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Prediction of Damping Capacity Demand in Seismic Base Isolators via Machine Learning
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作者 Ayla Ocak Umit Isıkdag +3 位作者 Gebrail Bekdas Sinan Melih Nigdeli sanghun kim ZongWoo Geem 《Computer Modeling in Engineering & Sciences》 SCIE EI 2024年第3期2899-2924,共26页
Base isolators used in buildings provide both a good acceleration reduction and structural vibration control structures.The base isolators may lose their damping capacity over time due to environmental or dynamic effe... Base isolators used in buildings provide both a good acceleration reduction and structural vibration control structures.The base isolators may lose their damping capacity over time due to environmental or dynamic effects.This deterioration of them requires the determination of the maintenance and repair needs and is important for the long-termisolator life.In this study,an artificial intelligence prediction model has been developed to determine the damage and maintenance-repair requirements of isolators as a result of environmental effects and dynamic factors over time.With the developed model,the required damping capacity of the isolator structure was estimated and compared with the previously placed isolator capacity,and the decrease in the damping property was tried to be determined.For this purpose,a data set was created by collecting the behavior of structures with single degrees of freedom(SDOF),different stiffness,damping ratio and natural period isolated from the foundation under far fault earthquakes.The data is divided into 5 different damping classes varying between 10%and 50%.Machine learning model was trained in damping classes with the data on the structure’s response to random seismic vibrations.As a result of the isolator behavior under randomly selected earthquakes,the recorded motion and structural acceleration of the structure against any seismic vibration were examined,and the decrease in the damping capacity was estimated on a class basis.The performance loss of the isolators,which are separated according to their damping properties,has been tried to be determined,and the reductions in the amounts to be taken into account have been determined by class.In the developed prediction model,using various supervised machine learning classification algorithms,the classification algorithm providing the highest precision for the model has been decided.When the results are examined,it has been determined that the damping of the isolator structure with the machine learning method is predicted successfully at a level exceeding 96%,and it is an effective method in deciding whether there is a decrease in the damping capacity. 展开更多
关键词 Vibration control base isolation machine learning damping capacity
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人体与体外防微尘附着评价方法的等同性研究
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作者 Jiyeon Han sanghun kim +2 位作者 Guihua Lin A Reum kim Eunjoo kim 《日用化学品科学》 CAS 2022年第8期27-30,64,共5页
开发了体外替代评价方法,并且确认了其是否与人体评价方法具有等同性。研究结果显示,使用在不同条件下(皮革的颜色、温度和干燥等)处理的人造皮革进行的体外实验和人体实验没有显著性差异(p>0.05),从而可以确认人体与体外方法之间具... 开发了体外替代评价方法,并且确认了其是否与人体评价方法具有等同性。研究结果显示,使用在不同条件下(皮革的颜色、温度和干燥等)处理的人造皮革进行的体外实验和人体实验没有显著性差异(p>0.05),从而可以确认人体与体外方法之间具有等同性。该体外评估方法经济、有效、安全,是评估防微尘附着功效的有效方法。 展开更多
关键词 防微尘 人造皮革体外替代评价方法 人体评价方法 等同性
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