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Desertification alters regional ecosystem-climate interactions

机译:荒漠化改变了区域生态系统与气候的相互作用

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摘要

We studied the spatial patterns and temporal dynamics of vegetation structural responses to precipitation variation in grassland, transitional, and desertified-shrubland ecosystems in an 800 km(2) region of Northern Chihuahua, USA. Airborne high-fidelity imaging spectroscopy data collected from 1997 to 2001 provided spatially detailed measurements of photosynthetic and senescent canopy cover and bare soil extent. The observations were made following wintertime and summer monsoonal rains, which varied in magnitude by >300% over the study period, allowing an assessment of ecosystem responses to climate variation in the context of desertification.Desertification caused a persistent increase in both photosynthetic vegetation (PV) and bare soil cover, and a lasting decrease in nonphotosynthetic vegetation (NPV). We did not observe a change in the spatial variability of PV cover, but its temporal variation decreased substantially. In contrast, desertification caused the spatial variability of NPV to increase markedly, while its temporal variation did not change. Both the spatial and temporal variation of exposed bare surfaces decreased with desertification. Desertification appeared to be linked to a shift in seasonal precipitation use by vegetation from mainly summer to winter inputs, resulting in an apparent decoupling of vegetation responses to inter-annual monsoonal variation. Higher winter rainfall led to decreased springtime spatial variability in the PV cover of desertified areas. Higher summer rainfall resulted in decreased PV cover variation in grassland, transition and desertified-shrubland regions. The effects of desertification on NPV dynamics were more than three times greater than on PV or bare soil dynamics. Using remotely sensed PV and NPV as proxies for net primary production (NPP) and litter dynamics, respectively, we estimated that desertification decreases the temporal variability of NPP and increases spatial variation of litter production and loss. Quantitative studies of surface biological materials and ecosystem processes can now be measured with high 'structural' detail using imaging spectroscopy and shortwave-infrared spectral mixture analysis.
机译:我们研究了美国北部奇瓦瓦州800 km(2)地区草地,过渡性和荒漠灌木丛生态系统中植被结构对降水变化的结构响应的时空动态。从1997年到2001年收集的机载高保真成像光谱数据提供了光合和衰老冠层覆盖以及裸露土壤范围的空间详细测量。观测是在冬季和夏季季风雨之后进行的,在研究期间,其幅度变化> 300%,从而可以评估荒漠化背景下生态系统对气候变化的响应。荒漠化导致两种光合植被(PV)的持续增加)和裸露的土壤覆盖,非光合植被(NPV)持续减少。我们没有观察到PV覆盖物的空间变异性的变化,但是其时间变化却大大降低了。相反,荒漠化使NPV的空间变异性显着增加,而其时间变化却没有改变。随着荒漠化,裸露的裸露表面的时空变化均减小。荒漠化似乎与植被从主要夏季到冬季的季节性降水使用变化有关,导致植被对年际季风变化的响应明显脱钩。冬季较高的降雨导致荒漠化地区PV覆盖区春季春季空间变异性降低。夏季较高的降雨导致草原,过渡带和荒漠灌木丛地区的PV覆盖变化减少。荒漠化对NPV动态的影响比对PV或裸土动态的影响大三倍以上。分别使用遥感的PV和NPV作为净初级生产(NPP)和凋落物动力学的代理,我们估计荒漠化减少了NPP的时间变异性,并增加了凋落物生产和损失的空间变化。现在可以使用成像光谱和短波-红外光谱混合物分析以高度的“结构”细节来测量表面生物材料和生态系统过程的定量研究。

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