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人工营造且成熟的红树林下快速泥炭发育:跨越 25 年时间序列的生态系统变化。

Rapid peat development beneath created, maturing mangrove forests: ecosystem changes across a 25-yr chronosequence.

机构信息

U.S. Geological Survey, Wetland and Aquatic Research Center, 700 Cajundome Blvd, Lafayette, Louisiana, 70506, USA.

Department of Marine Sciences, University of Georgia, 325 Sanford Drive, Athens, Georgia, 30602, USA.

出版信息

Ecol Appl. 2020 Jun;30(4):e02085. doi: 10.1002/eap.2085. Epub 2020 Mar 2.

Abstract

Mangrove forests are among the world's most productive and carbon-rich ecosystems. Despite growing understanding of factors controlling mangrove forest soil carbon stocks, there is a need to advance understanding of the speed of peat development beneath maturing mangrove forests, especially in created and restored mangrove forests that are intended to compensate for ecosystem functions lost during mangrove forest conversion to other land uses. To better quantify the rate of soil organic matter development beneath created, maturing mangrove forests, we measured ecosystem changes across a 25-yr chronosequence. We compared ecosystem properties in created, maturing mangrove forests to adjacent natural mangrove forests. We also quantified site-specific changes that occurred between 2010 and 2016. Soil organic matter accumulated rapidly beneath maturing mangrove forests as sandy soils transitioned to organic-rich soils (peat). Within 25 yr, a 20-cm deep peat layer developed. The time required for created mangrove forests to reach equivalency with natural mangrove forests was estimated as (1) <15 yr for herbaceous and juvenile vegetation, (2) ~55 yr for adult trees, (3) ~25 yr for the upper soil layer (0-10 cm), and (4) ~45-80 yr for the lower soil layer (10-30 cm). For soil elevation change, the created mangrove forests were equivalent to or surpassed natural mangrove forests within the first 5 yr. A comparison to chronosequence studies from other ecosystems indicates that the rate of soil organic matter accumulation beneath maturing mangrove forests may be among the fastest globally. In most peatland ecosystems, soil organic matter formation occurs slowly (over centuries, millennia); however, these results show that mangrove peat formation can occur within decades. Peat development, primarily due to subsurface root accumulation, enables mangrove forests to sequester carbon, adjust their elevation relative to sea level, and adapt to changing conditions at the dynamic land-ocean interface. In the face of climate change and rising sea levels, coastal managers are increasingly concerned with the longevity and functionality of coastal restoration efforts. Our results advance understanding of the pace of ecosystem development in created, maturing mangrove forests, which can improve predictions of mangrove forest responses to global change and ecosystem restoration.

摘要

红树林是世界上生产力最高、碳储量最丰富的生态系统之一。尽管人们对控制红树林土壤碳储量的因素有了越来越多的了解,但仍需要深入了解成熟红树林下泥炭形成的速度,特别是在为补偿红树林转化为其他土地用途而丧失的生态系统功能而创建和恢复的红树林中。为了更准确地量化人工种植、成熟红树林下土壤有机质的发展速度,我们在 25 年的时间序列中测量了生态系统的变化。我们将人工种植、成熟红树林的生态系统特性与相邻的天然红树林进行了比较。我们还量化了 2010 年至 2016 年之间发生的特定地点的变化。随着沙质土壤向富含有机质的土壤(泥炭)转变,成熟红树林下的土壤有机质迅速积累。在 25 年内,形成了一个 20 厘米深的泥炭层。人工种植的红树林达到与天然红树林等效所需的时间估计为:(1)<15 年用于草本和幼年植被,(2)55 年用于成年树木,(3)25 年用于上层土壤(0-10 厘米),(4)~45-80 年用于下层土壤(10-30 厘米)。对于土壤高程变化,人工种植的红树林在最初的 5 年内与天然红树林等效或超过天然红树林。与其他生态系统的时间序列研究相比,成熟红树林下土壤有机质的积累速度可能是全球最快的之一。在大多数泥炭地生态系统中,土壤有机质的形成过程非常缓慢(需要几个世纪、几千年);然而,这些结果表明,红树林泥炭的形成可以在几十年内发生。泥炭的形成,主要是由于地下根系的积累,使红树林能够封存碳,调整其相对于海平面的高程,并适应动态陆海界面的变化条件。在气候变化和海平面上升的情况下,沿海管理者越来越关注沿海恢复工作的持久性和功能。我们的研究结果增进了对人工种植、成熟红树林生态系统发展速度的理解,这可以提高对红树林森林对全球变化和生态系统恢复的反应的预测。

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