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Journal article

System analysis and optimisation of a Kalina split-cycle for waste heat recovery on large marine diesel engines

In Energy 2014, Volume 64, pp. 484-494
From

Department of Mechanical Engineering, Technical University of Denmark1

Thermal Energy, Department of Mechanical Engineering, Technical University of Denmark2

Waste heat recovery systems can produce power from heat without using fuel or emitting CO2, therefore their implementation is becoming increasingly relevant. The Kalina cycle is proposed as an efficient process for this purpose. The main reason for its high efficiency is the non-isothermal phase change characteristics of the ammonia-water working fluid.

The present study investigates a unique type of Kalina process called the Split-cycle, applied to the exhaust heat recovery from large marine engines. In the Split-cycle, the working fluid concentration can be changed during the evaporation process in order to improve the match between the heat source and working fluid temperatures.

We present a system analysis to identify the governing mechanisms of the process, including a comparison of the efficiency of the Split-cycle and a conventional Kalina cycle and an investigation of the effects of using reheat in both cases. Results of a multi-variable optimisation effort using a genetic algorithm suggest that the Split-cycle process can obtain a thermal efficiency of 23.2% when using reheat compared to 20.8% for a conventional reference Kalina cycle.

Reheat can increase the thermal efficiency by 3.4e5.9%. A simplified cost analysis suggests higher purchase costs as result of increased process complexity. © 2013 Elsevier Ltd. All rights reserved.

Language: English
Year: 2014
Pages: 484-494
ISSN: 03605442 and 18736785
Types: Journal article
DOI: 10.1016/j.energy.2013.10.069
ORCIDs: Larsen, Ulrik , Nguyen, Tuong-Van and Haglind, Fredrik

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