Please wait a minute...
干旱区科学  2012, Vol. 4 Issue (4): 457-468    DOI: 10.3724/SP.J.1227.2012.00457
  学术论文 本期目录 | 过刊浏览 | 高级检索 |
Spatial distribution pattern of Picea schrenkiana population in the Middle Tianshan Mountains and the relationship with topographic attributes
YuTao ZHANG1, JiMei LI1, ShunLi CHANG2, Xiang LI1, JianJiang LU1
1 Institute of Forest Ecology, Xinjiang Academy of Forestry, Urumqi 830000, China;
2 Key Laboratory of Oasis Ecology of Ministry of Education, Xinjiang University, Urumqi 830046, China
Spatial distribution pattern of Picea schrenkiana population in the Middle Tianshan Mountains and the relationship with topographic attributes
YuTao ZHANG1, JiMei LI1, ShunLi CHANG2, Xiang LI1, JianJiang LU1
1 Institute of Forest Ecology, Xinjiang Academy of Forestry, Urumqi 830000, China;
2 Key Laboratory of Oasis Ecology of Ministry of Education, Xinjiang University, Urumqi 830046, China
下载:  PDF (1331KB) 
输出:  BibTeX | EndNote (RIS)      
摘要  The spatial distribution of plant populations is an important feature of population structure and it de-termines the population’s ecological preferences, biological characteristics and relationships with environmental factors. The point pattern analysis method was adopted to study the distribution pattern of Picea schrenkiana indi-viduals of different size classes and the correlations between two size classes as well as the impact of topog-raphical attributes on the population distribution. With increasing diameter at breast height, the plant density of the P. schrenkiana population showed a declining trend. Old trees showed a random distribution at a small spatial scale (0–12 m), whereas saplings, small trees and big trees all had an aggregated distribution at all scales. With the increase of tree age, the scales at which maximal aggregation occurred gradually increased and the aggregation strength decreased. At a small scale (0–16 m), all size classes showed a negative correlation and the larger the difference between tree size, the more significant the negative correlation. The number of medium, big and old trees had a significantly positive correlation with elevations, whereas the number of saplings and small trees was not significantly correlated with elevations. The numbers of saplings, small and medium trees showed a significant positive correlation with slope gradient, whereas the number of big trees was not significantly correlated, and the number of old trees was negatively correlated with gradient. With the exception of old trees, saplings, small, me-dium and big trees showed negative correlations with convexity index. The study provides a theoretical basis for the conservation, rehabilitation and sustainable management of forest ecosystems in the Tianshan Mountains.
服务
把本文推荐给朋友
加入引用管理器
E-mail Alert
RSS
作者相关文章
YuTao ZHANG
JiMei LI
ShunLi CHANG
Xiang LI
JianJiang LU
关键词:  caper  chlorophyll  drought  petal micromorphology  starch  sugars    
Abstract:  The spatial distribution of plant populations is an important feature of population structure and it de-termines the population’s ecological preferences, biological characteristics and relationships with environmental factors. The point pattern analysis method was adopted to study the distribution pattern of Picea schrenkiana indi-viduals of different size classes and the correlations between two size classes as well as the impact of topog-raphical attributes on the population distribution. With increasing diameter at breast height, the plant density of the P. schrenkiana population showed a declining trend. Old trees showed a random distribution at a small spatial scale (0–12 m), whereas saplings, small trees and big trees all had an aggregated distribution at all scales. With the increase of tree age, the scales at which maximal aggregation occurred gradually increased and the aggregation strength decreased. At a small scale (0–16 m), all size classes showed a negative correlation and the larger the difference between tree size, the more significant the negative correlation. The number of medium, big and old trees had a significantly positive correlation with elevations, whereas the number of saplings and small trees was not significantly correlated with elevations. The numbers of saplings, small and medium trees showed a significant positive correlation with slope gradient, whereas the number of big trees was not significantly correlated, and the number of old trees was negatively correlated with gradient. With the exception of old trees, saplings, small, me-dium and big trees showed negative correlations with convexity index. The study provides a theoretical basis for the conservation, rehabilitation and sustainable management of forest ecosystems in the Tianshan Mountains.
Key words:  caper    chlorophyll    drought    petal micromorphology    starch    sugars
收稿日期:  2012-03-09      修回日期:  2012-05-24           出版日期:  2012-12-15      发布日期:  2012-09-21      期的出版日期:  2012-12-15
基金资助: 

The 12th Five-year Science and Tech-nology Support Program (2011BAD38B0505), the Forestry Industry Research Special Funds for Public Welfare Projects (200804022C).

