Inspection cable guide mechanism, drive device, inspection cable insertion jig, and gas turbine inspection system equipped with these

The inspection cable guide mechanism with a heat-resistant sheath and flexible segments, along with a drive device and insertion jig, addresses the challenge of inspecting gas turbines in high-temperature environments by ensuring cable integrity and precise positioning, facilitating effective turbine inspection.

JP7778311B2Active Publication Date: 2025-12-02MITSUBISHI HEAVY IND LTD +1
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Patent Information

Application Number
JP2022014939
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-02-02
Publication Date
2025-12-02
Estimated Expiration
2042-02-02

AI Technical Summary

Technical Problem

Existing inspection mechanisms struggle to inspect the inside of gas turbines in high-temperature environments due to the prolonged heat retention after operation, necessitating a solution that allows for inspection in such conditions.

Method used

An inspection cable guide mechanism with a heat-resistant sheath and flexible segments, along with a drive device and insertion jig, that enables inspection in high-temperature environments by using cooling air and flexible segments to adjust the inspection cable's position and posture, and a drive device to manipulate the inspection cable.

Benefits of technology

Enables effective inspection of gas turbines in high-temperature conditions by maintaining the integrity of the inspection cable and allowing for precise positioning and movement within the turbine.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a cable guide mechanism for inspection which can inspect the interior of an inspection object even under a high-temperature environment.SOLUTION: A cable guide mechanism for inspection comprises: a heat resistant sheath to which a cable can be inserted and which has such flexibility that the cooling air can flow through a gap between the cable and itself toward the tip; a segment laminate which is constructed by laminating a segment having the heat resistance covering the heat resistant sheath from the outer side in the center line direction; and a plurality of wires which are arranged around the heat resistant sheath and extend along the center line. One segment in the segment laminate can swing with respect to each of the two segments adjacent to the one segment with the swing axial line extending in the direction orthogonal to the center line as the center. The two swing axial lines becoming the center when the one segment swings with respect to each of the two segments are orthogonal to each other when viewed from the center line direction. On end of each wire is fixed to any segment in the segment laminate.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present disclosure relates to an inspection cable guide mechanism, a drive device, an inspection cable insertion jig, and a gas turbine inspection system including these. [Background technology]

[0002] For example, Patent Document 1 discloses a continuous arm robot section in which a plurality of segments, through which an inspection cable and a drive cable (wire) pass, are stacked and each segment is driven by the drive cable. This continuous arm robot section is used as a guide mechanism for the inspection cable to inspect the inside of an inspection object such as an aircraft engine. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] US Patent Application Publication No. 2020 / 0188042 Summary of the Invention [Problem to be solved by the invention]

[0004] When the object to be inspected is a gas turbine, the inside of the gas turbine remains extremely hot even after it has stopped operating. As a result, it may take time for the internal temperature to drop to a temperature that the guide mechanism can withstand. Therefore, it is required to be able to inspect the inside of the object to be inspected even in a relatively high-temperature environment.

[0005] The present disclosure has been made to solve the above-mentioned problems, and aims to provide an inspection cable guide mechanism, a drive device, an inspection cable insertion jig, and a gas turbine inspection system that are capable of inspecting the inside of an object to be inspected even in a high-temperature environment. [Means for solving the problem]

[0006] In order to solve the above-described problems, an inspection cable guide mechanism according to the present disclosure includes a heat-resistant sheath having flexibility, through which an inspection cable having a sensor at its tip can be inserted and through which cooling air can flow toward the tip through a gap between the sheath and the inspection cable inside the sheath, a segment stack formed by stacking three or more heat-resistant segments covering the heat-resistant sheath from the outside in a direction along which a center line of the inspection cable extends, and a plurality of wires arranged around the heat-resistant sheath and extending along the center line, wherein one of the segments other than the segments at both ends in the segment stack is capable of swinging relative to each of two segments adjacent to the one segment in the center line direction, about a swing axis extending in a direction perpendicular to the center line, and the two swing axes about which the one segment swings relative to each of the two segments are perpendicular to each other when viewed from the center line direction, and one end of each of the wires is fixed to one of the segments in the segment stack, The segment stack has a plurality of joint portions formed by stacking a plurality of the segments in the direction in which the center line extends, and each of the joint portions is bendable by three of the wires that are equally spaced in the circumferential direction around the center line, and the wires are arranged in inner regions of the segments in the radial direction around the center line. There are.

[0007] In addition, the driving device according to the present disclosure is a driving device that drives the inspection cable guide mechanism by pulling the wire in a direction away from the tip or unwinding it in a direction toward the tip, and includes a wire winding section around which the wire is wound, a rotary actuator connected to the wire winding section and having a motor that rotates the wire winding section in the winding direction of the wire around an axis, a pulley having a pulley body that changes the direction of the wire extending from the wire winding section toward the segment stack midway so that it follows the center line, and a support section that supports the pulley body, and a casing that can accommodate and support the wire winding section, rotary actuator, and pulley.

[0008] In addition, the inspection cable insertion jig according to the present disclosure is an inspection cable insertion jig that is connected to the inspection cable guide mechanism from the side opposite the tip and inserted into the inside of the object to be inspected together with the inspection cable guide mechanism, and includes a plurality of split pipes having a main body portion that is cylindrical and covers the heat-resistant sheath and the wire from the outside and is arranged at intervals from each other in the center line direction, and a sliding portion that is cylindrical and surrounds the main body portion from the outer periphery and is provided on the main body portion so as to be slidable in the center line direction, a plurality of half-split pipes that are semi-cylindrical and are arranged between adjacent main body portions so as to fill the space formed by the spacing between adjacent main body portions, and a screw that can fix the sliding portion to the main body portion of the split pipe adjacent to one of the plurality of split pipes in the center line direction when the sliding portion of one of the plurality of split pipes slides in the center line direction to cover the half-split pipe from the outside.

[0009] Furthermore, the inspection cable insertion jig according to the present disclosure is an inspection cable insertion jig that is connected to the inspection cable guide mechanism from the side opposite the tip and inserted into the inside of an object to be inspected together with the inspection cable guide mechanism, and includes a cable housing that allows the heat-resistant sheath to be inserted inside, has a plurality of divided bodies connected along the center line, and is bendable only in one direction, and a bending prevention member that is provided in the cable housing along the center line and prevents the cable housing from bending when fixed to the cable housing. Further, an inspection cable insertion jig according to the present disclosure includes a heat-resistant sheath having flexibility through which an inspection cable having a sensor at its tip can be inserted and through which cooling air can flow toward the tip through a gap between the inspection cable and the heat-resistant sheath inside the inspection cable insertion jig; a segment stack formed by stacking three or more heat-resistant segments covering the heat-resistant sheath from the outside in a direction along which a center line of the inspection cable extends; and a plurality of wires arranged around the heat-resistant sheath and extending along the center line, wherein one of the segments other than the segments at both ends in the segment stack is swingable relative to each of two segments adjacent to the one segment in the center line direction around a swing axis extending in a direction perpendicular to the center line, and the two swing axes about which the one segment swings relative to each of the two segments are perpendicular to each other when viewed from the center line direction, and one end of each of the wires is an inspection cable insertion jig connected to an inspection cable guide mechanism fixed to one of the segments in a segment stack from the side opposite the tip, and inserted into the inside of an object to be inspected together with the inspection cable guide mechanism; the inspection cable insertion jig comprising: a plurality of split pipes each having a cylindrical main body portion that covers the heat-resistant sheath and the wire from the outside and is arranged at intervals from each other in the center line direction; a cylindrical slide portion that surrounds the main body portion from the outer periphery and is provided on the main body portion so as to be slidable in the center line direction; a plurality of half-split pipes each having a semi-cylindrical shape and arranged between adjacent main body portions so as to fill the space formed by the gap between adjacent main body portions; and a screw that can fix the slide portion to the main body portion of the split pipe adjacent to one of the plurality of split pipes in the center line direction when the slide portion of one of the plurality of split pipes slides in the center line direction to cover the half-split pipe from the outside.

[0010] a control device that controls the rotation of the rotary actuator and the advance / retraction of the drive device by the advance / retract actuator; [Effects of the Invention]

[0011] According to the present disclosure, it is possible to provide an inspection cable guide mechanism, a drive device, an inspection cable insertion jig, and a gas turbine inspection system that are capable of inspecting the inside of an object to be inspected even in a high-temperature environment. [Brief explanation of the drawings]

[0012] [Figure 1] FIG. 1 is a schematic diagram illustrating a general configuration of a gas turbine according to an embodiment of the present disclosure. [Figure 2] 1 is a schematic diagram illustrating a general configuration of a gas turbine inspection system according to an embodiment of the present disclosure. FIG. [Figure 3] 3A and 3B are diagrams illustrating a configuration of an inspection cable guide mechanism according to the first embodiment of the present disclosure. [Figure 4] 1 is a diagram showing a gap formed between a heat-resistant sheath and an inspection cable according to the first embodiment of the present disclosure. FIG. [Figure 5] FIG. 2 is a diagram showing a configuration of a segment according to the first embodiment of the present disclosure. [Figure 6] FIG. 2A is a view of a segment according to a first embodiment of the present disclosure as viewed from the tip end side, and FIG. 2B is a view of a segment according to a first embodiment of the present disclosure as viewed from the rear end side. [Figure 7] 3A and 3B are diagrams illustrating the direction in which each segment swings when a plurality of segments according to the first embodiment of the present disclosure are stacked. [Figure 8] FIG. 2 is a view of a first segment according to the first embodiment of the present disclosure, viewed from the tip side. [Figure 9] FIG. 10 is a view of a second segment according to the first embodiment of the present disclosure, as viewed from the tip side. [Figure 10] FIG. 10 is a view of a third segment according to the first embodiment of the present disclosure, as viewed from the tip side. [Figure 11] FIG. 2 is a diagram showing a state when a segment stack according to the first embodiment of the present disclosure is curved. [Figure 12] FIG. 2 is a diagram illustrating a configuration of a drive device according to the first embodiment of the present disclosure. [Figure 13] 13 is a cross-sectional view taken along line XIII-XIII in FIG. 12. [Figure 14] 1A and 1B are diagrams illustrating a configuration of an inspection cable insertion jig according to a first embodiment of the present disclosure. [Figure 15] 3A to 3C are diagrams illustrating a method for inserting an inspection cable and an inspection cable guide mechanism into the turbine using the inspection cable insertion jig according to the first embodiment of the present disclosure. [Figure 16] 3A to 3C are diagrams illustrating an assembly procedure for the inspection cable insertion jig according to the first embodiment of the present disclosure. [Figure 17] FIG. 10 is a diagram illustrating a state in which an inspection cable and an inspection cable guide mechanism are inserted into the combustor using the inspection cable insertion jig according to the first embodiment of the present disclosure. [Figure 18] FIG. 10 is a diagram illustrating a configuration of a drive device according to a second embodiment of the present disclosure. [Figure 19] 10A to 10C are diagrams illustrating the configuration of an inspection cable insertion jig according to a third embodiment of the present disclosure, and a method for inserting an inspection cable and an inspection cable guide mechanism into the turbine using the inspection cable insertion jig. [Figure 20] FIG. 11 is a diagram showing a state in which an inspection cable and an inspection cable guide mechanism are inserted into the combustor using an inspection cable insertion jig according to a third embodiment of the present disclosure. [Figure 21] 10A and 10B show a heat-resistant sheath according to another embodiment of the present disclosure. [Figure 22] FIG. 10 is a diagram illustrating a configuration of a drive device according to another embodiment of the present disclosure. [Figure 23] 10A and 10B are diagrams illustrating configurations of a driving device and an inspection cable guide mechanism according to another embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0013] Hereinafter, a gas turbine and an inspection system for the gas turbine according to an embodiment of the present disclosure will be described with reference to the drawings.

