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

Many structures made of WC-Co carbide are subject to thermo-mechanical loading and have to conduct heat in order to function properly in industrial application. The current work provides results on a significant drop in thermal conductivity of WC-Co carbides as a function of material volume damage that accumulates during cyclic high-temperature loading of the materials depending on material microstructure. Average WC grain size and Co binder metal content of the investigated grades ranged from submicron to medium and from 10 to 12 wt%, respectively. The carbides were subjected to uniaxial cyclic loading in a vacuum for different numbers of load cycles at 700 °C and 800 °C. Damage features accumulated in the material volume were documented by means of scanning electron microscopy. Thermal conductivity properties of virgin and damaged materials were determined via laser flash analysis. The results indicated a significant decrease depending on the materials’ microstructure, i.e. the defects’ predominant location within the microstructure. The damage features that occurred mainly between WC grains in the coarser-grained grade led to larger drops in thermal conductivity with rising temperature compared to damage features that occurred within the Co binder metal in the finer-grained grade. The presented results are of high relevance to the thermo-mechanical load situation of e.g. milling tools since the heat conduction away from their cutting edges is hindered by the documented effect and deemed to lead to a self-acceleration of the damage accumulation.

Study on the Properties of Spherical Cast Tungsten Carbide Powders Prepared by Different Methods 2

Spherical cast tungsten carbide powder is a new type of ultra-wear-resistant ceramic particle material. Compared with traditional tungsten carbide, spherical cast tungsten carbide has two significant advantages: first, it has a regular spherical appearance, good powder flowability, and wettability, which results in good integration with the surrounding tissue when added as particles, reducing the likelihood of stress concentration; second, the internal structure of the tungsten carbide particles is dense, with good toughness, fine grains, high hardness, and the coating has excellent wear resistance and is less likely to break under load. Due to its outstanding performance, spherical cast tungsten carbide powder is gradually replacing traditional tungsten carbide powder in the surface protection of components in mining machinery, oil machinery, construction industry, and foundries, significantly improving the wear resistance, corrosion resistance, and oxidation resistance of workpieces, and extending the service life of workpieces.

Introduction to the Methods of Spherical Cast Tungsten Carbide

Currently, the spherical cast tungsten carbide powders available in the market are mainly prepared by the following methods: induction remelting spheroidization, plasma remelting spheroidization, and plasma rotating electrode atomization.

The induction remelting spheroidization method involves heating the material in a reactor to the spheroidization temperature through induction heating, and the material moves forward slowly the vibration of the furnace tube. If the dispersion of the material is not well controlled, the molten droplets will grow due to collision and adhesion, making particle size control difficult. Moreover, during the operation, the powder must not come into contact with the reactor, otherwise it will affect the entire spheroidization process and cause material waste.

The plasma remelting spheroidization method uses casting tungsten carbide powder as the raw material and employs radiofrequency plasma flame to heat argon gas to a high temperature of 3000 to 10000 ℃, melting the casting tungsten carbide particles into a liquid state and directly quickly condensing them into spherical particles. This method can easily obtain fine-grained spherical tungsten carbide powder by controlling the particle size and composition of the raw material.

The plasma rotating electrode atomization method uses a tungsten carbide rod as the electrode, fixed within the rod material bin, and then subjected to plasma atomization under inert gas protection. The plasma arc melts the end face of the high-speed rotating rod, and under the action of centrifugal force, the molten droplets separate from the edge of the molten pool and solidify in the form of spherical particles. This technology avoids the difficulty of material dispersion at ultra-high temperatures during remelting spheroidization, and the obtained spherical tungsten carbide powder has a narrow particle size distribution range and is easy to control.

The following will study the chemical composition, micro-morphology, microstructure, microhardness, and other powder properties of spherical cast tungsten carbide powders prepared by different methods.

Study on the Properties of Spherical Cast Tungsten Carbide Powders Prepared by Different Methods 3

Chemical composition

Study on the Properties of Spherical Cast Tungsten Carbide Powders Prepared by Different Methods 4

The table above shows the chemical composition of spherical cast tungsten carbide powder samples prepared by different methods. It can be observed that the main components of the spherical cast tungsten carbide powder are W and C elements, and all contain trace amounts of Fe, V, Cr, and Nb elements. The ideal spherical cast tungsten carbide should be a eutectic of WC and W2C, with an eutectic temperature of 2525 ℃ and a carbon content of 3.840% (by mass) at the eutectic point. From the data in the table, it can be seen that the total carbon content of the spherical cast tungsten carbide prepared by the plasma rotating electrode atomization method has the smallest deviation from the theoretical eutectic carbon content, with the lowest free carbon content; the powder obtained by the induction remelting spheroidization method has the largest difference in total carbon content from the theoretical value, with a difference of 0.170% (by mass). This is due to the carbon content increase caused by the graphite tube heating method used in the induction remelting spheroidization process. In addition, by comparing samples 2#, 3#, and 4# with similar particle sizes, it can be determined that the powder prepared by the plasma rotating electrode atomization method has the relatively lowest impurity content. However, the impurity content of sample 1# prepared by the plasma rotating electrode atomization method is relatively high, which may be related to the quality of the cast tungsten carbide raw material rod. This suggests that, compared to other methods, the plasma rotating electrode atomization method can more accurately control the carbon content of spherical cast tungsten carbide powder, preventing overeutectic and hypoeutectic reactions caused by carburization and decarburization, and obtaining a nearly complete eutectic structure, which is crucial for improving the microstructure and properties of spherical cast tungsten carbide.

