TY - JOUR
T1 - Recent advances in metal hybrid additive manufacturing
T2 - a comprehensive review
AU - Lu, Yu
AU - Zhang, Qi
AU - Chen, Yukai
AU - Wang, Yin
AU - Hua, Bingli
AU - Zheng, Peiyuan
AU - Jiang, Yuxuan
AU - Huang, Ke
AU - Han, Bin
AU - Chiba, Akihiko
AU - Zhang, Yancheng
N1 - Publisher Copyright:
© 2026 The Author(s). Published by IOP Publishing Ltd on behalf of the IMMT.
PY - 2026/6/1
Y1 - 2026/6/1
N2 - Metal additive manufacturing (AM) holds significant potential for the rapid prototyping of complex parts in the aerospace, defense, and military industries, biomedicine, and other fields. Despite its advantages over conventional manufacturing methods, AM faces technical bottlenecks (e.g., poor densification, high residual stress, and significant anisotropy of mechanical properties), which hinder its large-scale industrial application. The newly emerging metal hybrid additive manufacturing (MHAM) serves as a viable approach to address the inherent issues associated with AM. This method integrates different auxiliary technologies (e.g., subtractive manufacturing, formative manufacturing, magnetic fields, ultrasonic fields, thermal fields, etc.), leveraging the strengths of these technologies to enhance the performance of metal components produced via AM. MHAM offers numerous advantages, such as controlling the flow of the melt pool, refining the microstructure, optimizing the grain size orientation, reducing the residual stress, enhancing the surface quality, and improving the mechanical properties and fatigue resistance. This work offers a thorough and current analysis of the state of MHAM development, including additive and subtractive hybrid manufacturing, additive and formative hybrid manufacturing, and energy field-assisted additive manufacturing. It delineates the MHAM technology framework and clarifies the interaction mechanisms among various auxiliary technologies used in AM. Additionally, it discusses the impacts of MHAM on melt pool dynamics, solidification processes, densification, microstructure evolution, surface quality, and mechanical and fatigue properties. In summary, the distinct characteristics of various MHAM techniques are outlined, and future trends in MHAM development are anticipated.
AB - Metal additive manufacturing (AM) holds significant potential for the rapid prototyping of complex parts in the aerospace, defense, and military industries, biomedicine, and other fields. Despite its advantages over conventional manufacturing methods, AM faces technical bottlenecks (e.g., poor densification, high residual stress, and significant anisotropy of mechanical properties), which hinder its large-scale industrial application. The newly emerging metal hybrid additive manufacturing (MHAM) serves as a viable approach to address the inherent issues associated with AM. This method integrates different auxiliary technologies (e.g., subtractive manufacturing, formative manufacturing, magnetic fields, ultrasonic fields, thermal fields, etc.), leveraging the strengths of these technologies to enhance the performance of metal components produced via AM. MHAM offers numerous advantages, such as controlling the flow of the melt pool, refining the microstructure, optimizing the grain size orientation, reducing the residual stress, enhancing the surface quality, and improving the mechanical properties and fatigue resistance. This work offers a thorough and current analysis of the state of MHAM development, including additive and subtractive hybrid manufacturing, additive and formative hybrid manufacturing, and energy field-assisted additive manufacturing. It delineates the MHAM technology framework and clarifies the interaction mechanisms among various auxiliary technologies used in AM. Additionally, it discusses the impacts of MHAM on melt pool dynamics, solidification processes, densification, microstructure evolution, surface quality, and mechanical and fatigue properties. In summary, the distinct characteristics of various MHAM techniques are outlined, and future trends in MHAM development are anticipated.
KW - additive manufacturing
KW - auxiliary energy fields
KW - mechanical properties
KW - metal hybrid additive manufacturing
KW - microstructure evolution
UR - https://www.scopus.com/pages/publications/105029882080
U2 - 10.1088/2631-7990/ae36d3
DO - 10.1088/2631-7990/ae36d3
M3 - 文献综述
AN - SCOPUS:105029882080
SN - 2631-8644
VL - 8
JO - International Journal of Extreme Manufacturing
JF - International Journal of Extreme Manufacturing
IS - 3
M1 - 032010
ER -