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 size of WC grains is of great significance to the friction and wear properties of cemented carbide. It is generally believed that coarse-grained cemented carbide has poorer wear resistance than fine-grained cemented carbide. After the grain refinement of cemented carbide, the size of the hard phase decreases, increasing the surface area of the hard phase grains and the bonding force between the grains, and the binder phase is more evenly distributed around them, which can improve the hardness and wear resistance of the cemented carbide. In this paper, the author conducts friction and wear experiments on cemented carbide to analyze the friction and wear properties under different parameters and the material removal mechanism, providing experimental evidence for the optimization design of high-speed cutting tool materials, reasonable material selection, and the study of high-speed cutting wear mechanisms.

Experiment

Test Materials

Three types of WC-6Co cemented carbide with different grain sizes were selected for the test. The size of the cemented carbide disc was φ55mm×4mm, and the surface was rough ground, finely ground, and polished. The mating material used was Al?O? balls with a diameter of 9.5mm. Both samples were ultrasonically cleaned in acetone for 20 minutes and dried for use. The material properties are shown in Table 1.

How Grain Size Transforms Cemented Carbide's Friction and Wear Performance 2

Friction and Wear Test

The test was conducted on a UMT-2 multi-functional friction and wear testing machine produced by CETR Corporation in the United States, using a ball-on-disc contact method. The structure of the testing machine is shown in Figure 1. The cemented carbide friction disc was attached to the working table with double-sided tape, and the Al?O? ball was placed in the fixture. The two types of mating materials produced mutual movement and force of action. The friction force generated was detected by the sensor, and the curves of friction force, normal force, and friction coefficient were automatically generated by the related software according to Coulomb’s law.

How Grain Size Transforms Cemented Carbide's Friction and Wear Performance 3

The test was conducted at room temperature, with normal forces of 10N and 20N respectively, and the linear velocities of the friction pair sliding were 40m/min, 80m/min, 120m/min, and 160m/min. The sliding distance was 500m. After the test, a scanning electron microscope (SEM) was used to observe the wear scar surface morphology of the upper and lower samples, and an X-ray energy dispersive spectrometer (EDS) was used to detect the elemental composition of the worn surfaces. All samples were analyzed for the elemental composition of the friction and wear surfaces under the same conditions.

Results and Analysis

Friction and Wear Performance

How Grain Size Transforms Cemented Carbide's Friction and Wear Performance 4

Figure 2 shows the friction coefficient curve of ZH cemented carbide drawn by the testing machine’s accompanying software (load 20N, sliding speed 160m/min). The experiment found that each friction process follows a similar pattern, that is, the initial dynamic friction coefficient undergoes a rapid increase from the initial value during the transition period, and then remains relatively stable, showing a fluctuating characteristic in the stable phase. In the beginning, under the action of the normal load, only local micro-convex bodies on the friction surface are in contact, the adhesive area is small, and the molecular attraction on the contact surface is weak, so the friction coefficient is small; as the friction process progresses, the micro-convex bodies interfere with each other, gradually get worn down, the adhesive area increases, and the molecular attraction also increases, leading to a gradual increase in the friction coefficient. The entire friction process is a continuous process of the contact surface adhering and then being sheared under the action of shear stress. Due to the peeling and breaking of the Co phase on the surface, the wear of the sample surface occurs, and the local adhesion on the surface quickly reaches a dynamic equilibrium, resulting in the friction coefficient of the surface being maintained within a relatively stable range, which is called the stable period.

Most scholars use the average value of the friction coefficient over a period of time (distance) as a characterization parameter of friction behavior. Therefore, this experiment selects the average value during the stable friction phase as the friction coefficient of the cemented carbide under the corresponding parameters. Figure 3 shows the friction coefficients of three types of cemented carbide under different loads and speeds.

How Grain Size Transforms Cemented Carbide's Friction and Wear Performance 5

It can be seen that with the increase of friction speed and load, the friction coefficient of the cemented carbide generally shows a decreasing trend, and the decrease is most obvious in the transition from relatively low speed (40m/min and 80m/min) to high speed (120m/min and 160m/min). From the perspective of material, the friction coefficient of ZH cemented carbide is smaller than that of the other two materials, and the friction coefficients of ZHX and HG cemented carbides are not significantly different, with the friction coefficient of HG cemented carbide being slightly larger.

