Seal devices and rotating machines

The sealing device with a pressure-adjustable mechanism addresses pressure-induced fluctuations in sealing performance by allowing the sealing member to move freely, ensuring consistent sealing efficacy.

JP7777464B2Active Publication Date: 2025-11-28MITSUBISHI HEAVY IND LTD
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Patent Information

Application Number
JP2022022361
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-02-16
Publication Date
2025-11-28
Estimated Expiration
2042-02-16

AI Technical Summary

Technical Problem

Conventional seal devices experience fluctuations in sealing performance due to pressure changes in the high-pressure chamber, leading to inconsistent sliding resistance and potential leakage between the packing ring segments and the packing ring holder.

Method used

A sealing device with a sealing member supported for axial and radial movement, featuring a pressure adjustment space and communication passages that adjust the pressing force based on pressure differences, maintaining stable sealing performance by reducing sliding resistance.

Benefits of technology

The solution ensures stable sealing performance by allowing the sealing member to smoothly adjust to pressure fluctuations, minimizing leakage and maintaining effective sealing despite variations in pressure.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To maintain stable sealing performance by smoothly operating a seal member regardless of pressure fluctuation in a seal device and a rotary machine.SOLUTION: A seal device is disposed between a stationary body and a rotating body and inhibits flow of a fluid from the high pressure side to the lower pressure side. The seal device includes: a seal member supported by the stationary body in a manner that the seal member may move in an axial direction and a radial direction of the rotating body; a seal fin extending from the seal member to the rotating body side; a pressure adjustment space part provided between the stationary body and a high-pressure-side end surface of the seal member; and a communication passage in which one end communicates with the low pressure side and the other end communicates with the pressure adjustment space part.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present disclosure relates to a seal device that prevents fluid leakage between a stationary body and a rotating body, and a rotary machine that includes the seal device. [Background technology]

[0002] A rotary machine is configured with a rotating body rotatably supported inside a casing, which is a stationary body. A sealing device is provided between the casing and the rotating body to prevent axial leakage of fluid. A labyrinth seal is generally used as the sealing device. The labyrinth seal is provided on the inner periphery of the casing and has multiple sealing fins. The sealing device generates pressure loss due to gaps formed between the sealing fins and the rotating body, and this pressure loss suppresses axial leakage of fluid.

[0003] An example of such a seal device is described in Patent Document 1 below. In the seal device described in Patent Document 1, packing ring segments are supported by a packing ring holder so as to be freely movable in the axial and radial directions, and the packing ring segments are supported and biased toward the high-pressure chamber by elastic bodies. The packing ring segments move radially inward due to pressure on the high-pressure chamber side, adjusting the gap between the seal fin and the rotating body. At this time, the packing ring segments are supported and biased toward the high-pressure chamber by the elastic bodies, reducing sliding resistance with the packing ring holder. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Publication No. 2017-057841 Summary of the Invention [Problem to be solved by the invention]

[0005] In conventional seal devices, the packing ring segments are biased toward the high-pressure chamber by an elastic body to reduce sliding resistance with the packing ring holder. In this case, the biasing force of the packing ring segments by the elastic body is constant and is set by the differential pressure between the high-pressure chamber and the low-pressure chamber. However, the pressure on the high-pressure chamber side fluctuates depending on the operating state of the rotary machine. Therefore, when the pressure on the high-pressure chamber side fluctuates, the pressing force that presses the packing ring segments against the packing ring holder fluctuates, and the sliding resistance between the packing ring segments and the packing ring holder fluctuates. As a result, the packing ring segments may not move smoothly relative to the packing ring holder depending on the operating state of the rotary machine, which could result in a deterioration of sealing performance.

[0006] The present disclosure is intended to solve the above-mentioned problems, and aims to provide a sealing device and a rotating machine that are capable of maintaining stable sealing performance by smoothly operating a sealing member regardless of pressure fluctuations. [Means for solving the problem]

[0007] In order to achieve the above-mentioned object, the sealing device of the present disclosure is a sealing device that is arranged between a stationary body and a rotating body to suppress the flow of fluid from the high-pressure side to the low-pressure side, and includes a sealing member that is supported on the stationary body so as to be freely movable in the axial and radial directions of the rotating body, a sealing fin that extends from the sealing member toward the rotating body, a pressure adjustment space portion that is provided between the stationary body and the high-pressure side end face of the sealing member, and a communicating passage that has one end connected to the low-pressure side and the other end connected to the pressure adjustment space portion.

