Javascript must be enabled to continue!
Development of a fiber optic sensor for hydrogen monitoring in transformers
View through CrossRef
<p>Electric vehicles and photovoltaic power generation are two of factors that are increasing the demands on the electrical grid. To cope with these challenges and to improve grid stability, the development of a transformer monitoring system as a fundamental part of the smart grid is necessary. Dissolved hydrogen in the transformer oil can serve as a primary indicator of the transformer health. Depending on the hydrogen concentration and rate of increase the transformer can be diagnosed. The goal of this thesis was to develop a highly sensitive hydrogen sensor for online health monitoring of transformers. The developed sensors are based on palladium and fiber Bragg gratings (FBG). Palladium expands with hydrogen absorption and this expansion is measured with an FBG. Detailed guidance for optimizing the sensor design is given. First, the selection of the working temperature is discussed. Second, the influence of the palladium geometry on the sensitivity is elaborated: by varying the cross-sectional area ratio of palladium to fiber the sensitivity can be tuned. Two different options to attach palladium are discussed: vapour deposition of palladium and adhesive bonding of palladium foils. The sensitivity of the palladium foil sensors was improved by improved manufacturing processes. The foil sensor have a sensitivity of up to 295 pm/% hydrogen and a resolution of 0.006% hydrogen in gas atmosphere at 90◦C and 1060 mbar. To further increase the hydrogen sensitivity two concepts for amplification of the signal are presented. One relies on palladium silver foils, which have an increased hydrogen solubility and therefore expansion compared to pure palladium, which achieved an increase in sensitivity of a factor of 17. This leads to sensitivity of over 4500 pm/% hydrogen, which is the most sensitive hydrogen sensor reported so far. The other concept relies on a novel concept for strain concentration using a pre-strained palladium foil and FBG, which achieved an amplification of a factor of 2.5. The sensors were characterised in gas and oil environment in a newly developed setup which is stable in pressure, temperature and gas concentration. In gas the sensors were tested at 60, 75, 90, 105, and 120◦C and for a hydrogen concentration range of 0.01 (100 ppm) to 5%. In oil the sensor was tested at 90◦C and for a hydrogen concentration range of 5- 4000 ppm dissolved hydrogen. Furthermore, the influence of carbon monoxide (CO) on the hydrogen sensitivity was examined. A slowed response could be observed, but CO had no impact on the precision of the sensor. Finally, the hydrogen calibration of the sensor is discussed by investigating the strain transfer between expanding palladium and fiber. Three different methods are elaborated to determine the coefficient of strain transfer: (a) via hydrogen measurement, (b) via temperature measurement, and (c) via strain measurement. Methods (a) and (b) were applied directly on the hydrogen sensor, and gave similar results. Method (c) was applied on a reference structure and used to verify method (b). A hydrogen sensor suitable for transformer health monitoring has been developed and characterised, and is currently being implemented in a transformer in the New Zealand network.</p>
Title: Development of a fiber optic sensor for hydrogen monitoring in transformers
Description:
<p>Electric vehicles and photovoltaic power generation are two of factors that are increasing the demands on the electrical grid.
To cope with these challenges and to improve grid stability, the development of a transformer monitoring system as a fundamental part of the smart grid is necessary.
Dissolved hydrogen in the transformer oil can serve as a primary indicator of the transformer health.
Depending on the hydrogen concentration and rate of increase the transformer can be diagnosed.
The goal of this thesis was to develop a highly sensitive hydrogen sensor for online health monitoring of transformers.
The developed sensors are based on palladium and fiber Bragg gratings (FBG).
Palladium expands with hydrogen absorption and this expansion is measured with an FBG.
Detailed guidance for optimizing the sensor design is given.
First, the selection of the working temperature is discussed.
Second, the influence of the palladium geometry on the sensitivity is elaborated: by varying the cross-sectional area ratio of palladium to fiber the sensitivity can be tuned.
Two different options to attach palladium are discussed: vapour deposition of palladium and adhesive bonding of palladium foils.
The sensitivity of the palladium foil sensors was improved by improved manufacturing processes.
The foil sensor have a sensitivity of up to 295 pm/% hydrogen and a resolution of 0.
006% hydrogen in gas atmosphere at 90◦C and 1060 mbar.
To further increase the hydrogen sensitivity two concepts for amplification of the signal are presented.