通讯作者:  YuTao ZHANG    E-mail:  zyt218@163.com
引用本文:    
YuTao ZHANG, JiMei LI, ShunLi CHANG, Xiang LI, JianJiang LU. Spatial distribution pattern of Picea schrenkiana population in the Middle Tianshan Mountains and the relationship with topographic attributes[J]. 干旱区科学, 2012, 4(4): 457-468.
YuTao ZHANG, JiMei LI, ShunLi CHANG, Xiang LI, JianJiang LU. Spatial distribution pattern of Picea schrenkiana population in the Middle Tianshan Mountains and the relationship with topographic attributes. Journal of Arid Land, 2012, 4(4): 457-468.
链接本文:  
http://jal.xjegi.com/CN/10.3724/SP.J.1227.2012.00457  或          http://jal.xjegi.com/CN/Y2012/V4/I4/457
Akira I, Takuo Y, Tatsuhiro O, et al. 2003. Importance of topog-raphy and soil texture in the spatial distribution of two sym-patric dipterocarp trees in a Bornean rainforest. Ecological Research, 18: 307–320.

Bale C L, Williams J B, Charley J L. 1998. The impact of aspect on forest structure and floristics in some Eastern Australian sites. Forest Ecology and Management, 110: 363–377.

Baskent E Z, Keles S. 2005. Spatial forest planning: a review. Ecological Modelling, 188(2–4): 145–173.

Besag J. 1977. Contribution to the discussion of Dr Ripley’s paper. Journnal of Royal Statistic Society, 39: 193–195.

Boyden S, Binkley D, Shepperd W. 2005. Spatial and temporal patterns in structure, regeneration, and mortality of an old-growth ponderosa pine forest in the Colorado Front Range. Forest Ecology and Management, 219(1): 43–55.

Bruelheide H, Böhnke M, Both S, et al. 2011. Community as-sembly during secondary forest succession in a Chinese sub-tropical forest. Ecological Monographs, 81(1): 25–41.

Burton J I, Zenner E K, Frelich L. 2009. Patterns of plant com-munity structure within and among primary and sec-ond-growth northern hardwood forest stands. Forest Ecology and Management, 258(11): 2556–2568.

Chen D M. 1991. Analysis on microsite of Picea schrenkiana natural regeneration and seedling spatial pattern and dynamic. MSc Dissertation, Urumqi: Xinjiang Agriculture University.

Condit R, Ashton P S, Baker P, et al. 2000. Spatial patterns in the distribution of tropical tree species. Science, 288: 1414–1418.

Fisher B L, Howe H F, Wright S J. 1991. Survival and growth of Virola surinamensis yearlings: water augmentation in gap and understory. Oecologia, 86: 292–297.

Forestry of Administration of China. 1989. Xinjiang Forest. Urumqi: Xinjiang People’s Press, 123.

Gray L, He F L. 2009. Spatial point-pattern analysis for detecting density-dependent competition in a boreal chronosequence of Alberta. Forest Ecology and Management, 259: 98–106.

Guo H, Wang X A, Xiao Y P. 2005. Spatial distribution pattern and fractal analysis of Larix chinensis populations in Qinling Mountain. Chinese Journal of Applied Ecology, 16(2): 227–232.

Haase P. 1995. Spatial pattern analysis in ecology based on Rip-ley’s K-function: introduction and methods of edge correction. Journal of Vegetation Science, 6: 575–582.

Hao S, Zhang Y T, Liu D, et al. 2010. Characteristics of canopy interception and throughfall of Picea schrenkiana var. Tian-schanica (Rupr.) Chen et Fu. Arid Land Geography, 32(6): 917–923.

Hao Z Q, Zhang J, Song B, et al. 2007. Vertical structure and spatial associations of dominant tree species in an old-growth temperate forest. Forest Ecology and Management, 252(1–3): 1–11.

Hou X Y, Han, J X. 1997. Simulation analysis of spatial patterns of main species in the Korean pine broadleaved forest in Changbai Mountain. Phytoecologica Sinica, 21(3): 242–249.

Howe H F. 1986. Consequences of seed dispersal by birds: a case study from Central America. Journal of the Bombay Natural History Society, 83(Suppl.): 19–42.

Howe H F. 1990. Survival and growth of juvenile Virola surina-mensis in Panama: effects of herbivore and canopy closure. Journal of Tropical Ecology, 6: 259–280.

Jayapal R, Qureshi Q, Chellam R. 2009. Importance of forest structure versus floristics to composition of avian assemblages in tropical deciduous forests of Central Highlands, India. Forest Ecology and Management, 257(11): 2287–2295.

Jouquet P, Boulain N, Gignoux J, et al. 2004. Association be-tween subterranean termites and grasses in a West African sa-vanna: spatial pattern analysis shows a significant role for Odontotermesn pauperans. Applied Soil Ecology, 27(2): 99–107.

