In this article, a novel approach is presented for combining standard fluidstructure
interaction with additional volumetric constraints to model fluid
flow into and from homogenised solid domains. The proposed algorithm is
particularly interesting for investigations in the field of respiratory mechanics
as it enables the mutual coupling of airflow in the conducting part and local
tissue deformation in the respiratory part of the lung by means of a volume
constraint. In combination with a classical monolithic fluid-structure
interaction approach, a comprehensive model of the human respiratory system
can be established that enables clinically relevant investigations, e.g.,
of ventilator-associated lung injury in an efficient manner. To illustrate the
validity and versatility of the novel approach, three numerical examples including
a patient-specific lung model are presented. The proposed algorithm
proves its capability of computing clinically relevant airflow distribution and
tissue strain data at a level of detail that is not yet achievable, neither with
current imaging techniques nor with existing computational models.
«
In this article, a novel approach is presented for combining standard fluidstructure
interaction with additional volumetric constraints to model fluid
flow into and from homogenised solid domains. The proposed algorithm is
particularly interesting for investigations in the field of respiratory mechanics
as it enables the mutual coupling of airflow in the conducting part and local
tissue deformation in the respiratory part of the lung by means of a volume
constraint. In combination with a c...
»