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Dive into the research topics where Stephen Glover is active.

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Featured researches published by Stephen Glover.


Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering | 2014

Preliminary analysis of organic Rankine cycles to improve vehicle efficiency

Stephen Glover; Roy Douglas; Laura Glover; Geoffrey McCullough

This paper presents the background rationale and key findings for a model-based study of supercritical waste heat recovery organic Rankine cycles. The paper’s objective is to cover the necessary groundwork to facilitate the future operation of a thermodynamic organic Rankine cycle model under realistic thermodynamic boundary conditions for performance optimisation of organic Rankine cycles. This involves determining the type of power cycle for organic Rankine cycles, the circuit configuration and suitable boundary conditions. The study focuses on multiple heat sources from vehicles but the findings are generally applicable, with careful consideration, to any waste heat recovery system. This paper introduces waste heat recovery and discusses the general merits of organic fluids versus water and supercritical operation versus subcritical operation from a theoretical perspective and, where possible, from a practical perspective. The benefits of regeneration are investigated from an efficiency perspective for selected subcritical and supercritical conditions. A simulation model is described with an introduction to some general Rankine cycle boundary conditions. The paper describes the analysis of real hybrid vehicle data from several driving cycles and its manipulation to represent the thermal inertia for model heat input boundary conditions. Basic theory suggests that selecting the operating pressures and temperatures to maximise the Rankine cycle performance is relatively straightforward. However, it was found that this may not be the case for an organic Rankine cycle operating in a vehicle. When operating in a driving cycle, the available heat and its quality can vary with the power output and between heat sources. For example, the available coolant heat does not vary much with the load, whereas the quantity and quality of the exhaust heat varies considerably. The key objective for operation in the vehicle is optimum utilisation of the available heat by delivering the maximum work out. The fluid selection process and the presentation and analysis of the final results of the simulation work on organic Rankine cycles are the subjects of two future publications.


Vehicle Thermal Management Systems Conference Proceedings (VTMS11)#R##N#15–16 May 2013, Coventry Technocentre, UK | 2013

Mathematical modelling of a reciprocating piston expander

Shane McKenna; Geoffrey McCullough; Roy Douglas; Stephen Glover

Modern internal combustion (IC) engines reject around two thirds of the energy provided by the fuel as low-grade waste heat. Capturing a portion of this waste heat energy and transforming it into a more useful form of energy could result in a significant reduction in fuel consumption. By using the low-grade heat, an organic Rankine cycle (ORC) can produce mechanical work from a pressurised organic fluid with the use of an expander.


Energy | 2015

Simulation of a multiple heat source supercritical ORC (Organic Rankine Cycle) for vehicle waste heat recovery

Stephen Glover; Roy Douglas; Mattia De Rosa; Xiaolei Zhang; Laura Glover


International Journal of Automotive Technology | 2015

Automotive waste heat recovery: Working fluid selection and related boundary conditions

Stephen Glover; Roy Douglas; Laura Glover; Geoffrey McCullough; Shane McKenna


Small Engine Technology Conference & Exposition | 1999

An Assessment of a Stratified Scavenging Process Applied to a Loop Scavenged Two-Stroke Engine

S. Mc Elligott; Roy Douglas; R. G. Kenny; Stephen Glover


Archive | 2012

ADAPTIVE HEAT EXCHANGE ARCHITECTURE FOR OPTIMUM ENERGY RECOVERY IN A WASTE HEAT RECOVERY ARCHITECTURE

Stephen Glover; John R. Bucknell; Norman K. Bucknor; Dongsuk Kum


SETC 2007 | 2007

The Feasibility of Meeting CARB / EPA 3 Emission Regulations for Small Engines

Roy Douglas; Stephen Glover


Energy Procedia | 2017

Circular Biogas-Based Economy in a Rural Agricultural Setting

Luke Blades; Kevin Morgan; Roy Douglas; Stephen Glover; Mattia De Rosa; Thomas Cromie; Beatrice Smyth


World Academy of Science, Engineering and Technology, International Journal of Mechanical, Aerospace, Industrial, Mechatronic and Manufacturing Engineering | 2015

Modelling of Organic Rankine Cycle for Waste Heat Recovery Process in Supercritical Condition

Jahedul Islam Chowdhury; Bao Kha Nguyen; David Thornhill; Roy Douglas; Stephen Glover


SAE 2016 World Congress and Exhibition | 2016

Numerical Analysis on a Dual-Loop Waste Heat Recovery System Coupled with an ORC for Vehicle Applications

Mattia De Rosa; Roy Douglas; Stephen Glover

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Roy Douglas

Queen's University Belfast

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Beatrice Smyth

Queen's University Belfast

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Laura Glover

Queen's University Belfast

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Shane McKenna

Queen's University Belfast

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Bao Kha Nguyen

Queen's University Belfast

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Luke Blades

Queen's University Belfast

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S. Mc Elligott

Queen's University Belfast

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