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生态学杂志 ›› 2026, Vol. 45 ›› Issue (5): 1473-1480.doi: 10.13292/j.1000-4890.202605.021

• ·克隆植物的适应策略与生态功能·(专栏组织专家:钱建强、雒文涛、武 晶) • 上一篇    下一篇

闽中毛竹林空间结构对光环境的影响

李志腾1,刘广路1,徐晴1,2,邓紫云1,蔡昌棠3,魏松坡1*   

  1. 1国际竹藤中心/竹藤科学与技术国家林业和草原局重点实验室, 北京 100102; 2福建永安竹林生态系统定位观测研究站, 福建永安 366000; 3福建省永安天宝岩国家级自然保护区管理局, 福建永安 366000)
  • 出版日期:2026-05-10 发布日期:2026-05-07

Effects of spatial structure of Phyllostachys edulis forest on its light environment in central Fujian.

LI Zhiteng1, LIU Guanglu1, XU Qing1,2, DENG Ziyun1, CAI Changtang3, WEI Songpo1*   

  1. (1Key Laboratory of National Forestry and Grassland Administration on Bamboo & Rattan Science and Technology, International Centre for Bamboo and Rattan, Beijing 100102, China; 2Yong’an Observation and Research Station for Bamboo Forest Ecosystem, Yong’an 366000, Fujian, China; 3Tianbaoyan National Nature Reserve Administration Bureau, Yong’an 366000, Fujian, China).

  • Online:2026-05-10 Published:2026-05-07

摘要: 林分空间结构与林下光环境关系密切,但影响林下光环境的关键结构因子尚不明确。本研究以闽中毛竹混交林为对象,定量分析了林分空间结构与光环境的关系,揭示了其对林下光环境的影响。结果表明:(1)毛竹林混交度(M)为0~0.8519,开敞度(K)为0.0689~0.3317,林层指数(S)为0~0.4306,大小比数(U)为0.3696~0.5682,交角竞争指数(UCI)为0.21~0.37,角尺度(W)为0.4384~0.6600。林冠开度(CO)为7.47%~33.73%,叶面积指数(LAI)值范围为0.97~3.33,平均叶倾角(MLA)为10.62°~85.50°,冠下散射辐射(DifBe)、冠下直射辐射(DirBe)和冠下总辐射(TotBe)分别为108.08~475.42、1207.50~5027.92和1336.08~5503.25 μmol·m-2·s-1;(2)多个空间结构参数与光环境因子存在显著关联。其中,混交度(M)、开敞度(K)、角尺度(W)分别与林冠开度(CO)、冠下散射辐射(DifBe)、冠下直射辐射(DirBe)、冠下总辐射(TotBe)、平均叶倾角(MLA)呈极显著负相关(P<0.01);交角竞争指数(UCI)与冠下直射辐射(DirBe)、平均叶倾角(MLA)呈极显著正相关(P<0.01),与冠下总辐射(TotBe)呈显著正相关(P<0.05)。(3)空间结构参数混交度(M)、角尺度(W)、开敞度(K)是影响光环境的关键结构因子,可解释光环境总变差的24.8%,其中单独解释率分别为14.14%、5.92%、2.91%。(4)林下光环境因子(CO、DifBe、DirBe、TotBe、MLA、LAI)可以通过空间结构关键因子MWK进行拟合,达显著水平(P<0.05)。综上所述,毛竹林混交度(M)、开敞度(K)、角尺度(W)是影响竹林光环境的关键结构因子,在生产中建议通过调控混交度、优化水平分布格局提升林下光环境。


关键词: 混交林, 光环境参数, 混交度, 角尺度, 开敞度

Abstract: Spatial structure of forest stands is closely related to understory light environment. However, the key structural variables influencing light conditions remain unclear. In this study, we quantitatively analyzed the relationship between stand spatial structure and light environment in mixed moso bamboo (Phyllostachys edulis) forest in central Fujian, China, aiming to identify the structural variables that significantly affect understory light conditions. The results showed that: (1) the mingling degree (M) ranged from 0 to 0.8519, opening degree (K) from 0.0689 to 0.3317, stand layer index (S) from 0 to 0.4306, neighborhood comparison (U) from 0.3696 to 0.5682, competition index based on intersection angle (UCI) from 0.2101 to 0.3734, and angle index (W) from 0.4384 to 0.6600. Canopy openness (CO) ranged from 7.47% to 33.73%, leaf area index (LAI) from 0.97 to 3.33, and mean leaf angle (MLA) from 10.62° to 85.50°. Diffuse radiation below the canopy (DifBe), direct radiation below the canopy (DirBe), and total radiation below the canopy (TotBe) ranged from 108.08 to 475.42 μmol·m-2·s-1, 1207.50 to 5027.92 μmol·m-2·s-1, and 1336.08 to 5503.25 μmol·m-2·s-1, respectively. (2) Stand spatial structure variables had significant correlations with understory light conditions. Specifically, M, K, and W were all highly negatively correlated (P<0.01) with CO, DifBe, DirBe, TotBe, and MLA. UCI was highly positively correlated with DirBe and MLA (P<0.01), and positively correlated with TotBe (P<0.05). (3) Among the structural variables, M, W, and K were identified as key factors influencing light environment, collectively explaining 24.8% of the total variation, with individual contributions of 14.14%, 5.92%, and 2.91%. (4) Light-related variables (CO, DifBe, DirBe, TotBe, MLA, and LAI) could be effectively fitted using the key spatial structural variables M, W, and K, and all models were statistically significant (P<0.05). In conclusion, mingling degree (M), opening degree (K), and angle index (W) are the primary spatial structure variables affecting light environment in moso bamboo forests. It is recommended that management practices aiming at improving understory light conditions can focus on regulating species mixture and optimizing horizontal spatial distribution.


Key words: mixed forest, light environment variable, mingling degree, angle index, opening degree