Flow path forming plate, blade and gas turbine equipped with the same

The flow path forming plate in the gas turbine optimizes cooling air flow and heat exchange by incorporating throttle passage portions, addressing the inefficiency caused by excessive cooling air demand in existing designs.

JP7752735B2Active Publication Date: 2025-10-10MITSUBISHI HEAVY IND LTD
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Patent Information

Application Number
JP2024120889
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-07-26
Publication Date
2025-10-10
Estimated Expiration
2041-01-22

AI Technical Summary

Technical Problem

Existing gas turbine designs require a significant portion of compressed air for cooling the flow path forming plate, reducing the airflow available for combustion and decreasing turbine efficiency.

Method used

A flow path forming plate design with a main passage and side passages, including throttle passage portions, to reduce cooling air flow rate and increase the cross-sectional area of the main passage, allowing wider cooling coverage and improved heat exchange.

Benefits of technology

Reduces the amount of cooling air used, maintaining turbine efficiency by optimizing cooling air flow and enhancing heat exchange performance.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

To suppress the quantity of cooling air to be used in a duct forming plate.SOLUTION: A duct forming plate includes: a gas pass surface in contact with combustion gas; an anti-gas-pass surface facing an opposite side with respect to the gas pass surface; an end face formed at an edge of the gas pass surface; and a side passage which is formed between the gas pass surface and the anti-gas-pass surface, and in which cooling air flows. The end face includes a rear end face, a front end face, and a side end face. The side passage includes: a main passage portion extending along the gas pass surface and the side end face in a direction where the side end face extends; and at least one throttle passage portion which extends from an end of the main passage portion at a downstream side to the rear end face and is opened on the rear end face. An area of the opening in the at least one throttle passage portion on the rear end face is smaller than a cross-sectional area of the main passage portion.SELECTED DRAWING: Figure 4
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Description

[Technical Field]

[0001] The present invention relates to a flow path forming plate that defines a combustion gas flow path through which combustion gas flows, a wing and a gas turbine having the same, In a bottle Regarding. [Background technology]

[0002] A gas turbine includes a compressor that compresses air to generate compressed air, a combustor that burns fuel in the compressed air to generate combustion gas, and a turbine driven by the combustion gas. The turbine has a flow passage forming plate that defines a combustion gas flow passage through which the combustion gas flows. This flow passage forming plate is exposed to the combustion gas and therefore needs to be cooled. For this reason, a cooling air passage through which cooling air flows is formed in the flow passage forming plate.

[0003] For example, the flow path forming plate described in Patent Document 1 below has a gas path surface in contact with combustion gas, an opposite gas path surface facing the opposite side of the gas path surface, an end surface formed on the periphery of the gas path surface, and multiple cooling air passages formed between the gas path surface and the opposite gas path surface. The end surface has a rear end surface, a front end surface, and a side end surface. One of the multiple cooling air passages extends along the side end surface and opens at the rear end surface. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2016-035239 Summary of the Invention [Problem to be solved by the invention]

[0005] In the technology described in Patent Document 1, a portion of the compressed air generated by the compressor of the gas turbine is used as cooling air that flows through multiple cooling air passages in the passage forming plate. That is, a portion of the compressed air generated by the compressor is sent to the passage forming plate, and the remainder is sent to the combustor. Therefore, if the flow rate of the compressed air sent to the passage forming plate increases, the flow rate of the compressed air sent to the combustor decreases, and the efficiency of the gas turbine decreases. Therefore, it is desirable to reduce the amount of cooling air used by the passage forming plate.

[0006] Therefore, the present invention provides a flow path forming plate that can reduce the amount of cooling air used, a blade equipped with the same, and a gas turbine equipped with the same. Bottle The purpose is to provide. [Means for solving the problem]

[0007] In order to achieve the above object, one aspect of the invention is to provide a flow path forming plate, A flow path forming plate that defines a combustion gas flow path through which combustion gas flows in a gas turbine, The cooling fan includes a main body, a peripheral wall, and at least one side passage through which cooling air flows. The nozzle has a gas path surface in contact with the combustion gas, an opposite gas path surface facing the opposite side to the gas path surface, and an end surface formed on the periphery of the gas path surface. The end surface has a rear end surface facing the downstream side of the combustion gas flow, a front end surface facing the upstream side opposite the downstream side and back-to-back with the rear end surface, and a side end surface facing a lateral direction perpendicular to the gas flow direction where the rear end surface and the front end surface are aligned. The peripheral wall is provided along the end face of the main body and protrudes from the opposite gas path surface to the opposite gas path side of the gas path side where the gas path surface is located relative to the opposite gas path surface, and has a side end face continuous with the side end face of the main body and a surface facing the opposite gas path side. The at least one side passage is an entrance passage; The exhaust manifold has a main passage portion extending along the gas path surface and the side end surface in the direction in which the side end surface extends, and at least one throttle passage portion extending from the downstream end of the main passage portion toward the rear end surface and opening at the rear end surface. The inlet passage portion has an inlet that opens on the surface of the peripheral wall facing away from the gas path, extends from the inlet to the gas path side, is directly connected to the main passage portion, and communicates with the main passage portion. The area of ​​the opening of the at least one throttle passage portion at the rear end surface is smaller than the cross-sectional area of ​​the main passage portion.

[0008] In this aspect, since the side passage has at least one throttle passage portion, the flow rate of cooling air passing through this side passage can be reduced compared to when there is no throttle passage portion. Also, in this aspect, the cross-sectional area of ​​the main passage portion can be made larger compared to when the cross-sectional area of ​​the side passage is the same at each position from the cooling air inlet to the cooling air outlet. Therefore, when the side passage is projected onto the gas path surface from the side opposite the gas path, the projected area of ​​the side passage on the gas path surface can be made larger, and a wide area of ​​the gas path surface can be cooled.

[0011] In one aspect of the present invention, a wing is provided that: The gas path forming plate according to any one of the above aspects comprises a blade body extending from the gas path surface in a blade height direction having a directional component perpendicular to the gas path surface, and having a cross-sectional shape perpendicular to the blade height direction that forms a blade shape.

