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991.
淮南矿区煤矸石风化物特性及有机碳分布特征   总被引:3,自引:1,他引:2  
以淮南矿区潘一矿煤矸石山为研究对象,通过对煤矸石风化物的理化特性、电镜扫描(SEM)、能谱(EDS)和总有机碳(TOC)含量分析,初步研究了煤矸石风化物有机碳分布和释放规律,以及煤矸石山堆积淋溶作用对周边土壤溶解性有机碳(DOC)含量的影响。结果表明,从山顶、山腰到山脚煤矸石风化物中的总有机碳(TOC)含量依次减小,随着采样深度的增加总有机碳(TOC)含量逐渐变大。煤矸石风化物中总有机碳含量与煤矸石风化物粒径大小呈正相关,与煤矸石风化物的风化程度成负相关。不同粒径煤矸石风化物淋滤液中溶解性有机碳(DOC)的含量随着淋溶时间增大而减小,在96h淋滤液中溶解性有机碳含量趋于稳定,且值较为接近。距离山脚2~100m内,随着采样距离的增加土壤中溶解性有机碳含量(DOC)呈减少趋势。在距离煤矸石山80~100m处土壤溶解性有机碳含量接近正常农田土壤含量。  相似文献   
992.
通过田间试验,研究了掺混型、吸附型和反应型3种新型生物炭基硝酸铵氮肥在冬小麦生长过程中对土壤氮素累积及冬小麦对氮素的利用状况和相关生物活性的影响。试验处理包括CK(不施氮肥,不施生物炭)、硝酸铵氮肥、生物炭、掺混型生物炭基氮肥、吸附型及反应型生物炭基氮肥。研究结果表明:不同工艺制备的生物炭基氮肥对土壤铵态氮的累积具有显著影响,吸附型和反应型处理在冬小麦生长季铵态氮平均值大于对照(CK),对于总氮、硝态氮和亚硝态氮累积量的影响不显著。除了生物炭单施处理外,其他处理均比CK显著提高冬小麦地上部的总氮累积量,但对冬小麦的氮素利用状况无显著影响,且三种炭基氮肥处理问无显著差异;施用不同类型生物炭基氮肥对土壤微生物量氮含量和硝酸还原酶活性具有提高作用,而对微生物量碳含量、亚硝酸还原酶和脲酶活性无显著影响。  相似文献   
993.
《土壤通报》2014,(5):1157-1163
土壤有机碳与土壤质量和全球气候变化关系极为密切,为探明河西绿洲灌漠土农田土壤有机碳库的变化规律,以1982年设置在西北干旱区的长期定位试验为基础,研究了长期施肥对土壤有机碳库及水稳性团聚体的影响。研究结果表明,与1982年起始值相比,无论是化肥单施或配合施用,耕作层土壤(0~20 cm)有机碳储量都年均降低160 kg hm-2。施用有机肥,年均投入有机碳2342 kg hm-2,不但可完全抵消土壤有机碳降低的趋势,而且以年均260 kg hm-2的速度递增。27年连续施用有机肥可增加土壤有机碳和全氮储量7015 kg hm-2和1298 kg hm-2,相当于有机肥中有机碳和全氮输入量的31%和25%。因此维持或提高河西绿洲灌漠土有机碳储量,年最少有机碳投入量为516 kg hm-2。长期施用有机肥显著增加了土壤大水稳性团聚体(0.25mm)的数量和有机碳在大水稳性团聚体中分配比例,进而增强了有机肥中有机碳的土壤固存率。  相似文献   
994.
To study how wastewater(WW) and different organic sources(humic substances or vermicompost) affected soil chemical and biochemical fertility and agronomic productivity in field-grown melon, an experiment arranged in a randomized complete block design with three replications was conducted with the following treatments: three different mixtures of irrigation water(100% WW, 50% WW with 50% groundwater, and 100% groundwater) and, for each WW treatment, four different organic fertilization treatments of control without organic matter application(CK), vermicompost used as surface mulch(SM), vermicompost incorporated into the soil(VC),and humic substances extracted by vermicompost(HS). Chemical and biochemical results indicated an improvement in soil fertility,suggested by the increase in soil organic carbon and nutrient(nitrate and macro- and microelements) contents and in soil microbial activities(hydrolytic and oxidative enzymes), in particular in the VC treatments. In addition, even soil potential metabolism was stimulated by WW combined with organic treatments, as highlighted by the increase in the metabolic(dehydrogenase activity/watersoluble carbon) and nitrification indices(NO-3and NH+4). Melon productivity confirmed these results, with the highest yield and melon quality in the VC treatments irrigated with 100% WW. In conclusion, the combined use of WW and organic amendment,recovering both mineral and organic nutrients from these kinds of recycled materials, was effective in the improvement of soil quality and crop productivity.  相似文献   
995.
