高性能再生硬质合金的短流程回收制备*
修回日期: 2013-09-13
网络出版日期: 2014-05-20
基金资助
*国家高技术研究发展计划项目SS2013AA031401, 国家自然科学基金项目51174009, 北京市自然科学基金项目2131001和2133062以及新金属材料国家重点实验室开放基金项目2012-Z08资助
SHORT-TERM PROCESS OF RECYCLING CEMENTED CARBIDE SCRAPS AND PREPARATION OF HIGH PERFORMANCE HARD METALS
王 瑶, 男, 1988年生, 硕士生
Revised date: 2013-09-13
Online published: 2014-05-20
Supported by
National High Technology Research and Development Program of China (No.SS2013AA031401), National Natural Science Foundation of China (No.51174009),Natural Science Foundation of Beijing (Nos.2131001 and 2133062) and Fund of State Key Laboratory of New Metal Materials (No.2012-Z08)
以WC-16%Co (质量分数)废旧硬质合金块体为原料, 采用氧化-原位还原碳化的方法对其进行回收制备再生WC-16%Co复合粉, 并对再生复合粉进行低压烧结制备再生硬质合金块体材料. 通过热力学计算确定氧化物粉末和炭黑发生原位还原碳化反应的温度范围, 采用实验方法系统研究了原料粉末中配C量对再生复合粉和再生硬质合金的物相组成、力学性能等的影响, 并对再生合金的显微组织与性能的关系进行了分析. 结果表明: 随着原料粉中配C量的增加, 再生复合粉中的Co6W6C相逐渐减少, 总C和游离C含量增加; 当配C量为16.60%时, 可制备出化学成分符合原生WC-16%Co复合粉要求的再生复合粉, 经低压烧结可得到物相纯净, 断裂韧性达到23.05 MPa·m1/2, 横向断裂强度达到4020 MPa的高性能再生硬质合金; 再生硬质合金的Co相分布是否均匀, 对再生硬质合金的综合性能优良与否起到至关重要的作用.
王瑶 , 刘雪梅 , 宋晓艳 , 魏崇斌 王海滨 , 王西龙 . 高性能再生硬质合金的短流程回收制备*[J]. 金属学报, 2014 , 50(5) : 633 -640 . DOI: 10.3724/SP.J.1037.2013.00585
Recycling of cemented carbide scraps is drawing more and more attention to companies and countries all over the world. However, the recycling method has always been a problem where there are many factors involved. The feasibility, recycling rate, energy consumption and the environment conservation are all significant factors for the recycling method that need to be considered. In this work, using the cemented carbides scraps as the raw material, the recycled WC-16%Co (mass fraction) composite powder was synthesized by oxidation, reduction and carbonization reactions. Then the recycled composite powder was sintered to prepare the hard metal bulks by sinter-HIP (hot isostatic pressing). The results indicate that with the carbon addition increases, the content of Co6W6C in the composite powders decreases while the total carbon and free carbon increase. When the carbon addition is 16.60%, the high-performance hard metal bulks can be obtained, with a fracture toughness of 23.05 MPa·m1/2 and a transverse rupture strength of 4020 MPa. Moreover, the Co phase distributes more homogeneously in the recycled hard metals. The larger mean free path of the Co phase and the lower contiguity degree of the WC grains lead to the high performance of the recycled hard metal materials.
