Partial Discharge of Polyurethane/ Organoclay Composite Coated on Aluminum Conductor Overhead Lines

Bambang Soegijono, Ova Kurniawan, Hamdan Akbar Notonegoro, Arief Syarifuddin Fitrianto

Abstract


Aluminum conductor have been used worldwide as the primary conductive materials for high voltage electrical transmission lines. The partial discharge behavior of the aluminum conductor have been obeserved during operation due to the transmission line's performance to serve electricity. The partial discharge of aluminum alloy coated by polyurethane/organoclay (PClay) composite material was studied. PClay composites were prepared by adding organoclay with different content in polyurethane as a matrix then coated on an aluminum conductor sample. A partial discharge test was conducted to obtain the behavior of partial discharge versus voltage. It was found that an escalation of organoclay content in the polyurethane reduce partial discharge appears.

Keywords


materials, organoclay, electric

Full Text:

PDF

References


Tanaka T, Ohki Y, Ochi M, Harada M, Imai T. Enhanced partial discharge resistance of epoxy/clay nanocomposite prepared by newly developed organic modification and solubilization methods. IEEE Trans Dielectr Electr Insul. 2008;15(1):81–9.

Wang X, Wen Z, Yang X, Lin B. Nanosized tin-based composite derived by in situ mechanochemical reduction for lithium ion batteries. Solid State Ionics. 2008;179(21-26):1238–41.

Morimoto H. Mechanochemical Synthesis and Anode Properties of SnO-Based Amorphous Materials. J Electrochem Soc. 1999;146(11):3970.

Karami H, Karimi MA, Haghdar S. Synthesis of uniform nano-structured lead oxide by sonochemical method and its application as cathode and anode of lead-acid batteries. Mater Res Bull. 2008;43(11):3054–65.

Rahimi MR, Javadinezhad R, Vakilian M. DC partial discharge characteristics for corona, surface and void discharges. Proc IEEE Int Conf Prop Appl Dielectr Mater. 2015;2015-Octob:260–3.

Pilch-Pitera B. Polyurethane powder coatings containing polysiloxane. Prog Org Coatings. 2014;77(11):1653–62.

Adak B, Butola BS, Joshi M. Effect of organoclay-type and clay-polyurethane interaction chemistry for tuning the morphology, gas barrier and mechanical properties of clay/polyurethane nanocomposites. Appl Clay Sci. 2018;161(January):343–53.

Cao X, James Lee L, Widya T, Macosko C. Polyurethane/clay nanocomposites foams: Processing, structure and properties. Polymer (Guildf). 2005;46(3):775–83.

Song L, Hu Y, Tang Y, Zhang R, Chen Z, Fan W. Study on the properties of flame retardant polyurethane/organoclay nanocomposite. Polym Degrad Stab. 2005;87(1):111–6.

Iyer G, Gorur RS, Krivda A. Corona resistance of epoxy nanocomposites: Experimental results and modeling. IEEE Trans Dielectr Electr Insul. 2012;19(1):118–25.

Huang X, Li Y, Liu F, Jiang P, Iizuka T, Tatsumi K, et al. Electrical properties of epoxy/POSS composites with homogeneous nanostructure. IEEE Trans Dielectr Electr Insul. 2014;21(4):1516–28.

Muhammad D, Asaduzzaman M. Experimental investigation on friction coefficient of composite materials sliding against SS 201 and SS 301 counterfaces. Procedia Eng [Internet]. 2015;105(Icte 2014):858–64. Available from: http://dx.doi.org/10.1016/j.proeng.2015.05.106

Akbarian M, Olya ME, Mahdavian M, Ataeefard M. Effects of nanoparticulate silver on the corrosion protection performance of polyurethane coatings on mild steel in sodium chloride solution. Prog Org Coatings [Internet]. 2014;77(8):1233–40. Available from: http://dx.doi.org/10.1016/j.porgcoat.2014.03.023

Batio P, Fe Z. Microwave Absorbing Properties of DBSA-doped. 2012;1(1):45–53.

Kurniawan O, Ramadhan IH, Soegijono B. Thermal behaviour properties and corrosion resistance of carbon/polyurethane film. IOP Conf Ser Mater Sci Eng. 2019;578(1).

Talanov M V., Shilkina LA, Reznichenko LA. Anomalies of the dielectric and electromechanical responses of multicomponent ceramics on the basis of PMN-PT near the morphotropic phase boundary. Sensors Actuators, A Phys [Internet]. 2014;217:62–7. Available from: http://dx.doi.org/10.1016/j.sna.2014.05.025

Krohns S, Lunkenheimer P, Kant C, Pronin A V., Brom HB, Nugroho AA, et al. Colossal dielectric constant up to gigahertz at room temperature. Appl Phys Lett. 2009;94(12):8–11.

Moharana S, Mishra MK, Chopkar M, Mahaling RN. Journal of Science : Advanced Materials and Devices Enhanced dielectric properties of surface hydroxylated bismuth ferrite e Poly ( vinylidene fl uoride-co-hexa fl uoropropylene ) composites for energy storage devices. J Sci Adv Mater Devices [Internet]. 2016;1(4):461–7. Available from: http://dx.doi.org/10.1016/j.jsamd.2016.08.008

Kowalczyk K, Łuczka K, Grzmil B, Spychaj T. Anticorrosive polyurethane paints with nano- and microsized phosphates. Prog Org Coatings [Internet]. 2012;74(1):151–7. Available from: http://dx.doi.org/10.1016/j.porgcoat.2011.12.003

Wen S, Chung DDL. Pyroelectric behavior of cement-based materials. Cem Concr Res. 2003;33(10):1675–9.

Dongliang C, Yungui C, Changrong ZHU, Chaoling WU, Ding ZHU. Composition optimization and electrochemical characteristics of Co-free Fe-containing AB 5 -type hydrogen storage alloys through uniform design. 2012;30(4).

Chavan VP, Patwardhan A V, Gogate PR. Chemical Engineering and Processing : Process Intensification Intensification of epoxidation of soybean oil using sonochemical reactors. Chem Eng Process Process Intensif [Internet]. 2012;54:22–8. Available from: http://dx.doi.org/10.1016/j.cep.2012.01.006

Gon J, Son B, Mukherjee S, Schuppert N, Bates A, Kwon O, et al. A review of lithium and non-lithium based solid state batteries. J Power Sources [Internet]. 2015;282:299–322. Available from: http://dx.doi.org/10.1016/j.jpowsour.2015.02.054

Gatos KG, Martínez Alcázar JG, Psarras GC, Thomann R, Karger-Kocsis J. Polyurethane latex/water dispersible boehmite alumina nanocomposites: Thermal, mechanical and dielectrical properties. Compos Sci Technol. 2007;67(2):157–67.




DOI: http://dx.doi.org/10.36055/fwl.v1i1.9233

Refbacks

  • There are currently no refbacks.


Creative Commons License
FLYWHEEL: JURNAL TEKNIK MESIN UNTIRTA is licensed under a Creative Commons Attribution 4.0 International License.