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

Hyper carbide = hyper alloy + cemented carbide

It is well known that there are two important performance indicators for hard metal alloys: hardness and strength. These two factors are often difficult to balance, much like a seesaw. However, the addition of rhenium to high-temperature alloys can significantly enhance the toughness and high-temperature deformation resistance of materials, including iron-based, nickel-based, and cobalt-based high-temperature alloys.

 

Characteristics of hyper?carbide

hyper?carbide?materials, built upon the foundation of general hard metal alloy constituents, incorporate one or several refractory high-temperature metallic components from hyper?alloys, such as rhenium, ruthenium, osmium, molybdenum, vanadium, tantalum, niobium, etc. This modification imparts exceptional characteristics including higher strength, hardness, and temperature resistance compared to conventional hard metal alloys.

One particularly notable effect is observed when trace amounts of rhenium are introduced into hard metal alloys. This addition significantly enhances and improves the physical properties of hard metal alloy materials, particularly in terms of red hardness and alloy stiffness (elastic modulus). Rhenium applies a solid solution strengthening effect to the existing binding phase metals (iron, cobalt, nickel series) in hard metal alloys, particularly in the realm of high-speed cutting and precision machining of challenging-to-process materials like nickel-based high-temperature alloys, heat-resistant stainless steels, titanium alloys, tungsten-molybdenum-tantalum-niobium-zirconium-hafnium class special alloys. The utilization of cutting tools and precision molds made from these newly developed hyper?carbide?materials presents an extraordinary cost-performance advantage, replacing conventional tools in a remarkable manner.

 

The Principle of Rhenium Enhancement in carbide?Performance

People have come to recognize that adding rhenium to the binder of WC-based hard metal alloys can enhance their high-temperature performance.

Figure 1 schematically depicts the W-Co-Re-C phase diagram under conditions of 9wt% Re + 6wt% Co. This diagram, based on literature and experimental results, is compared with a redrawn phase diagram of WC-Co under conditions of 10wt% Co. Considering that the density of Re is significantly higher than that of Co, the WC-Co-Re hard metal alloy with 9wt% Re and 6wt% Co contains almost the same proportion of binder phase in terms of volume as the WC-Co material with 10wt% Co.

From Figure 1, it is evident that the W-Co-Re-C phase diagram differs from the W-Co-C phase diagram. The following are characteristics of the W-Co-Re-C phase diagram:

Fig1 The W-Co-Re-C phase diagram with 9 wt% Re + 6 wt% Co (red line) compared to the W-Co-C phase diagram with 10 wt% Co (black line).
Fig1 The W-Co-Re-C phase diagram with 9 wt% Re + 6 wt% Co (red line) compared to the W-Co-C phase diagram with 10 wt% Co (black line).

Firstly, in the W-Co-Re-C phase diagram, all melting points shift towards higher temperatures. Therefore, compared to traditional WC-Co materials, WC-Co-Re hard metal alloys require sintering at higher temperatures.

Secondly, for WC-Co-Re hard metal alloys, the two-phase region without the η phase and free carbon slightly shifts towards the higher end at higher carbon contents. This shift is relatively minor but still needs to be considered in the preparation of WC-Co-Re hard metal alloys. It’s worth noting that the width of the two-phase regions in the W-Co-Re-C phase diagram is similar to that in the W-Co-C phase diagram.

Lastly, the addition of rhenium to the binder significantly expands the region where the equilibrium of WC + η phase + liquid phase exists at temperatures above approximately 1430°C. This implies that if medium- to low-carbon and low-carbon content WC-Co-Re hard metal alloys are rapidly cooled from the sintering temperature, they might contain the η phase instead of decomposing into thermodynamically stable WC + Co/Re mixtures. Therefore, post-sintering WC-Co-Re hard metal alloys must be cooled at relatively low cooling rates to ensure complete decomposition of the η phase.

Figure 2 illustrates this, showing that batches of WC-Co-Re with medium to low carbon content contain the encapsulated η phase after rapid cooling, while they don’t contain the η phase after slow cooling.

