Chinese Journal of Agrometeorology ›› 2019, Vol. 40 ›› Issue (11): 669-677.doi: 10.3969/j.issn.1000-6362.2019.11.001
Previous Articles Next Articles
YUAN Wen-wen,ZHANG Jin-song,MENG Ping,TONG Xiao-juan,PAN Qing-mei,HE Fang-jie,LI Jian-xia
Online:
2019-11-20
Published:
2019-11-13
YUAN Wen-wen,ZHANG Jin-song,MENG Ping,TONG Xiao-juan,PAN Qing-mei,HE Fang-jie,LI Jian-xia. Comparison of CH4 Flux Measurement by Open- and Close- Path Eddy Covariance System[J]. Chinese Journal of Agrometeorology, 2019, 40(11): 669-677.
Add to citation manager EndNote|Ris|BibTeX
URL: https://zgnyqx.ieda.org.cn/EN/10.3969/j.issn.1000-6362.2019.11.001
[1] IPCC.Climate change 2013:the physical science basic. Contribution of working group I to the fifth assessment report of the intergovernmental panel on climate change[J]. Cambridge:Cambridge University,2013. [2] Bridgham S D,Cadillo-Quiroz H,Keller J K,et al.Methane emissions from wetlands:biogeochemical,microbial,and modeling perspectives from local to global scales[J].Global Change Biology,2013,19(5):1325-1346. [3] Kai F M,Tyler S C,Randerson J T,et al.Reduced methane growth rate explained by decreased Northern Hemisphere microbial sources[J].Nature,2011,476(7359):194-197. [4] Bousquet P,Ciais P,Miller J B,et al.Contribution of anthropogenic and natural sources to atmospheric methane variability[J]. Nature,2006,443(7110):439-443. [5] Solomon E A,Kastner M,Macdonald I R,et al.Considerable methane fluxes to the atmosphere from hydrocarbon seeps in the Gulf of Mexico[J].Nature Geoscience,2009,2(8):561-565. [6] 苏荣瑞,刘凯文,耿一风,等.江汉平原稻-油连作系统冠层CO2通量变化特征[J].中国农业气象,2012,33(3):362-367. Su R R,Liu K W,Geng Y F,et al.CO2 flux variation over canopy rice-rape succession system in Jianghan Plain[J]. Chinese Journal of Agrometeorology,2012,33(3):362-367.(in Chinese) [7] 贾志军,姬兴杰.三江平原稻田蒸散量模拟研究[J].中国农业气象,2014,35(4):380-388. Jia Z J,Ji X J.Simulation study on evapotranspiration of rice paddy in the Sanjiang Plain[J].Chinese Journal of Agrometeorology, 2014,35(4):380-388.(in Chinese) [8] 刘渡,李俊,同小娟,等.华北平原冬小麦/夏玉米轮作田能量闭合状况分析[J].中国农业气象,2012,33(4):493-499. Liu D,Li J,Tong X J,et al.Analysis of the energy balance closure in a winter wheat/summer maize double cropping system in the North China Plain[J].Chinese Journal of Agrometeorology,2012,33(4):493-499.(in Chinese) [9] Baldocchi D,Detto M,Sonnentag O,et al.The challenges of measuring methane fluxes and concentrations over a peatland pasture[J].Agricultural and Forest Meteorology,2012,153: 180-187. [10] Olson D M,Griffis T J,Noormets A,et al. Interannual, seasonal,and retrospective analysis of the methane and carbon dioxide budgets of a temperate peatland[J].Journal of Geophysical Research:Biogeosciences,2013,118(1):226-238. [11] Iwata H,Kosugi Y,Ono K,et al.Cross-Validation of open-path and closed-path eddy-covariance techniques for observing methane fluxes[J].Boundary-Layer Meteorology,2014,151 (1):95-118. [12] Yu X,Song C,Sun L,et al.Growing season methane emissions from a permafrost peatland of northeast China: observations using open-path eddy covariance method[J]. Atmospheric Environment,2017,153:135-149. [13] Masahito U,Kota Y,Kentaro T.A cool-temperate young larch plantation as a net methane source:a 4-year continuous hyperbolic relaxed eddy accumulation and chamber measurements[J].Atmospheric Environment,2018,184:110-120. [14] Wang G X,Hirata R,Hirano T,et al.Micrometeorological measurement of methane flux above a tropical peat swamp forest[J].Agricultural and Forest Meteorology,2018,256-257: 353-361. [15] 胡诚,张弥,肖薇,等.通量及其不确定性对农业区高塔CO2浓度模拟的影响[J].中国农业气象,2017,38(8):469-480. Hu C,Zhang M,Xiao W,et al.Effect of flux and its uncertainty on tall tower CO2 concentration simulation in the agricultural domain[J].Chinese Journal of Agrometeorology, 2017,38(8):469-480.