陳效逑. 2024. 國家植物園的物候韻律. 北京:北京大學出版社.
Chen XQ. 2017.Spatiotemporal Processes of Plant Phenology: Simulation and Prediction. Berlin: Springer Nature.
楊國棟,陳效逑. 1995.北京地區(qū)的物候日歷及其應用.首都師范大學出版社:北京.
Chen XQ. 1994.Untersuchung zur zeitlich-raeumlichen Aehnlichkeit von phaenologischen und klimatologischen Parametern in Westdeutschland und zum Einfluss geooekologischer Faktoren auf die phaenologische Entwicklung im Gebiet des Taunus. Selbstverlag des Deutschen Wetterdienstes: Offenbach (德文).
著作章節(jié)
Chen XQ. 2013. Chapter 2: East Asia, 9-22pp. Chapter 17: Daily Temperature-Based Temporal and Spatial Modeling of Tree Phenology, 317-333pp. In: Schwartz MD (ed.) Phenology: An Integrative Environmental Science (2nd Edition). Dordrecht, The Netherlands: Springer.
Chen XQ. 2009. Chapter 2.3.4: Phenological Observation in China, 35-37pp. In: Hudson IL & Keatley MR (eds.) Phenological Research. Dordrecht Heidelberg London New York: Springer.
Chen XQ. 2003. Chapter 2.1: Phenological Data, Networks, and Research: East Asia, 11-25pp. Chapter 4.5: Assessing Phenology at the Biome Level, 285-300pp. In: Schwartz MD (ed.) Phenology: An Integrative Environmental Science. Dordrecht, The Netherlands: Kluwer Academic Publishers.
教材
陳效逑. 2024. 自然地理學原理(第三版). 北京:高等教育出版社.
陳效逑. 2015.自然地理學原理(第二版).北京:高等教育出版社
陳效逑. 2006.自然地理學原理.北京:高等教育出版社.
陳效逑. 2001.自然地理學.北京:北京大學出版社.
劉本培,蔡運龍主編,劉本培,劉繼韓,陳效逑,陳北岳,黃定華,蔡運龍編著. 2000.地球科學導論.北京:高等教育出版社.
代表性論文(*通訊作者,#指導的學生或博士后)
英文和德文論文
1. Lang WG#, Chen XQ*, Qian SW#, Mark D. Schwartz. 2024. Temperature variations impacting leaf senescence initiation pathways alter leaf fall timing patterns in northern deciduous forests. Science of the Total Environment 934:173280.
2. Lang WG#, Qian SW#, Chen XQ*. 2024. Daylength predominates the bud growth initiation of winter deciduous forest trees in the monsoon region of China. Frontiers in Plant Science, 14:1327509, DOI 10.3389/fpls.2023.1327509.
3. Lang WG#, Qian SW#, Chen XQ*, Meng FD. 2023. Spatiotemporal variation of cold requirements for leaf coloration and its environmental cues over the northern deciduous broadleaved forests. International Journal of Biometeorology, 67:1409–1421.
4. Zhao Y#, Chen XQ*, Kim JS, Williams M. 2022. Effects of temperature and precipitation on litterfall phenology in four evergreen broad-leaved forests of southern China. Biotropica, 2022; 54:739–753。
5. Qian SW#, Chen XQ*, Lang WG#, Schwartz MD. 2021. Examining spring phenological responses to temperature variations during different periods in subtropical and tropical China. International Journal of Climatology, 41(Suppl. 1): E3208–E3218.
6. Zhao Y#, Chen XQ*, Smallman TL, Flack-Prain S, Milodowski DT, Williams M. 2020. Characterizing the Error and Bias of Remotely Sensed LAI Products: An Example for Tropical and Subtropical Evergreen Forests in South China. Remote Sensing, 2020, 12, 3122.
7. Liang BY#, Chen XQ*, Lang WG#, Liu GH#, Malhi Y, Rifai S. 2020. Examining land surface phenology in the tropical moist forest eco-zone of South America. International Journal of Biometeorology, 64:1911-1922.
8. Jiang MD#, Chen XQ*, Schwartz MD. 2020. Why don’t phenophase dates in the current year affect the same phenophase dates in the following year? International Journal of Biometeorology, 64:1549-1560.
9. An S#, Chen XQ*, Zhang XY, Lang WG#, Ren SL#, Xu L#. 2020. Precipitation and Minimum Temperature are Primary Climatic Controls of Alpine Grassland Autumn Phenology on the Qinghai-Tibet Plateau. Remote Sensing, 12, 431.