Kylee H, Richard C, Stephenp H, et al. 2001. Habitat associations of trees and shrubs in a 50-ha neotropical forest plot. Journal of Ecology, 89: 947–959.

Lai J S, Mi X C, Ren H B, et al. 2010. Numerical classification of associations in subtropical evergreen broad-leaved forest based on multivariate regression trees: a case study of 24 hm2 Gutianshan forest plot in China. Journal of Plant Ecology, 34(7): 761–769.

Li H D, Shen W S, Fang Y, et al. 2011. Point pattern analysis of several Psammophyte populations in the riparian ecotone in the middle reaches of Yarlung Zangbo River of Tibet, China. Chinese Journal of Plant Ecology, 35(8): 834–843.

Li H J, Zhang Y T, Zhang X P, et al. 2010. The water quality changes during rainfall in natural Picea schrenkiana var. tian-schanica forest ecosystem in the Middle Tianshan Mountains. Acta Ecologica Sinica, 30(18): 4828–4838.

Li J G, Pan C D, Zhou L S, et al. 2001. Study on interspecific competition in Picea schrenkiana forest in Tianshan Mountain. Journal of Xinjiang Agricultural University, 24(4): 1–6.

Li L, Huang Z L, Ye W H, et al. 2009. Spatial distributions of tree species in a subtropical forest of China. Oikos, 118: 495–503.

Li L, Chen J H, Ren H B, et al. 2010. Spatial patterns of Cas-tanopsis eyrei and Schima superba in mid-subtropical broad 1eaved evergreen forest in Gutianshan National Reserve. Jour-nal of Plant Ecology, 34(3): 241–252.

Li M H, He F H, Liu Y, et al. 2005. Spatial distribution pattern of tree individuals in the Schrenk spruce forest, Northwest China. Acta Ecological Sinica, 25(5): 1000–1006.

Liao N, Shi Z M, Feng Q H. 2008. Spatial pattern analysis of Abies faxoniana population in sub-alpine area in Western Siehuan. Scientia Silvae Sinicae, 44: 1–6.

Lin Y C, Chang L W, Yang K C, et al. 2011. Point patterns of tree distribution determined by habitat heterogeneity and dispersal limitation. Oecologia, 165: 175–184.

Manabe T, Nishimura N, Miura M. 2000. Population structure and spatial patterns for trees in a temperate old-growth evergreen broad-leaved forest in Japan. Plant Ecology, 151: 181–197.

Martínez I, Wiegand T, González-Taboada, et al. 2010. Spatial associations among tree species in a temperate forest commu-nity in North-western Spain. Forest Ecology and Management, 260(4): 456–465.

Mateu J, Uso J L, Montes F. 1998. The spatial pattern of a forest ecosystem. Ecological Modelling, 108: 163–174.

Pan C D, Zhang Y S. 1991. A study age structure of Schrenk spruce stand. Journal of August 1st Agricultural College, 14: 68–75.

Perry G L W, Miller B P, Enright N J. 2006. A comparison of methods for the statistical analysis of spatial point patterns in plant ecology. Plant Ecology, 187: 59–82.

Song H X, Jiang M Y, Chen Q B. 2011. Point pattern analysis of Phyllostachys bissetii ramet population in West China Rainy Area. Chinese Journal of Applied Ecology, 22: 1135–1140.

Song K, Yu Q, Shang K K, et al. 2011. The spatial-temporal pat-tern of historical disturbances of an evergreen broadleaved forest in East China: a dendroecological analysis. Plant Ecol-ogy, 212: 313–325.

Song Y Y, Zhao Z A, Yang Z A, et al. 2009. Population quantity and structure dynamics of plant population of Picea schrenkiana. Journal of Nanjing Forestry University: Natural Sciences, 33(1): 64–68.

Takyu M, Aiba S K. 2002. Effects of topography on tropical lower montane forests under different geological conditions on Mount Kinabalu, Borneo. Plant Ecology, 159: 35–49.

Wang K B, Shangguan Z P. 2006. Structure and dynamics of natural Pinus tabulaeformis f. shekannesis populations in Zi-wuling forest region of the Loess Plateau. Acta Botanica Bo-reali-Occidenatalia Sinica, 26: 253–255.

Wang X G, Wiegand T, Hao Z Q, et al. 2010. Species associations in an old-growth temperate forest in north-eastern China. Journal of Ecology, 98(3): 674–686.

Webb E L, Brooks J S, Marya L J. 1999. Effects of topography on rainforest tree community structure and diversity in American Samoa, and implications for Frugivore and Nectarivore popu-lations. Journal of Biogeography, 26: 887–889.

