生态环境学报 ›› 2025, Vol. 34 ›› Issue (4): 511-520.DOI: 10.16258/j.cnki.1674-5906.2025.04.002
邓鹏飞1(), 肖永有2, 曾常金3, 高雨1, 张秀兰4, 陈兴彬4, 肖复明4, 徐小牛1,*(
)
收稿日期:
2024-09-18
出版日期:
2025-04-18
发布日期:
2025-04-24
通讯作者:
*徐小牛。E-mail: xnxu2007@ahau.edu.cn作者简介:
邓鹏飞(1994年生),男,博士研究生,主要从事森林生态方向研究。E-mail: PengFei_Deng@outlook.com
基金资助:
DENG Pengfei1(), XIAO Yongyou2, ZENG Changjin3, GAO Yu1, ZHANG Xiulan4, CHEN Xingbin4, XIAO Fuming4, XU Xiaoniu1,*(
)
Received:
2024-09-18
Online:
2025-04-18
Published:
2025-04-24
摘要: 群落结构及其物种组成和多样性是评价森林质量的重要指标,探讨群落结构和物种多样性关系,可为林分结构优化及功能提升提供理论依据。选择江西阳明山国家森林公园弃管20年的50年生杉木(Cunninghamia lanceolata)人工林,采用样地调查法,分析其群落结构、物种组成和多样性的变化特征。结果表明,群落乔木层林木径级分布呈双峰曲线,径级≤10 cm的较小个体占比高,以侵入的阔叶树为主,属于稳定增长型林分。杉木种群的平均重要值为77,胸高断面积41 m2·hm−2,占群落总胸高断面积的94%;其径级分布呈正态分布型,可维持其在群落中的长期优势地位;群落稳定性分析表明其属于稳定种群,但其幼苗、幼树储备严重不足,属于衰退型种群。该群落共出现植物72种55属35科,其中木本植物51种38属22科、草本植物6种6属4科、蕨类植物15种11属9科。热带成分在区系中占优势,共有种子植物28属37种,分别占总数的64%和65%。群落不同层次的物种多样性差异较大,相关性分析表明杉木重要值与灌木层所有多样性指数之间均无显著相关性,而与乔木层和草本层的3个多样性指数(包括Shannon-Wienner指数、Simpson指数和Pielou均匀度指数)均呈显著负相关。这表明群落物种丰富度和多样性受制于杉木种群的优势度。
中图分类号:
邓鹏飞, 肖永有, 曾常金, 高雨, 张秀兰, 陈兴彬, 肖复明, 徐小牛. 长期弃管杉木人工林群落结构及其物种多样性特点[J]. 生态环境学报, 2025, 34(4): 511-520.
DENG Pengfei, XIAO Yongyou, ZENG Changjin, GAO Yu, ZHANG Xiulan, CHEN Xingbin, XIAO Fuming, XU Xiaoniu. Characteristics of Community Structure and Species Diversity of a Long-term Abandoned Chinese Fir Plantation Forest[J]. Ecology and Environment, 2025, 34(4): 511-520.
样地号 | 平均胸径/cm | 平均树高/m | 胸高断面积/(m2·hm−2) | 林分密度/(plant·hm−2) | 郁闭度/ % | |||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|
杉木 | 林分 | 杉木 | 林分 | 杉木 | 林分 | 杉木 | 林分 | |||||
P-1 | 23.9 | 18.6 | 19.8 | 16.3 | 31.61 | 33.08 | 661 | 978 | 70 | |||
P-2 | 24.0 | 17.8 | 20.1 | 16.0 | 31.41 | 34.41 | 668 | 1113 | 75 | |||
P-3 | 27.3 | 21.5 | 21.4 | 18.2 | 48.18 | 49.91 | 782 | 1105 | 80 | |||
P-4 | 23.7 | 15.6 | 20.9 | 15.6 | 38.14 | 41.61 | 767 | 1507 | 80 | |||
P-5 | 28.5 | 18.8 | 24.0 | 17.3 | 54.46 | 59.70 | 807 | 1530 | 85 | |||
P-6 | 27.1 | 19.6 | 22.9 | 18.3 | 43.40 | 45.56 | 723 | 1151 | 75 | |||
平均值 | 25.8 | 18.7 | 21.5 | 17.0 | 41.20 | 44.05 | 735 | 1231 | 78 | |||
标准误 | 1.9 | 1.8 | 1.5 | 1.1 | 8.43 | 9.14 | 56 | 120 | 5 |
表1 调查林分生长状况
Table 1 Growth regime of the sampling stands
样地号 | 平均胸径/cm | 平均树高/m | 胸高断面积/(m2·hm−2) | 林分密度/(plant·hm−2) | 郁闭度/ % | |||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|
杉木 | 林分 | 杉木 | 林分 | 杉木 | 林分 | 杉木 | 林分 | |||||
P-1 | 23.9 | 18.6 | 19.8 | 16.3 | 31.61 | 33.08 | 661 | 978 | 70 | |||
P-2 | 24.0 | 17.8 | 20.1 | 16.0 | 31.41 | 34.41 | 668 | 1113 | 75 | |||
P-3 | 27.3 | 21.5 | 21.4 | 18.2 | 48.18 | 49.91 | 782 | 1105 | 80 | |||
P-4 | 23.7 | 15.6 | 20.9 | 15.6 | 38.14 | 41.61 | 767 | 1507 | 80 | |||
P-5 | 28.5 | 18.8 | 24.0 | 17.3 | 54.46 | 59.70 | 807 | 1530 | 85 | |||
P-6 | 27.1 | 19.6 | 22.9 | 18.3 | 43.40 | 45.56 | 723 | 1151 | 75 | |||
