• Article
  • | |
  • Metrics
  • |
  • Reference [41]
  • | | | |
  • Comments
    Abstract:

    Abstract:[Objective]This study explored the spatiotemporal variation patterns of vegetation during the dry season and their response to drought resistance under different ecological restoration modes, aiming to provide fundamental data and theoretical support for vegetation ecological restoration in the dry-hot valley region. [Methods] The study focused on three types of restoration modes: an artificially constructed arbor-shrub-grass stereoscopic restoration terrace (ASH) that had been restored for three years, naturally restored land post artificial terrace development (NET), and naturally restored shrub-grassland (SG), with degraded land (DG) as a control. Fixed sample plots were established, and a combination of vegetation community surveys, drone monitoring, and microclimate recording was used to compare species composition, species diversity, vegetation coverage, and microclimate characteristics between different plots at the beginning and end of the dry season. [Results](1) Species Diversity: During the dry season, ASH exhibited minimal changes in species composition, high species diversity, and no obvious dominant species. NET showed high species evenness but relatively low species richness. SG experienced significant changes in species composition, with both species richness and evenness showing significant declines by the end of the season. (2) Vegetation Coverage: At the beginning of the dry season, the total fractional vegetation cover (FVC) ranked as ASH > NET > SG > DG, and this pattern remained consistent at the end of the dry season. The degree of change in FVC between the beginning and end of the dry season was greatest in NET, followed by ASH, with DG showing the least change. ASH had significantly higher coverage across all vegetation layers compared to other plots. (3) Microclimate Regulation: Microclimate Regulation: During the early and late dry seasons, the ASH vegetation type exhibits lower temperatures and higher humidity characteristics compared to other vegetation types. [Conclusion]The arbor-shrub-grass stereoscopic vegetation structure demonstrates significant advantages in regulating microclimate and maintaining ecological stability, making it suitable for promotion in regions with extreme climatic conditions, such as dry-hot valleys.

    Reference
    [1] 周跃. 元谋干热河谷植被的生态及其成因[J]. 生态学杂志, 1987, (05): 39-43. [Zhou Yue. Ecological Features and Cause of Formation of Dry-Hot Valley Vegetation in Yuanmou[J]. Journal of Ecology, 1987, (05): 39-43. ]
    [2] Hartmann C L A D L, Tank A M G K, Rusticucci M, et al. Observa-tions: Atmosphere and surface Climate Change 2013 the Physical Science Basis: Working Group I Contribution to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change[M]. Cambridge: Cambridge University Press, 2013.
    [3] Wang J, Guan Y, Wu L, et al. Changing lengths of the four seasons by global warming[J]. Geophysical Research Letters, 2021, 48(6): e2020GL091753.
    [4] 夏建阳, 鲁芮伶, 朱辰等. 陆地生态系统过程对气候变暖的响应与适应[J]. 植物生态学报, 2020, 44(05): 494-514. [Xia Jianyang, Lu Ruiling, Zhu Chen, et al. Response and adaptation of terrestrial ecosystem processes to climate warming[J]. Chinese Journal of Plant Ecology, 2020, 44(05): 494-514. ]
    [5] K?rner C, Basler D. Phenology under global warming[J]. Science, 2010, 327(5972): 1461-1462.
    [6] Duan, H., Y. Qi, W. Kang, et al. Seasonal Variation of Vegetation and Its Spatiotemporal Response to Climatic Factors in the Qilian Mountains, China[J]. Sustainability. 2022, 14.
    [7] 纪中华, 潘志贤, 沙毓沧, 等. 金沙江干热河谷生态恢复的典型模式[J]. 农业环境科学学报, 2006, 25(增刊): 716-720. [Ji Zhonghua, Pan Zhixian, Sha Yucang, et al. Model construction of ecological restoration in arid hot valley of Jinsha River[J]. Journal of Agro-Environment Science, 2006, 25 (Supplement): 716-720. ]
    [8] Kim K, Ming-Cheng W, Ranjitkar S, et al. Using leaf area index(LAI) to assess vegetation response to drought in Yunnan province of China[J]. Journal of Mountain Science, 2017, 14(9):10.