Zhang H L, Zhang Y T, Zhang X P, et al. 2011. Eco-hydrological functions of litter on natural spruce forest in central Tianshan. Arid Land Geography, 34(2): 271–278.

Zhang J, Song B, Li B H, et al. 2010. Spatial patterns and asso-ciations of six congeneric species in an old-growth temperate forest. Acta Oecologica, 36: 29–38.

Zhang Q Y, Luo P, Zhang Y C. 2008. Ecological characteristics of Abies georgei population at timberline on the north facing slope of Baima Snow Mountain, Southwest China. Acta Eco-logical Sinica, 28(1): 129–135.

Zhang Z, Liu P, Ding Y, et al. 2011. Species compositions and spatial distribution pattern of tree individuals in the Schrenk spruce forest, Northwest China. Journal of Nanjing Forestry University: Natural Sciences, 34: 157–160.

 
[1] HOU Ying, NIU Zhenmin, ZHENG Fang, WANG Nai’ang, WANG Jianyu, LI Zhuolun, CHEN H. Drought fluctuations based on dendrochronology since 1786 for the Lenglongling Mountains at the northwestern fringe of the East Asian summer monsoon region[J]. 干旱区科学, 2016, 8(4): 492-505.
[2] WANG Xiaohua, XIAO Honglang, REN Juan, CHENG Yiben, YANG Qiu. An ultrasonic humidification fluorescent tracing method for detecting unsaturated atmospheric water absorption by the aerial parts of desert plants[J]. 干旱区科学, 2016, 8(2): 272-283.
[3] GAO Liming, ZHANG Yaonan. Spatio-temporal variation of hydrological drought under climate change during the period 1960–2013 in the Hexi Corridor, China[J]. 干旱区科学, 2016, 8(2): 157-171.
[4] Murat KARABULUT. Drought analysis in Antakya-Kahramanmara? Graben, Turkey[J]. 干旱区科学, 2015, 7(6): 741-754.
[5] WU Yanfeng, Batur BAKE, ZHANG Jusong, Hamid RASULOV. Spatio-temporal patterns of drought in North Xinjiang, China, 1961–2012 based on meteorological drought index[J]. 干旱区科学, 2015, 7(4): 527-543.
[6] XiuFang ZHU, AnZhou ZHAO, YiZhan LI, XianFeng LIU. Agricultural irrigation requirements under future climate scenarios in China[J]. 干旱区科学, 2015, 7(2): 224-237.
[7] BingChang ZHANG, XiaoBing ZHOU, YuanMing ZHANG. Responses of microbial activities and soil physical-chemical properties to the successional process of biological soil crusts in the Gurbantunggut Desert, Xinjiang[J]. 干旱区科学, 2015, 7(1): 101-109.
[8] Flavia Alejandra FUNK, Alejandro LOYDI, Guadalupe PETER. Effects of biological soil crusts and drought on emergence and survival of a Patagonian perennial grass in the Monte of Argentina[J]. 干旱区科学, 2014, 6(6): 735-741.
[9] QiQiang GUO, WenHui ZHANG, HuiE LI. Comparison of photosynthesis and antioxidative protection in Sophora moorcroftiana and Caragana maximovicziana under water stress[J]. 干旱区科学, 2014, 6(5): 637-645.
[10] Rui LI, Atsushi TSUNEKAWA, Mitsuru TSUBO. Index-based assessment of agricultural drought in a semi-arid region of Inner Mongolia, China[J]. 干旱区科学, 2014, 6(1): 3-15.
[11] TengFei YU, Qi FENG, JianHua SI, HaiYang XI, Wei LI. Patterns, magnitude, and controlling factors of hydraulic redistribution of soil water by Tamarix ramosissima roots[J]. 干旱区科学, 2013, 5(3): 396-407.
[12] YuanRun ZHENG, LianHe JIANG, Yong GAO, Xi CHEN, GePing LUO, XianWei FENG, YunJia. Persistence of four dominant psammophyte species in central Inner Mongolia of China under continual drought[J]. 干旱区科学, 2013, 5(3): 331-339.
[13] Ge YU, Dave SAUCHYN, YongFei LI. Drought changes and the mechanism analysis for the North American Prairie[J]. 干旱区科学, 2013, 5(1): 1-14.
[14] Chrysanthi CHIMONA, Avra STAMELLOU, Apostolos ARGIROPOULOS, Sophia RHIZOPOULOU. Study of variegated and white flower petals of Capparis spinosa expanded at dusk in arid landscapes[J]. 干旱区科学, 2012, 4(2): 171-179.
[15] Michael F Allen. Linking water and nutrients through the vadose zone: a fungal interface between the soil and plant systems[J]. 干旱区科学, 2011, 3(3): 155-163.
No Suggested Reading articles found!
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed