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Dive into the research topics where Sergej Gordeev is active.

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Featured researches published by Sergej Gordeev.


ASME 2010 3rd Joint US-European Fluids Engineering Summer Meeting collocated with 8th International Conference on Nanochannels, Microchannels, and Minichannels | 2010

Large Eddy Simulations of Taylor-Görtler Instabilities in Transitional and Turbulent Boundary Layers

Sergej Gordeev; Robert Stieglitz; Volker Heinzel

Free surface liquid metal targets are considered in several high power targets as a tool to produce secondary particles, since their power density exceeds material sustainable limits. Many target designs consider due to the high power deposited in the liquid a concave formed back plate in order to yield a higher boiling point. Upstream the free surface target domain the liquid metal flow is conditioned by a nozzle. However, a back-wall curvature as well as a concave shaped exit nozzle contour can lead to the occurrence of secondary motions in the flow caused by Taylor-Gortler (TG) instabilities. These motions may impact the hydrodynamic stability the flow and also lead to an undesired heat transfer from the hottest region produced within the liquid target towards the uncooled back plate. In this study, the suitability of the Large Eddy Simulation (LES) technique to simulate the formation, development and destruction TG instabilities in transitional and turbulent boundary layers was tested by comparing the simulation results with experimental data reported in literature. All comparisons exhibit a qualitative and quantitative good agreement between experimental data and numerical predictions regarding the mean flow parameters and unsteady large-scale structures caused by TG instabilities.Copyright


Volume 4: Fatigue and Fracture; Fluids Engineering; Heat Transfer; Mechatronics; Micro and Nano Technology; Optical Engineering; Robotics; Systems Engineering; Industrial Applications | 2008

Analysis of Goertler Instabilities in the IFMIF Li-Target Flow

Sergej Gordeev; Volker Heinzel

The International Fusion Materials Facility (IFMIF) uses a high speed Lithium (Li) free surface flow as a target, which is hit by two deuteron beams having each a power of 5 MW. The major function of the Li target is to provide a stable Li surface layer for the production of an intense neutron flux, to remove by forced convection the beam energy deposited in the Li layer and to avoid an overheat of the back wall structure beyond material sustainable limits. The target flow is conditioned by sophisticated shaped nozzle. Downstream the nozzle the liquid metal flows along a concave shaped back-wall in order to generate an increased pressure within the Lithium layer, which elevates the boiling temperature of the liquid. This article describes an analytical and numerical fluid dynamic study of the secondary liquid motions potentially occurring due to the concave shaped wall as well as its impact on the temperature distribution within the liquid lithium. First, the secondary flow distributions appearing in a turbulent flow along a curved wall are analyzed, where the major attention is paid to Goertler vortices, which emerge exceeding a critical flow velocity as a convective instability due to centrifugal forces. Further, a large-eddy simulation (LES) of the turbulent flow along the back-wall is conducted and the obtained data are compared to experiments. The results show that both the formation of the Goertler vortices as well as their decay are reasonably well predicted by the simulation. After the validation of the LES method the simulation has been transferred to the lithium target geometry at IFMIF standard operation conditions assuming decreased lithium layer thicknesses down to 23 mm. In this context besides the LES a conventional fluid dynamic computations based on the Reynolds-averaged turbulence model have been performed. The results show that the Reynolds-averaged models are not capable to predict the occurrence of Goertler vortices as the LES does. The formation of the Goertler vortices, however, yields to hot spots at the back wall which can reach temperature rises of more than 100°C compared to the nominal case.Copyright


symposium on fusion technology | 2007

Mini-channel flow experiments and CFD validation analyses with the IFMIF thermo-hydraulic experimental facility (ITHEX)

Frederik Arbeiter; Sergej Gordeev; Volker Heinzel; D. Leichtle; Erwin Stratmanns


Fusion Engineering and Design | 2011

Hydraulic numerical analyses of the IFMIF target performance

Sergej Gordeev; Volker Heinzel; Robert Stieglitz


Fusion Engineering and Design | 2017

The test cell configuration under IFMIF-DONES condition

Kuo Tian; Frederik Arbeiter; Sergej Gordeev; Friedrich Gröschel; Yuefeng Qiu


Fusion Engineering and Design | 2012

Numerical analysis of high-speed liquid lithium free-surface flow

Sergej Gordeev; Volker Heinzel; Robert Stieglitz


Fusion Engineering and Design | 2008

Numerical analysis of free surface instabilities in the IFMIF lithium target

Sergej Gordeev; Volker Heinzel; D. Leichtle; A. Moeslang


Fusion Engineering and Design | 2016

Numerical analysis of high-speed Lithium jet flow under vacuum conditions

Sergej Gordeev; F. Groeschel; Robert Stieglitz


International Journal of Heat and Fluid Flow | 2013

Investigation on development of free-surface structures in turbulent liquid lithium flow

Sergej Gordeev; Volker Heinzel; Robert Stieglitz


Fusion Engineering and Design | 2006

Analysis of turbulence models for thermohydraulic calculations of helium cooled fusion reactor components

Frederik Arbeiter; Sergej Gordeev; Volker Heinzel; V. Slobodtchouk

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Volker Heinzel

Karlsruhe Institute of Technology

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Robert Stieglitz

Karlsruhe Institute of Technology

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Frederik Arbeiter

Karlsruhe Institute of Technology

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D. Leichtle

Karlsruhe Institute of Technology

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Friedrich Gröschel

Karlsruhe Institute of Technology

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Wolfgang Hering

Karlsruhe Institute of Technology

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Yuefeng Qiu

Karlsruhe Institute of Technology

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A. Moeslang

Karlsruhe Institute of Technology

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Erwin Stratmanns

Karlsruhe Institute of Technology

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F. Groeschel

Karlsruhe Institute of Technology

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