[0014] First Embodiment (Gas Turbine) As shown in FIG. 1, the gas turbine 100 includes a compressor 1, an intermediate casing 2, a combustor 3, and a turbine 4.

[0015] (Compressor) The compressor 1 is a device that compresses air introduced from the outside, raises the pressure to a predetermined level, and supplies the compressed air to the intermediate casing 2. The compressor 1 has a compressor rotor 10 that can rotate around a rotor axis Ar that extends horizontally, and a compressor casing 13 that covers the compressor rotor 10.

[0016] Here, the direction in which the rotor axis Ar extends (the left-right direction in FIG. 1) is referred to as the "rotor axial direction Da." Furthermore, of both sides of the rotor axial direction Da, one side (the left side in FIG. 1) is referred to as the "axial upstream side Dau," and the opposite side (the right side in FIG. 1) is referred to as the "axial downstream side Dad." Furthermore, the air introduced into the compressor 1 and circulating inside the compressor 1 is simply referred to as "air A1," and the air A1 that is compressed by the compressor 1 and then introduced into the intermediate casing 2 is referred to as "compressed air A2."

[0017] The compressor rotor 10 has a compressor rotor shaft 11 and a plurality of compressor rotor blade rows 12 provided on the outer peripheral surface of the compressor rotor shaft 11 and arranged at intervals in the rotor axial direction Da.

[0018] The compressor rotor shaft 11 is a cylindrical rotating shaft extending in the rotor axial direction Da and rotatable about the rotor axis Ar. The multiple compressor rotor blade rows 12 are all provided from the outer periphery of the compressor rotor shaft 11, and are thus integrated with the compressor rotor shaft 11. Each compressor rotor blade row 12 has multiple compressor rotor blades arranged at intervals in the circumferential direction of the compressor rotor shaft 11.

[0019] The compressor casing 13 forms an outer shell of the compressor 1 and covers the compressor rotor 10 from the outer periphery side. The compressor casing 13 has a cylindrical compressor casing body 14 centered on the rotor axis Ar, an air inlet portion 15 that introduces air A1 into the compressor casing body 14, and a plurality of compressor stator vane rows 16 that are provided on the inner circumferential surface of the compressor casing body 14 and arranged at intervals in the rotor axial direction Da.

[0020] The compressor casing body 14 is supported by a compressor support (not shown) that is fixed to, for example, the ground or a stand. The compressor casing body 14 compresses air A1 introduced from an air inlet portion 15 inside to generate compressed air A2, and then supplies this compressed air A2 to the intermediate casing 2. The air inlet portion 15 is provided on the axial upstream side Dau of the compressor casing body 14.

[0021] Each of the multiple compressor stator vane rows 16 is integrated with the compressor casing main body 14. Each compressor stator vane row 16 has multiple compressor stator vanes arranged at intervals in the circumferential direction of the compressor rotor shaft 11. The compressor stator vane rows 16 and the compressor rotor blade rows 12 are arranged alternately in the rotor axial direction Da. Compressed air A2 compressed in the compressor casing 13 is introduced into the intermediate casing 2.

[0022] (Intermediate casing) The intermediate casing 2 forms a space therein for guiding compressed air A2 introduced from the compressor 1 to the combustor 3. The intermediate casing 2 is connected to the compressor casing 13 from its axial downstream side Dad.

[0023] (Combustor) The combustor 3 is a device that generates high-temperature, high-pressure combustion gas G by utilizing fuel F supplied from the outside and compressed air A2 introduced into the intermediate casing 2, and supplies this combustion gas G to the turbine 4.

[0024] The combustor 3 is provided in the intermediate casing 2 and extends about a combustor axis Ac that extends in a direction intersecting the rotor axis Ar. Hereinafter, the direction in which the combustor axis Ac extends will be referred to as the "combustor axial direction Dac."

[0025] (Turbine) The turbine 4 is a device driven by the combustion gas G supplied from the combustor 3. The turbine 4 has a turbine rotor 40 that is rotatable about a rotor axis Ar, and a turbine casing 43 that covers the turbine rotor 40.

[0026] The turbine rotor 40 has a turbine rotor shaft 41 and a plurality of turbine blade rows 42 that are provided on the outer peripheral surface of the turbine rotor shaft 41 and arranged at intervals in the rotor axial direction Da.

[0027] The turbine rotor shaft 41 is a columnar rotating shaft extending in the rotor axial direction Da and rotatable about the rotor axis Ar. The multiple turbine rotor blade rows 42 are all provided from the outer periphery of the turbine rotor shaft 41, and are thus integrated with the turbine rotor shaft 41. Each turbine rotor blade row 42 has multiple turbine rotor blades arranged at intervals in the circumferential direction of the turbine rotor shaft 41.

[0028] The turbine casing 43 forms the outer shell of the turbine 4 and covers the outer periphery of the turbine rotor 40. The turbine casing 43 has a cylindrical turbine casing body 44 centered on the rotor axis Ar, and a plurality of turbine stator blade rows 45 provided on the inner circumferential surface of the turbine casing body 44 and arranged at intervals in the rotor axial direction Da.

[0029] The turbine casing body 44 is supported by a turbine support (not shown) that is fixed to, for example, the ground or a mounting base. The combustion gas G introduced from the combustor 3 flows inside the turbine casing body 44. The combustion gas G is introduced from the axial upstream side Dau of the turbine casing body 44. Each of the multiple turbine stator blade rows 45 is integrated with the turbine casing body 44.

[0030] Each turbine stator vane row 45 has a plurality of turbine stator vanes arranged at intervals in the circumferential direction of the turbine rotor shaft 41. The turbine stator vane rows 45 and the turbine rotor blade rows 42 are arranged alternately in the rotor axial direction Da. After completing its work within the turbine casing body 44, the combustion gas G is discharged from the turbine casing body 44 toward the axial downstream side Dad.

[0031] The annular space between the outer circumferential side of the turbine rotor shaft 41 and the inner circumferential side of the turbine casing body 44, in which the turbine stator vane row 45 and the turbine rotor vane row 42 are arranged in the axial direction, serves as a combustion gas flow path Cg through which combustion gas G from the combustor 3 flows. This combustion gas flow path Cg is annular, centered on the rotor axis Ar, and is long in the rotor axial direction Da.

[0032] In this embodiment, a gas turbine casing 101 is formed by the compressor casing 13, the intermediate casing 2, and the turbine casing 43. The compressor rotor 10 and the turbine rotor 40 are positioned on the same axis, and are connected to each other, for example, inside the intermediate casing 2, thereby forming a gas turbine rotor 102. A generator output shaft 301 provided in a generator 300, for example, is connected to the end of the axial upstream side Dau of this gas turbine rotor 102 (compressor rotor 10).

[0033] The operation of the gas turbine 100 having the above configuration will be described below. The compressor 1 compresses air A1 to generate compressed air A2. This compressed air A2 flows into the combustor 3 via the intermediate casing 2. Fuel F is supplied to the combustor 3 from the outside.

[0034] In the combustor 3, fuel F is combusted in compressed air A2 to generate high-temperature, high-pressure combustion gas G. This combustion gas G is sent from the combustor 3 into the turbine casing 43. The turbine rotor 40 is rotated by this combustion gas G. As the turbine rotor 40 rotates, the generator output shaft 301 of the generator 300 connected to the gas turbine rotor 102 rotates. As a result, the generator 300 generates electricity.

[0035] (Gas Turbine Inspection System) The gas turbine inspection system 200 is a system for inspecting abnormalities, defects, and the like inside the turbine 4 of the gas turbine 100 when the operation of the gas turbine 100 as an object to be inspected is stopped.

[0036] As shown in FIG. 2, the gas turbine inspection system 200 includes a sensor 20a, an inspection cable 20b, an inspection cable guide mechanism 21, a drive unit 23, an inspection cable insertion jig 25, a forward / backward actuator 26, a guide tube 27, a cooling air supply unit 28, and a control unit 29.

[0037] (sensor) 2 and 3, the sensor 20a is a sensor module incorporating a semiconductor element (solid-state image sensor) such as a CCD image sensor or a CMOS image sensor. The sensor 20a is introduced into the turbine 4 to capture images of the interior of the turbine 4.

[0038] (Test cable) The inspection cable 20b is a coaxial cable capable of transmitting and receiving electrical signals between an external device and the sensor 20a. The sensor 20a is provided at the tip of the inspection cable 20b. The inspection cable 20b is formed, for example, by covering a plurality of core wires (signal wires) bundled together with an insulating material such as synthetic resin from the outside.

[0039] Furthermore, the imaginary center line of this inspection cable 20b will be simply referred to as the "center line CL," and the direction in which this center line CL extends will be referred to as the "center line direction Dcl." Of both sides of the center line direction Dcl, one side facing the tip (the right side in FIG. 3) will be referred to as the "tip side Dcla," and the opposite side (the left side in FIG. 3) will be referred to as the "rear side Dclb."

[0040] (Inspection cable guide mechanism) The inspection cable guide mechanism 21 is a mechanism that guides the inspection cable 20b by adjusting the position and posture of the inspection cable 20b inside the turbine 4. As shown in FIG. 3 , the inspection cable guide mechanism 21 includes a heat-resistant sheath 210, a segment stack 211, and a plurality of wires 22.

[0041] (heat-resistant sheath) The heat-resistant sheath 210 is a coating that covers the inspection cable 20b from the outside and thermally protects the inspection cable 20b. The heat-resistant sheath 210 is a tubular member through which the inspection cable 20b can be inserted. The heat-resistant sheath 210 is made of a material that is flexible and heat-resistant. In this embodiment, the material for the heat-resistant sheath 210 is, for example, a synthetic resin.

[0042] 4, a gap S is formed inside the heat-resistant sheath 210 between the inner circumferential surface of the heat-resistant sheath 210 and the inspection cable 20b. Cooling air A3 is supplied to the gap S from an end of the heat-resistant sheath 210 on the side opposite the tip end Dcla (rear end side Dclb) by a device provided outside the inspection cable guide mechanism 21. The cooling air A3 supplied to the gap S flows through the heat-resistant sheath 210 toward the tip, and is then discharged from the end of the heat-resistant sheath 210 on the tip end side Dcla.

[0043] (segment laminate) 3, the segment stack 211 is a member that covers the heat-resistant sheath 210 from the outside and is capable of adjusting the position and posture of the inspection cable 20b that is inserted into the heat-resistant sheath 210 together with the heat-resistant sheath 210. The segment stack 211 is configured by stacking three or more segments 212 that cover the heat-resistant sheath 210 from the outside in the center line direction Dcl.

[0044] The segment stack 211 has a first joint portion 211a, a second joint portion 211b, a third joint portion 211c, and a connecting portion 211j. In this embodiment, the first joint portion 211a, the second joint portion 211b, and the third joint portion 211c are configured by stacking ten segments 212 in the center line direction Dcl.

