3提高到9.463g/cm3,振實密度由5.344g/cm3提高到10.433g/cm3,且氧含量由0.076%降低至0.0481%。另外,射頻等離子體球化鉭粉具有良好的選區(qū)激光熔化成形適用性,其試樣致密度ρ≥99.5%,抗拉強(qiáng)度σb=693MPa,屈服強(qiáng)度σ0.2=616MPa,延伸率δ=28.5%。"/>

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選區(qū)激光熔化成形用鉭粉射頻等離子體球化研究
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作者單位:

廣東省科學(xué)院 廣東省材料與加工研究所

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中圖分類號:

TG74+5

基金項目:

廣東省科學(xué)院建設(shè)國內(nèi)一流研究機(jī)構(gòu)行動專項(2019GDSYL-0302017); 廣東省協(xié)同創(chuàng)新與平臺環(huán)境建設(shè)專項(2017A050501024 、2017A050503004);廣東省公益研究與能力建設(shè)專項(2017A070701029).


Study on RF plasma spheroidization of tantalum powder for selective laser melting
Author:
Affiliation:

Guangdong Institute of Materials and Processing,Guangdong Academy of Sciences

Fund Project:

2019GDASYL-0302017; 2017A050501024 ; 2017A050503004; 2017A070701029

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    摘要:

    以不規(guī)則狀鈉還原鉭粉為原料,采用射頻等離子體球化技術(shù)制備高純致密球形鉭粉,實現(xiàn)了還原鉭粉的球化、致密化和純化。研究了送粉速率、載氣流量、反應(yīng)室壓力等工藝參數(shù)對鉭粉球化率及粉體特性的影響,并探索了球化鉭粉的選區(qū)激光熔化成形適用性。結(jié)果表明:不規(guī)則狀鈉還原鉭粉,經(jīng)射頻等離子體球化處理后可得到表面光滑、內(nèi)部致密、高純低氧、球化率可達(dá)100%的球形鉭粉。球化處理后,鉭粉粒度分布變窄。鉭粉的球化率隨送粉速率的增大而降低,隨載氣流量的增加先升高后減小。弱負(fù)壓更有利于獲得較高球化率的鉭粉。隨著球化率的提高,鉭粉的流動性能顯著改善,松裝密度與振實密度明顯提高。當(dāng)送粉速率為30g/min,載氣流量為5.0slpm,反應(yīng)室壓力為12.0Psi時,球形鉭粉霍爾流速提高到5.98s/50g,松裝密度由3.503g/cm3提高到9.463g/cm3,振實密度由5.344g/cm3提高到10.433g/cm3,且氧含量由0.076%降低至0.0481%。另外,射頻等離子體球化鉭粉具有良好的選區(qū)激光熔化成形適用性,其試樣致密度ρ≥99.5%,抗拉強(qiáng)度σb=693MPa,屈服強(qiáng)度σ0.2=616MPa,延伸率δ=28.5%。

    Abstract:

    Tantalum powder was prepared by RF plasma process from irregular sodium reduced tantalum powder, and spherical, pore-free powder with lower oxygen content was obtained. The effects of feeding rate, carrier gas flowing rate and pressure of reactor chamber on spheroidization efficiency and powder properties were studied. The selective laser melting process of spherical tantalum powder was also explored. The results showed that tantalum powder after plasma processing possess smooth surface , high internal density, high purity and low oxygen content, and the spheroidization ratio was almost 100%.The particle size distribution became narrow after spheroidizing. Spheroidization efficiency decreased with the increasing of feeding rate, while increased firstly and then decreased with the increasing of carrier gas flowing rate. Meanwhile, lower negative pressure in reactor chamber was more favorable to obtain powder with high spheroidization efficiency. With the increasing of spheroidization efficiency, the powder flow ability, apparent density and tap density were significantly improved. The processing parameters, the feeding rate, carrier gas flowing rate and reactor pressure were optimized at 30g/min, 5.0 slpm, and 12.0 psi, respectively. Compared to the raw materials, the spherical tantalum powder hall velocity reached 5.98s/50g, the apparent density increased from 3.503g/cm3 to 9.436g/cm3 and the tap density also improved from 5.344g/cm3 to 10.433g/cm3. It was interesting to find that the oxygen content is decreased from 0.076% to 0.0481% after the plasma process. Finally, spherical tantalum powder was proved to be compatible with selective laser melting process. The SLM parts with high dense (≥99.5%) were obtained and the tensile, the yield strength and the elongation were 693MPa, 616MPa, and 28.5%, respectively.

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毛新華,劉辛,雷超,丁超,李克峰.選區(qū)激光熔化成形用鉭粉射頻等離子體球化研究[J].稀有金屬材料與工程,2020,49(6):2076~2082.[Mao Xinhua, Liu Xin, Lei Chao, Ding Chao, Li Kefeng. Study on RF plasma spheroidization of tantalum powder for selective laser melting[J]. Rare Metal Materials and Engineering,2020,49(6):2076~2082.]
DOI:10.12442/j. issn.1002-185X.20190367

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  • 收稿日期:2019-04-27
  • 最后修改日期:2019-07-08
  • 錄用日期:2019-07-24
  • 在線發(fā)布日期: 2020-07-09
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