[0008] The rotary machine of the present disclosure also includes a stationary body, a rotating body rotatably supported by the stationary body, and the sealing device disposed between the stationary body and the rotating body. [Effects of the Invention]

[0009] According to the sealing device and rotary machine of the present disclosure, stable sealing performance can be maintained by smoothly operating the sealing member regardless of pressure fluctuations. [Brief explanation of the drawings]

[0010] [Figure 1] FIG. 1 is a schematic diagram showing the internal configuration of a steam turbine. [Figure 2] FIG. 2 is a cross-sectional view showing the sealing device of the first embodiment. [Figure 3] FIG. 3 is a cross-sectional view of the seal member taken along line III-III in FIG. [Figure 4] FIG. 4 is a cross-sectional view showing the sealing device of the first embodiment. [Figure 5] FIG. 5 is a cross-sectional view showing the sealing device of the first embodiment. [Figure 6] FIG. 6 is a cross-sectional view showing the sealing device of the first embodiment. [Figure 7] FIG. 7 is a cross-sectional view showing the sealing device of the first embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0011] Preferred embodiments of the present disclosure will be described in detail below with reference to the drawings. Note that the present disclosure is not limited to these embodiments, and when there are multiple embodiments, the present disclosure also includes configurations that combine the embodiments. Furthermore, the components in the embodiments include those that can be easily imagined by a person skilled in the art, those that are substantially identical, and those that are within the so-called equivalent range.

[0012] [First embodiment] <Steam turbine> FIG. 1 is a schematic diagram showing the internal configuration of a steam turbine.

[0013] In the first embodiment, a steam turbine is used as the rotary machine. However, the rotary machine is not limited to a steam turbine and may be any machine having a configuration in which a rotating body is rotatably supported relative to a stationary body.

[0014] As shown in FIG. 1, a steam turbine (rotary machine) 10 includes a casing (stationary body) 11, a rotor (rotating body) 12, stationary blades 13, moving blades 14, and sealing devices 15 and 16.

[0015] The casing 11 has a hollow shape, and the rotor 12 is arranged horizontally inside. The rotor 12 is supported by bearings 21 and 22 provided in the casing 11 so as to be rotatable about an axis O1. A plurality of stator vanes 13 are fixed to the inner periphery of the casing 11 at intervals in the axial direction A of the rotor 12. A plurality of moving blades 14 are fixed to the outer periphery of the rotor 12 at intervals in the axial direction A. The stator vanes 13 are arranged along the radial direction R of the rotor 12 and at intervals in the circumferential direction of the rotor 12. The moving blades 14 are arranged along the radial direction R of the rotor 12 and at intervals in the circumferential direction of the rotor 12, and the stator vanes 13 and moving blades 14 are arranged alternately in the axial direction A.

[0016] The casing 11 is provided with a steam supply port 23 at one end in the axial direction A. The steam supply port 23 is connected through a steam passage 24 to a blade row section 25 in which the stator blades 13 and the rotor blades 14 are arranged. The blade row section 25 is connected to an exhaust chamber 26. The casing 11 is provided with a steam exhaust port 27 at the other end in the axial direction A. The steam exhaust port 27 is connected to the exhaust chamber 26.

[0017] The sealing device 15 is disposed between the casing 11 and the rotor 12 at one end side in the axial direction A. The sealing device 15 is a labyrinth seal and is provided on the inner periphery of the casing 11. The sealing device 15 generates pressure loss due to the gap formed between the seal fin and the rotor 12, and the pressure loss suppresses leakage flow of fluid in the axial direction. The sealing device 16 is similar to the sealing device 15.

[0018] High-pressure steam S is supplied from a steam supply port 23 through a steam passage 24 to a blade row section 25. As the steam S passes through the plurality of stator vanes 13 and the plurality of moving blades 14, the rotor 12 is driven to rotate via each moving blade 14. A generator (not shown) is connected to the rotor 12, and the generator is driven by the driving force of the rotor 12. The steam S that has driven each moving blade 14 is discharged to the outside from a steam exhaust port 27 through an exhaust chamber 26.

