Assessing the Conductivity of Wires Under Different Coating Types

Crossmark

Main Article Content


Abstract

This study investigates the impact of different types of coatings (A, B, C and D) on the conductivity of wire. The experiment employed a one-way ANOVA followed by post hoc analysis using Tukey’s Honest   Significant Difference (TukeyHSD) test to determine significant differences between the coatings. The results indicated that coatings A, B, C and D have a significant effect on wire conductivity (F (3, 16) =29.79, p<0.05). Post hoc analysis revealed significant differences between the following pairs of coatings: C-A, D-A, C-B, and D-B (p<0.05). These findings suggest that the choice of coating significantly impacts wire conductivity and may guide manufacturers in selecting coatings based on specific conductivity requirements.

Keywords:
Share Article:

Citation Metrics:

Scopus

Downloads

Download data is not yet available.

Citation Metrics & Similar Scopus Articles

Data source Crossref
0
citations
Citation counts are source-specific and may differ because database coverage, reference matching, and update schedules are different. Counts are not added together. Crossref values represent citation links registered and matched by Crossref.
Check Secondary Documents in Scopus
Open this article in Scopus, then check the Secondary documents tab. Use Manual Citation Fallback only for counts you have verified manually.
Open in Scopus
Similar Scopus Articles
Scopus
  1. Afrouz M. (2027)
    Automatic Detection of Grammatical Errors in English Translations: Assessing the Efficacy and Suggesting Some Recommendations for Boosting Grammarly Software
    Language Related Research, 17(4), 1-33
  2. Wu Y. (2027)
    Strategies of Designing High-Efficiency Electrolyte Additives for Aqueous Magnesium Batteries: A Review
    Nano Micro Letters, 19(1)
  3. Mostafavi P. (2027)
    Copular Verbs Typology in Khalaj
    Language Related Research, 17(4), 293-329

Article Details

How to Cite
Iroka, J., & Akpienbi, I. O. (2024). Assessing the Conductivity of Wires Under Different Coating Types. International Journal of Education, Management, and Technology, 2(2), 95-108. https://doi.org/10.58578/ijemt.v2i2.3401

References

Copper Development Association. (2022). Electrical Conductivity of Copper. Retrieved from https://copper.org/applications/electrical/conductivity.html

Aluminum Association. (2020). Electrical Conductivity of Aluminum. Retrieved from https://www.aluminum.org/aluminum-advantage/aluminum-101/electrical-conductivity

Kochkin, V. (2018). Influence of insulation on the electrical conductivity of wires. IEEE Transactions on Electromagnetic Compatibility, 60(3), 663-669.

Zhao, Y., Luo, Y., & Zhang, Z. (2019). Effect of coating materials on the electrical conductivity of wires. Applied Surface Science, 476, 609-616.

Singh, P. K., Tandon, R. P., & Mathur, P. C. (2016). Effect of atomic structure and impurities on the electrical conductivity of metals. Journal of Materials Science, 51(5), 2430-2440.

Mahan, G. D. (2016). Condensed Matter in a Nutshell. Princeton University Press.

Kittel, C. (2005). Introduction to Solid State Physics. Wiley.

Sarkar, A., Chakraborty, S., & Bandyopadhyay, S. (2020). Effect of wire geometry on the electrical conductivity of conductors. IEEE Transactions on Industry Applications, 56(3), 2928-2935.

Kim, J., Kwon, S., & Suh, J. (2018). Influence of coating thickness on the electrical conductivity of wires. Surface and Coatings Technology, 344, 587-593.

Jia, X., Li, Y., & Chen, G. (2017). Environmental effects on the electrical conductivity of wires. IEEE Transactions on Dielectrics and Electrical Insulation, 24(5), 2927-2934.

Zhao, B., Wang, F., & Xia, Y. (2021). Polymer coatings for enhanced electrical conductivity of wires. Polymer, 224, 123703.

Zhang, L., Wang, J., & Guo, Z. (2019). Ceramic coatings for improved electrical conductivity of wires. Journal of the American Ceramic Society, 102(7), 3890-3901.

Choi, H., Lee, J., & Kim, D. (2016). Metallic coatings for enhanced electrical conductivity of wires. Surface and Coatings Technology, 307, 412-418.

Gao, Y., Xu, Z., & Li, B. (2020). Optimization of coating properties for improved electrical conductivity of wires. IEEE Transactions on Components, Packaging and Manufacturing Technology, 10(7), 1185-1192.

Peng, X., Zhao, J., & Chen, X. (2018). Effect of coating adhesion on the electrical conductivity of wires. Journal of Adhesion Science and Technology, 32(15), 1687-1701.

Wang, S., Liu, L., & Zhu, J. (2017). Thermal stability of coatings and its impact on the electrical conductivity of wires. Materials and Design, 130, 341-348.

Liu, Y., Zhang, Y., & Wang, J. (2021). Temperature dependence of the electrical conductivity of wires. IEEE Transactions on Electromagnetic Compatibility, 63(4), 1142-1150.

Huang, X., Zhou, C., & Li, S. (2019). Frequency-dependent electrical conductivity of wires. Journal of Electromagnetic Waves and Applications, 33(5), 573-585.

Park, J., Kim, S., & Choi, W. (2017). Electromagnetic interference effects on the electrical conductivity of wires. IEEE Transactions on Electromagnetic Compatibility, 59(6), 1782-1790.

Qian, D., Liang, X., & Wei, J. (2020). Computational modeling of the electrical conductivity of wires. Journal of Computational Physics, 409, 109350.

Sun, Q., Wu, Y., & Li, Z. (2018). Theoretical analysis of the electrical conductivity of coated wires. IEEE Transactions on Industry Applications, 54(5), 4696-4703.

Jiang, J., Chen, L., & Zhu, X. (2016). Numerical simulation of the electrical conductivity of wires and coatings. Simulation Modelling Practice and Theory, 68, 56-68.

Srinivasan, V., Ramanathan, K., & Nair, P. (2021). Electrical conductivity of wires in power transmission systems. IEEE Transactions on Power Delivery, 36(3), 1565-1573.

Guo, F., Li, J., & Wang, Y. (2019). Electrical conductivity of wires in telecommunication networks. IEEE Transactions on Microwave Theory and Techniques, 67(9), 3807-3816.

Chaudhari, A., Patil, S., & Kulkarni, S. (2018). Electrical conductivity of wires in aerospace applications. Journal of Aerospace Engineering, 231(5), 879-890.