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61.
徐嘉晖  高雷  孙颖  崔晓阳 《土壤学报》2018,55(1):236-246
稳定性土壤有机碳(SSOC)决定着土壤抗干扰与固碳能力。量化了大兴安岭森林土壤两种典型的SSOC:矿物结合态有机碳(MOC)与黑碳(BC),并以矿物结合态碳库为碳饱和容量来估算土壤的固碳潜力。MOC的量化采取物理分组和化学分离两种方法,BC的分析采用重铬酸钾氧化法。结果表明:粒级分组方法过高估计了MOC,矿物结合态有机质中的有机碳并非完全与矿物络合。BC占土壤有机碳(SOC)的比例约为25.4%,其中,颗粒有机质(POM)中BC所占比例约为26.3%,说明颗粒有机碳(POC)并非绝对属于活性组分。表层土壤碳饱和水平达到了97.8%,而深层仅有21.2%,表明深层土壤的固碳潜力巨大,为当前深层SOC储量的1.86倍。目前的碳饱和理论均以SSOC为基础,然而,BC于POM中的存在说明了POC在土壤固碳潜力中的重要性。  相似文献   
62.
不同有机物料对灌漠土重金属累积特征及作物效应的影响   总被引:1,自引:0,他引:1  
【目的】 探讨长期施用有机物料对灌漠土中重金属含量、形态赋存特征及作物重金属含量的影响,为有机物料农业安全利用及土壤有机培肥中重金属累积控制提供理论依据和技术支持。【方法】 利用田间长期定位试验,研究鸡粪、牛粪、猪粪、菌渣、污泥和沼渣对灌漠土几种典型重金属元素含量、赋存形态及小麦植株中重金属含量的影响。【结果】 长期(7年)施用鸡粪、猪粪、污泥的处理显著增加了灌漠土中Cu、Zn含量,增加量为猪粪>鸡粪>污泥,其中Cu含量分别增加了62.20%、20.10%和10.26%,Zn含量分别增加了79.98%、39.24%和18.31%,并与施用年限呈显著正相关关系。3种有机物料施用下Cu平均每年累积速率为4.16、1.25和0.97 mg·kg -1·a -1,Zn平均每年累积速率为11.04、4.86和2.59 mg·kg -1·a -1。但施用上述3种有机物料对Cd、Cr、Pb和Ni含量没有显著影响。施用牛粪、菌渣和沼渣对灌漠土中重金属含量亦无显著影响。施用鸡粪、猪粪、污泥还显著影响了土壤中Cu、Zn赋存形态,增加了土壤中Cu、Zn各有效赋存形态的含量和占总量的比例,显著提高了灌漠土中Cu、Zn有效态的含量,显著增加了小麦根和秸秆中Cu、Zn的含量,其中猪粪影响最大。【结论】 猪粪、鸡粪、污泥长期施用可导致灌漠土中Cu、Zn快速累积并提高Cu、Zn的生物有效性,其中猪粪的作用尤为明显。在施用有机物料培肥土壤时,要特别关注其中Cu、Zn的含量,以确保土壤健康和可持续利用。  相似文献   
63.
Mass distributions of different soil organic carbon (SOC) fractions are influenced by land use and management. Concentrations of C and N in light- and heavy fractions of bulk soils and aggregates in 0–20 cm were determined to evaluate the role of aggregation in SOC sequestration under conventional tillage (CT), no-till (NT), and forest treatments. Light- and heavy fractions of SOC were separated using 1.85 g mL−1 sodium polytungstate solution. Soils under forest and NT preserved, respectively, 167% and 94% more light fraction than those under CT. The mass of light fraction decreased with an increase in soil depth, but significantly increased with an increase in aggregate size. C concentrations of light fraction in all aggregate classes were significantly higher under NT and forest than under CT. C concentrations in heavy fraction averaged 20, 10, and 8 g kg−1 under forest, NT, and CT, respectively. Of the total SOC pool, heavy fraction C accounted for 76% in CT soils and 63% in forest and NT soils. These data suggest that there is a greater protection of SOC by aggregates in the light fraction of minimally disturbed soils than that of disturbed soil, and the SOC loss following conversion from forest to agriculture is attributed to reduction in C concentrations in both heavy and light fractions. In contrast, the SOC gain upon conversion from CT to NT is primarily attributed to an increase in C concentration in the light fraction.  相似文献   
64.
