Analisis Perbandingan Karakteristik Aerodinamika Split-Tip Winglet dan Sharklet pada Sayap NACA 653-218 Menggunakan Digital Subsonic Wind Tunnel
DOI:
https://doi.org/10.54706/senastindo.v7.2025.428Keywords:
Airfoil, winglet, Split-TipAbstract
This study aims to analyze and compare the lift force, drag force, and lift and drag coefficients of a NACA 653-218 airfoil wing equipped with different wingtip configurations: split-tip winglet, sharklet, and no winglet. The experiment was conducted using a Digital Subsonic Wind Tunnel with airflow velocities of 5 m/s, 15 m/s, and 25 m/s, and Angle Of Attack variations from 0° up to stall, with 2° intervals. The test specimen was designed based on the NACA 653-218 wing with an interchangeable tip to accommodate each winglet configuration. The results show that the addition of a sharklet produced the highest lift compared to the other configurations. At a velocity of 25 m/s and an Angle Of Attack of 20°, the wing without a winglet generated a lift of 1.25 N, with a split-tip winglet 1.36 N, and with a sharklet 1.39 N. These findings indicate that adding a sharklet to the NACA 653-218 wing improves aerodynamic efficiency by providing higher lift performance compared to both the split-tip winglet and the baseline wing
Downloads
References
[1] F. T. Hidayat, B. Rabeta, and F. Fransiscus, “Analisis Pengaruh Winglet Pada Sayap Pesawat Cessna 172 Menggunakan Perangkat Lunak XFLR5,” J. Teknol. Kedirgant., vol. 5, no. 1, pp. 50–56, 2020, doi: 10.35894/jtk.v5i1.423.
[2] S. Jumini, “GAYA AERODINAMIK DALAM PENERBANGAN PERSPEKTIF Q.S. AN-NAHL: 79,” 2013.
[3] G. Setyoaji, I. Haryanto, and A. Widodo, “Analisa Statis Struktur Wing Box Pesawat Udara Dengan Equivalent Plate Model,” J. Tek. Mesin Undip, vol. 4, no. 1, pp. 63–70, 2016.
[4] M. Razzaaq and R. S. , Lailatul Husna Lubis, “http://ojs.unimal.ac.id/index.php/relativitas/index,” vol. 7, no. 2, pp. 102–111, 2024.
[5] B. W. McCormick, “Aerodynamics Aeronautics And Flight Mech,” 1995.
[6] F. Sumantri and M. Fitri, “Perancangan Alat Uji Vortex Bebas Dan Vortex Paksa,” Zo. Mesin, vol. 8, no. 2, pp. 1–9, 2021.
[7] J. John D. Anderson, Fundamental of Aerodynamic. 2016.
[8] M. R. Sormin and R. Permatasari, “Analisis Spiroid Winglet Pada Pesawat Subsonic Dengan Variasi Sudut Serang Terhadap Konsumsi Bahan Bakar Menggunakan Metode Computational Fluid Dynamic,” J. Penelit. Dan Karya Ilm. Lemb. Penelit. Univ. Trisakti, vol. 5, no. 1, pp. 1–7, 2020, doi: 10.25105/pdk.v5i1.6414.
Downloads
Published
How to Cite
Issue
Section
Categories
License
Copyright (c) 2025 Widyo Nur Rahman, Linggar Widayatmo

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