(in Chinese) [16] 王春林,周国逸,王旭,等.复杂地形条件下涡度相关法通量测定修正方法分析[J].中国农业气象,2007,28(3):233-240. Wang C L,Zhou G Y,Wang X,et al.Analysis of correction method on eddy flux measurement over complex terrain[J].Chinese Journal of Agrometeorology,2007,28(3): 233-240.(in Chinese) [17] Kroon P S,Vesala T,Grace J.Flux measurements of CH4 and N2O exchanges[J].Agricultural and Forest Meteorology, 2010,150(6):740-747. [18] Eugster W,Zeyer K,Zeeman M,et al.Methodical study of nitrous oxide eddy covariance measurements using quantum cascade laser spectrometery over a Swiss forest[J]. Biogeosciences,2007,4(5):927-939. [19] 宋霞,于贵瑞,刘允芬,等.开路与闭路涡度相关系统通量观测比较研究[J].中国科学:地球科学,2004,34(S2): 67-76. Song X,Yu G R,Liu Y F,et al.Comparison of flux measurement by open-path and close-path eddy covariance systems[J].Science in China:Earth Science,2004,34(S2): 67-76.(in Chinese) [20] Ayaka S,Masayuki I,Takashi H,et al.Ecosystem-scale methane flux in tropical peat swamp forest in Indonesia [J].Global Change Biology,2018:1-14. [21] Taylor M A,Celis G,Ledman J D,et al.Methane efflux measured by eddy covariance in Alaskan upland tundra undergoing permafrost degradation[J].Journal of Geophysical Research:Biogeosciences,2018,123(7):2695-2710. [22] Desjardins R L,Worth D E,Pattey E,et al.The challenge of reconciling bottom-up agricultural methane emissions inventories with top-down measurements[J].Agricultural and Forest Meteorology,2018,48:48-59. [23] Leuning R,Moncrieff J.Eddy-covariance CO2 flux measurements using open and close-path CO2 analyzers: corrections for analyzer water vapor sensitivity and damping of fluctuations in air sampling tubes[J].Boundary-Layer Meteorology,1990,53:63-76. [24] Gharavi M,Buckley S G.Diode laser absorption spectroscopy measurement of lines strengths and pressure broadening coefficients of the methane 2×3 band at elevated temperatures[J].Mol Spectrosc,2005,229:78-88. [25] Li-Cor Inc.Li-7700 open path CH4 analyzer instruction manual[J].2010,LI-COR Inc.,Lincoln:1-8. [26] Detto M,Katul G G.Simplified expressions for adjusting higher-order turbulent statistics obtained from open path gas analyzers[J].Boundary-Layer Meteorology,2007,122(1):205-216. [27] Desai A R,Xu K,Tian H,et al.Landscape-level terrestrial methane flux observed from a very tall tower[J].Agricultural and Forest Meteorology,2015,201:61-75. [28] Iwata H,Harazono Y,Ueyema M,et al.Methane exchange in a poorly-drained black spruce forest over permafrost observed using the eddy covariance technique[J].Agricultural and Forest Meteorology,2015,214-215:157-168. [29] Asakawa T,Kanno N,Tonokura K.Diode laser detection of greenhouse gases in the near-Infrared region by wavelength modulation spectroscopy:pressure dependence of the detection sensitivity[J].Sensors,2010,10:4686-4699. [30] Detto M,Verfaillie J,Anderson F,et al.Comparing laser-base open and close path gas analyzers to measure methane fluxes using the eddy covariance method[J].Agricultural and Forest Meteorology,2011,151:1312-1324. [31] Kroon P S,Hensen A,Hjj J,et al.Suitability of quantum cascade laser spectrometry for CH4 and N2O eddy covariance measurements[J].Biogeosciences Discussions, 2007,4(2):1137-1165. [32] Fang J Y,Liu G H,Zhu B,et al.Carbon budgets of three temperate forest ecosystems in Dongling Mt[J].Science in China,2007,50(1):92-101. [33] Megonigal J P,Guenther A B.Methane emissions from upland forest soils and vegetation[J].Tree Physiology, 2008,28:491-498. [34] 何方杰,韩辉邦,马学谦,等.隆宝滩沼泽湿地不同区域的甲烷通量特征及影响因素[J].生态环境学报,2019,8(4): 803-811. He F J,Han H B,Ma X Q,et al.Characteristics and influence factors of CH4 flux in different areas of Longbaotan marsh wetland[J].Ecology and Environmental Sciences,2019,8(4): 803-811.