植物生态学报 ›› 2026, Vol. 50 ›› Issue (2): 400-416.DOI: 10.17521/cjpe.2024.0398 cstr: 32100.14.cjpe.2024.0398
张静1,2, 陈洁1,*(
), 李艳朋1, 盘李军3, 许涵1, 李意德1, 何海生3
收稿日期:2024-11-05
接受日期:2025-04-08
出版日期:2026-02-28
发布日期:2026-04-01
通讯作者:
*陈洁 (chenjiecaf@hotmail.com)基金资助:
ZHANG Jing1,2, CHEN Jie1,*(
), LI Yan-Peng1, PAN Li-Jun3, XU Han1, LI Yi-De1, HE Hai-Sheng3
Received:2024-11-05
Accepted:2025-04-08
Online:2026-02-28
Published:2026-04-01
Contact:
*CHEN Jie (chenjiecaf@hotmail.com)Supported by:摘要:
热带亚热带是我国人工林分布的重要区域, 明确该区域内典型人工林林分生物量现状及其影响因子有利于揭示人工林生产力的限制性因素, 为人工林经营管理提供理论指导。该研究以广东省佛山市云勇林场内由杉木(Cunninghamia lanceolata)纯林改造形成的针阔混交林为对象, 对比了恢复初期(8-16年)不同树种配置模式之间人工林植物各器官生物量以及总生物量的差异; 解析了不同树种配置模式下, 土壤理化性质和群落水平植物功能性状的变化; 分析了树种配置模式、土壤性质及植物性状对生物量变异的相对贡献及影响路径, 探讨了南亚热带人工林生物量变化的关键驱动因子。主要结果: 研究发现植物各器官生物量以及总生物量均随树种配置模式的变化而存在显著差异。树种配置模式主要通过调节植物叶片功能性状和土壤养分含量间接影响植物生物量, 其中叶片功能性状对树叶和树枝生物量的影响较大, 而土壤养分含量的差异是导致树干、树根以及总生物量变化的主要因子。具体地, 具有较高叶片氮磷比和叶片功能多样性的树种配置模式群落生物量较高。土壤总磷含量增加对群落生物量的增长具有显著的促进作用, 而土壤总钾含量过多却会抑制生物量的增长。该文初步比较了不同树种配置模式下, 叶片功能性状和土壤理化性质对南亚热带典型针阔混交人工林植被生物量的相对影响, 并解析了各器官及总生物量的关键影响因子, 为南亚热带人工林植被恢复、经营与管理提供了理论支撑。
张静, 陈洁, 李艳朋, 盘李军, 许涵, 李意德, 何海生. 南亚热带针阔混交人工林植物生物量比较及其影响因子分析. 植物生态学报, 2026, 50(2): 400-416. DOI: 10.17521/cjpe.2024.0398
ZHANG Jing, CHEN Jie, LI Yan-Peng, PAN Li-Jun, XU Han, LI Yi-De, HE Hai-Sheng. Comparison of plant biomass in conifer and broadleaf mixed artificial forests in south subtropical area and analyses of influential factors. Chinese Journal of Plant Ecology, 2026, 50(2): 400-416. DOI: 10.17521/cjpe.2024.0398
| 模式 Mode | 树种配置 Species composition | 修复年限 Recovery year (a) | 树高 Tree height (m) | 物种数 No. of species | 个体数 No. of individuals | 胸径 Diameter at breast height (cm) | 杉木个体数占比 Proportion of No. of Chinese fir individuals (%) |
|---|---|---|---|---|---|---|---|
| M1 | 米老排、桂南木莲、樟树、阴香、长芒杜英、枫香、盆架树 Mytilaria laosensis, Manglietia conifera, Cinnamomum camphora, Cinnamomum burmanni, Elaeocarpus rugosus, Liquidambar formosana, Winchia calophylla | 13 | 6.39 ± 0.65 | 15.00 ± 4.36 | 187.00 ± 44.31 | 8.15 ± 0.23 | 37.22 ± 7.59 |
| M2 | 观光木、降香黄檀、樟树、桂南木莲、非洲楝、红锥 Michelia odora, Dalbergia odorifera, Cinnamomum camphora, Mangletia glauca, Khaya senegalensis, Castanopsis hystrix | 9 | 6.93 ± 0.32 | 16.67 ± 0.58 | 130.00 ± 2.00 | 7.31 ± 0.24 | 51.62 ± 8.80 |
| M3 | 红锥、非洲楝、黧蒴锥、阴香、杨梅、山杜英、海南红豆 Castanopsis hystrix, Khaya senegalensis, Castanopsis fissa, Cinnamomum burmanni, Myrica rubra, Elaeocarpus sylvestris, Ormosia pinnata | 14 | 6.66 ± 0.67 | 12.67 ± 4.04 | 76.00 ± 23.00 | 8.12 ± 1.09 | 33.96 ± 10.30 |
