OPTICAL FIBER-BASED SENSOR MODULE AND STRAIN SENSOR DEVICE COMPRISING THE SAME
20230102450 · 2023-03-30
Assignee
Inventors
Cpc classification
G02B6/262
PHYSICS
International classification
G01L1/24
PHYSICS
Abstract
The present disclosure relates to a sensor module for measuring a displacement occurring in a sensor by a confocal principle, a strain sensor device comprising the same, and a method for measuring a strain in a target using the same. Specifically, the sensor module according to an embodiment of the present disclosure includes a first single-mode optical fiber, a first GRIN optical fiber, a multi-mode optical fiber, a second GRIN optical fiber and a second single-mode optical fiber connected in an axial direction, wherein light inputted through the first single-mode optical fiber is transmitted to the second single-mode optical fiber through the series of optical fibers, and light forming a focal point in the core of the second single-mode optical fiber is detected using a confocal principle.
Claims
1. An optical fiber-based sensor module for sensing a strain in a target, comprising: a first single-mode optical fiber; a first gradient-index (GRIN) optical fiber; a multi-mode optical fiber; a second GRIN optical fiber; and a second single-mode optical fiber continuously coupled in an axial direction, wherein the first GRIN optical fiber is configured to receive light input to the first single-mode optical fiber and output it in a form of a parallel beam; the multi-mode optical fiber is configured to transmit the parallel beam of light to the second GRIN optical fiber; and the second GRIN optical fiber is configured to output the received light to form a focal point in the second single-mode optical fiber (15).
2. The sensor module according to claim 1, wherein each optical fiber includes a core and a cladding which covers the core, the light input to the first single-mode optical fiber is transmitted through the cores of the optical fibers, and only light forming a focal region in the core of the second single-mode optical fiber is inputted to the second single-mode optical fiber.
3. The sensor module according to claim 2, wherein the optical fibers further include a flexible protective coating configured to cover the cladding.
4. A strain sensor device using an optical fiber-based strain sensor module device, comprising: a light source to generate a laser light; a coupler connected to the light source to receive the laser light and output it into first light and second light; a first detector connected to the coupler to receive the first light and measure an intensity of the first light; a sensor module including a first single-mode optical fiber; a first GRIN optical fiber; a multi-mode optical fiber; a second GRIN optical fiber; and a second single-mode optical fiber continuously coupled in an axial direction, wherein the first single-mode optical fiber is connected to the coupler to receive the second light, and the second single-mode optical fiber receives at least part of the second light; and a second detector connected to the second single-mode optical fiber to receive the light outputted from the second single-mode optical fiber and measure an intensity of the light.
5. The strain sensor device according to claim 4, wherein the first GRIN optical fiber receives the light input to the first single-mode optical fiber and outputs it in a form of a parallel beam, the multi-mode optical fiber transmits the parallel beam of light to the second GRIN optical fiber, and the second GRIN optical fiber outputs the received light to form a focal point in the second single-mode optical fiber.
6. The strain sensor device according to claim 5, wherein each optical fiber includes a core and a cladding which covers the core, the light input to the first single-mode optical fiber is transmitted through the cores of the optical fibers, and only light forming the focal point in the core is inputted to the second single-mode optical fiber.
7. The strain sensor device according to claim 6, wherein the optical fibers further include a flexible protective coating configured to cover the cladding.
8. The strain sensor device according to claim 4, further comprising: an information processing device to calculate a curvature occurred in the sensor module by processing measurement data of the first detector and the second detector.
9. A strain sensor device using an optical fiber-based strain sensor module device, comprising: a light source to generate a laser light; a coupler connected to the light source to receive the laser light and output it into first light and second light; a first detector connected to the coupler to receive the first light and measure an intensity of the first light; a circulator including port A connected to the coupler to receive the second light; port B to which the light input to the port A is transmitted; and port C to which the light input to the port B is transmitted; the sensor module including a first single-mode optical fiber; a first GRIN optical fiber; a multi-mode optical fiber; a second GRIN optical fiber; and a second single-mode optical fiber continuously coupled in an axial direction, wherein the first single-mode optical fiber is connected to the port B of the circulator to receive the second light and the second single-mode optical fiber is a free end type having a reflection member at an end; and a second detector connected to the second single-mode optical fiber to receive the light outputted from the second single-mode optical fiber and measure an intensity of the light.