| [1] | Fag Z Z, Wang X, Ryu T, Hwang K S, Sohn H Y. Int J Refract Met Hard Mater, 2009; 27: 288 |
| [2] | Wei C B, Song X Y, Fu J, Liu X M, Wang H B, Gao Y, Wang Y. Cryst Eng Comm, 2013; 15: 3305 |
| [3] | Liu S, Yi D Q, Li Y X, Zou D. Acta Metall Sin (Engl Lett), 2002; 15: 448 |
| [4] | Kim H C, Shon I J, Yooh J K, Doh J M. Int J Refract Met Hard Mater, 2007; 25: 46 |
| [5] | Xiong Y H, Lau K, Zhou X Y, Schoenung J M. J Clean Prod, 2008; 16: 1118 |
| [6] | Venkateswaran S, Schubert W D, Lux B. Int J Refract Met Hard Mater, 1996; 14: 263 |
| [7] | Zhang Q X, Zhang J X. Rare Met Cem Carbides, 1995; (4): 48 |
| [7] | (张齐勋, 张家雄. 稀有金属与硬质合金, 1995; (4): 48) |
| [8] | Lee J C, Kim E Y,?Kim J H,?Kim W, Kim B S, Pandey B D. Int J Refract Met Hard Mater, 2011; 29: 365 |
| [9] | Hu Y J, Sun P M, Li H G, Chen A L. Rare Met Cem Carbides, 2004; 32(3): 53 |
| [9] | (胡宇杰, 孙培梅, 李洪桂, 陈爱良. 稀有金属与硬质合金, 2004; 32(3): 53) |
| [10] | Sun B Q. Rare Met Cem Carbides, 1998; (3):12 |
| [10] | (孙宝琦. 稀有金属与硬质合金, 1998; (3): 12) |
| [11] | Liu W B, Song X Y, Zhang J X, Zhang G Z, Liu X M. Int J Refract Met Hard Mater, 2009; 27: 115 |
| [12] | Zhang W B, Sha C S, Du Y, Wen G H, Xie W, Wang S Q. Acta Metall Sin, 2011; 47: 1307 |
| [12] | (张伟彬, 沙春生, 杜 勇, 温光华, 谢 文, 王社权. 金属学报, 2011; 47: 1307) |
| [13] | Cao Z M, Song X Y, Qiao Z Y. Rare Met, 2008; 32: 216 |
| [13] | (曹战民, 宋晓艳, 乔芝郁. 稀有金属, 2008; 32: 216) |
| [14] | Wei C B, Song X Y, Fu J, Lv X S, Wang H B, Gao Y, Zhao S X, Liu X M. J Mater Sci Technol, 2012; 28: 837 |
| [15] | Zhao S X, Song X Y, Liu X M, Wei C B, Wang H B, Gao Y. Acta Metall Sin, 2011; 47: 1188 |
| [15] | (赵世贤, 宋晓艳, 刘雪梅, 魏崇斌, 王海滨, 高 杨. 金属学报, 2011; 47: 1188) |
| [16] | Joost R, Pirso J, Viljus M, Letunovits S, Juhani K. Est J Eng, 2012; 18: 127 |
| [17] | Liu W B, Song X Y, Zhang J X, Zhang G Z, Liu X M. Mater Chem Phy, 2008; 109: 235 |
| [18] | Konyashin I, Hlawatschek S, Ries B, Lachmann F, Dorn F, Sologubenko A, Weirich T. Int J Refract Met Hard Mater, 2009; 27: 234 |
| [19] | Christensen M, Wahnstr?m G. Phys Rev, 2003; 67B: 115415 |
| [20] | Jia K, Fischer T E, Gallois B. Nanostruct Mater, 1998; 10: 875 |
| [21] | Fang Z Z. Int J Refract Met Hard Mater, 2005; 23: 119 |
| [22] | Fang Z Z, Lockwood G, Griffo A. Metall Mater Trans, 1999; 30A: 3231 |
| [23] | Wang X, Hwang K S, Koopman M, Fang Z Z, Zhang L H. Int J Refract Met Hard Mater, 2013; 36: 46 |
| [24] | Song S H, Li J C. Acta Metall Sin, 1987; 23: 521 |
| [24] | (宋士泓, 李健纯. 金属学报, 1987; 23: 521) |
| [25] | Liu M L, Huang X Y, Duan S T, Shao D Q, Cui Y M, Yao Z M. Acta Metall Sin, 1982; 18: 689 |
| [25] | (刘曼朗, 黄孝瑛, 段石田, 邵大琴, 崔玉梅, 姚振梅. 金属学报, 1982; 18: 689) |
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