[0045] Therefore, the segment stack 211 is formed by stacking 30 segments 212 in the center line direction Dcl. The connection portion 211j is a member for connecting the inspection cable insertion jig 25, which is connected to the inspection cable guide mechanism 21 from the rear end side Dclb, to the segment 212 located at the rear end side Dclb of the first joint portion 211a.

[0046] The first joint portion 211a, the second joint portion 211b, the third joint portion 211c, and the connecting portion 211j are arranged in the order of the connecting portion 211j, the first joint portion 211a, the second joint portion 211b, and the third joint portion 211c from the rear end side Dclb to the center line direction Dcl.

[0047] (segment) The segments 212 are made of a heat-resistant metal. In this embodiment, the segments 212 are made of a material such as a titanium alloy. As shown in FIG. 5 , each segment 212 has a segment main body 213 that forms a cylindrical shape centered on the center line CL when multiple segments 212 are stacked in the center line direction Dcl, and a pair of protrusions 218 protruding from the segment main body 213. The following describes the configuration of each element included in the segment stack 211 when multiple segments 212 are stacked in the center line direction Dcl.

[0048] The segment main body 213 has a front end surface 213a facing the front end side Dcla, a rear end surface 213b facing the rear end side Dclb, and an outer peripheral surface 213c as a side surface connecting the front end surface 213a and the rear end surface 213b in the center line direction Dcl.

[0049] The leading end surface 213a is inclined and is composed of a pair of surfaces that intersect with each other to form an intersection line at the leading end side Dcla in the segment body 213. The rear end surface 213b is inclined and is composed of a pair of surfaces that intersect with each other to form an intersection line at the rear end side Dclb in the segment body 213. The intersection line formed by the pair of surfaces at the leading end surface 213a and the intersection line formed by the pair of surfaces at the rear end surface 213b are perpendicular to each other when viewed from the center line direction Dcl.

[0050] The segment body 213 has a through hole 214 formed therein, which passes through from the front end surface 213a to the rear end surface 213b around the center line CL. The through holes 214 formed in adjacent segment bodies 213 in the center line direction Dcl are continuous with each other so that the heat-resistant sheath 210 can be inserted therethrough.

[0051] The segment body 213 has a pair of recesses 215 formed by cutting out a portion of the tip surface 213a and the outer circumferential surface 213c. The pair of recesses 215 are arranged to sandwich the through-hole 214 therebetween. Each recess 215 is composed of a recess surface 215a and a recess abutment surface 215b.

[0052] The concave surface 215a is a surface formed into a cylindrical shape having a predetermined radius of curvature. The concave surface 215a is formed to be concave from the front end surface 213a toward the rear end surface 213b. The concave portion abutting surface 215b connects the concave surface 215a and the front end surface 213a and is a surface that is located more inward than the outer circumferential surface 213c and faces the outer circumferential surface 213c. The concave portion abutting surfaces 215b of the pair of concave portions 215 are parallel to each other.

[0053] The segment body 213 is formed with a plurality of wire insertion holes 216 through which the wire 22 can be inserted in the center line direction Dcl. Each wire insertion hole 216 penetrates the segment body 213 from the front end surface 213a to the rear end surface 213b. As shown in Fig. 6, the plurality of wire insertion holes 216 are arranged at equal intervals around the through hole 214. In the segment body 213 of this embodiment, nine wire insertion holes 216 are arranged at equal intervals around the through hole 214.

[0054] 5, the segment body 213 is formed with a plurality of lightening holes 217 that penetrate from the outer peripheral surface 213c to the inner peripheral surface of the through hole 214. In the segment body 213 of this embodiment, four lightening holes 217 that form a rectangle in a front view are arranged radially around the center line CL at equal intervals.

[0055] The pair of protrusions 218 protrude from the rear end surface 213b of the segment main body 213 toward the rear end side Dclb integrally with the segment main body 213. The pair of protrusions 218 are arranged to sandwich the through hole 214 therebetween. Here, as shown in FIG. 6 , the direction in which the pair of protrusions 218 are aligned when viewed from the center line direction Dcl is perpendicular to the direction in which the pair of recesses 215 in the segment main body 213 are aligned.

[0056] Each protrusion 218 is composed of a protrusion surface 218a, a protrusion outer surface 218b, and a protrusion abutment surface 218c. The protrusion surface 218a is a cylindrical surface having a smaller radius of curvature than the concave surface 215a of the concave portion 215 formed in the segment body 213.

[0057] The convex outer surface 218b is a surface that connects the convex surface 218a and the outer peripheral surface 213c of the segment main body 213. The convex outer surface 218b is flush with the outer peripheral surface 213c of the segment main body 213 and faces outward. The convex abutment surface 218c is a surface that connects the convex surface 218a and the rear end surface 213b.

[0058] As shown in Fig. 7, among the segments 212 lined up in the center line direction Dcl, the convex portion 218 of one segment 212 except for the segment 212 located furthest to the rear end side Dclb is fitted in the center line direction Dcl with a concave portion 215 formed in the segment body 213 of the segment 212 adjacent to the one segment 212 from the rear end side Dclb. Note that the lightening hole 217 is not shown in Fig. 7.

[0059] The convex surface 218a of the convex portion 218 and the concave surface 215a of the concave portion 215 come into contact with each other, allowing the segments 212 adjacent to each other in the center line direction Dcl to swing relative to each other. At this time, the convex portion contact surface 218c of the convex portion 218 and the concave portion contact surface 215b of the concave portion 215 come into contact with each other in a direction perpendicular to the center line CL.

[0060] In other words, one of the segments 212 other than the segments 212 located at the most front end Dcla and the most rear end Dclb in the segment stack 211 can swing relative to each of the two segments 212 adjacent to that one segment 212 in the center line direction Dcl, centered on the swing axis Os extending in a direction perpendicular to the center line CL.

[0061] As shown in Figures 6 and 7, the two swing axes Os about which one segment 212 swings relative to each of the two segments 212 adjacent to that segment 212 in the center line direction Dcl are perpendicular to each other when viewed from the center line direction Dcl.

[0062] (wire) As shown in Fig. 3, the multiple wires 22 are wires that extend from Dclb, which is on the rear end side of the segment stack 211, toward the segment stack 211 and are inserted along the center line CL through the wire insertion holes 216 of the segments 212 in the segment stack 211 toward the tip. Due to space limitations, only two wires 22 are shown in Fig. 3.

[0063] 6, the plurality of wires 22 in this embodiment are composed of three wires 22a for the first joint, three wires 22b for the second joint, and three wires 22c for the third joint. Therefore, the inspection cable guide mechanism 21 has nine wires 22, and each wire 22 is inserted into a wire insertion hole 216 formed in the segment 212.

[0064] Here, the nine wire insertion holes 216 formed in the segment body 213 of each segment 212 are divided into three first wire insertion holes 216a, three second wire insertion holes 216b, and three third wire insertion holes 216c. The three first wire insertion holes 216a are arranged at equal intervals around the center line CL. Similarly, the three second wire insertion holes 216b are arranged at equal intervals around the center line CL, and the three third wire insertion holes 216c are arranged at equal intervals around the center line CL.

[0065] Only the first joint wire 22a is inserted through the first wire insertion hole 216a of each segment 212 in the first joint portion 211a. Only the second joint wire 22b is inserted through the second wire insertion hole 216b of each segment 212 in the first joint portion 211a and the second joint portion 211b. Only the third joint wire 22c is inserted through the third wire insertion hole 216c of each segment 212 in the first joint portion 211a, the second joint portion 211b, and the third joint portion 211c.

[0066] In other words, the first joint wire 22a is not inserted through the first wire insertion hole 216a of each segment 212 in the second joint portion 211b and the third joint portion 211c, and the second joint wire 22b is not inserted through the second wire insertion hole 216b of each segment 212 in the third joint portion 211c.

[0067] One end of each first joint wire 22a is fixed to a segment 212 arranged at the most distal Dcla of the first joint portion 211a. For ease of explanation, this segment 212 arranged at the most distal Dcla of the first joint portion 211a will be referred to as the "first segment 212a" below (see FIG. 3). As shown in FIG. 8, the first joint wire 22a has a crimping ball 222a formed at one end facing the distal Dcla. The diameter of the crimping ball 222a is larger than the diameter of the first wire insertion hole 216a.

[0068] As a result, when the first joint wire 22a is pulled toward the rear end side Dclb, the crimping ball 222a blocks the opening of the first wire insertion hole 216a in the tip surface 213a of the first segment 212a from the tip end side Dcla, so that the first joint wire 22a does not move (slip out) within the segment 212 toward the rear end side Dclb.

[0069] One end of each second joint wire 22b is fixed to a segment 212 located at the most distal end Dcla of the second joint portion 211b. For ease of explanation, this segment 212 located at the most distal end Dcla of the second joint portion 211b will be referred to as the "second segment 212b" below (see FIG. 3). As shown in FIG. 9, the second joint wire 22b has a crimping ball 222b formed at one end facing the distal end Dcla. The diameter of the crimping ball 222b is larger than the diameter of the second wire insertion hole 216b.

[0070] As a result, when the second joint wire 22b is pulled toward the rear end side Dclb, the crimping ball 222b blocks the opening of the second wire insertion hole 216b in the tip surface 213a of the second segment 212b from the tip side Dcla, so that the second joint wire 22b does not move (slip out) within the segment 212 toward the rear end side Dclb.

[0071] One end of each third joint wire 22c is fixed to a segment 212 located at the most distal end Dcla of the third joint portion 211c. For ease of explanation, this segment 212 located at the most distal end Dcla of the third joint portion 211c will be referred to as the "third segment 212c" below (see FIG. 3). As shown in FIG. 10, the third joint wire 22c has a crimping ball 222c formed at one end facing the distal end Dcla. The diameter of the crimping ball 222c is larger than the diameter of the third wire insertion hole 216c.

[0072] As a result, when the third joint wire 22c is pulled toward the rear end side Dclb, the crimping ball 222c blocks the opening of the third wire insertion hole 216c in the tip surface 213a of the third segment 212c from the tip end side Dcla, so that the third joint wire 22c does not move (slip out) within the segment 212 toward the rear end side Dclb.

[0073] As a result, some of the multiple wires 22 are pulled in a direction away from the tip or are unwound in a direction toward the tip, and the segment stack 211 can be curved three-dimensionally together with the heat-resistant sheath 210, as shown in Fig. 11. In other words, the segment stack 211 introduced inside the turbine 4 can adjust the position and posture of the inspection cable 20b by operating the wires 22 from the outside.

[0074] (Drive unit) The driving device 23 is a device that drives the inspection cable guide mechanism 21 by pulling the wire 22 in a direction away from the tip or by unwinding the wire 22 in a direction toward the tip. As shown in Fig. 12, the driving device 23 includes a casing 242 and a wire driving mechanism 24.

[0075] (Casing) The casing 242 houses the wire driving mechanism 24 for driving the inspection cable guide mechanism 21 and supports various devices included in the wire driving mechanism 24. The casing 242 has a casing main body 243, a first support plate 247, and a second support plate 248. The casing main body 243 has a cylindrical shape.

[0076] The casing body 243 has a first end plate 244 that is disk-shaped and has a front surface 244a facing the inspection cable guide mechanism 21, a second end plate 245 that is disk-shaped and has a back surface 245a facing the side opposite to the front surface 244a, and a connecting plate 246 that connects the first end plate 244 and the second end plate 245. In this embodiment, for convenience of explanation, an imaginary axis connecting the center of the first end plate 244 and the center of the second end plate 245 is referred to as the "central axis Om."