[0013] One aspect of a gas turbine for achieving the above object is as follows: The present invention includes a combustor that generates combustion gas, and a turbine that is driven by the combustion gas, wherein the turbine has the flow path forming plate according to any one of the above aspects. [Effects of the Invention]

[0016] According to one aspect of the present disclosure, the amount of cooling air used can be reduced. [Brief explanation of the drawings]

[0017] [Figure 1] 1 is a schematic cross-sectional view of a gas turbine in one embodiment according to the present disclosure. [Figure 2] 1 is a cross-sectional view of a main portion of a gas turbine in an embodiment according to the present disclosure. FIG. [Figure 3] FIG. 1 is a perspective view of a stator vane in an embodiment according to the present disclosure. [Figure 4] FIG. 4 is a cross-sectional view taken along line IV-IV in FIG. [Figure 5] FIG. 5 is a cross-sectional view taken along line VV in FIG. [Figure 6]FIG. 2 is a perspective view of a main portion of a side passage in one embodiment according to the present disclosure. [Figure 7] 10 is a flowchart illustrating a manufacturing procedure for a flow path forming plate according to an embodiment of the present disclosure. [Figure 8] 10A and 10B are explanatory views showing an intermediate product forming step and a groove forming step in an embodiment according to the present disclosure. [Figure 9] 10A and 10B are explanatory diagrams illustrating a lid placement step in one embodiment of the present disclosure. [Figure 10] 10A and 10B are explanatory diagrams illustrating a passage forming step in one embodiment according to the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0018] Hereinafter, embodiments of the present disclosure will be described in detail with reference to the drawings.

[0019] "Gas Turbine Embodiment" As shown in FIG. 1, a gas turbine according to one embodiment of the present disclosure includes a compressor 20 that compresses air A to generate compressed air Acom, a combustor 30 that burns fuel F in the compressed air Acom to generate combustion gas G, and a turbine 40 that is driven by the combustion gas G.

[0020] The compressor 20 has a compressor rotor 21 that rotates about an axis Ar, a compressor casing 25 that covers the compressor rotor 21, and a plurality of stator blade rows 26. The turbine 40 has a turbine rotor 41 that rotates about the axis Ar, a turbine casing 45 that covers the turbine rotor 41, and a plurality of stator blade rows 46. Note that, hereinafter, the direction in which the axis Ar extends will be referred to as the axial direction Da, the circumferential direction about the axis Ar will be simply referred to as the circumferential direction Dc, and the direction perpendicular to the axis Ar will be referred to as the radial direction Dr. Furthermore, one side of the axial direction Da will be referred to as the axial upstream side Dau, and the opposite side will be referred to as the axial downstream side Dad. Furthermore, the side of the radial direction Dr that approaches the axis Ar will be referred to as the radially inner side Dri, and the opposite side will be referred to as the radially outer side Dro.

[0021] The gas turbine of this embodiment further includes an intermediate casing 14. The compressor 20 is disposed on the axial upstream side Dau with respect to the turbine 40. The intermediate casing 14 is disposed between the compressor casing 25 and the turbine casing 45 in the axial direction Da. The compressor casing 25, the intermediate casing 14, and the turbine casing 45 are connected to one another to form a gas turbine casing 15. The combustor 30 is attached to this intermediate casing 14. The compressor rotor 21 and the turbine rotor 41 are located on the same axis Ar and are connected to one another to form a gas turbine rotor 11. To this gas turbine rotor 11, for example, a rotor of a generator GEN is connected.

[0022] The compressor rotor 21 has a rotor shaft 22 extending in the axial direction Da around the axis Ar, and a plurality of rotor blade rows 23 attached to the rotor shaft 22. The plurality of rotor blade rows 23 are aligned in the axial direction Da. Each rotor blade row 23 is composed of a plurality of rotor blades 23a aligned in the circumferential direction Dc. One of the plurality of stator blade rows 26 is arranged on the axial upstream side Dau of each of the plurality of rotor blade rows 23. Each stator blade row 26 is provided inside the compressor casing 25. Each stator blade row 26 is composed of a plurality of stator blades 26a aligned in the circumferential direction Dc.

[0023] The turbine rotor 41 has a rotor shaft 42 that extends in the axial direction Da around the axis Ar, and a plurality of rotor blade rows 43 attached to the rotor shaft 42. The plurality of rotor blade rows 43 are aligned in the axial direction Da. Each rotor blade row 43 is composed of a plurality of rotor blades 43a aligned in the circumferential direction Dc. One of the plurality of stator blade rows 46 is arranged on the axial upstream side Dau of each of the plurality of rotor blade rows 43. Each stator blade row 46 is provided inside the turbine casing 45. Each stator blade row 46 is composed of a plurality of stator blades 46a aligned in the circumferential direction Dc.

[0024] 2, the turbine casing 45 has a cylindrical outer casing 45a that forms its outer shell, an inner casing 45b fixed to the inside of the outer casing 45a, a plurality of ring segments 45d fixed to the inside of the inner casing 45b, and a heat shield ring 45c that connects the stator blades 46a and the ring segments 45d to the inner casing 45b. All of the ring segments 45d are provided at positions between the plurality of stator blade rows 46. Therefore, the rotor blade rows 43 are arranged radially inward Dri of each ring segment 45d.

[0025] The annular space between the outer circumferential side of the rotor shaft 42 and the inner circumferential side of the turbine casing 45, in which the stator vanes 46a and the rotor blades 43a are arranged in the axial direction Da, forms a combustion gas flow path 49 through which combustion gas G from the combustor 30 flows. This combustion gas flow path 49 is annular, centered on the axis Ar, and is elongated in the axial direction Da. The combustion gas G flows through this combustion gas flow path 49 essentially in the axial direction Da. Therefore, this axial direction Da is also the gas flow direction. A cooling air passage (not shown) is formed in the inner casing 45b of the turbine casing 45, penetrating from the radially outer side Dro to the radially inner side Dri. The cooling air that passes through this cooling air passage is introduced into the stator vanes 50 and the ring segment 45d and is used to cool the stator vanes 50 and the ring segment 45d. Depending on the stator blade row 46, the air inside the gas turbine casing 15 may be supplied as cooling air to the stator blades 50 constituting the stator blade row 46 without passing through the cooling air passage of the turbine casing 45.

