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

Carbides contain mainly two types of additives: one is refractory metal carbides, and the other is metal additives. The functions of additives are as follows:

(1) To reduce the alloy’s sensitivity to sintering temperature fluctuations and carbon content changes, and to prevent the uneven growth of carbide grains;

(2) To change the phase composition of the alloy, thereby improving the structure and properties of the alloy.

This paper reviews the effects of adding rare earth elements, metals, and metal carbides to cemented carbides on their properties.

The Effect of Additives on the Properties of Cemented Carbides 2

The Effect of Adding Rare Earth Elements on Carbide Properties

Rare earth elements are the 15 lanthanide elements with atomic numbers ranging from 57 to 71 in the third subgroup of the Mendeleev periodic table, plus scandium and yttrium, which have similar electronic structures and chemical properties, totaling 17 elements. Rare earths are known as the “treasure trove” of new materials and are a group of elements of particular concern to scientists worldwide, especially material experts. The following sections discuss the effects of adding rare earth elements on the hardness, bending strength, and grain size of cemented carbides.

1.1 Hardness

Whether the addition of rare earths has a significant effect on the hardness of the alloy is an issue of concern. The influence of yttrium and lanthanum on WC-TiC-Co cemented carbides is not significant, but different rare earth elements have different trends; however, the hardness of alloys with Nd or Ce added, regardless of the content, is slightly higher than that of the untreated alloys, with an average increase of 0.3 HRA units. For YG6 alloys, the addition of mixed rare earths results in a decrease in hardness to varying degrees when the content reaches 1%; for YT? alloys, the hardness remains largely unchanged or slightly increased with the addition of La or Y.

1.2 Bending Strength

Data shows that adding a certain amount of rare earth elements to the alloy can increase its bending strength. After the addition of rare earth oxides, the strength of the alloy is improved due to the dispersion strengthening of nickel by the rare earth oxides. When the content of rare earths is 1.2% to 1.6% of the binder metal content, the bending strength of the alloy reaches its maximum value; after adding mixed rare earth oxides equivalent to 0.25% to 1.00% of the binder mass fraction, the bending strength of the WC-8%Co alloy is improved to some extent. When the addition amount is 0.25% to 0.50%, the bending strength can be increased by 1.5%, but excessive addition of rare earths will lead to a decrease in bending strength.

The Effect of Additives on the Properties of Cemented Carbides 3

1.3 Grain Size of Carbides

A large number of literature reports have been published on the effect of rare earths on the WC grain size in cemented carbides, but there is no unified conclusion to date. Regardless of the type of rare earth element added, the carbide grains in the alloy are finer than those without additives, and as the amount added increases, the refinement becomes more pronounced, and the grain size of the rare earth element-added alloy appears more uniform than that of the untreated alloy; studies have shown that the addition of trace rare earth elements does not affect the particle size of tungsten carbide and the binder phase.

Through extensive observation of the WC grain size and microstructure of WC-Co-TiC-TaC with rare earths and WC-Co with rare earths alloys, it is believed that the effect of rare earths on the WC grain size of cemented carbides is determined by two refinement effects and one growth effect. Table 1 shows the comparison of properties between rare earth alloys and alloys without rare earths.

The Effect of Additives on the Properties of Cemented Carbides 4

 

2 The Effect of Adding Metals on the Properties of Cemented Carbides

Commonly used metal additives include chromium, molybdenum, tungsten, tantalum, niobium, copper, aluminum, and others. Except for copper and aluminum, all of these can form carbides. Therefore, the change in the carbon content of the alloy must be considered when adding these metals.

2.1 Adding Noble Metals

Sintered cemented carbide products with added noble metals such as Ru, Rh, Pd, and Re exhibit high wear resistance and corrosion resistance and can be used in corrosive and abrasive media. Noble metals do not form carbide phases and exist in the binder metal as solid solutions. Ru and Re cause the formation of a substructure in the binder phase of the cemented carbide. Alloying sintered cemented carbides with noble metals can increase the microhardness and elastic modulus of the binder phase, while also improving the bending strength, compressive strength limit, and yield point of the sintered cemented carbide as a whole.

2.2 Adding Copper

The addition of a small amount of copper to alloys used in mining can both increase the strength of the alloy and improve its impact toughness. Research results indicate that after adding a small amount of copper to the WC-13% Fe/Co/Ni alloy, the hardness of the alloy slightly decreases, but the bending strength is significantly improved. When the copper content is around 0.8%, the alloy exhibits the best performance. Moreover, copper also has the effect of refining and spheroidizing WC grains.

2.3 Adding Alkali Metals

Alkali metals can promote the growth of WC grains, but their effect is limited by other factors. For instance, in the presence of silicon, sodium actually refines the WC grains; whereas if sodium is present during the carbonization process, the WC grains will become finer. Adding industrial-grade Li?CO? with a purity of 98% to 99% to the alloy results in a cemented carbide with coarser average grains, clear and well-defined grain edges, and high bending strength.