Soil has been identified as a possible carbon(C) sink for sequestering atmospheric carbon dioxide(CO_2).However,soil organic carbon(SOC) dynamics in agro-ecosystems is affected by complex interactions of various factors including climate,soil and agricultural management practices,which hinders our understanding of the underlying mechanisms.The objectives of this study were to use the Agricultural Production Systems sIMulator(APSIM) model to simulate the long-term SOC dynamics under different management practices at four long-term experimental sites,Zhengzhou and Xuzhou with double cropping systems and Gongzhuling and Uriimqi with single cropping systems,located in northern China.Firstly,the model was calibrated using information from the sites and literature,and its performance to predict crop growth and SOC dynamics was examined.The calibrated model was then used to assess the impacts of different management practices,including fertilizer application,irrigation,and residue retention,on C dynamics in the top 30 cm of the soil by scenario modelling.Results indicate a significant SOC sequestration potential through improved management practices of nitrogen(N) fertilizer application,stubble retention,and irrigation.Optimal N fertilization(N_(opt)) and 100%stubble retention(R100) increased SOC by about 11.2%,208.29%,and 283.67%under irrigation at Gongzhuling,Zhengzhou,and Xuzhou,respectively.Soil organic carbon decreased rapidly at(U|¨)rumqi under irrigation,which was due to the enhanced decomposition by increased soil moisture.Under rainfed condition,SOC remained at a higher level.The combination of N_(opt) and R100 increased SOC by about 0.46%under rainfed condition at Uriimqi.Generally,agricultural soils with double cropping systems(Zhengzhou and Xuzhou) showed a greater potential to sequester C than those with single cropping systems(Gongzhuling and(U|¨)r(u|¨)mqi).  相似文献   
996.
Rapid nitrogen(N) transformations and losses occur in the rice rhizosphere through root uptake and microbial activities. However,the relationships between rice roots and rhizosphere microbes for N utilization are still unclear. We analyzed different N forms(NH+4,NO-3, and dissolved organic N), microbial biomass N and C, dissolved organic C, CH4 and N2O emissions, and abundance of microbial functional genes in both rhizosphere and bulk soils after 37-d rice growth in a greenhouse pot experiment. Results showed that the dissolved organic C was significantly higher in the rhizosphere soil than in the non-rhizosphere bulk soil, but microbial biomass C showed no significant difference. The concentrations of NH+4, dissolved organic N, and microbial biomass N in the rhizosphere soil were significantly lower than those of the bulk soil, whereas NO-3in the rhizosphere soil was comparable to that in the bulk soil. The CH4 and N2O fluxes from the rhizosphere soil were much higher than those from the bulk soil. Real-time polymerase chain reaction analysis showed that the abundance of seven selected genes, bacterial and archaeal 16 S rRNA genes, amoA genes of ammonia-oxidizing archaea and ammonia-oxidizing bacteria, nosZ gene, mcrA gene, and pmoA gene, was lower in the rhizosphere soil than in the bulk soil, which is contrary to the results of previous studies. The lower concentration of N in the rhizosphere soil indicated that the competition for N in the rhizosphere soil was very strong, thus having a negative effect on the numbers of microbes. We concluded that when N was limiting, the growth of rhizosphere microorganisms depended on their competitive abilities with rice roots for N.  相似文献   
997.
Microbial activity in soil is known to be controlled by various factors. However, the operating mechanisms have not yet been clearly identified, particularly under climate change conditions, although they are crucial for understanding carbon dynamics in terrestrial ecosystems. In this study, a natural incubation experiment was carried out using intact soil cores transferred from high altitude(1 500 m) to low(900 m) altitude to mimic climate change scenarios in a typical cold-temperate mountainous area in Japan. Soil microbial activities, indicated by substrate-induced respiration(SIR) and metabolic quotient(q CO2), together with soil physicalchemical properties(abiotic factors) and soil functional enzyme and microbial properties(biotic factors), were investigated throughout the growing season in 2013. Results of principal component analysis(PCA) indicated that soil microbial biomass carbon(MBC) andβ-glucosidase activity were the most important factors characterizing the responses of soil microbes to global warming. Although there was a statistical difference of 2.82 ℃ between the two altitudes, such variations in soil physical-chemical properties did not show any remarkable effect on soil microbial activities, suggesting that they might indirectly impact carbon dynamics through biotic factors such as soil functional enzymes. It was also found that the biotic factors mainly controlled soil microbial activities at elevated temperature,which might trigger the inner soil dynamics to respond to the changing environment. Future studies should hence take more biotic variables into account for accurately projecting the responses of soil metabolic activities to climate change.  相似文献   
998.
