Resin impregnation detection device, coil for rotating machine, and method for impregnating and molding resin of coil for rotating machine
10416004 ยท 2019-09-17
Assignee
Inventors
- Michihito Matsumoto (Chiyoda-ku, JP)
- Kazushi SEKINE (Chiyoda-ku, JP)
- Ichiya Takahashi (Chiyoda-ku, JP)
Cpc classification
G01N21/41
PHYSICS
H02K15/12
ELECTRICITY
G01N21/7743
PHYSICS
G01F23/00
PHYSICS
G01D5/353
PHYSICS
G02B6/00
PHYSICS
International classification
G01D5/353
PHYSICS
H01F27/40
ELECTRICITY
G01F23/00
PHYSICS
G01L1/24
PHYSICS
G02B6/00
PHYSICS
G01N21/41
PHYSICS
H02K15/12
ELECTRICITY
Abstract
A resin impregnation detection device configured to detect resin impregnation in a resin impregnation process for a coil insulation layer. The resin impregnation detection device can be inserted in a narrow portion, is capable of detecting impregnation with a liquid resin, and does not leave metal foreign materials other than an optical fiber in a product even after the resin impregnation. The resin impregnation detection device includes an optical fiber including an FBG sensor, and a coating resin, which coats the FBG sensor. The coating resin includes a resin to be softened by contact with a detection target resin. The FBG sensor is applied with a compressive strain caused by cure shrinkage of the coating resin or heat shrinkage thereof from a curing temperature to a normal temperature.
Claims
1. A resin impregnation detection device, comprising: an optical fiber including at least one Fiber Bragg Grating (FBG) sensor; and a coating resin, which is coated by applying a compressive strain to the FBG sensor when being cured, wherein the coating resin includes a resin to be softened by contact with a solvent included in a detection target resin, and wherein the resin impregnation detection device is configured to detect impregnation with the detection target resin by the FBG sensor, which is configured to detect, when the compressive strain applied to the FBG sensor is released during the softening, a change in a Bragg wavelength caused by the release of the compressive strain.
2. The resin impregnation detection device according to claim 1, wherein the compressive strain of the coating resin is caused by cure shrinkage of the coating resin or heat shrinkage of the coating resin from a curing temperature to a normal temperature.
3. The resin impregnation detection device according to claim 2, wherein the optical fiber includes a plurality of FBG sensors having different Bragg wavelengths.
4. The resin impregnation detection device according to claim 2, wherein the optical fiber includes a protection coating, which coats a portion of the optical fiber other than the FBG sensor, and wherein a diameter of the coating resin is the same or substantially the same as a diameter of the protection coating.
5. The resin impregnation detection device according to claim 2, wherein a coating portion of the coating resin is only a half surface of the FBG sensor in a circumferential direction of the FBG sensor.
6. The resin impregnation detection device according to claim 1, wherein the optical fiber includes a plurality of FBG sensors having different Bragg wavelengths.
7. The resin impregnation detection device according to claim 6, wherein the optical fiber includes a protection coating, which coats a portion of the optical fiber other than the FBG sensor, and wherein a diameter of the coating resin is the same or substantially the same as a diameter of the protection coating.
8. The resin impregnation detection device according to claim 6, wherein a coating portion of the coating resin is only a half surface of the FBG sensor in a circumferential direction of the FBG sensor.
9. The resin impregnation detection device according to claim 1, wherein the optical fiber includes a protection coating, which coats a portion of the optical fiber other than the FBG sensor, and wherein a diameter of the coating resin is the same or substantially the same as a diameter of the protection coating.
10. The resin impregnation detection device according to claim 9, wherein a coating portion of the coating resin is only a half surface of the FBG sensor in a circumferential direction of the FBG sensor.
11. The resin impregnation detection device according to claim 1, wherein a coating portion of the coating resin is only a half surface of the FBG sensor in a circumferential direction of the FBG sensor.
12. The resin impregnation detection device according to claim 1, wherein the coating resin coats the FBG sensor, and parts other than the FBG sensor of the optical fiber are coated with a protection coating such that the protection coating is absent over the FBG sensor.
13. A coil for a rotating machine, comprising the resin impregnation detection device of claim 1 disposed between a coil conductor of the coil and an insulation tape, which forms a coil insulation layer on an outer side of the coil conductor.
14. The coil for a rotating machine according to claim 13, wherein the resin impregnation detection devices are disposed at a plurality of portions between the coil conductor of the coil and the insulation tape, and between layers of the insulation tape.
