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NON-LINEAR SEISMIC ANALYSIS OF BATTERY ASSEMBLIES MOUNTED ON RACK SUPPORT

机译:安装在机架支座上的电池组件的非线性地震分析

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As part of plant maintenance and upkeep, commercial nuclear plants routinely perform walkdowns of various structures and equipment to identify and correct any potential anomalies associated with installation and/or maintenance. One of the objectives of such walkdowns is to look for findings associated with the as-installed conditions, which may be different from intended design. The intent of these walkdowns is to increase the reliability of the plant. A typical finding associated with these walkdowns, is identification of excessive gaps for equipment and support structures. For example, one such finding is identification of minor gaps at either end of battery assemblies with respect to supporting racks, making it slightly different than their design basis configuration for seismic qualification. As such, the battery assembly is liable to rattle inside the battery rack causing sliding and impact loads onto the batteries and the supporting rack members. For the as-found condition, non-linear seismic analyses were performed to obtain realistic reaction loads and determine the extent of sliding and separation (uplift) of the battery assembly with respect to the supporting racks. These analyses properly modelled the exact gaps found on either end of the assembly, as well as non-linear base interface conditions for the possibility of sliding and uplift of the batteries, before the supporting racks were engaged. Another objective of the analysis was to develop In-Equipment Response Spectra (IERS) for comparison of the as-designed condition (no gaps) with as-found condition (with gaps), in order to determine the impact of gaps on IERS, and thus the battery seismic qualification.
机译:作为工厂维护和保养的一部分,商业核电站通常会进行各种结构和设备的停靠检查,以识别和纠正与安装和/或维护相关的任何潜在异常情况。此类淘汰的目标之一是寻找与安装条件相关的发现,这些发现可能与预期的设计有所不同。这些罢工的目的是提高工厂的可靠性。与这些停机相关的一个典型发现是确定设备和支撑结构的间隙过大。例如,一个这样的发现就是识别了电池组件两端相对于支撑架的微小间隙,这使其与用于抗震鉴定的设计基础配置略有不同。这样,电池组件易于在电池架内部嘎嘎作响,从而在电池和支撑架构件上产生滑动和冲击载荷。对于发现的情况,进行了非线性地震分析,以获得实际的反应载荷,并确定了电池组件相对于支撑架的滑动和分离(隆起)的程度。这些分析正确地模拟了在组件的任一端发现的确切间隙以及非线性基本界面条件,以便在接合支撑架之前使电池滑动和提起。该分析的另一个目标是开发设备内响应光谱(IERS),以比较设计条件(无间隙)与实际条件(有间隙),以确定间隙对IERS的影响,以及因此电池抗震鉴定。

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