Metal powder bed fusion (PBF) is an advanced metal additive manufacturing (AM) technology. Compared with traditional manufacturing techniques, PBF has a higher degree of design freedom. Currently, although PBF has received extensive attention in fields with high-quality standards such as aerospace and automotive, there are some disadvantages, namely poor process quality and insufficient stability, which make it difficult to apply the technology to the manufacture of critical components. In order to surmount these limitations, it is necessary to monitor the process. Online monitoring technology can detect defects in time and provide certain feedback control, so it can greatly enhance the stability of the process, thereby ensuring its quality of the process. This paper presents the current status of online monitoring technology of the metal PBF process from the aspects of powder recoating monitoring, powder bed inspection, building process monitoring, and melt layer detection. Some of the current limitations and future trends are then highlighted. The combination of these four-part monitoring methods can make the quality of PBF parts highly assured. We unanimously believe that this article can be helpful for future research on PBF process monitoring.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9656737PMC
http://dx.doi.org/10.3390/ma15217598DOI Listing

Publication Analysis

Top Keywords

online monitoring
12
monitoring technology
12
powder bed
12
technology metal
8
metal powder
8
bed fusion
8
pbf process
8
process monitoring
8
process
7
pbf
6

Similar Publications

Background: The COVID-19 pandemic significantly increased the levels of burnout and symptoms of depression, anxiety, and stress among healthcare professionals. However, research on the interrelations between burnout and psychological symptoms is scarce, particularly among psychiatrists. This study addresses this gap in a national sample.

View Article and Find Full Text PDF

Background: Telemedicine has been utilized in the care of patients with COVID-19, allowing real-time remote monitoring of vital signs. This technology reduces the risk of transmission while providing high-quality care to both self-quarantined patients with mild symptoms and critically ill patients in hospitals.

Objective: This study aims to investigate the application of telemedicine technology in the care of patients with COVID-19, specifically focusing on usability, effectiveness, and patient outcomes in both home isolation and hospital ward settings.

View Article and Find Full Text PDF

VirDetector: A bioinformatic pipeline for virus surveillance using nanopore sequencing.

Bioinformatics

January 2025

Federal Research Institute for Animal Health, Institute of Novel and Emerging Infectious Diseases, Friedrich-Loeffler-Institut, 17493, Greifswald-Insel Riems, Germany.

Summary: Virus surveillance programmes are designed to counter the growing threat of viral outbreaks to human health. Nanopore sequencing, in particular, has proven to be suitable for this purpose, as it is readily available and provides rapid results. However, as special bioinformatic programmes are required to extract the relevant information from the sequencing data, applications are needed that allow users without extensive bioinformatics knowledge to carry out the relevant analysis steps.

View Article and Find Full Text PDF

Modifiable Psychological Mechanisms of Resilience Among UK Trainee and Newly Qualified Teachers.

Stress Health

February 2025

Department of Psychology, Institute of Psychiatry, Psychology and Neuroscience, King's College London, London, UK.

Teaching is identified as a stressful occupation, with elevated levels of burnout among the profession. Research suggests that resilience may buffer against stress and psychological distress and potentially be a useful resource for this occupational group. This research aimed to identify mechanisms associated with trainee teachers' resilience across time.

View Article and Find Full Text PDF

Mesh-Collision Microtube Plasma Ion Source for Direct Mass Spectrometry Analysis.

Anal Chem

January 2025

Chinese Academy of Inspection and Quarantine, Beijing 100176, China.

Developing ambient ionization methods for direct mass spectrometry (MS) analysis is crucial for achieving sample-to-answer capabilities, especially for rapid analysis and monitoring in specific scenarios. Herein, a compact device is presented that utilizes mesh-collision microtube plasma (MC-μTP) ionization for direct online MS analysis. This device features a self-aspirating design that enables the direct analysis of various sample types.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!