15. A resin impregnation molding method for a coil for a rotating machine, the resin impregnation molding method comprising: disposing the resin impregnation detection device of claim 1 at at least one portion, and winding an insulation tape around a coil conductor of the coil, the at least one portion being at least one of a portion between the coil conductor and the insulation tape, which forms a coil insulation layer on an outer side of the coil conductor, and a portion between layers of the insulation tape; and continuing resin impregnation with an impregnated resin until all of the disposed resin impregnation detection devices detect the resin impregnation.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(21) Now, a resin impregnation detection device, a coil for a rotating machine, and a resin impregnation molding method for a coil for a rotating machine according to each of the embodiments of the present invention are described with reference to drawings. The same or corresponding portions are denoted by the same reference symbols in each of the embodiments, and overlapping description thereof is omitted.
(22) First Embodiment
(23)
(24) The coating resin 3 is a resin to be softened by a solvent. When the resin impregnation detection device 1 is applied to detection of resin impregnation in a coil of a power generator or the like, a narrow insulation tape is required to be impregnated with a detection target resin. Therefore, the resin includes the solvent as a reactive diluent to achieve low viscosity. Examples of such a resin include a styrene resin and an acrylic resin. The coating resin 3 is one of those resins that are softened by contact with a solvent. Examples of the coating resin 3 include an acrylic resin, a vinyl chloride resin, a polystyrene resin, and a polyvinyl alcohol resin. The coating resin 3 is only required to be a resin to be softened by contact with a solvent, and a resin type is not particularly limited. An appropriate resin is selected in accordance with the detection target resin, more specifically, a type of a solvent of the resin.
(25) Next, a method of detecting resin impregnation by the resin impregnation detection device according to the first embodiment is described with reference to
(26)
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(30) The optical fiber 2 illustrated in
(31) For example, regarding the sizes, the diameter of the core 6 is approximately 10 m, the diameter of the clad 7 is approximately 125 m, and the entire diameter of the optical fiber 2 including the core 6, the clad 7, and the protection coating 4 is approximately 250 m. The FBG sensor 5 is formed over a range of approximately 5 mm in the core 6 along an axial direction of the optical fiber 2.
(32) As illustrated in
(33) A relationship among a Bragg wavelength .sub.B, which is a center wavelength of the reflection spectrum in
.sub.B=2n(1)
(34) The effective refractive index n depends on temperature, and the cycle depends on temperature and strain. Consequently, when the strain occurs in the FBG sensor 5, the Bragg wavelength .sub.B changes based on Expression (1), and hence it is possible to detect the strain.
(35) The strain detecting system 50 illustrated in
(36) When the strain is to be detected, the optical circulator 8, which is configured to convert an optical path, is connected to a base end of the resin impregnation detection device 1. The optical circulator 8 is connected to the amplified spontaneous emission (ASE) light source 9, which is a broadband light source, and the optical wavelength meter 10, which is a wavelength measurement device. This system can measure the Bragg wavelength .sub.B, and can detect the strain based on the change in the Bragg wavelength .sub.B. When the strain is applied in advance to the FBG sensor 5 and this strain is released during resin impregnation, the strain detecting system illustrated in
(37) Next, a method of manufacturing the resin impregnation detection device 1 according to the first embodiment is described with reference to
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(42) As illustrated in
(43) After the FBG sensor 5 is exposed, the uncured coating resin 3a is applied around the FBG sensor 5 as illustrated in
(44) A magnitude of the remaining compressive strain is determined based on a cure shrinkage ratio or a linear expansion coefficient of the coating resin 3, and, in addition, an elastic modulus. The large magnitude of the remaining strain is preferred in order to precisely detect the strain change. As a type of the coating resin 3, a resin having a high cure shrinkage ratio or a linear expansion coefficient, and, in addition, a high elastic modulus is more suitable.
(45) Next, a resin impregnation detecting method to be performed by the resin impregnation detection device 1 is described with reference to
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(48) In a state before the resin impregnation process, in a coil 100 for a rotating machine, for example, a power generator, a plurality of layers of the insulation tape 12 are wound around the coil conductor 11 to form coil insulation layers. As illustrated in
(49) When the innermost layer is filled with the impregnated resin 13, the coating resin 3 of the resin impregnation detection device 1 is softened by contact with the solvent contained in the impregnated resin 13. The compressive strain remains on the FBG sensor 5 of the resin impregnation detection device 1 as described above. Consequently, when the coating resin 3 is softened, the compressive strain is released as indicated by the arrow CS in
(50) A coil provided with the resin impregnation detection device 1 between the coil conductor 11 and the insulation tape 12 is heated and subjected to press molding after the resin impregnation. Both the impregnated resin 13 and the coating resin 3 are integrally formed into an insulation layer. Consequently, coil characteristics are not influenced.
(51) The resin impregnation detection device employing this configuration can be inserted in a narrow portion, is capable of detecting impregnation with a liquid resin, and does not leave metal foreign materials other than the optical fiber in a product even after the resin impregnation.
