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SEISMIC STABILITY ANALYSIS OF A CASK TRANSPORTER ON SLOPED SURFACES

机译:倾斜表面的木桶运输车的地震稳定性分析

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Many commercial nuclear plants are currently in the process of storing excess spent fuel in various dry cask storage facilities on-site. This on-site storage requires loading of the spent fuel from the fuel pool onto a cask and then transporting the cask using a heavy duty transporter to the location of the on-site Independent Spent Fuel Storage Facility (ISFSI). Whilst on the transporter, the cask and the transporter must remain physically stable under postulated seismic loads. Physical stability is defined by evaluating the amount of potential sliding on the road surface as well potential for rocking and in the worst case tip-over of the transporter carrying the cask. Because of the low ratio of the CG height to width of the transporter, typically rocking and tip-over is not a concern, even under the most extreme of the seismic environments. However, sliding of the transporter on the road will occur once the ratio of lateral to normal load exceeds the dynamic friction coefficient that is representative of the interface characteristics between the transporter tracks and the road. For sites located in high seismic environment such as the Diablo Canyon Power Plant (DCPP), this is almost certain, given the high value of the design seismic input.Therefore as a prudent part of the design process, the sliding of the transporter carrying the cask is calculated under the design seismic scenario. This process requires performing non-linear sliding analysis, where appropriate consideration has to be given at any instant of time during the seismic excitation to the friction resistance being overcome, thus resulting in some level of sliding. Once this sliding displacement is calculated, appropriate measures can be provided in order to make sure that the transporter has enough clearance as it travels the intended path, and that it will not bump into any restraints which may result in unwanted impact loads.This process is reasonably straight forward as long as the road surface is a flat one. However, the road from the Fuel Building to the ISFSI at DCPP is sloped at certain locations along the travel path. Thus, the determination of sliding levels under a seismic scenario on a sloped road becomes more complicated, as gravity now plays an additional role in that there will be a component of the gravity that would tend to assist sliding down-slope and would prevent sliding up-slope of the road. In addition, the normal component of the applied load (gravity plus seismic) resisting frictional forces, is also slightly less because of the slope between the road and the horizontal plane. These added complications must be properly accounted for in performing such a stability analysis on a sloped road.This paper summarizes the methodology and the results for performing such analysis for the DCPP Dry Cask transporter on a sloped road. The road has slopes both longitudinally and transversely which had to be accounted for in performing these seismic stability analyses.
机译:当前,许多商业核电厂正在将过量的乏燃料存储在现场的各种干桶存储设施中。这种现场存储要求将乏燃料从燃料池中装载到一个桶中,然后使用重型运输机将桶运输到现场独立乏燃料存储设施(ISFSI)的位置。在运输车上时,木桶和运输车必须在假定的地震载荷下保持物理稳定。物理稳定性是通过评估在路面上滑动的可能性,摇摆的可能性以及在最坏的情况下运输装有桶的运输工具的倾翻来定义的。由于CG高度与运输机宽度的比率较低,即使在最极端的地震环境下,通常也无需担心摇摆和翻倒。但是,一旦横向载荷与法向载荷之比超过动摩擦系数(代表运输轨道与道路之间的界面特性),运输工具就会在道路上滑动。考虑到设计地震输入的高价值,对于位于高地震环境中的场所,例如暗黑破坏神峡谷发电厂(DCPP),这几乎可以肯定。 因此,作为设计过程中的审慎部分,在设计地震情况下计算了运输木桶的运输车的滑动。此过程需要执行非线性滑动分析,其中在地震激励过程中的任何时刻都必须适当考虑要克服的摩擦阻力,从而导致一定程度的滑动。一旦计算出该滑动位移,就可以采取适当的措施,以确保运输机在其沿预定路径行进时具有足够的间隙,并且不会撞到任何可能导致不必要的冲击载荷的约束装置。 只要路面平坦,此过程就相当简单。但是,从加油站到DCPP的ISFSI的道路在行驶路径上的某些位置处是倾斜的。因此,在倾斜的道路上地震情况下确定滑动水平变得更加复杂,因为重力现在起着另外的作用,因为重力的一部分将倾向于辅助向下滑动并防止向上滑动-道路的坡度。此外,由于道路和水平面之间的坡度,所施加的载荷(重力加地震)抵抗摩擦力的法向分量也略小。在斜坡上进行这种稳定性分析时,必须适当考虑这些增加的复杂性。 本文总结了在斜坡上对DCPP干桶运输车进行这种分析的方法和结果。道路具有纵向和横向的坡度,在执行这些地震稳定性分析时必须考虑这些坡度。

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