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TA31鈦合金電弧增材制造過程液橋過渡數(shù)值分析
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1.西安交通大學(xué) 機(jī)械制造系統(tǒng)工程國家重點(diǎn)實(shí)驗室,陜西 西安 710049;2.中國船舶集團(tuán)有限公司第七二五研究所,河南 洛陽 471039

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Numerical Analysis of Liquid Bridge Transfer in Wire Arc Additive Manufacture Process of TA31 Titanium Alloy
Author:
Affiliation:

1.State Key Laboratory for Manufacturing Systems Engineering, Xi'an Jiaotong University, Xi'an 710049, China;2.Luoyang Ship Material Research Institute, Luoyang 471039, China

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Applied Innovation Project

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    摘要:

    建立了電弧熔絲增材制備TA31鈦合金過程傳熱傳質(zhì)的三維瞬態(tài)計算流體力學(xué)模型,采用流體體積法對自由表面進(jìn)行追蹤,計算了熔滴生長、液橋過渡和脫離焊絲進(jìn)入熔池的動態(tài)演化,以及在表面張力、電弧壓力、電弧剪切力、電磁力、重力和熱浮力的作用下熔池流體流動的速度分布,并通過與高速成像以及沉積層橫截面的比較,驗證了該數(shù)值模型的有效性。結(jié)果表明:液橋過渡模式對熔池沖擊較小,有利于減少成形表面的不規(guī)則性。隨著熔池幾何形狀的擴(kuò)大,沉積層高度先增大后減小,最后趨于穩(wěn)定。在電弧壓力和表面張力的作用下,熔池表面形成凹陷,熔池內(nèi)部產(chǎn)生對流。慣性力和表面張力是影響液橋流動的最重要驅(qū)動力,粘性力和重力的影響可以忽略不計。

    Abstract:

    The three-dimensional transient computational fluid dynamics model of heat and mass transfer in the wire arc additive manufacturing (WAAM) process of TA31 titanium alloy was established. Through the volume of fluid method, the free surface was tracked. The dynamic evolution of droplet growth, liquid bridge transfer, and detachment from the wire tip into the molten pool was calculated. The velocity field of the molten pool driven by surface tension, arc pressure, arc shear, electromagnetic force, gravity, and buoyancy was calculated. The validity of the numerical model was confirmed through the results of high-speed imaging and the cross-sections of weld bead. Results show that the liquid bridge transfer mode exerts less effect on the molten pool, which is conducive to reduce the irregularity of the bead surface. With expanding the molten pool, the height of weld bead is firstly increased, then decreased, and finally becomes stable. Under the influence of arc pressure and surface tension, a crater forms on the molten pool surface, and the convection occurs inside the molten pool. The inertial force and surface tension are the most important dynamic forces in the liquid bridge transfer process, and the influence of viscosity and gravity can be neglected.

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引用本文

郭鑫鑫,張永恒,張帥鋒,魏正英.TA31鈦合金電弧增材制造過程液橋過渡數(shù)值分析[J].稀有金屬材料與工程,2023,52(5):1643~1649.[Guo Xinxin, Zhang Yongheng, Zhang Shuaifeng, Wei Zhengying. Numerical Analysis of Liquid Bridge Transfer in Wire Arc Additive Manufacture Process of TA31 Titanium Alloy[J]. Rare Metal Materials and Engineering,2023,52(5):1643~1649.]
DOI:10.12442/j. issn.1002-185X.20220756

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  • 收稿日期:2022-09-23
  • 最后修改日期:2022-11-08
  • 錄用日期:2022-11-24
  • 在線發(fā)布日期: 2023-05-31
  • 出版日期: 2023-05-29