語系:
繁體中文
English
說明(常見問題)
登入
回首頁
切換:
標籤
|
MARC模式
|
ISBD
Design and Control Optimization of H...
~
Pan, Ziheng.
Design and Control Optimization of Hybrid Electric Vehicles: From Two-Wheel-Drive to All-Wheel-Drive Vehicles.
紀錄類型:
書目-語言資料,印刷品 : Monograph/item
正題名/作者:
Design and Control Optimization of Hybrid Electric Vehicles: From Two-Wheel-Drive to All-Wheel-Drive Vehicles./
作者:
Pan, Ziheng.
出版者:
Ann Arbor : ProQuest Dissertations & Theses, : 2019,
面頁冊數:
193 p.
附註:
Source: Dissertations Abstracts International, Volume: 81-05, Section: B.
Contained By:
Dissertations Abstracts International81-05B.
標題:
Mechanical engineering. -
電子資源:
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=27536252
ISBN:
9781687934215
Design and Control Optimization of Hybrid Electric Vehicles: From Two-Wheel-Drive to All-Wheel-Drive Vehicles.
Pan, Ziheng.
Design and Control Optimization of Hybrid Electric Vehicles: From Two-Wheel-Drive to All-Wheel-Drive Vehicles.
- Ann Arbor : ProQuest Dissertations & Theses, 2019 - 193 p.
Source: Dissertations Abstracts International, Volume: 81-05, Section: B.
Thesis (Ph.D.)--University of Michigan, 2019.
This item must not be sold to any third party vendors.
Fuel efficiency standards in the ground transportation sector have been becoming more stringent over the previous decade worldwide. The power-split hybrid powertrain technology is one of the most promising solutions to meet those exigent standards. This technology has been successfully implemented in the passenger vehicle market, such as Toyota Prius, and demonstrated a fuel economy improvement of over 60%. In contrast, however, few hybrid electric light trucks are available, which is problematic given the fact that trucks are now more than 65% of light-duty vehicle sales in the United States. Additional performance requirements such as all-wheel-drive (AWD) also has not been explored adequately. Expanding the power-split hybrid technology to a broader market while satisfying all these requirements is imperative but challenging. The main contributions of this dissertation includes, 1) we present a systematic design methodology that enables the exhaustive search of AWD power-split hybrid powertrains; 2) the concept of relaxed optimization for additional fuel reduction; 3) a systematic framework of control design that enables automated development of real-time control strategies and ensures near-optimal performance; in addition, 4) an experimental study to verify the theoretical development. Designing AWD power-split hybrid powertrains involves searching over a large design space. Millions of designs are possible when considering collocations of all components including planetary-gear (PG) sets, an engine, electric motor(s), and clutches. Within the developed systematic design methodology, all possible designs can be generated through an automated modeling technique; exhaustively searching through all these designs then become possible. A systematic screening process is developed to screen for feasible designs, with respect to desired performance attributes; optimal designs then can be identified by checking their launching/towing performances together with fuel efficiencies. A case study on an imagined hybrid F-150 light truck demonstrates that the developed methodology is able to identify dozens of better designs than parallel-hybrid baseline model. Optimization is crucial for both design and control development. An optimization of hybrid electric powertrain is defined which allows load leveling among the power source (engine), electrical energy buffer (battery). Relaxed optimization is further defined and investigated when the mechanical energy buffer (vehicle kinetic energy) is also introduced. Analysis of these optimized results are used for design screening and control development. By understanding the analysis of optimized results, a systematic framework is developed to generate a near-optimal real-time control strategy. A set of optimal controls is generated by analyzing the hybrid powertrain system firstly; the real-time control strategy is developed by constructing the policy from the optimal control set. Near-optimal results are achieved under this development framework. With the establishment of the design and control development frameworks, an experimental study is performed to verify this theoretical development. Preliminary results project that the developed framework of hybrid technology implementation is able to identify designs achieving fuel consumption reduction of more than 50% compared to current conventional baseline models for truck applications.
ISBN: 9781687934215Subjects--Topical Terms:
557493
Mechanical engineering.
Subjects--Index Terms:
All-wheel-drive power-split hybrid vehicles
Design and Control Optimization of Hybrid Electric Vehicles: From Two-Wheel-Drive to All-Wheel-Drive Vehicles.