平均值 | 25.8 | 18.7 | 21.5 | 17.0 | 41.20 | 44.05 | 735 | 1231 | 78 | |||
标准误 | 1.9 | 1.8 | 1.5 | 1.1 | 8.43 | 9.14 | 56 | 120 | 5 |
生长型 | 拟合方程 | 决定系数(R2) | 交点坐标 | 欧氏距离 | 稳定性 |
---|---|---|---|---|---|
总体 | y= −0.006x2+0.608x+46.990 | 0.9383 | (33.58,66.42) | 19.20 | 稳定 |
乔木层 | y= −0.008x2+1.320x+45.418 | 0.9948 | (26.40,73.60) | 9.05 | 稳定 |
灌木层 | y= −0.011x2+1.926x+10.738 | 0.9872 | (35.69,64.31) | 22.19 | 不稳定 |
草本层 | y= −0.011x2+1.850x+23.668 | 0.9596 | (30.72,69.28) | 15.16 | 稳定 |
表2 杉木群落稳定性分析结果
Table 2 Analysis results of the Cunninghamia lanceolata community stability
生长型 | 拟合方程 | 决定系数(R2) | 交点坐标 | 欧氏距离 | 稳定性 |
---|---|---|---|---|---|
总体 | y= −0.006x2+0.608x+46.990 | 0.9383 | (33.58,66.42) | 19.20 | 稳定 |
乔木层 | y= −0.008x2+1.320x+45.418 | 0.9948 | (26.40,73.60) | 9.05 | 稳定 |
灌木层 | y= −0.011x2+1.926x+10.738 | 0.9872 | (35.69,64.31) | 22.19 | 不稳定 |
草本层 | y= −0.011x2+1.850x+23.668 | 0.9596 | (30.72,69.28) | 15.16 | 稳定 |
层次 | 物种 | 学名 | P-1 | P-2 | P-3 | P-4 | P-5 | P-6 |
---|---|---|---|---|---|---|---|---|
乔木层 | 杉木 | Cunninghamia lanceolata | 81.62 | 75.66 | 83.87 | 70.26 | 72.35 | 78.33 |
木荷 | Schima superba | 7.63 | 13.11 | 2.68 | 13.67 | 9.75 | 6.27 | |
罗浮柿 | Diospyros morrisiana | 4.94 | 3.20 | 9.12 | 6.23 | 4.05 | 6.38 | |
鹿角锥 | Castanopsis lamontii | 1.68 | 1.65 | 7.76 | 9.09 | 6.83 | ||
微毛柃 | Eurya hebeclados | 2.76 | 2.68 | 2.08 | 4.76 | 1.12 | ||
桂樱 | Prunus laurocerasus | 6.36 | ||||||
笔罗子 | Meliosma rigida | 3.05 | ||||||
木姜子 | Litsea pungens | 1.08 | ||||||
灌木层 | 杜茎山 | Maesa japonica | 15.39 | 11.07 | 15.22 | 9.84 | 26.02 | 9.50 |
木荷 | Schima superba | 7.82 | 4.87 | 6.19 | 13.24 | 8.99 | 12.79 | |
草珊瑚 | Sarcandra glabra | 24.70 | 6.41 | 15.78 | ||||
柏拉木 | Blastus cochinchinensis | 17.52 | 3.49 | 10.62 | 6.72 | 3.30 | ||
鹿角锥 | Castanopsis lamontii | 6.59 | 11.30 | 10.70 | 11.86 | |||
樟 | Camphora officinarum | 13.63 | 12.89 | 10.88 | ||||
毛冬青 | Ilex pubescens | 6.96 | 12.12 | 12.31 | ||||
黄绒润楠 | Machilus grijsii | 3.97 | 11.78 | 9.98 | ||||
杨桐 | Adinandra millettii | 12.84 | 5.24 | 6.45 | ||||
米槠 | Castanopsis carlesii | 2.38 | 2.99 | 8.84 | 10.07 | |||
细齿叶柃 | Eurya nitida | 9.26 | 13.03 | |||||
罗浮柿 | Diospyros morrisiana | 5.68 | 14.14 | |||||
枇杷叶紫珠 | Callicarpa kochiana | 11.06 | 3.00 | |||||
华南桂 | Cinnamomum austrosinense | 13.12 | ||||||
大青 | Clerodendrum cyrtophyllum | 11.45 | ||||||
厚叶冬青 | Ilex elmerrilliana | 9.72 | 1.51 | |||||
微毛柃 | Eurya hebeclados | 7.08 | 3.51 | |||||
细枝柃 | Ficus microcarpa | 7.40 | 3.13 | |||||
浙江润楠 | Machilus chekiangensis | 1.63 | 3.37 | 3.57 | ||||
润楠 | Machilus nanmu | 2.40 | 6.10 | |||||
青冈 | Quercus glauca | 7.41 | ||||||
光叶石楠 | Photinia glabra | 6.66 | ||||||
山血丹 | Ardisia kwangtungensis | 3.25 | 2.24 | |||||
野柿 | Diospyros kaki var. sylvestris | 4.82 | ||||||
粗叶榕 | Ficus hirta | 4.41 | ||||||
浙江新木姜子 | Neolitsea aurata var. chekiangensis | 4.13 | ||||||
细叶冬青 | Ilex integra | 4.03 | ||||||
