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Mass fractionation of noble gases in synthetic methane hydrate: Implications for naturally occurring gas hydrate dissociation

机译:合成甲烷水合物中稀有气体的质量分馏:对自然发生的天然气水合物分解的影响

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摘要

As a consequence of contemporary or longer term (since 15. ka) climate warming, gas hydrates in some settings may presently be dissociating and releasing methane and other gases to the ocean-atmosphere system. A key challenge in assessing the impact of dissociating gas hydrates on global atmospheric methane is the lack of a technique able to distinguish between methane recently released from gas hydrates and methane emitted from leaky thermogenic reservoirs, shallow sediments (some newly thawed), coal beds, and other sources. Carbon and deuterium stable isotopic fractionation during methane formation provides a first-order constraint on the processes (microbial or thermogenic) of methane generation. However, because gas hydrate formation and dissociation do not cause significant isotopic fractionation, a stable isotope-based hydrate-source determination is not possible. Here, we investigate patterns of mass-dependent noble gas fractionation within the gas hydrate lattice to fingerprint methane released from gas hydrates. Starting with synthetic gas hydrate formed under laboratory conditions, we document complex noble gas fractionation patterns in the gases liberated during dissociation and explore the effects of aging and storage (e.g., in liquid nitrogen), as well as sampling and preservation procedures. The laboratory results confirm a unique noble gas fractionation pattern for gas hydrates, one that shows promise in evaluating modern natural gas seeps for a signature associated with gas hydrate dissociation.
机译:由于当代或长期(自15ka起)气候变暖的结果,某些环境中的天然气水合物目前可能正在向海-气系统中解离并释放甲烷和其他气体。评估解离天然气水合物对全球大气甲烷的影响的关键挑战是缺乏一种能够区分天然气水合物中最近释放的甲烷和渗漏的热成藏,浅层沉积物(一些新融化的),煤层,和其他来源。甲烷形成过程中碳和氘稳定的同位素分馏对甲烷生成过程(微生物或热源)提供了一级约束。但是,由于气体水合物的形成和分解不会引起明显的同位素分馏,因此不可能进行基于同位素的稳定水合物源测定。在这里,我们研究了天然气水合物晶格中质量相关的稀有气体分馏模式,以指纹图谱从天然气水合物中释放出甲烷。从实验室条件下形成的合成气水合物开始,我们记录了在分解过程中释放出的气体中复杂的稀有气体分馏模式,并探讨了老化和储存(例如在液氮中)以及采样和保存程序的影响。实验室结果证实了天然气水合物的独特稀有气体分馏模式,这表明在评估现代天然气渗漏中与天然气水合物分解相关的特征方面很有希望。

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