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Dive into the research topics where Lars Wieth is active.

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Featured researches published by Lars Wieth.


Proceedings of the 10th Smoothed Particle Hydrodynamics European Research Interest Community Workshop (SPHERIC 2015), Parma, Italy, 16-18 June 2015 | 2015

Influence of particle disorder and smoothing length on SPH operator accuracy

Geoffroy Chaussonnet; Samuel Braun; Lars Wieth; Hans-Jörg Bauer

SPH consistency and different expression of SPH operators (gradient and Laplacian) accuracy are numerically investigated with regards to particle disorder and smoothing length on different particle distributions (2D and 3D Cartesian and 2D triangular). It is observed that particle disorder deteriorates SPH consistency and adds to the operators a diverging dependency on the smoothing length. Numerical tests evaluate the accuracy of the different operators on perturbed lattices, allowing to establish a rank in terms of robustness against particle disorder.


ASME Turbo Expo : Turbine Technical Conference and Exposition (GT 2015), Volume 2B : Turbomachinery, Montreal, Quebec, Canada, 15th - 19th June 2015 | 2015

Numerical Modeling of an Aero-Engine Bearing Chamber Using the Meshless Smoothed Particle Hydrodynamics Method

Lars Wieth; Christian Lieber; Wolfram Kurz; Samuel Braun; Rainer Koch; Hans-Jörg Bauer

The prediction of the two-phase flow in an aero-engine bearing chamber using the meshless Lagrangian Smoothed Particle Hydrodynamics (SPH) method is presented in this paper. The prediction of the prevailing flow types, like shear-driven wallfilms, droplet-wall- and droplet-film-interactions require an accurate numerical method, which is robust and efficient. Therefore, a code based on the SPH method was developed and validated to numerically predict such technical relevant multi-phase flows in gas turbines.The simulations to be presented in this paper are focused on an aero-engine bearing chamber configuration, which was experimentally investigated previously. For time saving reasons, the bearing chamber is modeled as two-dimensional problem. This requires special boundary conditions for the oil- and sealing-air flow inlet and outlet, which must physically reflect those of the experiments. In the experiments different operating regimes at different boundary conditions could be identified.The major objective of the simulations is to investigate if those different flow regimes can be captured by the numerical method. The simulations do reproduce the different flow regimes highly accurate and demonstrate the ability of this new approach.Copyright


Proceedings of ASME Turbo Expo 2017: Turbomachinery Technical Conference and Exposition : Volume 2B - Turbomachinery, Charlotte, North Carolina, USA, 26th - 30th June 2017 | 2017

Smoothed Particle Hydrodynamics Simulation of Oil-Jet Gear Interaction

Marc C. Keller; Samuel Braun; Lars Wieth; Geoffroy Chaussonnet; Thilo F. Dauch; Rainer Koch; Corina Schwitzke; Hans-Jörg Bauer

In this paper the complex two-phase flow during oil-jet impingement on a rotating spur gear is investigated using the meshless Smoothed Particle Hydrodynamics (SPH) method. A comparison of single-phase SPH to multi-phase SPH simulation and the application of the Volume of Fluid method on the basis of a two-dimensional setup is drawn. The results of the different approaches are compared regarding the predicted flow phenomenology and computational effort. It is shown that the application of single-phase SPH is justified and that this approach is superior in computational time, enabling faster simulations. In a next step, a three-dimensional single-phase SPH setup is exploited to predict the flow phenomena during the impingement of an oil-jet on a spur gear for various jet inclination angles. Thereby, a significant effect of the inclination angle on the oil spreading and splashing process is revealed. Finally, a qualitative comparison to an experimental high-speed image shows good accordance.


ILASS 2017 : 28th European Conference on Liquid Atomization and Spray Systems, Valencia, Spain, 6th - 8th September 2017 | 2017

Computational Prediction of Primary Breakup in Fuel Spray Nozzles for Aero-Engine Combustors

Thilo F. Dauch; Samuel Braun; Lars Wieth; Geoffroy Chaussonnet; Marc C. Keller; Rainer Koch; Hans-Jörg Bauer

This work was performed on the computational resource ForHLR Phase II funded by the Ministry of Science, Research and Arts Baden-Wurttemberg and DFG (”Deutsche Forschungsgemeinschaft“). In addition the authors would like to thank Rolls-Royce Deutschland Ltd & Co KG for the outstanding cooperation. The authors also are grateful for many lively and fruitful discussions with Simon Holz.