| M4 | 红锥、非洲楝、黧蒴锥、阴香、红花荷、山杜英、木荷、壳菜果 Castanopsis hystrix, Khaya senegalensis, Castanopsis fissa, Cinnamomum burmanni, Rhodoleia championii, Elaeocarpus sylvestris, Schima superba, Mytilaria laosensis | 13 | 7.95 ± 0.33 | 15.33 ± 5.69 | 101.33 ± 25.58 | 10.31 ± 0.08 | 41.79 ± 5.54 |
| M5 | 人面子、格木、阴香、降香黄檀、醉香含笑、苦梓、任豆、铁刀木 Dracontomelon duperreanum, Erythrophleum fordii, Cinnamomum burmanni, Dalbergia odorifera, Michelia macclurei, Gmelina hainanensis, Zenia insignis, Cassia siamea | 13 | 8.53 ± 0.28 | 9.00 ± 0.00 | 88.00 ± 26.06 | 10.42 ± 0.80 | 47.32 ± 7.77 |
| M6 | 枫香、乌桕、喜树、黧蒴锥、楝叶吴萸、山杜英 Liquidambar formosana, Sapium sebiferum, Camptotheca acuminata, Castanopsis fissa, Evodia glabrifolia, Elaeocarpus sylvestris | 8 | 5.73 ± 0.12 | 14.67 ± 0.58 | 126.67 ± 34.70 | 6.63 ± 0.14 | 54.30 ± 1.96 |
| M7 | 凤凰木、西南木荷、醉香含笑、木荷、海南蒲桃、大花紫薇、红花羊蹄甲 Delonix regia, Schima wallichii, Michelia macclurei, Schima superba, Syzygium hainanense, Lagerstroemia speciosa, Bauhinia blakeana | 16 | 6.88 ± 0.06 | 7.33 ± 2.52 | 136.33 ± 27.61 | 9.51 ± 0.50 | 25.83 ± 2.59 |
| M8 | 枫香、观光木、醉香含笑、壳菜果、山杜英、黧蒴锥、阴香、格木 Liquidambar formosana, Tsoongiodendron odorum, Michelia macclurei, Mytilaria laosensis, Elaeocarpus sylvestris, Castanopsis fissa, Cinnamomum burmanni, Erythrophleum fordii | 15 | 7.88 ± 0.36 | 14.33 ± 2.08 | 262.33 ± 9.29 | 8.65 ± 0.58 | 19.57 ± 7.28 |
| M9 | 毛果青冈、樟树、阴香、香椿、木荷、红锥、醉香含笑 Cyclobalanopsis patelliformis, Cinnamomum camphora, Cinnamomum burmanni, Toona sinensis, Schima superba, Castanopsis hystrix, Michelia macclurei | 9 | 5.78 ± 0.13 | 13.33 ± 1.53 | 220.67 ± 37.69 | 6.79 ± 0.35 | 65.71 ± 3.36 |
| M10 | 铁刀木、黧蒴锥、樟树、格木、降香黄檀、醉香含笑、非洲楝、红锥、任豆、桂南木莲 Cassia siamea, Castanopsis fissa, Cinnamomum camphora, Erythrophleum fordii, Dalbergia odorifera, Michelia macclurei, Khaya senegalensis, Castanopsis hystrix, Zenia insignis, Mangletia glauca | 14 | 7.81 ± 0.04 | 19.33 ± 0.67 | 150.00 ± 1.53 | 12.23 ± 1.53 | 56.06 ± 5.05 |
| M11 | 红花荷、木棉、醉香含笑、盆架树、火焰树、朱槿 Rhodoleia championii, Bombax malabaricum, Michelia macclurei, Winchia calophylla, Spathodea campanulate, Hibiscus rosa-sinensis | 15 | 10.66 ± 1.03 | 9.67 ± 2.91 | 97.33 ± 29.87 | 5.43 ± 0.15 | 69.05 ± 8.26 |
表1 云勇林场不同树种配置模式的主要阔叶树种组成情况(平均值±标准误)
Table 1 Composition of main trees in different tree species configuration mode in Yunyong forest farm (mean ± SE)
| 模式 Mode | 树种配置 Species composition | 修复年限 Recovery year (a) | 树高 Tree height (m) | 物种数 No. of species | 个体数 No. of individuals | 胸径 Diameter at breast height (cm) | 杉木个体数占比 Proportion of No. of Chinese fir individuals (%) |
