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2022年1月,西北工业大学(Northwestern Polytechnical University,昵称“西瓜大”,简称“西工大”,是中华人民共和国工业和信息化部直属,我国唯一一所以同时发展航空、航天、航海(简称“三航”)工程教育和科学研究为特色的全国重点大学)李贺军院士(https://mp.weixin.qq.com/s/Sh9swmi3c58x7lqe_OIttg)、国家杰青付前刚教授(https://mp.weixin.qq.com/s/plB42-khi1SNBS_uxlDGPQ)等领衔的陕西省纤维增强轻质复合材料重点实验室(Shaanxi Key Laboratory of Fiber Reinforced Light
Composite Materials)在材料领域著名顶级期刊《Journal of
Materials Science & Technology》(简称《JMST》)发表了主题为“面向极端高温环境应用的微/纳米多尺度强韧化C/C复合材料(炭炭复合材料-隐藏的实力https://mp.weixin.qq.com/s/UglDya1J9-5eNqTIwsDEjw)及其涂层研究进展”的特邀综述文章(2022年96期,31-68页),并被遴选为封面文章(https://mp.weixin.qq.com/s/m1_FfV8KorBP_MiY-N23Ag)。参考文献:Fu
Qiangang 1*, Zhang Pei 1, Zhuang
Lei, Zhou Lei, Zhang Jiaping, Wang Jie, Hou Xianghui, Riedel Ralf, Li Hejun *,
Micro/nano multiscale reinforcing strategies toward extreme high-temperature
applications: take carbon/carbon composites and their coatings as the examples,
Journal of Materials Science & Technology, 2022, 96: 31-68. 10.1016/j.jmst.2021.03.076![]()
本综述系统地评述了微/纳多尺度强韧化极端苛刻环境用耐高温氧化/抗烧蚀复合材料相关重要新进展,同时对其强韧化机理和效果着重进行了论述。所述微/纳多尺度强韧化材料包括纳米颗粒(简写为NPs),碳纳米管/碳纳米纤维(简写为CNT/CNFs),纳米线(简写为NWs),晶须,石墨烯,陶瓷纤维和混杂多尺度微/纳结构等。综述包含综合表格13个,大图39幅,参考文献243条,基于本科研团队十多年的研究工作及相关课题组、研究单位的成果综述而成,总计逾两万字。相关研究工作得到了国家重点研发计划、凝固技术国家重点实验室基金、111创新引智基地项目、陕西省创新人才推进计划基金、超高温结构复合材料重点实验室基金、GF基金、国家自然基金委和陕西省教育厅科研计划项目等的经费支持。与该综述文章相关专题、主题涉及以下多个方面:微(石墨烯、晶须、短纤维)纳(纳米颗粒、纳米线、纳米管)多尺度材料,超高温陶瓷、强韧化,轻质高强复合材料,复合涂层,腐蚀、烧蚀与氧化,抗热震,氧化防护能力,核壳网络结构,原位生长,C/C复合材料,纳米陶瓷,机械性能,碳纳米管等等。文章发表后引起相关领域关注,感谢相关研究学者的持续关注。目前本文Scopus、web of science - Clarivate、Researchgate引用超过50条,![]()
发文前该综述已被国内外多位专家、学者在Advanced Functional Materials、Corrosion
Science、Advances
in Materials Science and Engineering、Reviews on Advanced Materials Science、Carbon、Engineering
Failure Analysis、ACS
Nano、JMST、Materials
Characterization、Ceramics
International、Materials、Journal
of the European Ceramic Society、Surface and Coatings Technology、Journal
of the American Ceramic Society、Synthesis and Sintering、Materials
Science and Engineering: A、Composites Part A: Applied Science and
Manufacturing等数十种期刊发表的53篇文章(包括预印本Rreprint)引用。部分关键施引文献(其中23篇已经在文章“JMST综述“面向极端高温环境应用的微/纳米多尺度强韧化复合材料及其涂层研究进展”及其新近相关工作概览”(下图所示https://mp.weixin.qq.com/s/-WRWFxB_ZO9ypELkS8HxBw)中介绍)如下(附有图片摘要Graphical
abstract等信息),于此将其他新近引用本综述的30篇文献的关键信息分享,以飨读者,共同学习、促进相关工程科学领域的认识(所列文章均已经在线正式发表,网络上可检索,如有侵权或交流请联系作者,QQ781520976,谢谢关注):![]()
