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

Cemented carbide is a significant type of cemented carbide, widely used in manufacturing cutting tools, wear-resistant parts, high-temperature alloy components, and other important applications. Factors such as extrusion forming processes, forming agents, sintering atmosphere, and magnetic properties all impact the performance and quality of WC+Co alloy. Studying the effects and mechanisms of these factors is crucial for optimizing the manufacturing process and enhancing the performance of cemented carbide. This article will explore the influence of sintering atmosphere and particle size on the quality of the extrusion forming process, providing theoretical and practical guidance for further understanding the manufacturing process and performance optimization of cemented carbide.

cemented carbide

Experimental Materials and Methods

Tungsten carbide (WC) powders were used as the raw material. Four different particle sizes of WC powder were selected: 4.0 μm, 2.2 μm, 1.1 μm, and 0.5 μm, which were labeled as WC1, WC2, WC3, and WC4, respectively. Metal cobalt (Co) powder was used as the binder phase, and paraffin was used as the forming agent. Four different WC-Co mixtures with varying particle sizes were prepared.

The mixtures were processed into green bodies with specific shapes and densities using extrusion forming equipment. The pressed green bodies were then placed in a sintering furnace and subjected to high-temperature sintering at 1400°C for 30 minutes, followed by cooling, to form cemented carbide bars.

The magnetic properties of the cemented carbide bars were tested using a magnetic performance tester, measuring parameters such as coercive force (Hc) and saturation magnetization (Bs), and the results were analyzed.

 

Experimental Results and Analysis

Table 1 presents the effects of different WC particle sizes on the coercive force (Hc) and saturation magnetization (Bs) of cemented carbide bars.
Table 1 presents the effects of different WC particle sizes on the coercive force (Hc) and saturation magnetization (Bs) of cemented carbide bars.

Effect of Particle Size on Coercive Force

As shown in Table 1, the coercive force of cemented carbide bars increases with decreasing WC particle size, while the saturation magnetization also increases. This indicates that cemented carbide bars made with fine and ultrafine WC particles exhibit poorer magnetic properties. Among the samples, the ultrafine WC (WC4) shows the highest coercive force of 4450 A/m, followed by medium-sized WC (WC3) with a coercive force of 3300 A/m. Coarse WC (WC2) and very coarse WC (WC1) have lower coercive forces, at 2350 A/m and 1200 A/m, respectively. The increase in coercive force with decreasing WC particle size is primarily due to the increase in internal defects and dislocations within smaller particles. These defects and dislocations create resistance to domain wall movement, making the magnetization process more difficult and requiring a larger external magnetic field to achieve saturation, thereby increasing the coercive force.

 

Effect of Particle Size on Material Magnetic Performance Stability

For fine and ultrafine WC particles, the larger grain boundary area facilitates grain boundary diffusion and reactions, which reduces the material’s magnetic properties. As the WC particle size decreases, the magnetic saturation of cemented carbide bars gradually increases. Specifically: coarse WC (WC1) exhibits the lowest magnetic saturation at only 1.25 T; medium-sized WC (WC2) has a magnetic saturation of 1.15 T; fine WC (WC3) and ultrafine WC (WC4) show higher magnetic saturations at 1.05 T and 0.93 T, respectively. This is likely because fine and ultrafine WC particles have higher chemical reactivity, promoting the diffusion and bonding of the Co binder, thereby improving the stability of the material’s magnetic performance.

Magnetic saturation is an indicator of the remaining proportion of magnetizable material and is closely related to magnetic properties such as coercive force and remanence. The impact of WC particle size on magnetic saturation can be attributed to the degree of solubility of the binder phase in the cemented carbide bars. Coarse and medium-sized WC particles, having larger specific surface areas, have more contact with the Co binder, which enhances the solubility of Co in the cemented carbide bars. This effectively improves the material’s magnetic performance stability, resulting in higher coercive force and better magnetic stability. Conversely, fine and ultrafine WC particles, with smaller specific surface areas, reduce the effectiveness of the Co binder, potentially affecting the material’s hardness and magnetic properties. Thus, selecting the appropriate particle size during the preparation of cemented carbide bars is crucial for achieving the best overall performance based on specific application needs.

 

Impact of Gamma Phase on Material Performance

For cemented carbide materials, the proportion of the gamma phase directly affects the material’s hardness and magnetic properties. Variations in carbon and oxygen content also influence the gamma phase proportion and must be considered during material preparation. Generally, higher carbon content leads to an increase in the gamma phase proportion, thereby enhancing the material’s hardness and magnetic performance. Therefore, different WC particle sizes may have varying carbon and oxygen contents, which also affects the gamma phase proportion and the overall performance of the material.

