OPTICAL FIBER PROBE FOR MEASURING LOCAL TWO-PHASE FLOW PARAMETERS, METHOD OF MANUFACTURING THE OPTICAL FIBER, AND METHOD OF MEASURING TWO-PHASE FLOW PARAMETERS
20220206033 · 2022-06-30
Assignee
Inventors
- Byong-Jo YUN (Busan, KR)
- Taeho KIM (Busan, KR)
- Byeonggeon BAE (Busan, KR)
- Taehwan AHN (Busan, KR)
- Jaejun JEONG (Busan, KR)
- Kyungdoo KIM (Incheon, KR)
Cpc classification
G01P5/26
PHYSICS
G01P5/001
PHYSICS
International classification
G01P5/00
PHYSICS
G01P5/26
PHYSICS
Abstract
A method of manufacturing an optical fiber probe includes: stretching one end of the optical fiber in an axial direction thereof to form a first tapered portion in a first conical shape in which a diameter is gradually decreased toward a leading end of the optical fiber probe at a first ratio in an axial direction of the optical fiber probe to a point spaced a predetermined distance from a point fixed to a probe holder; and immersing and etching an end of the first tapered portion in an etching solution to form a second tapered portion formed in a second conical shape in which a diameter is gradually decreased at a second ratio greater than the first ratio in the axial direction from an end of the first tapered portion to form the leading end of the optical fiber probe.
Claims
1. A method of manufacturing an optical fiber probe for measuring parameters of a local two-phase flow of a liquid phase fluid and a gas phase fluid, the method comprising: (S1) stretching one end of the optical fiber in an axial direction thereof to form a first tapered portion in a first conical shape in which a diameter is gradually decreased toward a leading end of the optical fiber probe at a first ratio in an axial direction of the optical fiber probe to a point spaced a predetermined distance from a point fixed to a probe holder; and (S2) immersing and etching an end of the first tapered portion in an etching solution to form a second tapered portion formed in a second conical shape in which a diameter is gradually decreased at a second ratio greater than the first ratio in the axial direction from an end of the first tapered portion to form the leading end of the optical fiber probe.
2. The method of claim 1, wherein the etching solution includes a hydrofluoric acid solution.
3. The method of claim 1, wherein the step of (S2) includes forming an angle 13.5° between an outer surface of the second tapered portion and a central axis of the second tapered portion.
4. The method of claim 1, wherein the step of (S2) includes forming a length of the second tapered portion smaller than a length of the first tapered portion.
5. The method of claim 1, further comprising coating an outer surface of an optical fiber of the optical fiber probe excluding the first tapered portion and the second tapered portion with a polymer.
6. The method of claim 1, further comprising plating an outer surface of an optical fiber of the optical fiber probe excluding the first tapered portion and the second tapered portion with a conductive metal.
7. The method of claim 1, further comprising preparing the optical fiber including a core and a cladding surrounding the core, before the step of (S1)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0031] Embodiments described herein and configurations illustrated in the drawings are merely exemplary examples of the present invention, and various modified examples that may substitute for the embodiments and the drawings of the present specification may exist at the time of filing the present application.
[0032] Hereinafter, an optical fiber probe for measuring parameters of a local two-phase flow, a method of manufacturing the optical fiber probe, and a method of measuring a fluid velocity using the probe will be described with reference to the accompanying drawings through embodiments to be described below. Like reference numerals indicate like elements throughout the drawings.
[0033]
[0034] When the measuring device is introduced into a flow path of a two-phase flow to perform a measuring operation, the probe head 1 is a portion which is held and supported by a person's hand or fixed to another fixing structure. The probe head 1 is manufactured so as to connect the optical fiber probe 10 to a laser oscillating unit and a receiving unit without damage to the optical fiber probe 10.
[0035] The first guide tube 2 may be formed in the form of a tube, may be a support which guides the optical fiber probe 10 into the flow path and supports the optical fiber probe 10, and may be made of a metal material such as stainless steel (SUS).
[0036] The second guide tube 3 has a diameter smaller than that of the first guide tube 2 and is bent in the approximate ¬ shape such that the optical fiber probe 10 is disposed in a flow direction. A connection portion between the first guide tube 2 and the second guide tube 3 is fixed and sealed with epoxy or silver solder.
[0037] The probe holder 4 is connected to a leading end of the second guide tube 3 and fixedly supports an end of the optical fiber probe 10 exposed to the outside. The probe holder 4 has a hole which has a size corresponding to a diameter of the optical fiber probe 10 and through which the optical fiber probe 10 passes. The optical fiber probe 10 is fixed to the probe holder 4 by epoxy or silver solder. The optical fiber probe 10 may have a structure in which a coating material 10c is applied on an outer surface of an optical fiber made of a quartz material. The optical fiber includes a core 10a and cladding 10b surrounding an outer surface of the core 10a.
