Impulse withstand voltage of single-phase compact distribution line structures considering bare and XLPE-covered cables

2017 ◽  
Vol 153 ◽  
pp. 88-93 ◽  
Author(s):  
Guilherme S. Lima ◽  
Rafael M. Gomes ◽  
Ronaldo E. Souza ◽  
Alberto De Conti ◽  
Fernando H. Silveira ◽  
...  
2017 ◽  
Vol 137 (5) ◽  
pp. 356-363
Author(s):  
Yukimasa Ikai ◽  
Mutsumi Aoki ◽  
Yu Fujita ◽  
Hiroshi Kobayashi ◽  
Mika Oguri ◽  
...  

2016 ◽  
Vol 78 (10-4) ◽  
Author(s):  
Amirullah Amirullah ◽  
Mochamad Ashari ◽  
Ontoseno Penangsan ◽  
Adi Soeprijanto

Randomly installed distributed generators (DGs) in households may cause unbalanced line current in a distribution network. This research presents a battery energy system for balancing of line current in a distribution network involving multi units of single phase photovoltaic (PV) distributed generators (DGs). In this paper, the PV generators were simulated consisting of a buck-boost DC/DC converter and single phase DC/AC inverter. It was connected to the distribution line through the low voltage 220 volt 50 Hz. The proposed phase balancing system uses battery energy storage and three single phase bidirectional inverters. The inverter is capable of injecting current or absorbing power from the line to the battery. This inverter operation is arranged to balance each distribution line separately, as well as to improve other power quality parameters, such as voltage and current harmonics. Simulation results show that the system was capable of improving the unbalanced line current from 15.59 % to 11, 48 % and unbalanced line voltage from 1.76 % to 0.58 %. The system was able for increasing current harmonics from 0.98 % to 1.03% and voltage harmonics from 38.96% to 39.08%.


2012 ◽  
Vol 433-440 ◽  
pp. 6219-6223
Author(s):  
Feng Yan ◽  
Ru Jun Xu

A kind of C-type of traveling wave location method is proposed in this paper. After the single phase grounding fault happened, inject a high voltage narrow pulse signal into the fault phase line and the normal one respectively, collect the reflected signals at detection point, make this two signal waveforms subtract and find the corresponding time of fault point characteristic wave, calculate the fault distance by using location equation. Conduct wavelet packet decomposition and reconstruction on the waveform subtraction signal, judge the fault section by comparing energy changed values of node characteristic waves.


Author(s):  
Wei Yong ◽  
Bao Yongbin ◽  
Huang Pengtian ◽  
Nie Shouling ◽  
Han Shenghai ◽  
...  

2019 ◽  
Vol 166 ◽  
pp. 241
Author(s):  
Guilherme S. Lima ◽  
Rafael M. Gomes ◽  
Ronaldo E. Souza ◽  
Alberto De Conti ◽  
Fernando H. Silveira ◽  
...  

Information ◽  
2021 ◽  
Vol 12 (9) ◽  
pp. 384
Author(s):  
Mengxuan Liu ◽  
Chi Zhang ◽  
Kangli Liu

The traditional 10 kV distribution network grounding system has some disadvantages, such as small grounding current and poor arc extinguishing effect, thus, hindering the detection of high-resistance grounding fault. Therefore, this paper studied the flexible grounding system consisting of small-resistance and active inverter in parallel. The control system comprises the compensation current calculation module, the fault detection module, and line protection strategy. During a single-phase grounding fault, the device is designed to inject a current of a given amplitude and phase into the neutral point to effectively suppress fault-point voltage and current and, meanwhile, quickly identifying the fault line or the busbar fault and then systematically protecting the distribution line. In addition, a large number of simulations have performed based on three grounding faults (metal, low-resistance, and high-resistance) and two modes (ungrounded and small-resistance grounding). The device can all be functional. Finally, a 400 V-level experimental prototype was built, and the experimental results are consistent with the simulation results, which can verify the effectiveness and feasibility of the flexible grounding device.


2021 ◽  
Vol 1974 (1) ◽  
pp. 012003
Author(s):  
Hui Yin ◽  
Baikui Li ◽  
Jie Chen ◽  
Lingyun Gu ◽  
Zhe Wang ◽  
...  

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