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Decoupling of nutrient element cycles in soil and plants across an altitude gradient

机译:土壤和植物中海拔高度梯度上营养元素循环的解耦

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摘要

Previous studies have examined the decoupling of C, N, and P under rapid changes in climate. While this may occur in different environment types, such climactic changes have been reported over short distances in mountainous terrain. We hypothesized that the decoupling of C, N, and P could also occur in response to increases in altitude. We sampled soil and plants from Mount Gongga, Sichuan Province, China. Soil C and N were not related to altitude, whereas soil P increased with altitude. Soil N did not change with mean annual temperature (MAT), mean annual precipitation (MAP), vegetation and soil types, whereas soil P varied with MAT and vegetation type. Plant C remained constant with increasing altitude; plant N exhibited a quadratic change trend along the altitude gradient, with a turning point at 2350 m above average sea level; and plant P decreased with altitude. MAP mostly accounted for the variation in plant P. MAT was responsible for the variation of plant N at elevations below 2350 m, whereas MAT and vegetation type were the dominant influential factors of plants growing above 2350 m. Thus, the decoupling of C, N, and P in both soil and plants was significantly affected by altitude.
机译:先前的研究已经研究了气候快速变化下C,N和P的去耦。尽管这可能发生在不同的环境类型中,但据报道在山区地形中短距离的这种气候变化。我们假设C,N和P的去耦也可能会随着高度的增加而发生。我们对中国四川省贡嘎山的土壤和植物进行了采样。土壤C和N与海拔高度无关,而土壤P随海拔高度增加。土壤氮素未随年平均温度(MAT),年均降水量(MAP),植被和土壤类型而变化,而土壤P随MAT和植被类型而变化。 C植物随着海拔的升高而保持不变; N植物沿海拔梯度呈现二次变化趋势,转折点位于平均海平面以上2350 m。植物P随海拔降低而降低。 MAP主要是造成植物P变化的原因。MAT在海拔2350 belowm以下引起植物N的变化,而MAT和植被类型是在2350 m以上生长的植物的主要影响因素。因此,土壤和植物中碳,氮和磷的解耦受海拔高度影响。

著录项

  • 期刊名称 Scientific Reports
  • 作者

    Qiqi Tan; Guoan Wang;

  • 作者单位
  • 年(卷),期 -1(6),-1
  • 年度 -1
  • 页码 34875
  • 总页数 9
  • 原文格式 PDF
  • 正文语种
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