Comparison of cutting speed variations in the laser cutting process on the results of SS400 steel plate products

Authors

  • Mutia Amalia Politeknik Negeri Medan, Indonesia
  • Adi Syahputra Purba Politeknik Negeri Batam, Indonesia
  • Stevian Rafly Politeknik Negeri Batam, Indonesia
  • Rona Cuana Politeknik Negeri Medan, Indonesia
  • Fatima Sari Ritonga Politeknik Negeri Medan, Indonesia

DOI:

https://doi.org/10.35335/computational.v14i1.258

Keywords:

Cutting Speed, Lasser Cutting, Surface Roughness

Abstract

Computer Numerical Control (CNC) laser cutting as a manufacturing tool for plate cutting, where industrial players are encouraged to get maximum results. Laser cutting is one of the tools used by the industrial world to maximize cutting results. The aim of this research is to determine the results of differences using cutting speed parameters on SS400 steel plate with a thickness of 1 mm using CNC fiber laser cutting on the surface roughness of the material. The method used in this research is a real experimental research method and data analysis to analyze the parameters of cutting plates using laser cutting on surface roughness with the number of experiments being replicated 2 times for the research process by testing surface roughness using Surface Roughness.

References

Alsaadawy, M., Dewidar, M., Said, A., Maher, I., & Shehabeldeen, T. A. (2024). A comprehensive review of studying the influence of laser cutting parameters on surface and kerf quality of metals. In International Journal of Advanced Manufacturing Technology (Vol. 130, Issues 3–4). Springer London. https://doi.org/10.1007/s00170-023-12768-1

Buj-Corral, I., Costa-Herrero, L., & Domínguez-Fernández, A. (2021). Effect of process parameters on the quality of laser-cut stainless steel thin plates. Metals, 11(8). https://doi.org/10.3390/met11081224

Carpene, E., Höche, D., & Schaaf, P. (n.d.). Fundamentals of Laser-Material Interactions. 21–47.

De Graaf, R. F., & Meijer, J. (2000). Laser cutting of metal laminates: analysis and experimental validation. Journal of Materials Processing Technology, 103(1), 23–28. https://doi.org/10.1016/S0924-0136(00)00414-3

Der, O., & Başar, G. (2025). Investigation of the Effects of Process Parameters on Machining Performance in Laser Cutting of 3D-Printed Pla. International Journal of 3D Printing Technologies and Digital Industry, 9(1), 9–20. https://doi.org/10.46519/ij3dptdi.1581618

Fajar Adi Nugroho, & Deni Hidayat. (2025). Pengaruh Variasi Parameter Cnc Laser Cutting Terhadap Kualitas Pemotongan Plat Baja Sphc. Jurnal Pendidikan Teknik Mesin Undiksha, 13(1), 86–95. https://doi.org/10.23887/jptm.v13i1.93218

Ghoreishi, M., Low, D. K. Y., & Li, L. (2002). Comparative statistical analysis of hole taper and circularity in laser percussion drilling. International Journal of Machine Tools and Manufacture, 42(9), 985–995. https://doi.org/10.1016/S0890-6955(02)00038-X

Ghozali, R. G., & Pangaribawa, M. R. (2024). Analysis of the Effect of Cutting Motion Speed in CNC Laser Cutting on Roughness and Accuracy †. Engineering Proceedings, 63(1). https://doi.org/10.3390/engproc2024063010

Hidayat, M. A., Farid, A., & Suwandono, P. (2021). Analisa parameter pada pemotongan plate menggunakan CNC fiber laser cutting terhadap kekasaran permukaan. Turbo : Jurnal Program Studi Teknik Mesin, 10(2), 239–247. https://doi.org/10.24127/trb.v10i2.1737

ISO/IEC-27002. (2022). International Standard ISO 4287:1997. 2022, 6.

JIS G 3010. (2016). Industrial Jis G 4051 : 2016.

Kučera, M., Švantner, M., & Smazalová, E. (2014). Influence of laser marking on stainless steel surface and corrosion resistance. METAL 2014 - 23rd International Conference on Metallurgy and Materials, Conference Proceedings, 890–895.