 

Microscopic morphology

The Microscopic Morphology of Spherical Cast Tungsten Carbide Powder Samples
The Microscopic Morphology of Spherical Cast Tungsten Carbide Powder Samples

The image above shows the microscopic morphology of spherical cast tungsten carbide powders prepared by different methods. It can be observed that the spherical cast tungsten carbide powders prepared by the three methods are all regular and smooth, nearly spherical in shape.

Cross-sectional Photos of Spherical Cast Tungsten Carbide Powder
Cross-sectional Photos of Spherical Cast Tungsten Carbide Powder

The image above shows the cross-sectional photos of spherical cast tungsten carbide powders prepared by different methods. As can be seen from (a) and (b), the spherical tungsten carbide powder particles prepared by the plasma rotating electrode atomization method are dense with almost no defects. However, as seen in (c) and (d), there are some obvious pores within the spherical tungsten carbide powder particles prepared by the plasma remelting spheroidization method and the induction remelting spheroidization method, resulting in some hollow powders. The main reason for this is that the crushed tungsten carbide powder material used in the above methods is likely to contain residual pores from the casting process. During the short plasma or induction heating process, the interior of the crushed tungsten carbide powder is difficult to completely melt, leading to some residual pores within the particles.

Microstructure

Microstructure Photos of Spherical Cast Tungsten Carbide Powder Samples After Corrosion
Microstructure Photos of Spherical Cast Tungsten Carbide Powder Samples After Corrosion

The image above shows the microstructure photos of spherical cast tungsten carbide powder particles after corrosion. It can be observed that the internal structure of the spherical tungsten carbide powder particles prepared by the three methods mainly consists of a typical fine acicular WC and W2C eutectic structure. Compared to the plasma remelting spheroidization method and the induction remelting spheroidization method, the spherical cast tungsten carbide powder prepared by the plasma rotating electrode atomization method has a denser eutectic structure. This is because, unlike the plasma remelting spheroidization method and the induction remelting spheroidization method, the plasma rotating electrode atomization method completely melts the cast tungsten carbide feedstock rod and then solidifies by being thrown out under the action of centrifugal force. During the crystallization of the molten cast tungsten carbide, the degree of undercooling is greater, nucleation is more rapid, and a larger number of crystal nuclei are generated, resulting in a finer and denser eutectic structure.

 

Microhardness

The table below shows the average microhardness of spherical cast tungsten carbide powders prepared by different methods. It can be seen that the microhardness of the spherical cast tungsten carbide powders prepared by the three methods is all above 2800 HV0.1, with the powder prepared by the plasma rotating electrode atomization method having the highest microhardness, reaching 3045 HV0.1. This is mainly due to the finer eutectic structure within the spherical cast tungsten carbide prepared by the plasma rotating electrode atomization method.

Other Physical Properties of spherical cast tungsten carbide

The table below shows the flowability and apparent density values of spherical cast tungsten carbide powders prepared by different methods. It can be seen that the powder prepared by the plasma rotating electrode atomization method has the worst flowability and the smallest apparent density; whereas the powder prepared by the induction remelting spheroidization method has the best flowability and the largest apparent density.

Study on the Properties of Spherical Cast Tungsten Carbide Powders Prepared by Different Methods 5

Conclusion

(1) The spherical cast tungsten carbide prepared by the plasma rotating electrode atomization method has the smallest deviation from the theoretical eutectic carbon content, the lowest free carbon content, and relatively low impurity content.

(2) The spherical tungsten carbide powder particles prepared by the plasma rotating electrode atomization method are dense with almost no defects, and the eutectic structure is finer. The spherical tungsten carbide powder particles prepared by the plasma remelting spheroidization method and the induction remelting spheroidization method both have some obvious pores, resulting in some hollow powders.

(3) The spherical cast tungsten carbide powders prepared by the three methods mainly consist of WC and W2C phases.

(4) The microhardness of the spherical cast tungsten carbide powders prepared by the three methods is all above 2800 HV0.1, with the powder prepared by the plasma rotating electrode atomization method having the highest microhardness, reaching 3045 HV0.1. The powder prepared by the induction remelting spheroidization method has the best flowability and the largest apparent density.

