Forest and Grassland Resources Research >
Characteristics of Seed Rain and Soil Seed Bank in Broad Leaf and Chinese Fir Mixed Forest in Wuchao Mountain
Received date: 2022-05-26
Revised date: 2022-06-20
Online published: 2022-10-13
In order to explore the succession mechanism of Chinese fir forests,three 40 m×40 m mixed fir and broad-leaved forests were set up in blocks with similar habitats,such as altitude,slope and aspect,in the mixed forest of fir and broadleaf that have been in natural succession for about 30 years in Wuchao Mountain,Hangzhou.In the sample plot,a seed rain collector was arranged in the sample plot for two years of collection,and the litter layer,0~5 cm humus layer and 5~10 cm soil layer were collected in a sampling area of 0.20 m×0.20 m,and then bagged and marked.75 samples were taken from each plot,in a total of 450 samples,and the seed germination experiment was carried out.Our results showed that there were nine species in the seed rain,of which Cunninghania lanceolata (seed rain density 12.91 seeds/m2)and Elaeocarpus(seed rain density 7.60 seeds/m2)were the main components,accounting for 94.16% of the total.The duration of C.lanceolata seed dispersal was 70 months,with two peaks in July and October,respectively.The duration of seed dispersal of Elaeocarpus was 4 months,with a peak in November to December.Seed of C.lanceolata and Elaeocarpus were also the main species in the soil seed bank.C.lanceolata seeds were mainly stored in the litter layer.In contrast,Elaeocarpus seeds were mainly stored in the 0~5cm soil layer.The seed density and germination rate of Elaeocarpus were 2~5 times higher than those of C.lanceolata.Moreover,the composition of non-dominant species in soil seed bank varied greatly from year to year.The retention of seeds in the litter layer resulted in low seed density in the C.lanceolata forest soil,which was the main reason for the difficulty of the natural regeneration of C.lanceolata.The results indicated that,broad-leaved species could regenerate via seeds in natural succession.
Key words: Cunninghania lanceolata; Elaeocarpus glabripetalus; seed rain; seed bank
Jiejie JIAO , Linghuan LI , Jianmin WANG , Jiejie SUN , Chuping WU , Liangjin YAO , Zhigao WANG , Weigao YUAN . Characteristics of Seed Rain and Soil Seed Bank in Broad Leaf and Chinese Fir Mixed Forest in Wuchao Mountain[J]. Forest and Grassland Resources Research, 2022 , 0(4) : 28 -35 . DOI: 10.13466/j.cnki.lyzygl.2022.04.005
| [1] | 国家林业和草原局. 中国森林资源报告(2014-2018)[M]. 北京: 中国林业出版社, 2019. |
| [2] | 朱晨曦, 刘志刚, 于洋洋, 等. 杉木人工林种子雨组成和季节动态[J]. 应用生态学报, 2018, 29(5):1515-1522. |
| [3] | 吴雁南. 浙江省几种弃管杉木林的群落特征比较研究[D]. 金华: 浙江师范大学, 2021. |
| [4] | 于贵瑞. 森林生态系统过程与变化[M]. 北京: 高等教育出版社, 2019. |
| [5] | Araújo-Santos L, Morante-Filho J C, Oliveira S, et al. Seed rain in cocoa agroforests is induced by effects of forest loss on frugivorous birds and management intensity[J/OL]. Agriculture,Ecosystems & Environment,(2021-02-10)[2021-03-15]. https://doi.org/10.1016/j.agee. |
| [6] | 占玉芳, 马力, 滕玉风, 等. 河西走廊沙漠人工植被区土壤种子库特征研究[J]. 生态学报, 2022, 42(3):1-13. |
| [7] | Adjalla C, Tosso F, Salako K V, et al. Soil seed bank characteristics along a gradient of past human disturbances in a tropical semi-deciduous forest:Insights for forest management[J/OL]. Forest Ecology and Management,(2022-01-05)[2022-04-03]. https://doi.org/10.1016/j.foreco. |
| [8] | Wang Shulin, Hou Fujiang. Seed bank of live stock dung in the Qilian Mountain Grassland:A potential resource for vegetation recovery[J]. Range Land Ecology & Management. 2021, 78:90-99. |
| [9] | 杜彦君, 马克平. 森林种子雨研究进展与展望[J]. 生物多样性, 2012, 20(1):94-107. |
| [10] | 金超, 吴初平, 丁易, 等. 午潮山常绿次生阔叶林主要木本植物功能群及其演替特征[J]. 生态学报, 2021, 41(8):3053-3066. |
| [11] | 高润梅, 石晓东, 郭跃东, 等. 文峪河上游华北落叶松林的种子雨、种子库与幼苗更新[J]. 生态学报, 2015, 35(11):3588-3597. |
| [12] | Douh C, Daïnou K, Loumeto J J, et al. Soil seed bank characteristics in two central African forest types and implications for forest restoration[J]. Forest Ecology and Management. 2018, 409:766-776. |
| [13] | 卢彦磊, 张文辉, 杨斌, 等. 秦岭中段不同坡向锐齿栎种子雨、土壤种子库与幼苗更新[J]. 应用生态学报, 2019, 52(6):1965-1973. |
| [14] | 雷霄. 浙江天童常绿阔叶林不同传播方式物种种子雨时空分布特征[D]. 上海: 华东师范大学, 2014. |
| [15] | 黄红兰, 张露, 廖承开. 毛红椿天然林种子雨、种子库与天然更新[J]. 应用生态学报, 2012, 23(4):972-978. |
| [16] | 郭亚亚, 王树林, 车昭碧, 等. 132种植物种子大小、生活型、传播方式的关系[J]. 石河子大学学报:自然科学版, 2020, 38(1):83-90. |
| [17] | 南歌. 千岛湖库区马尾松林内种子雨和土壤种子库组成及动态[D]. 金华: 浙江师范大学, 2017. |
| [18] | Zou Chaobo, Martini F, Xia Shangwen, et al. Elevation and micro environmental conditions directly and indirectly influence forests'soil seed bank communities[J/OL]. Global Ecology and Conservation,(2021-01-05)[2022-03-10]. https://doi.org/10.1016/j.gecco. |
| [19] | 程福山, 周末, 吴蒙嘉, 等. 云冷杉针阔混交林枫桦种子雨时空分布及种子萌发特性研究[J]. 北京林业大学学报, 2020, 42(12):32-39. |
| [20] | Zhang Haonan, Chen Shuifei, Xia Xin, et al. The competitive mechanism between post-abandonment Chinese fir plantations and rehabilitated natural secondary forest species under an in situ conservation policy[J/OL]. Forest Ecology and Management,(2021-12-20)[2022-04-03]. https://doi.org/10.1016/j.foreco. |
| [21] | 冯倩倩, 周梅, 赵鹏武, 等. 大兴安岭南段不同林龄白桦种子雨与地表种子库研究[J]. 林业资源管理, 2019(4):74-79. |
| [22] | 罗超, 郭小平, 冯昶栋, 等. 乌海周边土壤种子库特征及其与地上植被和土壤因子的关系[J]. 草业学报, 2021, 30(11):13-28. |
/
| 〈 |
|
〉 |