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Design of Foundations for Large Dynamic Equipment in a High Seismic Region

机译:高地震区大型动态设备基础设计

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Generally, foundations for large dynamic equipment are made of considerable amounts concrete, thus they contribute to a significant percentage of a project's total concrete quantity. Designing these dynamic foundations requires a series of static and dynamic analyses to meet the vibration requirement of the equipment and any seismic requirements of the local building codes. This article researches and compares different modeling methods, and then proposes an efficient approach for their design in high seismic regions. For design optimization, two different types of foundations should be considered for these areas: mats and piles. Liquefaction, downdrag on piles, bearing pressure, spring constants, soil stratification, water table, soil types, bearing depth, and settlement, can all affect a foundation. Reviewing the geotech report and performing a cost/risk analysis with the contractor should make it clear which type of foundation should be considered at a given locale. Engineers should design these foundations using a finite element modeling software that can handle dynamic loading. Modal analysis can be used to provide frequencies and displacement amplitudes to verify vibration performance criteria based on ACI 351 and the manufacture's requirements. Modal analysis can also be used to analyze seismic response spectrum per SAP time history analysis. In addition, a model based on static and quasi-static loads as required by the applicable building code should be analyzed. The ability to combine these models into one can help to solve these problems more quickly and efficiently. A case study for a foundation of steam turbine generator is presented, in which, the analysis features and design procedures used are described in detail. This may help design engineers understand the different advantages and results of finite element models, to pick the best modeling option for any given situation.
机译:通常,大型动态设备的基础由相当大的混凝土制成,因此它们有助于项目总混凝土总量的显着比例。设计这些动态基础需要一系列静态和动态分析,以满足设备的振动要求以及当地建筑码的任何地震要求。本文研究和比较了不同的建模方法,然后提出了一种高效地在高地震区设计的方法。对于设计优化,这些领域应考虑两种不同类型的基础:垫和桩。液化,桩上的下坡,轴承压力,弹簧常数,土壤分层,水位,土壤类型,轴承深度和沉降,都可以影响基础。审查土工学报告并与承包商进行成本/风险分析应明确在给定区域环境中应考虑哪种类型的基础。工程师应使用可以处理动态加载的有限元建模软件来设计这些基础。模态分析可用于提供频率和位移幅度,以验证基于ACI 351和制造要求的振动性能标准。模态分析还可用于根据SAP时间历史分析分析地震响应谱。此外,应分析基于适用建筑码所需的基于静态和准静态负载的模型。将这些模型结合成一个人可以帮助更快有效地解决这些问题。提出了对蒸汽轮机发生器基础的案例研究,其中,详细描述了使用的分析特征和设计过程。这可能有助于设计工程师了解有限元模型的不同优点和结果,为任何特定情况挑选最佳建模选项。

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