Derisking geologic carbon storage from high-resolution time-lapse seismic to explainable leakage detection

Author:

Yin Ziyi1,Erdinc Huseyin Tuna1,Gahlot Abhinav Prakash1,Louboutin Mathias1,Herrmann Felix J.1

Affiliation:

1. Georgia Institute of Technology, Atlanta, Georgia, USA..

Abstract

Geologic carbon storage represents one of the few truly scalable technologies capable of reducing the CO2 concentration in the atmosphere. While this technology has the potential to scale, its success hinges on our ability to mitigate its risks. An important aspect of risk mitigation concerns assurances that the injected CO2 remains within the storage complex. Among the different monitoring modalities, seismic imaging stands out due to its ability to attain high-resolution and high-fidelity images. However, these superior features come at prohibitive costs and time-intensive efforts that potentially render extensive seismic monitoring undesirable. To overcome this shortcoming, we present a methodology in which time-lapse images are created by inverting nonreplicated time-lapse monitoring data jointly. By no longer insisting on replication of the surveys to obtain high-fidelity time-lapse images and differences, extreme costs and time-consuming labor are averted. To demonstrate our approach, hundreds of realistic synthetic noisy time-lapse seismic data sets are simulated that contain imprints of regular CO2 plumes and irregular plumes that leak. These time-lapse data sets are subsequently inverted to produce time-lapse difference images that are used to train a deep neural classifier. The testing results show that the classifier is capable of detecting CO2 leakage automatically on unseen data with reasonable accuracy. We consider the use of this classifier as a first step in the development of an automatic workflow designed to handle the large number of continuously monitored CO2 injection sites needed to help combat climate change.

Funder

Georgia Research Alliance, ML4Seismic Center

Publisher

Society of Exploration Geophysicists

Subject

Geology,Geophysics

Reference42 articles.

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2. Dosovitskiy, A., L. Beyer, A. Kolesnikov, D. Weissenborn, X. Zhai, T. Unterthiner, M. Dehghani et al. 2021, An image is worth 16 × 16 words: Transformers for image recognition at scale: Presented at International Conference on Learning Representations, https://openreview.net/forum?id=YicbFdNTTy, accessed 29 November 2022.

3. Erdinc, H. T., A. P. Gahlot, Z. Yin, M. Louboutin, and F. J. Herrmann, 2022, De-risking carbon capture and sequestration with explainable CO2leakage detection in time-lapse seismic monitoring images: Association for the Advancement of Artificial Intelligence Fall Symposium, https://slim.gatech.edu/Publications/Public/Conferences/AAAI/2022/erdinc2022AAAIdcc/erdinc2022AAAIdcc.pdf, accessed 29 November 2022.

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