 

Discussion on Sintering Atmosphere

In the sintering process of cemented carbides, the choice and control of the atmosphere have a decisive impact on the final microstructure and magnetic properties of the material. The atmosphere not only affects the chemical reactions during sintering but also directly relates to the microstructure and final performance of the cemented carbide. The types of sintering atmospheres are as follows:

Oxidizing Atmosphere:? air.

Reducing Atmosphere: Contains components such as H? or CO: hydrogen atmosphere for cemented carbide sintering.

Inert or Neutral Atmosphere: Argon, helium, vacuum.

Carburizing Atmosphere: Contains high components that cause carburization of the sintered body, such as CO, methane, and hydrocarbon gases.

Nitrogen-Based Atmosphere: High nitrogen content sintering atmosphere: 10% H? in N?.

We mainly selected vacuum, argon, and hydrogen atmospheres for discussion. The variations in coercive force and magnetic saturation of cemented carbides sintered in argon, vacuum, and hydrogen atmospheres differ depending on the atmosphere, as shown in Table 2.

Table 2: Effects of Different Sintering Atmospheres on Magnetic Properties of Cemented Carbide Bars
Table 2: Effects of Different Sintering Atmospheres on Magnetic Properties of Cemented Carbide Bars

From Table 2, it can be observed that under vacuum and argon atmospheres, the coercive force (Hc) of cemented carbide bar is higher compared to that in a hydrogen atmosphere. Conversely, the saturation magnetization (Bs) is lowest in a hydrogen atmosphere compared to vacuum and argon atmospheres.

Under vacuum and argon atmospheres, the effective control of oxygen partial pressure and the exclusion of volatile elements result in fewer pores and inclusions, clearer grain boundaries, and better grain growth, thereby enhancing the magnetic properties of the material. In contrast, in a hydrogen atmosphere, the reducing nature of hydrogen may reduce some elements in the cemented carbide, leading to the presence of uncertain phase components, poor grain growth, and subsequently affecting the material’s magnetic properties.

For coercive force (Hc), it is largely dependent on the material’s microstructure and magnetic anisotropy. Under vacuum and argon atmospheres, effective control of oxygen partial pressure and exclusion of volatile elements reduce magnetic anisotropy in the cemented carbide, which improves coercive force. However, in a hydrogen atmosphere, hydrogen’s reducing effect can lead to the reduction of some elements in the cemented carbide, resulting in grain defects and inclusions that directly affect magnetic anisotropy and reduce coercive force.

Regarding saturation magnetization (Bs), the relative magnetic saturation value in cemented carbide is influenced by factors affecting carbon content in the alloy. In vacuum or argon atmospheres, effective control of oxygen content reduces carbon loss. Although the pressed green body contains oxygen, which can be reduced by free carbon and carbon in WC (MeO + C = Me + CO), the oxygen content in these atmospheres is relatively low. In a hydrogen atmosphere, decarburization reactions (WC + 2H? → CH? + C) begin at around 100°C. Throughout the preparation process, the material is exposed to a decarburizing atmosphere, leading to a lower relative magnetic saturation value.

How Do Sintering Atmosphere and Particle Size Affect the Extrusion Forming Quality of Cemented Carbide Bars? 2

Conclusion

This experiment investigated the effects of different particle sizes and sintering atmospheres on the magnetic properties of cemented carbide bars. By comparing the magnetic properties of cemented carbide under different WC particle sizes (coarse, medium, fine, and ultrafine) and sintering atmospheres (vacuum, argon, and hydrogen), it was found that both particle size and atmosphere have a significant impact on the magnetic performance of the material.

From the perspective of particle size, as the WC particle size decreases, the coercive force of the cemented carbide bars increases, while magnetic saturation also increases. This indicates that particle size has a substantial effect on the magnetic properties of cemented carbide. Fine and ultrafine WC particles, due to their higher chemical reactivity and good sintering performance, can promote the diffusion and bonding of the Co binder, thus enhancing the stability of the material’s magnetic performance. However, smaller particle sizes may lead to increased porosity and inclusions, affecting the material’s hardness and magnetic performance. Therefore, the choice of particle size should be tailored to the specific application needs when preparing cemented carbide.

Regarding the atmosphere, cemented carbide bars sintered under vacuum and argon atmospheres exhibited higher coercive force and better magnetic stability. This is because these atmospheres effectively control the oxygen content and volatile elements, reducing porosity and inclusions, and promoting clearer grain boundaries and grain growth. In contrast, cemented carbide bars sintered in a hydrogen atmosphere showed significantly lower magnetic saturation. This is likely due to the decarburizing effect of hydrogen. Therefore, selecting the appropriate sintering atmosphere is crucial for obtaining cemented carbide bars with excellent magnetic properties. Further improvements in cemented carbide performance can be achieved by optimizing sintering process parameters and adding suppressants.