13th Triennial International Conference on Liquid Atomization and Spray Systems (ICLASS 2015), Tainan, TWN, August 23 - 27, 2015. Ed.: T. Lin | 2015

SPH Simulation of a Twin-Fluid Atomizer Operating with a High Viscosity Liquid

Geoffroy Chaussonnet; Samuel Braun; Lars Wieth; Rainer Koch; Hans-Jörg Bauer; A. Sänger; T. Jakobs; Neda Djordjevic; T. Kolb

G. Chaussonnet, S. Braun, L. Wieth, R. Koch, H.-J. Bauer A. Sänger, T. Jakobs, N. Djordjevic, T. Kolb Karlsruher Institut für Technologie (KIT), Karlsruhe, Germany 1Institute of Thermal Turbomachines, KIT Campus South 2Institute of Technical Chemistry, KIT Campus North 3Engler-Bunte-Institute, KIT Campus South *[email protected] Abstract A Smooth Particles Hydrodynamics (SPH) 2D simulation of a twin-fluid atomizer is presented and compared with experiments in the context of bio-fuel production. The configuration consists in an axial high viscosity liquid jet (μl ≈ 0.5 Pa.s) atomized by a coflowing high-speed air stream (ug ≈ 100 m/s) at atmospheric conditions, and the experiment shows two types of jet instability (flapping or pulsating) depending on operating conditions and the nozzle geometry. In order to capture the 3D effects of the axial geometry with a 2D simulation, the surface tension force and the viscosity operator are modified. The mean and RMS velocity profiles of the single phase simulations show a good agreement with the experiment. For multiphase simulations, despite a qualitative good agreement, the type of instabilities as well as its frequency are rarely well captured, highlighting the limitation of 2D geometry in the prediction of 3D configurations.


ieee international conference on high performance computing data and analytics | 2016

Modeling of the Deformation Dynamics of Single and Twin Fluid Droplets Exposed to Aerodynamic Loads

Lars Wieth; Samuel Braun; Geoffroy Chaussonnet; Thilo F. Dauch; Marc C. Keller; Corina Höfler; Rainer Koch; Hans-Jörg Bauer

Droplet deformation and breakup plays a significant role in liquid fuel atomization processes. The droplet behavior needs to be understood in detail, in order to derive simplified models for predicting the different processes in combustion chambers. Therefore, the behavior of single droplets at low aerodynamic loads was investigated using the Lagrangian, mesh-free Smoothed Particle Hydrodynamics (SPH) method. The simulations to be presented in this paper are focused on the deformation dynamics of pure liquid droplets and fuel droplets with water added to the inside of the droplet. The simulations have been run at two different relative velocities. As SPH is relatively new to Computational Fluid Dynamics (CFD), the pure liquid droplet simulations are used to verify the SPH code by empirical correlations available in literature. Furthermore, an enhanced characteristic deformation time is proposed, leading to a good description of the temporal initial deformation behavior for all investigated test cases. In the further course, the deformation behavior of two fluid droplets are compared to the corresponding single fluid droplet simulations. The results show an influence of the added water on the deformation history. However, it is found that, the droplet behavior can be characterized by the pure fuel Weber number.


Proceedings of the 10th Smoothed Particle Hydrodynamics European Research Interest Community Workshop (SPHERIC 2015), Parma, Italy, 16-18 June 2015 | 2015

A Framework for Permeable Boundary Conditions in SPH : Inlet, Outlet, Periodicity

Samuel Braun; Lars Wieth; Rainer Koch; Hans-Jörg Bauer


Microfluidics and Nanofluidics | 2016

Smoothed Particle Hydrodynamics (SPH) simulation of a high-pressure homogenization process

Lars Wieth; Katharina Kelemen; Samuel Braun; Rainer Koch; Hans-Jörg Bauer; Heike P. Schuchmann


ASME Turbo Expo 2016 : Turbomachinery Technical Conference and Exposition (GT 2016), Seoul, South Korea, 13th - 17th June 2016 | 2016

Computation of Liquid Fuel Atomization and Mixing by Means of the SPH Method : Application to a Jet Engine Fuel Nozzle

Thilo F. Dauch; Samuel Braun; Lars Wieth; Geoffroy Chaussonnet; Marc C. Keller; Rainer Koch; Hans-Jörg Bauer


ICLASS 2015, 13th Triennial International Conference on Liquid Atomization and Spray Systems, Tainan, Taiwan, 23-27 August 2015 | 2015

Influence of Trailing Edge Height on Primary Atomization : Numerical Studies Applying the Smoothed Particle Hydrodynamics (SPH) Method

Samuel Braun; Lars Wieth; Rainer Koch; Hans-Jörg Bauer

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Samuel Braun

Karlsruhe Institute of Technology

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Hans-Jörg Bauer

Karlsruhe Institute of Technology

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Rainer Koch

Karlsruhe Institute of Technology

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Geoffroy Chaussonnet

Karlsruhe Institute of Technology

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Thilo F. Dauch

Karlsruhe Institute of Technology

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Corina Höfler

Karlsruhe Institute of Technology

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Corina Schwitzke

Karlsruhe Institute of Technology

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Heike P. Schuchmann

Karlsruhe Institute of Technology

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Katharina Kelemen

Karlsruhe Institute of Technology

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A. Sänger

Karlsruhe Institute of Technology

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