10. A method for sensing a strain in a target using an optical fiber-based strain sensor module device, the method comprising: generating and outputting, by a light source, a laser light; outputting, by a coupler, the laser light into first light and second light; receiving, by a first detector, the first light and measuring an intensity of the first light; transmitting, by the sensor module, the second light input to a first single-mode optical fiber to a second single-mode optical fiber; outputting, by the second single-mode optical fiber, the input light forming a focal point in a core of the second single-mode optical fiber; and receiving, by a second detector, the light outputted from the second single-mode optical fiber and measuring an intensity of the light.
11. The method according to claim 10, wherein transmitting, by the sensor module, the second light input to the first single-mode optical fiber to the second single-mode optical fiber comprises: receiving, by the first single-mode optical fiber, the second light and outputting it to a first GRIN optical fiber; outputting, by the first GRIN optical fiber, the received light to a multi-mode optical fiber in a form of a parallel beam; receiving, by the multi-mode optical fiber, the parallel beam of light and outputting it to a second GRIN optical fiber; and outputting, by the second GRIN optical fiber, the received light to form a focal point in the second single-mode optical fiber.
12. The method according to claim 10, further comprising: calculating, by an information processing device, a curvature occurred in the sensor module by processing measurement data of the first detector and the second detector.
13. A method for sensing a strain in a target using an optical fiber-based strain sensor module device, the method comprising: generating and outputting, by the light source, a laser light; outputting, by the coupler, the laser light into first light and second light; measuring, by the first detector, an intensity of the first light; receiving, by the circulator, the second light through the port A and outputting it to the sensor module through the port B; transmitting, by the sensor module, the second light input to the first single-mode optical fiber to the second single-mode optical fiber; outputting, by the second single-mode optical fiber, the input light forming a focal point in the core of the second single-mode optical fiber; allowing the light outputted from the second single-mode optical fiber to be reflected by the reflection member, pass through the sensor module and be inputted again through the port B; outputting, by the circulator, the reflected light inputted through the port B to the port C; and receiving, by the second detector, the reflected light and measuring an intensity of the reflected light.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020]
[0021]
[0022]
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[0031]
DETAILED DESCRIPTION
[0032] Hereinafter, exemplary embodiments of the present disclosure will be described in more detail with reference to the accompanying drawings. Although the present disclosure is described with reference to the embodiments shown in the drawings, it is described as an embodiment, and the technical spirit of the present disclosure and its essential elements and operations are not limited thereby.
[0033] The term “target” as used herein refers to an object such as a human, an animal, a machine and a robot in which a sensor module according to embodiments of the present disclosure may be used to sense strains. The term “confocal principle” as used herein refers to a principle of sensing a strain in the target by forming two focal points in an optical fiber and detecting a change in light intensity measurement when a displacement occurs between the two focal points. The term “measurement data of a first detector and a second detector” as used herein refers to intensity data of first light and second light measured by the first detector and the second detector, respectively.
[0034]
[0035] The sensor module 1 of the present disclosure is configured to sense the strain in the target by measuring all physical quantities that may cause the strain to occur in the target, and the present disclosure will be described with regard to embodiments of measuring the physical quantities, particularly, a curvature. The strain sensor device 100 of the present disclosure is configured to sense the strain in the target by detecting a change in intensity of light outputted from the sensor module 1 by the confocal principle and calculating the curvature using the optical fiber-based sensor module 1.
[0036] Hereinafter, the sensor module 1 will be described first.