(52) Second Embodiment
(53) A resin impregnation detection device according to a second embodiment of the present invention differs from the resin impregnation detection device according to the first embodiment in an application range of the coating resin 3. The resin impregnation detection device according to the second embodiment has the same configuration as that of the first embodiment other than the application range of the coating resin 3.
(54) A method of manufacturing a resin impregnation detection device 1 according to the second embodiment is described with reference to
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(57) When the uncured coating resin 3a is applied only to the half surface of the FBG sensor 5 in the circumferential direction around the FBG sensor 5 as illustrated in
(58) The optical fiber 2 has a high elastic modulus, and depending on the type of the coating resin 3, it is difficult to apply a sufficient compressive strain to the FBG sensor 5 by cure shrinkage. In such a case, by causing the optical fiber 2 to bend by the above-mentioned method, it is possible to apply the compressive strain to the FBG sensor 5.
(59) Similarly to the first embodiment, the resin impregnation detection device employing this configuration can be inserted in a narrow portion, is capable of detecting impregnation with a liquid resin, and does not leave foreign materials other than the optical fiber in a product even after the resin impregnation.
(60) Third Embodiment
(61) A resin impregnation detection device according to a third embodiment of the present invention differs from the resin impregnation detection device according to the first embodiment in positions and the number of resin impregnation detection devices to be disposed. The resin impregnation detection device according to the third embodiment has the same configuration as that of the first embodiment other than the positions and the number of the resin impregnation detection device to be disposed.
(62) A resin impregnation detecting method for the resin impregnation detection device according to the third embodiment is described with reference to
(63)
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(65) As illustrated in
(66) When, for example, the coil 100 for a rotating machine is to be formed with use of the resin impregnation detection device 1 in the resin impregnation forming method for a coil for a rotating machine according to the present invention, as illustrated in
(67) Next, as illustrated in
(68) Similarly to the first embodiment, the resin impregnation detection device employing this configuration can be inserted in a narrow portion, is capable of detecting impregnation with a liquid resin, and does not leave metal foreign materials other than the optical fiber in a product even after the resin impregnation.
(69) Fourth Embodiment
(70) A resin impregnation detection device according to a fourth embodiment of the present invention differs from the resin impregnation detection device according to the first embodiment in the number of FBG sensors included in the resin impregnation detection device, and includes a plurality of FBG sensors. The resin impregnation detection device according to the fourth embodiment has the same configuration as that of the first embodiment other than the number of FBG sensors.
(71) The resin impregnation detection device according to the fourth embodiment is described with reference to
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(75) As illustrated in
(76) In the resin impregnation process for a coil 100 for a rotating machine, impregnation with the impregnated resin 13 takes place from an outer side to an inner side, and, at the same time, the impregnated resin 13 moves from a coil end to a center, that is, in a horizontal direction from left to right in
(77) In resin impregnation molding, it is only required to be determined that resin impregnation is reliably completed, and it may not necessarily required to be determined immediately after impregnation that the resin impregnation is completed. Even in a case where, for example, a time taken for softening is approximately several minutes, when the time required for softening in each FBG sensor is the same or substantially the same, it is possible to monitor an impregnation situation based on a difference between the times.
(78) Similarly to the first embodiment, the resin impregnation detection device employing this configuration can be inserted in a narrow portion, is capable of detecting impregnation with a liquid resin, and does not leave metal foreign materials other than the optical fiber in a product even after the resin impregnation.
(79) Fifth Embodiment
(80) A resin impregnation detection device according to a fifth embodiment of the present invention differs from the resin impregnation detection device according to the first embodiment in that the diameter of the coating resin of the resin impregnation detection device differs, and the diameter of the coating resin and the diameter of the protection coating are the same or substantially the same. The resin impregnation detection device according to the fifth embodiment has the same configuration as that of the first embodiment other than the diameter of the coating resin.
