FP6Индивидуална стипендия2005–2007

C-CARES · Cardiovascular-consistent approach for refined simulation

6РП — Действия „Мария Кюри“

Период
2005-07-01 → 2007-06-30
Финансиране от ЕС
161 428 €
Участници
1
Схема
EIF

Линиите свързват координатора с партньорите.

Накратко на български

Компютърни модели на сърдечно-съдовата система се разработват чрез използване на високоразрешаващи изображения на артериите и心ventricular contraction. Те помагат за по-доброто разбиране на сложните процеси в организма и позволяват тестването на различни медицински сценарии.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Final Activity Report Summary - C-CARES (Cardiovascular-Consistent Approach for REfined Simulation)

The last ten years have seen significant advances in the field of functional cardiovascular imaging. It is becoming increasingly feasible to obtain high resolution dynamic images of ventricular contraction and of the mechanical and haemodynamic behaviour of the arteries. The new technologies, apart from their direct clinical benefits, also have the potential to provide the high quality input data which is necessary for the implementation of computational models of the cardiovascular system. The clinical potential of such models, which are developed to have a predictive capacity, to improve understanding of the complex system, or to provide data at a resolution which cannot be obtained via clinical or experimental measurements, is increasingly being recognised. The task of developing and integrating these models was challenging. Models could be validated in isolation. When clinical input data was not available, boundary conditions had to be defined. One vision was that they could be provided in terms of physiologically-oriented models, which were of reduced complexity in terms of the necessary computational resources; however they had to be of sufficient complexity to represent the interaction of the system and its environment. Existing computational resources and software provided a suitable framework for testing in silico models, working hypotheses and what-if scenarios. Present computational resources also allowed for the improvement of boundary conditions to produce dynamic and biologically meaningful models. While using the available computational resources, the modeller was actively restricting the clinical usefulness of the model a posteriori when fixing boundary conditions, since simulation results were difficult to correlate with clinical results related to other organs or subsystems. The results were also difficult to be linked to other computational models in practice. Without appropriate, biologically-oriented boundary conditions, there was a missing link in the modelling process and this inevitably had consequences on the model applicability and the generation of knowledge from it. Cardiovascular models presented a particular challenge since they required both a multi-scale and a multi-physics approach. Using complex three-dimensional numerical models for the whole system was computationally prohibitive; thus a compromise was needed. The most sophisticated fluid-solid interaction structures provided exquisite detail in the fluid domain, but were limited by the prescription of boundary conditions. An alternative multi-scale solution was to couple lumped parameter models in terms of the boundary conditions with a finite element model for the part in which detail and accuracy were needed. Significant improvement could be achieved in understanding the underlying physics if the lumped parameter approach included more physiologically representative mechanisms rather than traditional black-box models. This work encompassed a number of diverse disciplines, such as physiology, biomechanics, fluid mechanics and simulation, in order to develop a suitable framework for coupling three-dimensional and lumped parameter models and a predictive model of the behaviour of a prosthetic heart valve in vivo. A commercial, finite volume, computational fluid dynamics (CFD) code (ANSYS/CFX) was used for the three-dimensional model component. Our main achievement was the integration of disparate techniques ( i.e. lumped parameter models with three-dimensional models) to present a three-dimensional model of a cardiac valve using the internal features that were available in ANSYS/CFX coupled with a multi-scale model of the left ventricle to address complex cardiovascular problems.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

Cardiovascular disease is the biggest cause of morbidity and mortality in Europe. Its study brings together experts from the physical and life sciences with clinical practitioners in the search for understanding of the complex processes underpinning cardio vascular physiology. This proposal seeks to develop an energetically consistent framework into which models of disparate processes on disparate time and length scales can be integrated to further this understanding. It would be unrealistic to expect this programme to pull together all multidisciplinary threads, but it can develop a coherent framework for cardiovascular simulation. It will focus on the integration of bond graph elements, representing system characteristics in a coherent and intuitive manner, with 3D computational models, providing detail of local stress distributions and flow structures. The bond graph framework offers the facility for ready and consistent integration of descriptors of mechanical, chemical, electrical and biological events.The simulation environment will be exercised in the study of an important problem in cardiovascular mechanics, namely the evaluation of closure forces of heart valve prostheses. For mechanical heart valve prostheses these can be very high, and can lead to early failure and, in some cases, to local cavitation in the blood. There are currently no models that integrate the mechano-chemical characteristics of the ventricular wall with local haemodynamics to compute closure forces. All current sophisticated models (including fluid-solid interaction) require explicit definition of either ventricular motion or pressure. The success of this proposal hinges on the combination of the expertise of the applicant, in bond graph modelling, with that of the host institution , in finite element analysis, computational fluid dynamics and in computational simulation environment development. The host department is located in a teaching hospital and has major clinical collaborations.

Оригинален текст от CORDIS (на английски).

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Данни: CORDIS, © Европейски съюз