CN215598585U - Optical fiber plane stress sensor with Taiji type structure - Google Patents

Optical fiber plane stress sensor with Taiji type structure Download PDF

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Publication number
CN215598585U
CN215598585U CN202122185082.XU CN202122185082U CN215598585U CN 215598585 U CN215598585 U CN 215598585U CN 202122185082 U CN202122185082 U CN 202122185082U CN 215598585 U CN215598585 U CN 215598585U
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optical fiber
sensor
type structure
plane stress
tai
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刘睿洋
康娟
申屠卓成
徐婷
王懿伟
王琛
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China Jiliang University
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China Jiliang University
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Abstract

The utility model discloses an optical fiber plane stress sensor with a Tai Chi type structure, which comprises a broadband light source, an optical fiber sensor with a Tai Chi type structure and a spectrometer, wherein the broadband light source is connected with the optical fiber plane stress sensor; the Tai Ji type structure optical fiber sensor is formed by connecting two echo walls in parallel, and is packaged in a sheet shape by using silicone colloid; when the measured object deforms, the Taiji-type structure optical fiber sensor attached to the surface of the measured object deforms correspondingly, so that the spectrum output by the sensor drifts, and the plane stress of the measured object can be sensed by monitoring the spectrum change condition. The utility model has the advantages of simple and compact structure, high mechanical strength, measurable planar stress and the like.

Description

Optical fiber plane stress sensor with Taiji type structure
Technical Field
The utility model belongs to the field of optical fiber sensing, and particularly relates to an optical fiber plane stress sensor with a Taiji structure.
Background
In the process of coating the thin device, due to differences in process reasons and sizes and properties of various materials, the device is deformed and bent due to plane stress and the like, and the reliability of the device is adversely affected. For example, in the manufacture of semiconductor devices, due to the difference of the thermal expansion coefficients of the substrate material and the coating material, the respective plane stresses are different, so that the devices are warped, and the warped chips affect the performance of the semiconductor devices and even cause rejection. Therefore, detection of deformation of the thin device due to planar stress is important.
Although there are some temperature cross influence factors, common optical fiber stress sensors, such as fiber bragg grating, fabry-perot cavity, mach-zehnder interferometer, etc., can better realize stress measurement along the axial direction of the optical fiber, i.e., one-dimensional stress measurement. For the deformation detection of the thin device caused by the plane stress, the size and the direction of the plane stress are often required to be measured and judged, so that the optical fiber plane stress sensor which is simple in structure and small in influence of the change of the environmental temperature is developed for the deformation detection of the thin device caused by the plane stress, and the optical fiber plane stress sensor has high application value.
SUMMERY OF THE UTILITY MODEL
The utility model aims to provide an optical fiber plane stress sensor with a Tai Chi type structure, which senses the change of the plane stress to be measured by using the interference spectrum change generated by a echo wall structure in the optical fiber sensor. Meanwhile, the silicone colloid is used for carrying out sheet packaging on the sensor, so that the mechanical strength of the sensor is increased, the heat insulation characteristic of the silicone colloid reduces the cross influence of temperature, and the planar stress sensing measurement is better realized.
The technical scheme adopted by the utility model is as follows:
an optical fiber plane stress sensor with a Taiji type structure is characterized by comprising a broadband light source (1), an optical fiber sensor (2) with a Taiji type structure and a spectrometer (3); the output end of the broadband light source (1) is connected with the input end of the optical fiber sensor (2) with the Tai Chi type structure, and the output end of the optical fiber sensor (2) with the Tai Chi type structure is connected with the input end of the spectrometer (3).
The Tai Chi type structure optical fiber sensor (2) is formed by connecting echo walls 1(6) and 2(7) in parallel, the inner diameters of the two echo walls are both 7mm, the two echo walls are fixed by glass sleeves 1(4) and 2(5), and the glass sleeves are both 0.5cm long and 0.5mm in inner diameter.
The Taiji type optical fiber structure sensor (2) carries out sheet-shaped packaging through the silicone colloid (8), the packaging thickness is not more than 4mm, and the area can be determined according to the condition of a measured object.
The working principle of the utility model is as follows:
when a broadband light source is led into the echo wall structure from the single-mode optical fiber, a part of light can be separated from the fiber core and transmitted to the cladding, if the external refractive index is smaller than the refractive index of the cladding and the radius of the echo wall structure is proper, total reflection can be generated at the interface of the outside and the cladding, and the echo wall mode is formed. After the transmitted light passes through the echo wall structure, the light transmitted to the cladding is coupled back to the fiber core, and interferes with the light of the fiber core. Peak wavelength lambdamCan be expressed as:
Figure DEST_PATH_GDA0003414664710000021
in the formula: l iseffRepresenting the effective bending length, Δ n, of the echo wall structureeffRepresenting the difference in the effective refractive index of the core and cladding, and m represents a positive integer equal to 0, 1, 2 ….
From equation (1), it can be seen that when the effective bending length of the echo wall structure is changed, the peak wavelength of the interference spectrum shifts. When the measured object deforms, the Taiji type structure optical fiber sensor attached to the surface of the measured object deforms, so that the effective bending length of the echo wall structure changes, the peak wavelength correspondingly drifts, different sensitivities can be shown in different stress directions, and the size and the direction of the plane stress of the measured object can be reversely deduced through the drift amount and the sensitivities of the wavelength.
The utility model has the beneficial effects that:
1. the utility model is formed by connecting two echo walls in parallel, has simple and compact structure and low cost, not only can realize lower stress detection limit, but also can detect the stress action area in a plane.
2. Compared with the existing optical fiber sensors of the same type, the optical fiber sensor has higher mechanical strength.
3. The use of silicone gel encapsulation can effectively avoid temperature cross-effects.
Drawings
Fig. 1 is a schematic diagram of a fiber optic planar stress sensor in a tai chi configuration.
Detailed Description
The utility model is further described below with reference to the accompanying drawings.
As shown in fig. 1, an optical fiber plane stress sensor with a tai chi type structure is characterized by comprising a broadband light source (1), an optical fiber sensor (2) with a tai chi type structure and a spectrometer (3); the output end of the broadband light source (1) is connected with the input end of the optical fiber sensor (2) with the Tai Chi type structure, and the output end of the optical fiber sensor (2) with the Tai Chi type structure is connected with the input end of the spectrometer (3). The Tai-polar structure optical fiber sensor (2) is formed by connecting echo walls 1(6) and 2(7) in parallel, the inner diameters of the two echo walls are both 7mm, the two echo walls are fixed by glass sleeves 1(4) and 2(5), and the glass sleeves are both 0.5cm long and 0.5mm inner diameter. The Tai-polar optical fiber structure sensor (2) is packaged in a sheet shape through silicone colloid (8), the packaging thickness is not more than 4mm, and the area can be determined according to the condition of a measured object.
According to the method, the Taiji type structure optical fiber sensor (2) is attached to the surface of a measured object to sense the plane stress change of the surface of the measured object, when the measured object deforms, the peak wavelength of an interference spectrum output by the sensor can correspondingly drift, the drift sensitivity is different due to different stress directions, and the size and the direction of the plane stress of the measured object can be obtained by demodulating the change condition of the interference spectrum. The optical fiber plane stress sensor has the advantages of compact structure and simple operation, and can be used for quickly and accurately measuring the plane stress of a thin device.

