Reconfiguration of impulse‐voltage generator for conducting standard lightning tests

Author:

El‐Adawy Khalil M.,Metwally I.A.

Abstract

PurposeLoading the impulse‐voltage generator by test object can affect the generated voltage waveform. It is well known that reconfiguring these generators by changing the high‐voltage resistors and capacitors, and even the connecting leads in the laboratory is too bulky and time consuming, especially for large test objects. The objective of this paper is to introduce a new computerized method to reconfigure the impulse‐voltage generator in order to conduct the standard tests on any type of objects.Design/methodology/approachA modified algorithm is introduced for solving the generalized equivalent circuit of impulse‐voltage generators under any loading condition.FindingsThe high efficiency of this algorithm has been verified by experimental investigations on different reduced‐ and full‐scale loads, namely, resistive, inductive, capacitive or mixed. For reduced‐scale loads up to a few kV, a single‐stage impulse‐voltage generator is used. While for full‐scale loads, a multi‐stage impulse‐voltage generator is reconfigured to test a 33 kV neutral earthing reactor. The experimental responses are compared with the numerical results of the proposed program and checked out by the PSCAD simulation. Good agreement has been found between all of them.Practical implicationsKnowing the exact value of the test object, some of the generator components and the connecting lead inductances is a must to apply this method.Originality/valueReconfiguring of impulse‐voltage generators by changing the high‐voltage resistors and capacitors, and even the connecting leads in the laboratory is too bulky and time consuming, especially for large test objects. This work will certainly save time and efforts if it is applied correctly in high‐voltage laboratories.

Publisher

Emerald

Subject

Applied Mathematics,Electrical and Electronic Engineering,Computational Theory and Mathematics,Computer Science Applications

Reference21 articles.

1. British Standard (1990), “Guide on high‐voltage testing techniques, Part 1: general”, BS 923‐1, British Standard, London.

2. de León, F. and Semlyen, A. (1994), “Complete transformer model for electromagnetic transients”, IEEE Trans. PWRD, Vol. 9 No. 1, pp. 231‐9.

3. Del Vecchio, R.M., Ahuja, R. and Frenette, R.D. (2002), “Determining ideal impulse generator settings from a generator‐transformer circuit model”, IEEE Trans. PWRD, Vol. 17 No. 1, pp. 142‐8.

4. He, S. and Zhu, X. (2006), “New algorithm for reconstruction of digital high voltage impulse waveform”, Gaodianya Jishu/High Voltage Engineering, Vol. 32 No. 10, pp. 19‐21.

5. IEC Standard (1989), “High‐voltage test techniques. Part 1: general definitions and test requirements”, IEC 60060‐1, Ed. 2.0, IEC Standard, New York, NY.

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