[0038] A portion of the optical fiber probe 10 excluding a first tapered portion 11 and a second tapered portion 12 exposed to the outside of the probe holder 4 has a structure coated with the coating material 10c. A material of the coating material 10c varies according to a use temperature environment. In a case in which the coating material 10c is used at room temperature, the coating material 10c made of a polymer material is used. In this case, the optical fiber probe 10 is fixed to the probe holder 4 using a resin such as epoxy. The coating material 10c formed as a plated layer made of a conductive metal such as copper or gold is used at a high temperature. In this case, the optical fiber probe 10 may be fixed to the probe holder 4 using silver solder.
[0039] The optical fiber probe 10 is installed in a flow path of a two-phase flow of a liquid phase fluid and a gas phase fluid to perform a function of a sensor which measures factors such as an interface velocity, IAC, and a bubble fraction of the liquid phase fluid (for example, a droplet) or the gas phase fluid (for example, a bubble, air, or steam).
[0040] As shown in
[0041] An optical fiber portion of the optical fiber probe 10 excluding the first tapered portion 11 and the second tapered portion 12 has a diameter of about 125 μm (see
[0042] Since the first tapered portion 11 and the second tapered portion 12 have the same central axis but diameter decrease ratios, i.e., slopes thereof are different, an inflection point is formed at a boundary point between the first tapered portion 11 and the second tapered portion 12.
[0043] The first tapered portion 11 is formed by stretching the optical fiber probe 10 in the axial direction and is formed to be longer than the second tapered portion 12. An angle formed between the central axis and an outer surface of the first tapered portion 11 is smaller than an angle formed between the central axis and an outer surface of the second tapered portion 12. An angle formed between the central axis and the outer surface of the second tapered portion 12 may be less than or equal to 13.5°.
[0044] The second tapered portion 12 is formed into a conical shape through an etching process and constitutes the leading end of the optical fiber probe 10.
[0045] As confirmed from the rightmost graphs of
[0046] The optical fiber probe 10 may be manufactured as follows.
[0047] First, the first tapered portion 11 is formed by stretching one end of an optical fiber in an axial direction thereof. A stretching process of the optical fiber may be performed using a micro-laser puller.
[0048] Then, as shown in
[0049] Next, a method will be described which discriminates a liquid phase fluid (for example, a droplet) and a gas phase fluid (for example, a bubble) of a two-phase flow and measures a velocity among parameters of the liquid phase fluid or the gas phase fluid using the optical fiber probe 10 of the present invention.
[0050] In order to derive parameters of a local droplet and bubble in an electrical signal obtained from the optical fiber probe 10, it is necessary to accurately discriminate a liquid phase and a gas phase. When base heights of signals of the liquid phase and the gas phase are constant, the two phases may be discriminated based on a constant height of a curve of an output signal. However, a height of a base signal corresponding to a gas phase of a raw signal of
[0051] A signal of the optical fiber probe 10 is abruptly changed when of the optical fiber probe 10 passes through the interface of the droplet or bubble.
[0052] An interface of a phase may be detected using the first derivative and the second derivative of the electrical signal of the optical fiber probe 10, and a parameter of an interface velocity may be measured based on the detected interface.
[0053] An interface velocity may be measured through a local phase velocity measurement method using an artificial intelligence learning method.
[0054] Three pieces of measurement data including a change rate g.sub.rd of a signal generated when a phase (for example, a droplet) passes through a single optical fiber probe, an average time ΔT.sub.wet taken for the phase to pass through the optical fiber probe, and a phase fraction α.sub.d are used as input parameters of the artificial intelligence learning method of determining a phase velocity, and an interface velocity is obtained as an output parameter.
[0055] A procedure of the artificial intelligence learning method is as follows.
[0056] 1) Experimental data on an input data set g.sub.rd, ΔT.sub.wet, and α.sub.d and the output parameter, i.e., a droplet or bubble velocity are prepared for a calibration test.
[0057] 2) A relationship between data randomly obtained from the input data and the corresponding droplet or bubble velocity is modeled using Bayesian normalization.
[0058] 3) The learning model is evaluated using test data randomly extracted from the input data excluding the experimental data used for learning. A bias error calculated after the evaluation is defined by each test data item used as a weight of a subsequent operation.
[0059] 4) The learning model is validated against experimental data excluding learning data used in a given time operation. The results of validation are quantified using an R-squared value. When the R-squared value does not satisfy an allowable criterion, the learning of operation 2 is repeated.
[0060] 5) When the R-squared value satisfies a criterion, the learning is completed.
[0061] Thirty hidden neurons are provided in the artificial intelligence learning method, and a tangent sigmoid transfer function is used. A structure of a hidden layer is shown in
[0062] A convergence criterion of the artificial intelligence learning method is based on a mean square error, which is an average of squares of a deviation between a calculated value and a measured value of a velocity of a droplet or bubble.
[0063] Although the present invention has been described in detail above with reference to the embodiments, one of ordinary skill in the art to which the present invention pertains should be able to make various substitutions, additions, and modifications within the scope not departing from the above-described technical spirit, and such modified embodiments should also be understood as belonging to the scope of the present invention that is defined by the claims below.
TABLE-US-00001 Description of Reference Numerals 1: probe head 2: first guide tube 3: second guide tube 4: probe holder 10: optical fiber probe 10a: core 10b: cladding 10c: coating material 11: first tapered portion 12: second tapered portion