    [9] 韩煜,?赵伟,?张淇翔,?等.?不同植被恢复模式下矿山废弃地的恢复效果研究[J]. 水土保持研究,?2018,?25(1):?120?125. [Han Yu, Zhao Wei, Zhang Qixiang, et al. Effects of different vegetation patterns on ecological restoration in mining wasteland[J]. Research of Soil and Water Conservation, 2018, 25(1): 120?125. ]
    [10] 杨满元, 杨宁, 欧阳美娟, 等. 紫色土丘陵坡地土壤水溶性有机碳对植被恢复的响应及其与土壤因子的关系[J]. 草地学报, 2019, 27(03): 784-788. [Yang Manyuan, Yang Ning, Ouyang Meijuan, et al. Response of Soil Dissolved rganic Carbon to Re-vegetation and the Relationships between It and Soil Factors in Hillslope Land with Purple Soils[J]. Acta Agrestia Sinica, 2019, 27(03): 784-788. ]
    [11] 王礼先. 我国荒漠化土地成因及其防治对策[J]. 世界林业研究, 2000, 13(6): 32-37. [Wang, Lixian. Some Opinions on the Project of Desertification Combating in China[J]. World Forestry Research, 2000, 13(6): 32-37. ]
    [12] 胡建忠. 西部地区植被建设的主要途径探讨[J]. 水土保持学报, 2003, (03): 121-123. [Hu Jianzhong. Discussion on main approaches for vegetation construction in western region of China[J]. Journal of Soil and Water Conservation, 2003, (03): 121-123. ]
    [13] 杜华栋, 曹祎晨, 聂文杰, 等. 黄土沟壑区采煤塌陷地人工与自然植被恢复下土壤性质演变特征[J]. 煤炭学报, 2021, 46(05): 1641-1649. [Du Huadong, Cao Yichen, Nie Wenjie, et al. Evolution of soil properties under artificial and natural revegetation in loess gully coal mining subsidence area[J]. Journal of China Coal Society, 2021, 46(05): 1641-1649. ]
    [14] Condit R., Engelbrecht B.M.., Pino D., Perez R, Turner B. L. Species distributions inresponse to individual soil nutrients and seasonal drought across a community of tropicaltrees[I]. Proceedings ofthe National Academy ofSciences, 2013, 110(13): 5064-5068.
    [15] 马焕成, 曾小红. 干旱和干热河谷及其植被恢复[J]. 西南林学院学报, 2005, (04): 52-55. [Ma Huancheng, Zeng Xiaohong. Vegetation restoration in the dry and dry-hot valley areas[J]. Journal of Southwest Forestry University, 2005, (04): 52-55. ]
    [16] 邵方丽. 干热河谷典型地区植被恢复研究综述[J]. 林业建设, 2017, (01): 22-27. [Shao Fangli. Research overview on vegetation restoration in typical area of dry-hot valley[J]. Forestry Construction, 2017, (01): 22-27. ]
    [17] 窦沛彤, 刘方炎, 高成杰, 等. 红河干热河谷不同植物光合作用及抗逆生理特性[J]. 东北林业大学学报, 2021, 49(07): 56-60+65. [Dou Peitong, Liu Fangyan, Gao Chengjie, et al. Photosynthetic physiological characteristics and adaptation to dry and hot environment of different plants in the dry-hot valley of Honghe[J]. Journal of Northeast Forestry University, 2021, 49(07): 56-60+65. ]
    [18] 马克平, 刘玉明. 生物群落多样性的测度方法Ⅰα多样性的测度方法 (下)[J]. 生物多样性, 1994, 2(4): 231-239. [Ma Keping, Liu Yuming. Methods of Measuring Biodiversity in Biological Communities I: Methods of Measuring Alpha Diversity (Part II)[J]. Biodiversity Science, 1994, 2(4): 231-239. ]
    [19] ROUSE JR JW, HAAS R H, SCHELL J A, et al. Monitoring vegetation systems in the Great Plains with ERTS[J]. NASA Special Publication, 1974, 351: 309-317.
