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首页> 外文期刊>CIRP Journal of Manufacturing Science and Technology >Effect of material form on deposition characteristics in micro-plasma transferred arc additive manufacturing process
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Effect of material form on deposition characteristics in micro-plasma transferred arc additive manufacturing process

机译:材料形式对微等离子体转移弧添加制造工艺沉积特性的影响

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This paper presents study on influence of different forms (i.e. powder, wire, and combined powder-wire) of Stellite-6 deposition material on arc interaction and deposition characteristics in mu-plasma transferred arc additive manufacturing (mu-PTAAM) process. It was found that (i) width of mu-plasma arc remains almost constant throughout its length for the powdered form, but it varies for wire and combined powder-wire form; (ii) the wire form resulted in the highest deposition efficiency (94.9%), substrate temperature (114.7 degrees C) and surface roughness (202 mu m) whereas the powder form gave the highest average value of dilution (10.3%) and microhardness (588 HV), lowest substrate temperature (70.9 degrees C) and surface roughness (125 mu m), and smallest grain size (3 mu m); (iii) combined powder-wire form gave the lowest dilution (8.66%) and microhardness (534 HV), and largest grain size (7 mu m); (iv) elemental composition analysis found highest inclusion of iron for the powder form; (v) phase analysis revealed that different forms of deposition material yielded same crystalline phases. This study proves that different forms of the deposition material can be used in mu-PTAAM process and combined powder-wire form the deposition material narrows the existing gaps between the wire and powder forms for various aspects of additive manufacturing. (c) 2020 CIRP.
机译:本文介绍了脱岩-6沉积材料对近级转移电弧添加剂制造(MU-PTAAM)工艺的散晶 - 6沉积材料对恒星-6沉积材料的影响的影响。结果发现,在粉末形式的整个长度上仍然几乎恒定,但是电线和组合的粉线形式变化; (ii)线形式导致沉积效率最高(94.9%),衬底温度(114.7℃)和表面粗糙度(202μm),而粉末形式得到了稀释度的最高平均值(10.3%)和微硬度( 588 HV),基板温度最低(70.9℃)和表面粗糙度(125μm),最小的粒度(3μm); (iii)组合的粉末线形式得到最低稀释(8.66%)和微硬度(534HV),最大的粒度(7μm); (iv)元素组成分析发现最高包含粉末形式的铁; (v)相分析显示,不同形式的沉积材料产生相同的结晶相。本研究证明,不同形式的沉积材料可用于MU-PTAAM工艺,并且组合的粉丝形式沉积材料缩小了用于添加剂制造的各个方面的线和粉末形式之间的现有间隙。 (c)2020 CIRP。

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