闽楠 | Phoebe bournei | 3.84 | ||||||
狗骨柴 | Diplospora dubia | 3.69 | ||||||
绒毛山胡椒 | Lindera nacusua | 2.99 | ||||||
毛锥 | Castanopsis fordii | 2.96 | ||||||
轮叶木姜子 | Litsea verticillata | 2.85 | ||||||
女贞 | Ligustrum lucidum | 1.71 | ||||||
笔罗子 | Meliosma rigida | 1.62 | ||||||
草本层 | 深绿卷柏 | Selaginella doederleinii | 61.74 | 53.23 | 57.34 | 15.16 | 39.28 | 27.88 |
狗脊 | Woodwardia japonica | 15.94 | 24.96 | 15.75 | 27.76 | 17.68 | 18.94 | |
淡竹叶 | Lophatherum gracile | 6.30 | 1.77 | 14.50 | 4.67 | 6.78 | ||
山姜 | Alpinia japonica | 7.73 | 5.58 | 4.29 | 3.37 | 6.64 | ||
黑莎草 | Gahnia tristis | 2.65 | 17.23 | 5.48 | 2.62 | |||
边生短肠蕨 | Diplazium conterminum | 11.62 | 4.25 | 8.91 | ||||
山麦冬 | Liriope spicata | 2.78 | 5.45 | 2.17 | 1.33 | |||
戟叶耳蕨 | Polystichum tripteron | 4.77 | 1.29 | |||||
中华里白 | Diplopterygium chinense | 1.25 | 12.58 | |||||
金毛狗 | Cibotium barometz | 1.33 | 9.78 | |||||
里白 | Diplopterygium glaucum | 3.13 | 3.93 | 4.92 | ||||
毛柄短肠蕨 | Diplazium dilatatum | 1.56 | ||||||
团叶鳞始蕨 | Lindsaea orbiculata | 2.99 | ||||||
圣蕨 | Stegnogramma griffithii | 1.12 | 1.73 | |||||
福建观音座莲 | Angiopteris evecta | 2.62 | ||||||
乾叶圣蕨 | Stegnogramma sagittifolia | 1.87 | ||||||
安蕨 | Anisocampium cumingianum | 2.91 | ||||||
芒萁 | Dicranopteris pedata | 2.55 | ||||||
莎草 | Cyperus rotundus | 2.12 | ||||||
刺羽耳蕨 | Polystichum munitum | 1.44 | ||||||
青绿薹草 | Carex breviculmis | 1.38 |
表3 杉木群落物种组成及其重要值
Table 3 Species composition and their importance values of the Cunninghamia lanceolata community
层次 | 物种 | 学名 | P-1 | P-2 | P-3 | P-4 | P-5 | P-6 |
---|---|---|---|---|---|---|---|---|
乔木层 | 杉木 | Cunninghamia lanceolata | 81.62 | 75.66 | 83.87 | 70.26 | 72.35 | 78.33 |
木荷 | Schima superba | 7.63 | 13.11 | 2.68 | 13.67 | 9.75 | 6.27 | |
罗浮柿 | Diospyros morrisiana | 4.94 | 3.20 | 9.12 | 6.23 | 4.05 | 6.38 | |
鹿角锥 | Castanopsis lamontii | 1.68 | 1.65 | 7.76 | 9.09 | 6.83 | ||
微毛柃 | Eurya hebeclados | 2.76 | 2.68 | 2.08 | 4.76 | 1.12 | ||
桂樱 | Prunus laurocerasus | 6.36 | ||||||
笔罗子 | Meliosma rigida | 3.05 | ||||||
木姜子 | Litsea pungens | 1.08 | ||||||
灌木层 | 杜茎山 | Maesa japonica | 15.39 | 11.07 | 15.22 | 9.84 | 26.02 | 9.50 |
木荷 | Schima superba | 7.82 | 4.87 | 6.19 | 13.24 | 8.99 | 12.79 | |
草珊瑚 | Sarcandra glabra | 24.70 | 6.41 | 15.78 | ||||
柏拉木 | Blastus cochinchinensis | 17.52 | 3.49 | 10.62 | 6.72 | 3.30 | ||
鹿角锥 | Castanopsis lamontii | 6.59 | 11.30 | 10.70 | 11.86 | |||
樟 | Camphora officinarum | 13.63 | 12.89 | 10.88 | ||||
毛冬青 | Ilex pubescens | 6.96 | 12.12 | 12.31 | ||||
黄绒润楠 | Machilus grijsii | 3.97 | 11.78 | 9.98 | ||||
杨桐 | Adinandra millettii | 12.84 | 5.24 | 6.45 | ||||
米槠 | Castanopsis carlesii | 2.38 | 2.99 | 8.84 | 10.07 | |||
细齿叶柃 | Eurya nitida | 9.26 | 13.03 | |||||
罗浮柿 | Diospyros morrisiana | 5.68 | 14.14 | |||||
枇杷叶紫珠 | Callicarpa kochiana | 11.06 | 3.00 | |||||
华南桂 | Cinnamomum austrosinense | 13.12 | ||||||