|---|---|---|---|---|---|---|---|
| M1 | 米老排、桂南木莲、樟树、阴香、长芒杜英、枫香、盆架树 Mytilaria laosensis, Manglietia conifera, Cinnamomum camphora, Cinnamomum burmanni, Elaeocarpus rugosus, Liquidambar formosana, Winchia calophylla | 13 | 6.39 ± 0.65 | 15.00 ± 4.36 | 187.00 ± 44.31 | 8.15 ± 0.23 | 37.22 ± 7.59 |
| M2 | 观光木、降香黄檀、樟树、桂南木莲、非洲楝、红锥 Michelia odora, Dalbergia odorifera, Cinnamomum camphora, Mangletia glauca, Khaya senegalensis, Castanopsis hystrix | 9 | 6.93 ± 0.32 | 16.67 ± 0.58 | 130.00 ± 2.00 | 7.31 ± 0.24 | 51.62 ± 8.80 |
| M3 | 红锥、非洲楝、黧蒴锥、阴香、杨梅、山杜英、海南红豆 Castanopsis hystrix, Khaya senegalensis, Castanopsis fissa, Cinnamomum burmanni, Myrica rubra, Elaeocarpus sylvestris, Ormosia pinnata | 14 | 6.66 ± 0.67 | 12.67 ± 4.04 | 76.00 ± 23.00 | 8.12 ± 1.09 | 33.96 ± 10.30 |
| M4 | 红锥、非洲楝、黧蒴锥、阴香、红花荷、山杜英、木荷、壳菜果 Castanopsis hystrix, Khaya senegalensis, Castanopsis fissa, Cinnamomum burmanni, Rhodoleia championii, Elaeocarpus sylvestris, Schima superba, Mytilaria laosensis | 13 | 7.95 ± 0.33 | 15.33 ± 5.69 | 101.33 ± 25.58 | 10.31 ± 0.08 | 41.79 ± 5.54 |
| M5 | 人面子、格木、阴香、降香黄檀、醉香含笑、苦梓、任豆、铁刀木 Dracontomelon duperreanum, Erythrophleum fordii, Cinnamomum burmanni, Dalbergia odorifera, Michelia macclurei, Gmelina hainanensis, Zenia insignis, Cassia siamea | 13 | 8.53 ± 0.28 | 9.00 ± 0.00 | 88.00 ± 26.06 | 10.42 ± 0.80 | 47.32 ± 7.77 |
| M6 | 枫香、乌桕、喜树、黧蒴锥、楝叶吴萸、山杜英 Liquidambar formosana, Sapium sebiferum, Camptotheca acuminata, Castanopsis fissa, Evodia glabrifolia, Elaeocarpus sylvestris | 8 | 5.73 ± 0.12 | 14.67 ± 0.58 | 126.67 ± 34.70 | 6.63 ± 0.14 | 54.30 ± 1.96 |
| M7 | 凤凰木、西南木荷、醉香含笑、木荷、海南蒲桃、大花紫薇、红花羊蹄甲 Delonix regia, Schima wallichii, Michelia macclurei, Schima superba, Syzygium hainanense, Lagerstroemia speciosa, Bauhinia blakeana | 16 | 6.88 ± 0.06 | 7.33 ± 2.52 | 136.33 ± 27.61 | 9.51 ± 0.50 | 25.83 ± 2.59 |
| M8 | 枫香、观光木、醉香含笑、壳菜果、山杜英、黧蒴锥、阴香、格木 Liquidambar formosana, Tsoongiodendron odorum, Michelia macclurei, Mytilaria laosensis, Elaeocarpus sylvestris, Castanopsis fissa, Cinnamomum burmanni, Erythrophleum fordii | 15 | 7.88 ± 0.36 | 14.33 ± 2.08 | 262.33 ± 9.29 | 8.65 ± 0.58 | 19.57 ± 7.28 |
| M9 | 毛果青冈、樟树、阴香、香椿、木荷、红锥、醉香含笑 Cyclobalanopsis patelliformis, Cinnamomum camphora, Cinnamomum burmanni, Toona sinensis, Schima superba, Castanopsis hystrix, Michelia macclurei | 9 | 5.78 ± 0.13 | 13.33 ± 1.53 | 220.67 ± 37.69 | 6.79 ± 0.35 | 65.71 ± 3.36 |
