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

Coarse Tungsten Carbide (WC) is a fundamental raw material for producing coarse WC-Co alloys. The classic method for producing this tungsten carbide involves high-temperature reduction of tungsten oxide and high-temperature carburization. The Fischer particle size of tungsten carbide ranges from about 10 μm to over 20 μm. The coarser the particles, the higher the manufacturing cost. Choosing high-quality and cost-effective raw powder is an important consideration for many alloy and tool manufacturers. This study selects tungsten carbide powders with significantly different particle sizes and investigates the relationship between the characterization parameters of these powders and the grain size of the alloy. The aim is to provide insights that could help reduce energy and material consumption in the manufacture of coarse-grained alloys.

 

Experimental Methods

Raw Materials

The experiment uses coarse and extra-coarse WC powders from well-known suppliers, with their main characteristics shown in Table 1. Additionally, 2.0 μm cobalt powder from the same supplier was also used.

particle size

Experimental Methods

For the preparation of WC-10%Co (where all content is given in weight percentage), weigh 900 g of WC, 100 g of Co, and 20 g of PEG. Measure 235 mL of alcohol and 2000 g of grinding balls. Add these into a 2.4 L ball mill. The mill is operated at a speed of 63 r/min for 14.5 hours. After milling, the mixture is dried, sieved, and then pressed into samples weighing 10 g each. The samples are sintered in a continuous vacuum sintering furnace at 1450°C.

Particle Size Measurement

For coarse tungsten carbide, measure the Fischer particle size in both the as-supplied and milled states. The samples are resin-mounted and analyzed using a metallurgical microscope to determine the grain size and particle size distribution of the powder. The alloy grain size and particle size distribution are measured using classic metallographic methods, and the coercive force of the samples is also assessed.

 

 

Results and Analysis

Fischer Particle Size (Fsss) and Alloy Grain Size

As-Supplied Particle Size and Alloy Grain Size

The metallographic images of alloys made from WC powders #1 and #2 are shown in Figures 1 and 2, respectively. Comparing Figures 1 and 2, it can be observed that the WC grain size in Figure 2 appears to be slightly coarser than in Figure 1. This indicates that coarser as-supplied Fsss particle sizes of WC lead to coarser grain sizes in the WC-Co alloys. Metallographic analysis shows that the average WC grain sizes for alloys made from powders #1 and #2 are 4.8 μm and 5.8 μm, respectively. Thus, the average grain size of WC in sample #2 is 1.2 times that in sample #1. The as-supplied Fsss particle size of #2 WC powder is 2.5 times that of #1 WC powder. Clearly, there is no direct proportional relationship between the as-supplied Fsss particle size of WC powder and the alloy grain size. Additionally, the Fsss particle size values for #1 WC powder are 2.5 times the alloy grain size, and for #2 WC powder, it is 5.3 times the alloy grain size. This indicates that the as-supplied WC powders for both samples are primarily aggregated polycrystalline WC particles, with more severe agglomeration for coarser WC powders.

?The 3 Impact of Coarse Tungsten Carbide Particle Size on WC-Co Alloy Grain Size 2

?The 3 Impact of Coarse Tungsten Carbide Particle Size on WC-Co Alloy Grain Size 3

Milled Tama?o de partícula and Alloy Grain Size

Comparing Table 1 with the metallographic grain sizes in Figures 1 and 2, it can be seen that the Fsss particle sizes of milled WC powders #1 and #2 are relatively close to the alloy grain sizes. Moreover, the measured alloy grain sizes are higher than the milled Fsss particle size values. This discrepancy is due to differences in measurement principles as well as grain growth during the sintering process. However, it clearly indicates that the Fsss particle sizes of coarse WC powders in the milled state are very close to the alloy grain sizes. The ratios of average grain sizes to milled particle sizes for alloys #1 and #2 are 1.15 and 1.31, respectively.

Raw Material WC Grain Size and Alloy Grain Size

Results from Direct Metallographic Measurement

Metallographic images of #1 and #2 WC powders after mounting and etching are shown in Figures 3 and 4. The grain sizes measured using metallographic methods are 5.31 μm and 8.5 μm, respectively. The grain size distributions of the powders and alloys are shown in Figures 5 and 6.

