碳循环对北温带湖泊氧气耗竭的影响

A. Delany, R. Ladwig, C. Buelo, Ellen Albright, P. Hanson
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摘要

摘要夏季湖泊分层过程中下底栖氧耗尽会导致缺氧和缺氧状况。低水深缺氧是一个水质问题,会带来许多后果,包括冷水鱼类栖息地减少、饮用水质量下降以及沉积物中营养物质和有机碳(OC)释放量增加。通过为微生物呼吸提供基质,同源和自源 OC 负荷都会造成氧气耗竭;但是,它们在不同湖泊系统中对氧气耗竭的相对贡献仍不确定。营养状态、水文和形态等湖泊特征也会影响碳循环过程,并可能影响耗氧动态。为了研究碳循环对下沉氧耗竭的影响,我们使用了基于过程的双层湖泊模型,模拟了威斯康星州六个湖泊 20 年(1995-2014 年)的每日新陈代谢动态。该模型包含物理过程和内部代谢过程,用于预测溶解氧(DO)、颗粒 OC(POC)和溶解 OC(DOC)。在对寡营养湖泊、中营养湖泊和富营养化湖泊的研究中,我们发现自生型湖泊比异生型湖泊对湖底氧气耗竭的影响要大得多。在富营养化研究湖泊中,水体中的自生 POC 呼吸对下沉氧耗竭的影响最大。在中营养型和低营养型研究湖泊中,POC 的水体呼吸作用和沉积物呼吸作用的作用相似。在讨论呼吸作用来源的差异时,要考虑到湖泊的生产力以及有机碳负荷的处理和归宿。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The influence of carbon cycling on oxygen depletion in north-temperate lakes
Abstract. Hypolimnetic oxygen depletion during summer stratification in lakes can lead to hypoxic and anoxic conditions. Hypolimnetic anoxia is a water quality issue with many consequences, including reduced habitat for cold-water fish species, reduced quality of drinking water, and increased nutrient and organic carbon (OC) release from sediments. Both allochthonous and autochthonous OC loads contribute to oxygen depletion by providing substrate for microbial respiration; however, their relative contributions to oxygen depletion across diverse lake systems remain uncertain. Lake characteristics, such as trophic state, hydrology, and morphometry, are also influential in carbon-cycling processes and may impact oxygen depletion dynamics. To investigate the effects of carbon cycling on hypolimnetic oxygen depletion, we used a two-layer process-based lake model to simulate daily metabolism dynamics for six Wisconsin lakes over 20 years (1995–2014). Physical processes and internal metabolic processes were included in the model and were used to predict dissolved oxygen (DO), particulate OC (POC), and dissolved OC (DOC). In our study of oligotrophic, mesotrophic, and eutrophic lakes, we found autochthony to be far more important than allochthony to hypolimnetic oxygen depletion. Autochthonous POC respiration in the water column contributed the most towards hypolimnetic oxygen depletion in the eutrophic study lakes. POC water column respiration and sediment respiration had similar contributions in the mesotrophic and oligotrophic study lakes. Differences in terms of source of respiration are discussed with consideration of lake productivity and the processing and fates of organic carbon loads.
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