PDF DownloadHTML ]" id="html" rel="external">HTML
[1]WANG Yipei,SUN Meimei,CHENG Ranran,et al.Accumulation of Soil Organic Carbon and Its Influencing Factors in Coniferous Plantations in the Midwestern Loess Plateau[J].Research of Soil and Water Conservation,2020,27(03):30-36.
Copy

Accumulation of Soil Organic Carbon and Its Influencing Factors in Coniferous Plantations in the Midwestern Loess Plateau

References:
[1] 王新闯,齐光,于大炮,等.吉林省森林生态系统的碳储量、碳密度及其分布[J].应用生态学报,2011,22(8):2013-2020.
[2] 冯雪瑾,张志华,杨喜田,等.太行山低山丘陵区人工林表层土壤有机碳和全氮分布特征[J].应用生态学报,2019,30(2):511-517.
[3] 贺亮,苏映泉,季志平,等.黄土高原丘壑区刺槐、油松人工林的碳储量及其分布特征研究[J].西北林学院学报,2007,22(4):49-53.
[4] 阿米娜木?艾力,常顺利,张毓涛,等.天山云杉森林土壤有机碳沿海拔的分布规律及其影响因素[J].生态学报,2014,34(7):1626-1634.
[5] Jobbágy E G, Jackson R B. The vertical distribution of soil organic carbon and its relation to climate and vegetation[J]. Ecological Applications, 2000,10:423-436.
[6] 杨晓梅,程积民,孟蕾,等.不同林地土壤有机碳储量及垂直分布特征[J].中国农学通报,2010,26(9):132-135.
[7] 王艳丽,字洪标,程瑞希,等.青海省森林土壤有机碳氮储量及其垂直分布特征[J].生态学报,2019,39(11):4097-4104.
[8] Song B L, Yan M J, Hou H, et al. Distribution of soil carbon and nitrogen in two typical forests in the semiarid region of the Loess Plateau[J]. Catena, 2016,143:159-166.
[9] Yang Y, Mohammat A, Feng J, et al. Storage, patterns and environmental controls of soil organic carbon in China. Biogeochemistry, 2007,84:131-141.
[10] 何志斌,赵文智,刘鹄,等.祁连山青海云杉林斑表层土壤有机碳特征及其影响因素[J].生态学报,2006,26(8):2572-2577.
[11] 卢慧,丛静,薛亚东,等.海拔对神农架表层土壤活性有机碳含量的影响[J].林业科学,2014,50(8):163-167.
[12] Zhang Y Q, Liu J B, Jia X, et al. Soil organic carbon accuraulation in arid and semiarid area after Afforeatation:a Meta-Analyais[J]. Polish Journal of Environmental Studies, 2013,22(2):611-620.
[13] Woldeselassic M, Van Miegroet H, Gruselle M C, et al. Storage and stability of soil organic carbon in Aspen and Conifer Forest soils of Northern Utah[J]. Soil Science Society of America Journal, 2012,76(6):2230-2240.
[14] 解宪丽,孙波,周慧珍,等.不同植被下中国土壤有机碳的储量与影响因子[J].土壤学报,2004,41(5):688-699.
[15] 张祎,李鹏,马田田,等.黄土高原典型流域“自然—人工”植被对土壤表层碳分布的影响[J].西安理工大学学报,2017,23(4):443-449.
[16] Mehta N, Pandrya N R, Thomas V O, et al. Impact of rainfall gradient on aboveground biomass and soil organic carbon dynamics of forest covers in Gujarat, India[J]. Ecological Research, 2014,29(6):1053-1063.
[17] 孙美美,关晋宏,吴春荣,等.黄土高原西部3个降水量梯度近成熟油松人工林碳库特征[J].生态学报,2017,37(8):2665-2672.
[18] 李茜,王芳,曹扬,等.陕西省森林土壤固碳特征及其影响因素[J].植物生态学报,2017,41(9):953-963.
[19] Pregitzer K S, Euskirchen E S. Carbon cycling and storage in world forests:Biome patterns related to forest age[J]. Global Change Biology, 2004,10:2052-2077.
[20] Wynn J G, Bird M I, Vellen L, et al. Continental-scale measurement of the soil organic carbon pool with climatic, edaphic and biotic controls[J]. Global Biogeochemical Cycles, 2006,20:GB1007. doi:10.1029/2005 GB002576.