[0026] Hereinafter, an embodiment relating to the stator blades 50 constituting the first stage stator blade row 46 among the plurality of stator blade rows 46 will be described.

[0027] "Embodiment of Stator Blade" Hereinafter, an embodiment of a stator vane according to the present invention will be described with reference to FIGS.

[0028] As shown in Fig. 3, the stator vane 50 of this embodiment has a blade body 51, an inner shroud 60i, an outer shroud 60o, and a retainer 59. The blade body 51 has an airfoil-shaped cross section and extends in a blade height direction Dh having a directional component perpendicular to the cross section. The inner shroud 60i is provided at one end of the blade body 51 in the blade height direction Dh. The outer shroud 60o is provided at the other end of the blade body 51 in the blade height direction Dh. The blade body 51, the inner shroud 60i, and the outer shroud 60o are integrally formed by casting or the like.

[0029] When the stator vane 50 is attached to the turbine casing 45 (see FIGS. 2 and 3), the blade height direction Dh substantially becomes the radial direction Dr. One side of the blade height direction Dh becomes the radially inner side Dri, and the other side of the blade height direction Dh becomes the radially outer side Dro. Therefore, the inner shroud 60i is provided on the radially inner side Dri of the blade body 51, and the outer shroud 60o is provided on the radially outer side Dro of the blade body 51.

[0030] As shown in FIGS. 3 and 4 , the blade surface, which is the outer surface of the blade body 51, has a leading edge 52, a trailing edge 53, a suction surface 54 which is a convex surface, and a pressure surface 55 which is a concave surface. The leading edge 52 and the trailing edge 53 are located at the connection between the suction surface 54 and the pressure surface 55. The leading edge 52, the trailing edge 53, the suction surface 54, and the pressure surface 55 all extend in the radial direction Dr, which is the blade height direction Dh. When the stator vane 50 is attached to the turbine casing 45, the leading edge 52 is located on the axial upstream side Dau relative to the trailing edge 53. When the stator vane 50 is attached to the turbine casing 45, the suction surface 54 faces a circumferential suction side (second lateral side) Dcn, which is one side of the circumferential direction (lateral direction) Dc, and the pressure surface 55 faces a circumferential pressure side (first lateral side) Dcp, which is the other side of the circumferential direction Dc.

[0031] The inner shroud 60i defines the edge of the radially inner side Dri of the annular combustion gas flow path 49. The outer shroud 60o defines the edge of the radially outer side Dro of the annular combustion gas flow path 49. Therefore, both the inner shroud 60i and the outer shroud 60o of the stator vane 50 constitute flow path forming plates.

[0032] As shown in FIG. 3, each of the outer shroud 60o and the inner shroud 60i, which are flow passage forming plates, includes a shroud main body 61 and a peripheral wall 65. The shroud main body 61 includes a front end face 62f, which is an end face on the axial upstream side Dau, a rear end face 62b, which is an end face on the axial downstream side Dad, a pair of side end faces 63 facing opposite sides in the circumferential direction Dc, a gas path surface 64p in contact with the combustion gas G, and a counter-gas path surface 64o facing the opposite side of the gas path surface 64p. Of the pair of side end faces 63, the end face on the circumferential pressure side (first lateral side) Dcp forms a pressure side end face (first lateral side end face) 63p, and the end face on the circumferential suction side (second lateral side) Dcn forms a suction side end face (first lateral side end face) 63n. The front end face 62f and the rear end face 62b are substantially parallel to each other. The positive pressure side end surface 63p and the negative pressure side end surface 63n are substantially parallel to each other. Dr. When viewed from the front, it has a parallelogram shape as shown in FIG.

[0033] Here, the side where the gas path surface 64p exists relative to the opposite gas path surface 64o is referred to as the gas path side Drp, and the side where the opposite gas path surface 64o exists relative to the gas path surface 64p is referred to as the opposite gas path side Dra. The opposite gas path side Dra of the outer shroud 60o is the radially outer side Dro, and the gas path side Drp of the outer shroud 60o is the radially inner side Dri. The opposite gas path side Dra of the inner shroud 60i is the radially inner side Dri, and the gas path side Drp of the inner shroud 60i is the radially outer side Dro.

[0034] The peripheral wall 65 protrudes from the opposite-gas path surface 64o toward the opposite-gas path side Dra. The peripheral wall 65 has a front wall 65f and a rear wall 65b facing each other in the axial direction Da, and a pair of side walls 65p, 65n facing each other in the circumferential direction Dc. Of the pair of side walls 65p, 65n, the side wall on the circumferential pressure side Dcp forms the pressure side wall 65p, and the side wall on the circumferential suction side Dcn forms the suction side wall 65n. Both the front wall 65f and the rear wall 65b protrude toward the opposite-gas path side Dra with respect to the shroud main body 61 further than the pair of side walls 65p, 65n. In the outer shroud 60o and the inner shroud 60i, a recess 66 recessed toward the gas path side Drp is formed by the shroud main body 61 and the peripheral wall 65. The surface of the circumferential pressure side Dcp of the pressure side wall 65p is flush with the surface of the circumferential pressure side Dcp of the shroud main body 61. In addition, the surface of the circumferential suction side Dcn of the suction side wall 65n is flush with the surface of the circumferential suction side Dcn of the shroud main body 61.

[0035] The retainer 59 protrudes from a pair of side walls 65p, 65n of the inner shroud 60i toward the counter-gas path side Dra (radially inner side Dr). The retainer 59 is located between the front wall 65f and the rear wall 65b in the axial direction Da and is formed from the pressure side end face 63p to the suction side end face 63n. The pressure side end face of the retainer 59 is flush with the pressure side end face 63p of the inner shroud main body 61i. Although not shown, the suction side end face of the retainer 59 is also flush with the suction side end face 63n of the inner shroud main body 61i. As shown in FIG. 2 , the retainer 59 contacts the radially outer end 17a of the axial downstream side Dad of the inner cover 17 fixed to the gas turbine casing 15 and serves to support the radially inner side Dr of the stator vane 50 on the radially outer end 17a of the inner cover 17.

