色呦呦网址在线观看,久久久久久久久福利精品,国产欧美1区2区3区,国产日韩av一区二区在线

 

The article introduces a new method called “amorphous crystallization + reactive transformation” for preparing dense and uniformly structured nano carbides. The formation and evolution process of nanocrystalline multiphase structures are systematically studied. A series of heating and quenching experiments are designed to investigate the nanocrystalline nucleation and initial phase transformation of multicomponent amorphous powders. The parallel processes of grain growth and interface formation are explored, revealing their micro-mechanisms.

Furthermore, the study examines the influence of nanoscale structures and interface characteristics on the mechanical properties of the prepared nanocrystalline composite materials. It emphasizes the significant role and underlying mechanisms of interface coherency in refining the microstructure of carbides during the loading process. The insights provided by this research offer a new perspective on achieving high overall mechanical performance in nanocrystalline composite materials through the utilization of specific interface relationships.

 

Research Objective

carbide materials are generally hard and brittle, with very limited plasticity, primarily due to the intrinsic properties of the covalent bonds in the matrix ceramic phase. Due to the inherent characteristics of covalent crystals, strengthening strategies commonly used in metallic materials such as solid solution strengthening, dislocation (deformation) strengthening, and precipitation strengthening are difficult to apply to ceramics and ceramic-based composites. Fine-grain strengthening is often employed to enhance the strength of ceramic materials. However, as grain size decreases, especially when it reaches the nanometer scale, the hardness of ceramic grains increases, but the toughness decreases significantly. Therefore, finding an optimal balance between the hardness and toughness of ceramic materials has always been a challenging problem in the field.

WC-Co carbide is a typical representative of ceramic/metal composites. In ultrafine and nano carbides, as the grain size decreases, the volume fraction of interfaces increases rapidly. Hence, interface characteristics play an increasingly important role in the mechanical behavior of composite materials with refined grain structures. In nano carbide composites, refining ceramic grain size and modulating interface bonding characteristics can effectively improve their overall mechanical performance.

 

Research Methods

The Co-W-C amorphous powder mixture prepared using amorphous Co2W4C composite powder and carbon black first forms the Co3W3C phase as the temperature rises. Subsequently, the WC phase is formed, and finally, the Co phase is formed. Through the study of the growth process after the crystallization of WC, the formation and growth mechanism of the hard phase originating from the amorphous matrix in the WC-Co composite material are revealed.

In the initial stage of WC nucleation, WC crystals exhibit regular shapes on the observation plane and have equidistant edges along the [100] and [0001] directions. (0001) basal planes and (100) prism planes grow alternately through a “step” mechanism, where the step thickness is approximately 1 to 2 atomic layers. The growth of WC crystals along the [0001] and [100] directions is essentially isotropic, resulting in the formation of equiaxed (110) crystal faces.

 

Research Results

In the “amorphous crystallization + reactive transformation” new method described in this article, the WC and Co phases are formed through the crystallization and carbide process of the amorphous matrix. During this process, coherent or semi-coherent WC/Co phase boundaries (PB) are formed in the nanocrystalline WC-Co composite material. As the WC grains grow, S2 WC/WC grain boundaries (GB) may form between nanocrystalline grains. Simultaneously, PB and GB serve as diffusion and migration channels for atoms, promoting grain growth and phase evolution. Therefore, compared to traditional carbides prepared by sintering a mixture of WC and Co powders, the nano carbide fabricated using this method exhibits a significantly increased proportion of coherent interfaces.

A NEW APPROACH to ENHANCING the INTERFACE COHERENCY in NANO CARBIDE. 2

Microstructural evolution of amorphous Co-W-C powder at different temperatures in Figure 1: (a) At room temperature, disordered amorphous structure; (b) at 550 °C, preferential nucleation of Co3W3C nanocrystals; (c) at 750 °C, coexistence of amorphous matrix, Co3W3C nanophase, and a small amount of WC nanocrystals; (d) at 800 °C, nearing completion of crystallization; (e) at 900 °C, fully crystallized nanocrystalline structure; (f) at 1150 °C, dense nanocrystalline structure with only WC and Co phases.

A NEW APPROACH to ENHANCING the INTERFACE COHERENCY in NANO CARBIDE. 3

 

Figure 2: Phase and composition analysis of samples after heating-quenching at 800 °C and 900 °C:

(a) High-resolution transmission electron microscopy (HRTEM) image and phase analysis of the amorphous powder heated at 800 °C.

