欧美人妻精品一区二区三区99,中文字幕日韩精品内射,精品国产综合成人亚洲区,久久香蕉国产线熟妇人妻

Why should we study nanoceramic bonded carbide? As we all know, WC-Co carbide consists of hard phase (WC) and bonding phase (ferrous metal). In harsh environments, the bonding phase is more susceptible to corrosion and oxidation than the hard phase, which limits its application in some fields. Therefore, reducing the content of the bonding phase is considered to solve this problem. In addition, metal Co is an expensive material and has a certain impact on human health. It is necessary to reduce the application of Co in carbide from the perspective of reducing costs and human health.

Nanoceramic bonded phase WC-based carbide refers to a type of carbide product that does not contain or contains a small amount of metal bonding agent (<0.5% by mass fraction). It has unparalleled excellent wear resistance, corrosion resistance, excellent polishing, and oxidation resistance compared to traditional carbide.

nanoceramic bonded phase WC-based carbide is a combination of ceramic hardness and carbide toughness, and products have been launched abroad. With its excellent wear and corrosion resistance, it can be used to make sandblasting nozzles, electronic packaging materials, heavy-duty sliding seal wear-resistant parts, etc.. with its excellent cutting performance, it can be used as tool and drill materials, especially for processing titanium/titanium alloys, which greatly improves work efficiency. and with its oxidation resistance and excellent polishing, it can be used as mold and decorative materials.

nanoceramic bonded carbide's micro structure

Characteristics of nanoceramic bonded carbide:

1Phase structure and carbon content of nanoceramic bonded phase carbide carbide are very sensitive to carbon content. For traditional carbide containing bonding phases, there is a certain range of carbon content to maintain a normal phase structure. If this range is exceeded, brittle n-phase or free carbon will appear. In contrast, the suitable carbon content of nanoceramic bonded phase WC-based carbide is not fluctuating like WC-Co alloy but is a fixed value.

2Composition design and properties of nanoceramic bonded carbide

Nanoceramic bonded carbide, which combine mechanical and wear resistance properties perfectly, are one of the most widely used ceramic-based materials in engineering. However, in most ceramic-based materials, the existence of metal bonding phases not only makes these composite materials have excellent flexural toughness but also affects certain properties, which limits their use. In addition, the low melting point of metal Co also greatly limits the application of WC-Co cutting tools in high-speed machining, which is prone to serious adhesive wear and oxidation wear. Moreover, the poor corrosion resistance, high cost, and toxicity of Co also limit the mechanical industry application of WC-Co carbide. Therefore, partially or completely replacing the Co bonding phase can expand the application of carbide. In recent years, ceramic bonding phases have attracted widespread attention in the scientific community as a new type of Co substitute.

 

The specific study using Nanoceramics as Binder Phase in Hardmetal Alloys

The Research Institute of Shandong University in China selected nanoscale Al2O3, ZrO2, and MgO as the binder phase for WC hardmetal alloys. The microstructure and mechanical properties of the hardmetal alloys were compared, and the toughening mechanism of the nanoceramic oxides was explored. The related paper, titled “Nano-ceramic replacing cobalt in cemented carbide as binder phase: Is it feasible?”, was published in the Journal of Alloys and Compounds.

Paper link:

https://linkinghub.elsevier.com/retrieve/pii/S0925838821043784

 

What is nanoceramic bonded carbide? 1

 

 

 

 

4Mechanism of Ceramic Binders Improving Toughness of carbide?Materials

What is nanoceramic bonded carbide? 2

fig.1 TEM micrographs of nanoceramic bonded carbide: (a) dislocations in WC-6Al2O3, (b) dislocations in WC-6ZrO2, (c) dislocations in WC-6MgO, and (d) intragranular and intergranular microstructures of WC-6ZrO2.

After sintering, the WC grains retained their initial grain size, and the second phase significantly suppressed the grain growth of the WC matrix by limiting grain boundary migration. Dislocations were observed in all three nanoceramic bonded carbide materials, which enhanced the tolerance of the carbide. Additionally, it was found that some nanoscale ZrO2 grains were distributed along the WC grain boundaries, while more ZrO2 nanograins were distributed within the WC grains, forming so-called intragranular nanostructures. Compared with the ceramic binder phase at the WC grain boundaries, the ceramics inside the WC grains were smaller in size.

