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2013, 04, v.8 16-24
模拟氮沉降对森林土壤可溶性有机碳的影响
基金项目(Foundation): 国家自然科学基金项目(40901115、31070548、31070549、31170578); 教育部创新团队项目(IRT0960); 福建省高校杰出青年科研人才培育计划(JA12058); 福建师范大学优秀青年骨干教师培养基金(fjsdjk2012069); 福建省大学生创新性实验计划项目(Sjcxcy-2012014)
邮箱(Email):
DOI: 10.19687/j.cnki.1673-7105.2013.04.003
发布时间: 2013-12-15
出版时间: 2013-12-15
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摘要:

以亚热带森林生态系统为研究对象,于2009—2012年原位模拟氮沉降(对照,CK,0 kg·hm-2·a-1、低氮LN,30 kg·hm-2·a-1和高氮HN,100 kg·hm-2·a-1),分析亚热带阔叶林(罗浮栲、浙江桂)和针叶林(杉木)森林土壤中可溶性有机碳变化,以探究土壤不同层次、不同植被类型和凋落物是否去除条件下土壤可溶性碳对氮沉降的响应.结果表明:针叶林土壤不同层次可溶性有机碳的差异较大,表层0~15 cm在HN水平下最高;而15~30cm和30~40 cm在LN水平下最高,HN水平下15~30 cm可溶性有机碳含量显著降低;而阔叶林(罗浮栲、浙江桂)15~30 cm和30~40 cm土壤可溶性有机碳随施氮水平有小幅度的升高.通过模拟氮沉降前后表层土壤(0~15 cm)可溶性有机碳含量的比较,发现针叶林和阔叶林对氮沉降的响应存在差异,氮沉降后瞬时效应显示,杉木林土壤可溶性有机碳含量随氮水平而降低,但阔叶林并没有降低,甚至有增加趋势,尤其是在罗浮栲林.土壤自身碳含量的差异也是影响其响应氮沉降的重要因素;且模拟氮沉降后瞬时的效果在一定程度上影响最终的长期结果,而凋落物去除处理的效果短时间还无法观察到.

Abstract:

In 2009—2012 in situ simulation nitrogen deposition experiments( control,CK,0 kg · hm- 2·a- 1,low nitrogen LN,30 kg·hm- 2·a- 1and high nitrogen HN,100 kg·hm- 2·a- 1) were conducted to study effects of nitrogen deposition on soil soluble organic carbon for broad-leaved forest( Cinnamomum chekiangense and Castanopsis fabri) and coniferous forest( Cunninghamia lanceolata) in subtropical areas with different soil depth,different vegetation and litter removed or not. The results showed that soluble organic carbon at different soil depth for coniferous forest was largely differences with highest at HN for 0 ~ 15 cm soil depth. However,soil soluble organic carbon has the highest level for 15 ~ 30 cm and 30 ~ 40 cm at LN and it was decreased significantly for 15 ~ 30 cm at HN. Different from coniferous forest( Cunninghamia lanceolata),soil soluble organic carbon for broadleaved forest( Cinnamomum chekiangense and Castanopsis fabri) in 15 ~ 30 cm and 30 ~ 40 cm depth increased in small amplitude with nitrogen deposition. With comparing the soluble organic carbon after nitrogen application to that prior to fertilization for 0 ~ 15 cm soil,it was found that the response of broad-leaved forest and coniferous forest to nitrogen deposition was different. Nitrogen deposition reduced soil soluble organic carbon content for coniferous forest,but not reduced the content for broadleaved forest; even increase their content,especially in the broad-leaved forest( Castanopsis fabri). These showed that the difference of soil carbon content in different forest soils is also an important factor affecting the response of soil soluble organic carbon to nitrogen deposition. The response of soil soluble organic carbon to nitrogen application time and again at short-term to some extent affect the final long-term results. However,the effects of litter removed could not be observed at a short-term.

参考文献

[1]Wright R F,Rasmussen L.Introduction to the NITREX and EXMAN projects[J].Forest Ecology and Management,1998,101:1-7.

[2]Hall S J,Matson P A.Nutrient status of tropical rain forests influences soil N dynamics after N additions[J].Ecological Monographs,2003,73(1):107-129.