    [20] 朱源, 彭光雄, 王志, 等. 西藏林芝地区近30a来的NDVI变化趋势研究[J]. 西北林学院学报, 2011, 26(04): 69-74. [Zhu Yuan, Peng Guangxiong, Wang Zhi, et al. The trend of NDVI during the past 30 years in Linzhi Area, Tibet Autonomous Region[J]. Journal of Northwest Forestry University, 2011, 26(04): 69-74. ]
    [21] 陈晋, 陈云浩, 何春阳, 等. 基于土地覆盖分类的植被覆盖率估算亚像元模型与应用[J]. 遥感学报, 2001, (06): 416-422+481. [Chen Jin, Chen Yunhao, He Chunyang, et al. Sub-pixel model for vegetation fraction estimation based on land cover classification[J]. National Remote Sensing Bulletin, 2001, (06): 416-422+481. ]
    [22] 李苗苗, 吴炳方, 颜长珍, 等. 密云水库上游植被覆盖度的遥感估算[J]. 资源科学, 2004, (04): 153-159. [Li Miaomiao, Wu Bingfang, Yan Changzhen, et al. Estimation of vegetation fraction in the upper basin of Miyun reservoir by remote sensing[J]. Resource Science, 2004, (04): 153-159. ]
    [23] 李晶, 闫星光, 闫萧萧, 等. 基于GEE 云平台的黄河流域植被覆盖度时空变化特征[J]. 煤炭学报, 2021, 46(5): 1439-1450. [Li Jing, Yan Xingguang, Yan Xiaoxiao, et al. Temporal and spatial variation study of vegetation coverage in the Yellow River Basin based on GEE cloud platform[J]. Journal of China Coal Society, 2021, 46(5): 1439-1450. ]
    [24] 陆荫, 张强, 李晓红, 等. 黄河流域甘肃段植被覆盖度时空变化及对气候因子的响应[J]. 水土保持通报, 2020, 40(2): 232-238. [Lu Yin, Zhang Qiang, Li Xiaohong, et al. Temporal and spatial variation of vegetation coverage and its response to climate factors in Gansu section of Yellow River Basin[J]. Bulletin of Soil and Water Conservation, 2020, 40(2): 232-238. ]
    [25] 徐建华. 澜沧县茶产业发展的现状与对策[J]. 绿色科技, 2014, (12): 40-41. [Xu Jianhua. Current Status and Strategies for the Development of the Tea Industry in Lancang County[J]. Journal of Green Science and Technology, 2014, (12): 40-41. ]
    [26] 陈登魁, 马超, 王夏冰, 等. 1982—2015年可可西里NDVI变化特征及其气候响应[J]. 干旱区研究, 2018, 35(06): 1410-1417. [Chen Dengkui, Ma Chao, Wang Xiabing, et al. Variation of NDVl and its response to climate change in Hoh Xil during the period of 1982–2015[J]. Arid Zone Research, 2018, 35(06): 1410-1417. ]
    [27] 邵天一, 周志翔, 王鹏程, 等. 宜昌城区绿地景观格局与大气污染的关系[J]. 应用生态学报, 2004, (04): 691-696. [Shao Tianyi, Zhou Zhixiang, Wang Pengcheng, et al. Relationship between urban green-land landscape patterns and air pollution in the central district of Yichang city[J]. Chinese Journal of Applied Ecology, 2004, (04): 691-696. ]
    [28] 卫伟, 余韵, 贾福岩, 等. 微地形改造的生态环境效应研究进展[J]. 生态学报, 2013, 33(20): 6462-6469. [Wei Wei, Yu Yun, Jia Fuyan, et al. Research progress in the ecological effects of micro-landform modification[J]. Acta Ecologica Sinica, 2013, 33(20): 6462-6469. ]
    [29] KUMAR A, JHARIYA M K, YADAV D K, et al. Vegetation dynamics in Bishrampur collieries of northern Chhattisgarh, India: eco-restoration and management perspectives[D]. Environmental Monitoring and Assessment, 2017, 189(8): 189-371.
    [30] 徐海鹏, 于成, 舒朝成, 等. 高原鼠兔干扰对高寒草甸植物群落多样性和稳定性的影响[J]. 草业学报, 2019, 28(5): 90-99. [Xu Haipeng, Yu Cheng, Shu Zhaocheng, et al. The effect of plateau pika disturbance on plant community diversity and stability in an alpine meadow[J]. Acta Prataculturae Sinica, 2019, 28(5): 90-99. ]
    [31] 潘玉梅, 唐赛春, 李象钦, 等. 氮添加对石漠化区飞机草与本地植物的生长和竞争的影响[J/OL]. 广西科学, 2024, 1-16. [Pan Yumei, Tang Saichun, Li Xiangqin, et al. Effects of Nitrogen Addition on the Growth and Competition of Chromolaena odoratum and Native Plants in Rocky Desertification Area[J/OL]. Guangxi Science, 2024, 1-16. ]
    [32] 张永香. 祁连山青海云杉对20世纪50年代以来气候变化的响应分析[D]. 北京:中国科学院青藏高原研究所, 2009. [Zhang Yongxiang. Response Analysis of Qilian Mountain Qinghai Spruce to Climate Change since the 1950s[D]. Beijing: Institute of Tibetan Plateau Research, Chinese Academy of Sciences, 2009. ]
    [33] RENNE R R, BRADFORD JB, BURKE IC, et al. Soil textureand precipitation seasonality influence plant community structurein North American temperate shrub steppe[J]. Ecology, 2019, 100: (11).
