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基于微剖面模型分析底泥溶解氧。

Analyzing sediment dissolved oxygen based on microprofile modeling.

机构信息

State Key Laboratory on Environmental Aquatic Chemistry, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing, 100085, China.

出版信息

Environ Sci Pollut Res Int. 2014 Sep;21(17):10320-8. doi: 10.1007/s11356-014-2875-y. Epub 2014 Apr 26.

Abstract

Sediment plays a key role in controlling the oxygen demand of aquatic systems. The reaction rate, penetration depth, and flux across the sediment-water interface (SWI) are important factors in sediment oxygen consumption. However, there were few methods to collect these data until recently. In this study, methods were developed to simulate the oxygen microprofile and calculate the sediment oxygen consumption rate, oxygen penetration depth, and oxygen flux across the SWI. We constructed a sediment oxygen measuring system using an oxygen microelectrode and a control device. The simulation equations were derived from both zero and first-order kinetic models, while the penetration depth and the oxygen flux were calculated from the simulation results. The method was tested on four prepared sediment samples. Decreases in dissolved oxygen in surface sediment were clearly detected by the microelectrode. The modeled data were a good fit for the observed data (R (2) > 0.95), and zero-order kinetics were more suitable than first-order kinetics. The values for penetration depth (1.3-3.9 mm) and oxygen fluxes (0.061-0.114 mg/cm(2)/day) calculated by our methods are comparable with those from other studies.

摘要

沉积物在控制水生系统的需氧量方面起着关键作用。反应速率、穿透深度和穿过沉积物-水界面(SWI)的通量是影响沉积物耗氧量的重要因素。然而,直到最近才有几种方法可以收集这些数据。本研究开发了模拟氧微剖面和计算沉积物耗氧率、氧穿透深度和穿过 SWI 的氧通量的方法。我们使用氧微电极和控制装置构建了一个沉积物氧测量系统。模拟方程源自零级和一级动力学模型,而穿透深度和氧通量则根据模拟结果计算得出。该方法在四个准备好的沉积物样品上进行了测试。微电极清楚地检测到表层沉积物中溶解氧的减少。模型数据与观察数据拟合良好(R (2) > 0.95),零级动力学比一级动力学更适用。我们方法计算的穿透深度(1.3-3.9 毫米)和氧通量(0.061-0.114 mg/cm(2)/天)值与其他研究中的值相当。

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