| M10 | 铁刀木、黧蒴锥、樟树、格木、降香黄檀、醉香含笑、非洲楝、红锥、任豆、桂南木莲 Cassia siamea, Castanopsis fissa, Cinnamomum camphora, Erythrophleum fordii, Dalbergia odorifera, Michelia macclurei, Khaya senegalensis, Castanopsis hystrix, Zenia insignis, Mangletia glauca | 14 | 7.81 ± 0.04 | 19.33 ± 0.67 | 150.00 ± 1.53 | 12.23 ± 1.53 | 56.06 ± 5.05 |
| M11 | 红花荷、木棉、醉香含笑、盆架树、火焰树、朱槿 Rhodoleia championii, Bombax malabaricum, Michelia macclurei, Winchia calophylla, Spathodea campanulate, Hibiscus rosa-sinensis | 15 | 10.66 ± 1.03 | 9.67 ± 2.91 | 97.33 ± 29.87 | 5.43 ± 0.15 | 69.05 ± 8.26 |
| 树种 Tree species | 树干生物量 Stem biomass (kg) | 树枝生物量 Branch biomass (kg) | 树叶生物量 Leaf biomass (kg) | 树根生物量 Root biomass (kg) |
|---|---|---|---|---|
| 杉木 Cunninghamia lanceolata | W = 0.0556D2.3579 | W = 0.0198D2.1333 | W = 0.0070D1.5090 | W = 0.3366D1.1952 |
| 木荷 Schima superba | W = 0.0310D2.7140 | W = 0.2120D1.6440 | W = 0.0181D1.9945 | W = 0.0310D2.2582 |
| 黧蒴锥 Castanopsis fissa | W = 0.153D2.2007 | W = 0.0117D2.7605 | W = 0.0133D2.3320 | W = 0.0255D2.3650 |
| 山杜英 Elaeocarpus sylvestris | W = 0.0367D2.6863 | W = 0.0058D3.1688 | W = 0.0227D1.8112 | W = 0.0175D2.5561 |
| 樟树 Cinnamomum camphora | W = 0.119122D2.1521 | W = 0.015418D2.7002 | W = 0.095227D1.4724 | W = 0.157486D1.7732 |
| 阔叶树 Broadleaf forest | W = 0.1098D2.2797 | W = 0.0130D2.6923 | W = 0.0144D2.2200 | W = 0.0422D2.2333 |
表2 植物各器官生物量生长方程
Table 2 Biomass growth equation of different plant organs
| 树种 Tree species | 树干生物量 Stem biomass (kg) | 树枝生物量 Branch biomass (kg) | 树叶生物量 Leaf biomass (kg) | 树根生物量 Root biomass (kg) |
|---|---|---|---|---|
| 杉木 Cunninghamia lanceolata | W = 0.0556D2.3579 | W = 0.0198D2.1333 | W = 0.0070D1.5090 | W = 0.3366D1.1952 |
| 木荷 Schima superba | W = 0.0310D2.7140 | W = 0.2120D1.6440 | W = 0.0181D1.9945 | W = 0.0310D2.2582 |
| 黧蒴锥 Castanopsis fissa | W = 0.153D2.2007 | W = 0.0117D2.7605 | W = 0.0133D2.3320 | W = 0.0255D2.3650 |
| 山杜英 Elaeocarpus sylvestris | W = 0.0367D2.6863 | W = 0.0058D3.1688 | W = 0.0227D1.8112 | W = 0.0175D2.5561 |
| 樟树 Cinnamomum camphora | W = 0.119122D2.1521 | W = 0.015418D2.7002 | W = 0.095227D1.4724 | W = 0.157486D1.7732 |
| 阔叶树 Broadleaf forest | W = 0.1098D2.2797 | W = 0.0130D2.6923 | W = 0.0144D2.2200 | W = 0.0422D2.2333 |
图1 植被恢复初期不同模式之间生物量的差异(平均值±标准误)。A, 树干生物量。B, 树枝生物量。C, 树叶生物量。D, 树根生物量。E, 总生物量。F, 各器官生物量比较。图中F代表单因素方差分析统计值, p代表显著性水平。不同小写字母表示差异显著(p < 0.05)。模式编号信息见表1。
