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A Simplified Modeling Approach for Predicting Global Distortion in Large Metallic Parts Caused by the Installation of Interference Fit Bushings

机译:一种简化的建模方法,用于预测由衬套安装造成的大型金属部件中的全局变形

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One technique for improving the fatigue life of a fastener hole in a built-up metallic structure is to use an interference fit bushing. The installation of these bushings produces residual compressive stresses around the hole that improve the fatigue life. It also causes residual strains and therefore distortion of the part. The distortion is both in-plane growth of the part and out-of-plane deflection, or cupping. The resulting distortion can cause difficulty in downstream assembly, such as misalignment of fastener holes or a misfit of mating surfaces. For small parts with only a few bushings, it is possible to predict the distortion by explicitly modeling the installation process by using a finite element approach. However, for a large part with many bushings, it is not practical to build a model with a detailed finite element representation of each bushing installation. In this work, a simplified approach is presented for predicting the global distortion of large shell-like parts that is caused by installing many interference fit bushings. The simplified approach consists of representing the bushings with equivalent springs in a shell-based finite element model of a large part. In this approach, the equivalent springs are not constructed with spring elements that are commonly found in finite element codes. Rather, the equivalent springs are constructed with a number of shell elements in two layers. The properties of the elements that make up the equivalent springs are estimated from experiments on small test coupons. The same springs, with the same calibrated parameters, are then applied to the larger part of interest. Results indicate that this approach can be used to estimate the distortion that can be expected in a large part that is cause by the installation of interference fit bushings.
机译:一种用于改善内置金属结构中紧固件孔的疲劳寿命的一种技术是使用干涉配合衬套。这些衬套的安装在提高疲劳寿命的孔周围产生残留的压缩应力。它还导致残留菌株并因此导致部分变形。失真是部分和平面外偏转的平面增长,或拔罐。由此产生的失真会导致下游组件中的困难,例如紧固件孔的未对准或配合表面的错配。对于只有几个衬套的小部分,可以通过使用有限元方法明确地建模安装过程来预测失真。然而,对于具有许多衬套的大部分,构建具有每个套管安装的详细有限元表示的模型是不实际的。在这项工作中,提出了一种简化的方法,用于预测由安装许多干涉配合衬套引起的大壳状部件的全局变形。简化的方法包括表示具有相同弹簧的衬套,其基于壳体的大部分的有限元模型。在这种方法中,等效弹簧没有构造成常见于有限元码中的弹簧元件。相反,等效弹簧用两层中的多个壳元件构成。从小型测试优惠券的实验估计构成等效弹簧的元素的性质。然后,具有相同校准参数的相同的弹簧被应用于较大的感兴趣部分。结果表明,这种方法可用于估计通过安装干扰拟合衬套而导致的大部分中可以预期的失真。

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