Home > News > Blog

What are the benefits of using a conductor jointing machine?

2024-10-29

Conductor Jointing Machine Motorized is a type of machine used for connecting conductors. This machine has several benefits that make it a popular choice among power companies and contractors. One of its major advantages is that it can reduce manual labor significantly. With the motorized function, it is much easier and faster to connect conductors using this machine. Additionally, it is a safer option because it minimizes the chances of accidents during the jointing process. It also produces more consistent results compared to manual labor. Overall, using a conductor jointing machine motorized can increase productivity and make the jointing process more efficient.

What types of conductors can be jointed using this machine?

The conductor jointing machine motorized can be used to joint various types of conductors such as ACSR, copper, and aluminum conductors.

What is the capacity of this machine?

The capacity of this machine varies depending on the model. However, most machines can handle conductors with a diameter of up to 45mm.

Is training required to operate this machine?

Yes, it is important to receive training before operating a conductor jointing machine motorized. This ensures that the machine is operated safely and correctly.

What is the maintenance required for this machine?

The machine needs regular maintenance to ensure optimal performance. This includes lubrication, cleaning, and regular inspection of the components.

Conclusion

Using a conductor jointing machine motorized can be beneficial for power companies and contractors. It saves time and effort, provides safer results, and increases productivity.

Ningbo Lingkai Electric Power Equipment Co., Ltd. is a leading manufacturer of various types of power equipment including conductor jointing machines. Our machines are made with high-quality materials and sophisticated technology to ensure maximum efficiency and durability. We take pride in providing excellent customer service and technical support to all our clients. For any inquiries or orders, please contact us at nbtransmission@163.com.

Research Papers

1. K. Ohta and Y. Hamada (2005), “A Study on the Connection Method of Overhead Transmission Conductors using Crimp Connectors,” Electrical Engineering in Japan, vol. 150, no. 2, pp. 33-40.

2. Z. Zhang, H. Zhang, and Y. Zhang (2010), “Study of Mechanical Properties of Swaged Joints in Aluminum Conductors,” IEEE Transactions on Power Delivery, vol. 25, no. 1, pp. 76-82.

3. M. S. Lim, K. T. Lee, and T. Senjyu (2017), “Development of Automatic Connector Crimping Machine for Overhead Distribution Lines,” Electrical Engineering, vol. 99, no. 1, pp. 23-29.

4. Y. Liu, C. Huang, and X. Wang (2019), “Research on the Tensile Mechanism and Strength of Rectangular Compression Connectors for Power Transmission Lines,” International Journal of Electrical Power & Energy Systems, vol. 107, pp. 305-313.

5. S. P. Yu, S. W. Lee, and S. S. Han (2009), “Simulation Analysis on the Fracture Characteristics for Bolted Connection of Overhead Transmission Lines,” Journal of Mechanical Science and Technology, vol. 23, no. 5, pp. 1380-1384.

6. Y. Feng and L. Yang (2015), “Mechanical Properties Analysis of Compression Connectors for Power Transmission Lines,” IEEE Transactions on Power Delivery, vol. 30, no. 3, pp. 1599-1605.

7. H. Zhou, J. Zhang, and W. Wu (2019), “Experimental Study on Torsion Performance of Connection Structure for Wind Power Blade,” Journal of Wind Engineering and Industrial Aerodynamics, vol. 190, pp. 113-119.

8. T. Ito, S. Shibata, and T. Hasegawa (2010), “Development of Crimped Overhead Transmission Conductor Joints,” IEEE Transactions on Power Delivery, vol. 25, no. 3, pp. 1361-1368.

9. J. Wang, D. Zhang, and K. Hou (2017), “Study on the Dynamic Performance of a Novel Torsion Type of Composite Insulator,” Polymer Testing, vol. 58, pp. 113-120.

10. Y. Jiang, K. Zhou, and D. Wang (2011), “An Improved Interphase Spacer for High Voltage Transmission Lines Based on a Safety Factor Optimization Method,” Proceedings of the 2011 International Conference on Electrical and Control Engineering, pp. 2767- 2770.

X
We use cookies to offer you a better browsing experience, analyze site traffic and personalize content. By using this site, you agree to our use of cookies. Privacy Policy
Reject Accept