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超高转速旋转电极法与气雾化法对EP741NP镍基高温合金粉末特性的影响规律研究
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作者 韩志宇 张平祥 +4 位作者 赖运金 郑作赟 王琦 相敏 王毅 《航空制造技术》 北大核心 2026年第6期128-135,共8页
采用超高转速等离子旋转电极法(Supreme-speed plasma rotating electrode process,SS-PREP)和氩气雾化法(Argon atomization,AA)制备了球形EP741NP合金粉末,对比研究了两种制粉方法对粉末特性的影响。结果表明,采用SS-PREP法制备的EP74... 采用超高转速等离子旋转电极法(Supreme-speed plasma rotating electrode process,SS-PREP)和氩气雾化法(Argon atomization,AA)制备了球形EP741NP合金粉末,对比研究了两种制粉方法对粉末特性的影响。结果表明,采用SS-PREP法制备的EP741NP合金粉末形貌更加规则,空心粉和异形粉含量更低,在氧增量、球形度及流动性等物理性能方面具有明显优势,但粉末粒径较大;AA法制备粉末中不规则颗粒较多,粉末颗粒表面有较多卫星粉,部分粉末之间存在粘连。SS-PREP法制备的EP741NP合金粉末颗粒表面为典型枝晶组织,且呈放射状生长;AA法制备的粉末颗粒表面组织不清晰,局部可观察到少量枝晶,粉末中存在较多空心粉颗粒以及个别组织异常粉末,空心粉内部孔洞被完全封闭,孔洞内部并非光滑表面,呈棉絮状且形状不规则,主要是由于雾化气体的冲击导致液膜破碎不完全,雾化气体被裹入,在袋状液膜闭合前,内部雾化气体没有逸出,进而形成空心粉。在室温、650℃和750℃测试条件下,SS-PREP和AA两种不同方法制备的EP741NP合金拉伸性能均表现出相同的规律,SS-PREP法粉末的拉伸强度和屈服强度优于AA法粉末。 展开更多
关键词 超高转速等离子旋转电极法(Supreme-speed plasma rotating electrode process SS-PREP) 氩气雾化法(argon atomization AA) EP741NP合金 粉末特性 微观组织
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Kinetics Characteristics and Bremsstrahlung of Argon DC Discharge Under Atmospheric Pressure 被引量:5
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作者 何为 刘兴华 +4 位作者 咸日常 陈素红 廖瑞金 杨帆 肖汉光 《Plasma Science and Technology》 SCIE EI CAS CSCD 2013年第4期335-342,共8页
An improved self-consistent, multi-component, and one-dimensional plasma model for simulating atmospheric pressure argon glow discharge is presented. In the model, both the plasma hydrodynamics model and chemical mode... An improved self-consistent, multi-component, and one-dimensional plasma model for simulating atmospheric pressure argon glow discharge is presented. In the model, both the plasma hydrodynamics model and chemical model are considered. The numerical simulation is carried out for parallel-plate geometry with a separation of 0.06 cm. The results show that Ar* plays a major role in the discharge, which is mainly produced by ground state excitation reaction. The electron temperature reaches its maximum in the cathode sheath but maintains a low value (0.23 eV) in bulk plasma. Elastic collision is the dominant volumetric electron energy loss in atmosphere argon glow discharge, which is negligible in low pressure argon glow discharge. The metastable step-wise ionization is the main mechanism for electron production to sustain the discharge. However, the highest contribution to electron production rate is ground state ionization reaction. The bremsstrahlung power density is related to electric voltage. With the increase of the electric voltage, the bremsstrahlung power density increases, namely, the strength of ultraviolet radiation spectrum enhances in the cathode sheath. 展开更多
关键词 atmospheric pressure glow discharge plasma model metastable argon atom ionization reaction bremsstrahlung power density
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