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420000 year assessment of fault leakage rates shows geological carbon storage is secure

机译:42万年断层渗漏率评估显示地质碳储藏是安全的

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摘要

Carbon capture and storage (CCS) technology is routinely cited as a cost effective tool for climate change mitigation. CCS can directly reduce industrial CO2 emissions and is essential for the retention of CO2 extracted from the atmosphere. To be effective as a climate change mitigation tool, CO2 must be securely retained for 10,000 years (10 ka) with a leakage rate of below 0.01% per year of the total amount of CO2 injected. Migration of CO2 back to the atmosphere via leakage through geological faults is a potential high impact risk to CO2 storage integrity. Here, we calculate for the first time natural leakage rates from a 420 ka paleo-record of CO2 leakage above a naturally occurring, faulted, CO2 reservoir in Arizona, USA. Surface travertine (CaCO3) deposits provide evidence of vertical CO2 leakage linked to known faults. U-Th dating of travertine deposits shows leakage varies along a single fault and that individual seeps have lifespans of up to 200 ka. Whilst the total volumes of CO2 required to form the travertine deposits are high, time-averaged leakage equates to a linear rate of less than 0.01%/yr. Hence, even this natural geological storage site, which would be deemed to be of too high risk to be selected for engineered geologic storage, is adequate to store CO2 for climate mitigation purposes.
机译:通常,碳捕集与封存(CCS)技术是缓解气候变化的一种经济有效的工具。 CCS可以直接减少工业CO2排放,对于保留从大气中提取的CO2至关重要。为了有效地用作缓解气候变化的工具,必须将CO2安全地保留10,000年(10 ka),并且每年的泄漏率应低于所注入的CO2总量的0.01%。通过地质断裂造成的泄漏将CO2迁移回大气中,可能会对CO2储存完整性造成巨大的影响。在这里,我们首次从美国亚利桑那州一个自然发生的,有缺陷的CO2储层上方的420 ka古记录的CO2泄漏记录中计算了自然泄漏率。表面钙华(CaCO3)沉积物提供了与已知断层有关的垂直CO2泄漏的证据。钙华沉积的U-Th测年表明,渗漏沿单个断层而变化,单个渗流的寿命可达200​​ ka。虽然形成钙华沉积物所需的CO2总量很高,但时间平均泄漏量相当于线性比率小于0.01%/年。因此,即使这个自然的地质封存地点(被认为风险太大而无法选择进行工程地质封存)也足以存储二氧化碳用于缓解气候的目的。

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