24. Yin X, Han L, Liu H, et al.
Recent progress in 1D nanostructures reinforced carbon/carbon composites[J]. Advanced
Functional Materials, 2022, 32(35): 2204965. https://doi.org/10.1002/adfm.202204965(通讯单位:西北工业大学,第一作者:第一作者:殷学民博士后通讯作者:航空学院李霓教授、宋强研究员、张雨雷教授)
Graphical
Fig. 24. Skeleton diagram of design, fabrication, and properties of 1D
nanostructures reinforced C/C composites.
25. Xiao C, Song Q, Shen Q, et al.
Understanding on interlaminar nano-reinforcement induced mechanical performance
improvement of carbon/carbon composites after silicon infiltration[J]. Composites
Part B: Engineering, 2022, 239: 109946. https://doi.org/10.1016/j.compositesb.2022.109946 (通讯单位:西北工业大学,第一作者:肖才湘博士,通讯作者:宋强研究院)
Graphical Fig. 25. Schematic illustration of
overall fabrication processes. (a) The plain weave carbon fiber clothes were
coated with SiC nanowire by electrophoresis deposition technique as a hybrid
fabric. (b) The modified carbon fiber clothes were layered up to densify with
PyC through (isothermal chemical vapor deposition) ICVI method. (c) The
densified SiCNW–C/C composites were coated on SiC by pack cementation.
26. Wang R, Li N, Zhang J, et al.
Ablation behavior of sharp leading-edge C/C-ZrC-SiC composites using 3000° C
oxyacetylene torch[J]. Corrosion Science, 2022, 206: 110551. https://doi.org/10.1016/j.corsci.2022.110551(通讯单位:西北工业大学,第一作者:王瑞宁硕士,通讯作者:航空学院李霓教授、付前刚教授)
Graphical Fig. 26. Preparation process,
microstructure, mechanical property and ablation performance and mechanisms of
C/C-ZrC-SiC composites
27. Chen B W, Ni D W, Lu J, et al.
Long-term and cyclic ablation behavior of La2O3 modified Cf/ZrB2-SiC composites
at 2500℃[J]. Corrosion Science, 2022, 206: 110538. https://doi.org/10.1016/j.corsci.2022.110538 (通讯单位:中科院上海硅酸盐研究所高性能陶瓷和超微结构国家重点实验室,第一作者:陈博文博士,通讯作者:董绍明院士、倪德伟研究员)
Graphical Fig. 27. Phase diagrams of ZrO2-La2O3
(a) and La2O3-SiO2 (b)
28. Zheng L, Luo X, Fang C, et al.
Ablation behaviour and mechanism of Mg-modified ZrC-SiC composite in plasma
ablation flame[J]. Corrosion Science, 2022, 206: 110523. https://doi.org/10.1016/j.corsci.2022.110523 (通讯单位:中南大学轻质高强结构材料国家级重点实验室,第一作者:Lei Zheng博士,通讯作者:张明瑜教授、黄启忠教授)
Graphical Fig. 28. Schematic
diagram showing the preparation of ZS and ZSM composites.
29. Lv J, Zhang Y, Li W, et al.
Microstructure evolution of HfB2-SiC/SiC coating for C/C composites during
long-term oxidation at 1700° C[J]. Corrosion Science, 2022, 206: 110524.https://doi.org/10.1016/j.corsci.2022.110524(通讯单位:西北工业大学,第一作者:吕君帅博士,通讯作者:张雨雷教授)
Graphical Fig. 29. (a) Schematic illustration of
the microstructure evolution of the HfB2-SiC/SiC coating.
