Chinese Journal of Applied Ecology ›› 2020, Vol. 31 ›› Issue (11): 3665-3673.doi: 10.13287/j.1001-9332.202011.004
Previous Articles Next Articles
LI Ying-chi1,2, LIU Fan1,2, WANG Chuan-kuan1,2, GAO Tian3,4, WANG Xing-chang1,2*
Received:
2020-06-14
Accepted:
2020-08-11
Online:
2020-11-15
Published:
2021-06-10
Contact:
* E-mail: xcwang_cer@nefu.edu.cn
Supported by:
LI Ying-chi, LIU Fan, WANG Chuan-kuan, GAO Tian, WANG Xing-chang. Carbon budget estimation based on different methods of CO2 storage flux in forest ecosystems[J]. Chinese Journal of Applied Ecology, 2020, 31(11): 3665-3673.
[1] 于贵瑞, 张雷明, 孙晓敏. 中国陆地生态系统通量观测研究网络(ChinaFLUX)的主要进展及发展展望. 地理科学进展, 2014, 33(7): 903-917 [Yu G-R, Zhang L-M, Sun X-M. Progresses and prospects of Chinese terrestrial ecosystem flux observation and research network (ChinaFLUX). Progress in Geography, 2014, 33(7): 903-917] [2] Aubinet M, Vesala T, Papale D, eds. Eddy Cova-riance: A Practical Guide to Measurement and Data Ana-lysis. Dordrecht: Springer, 2012: 59-83 [3] Yu G, Chen Z, Zhang L, et al. Recognizing the scientific mission of flux tower observation networks: Lay the solid scientific data foundation for solving ecological issues related to global change. Journal of Resources and Ecology, 2017, 8: 115-120 [4] Marcolla B, Cobbe I, Minerbi S, et al. Methods and uncertainties in the experimental assessment of horizontal advection. Agricultural and Forest Meteorology, 2014, 198-199: 62-71 [5] Wang X, Wang C, Li Q. Wind regimes above and below a temperate deciduous forest canopy in complex terrain: Interactions between slope and valley winds. Atmosphere, 2015, 6: 60-87 [6] Wang X, Wang C, Guo Q, et al. Improving the CO2 storage measurements with a single profile system in a tall-dense-canopy temperate forest. Agricultural and Forest Meteorology, 2016, 228-229: 327-338 [7] Papale D, Reichstein M, Aubinet M, et al. Towards a standardized processing of net ecosystem exchange mea-sured with eddy covariance technique: Algorithms and uncertainty estimation. Biogeosciences, 2006, 3: 571-583 [8] Gu L, Massman WJ, Leuning R, et al. The fundamental equation of eddy covariance and its application in flux measurements. Agricultural and Forest Meteorology, 2012, 152: 135-148 [9] Finnigan J. The storage term in eddy flux calculations. Agricultural and Forest Meteorology, 2006, 136: 108-113 [10] Mchugh I, Beringer J, Cunningham SC, et al. Interactions between nocturnal turbulent flux, storage and advection at an ‘ideal' eucalypt woodland site. Biogeosciences, 2017, 14: 3027-3050 [11] 王兴昌, 王传宽. 坐标旋转对东北山地森林涡动通量的影响. 应用生态学报, 2016, 27(9): 2779-2788 [Wang X-C, Wang C-K. Effects of coordinate rotations on eddy fluxes over a forest on a mountainous terrain in Northeast China. Chinese Journal of Applied Ecology, 2016, 27(9): 2779-2788] [12] 王静, 王兴昌, 王传宽. 基于不同浓度变量的温带落叶阔叶林CO2储存通量的误差分析. 应用生态学报, 2013, 24(4): 975-982 [Wang J, Wang X-C, Wang C-K. Error analysis of CO2 storage flux in a temperate deciduous broadleaved forest based on different scalar variables. Chinese Journal of Applied Ecology, 2013, 24(4): 975-982] [13] 焦振, 王传宽, 王兴昌. 