Fig. 1 Differences in biomass among different modes at the initial stage of vegetation recovery (mean ± SE). A, Trunk biomass. B, Branch biomass. C, Foliage biomass. D, Root biomass. E, Total biomass. F, Comparison between the biomass of each organ. F mean the statistic of One-Way ANOVA and p indicate the significant level. Different lowercase letters mean significant differences among different models at p < 0.05. The information for the number of modes is displayed in Table 1.
图2 植被恢复初期不同模式之间土壤养分的差异(平均值±标准误)。不同小写字母表示不同模式间差异显著(p < 0.05)。模式编号信息见表1。SOM, 土壤有机质含量; TK, 总钾含量; TN, 总氮含量; TP, 总磷含量。
Fig. 2 Differences in soil nutrients among different modes at the initial stage of vegetation recovery (mean ± SE). Different lowercase letters mean significant differences among different models at p < 0.05. See Table 1 for model ID information. SOM, soil organic matter content; TK, total potassium content; TN, total nitrogen content; TP, total phosphorus content.
图3 植被恢复初期不同模式之间植物群落水平功能多样性与功能性状的差异(平均值±标准误)。B-D中数值均为群落水平性状均值, 计算群落水平均值的时候我们对功能性状进行了标准化。不同小写字母表示不同模式间差异显著(p < 0.05)。模式编号信息见表1。FDis, 功能离散度; LDMC, 叶干物质含量; LNP, 叶片氮磷比; SLA, 比叶面积。
Fig. 3 Differences in plant functional diversity and functional traits among different modes at the initial stage of vegetation recovery (mean ± SE). Data in B-D are mean values of community level trait. We have standardized the plant functional traits when calculating the community-weighted mean values. Different lowercase letters mean significant differences among different models at p < 0.05. See Table 1 for model ID information. FDis, functional dispersion; LDMC, leaf dry matter content; LNP, leaf N:P; SLA, specific leaf area.
图4 各器官及总生物量变异的方差分解。FDis, 功能离散度; LNC, 叶片碳氮比; LNP, 叶片氮磷比; TK, 土壤总钾含量; TP, 土壤总磷含量。
Fig. 4 Variation partitioning of biomass of each organ and the total plant. FDis, functional dispersion; LNC, leaf C:N; LNP, leaf N:P; TK, soil total potassium content; TP, soil total phosphorus content.
图5 路径分析结果检验树种配置模式、土壤理化性状及叶片功能性状对生物量的直接和间接影响。红色和蓝色箭头分别代表正的和负的路径, 箭头粗细与路径影响大小成正比, 路径的显著性表示为: *, p < 0.05; **, p < 0.01, ***, p < 0.001。R2为生物量变异的解释率。K, 钾; N, 氮; P, 磷。
Fig. 5 Path analyses illustrating the direct and indirect effects of tree species configuration modes, soil physicochemical properties and leaf functional traits on biomass. Red and blue arrows indicates positive and negative paths, and the width of the arrows is in proportion to the effect strength of the paths, with the significant levels marked as follows: *, p < 0.05; **, p < 0.01, ***, p < 0.001. R2 donates the explained variances of the target biomass. K, potassium; N, nitrogen; P, phosphorus.
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