?The 3 Impact of Coarse Tungsten Carbide Particle Size on WC-Co Alloy Grain Size 4 ?The 3 Impact of Coarse Tungsten Carbide Particle Size on WC-Co Alloy Grain Size 5

Figures 3 and 4 clearly indicate that the grain size of #2 WC is significantly larger than that of #1 WC. This suggests that WC with a coarser as-supplied Fischer particle size also has coarser grains. Additionally, it is evident that #1 WC exhibits better dispersion, with less pronounced sintering between particles compared to #2 WC. The severe sintering in #2 WC particles is a major reason why the metallographic grain size is much larger than the alloy grain size, and also explains why the grains in #2 WC are much larger than those in #1 WC.

From the grain size distribution of the raw powders and alloys in Figures 5 and 6, it can be seen that sample #1 contains coarse WC grains of 15–20 μm in the raw material, which are not present in the alloy. In contrast, sample #2 has a substantial amount of WC grains in the 15–35 μm range, though only a small amount of 15–20 μm grains are found in the alloy. This suggests that the severe sintering of the mounted WC, although difficult to distinguish by metallographic methods after etching, was fragmented during the intense grinding process.

Moreover, comparing the WC and alloy grain size distributions in Figures 5 and 6 shows that the grain size distribution of WC in sample #1 is more consistent with the alloy grain distribution than in sample #2. This consistency is a significant reason why many researchers believe that WC similar to sample #1 is more conducive to producing coarse alloys with a more uniform grain size.

WC Particle Size and Alloy Coercive Force

The coercive forces of the alloys made from #1 and #2 powders are 4.6 kA/m and 4.3 kA/m, respectively. The relationship between the WC-Co alloy grain size and the alloy’s coercive force can be expressed using the empirical formula (1).

?The 3 Impact of Coarse Tungsten Carbide Particle Size on WC-Co Alloy Grain Size 6

In the formula:

  • Hc= coercive force of the alloy (kA/m)
  • Com= cobalt content in the alloy (%)
  • Dwc= average WC grain size in the alloy (μm)

 

According to the calculations, the average grain sizes of alloys #1 and #2 are 7.4 μm and 8.8 μm, respectively. Clearly, the calculated grain sizes are significantly larger than the measured grain sizes, but the difference between the average grain sizes of alloys #2 and #1 is close to the difference observed using metallographic methods. The results obtained from formula (1) do not show a clear quantitative relationship with the Fsss particle sizes of the raw WC in both states, but the size of the raw material particles can still be used to predict the alloy grain size and coercive force.

Conclusions

Based on the above, the following conclusions can be drawn:

1.Coarse WC powders with larger as-supplied Fsss particle sizes tend to have higher milled Fsss particle sizes and larger grain sizes, leading to alloys with larger grain sizes.

2.The Fsss particle size in the milled state of coarse WC can be used to evaluate the grain size of coarse WC and predict the grain size of WC-Co alloys. Under the test conditions, the alloy grain size is 1.1 to 1.3 times the Fsss particle size of the milled WC.

3.Coarse WC powders with as-supplied Fsss particle sizes around 10 μm have a better consistency in grain size distribution with the alloy WC grain size distribution compared to extremely coarse WC powders with Fsss particle sizes above 25 μm.

Deja una respuesta

Tu dirección de correo electrónico no será publicada. Los campos obligatorios están marcados con *

