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Simplified Impact Analysis Based on Equivalent Static Analysis for Impact Design of TFT-LCD Panels

机译:TFT-LCD面板抗冲击设计的基于等效静力分析的简化冲击分析

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This paper presents a new computational approach to simulate impact response of a large TFT-LCD panel. The approach is based on the static load analysis equivalent to impact analysis. The static problem equivalent to the impact one is found from the concept of solid mechanics to estimate the maximum deflection and stress. To show the plausibility of the proposed approach, it is applied to a simple, idealized problem, a beam subject to impact loading. Based on explicit FE analyses using the LS-DYNA FE program, time variation of energy within the beam is investigated systematically, from which the steady state internal energy stored in the beam and the maximum stress are characterized in terms of the shock duration. Noting that the maximum stress is related to the internal energy, an equivalent static problem to the impact problem is found by equating the strain energy to the internal energy. Comparison of the maximum stress for the equivalent static problem with that for the impact problem shows that the ratio can be uniquely characterized by the shock duration, and moreover varies slightly, from 1.2 to 1.0, which suggests that the impact problem can be solved by the equivalent static analysis which is much easier to solve in practice. Thus the proposed approach provides significant advantages in design optimization of a large TFT-LCD monitor against chock failure, and enables the designer to avoid ad hoc modeling of the transient dynamics so that product design cycle could be shortened.
机译:本文提出了一种新的计算方法来模拟大型TFT-LCD面板的冲击响应。该方法基于等效于影响分析的静载荷分析。从实体力学的概念中发现了与冲击相等的静态问题,以估计最大挠度和应力。为了表明所提出方法的合理性,将其应用于一个简单的理想化问题,即梁承受冲击载荷。在使用LS-DYNA FE程序进行显式有限元分析的基础上,系统地研究了梁内能量的时间变化,从而根据冲击持续时间来表征梁中存储的稳态内部能量和最大应力。注意到最大应力与内部能量有关,通过将应变能等于内部能量发现了与冲击问题等效的静态问题。等效静力问题与冲击问题的最大应力的比较表明,该比值可以通过冲击持续时间来唯一地表征,并且从1.2到1.0略有变化,这表明可以通过以下方法解决冲击问题。等效静态分析,在实践中更容易解决。因此,所提出的方法在针对大型TFT-LCD监视器的设计优化方面提供了显着的优势,可防止出现阻塞故障,并使设计人员可以避免对瞬态动力学进行临时建模,从而可以缩短产品设计周期。

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