在古世 - 世热极值期间,海洋的快速酸化
James C Zachos1, Ursula Röhl, Stephen A Schellenberg
1Earth Sciences Department, Earth and Marine Sciences Building, University of California, Santa Cruz, Santa Cruz, CA 95064, USA. jzachos@emerald.uscs.edu
概括
古世 - 世热极值 (PETM) 导致了快速的深海碳酸盐溶解,表明大规模的碳释放. 这一事件大大降低了石补偿深度 (CCD) 超过10万年.
科学领域:
- 古海洋学是古海洋学.
- 地质化学 地质化学
- 气候科学 气候科学
背景情况:
- 古世 - 世热极值 (PETM) 与大规模的碳释放有关,理论上可以降低海洋pH值,并降低石补偿深度 (CCD).
- 了解PETM对海洋化学和碳酸盐溶解的影响对于重建过去的气候事件至关重要.
研究的目的:
- 通过使用新的深海核心数据,调查PETM期间碳酸盐溶解的时间和程度.
- 为了精确估计在这个重要的地质事件期间的碳释放和海洋学反应.
主要方法:
- 来自五个新的南大西洋深海沉积物部分的地化学数据的分析.
- 检查沉积层,包括突出的粘土层,以推断水深和碳酸盐溶解的变化.
主要成果:
- 地化学数据显示,在PETM期间,CCD在2公里以上的速度 (<10,000年) 迅速缩小.
- 有证据表明,海底巨大的碳酸盐溶解与PETM发生一致.
- CCD显示了超过10万年的逐渐恢复.
结论:
- PETM与之前估计的碳释放量明显大 (>2000 x 10 ^ 9公).
- 这种碳的快速海洋吸收导致了大量的,持久的碳酸盐溶解.
- 酸盐气候反对释放的碳的永久封存起到了作用.
相关概念视频
Primary Production
The total amount of energy acquired by primary producers in an ecosystem is called gross primary production (GPP). However, of this energy, producers use some for metabolic processes, and some is lost as heat, decreasing the amount of energy available to the next trophic level. The remaining usable amount of energy is called the net primary productivity (NPP). In terrestrial ecosystems, NPP is driven by climate, while light penetration and nutrient availability drive NPP in aquatic ecosystems.
Global Climate Change
Throughout its ~4.5 billion year history, the Earth has experienced periods of warming and cooling. However, the current drastic increase in global temperatures is well outside of the Earth’s cyclic norms, and evidence for human-caused global climate change is compelling. Paleoclimatology, the study of ancient climate conditions, provides ample evidence for human-caused global climate change by comparing recent conditions with those in the past.
Diversity of Archaea I
Archaea, a domain of single-celled microorganisms, are classified into five major phyla based on genetic and biochemical characteristics: Euryarchaeota, Crenarchaeota, Thaumarchaeota, Korarchaeota, and Nanoarchaeota. Among these, the phylum Euryarchaeota is notable for its remarkable diversity in morphology, metabolism, and ecological adaptations.Morphological and Metabolic DiversityMembers of Euryarchaeota exhibit a variety of cellular shapes, including rods and cocci. Their metabolic pathways...
Origin of Photosynthesis
Photosynthesis represents a fundamental biological process that transformed Earth's atmosphere and paved the way for complex life. Emerging roughly 3.4–3.8 billion years ago, the earliest photosynthetic organisms harnessed light energy to produce organic compounds. These anoxygenic phototrophs used electron donors like hydrogen sulfide (H₂S) or ferrous iron (Fe²⁺), rather than water, and did not release molecular oxygen (O₂) as a byproduct. Various groups, including green sulfur and purple...
Marine Microbial Ecology
Marine microbial ecosystems are shaped by distinct physicochemical limits, including high salinity, low nutrient availability, and fluctuating oxygen levels. These conditions favor smaller microbial cell sizes, which maximize their surface-to-volume ratio for efficient nutrient uptake.Microbial activity and community composition are closely linked to biogeochemical cycles, particularly in dynamic environments like estuaries, where halotolerant microbes thrive in response to variable salinity...
Deep Sea Microbial Ecology
The deep ocean and its underlying sediments represent vast, largely unexplored microbial habitats that extend far beyond the sunlit photic zone. The photic (euphotic) zone typically spans the upper ~100–200 meters of pelagic waters in the open ocean, but its depth varies geographically and seasonally, where sufficient light supports photosynthetic life. Below this lies the deep sea, spanning roughly 1000–6000 meters (bathypelagic to abyssal zones), with deeper hadal trenches extending beyond...


