TUNNEL REACTION TO GROUND MOVEMENT USING A SIMPLIFIED MODEL

Dmytro Yudenko
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Abstract

Purpose: the analysis is performed by modal superposition of the response of a simplified model containing connected bending and shear beams supported by Winkler-type springs. Objective: to present a simplified model using coupled Bernoulli and shear beams supported by Winkler-type springs for the systematic identification of tunnels subject to earthquake-induced ground motions. A model formulation is introduced and closed-form solutions for the modal characteristic equation and mode shape are derived. Research methods: the formulation of the model is introduced and closed-form solutions are derived for the equation of modal characteristic and mode shape. The latter are checked by the results of numerical models. A system identification algorithm is then presented, demonstrating its ability to recover the model parameters when the recorded acceleration time intervals along the tunnel are perturbed by noise and sensor locations change. The presented framework can be used for initial and simple recovery of tunnel response in the presence of monitoring data or for planning monitoring campaigns in newly constructed or existing tunnels. Main results: using a simple genetic algorithm and the proposed simplified model, it was shown that system identification can be performed for variable conditions. The model was tested for two different earthquakes of different frequencies, and the influence of the distribution of sensors along the length of the tunnel was also parametrically investigated. The test results were intentionally compromised by adding white Gaussian noise with a variance equal to that observed during ground motion. It was observed that for values ​​of α >3.0 (ie, when the effect of the shear beam is significant), the model parameters can be successfully recovered. Therefore, for such conditions, the proposed approach can be used to recover important tunnel dynamic properties (e.g., T1 or α) as well as soil-structure interaction by tracking kb changes after earthquakes. For values ​​< 3, a Bernoulli beam with a Winkler basis is a valid representation, while observing differences with a model involving a Pasternak basis are marginal. Scientific novelty: another approach to parametric system identification using simplified models. For tunnels, such models usually consist of beams on independent Winkler-type springs, including both numerical and analytical schemes. However, the seismic response of the continuum (i.e., soil) can be better modeled by including a transverse beam above the Winkler foundation, which allows interaction between individual springs, rather than using a single layer of independent springs. In geotechnical seismic resistance, a similar approach was used to assess the seismic response of pile foundations and retaining walls. Conclusions and practical challenge: different sensor distributions and reduced number of sensors did not lead to significant differences in the final results. This first shows that sensor position is not the dominant parameter for the case of five sensors along the length of the tunnel, fixed at both ends, and uniform soil conditions and other assumptions made in the paper. Further tests should be performed on real data and sensors to examine the impact of other aspects such as sensor noise. Key words: winkler springs, soil; soil; model; system identification algorithm is presented.
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隧道反力对地面运动的简化模型
目的:采用模态叠加的方法对由winkler型弹簧支承的弯曲梁和剪力梁连接的简化模型进行响应分析。目的:建立基于winkler型弹簧支撑的伯努利梁与剪力梁耦合的简化模型,用于系统识别受地震地震动影响的隧道。引入了模型公式,导出了模态特征方程和模态振型的封闭解。研究方法:介绍了模型的表达式,导出了模态特性方程和模态振型方程的封闭解。数值模型的结果验证了后者的正确性。然后提出了一种系统识别算法,证明了当隧道沿线记录的加速度时间间隔受到噪声干扰和传感器位置变化时,该算法能够恢复模型参数。所提出的框架可用于在有监测数据的情况下初步和简单地恢复隧道响应,或用于规划新建或现有隧道的监测活动。主要结果:利用简单的遗传算法和所提出的简化模型,可以对可变条件进行系统辨识。对两种不同频率的地震模型进行了测试,并对传感器沿隧道长度分布的影响进行了参数化研究。通过添加方差等于地面运动时观察到的高斯白噪声,故意破坏了测试结果。结果表明,当α >3.0时(即剪切梁的影响显著时),模型参数可以成功恢复。因此,在这种情况下,所提出的方法可以通过跟踪地震后kb的变化来恢复重要的隧道动力特性(例如T1或α)以及土-结构相互作用。对于< 3的值,具有Winkler基的伯努利梁是有效的表示,而与涉及帕斯捷尔纳克基的模型的观察差异是微不足道的。科学新颖性:使用简化模型进行参数系统辨识的另一种方法。对于隧道,这种模型通常由独立的温克勒型弹簧上的梁组成,包括数值格式和解析格式。然而,连续体(即土壤)的地震反应可以通过在Winkler基础上方包括横向梁来更好地建模,这允许单个弹簧之间的相互作用,而不是使用单层独立弹簧。在岩土工程抗震方面,采用了类似的方法来评估桩基础和挡土墙的地震反应。结论和实际挑战:不同的传感器分布和减少的传感器数量并不会导致最终结果的显著差异。这首先表明,对于沿隧道长度设置5个传感器、两端固定、土壤条件均匀等假设,传感器位置不是主要参数。应对真实数据和传感器进行进一步测试,以检查传感器噪声等其他方面的影响。关键词:温克勒泉;土壤;土壤;模型;给出了系统辨识算法。
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