The cation exchange capacity (CEC) of a soil depends on the type and amount of both mineral and organic surfaces. Previous studies that have sought to determine the relative contribution of organic matter to total soil CEC have not addressed differences in soil organic matter (SOM) composition that could lead to differences in CEC. The objectives of this study were (1) to compare the CEC of two distinct SOM pools, the “light fraction (LF)” composed of particulate plant, animal, and microbial debris, and the “heavy fraction (HF)” composed of mineral-bound organic matter; and (2) to examine the effects of differences in aboveground vegetation on CEC. Soil samples were collected from four paired grassland/conifer sites within a single forested area and density fractionated. LF CEC was higher in conifer soils than in grassland soils, but there was no evidence of an effect of vegetation on CEC for the HF or bulk soil. LF CEC (but not HF CEC) correlated well with the C concentration in the fraction. The mean CEC of both fractions (per kg fraction) exceeded that of the bulk soil; thus, when the LF and HF CEC were combined mathematically by weighting values for each fraction in proportion to dry mass, the resulting value was nearly twice the measured CEC of bulk soil. On a whole soil basis, the HF contributed on average 97% of the CEC of the whole soil, although this conclusion must be tempered given the inflation of CEC values by the density fractionation procedure.  相似文献   
65.
To assess the effect of long-term fertilization on labile organic matter fractions, we analyzed the C and N mineralization and C and N content in soil, particulate organic matter (POM), light fraction organic matter (LFOM), and microbial biomass. Results showed that fertilizer N decreased or did not affect the C and N amounts in soil fractions, except N mineralization and soil total N. The C and N amounts in soil and its fractions increased with the application of fertilizer PK and rice straw. Generally, there was no significant difference between fertilizer PK and rice straw. Furthermore, application of manure was most effective in maintaining soil organic matter and labile organic matter fractions. Soils treated with manure alone had the highest microbial biomass C and C and N mineralization. A significant correlation was observed between the C content and N content in soil, POM, LFOM, microbial biomass, or the readily mineralized organic matter. The amounts of POM–N, LFOM–N, POM–C, and LFOM–C closely correlated with soil organic C or total N content. Microbial biomass N was closely related to the amounts of POM–N, LFOM–N, POM–C, and LFOM–C, while microbial biomass C was closely related to the amounts of POM–N, POM–C, and soil total N. These results suggested that microbial biomass C and N closely correlated with POM rather than SOM. Carbon mineralization was closely related to the amounts of POM–N, POM–C, microbial biomass C, and soil organic C, but no significant correlation was detected between N mineralization with C or N amounts in soil and its fractions.  相似文献   
66.
Technical advances make it possible to deliver radiation therapy for canine intracranial tumours in fewer fractions, under the assumption of equivalent tumour control. With the aim of estimating the late toxicity risk profile for various tumour sizes and locations, the present paper evaluates the normal tissue complication probability (NTCP) values for the intracranial organs at risk. By making isoeffect calculations, a new 10‐fraction radiation protocol was developed with the same tumour control probability (TCP) as a currently used 20‐fraction standard protocol, and complication risk profiles for brain, brainstem and optic chiasm were modelled using a representative population of 64 dogs with brain tumours. For >59% of cases, the new 10‐fraction protocol yielded an acceptable, low risk estimate of late toxicity (<10%). Our calculations suggest that it may be safe to treat small to intermediate‐sized tumours that are neither located near the optic chiasm nor at the brainstem with 10 daily fractions of 4.35 Gy.  相似文献   
67.
We investigated the effects of Arbuscular Mycorrhiza (AM) fungi and various phosphorus (P) levels on the distribution and availability of P in dominant soils of Bihar, India. Potassium chloride (KCl)-P (labile P), sodium hydroxide (NaOH)-P (Fe-Al-bound P), hydrochloric acid (HCl)-P (Ca-bound P), and residual P (Res-P) fractions were analyzed in the soils under maize plant. Ca-bound P was the most abundant P fraction in the alkaline soils (65% of the total P) followed by neutral soil (35% of the total P), whereas it was less abundant (<4%) in the acidic soil type. Fe-Al-bound P was found to be highest for acidic soil (65% of the total P). Soils under the inoculation with Glomus mossae and control gave the highest and lowest values (15.63 mg kg?1 and 10.74 mg kg?1 respectively) for the labile fraction which was similar to the organically bound residual fractions of P (200.17 mg kg?1 and 193.66 mg kg?1 respectively. Inoculation of the soils with AM fungi leads to the redistribution of P fractions in different soils which consequently helps in improvement of available P in soil conducive for plant uptake.  相似文献   
68.
