Electrical Performance of Polymer-Insulated Rail Brackets of DC Transit Subjected to Lightning Induced Overvoltage
Abstract
:1. Introduction
2. Case Study and Methods
2.1. The Kelana Jaya Line
2.2. Power Rails
2.3. Insulated Rail Bracket
2.4. Traction Substation Surge Arrester
2.5. Indirect Lightning and LIOV Modelling
2.6. EMTP-RV Modelling
3. Results and Discussion
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Occurrence | Heidler Function Setting | I0 (kA) | |||
---|---|---|---|---|---|
% | I1 (kA) | τ11 (µs) | τ21 (µs) | n1 | I0 |
50 [32] | 9.075 | 3.42 | 40.24 | 2 | 30 (5/80 µs) |
I2 (kA) | τ12 (µs) | τ22 (µs) | n2 | ||
20.515 | 4.793 | 153.46 | 10 | ||
I1 (kA) | τ11 (µs) | τ21 (µs) | n1 | ||
5 [32] | 46.49 | 5.86 | 143.997 | 2 | 90 (9/200 µs) |
I2 (kA) | τ12 (µs) | τ22 (µs) | n2 | ||
41.548 | 41.759 | 592.86 | 10 |
Operating System Voltage (V) | System Length (m) | Height (m) | Insulated Rail Bracket | Arrester(Residual Voltage (kV)) | I0 (kA) | Velocity (v) (108 m/s) | Strike Point | |
---|---|---|---|---|---|---|---|---|
Horizontal(d) (m) | Vertical (x) (m) | |||||||
750 | 3000 | 17 | CE | 3EB4-010 (2.4) | 30 and 90 | 1.2 | 25 | 2000 |
CEA | ||||||||
GRP |
Parameter | Value | Justification | |
---|---|---|---|
Guideway Height (m) | 17 | The proposed height follows the equation of span-to-height ratio of 3 as to create an aesthetical appearance. Furthermore, a higher elevation creates a more open and lighter area underneath the guideway [33]. | |
Lightning | Current Peak (kA) | 30 and 90 | The selected magnitude is the typical magnitude of the negative first return stroke with 50% and 5% occurrences worldwide. The replication of the magnitude and its waveshape follows the assumption made towards the Heidler function parameters in the IEC 62305-1 [32]. |
Velocity (×108 m/s) | 1.2 | The selected velocity is the commonly accepted value as it lies in between c/3 and 2c/3, the typical velocities range of a return stroke lightning current, with c as the speed of light in free space; 2.99792458 × 108 m/s [26,34]. | |
Strike Distance | Horizontal (m) | 25 | The short distance is considered based on the fact that the LRT Kelana Jaya line runs through the heart of Greater Kuala Lumpur, a city that housed the majority of the Malaysia government administration buildings, businesses, entertainments, and leisure landmarks where void spaces between the guideway and the buildings are limited. In addition, 25 m is within the range of Protection Zone Law [34]; 2.5 to 80 m. |
Vertical (m) | 2000 | The distances were selected for assessing the impact of induced overvoltages on the insulated rail bracket (2000 m). | |
Bracket Material | CE, CEA, GRP | The rail bracket is made from polymer-based materials, i.e., CE, CEA, and GRP which have a different permittivity value. | |
Surge Arrester | 3EB4-010 10 kA at 8/20 µs and 2.4 kV | The selected surge arrester was based on its rated voltage (1.0 kV), MCOV (1.0 kV), and most importantly based on its residual voltage (2.4 kV) at a nominal discharge current (10 kA at 8/20 µs), the arrester energy limit is 10 kJ. |
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Abd Rahman, F.A.; Ab Kadir, M.Z.A.; Ungku Amirulddin, U.A.; Osman, M. Electrical Performance of Polymer-Insulated Rail Brackets of DC Transit Subjected to Lightning Induced Overvoltage. Materials 2021, 14, 1684. https://doi.org/10.3390/ma14071684
Abd Rahman FA, Ab Kadir MZA, Ungku Amirulddin UA, Osman M. Electrical Performance of Polymer-Insulated Rail Brackets of DC Transit Subjected to Lightning Induced Overvoltage. Materials. 2021; 14(7):1684. https://doi.org/10.3390/ma14071684
Chicago/Turabian StyleAbd Rahman, Farah Asyikin, Mohd Zainal Abidin Ab Kadir, Ungku Anisa Ungku Amirulddin, and Miszaina Osman. 2021. "Electrical Performance of Polymer-Insulated Rail Brackets of DC Transit Subjected to Lightning Induced Overvoltage" Materials 14, no. 7: 1684. https://doi.org/10.3390/ma14071684
APA StyleAbd Rahman, F. A., Ab Kadir, M. Z. A., Ungku Amirulddin, U. A., & Osman, M. (2021). Electrical Performance of Polymer-Insulated Rail Brackets of DC Transit Subjected to Lightning Induced Overvoltage. Materials, 14(7), 1684. https://doi.org/10.3390/ma14071684