Carbon of humus acids (HSAC) and dissolved organic carbon (DOC) are the most active forms of soil organic carbon (SOC) and play an important role in global carbon recycling. We investigated the concentrations of HSAC, water-soluble organic carbon (WSOC), hot water-extractable organic carbon (HWOC) and SOC in soils under different vegetation types of four copper mine tailings sites with differing vegetation succession time periods in Tongling, China. The concentrations of HSAC, WSOC, HWOC and SOC increased with vegetation succession. WSOC concentration increased with the accumulation of SOC in the tailings, and a linearly positive correlation existed between the concentrations of HSAC and SOC in the tailings. However, the percentages of HSAC and DOC in the SOC decreased during vegetation succession. The rate of SOC accumulation was higher when the succession time was longer than 20 years, whereas the speeds of soil organic matter (SOM) decomposition and humification were slow, and the concentrations of HSAC and DOC increased slowly in the tailings. The percentage of carbon of humic acid (HAC) in HSAC increased with vegetation succession, and the values of humification index (HI), HAC/carbon of fulvic acid, also increased with the accumulation of HSAC and SOC in soils of the tailings sites. However, the HI value in the each of the tailings was less than 0.50. The humification rate of SOM was lower than the accumulation rate of SOM, and the level of soil fertility was still very low in the tailings even after 40 years of natural restoration.  相似文献   
999.
Clay addition to light-textured soils is used to ameliorate water repellency and to increase nutrient retention. However, clay addition may also increase the potential to bind organic matter and thus C sequestration. Divalent calcium ions (Ca2+) play an important role in binding of organic matter to clay because they provide the bridge between the clay particles and organic matter which are both negatively charged. In the first experiment, quartz sand was mixed with clay isolated from a Vertosol at rates of 0, 50 and 300 g kg-1, finely ground mature wheat residues (20 g kg-1) and powdered CaSO4 at 0, 5 and 10 g kg-1. Soil respiration was measured over 28 d. Compared to the sand alone, addition of isolated clay at 300 g kg-1 increased cumulative respiration with a stronger increase than that at 50 g kg-1. Addition of CaSO4 increased electrical conductivity, decreased sodium adsorption ratio and reduced cumulative respiration. The latter can be explained by enhanced sorption of organic matter to clay via Ca2+ bridges. In a second experiment, isolated clay or subsoil of the Vertosol without or with powdered CaSO4 at 10 g kg-1 were used for a batch sorption with water-extractable organic C (WEOC) from wheat straw followed by desorption with water. Addition of 10 g kg-1 CaSO4 increased sorption and decreased desorption of WEOC in both subsoil and isolated clay. In the third experiment, subsoil of the Vertosol was used for a batch sorption in which WEOC was added repeatedly. Repeated addition of WEOC increased the concentration of sorbed C but decreased the sorbed proportion of the added WEOC. This indicates that sorption of WEOC may be underestimated if it is added only once in batch sorption experaments.  相似文献   
1000.
覆膜抑制土壤呼吸提高旱作春玉米产量   总被引:12,自引:3,他引:9  
为从农田碳通量角度揭示地膜覆盖种植方式的增产增效机理,于2011年在山西寿阳旱作农业野外试验站对覆膜和露地春玉米田,进行了表层土壤温湿度、土壤呼吸和净碳交换规律及作物生长发育规律的研究和分析。结果表明:与露地处理相比较,覆膜处理全生育期表层土壤含水率提高了18.7%,前期可平均提高表层土壤温度1.67℃。覆膜和露地处理土壤呼吸变化规律总体一致,但前者的温度敏感系数Q10比后者低,且中后期前者排放的碳仅为后者的61.7%,说明采用覆盖地膜种植方式有利于农田土壤碳管理。前期和中期覆膜处理绿叶面积指数比露地处理平均高0.81 m2/m2,后期覆膜处理衰老较快,收获时比露地处理低1.00 m2/m2;露地处理在前期和中期日均净碳通量平均比覆膜处理大0.04 mg/(m2·s),而后期仅小0.02 mg/(m2·s),这是造成2处理最终生物产量和经济产量差异的根本原因。在地上干物质积累和地下干物质积累方面,覆膜处理始终比露地处理高,收获时差值分别为269.7和38.6 g/m2。露地处理每公顷少收春玉米籽粒1 348 kg。由此可见,覆膜种植可提高表层土壤温湿度,促进作物生长发育,抑制土壤呼吸,促进碳积累,增加农民收入的同时更有利于土壤碳管理。  相似文献   
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