30. Tong M, Ding J, Li N, et al.
Effect of SiCnws@ BN core shell upon impact-ablation performance of HfC coating
on C/C composites[J]. Corrosion Science, 2022, 209: 110707. https://doi.org/10.1016/j.corsci.2022.110707(通讯单位:西北工业大学,第一作者:同济大学-西北工业大学联合博士后童明德,通讯作者:力学与土木建筑学院冯涛教授、付前刚教授)
Graphical Fig. 30. Schematic diagram of impacted
SiCnws@PyC/HfC and SiCnws@BN/HfC coatings during ablation process.
32. Li J, Zhang Y, Lv J, et al.
Sealing role of Ti-rich phase in HfC-ZrC-TiC coating for C/C composites during
ablation above 2100° C[J]. Corrosion Science, 2022, 205: 110474.https://doi.org/10.1016/j.corsci.2022.110474(通讯单位:西北工业大学,第一作者:李嘉晨博士,通讯作者:张雨雷教授)
Graphical Fig. 31. Schematic of the ablation
mechanism of the HfC-ZrC-TiC coating.
33. Deng H, Li J, Zheng J, et al.
Improvement in mechanical and ablation properties of carbon/carbon composites
with nanofilamentous carbon and CeC2[J]. Corrosion Science, 2022, 207:
110593. https://doi.org/10.1016/j.corsci.2022.110593(通讯单位:安徽工业大学先进金属材料绿色制备与表面技术教育部重点实验室、西北工业大学,第一作者:邓海亮教授,通讯作者:邓海亮教授、李克智教授)
Graphical Fig. 32. Schematics showing the
ablation in needled fiber (a) and nonwoven cloth (b) zones of the composites
produced with CeCl3 addition.
34. Yan N, Zhang J, Liu T, et al.
One-step preparation and ablation behavior of ZrC-SiC-Si coating for
nose-shaped ZrC/C composites with gradient pore structure by vapor silicon
infiltration[J]. Corrosion Science, 2022, 206: 110505. https://doi.org/10.1016/j.corsci.2022.110505(通讯单位:西北工业大学,第一作者:闫宁宁博士,通讯作者:张佳平副教授)
Graphical Fig. 33. Macrographs, surface and back
temperature curves and simulation results of the nose-shaped ZrC/CGS-ZrC-SiC-Si
composite during ablation for 40 s using oxyacetylene torch. (a) Macrograph
during ablation, (b) Macrographs of specimens before and after ablation, (c)
Surface temperature versus time curves, (d) Back temperature versus time
curves, (e) Actual and simulated temperature curves, (f) Temperature
distribution diagram after ablation for 40 s, (g) Temperature distribution
diagram after cooling for 3 s, (h) The calculated Von Mises stress field at
43 s (Local region).
35. Sun J, Guo L, Zhang Y, et al.
Superior phase stability of high entropy oxide ceramic in a wide temperature
range[J]. Journal of the European Ceramic Society, 2022, 42(12):
5053-5064. https://doi.org/10.1016/j.jeurceramsoc.2022.05.007(通讯单位:西北工业大学,第一作者:郭凌翔博士,通讯作者:孙佳副教授)
Graphical Fig. 34. Macroscopic photographs and
microscopic morphologies of HEFO powders after acid corrosion: (a) microscopic morphologies
of untreated HEFO powders after acid corrosion; (b) local enlargement of Fig.
10a; (c) microscopic morphologies of annealed HEFO powders at 1473 K after acid
corrosion; (d) local enlargement of Fig. 10c.