What is Hyper Carbide? 2
Fig2?Under conditions of cooling from the sintering temperature (1520°C) to 1300°C at different cooling rates: (a – cooling rate of 4°C/minute, b – cooling rate of 0.5°C/minute), the microstructure of a medium-grained WC-Co-Re hard metal alloy with 9wt% Re + 6wt% Co and a total carbon content of 5.45 wt%
What is Hyper Carbide? 3
Fig3 Sintered at 1520°C, then slowly cooled to 1250°C, the microstructure of medium-grained WC-10%Co hard metal alloy (left) and medium-grained WC-Co-Re (containing 9wt% Re + 6wt% Co) hard metal alloy (right)

Figures 3 and 4 present the typical microstructures of medium-grained WC-Co-Re hard metal alloy, compared to traditional WC-Co materials prepared from the same level of WC powder. From Figure 3, it is evident that the microstructure of WC-Co-Re hard metal alloy is noticeably finer than that of traditional WC-Co hard metal alloy. Thus, rhenium serves as a potent inhibitor of WC grain growth, restraining the coarsening process of WC. According to research findings, rhenium tends to concentrate at the WC/binder grain boundaries. Therefore, it can be inferred that the role of inhibiting WC grain growth in WC-Co-Re materials is analogous to the inhibitory action of traditional grain growth inhibitors at WC-Co interfaces.

Sub-micron WC-Co-Re hard metal alloys are commonly used in high-temperature and high-pressure components, where the role of rhenium in inhibiting grain growth is crucial. This is significant as it eliminates the need to add conventional grain growth inhibitors to sub-micron WC-Co-Re hard metal alloys. Figures 4 and 5 depict the microstructure of sub-micron WC-Co-Re hard metal alloy without grain growth inhibitors, exhibiting fine and uniform particles without exceptionally large WC grains. The sintering temperature for this hard metal alloy is 1520°C, notably higher than the typical sintering temperature for sub-micron WC-Co alloys.

What is Hyper Carbide? 4
Figure 4 shows the microstructures of medium-grained WC-Co-Re hard metal alloy with 9 wt% Re + 6 wt% Co (left) and sub-micron WC-Co-Re hard metal alloy with 5.5 wt% Re + 3.7 wt% Co
What is Hyper Carbide? 5
Figure 5 displays the microstructure of sub-micron WC-Co-Re hard metal alloy with 5.5 wt% Re + 3.7 wt% Co.

 

Performance of hyper?carbide?WC-Co-Re

Research has revealed that WC-Co-Re hard metal alloys exhibit significantly improved physical and mechanical properties at high temperatures. The curves in Figure 6 indicate that the hardness of WC-Co-Re material remains more stable as the temperature decreases (20-800°C) compared to traditional WC-Co hard metal alloys. Operating temperatures of 300°C and 500°C are common for HPHT (High Pressure High Temperature) components. In comparison to conventional WC-Co materials, the hardness of WC-Co-Re hard metal alloy reduces by nearly two times at these two temperatures. Increased thermal hardness is crucial for manufacturing tools used for nickel-based high-temperature alloys or other heat-generating materials. These tools require cutting edges with high thermal stability and mechanical robustness.

What is Hyper Carbide? 6

Fig. 6. The hardness variation with temperature when comparing sub-micron WC-Co-Re cemented carbide containing 5. 5 wt % Co + 3. 7 wt % Re with traditional sub-micron cemented carbide containing 6 wt % Co

Figure 6 illustrates the variation of hardness with temperature for sub-micron WC-Co-Re hard metal alloy containing 5.5 wt% Co + 3.7 wt% Re, compared to the traditional sub-micron hard metal alloy with 6 wt% Co.

Based on the previously mentioned higher thermal hardness of WC-Co-Re hard metal alloy, it can be inferred that Re-containing hard metal alloys exhibit improved high-temperature creep resistance. In fact, as depicted in Figure 7, the WC-Co-Re hard metal alloy achieves the same compressive stress rate value under a significantly higher load than conventional WC-Co material. This suggests that the Co-Re binder demonstrates significantly enhanced high-temperature creep performance.

?? ?? ??? ?????? 7

Figure 7 illustrates the relationship between strain rate and compressive stress for WC-Co-Re and WC-Co hard metal alloys at 800°C.

???? ???????

