人物經歷
學習經歷
2002.09-2006.07 內蒙古大學,學士
2006.09-2011.07 中國科學院植物研究所,博士
工作經歷
2011.07-2024.03 中國科學院植物研究所,助理研究員
2024.03- 中國科學院植物研究所,副研究員
2012.11-2012.12 俄羅斯科學院森林研究所,訪問學者
2014.01-2014.02 芬蘭自然資源研究所,訪問學者
2017.12-2018.11 瑞士聯邦森林、雪與景觀研究所,訪問學者
任職經歷
2021.01- 《套用生態學報》編委
2024.5- 《植物生態學報》青年編委
研究方向
樹輪生態學;海拔梯度;林線動態;森林動態;樹木生長;穩定同位素
主要成就
(1) 突破“溫度限制林線”的傳統認識,揭示了濕度因子的調控作用,發現了樹木間“互助效應”對林線動態的影響,取得林線形成和維持機制的創新性認識。
(2) 利用樹輪同位素手段,證明了大氣CO2濃度升高對樹木生長的“施肥效應”,揭示了林線和低海拔樹木應對氣候變化的不同氣孔策略,首次從同位素角度證明林線“生長限制假說”。
(3) 打破傳統的氣象數據月份平均,利用日精度數據揭示了樹木關鍵生長期在高海拔/高緯度森林的滯後性格局,為提高森林生長動態預測提供了新視角。
論文論著
2024
37. 賈恆鋒,鐘元,鄭嘉誠,董雲燾,邱紅岩,頓珠次仁,呂利新*. 西藏邊壩縣金嶺鄉雲南沙棘樹齡鑑定及生 長歷史分析, 林業科學研究. 2024 接受.
36. Zheng, J., Lixin Lyu*, Zhong, Y., Yang, J., Qiu, H. & Zhang, Q.-B. Linking individualistic growth stability of trees to the complexity of understorey layers. Journal of Ecology. 2024.
35. Jia, H., Zheng, J., Yang, J., Lixin Lyu, Dong, Y. & Fang, O*.Tree-growth synchrony index, an effective indicator of historical climatic extremes. Ecological Processes, 2024, 13, 55.
34. Xing, P., Bai, M.*, Zhang, Q.-B. & Lixin Lyu Tree-Ring Inferred Drought Variations in the Source Region of the Yangtze, Yellow, and Mekong Rivers over the Past Five Centuries. Water, 2024, 16, 1186.
33. Zheng, J., J. Yang, H. Jia, Lyu LX*, J. Langzhen, and Q.-B. Zhang. Changes of growth-climate relationships of Smith fir forests along an altitudinal gradient. Journal of Forestry Research. 2024 35:76.
32. 鐘元, 鄭嘉誠,邱紅岩, 呂利新*. 2024. 西藏東部主要建群樹種徑向生長對極端乾旱的回響差異. 生態學報, 44(3):1221-1230.
2023
31. Pu X, Lyu LX*. Disentangling the impact of photosynthesis and stomatal conductance on rising water-use efficiency at different altitudes on the Tibetan plateau. Agricultural and Forest Meteorology 2023. 341: 109659.
2022
30. Zhang WY, Wang Y, Xiao JY, and Lyu LX*. Species-specific coupling of tree-ring width and litter production in a temperate mixed forest. Forest Ecology And Management 2022. 504, 119831.
29. Zhang Q, Lyu LX and Wang Y*. Patterns of daily stem growth in different tree species in a warm-temperate forest in northern China. Dendrochronologia 2022. 72: 125934.
28. Yumei Mu, Lixin Lyu, Yan Li, and Ouya Fang*. Tree-ring evidence of ecological stress memory. Proceedings of the Royal Society B: Biological Sciences 2022. 289(1985): 20221850.
27. Zheng JC, Lixin Lyu and Zhang QB*. Isolated Trees in Two Tibetan Plateau Treelines Reveal Growth Plasticity to Harsh Conditions of the Little Ice Age. Forests 2022. 13(9): 1371.
26. Jia HF, Fang OY* and Lyu LX. Non-linear modelling reveals a predominant moisture limit on juniper growth across the southern Tibetan Plateau. Annals of Botany 2022. 130(1): 85-95.
2021
25. Pu X, Wang XC and Lyu LX *. Recent Warming-Induced Tree Growth Enhancement at the Tibetan Treeline and the Link to Improved Water-Use Efficiency. Forests 2021. 12(12): 1702.
24. Pu X, Wang XC and Lyu LX *. Tree-Ring Isotopes Provide Clues for Sink Limitation on Treeline Formation on the Tibetan Plateau. Atmosphere 2021. 12(5): 540.
23. Wang Z, Lyu LX, Liu WX, Liang HX, Huang JG and Zhang QB*. Topographic patterns of forest decline as detected from tree rings and NDVI. Catena 2021. 198: 105011.
22. Mu YM, Zhang QB*, Fang OY, Lyu LX, and Cherubini P. Pervasive tree-growth reduction in Tibetan juniper forests. Forest Ecology and Management 2021. 480: 118642.
