Relation between internal terminal voltage and immunity behavior of LDO regulator circuits

Author(s):  
Hidetoshi Miyahara ◽  
Nobuaki Ikehara ◽  
Tohlu Matsushima ◽  
Takashi Hisakado ◽  
Osami Wada
2020 ◽  
Vol 140 (11) ◽  
pp. 1264-1269
Author(s):  
Tatsuya Ohba ◽  
Daisuke Mizushima ◽  
Keishiro Goshima ◽  
Norio Tsuda ◽  
Jun Yamada

2008 ◽  
Vol 1 (4) ◽  
pp. 9-14
Author(s):  
Jacob Day ◽  
Paul Vulpoiu ◽  
Jeffery Julich ◽  
Donald Lie
Keyword(s):  

Author(s):  
Dongdong Zhao ◽  
Xipo Wang ◽  
Liangcai Xu ◽  
Lei Xia ◽  
Yigeng Huangfu

2021 ◽  
Vol 13 (14) ◽  
pp. 7911
Author(s):  
Ibrahim Alsaidan ◽  
Mohamed A. M. Shaheen ◽  
Hany M. Hasanien ◽  
Muhannad Alaraj ◽  
Abrar S. Alnafisah

For the precise simulation performance, the accuracy of fuel cell modeling is important. Therefore, this paper presents a developed optimization method called Chaos Game Optimization Algorithm (CGO). The developed method provides the ability to accurately model the proton exchange membrane fuel cell (PEMFC). The accuracy of the model is tested by comparing the simulation results with the practical measurements of several standard PEMFCs such as Ballard Mark V, AVISTA SR-12.5 kW, and 6 kW of the Nedstack PS6 stacks. The complexity of the studied problem stems from the nonlinearity of the PEMFC polarization curve that leads to a nonlinear optimization problem, which must be solved to determine the seven PEMFC design variables. The objective function is formulated mathematically as the total error squared between the laboratory measured terminal voltage of PEMFC and the estimated terminal voltage yields from the simulation results using the developed model. The CGO is used to find the best way to fulfill the preset requirements of the objective function. The results of the simulation are tested under different temperature and pressure conditions. Moreover, the results of the proposed CGO simulations are compared with alternative optimization methods showing higher accuracy.


2016 ◽  
Vol 24 (19) ◽  
pp. 21948 ◽  
Author(s):  
Andrew Grier ◽  
Paul Dean ◽  
Alexander Valavanis ◽  
James Keeley ◽  
Iman Kundu ◽  
...  

2012 ◽  
Vol 588-589 ◽  
pp. 1507-1511
Author(s):  
Xiao Juan Sun

This paper presents a nonlinear excitation controller for transient stability combined differential geometry theory with PID technology. The controller ties the output of linear multi-variable excitation controller with the output of PID. Exact feedback linearization theory of differential geometry is applied to the design of linear multi-variable excitation controller for the single machine infinite system. Simulation results show that, compared with the general differential geometric controller, the proposed controller has the better control effect on power system and which remarkably improves the terminal voltage deficiencies in the control of generator.


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