PDF DownloadHTML ]" id="html" rel="external">HTML
[1]CUI Huijin,LIU Ju,DU Ziqiang,et al.Hyperspectral Characteristics of the Sorghum Field and Their Relations with Soil Respiration Under the Conditions of Plastic Film Mulching and Biochar Application[J].Research of Soil and Water Conservation,2020,27(03):15-22.
Copy

Hyperspectral Characteristics of the Sorghum Field and Their Relations with Soil Respiration Under the Conditions of Plastic Film Mulching and Biochar Application

References:
[1] Schimel D S. Terrestrial ecosystems and the carbon cycle[J]. Global Change Biology, 1995,1(1):77-91.
[2] Raich J W, Potter C S, Bhagawati D. Interannual variability in global soil respiration, 1980—1994[J]. Global Change Biology, 2002,8(8):800-812.
[3] Schlesinger W H, Anderws J A. Soil respiration and the global carbon cycle[J]. Biogeochemistry, 2000,48(1):7-20.
[4] 张东秋,石培礼,张宪洲.土壤呼吸主要影响因素的研究进展[J].地球科学进展,2005,20(7):778-785.
[5] Kuzyakov Y, Larionova A. A. Root and rhizomicrobial respiration:a review of approaches to estimate respiration by autotrophic and heterotrophic organisms in soil[J]. Journal of Plant Nutrition and Soil Science, 2005,168(4):503-520.
[6] 张春兰,杨贵军,李贺丽,等.基于随机森林算法的冬小麦叶面积指数遥感反演研究[J].中国农业科学,2018,51(5):855-867.
[7] 房贤一,朱西存,王凌,等.基于高光谱的苹果盛果期冠层叶绿素含量监测研究[J].中国农业科学,2013,46(16):3504-3513.
[8] 张卓,龙慧灵,王崇倡,等.冬小麦叶片光合特征高光谱遥感估算模型的比较研究[J].中国农业科学,2019,52(4):43-55.
[9] Liang Y, Cai Y, Yan J, et al. Estimation of soil respiration by its driving factors based on multi-source data in a sub-alpine meadow in North China[J]. Sustainability, 2019,11(12):1-17.
[10] Cicuendez V, Rodríguez-Rastrero M, Huesca M, et al. Assessment of soil respiration patterns in an irrigated corn field based on spectral information acquired by field spectroscopy[J]. Agriculture, Ecosystems & Environment, 2015,212:158-167.
[11] Huang N, Niu Z, Zhan Y, et al. Relationships between soil respiration and photosynthesis-related spectral vegetation indices in two cropland ecosystems[J]. Agricultural and Forest Meteorology, 2012,160:80-89.
[12] Gamon J A, Field C B. Relationships between NDVI, canopy structure, and photosynthesis in three Californian vegetation types[J]. Ecological Applications, 1995,5(1):28-41.
[13] Gitelson A A, Gritz Y, Merzlyak M N. Relationships Between leaf chlorophyll content and spectral reflectance and algorithms for non-destructive chlorophyll assessment in higher plant leaves[J]. Journal of Plant Physiology, 2003,160(3):271-282.
[14] Richardson A J, Wiegand C L. Distinguishing vegetation from soil background information[J]. Photogrammetric Engineering and Remote Sensing, 1977,43(12):1541-1552.
[15] Hellawell A. The crystal chemistry and physics of metals and alloys[J]. International Metallurgical Reviews, 1973,18(1):39-39.
[16] Huete A, Didan K, Miura T, et al. Overview of the radiometric and biophysical performance of the MODIS vegetation indices[J]. Remote Sensing of Environment, 2002,83(1):195-213.
[17] Vogelmann J E, Rock B N, Moss D M. Red edge spectral measurements from sugar maple leaves[J]. International Journal of Remote Sensing, 1993,14(8):1563-1575.
[18] Gamon J A, Penuelas J, Field C B. A narrow-waveband spectral index that tracks diurnal changes in photosynthetic efficiency[J]. Remote Sensing of Environment, 1992,41(1):35-44.
[19] Atkinson C J, Fitzgerald J D, Hipps N A. Potential mechanisms for achieving agricultural benefits from biochar application to temperate soils:a review[J]. Plant and Soil, 2010,337(1/2):1-18.
[20] Biederman L A, Harpole W S. Biochar and its effects on plant productivity and nutrient cycling:a meta-analysis[J]. Global Change Biology Bioenergy, 2013,5(2):202-214.
[21] Han G, Lan J, Chen Q, et al. Response of soil microbial community to application of biochar in cotton soils with different continuous cropping years[J]. Scientific Reports, 2017,7(1):10184.
[22] 吴伟祥,孙雪,董达,等.生物质炭土壤环境效应[M].北京:科学出版社,2015.
[23] Stewart C E, Zhang J Y, Botte J, et al. Co-generated fast pyrolysis biochar mitigates green-house gas emissions and increases carbon sequestration in temperate soils[J]. Global Change Biology Bioenergy, 2013,5(2):153-164.
[24] Liu Y, Liu S, Wan S, et al. Differential responses of soil respiration to soil warming and experimental throughfall reduction in a transitional oak forest in central China[J]. Agricultural and Forest Meteorology, 2016,226:186-198.
[25] Al-Wabel M I, Al-Omran A, El-Naggar A H, et al. Pyrolysis temperature induced changes in characteristics and chemical composition of biochar produced from conocarpus wastes[J]. Bioresource Technology, 2013,131:374-379.
[26] Sagrilo E, Jeffery S, Hoffland E, et al. Emission of CO2 from biochar-amended soils and implications for soil organic carbon[J]. Global Change Biology Bioenergy, 2015,7(6):1294-1304.
[27] 王颖,娄运生,石一凡,等.夜间增温对稻田甲烷排放的影响及其高光谱估算[J].生态学报,2018,38(14):5099-5108.
[28] Wu C, Gaumont-Guay D, Black T A, et al. Soil respiration mapped by exclusively use of MODIS data for forest landscapes of Saskatchewan, Canada[J]. Isprs Journal of Photogrammetry and Remote Sensing, 2014,94:80-90.
[29] Huang N, He J S, Niu Z. Estimating the spatial pattern of soil respiration in Tibetan alpine grasslands using Landsat TM images and MODIS data[J]. Ecological Indicators, 2013,26:117-125.
Similar References:

Memo

-

Last Update: 2020-04-30

Online:604       Total Traffic Statistics:23885799

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