[0019] <Configuration of sealing device> FIG. 2 is a cross-sectional view showing the sealing device of the first embodiment, and FIG. 3 is a cross-sectional view taken along line III-III in FIG. 2 showing the sealing member.

[0020] 2 and 3, the seal device 15 is disposed between the casing (stationary body) 11 and the rotor (rotating body) 12, and suppresses the flow of steam (fluid) S from a high-pressure space HP on the high-pressure side to a low-pressure space LP on the low-pressure side. The seal device 15 includes a seal member 31, seal fins 32, a pressure adjustment space 33, and a communication passage 34.

[0021] A sealing holder 40 is fixed to the casing 11. The sealing holder 40 has a ring shape that is continuous in the circumferential direction C. However, the sealing holder 40 may be configured by dividing it into multiple parts in the circumferential direction. The sealing holder 40 has a recess 41 on its inner periphery. The recess 41 is formed by recessing from the inner periphery surface 40a of the sealing holder 40 outward in the radial direction R of the rotor 12. The recess 41 has a ring shape that is continuous in the circumferential direction C. The recess 41 has a bottom surface 41a, a high-pressure side surface 41b, and a low-pressure side surface 41c. The recess 41 also has a high-pressure side protrusion 42 that protrudes from the high-pressure side surface 41b inward in the radial direction R toward the low-pressure space portion LP. The high-pressure side protrusion 42 has an inner surface 42a and a high-pressure side surface 42b. Additionally, recess 41 is provided with a low-pressure-side protrusion 43 that protrudes from the inside of low-pressure-side side surface 41c in the radial direction R toward the high-pressure space portion HP. Low-pressure-side protrusion 43 has an inner surface 43a and a low-pressure-side side surface 43b. With high-pressure-side protrusion 42 and low-pressure-side protrusion 43 provided, recess 41 forms a T-shaped cross section.

[0022] In the casing 11, a retainer 44 is attached to the recess 41 of the sealing holder 40. The retainer 44 functions as a stationary body. The retainer 44 has a ring shape that is continuous in the circumferential direction C. However, the retainer 44 may be configured by dividing it into multiple parts in the circumferential direction. The retainer 44 has a high-pressure side retainer 45 and a low-pressure side retainer 46. The high-pressure side retainer 45 and the low-pressure side retainer 46 are connected together by a connecting portion 47.

[0023] In retainer 44, high-pressure-side retainer 45 is supported by high-pressure-side protrusion 42, and low-pressure-side retainer 46 is supported by low-pressure-side protrusion 43. That is, high-pressure-side retainer 45 has an L-shaped cross section and has an outer peripheral surface 45a, a high-pressure-side first side surface 45b, an engagement surface 45c, a high-pressure-side second side surface 45d, an inner peripheral surface 45e, and a low-pressure-side side surface 45f. Low-pressure-side retainer 46 has an L-shaped cross section and has an outer peripheral surface 46a, a low-pressure-side first side surface 46b, an engagement surface 46c, a low-pressure-side second side surface 46d, an inner peripheral surface 46e, and a high-pressure-side side surface 46f.

[0024] The retainer 44 is disposed in the recess 41 of the sealing holder 40. The high-pressure side retainer 45 has an engagement surface 45c that contacts the inner surface 42a of the high-pressure side protrusion 42, and a high-pressure side second side surface 45d that faces the high-pressure side side surface 42b. The low-pressure side retainer 46 has an engagement surface 46c that contacts the inner surface 43a of the low-pressure side protrusion 43, and a low-pressure side second side surface 46d that faces the low-pressure side side surface 43b. Therefore, the retainer 44 is positioned in the casing 11 by being disposed in the recess 41 of the sealing holder 40.