[0036] As shown in FIG. 4, the outer shroud 60o and the inner shroud 60i further have a pair of side passages 70 and a plurality of rear-end ejection passages 79 formed between the gas path surface 64p and the opposite gas path surface 64o, through which cooling air flows. As described above, the inner shroud 60i is different from the outer shroud 60o in that the inner shroud 60i is provided with the retainer 59 described above, while the outer shroud 60o is not provided with a member equivalent to the retainer 59. However, the inner shroud 60i and the outer shroud 60o are basically the same in other configurations. Therefore, the following description will focus on the outer shroud 60o.

[0037] One of the pair of side passages 70 forms a positive pressure side passage (first side passage) 70p, and the other side passage 70 forms a negative pressure side passage (second side passage) 70n. The positive pressure side passage 70p runs along the positive pressure side end face (first side end face) 63p, and the negative pressure side passage 70n runs along the negative pressure side end face (first side end face) 63n.

[0038] Each of the multiple rear end ejection passages 79 penetrates from the surface that defines the recess 66 to the rear end face 62b. The multiple rear end ejection passages 79 are aligned in the circumferential direction (lateral direction) Dc between the positive pressure side passage 70p and the negative pressure side passage 70n.

[0039] Each of the positive pressure side passage 70p and the negative pressure side passage 70n has an inlet passage portion 71, a main passage portion 72, and two throttle passage portions 73, as shown in FIGS.

[0040] The main passage portion 72 of the pressure side passage 70p extends along the gas path surface 64p and the pressure side end face 63p in the direction in which the pressure side end face 63p extends. The inlet passage portion 71 of the pressure side passage 70p extends from the end of the axial upstream side Dau of the main passage portion 72 to the opposite gas path side Dra and opens at the surface of the pressure side wall 65p facing the opposite gas path side Dra. This opening is a cooling air inlet 74 of the pressure side passage 70p. The two throttle passage portions 73 each extend from the end of the axial downstream side Dad of the main passage portion 72 toward the rear end face 62b and open at the rear end face 62b. This opening is a cooling air outlet 75 of the pressure side passage 70p. This opening is the only cooling air outlet 75 in the pressure side passage 70p. The area of ​​the opening of the inlet passage portion 71, i.e., the area of ​​the inlet 74, is substantially the same as the cross-sectional area of ​​the main passage portion 72. In addition, the total area of ​​the openings of the two throttle passage portions 73, i.e., the total area of ​​the outlets 75, is smaller than the cross-sectional area of ​​the main passage portion 72.

[0041] The main passage portion 72 of the suction side passage 70n extends along the gas path surface 64p and the suction side end face 63n in the same direction as the suction side end face 63n. The inlet passage portion 71 of the suction side passage 70n extends from the end of the main passage portion 72 on the axial upstream side (Dau) to the opposite gas path side (Dra) and opens at the surface of the suction side wall 65n facing the opposite gas path side (Dra). This opening is a cooling air inlet 74 of the suction side passage 70n. Each of the two throttle passage portions 73 extends from the end of the main passage portion 72 on the axial downstream side (Dad) toward the rear end face 62b and opens at the rear end face 62b. This opening is a cooling air outlet 75 of the suction side passage 70n. This opening is the only cooling air outlet 75 in the suction side passage 70n. The area of ​​the opening of the inlet passage portion 71, i.e., the area of ​​the inlet 74, is substantially the same as the cross-sectional area of ​​the main passage portion 72. In addition, the total area of ​​the openings of the two throttle passage portions 73, i.e., the total area of ​​the outlets 75, is smaller than the cross-sectional area of ​​the main passage portion 72.

[0042] The two throttle passage portions 73 of the positive pressure side passage 70p extend in the passage extending direction Dp in which the main passage portion 72 of the positive pressure side passage 70p extends. Restricted passage 73The negative pressure side passage 70n extends in the passage extending direction Dp in which the main passage portion 72 of the positive pressure side passage 70p extends. In this embodiment, the passage extending direction Dp in which the main passage portion 72 of the positive pressure side passage 70p extends and the passage extending direction Dp in which the main passage portion 72 of the negative pressure side passage 70n extends are the same direction. Furthermore, the passage extending direction Dp and the direction in which the side end surface 63 extends are the same direction.

[0043] 6, the horizontal width Wh of each main passage portion 72 of the positive pressure side passage 70p and the negative pressure side passage 70n is wider than the vertical width Wv of each main passage portion 72 of the positive pressure side passage 70p and the negative pressure side passage 70n. Here, the horizontal width Wh is the width in a direction perpendicular to the passage extending direction Dp and parallel to the gas path surface 64p. Furthermore, the vertical width Wv is the width in a direction perpendicular to the passage extending direction Dp and perpendicular to the gas path surface 64p.

[0044] In each of the main passage portions 72 of the positive pressure side passage 70p and the negative pressure side passage 70n, among the surfaces that define the space within the main passage portion 72, the surface facing the anti-gas path side Dra is an uneven surface 76 in which unevenness is repeated in the passage extending direction Dp. Therefore, this uneven surface 76 functions as a turbulator for the cooling air flowing through the main passage portion 72.

[0045] Next, a manufacturing procedure for the flow path forming plate (outer shroud 60o or inner shroud 60i) described above will be described with reference to the flowchart shown in FIG.

[0046] First, as shown in FIG. 8, an intermediate product 80 that matches the outer shape of the passage-forming plate is formed (S1: intermediate product forming step). In this intermediate product forming step (S1), a mold is formed that has an internal space that matches the outer shape of the passage-forming plate. The mold is formed, for example, by the lost-wax method. Next, molten metal is poured into the mold. At this time, if it is necessary to form an internal space in the intermediate product 80, a core that matches the shape of the space is set in the mold before the molten metal is poured. When the molten metal hardens, the intermediate product 80 is completed. If a core is set in the mold, the core is dissolved with chemicals after the molten metal hardens. The intermediate product 80 has a gas path surface 64pa, an anti-gas path surface 64oa, various end surfaces 62fa, 62ba, 63a (63pa, 63na), and the outer surface of the peripheral wall 65a. However, as will be described later, the gas path surface 64pa, the anti-gas path surface 64oa, and the various end faces 62fa, 62ba, 63a (63pa, 63na), as well as the outer surface of the peripheral wall 65a, in this intermediate product 80 are different from the gas path surface 64p, the anti-gas path surface 64o, and the various end faces 62f, 62b, 63a (63p, 63n), and the outer surface of the peripheral wall 65, in the flow path forming plate as a finished product. Also, the intermediate product 80 formed in this intermediate product forming step (S1) has a flow path forming plate and a blade body integral with this flow path forming plate.