10. Lang WG#, Chen XQ*, Liang L, Ren SL#, Qian SW#. 2019. Geographic and Climatic Attributions of Autumn Land Surface Phenology Spatial Patterns in the Temperate Deciduous Broadleaf Forest of China. Remote Sensing, 11, 1546.
11. Lang WG#, Chen XQ*, Qian SW#, Liu GH#, Piao SL. 2019. A new process-based model for predicting autumn phenology: How is leaf senescence controlled by photoperiod and temperature coupling? Agricultural and Forest Meteorology,268: 124-135.
12. Liu GH#*, Chen XQ*, Fu YS, Delpierre N. 2019. Modelling leaf coloration dates over temperate China by considering effects of leafy season climate. Ecological Modelling, 394: 34-43.
13. Liu GH#, Chen XQ*, Zhang QH#, Lang WG#, Delpierre N. 2018. Antagonistic effects of growing season and autumn temperatures on the timing of leaf coloration in winter deciduous trees. Global Change Biology, 24: 3537–3545.
14. Ren S#, Chen XQ*, Lang WG#, Schwartz MD. 2018. Climatic controls of the spatial patterns of vegetation phenology in mid-latitude grasslands of the Northern Hemisphere. Journal of Geophysical Research: Biogeosciences, 123: 2323–2336.
15. An S#, Zhang XY, Chen XQ*, Yan D, Henebry GM. 2018. An Exploration of Terrain Effects on Land Surface Phenology across the Qinghai–Tibet Plateau Using Landsat ETM+ and OLI Data. Remote Sensing, 10, 1069.
16. Chen XQ*, Zhang WQ#, Ren SL#, Lang WG#, Liang BY#, Liu GH#. 2017. Temporal coherence of phenological and climatic rhythmicity in Beijing. International Journal of Biometeorology, 61: 1733-1748.
17. Ren SL#, Chen XQ*, An S#. 2017.Assessing plant senescence reflectance index-retrieved vegetation phenology and its spatiotemporal response to climate change in the Inner Mongolian Grassland. International Journal of Biometeorology,61: 601–612.
18. Chen XQ*, Wang LX#, Inouye D. 2017. Delayed response of spring phenology to global warming in subtropics and tropics. Agricultural and Forest Meteorology, 234, 222-235.
19. Chen XQ*, An S#. Inouye D, Schwartz MD. 2015. Temperature and snowfall trigger alpine vegetation green-up on the world’s roof. Global Change Biology, 21(10): 3635-3646.
20. Chen XQ*, Tian YH#, Xu L#. 2015 . Temperature and geographic attribution of change in the Taraxacum mongolicum growing season from 1990 to 2009 in eastern China’s temperate zone. International Journal of Biometeorology, 59(10):1437-1452.
21. Luo XZ#, Chen XQ*, Wang LX#, Xu L#, Tian YH#. 2014. Modeling and predicting spring land surface phenology of the deciduous broadleaf forest in northern China. Agricultural and Forest Meteorology, 198-199: 33-41.
22. Chen XQ*, Li J#, Xu. L#, Liu L#, Ding D#. 2013. Modeling greenup date of dominant grass species in the Inner Mongolian Grassland using air temperature and precipitation data. International Journal of Biometeorology, 58(4): 463-471.
23. Chen XQ*, Luo XZ#, Xu L#. 2013. Comparison of spatial patterns of satellite-derived and ground-based phenology for the deciduous broadleaf forest of China. Remote Sensing Letters, 4(6): 532-541.
24. Xu L#, Chen XQ*. 2013. Regional unified model-based leaf unfolding prediction from 1960 to 2009 across northern China. Global Change Biology, 19(4): 1275-1284.
25. Luo XZ#, Chen XQ*, Xu L#, Myneni R, Zhu Z. 2013. Assessing Performance of NDVI and NDVI3g in Monitoring Leaf Unfolding Dates of the Deciduous Broadleaf Forest in Northern China. Remote Sensing. 5(2): 845-861.
26. Chen XQ*, Xu L#. 2012. Temperature controls on the spatial pattern of tree phenology in China’s temperate zone. Agricultural and Forest Meteorology, 154-155, 195-202.
27. Chen XQ*, Xu L#. 2012. Phenological responses of Ulmus pumila (Siberian Elm) to climate change in the temperate zone of China. International Journal of Biometeorology, 56(4): 695-706.
28. Xu L#, Chen XQ*. 2012. Spatial modeling of the Ulmus pumila growing season in China’s temperate zone. Science China Earth Sciences, 55 (4): 656-664.
29. Chen XQ*, Li HM#, Hu B#, Yu R#. 2007. Boden- und satellitengestuetzte Erkennung der phaenologischen Vegetationsperiode in der gemaessigten Klimaregion Ostchinas. Promet, 33(1/2): 46-51.
