简体中文

What is field assisted additive manufacturing?

762
2024-07-29 14:03:17
查看翻译

Dr. Tan Chaolin from the Singapore Institute of Manufacturing Technology, in collaboration with China University of Petroleum, Shanghai Jiao Tong University, Princeton University, University of Malta, Huazhong University of Science and Technology (Professor Zhang Haiou), University of California, Irvine, Hunan University, and EPM Consulting, published an article titled "Review on Field Assisted Metal Additive Manufacturing" in the top manufacturing journal, International Journal of Machine Tools and Manufacturing. The Singapore Institute of Manufacturing Technology, Shanghai Jiao Tong University, and Princeton University are the corresponding author units.

This' super team 'elaborates on the current progress of field assisted additive manufacturing technology, reveals the interaction mechanism between fields and deposited metal materials, summarizes the correlation between auxiliary fields, microstructures, and mechanical properties, and looks forward to research opportunities in field assisted additive manufacturing.

Overview of Various Types of Field Assisted Additive Manufacturing (FAAM) Technologies

Field assisted additive manufacturing
Additive manufacturing technology provides unprecedented design freedom and manufacturing flexibility for processing complex components. It can manufacture parts that cannot be manufactured by other processes while minimizing processing steps. Typical metal additive manufacturing processes include laser powder bed melting (LPBF), laser energy deposition (LDED), electron beam melting (EBM), and arc additive manufacturing (WAAM), each with their own metallurgical characteristics, advantages, and applicability. The construction speed of LPBF is relatively low, but it has excellent capabilities in handling complex geometric shapes, such as lattice structures, advanced tools (such as mold inserts with conformal cooling channels), customized medical implants, etc; In contrast, LDED and WAAM have lower dimensional resolution and much higher deposition rates than LPBF, making them suitable for large-scale component manufacturing. In addition, the flexibility of material feed in LDED and WAAM has increased, allowing for the deposition of multiple materials within the same layer and across layers. The flexible tool path in LDED can repair large free-form surface parts.

Field assisted typical metal additive manufacturing technology
Therefore, although these technologies have numerous advantages compared to traditional manufacturing methods, there are still some problems and bottlenecks that hinder their large-scale industrial applications. For example, materials with poor printing adaptability may have defects, resulting in larger columnar dendrites with poor anisotropic mechanical and fatigue properties. In order to address these issues and fully leverage the potential of additive manufacturing technology, new methods have been studied for customizing microstructures, innovating equipment and devices, and introducing new concepts. Field assisted additive manufacturing (FAAM) is a new approach that combines the inherent advantages of different energy fields to overcome the limitations of additive manufacturing. Typical auxiliary fields applied in additive manufacturing processes include magnetic field, acoustic field, mechanical field, and thermal field. In addition, there are some emerging technologies such as plasma field, electric field, and coupled multi field as auxiliary energy fields.

The mechanism and advantages of field assisted additive manufacturing
Professor Tan Chaolin's research team has reviewed how the current mainstream magnetic field, acoustic, mechanical, thermal, electrical, and plasma field assisted technologies affect the metal additive manufacturing process. They believe that the assisted fields can affect the convection and dynamics of the melt pool, alter the temperature distribution and thermal history during material solidification, and cause stress or plastic deformation in deposited materials; A detailed review and discussion were conducted on how auxiliary fields affect melt pool dynamics, solidification dynamics, densification behavior, microstructure and texture, mechanical properties, and fatigue performance; We also discussed the research gap and further development trends of field assisted additive manufacturing.

Schematic diagram of using magnetic field assisted additive manufacturing


Schematic diagram of using sound field assisted additive manufacturing


Schematic diagram of using thermal field assisted additive manufacturing


Schematic diagram of using mechanical deformation assisted additive manufacturing

This critical review provides researchers with complete and up-to-date information on field assisted additive manufacturing, which helps to identify the shortcomings and advantages of each field assisted technology and improve maturity and technological readiness.

Field assisted additive manufacturing is expected to have high flexibility in handling high geometric complexity components and good scalability in depositing large or small free-form components. This poses a high challenge for process and system development as it requires a uniform field distribution. The breakthrough of uniform field distribution will improve the flexibility and scalability of field assisted technology, and make its application mature and scalable.

The certification and commercialization of field assisted additive manufacturing systems is another direction of progress, as most of the current field assisted additive manufacturing equipment is experimental and lacks strict testing and certification. The laboratory stage technology may have stability and repeatability issues, which are insufficient to handle reliable industrial products. Therefore, strict system certification is required to commercialize field assisted technology. At the same time, it is necessary to develop and compile system qualification standards to guide and certify qualifications for commercial use. Reliable commercial equipment will attract more researchers to advance and implement field assisted technologies in industrial applications.

Source: AM union Additive Manufacturing Master's and PhD Alliance

相关推荐
  • Ultrafast laser technology continues to reach new heights

    Ultra short pulse lasers, such as femtosecond lasers, are increasingly becoming easy-to-use plug and play devices suitable for a wide range of industrial and biomedical applications. Fifteen years ago, the volume of these lasers was still very large, requiring daily cleaning of optical components, regular maintenance of cooling water, and continuous optimization of laser parameters. Nowada...

    2023-11-06
    查看翻译
  • Breakthrough in optical quantum simulation using long-lived polariton droplets

    Abstract: A groundbreaking discovery by CNR Nanotec and scientists from the University of Warsaw has revealed a robust method for creating long-lived quantum fluids using semiconductor photonic gratings. This study, published in the journal Nature Physics, marks a significant step forward in simulating complex systems through unique polariton droplets that demonstrate stability in lifespan and rec...

    2024-03-27
    查看翻译
  • Shanghai Institute of Optics and Fine Mechanics has made progress in composite material based picosecond mirrors

    Recently, the High Power Laser Element Technology and Engineering Department of the Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, has made progress in the research of composite based picosecond mirrors. The related research results were published in Optics and Laser Technology under the title of "Hybrid Material Based Mirror Coatings for Picosed Laser Applications"....

    2024-07-12
    查看翻译
  • The world's first 40000 watt groove laser cutting machine is put into production in China

    On the morning of August 26th, the world's first large-scale 40000 watt groove laser cutting machine production ceremony was successfully held at Shandong Century Zhenghua Metal Technology Co., Ltd. located in Zhoucun District, adding another boost to the rapid development of Zhoucun's stainless steel industry chain.Source:博览新闻

    2023-08-28
    查看翻译
  • The ECSTATIC fiber optic project worth 5.1 million euros aims to prevent bridge collapse

    A new European research project is exploring whether the same fibre-optic cables that carry our internet could also serve as real-time sensors for hidden damage in infrastructure, including bridges, railways, tunnels and energy pipelines. The €5.1 million ECSTATIC project, coordinated by Aston University in the UK, is trialling this breakthrough approach in a major UK city, using a heavily-used...

    08-18
    查看翻译