    [34] 孙泽, 何真敏, 高中腾, 等. 元谋干热河谷不同植被类型对生物多样性的影响[J]. 东北林业大学学报, 2024, 52(02): 37-42+51. [Sun Ze, He Zhenmin, Gao Zhongteng, et al. Effects of Different Vegetation Types on Biodiversity in the Yuanmou Dry-Hot Valley[J]. Journal of Northeast Forestry University, 2024, 52(02): 37-42 + 51. ]
    [35] 陆志星, 王智慧, 韦铄星, 等. 桂西北喀斯特地区不同植被恢复模式植物群落结构与多样性特征[J]. 中南林业科技大学学报, 2022, 42(09): 115-126. [Lu Zhixing, Wang Zhihui, Wei Shuoxing, et al. Plant community structure and diversity characteristics of different vegetation restoration modes in the karst region of northwest Guangxi, China[J]. Journal of Central South University of Forestry & Technology, 2022, 42(09): 115-126. ]
    [36] 欧朝蓉, 朱清科, 孙永玉. 元谋干热河谷旱季植被覆盖度的时空异质性[J]. 林业科学, 2017, 53(11): 20-28. [Ou Zhaorong, Zhu Qingke, Sun Yongyu. Temporal and spatial heterogeneity of the vegetation coverage in the dry season in Yuanmou dry-hot valley[J]. Scientia Silvae Sinicae, 2017, 53(11): 20-28. ]
    [37] 范舒欣, 李坤, 张梦园, 等. 城市居住区绿地小微尺度下垫面构成对环境微气候的影响——以北京地区为例[J]. 北京林业大学学报, 2021, 43(10): 100-109. [Fan Shuxin, Li Kun, Zhang Mengyuan, et al. Effects of micro scale underlying surface type and pattern of urban residential area on microclimate: taking Beijing as a case study[J]. Journal of Beijing Forestry University, 2021, 43(10): 100-109. ]
    [38] 卢永飞, 喻理飞, 勾伟. 喀斯特高原峡谷区不同植被恢复阶段小气候变化特征[J]. 林业实用技术, 2014, (07): 14-17. [Lu Yongfei, Yu Lifei, Gou Wei. Characteristics of Microclimatic Changes at Different Vegetation Restoration Stages in Karst Plateau Canyon Areas[J]. Forest Science and Technology, 2014, (07): 14-17. ]
    [39] 向悟生, 李先琨, 吕仕洪, 等. 广西岩溶植被演替过程中主要小气候因子日变化特征[J]. 生态科学, 2004, 23(1): 25-31. [Xiang Wusheng, Li Xiankun, Lu Shihong, et al. The daily dynamics of primary microclimate factors in the different successional of karst vegetation in Guangxi Pmine[J]. Ecological Science, 2004, 23(1): 25-31. ]
    [40] 司建华, 冯起, 张小由, 等. 荒漠河岸林胡杨和柽柳群落小气候特征研究[J]. 中国沙漠, 2005, (05): 668-674. [Si Jianhua, Feng Qi, Zhang Xiaoyou, et al. Features of microclimate in Populus euphratica and Tamarix ramosissima communities in desert riparian forest[J]. Journal of Desert Research, 2005, (05): 668-674. ]
    [41] 李坤, 李传荣, 许景伟, 等. 3种典型道路景观林对诸城市夏季小气候条件的影响[J]. 生态环境学报, 2018, 27(06): 1060-1066. [Li Kun, Li Chuanrong, Xu Jingwei, et al. Effect of three typical road landscape forests on microclimate under summer weather in Zhucheng City[J]. Ecology and Environmental Sciences, 2018, 27(06): 1060-1066.
    Related
    Cited by
Get Citation
Share
Article Metrics
  • Abstract:13
  • PDF: 0
  • HTML: 0
  • Cited by: 0
History
  • Received:October 15,2024
  • Revised:March 17,2025
  • Adopted:March 17,2025