[0047] Next, as shown in FIGS. 8 and 9 , grooves 81 are formed by electrochemical machining in each of the pressure side end face (first side end face) 63pa and the suction side end face (second side end face) 63na of the intermediate product 80 (S2: groove forming step). In this electrochemical machining, a first electrode 85a matching the shape of the desired groove is prepared. Then, the first electrode 85a is moved from the pressure side end face 63p to the suction side end face 63n to form the grooves 81 on the positive pressure side end face 63p side, and the first electrode 85a is moved from the suction side end face 63n to the positive pressure side end face 63p to form the grooves 81 on the suction side end face 63n. None of these grooves 81 are formed in the axial upstream side Dau portion and the axial downstream side Dad portion of each end face 63a. That is, in this groove forming step (S2), a groove 81 is formed in the side end face 63a, leaving a portion on the axial upstream side Dau and a portion on the axial downstream side Dad in the side end face 63a, recessed from the side end face 63a in a direction perpendicular to the side end face 63a and extending in the direction in which the side end face 63a extends (the passage extending direction Dp). Of the surfaces defining this groove 81, the surface facing the anti-gas path side Dra is an uneven surface 76 with repeated unevenness in the passage extending direction Dp. The space within this groove 81 forms the main passage portion 72.

[0048] Next, as shown in Figure 9, the opening of the groove 81 is closed with a lid member 82, and the groove 81 and the lid member 82 form a main passage portion 72 extending along the side end face 63a in the direction in which the side end face 63a extends (passage extension direction Dp) (S3: lid placement process).

[0049] Next, as shown in FIG. 10 , two throttle passage sections 73 penetrating from the rear end surface 62ba of the intermediate piece 80 into the main passage section 72, an inlet passage section 71 penetrating from the surface of the side walls 65pa, 65na of the intermediate piece 80 facing the opposite gas path side Dra into the main passage section 72, and multiple rear end jet passages 79 penetrating from the rear end surface 62ba into the recess 66a of the intermediate piece 80 are formed (S4: Passage Forming Step). In this groove forming step (S4), the two throttle passage sections 73 are formed by electrochemical machining using a second electrode 85b that matches the shape of the two throttle passage sections 73. Furthermore, the inlet passage section 71 is formed by electrochemical machining using a third electrode 85c that matches the shape of the inlet passage section 71. Furthermore, the multiple rear end jet passages 79 are formed by electrochemical machining using a fourth electrode 85d that matches the shape of the multiple rear end jet passages 79. By performing this passage forming step (S4), the pair of side passages 70 and the multiple rear end jet passages 79 are formed.

[0050] Finally, the outer surface of the intermediate product 80 is polished by machining or the like. Furthermore, if necessary, a heat-resistant coating is applied to the outer surface of the intermediate product 80 (S5: finishing step). By performing this finishing step (S5), the gas path surface 64p, the anti-gas path surface 64o, and the various end surfaces 62f, 62b, 63 (63p, 63n) of the flow path forming plate, as well as the outer surface of the peripheral wall 65, etc. are finally formed, and the flow path forming plate is completed.

[0051] In the above, the two throttle passage sections 73, the inlet passage section 71, and the multiple rear end jet passages 79 are formed after the lid placement step (S3) is performed. However, the two throttle passage sections 73, the inlet passage section 71, and the multiple rear end jet passages 79 may be formed before the lid placement step (S3) is performed. Also, in the above, the groove 81, the passage sections 71, 73, and the rear end jet passage 79 are formed by electrochemical machining, but they may also be machined by other machining methods such as mechanical machining or electric discharge machining.

[0052] A part of the compressed air Acom generated by the compressor 20 is supplied as cooled air Ac to the flow path forming plate of this embodiment. The flow path forming plate of this embodiment is cooled by this cooled air Ac.

[0053] Since the side passage 70 of this embodiment has at least one throttle passage portion 73, the flow rate of the cooling air Ac passing through this side passage 70 can be reduced more than in the case where there is no throttle passage portion 73.

[0054] In addition, in this embodiment, the cross-sectional area of ​​the main passage portion 72 can be made larger than when the cross-sectional area is the same at each position in the side passage 70 from the inlet 74 for the cooling air Ac to the outlet 75 for the cooling air Ac. Therefore, when the side passage 70 is projected onto the gas path surface 64p from the anti-gas path side Dra, the projected area of ​​the side passage 70 on the gas path surface 64p can be made larger. Furthermore, in this embodiment, the width Wh of the main passage portion 72 is larger than the length Wh of the main passage portion 72. Width Wv In addition to being wider, the multiple throttle passage portions 73 are arranged in a direction parallel to the gas path surface 64p. Therefore, in this embodiment, the side passages 70 can cool the gas path surface 64p over a wide range.

[0055] In this embodiment, the uneven surface 76 of the main passage portion 72 functions as a turbulator for the cooling air Ac flowing through the main passage portion 72. Therefore, in this embodiment, turbulence of the cooling air Ac occurs in an area along the uneven surface 76 within the main passage portion 72, thereby improving the heat exchange performance between the cooling air Ac and the passage forming plate.

[0056] "Variations" 2, the stator vanes 46a constituting the second and subsequent stator vane rows 46 have blade bodies 46b, inner shrouds 46i, and outer shrouds 46o, similar to the stator vanes 50 constituting the first stage stator vane row. Therefore, side passages may be formed in the inner shrouds 46i and outer shrouds 46o of the stator vanes 46a constituting the second and subsequent stator vane rows 46, similar to the above.