(b) Atom probe tomography (APT) analysis of the distribution of W, Co, and C elements in the sample heated at 900 °C.

(c) Phase configuration of the localized region determined by the composition analysis in (b).

 

 

A NEW APPROACH to ENHANCING the INTERFACE COHERENCY in NANO CARBIDE. 4

 

Figure 3: Observation of WC crystal nucleation and growth from the amorphous matrix on typical characteristic crystal planes:

(a-c) Formation and growth characteristics of the (110) crystal plane of WC, corresponding to the heating-quenching conditions at 750 °C, 800 °C, and 850 °C, respectively.

A NEW APPROACH to ENHANCING the INTERFACE COHERENCY in NANO CARBIDE. 5

 

Figure 4: Characteristics of grain boundaries and phase boundaries in the sample heated and quenched at 850 °C:

(a) Co3W3C/WC and WC/hcp-Co coherent phase boundaries.

(b) WC/fcc-Co coherent phase boundary.

(c) Coalescence and growth of WC with the same orientation.

(d) Coalescence and growth of WC grains with Σ2 grain boundaries.

 

A NEW APPROACH to ENHANCING the INTERFACE COHERENCY in NANO CARBIDE. 6

 

Figure 5: In the fully densified nano carbide sintered at 1150 °C, containing only WC and Co phases, examples of coherent interfaces are shown:

(a) WC/fcc-Co phase boundary.

(b) WC/hcp-Co phase boundary.

 

S? k?t lu?n

The nano carbide prepared in this study exhibits both high hardness (1775±23 kgf/mm2) and high fracture toughness (15.20±0.13 MPa·m^1/2), achieving a comprehensive mechanical performance at the forefront of similar materials in the literature. The significant increase in the proportion of special coherent interfaces in the nanocrystalline carbide, prepared through the crystallization and in-situ reaction of amorphous powder mixture and subsequent sintering densification, promotes the transfer of stress across phase boundaries between the hard phase and tough metallic phase, ensuring continuity in the deformation of the metallic phase and ceramic phase. Consequently, the interfaces in the carbide prepared by this method allow for uniform strain distribution from the metallic to the ceramic phase, avoiding stress concentration. As a result, the material exhibits not only high hardness due to nanoscaling but also significantly improved fracture toughness, thanks to the presence of a high proportion of special coherent interfaces.

 

nano carbide

Figure 6: Microstructure of the prepared nanocrystalline carbide and the continuous deformation mechanism of the metallic phase and ceramic phase at coherent interfaces:

(a) Morphology of WC and Co grains in the material after compression.

(b) Dislocations crossing through the semi-coherent WC/Co phase boundary within Co and WC grains.

(c) Schematic illustration of the dislocation motion between adjacent phases and continuous deformation across the WC/Co phase boundary.

(d) Deformation incompatibility and discontinuity at the incoherent WC/Co phase boundary.

 

CáCH TI?P C?N M?I ?? N?NG CAO TíNH K?T H?P GIAO DI?N TRONG NANO CARBIDE. 7

 

 

Tr? l?i

Email c?a b?n s? kh?ng ???c hi?n th? c?ng khai. Các tr??ng b?t bu?c ???c ?ánh d?u *