[0077] The first end plate 244 is formed with an insertion hole 244b through which the inspection cable 20b extending from the inspection cable guide mechanism 21, the heat-resistant sheath 210, and the wire 22 can be inserted. The insertion hole 244b is formed so as to penetrate the first end plate 244 with the central axis Om as the center.

[0078] The first support plate 247 is disk-shaped and fixed integrally to the inner surface of the casing body 243. The first support plate 247 is formed with a first hole 247a through which the wire 22 introduced into the casing body 243 through the insertion hole 244b passes in the direction of the central axis Om, and a plurality of first support holes 247b arranged at equal intervals around the first hole 247a. Due to space limitations, only one first support hole 247b is shown in Figure 12.

[0079] The first holes 247a are formed to pass through the first support plate 247 about the central axis Om. The number of first support holes 247b is the same as the number of wires 22 provided in the inspection cable guide mechanism 21. That is, the number of first support holes 247b formed in the first support plate 247 in this embodiment is nine.

[0080] The second support plate 248 has a disk shape and is fixed integrally with the casing body 243 to the inner surface of the casing body 243, closer to the second end plate 245 than the first support plate 247. The second support plate 248 is formed with a second hole 248a through which the wire 22 inserted through the first hole 247a is inserted in the direction of the central axis Om, and a plurality of second support holes 248b arranged at equal intervals around the second hole 248a. Due to space limitations, only one second support hole 248b is shown in Figure 12.

[0081] The second hole 248a is formed to have a larger diameter than the insertion hole 244b and the first hole 247a. The second hole 248a is formed to penetrate the second support plate 248 about the central axis Om. The number of second support holes 248b is the same as the number of wires 22 included in the inspection cable guide mechanism 21. That is, the number of second support holes 248b formed in the second support plate 248 in this embodiment is nine.

[0082] (Wire drive mechanism) The wire driving mechanism 24 is a mechanism that pulls the wire 22 in a direction away from the tip or pays out the wire 22 in a direction toward the tip. Here, the driving device 23 in this embodiment has nine wire driving mechanisms 24. Each wire driving mechanism 24 has a wire winding unit 230, a rotary actuator 234, and a pulley 238. Due to space limitations, only one wire driving mechanism 24 is shown in Figure 12.

[0083] (Wire winding part) The wire winding unit 230 winds the wire 22 extending from the inspection cable guide mechanism 21. The wire winding unit 230 is housed in a casing main body 243. The wire winding unit 230 has a spool 232.

[0084] The spool 232 is supported by a second support plate 248 of the casing 242. The spool 232 has a spool head 232a and a spool body 232b.

[0085] The spool head 232a has a cylindrical shape extending around its axis and is inserted into a second support hole 248b formed in the second support plate 248. The spool head 232a is rotatably supported by this second support hole 248b. The spool body 232b is provided integrally with the spool head 232a from the second end plate 245 side, and is a cylindrical member extending around a winding axis Ow (axis) parallel to the central axis Om.

[0086] Here, the direction in which the winding axis Ow extends (the left-right direction in FIG. 12) is referred to as the "winding axis direction Dw." Furthermore, of both sides of the winding axis direction Dw, one side (the left side in FIG. 12) will be simply referred to as "one side Dwa," and the opposite side (the right side in FIG. 12) will be simply referred to as "the other side Dwb."

[0087] The wire 22 extending from the inspection cable guide mechanism 21 through the insertion hole 244b, the first hole 247a, and the second hole 248a is wound around the spool body 232b. The other end of the wire 22 is fixed to the spool body 232b.

[0088] (Rotary Actuator) The rotary actuator 234 is connected to the wire winding unit 230 from the other side Dwb, and is a device that rotates the wire winding unit 230. The rotary actuator 234 has a motor 235 and an encoder 236.

[0089] The motor 235 has a motor body 235a made up of a stator and the like (not shown), and an output shaft 235b to which a rotor and the like (not shown) are fixed and which protrudes from the motor body 235a to one side Dwa.

[0090] The motor body 235a is inserted into and supported by a first support hole 247b formed in the first support plate 247. A cable or the like (not shown) for supplying power from an external source is connected to the stator of the motor body 235a.

[0091] The output shaft 235b is provided on the motor body 235a, and its end protrudes beyond the motor body 235a to one side Dwa. The spool head 232a is connected to the end of the output shaft 235b from one side Dwa. In other words, the output shaft 235b of the motor 235 is connected to the spool head 232a of the spool 232 from the other side Dwb.

[0092] Therefore, when electric power is supplied to the motor main body 235a from the outside, the output shaft 235b rotates. As the output shaft 235b rotates, torque is transmitted to the spool 232, causing the spool main body 232 to rotate.

[0093] The encoder 236 is a device that detects the rotation angle of the output shaft 235b inside the motor main body 235a and is capable of transmitting the detection result to an external device.

[0094] (pulley) The pulley 238 is a device that changes the direction of extension of the wire 22 midway as it extends from the wire winding portion 230 toward the segment stack 211 of the inspection cable guide mechanism 21. The pulley 238 has a pulley body 239, a support portion 240, and a load cell 241.

[0095] The pulley body 239 is a pulley that supports the wire 22 and changes the direction of the wire 22. The support portion 240 is provided on a first support plate 247 of the casing 242 and is a member that supports the pulley body 239. The support portion 240 is configured with a first support portion 240a having a rectangular prism shape and one end fixed to the first support plate 247, and a second support portion 240b also having a rectangular prism shape and connecting the other end of the first support portion 240a to the pulley body 239.

[0096] The first support portion 240a has a support portion hole 240c formed therein, penetrating the surfaces facing in opposite directions. By forming the support portion hole 240c in the first support portion 240a, the rigidity of the first support portion 240a is reduced. In this embodiment, the angle formed between the first support portion 240a and the second support portion 240b is 90°.

[0097] The load cell 241 is a load converter having a strain gauge that detects the load applied to the pulley body 239 from the wire 22. The load cell 241 has a first measuring part 241a fixed to a first surface 240d of the first support part 240a that faces the first support plate 247 side where the support part hole 240c is not formed, and a second measuring part 241b fixed to a second surface 240e that faces the side opposite to the first surface 240d and where the support part hole 240c is not formed.

[0098] As shown in FIG. 13, the nine wire driving mechanisms 24 are arranged radially around the central axis Om at equal intervals so as to surround the central axis Om.

[0099] (Inspection cable insertion jig) The inspection cable insertion jig 25 is a jig for inserting the inspection cable 20b and the inspection cable guide mechanism 21 into the inside of the turbine 4 of the gas turbine 100. The inspection cable insertion jig 25 is connected to the inspection cable guide mechanism 21 from the side opposite to the front end (rear end side Dclb), and is inserted into the inside of the turbine 4 together with the inspection cable guide mechanism 21.

[0100] The inspection cable insertion jig 25 is interposed between the inspection cable guide mechanism 21 and the driving device 23. As shown in FIG. 14 , the inspection cable insertion jig 25 in this embodiment has a plurality of split pipes 250, a plurality of half-split pipes 255, and a screw 256.

[0101] (Split pipe) Each split pipe 250 has a main body 251 and a slide portion 254. The main body 251 is a cylindrical member that covers the heat-resistant sheath 210 and the wire 22 from the outside. In this embodiment, the main body 251 is made up of a cylindrical inner tube 252 and an outer tube 253 that is also cylindrical and is formed integrally with the inner tube 252 so as to surround the inner tube 252 from the outside.

[0102] The inner tubes 252 of the split pipes 250 adjacent to each other in the center line direction Dcl are arranged at a distance from each other in the center line direction Dcl. That is, a space is formed between adjacent split pipes 250, exposing the heat-resistant sheath 210 and the wire 22. The outer tube 253 covers the inner tube 252 from the outside, leaving the end of the inner tube 252 in the center line direction Dcl exposed.

[0103] The sliding portion 254 is a cylindrical member that covers from the outside the tip side Dcla portion of the inner tube 252 that is not covered (exposed portion) by the outer tube 253. The sliding portion 254 is provided on the inner tube 252 and is slidable relative to the inner tube 252 in the longitudinal direction.

[0104] The half-split pipe 255 is a semi-cylindrical member disposed between adjacent main bodies 251 of the split pipes 250 so as to fill the space formed between the main bodies 251 of the split pipes 250 adjacent to each other in the center line direction Dcl. When a pair of half-split pipes 255 are combined, they cover from the outside the heat-resistant sheath 210 and the wire 22 that are exposed in the space formed between the inner tubes 252 adjacent to each other in the center line direction Dcl.

[0105] The screw 256 fixes the slide portion 254 to the inner tube 252 of the adjacent main body portion 251 when the slide portion 254 of one split pipe 250 slides in the center line direction Dcl (longitudinal direction) so that the slide portion 254 covers the half-split pipe 255 and the end of the inner tube 252 of the split pipe 250 adjacent to the one split pipe 250 from the outside.

[0106] (Advance and retreat actuator) 2, the advance / retract actuator 26 is an electric slider that moves the drive device 23 forward and backward toward or away from the combustor 3. The advance / retract actuator 26 has a guide rail 260 and an advance / retract drive unit 261.

[0107] The guide rail 260 is a base that incorporates a linear guide (not shown), a servo motor, and the like (not shown) therein. The advance / retract drive unit 261 is slidably placed on an upper surface 260a of the guide rail 260. The advance / retract drive unit 261 advances and retreats (slides) on the guide rail 260 along the linear guide, for example, by being driven by a servo motor incorporated in the guide rail 260.

[0108] (Guide tube) The guide tube 27 is a jig that guides the inspection cable guide mechanism 21 and the inspection cable insertion jig 25 toward the turbine 4 within the combustor 3 when they are introduced into the turbine 4, and prevents them from coming into contact with the combustor 3.

[0109] The guide pipe 27 is a member provided in the combustor 3 when the inspection cable guide mechanism 21 and the inspection cable insertion jig 25 are introduced into the turbine 4. The guide pipe 27 in this embodiment is composed of a first guide pipe 271, a second guide pipe 272, and a fixing portion 273.

[0110] The first guide pipe 271 is a cylindrical pipe made of metal or the like. The second guide pipe 272 is a cylindrical pipe made of the same type of material as the metal that makes up the first guide pipe 271, and is formed with a smaller diameter than the first guide pipe 271. The second guide pipe 272 is integrally connected to the end of the first guide pipe 271.

[0111] The fixed portion 273 is provided at the end of the first guide tube 271 opposite to the end connected to the second guide tube 272. The fixed portion 273 is fixed to the upper surface 260a of the guide rail 260 of the advance / retreat actuator 26.

[0112] Here, when the first guide pipe 271, the second guide pipe 272, and the fixing portion 273 are provided in the combustor 3, they are integrally formed in the order of the fixing portion 273, the first guide pipe 271, and the second guide pipe 272 from the side away from the combustor 3 in the combustor axial direction Dac.

[0113] The inspection cable guide mechanism 21 and the inspection cable insertion jig 25 are guided by a guide pipe 27 inside the combustor 3. The inspection cable guide mechanism 21 is introduced into the turbine 4 after passing through a second guide pipe 272 of the guide pipe 27.

