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Methodology to design a bottoming Rankine cycle

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Methodology to design a bottoming Rankine cycle ( methodology-design-bottoming-rankine-cycle )

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Methodology to design a bottoming Rankine cycle, as a waste energy recovering system in vehicles. Study in a HDD engine Abstract V. Macia ́n, J. R. Serrano, V. Dolz, J. Sa ́nchez Universitat Polite`cnica de Vale`ncia, CMT-Motores Te ́rmicos, Camino de Vera s/n, 46022 Valencia, Spain. This article describes a methodology for the optimization of a bottoming cycle as a waste heat recovering system in vehicles. The methodology is applied to two particular cases in order to evaluate the preliminary energetic and technical feasibility of the implementation of a bottoming cycle in a heavy duty diesel (HDD) engine considering two different criteria. Initially, a study of the different waste heat sources of the engine is described. In this study, the power and exergy of each heat source is quantified, in order to evaluate which sources are suitable to be used in the bottoming cycle. The optimum working fluids to run the cycles are selected (water and R245fa). Then, the ideal Rankine cycle is optimized for the two different working fluids and different sets of heat sources (all the available heat sources and the sources with high exergy respectively) throughout the engine operating range, reaching a maximum improvement of 15 % of the fuel consumption of the engine. Later, a study of the minimum temperature difference between the hot and cold flow of the heat exchangers is described. The improvements in fuel consumption and the size of the installed heat exchanger are related to this temperature difference. Finally, the non-ideal behavior of the machines (pump and expander) is analyzed, obtaining a maximum improvement of 10 % in brake specific fuel consumption (bsfc). Keywords: OrganicRankineCycle,Diesel,RankineCycle,RecoverWastePower 1 1. Introduction 2 The interest for increasing fuel economy and efficiency has recently been growing among governments, industrial 3 companies and engine manufactures to the extent that the quantity of waste energy produced [1], represent a driving 4 force for development of more effective methods of waste energy recovery [2] . The carbon dioxide emissions are also 5 gaining significant attention due to its association with global warming and the fact that about 80 % of said emissions 6 in the Organization for Economic Co-operation and Development (OECD) countries or the European Union are due to 7 the use and production of energy, industries or manufacturing [3, 4]. Nowadays, the global carbon dioxide emissions 8 have risen steadily over the past 50 years to a concentration of approximately 380 ppm in the atmosphere as of 2006 9 [5]. ∗V. Dolz. CMT-Motores Te ́rmicos,Universitat Polite`cnica de Vale`ncia, Camino de Vera s/n, 46022 Valencia, Spain. Phone: +34 963877650 Fax: +34 963877659 e-mail: vidolrui@mot.upv.es Preprint submitted to Applied Energy September 5, 2012

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