跑狗图最新版下载,2024年新澳门今,二四六天天彩944CC正版,百万文字网址,2025年澳门生肖歇后语

Home >> News >>Industry News

High Carbon Martensitic Steel Powders

01 Jul,2025

4.png

The overspray high carbon steel powders are unique in the way that they are a byproduct from spraying of steel ingots, i.e., they are rapidly solidified and cooled. Hence, the microstructure is not necessarily conventional, which emphasizes the importance of in-situ tracking of their thermal behavior. XRD analysis of the as-delivered powders are given in Figure 1. The materials 440C and D2 are fully austenitic which can be attributed to fast cooling (inherent to the process) combined with a high interstitial content. T15 is also predominantly austenitic with a minute fraction of ferrite/martensite; minor peaks of W2C type carbides can also be observed. H13 is predominantly ferritic/martensitic with a minor fraction of (retained) austenite.

DTA during isochronal heating can record phase transformations or reactions associated with release or uptake of heat (calorimetry). Upon heating, the powders 440C, D2, and T15 undergo an exothermic reaction in the temperature range of 620-750°C, which can be attributed to (partial) decomposition of austenite, presumably via eutectoid decomposition, i.e., alloy pearlite. This transformation is most pronounced for 440C and least pronounced for T15, which correlates with the amount of retained austenite in the initial condition. A second peak, occurring between 800-900°C for all materials, is attributed to the formation of austenite (Ac1). Examination of the DTA signal (Figure 2) indicates that the austenitization start temperature for SS440C is approximately 820°C, with complete transformation at 850°C. For D2, austenitization begins around 820°C and completes at approximately 860°C. In the case of H13, austenitization starts at around 850°C and concludes at about 900°C. For T15, austenitization commences at around 810°C and is complete at approximately 875°C.

The calorimetry signals from cooling at a rate of 10 K/min are given in (Figure 2). The exothermic peak for the carbon rich SS440C, D2 and T15 indicates the eutectoid transformation of austenite into alloy pearlite occurring during cooling around 750–650°C, analogous to the transformation taking place during heating. The second peak in the DTA signal (for all alloys) during cooling indicates formation of bainite at around 375°C followed by martensite formation. This behavior is consistent with CCT diagrams of the conventional wrought materials (not shown herein). HTSN of AISI 420 To assess the role of nitrogen in martensitic stainless steels, high temperature solution nitriding can be used, which will result in a graded structure provided the sample is not through-nitrided. Herein, the widely used AISI 420 is selected to illustrate the impact of nitrogen on the microstructure. Please note that the solution nitriding temperature of 1,100°C coincides with the conventional temperature for austenitization of this material. The applied cooling rate from the nitriding temperature is relatively slow, but here it is merely to demonstrate the effect of nitrogen rather than to present an optimized process. Figure 3 depicts the results obtained for in-situ gaseous nitriding through TG analysis. This graph represents the temperature and mass uptake of nitrogen in the sample. As can be observed in the figure, the total sample uptake prior to cooling comes to approximately 0.09 wt% nitrogen. The flux of nitrogen follows directly from the in-situ recorded uptake of nitrogen during nitriding, when considering the specimen’s surface area. The overall nitriding kinetics seems to follow a parabolic growth law indicating diffusion-controlled growth rather than growth governed by surface kinetics. It should be noted that the weight percentage of nitrogen is measured in the entire sample, with a diffusion gradient of interstitial nitrogen moving from high concentration at the edge to a lower concentration at the center according to Fick’s second law of diffusion (Ref. 20). Hence, the surface region of the sample has a significantly higher nitrogen concentration than the overall 0.09 wt%, whereas the core has essentially no nitrogen.

Contact Us

Address:Room 1306, Building 7, Xingguang International Financial Center, Development Zone, Liaocheng City
Tel:0635-8263099
        0635-8262099
Email:admin@aglzc.cn

Online Inquiry
Company Name*
Name*
Phone*
E-mail*
Message
Copyright ? 2018 - Shandong Ao Gang Lian Bearing Co., Ltd. Technical Support - Bearing.cn ICP:鲁ICP备19054627号-1
主站蜘蛛池模板: 管家婆2024正版资料大全| 香港开奖结果+开奖记录表香80| 香港开奖结果+开奖记录表香80| 澳门六彩资料查询| 红姐论坛红姐资料大全| 1122影视影视在线| 2022澳门码开奖记录| 2021澳门资料大全 正版| 谍战剧暗夜与黎明免费观看| 手机版澳门一点红| 丈夫得了抑郁症| 澳门码开奖近50期记录| 陕西商洛一大桥塌方 | 春节电影票房排行榜最新| 老澳门资料大全正版资料2023年免费 | 濠江论坛【绝杀十码】期期免费公开!| 2024新澳管家婆免费,| 626969澳门正版精选免费资料大全| 澳门开奖结果+开奖记录2021www| 香港本港台开奖直播现场| 分手再说我爱你| 最好免费观看高清播放 | 澳彩全年历史资料库| 猜猜我是谁电视剧星辰影院免费观看| 推荐一些免费追剧的软件| 新澳2024开奖结果开奖记录| 双色球看图解码大全 | 陈老师一码三中三| 新澳门免费资料大全彩民之家| 香港澳门开奖查询结果| 1688成人用品批发哪家好一点| 国内到白俄罗斯运输| 房子房子我爱你| 致命黑兰免费高清完整版在线观看中| 澳门酷知网一肖一码| 澳门正版资料大全十今年免费亮点| 波色表2024年图片| 看到澳门免费资料| 澳门六开彩49图库| 翻滚吧阿信百度网盘资源| 2023年澳门正版资料大全免费下载|