温带落叶阔叶林冠层CO2浓度的时空变异. 植物生态学报, 2011, 35(5): 512-522 [Jiao Z, Wang C-K, Wang X-C. Spatio-temporal variations of CO2 concentration within the canopy in a temperate deciduous forest, Northeast China. Chinese Journal of Plant Ecology, 2011, 35(5): 512-522] [14] Liu F, Wang X, Wang C. Measuring vegetation pheno-logy with near-surface remote sensing in a temperate deciduous forest: Effects of sensor type and deployment. Remote Sensing, 2019, 11: DOI: 10.3390/rs11091063 [15] van Gorsel E, Delpierre N, Leuning R, et al. Estimating nocturnal ecosystem respiration from the vertical turbulent flux and change in storage of CO2. Agricultural and Forest Meteorology, 2009, 149: 1919-1930 [16] 王兴昌, 王传宽, 刘帆, 等. 利用细丝热电偶评估涡度相关系统开路分析仪表面加热效应. 应用生态学报, 2017, 28(3): 983-991 [Wang X-C, Wang C-K, Liu F, et al. Assessing the surface heating effect of the open-path analyzer of an eddy covariance system with fine-wire thermocouples. Chinese Journal of Applied Ecology, 2017, 28(3): 983-991] [17] Jiao Z, Wang X. Contrasting rhizospheric and heterotrophic components of soil respiration during growing and non-growing seasons in a temperate deciduous forest. Forests, 2018, 10: 8 [18] 朱苑, 刘帆, 王传宽, 等. 帽儿山温带落叶阔叶林净生态系统碳交换的日变化及光响应特征. 应用生态学报, 2020, 31(1): 72-82 [Zhu Y, Liu F, Wang C-K, et al. Diurnal variation and light response of net ecosystem carbon exchange in a temperate broad leaved deciduous forest at Maoershan, Northeast China. Chinese Journal of Applied Ecology, 2020, 31(1): 72-82] [19] Noormets A. Moisture sensitivity of ecosystem respiration: Comparison of 14 forest ecosystems in northern Wisconsin, USA. Agricultural and Forest Meteorology, 2008, 148: 216-230 [20] Falge E, Baldocchi D, Olson R, et al. Gap filling stra-tegies for defensible annual sums of net ecosystem exchange. Agricultural and Forest Meteorology, 2001, 107: 43-69 [21] 同小娟, 张劲松, 孟平, 等. 黄河小浪底人工混交林冠层CO2储存通量变化特征. 生态学报, 2015, 35(7): 2076-2084 [Tong X-J, Zhang J-S, Meng P, et al. Variation characteristics of carbon storage flux over a mixed plantation of the Xiaolangdi area. Acta Ecologica Sinica, 2015, 35(7): 2076-2084] [22] Iwata H, Malhi Y, von Randow C. Gap-filling measurements of carbon dioxide storage in tropical rainforest canopy airspace. Agricultural and Forest Meteorology, 2005, 132: 305-314 [23] 张弥, 温学发, 于贵瑞, 等. 二氧化碳储存通量对森林生态系统碳收支的影响. 应用生态学报, 2010, 21(5): 1201-1209 [Zhang M, Wen X-F, Yu G-R, et al. Effects of CO2 storage flux on carbon budget of forest ecosystem. Chinese Journal of Applied Ecology, 2010, 21(5): 1201-1209] [24] Xu K, Pingintha-Durden N, Luo H, et al. The eddy-covariance storage term in air: Consistent community resources improve flux measurement reliability. Agricultural and Forest Meteorology, 2019, 279: 107734 [25] Zhang Q, Wang C, Zhou Z. Does the net primary production converge across six temperate forest types under the same climate? Forest Ecology and Management, 2019, 448: 535-542 [26] Janssens I, Lankreijer H, Matteucci G, et al. Productivity overshadows temperature in determining