Javascript must be enabled to continue!
Deterministic Stress Modeling for Multistage Compressor Flowfields
View through CrossRef
Unsteadiness is one of the main characteristics in turbomachinery flows. Local unsteady changes in static pressure must exist within a turbo-machine in order for that machine to exchange energy with the fluid. The primary reason for unsteady effects lies in the interaction between moving and stationary blade rows. The industrial design process of aero-engines and gas turbines is still based on Reynolds-averaged Navier-Stokes (RANS) techniques where the coupling of blade rows is carried out by mixing-planes. However, this methodology does not cover deterministic unsteadiness in an adequate way. For standard aero-optimization, detailed unsteadiness is not essential to the designer of turbomachines but rather its effect on the time averaged solution. The time averaged deterministic unsteadiness can be expressed in terms of deterministic stresses. The present paper presents two different modeling strategies for deterministic stresses that constitute an improvement of the conventional steady mixing-plane approach. Whilst one of the presented models operates with deterministic flux terms based on preliminary unsteady simulations, the other one, a novel transport model for deterministic stress, is a stand-alone approach based on empirical correlations and a wide range of numerical experiments. A 4.5 stage transonic compressor is analyzed regarding blade row interaction effects and their impact on the time averaged solution. The two models are applied to the compressor and their solutions are compared to conventional mixing-plane, time accurate and experimental data. The results for the speedline, the wake shapes, the radial distributions and the rotor blade loadings show that the deterministic stress models strongly improve the RANS solution towards the time accurate and the experimental methods.
American Society of Mechanical Engineers
Title: Deterministic Stress Modeling for Multistage Compressor Flowfields
Description:
Unsteadiness is one of the main characteristics in turbomachinery flows.
Local unsteady changes in static pressure must exist within a turbo-machine in order for that machine to exchange energy with the fluid.
The primary reason for unsteady effects lies in the interaction between moving and stationary blade rows.
The industrial design process of aero-engines and gas turbines is still based on Reynolds-averaged Navier-Stokes (RANS) techniques where the coupling of blade rows is carried out by mixing-planes.
However, this methodology does not cover deterministic unsteadiness in an adequate way.
For standard aero-optimization, detailed unsteadiness is not essential to the designer of turbomachines but rather its effect on the time averaged solution.
The time averaged deterministic unsteadiness can be expressed in terms of deterministic stresses.
The present paper presents two different modeling strategies for deterministic stresses that constitute an improvement of the conventional steady mixing-plane approach.
Whilst one of the presented models operates with deterministic flux terms based on preliminary unsteady simulations, the other one, a novel transport model for deterministic stress, is a stand-alone approach based on empirical correlations and a wide range of numerical experiments.
A 4.
5 stage transonic compressor is analyzed regarding blade row interaction effects and their impact on the time averaged solution.
The two models are applied to the compressor and their solutions are compared to conventional mixing-plane, time accurate and experimental data.
The results for the speedline, the wake shapes, the radial distributions and the rotor blade loadings show that the deterministic stress models strongly improve the RANS solution towards the time accurate and the experimental methods.
Related Results
Root Cause Analysis of the Catastrophic Failure of a Propylene Recycle Compressor
Root Cause Analysis of the Catastrophic Failure of a Propylene Recycle Compressor
Abstract
A 2-section, 6-stage propylene recycle compressor experienced a catastrophic failure that resulted in extensive damage to its internals. The compressor was ...
Compressor Piping Design Effect on Vibration Data
Compressor Piping Design Effect on Vibration Data
One of the systems for oil and gas production supports is the nitrogen compression system. Problem found that condition of the compressor has high vibration with the maximum overal...
Real-Time Torque Estimation of an Air Conditioner Compressor for the CO2 Emissions Reduction from an Engine Vehicle
Real-Time Torque Estimation of an Air Conditioner Compressor for the CO2 Emissions Reduction from an Engine Vehicle
Reducing the CO2 emissions from all new cars is essential to prevent a climate emergency. Even in the trend of accelerating the uptake of zero-emission models, the market forecasti...
Compressor Development for CO2-Based Pumped Thermal Energy Storage (PTES) Systems
Compressor Development for CO2-Based Pumped Thermal Energy Storage (PTES) Systems
Abstract
Pumped thermal energy storage (PTES) offers a cost-effective means to store electrical energy for long duration by utilizing a heat pump cycle to transfer t...
Compressor Development for CO2-Based Pumped Thermal Energy Storage Systems
Compressor Development for CO2-Based Pumped Thermal Energy Storage Systems
Abstract
Pumped thermal energy storage (PTES) offers a cost-effective means to store electrical energy for long duration by utilizing a heat pump cycle to transfe...
Centrifugal Compressor Design Considerations
Centrifugal Compressor Design Considerations
Initial design considerations of centrifugal compressor are commonly performed with experience base, although computer technology and numerical methods had made significantly progr...
Achieving the Three Dimensions of Mixed Refrigerant Compressor Efficiency
Achieving the Three Dimensions of Mixed Refrigerant Compressor Efficiency
Abstract
Investors in small-scale LNG (SSLNG) face the grave challenge of achieving cost efficiency, operational efficiency, and energy efficiency in the equipment t...
The Effects of Wet Compression on Gas Turbine Engine Operating Performance
The Effects of Wet Compression on Gas Turbine Engine Operating Performance
Water, in the liquid or vapor phase, injected at various locations into the gas turbine cycle has frequently been employed to improve engine performance. One such way to improve en...