2.4 Adding Aluminum

The effect of adding a small amount of Al on the properties and structure of the WC-13% Fe/Co/Ni cemented carbide shows that the addition of a small amount of aluminum can refine the WC grains. While the hardness of the alloy increases by 2 to 3 HRA, the bending strength of the alloy can be improved by 100 to 200 MPa. When the amount of Al added exceeds 0.8%, the bending strength of the alloy decreases, which is due to reasons such as the enrichment of martensite at the phase interface and the relative change in the amount of γ phase. Table 2 shows the effect of metal additives on the properties of the alloy.

carbides

 

Добавить комментарий

Ваш адрес email не будет опубликован. Обязательные поля помечены *

欧美av黄片在线观看-黄片国产一级片在线观看-国产精品黄色精品黄色大片-一区二区三区国产日本欧美| 国产亚洲欧美日韩俺去啦-91香蕉国产极品在线播放-国产夫妻生活自拍视频-永久免费的成年视频网| 国产精品福利一区二区三区-日韩精品国产精品高清-日韩亚洲精品中文字幕在线观看-国内偷拍免费视频91| 亚洲a级一区二区三区-人妻中文字幕精品在线-日韩精品中文字幕人妻系列-香蕉久久最新精品视频| 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| 在线视频观看一区二区三区-日韩成年人高清精品不卡一区二区-成人深夜节目在线观看-亚洲精品中文字幕一二三| 色男人天堂综合久久av-蜜桃精品一区二区三区蜜桃臀-国产粉嫩高中生第一次不戴套-成人激情自拍视频在线观看| 国产精品内射在线免费看-99久久国产精品一区二区三区-久久国产精品午夜福利-亚洲av精品一区二区三区| 99久久亚洲综合网精品-久久热福利视频在线观看-日韩av人妻中文字幕-日本一区二区三区视频在线播放| 国产日本高清一区二区三区-久久亚洲成人精品性色-九九热99这里只有精品-亚洲愉拍自拍另类天堂| 一本久道热线在线视频-精品人妻在线中文字幕-亚洲av成人av天堂色多多-国产牛奶粉哪个品牌好| 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| 日韩人妻毛片中文字幕-国产精品亚洲综合第一页-国产精品久久亚洲av-亚洲国产精品一区二区不卡| 精品人妻一区二区三区四区石在线-国产精品国产三级国产三级人妇-午夜激情精品在线观看-一本久道视频蜜臀视频| 久久亚洲av综合悠悠色-91手机精品免费在线播放-午夜福利一区二区三区在线播放-97在线精品观看视频| 超碰成人av免费观看-伊人色综合久久天天伊人婷-av天堂激情在线观看-国产精品自拍国产精品| 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| 午夜狂情三级伦理涩之屋-亚洲国产精品美女嫩模综合在-久热在线观看免费视频-国产精品伦子一区二区三区| 最近日本中文字幕免费完整-欧美男女性生活真人视频-激情综合网激情综合网激情综合-中文字幕日韩有码国产精品| 少妇被无套内谢免费视频看看-不卡中文在线观看网站-国产精品男女爽免费视频-91精品福利视频久久| 久久国产精品亚洲va麻豆-嫩模大尺度偷拍在线视频-免费三级在线观看自拍-天堂av在线男女av| 午夜精品久久内射电影-亚洲精品自拍视频免费在线-国产免费观看久久黄av麻豆-麻豆国产精品伦理视频| 在线视频国产一区二区三区-亚洲欧美日韩国产经典-性插亚洲香蕉在线视频-亚洲成人国产超级黄色| 国内一级一片内射免费视频观-最新国产在线视频在线-免费在线观看国产特级片-国产午夜免费观看在线视频| 福利一区福利二区刺激-亚洲精品久久麻豆蜜桃-久久av蜜臀人妻一区二区三区-国产av剧情精品播放网站| 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| 福利午夜视频在线观看-亚洲国产精品久久av麻豆-人妻被中出忍不住呻吟-国产极品尤物在线精品福利一区| 蜜臀视频在线观看一区二区三区-少妇人妻偷人精品系列-天美传媒国产精品果冻-色综合久久综合欧美综合网| 深夜福利在线观看日韩-国产成人夜色高潮在线观看-熟女人妻少妇精品视频-97在线观看完整免费| 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| 国产大量自拍露脸在线-国产精品综合色区在线观-性色av一区二区三区制服-最新91精品手机国产在线| 亚洲少妇视频免费观看高清-亚洲午夜福利在线播放-偷拍偷窥精品视频在线-黄色大片国产免费永久网站| 日韩精品极品免费观看-91久久精品国产成人-成人亚洲国产精品一区不卡-免费在线播放韩国av| 亚洲高清无吗视频在线播放-国产亚洲最新在线不卡-久久亚洲国产精品成人-二区三区在线免费观看视频| 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| 天天躁夜夜躁狠狠85麻豆-操美女逼视频免费软件-国产精品一区二区在线观看-一区二区三区免费观看视频在线| 久久国产精品一品二品-国产二区中文字幕在线观看-极品性感尤物少妇粉嫩逼-亚洲成人av男人的天堂网| 国产精品久久一区二区三区-四虎国产精品亚洲精品-最新中文字幕日本久久-午夜性色福利在线视频| 精品国产日韩一区三区-成人激情毛片免费在线看-国产一区二区高清日韩-日韩成人黄片免费在线观看| 亚洲精品av一区二区日韩-日韩偷拍精品一区二区三区-亚洲欧美熟妇久久久久久-久草视频福利在线观看| 久久av这里只有精品-国产三级视频不卡在线观看-精品亚洲综合久久中文字幕-在线观看日韩av系列|