in the Ermans birch than the dark coniferous forest (P 〈 0.05). The results suggested that differences of forest types could result in considerable change in soil C and N transformations. 展开更多
关键词 dissolved organic C dissolved organic N Ermans birch-dark coniferous forest soil C transformation soil N transformation
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SPATIAL AND TEMPORAL DYNAMICS OF SOIL ORGANIC CARBON IN RESERVED DESERTIFICATION AREA——A Case Study in Yulin City, Shaanxi Province, China 被引量:7
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作者 CHENGShu-lan NIUHai-shan +3 位作者 WANGLin ZHANGFeng GAOJun-qin TIANYu-qiang 《Chinese Geographical Science》 SCIE CSCD 2004年第3期245-250,共6页
Soil organic carbon (SOC) was considered to be a key index in evaluation of soil degradation and soil C sequestration. To discuss the spatial-temporal dynamics of SOC in arable layer in reversed desertification area, ... Soil organic carbon (SOC) was considered to be a key index in evaluation of soil degradation and soil C sequestration. To discuss the spatial-temporal dynamics of SOC in arable layer in reversed desertification area, a case study was conducted in Yulin City, Shaanxi Province, China. Data of SOC were based on general soil survey in 1982 and repeated soil sampling in 2003. Soil organic carbon content (SOCC) was determined by K2Cr3O7-FeSO4 titration method, and soil organic carbon density (SOCD) was calculated by arithmetic average and area weighted average method, respectively. On average, SOCC and SOCD of the arable layer in the study area from 1982 to 2003 had increased 0.51g/kg and 0.16kg/m2, respectively. Considering main soil types, the widest distributed Arid-Sandic Entisols had lowest values and increments of SOCC and SOCD during the study period; while the second widest Los-Orthic Entisols had higher values and increments of SOCC and SOCD, compared to the mean values of the whole region. The results indicated that reversed desertification process was due to the modification of land use and management practices, such as natural vegetation recovery, planting grass, turning arable land to grassland, and soil and water conservation etc., which can improve SOCC and SOCD and thus enhance soil C sequestration. 展开更多
关键词 soil organic carbon reversed desertification area land use/cover land management Yulin City
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Effect on greenhouse gas balance of converting rice paddies to vegetable production
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作者 Lei Wu Xian Wu Ronggui Hu 《Acta Geochimica》 EI CAS CSCD 2017年第3期353-354,共2页
Rice paddies are increasingly being converted to vegetable production due to economic benefits related,in part,to changes in demand during recent decades.Here,we implemented a parallel field experiment to simultaneous... Rice paddies are increasingly being converted to vegetable production due to economic benefits related,in part,to changes in demand during recent decades.Here,we implemented a parallel field experiment to simultaneously measure annual emissions of CH_4and N_2O,and soil organic carbon(SOC)stock changes,in rice paddies(RP),rice paddy–converted conventional vegetable fields(CV),and rice paddy–converted greenhouse vegetable fields(GV).Changing from rice to vegetable production reduced CH_4emissions by nearly 100%,and also triggered substantial N_2O emissions.Furthermore,annual N_2O emissions from GV significantly exceeded those from CV due to lower soil p H and higher soil temperature.Marginal SOC losses occurred after one year of cultivation of RP,CV,and GV,contributing an important share(3.4%,32.2%,and 10.3%,respectively)of the overall global warming potential(GWP)balance.The decline in CH_4emissions outweighed the increased N_2O emissions and SOC losses in CV and GV,leading to a 13%–30%reduction in annual GWP as compared to RP.These results suggest that large-scale expansion of vegetable production at the expense of rice paddies is beneficial for mitigating climate change in terms of the overall GWP. 展开更多
关键词 Greenhouse gas balance Land management change CH4 N2O Soil organic carbon
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Role of Carbon Substrates Added in the Transformation of Surplus Nitrate to Organic Nitrogen in a Calcareous Soil 被引量:8
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作者 QIU Shao-Jun JU Xiao-Tang +6 位作者 J.INGWERSEN GUO Zi-De C.F.STANGE R.BISHARAT T.STRECK P.CHRISTIE ZHANG Fu-Suo 《Pedosphere》 SCIE CAS CSCD 2013年第2期205-212,共8页
Excessive amounts of nitrate have accumulated in many soils on the North China Plain due to the large amounts of chemical N fertilizers or manures used in combination with low carbon inputs. We investigated the potent... Excessive amounts of nitrate have accumulated in many soils on the North China Plain due to the large amounts of chemical N fertilizers or manures used in combination with low carbon inputs. We investigated the potential of different carbon substrates added to transform soil nitrate into soil organic N (SON). A 56-d laboratory incubation experiment using the 15N tracer (K15NO3) technique was carried out to elucidate the proportion of SON derived from accumulated soil nitrate following amendment with glucose or maize straw at controlled soil temperature and moisture. The dynamics and isotopic abundance of mineral N (NO3 and NH4+) and SON and greenhouse gas (N20 and CO2) emissions during the incubation were investigated. Although carbon amendments markedly stimulated transformation of nitrate to newly formed SON, this was only a substitution effect of the newly formed SON with native SON because SON at the end of the incubation period was not significantly different (P 〉 0.05) from that in control soil without added C. At the end of the incubation period, amendment with glucose, a readily available C source, increased nitrate immobilization by 2.65 times and total N20-N emission by 33.7 times, as compared with maize straw amendment. Moreover, the differences in SON and total N20-N emission between the treatments with glucose and maize straw were significant (P 〈 0.05). However, the total N20-N emission in the straw treatment was not significantly (P ~ 0.05) greater than that in the control. Straw amendment may be a potential option in agricultural practice for transformation of nitrate N to SON and minimization of N20 emitted as well as restriction of NO3-N leaching. 展开更多
关键词 available C source carbon amendments greenhouse gases N immobilization 15N tracer
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