Leave a Reply

Your email address will not be published. Required fields are marked *

日韩av毛片免费播放-国产999热这里只有精品-亚洲第一精品中文字幕-欧美特黄免费在线观看| 亚洲综合不卡一区二区三区-中文字幕一区二区人妻秘书-国产免费午夜精品理论-中文字幕人妻精品一区二区| 久久精品中文字幕久久-国产尤物精品在线观看-久久精品久久精品亚洲国产av-熟妇人妻中文字幕在线| 精品国产亚洲av蜜臀-欧美亚洲伦理在线视频-久久亚洲国产成人影院av-国产精品99蜜臀久久不卡二区| 91精品啪在线观看国产91蜜桃-国产国拍亚洲精品av在线-日韩在线亚洲清纯av天堂-久久亚洲国产精品五月天| 免费观看国产裸体视频-久久亚洲精精品中文字幕早川悠里-99精品国产一区二区青青牛奶-久久精品成人av免费观看| 蜜桃视频大全免费观看-国产高清不卡一区二区-亚洲av综合av东京热三区-无套内射激情国产av| 久久精品国产久精国产爱-久久超碰97中文字幕-久热这里只有精品视频一区-日韩av在线免费观看| 91精品天堂福利在线观看漫画-亚洲国产精品一区亚洲国产-亚洲国产成人最新精品资源-亚洲国产精品成人综合久| 传媒精品视频在线观看-久久蜜汁成人国产精品-国产精品伦理视频一区三区-丰满少妇特黄一区二区三区| 日本一区二区三区最新章节-香蕉av久久一区二区三区-久久久国产亚洲精品视频-国产伦精品一区二区三区精品视频| 国产免费无套精品视频-日本特色特黄aaa大片免费-日本精品免费一区二区三区-九九热精品视频在线免费| 国产丝袜爆操在线观看-亚洲老熟妇日本五十六十路-亚洲av乱码久久亚洲精品-综合激情四射亚洲激情| 国产亚洲精品视频自拍-激情五月开心五月婷婷-日本少妇三级交换做爰做-国产日韩三级中文字幕| 国产喷白浆一区二区三区网站-中文字幕人妻系列av-国产极品尤物自拍露脸-自拍偷区亚洲综合激情| 国产人妖直男在线视频-午夜福利视频合集91-亚洲五月自拍欧美第一页-国产主播免费在线一区二区| 国产特级黄色录像视频-成人亚洲精品专区高清-国产97在线免费观看-91精品青草福利久久午夜| 日韩精品中文一区二区三区在线-午夜视频国产在线观看-日韩中文字幕av有码-最新日韩精品视频免费在线观看| 少妇人妻偷人偷人精品-国产精品黄色在线播放-亚洲熟伦熟女新五十路熟妇亚洲-国产综合91精品百人斩| 尤物视频在线观看网址-欧美午夜精品久久福利-久久这里只有精品视频5-国产精品成人综合色区| 国产色片地址网日本激情-国产自偷在线拍精品热不卡-国产精品自产拍蜜臀av在线-成人区人妻精品一区二区三区| 国产精品女同一区二区久久夜-日本精品女人一区二区三区-亚洲成人久久久久久-激情五月婷婷综合激情| 国内熟妇与亚洲洲熟妇妇-伊人久久亚洲一区二区三区-亚洲av不卡在线短片-午夜国产理论大片高清| av网站在线观看华人免费-美女露下体让人舔视频网站-六月丁香激情综合爱爱-宅福利有番号亚洲麻豆91| 日韩av高清不卡一区二区-国产亚洲性色av大片久久香蕉-国产亚洲欧美韩国日本-国产精品国产三级国产普通话对白| 国内精品欧美久久精品-国产极品尤物美在线观看-日本经典视频一区二区三区在线-国模91九色精品二三四| 国产精品亚洲精品午夜-欧美日韩成人精品久久二区-自拍偷拍福利视频在线观看-91精品蜜桃一区二区三区| 丰满女性丰满女性性教视频-国产日韩欧美精品av-日韩区一区二区三区在线观看-四虎国产精品成人免费久久| 女同在线播放中文字幕-国产成人亚洲精品在线看-日韩有码在线观看视频-蜜桃av噜噜一区二区三区视频| 加勒比中文字幕久久av-久久黄色美女三级久一点黄-国产精品无套高潮久久-久久婷婷综合色拍亚洲| 亚洲av日韩av天堂影片精品-熟妇人妻丰满少妇中文-国产精品日本一区二区三区-国产精品熟女乱色一区二区| 亚洲精品毛片免费观看-精品一区二区三区四区激情-特黄特色大片女生高潮久久-欧美午夜福利视频自拍| 四虎成人免费永久视频-婷婷激情五月天久久综合-亚洲欧美自拍偷拍丝袜-日韩精品午夜视频一区二区三区| 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| 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| 欧美日本国产一区二区三区-亚洲精品成人午夜在线观看-国产精品一二三在线看-国产成人传媒在线播放| 能看免费欧美一级黄片-男女视频网站免费精品播放-日本高清在线一区二区三区-熟女少妇免费视频网站观看| 91精品天堂福利在线观看漫画-亚洲国产精品一区亚洲国产-亚洲国产成人最新精品资源-亚洲国产精品成人综合久| 精品久久激情中文字幕-扒下语文老师的丝袜美腿-日韩欧美精品在线免费看-国产成人亚洲精品在线| 在线精品日韩一区二区三区-国产免费人成网站在线观看-白白发布视频一区二区视频-乱妇乱女的熟妇熟女色综合| 午夜精品人妻一区二区三区-亚洲精品成人久久av-成人亚洲av精品入口-高清传媒视频在线观看|