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研究生: 林冠廷
Guan-Ting Lin
論文名稱: 具有異質電池需求之電池交換站效能評估
Performance Evaluation of the Battery Swapping Station with Heterogeneous Battery Requirements
指導教授: 鍾順平
Shun-Ping Chung
口試委員: 林永松
Yeong-Sung Lin
王乃堅
Nai-Jian Wang
學位類別: 碩士
Master
系所名稱: 電資學院 - 電機工程系
Department of Electrical Engineering
論文出版年: 2020
畢業學年度: 108
語文別: 英文
論文頁數: 298
中文關鍵詞: 電動機車電池交換站充電系統電池需求第一類電動機車的到達速率
外文關鍵詞: electric scooter, battery swapping station, charging system, battery requirement, arrival rate of class-1 ESs
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1. Introduction 1 2. System model 3 2.1 Homogeneous battery requirement with one charger 3 2.2 Homogeneous battery requirement with multiple chargers 3 2.3 Heterogeneous battery requirement with one charger 4 2.4 Heterogeneous battery requirement with multiple chargers 4 3. Analytical model 5 3.1 Homogeneous battery requirement with one charger 5 3.1.1 Model description 5 3.1.2 State balance equations 6 3.1.3 Iterative algorithm 8 3.1.4 Performance measures 8 3.2 Homogeneous battery requirement with multiple chargers 13 3.2.1 Model description 13 3.2.2 State balance equations 14 3.2.3 Iterative algorithm 16 3.2.4 Performance measures 17 3.3 Heterogeneous battery requirement with one charger 22 3.3.1 Model description 22 3.3.2 State balance equations 22 3.3.3 Iterative algorithm 43 3.3.4 Performance measures 43 3.4 Heterogeneous battery requirement with multiple chargers 82 3.4.1 Model description 82 3.4.2 State balance equations 83 3.4.3 Iterative algorithm 103 3.4.4 Performance measures 104 4. Simulation model 143 4.1 Homogeneous battery requirement with one charger 143 4.1.1 Main program 143 4.1.2 Arrival event 143 4.1.3 Swapping departure event 144 4.1.4 Charging departure event 145 4.1.5 Performance measures 145 4.2 Homogeneous battery requirement with multiple chargers 151 4.2.1 Main program 151 4.2.2 Arrival event 151 4.2.3 Swapping departure event 152 4.2.4 Charging departure event 152 4.2.5 Performance measures 153 4.3 Heterogeneous battery requirement with one charger 159 4.3.1 Main program 159 4.3.2 Class-1 arrival event 159 4.3.3 Class-2 arrival event 160 4.3.4 Class-1 swapping departure event 161 4.3.5 Class-2 swapping departure event 162 4.3.6 Charging departure event 162 4.3.7 Performance measures 164 4.4 Heterogeneous battery requirement with multiple chargers 173 4.4.1 Main program 173 4.4.2 Class-1 arrival event 173 4.4.3 Class-2 arrival event 174 4.4.4 Class-1 swapping departure event 175 4.4.5 Class-2 swapping departure event 176 4.4.6 Class-1 charging departure event 176 4.4.7 Class-2 charging departure event 178 4.4.8 Performance measures 179 5. Numerical results 191 5.1 Homogeneous battery requirement with one charger 191 5.2 Homogeneous battery requirement with multiple chargers 198 5.3 Heterogeneous battery requirement with one charger 205 5.3.1 The arrival rate of class-1 ESs 205 5.3.2 The arrival rate of class-2 ESs 219 5.4 Heterogeneous battery requirement with multiple chargers 232 5.4.1 The arrival rate of class-1 ESs 233 5.4.2 The arrival rate of class-2 ESs 251 6. Conclusions 269 References 271

[1] Shiow-Huey Suen, Bing-Ming Lin, and Jason Shian-Ching Jang, “Strategy and Construction of Electric Refueling System for Electric Scooter in Taiwan,” 2013 World Electric Vehicle Symposium and Exhibition (EVS27), pp. 1-6, Nov. 2013, DOI: 10.1109/EVS.2013.6914870.
[2] Antonio Affanni, Alberto Bellini, Giovanni Franceschini, Paolo Guglielmi, and Carla Tassoni, “Battery Choice and Management for New-Generation Electric Vehicles,” IEEE Transactions on Industrial Electronics, Oct. 2005, Vol. 52, Issue. 5, pp. 1343-1349, DOI: 10.1109/TIE.2005.855664.
[3] Sidonia Mesentean, Wilhelm, Wilhelm Feucht, Hans-Georg Kula, and Heinz Frank, “Smart Charging of Electric Scooters for Home to Work and Home to Education Transports from Grid Connected Photovoltaic-Systems,” 2010 IEEE International Energy Conference, pp. 73-78, Dec. 2010, DOI: 10.1109/ENERGYCON.2010. 5771778.
[4] Amirhossein Moeini, and Shuo Wang, “Design of Fast Charging Technique for Electrical Vehicle Charging Stations with Grid-Tied Cascaded H-Bridge Multilevel Converters,” 2018 IEEE Applied Power Electronics Conference and Exposition (APEC), pp. 3583-3590, March 2018, DOI: 10.1109/APEC.2018.8341621.
[5] Jun Tan, and Lingfeng Wang, “Real-Time Charging Navigation of Electric Vehicles to Fast Charging Stations: A Hierarchical Game Approach,” IEEE Transactions on Smart Grid, March 2017, Vol.8, Issue. 2, pp. 846-856, DOI: 10.1109/TSG.2015. 2458863.
[6] Mushfiqur R. Sarker, Hrvoje Pandžić, and Miguel A. Ortega-Vazquez, “Electric Vehicle Battery Swapping Station: Business Case and Optimization Model,” 2013 International Conference on Connected Vehicles and Expo (ICCVE), pp. 289-294, Dec. 2013, DOI: 10.1109/ICCVE.2013.6799808.
[7] Gurappa Battapothula, Chandrasekhar Yammani, and Sydulu Maheswarapu, “Multi-Objective Optimal Scheduling of Electric Vehicle batteries in Battery Swapping Station,” 2019 IEEE PES Innovative Smart Grid Technologies Europe (ISGT-Europe), pp. 1-5, Oct. 2019, DOI: 10.1109/ISGTEurope.2019.8905586.
[8] Xian Zhang, and Guibin Wang, “Optimal Dispatch of Electric Vehicle Batteries between Battery Swapping Stations and Charging Stations,” 2016 IEEE Power and Energy Society General Meeting (PESGM), pp. 1-5, July 2016, DOI: 10.1109/PESGM. 2016.7741893
[9] Xiaoqi Tan, Bo Sun, and Danny H.K. Tsang, “Queueing Network Models for Electric Vehicle Charging Station with Battery Swapping,” 2014 IEEE International Conference on Smart Grid Communications (SmartGridComm), pp. 1-6, Nov. 2014, DOI: 10.1109/SmartGridComm.2014.7007613.
[10] Nan-Ching Tai, Da Wu, and Han-Wei Jang, “Extending the Range of Electric Scooters from Fixed-Point Battery Stations by Using a Dynamic Battery Swapping Mobile Application,” 2018 IEEE International Conference on Applied System Invention (ICASI), pp. 389-392, April 2018, DOI: 10.1109/ICASI.2018.8394264.

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全文公開日期 2025/08/13 (國家圖書館:臺灣博碩士論文系統)
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