(81) A resin impregnation detection device 1 according to the fifth embodiment is described with reference to
(82)
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(84) Whether or not the resin impregnation detection device 1d can be inserted in a narrow portion is determined based on the diameter of the coating resin 3 and the diameter of the protection coating 4. From the viewpoint of applying a remaining strain to the FBG sensor 5, the diameter of the coating resin 3 is preferred to be large. However, when the diameter of the coating resin 3 is increased too much, the coating resin 3 may not be inserted to the narrow portion. The diameter of the protection coating 4 is determined at a point in time at which the optical fiber 2 has been purchased, and therefore is difficult to adjust by oneself. Consequently, when the diameter of the coating resin 3 is made to be the same or substantially the same as the diameter of the protection coating 4 as illustrated in
(85) In a case where the resin impregnation detection device 1 according to the fifth embodiment is disposed between the coil conductor 11 and the insulation tape 12, when the diameter of the coating resin 3 is the same or substantially the same as the diameter of the protection coating 4, it is possible to minimize a gap t between the coil conductor 11 and the insulation tape 12 as illustrated in
(86) In each of the above-mentioned embodiments, the coating resin 3 is formed over the FBG sensor 5 and preset regions of the FBG sensor 5 on both sides in the axial direction of the optical fiber 2 to apply a great compressive strain to the FBG sensor 5. Those regions are defined as FBG sensor regions. The coating resin 3a shrinks when the temperature lowers from the curing temperature to the normal temperature as illustrated in
(87) When resin impregnation is to be detected, the resin impregnation detecting system employing the same configuration based on a configuration of a strain detecting system configured to detect a strain of the FBG sensor 5 as illustrated in
(88) As described above, according to the present invention, there is provided a resin impregnation detection device including: an optical fiber including at least one FBG sensor; and a coating resin, which is coated by applying a compressive strain to the FBG sensor when being cured, in which the coating resin includes a resin to be softened by contact with a detection target resin, and in which the resin impregnation detection device is configured to detect impregnation with the resin by the FBG sensor, which is configured to detect, when the compressive strain applied to the FBG sensor is released during the softening, a change in a Bragg wavelength caused by the release of the compressive strain.
(89) The compressive strain of the coating resin is caused by cure shrinkage of the coating resin or heat shrinkage thereof from a curing temperature to a normal temperature.
(90) Consequently, when the coating resin is softened by the contact with the detection target resin, the compressive strain applied to the FBG sensor is released. Through detection of a change in this strain, it is possible to detect resin impregnation.
(91) The optical fiber includes a plurality of the FBG sensors having different Bragg wavelengths.
(92) The resin impregnation detection device includes the plurality of FBG sensors, and hence can monitor a resin impregnation situation in an axial direction of a coil insulation layer.
(93) The optical fiber includes a protection coating, which coats a portion of the optical fiber other than the FBG sensor, and a diameter of the coating resin is the same or substantially the same as a diameter of the protection coating.
(94) Consequently, the diameter of the coating resin and the diameter of the protection coating are equivalent to each other. Therefore, the resin impregnation detection device can be inserted in any portion as long as the portion is a portion in which the optical fiber can be inserted.
(95) A coating portion of the coating resin is only a half surface of the FBG sensor in a circumferential direction of the FBG sensor.
(96) Consequently, by bending the optical fiber, it is possible to apply the compressive strain to the FBG sensor.
(97) Further, there is provided a coil for a rotating machine including the above-mentioned resin impregnation detection device disposed between a coil conductor of the coil and an insulation tape, which forms a coil insulation layer on an outer side of the coil conductor.
(98) Consequently, by disposing the resin impregnation detection device between the coil conductor and the insulation tape, it is possible to detect resin impregnation in the coil insulation layer.
(99) Further, there is provided a coil for a rotating machine including the above-mentioned resin impregnation detection devices disposed at a plurality of portions between a coil conductor of the coil and an insulation tape, which forms a coil insulation layer on an outer side of the coil conductor, and between layers of the insulation tape.
(100) Consequently, by disposing the resin impregnation detection devices at the plurality of portions, it is possible to monitor the resin impregnation situation in a thickness direction of the coil insulation layer.
(101) Further, there is provided a resin impregnation molding method for a coil for a rotating machine, the resin impregnation molding method including: disposing the above-mentioned resin impregnation detection device at at least one portion, and winding an insulation tape around a coil conductor of the coil, the at least one portion being at least one of a portion between the coil conductor and the insulation tape, which forms a coil insulation layer on an outer side of the coil conductor, and a portion between layers of the insulation tape; and continuing resin impregnation with an impregnated resin until all of the disposed resin impregnation detection devices detect the resin impregnation.
(102) Consequently, by continuing the resin impregnation until all resin impregnation detection devices detect the resin impregnation, it is possible to prevent a failure of the resin impregnation.
(103) The present invention is not limited to each of the above-mentioned embodiments and includes all possible combinations of those embodiments.
INDUSTRIAL APPLICABILITY
(104) The resin impregnation detection device, the coil for a rotating machine, and the resin impregnation molding method for a coil for a rotating machine according to the present invention are applicable to a large number of fields.
REFERENCE SIGNS LIST
(105) 1, 1a to 1d resin impregnation detection device, 2 optical fiber, 3, 3a coating resin, 4 protection coating, 5, 5a to 5c FBG sensor, 6 core, 7 clad, 8 optical circulator, 9 ASE light source, 10 optical wavelength meter, 11 coil conductor, 12 insulation tape, 13 impregnated resin, 50 strain detecting system, 100 coil for a rotating machine