30. Chen XQ*, Hu B#,Yu R#. 2005. Spatial and temporal variation of phenological growing season and climate change impacts in temperate eastern China. Global Change Biology, 11(7): 1118-1130.
31. Chen XQ*, Pan WF#. 2002. Relationships among phenological growing season, time-integrated normalized difference vegetation index and climate forcing in the temperate region of eastern China. International Journal of Climatology,22(14): 1781-1792.
32. Schwartz MD, Chen XQ. 2002. Examining the onset of spring in China. Climate Research, 21(2): 157-164.
33. Chen XQ*, Xu CX#, Tan ZJ. 2001. An analysis of relationships among plant community phenology and seasonal metrics of Normalized Difference Vegetation Index in the northern part of the monsoon region of China. International Journal of Biometeorology, 45 (4): 170-177.
34. Chen XQ*, Qiao LJ#. 2001. A preliminary analysis of material input of China. Population and Environment, 23(1): 117-126.
35. Chen XQ*, Tan ZJ, Schwartz MD, Xu CX#. 2000. Determining the growing season of land vegetation on the basis of plant phenology and satellite data in Northern China. International Journal of Biometeorology, 44(2): 97-101.
36. Chen XQ. 1995. Phaenologische und klimatologische Raumgliederung Westdeutschlands. Geographische Rundschau, 47(5): 312-317.
中文論文
1.唐菱珮#,陳效逑*,錢思蔚#,莫志鴻.2023.北京植物園主要觀賞植物春花期和秋葉期的過程模擬. 北京大學學報(自然科學版),59(4):649-658.
2.陳奕竹#,郎偉光#,陳效逑*. 2022. 中國北方樹木秋季物候的過程模擬及其區(qū)域分異歸因.植物生態(tài)學報,2022, 46 (7): 753-765.
3. 薛婷婷#,趙袁#,陳效逑*,姜夢迪#,梁博毅#. 2020. 氣溫和土壤濕度對中國東部溫帶蒲公英黃枯普期的影響. 北京大學學報(自然科學版),56(1): 173-183.
4. 陳效逑,龐程#,徐琳#,李靜#,張晴華#,尉楊平#. 2015. 中國溫帶旱柳物候期對氣候變化的時空響應. 生態(tài)學報, 35(11): 3625-3635.
5. 楊曉芳#,陳效逑*,羅翔中#. 2015. 錫林郭勒草原遙感植被物候的地面照相驗證. 草業(yè)科學, 32(5): 667-674.
6. 張晴華#,王紅亞,徐琳#,鄭卓,楊士雄,陳效逑*. 2014. 廣東惠州黃洞水庫沉積物特征及其反映的近50 年土壤侵蝕意義. 地理研究, 33(4): 643-653.
7. 徐琳#, 陳效逑*, 杜星#. 2013. 中國東部暖溫帶刺槐花期空間格局的模擬與預測. 生態(tài)學報, 33(12): 3584-3593.
8. 徐琳#, 陳效逑*.2012.中國溫帶榆樹生長季節(jié)的空間模擬. 中國科學: 地球科學,42(1): 545 – 554.
9. 陳效逑,尉楊平#,李靜#,劉立#,劉吉峰. 2012. 黃河流域天然徑流量與氣候因子的小波分析. 人民黃河,(1): 1-4,13.
10. 陳效逑, 亓孝然#, 阿杉#, 徐琳#. 2011. 我國東部北亞熱帶植物群落季相的時空變化. 生態(tài)學報, 31(13): 3559-3568.
11. 陳效逑, 杜星#, 尉楊平#. 2011. 北京觀賞植物的冬、春季凍害分析. 北方園藝, (17): 114-116.
12. 陳效逑,劉立#,尉楊平#. 2011. 1961-2005年黃河流域極端氣候事件變化趨勢.人民黃河, 33(5): 3-5.
13. 陳效逑, 李倞#. 2009. 內(nèi)蒙古草原羊草物候與氣象因子的關(guān)系. 生態(tài)學報, 29(10): 5280-5290.
14. 陳效逑, 彭嘉棟#, 李慧敏#. 2009. 內(nèi)蒙古地區(qū)氣溫變化的季節(jié)和區(qū)域差異. 地理研究, 28(1): 27-35.
15. 陳效逑, 王恒#. 2009. 1982-2003年內(nèi)蒙古植被帶和植被覆蓋度的時空變化. 地理學報, 64(1): 84-94.
16. 陳效逑,王林海#. 2009. 遙感物候?qū)W研究進展. 地理科學進展, 28(1): 33-40.