[0057] As shown in FIG. 2, the rotor blade 43a of the turbine 40 has a blade body 43b extending in the radial direction Dr and a platform 43p formed on the radially inner side Dri of the blade body. The blade body 43b is disposed in a combustion gas flow path 49 through which combustion gas G passes. The platform 43p determines the position of the radially inner side Dri of the annular combustion gas flow path 49. Furthermore, a ring segment 45d disposed on the radially outer side Dro of the rotor blade 43a determines the position of the radially outer side Dro of the annular combustion gas flow path 49. Therefore, both the platform 43p and the ring segment 45d of the rotor blade 43a constitute a flow path forming plate. Therefore, side passages may be formed in the platform 43p and the ring segment 45d that constitute the flow path forming plate, as described above.

[0058] In the above embodiment, two throttle passage portions 73 are provided for one main passage portion 72. However, only one throttle passage portion 73 or three or more throttle passage portions 73 may be provided for one main passage portion 72.

[0059] In the above embodiment, the inlet 74 of the side passage 70 is formed on the surface of the side walls 65p, 65n facing the side opposite to the gas path Dra. However, an opening may be formed on the surface defining the recess 66, and this opening may be used as the inlet 74 of the side passage 70.

[0060] "Addendum" The flow path forming plate in the above embodiment can be understood, for example, as follows.

[0061] (1) The flow path forming plate in the first embodiment is A flow path forming plate that defines a combustion gas flow path 49 through which combustion gas G flows in a gas turbine has a gas path surface 64p in contact with the combustion gas G, an opposite gas path surface 64o facing the opposite side to the gas path surface 64p, an end surface formed on the periphery of the gas path surface 64p, and at least one side passage 70 formed between the gas path surface 64p and the opposite gas path surface 64o and through which cooling air Ac flows. The end surface has a rear end surface 62b facing a downstream side Dad through which the combustion gas G flows, a front end surface 62f facing an upstream side Dau opposite to the downstream side Dad and back-to-back with the rear end surface 62b, and a side end surface 63 facing a side direction Dc perpendicular to the gas flow direction Da and in which the rear end surface 62b and the front end surface 62f are aligned. The at least one side passage 70 has a main passage portion 72 extending along the gas path surface 64p and the side end face 63 in the direction in which the side end face 63 extends, and at least one throttle passage portion 73 extending from the end of the downstream side Dad of the main passage portion 72 toward the rear end face 62b and opening at the rear end face 62b. The area of ​​the opening of the at least one throttle passage portion 73 at the rear end face 62b is smaller than the cross-sectional area of ​​the main passage portion.

[0062] In this embodiment, since the side passage 70 has at least one throttle passage portion 73, the flow rate of the cooling air Ac passing through this side passage 70 can be reduced compared to a case where there is no throttle passage portion 73. Furthermore, in this embodiment, the cross-sectional area of ​​the main passage portion 72 can be made larger compared to a case where the cross-sectional area of ​​the side passage 70 is the same at each position from the inlet 74 for the cooling air Ac to the outlet 75 for the cooling air Ac. Therefore, when the side passage 70 is projected onto the gas path surface 64p from the anti-gas path side Dra, the projected area of ​​the side passage 70 on the gas path surface 64p can be made larger, and a wide area of ​​the gas path surface 64p can be cooled.

[0063] (2) The flow path forming plate in the second embodiment is In the flow path forming plate of the first embodiment, the side end surface 63 has a first side end surface 63p facing the lateral first side Dcp, which is one side in the lateral direction Dc, and a second side end surface 63n facing the lateral second side Dcn, which is the other side. The at least one side passage 70 has a first side passage 70p and a second side passage 70n. The first side passage 70p is aligned with the first side end surface 63p. The second side passage 70n is aligned with the second side end surface 63n.

[0064] (3) The flow path forming plate in the third embodiment is The flow passage forming plate of the second embodiment further includes a peripheral wall 65 and a plurality of rear-end ejection passages 79 provided along the end surface. The peripheral wall 65 protrudes from the opposite-gas path surface 64o toward the opposite-gas path side Drp, which is the side where the gas path surface 64p is located relative to the opposite-gas path surface 64o, and the opposite-gas path side Dra, where the opposite-gas path surface 64o is located relative to the gas path surface 64p. The opposite-gas path surface 64o and the peripheral wall 65 form a recess 66 recessed toward the gas path side Drp and into which cooling air Ac flows. Each of the plurality of rear-end ejection passages 79 penetrates from the rear end surface 62b to a plane defining the recess 66. The plurality of rear-end ejection passages 79 are aligned in the lateral direction Dc between the first side passage 70p and the second side passage 70n.

[0065] Within the gas path surface 64p of the flow path forming plate, downstream Dad of the recess 66, cooling can be achieved by cooling air Ac flowing through multiple rear end ejection passages 79 between the first side passage 70p and the second side passage 70n in the lateral direction Dc.

[0066] (4) The flow path forming plate in the fourth aspect is In the flow path forming plate according to any one of the first to third aspects, the at least one throttle passage portion 73 has a plurality of throttle passage portions 73. The plurality of throttle passage portions 73 are aligned in a direction parallel to the gas path surface 64p.

[0067] In this embodiment, a plurality of throttle passage sections 73 are arranged in a direction parallel to the gas path surface 64p on the downstream side Dad of the main passage section 72, so that the portion of the gas path surface 64p on the downstream side Dad of the main passage section 72 can be cooled over a wide area.

[0068] (5) The flow path forming plate in the fifth aspect is In the flow path forming plate according to any one of the first to fourth embodiments, the at least one throttle passage portion 73 extends in the same direction as the passage extending direction Dp in which the main passage portion 72 extends.

[0069] (6) The flow path forming plate in the sixth aspect is A flow path forming plate that defines a combustion gas flow path through which combustion gas G flows in a gas turbine includes a gas path surface (64p) that contacts the combustion gas G, an opposite gas path surface (64o) facing the opposite side from the gas path surface (64p), an end surface formed on the periphery of the gas path surface (64p), and at least one side passage (70) formed between the gas path surface (64p) and the opposite gas path surface (64o). The at least one side passage (70) includes a main passage portion (72) that extends along the gas path surface (64p) toward a portion of the end surface, and a plurality of throttle passage portions (73) that extend from an end of the main passage portion (72) to a portion of the end surface and open at the portion of the end surface. All of the plurality of throttle passage portions (73) extend in a passage extension direction (Dp) in which the main passage portion (72) extends. The plurality of throttle passage portions (73) are aligned in a direction parallel to the gas path surface (64p). The total area of ​​the openings of each of the plurality of throttle passage portions 73 at the part of the end face is smaller than the cross-sectional area of ​​the main passage portion 72 .

