Barış Karadeniz, Mert Bezcioglu, C. O. Yigit, A. Dindar, B. Akpınar
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In the study, RT DF-PPP (Real Time Dual Frequency-Precise Point Positioning) method was applied together with a GPS sensor with a sampling interval of 20 Hz, using a steel bar mounted on a steel tree model designed as a structure model, and a steel bar on which different sensors can be integrated and can provide simulation of vertical motions in detecting vertical motions occurring in structures. To evaluate the performance of the method used and to test the performance of capturing vertical displacements, the DF-RP (Dual Frequency-Relative Positioning) method was taken as reference and the results were compared with the PP-PPP (Post Process-PPP) method using the IGS-Final (International GNSS Service-Final) product. When the results are compared with the RP and PP-PPP solutions in the frequency domain of vertical motions as a result of harmonic oscillations of the high-rate RT-PPP method, it has been seen that the amplitudes and frequencies are compatible with each other. Therefore, dynamic motions that occur as a result of natural events such as earthquakes, tsunamis, landslides and volcanic eruptions can be instantly and reliably monitored and detected by the high-rate RT-PPP method. When the results were evaluated in the time domain, an improvement was observed in the RMSE (Root Mean Square Error) and maximum values of RT-PPP and PP-PPP methods according to RP after filtering. When the statistical results are examined, vertical harmonic motions of the solutions made by using both RT-PPP and PP-PPP methods can be detected with accuracy below centimeters. These results clearly show that it can detect vertical dynamic motions in engineering structures such as bridges, skyscrapers and viaducts with RT-PPP method to evaluate. 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引用次数: 0
摘要
如今,随着全球卫星导航系统(GNSS)技术的发展,全球定位系统(GPS)接收机的数据存储和数据处理能力逐渐提高。这种情况被广泛应用于高时分辨大地GPS接收机在地壳运动、风荷载、交通荷载等影响人工工程结构的动荷载作用下,对结构内部发生的水平和垂直振动进行检测和监测。本研究采用RT DF-PPP (Real Time Dual Frequency-Precise Point Positioning,实时双频精确点定位)方法,结合采样间隔为20 Hz的GPS传感器,将一根钢筋安装在设计为结构模型的钢树模型上,并在一根钢筋上集成不同的传感器,可以模拟垂直运动,检测结构中发生的垂直运动。为了评估所使用方法的性能并测试捕获垂直位移的性能,以DF-RP(双频相对定位)方法为参考,并使用IGS-Final(国际GNSS服务- final)产品将结果与PP-PPP (Post Process-PPP)方法进行比较。将结果与高速率RT-PPP方法在谐波引起的垂直运动频域的RP和PP-PPP解进行比较,可以看出幅值和频率是兼容的。因此,由于地震、海啸、滑坡和火山爆发等自然事件而发生的动态运动,可以通过高速率的RT-PPP方法进行即时、可靠的监测和检测。在时域评价结果时,RT-PPP和PP-PPP方法的均方根误差RMSE (Root Mean Square Error)和最大值根据RP滤波后有所改善。在对统计结果进行检验时,RT-PPP和PP-PPP两种方法得到的溶液的垂直谐波运动都可以检测到厘米以下的精度。这些结果清楚地表明,RT-PPP方法可以检测桥梁、摩天大楼和高架桥等工程结构的垂直动力运动。因此,通过检测结构中发生的动力运动对结构健康的影响,通过对生命安全进行快速危害评估,提供安全的环境。
High-rate real-time PPP for dynamic motion detection in vertical direction
Nowadays, with the developments in GNSS (Global Navigation Satellite System) technology, the data storage and data processing capacity of GPS (Global Positioning System) receivers has been gradually increased. This situation is widely used in the detection and monitoring of horizontal and vertical vibrations that occur in the structure when high temporal resolution geodetic GPS receivers are under the influence of dynamic loads such as earth crust motions, wind load, traffic load, which affect man-made engineering structures. In the study, RT DF-PPP (Real Time Dual Frequency-Precise Point Positioning) method was applied together with a GPS sensor with a sampling interval of 20 Hz, using a steel bar mounted on a steel tree model designed as a structure model, and a steel bar on which different sensors can be integrated and can provide simulation of vertical motions in detecting vertical motions occurring in structures. To evaluate the performance of the method used and to test the performance of capturing vertical displacements, the DF-RP (Dual Frequency-Relative Positioning) method was taken as reference and the results were compared with the PP-PPP (Post Process-PPP) method using the IGS-Final (International GNSS Service-Final) product. When the results are compared with the RP and PP-PPP solutions in the frequency domain of vertical motions as a result of harmonic oscillations of the high-rate RT-PPP method, it has been seen that the amplitudes and frequencies are compatible with each other. Therefore, dynamic motions that occur as a result of natural events such as earthquakes, tsunamis, landslides and volcanic eruptions can be instantly and reliably monitored and detected by the high-rate RT-PPP method. When the results were evaluated in the time domain, an improvement was observed in the RMSE (Root Mean Square Error) and maximum values of RT-PPP and PP-PPP methods according to RP after filtering. When the statistical results are examined, vertical harmonic motions of the solutions made by using both RT-PPP and PP-PPP methods can be detected with accuracy below centimeters. These results clearly show that it can detect vertical dynamic motions in engineering structures such as bridges, skyscrapers and viaducts with RT-PPP method to evaluate. Thus, by detecting the effects of dynamic motions occurring in the structure on the health of the structure, a safe environment will be provided by making a rapid hazard assessment for life safety.