Javascript must be enabled to continue!
High Resolution Large Eddy Simulations to Evaluate Turbulence Properties Within a Real Helicopter Engine Combustor
View through CrossRef
In a gas turbine, the combustor is feeding the turbine with hot gases at a high level of turbulence which in turns strongly enhances the heat transfer in the turbine. It is thus of primary importance to properly characterize the turbulence properties found at the exit of a combustor to design the turbine at its real thermal constraint. This being said, real engine measurements of turbulence are extremely rare if not inexistent because of the harsh environment and difficulty to implement experimental techniques that usually operate at isothermal conditions (e.g. hot wire anemometry). As a counterpart, high fidelity unsteady numerical simulations using Large Eddy Simulations (LES) are now mature enough to simulate combustion processes and turbulence within gas turbine combustors. It is thus proposed here to assess the LES methodology to qualify turbulence within a real helicopter engine combustor operating at take-off conditions. In LES, the development of turbulence is primarily driven by the level of real viscosity in the calculation, which is the sum of three contributions: laminar (temperature linked), turbulent (generated by the sub-grid scale model) and artificial (numerics dependent). In this study, the impact of the two main sources of un-desired viscosity is investigated: the mesh refinement and numerical scheme. To do so, three grids containing 11, 33 and 220 million cells for a periodic sector of the combustor are tested as well as centred second (Lax-Wendroff) and third order (TTGC) in space schemes. The turbulence properties (intensity and integral scales) are evaluated based on highly sampled instantaneous solutions and compared between the available simulations.
Results show first that the duration of the simulation is important to properly capture the level of turbulence. If short simulations (a few combustor through-times) may be sufficient to evaluate the turbulence intensity, a bias up to 14% is introduced for the turbulence length scales. In terms of calculation set-up, the mesh refinement is found to have a limited influence on the turbulence properties. The numerical scheme influence on the quantities studied here is small, highlighting that the employed schemes dissipation properties are already sufficient for turbulence characterization. Finally, spatially averaged values of turbulence intensity and lengthscale at the combustor exit are almost identically predicted in all cases. However, significant variations from hub to tip are reported, which questions the pertinence to use 0-D turbulence boundary conditions for turbines. Based on the set of simulations discussed in the paper, guidelines can be derived to adequately set-up (mesh, scheme) and run (duration, acquisition frequency) a LES when turbulence evaluation is concerned. As no experimental counterpart to this study is available, the conclusions mainly aim at knowing the possible numerical bias rather than commenting on the predictivity of the approach.
American Society of Mechanical Engineers
Title: High Resolution Large Eddy Simulations to Evaluate Turbulence Properties Within a Real Helicopter Engine Combustor
Description:
In a gas turbine, the combustor is feeding the turbine with hot gases at a high level of turbulence which in turns strongly enhances the heat transfer in the turbine.
It is thus of primary importance to properly characterize the turbulence properties found at the exit of a combustor to design the turbine at its real thermal constraint.
This being said, real engine measurements of turbulence are extremely rare if not inexistent because of the harsh environment and difficulty to implement experimental techniques that usually operate at isothermal conditions (e.
g.
hot wire anemometry).
As a counterpart, high fidelity unsteady numerical simulations using Large Eddy Simulations (LES) are now mature enough to simulate combustion processes and turbulence within gas turbine combustors.
It is thus proposed here to assess the LES methodology to qualify turbulence within a real helicopter engine combustor operating at take-off conditions.
In LES, the development of turbulence is primarily driven by the level of real viscosity in the calculation, which is the sum of three contributions: laminar (temperature linked), turbulent (generated by the sub-grid scale model) and artificial (numerics dependent).
In this study, the impact of the two main sources of un-desired viscosity is investigated: the mesh refinement and numerical scheme.
To do so, three grids containing 11, 33 and 220 million cells for a periodic sector of the combustor are tested as well as centred second (Lax-Wendroff) and third order (TTGC) in space schemes.
The turbulence properties (intensity and integral scales) are evaluated based on highly sampled instantaneous solutions and compared between the available simulations.
Results show first that the duration of the simulation is important to properly capture the level of turbulence.
If short simulations (a few combustor through-times) may be sufficient to evaluate the turbulence intensity, a bias up to 14% is introduced for the turbulence length scales.
In terms of calculation set-up, the mesh refinement is found to have a limited influence on the turbulence properties.
The numerical scheme influence on the quantities studied here is small, highlighting that the employed schemes dissipation properties are already sufficient for turbulence characterization.
Finally, spatially averaged values of turbulence intensity and lengthscale at the combustor exit are almost identically predicted in all cases.
However, significant variations from hub to tip are reported, which questions the pertinence to use 0-D turbulence boundary conditions for turbines.
Based on the set of simulations discussed in the paper, guidelines can be derived to adequately set-up (mesh, scheme) and run (duration, acquisition frequency) a LES when turbulence evaluation is concerned.
As no experimental counterpart to this study is available, the conclusions mainly aim at knowing the possible numerical bias rather than commenting on the predictivity of the approach.
Related Results
Modeling of Combustor and Turbine Vane Interaction
Modeling of Combustor and Turbine Vane Interaction
Abstract
Modern aero-engines are characterized by compact components (fan, compressor, combustor, and turbine). Such proximity creates a complex interaction between ...
Low-cost eddy covariance: a case study of evapotranspiration over agroforestry in Germany
Low-cost eddy covariance: a case study of evapotranspiration over agroforestry in Germany
Abstract. Eddy covariance has evolved as the method of choice for measurements of the ecosystem-atmosphere exchange of water vapour, sensible heat and trace gases. Under ideal cond...
Combustor Effusion Cooling Multiparameter Aerothermal Numerical Analysis
Combustor Effusion Cooling Multiparameter Aerothermal Numerical Analysis
The solid temperature prediction is one of the most widespread type of modelization used in the industry. One reading this study might wonder why there would be readymade solutions...
Hubungan antara Persepsi Helicopter Parenting dengan Kesejahteraan Subjektif Siswa SMP
Hubungan antara Persepsi Helicopter Parenting dengan Kesejahteraan Subjektif Siswa SMP
Abstract. Overcontrolling parenting, such as helicopter parenting, has become a global concern due to its association with emotional dysregulation, anxiety, and decreased psycholog...
PRESENT SITUATION AND PROSPECTS OF HELICOPTER TECHNOLOGY
PRESENT SITUATION AND PROSPECTS OF HELICOPTER TECHNOLOGY
First of all, the history of helicopter technology is reviewed. Through analyzing the five features of a helicopter including the performance of the helicopter engine, the technolo...
Stagnation Region Heat Transfer Augmentation at Very High Turbulence Levels
Stagnation Region Heat Transfer Augmentation at Very High Turbulence Levels
A database for stagnation region heat transfer has been extended to include heat transfer measurements acquired downstream from a new high intensity turbulence generator. This work...
Impact of magneto-rotational instability on grain growth in protoplanetary disks
Impact of magneto-rotational instability on grain growth in protoplanetary disks
Grain growth in protoplanetary disks is the first step towards planet formation. One of the most important pieces in the grain growth model is calculating the collisional velocity ...
Investigation of Severe Turbulence Over China During 2018–2025 From In Situ
EDR
Data
Investigation of Severe Turbulence Over China During 2018–2025 From In Situ
EDR
Data
ABSTRACT
The nation‐scale airborne turbulence features remain unclear in China. We investigated the characteristics of turbulence for the per...

