Journal of Northwest Forestry University, Volume. 40, Issue 4, 136(2025)
Study on the Coexistence of Fagaceae in the Evergreen Broad-leaved Forest of Malipo
[1] [1] PINSKY M L. Species coexistence through competition and rapid evolution[J]. Proceedings of the National Academy of Sciences of the United States of America, 2019, 116(7): 2407-2409.
[2] [2] CRAINE J M, DYBZINSKI R. Mechanisms of plant competition for nutrients water and light[J]. Functional Ecology, 2013, 27(4): 833-840.
[3] [3] BARTOMEUS I, GODOY O. Biotic controls of plant coexistence[J]. Journal of Ecology, 2018, 106(5): 1767-1772.
[4] [4] HART S P, USINOWICZ J, LEVINE J M. The spatial scales of species coexistence[J]. Nature Ecology & Evolution, 2017, 1(8): 1066-1073.
[5] [5] POWO. Plants of the world online[DB/OL]. Published on the Internet: Facilitated by the royal botanic gardens, kew, [2024-04-30]. http://www.plantsoftheworldonline.org/.
[6] [6] FRODIN D G, GOVAERTS R. World checklist and bibliography of Fagales (Betulaceae, Corylaceae, Fagaceae and Ticodendraceae)[M]. Royal Botanic Gardens, 1998.
[7] [7] CHEN X, KOHYAMA T S, CANNON C H. Associated morphometric and geospatial differentiation among 98 species of stone oaks (Lithocarpus)[J]. PLoS One, 2018, 13(6): e0199538.
[8] [8] SHANG A, LIU H Y, LUO M, et al. Sweet teaLithocarpus polystachyusRehd. as a new natural source of bioactive dihydrochalcones with multiple health benefits[J]. Critical Reviews in Food Science and Nutrition, 2022, 62(4): 917-934.
[10] [10] DENG M, ZHOU Z K, LI Q S. Taxonomy and systematics ofQuercussubgenuscyclobalanopsis[J]. International Oaks, 2013, 24: 48-60.
[11] [11] PETIT R J, CARLSON J, CURTU A L, et al. Fagaceae trees as models to integrate ecology, evolution and genomics[J]. New Phytologist, 2013, 197(2): 369-371.
[12] [12] CANNON C H, BRENDEL O, DENG M, et al. Gaining a global perspective on Fagaceae genomic diversification and adaptation[J]. New Phytologist, 2018, 218(3): 894-897.
[23] [23] HETT J M, LOUCKS O L. Age structure models of balsam fir and eastern hemlock[J]. The Journal of Ecology, 1976, 64(3): 1029.
[26] [26] WU X M, ZHOU S Y, XU A J, et al. Passive measurement method of tree diameter at breast height using a smartphone[J]. Computers and Electronics in Agriculture, 2019, 163: 104875.
[31] [31] SEIWA K, MASAKA K, KONNO M, et al. Role of seed size and relative abundance in conspecific negative distance-dependent seedling mortality for eight tree species in a temperate forest[J]. Forest Ecology and Management, 2019, 453: 117537.
[32] [32] PYLES M V, PRADO-JUNIOR J A, MAGNAGO F L S, et al. Loss of biodiversity and shifts in aboveground biomass drivers in tropical rainforests with different disturbance histories[J]. Biodiversity and Conservation, 2018, 27(12): 3215-3231.
[33] [33] STEPHEN B, VANDER W. The evolutionary ecology of nut dispersal[J]. The Botanical Review, 2001, 67(1): 74-117.
[34] [34] HIGAKI M. Prolonged diapause and seed predation by the acorn weevil,Curculio robustus, in relation to masting of the deciduous oakQuercus acutissima[J]. Entomologia Experimentalis et Applicata, 2016, 159(3): 338-346.
Get Citation
Copy Citation Text
LUO Rui, CHEN Xi, YANG Kehan. Study on the Coexistence of Fagaceae in the Evergreen Broad-leaved Forest of Malipo[J]. Journal of Northwest Forestry University, 2025, 40(4): 136
Received: Jun. 7, 2024
Accepted: Sep. 12, 2025
Published Online: Sep. 12, 2025
The Author Email: CHEN Xi (xi.chen.ttu@gmail.com)