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		| @@ -109,7 +109,7 @@ We will show the extension to a CT scheme. Namely, in that case the following in | ||||
| \end{equation} | ||||
| for $(\mathbf{u}^n, p^n)$ the velocity/pressure pair solution at time $t^n$, in the reference domain $\Omega^0$, for operators to be specified in the talk.  | ||||
|  | ||||
| Our finding will be supplemented with an application to fluid-solid interaction in an idealized cardiac geometry, exploiting the splitting nature of the CT scheme with a well-known coupling approach \cite{bertoglio2013sisc}. \textcolor{red}{cita el paper original de fernandez, gerbau y grandmont porfa} | ||||
| Our finding will be supplemented with an application to fluid-solid interaction in an idealized cardiac geometry, exploiting the splitting nature of the CT scheme with a well-known coupling approach \cite{bertoglio2013sisc, fernandez-gerbeau-grandmont-06}. | ||||
| %In such a case, we will exploit the fluid pressure projection step, coupling it with the solid problem in an efficient fashion. Simulations of such a case will be provided, as well as the current research done in more realistic geometries. | ||||
| \begin{figure}[!hbtp] | ||||
| 	\centering | ||||
| @@ -118,7 +118,7 @@ Our finding will be supplemented with an application to fluid-solid interaction | ||||
| 	\label{fig:comparison_figure} | ||||
| \end{figure} | ||||
|  | ||||
| %\newpage | ||||
| \newpage | ||||
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|  | ||||
| \bibliography{biblio_merged.bib} | ||||
|   | ||||
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