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WORKING FLUID SELECTION AND DESIGN OF SMALL-SCALE WASTE HEAT RECOVERY SYSTEMS BASED ON ORGANIC RANKINE CYCLES

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WORKING FLUID SELECTION AND DESIGN OF SMALL-SCALE WASTE HEAT RECOVERY SYSTEMS BASED ON ORGANIC RANKINE CYCLES ( working-fluid-selection-and-design-small-scale-waste-heat-re )

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9 List of publications supporting the present monograph The present monograph contains both material that has been published previously by the author elsewhere and material, that has not been published before. A large part of the results presented in the present monograph are related to the following scientific publica- tions. Antti Uusitalo is the principal author of the papers. Scientific journal papers Publication I: Uusitalo A., Turunen-Saaresti T., Honkatukia J., Colonna P., and Lar- jola J. (2013). Siloxanes as Working Fluids for Mini-ORC Systems Based on High- Speed Turbogenerator Technology. Journal of Engineering for Gas Turbines and Power, 135(4):042305, pp.1-9. Chapter 5 is based on the results presented in this paper. The use of siloxanes as working fluids in mini-scale ORC systems is studied and discussed in Publication I by means of thermodynamic analysis. The author was responsible for the numerical work presented in this paper. Publication II: Uusitalo A., Honkatukia J., Turunen-Saaresti T., and Larjola J. (2014). A Thermodynamic Analysis of Waste Heat Recovery from Reciprocating Engine Power Plants by means of Organic Rankine Cycles. Applied Thermal Engineering, 70(1), pp. 33-41. Section 7.1 is based on the results presented in this paper. The waste heat recovery in large-scale reciprocating engines by means of ORC is studied and discussed in Publica- tion II by means of thermodynamic analysis. The author was responsible for the numerical work presented in this paper. Refereed conference articles Publication III: Uusitalo A., Turunen-Saaresti T., Guardone A., and Gro ̈nman A. (2014). Design and Modeling of Highly Supersonic Small Scale Radial ORC Turbine Stator with High Molecular Complexity Working Fluids. Proceedings of ASME Turbo Expo 2014, GT2014-26204, 16-20 June 2014, Du ̈sseldorf, Germany. The results presented in section 6.1 are partly based on the results presented in this paper. The paper presents the design and flow analysis of a highly supersonic turbine stator. The author was responsible for the numerical work including the design of the stator geom- etry, pre processign, numerical modelling, and post processing. Alberto Guardone from Politecnico Di Milano provided the design tool for supersonic nozzles used in the design of the studied turbine stator.

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