Changes in depositional paleoenvironment of black shales in the Permian Irati Formation (Paraná Basin, Brazil): Geochemical evidence and aromatic biomarkers

2021 ◽  
Vol 126 ◽  
pp. 104917
Author(s):  
Caroline Adolphsson do Nascimento ◽  
Eliane Soares de Souza ◽  
Laercio Lopes Martins ◽  
Hélio Jorge Portugal Severiano Ribeiro ◽  
Victor Hugo Santos ◽  
...  
2021 ◽  
Author(s):  
Saulo B. de Oliveira ◽  
Colombo C. G. Tassinari ◽  
Richardson M. A-A. ◽  
Ignacio Torresi

Abstract The Paris Agreement established global ambitious targets for reducing carbon dioxide (CO2) emissions, requiring the rapid and extensive development of low carbon technologies, and one of the most efficient is CO2 geological storage. Among the deep geological formations used for CO2 storage, the shale layers have been a new emerging topic showing to be efficient because they are abundant and have a high content of organic matter, being favorable for CO2 retention. However, one of the challenges in evaluating a location for possible reservoirs is the adequate geological characterization and storage volume estimates. This research evaluated the Irati Formation of the Paraná Basin, through the information from hydrocarbon exploration wells in Southeastern Brazil, where most stationary sources of carbon emissions are located. Three-dimensional (3D) implicit modeling techniques were applied not only for the volume calculation purpose, but also in the site selection stage, generating thematic 3D models of thickness, depth, structures, and distance to aquifer systems. The limestones, shales, and black shales of the Irati Formation were locally divided into six units according to geological composition and spatial continuity. The E black shale unit was considered for CO2 geological storage indicating a theoretical capacity of 1.85 Gt of CO2. The potential of the achieved capacity is promising not only for been greater than the total of CO2 locally produced but also for supporting the implantation of new projects in this region.


2020 ◽  
Vol 100 ◽  
pp. 102559 ◽  
Author(s):  
Cintia Mayra S. Martins ◽  
José Roberto Cerqueira ◽  
Helio Jorge P.S. Ribeiro ◽  
Karina S. Garcia ◽  
Neiva N. da Silva ◽  
...  

2021 ◽  
Author(s):  
Saulo B. de Oliveira ◽  
Colombo C. G. Tassinari ◽  
Richardson M. A-A. ◽  
Ignacio Torresi

Abstract The Paris Agreement established global ambitious targets for reducing carbon dioxide (CO2) emissions, requiring the rapid and extensive development of low carbon technologies, and one of the most efficient is CO2 geological storage. Among the deep geological formations used for CO2 storage, the shale layers have been a new emerging topic showing to be efficient because they are abundant and have a high content of organic matter, being favorable for CO2 retention. However, one of the challenges in evaluating a location for possible reservoirs is the adequate geological characterization and storage volume estimates. This research evaluated the Irati Formation of the Paraná Basin, through the information from hydrocarbon exploration wells in Southeastern Brazil, where most stationary sources of carbon emissions are located. Three-dimensional (3D) implicit modeling techniques were applied not only for the volume calculation purpose, but also in the site selection stage, generating thematic 3D models of thickness, depth, structures, and distance to aquifer systems. The limestones, shales, and black shales of the Irati Formation were locally divided into six units according to geological composition and spatial continuity. The E black shale unit was considered for CO2 geological storage indicating a theoretical capacity of 1.85 Gt of CO2. The potential of the achieved capacity is promising not only for been greater than the total of CO2 locally produced but also for supporting the implantation of new projects in this region.


2010 ◽  
Vol 58 (5) ◽  
pp. 606-626 ◽  
Author(s):  
Camila Wense Dias Dos Anjos ◽  
Alain Meunier ◽  
Edi Mendes Guimarães ◽  
Abderrazzak el Albani

2021 ◽  
Vol 289 ◽  
pp. 104415
Author(s):  
Rafael Spiekermann ◽  
André Jasper ◽  
Anelise Marta Siegloch ◽  
Margot Guerra-Sommer ◽  
Dieter Uhl

2020 ◽  
Vol 104 ◽  
pp. 102873
Author(s):  
Maria Adriana M. dos Santos ◽  
Caroline A. do Nascimento ◽  
Eliane S. Souza ◽  
Laercio L. Martins ◽  
Hélio Jorge P. Severiano Ribeiro ◽  
...  

2020 ◽  
Vol 43 (4) ◽  
Author(s):  
Werlem Holanda ◽  
Anderson Costa dos Santos ◽  
Camila Cardoso Nogueira ◽  
Sérgio Bergamaschi ◽  
René Rodrigues ◽  
...  

The thermal effects of an igneous intrusion on organic-rich sedimentary rocks can be considering an important source of maturation of organic matter. The Permian Irati Formation of Paraná Basin (Brazil) is a carbonatic and organic-rich shale sequence intruded by Jurassic-Cretaceous basic rocks. This study reports possible effects of igneous intrusion on the organic matter content of Irati Formation, in Sapopema region (Paraná State). Total organic carbon (TOC), total sulfur (S) and insoluble residue (IR) data were combined with scanning electron microscopy (SEM) and energy dispersive spectroscopy (EDS). The relatively low TOC values recorded in well where Irati Formation is in contact with 60 m of diabase sill (SP-58-PR) are residuals, associated with the depletion of organic carbon, caused by the thermal effect from the overlying intrusive rock. It was responsible to promote the cracking of the organic matter and reduced those values in relation to the original ones, observed in SP-32-PR (without thermal influence). When comparing the TOC peaks of the Assisting Member in both wells, it was observed that there was a decrease between 80.7 and 84% in the SP-58-PR. SEM images reveal that organic matter in Taquaral Member is sub-rounded and regular shape, while the organic matter in Assistência Member presents a characteristic pattern of thermally evolved organic matter.


2020 ◽  
Vol 50 (3) ◽  
Author(s):  
Rodrigo Irineu Cerri ◽  
George Luiz Luvizotto ◽  
Francisco Manoel Wohnrath Tognoli ◽  
Lucas Veríssimo Warren ◽  
Juliana Okubo ◽  
...  

Sign in / Sign up

Export Citation Format

Share Document