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

少妇高潮了好爽在线观看男-麻豆国产传媒国产免费-欧美三级黄片在线播放-亚洲一区域二区域三区域四| 欧美日本高清乱码一区二区-国产亚洲精品成人看片-性生交大片免费看淑女出一招-亚洲综合中文字幕综合| 亚洲免费国产午夜视频-女同亚洲一区二区三区精品久久-欧美一级黄片高清免费-久久国产亚洲中文字幕| 一区二区在线观看黑人-久久久精品人妻一区二区三区综合-成人内射国产免费观看-四虎在线免费视频观看| 日韩人妻少妇手机看片-高清av有码中文字幕在线-禁止18勿入国产精品视频-中文字幕精品乱码亚洲一区| 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| 与老熟女激情av国产-91午夜福利在线观看视频-国产特级黄片免费观看-精品亚洲熟妇中文字幕| 黄色大片一级在线观看-蜜臀91精品国产高清在线-色综合久久鬼色综合久久-九九热精品视频在线免费看| 加勒比日本东京热风间由美-少妇高潮喷水高清av-国产免费观看久久黄av-永久成人免费在线视频| 极品美女色诱视频在线-欧美久久天天综合香蕉伊-久久精品人人澡夜夜澡-亚洲一区二区三区四区伦理| 黄色av日韩在线观看-偷拍自拍在线免费视频-色偷偷偷亚洲综合网另类-国产成人免费综合视频| 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| av午夜福利一片免费看久久-中文字幕日韩无敌亚洲精品-四虎高清成人在线观看-亚洲开心婷婷中文字幕| 国产精品自在线拍国产-久久精品韩国日韩精品-久久夜色国产精品亚洲av蜜桃-日韩精品一区二区三区四区免费| 美女被狂躁到高潮视频-国产熟女精品自拍视频-亚洲中文字幕在线精品一区-成人在线中文字幕电影| 亚洲一级特黄大片做受-国产91喷潮在线观看-日本不卡一区二区三区四区-在线观看高清视频一区二区三区| 中文中国女厕偷拍视频-男人天堂亚洲天堂av-精品国产一区二区三区香蕉蜜臂-国产亚洲日本精品成人专区| 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| 国产美女高潮久久精品-国产成人精品十八禁在线播放-成在线人视频免费视频-97超级视频在线观看| 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| 91久久国产综合蜜桃-深夜激情在线免费观看-免费观看国产在线视频不卡-天堂在线精品免费亚洲| 亚洲黄色一级二级三级在线观看-成年人手机视频在线观看-都市激情校园春色亚洲一区-九九久久免费视频一区二区三区| 免费在线观看午夜视频-成人性生交大片免费网站-国产一区二区精品久久胖女人-亚州综合国产精品天码av| 亚洲天堂久久中文字幕-高清国产一级片免费看-伊人狼人综合日日夜夜-手机看片高清国产日韩| 精品人妻一区二区三区久久91-久久精品亚洲国产av搬运工-日本熟女人妻一区二区三区-亚洲国产精品高清线久久| 久热这里只有精品视频66-国产资源精品中文字幕-亚洲免费视频一区二区三区四区-亚洲国产特一特二区精品分布| 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| 久久国产精品国产婷婷-四虎在线观看最新入口-天堂中文资源在线天堂-久久亚洲av日韩av天堂| 99久久精品视频在线-日韩精品免费完整版视频-精品久久久久久久亚洲婷婷综合-久久精品国产亚州av| 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| 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| 麻豆免费播放在线观看-在线观看成人午夜福利-亚洲华人在线免费视频-国产极品超大美女白嫩在线| 激情性插进去视频伦理-成人黄网站免费永久在线观看-青草视频在线观看这里只有精品-国产精品高潮久久呻吟av| 日韩欧美熟妇在线观看-在线视频一区二区三区在线观看-欧美黄色在线观看网站-国产精品综合亚洲91| 黄片毛片av免费观看-四虎国产精品久久免费地址-精品午夜一区二区三区国产av-亚洲成a人一区二区三区久久| 97人妻一区二区精品视频-99久热精品视频在线观看-韩国av福利在线观看-亚洲熟妇自偷自拍另类| 国产在线观看不卡一区二区-国产女人在线观看视频射精91-91尤物在线视频观看-欧美无遮挡国产欧美另类| 绯色高清粉嫩国产精品-色偷偷亚洲偷自拍视频-国产性感午夜天堂av-**精品中文字幕一区二区三区| 中文字幕av东京热久久-国产精品日韩精品最新-亚洲激情av免费观看久久-亚洲第一精品国产网站| 少妇被搞高潮在线免费观看-亚洲av成人精品小宵虎南-日韩性生活免费看视频-日韩黄色大片在线播放| 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|