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Effect of interannual variation in winter vertical mixing on CH_4 dynamics in a subtropical reservoir

机译:冬季垂直混合年际变化对亚热带水库CH_4动力学的影响

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Although freshwaters are considered to be substantial natural sources of atmospheric methane (CH_4), in situ processes of CH_4 production and consumption in freshwater ecosystems are poorly understood, especially in subtropical areas, leading to uncertainties in the estimation of global CH_4 emissions. To improve our understanding of physical and biogeochemical factors affecting CH_4 dynamics in subtropical lakes, we examined vertical and seasonal profiles of dissolved CH_4 and its carbon isotope ratio (δ~(13)C) and conducted incubation experiments to assess CH_4 production and oxidation in the deep subtropical Fei-Tsui Reservoir (FTR; Taiwan). The mixing pattern of the FTR is essentially monomixis, but the intensity of winter vertical mixing changes with climatic conditions. In years with incomplete verticalmixing (does not reach the bottom) and subsequent strong thermal stratification resulting in profundal hypoxia, we observed increases in sedimentary CH_4 production and thus profundal CH_4 storagewith the development of reducing conditions. In contrast, in years with strong winter vertical mixing to the bottom of the reservoir, CH_4 productionwas suppressed under NO_3~--rich conditions, during which denitrifiers have the competitive advantage over methanogens. Diffusive emission from profundal CH_4 storage appeared to be negligible due to the efficiency of CH_4 oxidation during ascent through methane-oxidizing bacteria (MOB) activity. Most of the profundal CH_4 was rapidly oxidized by MOB in both oxic and anoxic layers, as characterized by its carbon isotope signature. In contrast, aerobic CH_4 production in the subsurface layer, whichmay be enhanced under high temperatures in summer,may account for a large portion of atmospheric CH_4 emissions from this reservoir. Our CH_4 profiling results provide valuable information for future studies predicting CH_4 emissions from subtropical lakes with the progress of global warming.
机译:尽管淡水被认为是大气中甲烷(CH_4)的主要自然来源,但对淡水生态系统中CH_4生产和消费的原位过程了解甚少,尤其是在亚热带地区,这导致估计全球CH_4排放量存在不确定性。为了增进我们对影响亚热带湖泊CH_4动态的物理和生物地球化学因素的了解,我们研究了溶解CH_4的垂直和季节性分布及其碳同位素比(δ〜(13)C),并进行了温育实验以评估CH_4在甲烷中的生成和氧化。深亚热带费翠水库(FTR;台湾)。 FTR的混合方式基本上是单混合的,但冬季垂直混合的强度随气候条件而变化。在垂直混合不完全(未达到底部)以及随后强烈的热分层导致深部缺氧的年份中,我们观察到沉积CH_4产量增加,从而随着还原条件的发展而深部CH_4的存储增加。相反,在与储层底部冬季垂直垂直混合强烈的年份中,CH_4的生产在NO_3〜丰富的条件下受到抑制,在此期间,反硝化剂比产甲烷剂具有竞争优势。由于通过甲烷氧化细菌(MOB)活性上升过程中CH_4的氧化效率,基础CH_4存储的扩散排放似乎可以忽略不计。以碳同位素特征为特征,大多数深层CH_4在氧化层和缺氧层均被MOB迅速氧化。相反,地下层中有氧CH_4的产生可能在夏季的高温下得到增强,这可能是该储层大气CH_4排放的很大一部分。我们的CH_4分析结果为将来随着全球变暖的进展预测亚热带湖泊CH_4排放提供了有价值的信息。

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