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  • Manfred Staat (57) (remove)

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  • Fachbereich Medizintechnik und Technomathematik (57) (remove)

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Modification of a computer model of human stem cell-derived cardiomyocyte electrophysiology based on Patch-Clamp measurements (2019)
Aravind Hariharan Raman ; Alexander Jung ; András Horváth ; Nadine Becker ; Manfred Staat
Development of a tool to analyze the conduction speed in microelectrode array measurements of cardiac tissue (2019)
Jan Hunker ; Alexander Jung ; Matthias Goßmann ; Peter Linder ; Manfred Staat
3rd YRA MedTech Symposium. YRA - Young Researchers Academy, MedTech in NRW, May 24, 2019, FH Aachen (2019)
Manfred Staat ; Daniel Erni
Biomechanical multibody model with refined kinematics of the elbow (2018)
Stephanie L. Kahmann ; Stephan Uschok ; Kilian Wegmann ; Lars-P. Müller ; Manfred Staat
The overall objective of this study is to develop a new external fixator, which closely maps the native kinematics of the elbow to decrease the joint force resulting in reduced rehabilitation time and pain. An experimental setup was designed to determine the native kinematics of the elbow during flexion of cadaveric arms. As a preliminary study, data from literature was used to modify a published biomechanical model for the calculation of the joint and muscle forces. They were compared to the original model and the effect of the kinematic refinement was evaluated. Furthermore, the obtained muscle forces were determined in order to apply them in the experimental setup. The joint forces in the modified model differed slightly from the forces in the original model. The muscle force curves changed particularly for small flexion angles but their magnitude for larger angles was consistent.
Electromechanical model of hiPSC-derived ventricular cardiomyocytes cocultured with fibroblasts (2018)
Alexander Jung ; Ralf Frotscher ; Manfred Staat
The CellDrum provides an experimental setup to study the mechanical effects of fibroblasts co-cultured with hiPSC-derived ventricular cardiomyocytes. Multi-scale computational models based on the Finite Element Method are developed. Coupled electrical cardiomyocyte-fibroblast models (cell level) are embedded into reaction-diffusion equations (tissue level) which compute the propagation of the action potential in the cardiac tissue. Electromechanical coupling is realised by an excitation-contraction model (cell level) and the active stress arising during contraction is added to the passive stress in the force balance, which determines the tissue displacement (tissue level). Tissue parameters in the model can be identified experimentally to the specific sample.
Direct plastic structural design by chance constrained programming (2018)
Trình Ngọc Trần ; Hermann G. Matthies ; Georgios Eleftherios Stavroulakis ; Manfred Staat
We propose a stochastic programming method to analyse limit and shakedown of structures under random strength with lognormal distribution. In this investigation a dual chance constrained programming algorithm is developed to calculate simultaneously both the upper and lower bounds of the plastic collapse limit or the shakedown limit. The edge-based smoothed finite element method (ES-FEM) using three-node linear triangular elements is used.
Pectopexy to repair vaginal vault prolapse: a finite element approach (2018)
Aroj Bhattarai ; Manfred Staat
The vaginal prolapse after hysterectomy (removal of the uterus) is often associated with the prolapse of the vaginal vault, rectum, bladder, urethra or small bowel. Minimally invasive surgery such as laparoscopic sacrocolpopexy and pectopexy are widely performed for the treatment of the vaginal prolapse with weakly supported vaginal vault after hysterectomy using prosthetic mesh implants to support (or strengthen) lax apical ligaments. Implants of different shape, size and polymers are selected depending on the patient’s anatomy and the surgeon’s preference. In this computational study on pectopexy, DynaMesh®-PRP soft, GYNECARE GYNEMESH® PS Nonabsorbable PROLENE® soft and Ultrapro® are tested in a 3D finite element model of the female pelvic floor. The mesh model is implanted into the extraperitoneal space and sutured to the vaginal stump with a bilateral fixation to the iliopectineal ligament at both sides. Numerical simulations are conducted at rest, after surgery and during Valsalva maneuver with weakened tissues modeled by reduced tissue stiffness. Tissues and prosthetic meshes are modeled as incompressible, isotropic hyperelastic materials. The positions of the organs are calculated with respect to the pubococcygeal line (PCL) for female pelvic floor at rest, after repair and during Valsalva maneuver using the three meshes.
Biomechanical simulation of different prosthetic meshes for repairing uterine/vaginal vault prolapse (2017)
Medisa Jabbari ; Aroj Bhattarai ; Ralf Anding ; Manfred Staat
Calculation of muscle forces and joint reaction loads in shoulder area via an OpenSim based computer calculation (2017)
Stefan Birgel ; Tim Leschinger ; Kilian Wegmann ; Manfred Staat
Prevention of femur neck fractures through femoroplasty (2017)
Alexander Abel ; Daniel Pérez-Viana ; Bernard Ciritsis ; Manfred Staat
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