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

Research status

For WC-Co carbide, the rapidly advancing Powder Bed Fusion (PBF) additive manufacturing (AM) technology has shown unique advantages in producing complex structures of metal parts made of carbide. However, when manufacturing WC-Co carbide with high melting points and high content of hard phases, issues such as difficult-to-eliminate cracks, pores, abnormal grain growth, oxidation decarburization, and brittleness often arise, leading to poor mechanical properties of the produced carbide. In recent years, there have been many reports on the use of Green Additive Manufacturing-Debinding and Sintering (GAM-DS) technology to fabricate WC-Co carbide, which have shown significant advantages in addressing issues such as cracking, abnormal grain growth, oxidation decarburization, and brittleness in PBF carbide. However, the process of preparing green bodies is prone to defects such as pores, interlayer cracks, uneven carbon distribution, and weak local bonding, resulting in problems such as porosity, uneven sintering shrinkage, and uneven microstructure in the sintered bodies. Compared with powder metallurgy, the prepared carbide have relatively low relative densities, and there is a significant gap in mechanical properties.

Brief introduction of research results

Recently, the State Key Laboratory of Powder Metallurgy at Central South University has employed Material Extrusion Additive Manufacturing (MEX) – Debinding and Sintering (DS) technology to successfully produce high-strength and tough WC-9Co cemented carbide with no pores, no cracks, and uniform shrinkage in all directions. Its relative density is approximately 99.7%, and its Vickers hardness, transverse fracture strength, and fracture toughness reach 1525±3HV30, 3492±45MPa, and 20.4±0.5 MPa·m1/2 respectively. The comprehensive mechanical properties are comparable to those of high-performance WC-Co carbide prepared by powder metallurgy processes. The relevant work, titled “Material extrusion additive manufacturing of WC-9Co cemented carbide,” was published in the top international journal “Additive Manufacturing.”

 

research chart

How to achieve a transverse fracture strength of 3492 MPa in high-strength and tough WC-Co carbide additive manufacturing? 2

FIG. 1 Microstructure of MEX WC-9Co cemented carbide green

How to achieve a transverse fracture strength of 3492 MPa in high-strength and tough WC-Co carbide additive manufacturing? 3

FIG. 2 Schematic diagram of stack pore formation of cemented carbide printing green billet: a. MEX stack pore formation; b. Increasing the overlap rate of microfilaments is conducive to reducing the stack porosity of green billet;

How to achieve a transverse fracture strength of 3492 MPa in high-strength and tough WC-Co carbide additive manufacturing? 4

FIG. 3 Microstructure of MEX-DSWC-9Co cemented carbide

How to achieve a transverse fracture strength of 3492 MPa in high-strength and tough WC-Co carbide additive manufacturing? 5

Figure 4 Micro-CT analysis results of internal defects in MEX-DS WC-9Co cemented carbide

How to achieve a transverse fracture strength of 3492 MPa in high-strength and tough WC-Co carbide additive manufacturing? 6

Figure 5 Microstructure of WC-9Co cemented carbide: (a) MEX-DS; (b) Press forming – degreasing sintering

How to achieve a transverse fracture strength of 3492 MPa in high-strength and tough WC-Co carbide additive manufacturing? 7

Figure 6 MEX-DS WC-Co carbide Co pool and Co rich zone

WC-Co carbide

Figure 7 Transverse fracture strength and fracture toughness of WC-(8-12)Co cemented carbide prepared by different processes

 

Summary

Conclusion of the Paper

(1) By calculating the plasticity index of the printed feedstock with a powder loading of 54 Vol.%, the mechanism of green body printing defects was analyzed, and the green body MEX parameters were optimized. Using optimized parameters such as a printing temperature of 150°C, filament overlap rate of 30%, and printing layer thickness of 0.1mm, defect-free green bodies of WC-9Co cemented carbide with a relative density of 98.5% were prepared.

(2) Both excessively high or low temperatures during the debinding process using n-heptane can lead to debinding cracks. Rapid solvent evaporation during the drying process of debound bodies can also result in microcracks. By employing a two-step solvent debinding process, namely, n-heptane debinding at 30°C for 12 hours followed by kerosene debinding at 30°C for 1 hour, the solvent evaporation rate was reduced, resulting in high-quality debound bodies with no noticeable debinding defects and uniform distribution of binder.

(3) Defects in MEX green bodies can lead to the formation of Co-rich regions or pools, abnormal WC grains, residual pores, etc., in WC-Co carbide. These defects can be improved or eliminated during the sintering process through liquid phase flow and rearrangement of WC particles. By optimizing the MEX green body printing and solvent debinding processes to eliminate printing and debinding defects, it is possible to eliminate defects such as sintering pores, cracks, Co pools, abnormal grain growth, etc., in WC-Co carbide, resulting in near-full-density WC-9Co carbide.

(4) By employing MEX green bodies, a two-step solvent debinding process, and a continuous thermal debinding-vacuum pressure sintering process, WC-9Co carbide with uniform microstructure, smaller grain size, and relatively uniform distribution were prepared. The Vickers hardness, transverse fracture strength, and fracture toughness were measured to be 1525±3HV30, 3492±45MPa, and 20.4±0.5MPa·m1/2, respectively. The comprehensive mechanical properties were superior to those reported by recent additive manufacturing technologies and comparable to those of WC-Co carbide prepared by traditional powder metallurgy processes.