[0114] (Cooling air supply section) The cooling air supply unit 28 is a device that supplies cooling air A3 from the rear end side Dclb to the gap S inside the heat-resistant sheath 210 of the inspection cable guide mechanism 21. In this embodiment, room temperature air is used as the cooling air A3, for example.

[0115] (Control device) The control device 29 controls the rotation of the rotary actuator 234 of each wire drive mechanism 24 in the drive device 23, and the advance / retract movement of the drive device 23 by the advance / retract actuator 26. The control device 29 is electrically connected to the motor body 235a of the motor 235 of the rotary actuator 234, the encoder 236 of the rotary actuator 234, the load cell 241 of the pulley 238, and the servo motor built into the advance / retract actuator 26.

[0116] The control device 29 determines whether the load that the pulley body 239 is receiving from the wire 22 is equal to or greater than a predetermined threshold value, for example, based on the difference between the load measurement values ​​measured by the first measuring portion 241a and the second measuring portion 241b of the load cell 241 due to the deflection of the first support portion 240a.

[0117] When the control device 29 determines that the load is equal to or greater than the threshold value, the control device 29 reduces the amount of power supplied to the motor main body 235a based on the magnitude of the load. This reduces the force (torque) that rotates the spool 232 of the motor main body 235a, thereby reducing the magnitude of the load that the pulley main body 239 receives from the wire 22.

[0118] Furthermore, the control device 29 increases or decreases the amount of power supplied to the motor body 235a of the rotary actuator 234 in each wire driving mechanism 24, for example, based on the rotation angle of the output shaft 235b of the motor 235 detected by the encoder 236 of the rotary actuator 234 in each wire driving mechanism 24. This makes it possible to adjust the position and attitude of the inspection cable guide mechanism 21.

[0119] Although detailed description will be omitted, an inspection cable 20b is electrically connected to the control device 29. The control device 29 supplies power to the sensor 20a via the inspection cable 20b. The control device 29 also has, for example, a display device (not shown) that receives a video signal acquired by the sensor 20a via the inspection cable 20b and displays an image in accordance with the video signal.

[0120] Hereinafter, a method for inserting the inspection cable 20b and the inspection cable guide mechanism 21 into the turbine 4 using the inspection cable insertion jig 25 will be described with reference to FIGS.

[0121] First, as shown in Fig. 15 , the advancing / retracting actuator 26 is disposed near the inlet of the combustor 3 so that the driving device 23 can be advanced and retracted in the combustor axial direction Dac. Next, with the guide tube 27 inserted inside the combustor 3, the inspection cable guide mechanism 21 is inserted into the combustor 3 using the guide tube 27. Next, of the split pipes 250 arranged in the center line direction Dcl of the inspection cable insertion jig 25, the split pipe 250 located on the tip side Dcla is inserted into the combustor 3 in order using the guide tube 27.

[0122] At this time, when the longitudinal directions of the split pipes 250 adjacent to each other in the centerline direction Dcl become parallel to the combustor axis Ac, as shown in Fig. 16(a), the half pipe 255 is placed in the space generated between the adjacent split pipes 250. Next, as shown in Fig. 16(b), the slide portion 254 is slid in the longitudinal direction.

[0123] 16(c), the slide portion 254 and the inner tube 252 of the main body portion 251 are fixed together with the screws 256. After the fixing with the screws 256 is completed, the same procedure is carried out for the divided pipe 250 aligned with the rear end side Dclb.

[0124] After the inspection cable guide mechanism 21 and the inspection cable insertion jig 25 have been inserted into the combustor 3, the driving device 23 is placed on the advancing / retracting driving part 261 of the advancing / retracting actuator 26, as shown in Fig. 17. Then, the driving device 23 is moved by the advancing / retracting actuator 26 in a direction approaching the combustor 3, whereby the inspection cable guide mechanism 21 is introduced into the turbine 4.

[0125] (Action and effect) Here, when the object to be inspected is the gas turbine 100, the temperature inside the gas turbine 100 is extremely high, at about 500° C., even after the operation has been stopped. Therefore, it may take some time for the temperature inside the gas turbine 100 to decrease to a temperature (room temperature) that the inspection cable guide mechanism 21 can withstand.

[0126] In contrast, in the inspection cable guide mechanism 21 of the above embodiment, the inspection cable 20b having the sensor 20a at its tip is inserted into the heat-resistant sheath 210. Furthermore, cooling air A3 flows toward the tip through the gap S between the heat-resistant sheath 210 that covers the inspection cable 20b from the outside and the inspection cable 20b. As a result, the heat-resistant sheath 210 blocks heat transferred from the outside toward the inspection cable 20b, while the cooling air A3 blocks heat transferred inside the heat-resistant sheath 210 toward the inspection cable 20b.

[0127] Furthermore, since the cooling air A3 flows through the gap S, the heat-resistant sheath 210 can be cooled, thereby reducing the amount of heat transferred from the heat-resistant sheath 210 to the inspection cable 20b from the outside. Therefore, when the inspection cable guide mechanism 21 guides the inspection cable 20b in a high-temperature atmosphere inside the turbine 4, for example, the thermal load on the inspection cable 20b can be reduced. As a result, the inside of the inspection object can be inspected even in a high-temperature environment.

[0128] Furthermore, two swing axes Os, which are the centers of swing of one of the segments 212 of the segment stack 211 other than the end segments 212, relative to each of the two adjacent segments 212, are perpendicular to each other when viewed from the center line direction Dcl. Furthermore, each segment 212 is covered from the outside with a flexible heat-resistant sheath 210. This allows the segment stack 211 to bend three-dimensionally together with the heat-resistant sheath 210. Therefore, for example, when the inspection cable guide mechanism 21 guides the inspection cable 20b inside the turbine 4, the posture of the inspection cable 20b and the position of the sensor 20a can be adjusted with high precision. As a result, the accuracy of inspecting the object to be inspected can be improved.

[0129] Furthermore, in the inspection cable guide mechanism 21 of the above embodiment, the first joint portion 211a, the second joint portion 211b, and the third joint portion 211c of the segment stack 211 are each composed of ten segments 212, and one end of each of the wires 22 is fixed to the segment 212 located at the most distal end Dcla. This allows the first joint portion 211a, the second joint portion 211b, and the third joint portion 211c to be bent in different directions by pulling or unwinding each wire 22. In other words, the segment stack 211 can be bent three-dimensionally with three degrees of freedom of the joints. This allows the posture of the inspection cable 20b and the position of the sensor 20a to be adjusted with higher precision.

[0130] Furthermore, in the driving device 23 of the above embodiment, the rotary actuator 234 rotates the wire winding unit 230 in the winding direction Dwr of the wire 22, thereby winding the wire 22 connected to the inspection cable guide mechanism 21 onto the wire winding unit 230 or unwinding it from the wire winding unit 230. This makes it possible to prevent the driving device 23 from generating a space where the wire 22 extends linearly. Therefore, the overall size of the driving device 23 can be made compact.

[0131] In addition, since the pulley body 239 changes the direction of the wire 22 extending from the wire winding portion 230 toward the inspection cable guide mechanism 21 so that it is along the center line CL of the inspection cable 20b, the freedom of positioning the wire winding portion 230 can be increased.

[0132] Furthermore, the motor 235 of the rotary actuator 234 rotates the wire winding unit 230 based on the rotation angle detected by the encoder 236 and the load measured by the load cell 241, so that the wire 22 can be wound around the wire winding unit 230 while maintaining the tension of the wire 22 extending from the inspection cable guide mechanism 21 at an appropriate level. Therefore, it is possible to prevent excessive load from being applied to the segment stack 211 to which one end of the wire 22 in the inspection cable guide mechanism 21 is fixed, and to prevent the wire 22 from being damaged.

[0133] Furthermore, when inspecting the inside of the turbine 4 as the inspection target, the inspection cable 20b and the inspection cable guide mechanism 21 are inserted into the turbine 4 through the combustor 3. At this time, for example, an obstruction 400 formed of a pipe or the like may be present near the inlet of the combustor 3, making it difficult to directly insert the inspection cable 20b and the inspection cable guide mechanism 21 into the combustor 3 in the direction in which the combustor axis Ac extends.

[0134] According to the inspection cable insertion jig 25, since adjacent split pipes 250 are spaced apart, the inspection cable insertion jig 25 can be curved as a whole with the inspection cable guide mechanism 21 at the front and routed so as to approach the front of the inlet of the object to be inspected (the combustor 3) from diagonally above. In this case, the main body 251 of the split pipe 250 arranged on the front end side Dcla and the slide part 254 of the adjacent split pipe 250 from the rear end side Dclb are assembled so as to be fixed to this split pipe 250, and these two split pipes 250 can be inserted into the object to be inspected.

[0135] That is, the above-mentioned operation of fixing the two split pipes 250 located at the tip side Dcla to each other and then inserting these two split pipes 250 into the object to be inspected can be repeated. Therefore, even if the inspection cable insertion jig 25 is formed to be long, the inspection cable 20b and the inspection cable guide mechanism 21 can be inserted into the combustor 3 without being affected by the interfering object 400.

[0136] Second Embodiment A gas turbine inspection system according to a second embodiment of the present disclosure will be described below with reference to Fig. 18. The drive device of the gas turbine inspection system described in the second embodiment differs from the gas turbine inspection system 200 of the first embodiment in that the configuration of the wire drive mechanism 24 of the drive device 23 is partially different. Components similar to those in the first embodiment are designated by the same reference numerals, and detailed description thereof will be omitted.

[0137] (Drive unit) The driving device 23 is a device that drives the inspection cable guide mechanism 21 by pulling the wire 22 in a direction away from the tip or by unwinding it in a direction toward the tip. As shown in Fig. 18, the driving device 23 includes a casing 242 and a wire driving mechanism 24. The casing 242 has the same configuration as in the first embodiment.

[0138] (Wire drive mechanism) The wire driving mechanism 24 is a mechanism that pulls the wire 22 in a direction away from the tip or pays out the wire 22 in a direction toward the tip. Here, the driving device 23 in this embodiment is equipped with nine wire driving mechanisms 24. Each wire driving mechanism 24 is equipped with a wire winding unit 230, a rotary actuator 234, and a pulley 238. Due to space limitations, only one wire driving mechanism 24 is shown in Figure 18.

[0139] (Wire winding part) The wire winding unit 230 winds the wire 22 extending from the inspection cable guide mechanism 21. The wire winding unit 230 is housed in a casing main body 243. The wire winding unit 230 has a spool 232, a nut 233, and a spline 231.

[0140] The spool 232 is supported by a second support plate 248 of the casing 242. The spool 232 has a spool head portion 232a, a spool body 232b, and a bolt portion 232c.

[0141] The spool head 232a is cylindrical and extends about its axis, and is inserted into a second support hole 248b formed in the second support plate 248. The spool head 232a is rotatably supported by this second support hole 248b. The spool body 232b is connected to the spool head 232a from one side Dwa, and is a cylindrical member that extends about a winding axis Ow (axis) that is parallel to the central axis Om.

[0142] The spool body 232b has a spiral groove formed therein that spirals in the winding axis direction Dw around the winding axis Ow. The wire 22 extending from the inspection cable guide mechanism 21 through the insertion hole 244b, the first hole 247a, and the second hole 248a is wound around the spool body 232b along this spiral groove. The other end of the wire 22 is fixed to the spool body 232b. The bolt portion 232c is a male screw that extends from the spool body 232b toward one side Dwa (the second end plate 245 side) around the winding axis Ow.

