한국어

The Influence of Laser Beam Intensity Distribution on Lock Hole Geometry and Process Stability under Green Laser Radiation

877
2025-03-26 15:03:34
번역 보기

Researchers from the University of Aveiro in Portugal and the School of Engineering at Porto Institute of Technology (ISEP) in Portugal reported a study on the influence of laser beam intensity distribution on the geometric shape and process stability of lock holes under green laser radiation. The relevant paper titled "Influence of Laser Beam Intensity Distribution on Keyhole Geometry and Process Stability Using Green Laser Radiation" was published in the conference "Flexible Automation and Intelligent Manufacturing: Establishing Bridges for More Sustainable Manufacturing Systems".

Laser beam welding is increasingly being used for connecting copper materials. Compared with near-infrared radiation, green laser radiation has a significantly higher absorption rate advantage for these metals. Therefore, it is expected that there will be changes in process stability and the occurrence of defects. In addition, the influence of changing the strength distribution on the formation of weld defects and the geometric characteristics of welds in deep penetration welding mode has not been fully studied to a large extent. Therefore, the purpose of this work is to characterize the process dynamics and defect formation related to focal position and intensity distribution through high-speed imaging and metallographic analysis. Compared with the flat top intensity distribution, the weld defects observed under the Gaussian beam profile are significantly reduced. The favorable shape of the weld seam and the earlier start of deep welding process are the advantageous reasons for adopting this strength distribution, and the medium to high processing speed further improves the processing quality.

Keywords: laser beam welding; Green laser radiation; Intensity distribution; Electric vehicles; Process observation; quality improvement

 


Figure 1 Weld Defects in Copper Welding - Typical Top and Cross Sectional Views - a) Pores, b) Splashing Formation, c) Melt Spray, d) Collapse at the Root of the Weld.

Figure 2: Schematic diagram of the experimental setup used in this study (left), derivation of the composition of the weld cross-section (yellow), and defect evaluation of pores marked in green (right).

Figure 3 shows the measured intensity distribution of the flat top (left) and Gaussian (right) beam profiles.

Figure 4: The relationship between the deep penetration welding threshold and feed rate of oxygen free copper (Cu ETP) under different intensity distributions.

Figure 5: Overlapping weld profiles under different intensity distributions (laser power PL=2/3 kW, speed v=4m/min).

Figure 6 shows the relationship between the amount of spatter per unit weld length and feed rate under different intensity distributions and laser power settings.

Figure 7 shows the process instability observed in copper laser beam welding (LBW) through high-speed imaging (HSI), λ=515nm, PL=3kW, v=10 m/min, Flat top (top) and Gaussian (bottom) intensity distributions.

Figure 8 The relationship between quality loss (left) and defect area (right) under different intensity distributions and feed rate, λ=515nm, PL=1.5-3kW, dWorkpiece=340 µ m.

The purpose of this work is to characterize the process dynamics and defect formation directly related to the focal position and intensity distribution in copper welding under green laser radiation through high-speed imaging and metallographic analysis. In summary, the following conclusions can be drawn:

Compared with a flat top contour, the process under Gaussian intensity distribution is more stable, which has been consistently confirmed by splash analysis and quality loss measurement.

The favorable shape of the weld seam and the earlier start of deep penetration welding process are the advantageous reasons for adopting this strength distribution.

For Gaussian contours, selecting the appropriate focal position in the workpiece can minimize the number of weld defects, while from the perspective of melt pool area, reverse seems to be more effective.

In summary, choosing medium to high processing speeds (v>8 m/min) can improve process stability, and appropriate process parameters should be set considering application requirements (joint type, weld shape, etc.).

Source: Yangtze River Delta Laser Alliance

관련 추천
  • New and Strongest Laser Born in the United States

    The ZEUS laser at the University of Michigan recently achieved a breakthrough of doubling the peak power of the strongest laser in the United States through its first 2 quadrillion watt experiment. Although this instantaneous power only lasts for 25 attosecond (one billionth of a second), it exceeds the total power of the global power grid by more than a hundred times.Karl Krushelnick, director of...

    05-28
    번역 보기
  • Microscopic Marvel photon devices have the potential to completely change the way physics and lasers are processed

    Researchers at Rensselaer Institute of Technology have developed a device that operates at room temperature, which is the first topological quantum simulator to operate under strong light matter interaction mechanisms, making high-tech research easier in cutting-edge ways.Researchers at Rensselaer Institute of Technology have developed a device no larger than human hair, which will enable physicis...

    2024-06-04
    번역 보기
  • Laser communication is expected to completely change optical links

    Laser technology is becoming a game changer in the field of satellite communication (SATCOM), capable of creating ultra secure networks that can transmit large amounts of data at unprecedented speeds through satellite networks and constellations.With continuous progress, the industry is ready for growth and collaboration, seizing the untapped potential of disconnected populations. The ability to h...

    2023-09-20
    번역 보기
  • French laser giant's profits decline, laser radar business restructuring

    Recently, Marvel Fusion, a pioneer in the field of laser fusion, successfully raised 62.8 million euros (approximately 70.3 million US dollars) in funding. This funding will provide strong impetus for its fusion technology demonstration on existing laser equipment and accelerate the comprehensive technology validation process at its facility in Colorado, with the goal of achieving this milestone b...

    2024-10-09
    번역 보기
  • E&R Engineering launches a mold cutting solution at Semicon SEA 2024

    Advanced laser and plasma solution provider E&R Engineering Corp. has confirmed that they will participate in the Semiconductor SEA 2024 event held in Kuala Lumpur, Malaysia. With 30 years of focus in the semiconductor industry, E&R has developed a wide range of plasma and laser technologies. At Semicon SEA 2024, they will showcase their latest solutions, including:Plasma Cutting - Small M...

    2024-05-20
    번역 보기