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 oxidation with temperature in the cutting area can reach 1000°C significantly reduces the hardness and strength of the carbide, greatly shortening the tool’s lifespan and severely affecting the performance of carbide tools. The author of this paper investigates the high-temperature oxidation resistance and high-temperature performance of different carbide compositions, focusing on adjusting the cobalt content, WC grain size, and TaC/NbC/TiC additives. The following conclusions were drawn from this study.

The Effects of 3 Elements on the High-Temperature Oxidation Resistance and Hardness of Carbides 2

The Effect of Cobalt Content

The Effects of 3 Elements on the High-Temperature Oxidation Resistance and Hardness of Carbides 3

Figure 3 shows the microstructure after oxidation of carbides?with different cobalt contents (all WC materials are WC-1). As the cobalt content increases, the microstructure of the carbide?oxides changes significantly. The oxide of the WC-6%Co carbide?has more and larger pores, the pores in the oxide of the WC-10%Co carbide?are significantly reduced, and the oxide of the WC-14%Co carbide?has virtually no large pores.

The Effects of 3 Elements on the High-Temperature Oxidation Resistance and Hardness of Carbides 4

Figure 4 shows the oxidation weight gain curves of carbides?with different cobalt contents. As the cobalt content increases, the oxidation weight gain of the carbides decreases sequentially. At 900°C, the oxidation weight gain of WC-6%Co, WC-10%Co, and WC-14%Co carbides are 11.92%, 11.46%, and 11.26%, respectively. Compared to WC-6%Co carbide, the oxidation weight gain of WC-10%Co and WC-14%Co carbides?at 900°C decreased by 3.8% and 5.5%, respectively. Therefore, although increasing the Co content can improve the high-temperature oxidation resistance of carbides, the improvement is not significant.

The Effects of 3 Elements on the High-Temperature Oxidation Resistance and Hardness of Carbides 5

Table 3 lists the oxidation reaction equations of each component in the carbide?and their Gibbs free energy. It is well known that during the oxidation of carbides, the oxidation of WC to WO3 results in significant volume expansion. The oxide WO3 is loose, porous, and volatile, producing volatile gases such as CO2, which provide more pathways for the oxidation diffusion process, thereby exacerbating the oxidation of the carbide. Although the binder phase is more prone to oxidation than the hard phase, the oxide formed from the binder phase is the relatively dense CoWO4, which can slow down the oxidation diffusion process of the carbide. Therefore, with the increase in cobalt content, more CoWO4 and less WO3 are formed, resulting in a denser microstructure of the oxides and consequently improving the high-temperature oxidation resistance of the carbide.

The Effects of 3 Elements on the High-Temperature Oxidation Resistance and Hardness of Carbides 6

Table 4 shows the room temperature hardness and high-temperature hardness of carbides?with different cobalt contents. At room temperature, the more cobalt content, the lower the hardness of the carbide. When the temperature rises to 800°C, the hardness of the carbides decreases significantly, with the rate of decrease reducing as the cobalt content increases. At 800°C, the hardness of carbides with higher cobalt content is actually higher than that of carbides with lower cobalt content.

 

Both the hard phase and the binder phase exhibit some thermal expansion at high temperatures, with the binder phase experiencing greater thermal expansion and generating larger stress, which offsets some of the load force. This is one of the reasons why the high-temperature hardness of the carbide?increases with the increase in cobalt content.

The Effect of WC Grain Size

The Effects of 3 Elements on the High-Temperature Oxidation Resistance and Hardness of Carbides 7

Figure 6 shows the oxidation weight gain curves of 4#, 5#, and 6# carbides?prepared with WC of different Fischer particle sizes. From room temperature to 825°C, the oxidation weight gain curves of the three carbides with different WC grain sizes overlap; however, in the range of 825-900°C, the finer the WC grains, the less the oxidation weight gain of the carbides. At 900°C, the oxidation weight gains of 4#, 5#, and 6# carbides?are 9.18%, 8.67%, and 8.20%, respectively. Compared to the 4# carbide, the oxidation weight gain of the 5# and 6# carbides?at 900°C decreased by 5.6% and 10.7%, respectively. Therefore, under the same Co content, refining the WC grains can improve the high-temperature oxidation resistance of carbides.

The Effects of 3 Elements on the High-Temperature Oxidation Resistance and Hardness of Carbides 8

Figure 7 shows the XRD diffraction patterns after oxidation of carbides?with different WC grain sizes. Since the compositions of 4#, 5#, and 6# carbides?are the same, there is no significant difference in their oxidation products. Therefore, the diffraction patterns of the oxides of the three carbides?with different WC grain sizes are essentially identical.