[3]Binkley D,Son Y,Valentine D W.Do forest receive occult inputs of nitrogen[J].Ecosystems,2000,3:21-331.

[4]Lovett G,Reiners W A,Olsen R K.Cloud droplet deposition in subalpine balsam fir forests:Hydrological and chemical inputs[J].Science,1982,218:1303-1304.

[5]Mo Jing-ming,Xue Jing-hua,Fang Yun-ting.Litter decomposition and its responses to simulated N deposition for the major plants of Dinghushan forests in subtropical China[J].Acta Ecolgica Sinica,2004,24(7):1413-1420.[莫江明,薛璟花,方运霆.鼎湖山主要森林植物凋落物及其对氮沉降的响应[J].生态学报,2004,24(7):1413-1420.]

[6]Nadelhoffer K J,Emmett B A,Gundersen P,et al.Nitrogen deposition makes a minor contribution to carbon sequestration in temperate forests[J].Nature,1999,398:145-148.

[7]Deng Xiao-wen,Han Shi-jie.Impact of nitrogen deposition on forest soil carbon[J].Chinese Journal of Ecology,2007,26(10):1622-1627.[邓小文,韩士杰.氮沉降对森林生态系统土壤碳库的影响[J].生态学杂志,2007,26(10):1622-1627.]

[8]Paustian K,Six J,Elliott E T,et al.Management options for reducing CO2emissions from agricultural soils[J].Biochemistry,2000,48:147-163.

[9]Wattel-Koekkoek E J W,van Genuchten P P L,Buurman P,et al.Amount and composition of clay associated soil organic matter in a range of kaolinitic and smectitic soils[J].Geoderma,2001,99:27-49.

[10]Shen Hong,Cao Zhi-hong,Hu Zheng-yi.Characteristics and ecological effects of the active organic carbon in soil[J].Chinese Journal of Ecology,1999,18(3):32-38.[沈宏,曹志洪,胡正义.土壤活性有机碳的表征及其生态效应[J].生态学杂志,1999,18(3):32-38.]

[11]Coleman D C,Crossley D A,Hendrix P.Fundamentals of Soil Ecology[M].New York,USA:Academic Press,1996.

[12]Fang Hua-jun,Cheng Shu-lan,Yu Gui-rui.Research on process and mechanism of carbon and nitrogen leaching for forest soils[J].Progress in Geography,2007,26(3):29-37.[方华军,程淑兰,于贵瑞.森林土壤碳、氮淋失过程及其形成机制研究进展[J].地理科学进展,2007,26(3):29-37.]

[13]Findlay S E G.Increased carbon transport in the Hudson River:Unexpected consequence of nitrogen deposition[J].Frontiers in Ecology and the Environment,2005,3(3):133-137.

[14]Pregitzer K S,Zak D R,Burton A J,et al.Chronic nitrate additions dramatically increase the export of carbon and nitrogen from northern hardwood ecosystems[J].Biogeochemistry,2004,68:179-197.

[15]Gundersen P,Emmettb A,Kjonaas O J,et al.Impact of nitrogen deposition on nitrogen cycling in forests:A synthesis of NITREX data[J].Forest Ecology and Management,1998,101:37-56.

[16]Sinsabaugh R L,Zak D R,Gallo M,et al.Nitrogen deposition and dissolved organic carbon production in northern temperate forests[J].Soil Biology and Biochemistry,2004,36:1509-1515.

[17]Smolander A,Kitunen V.Soil microbial activities and characteristics of dissolved organic C and N in relation to tree species[J].Soil Biology and Biochemistry,2002,34:651-660.

[18]Kalbitz K,Solinger S,Park J H,et al.Controls on the dynamics of dissolved organic matter in soils:A review[J].Soil Science,2000,165:277-304.

[19]Magill A H,Aber J D,Berntson G M,et al.Long-term nitrogen additions and nitrogen saturation in two temperate forests[J].Ecosystems,2000,3:238-253.

[20]Limpens J,Berendse F.How litter quality affects mass loss and N loss from decomposing Sph agnum[J].Oikos,2003,103:537-547.

[21]Deforest J L,Zak D R,Pregitzer K S,et al.Atmospheric nitrate deposition and the microbial degradation of cellobiose and vanillin in a northern hardwood forest[J].Soil Biology and Biochemistry,2004,36:965-971.