Lamikiz, A., Lacalle, L. N. L. De, Sánchez, J. A., Pozo, D. Del, Etayo, J. M., & López, J. M. (2005). CO 2 laser cutting of advanced high strength steels (AHSS). Applied Surface Science, 242(3–4), 362–368. https://doi.org/10.1016/j.apsusc.2004.08.039

Mohammad Rudi Romadhoni, & Samsul Hadi. (2024). Effect Variation Cutting Speed and Oxygen Pressure of Fiber Laser Cutting Machine on Surface Roughness of 304 Stainless Steel Material. Jurnal Teknik Mesin, 3(2), 318–322. https://doi.org/10.33795/j-meeg.v3i2.5713

Nugroho, G. (2015). Pengaruh Perubahan Kecepatan dan Daya terhadap Lebar Celah Laser pada Mesin Laser Cutting Kapasitas 60 Watt dengan Material Akrilik. 224–231.

Nurwahyudin, H., Rajib El Atros, M., & Mualif, M. (2025). Analisis Pengaruh Pengaturan Parameter pada CNC Cutting Laser terhadap Kualitas Hasil Pemotongan pada Material Stainless Steel 304 di PT X: Jurnal Engine: Energi, Manufaktur, Dan Material, 9(1), 121–130. https://doi.org/10.30588/jeemm.v9i1.2164

Pradana, Y. R. A., Afrianto, R., Rahman, C. H. A., & Andoko, A. (2023). The Effect of Cutting Speed of Nitrogen Laser Cutting on the Surface Texture of SUS 304 Plate. Journal of Mechanical Engineering Science and Technology (JMEST), 7(1), 66. https://doi.org/10.17977/um016v7i12023p066

Purba, A. S., Hermawan, M. G. R., Manurung, M. M., Stefani, W., Dzulfiqar, M. A., & Gunawan, L. Van. (2023). Perbandingan Variasi Power Dalam Proses Laser Engraving Terhadap Hasil Produk Stainless Steel. Journal of Applied Mechanical Technology, 2(1), 34–41. https://doi.org/10.31884/jamet.v2i1.29

Riveiro, A., Quintero, F., Boutinguiza, M., del Val, J., Comesaña, R., Lusquiños, F., & Pou, J. (2019). Laser cutting: A review on the influence of assist gas. Materials, 12(1). https://doi.org/10.3390/ma12010157

Riyadi, E. S., & Pratama, D. P. (2019). Pengaruh Laju Kecepatan Potong Pada Proses Pemotongan Menggunakan Gas Cutting Studi Kasus Kekasaran Permukaan Hasil Pemotongan Plat Tebal 12 mm. Tiarsie, 16(4), 109–112.

Singh, R. K., & Melkote, S. N. (2008). Laser-assisted mechanical micromachining. Smart Devices and Machines for Advanced Manufacturing, 337–365. https://doi.org/10.1007/978-1-84800-147-3_14

Sobotova, L., & Demec, P. (2015). MM_Science_201410. 808–812. https://doi.org/10.17973/MMSJ.2015

Soori, M., Karimi Ghaleh Jough, F., & Arezoo, B. (2024). Residual Stress and Surface Roughness Minimization in Laser Cutting of 304L Stainless Steel. Scientia Iranica, 0(0), 0–0. https://doi.org/10.24200/sci.2024.62207.8240

Sun & Brandt. (2013). Nontraditional machining processes: Research advances. In Nontraditional Machining Processes: Research Advances (Vol. 9781447151791). https://doi.org/10.1007/978-1-4471-5179-1

Venkata Rao, R., & Kalyankar, V. D. (2013). Parameter optimization of modern machining processes using teaching-learning-based optimization algorithm. Engineering Applications of Artificial Intelligence, 26(1), 524–531. https://doi.org/10.1016/j.engappai.2012.06.007

Yilbas, B. S. (2004). Laser cutting quality assessment and thermal efficiency analysis. Journal of Materials Processing Technology, 155–156(1–3), 2106–2115. https://doi.org/10.1016/j.jmatprotec.2004.04.194

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Published

2025-05-30

How to Cite

Amalia, M., Purba , A. S., Rafly, S., Cuana, R., & Ritonga, F. S. (2025). Comparison of cutting speed variations in the laser cutting process on the results of SS400 steel plate products. International Journal of Mechanical Computational and Manufacturing Research, 14(1), 15–22. https://doi.org/10.35335/computational.v14i1.258

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