LDR
:04731nam a2200373 4500
001
951863
005
20200821052212.5
008
200914s2019 ||||||||||||||||| ||eng d
020
$a
9781687934215
035
$a
(MiAaPQ)AAI27536252
035
$a
(MiAaPQ)umichrackham002336
035
$a
AAI27536252
040
$a
MiAaPQ
$c
MiAaPQ
100
1
$a
Pan, Ziheng.
$3
1241353
245
1 0
$a
Design and Control Optimization of Hybrid Electric Vehicles: From Two-Wheel-Drive to All-Wheel-Drive Vehicles.
260
1
$a
Ann Arbor :
$b
ProQuest Dissertations & Theses,
$c
2019
300
$a
193 p.
500
$a
Source: Dissertations Abstracts International, Volume: 81-05, Section: B.
500
$a
Advisor: Peng, Huei.
502
$a
Thesis (Ph.D.)--University of Michigan, 2019.
506
$a
This item must not be sold to any third party vendors.
506
$a
This item must not be added to any third party search indexes.
520
$a
Fuel efficiency standards in the ground transportation sector have been becoming more stringent over the previous decade worldwide. The power-split hybrid powertrain technology is one of the most promising solutions to meet those exigent standards. This technology has been successfully implemented in the passenger vehicle market, such as Toyota Prius, and demonstrated a fuel economy improvement of over 60%. In contrast, however, few hybrid electric light trucks are available, which is problematic given the fact that trucks are now more than 65% of light-duty vehicle sales in the United States. Additional performance requirements such as all-wheel-drive (AWD) also has not been explored adequately. Expanding the power-split hybrid technology to a broader market while satisfying all these requirements is imperative but challenging. The main contributions of this dissertation includes, 1) we present a systematic design methodology that enables the exhaustive search of AWD power-split hybrid powertrains; 2) the concept of relaxed optimization for additional fuel reduction; 3) a systematic framework of control design that enables automated development of real-time control strategies and ensures near-optimal performance; in addition, 4) an experimental study to verify the theoretical development. Designing AWD power-split hybrid powertrains involves searching over a large design space. Millions of designs are possible when considering collocations of all components including planetary-gear (PG) sets, an engine, electric motor(s), and clutches. Within the developed systematic design methodology, all possible designs can be generated through an automated modeling technique; exhaustively searching through all these designs then become possible. A systematic screening process is developed to screen for feasible designs, with respect to desired performance attributes; optimal designs then can be identified by checking their launching/towing performances together with fuel efficiencies. A case study on an imagined hybrid F-150 light truck demonstrates that the developed methodology is able to identify dozens of better designs than parallel-hybrid baseline model. Optimization is crucial for both design and control development. An optimization of hybrid electric powertrain is defined which allows load leveling among the power source (engine), electrical energy buffer (battery). Relaxed optimization is further defined and investigated when the mechanical energy buffer (vehicle kinetic energy) is also introduced. Analysis of these optimized results are used for design screening and control development. By understanding the analysis of optimized results, a systematic framework is developed to generate a near-optimal real-time control strategy. A set of optimal controls is generated by analyzing the hybrid powertrain system firstly; the real-time control strategy is developed by constructing the policy from the optimal control set. Near-optimal results are achieved under this development framework. With the establishment of the design and control development frameworks, an experimental study is performed to verify this theoretical development. Preliminary results project that the developed framework of hybrid technology implementation is able to identify designs achieving fuel consumption reduction of more than 50% compared to current conventional baseline models for truck applications.
590
$a
School code: 0127.
650
4
$a
Mechanical engineering.
$3
557493
650
4
$a
Automotive engineering.
$3
1104081
653
$a
All-wheel-drive power-split hybrid vehicles
653
$a
Relaxed optimization
653
$a
Pulse-and-glide
653
$a
Real-time control strategy
690
$a
0548
690
$a
0540
710
2
$a
University of Michigan.
$b
Mechanical Engineering.
$3
1178961
773
0
$t
Dissertations Abstracts International
$g
81-05B.
790
$a
0127
791
$a
Ph.D.
792
$a
2019
793
$a
English
856
4 0
$u
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=27536252
筆 0 讀者評論
多媒體
評論
新增評論
分享你的心得
Export
取書館別
處理中
...
變更密碼[密碼必須為2種組合(英文和數字)及長度為10碼以上]
登入