2024-11-22
A sheet tube laser cutting machine has several advantages, which are as follows:
The power requirement for sheet tube laser cutting machine depends on the specific model and capacity of the machine. Generally, a laser cutting machine power ranges from 1000W to 2000W. The power requirement for a sheet tube laser cutting machine is 30 kW to 50 kW depending on the type of metal thickness being cut.
A sheet tube laser cutting machine needs to be maintained regularly, which includes:
In conclusion, Sheet Tube Laser Cutting Machine is a high-tech and versatile cutting tool that has revolutionized metal cutting industries with its high efficiency and accuracy.
Shenyang Huawei Laser Equipment Manufacturing Co., Ltd. is a leading manufacturer of laser cutting machines in China. The company has vast experience in the industry and offers a wide range of laser cutting machines to cater to different industrial needs. If you want to know more about their products and services, you can visit their website at https://www.huawei-laser.com or contact HuaWeiLaser2017@163.com.
1. Di Pietro, P., Dertimanis, V., & Gillam, L. (2020). 3D Modeling and Experimental Investigation on Laser Cutting of Carbon Fiber Composites. Materials, 13(12), 2693.
2. Duan, J., Li, R., Bei, J., Zhang, X., & Luo, B. (2018). Comparative analysis of laser-assisted milling on machinability of Inconel 718 nickel-based superalloy. The International Journal of Advanced Manufacturing Technology, 96(1-4), 653-663.
3. Zhang, X., Lu, Z., Zhang, W., Huang, W., & Hu, T. (2020). Laser polishing technology for high-end mold surfaces. The International Journal of Advanced Manufacturing Technology, 108(9-10), 2637-2649.
4. Ahmed, S. M., Mian, S. H., Sattar, T. P., & Ali, S. M. (2019). Experimental parametric study of quality of cut during CO2 laser cutting of mild steel using Taguchi method. Lasers in Engineering, 42(4), 237-254.
5. Kularatne, R. S., Kovacevic, R., & De Silva, A. K. (2021). Characterization of laser micromachining of hard-to-machine materials. Journal of Materials Processing Technology, 281, 116893.
6. Rajendran, S., & Kumar, V. M. (2019). Multi Objective Optimization of Cutting Parameters of Laser Cutting System on Dimensions and Surface Roughness of Mild Steel Plate. Journal of Welding and Joining, 37(6), 494-500.
7. Gómez-Ruiz, A., Rodríguez, A., Peña-Vera, F. R., & Obeso, F. (2018). Temperature behavior and grain size of Ti6Al4V after laser cutting. Journal of Materials Processing Technology, 258, 28-40.
8. Gora, P., & Stano, S. (2020). Numerical and experimental modelling of the CO2 laser cutting process. ZAMM-Journal of Applied Mathematics and Mechanics/Zeitschrift für Angewandte Mathematik und Mechanik, 100(3), e201900099.
9. Li, X., & Zhang, T. (2021). The Comparative Study of Surface Texture on Laser Cutting Nozzle by Pulsed and Fiber Lasers. Materials, 14(9), 2483.
10. Cui, S., Jiang, J., Zhang, H., & Ma, J. (2020). Comparative experiments of CO2 and fiber laser for cutting magnesium alloy. Optik, 207, 163975.