Modelling of high voltage AC circuit breaker based on circuit breaker's technical data: Using Schwarz Black Box arc model

Author(s):  
I. Pramudya ◽  
Muhammad Wardi Hadi ◽  
J. Y. Koo ◽  
B. W. Lee ◽  
Umer A. Khan ◽  
...  
2018 ◽  
Vol 33 (4) ◽  
pp. 1835-1844 ◽  
Author(s):  
Toshiya Ohtaka ◽  
Viktor Kertesz ◽  
Rene Peter Paul Smeets

Author(s):  
Osama E. Gouda ◽  
Ghada Amer ◽  
Mohamed Awaad ◽  
Manar Ahmed
Keyword(s):  

Energies ◽  
2021 ◽  
Vol 14 (14) ◽  
pp. 4383
Author(s):  
Jun He ◽  
Ke Wang ◽  
Jiangang Li

Pyro-breaker, a fast-responding, highly reliable and explosive-driven circuit breaker, is utilized in several Quench Protection Systems (QPS). The commutation process and its parameters are the main technical considerations in the process of designing a new pyro-breaker. The commutation parameters, such as the commutation time and the current change rate, are not only determined by the electrical parameters of the commutation circuit but also the arc behavior during the operation. The arc behavior is greatly affected by the structure and the driving mechanism of the Commutation Section (CS) in the pyro-breaker. The arc model was developed decades ago and the black-box arc model is considered a valid method to study arc behavior. In this paper, the Schavemaker black-box arc model, an improved Mayr-type arc model, is applied to study the commutation process of a newly designed pyro-breaker. Unlike normal circuit breakers, the arc discussed in this paper is discharged in deionized water. A parameter selection method is proposed. The practicability of the method is verified by numerical calculation in Power Systems Computer Aided Design (PSCAD) and experimentally.


2017 ◽  
Vol 4 (1) ◽  
pp. 95-98
Author(s):  
Z. Guo ◽  
X. Li ◽  
Y. Zhang ◽  
X. Guo ◽  
J. Xiong

CO<sub>2</sub> is identified as a promising alternative gas of SF<sub>6</sub>. The magnetohydrodynamics (MHD) arc model is established for a CO<sub>2</sub> circuit breaker. The influence of gas pressure is studied. The simulations are carried out for 0.5 MPa, 0.7 MPa and 0.9 MPa absolute filling pressure, allowing predictions of pressure and temperature distributions. The arc time constant θ and the power loss coefficient <em>Q</em> is extracted. The thermal interruption capability is estimated to grow with increasing filling pressure.


Author(s):  
Osama E. Gouda ◽  
Ghada Amer ◽  
Mohamed Awaad ◽  
Manar Ahmed
Keyword(s):  

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