[0143] The nut 233 is screwed onto the bolt portion 232c of the spool 232 while being fixed to the second end plate 245. The pitch of the nut 233 (the pitch of the bolt portion 232c) is set to the same dimension as the pitch of the spiral groove.

[0144] The spline 231 is connected from the other side Dwb (first end plate 244 side) to a spool head 232a of the spool 232. The spline 231 has a spline body 231a and a spline shaft 231b.

[0145] The spline body 231a is a cylindrical member extending about the winding axis Ow, and is fixed to the spool head 232a from the other side Dwb. The spline body 231a has internal teeth (not shown).

[0146] Spline shaft 231b is a columnar member extending about winding axis Ow, and protrudes integrally from spline body 231a toward the other side Dwb. Spline shaft 231b has external teeth (not shown) that fit with the internal teeth of spline body 231a.

[0147] (Rotary Actuator) The rotary actuator 234 is connected to the wire winding portion 230 and is a device that rotates the wire winding portion 230. The rotary actuator 234 includes a motor 235 and an encoder 236.

[0148] The motor 235 has a motor body 235a made up of a stator and the like (not shown), and an output shaft 235b to which a rotor and the like (not shown) are fixed and which protrudes from the motor body 235a to one side Dwa.

[0149] The motor body 235a is inserted into and supported by a first support hole 247b formed in the first support plate 247. A cable or the like (not shown) for supplying power from an external source is connected to the stator of the motor body 235a.

[0150] The output shaft 235b is provided on the motor body 235a, and its end protrudes beyond the motor body 235a on one side Dwa. The end of the output shaft 235b is connected to the spline shaft 231b of the spline 231. In other words, the output shaft 235b of the motor 235 is connected to the spline shaft 231b of the spline 231 from the other side Dwb.

[0151] Therefore, when electric power is supplied to the motor body 235a from an external source, the output shaft 235b rotates. As the output shaft 235b rotates, torque is transmitted to the spline 231 and the spool 232 connected to the spline 231 from one side Dwa, causing the spool 232 to rotate. At this time, the spool 232 can move forward and backward in the winding axis direction Dw together with the spline body 231a of the spline 231 relative to a nut 233 fixed to the second end plate 245.

[0152] The encoder 236 is a device that detects the rotation angle of the output shaft 235b inside the motor main body 235a and is capable of transmitting the detection result to an external device.

[0153] (pulley) The pulley 238 has the same configuration as in the first embodiment.

[0154] (Action and effect) In the driving device 23 of the above embodiment, the pitch of the spiral groove of the spool 232 of the wire winding section 230 is the same dimension as the pitch of the nut 233, and when the spool 232 is threaded onto the nut 233, it can move forward and backward together with the spline 231 relative to the nut 233 as the motor 235 rotates.

[0155] This allows the winding and unwinding positions of the wire 22 on the spool 232 to be kept constant when the wire 22 is wound onto the spool 232 or when the wire 22 is unwound from the spool 232 as the motor 235 rotates.

[0156] This makes it possible to suppress the occurrence of sliding friction between the spool 232 and the wire 22. As a result, the spool 232 can smoothly wind or unwind the wire 22.

[0157] Third Embodiment A gas turbine inspection system according to a third embodiment of the present disclosure will be described below with reference to Figures 19 and 20. The gas turbine inspection system described in the second embodiment differs in part from the gas turbine inspection system 200 according to the first embodiment in the configuration of the inspection cable insertion jig. Components similar to those in the first embodiment are designated by the same reference numerals, and detailed description thereof will be omitted.

[0158] (Inspection cable insertion jig) As shown in FIG. 19, the inspection cable insertion jig 25 in this embodiment includes a cable housing body 257 and a bending prevention member 258.

[0159] The cable housing 257 allows the inspection cable 20b and the wire 22 to be inserted therethrough. The cable housing 257 has a plurality of divided bodies 257a connected along the direction in which the center line CL of the inspection cable 20b extends, and a cable fixing portion 257b connected from the rear end side Dclb to the divided body 257a located at the rearmost side Dclb.

[0160] The cable housing 257 is configured to be bendable in only one direction. The divided body 257a and the cable fixing part 257b are formed of metal or the like, and have a cable insertion hole (not shown) through which the bending prevention member 258 can be inserted.

[0161] The bend prevention member 258 is provided on the cable housing 257 from the side opposite to the bending direction of the cable housing 257. Specifically, the bend prevention member 258 is inserted through the cable insertion holes of the divided body 257a and the cable fixing portion 257b along the central axis CL, and extends from the cable fixing portion 257b to the rear end side Dclb. The bend prevention member 258 is made of metal or the like.

[0162] Here, the cable fixing portion 257b has a fixing portion main body 258a and a cable stopper 258b that can fix the bending prevention member 258, which is inserted through the cable insertion hole, to the fixing portion main body 258a.

[0163] Specifically, when pressed from the outside, the cable stopper 258b sandwiches (grabs) the bending prevention member 258 between the cable stopper 258b and the fixing portion main body 258a. As a result, the bending prevention member 258 inserted through the inside of each divided body 257a is fixed to the cable fixing portion 257b so as not to move, and as a result, bending of the cable housing 257 can be restricted.

[0164] A crimped portion larger than the diameter of the cable insertion hole is formed at the end of the tip side Dcla of the bending prevention member 258. The crimped portion prevents the bending prevention member 258 from coming off the divided body 257a located at the tip side Dcla.

[0165] Hereinafter, a method for inserting the inspection cable 20b and the inspection cable guide mechanism 21 into the turbine 4 using the inspection cable insertion jig 25 will be described.

[0166] First, as shown in Fig. 19 , the advancing / retreating actuator 26 is installed near the inlet of the combustor 3 so that the driving device 23 can be advanced and retracted in the combustor axial direction Dac. Next, with the guide tube 27 inserted inside the combustor 3, the inspection cable guide mechanism 21 is inserted into the combustor 3 using the guide tube 27. Next, while the cable housing body 257 of the inspection cable insertion jig 25 is bent in one direction, the segments 257a located on the tip side Dcla are inserted into the combustor 3 sequentially using the guide tube 27 while the cable stopper 258b of the cable fixing portion 257b is pressed.

[0167] After one or more segments 257a have been inserted into the guide tube 27, the pressure on the cable stopper 258b is appropriately released, the cable accommodating body 257 is bent in one direction again, and then, with the cable stopper 258b still pressed, the segments 257a located at the tip side Dcla that is not inserted into the guide tube 27 are inserted into the combustor 3 in order using the guide tube 27.

[0168] After the inspection cable guide mechanism 21 and the inspection cable insertion jig 25 have been inserted, the driving device 23 is placed on the advancing / retracting driving part 261 of the advancing / retracting actuator 26, as shown in Fig. 20. Then, the advancing / retracting actuator 26 moves the driving device 23 in a direction approaching the combustor 3, whereby the inspection cable guide mechanism 21 is introduced into the turbine 4.

[0169] (Action and effect) By using the inspection cable insertion jig 25 of the above embodiment, the inspection cable insertion jig 25 can be curved as a whole with the inspection cable guide mechanism 21 at the front, and can be routed so as to approach the front of the entrance of the object to be inspected (the combustor 3) from diagonally above. Furthermore, compared to the inspection cable insertion jig 25 of the first embodiment, the inspection cable 20b and the inspection cable guide mechanism 21 can be inserted into the combustor 3 more easily.

[0170] (Other embodiments) Although the embodiments of the present disclosure have been described above in detail with reference to the drawings, the specific configurations are not limited to those of the embodiments, and additions, omissions, substitutions, and other modifications of the configurations are possible within the scope of the gist of the present disclosure. Furthermore, the present disclosure is not limited to the embodiments, but is limited only by the claims.

[0171] The sensor 20a is not limited to a sensor module incorporating a semiconductor element such as a CCD image sensor or a CMOS image sensor, but may be a fiberscope or the like.

[0172] Furthermore, the material forming the heat-resistant sheath 210 is not limited to synthetic resin. For example, as shown in Fig. 21, the heat-resistant sheath 210 may be made of a material in which synthetic resin is embedded in a metal mesh (braid) formed by weaving a plurality of metal wires M.

[0173] Furthermore, the number of segments 212 constituting the segment stack 211 is not limited to the above number, but may be any number as long as the number of segments 212 constituting the segment stack 211 is three or more.

[0174] Furthermore, the configurations of the wire winding unit 230 and the rotary actuator 234 of the wire driving mechanism 24 of the driving device 23 are not limited to those in the above embodiment. For example, as shown in Fig. 22, the wire winding unit 230 may not have the spline 231, and the rotary actuator 234 may further have a linear guide 237.

[0175] At this time, motor body 235a is supported within first support hole 247b so as to be movable in winding axis direction Dw, and linear guide 237 is a member fixed to first support plate 247 and capable of guiding motor 235 in winding axis direction Dw. This allows motor 235 and spool 232 of rotation actuator 234 to move forward and backward in winding axis direction Dw relative to nut 233.

[0176] Furthermore, multiple drive units 23 may be arranged in series as shown in Figure 23. This makes it possible to increase the number of joints in the segment stack 211. Figure 23 shows an example in which three drive units 23 are arranged in series.

[0177] At this time, a hole 245b through which the wire 22 can be inserted is formed in the center of the second end plate 245 of the casing 242 of each of the two driving devices 23 counting from the distal end side Dcla (right side in FIG. 23).

[0178] Furthermore, the inspection cable guide mechanism 21 has, for example, nine joint portions (first joint portion 211a, second joint portion 211b, third joint portion 211c, fourth joint portion 211d, fifth joint portion 211e, sixth joint portion 211f, seventh joint portion 211g, eighth joint portion 211h, and ninth joint portion 211i), each having ten segments 212.

[0179] Furthermore, the main body 251 of the split pipe 250 is not limited to a configuration having an inner tube 252 and an outer tube 253. For example, the main body 251 may be a single cylindrical member. In this case, the sliding portion 254 may be cylindrical and cover the main body 251 from the outside, with a larger diameter than the main body 251, and may be configured to slide longitudinally relative to the main body 251.

[0180] <Additional Notes> The inspection cable guide mechanism, the drive device, the inspection cable insertion jig, and the gas turbine inspection system described in each embodiment can be understood, for example, as follows.

[0181] (1) The inspection cable guide mechanism 21 according to the first aspect includes a heat-resistant sheath 210 having flexibility, through which an inspection cable 20b having a sensor 20a at its tip can be inserted, and through which cooling air A3 can flow toward the tip through a gap S between the inspection cable 20b and the heat-resistant sheath 210; a segment stack 211 formed by stacking three or more heat-resistant segments 212 covering the heat-resistant sheath 210 from the outside in a direction in which a center line CL of the inspection cable 20b extends; and a plurality of wires 22 arranged around the heat-resistant sheath 210 and extending along the center line CL. One of the segments 212 other than the segments 212 at both ends of the segment stack 211 can swing relative to each of the two segments 212 adjacent to the one segment 212 in the center line direction Dcl, around a swing axis Os extending in a direction perpendicular to the center line CL, and the two swing axes Os about which the one segment 212 swings relative to each of the two segments 212 are perpendicular to each other when viewed from the center line direction Dcl, and one end of each of the wires 22 is fixed to one of the segments 212 in the segment stack 211.

