Experimental Investigation on the Transfer Behavior and Environmental Influences of Low-Noise Integrated Electronic Piezoelectric Acceleration Sensors

Author:

Bartels Jan-Hauke1ORCID,Xu Ronghua1,Kang Chongjie1,Herrmann Ralf2ORCID,Marx Steffen1ORCID

Affiliation:

1. Institute of Concrete Structures, TUD Dresden University of Technology, 01062 Dresden, Germany

2. Division 7.2 Buildings and Structures, Federal Institute of Materials Research and Testing (BAM), 12205 Berlin, Germany

Abstract

Acceleration sensors are vital for assessing engineering structures by measuring properties like natural frequencies. In practice, engineering structures often have low natural frequencies and face harsh environmental conditions. Understanding sensor behavior on such structures is crucial for reliable measurements. The research focus is on understanding the behavior of acceleration sensors in harsh environmental conditions within the low-frequency acceleration range. The main question is how to distinguish sensor behavior from structural influences to minimize errors in assessing engineering structure conditions. To investigate this, the sensors are tested using a long-stroke calibration unit under varying temperature and humidity conditions. Additionally, a mini-monitoring system configured with four IEPE sensors is applied to a small-scale support structure within a climate chamber. For the evaluation, a signal-energy approach is employed to distinguish sensor behavior from structural behavior. The findings show that IEPE sensors display temperature-dependent nonlinear transmission behavior within the low-frequency acceleration range, with humidity having negligible impact. To ensure accurate engineering structure assessment, it is crucial to separate sensor behavior from structural influences using signal energy in the time domain. This study underscores the need to compensate for systematic effects, preventing the underestimation of vibration energy at low temperatures and overestimation at higher temperatures when using IEPE sensors for engineering structure monitoring.

Funder

German Research Foundation

German Federal Ministry for Economic Affairs and Climate Action

Publisher

MDPI AG

Subject

General Medicine

Reference51 articles.

1. Botz, M., Oberlaender, S., Raith, M., and Grosse, C. (2016, January 5–8). Monitoring of Wind Turbine Structures with Concrete-steel Hybrid-tower Design. Proceedings of the 8th European Workshop on Structural Health Monitoring (EWSHM 2016), Bilbao, Spain.

2. Assessment of masonry arch railway bridges using non-destructive in-situ testing methods;Gutermann;Eng. Struct.,2009

3. Verringerung der Versagenswahrscheinlichkeit von Brücken durch experimentelle Traglastversuche;Proske;Bautechnik,2021

4. Monitoring of Stresses in Concrete Using Ultrasonic Coda Wave Comparison Technique;Hafiz;J. Nondestruct. Eval.,2018

5. Rizzo, P., and Enshaeian, A. (2021). Challenges in Bridge Health Monitoring: A Review. Sensors, 21.

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