17. 陳效逑, 鄭婷#. 2008. 內(nèi)蒙古典型草原地上生物量的空間格局及其氣候成因分析. 地理科學, 28(3): 369-374.
18. 陳效逑, 周萌#, 鄭婷#, 張榮菊. 2008. 呼倫貝爾草原羊草光合速率的季節(jié)變化研究——以鄂溫克旗牧業(yè)氣象試驗站為例. 生態(tài)學報, 28(5): 2003-2012.
19. 陳效逑, 韓建偉#. 2008. 我國東部溫帶植物群落的季相及其時空變化特征. 植物生態(tài)學報, 32(2): 336-346.
20. 陳效逑.2008. “自然地理學”創(chuàng)新教學體系的探索.高等理科教育. 82(6): 24-27.
21. 丁登#, 陳效逑. 2007. 我國遙感植被生長季節(jié)的地面檢驗研究——以溫帶草原和暖溫帶落葉闊葉林區(qū)為例. 遙感技術(shù)與應用, 22(3): 382-388.
22. 陳效逑, 胡冰#, 喻蓉#. 2007. 中國東部溫帶植被生長季節(jié)的空間外推估計. 生態(tài)學報, 27(1): 65-74.
23. 陳效逑, 喻蓉#. 2007. 1982-1999年我國東部暖溫帶植被生長季節(jié)的時空變化. 地理學報, 62(1): 41-51.
24. 陳效逑,郭玉泉#,崔素平,王志宏,左鐵鏞. 2005. 北京地區(qū)水泥行業(yè)的物能代謝及其環(huán)境影響. 資源科學, 27(5): 40-46.
25. 陳效逑,趙婷婷#,郭玉泉#,宋升佑#. 2003. 中國經(jīng)濟系統(tǒng)的物質(zhì)輸入與輸出分析. 北京大學學報(自然科學版), 39(4): 538-547.
26. 陳效逑,譚文墾#,劉大平,郭玉泉#,潘衛(wèi)峰#. 2003. 北京平原地區(qū)裸露土地的時空分布.水土保持研究, 10(3): 18-25.
27. 陳效逑,張福春. 2001. 近50年北京春季物候的變化及其對氣候變化的響應. 中國農(nóng)業(yè)氣象, 22(1): 1-5.
28. 陳效逑. 2000. 論樹木物候與氣溫生長季節(jié)的關(guān)系——以德國中部Taunus山區(qū)為例. 氣象學報,58(6): 726-737.
29. 陳效逑. 2000. 德國西部生長季節(jié)的一次趨勢轉(zhuǎn)折. 地學前緣, 7(增刊): 189-195.
30. 楊國棟, 陳效逑. 2000. 木本植物物候相組合分類研究——以北京市植物園栽培樹種為例. 林業(yè)科學, 36(2): 39-46.
31. 陳效逑,喬立佳#. 2000. 中國經(jīng)濟-環(huán)境系統(tǒng)的物質(zhì)流分析. 自然資源學報, 15(1): 17-23.
32. 陳效逑, 曹志萍#. 1999. 植物物候期的頻率分布型及其在季節(jié)劃分中的應用. 地理科學, 19(1): 21-27.
33. 楊國棟, 陳效逑. 1998. 論自然景觀的季節(jié)節(jié)奏. 生態(tài)學報, 18(3): 90-16.
34. 楊國棟,陳效逑. 1991. 華北地區(qū)刺槐花期的物候測報. 中國養(yǎng)蜂, 2: 29-30.
35. 陳效逑. 1990. 華北地區(qū)春夏季的物候季節(jié)節(jié)奏研究. 地理科學, 10(1): 69-76.
36. 陳效逑, 楊國棟. 1988. 樹木物候區(qū)域預測模式的研究——以華北地區(qū)為例. 中國農(nóng)業(yè)氣象, 9(3): 42-45.
37. 楊國棟,陳效逑. 1985. 樹木物候期之間的相關(guān)、回歸分析. 農(nóng)業(yè)氣象, 6(1): 49-52.
38. 楊國棟,陳效逑. 1985. 植物物候期的推算與物候記錄插補(II). 北京師范學院學報(自然科學版), 1: 76-84.
39. 楊國棟,陳效逑. 1984. 云、貴、川一帶在我國自然區(qū)劃中歸屬問題的聚類分析. 北京師范學院學報(自然科學版), 1: 99-108.
40. 楊國棟,陳效逑. 1982. 植物物候期的推算與物候記錄插補(I). 北京師范學院學報(自然科學版), 1: 75-80.
41. 楊國棟,陳效逑. 1980. 北京地區(qū)物候季節(jié)的初步研究. 北京師范學院學報(自然科學版), 2: 110-119.