Parameterized, numerical design of a two-wheel Curtis steam turbine for small scale WHR

Author:

Streit Philipp,Weiß Andreas P.

Abstract

In contrast to the current trend of converting waste heat into electricity in the small power range below 100 kWel by means of an ORC plant, the authors are pursuing the concept of a micro steam power plant equipped with a micro turbine. Water avoids many of the problems often associated with organic working fluids, such as flammability, toxicity, greenhouse gas effect and high fluid costs. However, water vapor makes turbine design more challenging. The physical reasons for this are repeated, and thereby it becomes clear why a velocity compounded two wheel Curtis turbine has been chosen. The used in-house 1D turbine design tool is briefly introduced. More focus is put on the shortcomings of the implemented 1D loss model and their negative impact on the current turbine design. Consequently, the authors continued actual turbine design by a parameterized approach in 3D CAD/CFD. This approach is explained, and finally, the CFD flow field and the performance maps of the designed turbine are discussed. The turbine is currently under construction and will be installed in 2022 in a waste heat recovery (WHR) plant in Nuremberg/Germany.

Publisher

EDP Sciences

Subject

General Medicine

Reference25 articles.

1. Pehnt D.M., Bödeker J., Arens M., Jochem D.E., Idrissova F. Die Nutzung industrieller Abwärme - technisch-wirtschaftliche Potenziale und energiepolitische Umsetzung: Bericht im Rahmen des Vorhabens „Wissenschaftliche Begleitforschung zu übergreifenden technischen, ökologischen, ökonomischen und strategischen Aspekten des nationalen Teils der Klimaschutzinitiative“. Heidlberg, Karlsruhe; 2010.

2. Macchi E., Astolfi M. (eds.). Organic rankine cycle (ORC) power systems: Technologies and applications. Duxford,, U.K., Amsterdam, Boston, Heidelberg, London, New York, Oxford, Paris, San Diego, San Francisco, Singapore, Sydney, Tokyo: Woodhead Publishing is an imprint of Elsevier; Elsevier; 2017.

3. Tanuma T. Advances in steam turbines for modern power plants. Oxford: Woodhead Publishing; 2016.

4. Raab Florian, Opferkuch Frank, Klein Harald. Dezentrale Verstromung von Abwärme: Forschungsarbeit zur Abwärmenutzung mittels Steam-Rankine-Cycle-Technlogie. In: BWK Energie.

5. Kraus M.H., Deichsel M., Hirsch P., Opferkuch F., Heckel C. Hermetic 40-kW-Class Steam Turbine System for the Bottoming Cycle of Internal Combustion Engines. In: ASME Turbo Expo 2016: Turbomachinery Technical Conference and Exposition, June 13-17, 2016, Seoul, South Korea. New York, N.Y.: ASME; 2016.

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