[0025] The seal member 31 is supported by the retainer 44. The seal member 31 has a ring shape that is continuous in the circumferential direction C. However, like the retainer 44, the seal member 31 may be configured by dividing it into multiple parts in the circumferential direction. The seal member 31 is supported by the retainer 44 so as to be movable along the axial direction A and the radial direction R. The seal member 31 has a support portion 51 and a fin mounting portion 52. The support portion 51 has a rectangular cross-sectional shape and is disposed inside the recess 41 between the high-pressure side retainer 45 and the low-pressure side retainer 46. The support portion 51 has an outer peripheral surface 51a, a high-pressure side end face 51b, and a low-pressure side end face 51c. The high-pressure side end face 51b of the support portion 51 faces the low-pressure side surface 45f of the high-pressure side retainer 45 and is capable of contacting it. Furthermore, the low-pressure side end surface 51c of the support portion 51 faces the high-pressure side side surface 46f of the low-pressure side retainer 46 and is capable of coming into contact with it.

[0026] The fin mounting portion 52 is provided integrally with the support portion 51 on the inner side in the radial direction R. The fin mounting portion 52 has a rectangular cross-sectional shape that is elongated in the axial direction A, and is disposed on the inner side of the high-pressure side retainer 45 and the low-pressure side retainer 46, on the inner side in the radial direction R of the recess 41. The fin mounting portion 52 extends from the support portion 51 toward the rotor 12. The fin mounting portion 52 has a high-pressure side outer peripheral surface 52a, a low-pressure side outer peripheral surface 52b, a high-pressure side side surface 52c, a low-pressure side side surface 52d, and an inner peripheral surface 52e.

[0027] The seal fins 32 extend from the fin mounting portion 52 of the seal member 31 toward the rotor 12. A plurality of seal fins 32 (four in this embodiment) are provided at intervals in the axial direction A. The seal fins 32 are provided continuously in the circumferential direction C. The seal fins 32 are fixed to the inner circumferential surface 52e of the fin mounting portion 52 of the seal member 31. However, the number of seal fins 32 is not limited to four and may be set appropriately depending on the length of the axial direction A to be sealed, etc. Furthermore, although the multiple seal fins 32 are arranged at equal intervals in the axial direction A, they may also be positioned at unequal intervals.

[0028] Furthermore, a spring receiving member 48 is fixed to the outer peripheral surface 51a side of the seal member 31. The spring receiving member 48 is disposed in the recess 41 of the sealing holder 40. The spring receiving member 48 has a rectangular cross-sectional shape that is elongated in the axial direction A and a ring shape that is continuous in the circumferential direction C. However, the spring receiving member 48 may be configured by dividing it into multiple parts in the circumferential direction. The spring receiving member 48 is fixed to a stepped portion 51d formed on the outer peripheral surface 51a of the support portion 51 of the seal member 31. The spring receiving member 48 is disposed so that its outer peripheral surface 48a faces the bottom surface 41a of the recess 41 and its inner peripheral surface 48b faces the outer peripheral surface 46a of the low-pressure side retainer 46. A compression spring (biasing member) 49 is disposed between the low-pressure side retainer 46 and the spring receiving member 48. The compression spring 49 biases the seal member 31 via the spring receiving member 48 in the radial direction R in which the seal fin 32 moves away from the rotor 12 due to the biasing force.

[0029] Therefore, the sealing member 31 is positioned by the biasing force of the compression spring 49 at a position where the spring receiving member 48 contacts the bottom surface 41a of the recess 41. When steam S from the high-pressure space HP enters the recess 41 and acts on the outer circumferential surface 51a of the support portion 51, the sealing member 31 becomes movable relative to the retainer 44 in the radial direction R in which the seal fins 32 approach the rotor 12 against the biasing force of the compression spring 49. Furthermore, although the sealing member 31 is disposed between the high-pressure side retainer 45 and the low-pressure side retainer 46, it is supported so as to be movable in the axial direction A relative to the retainer 44 by an amount corresponding to the mounting gap between the high-pressure side retainer 45 and the low-pressure side retainer 46.

[0030] The pressure adjustment space 33 is provided in the support portion 51 of the seal member 31. Specifically, the pressure adjustment space 33 is provided in the high-pressure side end surface 51b of the support portion 51 of the seal member 31. The pressure adjustment space 33 is formed by providing a recess in the high-pressure side end surface 51b of the seal member 31. The pressure adjustment space 33 faces the low-pressure side surface 45f of the high-pressure side retainer 45. That is, the pressure adjustment space 33 is a space formed between the high-pressure side end surface 51b of the support portion 51 of the seal member 31 and the low-pressure side surface 45f of the high-pressure side retainer 45 by contact between them. The pressure adjustment space 33 is provided along the circumferential direction C. In the first embodiment, the seal member 31 is divided into two circumferential portions, and therefore each circumferential end of the pressure adjustment space 33 is closed. However, the pressure adjustment space portion 33 may be continuous in the circumferential direction C of the seal member 31, or may be divided into a plurality of portions in the circumferential direction.