(in Chinese) [35] 奉小明,王凯,郑循化,等.亚热带地区蔬菜地甲烷净交换通量研究[J].中国生态农业学报,2018,26(8):1091-1099. Feng X M,Wang K,Zheng X H,et al.Net methane flux exchange in subtropical vegetable fields[J].Chinese Journal of Eco-agriculture,2018,26(8):1091-1099.(in Chinese) [36] 张强,蒋国庆,孙睿,等.张掖湿地甲烷通量动态特征及其影响因子[J].生态学报,2017,37(17):5681-5690. Zhang Q,Jiang G Q,Sun R,et al.CH4 flux variations and main factors from a reed wetland oasis-desert area in Zhangye,China[J].Ecologica Scinica,2017,37(17):5681-5690. (in Chinese) [37] Tong X,Ping M,Zhang J,et al.Ecosystem carbon exchange over a warm-temperate mixed plantation in the Lithoid hilly area of the north China[J].Atmospheric Environment,2012, 49(3):257-267. [38] H?gstr?m Ulf.Analysis of turbulence structure in the surface layer with a modified similarity formulation for near neutral conditions[J].Journal of the Atmospheric Sciences,1990,47 (16):1949-1972. [39] Garratt J R,Dessler A J,Houghton J T,et al.The atmospheric boundary layer[M].Cambridge:Cambridge University Press, 1992:316. [40] Kolmogorov A N.The local structure of turbulence in an incompresible fluid at very high reynolds number[J].Soviet Physics Uspekhi,1941,30:301-305. [41] Vickers D,Mahrt L.Quality control and flux sampling problems for tower and aircraft data[J].Atmos.Oceanic Technol,1997,14:512-526. [42] Wilczak J M,Oncley S P,Stage S A.Sonic anemometer tilt correction algorithms[J].Boundary Layer Meteorology,2001, 99:127-150. [43] Ibrom A,Dellwik E,Larsen S E,et al.On the use of the Webb-Pearman-Leuning theory for closed-path eddy correlation measurements[J].Tellus B.,2007,59:937-946. [44] Ibrom A,Dellwik E,Flvbjerg H,et al.Strong low-pass filtering effects on water vapor flux measurements with closed-path eddy correlation system[J].Agricultural and Forest Meteorology,2007,147:140-156. [45] Mauder M,Foken T.Documentation and instruction manual of the eddy covariacne software package TK2[J]. Arbeitsergebn,Unversity of Bayreuth,Dept.of Micrometeorology, 2004,26:1-60. [46] Long K D,Flanagan L B,Cai T.Diurnal and seasonal variation in methane emissions in a northern Canadian peatland measured by eddy covariance[J].Global Change Biology,2010,16:2420-2435. [47] Falge E,Baldocchi D,Olson R,et al.Gap filling strategies for defensible annual sums of net ecosystem exchange [J].Agricultural and Forest Meteorology,2001,107 (8):43-69. [48] Aubinet M,Joly L,Loustau D,et al.Dimensioning IRGA gas sampling system:laboratory and field experiments[J]. Atmospheric Measurement Techniques,2014,9(3):1361-1367. [49] Leuning R,King K M.Comparison of eddy-covariance measurements of CO2,fluxes by open- and closed-path CO2 analysers[J].Boundary-Layer Meteorology,1992,59(3):297-311. [50] Yasuda Y,Watanabe T.Comparative measurements of CO2 flux over a forest using closed-path and open-path CO2 analysers[J].Boundary-Layer Meteorology,2001,100:191-208. [51] Peltola O,Mammarella I,Haapanala S,et al.Field intercomparison of four methane gas analyzers suitable for eddy covariance flux measurements[J].Biogeosciences, 2013,10(6):3749-3765. [52] Leuning R A Y,Judd M J.The relative merits of open-and closed-path analyses for measurement of eddy fluxes [J].Global Change Biology,2010,2(3):241-253. [53] Lee X,Black T A,Novak M D.Comparison of flux measurements with open- and closed-path gas analyzers above an agricultural field and a forest floor[J]. Boundary- Layer Meteorology,1994,67(1-2):195-202. |
[1] | WANG Xin, ZHOU Yu, GAO Xiang, MENG Ping, ZHANG Jin-song. Evaluation and Optimization of the Applicability of Four Ci/Ca Models in the FVS Method for Partitioning the Evapotranspiration of Plantation Ecosystems [J]. Chinese Journal of Agrometeorology, 2023, 44(04): 317-326. |
