A method for longitudinal protection of double-circuit transmission lines on the same tower based on T-type line equivalent and post-measurement simulation ideas
A technology of double circuits and transmission lines on the same tower, which is applied in the direction of the fault location and can solve problems such as difficulty in normal operation
- Summary
- Abstract
- Description
- Claims
- Application Information
AI Technical Summary
Problems solved by technology
Method used
Image
Examples
Embodiment approach 1
[0073] Implementation Mode 1: The wiring diagram of the simulation system is as follows figure 1 As shown, the voltage level is 500kV, the sampling frequency is 20kHz, and the sampling window length is 3ms. Assume that an AG fault occurs at a distance of 100km from the M terminal on the PM section of the line, the transition resistance is 10Ω, and the initial phase angle of the fault is 90°. The steps of the method for longitudinal protection of double-circuit transmission lines on the same tower based on T-type line equivalent and post-test simulation ideas are as follows:
[0074] (1) Convert the voltage and current at the head and end of the double-circuit transmission line on the same tower to independent moduli using the phase-mode transformation matrix, and establish the same-vector α-mode network of the double-circuit transmission line on the same tower based on the T-type equivalent of the lumped parameters. The phase mode transformation matrix used in the present inv...
Embodiment approach 2
[0089] Embodiment 2: The structure and parameters of the simulation system are the same as those in Embodiment 1. It is assumed that an AG fault occurs at a distance of 50 km from the M end of the line MN, the transition resistance is 10Ω, and the initial phase angle of the fault is 90°.
[0090] Repeat the steps of Example 1 to judge the fault section, and set the threshold ε to 0.2 through the simulation experiment, and then distinguish the internal and external faults of the double-circuit transmission line on the same tower by comparing the characteristic quantity of the criterion with the size of the preset threshold: Calculation Get δ=0.7202, if δ>ε is satisfied, it is judged that the protected line is faulty.
Embodiment approach 3
[0091]Embodiment 3: The structure and parameters of the simulation system are the same as those in Embodiment 1. It is assumed that an AG fault occurs at a distance of 100 km from the N terminal on the NQ section of the line, the transition resistance is 10Ω, and the initial phase angle of the fault is 90°.
[0092] Repeat the steps of Example 1 to judge the fault section, set the threshold ε to 0.2 through the simulation experiment, and identify the internal and external faults of the double-circuit transmission line on the same tower by comparing the criterion feature quantity with the preset threshold value: Calculation Get δ=0.0556, satisfy δ≤ε, and judge that the protected line has no fault.
[0093] Such as figure 1 The shown double-circuit power transmission system on the same tower uses the method of the present invention to simulate and verify different fault distances and different grounding resistances, and the results are shown in the table below. The results show...
PUM
Abstract
Description
Claims
Application Information
- R&D Engineer
- R&D Manager
- IP Professional
- Industry Leading Data Capabilities
- Powerful AI technology
- Patent DNA Extraction
Browse by: Latest US Patents, China's latest patents, Technical Efficacy Thesaurus, Application Domain, Technology Topic, Popular Technical Reports.
© 2024 PatSnap. All rights reserved.Legal|Privacy policy|Modern Slavery Act Transparency Statement|Sitemap|About US| Contact US: help@patsnap.com