碳封存

Ramamoorthy P
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引用次数: 0

摘要

能源、加工工业、土地利用转换和土壤耕作每年排放8.6PgCyr-1,开发技术以降低大气中二氧化碳浓度的增长率是21世纪的一个重要问题。在减少全球能源使用、开发低碳或无碳燃料和封存排放的三种选择中,本文描述了碳(CO2)封存的过程,并讨论了非生物和生物技术。碳固存意味着将大气中的二氧化碳转移到其他长期存在的全球库中,包括海洋、土壤、生物和地质地层,以降低大气中二氧化碳的净增长率。深海、地质地层、老煤矿、老油井、咸水层注二氧化碳工程技术与二氧化碳矿物碳酸化技术构成了非生物技术。这些技术具有数千Pg的巨大潜力,价格昂贵,存在泄漏风险,可能在2025年及以后可用于常规应用。相比之下,生物技术是自然的、具有成本效益的过程,有许多附带的好处,可以立即应用,但汇容量有限。生物和非生物碳封存方案具有特定的利基,是互补的,具有减轻气候变化风险的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Carbon Sequestration
Developing technologies to reduce the rate of increase of atmospheric concentration of carbon dioxide (CO2) from annual emissions of 8.6PgCyr-1 from energy, process industry, land-use conversion and soil cultivation is an important issue of the twenty-first century. Of the three options of reducing the global energy use, developing low or no-carbon fuel and sequestering emissions, this manuscript describes processes for carbon (CO2) sequestration and discusses abiotic and biotic technologies. Carbon sequestration implies transfer of atmospheric CO2 into other long-lived global pools including oceanic, pedologic, biotic and geological strata to reduce the net rate of increase in atmospheric CO2. Engineering techniques of CO2 injection in deep ocean, geological strata, old coal mines and oil wells, and saline aquifers along with mineral carbonation of CO2 constitute abiotic techniques. These techniques have a large potential of thousands of Pg, are expensive, have leakage risks and may be available for routine use by 2025 and beyond. In comparison, biotic techniques are natural and cost-effective processes, have numerous ancillary benefits, are immediately applicable but have finite sink capacity. Biotic and abiotic C sequestration options have specific nitches, are complementary, and have potential to mitigate the climate change risks.
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