Effect of Corn Husk Powder Mixture on Mechanical Properties Using a Matrix Polyester and Vinylester
DOI:
https://doi.org/10.51601/ijse.v6i2.751Keywords:
Corn, Varieties, Cow Manure, and Marginal Critical LandAbstract
The development of composite material technology continues to grow across various industries due to its advantages, including low density, high mechanical strength, and corrosion resistance. The use of synthetic fibers in composites has drawbacks in terms of environmental impact and production cost, making natural reinforcing materials such as corn husk powder a sustainable alternative. This study aims to determine the effect of adding corn husk powder on the mechanical and physical properties of a composite using a mixed matrix of polyester resin (70%) and vinylester resin (30%). The composites were fabricated using the hand lay-up method with corn husk powder mass variations of 0, 2, 5, 7, and 12 grams, and were tested for impact toughness using the Charpy method according to the ASTM D6110 standard. The results show that the addition of corn husk powder significantly increased the composite's impact toughness. Impact values increased progressively from 0.007 J/mm² at 0 grams, to 0.043 J/mm² (2 grams), 0.062 J/mm² (5 grams), 0.085 J/mm² (7 grams), reaching the highest value of 0.149 J/mm² at 12 grams. The 12-gram variation was identified as the best composition in this study, producing the highest absorbed energy and impact toughness. These results indicate that corn husk powder has strong potential as a natural reinforcing material in polyester–vinylester based composites, while also adding value to agricultural waste and supporting the development of environmentally friendly materials.
Downloads
References
[1]. Akbar, RR, & Ningsih, TH (2024). The Effect of Variations in Powder Orientation and Drying Time on the Tensile Strength of Corn Husk Powder Composites. Journal of Mechanical Engineering, 12(02), 1-6.
[2]. Nugraha, MDA, & Rasid, M. (2021). The Effect of Filler/Corn Husk Powder Structure on Polyester Resin Composite Bending Tests as a Ceiling Substitute. MACHINERY Journal of Applied Technology, 2(2), 66-72.
[3]. Ramadhani, A., Prastowo, SHB, & Handayani, RD (2022). The effect of volume fraction on corn husk powder composite with polyester matrix on tensile strength as raw material for board industry. Mechanical Engineering Dynamics, 12(2), 129-136.
[4]. Syarief, A., & Amin, M. (2016). The effect of variations in the volume fraction of polyester-corn husk (Zea mays) composites on impact, bending, and tensile strength. Scientific Journal of Mechanical Engineering Kinematics, 1(1), 1-10.
[5]. Yusroni, AA, & NINGSIH, TH (2025). The Effect of Variations in Powder Composition and Post-Curing Temperature of Corn Husk Powder Composites on Hardness. Journal of Mechanical Engineering, 9-14.
[6]. Rachmadi, W., & Ningsih, TH (2023). Optimization of NaOH Concentration and Soaking Time Treatment and Volume Fraction of Corn Husk Powder Composites for Taguchi Method Bending Tests. Journal of Manufacturing, Energy and Automotive Technology Innovation, 2(1), 30-38.
[7]. Dari, TW, & Elvaswer, E. (2021). Sound Absorption Coefficient and Acoustic Impedance of Corn Husk Powder Panels Using the Tube Method. Unand Physics Journal, 10(4), 473-478.
[8]. Bahrul Ilmi, F. (2025). Analysis of Tensile Strength and Macro Structure of LDPE and PVC Plastic Composites with Corn Husk Powder (Doctoral Dissertation, Muhammadiyah University of Ponorogo).
[9]. Tjahjanti, PH, Widodo, E., Mauliana, MI, & Darmawan, C. (2025). The Effect of Variations in the Composition of Corn Husk, Brass, and Aluminum Powder on the Hardness and Toughness of Non-Asbestos Brake Pad Composites. Jurnal Mesin Nusantara, 8(2), 236-246
[10]. Yudo, E., Adha, A., Subhan, M., & Yuliyanto, Y. (2023). The Effect of Curing Time on Corn Husk Powder Composite Material as an Alternative for Car Bumpers. Manutech: Journal of Manufacturing Technology, 15(02), 159-166.
[11]. Maulana, N. (2024). Strength Characterization of Corn Husk Powder Composite with Epoxy and PVAc Matrix on Physical and Mechanical Properties.
[12]. Akbar, F., Garjati, VN, & Luqyana, D. (2024, December). Extrusion Temperature Effects and Composition of Corn Skin Fiber Enhancer on Composite with Polypropylene (PP) Matrix for 3D Printing Filament Applications: Effect of Extrusion Temperature and Corn Skin Fiber Enhancer Composition on Composite with Polypropylene (PP) Matrix for 3D Printing Filament Applications. In Proceedings of the National Seminar on Mechanical Engineering (No. 1, pp. 357-363).
[13]. Ginting, A. (2015). Utilization of corn husk waste for modular products using twisting techniques. Dynamics of Crafts and Batik: Scientific Magazine, 32(1), 51-62.
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2026 Ahyuda Ahyuda, Rahmat Fajrul

This work is licensed under a Creative Commons Attribution 4.0 International License.


