[0031] One end of the communicating passage 34 communicates with the low-pressure space LP, and the other end communicates with the pressure adjustment space 33. The communicating passages 34 are provided along the axial direction A and are arranged at intervals in the circumferential direction C. The communicating passages 34 have a first communicating passage 34a along the axial direction A, a second communicating passage 34b along the radial direction R, and a third communicating passage 34c along the axial direction A. One end of the first communicating passage 34a opens to the low-pressure side surface 52d of the fin mounting portion 52. One end of the third communicating passage 34c opens to the low-pressure space LP. One end of the second communicating passage 34b communicates with the other end of the first communicating passage 34a, and the other end of the second communicating passage 34b communicates with the other end of the third communicating passage 34c. The communication passage 34 is not limited to this configuration, and may be configured, for example, by one or two linear flow paths connecting the low-pressure space LP and the pressure adjustment space 33.

[0032] <Sealing device action> 2, before the steam turbine 10 (see FIG. 1) starts, there is no pressure difference between the high-pressure space HP and the low-pressure space LP. Therefore, the seal member 31 is positioned at a position where the spring receiving member 48 contacts the bottom surface 41a of the recess 41 due to the biasing force of the compression spring 49, and the gap between the tip end of the seal fin 32 and the outer circumferential surface of the rotor 12 is maximized.

[0033] When the steam turbine 10 (see FIG. 1 ) starts, high-pressure steam S is supplied to the high-pressure side space HP, generating a pressure difference between the high-pressure side space HP and the low-pressure side space LP. At this time, some of the steam S in the high-pressure side space HP leaks into the low-pressure side space LP through a gap between the seal fin 32 and the rotor 12. Some of the steam S also passes between the sealing holder 40 and the high-pressure side retainer 45 and enters the outer peripheral surface 51 a of the support portion 51 of the seal member 31. Then, the seal member 31 is pressed inward in the radial direction R by the steam S in the high-pressure space HP, and moves inward in the radial direction R against the biasing force of the compression spring 49. Then, the gap between the tip of the seal fin 32 and the outer peripheral surface of the rotor 12 becomes smaller, causing a pressure loss due to the small gap. This pressure loss suppresses leakage of the steam S flowing through the gap in the axial direction A.

[0034] At this time, the retainer 44 is pressed to one side (to the right in FIG. 2) in the axial direction A of the steam S as the high-pressure steam S in the high-pressure side space HP acts on the high-pressure-side first side surface 45b of the high-pressure-side retainer 45. Furthermore, the seal member 31 is pressed to the other side (to the left in FIG. 2) in the axial direction A of the steam S as the high-pressure steam S in the high-pressure side space HP acts on the low-pressure-side end surface 51c of the seal member 31. Therefore, the pressing force between the low-pressure-side side surface 45f of the high-pressure-side retainer 45 and the high-pressure-side end surface 51b of the seal member 31 increases, and the sliding resistance against the retainer 44 when the seal member 31 moves in the radial direction R increases.

[0035] In the first embodiment, low-pressure steam S in the low-pressure space LP is supplied to the pressure adjustment space 33 through the communicating passage 34. Then, the pressure in the pressure adjustment space 33 acts on the low-pressure side surface 45f of the high-pressure side retainer 45 and the high-pressure side end surface 51b of the seal member 31, reducing the pressing force between the low-pressure side surface 45f of the high-pressure side retainer 45 and the high-pressure side end surface 51b of the seal member 31. This reduces the sliding resistance of the seal member 31 against the retainer 44 when it moves in the radial direction R. As a result, the seal member 31 can move smoothly in the radial direction R in accordance with the pressure difference between the high-pressure side space HP and the low-pressure side space LP.

