Carl-Johan Thore
Linköping University
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Publication
Featured researches published by Carl-Johan Thore.
Biomechanics and Modeling in Mechanobiology | 2016
Babak Sharifimajd; Carl-Johan Thore; Jonas Stålhand
Contractions of uterine smooth muscle cells consist of a chain of physiological processes. These contractions provide the required force to expel the fetus from the uterus. The inclusion of these physiological processes is, therefore, imperative when studying uterine contractions. In this study, an electro-chemo-mechanical model to replicate the excitation, activation, and contraction of uterine smooth muscle cells is developed. The presented modeling strategy enables efficient integration of knowledge about physiological processes at the cellular level to the organ level. The model is implemented in a three-dimensional finite element setting to simulate uterus contraction during labor in response to electrical discharges generated by pacemaker cells and propagated within the myometrium via gap junctions. Important clinical factors, such as uterine electrical activity and intrauterine pressure, are predicted using this simulation. The predictions are in agreement with clinically measured data reported in the literature. A parameter study is also carried out to investigate the impact of physiologically related parameters on the uterine contractility.
American Journal of Physiology-heart and Circulatory Physiology | 2008
Carl-Johan Thore; Jonas Stålhand; Matts Karlsson
A method for estimation of central arterial pressure based on linear one-dimensional wave propagation theory is presented in this paper. The equations are applied to a distributed model of the arterial tree, truncated by three-element windkessels. To reflect individual differences in the properties of the arterial trees, we pose a minimization problem from which individual parameters are identified. The idea is to take a measured waveform in a peripheral artery and use it as input to the model. The model subsequently predicts the corresponding waveform in another peripheral artery in which a measurement has also been made, and the arterial tree model is then calibrated in such a way that the computed waveform matches its measured counterpart. For the purpose of validation, invasively recorded abdominal aortic, brachial, and femoral pressures in nine healthy subjects are used. The results show that the proposed method estimates the abdominal aortic pressure wave with good accuracy. The root mean square error (RMSE) of the estimated waveforms was 1.61 +/- 0.73 mmHg, whereas the errors in systolic and pulse pressure were 2.32 +/- 1.74 and 3.73 +/- 2.04 mmHg, respectively. These results are compared with another recently proposed method based on a signal processing technique, and it is shown that our method yields a significantly (P < 0.01) lower RMSE. With more extensive validation, the method may eventually be used in clinical practice to provide detailed, almost individual, specific information as a valuable basis for decision making.
International Conference on Engineering Optimization | 2018
Shyam Suresh; Stefan B. Lindström; Carl-Johan Thore; Bo Torstenfelt; Anders Klarbring
We develop a topology optimization method including high-cycle fatigue as a constraint. The fatigue model is based on a continuous-time approach, which uses the concept of a moving endurance surface as a function of the stress history and back stress evolution. The development of damage only occurs when the stress state lies outside the endurance surface. Furthermore, an aggregation function, which approximates the maximum fatigue damage, is implemented. As the optimization workflow is sensitivity-based, the fatigue sensitivities are determined using an adjoint sensitivity analysis. The capabilities of the presented approach are tested on numerical models where the problem is to maximize the stiffness subject to high-cycle fatigue constraints.
Structural and Multidisciplinary Optimization | 2015
Erik Holmberg; Carl-Johan Thore; Anders Klarbring
Computer Methods in Applied Mechanics and Engineering | 2017
Carl-Johan Thore; Erik Holmberg; Anders Klarbring
Structural and Multidisciplinary Optimization | 2017
Erik Holmberg; Carl-Johan Thore; Anders Klarbring
Structural and Multidisciplinary Optimization | 2016
Carl-Johan Thore
11th World Congress on Structural and Multidisciplinary Optimization (WCSMO-11), Sydney Australia, 7–12 June | 2015
Carl-Johan Thore; Erik Holmberg; Anders Klarbring
Structural and Multidisciplinary Optimization | 2012
Carl-Johan Thore; Anders Klarbring
Computers & Structures | 2013
Carl-Johan Thore