TY - JOUR
T1 - Advanced characterization techniques and protective mechanism investigation methodologies for ultra-high temperature thermal protective materials
AU - Zhang, Yi
AU - Liu, Bing
AU - Zhang, Xin
AU - Liu, Huimin
AU - Wang, Xiaoshuang
AU - Zhang, Yulei
AU - Fu, Qiangang
AU - Yin, Xuemin
AU - Li, Hejun
N1 - Publisher Copyright:
© 2026 Elsevier Ltd
PY - 2027/2
Y1 - 2027/2
N2 - Ultra-high temperature thermal protective materials (UHTPMs), endowed with exceptional temperature resistance, high mechanical strength, and superior corrosion resistance, have emerged as critical materials in fields of aerospace, nuclear energy, and advanced equipment manufacturing. Recently, driven by the dual impetus of the worsening global energy crisis and the continuous advancement of aircraft performance, UHTPMs are gradually evolving toward lightweight and long service life. Conventional materials have been increasingly unable to meet the current stringent demands, making the upgrading of material systems an urgent necessity. The intrinsic properties of UHTPMs are core indicators that directly measure their service stability and reliability. Advanced characterization technologies serve as the key to material screening. Moreover, the correlation between “composition-structure-process-property” will be essentially established only by systematic elucidation of their thermal protective mechanisms. Therefore, this review highlights the recent progress in advanced characterization techniques and investigation methodologies for thermal protective mechanisms of UHTPMs, aiming to provide theoretical guidance and technical references for the development of new high-performance UHTPMs.
AB - Ultra-high temperature thermal protective materials (UHTPMs), endowed with exceptional temperature resistance, high mechanical strength, and superior corrosion resistance, have emerged as critical materials in fields of aerospace, nuclear energy, and advanced equipment manufacturing. Recently, driven by the dual impetus of the worsening global energy crisis and the continuous advancement of aircraft performance, UHTPMs are gradually evolving toward lightweight and long service life. Conventional materials have been increasingly unable to meet the current stringent demands, making the upgrading of material systems an urgent necessity. The intrinsic properties of UHTPMs are core indicators that directly measure their service stability and reliability. Advanced characterization technologies serve as the key to material screening. Moreover, the correlation between “composition-structure-process-property” will be essentially established only by systematic elucidation of their thermal protective mechanisms. Therefore, this review highlights the recent progress in advanced characterization techniques and investigation methodologies for thermal protective mechanisms of UHTPMs, aiming to provide theoretical guidance and technical references for the development of new high-performance UHTPMs.
KW - Ablation resistance
KW - Advanced characterization techniques
KW - High-temperature mechanics
KW - Oxidation resistance
KW - Ultra-high temperature thermal protective materials
UR - https://www.scopus.com/pages/publications/105045968284
U2 - 10.1016/j.pmatsci.2026.101788
DO - 10.1016/j.pmatsci.2026.101788
M3 - 文献综述
AN - SCOPUS:105045968284
SN - 0079-6425
VL - 164
JO - Progress in Materials Science
JF - Progress in Materials Science
M1 - 101788
ER -