[0037] In an embodiment, as shown in
[0038] The optical fibers of the sensor module 1 may include a core which extends in the lengthwise direction and guides light, and a cladding which covers the outer circumference of the core and is made of a material having a smaller refractive index than the core. In the drawings, the core, the cladding and the coating of the first single-mode optical fiber 11 are indicated as 110, 115 and 117 respectively, the core and the cladding of the first GRIN optical fiber 12 are indicated as 120 and 125 respectively, the core and the cladding of the multi-mode optical fiber 13 are indicated as 130 and 135 respectively, the core and the cladding of the second GRIN optical fiber 14 are indicated as 140 and 145 respectively, and the core, the cladding and the coating of the second single-mode optical fiber 15 are indicated as 150, 155 and 157 respectively. Additionally, in the drawings, light is indicated as I.
[0039] Due to a difference in refractive index between the core and the cladding of each optical fiber, a laser light input to the first single-mode optical fiber 11 propagates with repeated total reflection at the boundary and exits the second single-mode optical fiber 15. In this embodiment, the light propagation direction is a direction from the first single-mode optical fiber 11 toward the second single-mode optical fiber 15, but may be the contrary direction. By the sensor module 1 of the present disclosure, the precision and repeatability of measurements is superior over the conventional optical fiber-based sensors such as the power loss without using a single-mode optical fiber.
[0040] The first and second GRIN optical fibers 12, 14 are a type of multi-mode optical fiber having the increasing refractive index as it goes toward the center of the core, and act as a lens that converges or diverges the received light. In this embodiment, the first GRIN optical fiber 12 diverges the second light received from the first single-mode optical fiber 11 and outputs it in the form of a parallel beam as shown in
[0041] Depending on the length settings of the first GRIN optical fiber 12, the first GRIN optical fiber 12 may output the parallel beam of light that is less divergent or more divergent than this embodiment. In this case, the second GRIN optical fiber 14 focuses light less or more than this embodiment to form a focal region rather than a point in the second single-mode optical fiber 15.
[0042] Hereinafter, the method for sensing the strain in the target by the confocal principle will be described. As shown in
[0043]
L=R.Math.θ,C=1/R,θ=L.Math.C [Equation 1]
Δd=f.Math.tan θ [Equation 2]
[0044] Hereinafter, embodiments of the strain sensor device 100 including the sensor module 1 of the present disclosure will be described with reference to the accompanying drawings.
[0045] Strain Sensor Device of First Embodiment
[0046] As shown in
[0047] The light source 3 may be a fiber-coupled laser connected to the coupler 4 through the optical fiber. In the embodiments of the present disclosure, the coupler 4 includes, for example, the coupler 4 that splits the laser light received from the light source 3 at a 50:50 ratio, but the above-described ratio may be differently set.
[0048] As shown in
[0049] In the embodiments of the present disclosure, the strain sensor device 100 may further include an information processing device 8 to store the light intensity measurements by the first detector 6 and the second detector 7 (or “the measurement data of the first and second detectors 6, 7”), and calculate the displacement Δd and curvature occurred in the sensor module 1 from the measurements. The information processing device 8 may be electrically connected to each of the first detector 6 and the second detector 7. The information processing device 8 may be an Analog-to-Digital Convertor (ADC).
[0050] The “ratio value” as used herein is defined as a ratio D2/D1 of the light intensity D2 measured by the second detector 7 to the light intensity D1 measured by the first detector 6. The ratio value indicates the coupling efficiency with which light is fed into the core of the optical fiber. The ratio value may be calculated by the following Equation 3.
[0051] Here, W.sub.0 is the half of the Mode Field Diameter (MFD) which is a diameter of optical energy propagating in the single-mode optical fiber.
[0052] The curvature C occurred in the sensor module 1 may be calculated by the following Equation 4 using the ratio value.
[0053] When the strain in the target increases, the displacement Δd at the sensor module 1 increases and the curvature C increases. In this instance, the light intensity measured by the second detector 7 decreases, and the ratio value, i.e., the coupling efficiency decreases.