[0070] In this embodiment, since the side passage 70 has multiple throttle passage portions 73, the flow rate of the cooling air Ac passing through this side passage 70 can be reduced compared to when the throttle passage portions 73 are not present. Furthermore, in this embodiment, the cross-sectional area of ​​the main passage portion 72 can be increased compared to when the cross-sectional area of ​​the side passage 70 is the same at each position from the inlet 74 for the cooling air Ac to the outlet 75 for the cooling air Ac. Therefore, when the side passage 70 is projected onto the gas path surface 64p from the anti-gas path side Dra, the projected area of ​​the side passage 70 on the gas path surface 64p can be increased. Furthermore, in this embodiment, the multiple throttle passage portions 73 are aligned in a direction parallel to the gas path surface 64p. Therefore, the side passage 70 of this embodiment can cool a wide area of ​​the gas path surface 64p.

[0071] (7) The flow path forming plate in the seventh aspect is In the flow path forming plate of the fifth or sixth embodiment, the width Wh of the main passage portion 72 in a direction perpendicular to the passage extension direction Dp and parallel to the gas path surface 64p is wider than the width Wh of the main passage portion 72 in a direction perpendicular to the passage extension direction Dp and perpendicular to the gas path surface 64p.

[0072] In this embodiment, when the side passages 70 are projected onto the gas path surface 64p from the anti-gas path side Dra, the projected area of ​​the side passages 70 on the gas path surface 64p can be increased.

[0073] (8) In the eighth aspect, the flow path forming plate is In the flow path forming plate in any one of the fifth to seventh embodiments, in the main passage portion 72, among the surfaces that define the space within the main passage portion 72, the surface facing the opposite side to the gas path surface 64p is an uneven surface 76 in which unevenness is repeated in the passage extension direction Dp.

[0074] In this embodiment, the uneven surface 76 of the main passage portion 72 functions as a turbulator for the cooling air Ac flowing through the main passage portion 72. Therefore, in this embodiment, turbulence of the cooling air Ac occurs in an area along the uneven surface 76 in the main passage portion 72, thereby improving the heat exchange performance between the cooling air Ac and the passage forming plate.

[0075] (9) In the ninth aspect, the flow path forming plate is In the flow path forming plate in any one of the first to eighth embodiments, the at least one side passage 70 has only the opening in the at least one throttling passage portion 73 as an outlet for the cooling air Ac that has flowed through the at least one side passage 70.

[0076] The blades in the above embodiments can be understood, for example, as follows. (10) In the tenth aspect, the wing is The gas path forming plate includes a flow path forming plate according to any one of the first to ninth embodiments, and a blade body (51) extending from the gas path surface (64p) in a blade height direction (Dh) having a directional component perpendicular to the gas path surface (64p), and having a cross-sectional shape perpendicular to the blade height direction (Dh) that forms a blade shape.

[0077] The gas turbine in the above embodiment can be understood as follows, for example. (11) In an eleventh aspect, the gas turbine comprises: The combustion system includes a combustor 30 that generates a combustion gas G, and a turbine 40 that is driven by the combustion gas G. The turbine 40 has a flow path forming plate according to any one of the first to ninth aspects.

[0078] The method for manufacturing the flow path forming plate in the above embodiment can be understood, for example, as follows. (12) A method for manufacturing a flow path forming plate in a twelfth aspect includes the steps of: A manufacturing method of a flow path forming plate that defines a combustion gas flow path through which combustion gas G flows in a gas turbine includes an intermediate product forming step S1, a groove forming step S2, a lid arranging step S3, and a passage forming step S4. In the intermediate product forming step S1, an intermediate product 80 is formed, which has a gas path surface 64pa that contacts the combustion gas G, an opposite gas path surface 64oa that faces the opposite side from the gas path surface 64pa, and an end face formed on the periphery of the gas path surface 64pa. The end face has a rear end surface 62ba that faces the downstream side Dad through which the combustion gas G flows, a front end surface 62fa that faces the upstream side Dau opposite the downstream side Dad and is back-to-back with the rear end surface 62ba, and a side end surface 63a that faces a side direction Dc perpendicular to the gas flow direction Da and in which the rear end surface 62b and the front end surface 62fa are aligned. In the groove forming step S2, a groove 81 is formed in the side end face 63 of the intermediate product 80, leaving the upstream side Dau portion and the downstream side Dad portion, so as to be recessed from the side end face 63 in a direction perpendicular to the side end face 63 and extending in the direction in which the side end face 63 extends. In the lid arranging step S3, the opening of the groove 81 is closed with a lid member 82, and the groove 81 and the lid member 82 form a main passage portion 72 that extends along the side end face 63 in the direction in which the side end face 63 extends. In the passage forming step S4, at least one throttle passage portion 73 is formed, penetrating from the rear end face 62b into the main passage portion 72. The area of ​​the opening of the at least one throttle passage portion 73 at the rear end face 62b is smaller than the cross-sectional area of ​​the main passage portion.

[0079] Because the side passages 70 of the flow path forming plate manufactured in this embodiment have at least one throttle passage portion 73, the flow rate of the cooling air Ac passing through these side passages 70 can be reduced more than when there is no throttle passage portion 73. Furthermore, in this embodiment, the cross-sectional area of ​​the main passage portion 72 can be made larger than when the cross-sectional area of ​​the side passages 70 is the same at each position from the inlet 74 for the cooling air Ac to the outlet 75 for the cooling air Ac. Therefore, when the side passages 70 are projected onto the gas path surface 64p from the anti-gas path side Dra, the projected area of ​​the side passages 70 on the gas path surface 64p can be made larger, and a wide area of ​​the gas path surface 64p can be cooled. [Explanation of symbols]

