利用压电传感器开发疲劳寿命监测创新扩展程序

Aliakbar Ghaderiaram , Reza Mohammadi , Erik Schlangen , Mohammad Fotouhi
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引用次数: 0

摘要

工程结构,如桥梁、风力涡轮机、飞机、船舶、建筑物和海上平台,经常会因环境因素和运行条件而承受不确定的动态载荷。对这些结构的载荷谱缺乏了解给设计带来了挑战,可能导致过度设计或灾难性故障。这项研究引入了一种坚固耐用的创新设备,类似于结构的 "Fitbit",能够测量结构整个生命周期内的复杂载荷条件。所提出的方法包括开发一个中间件(称为 "扩展"),以促进机械变形向压电传感器的转移。这种方法克服了将压电传感器直接连接到结构表面所面临的挑战,例如在较高应变下可能发生断裂以及连接到粗糙表面。可行性研究主要侧重于验证扩展性能和监测变化趋势。最终目标是开发一个能够测量外加循环载荷的物联网(IoT)传感器节点。为实现这一目标,将开发一个电子系统和嵌入式软件,以捕捉复杂的载荷频谱,并将其转换为疲劳损伤指数,用于预测结构的疲劳寿命。收集到的数据将通过无线通信平台传送给用户。所建议的传感器设计用途广泛,既可连接,也可嵌入,在此演示用于监测工程结构的疲劳情况。
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Development of an Innovative Extension for Fatigue Life Monitoring Using a Piezoelectric Sensor

Engineering structures, such as bridges, wind turbines, airplanes, ships, buildings, and offshore platforms, often experience uncertain dynamic loadings due to environmental factors and operational conditions. The lack of knowledge about the load spectrum for these structures poses challenges in terms of design and can lead to either over-engineering or catastrophic failure. This research introduces a robust and innovative device, analogous to a "Fitbit" for structures, capable of measuring complex loading conditions throughout the structure's lifespan. The proposed approach involves developing a middleware, referred to as an "extension," which facilitates the transfer of mechanical deformation to a piezoelectric sensor. This approach overcomes challenges associated with directly attaching piezoelectric sensors to the structure's surface such as rupture possibility in higher strain and attaching on rough surfaces. The feasibility study primarily focuses on validating the performance of the extension and monitoring variation trends. The ultimate objective is to develop an Internet of Things (IoT) sensor node capable of measuring applied cyclic loads. To achieve this goal, an electronic system and embedded software will be developed to capture the complex load spectrum and convert it into a fatigue damage index for predicting the structure's fatigue life. The collected data will be transmitted to the user through a wireless communication platform. The proposed sensor design is versatile, allowing for both attachment and embedding and is demonstrated here for monitoring fatigue in engineering structures.

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Editorial Editorial Preface Editorial Strain measurement consistency of distributed fiber optic sensors for monitoring composite structures under various loading
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