[0054]
[0055] The increasing curvature graph is a curvature-sensor value graph when the curvature of the sensor module 1 increases, and the decreasing curvature graph is a curvature-sensor value graph when the curvature of the sensor module 1 decreases. The curvature-sensor value indicates linearity, and in particular, the increasing curvature graph and the decreasing curvature graph almost match, so there is almost no hysteresis in the sensor value with the increasing or decreasing curvature C.
[0056]
[0057] The ratio value to the curvature C, i.e., the slope of the graph, indicates the sensitivity of the sensor. As shown in
[0058] Strain Sensor Device of Second Embodiment
[0059]
[0060] In this embodiment, the strain sensor device 100 may further include a circulator 5 between the coupler 4 and the sensor module 1. The end of the second single-mode optical fiber 15 may be a free end having a reflection member 160 as shown in
[0061] The reflection member 160 may be formed, for example, in the form of a reflection coating processed as shown in
[0062] In this embodiment, the circulator 5 is a device configured to allow light input at port A to exit through port B and light input at the port B to exit through port C. The circulator 5 may include the port A and the port C at an end and the port B at the opposite end. In this embodiment, the port A is connected to the coupler 4 to receive the second light. The port B outputs the second light received through the port A, and receives the reflected light returning through the sensor module 1. The port C is connected to the second detector 7 with the optical fiber to output the reflected light to the second detector 7.
[0063] Specifically, the second light outputted through the port B is outputted toward the end of the second single-mode optical fiber 15 through the sensor module 1. Subsequently, the reflected light generated by the reflection by the reflection member 160 provided at the end of the second single-mode optical fiber 15 is inputted to the port B again through the first single-mode optical fiber 11 via the sensor module 1. The structure in which the second light passes through the sensor module 1 is the same as described above.
[0064] Referring back to
[0065]
[0066]
[0067] As shown in
[0068] The step S50 is a step of transmitting the second light input to the first single-mode optical fiber 11 of the sensor module 1 to the second single-mode optical fiber 15, and outputting, by the second single-mode optical fiber 15, the input light forming the focal point in the core of the second single-mode optical fiber 15. More specifically, the step of transmitting, by the sensor module 1, the second light input to the first single-mode optical fiber 11 to the second single-mode optical fiber 15 may include receiving, by the first single-mode optical fiber 11, the second light and outputting it to the first GRIN optical fiber 12; outputting, by the first GRIN optical fiber 12, the received light to the multi-mode optical fiber 13 in the form of a parallel beam; receiving, by the multi-mode optical fiber, the parallel beam of light and outputting it to the second GRIN optical fiber 14; and outputting, by the second GRIN optical fiber 14, the received light to form the focal point in the second single-mode optical fiber 15.
[0069] As shown in
[0070] The step S40 is a step of receiving, by the circulator 5, the second light through the port A and outputting it to the sensor module 1 through the port B. The step S50 has been described in the above-described measurement method using the strain sensor device 100 of the first embodiment, and is not repeatedly described herein.
[0071] In the step S60, specifically, the light inputted through the core of the second single-mode optical fiber 15 of the sensor module 1 is reflected by the reflection member 160 provided at the end, and the generated reflected light passes through the optical fibers of the sensor module 1 running from the second single-mode optical fiber 15 to the first single-mode optical fiber 11 in a sequential order and is inputted to the port B of the circulator 5 again.
[0072] The step S65 is a step in which the reflected light inputted through the port B of the circulator 5 is outputted to the second detector 7 through the port C of the circulator 5, and the step S80 is a step of receiving, by the second detector 7, the reflected light and measuring the intensity.
[0073] Although the present disclosure illustrate and describe the exemplary embodiments, the present disclosure is not limited to the above-described particular embodiments, and a variety of modifications may be made to the embodiments by those having ordinary skill in the technical field pertaining to the present disclosure without departing from the claimed subject matter of the appended claims, and such modified embodiments are not understood apart from the technical spirit of the present disclosure.