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Advanced Polymer-Modified Cements for Subsurface Applications

Carlos A. FERNANDEZ, Kenton A. ROD, Phillip K. KOECH, Vanda GLEZAKOU, Manh NGUYEN, Jaehun CHUN, Miguel CORREA, Nicolas HUERTA, Barbara KUTCHKO

Key words
Self-healing, wellbore, cement, EGS, casing
Conference
Stanford Geothermal Workshop
Year
2018
Session
Reservoir Engineering
Language
English
Paper number
Fernandez

Full text

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Abstract

Wellbore failure at the cement lining is one of the most common drivers of reservoir intervention during geothermal energy and unconventional oil/gas production. The main causes for cement fracturing are chemically corrosive (typically hypersaline, CO2 and H2S-rich) environments, mechanical stress, and high temperatures (up to 190 °C in unconventional oil reservoirs and up to 350 °C in Enhanced Geothermal Systems). As a result, expensive and time-intensive production shutdowns and repairs are required. Intervention costs average $1.5million per wellbore without taking into consideration the economical losses as a result of production stoppage, which can be several million dollars depending on the time frame of plant in non-production mode. To address these problems we developed a thermally stable polymer-cement composite with self-healing properties while maintaining the required rheological (during pumping) and mechanical properties of typical wellbore cement. We demonstrated that these novel composite formulations present all the requirements of standard wellbore cement and introduce self-healing capability and re-adhering capability at steel casing as shown by reducing by up to 87% the permeability of mechanically-induced fractures in the 0.3-0.5mm aperture range. These polymer-cement composite materials could then represent a definite solution to wellbore failure, production stoppage and reservoir intervention during geothermal and fossil energy production. This presentation will briefly describe the concept and present experimental as well as modeling results obtained this far on this patent-pending technology.

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