采用高速摄像系统观测熔滴过渡模式和等离子体形态的变化,并采集焊接过程中的电弧和熔滴图像,利用电弧分析仪记录电弧信号,通过试验深入研究激光功率对CO2激光-熔化极活性气体保护焊(Metal active gas,MAG)电弧复合焊接的电弧形态、焊...采用高速摄像系统观测熔滴过渡模式和等离子体形态的变化,并采集焊接过程中的电弧和熔滴图像,利用电弧分析仪记录电弧信号,通过试验深入研究激光功率对CO2激光-熔化极活性气体保护焊(Metal active gas,MAG)电弧复合焊接的电弧形态、焊接稳定性、熔滴过渡频率的影响。研究表明,焊接电流的增加减小了实际热源间距,并且实际热源间距在2 mm附近效果最佳;带电粒子在主辅导电通道内的运动产生扰动或漂移、焊接模式的跳变和过渡模式的改变是电流、电压波形出现紊乱和尖角波形的主要原因;激光的加入降低了熔滴过渡频率和过渡稳定性;焊接电流为160A、180 A时,激光-电弧复合焊接的熔滴过渡频率均随着激光功率的增加而先减小后增大,但其过渡频率介于160 A和180 A电弧焊接时熔滴过渡频率之间。展开更多
A two-dimensional model was established for the first time by coupling moving wire and arc in CMT-WAAM and GMAWWAAM process,revealing the temperature,potential and droplet transition behavior of droplet metal.The drop...A two-dimensional model was established for the first time by coupling moving wire and arc in CMT-WAAM and GMAWWAAM process,revealing the temperature,potential and droplet transition behavior of droplet metal.The droplet transition and the change of droplet transfer mode under different wire feeding speed were analyzed.The experiments and numerical simulation research found that droplet transition mode is projected transfer in GMAW-WAAM process under 150 A current,with a complete transition period is 14 ms.The droplet transition shows a short-circuit transition mode in CMT-WAAM process,with wire feeding speed of 5.5 m/min and a complete transition period is 20 ms.The droplet transition shows a mixture of droplet transfer and short-circuit transition mode in CMT-WAAM process,with wire feeding speed of 5.5 m/min and a complete transition period is 23 ms.Based on the theoretical research and experimental studies,the mechanism of droplet transfer mode in WAAM was studied,which can provide reference for optimizing parameters.展开更多
In order to get a better understanding of the vacuum consumable arc remelting(VAR) processes and thus to optimize them,a 3D finite element model was developed for the temperature fields and heat transfer of titanium a...In order to get a better understanding of the vacuum consumable arc remelting(VAR) processes and thus to optimize them,a 3D finite element model was developed for the temperature fields and heat transfer of titanium alloy ingots during VAR process.The results show that the temperature fields obtained by the simulation are well validated through the experiment results.The temperature distribution is different during the whole VAR process and the steady-state molten pool forms at 329 s for d100 mm × 180 mm ingots.At the initial stage of remelting,the heat dissipation of crucible bottom plays an important role in the whole heat dissipation system.At the middle of remelting,the crucible wall becomes a major heat dissipation way.The effect of cooling velocity on the solidification structure of ingots was investigated based on the temperature fields and the results can well explain the macrostructure of titanium alloy ingots.展开更多
A two-dimensional mathematical model was developed to describe the heat transfer and fluid flow in an AC arc zone of a ferrosilicon submerged arc furnace. In this model, the time-dependent conservation equations of ma...A two-dimensional mathematical model was developed to describe the heat transfer and fluid flow in an AC arc zone of a ferrosilicon submerged arc furnace. In this model, the time-dependent conservation equations of mass, momentum, and energy in the specified domain of plasma zone were numerically solved by coupling with the Maxwell and Laplace equations for magnetic filed and electric potential, respectively. A control volume-based finite difference method was used to solve the governing equations in cylindrical coordinates. The reliability of the developed model was checked by experimental data from the previous available literature. The results of present model were in good agreement with the given data comparing with other models, because of solving the Maxwell and Laplace equations simul- taneously in order to calculate current density. In addition, parametric studies were carried out to evaluate the effects of electrical current and arc length on flow field and temperature distribution within the arc. According to the computed results, a lower power input led to a higher arc efficiency.展开更多
文摘A two-dimensional model was established for the first time by coupling moving wire and arc in CMT-WAAM and GMAWWAAM process,revealing the temperature,potential and droplet transition behavior of droplet metal.The droplet transition and the change of droplet transfer mode under different wire feeding speed were analyzed.The experiments and numerical simulation research found that droplet transition mode is projected transfer in GMAW-WAAM process under 150 A current,with a complete transition period is 14 ms.The droplet transition shows a short-circuit transition mode in CMT-WAAM process,with wire feeding speed of 5.5 m/min and a complete transition period is 20 ms.The droplet transition shows a mixture of droplet transfer and short-circuit transition mode in CMT-WAAM process,with wire feeding speed of 5.5 m/min and a complete transition period is 23 ms.Based on the theoretical research and experimental studies,the mechanism of droplet transfer mode in WAAM was studied,which can provide reference for optimizing parameters.
基金Project(2007CB613802) supported by the National Basic Research Program of China
文摘In order to get a better understanding of the vacuum consumable arc remelting(VAR) processes and thus to optimize them,a 3D finite element model was developed for the temperature fields and heat transfer of titanium alloy ingots during VAR process.The results show that the temperature fields obtained by the simulation are well validated through the experiment results.The temperature distribution is different during the whole VAR process and the steady-state molten pool forms at 329 s for d100 mm × 180 mm ingots.At the initial stage of remelting,the heat dissipation of crucible bottom plays an important role in the whole heat dissipation system.At the middle of remelting,the crucible wall becomes a major heat dissipation way.The effect of cooling velocity on the solidification structure of ingots was investigated based on the temperature fields and the results can well explain the macrostructure of titanium alloy ingots.
文摘A two-dimensional mathematical model was developed to describe the heat transfer and fluid flow in an AC arc zone of a ferrosilicon submerged arc furnace. In this model, the time-dependent conservation equations of mass, momentum, and energy in the specified domain of plasma zone were numerically solved by coupling with the Maxwell and Laplace equations for magnetic filed and electric potential, respectively. A control volume-based finite difference method was used to solve the governing equations in cylindrical coordinates. The reliability of the developed model was checked by experimental data from the previous available literature. The results of present model were in good agreement with the given data comparing with other models, because of solving the Maxwell and Laplace equations simul- taneously in order to calculate current density. In addition, parametric studies were carried out to evaluate the effects of electrical current and arc length on flow field and temperature distribution within the arc. According to the computed results, a lower power input led to a higher arc efficiency.