Reconstruction of Seawater Carbonate chemistry during the last Glacial-Interglacial transition from Boron isotopic ratios and concentrations in foraminifera
Reconstruction of Seawater Carbonate chemistry during the last Glacial-Interglacial transition from Boron isotopic ratios and concentrations in foraminifera
批准号:
316936271
负责人:
Professor Dr. Jelle Bijma, Ph.D.
金额:
$0.0万
依托单位国家:
德国
项目类别:
Research Grants
财政年份:
2016
资助国家:
德国
项目状态:
已结题
起止时间:
2015-12-31 至 2021-12-31
中文摘要
碳循环扰动(CCP)的症状是全球变暖、海洋酸化和缺氧,无论是自然的还是人类活动引起的。这些都被证明是致命的组合,因为自然CCP已被确定为地球历史上5次大规模灭绝中至少4次的主要原因(Honisch等人。2009年;Bijma等人。2013A)。人类活动释放二氧化碳的速度比过去6500万年来的任何时候都快十倍,可能是过去300年来的最快速度,这使得对人为碳扰动的管理成为社会的主要挑战之一。要准确预测人为CCP的后果,首先必须了解地球碳循环的自然汇和源的波动和变异性。这需要准确重建海洋碳酸盐化学,因为深海碳储量的变化是解释在冰芯记录中观察到的冰川/间冰期大气二氧化碳变化的关键(Köhler等人)。2005年;Yu等人。2010)。在这里,我们建议对在冰期/间冰期过渡期间导致大气二氧化碳增加约100ppmv的过程进行量化。南大洋的过程被怀疑在这方面发挥了中心作用,因为那里的大部分深水都是通风的。人们认为,缓慢的冰川海洋可以储存更多的碳,生物泵更有效率(通过铁肥和加压载),水柱分层的增加减少了从冰川南大洋返回大气的碳泄漏(Keling和Visbeck 2001)。在冰川消融期间,这种深海碳电容器与大气重新连接,由于营养物质的不完全利用,导致二氧化碳快速放出,这是暖期南大洋的特征(即所谓的高营养低叶绿素(HNLC)区)。到目前为止,所有这一切仍然是假设的,尽管有间接证据支持(Martinez-Boti等人)。2015年;Ronge等人。2015年),但没有被冰川/间冰期碳酸盐化学演化的直接重建所证实。我们建议的首要目标是分析两个独立的碳酸盐化学替代物,它们来自记录最后一次G/IG转变的沉积物岩心的海底和浮游有孔虫测试,以量化自然二氧化碳的放出,并有助于更好地了解自然碳的储存和释放。为了改进重建,我们将在原位压力下对深海底栖有孔虫进行第一次d11B pH和B/Ca碳酸氢根离子刻度。我们还将优化方法和分析工具,以实现更小的样本量,从而实现单壳分析。
英文摘要
The symptoms of carbon cycle perturbations (CCP), either natural or induced by human activities are global warming, ocean acidification (OA) and dysoxia. These turn out to be a deadly mix as natural CCP have been identified as the main cause of at least 4 of the 5 mass extinctions in Earth history (Honisch et al. 2009; Bijma et al. 2013a). Anthropogenic activities are releasing CO2 ten times faster than at any time in the last 65 million years, and possibly the last 300 Myr, making the management of the anthropogenic carbon perturbation one of societies major challenges. To accurately project the consequences of anthropogenic CCP, it is vital to first understand the fluctuations and variability of the natural sinks and sources of the Earths carbon cycle. This requires accurate reconstruction of the oceanic carbonate chemistry because changes in the carbon storage in the deep ocean are the key to explain the glacial/interglacial atmospheric CO2 variations observed in ice core records (Köhler et al. 2005; Yu et al. 2010). Herein, we propose to quantify the processes that led to the ca. 100ppmv increase in atmospheric pCO2 over the glacial/interglacial transition. Processes in the Southern Ocean, where most of the deep water is ventilated, are suspected to play a central role in this regard. It is believed that the sluggish glacial ocean could store more carbon, that the biological pump was more efficient (through iron fertilization and ballasting) and that increased stratification of the water column reduced carbon leakage from the glacial Southern Ocean back to the atmosphere (Keeling and Visbeck 2001). During the deglaciation, this deep ocean carbon capacitor becomes reconnected with the atmosphere and leads to rapid CO2 outgassing because of incomplete nutrient utilization, which is characteristic for the Southern Ocean during warm periods (so called High Nutrient Low Chlorophyll (HNLC) region). To date, all of this remains hypothetical, albeit supported by circumstantial evidence (Martinez-Boti et al. 2015; Ronge et al. 2015), but not proven by direct reconstructions of the glacial/interglacial carbonate chemistry evolution. The overarching goal of our proposal is to analyse two independent carbonate chemistry proxies on benthic and planktonic foraminiferal tests from sediment cores recording the last G/IG transition in order to quantify natural CO2 outgassing and contribute to a better understanding of natural carbon storage and release. In order to improve the reconstructions, we will produce the first d11B pH and B/Ca bicarbonate ion calibration on deep sea benthic foraminifera under in situ pressure. We will also optimize the methods and the analytical tools towards smaller sample size, allowing for single shell analysis.
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会议论文
Simultaneous measurement of boron isotopes and the boron/calcium ratio in biogenic marine carbonates as a tool to reconstruct the marine carbonate system
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批准号:163418997
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项目类别:Research Grants
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资助金额:$0.0万
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财政年份:2010
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负责人:Professor Dr. Jelle Bijma, Ph.D.
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依托单位:
Calcareous Biocrystals. Research on their biochemically driven crystallization mechanism and the origin of the "vital effect" (FP 05)
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批准号:18918513
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项目类别:Research Grants
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资助金额:$0.0万
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财政年份:2006
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负责人:Professor Dr. Jelle Bijma, Ph.D.
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依托单位:
FP 02: Development, calibration and application of independent salinity proxies - PaleoSalt
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批准号:5446118
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项目类别:Research Grants
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资助金额:$0.0万
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财政年份:2006
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负责人:Professor Dr. Jelle Bijma, Ph.D.
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依托单位:
Development and validation of elemental ratio proxies in foraminifera and corals, using laboratory cultures, inorganic precipitation experiments, numerical small scale modelling and field investigations
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批准号:5387105
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项目类别:Research Grants
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资助金额:$0.0万
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财政年份:2002
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负责人:Professor Dr. Jelle Bijma, Ph.D.
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依托单位:
海外基金