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Force and Moment Reconstruction for a Nuclear Transportation Cask Using Sum of Weighted Accelerations and Deconvolution Theory.

机译:基于加权加速度和反卷积理论的核运输桶力与力矩重构。

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A 9-m drop test was conducted of a 1/3-scale-model spent fuel cask onto an unyielding target. The structural response of the impact limiters and attachments wa evaluated. A mass model of the cask body, with steel-sheathed redwood and balsa impact limiters, was tested in a 10-degree slapdown orientation. One end of the cask impacted the target before the other end, as shown in Figure 1, with higher deceleration forces resulting from the second impact. The information desired from this test is the deformation of the two impact limiters on either end of the cask as a function of the applied force. The content in this paper will only discuss a summary of the applied force calculations. Two new force reconstruction techniques were applied to the slapdown test data; the same of weighted accelerations (SWA) and deconvolution (DECON). The conventional method for determining the resultant force involves post-test digitally filtering an accelerometer measurement to find the rigid-body acceleration for the cask. The rigid-body acceleration is then multiplied by the cask mass to obtain an estimate of the applied force. The frequency content of this force is restricted to the cut-off frequency of the digital filter, typically about one-half of the lowest elastic mode of the cask. The conventional method also restricted the rise time if the force to the rise time of the digital filter. The new force reconstruction techniques demonstrate the potential for a better estimate of forces acting on the cask during the impact than the conventional method.

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