21. Li Y, Zhang QB*, Fang OY, Mu YM, Jia HF, and Lyu LX. Recovery time of juniper trees is longer in wet than dry conditions on the Tibetan Plateau in the past two centuries. Forest Ecology and Management 2021. 497: 119514.
20. Mu YM, Fang OY*, and Lyu LX. Nighttime warming alleviates the incidence of juniper forest growth decline on the Tibetan Plateau. Science of The Total Environment 2021. 782: 146924.
19. 肖健宇, 張文艷, 牟玉梅, 呂利新*. 2021. 樹木年輪揭示的東靈山主要樹種間乾旱耐受性差異. 套用生態學報, 32(10): 3487-3496.
2019
18. Lyu LX, Zhang QB*, Pellatt MG, Büntgen U, Li, MH and Cherubini P. Drought limitation on tree growth at the Northern Hemisphere’s highest tree line.Dendrochronologia 2019. 53: 40-47.
17. Lyu Lixin*, Büntgen U, Treydte K, Yu KL, Liang HX, Reinig F, Nievergelt D, Li MH, Cherubini P. Tree rings reveal hydroclimatic fingerprints of the Pacific Decadal Oscillation on the Tibetan Plateau. Climate Dynamics 2019. 53(1): 1023-1037.
16. Cheng XH, Lixin Lyu, Büntgen U, Cherubini P, Qiu HY, and Zhang QB*. Increased El Niño–Southern Oscillation sensitivity of tree growth on the southern Tibetan Plateau since the 1970s. International Journal of Climatology 2019. 39(8): 3465-3475.
2017
15. Lyu LX*, Suvanto S, Nöjd P, Henttonen HM, Mäkinen H, and Zhang QB. Tree growth and its climate signal along latitudinal and altitudinal gradients: comparison of tree rings between Finland and the Tibetan Plateau. Biogeosciences 2017. 14 (12): 3083-3095.
14. Nie CY, Zhang QB*, and Lyu LX. Millennium-Long Tree-Ring Chronology Reveals Megadroughts on the Southeastern Tibetan Plateau. Tree-Ring Research 2017. 73(1): 1-10.
2016
13. Lyu LX, Zhang QB*, Deng X, and Mäkinen H. Fine-scale distribution of treeline trees and the nurse plant facilitation on the eastern Tibetan Plateau. Ecological Indicators 2016. 66: 251-258.
12. Liang HX, Lyu LX*, and Wahab M. A 382-year reconstruction of August mean minimum temperature from tree-ring maximum latewood density on the southeastern Tibetan Plateau, China. Dendrochronologia 2016. 37: 1-8.
11. Lyu LX, Deng X and Zhang QB*. Elevation Pattern in Growth Coherency on the Southeastern Tibetan Plateau. PLoS One 2016. 11(9): e0163201.
10. 李寶, 程雪寒, 呂利新*. 2016. 西藏朗縣地區不同齡級高山松林木徑向生長對火干擾的回響. 植物生態學報, 40(5): 436-446.
2015
9. Zhang QB*, Evans MN and Lyu LX. 2015. Moisture dipole over the Tibetan Plateau during the past five and a half centuries. Nature Communications. 6: 8062.
8. 劉娟, 鄧徐, 呂利新*. 2015. 西藏八宿川西雲杉樹線過渡區樹木生長與氣候關係的一致性. 植物生態學報, 39(5): 442-452.
7. 程雪寒,呂利新*. 2015. 藏東南樹木年輪記載的公元1560年以來的極端乾旱事件. 第四紀研究, 35(5): 1093-1101.
2015以前
6. Xing P, Zhang QB* and Lyu LX. 2014. Absence of late-summer warming trend over the past two and half centuries on the eastern Tibetan Plateau. Global and Planetary Change.123: 27-35.
5. Lyu LX and Zhang QB*. 2013. Tree-ring based summer minimum temperature reconstruction for the southern edge of the Qinghai-Tibetan Plateau, China. Climate Research. 56(2): 91-101.
4. Duan JP, Zhang QB* and Lyu LX. Increased Variability in Cold-Season Temperature since the 1930s in Subtropical China. Journal of Climate.2013. 26(13): 4749-4757.
3. Lv LX, Ovchinnikov DV, Kirdyanov A and Zhang QB. Comparison of Temperature Sensitive Tree-Ring Chronologies in Southern Tibetan Plateau and Northern Siberia.Sci., Tech. and Dev. 2012, 31(2): 152-64.
2. Duan JP, Zhang QB, Lv LX and Zhang C. Regional-scale winter-spring temperature variability and chilling damage dynamics over the past two centuries in southeastern China. Climate Dynamics. 2012. 39:919-928.
1. Lv LX, and Zhang QB. Asynchronous recruitment history of Abies spectabilis along an altitudinal gradient in the Mt. Everest region. Journal of Plant Ecology. 2012. 5:147-156.
論著:
張齊兵, 方歐婭, 呂利新. 2019.《青藏高原樹木年輪生態學研究》. 北京:科學出版社
張潮,羅建,呂利新,於順利. 2024.《西藏那曲維管植物圖鑑》. 北京: 中國林業出版社