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Current status, problems and suggestions of terrestrial ecosystems carbon sink in China

  • DONG Zhanfeng ,
  • BI Fenfen ,
  • JI Yunqing
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  • 1. Chinese Academy of Environmental Planning, Beijing 100012, China;
    2. University of Science and Technology Beijing, State Key Laboratory of Advanced Metallurgy, Beijing 100083, China

Received date: 2022-06-16

  Revised date: 2022-07-24

  Online published: 2022-11-04

Abstract

This paper analyzes China's exploration and practice on the green development road since the 18th Communist Party of China National Congress, and points out that China has made great progress and remarkable achievements on green development, including economic structure, energy utilization, ecological environmental protection, green industry, life-style, institutional system and contribution to the global. In the future, China's green development should take carbon reduction as the key strategy, coordinate and promote the synergistic effect of pollution reduction and carbon reduction, optimize the development and protection pattern of territorial space, promote the high-quality development of energy, strengthen the innovation and application of key technologies, and continue to deepen the reform of ecological civilization system.

Cite this article

DONG Zhanfeng , BI Fenfen , JI Yunqing . Current status, problems and suggestions of terrestrial ecosystems carbon sink in China[J]. Science & Technology Review, 2022 , 40(19) : 15 -24 . DOI: 10.3981/j.issn.1000-7857.2022.19.002