[0036] Furthermore, when the pressure of the steam S in the high-pressure side space HP fluctuates, the pressing force between the high-pressure side retainer 45 and the seal member 31 fluctuates. At this time, the pressure difference between the high-pressure side space HP and the low-pressure side space LP also fluctuates. In other words, the pressing force between the high-pressure side retainer 45 and the seal member 31 is appropriately adjusted in accordance with the fluctuations in the high-pressure side space HP. As a result, the sliding resistance of the seal member 31 against the retainer 44 when it moves in the radial direction R is appropriately adjusted.

[0037] [Second embodiment] 4 is a cross-sectional view showing a sealing device of the second embodiment. Note that members having the same functions as those of the first embodiment described above are given the same reference numerals and detailed description thereof will be omitted.

[0038] As shown in FIG. 4, the seal device 15A includes a seal member 31, a seal fin 32, a pressure adjustment space portion 33, and a communication passage .

[0039] A sealing holder 40 is fixed to the casing 11, and the sealing holder 40 is provided with a recess 41. A retainer 44 is attached to the recess 41 of the sealing holder 40. The retainer 44 is configured by integrally connecting a high-pressure side retainer 45 and a low-pressure side retainer 46 by a connecting portion 47. The seal member 31 is supported by the retainer 44 so as to be movable along the axial direction A and the radial direction R. The seal member 31 is provided with a plurality of seal fins 32 on its inner peripheral side in the radial direction R. A spring receiving member 48 is fixed to the stepped portion 51d of the seal member 31. A compression spring 49 is arranged between the low-pressure side retainer 46 and the spring receiving member 48. The compression spring 49 biases the seal member 31 outward in the radial direction R.

[0040] The pressure adjustment space 33 is formed by forming a recess in the high-pressure side end surface 51b of the seal member 31. The pressure adjustment space 33 is sealed when the high-pressure side end surface 51b of the support portion 51 of the seal member 31 comes into contact with the low-pressure side surface 45f of the high-pressure side retainer 45. One end of the communication passage 34 communicates with the low-pressure side space LP, and the other end communicates with the pressure adjustment space 33.

[0041] A first seal portion 61 is provided between the seal member 31 and the low-pressure side retainer 46. The seal member 31 has a first groove portion 51e provided in a low-pressure side end surface 51c of the support portion 51. The first groove portion 51e is provided continuously along the circumferential direction C. The first seal portion 61 has a hollow pipe shape, for example, an O-ring, and has a ring shape that is continuous in the circumferential direction C. The first seal portion 61 is attached to the first groove portion 51e. When the seal member 31 is attached to the retainer 44, that is, between the high-pressure side retainer 45 and the low-pressure side retainer 46, the first seal portion 61 attached to the first groove portion 51e of the seal member 31 comes into contact with the high-pressure side surface 46f of the low-pressure side retainer 46.

[0042] When the steam turbine 10 (see FIG. 1) starts up, part of the steam S in the high-pressure side space HP enters the recess 41 of the sealing holder 40 and acts on the high-pressure-side first side surface 45b of the high-pressure side retainer 45 and also on the low-pressure-side end surface 51c of the seal member 31. This increases the pressing force between the high-pressure side retainer 45 and the seal member 31. However, because the low-pressure steam S in the low-pressure side space LP is supplied to the pressure adjustment space 33 through the communicating passage 34, the pressing force between the high-pressure side retainer 45 and the seal member 31 is reduced. This reduces the sliding resistance of the seal member 31 against the retainer 44 when it moves in the radial direction R.

[0043] At this time, the pressing force between the high-pressure side retainer 45 and the seal member 31 varies depending on the pressure-receiving area of ​​the pressure adjustment space 33 to which the low-pressure steam S is supplied. That is, depending on the pressure-receiving area of ​​the pressure adjustment space 33, the pressing force pressing the seal member 31 toward the high-pressure side retainer 45 increases, forming a gap between the low-pressure side end face 51c of the seal member 31 and the high-pressure side face 46f of the low-pressure side retainer 46, which may cause the high-pressure steam S in the recess 41 to leak through this gap into the low-pressure side space LP. In the second embodiment, a first seal portion 61 is provided between the seal member 31 and the low-pressure side retainer 46, which suppresses leakage of the high-pressure steam S from the gap between the low-pressure side end face 51c of the seal member 31 and the high-pressure side face 46f of the low-pressure side retainer 46.

