We present an array of aluminum-coated fiber Bragg gratings (FBGs) inscribed in high-attenuation fibers capable of measuring the liquid level in a cryogenic environment. The sensors are heated by the optical energy propagating in fiber core that is absorbed in high-attenuation fibers. Thermal responses of Bragg gratings to liquid nitrogen level at 77 K were observed. Precise control over the light absorption and heated FBG temperatures of individual level sensors using high-attenuation fibers enables multipoint liquid nitrogen level sensing using a single fiber and a single fiber feedthrough
Fiber optics with a photo-imprinted Bragg grating have been studied for potential use as temperature...
The very low thermal expansion coefficient of silica at cryogenic temperature prevents the use of Fi...
At cryogenic temperature, a fiber Bragg grating (FBG) temperature sensor with controllable sensitivi...
We present an array of aluminum-coated fiber Bragg gratings (FBGs) inscribed in high-attenuation fib...
We present an array of aluminum-coated fiber Bragg gratings (FBGs) inscribed in high-attenuation fib...
We present a liquid level sensing system for cryogenic fluids based on an array of aluminum-coated f...
We present a new design of an all-fiber sensor system to enhance the low-temperature sensing perform...
We present a liquid level sensing system for cryogenic fluids based on an array of aluminum-coated f...
This letter demonstrates an approach for tuning fiber Bragg grating sensors with optical energy carr...
We present a continuous liquid level sensing system for both room temperature and cryogenic fluids w...
We present a continuous liquid level sensing system for both room temperature and cryogenic fluids w...
We describe a fiber-optic system to measure the liquid level inside a container. The technique is ba...
We describe a fiber-optic system to measure the liquid level inside a container. The technique is ba...
Commercially available fiber Bragg grating (FBG) sensors cannot be used for measuring cryogenic temp...
Fiber Bragg gratings (FBGs) are key components for optical sensing and communication. Traditionally,...
Fiber optics with a photo-imprinted Bragg grating have been studied for potential use as temperature...
The very low thermal expansion coefficient of silica at cryogenic temperature prevents the use of Fi...
At cryogenic temperature, a fiber Bragg grating (FBG) temperature sensor with controllable sensitivi...
We present an array of aluminum-coated fiber Bragg gratings (FBGs) inscribed in high-attenuation fib...
We present an array of aluminum-coated fiber Bragg gratings (FBGs) inscribed in high-attenuation fib...
We present a liquid level sensing system for cryogenic fluids based on an array of aluminum-coated f...
We present a new design of an all-fiber sensor system to enhance the low-temperature sensing perform...
We present a liquid level sensing system for cryogenic fluids based on an array of aluminum-coated f...
This letter demonstrates an approach for tuning fiber Bragg grating sensors with optical energy carr...
We present a continuous liquid level sensing system for both room temperature and cryogenic fluids w...
We present a continuous liquid level sensing system for both room temperature and cryogenic fluids w...
We describe a fiber-optic system to measure the liquid level inside a container. The technique is ba...
We describe a fiber-optic system to measure the liquid level inside a container. The technique is ba...
Commercially available fiber Bragg grating (FBG) sensors cannot be used for measuring cryogenic temp...
Fiber Bragg gratings (FBGs) are key components for optical sensing and communication. Traditionally,...
Fiber optics with a photo-imprinted Bragg grating have been studied for potential use as temperature...
The very low thermal expansion coefficient of silica at cryogenic temperature prevents the use of Fi...
At cryogenic temperature, a fiber Bragg grating (FBG) temperature sensor with controllable sensitivi...