[22]Micks P,Downs M R,Magill A H.Decomposition litter as a sink for15N-enriched additions to an oak forest and a red pine plantation[J].Forest Ecosystem and Management,2004,196:71-87.

[23]Berg B.Litter decomposition and organic matter turnover in northern forest soils[J].Forest Ecology and Management,2000,133:13-22.

[24]Aber J,Mcdowell W,Nadelhoffer K,et al.Nitrogen saturation in northern forest ecosystems:Hypotheses revisited[J].Bioscience,1998,48:921-934.

[25]Wu Cheng-zhen,Hong Wei,Jiang Zhi-lin,et al.Advances in research of forest litter-fall in China[J].Acta Agriculturae Universitatis Jiangxiensis,2000,22(3):405-410.[吴承帧,洪伟,姜志林,等.我国森林凋落物研究进展[J].江西农业大学学报,2000,22(3):405-410.]

[26]Wang Li-xin,Wang Jin,Huang Jian-hui.Comparison of major nutrient release patterns of Quercus liaotungensis leaf litter decomposition in different climatic zones[J].Acta Botanica Sinica,2003,45(4):399-407.[王立新,王瑾,黄建辉.辽东栎叶片凋落物在不同气候带下的分解及其主要元素释放的比较[J].植物学报,2003,45(4):399-407.]

[27]Wang Ru-nan,Lin Zhao-lan,Wang Chun-mei.Effects of nitrogen deposition on forest soil carbon budget mechanism[J].Ecology and Environmental Sciences,2011,20(3):576-582.[王汝南,蔺兆兰,王春梅.氮沉降对森林土壤碳收支机制的影响[J].生态环境学报,2011,20(3):576-582.]

[28]Kuperman R G.Litter decomposition and nutrient dynamics in oak-hickory forests along a historic gradient of nitrogen and sulfur deposition[J].Soil Biology and Biochemistry,1999,31;237-244.

[29]Yan Cong-wei,Ma Hong-liang,Gao Ren,et al.Effects of simulated nitrogen deposition on soluble nitrogen in subtropical forest soils[J].Research of Environmental Sciences,2012,25(6):678-684.[闫聪微,马红亮,高人,等.模拟氮沉降对中亚热带森林土壤中可溶性氮含量的影响[J].环境科学研究,2012,25(6):678-684.]

[30]Wang Jie,Ma Hong-liang,Gao Ren,et al.Effect of phenolics addition on content of inorganic nitrogen in forest soil[J].Journal of Anhui Agricultural Science,2010,38(10):5184-5187.[王杰,马红亮,高人,等.添加酚类物质对森林土壤无机氮的影响[J].安徽农业科学,2010,38(10):5184-5187.]

[31]Liu Wei-li,Ma Hong-liang,Peng Xiu-ming,et al.Effects of secondary metabolites of litter on soluble nitrogen in forest soil[J].Soils,2010,42(4):564-568.[刘维丽,马红亮,彭秀明,等.凋落物中次生代谢物对森林土壤可溶性氮的影响[J].土壤,2010,42(4):564-568.]

[32]Ma Hong-liang,Liu Wei-li,Gao Ren,et al.Effects of litters and tannin on forest soil inorganic nitrogen[J].Chinese Journal of Applied Ecology,2011,22(1):61-65.[马红亮,刘维丽,高人,等.凋落物与单宁酸对森林土壤无机氮的影响[J].应用生态学报,2011,22(1):61-65.]

基本信息:

DOI:10.19687/j.cnki.1673-7105.2013.04.003

中图分类号:S718.5

引用信息:

[1]魏春兰,马红亮,高人,等.模拟氮沉降对森林土壤可溶性有机碳的影响[J].亚热带资源与环境学报,2013,8(04):16-24.DOI:10.19687/j.cnki.1673-7105.2013.04.003.

基金信息:

国家自然科学基金项目(40901115、31070548、31070549、31170578); 教育部创新团队项目(IRT0960); 福建省高校杰出青年科研人才培育计划(JA12058); 福建师范大学优秀青年骨干教师培养基金(fjsdjk2012069); 福建省大学生创新性实验计划项目(Sjcxcy-2012014)

发布时间:

2013-12-15

出版时间:

2013-12-15

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