Review of Organic Rankine Cycles for Internal Combustion Engine Waste Heat Recovery: Latest Decade in Review

Обзор органических циклов Ренкина для утилизации отходящего тепла двигателей внутреннего сгорания: обзор последнего десятилетия
Charles E. Sprouse
2024-02-26

engine waste heat recoverymodel predictive controlorganic Rankine cyclesupercritical ORCworking fluids
The last decade (2013–2023) was the most prolific period of organic Rankine cycle (ORC) research in history in terms of both publications and citations. This article provides a detailed review of the broad and voluminous collection of recent internal combustion engine (ICE) waste heat recovery (WHR) studies, serving as a necessary follow-on to the author’s 2013 review. Research efforts have targeted diverse applications (e.g., vehicular, stationary, and building-based), and it spans the full gamut of engine sizes and fuels. Furthermore, cycle configurations extend far beyond basic ORC and regenerative ORC, particularly with supercritical, trilateral, and multi-loop ORCs. Significant attention has been garnered by fourth-generation refrigerants like HFOs (hydrofluoroolefins), HFEs (hydrofluoroethers), natural refrigerants, and zeotropic mixtures, as research has migrated away from the popular HFC-245fa (hydrofluorocarbon). Performance-wise, the period was marked by a growing recognition of the diminished performance of physical systems under dynamic source conditions, especially compared to steady-state simulations. Through advancements in system control, especially using improved model predictive controllers, dynamics-based losses have been significantly reduced. Regarding practically minded investigations, research efforts have ameliorated working fluid flammability risks, limited thermal degradation, and pursued cost savings. State-of-the-art system designs and operational targets have emerged through increasingly sophisticated optimization efforts, with some studies leveraging “big data” and artificial intelligence. Major programs like SuperTruck II have further established the ongoing challenges of simultaneously meeting cost, size, and performance goals; however, off-the-shelf organic Rankine cycle systems are available today for engine waste heat recovery, signaling initial market penetration. Continuing forward, next-generation engines can be designed specifically as topping cycles for an organic Rankine (bottoming) cycle, with both power sources integrated into advanced hybrid drivetrains.
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Dynamic source conditions substantially reduce physical-system performance relative to steady-state simulations, although advanced control—especially model predictive control—can reduce these losses.
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Internal combustion engine waste-heat-recovery studies covered vehicular, stationary, and building applications across diverse engine sizes and fuels.
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Practical studies addressed working-fluid flammability, thermal degradation, and cost, while optimization increasingly used big data and artificial intelligence.
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Recent cycle designs expanded beyond basic and regenerative ORCs to include supercritical, trilateral, and multi-loop configurations.
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Research shifted from HFC-245fa toward fourth-generation refrigerants, natural refrigerants, and zeotropic mixtures, including HFOs and HFEs.
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SuperTruck II and related programs highlighted persistent trade-offs among cost, system size, and performance, although commercial off-the-shelf ORC systems indicate initial market penetration.
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The 2013–2023 decade was the most prolific period in organic Rankine cycle research, measured by publications and citations.

Organic Rankine cycle systems for internal combustion engine waste heat recovery

Recent configurations, working fluids, dynamic performance, control, optimization, and practical design challenges of these waste-heat-recovery systems

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2024-02-26
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Charles E. Sprouse
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