One relies on palladium silver foils, which have an increased hydrogen solubility and therefore expansion compared to pure palladium, which achieved an increase in sensitivity of a factor of 17.
This leads to sensitivity of over 4500 pm/% hydrogen, which is the most sensitive hydrogen sensor reported so far.
The other concept relies on a novel concept for strain concentration using a pre-strained palladium foil and FBG, which achieved an amplification of a factor of 2.
5.
The sensors were characterised in gas and oil environment in a newly developed setup which is stable in pressure, temperature and gas concentration.
In gas the sensors were tested at 60, 75, 90, 105, and 120◦C and for a hydrogen concentration range of 0.
01 (100 ppm) to 5%.
In oil the sensor was tested at 90◦C and for a hydrogen concentration range of 5- 4000 ppm dissolved hydrogen.
Furthermore, the influence of carbon monoxide (CO) on the hydrogen sensitivity was examined.
A slowed response could be observed, but CO had no impact on the precision of the sensor.
Finally, the hydrogen calibration of the sensor is discussed by investigating the strain transfer between expanding palladium and fiber.
Three different methods are elaborated to determine the coefficient of strain transfer: (a) via hydrogen measurement, (b) via temperature measurement, and (c) via strain measurement.
Methods (a) and (b) were applied directly on the hydrogen sensor, and gave similar results.
Method (c) was applied on a reference structure and used to verify method (b).
A hydrogen sensor suitable for transformer health monitoring has been developed and characterised, and is currently being implemented in a transformer in the New Zealand network.
</p>.
Related Results
Dynamic stochastic modeling for inertial sensors
Dynamic stochastic modeling for inertial sensors
Es ampliamente conocido que los modelos de error para sensores inerciales tienen dos componentes: El primero es un componente determinista que normalmente es calibrado por el fabri...
Optical Reservoir Instrumentation System
Optical Reservoir Instrumentation System
I. Introduction
Fiber optic sensors are opening up new capabilities for sensing a wide range of parameters, such as pressure, temperature, vibration, flow, acoust...
Testing XLE For Cost Savings in the DJ Basin: A Fiber Optic Case Study
Testing XLE For Cost Savings in the DJ Basin: A Fiber Optic Case Study
Abstract
Historically, Great Western Petroleum has been an operator focused on efficiency without much focus on altering completion designs. Based on the successes o...
Neuritis optik idiopatik dengan penyerta central serous chorioretinopathy sebagai manifestasi chronic relapsing inflammatory optic neuropathy: Sebuah laporan kasus
Neuritis optik idiopatik dengan penyerta central serous chorioretinopathy sebagai manifestasi chronic relapsing inflammatory optic neuropathy: Sebuah laporan kasus
Introduction: Idiopathic optic neuritis is an optic neuropathy with characteristics of optic nerve dysfunction that can be caused by various disorders of the optic nerve, including...
Clinical features of COVID-19-related optic neuritis: a retrospective study
Clinical features of COVID-19-related optic neuritis: a retrospective study
ObjectiveThis retrospective study aimed to investigate the clinical features of optic neuritis associated with COVID-19 (COVID-19 ON), comparing them with neuromyelitis optica-asso...
CREATION OF A STRUCTURAL MODEL OF AN POWER TRANSFORMERS IN THE FORM OF AC TRANSFORMING COMPLEXES
CREATION OF A STRUCTURAL MODEL OF AN POWER TRANSFORMERS IN THE FORM OF AC TRANSFORMING COMPLEXES
Due to the multiple transformation of electrical energy, the rated capacity of power transformers can be 8 or more times the rated generation capacity. Therefore, the state of reli...
Application of Optical Sensors in Deepwater Environments
Application of Optical Sensors in Deepwater Environments
Abstract
Fiber optic sensors are currently being deployed in novel completions throughout the world. The first completions being targeted are wells where specific...
ASSESSMENT OF FIBER OPTIC SENSOR TECHNOLOGIES FOR REAL-TIME STRUCTURAL HEALTH MONITORING OF CIVIL ENGINEERING INFRASTRUCTURE
ASSESSMENT OF FIBER OPTIC SENSOR TECHNOLOGIES FOR REAL-TIME STRUCTURAL HEALTH MONITORING OF CIVIL ENGINEERING INFRASTRUCTURE
Structural health monitoring (SHM) has emerged as a critical strategy for ensuring the safety, durability, and sustainability of civil engineering infrastructure such as bridges, d...