36. Sun J, Wang Y, Zhang Y, et al.
Microstructure and mechanical properties of C/C composites modified by
single-source precursor derived ceramics[J]. Journal of the European Ceramic
Society, 2022, 42(13): 5419-5431. https://doi.org/10.1016/j.jeurceramsoc.2022.06.036(通讯单位:西北工业大学,第一作者:王雨祺博士,通讯作者:孙佳副教授)
Graphical Fig. 35. Failure mechanism model of
C/C-PDC-NCs after pyrolysis at 1100 °C and subsequent annealing at 1500 °C: (a)
C/C-SiC(N)-NCs; (b) C/C-SiC(N)/TiC-NCs-a; (c) C/C-SiC(N)/TiC-NCs-b. The black
dots in (b, c) represent the pre-existing microcracks.
37. Zhu X, Zhang Y, Zhang J, et
al. Microstructure evolution and oxidation mechanism of HfB2-SiC coating on
SiC-coated C/C composites at 1173 K and 1773 K[J]. Ceramics International,2022, 48(20): 30807-30816. https://doi.org/10.1016/j.ceramint.2022.07.034(通讯单位:西北工业大学,第一作者:朱肖飞博士,通讯作者:张雨雷教授)
Graphical Fig. 36. XPS patterns of 50 wt%
HfB2-SiC coating after oxidation at 1173 K: (a) survey XPS spectra; (b) B 1s
spectra; (c) Si 2p spectra.
38. Wang C, Fu Q, Zhou L.
Significant increase in mechanical performance of the C/C-Mo joint by
controlling the interfacial defects[J]. Materials Characterization,
2022, 193: 112275. https://doi.org/10.1016/j.matchar.2022.112275(通讯单位:西北工业大学,第一作者:王琛博士,通讯作者:付前刚教授)
Graphical Fig. 37. Schematic diagram of sample
fabricating (a) and shear strength testing equipments (b).
38. Zhang P, Cheng C, Xu M, et al. High-entropy (Hf0. 25Zr0. 25Ti0. 25Cr0.
25) B2 ceramic incorporated SiC-Si composite coating to protect C/C composites
against ablation above 2400 K[J]. Ceramics International, 2022. https://doi.org/10.1016/j.ceramint.2022.06.022(通讯单位:西北工业大学,第一作者:西安航天动力研究所张佩博士、工程师,通讯作者:付前刚教授)
Graphical Fig. 38. Ablation
performance and mechnisms of the High-entropy (Hf0. 25Zr0. 25Ti0. 25Cr0. 25) B2 ceramic incorporated SiC-Si
composite coating
39. Chen B W, Ni D W, Lu J, et al.
Microstructure and mechanical behaviors of 2D-Cf/ZrB2-SiC composites at
elevated temperatures[J]. Journal of the European Ceramic Society, 2022,
42(13), 5410-5418. https://doi.org/10.1016/j.jeurceramsoc.2022.05.063(通讯单位:中科院上海硅酸盐研究所高性能陶瓷和超微结构国家重点实验室,第一作者:陈博文博士,通讯作者:董绍明院士、倪德伟研究员)
Graphical Fig. 39. FT-IR spectra of the pyrolyzed
PCS (a), XRD patterns of the 2D-Cf/ZrB2-SiC composites after heat treatment at
different temperatures (b), TEM and EDS spectra of raw ZrB2 powders (c), and
TG-MS-Temperature curves of the 2D-Cf/ZrB2-SiC composites (d).
40. Chen Y, Wang P, Ren X, et al.
Oxidation of TaB2-SiC coatings prepared by spark plasma sintering and effect of
pre-oxidation treatments[J]. Journal of the European Ceramic Society,
2022. Volume 42, Issue 13, October 2022, Pages 5238-5248. https://doi.org/10.1016/j.jeurceramsoc.2022.06.003(通讯单位:中国矿业大学材料科学与物理学院、西安科技大学材料科学与工程学院,第一作者:Yuexing Chen博士、王佩佩副教授,通讯作者:任宣儒副教授、Chunmin Yang副教授)
Graphical Fig. 40. (a) XRD patterns of the
TaB2-SiC coatings oxidized at 1500 °C, (b) Gibbs free energy of the oxidation
reactions R1-R7 at different temperatures.
