Endoreversible Modeling of a Hydraulic Recuperation System
Hybrid drive systems able to recover and reuse braking energy of the vehicle can reduce fuel consumption, air pollution and operating costs. Among them, hydraulic recuperation systems are particularly suitable for commercial vehicles, especially if they are already equipped with a hydraulic system....
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doaj-9fbc2194ff9543b7bb843e96f17061b92020-11-25T03:10:06ZengMDPI AGEntropy1099-43002020-03-0122438310.3390/e22040383e22040383Endoreversible Modeling of a Hydraulic Recuperation SystemRobin Masser0Karl Heinz Hoffmann1Institut für Physik, Technische Universität Chemnitz, 09107 Chemnitz, GermanyInstitut für Physik, Technische Universität Chemnitz, 09107 Chemnitz, GermanyHybrid drive systems able to recover and reuse braking energy of the vehicle can reduce fuel consumption, air pollution and operating costs. Among them, hydraulic recuperation systems are particularly suitable for commercial vehicles, especially if they are already equipped with a hydraulic system. Thus far, the investigation of such systems has been limited to individual components or optimizing their control. In this paper, we focus on thermodynamic effects and their impact on the overall systems energy saving potential using endoreversible thermodynamics as the ideal framework for modeling. The dynamical behavior of the hydraulic recuperation system as well as energy savings are estimated using real data of a vehicle suitable for application. Here, energy savings accelerating the vehicle around <inline-formula> <math display="inline"> <semantics> <mrow> <mn>10</mn> <mrow></mrow> </mrow> </semantics> </math> </inline-formula> and a reduction in energy transferred to the conventional disc brakes around <inline-formula> <math display="inline"> <semantics> <mrow> <mn>58</mn> <mrow></mrow> </mrow> </semantics> </math> </inline-formula> are predicted. We further vary certain design and loss parameters—such as accumulator volume, displacement of the hydraulic unit, heat transfer coefficients or pipe diameter—and discuss their influence on the energy saving potential of the system. It turns out that heat transfer coefficients and pipe diameter are of less importance than accumulator volume and displacement of the hydraulic unit.https://www.mdpi.com/1099-4300/22/4/383non-equilibrium thermodynamics, endoreversible thermodynamics, energy recovery, compressible fluid, pressure losses, van der waals fluid, hydraulic systems. |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Robin Masser Karl Heinz Hoffmann |
spellingShingle |
Robin Masser Karl Heinz Hoffmann Endoreversible Modeling of a Hydraulic Recuperation System Entropy non-equilibrium thermodynamics, endoreversible thermodynamics, energy recovery, compressible fluid, pressure losses, van der waals fluid, hydraulic systems. |
author_facet |
Robin Masser Karl Heinz Hoffmann |
author_sort |
Robin Masser |
title |
Endoreversible Modeling of a Hydraulic Recuperation System |
title_short |
Endoreversible Modeling of a Hydraulic Recuperation System |
title_full |
Endoreversible Modeling of a Hydraulic Recuperation System |
title_fullStr |
Endoreversible Modeling of a Hydraulic Recuperation System |
title_full_unstemmed |
Endoreversible Modeling of a Hydraulic Recuperation System |
title_sort |
endoreversible modeling of a hydraulic recuperation system |
publisher |
MDPI AG |
series |
Entropy |
issn |
1099-4300 |
publishDate |
2020-03-01 |
description |
Hybrid drive systems able to recover and reuse braking energy of the vehicle can reduce fuel consumption, air pollution and operating costs. Among them, hydraulic recuperation systems are particularly suitable for commercial vehicles, especially if they are already equipped with a hydraulic system. Thus far, the investigation of such systems has been limited to individual components or optimizing their control. In this paper, we focus on thermodynamic effects and their impact on the overall systems energy saving potential using endoreversible thermodynamics as the ideal framework for modeling. The dynamical behavior of the hydraulic recuperation system as well as energy savings are estimated using real data of a vehicle suitable for application. Here, energy savings accelerating the vehicle around <inline-formula> <math display="inline"> <semantics> <mrow> <mn>10</mn> <mrow></mrow> </mrow> </semantics> </math> </inline-formula> and a reduction in energy transferred to the conventional disc brakes around <inline-formula> <math display="inline"> <semantics> <mrow> <mn>58</mn> <mrow></mrow> </mrow> </semantics> </math> </inline-formula> are predicted. We further vary certain design and loss parameters—such as accumulator volume, displacement of the hydraulic unit, heat transfer coefficients or pipe diameter—and discuss their influence on the energy saving potential of the system. It turns out that heat transfer coefficients and pipe diameter are of less importance than accumulator volume and displacement of the hydraulic unit. |
topic |
non-equilibrium thermodynamics, endoreversible thermodynamics, energy recovery, compressible fluid, pressure losses, van der waals fluid, hydraulic systems. |
url |
https://www.mdpi.com/1099-4300/22/4/383 |
work_keys_str_mv |
AT robinmasser endoreversiblemodelingofahydraulicrecuperationsystem AT karlheinzhoffmann endoreversiblemodelingofahydraulicrecuperationsystem |
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