[0182] This allows the heat-resistant sheath 210 to block heat transferred from the outside toward the inspection cable 20b, while the cooling air A3 can block heat transferred through the heat-resistant sheath 210 toward the inspection cable 20b.

[0183] (2) The inspection cable guide mechanism 21 according to a second aspect is the inspection cable guide mechanism 21 of (1), wherein the segment stack 211 has a first joint portion 211a, a second joint portion 211b, and a third joint portion 211c configured by a plurality of the segments 212, and these first joint portion 211a, second joint portion 211b, and third joint portion 211c are arranged in this order from the side opposite to the tip in the center line direction Dcl, and The wires 22 may be composed of a plurality of first joint wires 22a, one ends of which are fixed to the segment 212 located at the most distal Dcla in the first joint portion 211a, a plurality of second joint wires 22b, one ends of which are fixed to the segment 212 located at the most distal Dcla in the second joint portion 211b, and a plurality of third joint wires 22c, one ends of which are fixed to the segment 212 located at the most distal Dcla in the third joint portion 211c.

[0184] As a result, by performing an operation such as pulling or letting out on each wire 22, the first joint portion 211a, the second joint portion 211b, and the third joint portion 211c can be bent in different directions.

[0185] (3) The driving device 23 according to the third aspect is a driving device 23 that drives the inspection cable guide mechanism 21 of (1) or (2) by pulling the wire 22 in a direction away from the tip or unwinding it in a direction toward the tip, and includes a wire winding section 230 around which the wire 22 is wound, a rotary actuator 234 connected to the wire winding section 230 and having a motor 235 that rotates the wire winding section 230 in the winding direction Dwr of the wire 22 around its axis, a pulley 238 having a pulley body 239 that changes the direction of the wire 22 extending from the wire winding section 230 toward the segment stack 211 midway so that it is along the center line CL, and a support section 240 that supports the pulley body 239, and a casing 242 that can accommodate and support the wire winding section 230, the rotary actuator 234, and the pulley 238.

[0186] As a result, the wire 22 connected to the inspection cable guide mechanism 21 can be wound or unwound by the rotary actuator 234 rotating the wire winding unit 230 in the winding direction Dwr of the wire 22. In addition, since the pulley body 239 changes the direction of the wire 22 so that it is along the center line CL, the degree of freedom in arranging the wire winding unit 230 can be increased.

[0187] (4) A fourth aspect of the driving device 23 is the driving device 23 of (3), wherein the rotary actuator 234 further has an encoder 236 that detects the rotation angle of the motor 235, the pulley 238 further has a load cell 241 provided on the support portion 240, and the motor 235 may rotate the wire winding portion 230 based on the rotation angle detected by the encoder 236 and the load on the support portion 240 measured by the load cell 241.

[0188] This allows the wire 22 to be wound around the wire winding section 230 while maintaining the tension of the wire 22 extending from the inspection cable guide mechanism 21 at an appropriate level.

[0189] (5) A fifth aspect of the driving device 23 is the driving device 23 of (3) or (4), wherein the wire winding unit 230 has a spline 231 connected to the motor 235 from one side Dwa in the axial direction, a spool 232 connected to the spline 231 from one side Dwa in the axial direction and having a spiral groove around which the wire 22 is wound, and a nut 233 threaded onto the spool 232 from one side Dwa in the axial direction and fixed to the casing 242, wherein the pitch of the spiral groove of the spool 232 is the same dimension as the pitch of the nut 233, and the spool 232, while threaded onto the nut 233, may be capable of moving back and forth in the axial direction together with the spline 231 relative to the nut 233 as the motor 235 rotates.

[0190] This allows the winding position and the unwinding position of the wire 22 on the spool 232 to be kept constant when the wire 22 is wound onto the spool 232 or when the wire 22 is unwound from the spool 232.

[0191] (6) A sixth aspect of the driving device 23 is the driving device 23 of (3) or (4), wherein the rotary actuator 234 further has a linear guide 237 capable of guiding the motor 235 in the axial direction, and the wire winding unit 230 has a spool 232 connected to the motor 235 from one side Dwa in the axial direction and having a spiral groove around which the wire 22 is wound, and a nut 233 screwed onto the spool 232 from one side Dwa in the axial direction and fixed to the casing 242, wherein the pitch of the spiral groove of the spool 232 is the same dimension as the pitch of the nut 233, and the spool 232, while screwed onto the nut 233, may be capable of moving back and forth in the axial direction together with the motor 235 relative to the nut 233 as the motor 235 rotates.

[0192] (7) A driving device 23 according to a seventh aspect is a driving device 23 that drives the inspection cable guide mechanism 21 by pulling the wire 22 extending from the inspection cable guide mechanism 21, which guides the inspection cable 20b having the sensor 20a at its tip, in a direction away from the tip side Dcla or by unwinding the wire 22 in a direction toward the tip side Dcla, and includes a wire winding unit 230 around which the wire 22 is wound, and a driving device 23 connected to the wire winding unit 230. The device is equipped with a rotary actuator 234 having a motor 235 that rotates the wire 22 in the winding direction Dwr, a pulley 238 having a pulley body 239 that changes the direction of the wire 22 extending from the wire winding portion 230 toward the inspection cable guide mechanism 21 midway, and a support portion 240 that supports the pulley body 239, and a casing 242 that can accommodate and support the wire winding portion 230, rotary actuator 234, and pulley 238.

[0193] (8) An inspection cable insertion jig 25 according to an eighth aspect is an inspection cable insertion jig 25 that is connected to the inspection cable guide mechanism 21 of (1) or (2) from the side opposite to the tip and is inserted into an object to be inspected together with the inspection cable guide mechanism 21, and includes: a main body portion 251 that is cylindrical and covers the heat-resistant sheath 210 and the wire 22 from the outside and is arranged at intervals in the center line direction Dcl; and a sliding portion 254 that is cylindrical and surrounds the main body portion 251 from the outer periphery and is provided on the main body portion 251 so as to be slidable in the center line direction Dcl. , a plurality of split pipes 250 each having a semi-cylindrical shape and arranged between adjacent main body portions 251 so as to fill the space formed by the spacing between adjacent main body portions 251, and a screw 256 capable of fixing the sliding portion 254 to the main body portion 251 of the split pipe 250 adjacent to the one split pipe 250 in the center line direction Dcl when the sliding portion 254 of one split pipe 250 among the plurality of split pipes 250 slides in the center line direction Dcl to cover the half split pipe 255 from the outside.

[0194] This allows the inspection cable guide mechanism 21 and the inspection cable insertion jig 25 to be maneuvered so that they approach the front of the entrance of the object to be inspected, for example, from diagonally above, and the two split pipes 250 located on the tip side Dcla can be fixed to each other, and then these two split pipes 250 can be inserted into the object to be inspected, repeating the same operation.

[0195] (9) The inspection cable insertion jig 25 according to the ninth aspect is an inspection cable insertion jig 25 that is connected to the inspection cable guide mechanism 21 of (1) or (2) from the side opposite to the tip and is inserted into the inside of the object to be inspected together with the inspection cable guide mechanism 21, and includes a cable housing 257 through which the heat-resistant sheath 210 can be inserted, has a plurality of divided bodies 257a connected along the center line CL, and is bendable only in one direction, and a bending prevention member 258 that is provided in the cable housing 257 along the center line CL and prevents bending of the cable housing 257 when fixed to the cable housing 257.

[0196] This allows the inspection cable 20b and the inspection cable guide mechanism 21 to be inserted into the inspection object from, for example, an obliquely upward direction, even if an obstruction exists near the entrance of the inspection object.

[0197] (10) A testing cable insertion jig 25 according to a tenth aspect is connected to a testing cable guide mechanism 21 that guides a testing cable 20b having a sensor 20a at its tip from the side opposite to the tip, and is inserted into an object to be tested together with the testing cable guide mechanism 21. The testing cable insertion jig 25 includes main body portions 251 that are cylindrical and cover the testing cable 20b from the outside, and are spaced apart from each other in a direction in which a center line CL of the testing cable 20b extends, and a cylindrical outer peripheral portion that surrounds the main body portion 251 and is slidably connected to the main body portion 251 in a direction Dcl of the center line. The apparatus comprises a plurality of split pipes 250 each having a slide portion 254 provided thereon, a plurality of half-split pipes 255 each having a semi-cylindrical shape and arranged between adjacent main body portions 251 so as to fill the space formed by the spacing between adjacent main body portions 251, and a screw 256 capable of fixing the slide portion 254 to the main body portion 251 of the split pipe 250 adjacent to the one split pipe 250 in the center line direction Dcl when the slide portion 254 of one split pipe 250 among the plurality of split pipes 250 slides in the center line direction Dcl to cover the half-split pipe 255 from the outside.

[0198] (11) The inspection cable insertion jig 25 according to the eleventh aspect is connected to an inspection cable guide mechanism 21 that guides an inspection cable 20b having a sensor 20a at its tip from the side opposite the tip, and is inserted into an object to be inspected together with the inspection cable guide mechanism 21. The inspection cable insertion jig 25 includes a cable housing 257 through which the inspection cable 20b can be inserted, the cable housing 257 having a plurality of divided bodies 257a connected along the extending direction of a center line CL of the inspection cable 20b, and being bendable only in one direction; and a bending prevention member 258 that is provided in the cable housing 257 along the center line CL and that prevents bending of the cable housing 257 when fixed to the cable housing 257.

[0199] (12) A gas turbine inspection system 200 according to a twelfth aspect is a gas turbine inspection system 200 for inspecting the inside of a gas turbine 100 as the inspection object, and includes the sensor 20a, the inspection cable 20b, an inspection cable guide mechanism 21 of (1) or (2) that is inserted into the inside of a turbine 4 subsequent to the combustor 3 of the gas turbine 100 through the combustor 3 and guides the inspection cable 20b inside the turbine 4, and a a drive unit 23 of any one of (3) to (6), an inspection cable insertion jig 25 of (8) or (9), an advance / retract actuator 26 that moves the drive unit 23 forward or backward toward or away from the combustor 3, a cooling air supply unit 28 that supplies the cooling air A3 to the gap S in the heat-resistant sheath 210 from the side opposite the tip, and a control device 29 that controls the rotation of the rotary actuator 234 and the advance / retract movement of the drive unit 23 by the advance / retract actuator 26. [Explanation of symbols]