soil and ecosystem respiration across European forests. Global Change Biology, 2001, 7: 269-278 [27] Thomas C, Martin J, Law B, et al. Toward biologically meaningful net carbon exchange estimates for tall, dense canopies: Multi-level eddy covariance observations and canopy coupling regimes in a mature Douglas-fir forest in Oregon. Agricultural and Forest Meteorology, 2013, 173: 14-27 [28] Lee X. On micrometeorological observations of surface-air exchange over tall vegetation. Agricultural and Forest Meteorology, 1998, 91: 39-49 [29] Galvagno M, Wohlfahrt G, Cremonese E, et al. Contribution of advection to nighttime ecosystem respiration at a mountain grassland in complex terrain. Agricultural and Forest Meteorology, 2017, 237-238: 270-281 [30] Carrara A, Kowalski AS, Neirynck J, et al. Net ecosystem CO2 exchange of mixed forest in Belgium over 5 years. Agricultural and Forest Meteorology, 2003, 119: 209-227 [31] 高添, 于立忠, 于丰源, 等. 中国科学院清原森林生态系统观测研究站塔群平台的功能和应用. 应用生态学报, 2020, 31(3): 695-705 [Gao T, Yu L-Z, Yu F-Y, et al. Functions and applications of Multi-Tower Platform of Qingyuan Forest Ecosystem Research Station of Chinese Academy of Sciences. Chinese Journal of Applied Ecology, 2020, 31(3): 695-705] [32] Wang X, Wang C, Bondlamberty B. Quantifying and reducing the differences in forest CO2-fluxes estimated by eddy covariance, biometric and chamber methods: A global synthesis. Agricultural and Forest Meteorology, 2017, 247: 93-103 [33] 王兴昌, 王传宽. 森林生态系统碳循环的基本概念和野外测定方法评述. 生态学报, 2015, 35(13): 4241-4256 [Wang X-C, Wang C-K. Fundamental concepts and field measurement methods of carbon cycling in forest ecosystems: A review. Acta Ecologica Sinica, 2015, 35(13): 4241-4256] |
[1] | CHEN Chang-hua, WANG Jing-yuan, WEI Jie, WEN Xue-fa. Theory, method and application advance of isotopic flux partitioning of ecosystem photosynthesis and respiration [J]. Chinese Journal of Applied Ecology, 2022, 33(6): 1441-1450. |
[2] | GAO Xiang, ZHOU Yu, MENG Ping, PEI Song-yi, ZHANG Jin-song. Net ecosystem exchange of Pinus sylvestris var. mongolica plantation in the western Liaoning Province, China [J]. Chinese Journal of Applied Ecology, 2022, 33(5): 1183-1190. |
[3] | QIU Ji-li, ZHANG Mi, PU Yi-ni, ZHANG Zhen, JIA Lei, ZHAO Jia-yu, XIAO Wei, LIU Shou-dong. Evaluation of gap-filling methods for CH4 flux data based on eddy covariance method in the Lake Taihu, China [J]. Chinese Journal of Applied Ecology, 2022, 33(10): 2785-2795. |
[4] | PENG Li, ZHAO Zhong-hui, XIANG Wen-hua, DENG Xiang-wen, OUYANG Shuai. Effects of radiation changes on net ecosystem exchange of carbon dioxide in a middle subtropical Chinese fir plantation [J]. Chinese Journal of Applied Ecology, 2022, 33(1): 17-24. |
[5] | ZHOU Hao-qiang, BAO Gang, JIN Hugejiletu, DU Ling-tong, ZHANG Si-lian, XU Zi-wei, BAO Yu-hai. Applicability of multiple remotely sensed vegetation indices for extracting key phenological metrics of Tamarix chinensis shrubs based on CO2 flux observation and Sentinel-2 data [J]. Chinese Journal of Applied Ecology, 2021, 32(12): 4315-4326. |