[0044] [Third embodiment] 5 is a cross-sectional view showing a sealing device of the third embodiment. Note that members having the same functions as those in the first embodiment described above are given the same reference numerals and detailed description thereof will be omitted.

[0045] As shown in FIG. 5, the seal device 15B includes a seal member 31, a seal fin 32, a pressure adjustment space portion 33, and a communication passage 34B.

[0046] The pressure adjustment space 33 is formed by forming a recess in the high-pressure side end surface 51b of the seal member 31. The pressure adjustment space 33 is sealed when the high-pressure side end surface 51b of the support portion 51 of the seal member 31 comes into contact with the low-pressure side surface 45f of the high-pressure side retainer 45. One end of the communication passage 34B communicates with the low-pressure side space LP, and the other end communicates with the pressure adjustment space 33. Specifically, the communication passage 34B communicates with a first low-pressure space LP1 formed between each seal fin 32, one end of which communicates with the low-pressure side space LP.

[0047] The communication passage 34B has a first communication passage 34a extending along the axial direction A, a second communication passage 34b extending along the radial direction R, a third communication passage 34c extending along the axial direction A, and a fourth communication passage 34D extending along the radial direction R. One end of the fourth communication passage 34d opens to the inner circumferential surface 52e of the fin mounting portion 52. The seal member 31 is provided with four seal fins 32 facing the rotor 12, and three spaces are defined between the seal member 31 and the rotor 12. The fourth communication passage 34d opens to a first low-pressure side space LP1 between the seal fin 32 closest to the low-pressure side space LP and the seal fin 32 second closest to the low-pressure side space LP.

[0048] One end of the third communication passage 34c opens into the low-pressure space LP. One end of the second communication passage 34b communicates with the other end of the first communication passage 34a. One end of the first communication passage 34a communicates with the other end of the third communication passage 34c and the other end of the first communication passage 34a communicates with the other end of the fourth communication passage 34d. Note that the communication passage 34B is not limited to this configuration, and may be formed, for example, by one or more linear passages connecting the first low-pressure space LP1 and the pressure adjustment space 33. Furthermore, the fourth communication passage 34d may be configured to open into another low-pressure space between adjacent seal fins 32.

[0049] When the steam turbine 10 (see FIG. 1) starts up, part of the steam S in the high-pressure side space HP enters the recess 41 of the sealing holder 40 and acts on the first high-pressure side side surface 45b of the high-pressure side retainer 45 and also on the low-pressure side end surface 51c of the seal member 31. This increases the pressing force between the high-pressure side retainer 45 and the seal member 31. However, because the low-pressure steam S in the first low-pressure side space LP1 is supplied to the pressure adjustment space 33 through the communicating passage 34B, the pressing force between the high-pressure side retainer 45 and the seal member 31 is reduced. This reduces the sliding resistance of the seal member 31 against the retainer 44 when it moves in the radial direction R.

[0050] [Fourth embodiment] 6 is a cross-sectional view showing a sealing device of a fourth embodiment. Note that members having the same functions as those in the first embodiment described above are given the same reference numerals and detailed description thereof will be omitted.

[0051] As shown in FIG. 6, the seal device 15C includes a seal member 31, a seal fin 32, a pressure adjustment space portion 33, and a communication passage .

[0052] Two second seal portions 62 are provided between the seal member 31 and the high-pressure side retainer 45. The two second seal portions 62 are arranged at an interval in the radial direction R. The seal member 31 has two second groove portions 51f provided at an interval in the radial direction R on the high-pressure side end face 51b of the support portion 51. The two second groove portions 51F are provided continuously along the circumferential direction C. The two second seal portions 62 have a rectangular cross-sectional shape and form a ring shape that is continuous in the circumferential direction C. The two second seal portions 62 are each attached to the second groove portion 51F.

[0053] When the seal member 31 is attached to the retainer 44, i.e., between the high-pressure side retainer 45 and the low-pressure side retainer 46, the second seal portions 62 attached to the second groove portions 51f of the seal member 31 come into contact with the low-pressure side surface 45f of the high-pressure side retainer 45. At this time, a gap is formed between the high-pressure side end surface 51b of the seal member 31 and the low-pressure side surface 45f of the high-pressure side retainer 45, and this gap is defined by the second seal portions 62 arranged at intervals in the radial direction R. The pressure adjustment space 33 is a space defined by the high-pressure side end surface 51b of the seal member 31, the low-pressure side surface 45f of the high-pressure side retainer 45, and the second seal portions 62. One end of the communicating passage 34 communicates with the low-pressure side space LP, and the other end communicates with the pressure adjustment space 33.