[0080] 11: Gas turbine rotor 14: Intermediate casing 15: Gas turbine casing 17: Inner cover 17a: Radial outer end 20: Compressor 21: Compressor rotor 22: Rotor shaft 23: Moving blade row 23a: Moving blade 25: Compressor casing 26: Stator blade row 26a: static wing 30: Combustor 40: Turbine 41: Turbine rotor 42: Rotor shaft 43: Moving blade row 43a: Moving blade 43b: Wing body 43p: Platform 45: Turbine casing 45a: Outer casing 45b: Inner casing 45c: Heat shield ring 45d: Divided ring 46: Stator blade row 46a: static wing 46b: Wing body 46i: Inner shroud 46o: Outer shroud 49: Combustion gas flow path 50: Stator blade 51: Wing body 52: Leading edge 53: Trailing edge 54: Negative pressure surface 55: Pressure surface 59: Retainer 60i: Inner shroud 60o: Outer shroud 61: Shroud body 62f,62fa: Front end surface 62b, 62ba: Rear end surface 63,63a: Side end surface 63n, 63na: Negative pressure side end face (or second side end face) 63p, 63pa: positive pressure side end face (or first side end face) 64o, 64oa: Anti-gas path surface 64p, 64pa: Gas pass surface 65,65a: Peripheral wall 65f,65fa:Front wall 65b,65ba: Back wall 65n, 65na: Negative pressure side wall (or side wall) 65p, 65pa: Pressure side wall (or side wall) 66, 66a: recess 70: Side passage 70n: Negative pressure side passage (or second side passage) 70p: Positive pressure side passage (or first side passage) 71: Entrance passage 72: Main passage section 73:Throttle passage 74:Entrance 75:Exit 76: Uneven surface 79: Rear end spout passage 80: Intermediate product 81: Groove 82: Lid member 85a: First electrode 85b: Second electrode 85c: Third electrode 85d: Fourth electrode Da: Axial direction (gas flow direction) Dau: Axis upstream side (or upstream side) Dad: Downstream side of the axis (or downstream side) Dc: Circumferential direction (or lateral direction) Dcp: Circumferential pressure side (or first lateral side) Dcn: Circumferential negative pressure side (or second lateral side) Dh: Wing height direction Dr: Radial direction Dri: Radial inner direction Dro: Radial outer side Drp: Gaspath side Dra: Anti-Gaspass side Dp: Passage direction A: Air Acom: Compressed air Ac: Cooling air G: Combustion gas

Claims

1. A flow path forming plate that defines a combustion gas flow path through which combustion gas flows in a gas turbine, The main body and The surrounding wall and at least one side passage through which cooling air flows; and The main body has a gas path surface in contact with the combustion gas, an opposite gas path surface facing the opposite side to the gas path surface, and an end surface formed on a periphery of the gas path surface, the end surface has a rear end surface facing a downstream side of the combustion gas flow, a front end surface facing an upstream side opposite to the downstream side and back-to-back with the rear end surface, and a side end surface facing a lateral direction perpendicular to the gas flow direction in which the rear end surface and the front end surface are aligned, the peripheral wall is provided along the end surface of the main body, and protrudes from the anti-gas path surface toward the anti-gas path side of the gas path side where the gas path surface is present relative to the anti-gas path surface, and the anti-gas path side where the anti-gas path surface is present relative to the gas path surface, the peripheral wall has a side end surface connected to the side end surface of the main body and a surface facing away from the gas path, the at least one side passage includes an inlet passage portion, a main passage portion extending along the gas path surface and the side end face in a direction in which the side end face extends, and at least one throttle passage portion extending from the downstream end of the main passage portion toward the rear end face and opening at the rear end face, the inlet passage portion has an inlet that opens at the surface of the peripheral wall facing the opposite gas path side, extends from the inlet to the gas path side, is directly connected to the main passage portion, and communicates with the main passage portion; an area of ​​an opening of the at least one throttle passage portion at the rear end surface is smaller than a cross-sectional area of ​​the main passage portion; Flow path forming plate.

2. In the flow path forming plate described in claim 1, the side end surface has a first side end surface facing the first side and a second side end surface facing the second side, the first side end surface being one side in the lateral direction and the second side end surface being the other side in the lateral direction; the at least one side passage includes a first side passage and a second side passage, The first side passage is arranged along the first side end surface, The second side passage extends along the second side end surface. Flow path forming plate.

3. The flow path forming plate according to claim 2, Further, the nozzle has a plurality of rear end ejection passages, a recessed portion recessed toward the gas path side by the anti-gas path surface and the peripheral wall, into which cooling air flows; each of the plurality of rear end jet passages penetrates from the rear end surface to a surface that defines the recess; the plurality of rear end ejection passages are aligned in the lateral direction between the first side passage and the second side passage; Flow path forming plate.

4. The flow path forming plate according to any one of claims 1 to 3, the at least one throttle passage portion extends in the same direction as the passage extending direction in which the main passage portion extends; Flow path forming plate.

5. The flow path forming plate according to claim 4, a width of the main passage portion in a direction perpendicular to the passage extension direction and parallel to the gas path surface is wider than a width of the main passage portion in a direction perpendicular to the passage extension direction and perpendicular to the gas path surface; Flow path forming plate.

6. The flow path forming plate according to any one of claims 1 to 5, The area of ​​the opening of the inlet is the same as the cross-sectional area of ​​the main passage portion. Flow path forming plate.

7. The flow path forming plate according to any one of claims 1 to 5, In the main passage section, among the surfaces defining the space within the main passage section, a surface facing the opposite side to the gas path surface is an uneven surface in which unevenness is repeated in a passage extending direction in which the main passage section extends. Flow path forming plate.

8. The flow path forming plate according to any one of claims 1 to 7, the at least one side passage has only the opening in the at least one throttle passage portion as an outlet for the cooling air that has flowed through the at least one side passage; Flow path forming plate.

9. The flow path forming plate according to any one of claims 1 to 8, The at least one throttle passage portion is only one. Flow path forming plate.

10. The flow path forming plate according to any one of claims 1 to 9, a blade body extending from the gas path surface in a blade height direction having a directional component perpendicular to the gas path surface, the blade body having a cross-sectional shape perpendicular to the blade height direction that forms a blade shape; Wings with.

11. a combustor for generating combustion gases; a turbine driven by combustion gas; Equipped with The turbine has a flow path forming plate according to any one of claims 1 to 9. Gas turbine.

Citation Information

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