OPTIMIZATION OF WATERJET THRUST FOR FISHING BOAT USING THE TAGUCHI METHOD
DOI:
https://doi.org/10.15578/aj.v7i2.17301Kata Kunci:
Thrust Force, Orthogonal array, Waterjet.Abstrak
Indonesia is an archipelagic country with vast waters. Therefore, it is necessary to develop water transportation tools that support the exploitation of marine resources. Therefore, this study optimizes the waterjet thrust on fishing boat to determine the impact on fishermen's profits. Simulation to obtain the velocity at the nozzle outlet is carried out using CFD software.The purpose of this study is to obtain Waterjet Design Variation Variables that produce optimum Thrust Force. The design variables varied are the nozzle outlet diameter, the number of stator blades, and the number of rotor blades. Where each design variable has 3 levels and its degrees of freedom are 6. Thus, the Experimental Design uses the L9 orthogonal array matrix. The L9 orthogonal array matrix has 3 columns and 9 rows that can be used for 3 independent variables, each of which has 3 levels. From the test results, the smallest thrust force is 24.46 N in the 3rd Variation. Meanwhile, the highest thrust force is found in Variation 5, with design variables of nozzle outlet diameter of 80 mm, number of rotor blades of 4, and number of stator blades of 6. The highest thrust force is 38.58 N. The design variations that affect the thrust force are nozzle outlet diameter, number of stator blades and number of rotor blades. The results of the research have an impact on making it easier for fishermen to choose the specifications of the waterjet they will use.Referensi
Budiyanto, M. A., Novri, J., Alhamid, M. I., & Ardiyansyah. (2019). Analysis Of Convergent And Divergent-Convergent Nozzle Of . Aip Conf. Proc, 1-8.
Fajardini, R. A., Mazwan, & Utama, S. D. (2025). Implementation Of The Taguchi Method For Optimizing Surface Roughness In The Aluminum . Rotasi, 27(2), 71-76.
Han , S., Lee, Y.-S., & Choi, Y. B. (2012). Hydrodynamic Hull Form Optimization Using Parametric Models. J Mar Sci Technol, 17, 1–17.
Harris, A., Sudiarso, A., & Sutanto, R. (2022). Strategi Pertahanan Laut Dalam Rangkaancaman. Jurnal Education And Development, 10(2), 325-331.
Hasdiansah, Seva, S. M., Ahadiatullah, W. A., Oktavianto, M., Maulidiansyah, M. A., & Viniolita, T. (2024). Pengaruh Variasi Jumlah Blade Inlet Turbo Pada Waterjet Thruster . Momentum, 20(1), 64-69.
Huang, R., Ye, W., Dai, Y., Luo, X., Wang, Y., Du, T., & Huang , C. (2020). Investigations Into The Unsteady Internal Flow Characteristics For A Waterjet . Ocean Engineering, 187(22), 1-14.
Jiao, W., Cheng, L., Zhang, D., Zhang, B., Su, Y., & Wang, C. (2019). Optimal Design Of Inlet Passage For Waterjet Propulsion System. Advances In Materials Science And Engineering, 2019(12), 1-22.
Lou, Y., Peng, G., & Hao, C. (2024). Numerical Simulation And Thrust Performance Optimization Of Water Jet Thruster . Journal Of Physics: Conference Series, 27(7), 1-10.
Miftah , A. N., Atmaja , D. S., & Oktafiani, A. (2022). Optimasi Multi-Objektif Proses Pemesinan Milling Dengan Metode Taguchi Kolaborasi Grey Relational Analysis. Jurnal Sistem Cerdas, 5(2), 117-127.
Oktavianto, M., Rollastin, B., & Hasdiansah. (2023). Optimasi Variasi Panjang Blade Inlet Turbo, Impeller Type, Dan . Dinamika: Teknik Mesin Unkhair, 8(1), 13-19.
Prasdika, T. O., Bahatmaka, A., Kriswanto, & Darsono, F. B. (2025). Analisis Numerik Performa Propulsi Kapal Ikan Guna Meningkatkan Efisiensi Dan . Jurnal Pendidikan Dan Teknologi Indonesia, 5(5), 1485-1496.
Ridwan, M. (2010). Peningkatan Kinerja Sistem Propulsi Kapal Penangkap Ikan. Gema Teknologi, 16(2), 106-112.
Seva , M. S., & Hasdiansah. (2024). Uji Performa Waterjet Thruster Produk 3d Printing Material Super Tought Polylactic . Quantum Teknika, 5(2), 43-48.
Seva, M. S., Kurniawan, Z., & Hasdiansah. (2024). Optimasi Karakteristik Komponen Waterjet Thruster Terhadap . Jurnal Inovasi Teknologi Terapan, 2(2), 396-402
Sultan, A. D., Rizky, Hidayat, Mulyani, S., & Yusuf, A. W. (2020). Analysis Of The Effect Of Cross-Sectional Area On Water Flow Velocity By Using Venturimeter Tubes. Jurnal Pendidikan Fisika, 8(1), 94—99.
Tangahu, H. D. (2020). Optimasi Komposit Serat Kersen Kekuatan Bending Dengan Menggunakan Metode Taguchi. Jurnal Teknik Mesin, 8(1), 147-152.
Wardhanu, Y., Santoso, Agoes, & Adji, S. (2013). Rancangan Nozzle Waterjet Untuk Meningkatkan Kecepatan Renang Pada Tank Bmp-3f. Jurnal Teknik Pomits, 2(1), 139-143.
Xu, Z., Galeazzi, R., & Yuan, J. (2022). Fault-Tolerant Thrust Allocation With Thruster Dynamics For A Twin-Waterjet Propelled Vessel. Marine Science , 10(4), 1-16.
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