欢迎访问中国科学院大学学报,今天是
环境科学与地理学

亚洲小车蝗的多尺度分布格局

  • 李尧 ,
  • 张娜
展开
  • 1. 中国科学院大学资源与环境学院, 北京 101408;
    2. 中国科学院怀柔生态环境综合观测研究站, 北京 101408

收稿日期: 2016-05-03

  修回日期: 2016-05-19

  网络出版日期: 2017-05-15

基金资助

国家自然科学基金(31270512)资助

Multi-scale spatial distributions of Oedaleus decorus asiaticus

  • LI Yao ,
  • ZHANG Na
Expand
  • 1. College of Resources and Environment, University of Chinese Academy of Sciences, Beijing 101408, China;
    2. Huairou Eco-Environmental Observatory, Chinese Academy of Sciences, Beijing 101408, China

Received date: 2016-05-03

  Revised date: 2016-05-19

  Online published: 2017-05-15

摘要

探讨亚洲小车蝗的空间分布,以及在不同尺度上影响其分布的生境因子。基于在内蒙古锡林郭勒盟镶黄旗敖包音高勒调查和实测的亚洲小车蝗密度与生境条件数据,获得研究区蝗虫生境适宜性评分值(S值)的空间分布图。对整个研究区的S值和相关生境变量分别进行Morans' I空间自相关分析、融合Moran's I空间自相关尺度图的尺度方差分析、小波分析、或空隙度分析,以识别其等级结构和特征尺度。结果表明,亚洲小车蝗在<0.3 km、<0.7~1.0 km和<1.9 km这3个尺度域上出现斑块化分布。这是不同尺度上相关生境因子共同作用的结果。植被类型和植被盖度对蝗虫在这3个尺度域上的分布均有影响;坡度、坡向和地形湿度指数对蝗虫在中小尺度域上的分布有影响;高程对蝗虫在中大尺度域上的分布有影响;土壤沙粒含量、pH、有机质含量和植物叶片含氮量对蝗虫在中尺度域上的分布有影响。

本文引用格式

李尧 , 张娜 . 亚洲小车蝗的多尺度分布格局[J]. 中国科学院大学学报, 2017 , 34(3) : 329 -341 . DOI: 10.7523/j.issn.2095-6134.2017.03.007

Abstract

This study discusses the spatial distributions of Oedaleus decorus asiaticus (O.d. asiaticus) and the habitat factors which are responsible for the spatial distributions of O. d. asiaticus at different scales. Using the field survey data of O. d. asiaticus density and habitat conditions in Aobaoyingaole village, Xianghuangqi County of Xilingol League, Inner Mongolia, China, we obtained the spatial distribution of grasshopper habitat suitability value (S) within the study area. Then we carried out the spatial autocorrelation analysis of Moran's I, scale variance analysis coupled with Moran's I scalogram, wavelet analysis, or lacunarity analysis to detect the spatial patterns of S value and other related habitat variables. The results showed that O. d. asiaticus exhibited patchy distributions within the three scale domains: <0.3 km, <0.7~1.0 km, and <1.9 km, which might result from the combined effects of many habitat factors at different scales. Vegetation type and vegetation coverage were responsible for the distributions of grasshopper individuals within all the three scale domains; slope, aspect, and topographic wetness index were responsible for the distributions within the moderate and small scale domains; elevation was responsible for the distributions within the large and moderate scale domains; and soil sand content, soil pH value, soil organic matter content, and leaf nitrogen content were responsible for the distribution within the moderate scale domain.

