Department of Geological Sciences, Stockholm University, 106 91 Stockholm, Sweden.
Environ Sci Technol. 2013 Jan 15;47(2):968-75. doi: 10.1021/es303848x. Epub 2012 Dec 26.
Aquatic ecosystems are major sources of greenhouse gases (GHG). Representative measurements of GHG fluxes from aquatic ecosystems to the atmosphere are vital for quantitative understanding of relationships between biogeochemistry and climate. Fluxes occur at high temporal variability at diel or longer scales, which are not captured by traditional short-term deployments (often in the order of 30 min) of floating flux chambers. High temporal frequency measurements are necessary but also extremely labor intensive if manual flux chamber based methods are used. Therefore, we designed an inexpensive and easily mobile automated flux chamber (AFC) for extended deployments. The AFC was designed to measure in situ accumulation of gas in the chamber and also to collect gas samples in an array of sample bottles for subsequent analysis in the laboratory, providing two independent ways of CH(4) concentration measurements. We here present the AFC design and function together with data from initial laboratory tests and from a field deployment.
水生生态系统是温室气体(GHG)的主要来源。代表性的水生生态系统向大气排放温室气体通量测量对于定量理解生物地球化学与气候之间的关系至关重要。通量在日或更长时间尺度上具有很高的时间可变性,而传统的短期(通常在 30 分钟左右)浮式通量室部署无法捕捉到这些变化。如果使用基于手动通量室的方法,那么高时间频率测量是必要的,但也极其耗费人力。因此,我们设计了一种廉价且易于移动的自动化通量室(AFC),用于扩展部署。AFC 的设计目的是测量室内气体的原位积累,并在一系列样品瓶中收集气体样品,以便随后在实验室进行分析,提供两种独立的 CH(4)浓度测量方法。我们在此介绍 AFC 的设计和功能,以及来自初始实验室测试和现场部署的数据。