大青 | Clerodendrum cyrtophyllum | 11.45 | ||||||
厚叶冬青 | Ilex elmerrilliana | 9.72 | 1.51 | |||||
微毛柃 | Eurya hebeclados | 7.08 | 3.51 | |||||
细枝柃 | Ficus microcarpa | 7.40 | 3.13 | |||||
浙江润楠 | Machilus chekiangensis | 1.63 | 3.37 | 3.57 | ||||
润楠 | Machilus nanmu | 2.40 | 6.10 | |||||
青冈 | Quercus glauca | 7.41 | ||||||
光叶石楠 | Photinia glabra | 6.66 | ||||||
山血丹 | Ardisia kwangtungensis | 3.25 | 2.24 | |||||
野柿 | Diospyros kaki var. sylvestris | 4.82 | ||||||
粗叶榕 | Ficus hirta | 4.41 | ||||||
浙江新木姜子 | Neolitsea aurata var. chekiangensis | 4.13 | ||||||
细叶冬青 | Ilex integra | 4.03 | ||||||
闽楠 | Phoebe bournei | 3.84 | ||||||
狗骨柴 | Diplospora dubia | 3.69 | ||||||
绒毛山胡椒 | Lindera nacusua | 2.99 | ||||||
毛锥 | Castanopsis fordii | 2.96 | ||||||
轮叶木姜子 | Litsea verticillata | 2.85 | ||||||
女贞 | Ligustrum lucidum | 1.71 | ||||||
笔罗子 | Meliosma rigida | 1.62 | ||||||
草本层 | 深绿卷柏 | Selaginella doederleinii | 61.74 | 53.23 | 57.34 | 15.16 | 39.28 | 27.88 |
狗脊 | Woodwardia japonica | 15.94 | 24.96 | 15.75 | 27.76 | 17.68 | 18.94 | |
淡竹叶 | Lophatherum gracile | 6.30 | 1.77 | 14.50 | 4.67 | 6.78 | ||
山姜 | Alpinia japonica | 7.73 | 5.58 | 4.29 | 3.37 | 6.64 | ||
黑莎草 | Gahnia tristis | 2.65 | 17.23 | 5.48 | 2.62 | |||
边生短肠蕨 | Diplazium conterminum | 11.62 | 4.25 | 8.91 | ||||
山麦冬 | Liriope spicata | 2.78 | 5.45 | 2.17 | 1.33 | |||
戟叶耳蕨 | Polystichum tripteron | 4.77 | 1.29 | |||||
中华里白 | Diplopterygium chinense | 1.25 | 12.58 | |||||
金毛狗 | Cibotium barometz | 1.33 | 9.78 | |||||
里白 | Diplopterygium glaucum | 3.13 | 3.93 | 4.92 | ||||
毛柄短肠蕨 | Diplazium dilatatum | 1.56 | ||||||
团叶鳞始蕨 | Lindsaea orbiculata | 2.99 | ||||||
圣蕨 | Stegnogramma griffithii | 1.12 | 1.73 | |||||
福建观音座莲 | Angiopteris evecta | 2.62 | ||||||
乾叶圣蕨 | Stegnogramma sagittifolia | 1.87 | ||||||
安蕨 | Anisocampium cumingianum | 2.91 | ||||||
芒萁 | Dicranopteris pedata | 2.55 | ||||||
莎草 | Cyperus rotundus | 2.12 | ||||||
刺羽耳蕨 | Polystichum munitum | 1.44 | ||||||
青绿薹草 | Carex breviculmis | 1.38 |
编号 | 分布区类型 | 属 | 种 | ||||
---|---|---|---|---|---|---|---|
数量 | 比例/ % | 数量 | 比例/ % | ||||
1 | 世界广布 | 4 | 9.09 | 5 | 8.77 | ||
2 | 泛热带分布 | 8 | 18.18 | 12 | 21.05 | ||
2-1 | 热带亚洲-大洋洲(至新西兰)和中至南美洲(或墨西哥)间断 | 1 | 2.27 | 1 | 1.75 | ||
3 | 热带亚洲和热带美洲间断分布 | 3 | 6.82 | 6 | 10.53 | ||
4 | 旧世界热带分布 | 3 | 6.82 | 3 | 5.26 | ||
4-1 | 热带亚洲、非洲(或东非、马达加斯加)和大洋洲间断 | 1 | 2.27 | 1 | 1.75 | ||
5 | 热带亚洲至热带大洋洲分布 | 4 | 9.09 | 4 | 7.02 | ||
6-2 | 热带亚洲和东非或马达加斯加间断 | 1 | 2.17 | 1 | 1.75 | ||
7 | 热带亚洲(印度、马来西亚)分布 | 6 | 13.04 | 8 | 14.04 | ||
7-1 | 爪哇(或苏门答腊)、喜马拉雅至华南、西南间断或星散 | 1 | 2.17 | 1 | 1.75 | ||
8 | 北温带分布 | 4 | 9.09 | 4 | 7.02 | ||
8-4 | 北温带和南温带间断(泛温带) | 2 | 4.55 | 2 | 3.51 | ||
9 | 东亚和北美间断分布 | 2 | 4.35 | 4 | 7.02 | ||
12-3 | 地中海至温带-热带亚洲、大洋洲和南美洲间断 | 1 | 2.27 | 1 | 1.75 | ||
14(SJ) | 中国-日本 | 2 | 4.55 | 3 | 5.26 | ||
15 | 中国特有分布 | 1 | 2.27 | 1 | 1.75 | ||
合计 | 44 | 100 | 57 | 100 |