在江西省鹰潭市余江县孙家红壤小流域的典型红壤区随机选取了具有代表性的林地(F)、花生旱地(PU)、新稻田(NP,<30 a)和老稻田(OP,> 200 a),在0~40 cm深度每隔5 cm采集分层土样,分析了土壤全磷(TP)、有效磷(Bray P)、磷素活化系数(PAC)及有机磷(Po)、无机磷(Pi)与各组分磷的深度变化,探讨了土壤pH与土壤有机质(SOM)对红壤磷素有效性的影响。研究结果表明:孙家小流域不同利用方式红壤TP含量大小依次为:老稻田>新稻田>林地>花生旱地;除林地外,花生旱地与稻田土壤TP、Bray P、Pi和Po含量随着土壤深度的增加呈显著降低趋势,且稻田土壤Po含量及其占全磷的比例显著高于林地和花生旱地。花生旱地与稻田0~20 cm土壤中极有效磷(EAP)、中等有效磷(MAP)及EAP、MAP中的无机磷与有机磷的比值均显著高于林地土壤。林地转为旱地和稻田,尤其是长期植稻可以促进土壤非有效磷(NAP)向利于作物吸收的EAP与MAP转化,因而提高土壤磷素有效性。相关分析表明,随着SOM累积量的增加,四种利用方式红壤中EAP、MAP含量均显著提高。  相似文献   
69.
Based on recent findings in the literature, we developed a process‐oriented conceptual model that integrates all three process groups of organic matter (OM) stabilization in soils namely (1) selective preservation of recalcitrant compounds, (2) spatial inaccessibility to decomposer organisms, and (3) interactions of OM with minerals and metal ions. The model concept relates the diverse stabilization mechanisms to active, intermediate, and passive pools. The formation of the passive pool is regarded as hierarchical structured co‐action of various processes that are active under specific pedogenetic conditions. To evaluate the model, we used data of pool sizes and turnover times of soil OM fractions from horizons of two acid forest and two agricultural soils. Selective preservation of recalcitrant compounds is relevant in the active pool and particularly in soil horizons with high C contents. Biogenic aggregation preserves OM in the intermediate pool and is limited to topsoil horizons. Spatial inaccessibility due to the occlusion of OM in clay microstructures and due to the formation of hydrophobic surfaces stabilizes OM in the passive pool. If present, charcoal contributes to the passive pool mainly in topsoil horizons. The importance of organo‐mineral interactions for OM stabilization in the passive pool is well‐known and increases with soil depth. Hydrophobicity is particularly relevant in acid soils and in soils with considerable inputs of charcoal. We conclude that the stabilization potentials of soils are site‐ and horizon‐specific. Furthermore, management affects key stabilization mechanisms. Tillage increases the importance of organo‐mineral interactions for OM stabilization, and in Ap horizons with high microbial activity and C turnover, organo‐mineral interactions can contribute to OM stabilization in the intermediate pool. The application of our model showed that we need a better understanding of processes causing spatial inaccessibility of OM to decomposers in the passive pool.  相似文献   
70.
土壤腐殖物质形成转化与结构特征研究进展   总被引:15,自引:0,他引:15  
窦森  李凯  崔俊涛  关松  张晋京 《土壤学报》2008,45(6):1148-1158
土壤有机质(SOM)是极为重要和复杂的天然有机物,从化学本质出发,SOM包括腐殖物质(HS)和非腐殖物质两个主要部分。HS是土壤SOM的主体,在土壤养分循环和碳截获方面具有重要作用。SOM的重要性和复杂性共存,这是激励研究者勇于探索的不竭动力。为了能够更好地了解土壤HS,本文对HS及其组分的形成转化及稳定性(包括形成顺序、相互转化、驱动因素、同位素分异、热力学稳定性等),化学组成和结构特征(包括HS组分的提取、分组、纯化、结构表征等),人为措施响应规律(包括耕作、施肥、土地利用的影响)的研究现状进行了回顾和总结,同时提出今后HS研究中要进一步应用先进技术、重新重视HS化学分组研究、进一步认识HS结构特征,以及探索HS形成转化机制及其与农业措施的关系。  相似文献   
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