DocumentCode
2844375
Title
Numerical Optimization of Speed Profiles of Inverter Trains Considering DC Feeding Circuit
Author
Miyatake, Masafumi ; Ko, Hideyoshi
Author_Institution
Sophia Univ., Tokyo
fYear
2007
fDate
2-5 April 2007
Firstpage
336
Lastpage
341
Abstract
An algorithm optimizing total energy consumption of multiple inverter train operation considering DC feeding circuit is investigated in this paper. The proposed mathematical formulation can deal with several characteristics of trains, especially the effect of regenerative braking system. The developed optimization algorithm based on the gradient method is applicable to solve the formulated problems. The algorithm is ready to apply practical large-scale problems. The formulation and algorithm enables us to discuss energy-saving operation quantitatively. Several numerical analyses are demonstrated to verify the reliability and validity of the proposed method and clarify the energy-saving operation for two trains. The results shows that train speed profiles and control inputs strongly depend on the phase of departure times. The proposed algorithm can reduce energy consumption by 4.2~17.9% from that based on the conventional operation rule. These results indicates that the numerical analyses are significant to realize energy-saving operation.
Keywords
invertors; numerical analysis; optimisation; power consumption; railways; regenerative braking; DC feeding circuit; electric railway systems; energy-saving operation; gradient method; inverter trains; mathematical formulation; numerical optimization; regenerative braking system; total energy consumption optimization; Acceleration; Circuits; Control systems; Energy consumption; Equations; Inverters; Numerical analysis; Optimal control; Rail transportation; Substations;
fLanguage
English
Publisher
ieee
Conference_Titel
Power Conversion Conference - Nagoya, 2007. PCC '07
Conference_Location
Nagoya
Print_ISBN
1-4244-0844-X
Electronic_ISBN
1-4244-0844-X
Type
conf
DOI
10.1109/PCCON.2007.372989
Filename
4239179
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