表4 杉木群落种子植物区系类型
Table 4 Areal types of species of spermatophyte in the Cunninghamia lanceolata community
编号 | 分布区类型 | 属 | 种 | ||||
---|---|---|---|---|---|---|---|
数量 | 比例/ % | 数量 | 比例/ % | ||||
1 | 世界广布 | 4 | 9.09 | 5 | 8.77 | ||
2 | 泛热带分布 | 8 | 18.18 | 12 | 21.05 | ||
2-1 | 热带亚洲-大洋洲(至新西兰)和中至南美洲(或墨西哥)间断 | 1 | 2.27 | 1 | 1.75 | ||
3 | 热带亚洲和热带美洲间断分布 | 3 | 6.82 | 6 | 10.53 | ||
4 | 旧世界热带分布 | 3 | 6.82 | 3 | 5.26 | ||
4-1 | 热带亚洲、非洲(或东非、马达加斯加)和大洋洲间断 | 1 | 2.27 | 1 | 1.75 | ||
5 | 热带亚洲至热带大洋洲分布 | 4 | 9.09 | 4 | 7.02 | ||
6-2 | 热带亚洲和东非或马达加斯加间断 | 1 | 2.17 | 1 | 1.75 | ||
7 | 热带亚洲(印度、马来西亚)分布 | 6 | 13.04 | 8 | 14.04 | ||
7-1 | 爪哇(或苏门答腊)、喜马拉雅至华南、西南间断或星散 | 1 | 2.17 | 1 | 1.75 | ||
8 | 北温带分布 | 4 | 9.09 | 4 | 7.02 | ||
8-4 | 北温带和南温带间断(泛温带) | 2 | 4.55 | 2 | 3.51 | ||
9 | 东亚和北美间断分布 | 2 | 4.35 | 4 | 7.02 | ||
12-3 | 地中海至温带-热带亚洲、大洋洲和南美洲间断 | 1 | 2.27 | 1 | 1.75 | ||
14(SJ) | 中国-日本 | 2 | 4.55 | 3 | 5.26 | ||
15 | 中国特有分布 | 1 | 2.27 | 1 | 1.75 | ||
合计 | 44 | 100 | 57 | 100 |
[41] | ZHANG Y Q, LI Z C, HOU L Y, et al., 2020. Effects of stand density on understory species diversity and soil nutrients in Chinese fir plantation[J]. Acta Pedologica Sinica, 57(1): 239-250. |
[42] | 赵苏亚, 王瑞辉, 刘凯利, 等, 2020. 抚育间伐对不同年龄杉木人工林生长及林下植被多样性的影响[J]. 中南林业科技大学学报, 40(12): 34-43, 82. |
ZHAO S Y, WANG R H, LIU K L, et al., 2020. Effects of thinning on growth and understory vegetation diversity of Chinese fir plantation at different ages[J]. Journal of Central South University of Forestry & Technology, 40(12): 34-43, 82. | |
[43] | 郑元润, 2000. 森林群落稳定性研究方法初探[J]. 林业科学, 36(5): 28-32. |
ZHENG Y R, 2000. Comparison of methods for studying stability of forest community[J]. Scientia Silvae Sinicae, 36(5): 28-32. | |
[44] | 朱晨曦, 刘志刚, 王昌辉, 等, 2019. 土壤种子库特征及与地上植被的关系——以福建省三明市杉木人工林为例[J]. 中国环境科学, 39(10): 4416-4423. |
ZHU C X, LIU Z G, WANG C H, et al., 2019. Characteristics of soil seed bank and its relationship with aboveground vegetation: A case study of Chinese fir plantations in Sanming City, Fujian Province[J]. China Environmental Science, 39(10): 4416-4423. | |
[45] | 朱喜, 何志斌, 杜军, 等, 2014. 林下植被组成和功能研究进展[J]. 世界林业研究, 27(5): 24-30. |
ZHU X, HE Z B, DU J, et al., 2014. Function and composition of understory vegetation: Recent advances and trends[J]. World Forestry Research, 27(5): 24-30. | |
[1] | ALEM S, PAVLIS J, URBAN J, et al., 2015. Pure and mixed plantations of Eucalyptus camaldulensis and Cupressus lusitanica: their growth interactions and effect on diversity and density of undergrowth woody plants in relation to light[J]. Open Journal of Forestry, 5(4): 375-386. |
[2] | ALLEN M S, THAPA V, ARÉVALOJ R, PALMER M W, 2012. Windstorm damage and forest recovery: Accelerated succession, stand structure, and spatial pattern over 25 years in two Minnesota forests[J]. Plant Ecology, 213(11): 1833-1842. |