[21] Jobbágy E G, Jackson R B. The vertical distribution of soil organic carbon and its relation to climate and vegetation[J]. Ecological Applications, 2000,10:423-436.
[22] 宋新章,江洪,马元丹,等.中国东部气候带凋落物分解特征—气候和基质质量的综合影响[J].生态学报,2009,29(10):5220-5226.
[23] 黄锦学,黄李梅,林智超,等.中国森林凋落物分解速率影响因素分析[J].亚热带资源与环境学报,2010,5(3):57-63.
[24] 牛春梅,关晋宏,程然然,等.黄土高原中西部刺槐人工林生态系统碳密度及其影响因子[J].生态学报,2017,37(15):5049-5058.
[25] Martin J L, Gower S T, Plaut J, et al. Carbon pools in arboreal mixed wood logging chronosequence[J]. Global Change Biology, 2005,11:1883-1894.
[26] 吴建国,张小全,徐德应.六盘山林区几种土地利用方式下土壤活性有机碳的比较[J].植物生态学报,2004,28(5):657-664.
[27] Luan J, Liu S, Zhu X, et al. Soil carbon stocks and fluxes in a warm-temperate oak chronosequence in China[J]. Plant and Soil, 2011,347:243-253.
[28] Zhou G Y, Xu S, Ciais P, et al. Climate and litter C/N ratio constrain soil organic carbon accumulation[J]. National Science Review, 2019,6(4):746-757. Doi:10,1093/nsr/nwz045.
[29] Sun O J, Campbell J, Law B E, et al. Dynamics of carbon stocks in soils and detritus across chronosequences of different forest types in the Pacific Northwest USA[J]. Global Change Biology, 2004,10:1470-1481.
[30] 任悦,高广磊,丁国栋,等.沙地樟子松人工林叶片—枯落物—土壤有机碳含量特征[J].北京林业大学学报,2008,40(7):36-44.
[31] Singh K P, Singh P K, Tripathi S K. Litterfall, litter decomposition and nutrient release patterns in four native tree species raised on coal mine spoil at Singrauli, India[J]. Biology and Fertility of Soils, 1999,29:371-378.
[32] Tateno R, Tokuchi N, Yamanaka N, et al. Comparison of litterfall production and leaf litter decomposition between an exotic black locust plantation and an indigenous oak forest near Yan'an on the Loess Plateau China[J]. Forest Ecology and Management, 2007,241:84-90.
[33] 陈法霖,江波,张凯,等.退化红壤丘陵区森林凋落物初始化学组成与分解速率的关系[J].应用生态学报,2011,22(3):565-570.
[34] 潘萍,赵芳,欧阳勋志,等.马尾松林两种林下植被土壤碳氮特征及其与凋落物质量的关系[J].生态学报,2018,38(11):3988-3997.
[35] 卢同平,张文翔,牛洁,等.西双版纳不同森林类型凋落叶与土壤碳氮变化研究[J].热带作物学报,2016,37(8):1526-1533.
[36] 王晓峰,汪思龙,张伟东.杉木凋落物对土壤有机碳分解及微生物生物量碳的影响[J].应用生态学报,2013,24(9):2393-2398.
[37] 曾锋,邱治军,许秀玉.森林凋落物分解研究进展[J].生态环境学报,2010,19(1):239-243.
[38] 于明坚,陈启常,李铭红,等.青冈常绿阔叶林死地被层和土壤性质特征的研究[J].林业科学,1996,32(2):103-110.
[39] 郭培培,江洪,余树全,等.亚热带6种针叶和阔叶树种凋落叶分解比较[J].应用与环境生物学报,2009,15(5):655-659.
[40] 裴蓓,高国荣.凋落物分解对森林土壤碳库影响的研究进展[J].中国农学通报,2018,34(26):58-64.
Similar References:

Memo

-

Last Update: 2020-04-30

Online:366       Total Traffic Statistics:24025629

Website Copyright: Research of Soil and Water Conservation Shaanxi ICP No.11014090-10
Tel: 029-87012705 Address: Editorial Department of Research of Soil and Water Conservation, No. 26, Xinong Road, Yangling, Shaanxi Postcode: 712100