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保护性耕作对太行山前平原土壤热水解和酸解有机碳的影响 被引量:5
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作者 杜章留 任图生 胡春胜 《中国农业科学》 CAS CSCD 北大核心 2013年第11期2249-2256,共8页
【目的】研究传统耕作转为保护性耕作后土壤热水解碳(HWC)和酸解碳(AHC)的分布和积累特征。【方法】2001年在河北栾城设置翻耕+玉米秸秆不还田(CK)、翻耕+玉米秸秆粉碎还田(CT)、旋耕+玉米秸秆粉碎还田(RT)和免耕玉米秸秆直立还田(NT)4... 【目的】研究传统耕作转为保护性耕作后土壤热水解碳(HWC)和酸解碳(AHC)的分布和积累特征。【方法】2001年在河北栾城设置翻耕+玉米秸秆不还田(CK)、翻耕+玉米秸秆粉碎还田(CT)、旋耕+玉米秸秆粉碎还田(RT)和免耕玉米秸秆直立还田(NT)4个处理。2007年小麦收获后,采集0—5 cm、5—10 cm、10—20 cm和20—30 cm土层样品,测定热水解有机碳(HWC,80℃水浴下提取24 h)和酸解有机碳(AHC,6 mol.L-1HCl,105℃下提取4 h)的浓度,分析两种活性碳的层化比率值(SR),并基于等效质量碳库储量计算方法,比较了不同耕作处理对土壤活性碳分布和储量的影响。【结果】连续6年保护性耕作后,HWC和AHC在土壤表层积累,具有较高的层化比率值。在0—10 cm土层,保护性耕作(RT和NT)系统HWC的SR值(1.68—1.98)显著高于传统翻耕(CK和CT)处理(1.30—1.50),保护性耕作下AHC的SR值(1.62—1.83)亦高于传统翻耕(1.12—1.63)。与传统翻耕CT相比,保护性耕作系统0—30 cm剖面的HWC储量无显著变化,但免耕显著增加了AHC的储量。【结论】在太行山前平原地区,保护性耕作导致土壤剖面中HWC和AHC在表层积累,呈现高度层化特征,可能会潜在影响土壤质量和农田固碳速率。 展开更多
关键词 保护性耕作 热水解碳 酸解 层化系数 活性储量
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Pyrolysis of Banana and Coffee Residues after Acid Hydrolysis
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作者 Magale Karine Diel Rambo Etelvino Henrique Novotny +3 位作者 Luciano Pasqualoto Canellas Natalia de Oliveira Aguiar Rubens Auccaise Michele Cristiane Diel Rambo 《Journal of Chemistry and Chemical Engineering》 2014年第10期960-970,共11页
The use of the residues from renewable feedstock, besides the production of fuels, but also for the generation of other chemicals products, has become a priority. Superior plants have considerable potential as carbohy... The use of the residues from renewable feedstock, besides the production of fuels, but also for the generation of other chemicals products, has become a priority. Superior plants have considerable potential as carbohydrate, aryl and fatty acids sources. However, the separation of the main constituents of the samples is necessary for several purposes in the biorefinery concept. The acid hydrolysis and pyrolysis processes are very promising technology, however, some adjustments in the conditions of pyrolysis are needed for different biomasses since carbohydrates were detected (14%-17%) in the residues after the conventional acid hydrolysis of these uncommon biomasses (coffee husk and banana stem and stalk). On the other hand, it was showed that, by pyrolysis, it is possible to obtain from the solid residue after acid hydrolysis: pyrogenic carbon (charcoal with a yield of 48.5%-52.7%) for agriculture use (biochar) and valuable chemicals in the pyrolysis oil biooil fraction (that accounted by 26.4%-29.0%, free of water), such as lignin monomers (32.6%-56.4% of the bio-oil) and fatty acids (30%-52.5%). 展开更多
关键词 Lignocellulosic biomass BIOREFINERY acid hydrolysis analytical pyrolysis ~3C NMR (nuclear magnetic resonance).
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