Numerical analysis of an Organic Rankine Cycle with adjustable working fluid composition, a volumetric expander and a recuperator

Collings, P. and Yu, Z. (2017) Numerical analysis of an Organic Rankine Cycle with adjustable working fluid composition, a volumetric expander and a recuperator. Energies, 10(4), 440. (doi: 10.3390/en10040440)

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Abstract

Conventional Organic Rankine Cycles (ORCs) using ambient air as their coolant cannot fully utilize the greater temperature differential available to them during the colder months. However, changing the working fluid composition so its boiling temperature matches the ambient temperature as it changes has been shown to have potential to increase year-round electricity generation. Previous research has assumed that the cycle pressure ratio is able to vary without a major loss in the isentropic efficiency of the turbine. This paper investigates if small scale ORC systems that normally use positive-displacement expanders with fixed expansion ratios could also benefit from this new concept. A numerical model was firstly established, based on which a comprehensive analysis was then conducted. The results showed that it can be applied to systems with positive-displacement expanders and improve their year-round electricity generation. However, such an improvement is less than that of the systems using turbine expanders with variable expansion ratios. Furthermore, such an improvement relies on heat recovery via the recuperator. This is because expanders with a fixed expansion ratio have a relatively constant pressure ratio between their inlet and outlet. The increase of pressure ratio between the evaporator and condenser by tuning the condensing temperature to match colder ambient condition in winter cannot be utilised by such expanders. However, with the recuperator in place, the higher discharging temperature of the expander could increase the heat recovery and consequently reduce the heat input at the evaporator, increasing the thermal efficiency and the specific power. The higher the amount of heat energy transferred in the recuperator, the higher the efficiency improvement.

Item Type:Articles
Status:Published
Refereed:Yes
Glasgow Author(s) Enlighten ID:Collings, Mr Peter and Yu, Professor Zhibin
Authors: Collings, P., and Yu, Z.
Subjects:T Technology > TJ Mechanical engineering and machinery
College/School:College of Science and Engineering > School of Engineering > Systems Power and Energy
Research Group:System power and energy
Journal Name:Energies
Publisher:MDPI
ISSN:1996-1073
ISSN (Online):1996-1073
Published Online:27 March 2017
Copyright Holders:Copyright © 2017 The Authors
First Published:First published in Energies 10(4): 440
Publisher Policy:Reproduced under a Creative Commons License

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Project CodeAward NoProject NamePrincipal InvestigatorFunder's NameFunder RefLead Dept
684301Dynamic Organic Rankine Cycle for Recovering Industrial Waste HeatZhibin YuEngineering & Physical Sciences Research Council (EPSRC)EP/N005228/1ENG - ENGINEERING SYSTEMS POWER & ENERGY
709761Thermally Driven Heat Pump Based on an Integrated Thermodynamic Cycle for Low Carbon Domestic Heating (Therma-Pump)Zhibin YuEngineering & Physical Sciences Research Council (EPSRC)EP/N020472/1ENG - ENGINEERING SYSTEMS POWER & ENERGY
642241Investigating zeotropic mixtures as working fluids for high efficiency Organic Rankine Cycle (ORC) power plantsZhibin YuRoyal Society (ROYSOC)RG130051ENG - ENGINEERING SYSTEMS POWER & ENERGY
721221Study on the integrated vehicle IC engine based ORC systemZhibin YuRoyal Society (ROYSOC)IE150866ENG - ENGINEERING SYSTEMS POWER & ENERGY