国产成人在线免费看_国产黄色视频网站_成人毛片在线免费观看_日韩伦理一区二区_亚洲黄色自拍_av亚洲精华国产精华

R&D and applications for next-generation laser processing
Release time : 2025-04-25
View volume : 585

Scan the code to browse this page on your phone

R&D and applications for next-generation laser processing

Beam shape control, polarized beam control, heat distribution imaging, laser source improvement, etc.

 

 

Laser processing technology continues to make remarkable progress, and is expanding into new markets such as automobiles, fuel cells, etc. In the future, this technology will be used for processing crystalline and bio-materials. The number of applications for laser processing are diverse, including cutting, welding, drilling, grooving, and surface modification. Recently, the output power and processing speed of lasers have become higher.  The enhanced performance enables users to design ideal laser processing methods based on their unique application requirements.

 

This breakthrough in laser processing technology is largely due to the rise of fiber laser technology. Fiber lasers consume less power, can be handled more flexibly, have shorter wavelengths, and higher absorption rates than conventional CO2 lasers. These characteristics enable fiber lasers to process materials at higher speeds than CO2 lasers.

 

In addition to faster processing speeds, fiber lasers offer a diverse set of new applications in fields such as cutting, hole drilling, groove formation, and welding.  Each of these applications come with their own set of issues such as the need to improve cutting surface quality and spatter reduction in welding.  To address these needs, research and development is growing to improve processing accuracy, maintain beam quality and to control wavefronts on irradiated surfaces. Furthermore, fiber laser processing has a number of potentially fatal challenges that need to be addressed; namely dirt on cutting surfaces, change in cutting sharpness, tapered surfaces and change in cross sections after cutting.

 

There are high expectations to use “polarization control technology” as a means to improve both laser processing speed and beam quality. It is well-known that the local absorption can be controlled by adjusting the laser polarization axis. Polarization control allows improvement tothe shape of the processed area  and improves the cutting speed.

 

The benefits of polarization control technology extend beyond better processing speed and beam quality.  Using the wavefront control prinicple of the Pancharatnam-Berry phase, a device with spatial patterning of different polarization axes can be used to achieve highly precise beam shaping. For example, in the field of spatterless welding, the beam shape (central beam + ring beam) is controlled to prevent fire onto and roughness of the work surface due to spatter.

 

Beam shaping using photonic crystals.
e.g. Gaussian distribution into doughnut shape.

 

Polarization distribution control using photonic crystals
e.g. Converting uniform circularly polarized light to radially linearly polarized light distibution.

 

While technologies such as DOE, aspheric lenses (such as axicon), spatial light modulators, homogenizers, and field mapping have been proposed as conventional beam control methods, their use is often limited in terms of beam shape accuracy, wavelength bandwidth, and light propagation speed. There are also issues related to prototyping in that flexible and speedy prototyping cycles are needed to match specific processing applications are difficult to achieve. In addition, to use such technologies to improve beam quality, it is necessary not only to develop control methods for beam shape, wavefront control, and polarization components, but also to construct an optimum optical system to confirm the the desired processing effect.

 

Photonic Lattice offers its unique polarization beam shaping technology, which enables us to provide a variety of high-precision beam control elements. Furthermore, Photonic Lattice has created a vertically integrated in-house production from fundamental element design to manufacturing. Using our know-how we provid prototype and mass production services to quickly respond to the diversifying needs of the laser processing industry.

 

In addition, to evaluate laser processing performance, we have technologies for visualization using a high-speed camera, thermal distribution using an infrared camera, and evaluation of internal strain using a polarization camera. We will contribute to higher precision in laser processing by providing not only optical elements but also integrated solutions including precise evaluation.

 

Temperature distribution of work piece in laser welding.

 

High-speed thermal imaging of welding pools

 

High-speed camera imaging of CO2 laser welding.

 

Original:

https://www.photonic-lattice.com/solution/ultra-precision-micro-laser-processing/

 

上一篇:The Importance of Measuring Dose In UV-C Light Disinfection

LIST

下一篇:沒有了

Contact Us
Hong Kong 

Phone:+ 852 2755 6578

Address:Room 68,1/F, Sino Industrial Plaza, 9 Kai Cheung Road,
Kowloon Bay, Kowloon, Hong Kong

Shanghai 

Phone:400 886 0017

Address:8 / F, No. 3, Magnolia Environmental Plaza, Lane 251,
Songhuajiang Road, Yangpu District, Shanghai

? 2011-Now A&P Instrument Co., Ltd. All rights reserved

滬ICP備06031990號-1

滬公網安備31011002002121號

主站蜘蛛池模板: 欧美精品四区 | 欧美顶级毛片在线看 | 中文字幕国内自拍 | 人妻夫の上司犯感との中文字幕 | hd法国xxxxhdvideos| 在线观看91精品国产入口 | 久久久久亚洲一区二区三区 | 亚洲高清穴| 国产欧美一区二区三区国产幕精品 | 国产不卡一级无码视频 | 性淫视频 | 日本一区免费看 | 上锁的房间中国版免费 | 中文字幕免费在线视频 | 国产成人啪精品视频免费网站 | 暖暖视频在线观看免费 | 97精品伊人久久久大香线蕉 | 一区二区三区亚洲精品国 | 久久久久高清毛片一级 | 日韩无码视频网站 | 亚洲欧洲日产国码韩国 | 影音先锋色中色 | 年轻的老师4 | 97av视频在线 | 亚洲国产成人综合一区二区三区 | wwwxx黄色 | 一区二三区日韩精品 | 麻豆人妻少妇精品无码专区 | 中文字幕一区二区日韩精品绯色 | 国产成人综合激情视频在线观看 | 亚洲综合啪啪 | 九九一级片 | 日韩精品天堂 | 看黄色免费片 | 欧美精品91 | 韩国三级大全久久网站 | 91综合网人人 | 久久久久久久久久久久久久久国产 | 久久青草免费视频 | 一本大道久久a久久精二百 国产av一级片日韩二区 | 亚洲高清穴 |