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In situ rapid measure of total respiration rate capture super labile dissolved organic carbon in freshwater

机译:原位快速测量总呼吸速率,捕获淡水中超不稳定的溶解有机碳

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摘要

Super labile dissolved organic carbon (DOC) in freshwater supports ultrahigh rates of bacterial respiration rates. However, this DOC fraction has been overlooked because of methodological and instrument limitations, until now. Here a simple inexpensive respiration chamber-valve system is described that can be attached to an optical dissolved oxygen probe to measure in situ bacterial respiration. The dissolved oxygen (DO) probe and chamber capture a 2 L water sample at depth and immediately begin measuring the DO loss over time at in situ pressure and temperature. DO measures over 5 min provided enough DO data to determine DO decay rate, and subsequently, the rate of bacterial respiration and carbon demand. The method was validated for a mixed bacterial community in a batch reactor and applied to the freshwater of boreal, sub-tropical and tropical climatic zones. Surface water mean bacterial respiration rate was 0.58 ᠰ.4 mole C . m-3. d-1 where below 6 m it was 4.8 ᠱ.8 mole C . m-3. d-1. These are amongst some of the highest respiration rates measured in freshwater. This in situ method captured the freshwater respiration of the super labile DOC and shows how most often this DOC fraction is missed because water samples are removed from the water body to measure respiration. Terrestrial DOC inputs into freshwater ecosystems and current global estimates of pCO2 outgassing into atmosphere from freshwater are being underestimated using existing methods that require sample manipulation and long incubation times.
机译:淡水中的超不稳定溶解有机碳(DOC)支持超高细菌呼吸速率。但是,由于方法和仪器方面的限制,到目前为止,这部分DOC一直被忽略。在此描述了一种简单的廉价呼吸腔阀系统,该系统可以连接到光学溶解氧探头上以测量原位细菌呼吸。溶解氧(DO)探头和腔室在深处捕获了2 L水样品,并立即开始在现场压力和温度下随时间测量DO的损失。 5分钟内的溶解氧测量可提供足够的溶解氧数据,以确定溶解氧的衰减率,以及随后的细菌呼吸速率和碳需求量。该方法已在间歇式反应器中用于混合细菌群落,并已应用于北方,亚热带和热带气候区的淡水。地表水平均细菌呼吸速率为0.58ᠰ.4摩尔C。 m-3。 d-1在6 m以下为4.8ᠱ.8摩尔C。 m-3。 d-1。这些是在淡水中测得的最高呼吸速率之一。这种原位方法捕获了超不稳定DOC的淡水呼吸作用,并显示了由于水样本从水体中移出以测量呼吸作用而错过DOC的频率。使用需要样品处理和较长孵育时间的现有方法,低估了陆地DOC向淡水生态系统的投入以及当前全球对pCO2从淡水向大气中排放的估计。

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    Pollard, Peter;

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  • 年度 2013
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  • 原文格式 PDF
  • 正文语种 English
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