1. 河南师范大学 生命科学学院,河南,新乡,453007
2. 中煤科工集团西安研究院有限公司,陕西,西安,710054
纸质出版:2018
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李英臣, 侯翠翠, 刘月皓, 等. 玉米秸秆不同构件混合分解的非加和效应及其对土壤有机碳矿化的影响[J]. 水土保持通报, 2018,38(3):233-239.
LI Yingchen, HOU Cuicui, LIU Yuehao, et al. Non-additive Effects of Different Components of Maize Straw on Soil Carbon Mineralization[J]. Bulletin of Soiland Water Conservation, 2018, 38(3): 233-239.
李英臣, 侯翠翠, 刘月皓, 等. 玉米秸秆不同构件混合分解的非加和效应及其对土壤有机碳矿化的影响[J]. 水土保持通报, 2018,38(3):233-239. DOI: 10.13961/j.cnki.stbctb.2018.03.038.
LI Yingchen, HOU Cuicui, LIU Yuehao, et al. Non-additive Effects of Different Components of Maize Straw on Soil Carbon Mineralization[J]. Bulletin of Soiland Water Conservation, 2018, 38(3): 233-239. DOI: 10.13961/j.cnki.stbctb.2018.03.038.
[目的
]
研究玉米秸秆不同构件混合分解的非加和效应及其对黄绵土土壤有机碳矿化的影响,为秸秆还田背景下坡地土壤CO
2
排放提供理论支撑。[方法
]
采用室内模拟试验,试验设置无玉米秸秆土壤对照(CK)及4种玉米秸秆添加处理:茎+土壤(CKS)、叶+土壤(CKL)、鞘+土壤(CKLS)、混合玉米秸秆+土壤(CKM)。[结果
]
培养结束土壤有机碳矿化累积排放量实测值显著高于预测值,且促进作用主要是由培养初期快速分解阶段(1~28 d)导致的。培养结束后混合玉米秸秆剩余质量预测值明显高于实测值,且元素含量发生明显改变,其中全氮含量预测值明显低于实测值,C/N预测值明显高于实测值。培养结束后CKS处理土壤微生物碳含量明显高于其他几种处理,其他几种处理差异不显著;添加玉米秸秆处理土壤微生物量氮明显降低,相应的土壤微生物量C/N增大,CKS,CKL和CKM处理与CK处理差异达到显著水平。土壤可溶性有机碳(DOC)含量CKLS和CKM处理明显高于其他3种处理,CKS与CKL处理与对照差异不显著。[结论
]
玉米秸秆不同构件按比例混合对玉米秸秆分解产生协同促进作用,混合分解过程促进氮累积。
[Objective] To investigate the non-additive effect of different maize straw components on soil organic carbon (SOC) mineralization in loessial soil in order to provide technical support for soil CO2 emissions.[Methods] By laboratory incubation experiment
five treatments were set including soil with no maize straw addition (CK); soil with stalk litter addition (CKS); soil with leaf litter addition (CKL); soil with leaf sheath addition (CKLS) soil with mixed maize straw addition (CKM).[Results] The amounts of observed soil accumulative carbon mineralization were significant higher than the predicted value in the end of experiment
and the promotion was mainly happened in the fast decomposition stage (1~28 d). The predicted remaining mass and carbon-nitrogen ratio were higher than the observed values
while the predicted content of soil total nitrogen was lower than the observed value in the end of experiment. The content of microbial biomass carbon (MBC) was the highest under CKS treatment
and there was no significant difference among other treatments. The content of microbial biomass nitrogen (MBN) showed a decreasing tendency
the MBC/MBN increased under litter addition treatments and the differences among CKS
CKL and CKM treatments and CK treatment was significant. The content of dissolved organic carbon (DOC) was higher under CKLS and CKM treatments than under other three treatments
and the difference between CKS and CKL treatments was not significant.[Conclusion] To mix litter in proportion had a synergistic effect on litter decomposition
and the decomposition of mixed litter promoted litter nitrogen accumulation.