Claims (3)

1. An optical fiber plane stress sensor with a Taiji type structure is characterized by comprising a broadband light source (1), an optical fiber sensor (2) with a Taiji type structure and a spectrometer (3); the output end of the broadband light source (1) is connected with the input end of the optical fiber sensor (2) with the Tai Chi type structure, and the output end of the optical fiber sensor (2) with the Tai Chi type structure is connected with the input end of the spectrometer (3).
2. The fiber optic planar strain sensor of claim 1, wherein: the Tai-polar structure optical fiber sensor (2) is formed by connecting echo walls 1(6) and 2(7) in parallel, the inner diameters of the two echo walls are both 7mm, the two echo walls are fixed by glass sleeves 1(4) and 2(5), and the two glass sleeves are both 0.5cm long and 0.5mm in inner diameter.
3. The fiber optic planar strain sensor of claim 1, wherein: the Tai-Ji structure optical fiber sensor (2) is packaged in a sheet shape through silicone colloid (8), the packaging thickness is not more than 4mm, and the area can be determined according to the condition of a measured object.
CN202122185082.XU 2021-09-10 2021-09-10 Optical fiber plane stress sensor with Taiji type structure Expired - Fee Related CN215598585U (en)

Priority Applications (1)

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CN202122185082.XU CN215598585U (en) 2021-09-10 2021-09-10 Optical fiber plane stress sensor with Taiji type structure

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Application Number Priority Date Filing Date Title
CN202122185082.XU CN215598585U (en) 2021-09-10 2021-09-10 Optical fiber plane stress sensor with Taiji type structure

Publications (1)

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CN215598585U true CN215598585U (en) 2022-01-21

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