The Effects of Load Impedance, Line Length, and Branches in the BPLC—Transmission-Line Analysis for Indoor Voltage Channel

2007 ◽  
Vol 22 (4) ◽  
pp. 2150-2155 ◽  
Author(s):  
Justinian Anatory ◽  
Nelson Theethayi ◽  
Rajeev Thottappillil ◽  
Mussa M. Kissaka ◽  
Nerey H. Mvungi

The Powerline Communications (PLC) technology allows data transmission through electrical wires. Thus the electrical wiring will represent a data transmission channel conformable to the physical layer of the open system interconnection (OSI) model. In this work, the specifications of the Iraqi electrical network were used to model a high-voltage transmission line using a transmission (ABCD) matrix and use it as a communication channel for transmitting data within a narrow band (30-500). The transfer function of the suggested model was derived and its performance analysis was performed to evaluate the Line length effect, load impedance ZL and the source impedance ZS on the channel frequency response. This analysis was done with the help of Matlab16a simulator program.


2016 ◽  
Vol 65 ◽  
pp. 93-102 ◽  
Author(s):  
Salvatore Campione ◽  
Lorena I. Basilio ◽  
Larry Kevin Warne ◽  
Howard Gerald Hudson ◽  
William L. Langston

2015 ◽  
Vol 17 (4) ◽  
Author(s):  
Yuniarto Yuniarto

Yuniarto, in this paper explain that the utility of high transmission line result in the transient over voltage in transmission-line will also increasingly higher, mainly for lightning and switching surge. Switching surge is a dominant factor to show up much transient over voltage in the transmission-line in the level of 230 kV or higher, if it is compared with lightning surge.  Switching surge is caused by single energized process, the process itself to energize a transmission line in no load condition with energy power through switch closure operation. The research was aiming at observing the influence of transmission-line length to transient over voltage that occurred at the energized process in 500 kV transmission line Ungaran-Pedan, which used EMTP (Electromagnetic Transients Program) to simulate it.  The result of simulation showed that the transient over voltage occurred along the transmission-line which caused the higher voltage increase, providing that the line is also longer. Key word : over voltage,  transient, EMTP


2020 ◽  
Vol 14 (1) ◽  
pp. 1-9 ◽  
Author(s):  
Anthony C. Boucouvalas ◽  
Christos Papageorgiou ◽  
Euripides Georgantzos

1997 ◽  
Vol 15 (2) ◽  
pp. 241-248 ◽  
Author(s):  
H. Chuaqui ◽  
E. Wyndham ◽  
C. Friedli ◽  
M. Favre

The design and constructional aspects of a novel pulse power generator for use in dense plasma research presently under construction are presented. The generator consists of two Marx capacitor banks, each of 0.25 μF, 480 kV, and 28.8 kJ. Each Marx generator drives a water transmission line, in which the live electrode is the central conductor. The transmission lines consist of a constant impedance section followed by a multielectrode gas linegap followed by an exponential taper to the load section. The novel feature is the use of an auxiliary exponential line coupled at the load. This line controls both the voltage and the effective impedance at the load section. In addition, by leaving this line circuit open, energy not coupled to the plasma in the initial high-impedance phase may be reflected back and deposited into the discharge, increasing the peak current by 50%. Circuit simulations using a real-time-varying load impedance show that the current pulse rises in an approximately linear way to a maximum of 1.2 MA at 250 ns. The current falls to zero in the following 250 ns. The current waveform may be flattened simply by disconnecting the auxiliary line, giving a rectangular pulse of 350 ns with a maximum value of 950 kA. The overall impedance of the entire system may be adjusted by varying the separation between the conductors. The equivalent source impedance at the load is 0.8 Ω. This low value is by virtue of the auxiliary line, which limits the voltage at the load section and reduces the insulator constraints. We present simulations of the generator under real load conditions. The model also is checked against analytical solutions of exponential line behavior and against other published models of pulse power generators.


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