[0200] 1...Compressor 2...Intermediate casing 3...Combustor 4...Turbine 10...Compressor rotor 11...Compressor rotor shaft 12...Compressor rotor blade row 13...Compressor casing 14...Compressor casing body 15...Air inlet section 16...Compressor stator blade row 20a...Sensor 20b...Inspection cable 21...Inspection cable guide mechanism 22...Wire 22a...Wire for first joint 22b...Wire for second joint 22c...Wire for third joint 22d...Wire for fourth joint 22e...Wire for fifth joint 22f...Wire for sixth joint 22g...Wire for seventh joint 22h...Wire for eighth joint 22i...Wire for ninth joint 23...Driver 24...Wire drive mechanism 25...Inspection cable insertion jig 26...Advance / retract actuator 27...Guide tube 28...Cooling air supply section 29...Control device 40... Turbine rotor 41... Turbine rotor shaft 42... Turbine rotor blade row 43... Turbine casing 44... Turbine casing body 45... Turbine stator blade row 100... Gas turbine 101... Gas turbine casing 102... Gas turbine rotor 200... Gas turbine inspection system 210... Heat-resistant sheath 211... Segment stack 211a... First joint portion 211b... Second joint portion 211c... Third joint portion 211d... Fourth joint portion 211e... Fifth joint portion 211f... Sixth joint portion 211g... Seventh joint portion 211h... Eighth joint portion 211i... Ninth joint portion 211j... Connection portion 212... Segment 212a... First segment 212b... Second segment 212c... Third segment 213... Segment body 213a... Front end surface 213b... Rear end surface 213c...Outer peripheral surface 214...Through hole 215...Recess 215a...Recess surface 215b...Recess abutting surface 216...Wire insertion hole 216a...First wire insertion hole 216b...Second wire insertion hole 216c...Third wire insertion hole 217...Lightening hole 218...Protrusion 218a...Convex surface 218b...Protrusion outer surface 218c...Protrusion abutting surface 222a, 222b,222c... Crimping ball 230... Wire winding portion 231... Spline 231a... Spline body 231b... Spline shaft 232... Spool 232a... Spool head 232b... Spool body 232c... Bolt portion 233... Nut 234... Rotary actuator 235... Motor 235a... Motor body 235b... Output shaft 236... Encoder 237... Linear guide 238... Pulley 239... Pulley body 240... Support portion 240a... First support portion 240b... Second support portion 240c... Support portion hole 240d... First surface 240e... Second surface 241... Load cell 241a... First measuring portion 241b... Second measuring portion 242... Casing 243... Casing body 244... First end plate 244a... Front surface 244b...insertion hole 245...second end plate 245a...back surface 245b...hole 246...connection plate 247...first support plate 247a...first hole 247b...first support hole 248...second support plate 248a...second hole 248b...second support hole 250...separate pipe 251...main body 252...inner tube 253...outer tube 254...slide portion 255...half-split pipe 256...screw 257...cable housing 257a...separate body 257b...cable fixing portion 258...bending prevention member 258a...fixing portion main body 258b...cable stopper 260...guide rail 260a...upper surface 261...advance / retreat drive portion 271...first guide tube 272...second guide tube 273...fixing portion 300...generator 301...Generator output shaft 400...Interfering object A1...Air A2...Compressed air A3...Cooling air Ac...Combustor axis Ar...Rotor axis Cg...Combustion gas flow path CL...Center line Da...Rotor axial direction Dac...Combustor axial direction Dad...Axis downstream side Dau...Axis upstream side Dcl...Center line direction Dcla...Front end side Dclb...Rear end side Dr...Radial direction Dri...Radial inner side Dro...Radial outer side Dw...Winding axis direction Dwa...One side Dwb...Other side Dwr...Winding direction Ea...Front end Eb...Rear end F...Fuel G...Combustion gas M...Metal wire Om...Center axis Os...Swing axis Ow...Winding axis S...Gap

Claims

1. a heat-resistant sheath having flexibility through which an inspection cable having a sensor at its tip can be inserted and through which cooling air can flow toward the tip through a gap between the inspection cable and the heat-resistant sheath; a segment stack formed by stacking three or more heat-resistant segments covering the heat-resistant sheath from the outside in a direction in which a center line of the inspection cable extends; a plurality of wires disposed around the heat-resistant sheath and extending along the centerline; Equipped with one of the segments other than the segments at both ends of the segment stack is swingable relative to each of the two segments adjacent to the one segment in the center line direction about a swing axis extending in a direction perpendicular to the center line, The two swing axes about which the one segment swings relative to the two segments are orthogonal to each other when viewed from the center line direction, One end of each of the wires is fixed to one of the segments in the segment stack, the segment stack has a plurality of joint portions formed by stacking a plurality of the segments in a direction in which the center line extends, each of the joint portions is bendable by three of the wires that are equally spaced in a circumferential direction around the center line; An inspection cable guide mechanism in which the wire is arranged in an inner region of the segment in a radial direction centered on the centerline.

2. the segment stack has a first joint portion, a second joint portion, and a third joint portion configured by a plurality of the segments, the first joint portion, the second joint portion, and the third joint portion are arranged in this order from the side opposite the tip end in the direction of the center line, The plurality of wires a plurality of first joint wires, one ends of which are fixed to the segment arranged closest to the distal end of the first joint portion; a plurality of second joint wires, one ends of which are fixed to the segment arranged closest to the distal end of the second joint portion; a plurality of third joint wires, one ends of which are fixed to the segment arranged closest to the distal end of the third joint portion; 2. The inspection cable guide mechanism according to claim 1, wherein the inspection cable guide mechanism is configured as follows:

3. 3. A driving device that drives the inspection cable guide mechanism according to claim 1 or 2 by pulling the wire in a direction away from the tip or by unwinding the wire in a direction toward the tip, a wire winding portion around which the wire is wound; a rotary actuator having a motor connected to the wire winding portion and rotating the wire winding portion around an axis in the winding direction of the wire; a pulley having a pulley body that changes the direction of the wire extending from the wire winding portion toward the segment stack along the center line, and a support portion that supports the pulley body; a casing capable of housing and supporting the wire winding portion, the rotary actuator, and the pulley; A drive unit comprising:

4. the rotary actuator further includes an encoder that detects a rotation angle of the motor; The pulley further includes a load cell provided on the support portion, The driving device according to claim 3 , wherein the motor rotates the wire winding portion based on the rotation angle detected by the encoder and the load acting on the support portion measured by the load cell.

5. The wire winding portion a spline connected to the motor from one side in the axial direction; a spool connected to the spline from one side in the axial direction and having a spiral groove around which the wire is wound; a nut that is threaded onto the spool from one side in the axial direction and fixed to the casing; and The pitch of the spiral groove of the spool is the same as the pitch of the nut, 5. The drive device according to claim 3, wherein the spool is threadedly engaged with the nut and is movable together with the spline relative to the nut in the axial direction as the motor rotates.

6. the rotary actuator further includes a linear guide capable of guiding the motor in the axial direction; The wire winding portion a spool connected to the motor from one side in the axial direction and having a spiral groove around which the wire is wound; a nut that is threaded onto the spool from one side in the axial direction and fixed to the casing; and The pitch of the spiral groove of the spool is the same as the pitch of the nut, 5. The drive device according to claim 3, wherein the spool is threadedly engaged with the nut and is movable together with the motor in the axial direction relative to the nut as the motor rotates.

7. 3. An inspection cable insertion jig that is connected to the inspection cable guide mechanism according to claim 1 or 2 from a side opposite to the tip and that is inserted into an object to be inspected together with the inspection cable guide mechanism, a plurality of split pipes each having a cylindrical main body portion that covers the heat-resistant sheath and the wire from the outside and is arranged at intervals in the center line direction; and a cylindrical slide portion that surrounds the main body portion from the outer periphery and is provided on the main body portion so as to be slidable in the center line direction; a plurality of half-split pipes each having a semi-cylindrical shape and arranged between adjacent main body portions so as to fill a space formed by the spacing between the adjacent main body portions; a screw capable of fixing the slide portion to the main body portion of one of the split pipes adjacent to the one of the split pipes in the center line direction when the slide portion of the one of the split pipes slides in the center line direction to cover the half pipe from the outside; An inspection cable insertion jig comprising:

8. 3. An inspection cable insertion jig that is connected to the inspection cable guide mechanism according to claim 1 or 2 from a side opposite to the tip and that is inserted into an object to be inspected together with the inspection cable guide mechanism, a cable housing having a plurality of divided bodies connected along the center line, the heat-resistant sheath being insertable therethrough, and being bendable in only one direction; a bending prevention member provided in the cable housing along the center line and configured to prevent bending of the cable housing when the cable housing is fixed to the cable housing; An inspection cable insertion jig comprising:

9. An inspection cable insertion jig that is connected to an inspection cable guide mechanism that guides an inspection cable having a sensor at its tip from a side opposite to the tip, and that is inserted into an object to be inspected together with the inspection cable guide mechanism, a plurality of divided pipes each including a cylindrical main body portion that covers the testing cable from the outside and is arranged at intervals in a direction in which a center line of the testing cable extends, and a sliding portion that is cylindrical and surrounds the main body portion from the outer periphery and is provided on the main body portion so as to be slidable in the direction of the center line; a plurality of half-split pipes each having a semi-cylindrical shape and arranged between adjacent main body portions so as to fill a space formed by the spacing between the adjacent main body portions; a screw capable of fixing the slide portion to the main body portion of one of the split pipes adjacent to the one of the split pipes in the center line direction when the slide portion of the one of the split pipes slides in the center line direction to cover the half pipe from the outside; An inspection cable insertion jig comprising:

10. A gas turbine inspection system that inspects the inside of a gas turbine as the inspection object, the sensor and the inspection cable; an inspection cable guide mechanism according to claim 1 or 2, which is inserted into a turbine subsequent to the combustor of the gas turbine through the combustor and guides the inspection cable inside the turbine; A drive device according to any one of claims 3 to 6, arranged externally to the gas turbine; The inspection cable insertion jig according to claim 7 or 8, an advancing / retracting actuator that moves the drive device toward or away from the combustor; a cooling air supply unit that supplies the cooling air to the gap in the heat-resistant sheath from the side opposite to the tip; a control device that controls the rotation of the rotary actuator and the advancement and retreat of the drive device by the advancement and retreat actuator; A gas turbine inspection system comprising:

11. A heat-resistant sheath having flexibility through which an inspection cable having a sensor at its tip can be inserted and through which cooling air can flow toward the tip through a gap between the inspection cable and the sheath. a segment stack formed by stacking three or more heat-resistant segments covering the heat-resistant sheath from the outside in a direction in which a center line of the inspection cable extends; a plurality of wires disposed around the heat-resistant sheath and extending along the centerline; Equipped with one of the segments other than the segments at both ends of the segment stack is swingable relative to each of the two segments adjacent to the one segment in the center line direction about a swing axis extending in a direction perpendicular to the center line, The two swing axes about which the one segment swings relative to the two segments are orthogonal to each other when viewed from the center line direction, an inspection cable insertion jig in which one end of each of the wires is connected to an inspection cable guide mechanism fixed to any one of the segments in the segment stack from the side opposite to the tip, and the inspection cable insertion jig is inserted into an object to be inspected together with the inspection cable guide mechanism, a plurality of split pipes each having a cylindrical main body portion that covers the heat-resistant sheath and the wire from the outside and is arranged at intervals in the center line direction; and a cylindrical slide portion that surrounds the main body portion from the outer periphery and is provided on the main body portion so as to be slidable in the center line direction; a plurality of half-split pipes each having a semi-cylindrical shape and arranged between adjacent main body portions so as to fill a space formed by the spacing between the adjacent main body portions; a screw capable of fixing the slide portion to the main body portion of one of the split pipes adjacent to the one of the split pipes in the center line direction when the slide portion of the one of the split pipes slides in the center line direction to cover the half pipe from the outside; An inspection cable insertion jig comprising:

Citation Information

Patent Citations

  • Compact multi-joint-section snake arm driving mechanism easy to expand

    CN105690378A

  • Flexible charging robot based on rope driving

    CN106737628A

  • Telescopic mechanism, mechanical arm and robot system

    CN109397331A

  • Wire tension controller in wire saw

    JP1997094755A

  • Bending neck to be used with invasive medical apparatus

    JP1997182737A