References

[1] Piao S L, He Y, Wang X H, et al. Estimation of China's terrestrial ecosystem carbon sink: Methods, progress and prospects[J]. Science China Earth Sciences, 2022, 65(4): 641-651.
[2] Yu G R, Li X R, Wang Q F, et al. Carbon storage and its spatial pattern of terrestrial ecosystem in China[J]. Journal of Resources and Ecology, 2010, 1(2): 97-109.
[3] Rogel J J, Schaeffer M, Meinshausen M, et al. Zero emission targets as long-term global goals for climate protection[J]. Environmental Research Letters, 2015, 10(10): 105007.
[4] IPCC. Global Warming of 1.5℃[R/OL]. [2022-05-30]. https://www.ipcc.ch/site/assets/uploads/sites/2/2018/07/SR-15_SPM_version_stand_alone_LR.pdf.
[5] Griscom B W, Adams J, Ellis P W, et al. Natural climate solutions[J]. Proceedings of the National Academy of Sciences of the United States of America, 2017, 114(44): 11645-11650.
[6] Qin Z C, Deng X, Griscom B, et al. Natural climate solutions for China: The last Mile to carbon neutrality[J]. Advances in Atmospheric Sciences, 2021, 38(6): 889-895.
[7] Qin Z C, Griscom B, Huang Y, et al. Delayed impact of natural climate solutions[J]. Global Change Biology, 2021, 27(2): 215-217.
[8] Zheng T L, Zhu J L, Wang S P, et al. When will China achieve its carbon emission peak[J]. National Science Review, 2015, 3(1): 8-12.
[9] 方精云, 王少鹏, 岳超, 等. 中国及全球碳排放——兼论碳排放与社会发展的关系[M]. 北京: 科学出版社, 2018.
[10] 孙若梅. 我国陆地生态系统保护成效与展望: 对标2030可持续发展议程目标[J]. 林业经济, 2019, 41(10): 10-16.
[11] 国家林业和草原局. 加强草原生态修复筑牢生态安全屏障——访国家林业和草原局草原管理司副司长刘加文[EB/OL]. (2018-10-25)[2022-04-01]. http://www.forestry.gov.cn/main/72/20181026/093146414949311.html.
[12] Mi X C, Feng G, Hu Y B, et al. The global significance of biodiversity science in China: An overview[J]. National Science Review, 2021, 8(7): nwab032.
[13] Huang G P, Ping X G, Xu W H, et al. Wildlife conservation and management in China: Achievements, challenges and perspectives[J]. National Science Review, 2021, 8(7): nwab042.
[14] 张颖, 李晓格, 温亚利. 碳达峰碳中和背景下中国森林碳汇潜力分析研究[J]. 北京林业大学学报, 2022, 44(1): 38-47.
[15] 杨元合, 石岳, 孙文娟, 等. 中国及全球陆地生态系统碳源汇特征及其对碳中和的贡献[J]. 中国科学: 生命科学, 2022, 52(4): 534-574.
[16] Piao S L, Fang J Y, Ciais P, et al. The carbon balance of terrestrial ecosystems in China[J]. Nature, 2009, 458(7241): 1009-1013.
[17] Tian H Q, Xu X F, Lu C Q, et al. Net exchanges of CO2, CH 4, and N2O between China's terrestrial ecosystems and the atmosphere and their contributions to global climate warming[J]. Journal of Geophysical Research, 2011, 116(G2): G02011.
[18] Ji J J, Huang M, Li K R. Prediction of carbon exchanges between China terrestrial ecosystem and atmosphere in 21st century[J]. Science in China Series D: Earth Sciences, 2008, 51(6): 885-898.
[19] Ge S D, Zhao S Q. Organic carbon storage change in China's urban landfills from 1978—2014[J]. Environmental Research Letters, 2017, 12(10): 104013.
[20] Zhu X J, Yu G R, He H L, et al. Geographical statistical assessments of carbon fluxes in terrestrial ecosystems of China: Results from upscaling network observations[J]. Global and Planetary Change, 2014, 118: 52- 61.
[21] Yao Y T, Li Z J, Wang T, et al. A new estimation of China's net ecosystem productivity based on eddy covariance measurements and a model tree ensemble approach [J]. Agricultural and Forest Meteorology, 2018, 253- 254: 84-93.
[22] He H L, Wang S Q, Zhang L, et al. Altered trends in carbon uptake in China's terrestrial ecosystems under the enhanced summer monsoon and warming hiatus[J]. National Science Review, 2019, 6(3): 505-514.
[23] Cao M K, Tao B, Li K R, et al. Interannual variation in terrestrial ecosystem carbon fluxes in China from 1981 to 1998[J]. Acta Botanica Sinica, 2003, 45(5): 552-560.
[24] Cao M K, Prince S D, Li K R, et al. Response of terrestrial carbon uptake to climate interannual variability in China[J]. Global Change Biology, 2003, 9(4): 536-546.
[25] Mu Q Z, Zhao M S, Running S W, et al. Contribution of increasing CO2 and climate change to the carbon cycle in China's ecosystems[J]. Journal of Geophysical Research: Biogeosciences, 2008, 113(1): G01018.
[26] Jiang F, Wang H W, Chen J M, et al. Nested atmospheric inversion for the terrestrial carbon sources and sinks in China[J]. Biogeosciences, 2013, 10(8): 5311- 5324.
[27] Zhang H F, Chen B Z, van der Laan-Luijkx I T, et al. Net terrestrial CO 2 exchange over China during 2001- 2010 estimated with an ensemble data assimilation system for atmospheric CO2[J]. Journal of Geophysical Research: Atmospheres, 2014, 119(6): 3500-3515.
[28] Zhu X J, Yu G R, He H L, et al. Geographical statistical assessments of carbon fluxes in terrestrial ecosystems of China: Results from upscaling network observations[J]. Global and Planetary Change, 2014, 118: 52- 61.
[29] Yang D X, Zhang H F, Liu Y, et al. Monitoring carbon dioxide from space: Retrieval algorithm and flux inversion based on GOSAT data and using CarbonTrackerChina[J]. Advances in Atmospheric Sciences, 2017, 34(8): 965-976.
[30] Fang J Y, Guo Z D, Piao S L, et al. Terrestrial vegetation carbon sinks in China, 1981 to 2000[J]. Science in China Series D: Earth Sciences, 2007, 50(9): 1341- 1350.
[31] Jiang F, Chen J M, Zhou L X, et al. A comprehensive estimate of recent carbon sinks in China using both topdown and bottom-up approaches[J]. Scientific Reports, 2016, 6: 22130.
[32] Fang J Y, Yu G R, Liu L L, et al. Climate change, human impacts, and carbon sequestration in China[J]. Proceedings of the National Academy of Sciences of the United States of America, 2018, 115(16): 4015-4020.
[33] 蔡兆男, 成里京, 李婷婷, 等. 碳中和目标下的若干地球系统科学和技术问题分析[J]. 中国科学院院刊, 2021, 36(5): 602-613.
[34] 李双成. 生态碳汇市场刍议[J]. 当代贵州, 2022(1): 79.
[35] 王国胜, 孙涛, 昝国盛, 等. 陆地生态系统碳汇在实现“双碳” 目标中的作用和建议[J]. 中国地质调查, 2021, 8(4): 13-19.
[36] 赵宁, 周蕾, 庄杰, 等. 中国陆地生态系统碳源/汇整合分析[J]. 生态学报, 2021, 41(19): 7648-7658.
[37] 欧阳海龙, 董实忠, 高素娟. 以生态碳汇助推碳中和的武汉NbS实践路径[J]. 长江技术经济, 2021, 5(4): 38- 44.
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