What is nanoceramic bonded carbide? 3

fig.2 The toughening mechanism of WC-6Al2O3

What is nanoceramic bonded carbide? 4

fig.3 The toughening mechanism of WC-6ZrO2

What is nanoceramic bonded carbide? 5

fig.4 The toughening mechanism of WC-6AMgO

During the high-temperature sintering and cooling process, residual tensile stresses are generated around the ceramic binder phase due to differences in thermal expansion coefficient, which is favorable for crack deflection when the crack reaches the stress field. When an external load is applied to the nano-ceramic binder material, the difference in elastic modulus causes a redistribution of microscopic stress, thereby increasing the material’s toughness. All three nanoceramic bonded carbide materials exhibit crack bridging, effectively reducing crack propagation energy. Non-branching cracks were also found in the carbide, greatly increasing the energy consumption of the main crack propagation and effectively slowing down crack propagation.

What is nanoceramic bonded carbide? 6

fig.5 XRD spectra of the polished surface and fractured surface of the WC-6ZrO2 specimen

During the fracture process of WC-ZrO2 carbide, when external stress is applied to the carbide, stress concentration occurs near the crack tip, promoting the transformation of t-ZrO2 to monoclinic m-ZrO2. This transformation significantly impedes the crack propagation by enhancing stress relaxation near the crack tip. In addition, the volume expansion caused by phase transformation compresses the surrounding matrix, which is conducive to crack closure. Furthermore, surface phase transformation can generate compressive stress, greatly increasing the toughness of the material.

??

In summary, compared with traditional WC-Co carbide, nanoceramic bonded carbide exhibit a better combination of fracture toughness and hardness. Compared with micro-ceramic bonded? carbide, the hardness and fracture toughness of nano-ceramic bonded phase carbide are simultaneously enhanced. This excellent hardness of nano-ceramic bonded phase carbide is crucial for high-speed machining applications and is expected to become a candidate material for high-speed machining tools.

?? ???

???? ???? ????. ?? ???? * ? ???? ????

亚洲另类自拍唯美另类-99国产精品兔免久久| 国产在线不卡高清一区-日本一区二区三区四区无卡| 亚洲精品一区网站在线观看-黄页视频免费观看网站| 亚洲国产精品日韩欧美-国产又粗又硬又大爽黄| 日韩二级视频在线观看-美女扒开奶罩露出奶子的视频网站| 国产福利视频一区二区三区-日韩人妻中文视频精品| 国产欧美日本一区二区-一区二区三区亚洲在线播放| 亚洲精品一区网站在线观看-黄页视频免费观看网站| 久色高清精品在线国产-国产精品视频一区三区四区| 亚洲欧洲一区二区福利-亚洲欧美日韩高清中文| 国产精品久久99精品毛片-国产四季高清一区二区三区| 亚洲欧美精品在线一区-99热国产在线手机精品99| 成人免费资源在线观看-欧美国产日韩高清在线综合| 欧美日韩黑人在线播放-51在线精品免费视频观看| 亚洲黑人欧美一区二区三区-亚洲一区二区三区免费视频播放| 中文字幕精品一区二区日本99-青青国产成人久久91网| 成人av一区二区蜜桃-亚洲色图激情人妻欧美| 人妻互换精品一区二区-夜夜爽一区二区三区视频| 日本亚洲精品中字幕日产2020-很黄很黄的裸交视频网站| 亚洲精品蜜桃在线观看-国产欧美日韩在线观看精品观看| 91九色蝌蚪丝袜人妻-国产精品9999网站| 亚洲综合av一区二区三区-高潮又爽又黄无遮挡激情视频| 欧美亚洲另类久久久精品-国产精品一区二区亚洲推荐| 亚洲欧美一区二区中文-台湾中文综合网妹子网| 亚洲另类熟女国产精品-懂色一区二区三区在线播放| 久久蜜桃精品一区二区-麻豆视频啊啊啊好舒服| 少妇人妻无码久久久久久-综合图片亚洲网友自拍| 熟女少妇免费一区二区-麻豆一区二区三区免费在线观看| 国产精品久久99精品毛片-国产四季高清一区二区三区| 熟女少妇免费一区二区-麻豆一区二区三区免费在线观看| 男人的天堂久久精品激情-最新亚洲精品a国产播放| 久久特一级av黄色片-91社区视频免费观看| 91精品国产影片一区二区三区-欧美精品久久久精品一区二区| 一级小黄片在线免费看-亚洲欧美午夜情伊人888| 男人的天堂久久精品激情-最新亚洲精品a国产播放| 日本女优一卡二卡在线观看-欧美大胆a级视频秒播| 性都花花世界亚洲综合-日韩av一区二区三区| 欧美精品一区二区三区爽爽爽-日韩国产精品亚洲经典| 婷婷人妻少妇激情在线-欧美日韩人体艺术一区二区| 欧美精品午夜一二三区-a屁视频一区二区三区四区| 中文字幕精品一区二区日本99-青青国产成人久久91网|