[2] | RONG Xing-xing, WANG He-song, CHU Jian-min, AI Jin-long. Characteristic Analysis of Source Area Distribution of Eddy Covariance and Large Aperture Scintillometer in an Oasis-Desert Ecotone [J]. Chinese Journal of Agrometeorology, 2021, 42(10): 823-835. |
[3] | GUO Xiao-xuan, WANG Kai, LI Lei, ZHANG Han, MA Lei, YAO Zhi-sheng, ZHANG Wei, HU Zheng-hua, ZHENG Xun-hua. Surface Energy Exchanges and Evapotranspiration of an Alpine Meadow on the Zoige Plateau [J]. Chinese Journal of Agrometeorology, 2021, 42(08): 642-656. |
[4] | ZHOU Yu, HUANG Hui, ZHANG Jin-song, MENG Ping, SUN Shou-jia. Comparison of Gap-filling Methods for Long-term Continuous Missing Data in Carbon Flux Observation by Eddy Covariance Method of Forest Ecosystem [J]. Chinese Journal of Agrometeorology, 2021, 42(04): 330-343. |
[5] | ZHANG Gong, HAN Hui-bang, SUN Shou-jia, ZHANG Jin-song, ZHENG Ning. Mechanistic and Characteristics of Near-surface Energy Balance in Frozen/Non- frozen Soil Period of the Three-River Headwater Region [J]. Chinese Journal of Agrometeorology, 2020, 41(05): 288-298. |
[6] | ZHANG Fa-wei, HAN Yun, LI Hong-qin, LI Ying-nian, CAO Guang-min, ZHOU Hua-kun. Turbulent Heat Exchange and Partitioning and Its Environmental Controls between the Atmosphere and an Alpine Potentilla Fruticosa Shrublands over the Qinghai- Tibetan Plateau [J]. Chinese Journal of Agrometeorology, 2020, 41(02): 76-85. |
[7] | WANG Yu, ZHOU Li, JIA Qing-yu, WANG Lei, XU Jun-liang. Characteristics of Evapotranspiration and Its Components Simulated Using Shuttleworth-Wallace Model in Rice Paddy Field [J]. Chinese Journal of Agrometeorology, 2017, 38(11): 709-719. |
[8] | HU Cheng, ZHANG Mi, XIAO Wei, WANG Yong-wei,WANG Wei, TIM Griffis,LIU Shou-dong, LI Xu-hui. Effect of Flux and its Uncertainty on Tall Tower CO2 Concentration Simulation in the Agricultural Domain [J]. Chinese Journal of Agrometeorology, 2017, 38(08): 469-480. |
[9] | ZHU Huai-wei,LOU Yun-sheng,SHI Yi-fan,ZHANG Yi-wei,ZHAO Si-di. Effects of Silicon Supply on Reflectance Spectroscopy Characteristics of Rice Canopy under Elevated UV-B Radiation [J]. Chinese Journal of Agrometeorology, 2017, 38(03): 172-180. |
[10] | FENG Yu, GONG Dao-zhi, WANG Han-bo, HAO Wei-ping, MEI Xu-rong, CUI Ning-bo. Estimating Rainfed Maize Evapotranspiration Using the FAO Dual Crop Coefficient Method on the Loess Plateau [J]. Chinese Journal of Agrometeorology, 2017, 38(03): 141-149. |
[11] | ZHANG Fa-wei, WANG Jun-bang, LIN Li, LI Yi-kang, GUO Xiao-wei, CAO Guang-min. Temporal Variations of Soil Surface Resistance to Vapor Transfer and Its Quantitative Relationship between Soil Temperature and Soil Moisture during Non-Growing Season on an Alpine Meadow [J]. Chinese Journal of Agrometeorology, 2017, 38(02): 96-103. |
[12] | GUO Jian-mao, LIU Jun-wei, TONG Ying-xiang, FEI Dun-yue, WANG Qian. Regional Mapping of Light Use Efficiency for Paddy Rice by Using MODIS Photochemical Reflectance Index [J]. Chinese Journal of Agrometeorology, 2016, 37(03): 368-375. |
[13] | LIU Du, LI Jun, TONG Xiao juan, YU Qiang. Analysis of the Energy Balance Closure in a Winter Wheat/Summer Maize Double Cropping System in the North China Plain [J]. Chinese Journal of Agrometeorology, 2012, 33(04): 493-499. |
[14] | SU Rong rui, LIU Kai wen, GENG Yi feng, ZHOU Shou hua, TIAN Hao,HUANG Yong ping, ZHANG Hong yan. CO2 Flux Variation over Canopy Rice rape Succession System in Jianghan Plain [J]. Chinese Journal of Agrometeorology, 2012, 33(03): 362-367. |
[15] | YU Chenglong, LIU Dan. Analysis on CO2 Flux during Growth Season of Natural Broadleaved Mixed Forest in Xiaoxinganling Mountains [J]. Chinese Journal of Agrometeorology, 2011, 32(04): 525-529. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||