About

Log in?

DTU users get better search results including licensed content and discounts on order fees.

Anyone can log in and get personalized features such as favorites, tags and feeds.

Log in as DTU user Log in as non-DTU user No thanks

DTU Findit

Journal article

Oil and gas platforms with steam bottoming cycles: System integration and thermoenvironomic evaluation

In Applied Energy 2014, Volume 131, pp. 222-237
From

Department of Mechanical Engineering, Technical University of Denmark1

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

Swiss Federal Institute of Technology Lausanne3

International Research Institute of Stavanger4

The integration of steam bottoming cycles on oil and gas platforms is currently regarded as the most promising option for improving the performance of these energy-intensive systems. In this paper, a North Sea platform is taken as case study, and a systematic analysis of its energy requirements is conducted.

The site-scale integration of steam networks is evaluated, based on thermodynamic, economic and environmental performance indicators. The penalties induced by operational restrictions such as (i) the use of a heat transfer loop, (ii) the demand for a heat buffer, (iii) the selection of a specific cooling utility, and (iv) the weight limitations on the platform are quantitatively assessed.

The results illustrate the benefits of converting the gas turbine process into a combined cycle, since the fuel gas consumption and the total CO2-emissions can be reduced by more than 15 %. Using the cooling water from the processing plant reveals to be more profitable than using seawater, as the additional pumping power outweighs the benefit of using a cooling medium at a temperature of about 8 °C lower.

This study highlights thereby the importance of analysing energy savings and recovery options at the scale of the entire platform, rather than at the level of the utility plant solely.

Language: English
Year: 2014
Pages: 222-237
ISSN: 18729118 and 03062619
Types: Journal article
DOI: 10.1016/j.apenergy.2014.06.034
ORCIDs: Nguyen, Tuong-Van and Elmegaard, Brian

DTU users get better search results including licensed content and discounts on order fees.

Log in as DTU user

Access

Analysis