 

The Oxidation Resistance and hardness Differences of Carbides with Different WC Grain Sizes

The differences in the oxidation resistance of carbides?with different WC grain sizes can be mainly attributed to the following two points:

In the case of a uniform carbide?structure, finer WC grains result in more phase boundaries between WC and the binder phase. The finer WC grains are better encapsulated by the binder phase, and the oxidation products of the binder phase can, to some extent, hinder the oxidation diffusion process, thereby improving the high-temperature oxidation resistance of the carbide.

Finer WC grains have fewer grain boundary defects and smaller grain boundary voids between the WC grains, which correspondingly reduce the oxidation diffusion channels, thus enhancing the high-temperature oxidation performance of the carbide.

The Effects of 3 Elements on the High-Temperature Oxidation Resistance and Hardness of Carbides 9

Table 5 shows the room temperature hardness and high-temperature hardness of carbides?with different WC grain sizes. At room temperature, the finer the WC grains, the higher the hardness of the carbide. When the temperature rises to 800°C, the hardness of the carbides decreases significantly, and the rate of decrease in high-temperature hardness increases as the WC grain size decreases. Clearly, although the room temperature hardness of the carbide?increases as the WC grain size decreases, the high-temperature hardness becomes lower.

 

The Effect of TaC/NbC/TiC Additives

The Effects of 3 Elements on the High-Temperature Oxidation Resistance and Hardness of Carbides 10

Figure 8 shows the oxidation weight gain curves of carbides?with different carbide additives (all WC materials are WC-3). The oxidation weight gain curves and oxide diffraction patterns of WC-Co and WC-Co-TaC carbides?are basically the same, with oxidation weight gains of 10.58% and 10.20% at 900°C, respectively. Among the four carbides, WC-Co-NbC carbide?has the highest oxidation weight gain, while WC-Co-TiC carbide?has the lowest oxidation weight gain, with oxidation weight gains of 11.68% and 9.05% at 900°C, respectively.

?? c?ng

Figure 9 shows the XRD diffraction patterns of carbides?with different carbide additives after oxidation. The oxidation of the carbides produces corresponding oxides.

In WC-Co carbides, the added TaC, NbC, and TiC all exist in the form of W-containing solid solutions. The (Nb,W)C solid solution oxidizes earlier than WC and has many phase boundaries with WC. Without the protective “encapsulation” of the binder phase, the oxidation of the solid solution promotes the oxidation of WC, thereby accelerating the oxidation of the carbide. The oxidation weight gain of WC-Co-TaC carbide?is the same as that of WC-Co carbide. This is because the (Ta,W)C solid solution reacts simultaneously with WC, and since the hard phase WC is the main component, the loose and porous WO3 phase predominantly controls the oxidation rate of the carbide. Therefore, the addition of TaC does not significantly affect the high-temperature oxidation resistance of the carbide.

In summary, under the same conditions of grain size and cobalt content, the addition of TaC has no significant effect on the high-temperature oxidation resistance of the carbide. However, the addition of NbC significantly reduces the high-temperature oxidation resistance of the carbide, with a reduction of 10.4%, while the addition of TiC significantly improves the high-temperature oxidation resistance of the carbide, with an improvement of 14.5%.

The Effects of 3 Elements on the High-Temperature Oxidation Resistance and Hardness of Carbides 11

Table 6 shows the room temperature hardness and high-temperature hardness of carbides?with different carbide additives. At room temperature, the hardness of the carbides with TaC, NbC, and TiC additives is comparable to that of the WC-Co carbide. When the temperature rises to 800°C, the high-temperature hardness of the carbides with TaC, NbC, and TiC additives is higher than that of the WC-Co carbide, and the rate of decrease in high-temperature hardness is significantly reduced.

It is well known that solid solutions exhibit good red hardness and provide structural support to the overall carbide, helping it maintain high hardness under high-temperature conditions. Additionally, the solid solutions contribute to solid solution strengthening of the Co phase, which increases the hardness of the Co phase. Therefore, the addition of TaC, NbC, and TiC results in carbides?exhibiting good high-temperature hardness.

S? k?t lu?n

This study investigated the effects of cobalt content, WC grain size, and types of solid solutions on the high-temperature oxidation resistance and high-temperature hardness of carbides. The conclusions are as follows:

1.Increasing the cobalt content improves the high-temperature oxidation resistance of the carbide?and significantly increases the high-temperature hardness.

2.Reducing the WC grain size enhances the high-temperature oxidation resistance of the carbide?but significantly reduces the high-temperature hardness.

3.Compared to WC-Co carbides, the addition of TaC has no significant effect on the high-temperature oxidation resistance of the carbide, the addition of NbC decreases the high-temperature oxidation resistance, and the addition of TiC significantly improves the high-temperature oxidation resistance. All three additives, TaC, NbC, and TiC, significantly enhance the high-temperature hardness of the carbide.