国产老熟女精品视频大全免费-精品丰满熟女一区二区蜜桃-亚洲自国产拍性生活自拍-中文字幕熟女激情50路| 青青草原精品在线观看-日本久久精品狼人狠狠操-欧美深夜福利视频网站-麻豆密入视频在线观看| 对天堂网在线观看av-一本色道久久亚洲狠狠躁-少妇被粗大的猛进视频-日韩熟女一区二区精品视频| 亚洲国产成人不卡高清麻豆-精品国产精品三级在线专区-亚洲欧美国产日韩一区-亚洲高清日本一区二区| 国产在线观看不卡一区二区-国产女人在线观看视频射精91-91尤物在线视频观看-欧美无遮挡国产欧美另类| 成人一区二区三区激情视频-久久一区二区免费蜜桃-钢琴考级三级咏叹调视频-亚洲性感毛片在线视频| 日本一区二区三区四区黄色-91在线国产经典观看精品-亚洲一区二区三区免费不卡-av免费在线观看蜜臀| 亚洲国产一区二区精品专-人妻被黑人侵犯中文字幕夜色-国模午夜写真福利在线-成人自拍偷拍在线观看| 一区二区三区国产精品女人-日本成人在线视频91-国产午夜福利在线剧场-欧美日韩激情系列在线观看| 亚洲精品人妻中文在线-国产成人精品视频三级-麻豆视频黄片在线免费观看-亚洲性色精品一区二区在线| 成人精品一区二区三区不卡-十八禁啪啪啪一区二区三区-后入黑丝美女在线观看-国产熟女啪啪免费视频| 人妻av久久人妻水蜜桃-国产一区视频在线二区-五月婷六月丁香久久综合-国产精品中文字幕有码| 久久夜色国产精品亚洲-国产视频一区二区三区免费观看-亚洲一区二区成人在线观看-日韩精品一区二区三区在线视频| 国产精品18禁免费无摭挡-国产精品久久久看三级-国产亚洲精品熟女国产成人-国产亚洲精品不卡中文| 午夜视频在线观看免费国产-国产精品91在线视频-欧美黄片在线免费播放-久久综合九色综合婷婷| 中文国产成人精品久久一-亚洲一区二区精品视频网站-在线深夜羞羞福利视频-麻豆视频传媒免费入口| 亚洲av午夜福利精品一区二区-久久精品国产亚洲熟女-亚洲综合五月婷婷六月丁香-久久国内精品自在自线91| 女同精品女同系列在线观看-亚洲av不卡一区二区三区四区-亚洲不卡一区三区三州医院-中文字幕亚洲人妻系列| av天堂免费中文在线-91麻豆国产综合精品久久-日韩av在线播放高清-台湾佬自偷自拍情侣在线| 亚洲天堂av中文在线-亚洲精品有码中文字幕网络-在线播放国产一区二区不卡-香港毛片免费观看视频| 日本在线无乱码中文字幕-国产美女自拍视频精品一区-精品人妻中文字幕一区二区三区-精品国产一级二级三级| 99久久久国产精品视频-亚洲最大的福利视频网站-日韩人妻精品一区二区在线-中文字幕乱码精品在线观看| 美女被狂躁到高潮视频-国产熟女精品自拍视频-亚洲中文字幕在线精品一区-成人在线中文字幕电影| 极品尤物高颜值女神露脸-免费视频一区二区三区美女-麻豆av国语对白麻豆-亚洲精品国产午夜精品| 国产精品人人爱一区二区白浆-中文字幕一区二区三区人妻精品-91人妻在线欧美精品不卡-好吊视频一区二区三区在线| 亚洲成人av在线播放不卡-亚洲视频一直看一直爽-一区二区三区精品视频日本-精品人妻久久一日二个| 欧洲亚洲高清另类清纯-国产av一区二区三区av-亚洲精品一区二区三区午夜-国产夫妻自拍3p视频在线| 亚洲人妻av在线播放-日韩午夜短视频在线观看-91精品久久午夜中文字幕-亚洲熟伦熟女新五十熟妇| 亚洲永久在线宅男天堂-精品亚洲成a人在线看片-国产精品人成免费国产-亚洲欧洲国产精品自拍| 久久精品国产亚洲av麻豆看片-内射后入高潮在线视频-亚洲精品一区三区三区在线-亚洲乱码一区二区三区视色| 久久精品国产普通话对白-丰满人妻中文字幕一区二区-国产日本精品视频在线观看-香港免费毛片在线观看| 精品女同一区二区免费播放-四虎成人精品国产永久免费-日韩在线播放av不卡一区二区-久热久草香蕉在线视频| 久久99精品成人免费毛片-中文字幕日韩精品欧美-免费观看黄片一区视频-国产亚洲蜜臀av在线观看| 在线三级电影在线观看-在线成人激情自拍视频-日本在线视频播放91-国产精品一区二区男女羞羞无遮挡| 欧洲激情综合啪啪五月-国产精选三级在线观看-七七久久成人影院网站-男人深夜福利在线观看| 国产成人综合激情婷婷-亚洲国产综合在线观看不卡-色综网久久天天综合狼人-亚洲av高清在线不卡| 追虎擒龙国语高清在线观看完整版-色婷婷一区二区三区免费-网友自拍在线视频国产-草草久在线视频在线观看| 国产一级亚洲一级一区-国产精品一亚洲av日韩av-日韩高清有码中文字幕-久久国产精品免费一区二区三区| 亚洲国产高清一区二区三区不卡-亚洲综合小综合中文字幕-亚洲黄色成人av在线-日韩一区二区三区av观看| 91九色国产成人久久精品-亚洲av无一区二区三区av中文-最新日本加勒比在线视频-激情综合激情五月婷婷| 亚洲综合中文在线视频-在线视频福利精品91-久一在线免费播放视频-精品手机亚洲一区二区三区|