Wear Mechanism

After the friction and wear tests, the microstructure of the worn surfaces of each sample was observed using a scanning electron microscope (SEM), and SEM images were taken, along with an analysis of the surface composition. The friction and wear mechanisms of the cemented carbide under different friction parameters are similar, as shown in Figure 4 (sliding speed 160m/min, load 20N).

How Grain Size Transforms Cemented Carbide's Friction and Wear Performance 6

In the initial stage of cemented carbide wear, the binder phase Co undergoes plastic deformation, and the surface layer of Co is extruded by the WC grains. Due to the low hardness and good ductility of Co, under certain conditions, a micron-scale friction film can form on the surface, while the harder WC particles gradually protrude from the friction surface, preventing further rapid wear of the surface and allowing the friction process to enter a relatively stable stage. As the binder phase Co continues to be lost, the WC framework of the material is damaged, and the dislocation density within the WC particles significantly increases. When the dislocation density accumulates to a certain extent, microcracks will form on the WC particles, causing the WC particles to begin to pull out from the cemented carbide matrix. The detached WC particles remain in the wear area, transforming into abrasive particles, which, under the action of the load, compress against the matrix, resulting in new plastic deformation and grain damage.

cemented carbide

As can be seen from Figure 4, as the grain size of the cemented carbide decreases, the grain density increases, and the degree of surface wear decreases. The surface of the ZHX cemented carbide shows no obvious shedding of WC particles, while the surface density of HG is very good, with almost no obvious shedding of WC particles. Therefore, for the traditional grain size cemented carbide ZH, the main wear mechanism is abrasive wear caused by the extrusion of the binder phase Co and the shedding of WC grains. As the grain size decreases and the density of the fine-grained cemented carbide increases, the phenomenon of WC grain spalling decreases, Co still wraps around the WC, the microstructure of the material remains intact, and most grains only undergo a certain degree of plastic deformation.

結(jié)論

The size of WC grains has an important effect on the friction and wear properties of cemented carbide. As the grain size decreases, the friction coefficient slightly increases, and the wear resistance is enhanced.

The friction coefficient of cemented carbide is influenced by speed and load, and it shows a decreasing trend with the increase of speed and load.

The wear mechanism of traditional grain size cemented carbide is mainly characterized by the extrusion of the binder phase Co and the fracture and spalling of the hard phase WC grains; the grain spalling phenomenon of fine-grained cemented carbide is not obvious, and the main wear mechanism is plastic deformation.

