Toward the Integrated Design of Organic Rankine Cycle Power Plants: A Method for the Simultaneous Optimization of Working Fluid, Thermodynamic Cycle, and Turbine

Author:

Lampe Matthias1,De Servi Carlo2,Schilling Johannes1,Bardow André3,Colonna Piero4

Affiliation:

1. Institute of Technical Thermodynamics, RWTH Aachen University, Schinkelstrasse 8, Aachen 52062, Germany

2. Flemish Institute for Technology Research (VITO), Boeretang 200, Mol 2400, Belgium; Propulsion and Power, Aerospace Engineering Faculty, Delft University of Technology, Kluyverweg 1, Delft 2629 HS, The Netherlands

3. Institute of Technical Thermodynamics, RWTH Aachen University, Schinkelstrasse 8, Aachen 52062, Germany; Institute of Energy and Climate Research, Energy Systems Engineering (IEK-10), Forschungszentrum Jülich GmbH, Wilhelm-Johnen-Straße, Jülich 52425, Germany

4. Propulsion and Power, Aerospace Engineering Faculty, Delft University of Technology, Kluyverweg 1, Delft 2629 HS, The Netherlands

Abstract

Abstract The conventional design of organic Rankine cycle (ORC) power systems starts with the selection of the working fluid and the subsequent optimization of the corresponding thermodynamic cycle. More recently, systematic methods have been proposed integrating the selection of the working fluid into the optimization of the thermodynamic cycle. However, in both cases, the turbine is designed subsequently. This procedure can lead to a suboptimal design, especially in the case of mini- and small-scale ORC systems, since the preselected combination of working fluid and operating conditions may lead to infeasible turbine designs. The resulting iterative design procedure may end in conservative solutions after multiple trial-and-error attempts due to the strong interdependence of the many design variables and constraints involved. In this work, we therefore present a new design and optimization method integrating working fluid selection, thermodynamic cycle design, and preliminary turbine design. To this purpose, our recent 1-stage continuous-molecular targeting (CoMT)-computer-aided molecular design (CAMD) method for the integrated design of the ORC process and working fluid is expanded by a turbine meanline design procedure. Thereby, the search space of the optimization is bounded to regions where the design of the turbine is feasible. The resulting method has been tested for the design of a small-scale high-temperature ORC unit adopting a radial-inflow turbo-expander. The results confirm the potential of the proposed method over the conventional iterative design practice for the design of small-scale ORC turbogenerators.

Funder

Applied and Engineering Sciences Domain (TTW) of the Dutch Organization for Scientific Research

Deutsche Forschungsgemeinschaft

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference77 articles.

1. Organic Rankine Cycle Power Systems: Rom the Concept to Current Technology, Applications, and an Outlook to the Future;ASME J. Eng. Gas Turbines Power,2015

2. Fluid Selection for a Low-Temperature Solar Organic Rankine Cycle;Appl. Therm. Eng.,2009

3. Exergy Based Fluid Selection for a Geothermal Organic Rankine Cycle for Combined Heat and Power Generation;Appl. Therm. Eng.,2010

4. Thermo-Economic Optimization of Waste Heat Recovery Organic Rankine Cycles;Appl. Therm. Eng.,2011

5. Assessment of Waste Heat Recovery From a Heavy-Duty Truck Engine by Means of an ORC Turbogenerator;ASME J. Eng. Gas Turbines Power,2013

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