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Variable Damping Profiles Using Modal Analysis for Laser Shock Peening Simulation

机译:使用模态分析进行激光冲击喷丸模拟的可变阻尼曲线

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摘要

The single explicit analysis using time-dependent damping (SEATD) technique for laser shock peening (LSP) simulation employs variable damping to relax the excited model between laser shots, thus distinguishing it from conventional optimum constant damping methods. Dynamic relaxation (DR) is the well-established conventional technique that mathematically identifies the optimum constant damping coefficient and incremental time-step that guarantees stability and convergence while damping all mode shapes uniformly when bringing a model to quasi-static equilibrium. Examined in this research is a new systematic procedure to strive for a more effective, time-dependent variable damping profile for general LSP configurations and boundary conditions, based on excited modal parameters of a given laser-shocked system. The effects of increasing the number of mode shapes and selecting modes by contributed effective masses are studied, and a procedure to identify the most efficient variable damping profile is designed. Two different sinuilation cases are studied. It is found that the computational time is reduced by up to 25% (62.5 min) for just Jive laser shots using the presented variable damping method versus conventional optimum constant damping. Since LSP typically involved hundreds of shots, the accumulated savings in computation time during prediction of desired process parameters is significant.
机译:使用时间依赖性阻尼(Seatd)技术进行激光冲击喷丸(LSP)仿真的单一显式分析采用可变阻尼来放宽激光镜头之间的激发模型,从而将其与传统的最佳恒定阻尼方法区分开。动态松弛(DR)是良好的传统技术,其数学识别最佳恒定阻尼系数和增量时间步骤,以确保在将模型带到准静态平衡时均匀地阻尼的所有模式形状的同时保证稳定性和收敛性。在本研究中审查是一种新的系统程序,努力基于给定激光震动系统的激发模态参数,争取一般LSP配置和边界条件的更有效,时间依赖的可变阻尼轮廓。研究了增加模式形状数量和选择模式的效果的效果,设计了识别最有效的变量阻尼轮廓的过程。研究了两种不同的鼻窦。发现,仅使用所呈现的可变阻尼方法与传统的最佳恒定阻尼的jive激光镜头仅减少了计算时间高达25%(62.5分钟)。由于LSP通常涉及数百次射击,因此在预期过程参数预测期间计算时间中的累积节省是显着的。

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