A carbon nanotube strain sensor for structural health monitoring
Датчик деформации на основе углеродных нанотрубок для мониторинга технического состояния конструкций
2006-04-25
SCID: 54.1/tmy4srks
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biomimetic artificial neuroncarbon nanotube strain sensorelectrochemical impedance spectroscopypiezoresistive strain sensorstructural health monitoring
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Abstract (AI)
A carbon nanotube polymer material was used to form a piezoresistive strain sensor for structural health monitoring applications. The polymer improves the interfacial bonding between the nanotubes. Previous single walled carbon nanotube buckypaper sensors produced distorted strain measurements because the van der Waals attraction force allowed axial slipping of the smooth surfaces of the nanotubes. The polymer sensor uses larger multi-walled carbon nanotubes which improve the strain transfer, repeatability and linearity of the sensor. An electrical model of the nanotube strain sensor was derived based on electrochemical impedance spectroscopy and strain testing. The model is useful for designing nanotube sensor systems. A biomimetic artificial neuron was developed by extending the length of the sensor. The neuron is a long continuous strain sensor that has a low cost, is simple to install and is lightweight. The neuron has a low bandwidth and adequate strain sensitivity. The neuron sensor is particularly useful for detecting large strains and cracking, and can reduce the number of channels of data acquisition needed for the health monitoring of large structures.
Key Findings
1
A carbon nanotube–polymer composite forms a piezoresistive strain sensor for structural health monitoring.
2
An electrical sensor model derived from electrochemical impedance spectroscopy and strain testing supports nanotube sensor-system design.
3
Extending the sensor creates a low-cost, lightweight, easy-to-install biomimetic artificial neuron suitable for detecting large strains and cracking while reducing data-acquisition channels.
4
Larger multi-walled carbon nanotubes improve strain transfer, measurement repeatability, and sensor linearity.
5
The neuron has low bandwidth but adequate strain sensitivity for structural health monitoring applications.
6
The polymer improves interfacial bonding between nanotubes, preventing axial slipping that distorted measurements in single-walled nanotube buckypaper sensors.
Research Object
A carbon nanotube polymer piezoresistive strain sensor for structural health monitoring
Research Subject
Strain-transfer performance, measurement repeatability and linearity, electrical behavior, and crack-detection capability of the sensor
Publication Details
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2006-04-25
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