41. Shi H, Zhang M, Zhou L, et al. Improved oxidation protective ability of
SHS powder-synthesized ZrB2-MoSi2-SiC-Si coating on carbon/carbon
composites[J]. Surface and Coatings Technology, 2022, 447: 128838. https://doi.org/10.1016/j.surfcoat.2022.128838(通讯单位:西北工业大学,第一作者:石慧伦博士,通讯作者:付前刚教授、任宣儒副教授)
Graphical Fig. 41. Cross-section BSE micrographs and elemental
mappings of the coatings after oxidation: (a) SHS coatings; (b) elemental
mapping of (a); (c) CP coatings; (d) elemental mapping of (c).
42. Liu H, Li K, Chen H, et al. Facile growth of oriented SiC nanowires
arrays on carbon fiber cloth via CVD[J]. Ceramics International, 2022. Available online 10 August 2022.https://doi.org/10.1016/j.ceramint.2022.08.038(通讯单位:西北工业大学,第一作者:刘慧敏博士,通讯作者:李克智教授、殷学民博士后)
Graphical Fig. 42. Growth mechanism schematic diagram of (a)
oriented SiCNWs and (b) randomly distributed SiCNWs.
43. Wu B, Wang P, Ren X, et
al. Effect of film-forming regulation of the self-formed compound layer on the
oxidation inhibition capacity of HfB2-SiC coating[J]. Ceramics International, 2022. Volume 48, Issue 15, 1 August
2022, Pages 22039-22052. https://doi.org/10.1016/j.ceramint.2022.04.194(通讯单位:中国矿业大学材料科学与物理学院、西安科技大学材料科学与工程学院,第一作者:Binbin Wu博士、王佩佩副教授,通讯作者:任宣儒副教授、Xueqin Kang副教授)
Graphical Fig. 43. Structure factor-inerting factor curves of the
film-forming samples oxidized at 1700 °C.
44. Teng L, Shi X H, Wang H
H, et al. A new method to improve the laser-ablation resistance of Si-SiC
coating on C/C composites: Laser cladding[J]. Journal of the European
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Graphical Fig. 44. Schematic diagram of ablation mechanism of the (a) PC-Si-SiC sample and (b)
LC-Si-SiC sample.
45. Zhang Z, Fang C, Weng Y, et al. Effects of graphene
addition on the microstructure and anti-ablation properties of C/C–SiC
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Graphical Fig. 45. Ablation mechanisms of C/C–SiC composites.
46. Zhang T, Zhang F, Yin X, et al. Important
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interfaces: Cross-shaped microconcave and the nanoNb2AlC-Sn[J]. Engineering Failure Analysis, 2022, 142: 106738. https://doi.org/10.1016/j.engfailanal.2022.106738(通讯单位:华北电力大学材料科学与工程学院、南阳理工学院机械与汽车工程学院,第一作者:Taiping Zhang博士,通讯作者:Kang Yang教授、Yongxing Hao教授)
Graphical Fig. 46. Typical morphologies at 20 N of scanning planform (a), 3D and 2D profiles
(b, c); statistical height parameters of 2D profile of the 0.5CC-NS-W (d).
47. Shi C, Liu S, Gong Q, et al. Deposition
mechanisms and characteristics of nano-modified multimodal Cr3C2–NiCr coatings
sprayed by HVOF[J]. Reviews on Advanced Materials Science, 2022, 61(1): 526-538. https://doi.org/10.1515/rams-2022-0042(第一作者:Chenxi Shi博士,通讯作者:Ming Hu教授)
Graphical Fig. 47. Schematic of the formation of the multimodal structure coatings: (a)
original particle, (b) molten part of the particle, (c) particle deformation,
and (d) cross section of the multimodal coatings.