Main Innovations of the paper of WC-Co carbide additive manufacturing

The use of WC-Co carbide MEX-DS technology to prepare near-full-density WC-9Co carbide, with a transverse fracture strength reaching 3492MPa and a fracture toughness exceeding 20MPa·m1/2, has significantly improved the transverse fracture strength of WC-Co carbide prepared by current AM methods (ranging from 1500-2000 MPa to 3000-4000MPa with HIP treatment) and increased fracture toughness to above 20MPa·m1/2. The comprehensive mechanical properties are significantly better than those reported by similar studies and comparable to similar products prepared by powder metallurgy. The research results are of great significance for addressing the challenging issues of porosity, cracks, and harmful phases encountered in current carbide additive manufacturing and for the development of carbide additive manufacturing technology.

Leave a Reply

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

男女激情四射午夜福利视频网站-人成午夜免费毛片直接观看-日本女优在线观看一区二区-青草国内精品视频在线观看| 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| 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| 少妇一级aa一区二区三区片-欧美欧美欧美欧美一级片-91在线观看视频下载-自拍视频在线观看一区二区| 午夜精品福利激情视频-婷婷国产五月天网久久精品-国产av麻豆嫩草视频-av日本中文字幕在线| 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| 五月婷婷六月色激情综合-国语对白在线免费视频-亚洲熟女熟妇乱色一区-深夜福利免费在线播放| 国产精品熟女露脸对白-欲求不满中文字幕在线-日本一区二区三区的免费视频观看-激情久久av一区二区三区四区| 国产精品 一区二区 久久-国产在线一区二区三区四区视频-午夜日本在线观看视频-日韩一区二区中文字幕18禁| 亚洲视频一区二区久久-亚洲欧美日韩精品中文乱码-亚洲尤物在线视频观看-欧美熟妇视频一区二区三区| 四虎在线观看永久免费-久久精品熟女亚洲av香蕉-av国内精品久久久久影院三级-亚洲国产一区二区三区av| 少妇一级aa一区二区三区片-欧美欧美欧美欧美一级片-91在线观看视频下载-自拍视频在线观看一区二区| 免费观看国产裸体视频-久久亚洲精精品中文字幕早川悠里-99精品国产一区二区青青牛奶-久久精品成人av免费观看| 91九色精品人成在线观看-国产成人免费综合激情-新久久国产色av免费看-av网站国产主播在线| 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| 免费手机在线观看bbb视频-国产欧美亚洲精品第1页青草-国产黄a三级三18级三级看三级-宅男视频在线观看一区二区三区| 亚洲国产精品无吗一区二区-伊人久久综合在线观看-欧美日韩在线精品视频二区-国产精品一区二区国产主播| 国产精品羞羞答答色哟哟-最新麻豆精品在线视频-丰满多毛熟妇的大阴户-精品国产乱子伦一区二区三女| 国产美女口爆吞精服务-亚洲无人区码一码二码三码-久久精品99国产精品最新-日本少妇激情在线视频| 97视频在线观看精品在线-久久精品欧美日韩一区麻豆-亚洲精品在线少妇内射-国产在线一区二区三区三州| 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| 女优av天堂中文字幕-国产亚洲精品成人av久-国产黄三级三级三级三级一区二区-日本高清视频不卡一区二区| 天堂网日韩一区二区三区四区-自拍视频在线观看地址-91麻豆视频免费入口-国产理论片一区二区三区| av毛片天堂在线观看-亚洲av成人午夜亚洲美女在线-九九久久精品国产免费av-亚洲av永久精品免费| 国产成人一区二区免费av-国产成人精品一区二区不卡-亚洲乱码精品一区二区在线-青草视频免费在线观看尤物| 麻豆国产av一区二区精品-久久福利社最新av高清精品-丝袜美腿亚洲综合伊人-亚洲欧洲av一区二区三区| 青青草免费视频手机版-男人天堂欧美日韩在线-成人黄色av在线免费看-超短裙女教师在线观看| 亚洲自拍偷拍另类第一页-麻豆国产午夜在线精品-久久精品一区二区三区综合-日本最近中文字幕免费| 亚洲精品av一区二区日韩-日韩偷拍精品一区二区三区-亚洲欧美熟妇久久久久久-久草视频福利在线观看| 99久久亚洲综合网精品-久久热福利视频在线观看-日韩av人妻中文字幕-日本一区二区三区视频在线播放| 国产精品一区在线观看网址-亚洲国产日韩精品理论在线-在线播放视频在线观看视频-黄色片三级三级免费看| 国产老熟女乱子一区二区-欧美日本中国一区二区-欧美日韩国产午夜精品-青青草视频在线观看入口| 91免费视频完整版高清-久久青草国产日韩资源-黄色激情网站免费提供-国产精品麻豆三级一区视频| 国产韩国精品一区二区三区-久久精品人妻一区二区三区av-黄片视频在线观看欧美-国产成人自拍在线视频| 精品三级国产三级在线专区-精品一区二区三区视频观看-在线精品日韩亚洲欧一二三区-美女高潮无套内射视频免费| 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| 日韩成人深夜免费在线观看-成人av一区二区在线播放-日韩无套内射免费精品-国产精品一区白嫩在线观看| 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| 中文字幕一区二区三区日韩精品-久久老熟女一区二区三区福利-久久精品国产自产对白一区-午夜欧美牲交激情网站| 中文字字幕乱码一区二区三-美女高清做自拍色啪视频-国产无遮挡男女一进一出-成人亚洲校园在线春色| 国产精品第五页在线观看-亚洲欧美日韩丝袜另类一区-国产懂色av一区二区三区-午夜亚洲欧美日韩在线|