Aerts R. Climate, leaf litter chemistry and leaf litter decomposition in terrestrial ecosystems:A triangular relationship[J]. Oikos, 1997,79(3):439-449.
Bonanomi G, Capodilupo M, Incerti G, et al. Nitrogen transfer in litter mixture enhances decomposition rate, temperature sensitivity, and C quality changes[J]. Plant and Soil, 2014,381(1/2):307-321.
Mao Rong, Zeng Dehui. Non-additive effects vary with the number of component residues and their mixing proportions during residue mixture decomposition:A microcosm study[J]. Geoderma, 2012,170(1):112-117.
Bavin T K, Griffis T J, Baker J M, et al. Impact of reduced tillage and cover cropping on the greenhouse gas budget of a maize/soybean rotation ecosystem[J]. Agriculture, Ecosystems and Environment, 2009,134(3/4):234-242.
Kallenbach C, Rolston D E, Horwath W R. Cover cropping affects soil N
2
O and CO
2
emissions differently depending on type of irrigation[J]. Agriculture, Ecosystems and Environment, 2010,137(3/4):251-260.
史学军,潘剑君,陈锦盈,等.不同类型凋落物对土壤有机碳矿化的影响[J].环境科学,2009,30(6):1832-1837.
Feng Jinfeng, Chen Changqing, Zhang Yi, et al. Impact of cropping practices on yield-scaled greenhouse gas emissions from rice field in China:A meta-analysis[J]. Agriculture, Ecosystems and Environment, 2013,164(1):220-228.
严坤,王玉宽,徐佩,等.秸秆覆盖对三峡库区坡面侵蚀的影响[J].水土保持通报,2016,36(1):6-10.
鲁如坤.土壤农业化学分析方法[M].北京:中国农业科技出版社,2000:228-231.
Van Soest P, Robertson J B, Lewis B A. Methods for dietary fiber, neutral degergent fiber, and nonstarch polysaccharides in relation to animal nutrition[J]. Journal of Diary Science, 1991,74(10):3583-3597.
王意锟,方升佐,田野,等.残落物添加对农林复合系统土壤有机碳矿化和土壤微生物量的影响[J].生态学报,2012,32(22):7239-7246.
Oorts K, Merckx R, Gréhan E, et al. Determinants of annual fluxes of CO
2
and N
2
O in long-term no-tillage and conventional tillage systems in northern France[J]. Soil and Tillage Research, 2007,95(1/2):133-148.
Chapman S K, Newman G S. Biodiversity at the plant-soil interface:Microbial abundance and community structure respond to litter mixing[J]. Oecologia, 2010,162(3):763-769.
Li Daijiang, Peng Shaolin, Chen Baoming. The effects of leaf litter evenness on decomposition depend on which plant functional group is dominant[J]. Plant and Soil, 2013,365(1/2):255-266.
Yoshikitake S, Uchida M, Koizumi H, et al. Carbon and nitrogen limitation of soil microbial respiration in a high arctic successional glacier foreland near Ny-Ålesund Svalvard[J]. Polar Research, 2007,26(1):22-30.
Kerstin R, Johan S, Marianne C, et al. Microbial biomass in relation to C and N mineralization during laboratory incubation[J].Soil Biology and Biochemistry, 1988,20(3):281-286.
高云超,朱文珊,陈文新.土壤微生物生物量周转的估算[J]. 生志学杂志,1993,12(6):6-10.
张圣喜,陈法霖,郑华.土壤微生物群落结构对中亚热带三种典型阔叶树种凋落物分解过程的响应[J].生态学报,2011,31(11):3020-3026.
陈法霖,郑华,欧阳志云,等.土壤微生物群落结构对凋落物组成变化的响应[J].土壤学报,2011,48(3):603-611.
刘德燕,宋长春,王丽,等.外源氮输入对湿地土壤有机碳矿化及可溶性有机碳影响[J].环境科学,2008,29(12):233-238.
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