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Effective Optimization of Power Management for Fuel Cell Hybrid Vehicles Based on Pontryagins Minimum Principle

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dc.contributor.advisor차석원-
dc.contributor.authorchunhuazheng-
dc.date.accessioned2017-07-13T06:08:43Z-
dc.date.available2017-07-13T06:08:43Z-
dc.date.issued2012-08-
dc.identifier.other000000004172-
dc.identifier.urihttps://hdl.handle.net/10371/118303-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 기계항공공학부, 2012. 8. 차석원.-
dc.description.abstractA considerable amount of research on power management strategies of hybrid vehicles has been conducted during last few decades in order to improve fuel economy and performance of hybrid vehicles. This dissertation introduces a Pontryagins Minimum Principle (PMP)-based power management strategy for fuel cell hybrid vehicles (FCHVs) and extends this strategy mathematically for considering three important factors in FCHVs. These factors include limitations on the battery state of charge (SOC) usage, the fuel cell system (FCS) lifetime, and the effects of battery thermal management on the fuel economy. The PMP-based power management strategy is implemented in a computer simulation for each case.
The limitation problem on the battery SOC usage is solved by introducing a new cost function other than the fuel consumption rate to the PMP-based optimal control problem. The limitation requirements on the battery SOC are satisfied while minimizing the fuel consumption by this solution. In order to take into account the lifetime of an FCS while considering its fuel consumption minimization, a second cost function is defined and added to the PMP-based optimal control problem. The second cost function is related to the power changing rate of the FCS. Simulation results show that the lifetime of the FCS can be prolonged by the reformulation of the PMP-based optimal control problem. However, there is a tradeoff between the FCS lifetime and the fuel consumption because of the added cost function. The effect of battery thermal management on the total fuel consumption is considered by designating the battery temperature as an extra state variable other than the battery SOC in the PMP-based optimal control problem. The relationship among the final battery SOC, the final battery temperature, and the total fuel consumption is illustrated by simulation results. This relationship can be expressed by a surface, which is composed of two intersecting half-planes with similar gradients. This surface is defined as an optimal surface in this dissertation, which indicates the optimal solutions, as it is derived from the PMP-based power management strategy. Fuel economy potential gains attributed to the battery thermal management are determined using the optimal surface. The battery thermal management can improve the fuel economy of an FCHV up to 4.77% depending on the driving cycle. A discussion on the combined case is carried out to consider the three factors together.
For the three extended cases, global optimality of the PMP-based power management strategies is discussed. Simulation results of the PMP-based strategy are also compared to those of Dynamic Programming (DP) approach for the three cases. The PMP-based power management strategy saves much time compared to DP approach while it guarantees global optimality under battery assumptions. The time-saving effect of the PMP-based strategy is outstanding especially when there are more than two state variables.
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dc.description.tableofcontentsAbstract i
Contents iv
List of Figures vi
List of Tables xv
Chapter 1 Introduction 1
1.1 Background 1
1.2 Contributions 6
1.3 Outline of this dissertation 9
Chapter 2 Vehicle Model 11
2.1 Configuration of an FCHV 11
2.2 FCS model 13
2.2.1 Fuel cell stack model 13
2.2.2 Compressor model 15
2.2.3 Air cooler and humidifier models 18
2.2.4 FCS characteristics 18
2.3 Battery model 23
2.3.1 Battery internal resistance model 23
2.3.2 Battery thermal model 24
2.4 Components sizing 25
2.4.1 Traction motor power design 25
2.4.2 FCS power design 27
2.4.3 Battery power design and energy capacity design 29
Chapter 3 PMP-based power management strategy for FCHVs 31
3.1 Theoretical study 32
3.2 Optimal lines 36
3.3 Fuel economy evaluation based on optimal lines 44
3.4 Comparison between PMP-based power management strategy and DP approach 48
Chapter 4 Extended PMP-based power management strategy for FCHVs 52
4.1 PMP-based power management strategy considering battery SOC constraint 52
4.2 PMP-based power management strategy considering FCS lifetime 60
4.3 PMP-based power management strategy considering battery thermal management 69
4.3.1 PMP-based power management strategy without considering battery thermal management 71
4.3.2 PMP-based power management strategy considering battery thermal management 72
4.3.3 Global optimality of the two-state variable PMP-based power management strategy 81
4.3.4 Control parameters of the PMP-based power management strategy 88
4.4 Discussions on the combined case 93
Chapter 5 Concluding remarks 95
5.1 Conclusion 95
5.2 Future work 98
References 100
Abstract (korean) 107
Acknowledgement (korean) 110
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dc.formatapplication/pdf-
dc.format.extent2145182 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectFuel cell hybrid vehicle-
dc.subjectPontryagin’s Minimum Principle-
dc.subjectPower management strategy-
dc.subjectMathematical extension-
dc.subjectTime-saving effect-
dc.subject.ddc621-
dc.titleEffective Optimization of Power Management for Fuel Cell Hybrid Vehicles Based on Pontryagins Minimum Principle-
dc.typeThesis-
dc.description.degreeDoctor-
dc.citation.pages111-
dc.contributor.affiliation공과대학 기계항공공학부-
dc.date.awarded2012-08-
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