参考文献

[1] Nee S, May R M. Dynamics of metapopulations: habitat destruction and competitive coexistence[J]. Journal of Animal Ecology, 1992, 61(1): 37-40.
[2] 刘任涛, 毕润成, 闫桂琴. 复合种群生态学研究现状与展望[J]. 山西师范大学学报(自然科学版), 2006, 20(3): 56-60.
[3] Tilman D, May R M, Lehman C L, et al. Habitat destruction and the extinction debt[J]. Nature, 1994, 371(6492):65-66.
[4] 赵成章, 李丽丽, 王大为, 等. 黑河上游天然草地蝗虫空间异质性与分布格局[J]. 生态学报, 2012, 32(13): 4 166-4 172.
[5] 张红艳, 张娜, 陈晓燕. 内蒙古镶黄旗草地蝗虫潜在发生可能性评价[J]. 应用生态学报, 2012, 23(1):223-234.
[6] Zhang N, Jing Y C, Liu C Y, et al. A cellular automaton model for grasshopper population dynamics in Inner Mongolia steppe habitats[J]. Ecological Modelling,2016, 329: 5-17.
[7] 张军霞, 赵成章, 殷翠琴,等. 黑河上游天然草地亚洲小车蝗蝗蝻与成虫多度分布与地形关系的GAM分析[J]. 昆虫学报, 2012, 55(12):1 368-1 375.
[8] Shen J, Zhang N, Gexigeduren, et al. Construction of a GeogDetector-based model system to indicate the potential occurrence of grasshoppers in Inner Mongolia steppe habitats[J]. Bulletin of Entomological Research, 2015, 105: 335-346.
[9] Zhang N, Zhang H Y, He B, et al. Spatiotemporal heterogeneity of the potential occurrence of Oedaleus decorus asiaticus in Inner Mongolia steppe habitats[J]. Journal of Arid Environments, 2015, 116: 33-43.
[10] 张娜. 景观生态学[M]. 北京:科学出版社, 2014.
[11] 蔡博峰, 于嵘. 景观生态学中的尺度分析方法[J]. 生态学报, 2008, 28(5): 2 279-2 287.
[12] 杨婷婷, 吴新宏, 姚国征, 等. 基于TM影像的镶黄旗草原沙化治理工程生态效益研究:以2004年封沙育林工程为例[J]. 水土保持研究, 2009, 16(1): 204-207.
[13] 陈永林. 中国主要蝗虫及蝗灾的生态学治理[M]. 北京: 科学出版社, 2007.
[14] 查高德, 赵成章, 张军霞, 等. 黑河上游天然草地亚洲小车蝗雌雄虫的空间格局[J]. 生态学杂志, 2013, 32(11): 3 022-3 028.
[15] 王劲峰, 廖一兰, 刘鑫. 空间数据分析教程[M]. 北京: 科学出版社, 2010.
[16] Hu Y,Wang J F., Li, X.H, et al. Geographical detector-based risk assessment of the under-five mortality in the 2008 Wenchuan earthquake, China[J]. PLoS ONE, 2011, 6(6): e21427.
[17] Sawada M. ROOKCASE: an excel 97/2000 visual basic (VB) add-in for exploring global and local spatial autocorrelation[J]. Bulletin of the Ecological Society of America, 1999, 80 (4): 231-234.
[18] Moellering H, Tobler W. Geographical variances[J]. Geographical Analysis, 1972, 4(1): 34-50.
[19] Zhang N, Zhang H. Scale variance analysis coupled with Moran's I scalogram to identify hierarchy and characteristic scale[J]. International Journal of Geographical Information Science, 2011, 25(9): 1 525-1 543.
[20] Bradshaw G A, Spies T A. Characterizing canopy gap structure in forests using wavelet analysis[J]. Journal of Ecology, 1992: 205-215.
[21] 郁文, 刘茂松, 徐驰, 等. 南京市城市景观的特征尺度[J]. 生态学报, 2007, 27(4): 1 480-1 488.
[22] University of Wisconsin-Madison. APACK. Users guide and application: USA[EB/OL].(2012-04-20)[2016-04-20]. http://forestandwildlifeecology.wisc.edu/staticsites/mladenofflab/Projects/Apack/index.htm.
[23] 倪绍祥, 蒋建军, 巩爱歧, 等. 环青海湖地区草地生境的蝗虫潜在发生可能性评价[J]. 生态学报, 2002,22(3):285-290.
文章导航

/