日本免费久久精品视频-毛很浓密很多黑毛熟女-97这里只有精品在线-亚洲乱码国产乱码精品精| 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| 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| 天天射天天插天天色综合-亚洲一二三四区中文字幕-97视频精品在线观看-久久婷婷激情五月综合色| 国产精品欧美日韩视频二区-少妇人妻系列中文在线-精品人妻一区二区三区四区不卡-少妇被无套内谢免费视频| 国产精品中文字幕在线一区-国产成人美女精品自在拍av-密桃av一区二区三区四区-女优免费中文字幕在线| 久久这里就有国产熟女精品-国产免费一级特黄录像-伊人久久热这里只有精品-国产三级一区二区三区在线观看| 乱中年女人伦中文字幕久久-国产成人高清免费视频网站-中文字幕亚洲人妻在线视频-中文字幕剧情av在线| 网站视频精品一区二区在线观看-中文有码中文字幕免费视频-99热这里有精品久久-日韩av在线高清免费观看| 亚洲黄色精品在线播放-国产精品对白在线播放-日韩熟女熟妇久久精品综合-人妻人妻少妇在线系列| 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| 九九热在线视频中文字幕-午夜激情在线观看不卡-国产精彩激情视频在线观看-人妻丰满熟妇九九久久| 精品人妻中文字幕有码在线-亚洲欧美一区二区成人精品久久久-亚洲第一人伊狼人久久-亚洲国产欧美精品在线观看| 免费蜜臀av一区二区三区人妻-亚洲熟女少妇精品久久-国产精品毛片免费观看-亚洲精品国产二区中文字幕| 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| 台湾香港a毛片免费观看-国产美女口爆吞精的后果-亚洲天堂成人免费在线-国模在线视频一区二区三区| 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| 亚洲天堂成人免费视频-青草精品在线观看视频-国产三级在线观看国产精品-黄色日本黄色欧美视频| 四虎在线观看视频官网-国产免费一区二区不卡-色老99久久九九爱精品-巨乳人妻在线中文字幕| 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| 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| 麻豆视频传媒在线免费看-亚洲性码不卡视频在线-岛国av色片免费在线观看-久久久国产精品视频大全| 国产精品综合亚洲综合-精品人妻码一区二区三区红楼视频-亚洲精品一品区二品区三区-日韩欧美色精品噜噜噜| 无套进入极品美女少妇-新久久久高清黄色国产-国产肥臀在线精品一区二区-深夜午夜福利在线观看| 欧美日韩在线有码中文-亚洲美女一区二区暴力深喉吞精-亚洲av日韩一区二区三区-国产激情视频在线观看播放| 日韩亚洲一区二区在线观看-欧美色一区二区三区在线-日韩av黄片在线观看-深夜成人福利在线观看| 国内自拍偷拍视频91-日本成人熟女一区二区三区-国产l精品国产亚洲区久久-久久精品成人中文字幕| 91精品在线播放黑丝-在线观看精品国产自拍-av免费在线播放日韩-日韩av在线精品一区二区三区| 日韩av不卡一区二区-国产白丝精品91久久-午夜福利理论片在线播放-国产粉饼哪个牌子好用| 精品人妻中文字幕有码在线-亚洲欧美一区二区成人精品久久久-亚洲第一人伊狼人久久-亚洲国产欧美精品在线观看| 久久一日本道色综合久久大香-欧美午夜福利视频网站-亚洲av午夜精品一区二区-日韩精品区一区二区三区激情| 成人精品视频一区二区三区不卡-中文字幕一区二区三区在线乱码-国产无av码在线观看麻豆-成年人三级自拍片自拍| 欧美日韩你懂的在线观看-国产欧美日韩亚洲一区二区-国产无遮挡裸体免费久久-亚洲国内精品久久久久久| 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| 华人精品在线免费观看-国产熟女精品一区二区三区-国产成人午夜视频网址-女女同性女同一区二区三区九色| 我要去外滩路线怎么走-97在线看片免费视频-秋霞电影国产精品麻豆天美-亚洲天堂资源在线免费观看| 欧洲人妻中文字幕在线-白白色永久免费视频播放-精品日韩免费在线视频-风间由美性色一区二区三区| 亚洲午夜福利在线看片-草草影院在线观看国产-中文字幕在线国产有码-精品99成人午夜在线| 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| 我要去外滩路线怎么走-97在线看片免费视频-秋霞电影国产精品麻豆天美-亚洲天堂资源在线免费观看| 中文字幕国产剧情av-久久精品日韩欧美精品-玖玖热视频这里只有精品-国产黄色三级视频网站|