[3] | HE F L, LAFRANKIE J V, SONG B, 2002. Scale dependence of tree abundance and richness in a tropical rainforest, Malaysia[J]. Landscape Ecology, 17(6): 559-568. |
[4] | HONG Q, KAREL K, BELA S, 1997. Diversity of the understory vascular vegetation in 40-year-old and old-growth forest stands on Vancouver Island, British Columbia[J]. Journal of Vegetation Science, 8(6): 773-780. |
[5] | LIU Y, LEI P F, XIANG W H, et al., 2017. Accumulation of soil organic C and N in planted forests fostered by tree species mixture[J]. Biogeosciences, 14(17): 3937-3945. |
[6] | LUO Y H, CADOTTE M W, BURGESS K S, et al., 2019. Greater than the sum of the parts: How the species composition in different forest strata influence ecosystem function[J]. Ecology Letters, 22(9): 1449-1461. |
[7] | MAGURRAN A E, 1988. Ecological diversity and its measurement[M]. Princeton: Princeton University Press. |
[8] | MILLER I M, 2024. Fir and empire: The transformation of forests in early modern China[M]. Seattle, USA: University of Washington Press. |
[9] | PULSFORD S A, LINDENMAYER D B, DRISCOLL D A, 2016. A succession of theories: purging redundancy from disturbance theory[J]. Biological Reviews, 91(1): 148-167. |
[10] | QI S S, DAI Z C, MIAO S L, et al., 2014. Light limitation and litter of an invasive clonal plant, Wedelia trilobata, inhibit its seedling recruitment[J]. Annals of Botany, 114(2): 425-433. |
[11] | SELVARAJ S, DURAISAMY V, HUANG Z J, et al., 2017. Influence of long-term successive rotations and stand age of Chinese fir (Cunninghamia lanceolata) plantations on soil properties[J]. Geoderma, 306: 127-134. |
[12] | ZHANG X Q, CHIN S, FU L Y, et al., 2019. Climate-sensitive tree height-diameter allometry for Chinese fir in southern China[J]. Forestry, 92(2): 167-176. |
[13] | 陈水飞, 徐辉, 林文俊, 等, 2023. 武夷山国家公园植物群落物种多样性沿海拔梯度的变化分析[J]. 植物资源与环境学报, 32(1): 1-9. |
CHEN S F, XU H, LIN W J, et al., 2023. Variation analysis on species diversity of plant communities along the elevation gradient in Wuyishan National Park[J]. Journal of Plant Resources and Environment, 32(1): 1-9. | |
[14] | 陈宇, 吴超, 武忆寒, 等, 2020. 杉木涩籽发生机理的研究进展[J]. 亚热带农业研究, 16(4): 247-253. |
CHEN Y, WU C, WU Y H, et al., 2020. Research progress on the occurrence mechanism of astringent seeds in Chinese fir[J]. Subtropical Agriculture Research, 16(4): 247-253. | |
[15] | 高健, 刘令峰, 叶镜中, 1995. 伐桩粗度和高度对杉木萌芽更新的影响[J]. 安徽农业大学学报, 22(2): 145-149. |
GAO J, LIU L F, YE J Z, 1995. Effects of varied stump height and diameter on sprout regeneration of Chinese fir[J]. Journal of Anhui Agricultural University, 22(2): 145-149. | |
[16] |
高伟, 黄石德, 林建丽, 等, 2021. 亚热带3 种森林类型的群落特征与物种多样性的耦合关系[J]. 热带作物学报, 42(6): 1756-1763.
DOI |
GAO W, HUANG S D, LIN J L, et al., 2021. Coupling relationships between community characteristics and species diversity of three forest types in subtropical China[J]. Chinese Journal of Tropical Crops, 42(6): 1756-1763.