コメントを殘す

メールアドレスが公開(kāi)されることはありません。 が付いている欄は必須項(xiàng)目です

国产午夜视频在线观看720p-成人深夜福利av在线-一区二区日韩精品教师学生-亚洲一区二区三区美臀在线播放| 成人精品一区二区三区久久-中文字幕乱码亚洲无线三区-亚洲精品亚洲人成人网-中文字幕五月久久婷热| 四虎最新在线观看视频-水蜜桃一二二视频在线观看免费-一区二区精品在线观看视频-成人高清在线播放视频| 国产亚洲精品精品国产亚洲综合l-99久久精品午夜一区二-青青草青娱乐免费在线视频-日本久久中文字幕一二三| 国产精品第五页在线观看-亚洲欧美日韩丝袜另类一区-国产懂色av一区二区三区-午夜亚洲欧美日韩在线| 日本大黄高清不卡视频在线-亚洲色图视频在线观看免费-国内精品自拍视频在线观看-av免费在线观看看看| 日韩一区二区三区视频在线观看-久久精品亚洲热综合一本色婷婷-国产亚洲精品视频一区二区三区-人妻中文字幕精品系列| 国内外成人综合免费视频-久久国产精品99久久蜜臀-大三美女口爆吞精视频-亚洲国产一区二区精品性色| 久久精品亚洲精品毛片-国产精品白丝在线播放-日韩国产欧美综合第一页-亚洲三a免费观看网站| 特大毛片毛片免费视频-成人伊人青草久久综合网-91亚洲蜜桃内射后入在线观看-日韩情色电影中文字幕| 亚洲欧美日韩不卡视频-四虎永久在线精品免费看-久久av丰满熟妇极品-亚洲国产精品中文字幕一区| 色偷偷东京热男人天堂-国产视频久久这里只有精品-美女视频中文字幕人妻-国产一区二区三区在线观| 亚洲中文字幕99精品-国产精品亚洲一区二区久久-国产精品久久久小黄片-国产不卡福利片在线观看| 蜜桃在线观看免费网站-亚洲成熟女性一级黄色蝶片-日韩一级黄色片天天看-一区二区三区在线视频观看美女| 亚洲国产国语对白在线视频-中文字幕中文字字幕码一区二区-毛片av在线免费观看-免费在线观看av毛片| 午夜亚洲国产色av天堂-色天天综合色天天久久191-国产精品久色婷婷不卡-日韩欧美中文字幕在线韩| 精品国产人成亚洲区中文久久-欧美日韩夫妻性生活视频-亚洲欧美日韩高清专区一-国产精品无套内射后插| 九九久久精品国产av-日本高清在线观看一区二区-精品熟女视频一区二区三区-亚洲欧洲成熟熟女妇专区乱| 国产熟女露脸91麻豆-自拍视频在线观看后入-麻豆映画视频在线观看-国产视频男女在线观看| 欧美精品一区二区三区香蕉-国产精品黄色免费网站-蜜桃av乱码人妻一二三区-国产综合亚洲一区激情国产| 一级女性全黄久久生活片-日韩久久精品视频在线观看-国产精品色午夜免费视频-亚洲码欧洲码一区二区三区| 极品尤物在线免费观看-超碰九七精品在线观看-午夜爱爱免费观看视频-日本免费人成黄页在线| 午夜视频在线观看色诱-久久精品午夜福利视频-熟妇人妻av一区二区三区-一区二区三区中文字幕在线观看| 91精品国产色综合久久不88-黑人性做爰片免费视频看-房事插几下硬不起来了咋治疗-熟女乱一区二区三区四区| 亚洲少妇熟女一区二区三区-熟女熟妇少妇妇女乱熟-一区二区三区不卡国产视频-成人精品一区二区三区综合| 日韩有码中文在线视频-少妇我被躁爽到高潮在线观看-精品丰满人妻一区二区三区-亚洲天堂高清在线播放| 99精品一区二区成人精品-激情自拍视频在线观看-久久热这里只有精品视频-伊人色综合九久久天天蜜桃| 日本人妻中文字幕久久-色老汉免费在线观看一区-成人国产在线观看网站-欧美日韩国产亚洲一区二区三区| 亚洲精品一区二区三区麻豆-国产精品小视频在线看-亚洲国产成人av第一二三区-国产不卡一区二区三区免费视频人| 国产精品色哟哟在线观看-亚洲精品国产自在现线-国产成人精品免费播放视频不卡-国产精品高潮呻吟av久久黄| 亚洲视频第一页在线观看-最新中文字幕国产精品-中文人妻熟妇人伦精品熟妇-国产福利91在线视频| 久久精品极品盛宴免视-五月综合激情中文字幕-精品中文字幕一区二区精彩-中文字幕熟女日韩人妻| 成人av毛片18岁免费看-亚洲熟妇av一区二区三区宅男-欧美日韩另类视频在线观看-另类亚洲国产另类亚洲| 国产精品毛片二区视频播-尤物视频在线看免费观看-亚洲中文字幕亚洲中文字幕-日本黄色成人福利网站| 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| 青草黄色成人中文视频-国产剧情av在线大学生-日韩av在线一卡二卡三卡-国产成人午夜福利影院| 亚洲国产精品不卡毛片-青青青视频手机在线观看-在线视频中文字幕人妻-亚洲永久精品免费在线| 国产精品 一区二区 久久-国产在线一区二区三区四区视频-午夜日本在线观看视频-日韩一区二区中文字幕18禁| 日本激情内射亚洲精品-国产亚洲一区二区三区午夜-国产精品人妻熟女av在线-亚洲av综合亚洲精品| 久久久免费福利视频观看-成年人在线观看视频免费播放-噜噜中文字幕一区二区三区-视频一区视频二区三区| 日韩毛片精品毛片一区到三区-四虎国产精品久久免费观看-国产网站在线观看91-亚洲熟妇av不卡一区二区三区|