[6] | YANG Xiao-jun, LIU Ting-xi, WANG Guan-li, DUAN Li-min, LI Dong-fang, HUANG Tian-yu. Characteristics of humidity and temperature variations and CO2 exchange of mobile dunes at different space-time scales in Horqin sandy land, China [J]. Chinese Journal of Applied Ecology, 2020, 31(6): 1989-1998. |
[7] | GAO Tian, YU Li-zhong, YU Feng-yuan, WANG Xing-chang, YANG Kai, LU De-liang, LI Xiu-fen, YAN Qiao-ling, SUN Yi-rong, LIU Li-fang, XU Shuang, ZHEN Xiao-jie, NI Zhen-dong, ZHANG Jin-xin, WANG Gao-feng, WEI Xiao-hua, ZHOU Xin-hua, ZHU Jiao-jun. Functions and applications of Multi-Tower Platform of Qingyuan Forest Ecosystem Research Station of Chinese Academy of Sciences [J]. Chinese Journal of Applied Ecology, 2020, 31(3): 695-705. |
[8] | LI Run-dong, FAN Ya-qian, FENG Pei, SONG Ze, LI Xin-hao, YAN Hui-juan, Ma Li, ZHA Tian-shan. Net ecosystem carbon exchange and its affecting factors in a deciduous broad-leaved forest in Songshan, Beijing, China [J]. Chinese Journal of Applied Ecology, 2020, 31(11): 3621-3630. |
[9] | WU Li-lu, GAO Xiang, CHU Jian-min, WANG He-song, YUAN Qi, DUAN Xiao-feng, GUO Shu-jiang. Net carbon exchange and its driving factors of Haloxylon ammodendron plantation in the oasis-desert ecotone of Minqin, China [J]. Chinese Journal of Applied Ecology, 2019, 30(10): 3336-3346. |
[10] | CHEN Xiao-ping, LIU Ting-xi, WANG Guan-li, DUAN Li-min, LEI Hui-min, WANG Dan. Effects of temperature and moisture on net ecosystem CO2 exchange over a meadow wetland in the Horqin, China. [J]. Chinese Journal of Applied Ecology, 2018, 29(5): 1523-1534. |
[11] | WU Dong-xing, LI Guo-dong, KANG Qiong-qiong, ZHANG Xi, Cao Zi-hao, LI Zhen. Characteristics of CO2 flux and its influence factors over winter wheat agroecosystem in the North China Plain. [J]. Chinese Journal of Applied Ecology, 2018, 29(3): 827-838. |
[12] | HE Wen-jun, HAN Guang-xuan, XU Yan-ning, ZHANG Xi-tao, WANG An-dong, CHE Chun-guang, SUN Bao-yu, ZHANG Xiao-shuai. Effects of drying and wetting cycles induced by tides on net ecosystem exchange of CO2 over a salt marsh in the Yellow River Delta, China. [J]. Chinese Journal of Applied Ecology, 2018, 29(1): 269-277. |
[13] | WANG Juan, WANG Jian-lin, LIU Jia-bin, JIANG Wen, ZHAO Chang-xing. Parameters modification and evaluation of two evapotranspiration models based on Penman-Monteith model for summer maize [J]. Chinese Journal of Applied Ecology, 2017, 28(6): 1917-1924. |
[14] | WU Dong-xing, LI Guo-dong, ZHANG Xi. Flux footprint of winter wheat farmland ecosystem in the North China Plain [J]. Chinese Journal of Applied Ecology, 2017, 28(11): 3663-3674. |
[15] | WANG Xing-chang, WANG Chuan-kuan. Effects of coordinate rotations on eddy fluxes over a forest on a mountainous terrain in Northeast China. [J]. Chinese Journal of Applied Ecology, 2016, 27(9): 2779-2788. |
Viewed | ||||||||||||||||||||||||||||||||||||||||||||||||||
Full text 280
|
|
|||||||||||||||||||||||||||||||||||||||||||||||||
Abstract 483
|
|
|||||||||||||||||||||||||||||||||||||||||||||||||