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 *

亚洲欧美日本成人在线-伦理视频在线观看一区二区三区-日韩精品中文字幕人妻-四虎永久地址在线观看| 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| 中美高清在线观看av-精品视频中文字幕天码-日韩高清一二三区在线观看-精品人妻91一区二区三区| 精品精品国产午夜福利区免费观看-日韩精品一区二区三区2020-一区二区三区精彩视频在线观看-亚洲第一香蕉视频在线| 91精品国产免费人成网站-91国产小视频在线看-亚洲宅男一区二区三区天堂-成人午夜精品免费观看| 国产精品久久中文字幕网-国产亚洲av无色肉丝网站-自拍偷拍亚洲精品偷一-日本久久一区二区三区| 国产熟女老阿姨毛片看爽爽-精品少妇人妻久久免费-韩国午夜福利片在线观看-西川结衣在线中文字幕| 日产中文字幕在线精品一区-日韩黄色特级片一区二区三区-8x8x精品国产自在现线拍-内射爆操视频在线观看| 精品国产自产在线观看-四虎av一区二区在线观看-91久久精品人妻中文字幕-av网页一区二区三区| 国产大波精品一区二区在线-男女床上激情免费网站-日韩成人在线高清视频-国产精品视频免费自拍| 岛国精品一区二区三区-国产一区二区三区观看不卡av-四虎三级在线视频播放-亚洲乱妇熟女爽到高潮| 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| 国产高清丝袜av综合-精品亚洲一区二区在线-国产丝袜大长腿精品丝袜美女-日本熟女午夜福利视频| 日本一区二区免费电影院-亚洲精品成人av观看-国产级一片内射视步页-日韩高清在线亚洲专区视频| 岛国精品一区二区三区-国产一区二区三区观看不卡av-四虎三级在线视频播放-亚洲乱妇熟女爽到高潮| 亚洲熟妇激情视频99-丝袜美腿诱惑av网站在线观看-欧美国产综合激情一区精品-激情综合网激情五月我去也| 成熟女人毛茸茸的免费视频-91麻豆精品国产自产在线游戏-国产男女猛烈无遮挡免费视频-一级黄片国产精品久久| 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| 欧美国产日本韩国一区二区-麻豆天美东精91厂制片-亚洲成人自拍视频在线观看-娇妻互换享受高潮91九色| 国产传媒高清视频在线-日韩人妻少妇av在线-日本久久精品高清视频-丰满肥臀大屁股熟妇激情| 日韩av毛片在线播放-亚洲一区二区在线观看网站-18禁网站在线免费观看-亚洲精品夜夜黄无码99| 亚洲毛片在线观看视频网站-午夜高清福利在线观看-性生活视频在线免费观看-女人吞精口爆在线视频| 91精品在线播放黑丝后入-97免费在线播放视频-av网站天堂网国产av-亚洲熟妇乱色一区二区三区| 国产午夜亚洲精品福利-日韩精品中文字幕在线免费-亚洲久久精品中文字幕-狠狠亚洲婷婷综合色香五月加勒比| 亚洲国产黄色美女视频-成人家庭影院日韩午夜-国产剧情av网址网站-91精品乱码一区二区三区| 亚州国产精品一区二区-尤物在线观看视频免费-国产91久久精品视频-一色桃子中出欲求不满人妻| 日本av自拍偷拍视频-日韩精品人妻一区二区三区-看片福利国产午夜三级看片-在线观看视频最新信息好幫手| 欧美日韩激情免费观看-成年大片免费视频观看-俺来也去也网激情五月-在线国产精品自偷自拍| 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| 日韩午夜精品免费视频-真实国产精品自拍视频-91麻豆精产国品一二区灌醉-一本色道久久综合亚洲精品东京热| 白白色视频国产在线观看-美女高潮无套内谢视频日韩-成人能看的性生活视频大全-中文字字幕在线亚洲乱码| 日韩av观看一区二区三区四区-美丽的蜜桃3在线观看-久久人妻少妇嫩草av-欧美亚洲另类久久久精品| 草草草草伦理少妇高清-国内精品视频网站草草-国产精品精国产在线观看-国产麻豆激情av在线| 午夜性色福利在线视频福利-久久精品视频免费获取地址-亚洲一区二区三区在线观看不卡-无套进入美女免费观看视频| 国产 av 一区二区三区-日韩黄色三级三级三级-久久精品视频这里只有精品-日韩精品中文字幕亚洲| 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| 美性中文网美性综合网-亚洲最大黄色网在线观看-自偷精品视频三级自拍-97精品伊人久久大香| 日韩欧美国产亚洲中文-亚洲国产av第一福利网-亚洲欧洲日韩一区二区三区-91精品国产福利线观看久久| 久热视频在线免费观看-亚洲一区二区日韩综合久久-免费观看在线观看青青草视频-精品一区二区亚洲一区二区血炼| 国产精品一区二区久久人人爽-精品人妻一区二区三区有码-亚洲一二三区精品与老人-久久久之精品久久久| 欧美亚洲午夜精品福利-青草在线视频免费观看-亚洲国产精品久久又爽av-久久少妇呻吟视频久久久|