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首页> 外文期刊>Palaeogeography, Palaeoclimatology, Palaeoecology: An International Journal for the Geo-Sciences >Forest dynamics during the transition from the Oldest Dryas to the B?lling-Aller?d at Gerzensee-a simulation study
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Forest dynamics during the transition from the Oldest Dryas to the B?lling-Aller?d at Gerzensee-a simulation study

机译:模拟研究从最古老的树状干果过渡到Billing-Aller?d期间的森林动态

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The aim of this study was to explore potential causes and mechanisms for the sequence and temporal pattern of tree taxa, specifically for the shift from shrub-tundra to birch-juniper woodland during and after the transition from the Oldest Dryas to the B?lling-Aller?d in the region surrounding the lake Gerzensee in southern Central Europe. We tested the influence of climate, forest dynamics, community dynamics compared to other causes for delays. For this aim temperature reconstructed from a δ~(18)O-record was used as input driving the multi-species forest-landscape model TreeMig. In a stepwise scenario analysis, population dynamics along with pollen production and transport were simulated and compared with pollen-influx data, according to scenarios of different δ~(18)O/temperature sensitivities, different precipitation levels, with/without inter-specific competition, and with/without prescribed arrival of species. In the best-fitting scenarios, the effects on competitive relationships, pollen production, spatial forest structure, albedo, and surface roughness were examined in more detail. The appearance of most taxa in the data could only be explained by the coldest temperature scenario with a sensitivity of 0.3‰/°C, corresponding to an anomaly of -15 °C. Once the taxa were present, their temporal pattern was shaped by competition. The later arrival of Pinus could not be explained even by the coldest temperatures, and its timing had to be prescribed by first observations in the pollen record. After the arrival into the simulation area, the expansion of Pinus was further influenced by competitors and minor climate oscillations. The rapid change in the simulated species composition went along with a drastic change in forest structure, leaf area, albedo, and surface roughness. Pollen increased only shortly after biomass. Based on our simulations, two alternative potential scenarios for the pollen pattern can be given: either very cold climate suppressed most species in the Oldest Dryas, or they were delayed by soil formation or migration. One taxon, Pinus, was delayed by migration and then additionally hindered by competition. Community dynamics affected the pattern in two ways: potentially by facilitation, i.e. by nitrogen-fixing pioneer species at the onset, whereas the later pattern was clearly shaped by competition. The simulated structural changes illustrate how vegetation on a larger scale could feed back to the climate system. For a better understanding, a more integrated simulation approach covering also the immigration from refugia would be necessary, for this combines climate-driven population dynamics, migration, individual pollen production and transport, soil dynamics, and physiology of individual pollen production.
机译:这项研究的目的是探讨树木分类单元的顺序和时间模式的潜在原因和机制,特别是从最古老的树名到布林岭过渡期间和之后从灌木冻原转变为桦木的林地。位于中欧南部Gerzensee湖周围的地区。与其他延误原因相比,我们测试了气候,森林动态,社区动态的影响。为此,从δ〜(18)O记录重建的温度用作驱动多物种森林景观模型TreeMig的输入。在逐步情景分析中,根据不同的δ〜(18)O /温度敏感性,不同的降水水平,是否存在种间竞争,模拟了种群动态以及花粉的生产和运输,并与花粉流入数据进行了比较。 ,以及是否规定物种到达。在最合适的方案中,将更详细地研究对竞争关系,花粉产量,空间森林结构,反照率和表面粗糙度的影响。数据中大多数分类单元的出现只能用最冷的温度情况来解释,其灵敏度为0.3‰/°C,对应于-15°C的异常。一旦出现了分类单元,它们的时间模式就受到竞争的影响。即使是最冷的温度也无法解释松树的到来,其时间必须由花粉记录中的首次观察来规定。进入模拟区域后,松树的扩张进一步受到竞争者和较小的气候波动的影响。模拟物种组成的快速变化伴随着森林结构,叶面积,反照率和表面粗糙度的急剧变化。花粉仅在使用生物质后不久才增加。根据我们的模拟,可以给出两种可能的花粉格局替代方案:要么很冷的气候抑制了最古老的树Dry中的大多数物种,要么由于土壤形成或迁移而延迟了它们。一个分类单元Pinus因迁移而延迟,然后又因竞争而受阻。社区动态以两种方式影响这种模式:可能是通过便利化,即在开始时固氮先驱物种,而后一种模式显然是通过竞争塑造的。模拟的结构变化说明了更大范围的植被如何反馈到气候系统。为了更好地理解,有必要采用一种更综合的模拟方法来涵盖避难所的移民,因为它结合了气候驱动的人口动态,移民,个体花粉生产和运输,土壤动力学以及个体花粉生产的生理学。

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