A Taguchi-Simplex Algorithm for the Optimization of Tapped Density for Particulate Orange Peels
DOI:
https://doi.org/10.22441/ijiem.v5i1.22412Kata Kunci:
Taguchi-simplex, optimization, statistics, orange peel particles, compositesAbstrak
In the composite industry, green fillers transported between locations face undesirable impacts of road surface on powder loads but few methods accurately account for this challenge in tapped density measurements. The purpose of this paper is to introduce a methodology to help composite development engineers manage the transportation of orange particles in transit, on vehicles as they move from the particle production locations to the production process locations. In this paper, the Taguchi method-simplex algorithm (TM-SA) method is proposed for the tapped density optimization of orange peel particulates (OPPs). OPPs of 0.425 and 0.600mm for automobile applications are optimized using experimental data. Managing the transportation process of orange peel particulates and their outcomes needs managing substantial tapped density information. Taguchi method was integrated into the objective function of a simplex algorithm. The tapped density parameters were optimized at the lowest parametric values and the constraints were formulated. It was revealed that for the 0.425mm orange peel particulates, the optimal values and volumetric values were lower by 0.09% and lower by 4.06%, respectively. For the 0.600mm, the optimal values and volumetric values were higher by 0.005% and 6.91%, respectively, when the current method was compared with the literature values from the grey relational analysis. The results at optimality support the effectiveness of the method and were validated by the grey relational analysis results from the literature. The utility of our research is to help green filler powder manufacturers assure cost-effective decisions and logistics delivery optimization.Unduhan
Referensi
Ajibade O.A., Agunsoye J.O., Oke S.A., 2015, Metal removal process optimisation using Taguchi-simplex method with case study applications, Cankaya University Journal of Science and Engineering, Vol. 12, No. 2, pp. 033-058. https://dergipark.org.tr/en/pub/cankujse/issue/33129/368638
Ajibade O.A., Agunsoye J.O., Oke S.A., 2016a, Tapped density optimisation for four agricultural wastes: Part I – Taguchi technique and mean response determination, Acta Periodica Technologica, Vol. 47, pp. 109-127. https://doi.org/10.2298/APT1647109A
Ajibade O.A., Agunsoye J.O., Oke S.A., 2016b, Tapped density optimisation for four agricultural wastes: Part II - Performance analysis, main effects of process parameters and Taguchi-Pareto, Acta Periodica Technologica, Vol. 47, pp. 129-142. https://doi.org/10.2298/APT1647129A
Ajibade O.A., Agunsoye J.O., Oke S.A., 2016c, A grey relational analytical approach to orange peel filler particulates for tapped density experiments of green composite reinforcements, KKU Engineering Journal, Vol. 43, No. 3, pp. 108-119. https://doi.org/10.14456/kkuenj.2016.17
Ganguly D., Bera A., Hore R., Khanra S., Maji P.K., Kotnjess D.K., Chattopadhyan S., 2022, Coining the attributes of nano to micro dual hybrid silica-ceramic waste filler based green HNBR composites for triple percolation: Mechanical properties, thermal and electrical conductivity, Chemical Engineering Journal Advance, Vol. 11, Article 100338. https://doi.org/10.1016/j.ceja.2022.100338
Kim J.H., Yan J.H., Hong J.S., Lee J.S., Sun S. J. Ahn K.H., 2023, CO2-derived microalgae as a biomass filler to fabricate green composite, Materials Today Sustainability, Article 100582. https://doi.org/10.1016/j.mtsust.2023.100582
Kumar S.S., Vignesh V., Prasad V.V.S.H., Sumil B.D.Y, Srinivas R., Sanjay M.R., Siengchin S., 2023, static and dynamic mechanical analysis of hybrid natural fibre composites for engineering applications, Biomass Conversion and Biorefinery. https://doi.org/10,1007/513399-022-03689-2
Nagaprasad N., Vignesh V., Karthi K-Babour N.B., Manimaran P., Stalin B., Ramaswamy K., 2022, Effect of green hybrid fillers loading on mechanical and thermal properties of vinyl ester composites, Polymer composites, Vol.43, No. 11, pp.7928-7939. https://doi.org/10.1002/pc.26925
Roy K., Pongwisnthiruchte A., Debinath S.C, Potivarj P., 2021, Application of cellulose as green filler for the development of sustainable rubber technology, Current Research in Green and Sustainable Chemistry, Vol.4, Article 100140. https:doi.org/10.1016/j.crgsc.2021.100140
Saravanan D., Sollapur S. B., Anjappa S. B., Mall C., Prasad M. S., Vignesh S., 2022, TRibological properties of filler and green filler reinforced polymer composite, Material Today: Proceedings, Vol. 50, No.5, pp. 2065-2072. https:doi.org/10.1016/j.matpr.2021.09.414
Sarde B., Patil Y.D., Dhalakiya B.Z., 2021, Evaluation of effectiveness of palm oil fuel as green filler and methyl metacrylate as additive in recycled PET resin polymer composite, Journal of Building Engineering, Vol. 43, Article 103107. https://doi.org/10.1016/j.jobe.2021.103107
Sharif M. and Tayakol S., 2023, Biodegradable chistosan-graphene oxide as an effective green filler for improving of properties in epoxy nanocomposites, International Journal of Biological Macromolecules, Vol. 233, Article 123550. https://doi.org/10.1016/ijbiomac.2023.123550
Sun Z., Liu, Y., Wong R., Yu, M., Li J., Moran M., Zhang M., Dahariya S., Wong C.-P, 2022, Polydopamine-modifiedgraphene with cellulose nanofibers to act as fillers in epoxy nanocomposites for application in the next generation of green electronic packaging materials, Chemical Engineering Journal, Vol. 450, No. 3, Article 138299. https://doi.org/10.1016/j.cej.2022.13829
Wei W., Dezhi C., Ruining W. and Lin G., 2012. Hierarchial LiFEPO4/C microspheres with high tap density assembled by nanosheets as cathode materials for high performance Li-ion batteries, Nanotechnology, Vol.23, No 47. https://doi.org/10.1088/0957-4484/23/47/475401
Xiao J., Wang J., Liu Y., Li J., Li Y., 2006. Preparation of spherical cobalt carbonate powder with high tap density, Journal of Central South University of technology, Vol. 13, No. 6, pp. 642-646. https://doi.org/10.1007/s11771-006-0008-6
Yang S., Wang X., Yang X., Liu Z., Wei Q., and Shu H., 2012. High tap density spherical Li[Ni0.5Mn0.3Co0.2]O2 cathode material synthesized via continuous hydroxide co precipitation method for advanced Lithium-ion batteries, International Journal of Electrochemistry, Article ID 323560. https://doi.org/10.1155/2012/323560