4 September, 2024

Meilleur matériaux TOP

Leave a Reply

Your email address will not be published. Required fields are marked *

日韩黄色精品中文视频-久久精品国产亚洲懂色-欧洲美女日韩精品视频-国产一区二区三区精品愉拍| 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| 久久偷拍视频免费观看-国产精品国产精品偷麻豆-国产精品一品二区三区最新-精品国产亚洲一区二区三区| 91久久国产亚洲精品-亚洲第一区二区三区女厕偷拍-国产在线精品中文字幕-久久老熟妇精品免费观看| 成人在线自拍偷拍视频-国产剧情av中文字幕-久久国产劲爆内射日本-劲爆欧美中文字幕精品视频| 粉嫩精品一区二区三区在线观-中文国产精品久久久私一本-熟女少妇日韩亚洲av-精品国产一区二区三广区精东| 精品女同一区二区免费播放-四虎成人精品国产永久免费-日韩在线播放av不卡一区二区-久热久草香蕉在线视频| 亚洲另类午夜中文字幕-日本av手机在线观看-性生交大片免费看看过的-天堂av免费在线观看| 日本一区二区三区高清视频-九九九热在线观看视频-亚洲综合自拍偷拍人妻丝袜-亚洲精品国产二区三区在线| 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| 亚洲综合精品一区二区在线-国产亚洲精品视频在线播放-国产精品经典三级免费观看-五月婷婷六月丁香视频| 开心五月这里只有精品-欧美日韩国产亚洲中文高-玩弄漂亮邻居少妇高潮-av资源中文在线天堂| 亚洲一区二区三区日本久久-精品国产成人一区二区不卡在线-91精品国产色综合久久成人-一区二区三区成人在线观看| 日韩欧美国产另类在线观看-精品人妻码一区二区三区剧情-国产91精品免费久久看-水蜜桃视频一区二区在线观看| 开心五月激情综合久久爱-国产精品深夜在线观看-91亚洲国产成人精品一区.-精品亚洲国产成人性色av| 日韩中文精品在线字幕-久久精品国产护士小美女-91黑丝女神在线播放-91人妻蝌蚪九色水蜜桃| 日韩性插视频在线观看-岛国在线播放免费av-亚洲午夜精品一区二区蜜桃-国产精品一区二区久久蜜桃麻豆| 国产精品乱码一区二区三区视频-国产自拍精品在线一区二区-五月综合丁香婷婷久久-在线国产精品一区二区三区| 绯色av一区二区三区亚洲人妻-99热这里只有精品小说-在线播放国产日韩不卡免费视频-国产高清在线不卡一区二区视频| 高清国产av一二三四-少妇激情高潮视频网站-被公么玩弄邻居人妻中文字幕-亚洲免费成人av在线| 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| 亚洲免费中文字幕一区二区三区-超碰在线免费在线免费-国产熟女茂密的黑森林-色姑娘久久综合网天天| 国产精品一区二区小视频-欧美亚洲国产精品激情在线-日韩免费视频一区二区三区视频-精品亚洲国产成av人片传媒| 欧美极品欧美精品欧美激情-人妻av中文字幕高清版-国产传媒麻豆天美在线观看-免费91麻豆精品国产自产自线| 少妇裸淫交视频免费看-欧美日韩中文字幕第一页-91精品看黄网站在线观看-国产精品一区二区三区色噜噜| 欧美日韩在线视频一区不卡-高清自拍最新国产精品-亚洲自偷精品视频自拍-日韩在线不卡中文字幕| 毛片内射免费夫妻内射-蜜臀av人妻中文字幕-插胃管的注意事项及护理要点-青青草视频精品在线播放| 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| 激情综合网激情国产av-2021日韩午夜影院-精品一区二区三区少妇蜜臀-人妻交换av一区二区| 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| 国产精品日本一区二区不卡视频-尤物在线视频免费观看-中文字幕精品高清中国-最新精品国产自偷在自线| 日本一区二区三区四区黄色-91在线国产经典观看精品-亚洲一区二区三区免费不卡-av免费在线观看蜜臀| 91精品天堂福利在线观看漫画-亚洲国产精品一区亚洲国产-亚洲国产成人最新精品资源-亚洲国产精品成人综合久| 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| 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| 日韩毛片精品一区二区-无套内谢少妇高潮毛片些-国产精品午夜激情视频-亚洲天码一区二区三区| 熟女国产精品一区二区三-一区二区三区av这些免费观看-精品国产一区二区二三区在线观看-国产精品一品二区三区日韩| 熟妇久久人妻中文字幕-国产精品久久久久精品三级人-亚洲蜜臀人妻中文字幕-国产一区二区内部视频| 国产色悠悠综合在线观看-亚洲av综合av一区-久久久久国产精品三级网-欧美日韩精品一区二区不卡| 亚洲精品人妻中文在线-国产成人精品视频三级-麻豆视频黄片在线免费观看-亚洲性色精品一区二区在线| 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|