48. Yang K, Xiao N. Micro/Nanosilver Contribution
in Modifying the Lubrication Film to Improve Friction and Wear Behaviors of
TiAl-10 wt.% Ag Composite[J]. Advances in Materials Science and Engineering, 2022, 2022. https://doi.org/10.1155/2022/3169938(第一作者:Kang Yang博士,通讯作者:Na Xiao教授)
Graphical Fig. 48. Typical schematic diagram (a) of the TASC/Si3N4 tribo-pair; 3D (b) and (c)
2D profiles of the wear scars of a TASC.
49. Zhang, Yuyu and Sun, Jia and Guo, Lingxiang and
Zhang, Xuemeng and Cui, Dingcong and Fu, Qiangang, Ablation Behavior of Zrc
Coating Modified by SiC/TaC Nanocomposites Under Oxyacetylene Torch. Available at SSRN: https://ssrn.com/abstract=4068601
or http://dx.doi.org/10.2139/ssrn.4068601(通讯单位:西北工业大学材料学院,第一作者:张育育博士,通讯作者:孙佳副教授、Fu Qiangang教授)
Graphical Fig. 49. Schematic diagram of the formation (a) and ablation mechanisms (b) of
prepared coatings.
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IF: 4.158,SCI: 000590180600073)[5]Pei Zhang, Qiangang Fu*, Bing Liu,
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IF: 4.158,SCI: 000782662800002)[6]Pei Zhang, Chunyu Cheng*, Bing Liu, Wei
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112409025 A. 国家发明专利.[15] 付前刚,张佩,李贺军,刘冰,程春玉,孙佳,谢薇,张佳平. 一种成分及微结构可控高熵陶瓷改性涂层的制备及方法, 专利申请号: 202110746078.8,公开(公告) 号:CN113321533A.国家发明专利.[16] 付前刚,周磊,童明德,徐润洲,张佩.碳/碳复合材料表面镶嵌SiC-ZrB2-ZrSi2复合抗氧化涂层的制备方法.专利号:ZL
201410203158.9. 授权日期:2021.02.02. 国家发明专利.[17] 孙佳,郭凌翔,张育育,刘冰,张佩.缺陷萤石结构的氧化物高熵陶瓷及其抗烧蚀涂层的制备方法, 专利申请号: 202111188781.8, 公开 (公告) 号:CN113683430A,国家发明专利.[18]张佩,付前刚*,李贺军,朱肖飞,周磊,魏亚龙.浆料涂覆结合气相渗硅复合工艺制备碳/碳复合材料用高温抗氧化SiC-HfB2-Si涂层.第十一届无机非金属材料专题研讨会暨无机非金属材料优秀青年学者论坛,中国西安;2019年8月23日-25日(海报).[19]Pei
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IFAM 2020新材料国际发展趋势高层论坛,中国西安;2020年10月30日-11月1日(海报) (优秀海报奖).[22]Pei
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2021年首届全国“先进结构工程科学”博士生学术论坛-先进热防护结构及材料技术分论坛,中国北京(在线会议),军科委先进结构技术专家组、中国力学学会固体力学专业委员会、中国复合材料学会青年工作委员会(主办)、北京理工大学先进结构技术研究员、轻量化多功能复合材料与结构北京市重点试验室(承办);
2021年11月20日-11月21日(口头报告).[24]“第九届高校材料科学与工程学科研究生论坛”优秀报告奖,武汉理工大学研究生院、材料学院、材料科学与工程国际化示范学院,2019年10月;[25]湖南省“高性能材料设计与制备”研究生创新论坛优秀论文奖,湖南省人民政府学位委员会、湖南省教育厅,中南大学研究生院、材料科学与工程学院,2020年10月;[26]“IFAM2020新材料国际发展趋势高层论坛”优秀Poster奖,中国工程院化工、冶金与材料工程学部,中国材料研究学会、材料学术联盟、国家新材料产业发展战略咨询委员会,2020年10月;[27]“第十一届高校材料科学与工程学科研究生论坛”优秀墙报奖,武汉理工大学研究生院、材料学院、材料科学与工程国际化示范学院,2021年11月。往期推荐:
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