A numerical second law analysis is performed to determine the entropy production due to irreversibilities in condensing steam flows. In the present work, the classical approach to calculate entropy production rates in turbulent flows based on velocity and temperature gradients is extended to two-phase condensing flows modeled within an Eulerian–Eulerian framework. This requires some modifications of the general approach and the inclusion of additional models to account for thermodynamic and kinematic relaxation processes. With this approach, the entropy production within each mesh element is obtained. In addition to the quantification of thermodynamic and kinematic wetness losses, a breakdown of aerodynamic losses is possible to allow for a detailed loss analysis. The aerodynamic losses are classified into wake mixing, boundary layer, and shock losses. The application of the method is demonstrated by means of the flow through a well-known steam turbine cascade test case. Predicted variations of loss coefficients for different operating conditions can be confirmed by experimental observations. For the investigated test cases, the thermodynamic relaxation contributes the most to the total losses and the losses due to droplet inertia are only of minor importance. The variation of the predicted aerodynamic losses for different operating conditions is as expected and demonstrates the suitability of the approach.
Skip Nav Destination
Article navigation
December 2018
Research-Article
Second Law Analysis of Condensing Steam Flows
Marius Grübel,
Marius Grübel
Institute of Thermal Turbomachinery and
Machinery Laboratory (ITSM),
University of Stuttgart,
Stuttgart 70569, Germany
e-mail: marius.gruebel@itsm.uni-stuttgart.de
Machinery Laboratory (ITSM),
University of Stuttgart,
Stuttgart 70569, Germany
e-mail: marius.gruebel@itsm.uni-stuttgart.de
Search for other works by this author on:
Markus Schatz,
Markus Schatz
Institute of Thermal Turbomachinery and
Machinery Laboratory (ITSM),
University of Stuttgart,
Stuttgart 70569, Germany
e-mail: markus.schatz@itsm.uni-stuttgart.de
Machinery Laboratory (ITSM),
University of Stuttgart,
Stuttgart 70569, Germany
e-mail: markus.schatz@itsm.uni-stuttgart.de
Search for other works by this author on:
Damian M. Vogt
Damian M. Vogt
Institute of Thermal Turbomachinery and
Machinery Laboratory (ITSM),
University of Stuttgart,
Stuttgart 70569, Germany
e-mail: damian.vogt@itsm.uni-stuttgart.de
Machinery Laboratory (ITSM),
University of Stuttgart,
Stuttgart 70569, Germany
e-mail: damian.vogt@itsm.uni-stuttgart.de
Search for other works by this author on:
Marius Grübel
Institute of Thermal Turbomachinery and
Machinery Laboratory (ITSM),
University of Stuttgart,
Stuttgart 70569, Germany
e-mail: marius.gruebel@itsm.uni-stuttgart.de
Machinery Laboratory (ITSM),
University of Stuttgart,
Stuttgart 70569, Germany
e-mail: marius.gruebel@itsm.uni-stuttgart.de
Markus Schatz
Institute of Thermal Turbomachinery and
Machinery Laboratory (ITSM),
University of Stuttgart,
Stuttgart 70569, Germany
e-mail: markus.schatz@itsm.uni-stuttgart.de
Machinery Laboratory (ITSM),
University of Stuttgart,
Stuttgart 70569, Germany
e-mail: markus.schatz@itsm.uni-stuttgart.de
Damian M. Vogt
Institute of Thermal Turbomachinery and
Machinery Laboratory (ITSM),
University of Stuttgart,
Stuttgart 70569, Germany
e-mail: damian.vogt@itsm.uni-stuttgart.de
Machinery Laboratory (ITSM),
University of Stuttgart,
Stuttgart 70569, Germany
e-mail: damian.vogt@itsm.uni-stuttgart.de
Manuscript received June 22, 2018; final manuscript received June 25, 2018; published online August 20, 2018. Editor: Jerzy T. Sawicki.
J. Eng. Gas Turbines Power. Dec 2018, 140(12): 121003 (8 pages)
Published Online: August 20, 2018
Article history
Received:
June 22, 2018
Revised:
June 25, 2018
Citation
Grübel, M., Schatz, M., and Vogt, D. M. (August 20, 2018). "Second Law Analysis of Condensing Steam Flows." ASME. J. Eng. Gas Turbines Power. December 2018; 140(12): 121003. https://doi.org/10.1115/1.4040711
Download citation file:
Get Email Alerts
Cited By
Inter-Stage Pressure Drop of Multi-Stage Brush Seal With Differentiated Structure
J. Eng. Gas Turbines Power (July 2023)
Estimation of Wiebe Function Parameters for Syngas and Anode Off-Gas Combustion in Spark-Ignition Engines
J. Eng. Gas Turbines Power (July 2023)
Mixture Distribution in Spark Ignited Port Fuel Injection Engines: A Review
J. Eng. Gas Turbines Power (July 2023)
Related Articles
Investigation of Vortex Shedding and Wake-Wake Interaction in a Transonic Turbine Stage Using Laser-Doppler-Velocimetry and Particle-Image-Velocimetry
J. Turbomach (January,2006)
Numerical Investigation of the Influence of Real World Blade Profile Variations on the Aerodynamic Performance of Transonic Nozzle Guide Vanes
J. Turbomach (March,2012)
Two-Phase Flow Modeling and Measurements in Low-Pressure Turbines—Part II: Turbine Wetness Measurement and Comparison to Computational Fluid Dynamics-Predictions
J. Eng. Gas Turbines Power (April,2015)
Two-Phase Flow Modeling and Measurements in Low-Pressure Turbines—Part I: Numerical Validation of Wet Steam Models and Turbine Modeling
J. Eng. Gas Turbines Power (April,2015)
Related Chapters
Control and Operational Performance
Closed-Cycle Gas Turbines: Operating Experience and Future Potential
Thermodynamic Performance
Closed-Cycle Gas Turbines: Operating Experience and Future Potential
Outlook
Closed-Cycle Gas Turbines: Operating Experience and Future Potential