Aboveground biomass and water storage allocation in alpine willow shrubs in the Qilian Mountains in China

被引:0
作者
Zhang-wen Liu
Ren-sheng Chen
Yao-xuan Song
Chun-tan Han
机构
[1] Chinese Academy of Sciences,Qilian Alpine Ecology & Hrdrolody Research Station, Key Laboratory of Ecohydrology of Inland River Basin, Cold and Arid Regions Environmental and Engineering Research Institute
来源
Journal of Mountain Science | 2015年 / 12卷
关键词
Water storage; Aboveground biomass; Alpine shrubs; Willow; Qilian Mountains;
D O I
暂无
中图分类号
学科分类号
摘要
The aboveground biomass allocation and water relations in alpine shrubs can provide useful information on analyzing their ecological and hydrological functions in alpine regions. The objectives of this study were to compare the aboveground biomass allocation, water storage ratio and distribution between foliage/woody components, and to investigate factors affecting aboveground biomass allocation and water storage ratio in alpine willow shrubs in the Qilian Mountains, China. Three experimental sites were selected along distance gradients from the riverside in the Hulu watershed in the Qilian Mountains. The foliage, woody component biomass, and water allocation of Salix cupularis Rehd. and Salix oritrepha Schneid. shrubs were measured using the selective destructive method. The results indicated that the foliage component had higher relative water and biomass storage than the woody component in the upper part of the crown in individual shrubs. However, the woody component was the major biomass and water storage component in the whole shrub level for S. cupularis and S. oritrepha. Moreover, the foliage/woody component biomass ratio decreased from the top to the basal level of shrubs. The relative water storage allocation was significantly affected by species types, but was not affected by sites and interaction between species and sites. Meanwhile, relative water storage was affected by sites as well as by interaction between sites and species type.
引用
收藏
页码:207 / 217
页数:10
相关论文
共 136 条
  • [1] Achten WMJ(2010)Biomass production and allocation in Biomass and Bioenergy 34 667-676
  • [2] Maes WH(1993) L. seedlings under different levels of drought stress Annales des Sciences Forestieres 50 79-89
  • [3] Reubens B(2005)Phytovolume, phytomasse et relations structurales che zquelques arbustes méditerranéens Remote Sensing of Environment 98 110-121
  • [4] Armand D(2011)Modelling local distribution of an Arctic dwarf shrub indicates an important role for remote sensing of snow cover Biogeosciences 8 1169-1179
  • [5] Etienne M(2000)What are the main climate drivers for shrub growth in Northeastern Siberian tundra? Plant and Soil 224 185-193
  • [6] Legrand C(2008)Patterns of nitrogen conservation in shrubs and grasses in the Patagonian Monte, Argentina Remote Sensing of Environment 112 19-34
  • [7] Becka PSA(1985)Remote sensing of woody shrub cover in desert grasslands using MISR with a geometric-optical canopy reflectance model Forest Science 31 1011-1017
  • [8] Kalmbachb E(2012)Biomass of shrubdominated wetland in Minnesota Ecohydrology 6 713-721
  • [9] Jolyc D(2007)Growth, water productivity, and biomass allocation of Great Basin plants as affected by summer watering Science in China Series D Earth Sciences 50 1341-1350
  • [10] Blok D(2011)Terrestrial vegetation carbon sinks in China, 1981–2000 Remote Sensing of Environment 115 281-297