DOI |
|
[17] | 何宗明, 陈光水, 谢锦升, 等, 2007. 福建南平安曹下老龄杉木群落生态特征[J]. 亚热带资源与环境学报, 2(1): 43-48. |
HE Z M, CHEN G S, XIE J S, et al., 2007. Ecological Features of an old-growth Chinese fir community at Ancaixia in Nanping, Fujian Province[J]. Journal of Subtropical Resources and Environment, 2(1): 43-48. | |
[18] | 贾亚运, 周丽丽, 吴鹏飞, 等, 2016. 不同发育阶段杉木人工林林下植被的多样性[J]. 森林与环境学报, 36(1): 36-41. |
JIA Y Y, ZHOU L L, WU P F, et al., 2016. Characterization of understory community of Cunninghamia lanceolata plantations at different developmental stages[J]. Journal of Forest and Environment, 36(1): 36-41. | |
[19] | 姜俊, 刘宪钊, 贾宏炎, 等, 2019. 杉木人工林近自然化改造对林下植被多样性和土壤理化性质的影响[J]. 北京林业大学学报, 41(5): 170-177. |
JIANG J, LIU X Z, JIA H Y, et al., 2019. Effects of stand density on understory species diversity and soil physicochemical properties after close-to-nature transformation management of Chinese fir plantation[J]. Journal of Beijing Forestry University, 41(5): 170-177. | |
[20] | 李春义, 马履一, 徐昕, 2006. 抚育间伐对森林生物多样性影响研究进展[J]. 世界林业研究, 19(6): 27-32. |
LI C Y, MA L Y, XU X, 2006. Review on research progress of effects of thinning on forest biodiversity[J]. World Forestry Research, 19(6): 27-32. | |
[21] | 刘圣恩, 林开敏, 蔡锰柯, 等, 2015. 近自然生态恢复条件下杉木老龄林群落优势树种种群结构与空间格局[J]. 应用与环境生物学报, 21(3): 540-546. |
LIU S E, LIN K M, CAI M K, et al., 2015. Population structure and spatial pattern of dominant species in old-growth Chinese fir communities under near-natural restoration[J]. Chinese Journal of Applied Environmental Biology, 21(3): 540-546. | |
[22] | 刘世荣, 杨予静, 王晖, 2018. 中国人工林经营发展战略与对策: 从追求木材产量的单一目标经营转向提升生态系统服务质量和效益的多目标经营[J]. 生态学报, 38(1): 1-10. |
LIU S R, YANG Y J, WANG H, 2018. Development strategy and management countermeasures of planted forests in China: transforming from timber-centered single objective management towards multi-purpose management for enhancing quality and benefits of ecosystem services[J]. Acta Ecologica Sinica, 38(1): 1-10. | |
[23] | 罗航, 赵冲, 王正宁, 等, 2022. 凋落物对杉木幼苗存活及早期生长的机械效应[J]. 生态学杂志, 41(9): 1691-1699. |
LUO H, ZHAO C, WANG Z N, et al., 2022. Mechanical effects of litter cover on seedling survival and early growth of Cunninghamia lanceolata[J]. Chinese Journal of Ecology, 41(9): 1691-1699. | |
[24] |
王国宏, 方精云, 郭柯, 等, 2020. 《中国植被志》研编内容与规范[J]. 植物生态学报, 44(2): 128-178.
DOI |
WANG G H, FANG J Y, GUO K, et al., 2020. Contents and protocols for the classification and description of vegetation formations, alliances and associations of vegetation of China[J]. Chinese Journal of Plant Ecology, 44(2): 128-178. | |
[25] |
王净杰, 刘钟元, 高鑫, 等, 2024. 西藏雅鲁藏布江中游草本植物群落多样性与海拔因子的关系[J]. 草地学报, 32(11): 3579-3590.
DOI |
WANG J J, LIU Z Y, GAO X, et al., 2024. Relationship between herbaceous community diversity and altitude factors in the middle reaches of Yarlung Zangbo River in Xizang[J]. Acta Agrestia Sinica, 32(11): 3579-3590. | |
[26] |
王玲, 2020. 林分密度对油松人工林群落结构和植物多样性的影响[J]. 生态环境学报, 29(12): 2328-2336.
DOI |
WANG L, 2020. Effects of different stand densities on community structure and species diversity of Pinus tabulaeformis plantation[J]. Ecology and Environmental Sciences, 29(12): 2328-2336. | |
[27] |
吴文, 李月辉, 胡远满, 2018. 不同营林措施对林下层多样性和群落结构的影响[J]. 生态环境学报, 27(7): 1369-1376.
DOI |
WU W, LI Y H, HU Y M, 2018. Effects of different management on plant diversity and vegetation structures in understory of forests[J]. Ecology and Environmental Sciences, 27(7): 1369-1376. | |
[28] | 吴征镒, 1991. 中国种子植物属的分布区类型[J]. 云南植物研究, 增刊IV: 1-139. |
WU Z Y, 1991. Areal-types of the genera of seed plants in China[J]. Acta Botanica Yunnanica, Suppl IV: 1-139. | |
[29] | 钱海源, 张田田, 陈声文, 等, 2018. 古田山自然保护区阔叶林与两种人工林的群落结构和生物多样性[J]. 广西植物, 38(10): 1371-1381. |
QIAN H Y, ZHANG T T, CHEN S W, et al., 2018. Community structures and biodiversities of broad-leaved forest and two types of plantations in Gutianshan National Nature Reserve, Zhejiang Province[J]. Guihaia, 38(10): 1371-1381. | |
[30] | 盛炜彤, 2018. 关于我国人工林长期生产力的保持[J]. 林业科学研究, 31(1): 1-14. |
SHENG W T, 2018. On the maintenance of long-term productivity of plantation in China[J]. Forest Research, 31(1): 1-14. | |
[31] | 孙宇, 李际平, 曹小玉, 等, 2020. 基于通径分析的杉木林空间结构与土壤养分关系研究[J]. 中南林业科技大学学报, 40(7): 41-47. |
SUN Y, LI J P, CAO X Y, et al., 2020. Research on the relationship between spatial structure and soil nutrients of Cunninghamia lanceolata forest based on path analysis method[J]. Journal of Central South University of Forestry & Technology, 40(7): 41-47. | |
[32] | 谭许脉, 张文, 肖纳, 等, 2022. 杉木林改造成乡土阔叶林对林下植物物种组成和多样性的影响[J]. 生态学报, 42(7): 2931-2942. |
TAN X M, ZHANG W, XIAO N, et al., 2022. Effects of understory plant species composition and diversity under transforming Chinese fir into precious indigenous broadleaf plantations[J]. Acta Ecologica Sinica, 42(7): 2931-2942. | |
[33] | 汤孟平, 2010. 森林空间结构研究现状与发展趋势[J]. 林业科学, 46(1): 117-122. |
TANG M P, 2010. Advances in study of forest spatial structure[J]. Scientia Silvae Sinicae, 46(1): 117-122. | |
[34] | 薛云展, 张翔, 闫文德, 等, 2020. 不同林龄杉木林群落结构与物种多样性研究[J]. 湖南林业科技, 47(4): 92-98. |
XUE Y Z, ZHANG X, YAN W D, et al., 2020. Community structure and species diversity of Chinese fir plantation at different ages[J]. Hunan Forestry Science & Technology, 47(4): 92-98. | |
[35] | 杨承栋, 2022. 发展有群落结构混交林是维护、恢复和提高森林土壤功能实现人工林可持续经营的关键技术[J]. 林业科学, 58(8): 26-40. |
YANG C D, 2022. Development mixed forest with community structure is the key technologies to maintain, restore, and improve the functions of forest soil and to achieve the sustainable management of plantation[J]. Scientia Silvae Sinicae, 58(8): 26-40. | |
[36] | 杨玉盛, 1998. 杉木林可持续经营的研究[M]. 北京: 中国林业出版社. |
YANG Y S, 1998. Research on sustainable management of Chinese Fir forests[M]. Beijing: China Forestry Publishing House. | |
[37] | 尤业明, 黄雪蔓, 朱宏光, 等, 2015. 间伐强度对杉木林下植物物种多样性和结构组成的影响[J]. 广西科学, 22(6): 593-599. |
YOU Y M, HUANG X M, ZHU H G, et al., 2015. Effects of understory plant species diversity and composition in Cunninghamia lanceolata plantations with different thinning intensities[J]. Guangxi Sciences, 22(6): 593-599. | |
[38] | 俞新妥, 1999. 论杉木人工林的回归——从杉木林地力衰退的因果谈杉木林的可持续经营[J]. 世界林业研究, 12(5): 15-19. |
YU X T, 1999. On the regression of Chinese fir plantation: Discussion on the sustainable management of Chinese fir in terms of the cause and effect of soil degradation[J]. World Forestry Research, 12(5): 15-19. | |
[39] | 张会儒, 雷相东, 张春雨, 等, 2019. 森林质量评价及精准提升理论与技术研究[J]. 北京林业大学学报, 41(5): 1-18. |
ZHANG H R, LEI X D, ZHANG C Y, et al., 2019. Research on theory and technology of forest quality evaluation and precision improvement[J]. Journal of Beijing Forestry University, 41(5): 1-18. | |
[40] | 张筱, 陈义堂, 杨秋菊, 等, 2021. 不同地形100 年生杉木人工林土壤理化性质及林下植被多样性差异分析[J]. 西南林业大学学报, 41(6): 60-70. |
ZHANG X, CHEN Y T, YANG Q J, et al., 2021. Differences of soil physicochemical properties and undergrowth vegetation diversity of 100-year-old Chinese fir plantations in different terrain[J]. Journal of Southwest Forestry University, 41(6): 60-70. | |
[41] | 张勇强, 李智超, 厚凌宇, 等, 2020. 林分密度对杉木人工林下物种多样性和土壤养分的影响[J]. 土壤学报, 57(1): 239-250. |
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