[0054] When the steam turbine 10 (see FIG. 1) starts up, part of the steam S in the high-pressure side space HP enters the recess 41 of the sealing holder 40 and acts on the high-pressure side first side surface 45b of the high-pressure side retainer 45 and also on the low-pressure side end surface 51c of the seal member 31. This increases the pressing force between the high-pressure side retainer 45 and the seal member 31. However, because the low-pressure steam S in the low-pressure side space LP is supplied to the pressure adjustment space 33 through the communicating passage 34, the pressing force between the high-pressure side retainer 45 and the seal member 31 is reduced. This reduces the sliding resistance of the seal member 31 against the retainer 44 when it moves in the radial direction R.

[0055] At this time, the pressing force between the high-pressure side retainer 45 and the seal member 31 varies depending on the pressure of the high-pressure steam S supplied to the high-pressure space HP. The steam S supplied to the pressure adjustment space 33 is at low pressure. If a gap exists between the high-pressure side end face 51b of the seal member 31 and the low-pressure side face 45f of the high-pressure side retainer 45, the high-pressure steam S in the recess 41 may leak through this gap into the pressure adjustment space 33. In the fourth embodiment, a second seal 62 is provided between the seal member 31 and the high-pressure side retainer 45 to seal the pressure adjustment space 33 and prevent leakage of the high-pressure steam S from the gap between the high-pressure side end face 51b of the seal member 31 and the low-pressure side face 45f of the high-pressure side retainer 45.

[0056] [Fifth embodiment] 7 is a cross-sectional view showing a sealing device of the fifth embodiment. Note that members having the same functions as those in the first embodiment described above are given the same reference numerals and detailed description thereof will be omitted.

[0057] As shown in FIG. 7, the seal device 15D includes a seal member 31, a seal fin 32, a pressure adjustment space portion 33, and a communication passage .

[0058] A sealing holder 40 is fixed to the casing 11, and a recess 41 is provided on the inner periphery of the sealing holder 40. The recess 41 is formed by being recessed from the inner periphery 40a of the sealing holder 40 outward in the radial direction R of the rotor 12. The recess 41 has a bottom surface 41a, a high-pressure side surface 41b, and a low-pressure side surface 41c. The recess 41 is provided with a low-pressure side protrusion 43 that protrudes from the inward side in the radial direction R on the low-pressure side surface 41c toward the high-pressure space portion HP. The low-pressure side protrusion 43 has an inner surface 43a and a low-pressure side surface 43b.

[0059] The seal member 31 is supported in the recess 41 of the sealing holder 40. The seal member 31 is similar to that in the first embodiment and includes a support portion 51 and a fin mounting portion 52. The support portion 51 has a rectangular cross-sectional shape and includes an outer peripheral surface 51a, a high-pressure side end face 51b, and a low-pressure side end face 51c. The high-pressure side end face 51b of the support portion 51 faces and can come into contact with the high-pressure side surface 41b of the recess 41. The low-pressure side end face 51c of the support portion 51 faces and can come into contact with the low-pressure side surface 43b of the low-pressure side protrusion 43 in the recess 41. The fin mounting portion 52 is integrally provided on the support portion 51 inward in the radial direction R. The seal fin 32 extends from the fin mounting portion 52 of the seal member 31 toward the rotor 12.

[0060] A spring receiving member 48 is fixed to the outer peripheral surface 51a side of the seal member 31. The spring receiving member 48 is fixed to a stepped portion 51d formed on the outer peripheral surface 51a of the support portion 51 of the seal member 31. The outer peripheral surface 48a of the spring receiving member 48 faces the bottom surface 41a of the recess 41, and the inner peripheral surface 48b of the low-pressure side protrusion 43 faces the inner surface 43a. A compression spring 49 is arranged between the low-pressure side protrusion 43 and the spring receiving member 48. The compression spring 49 biases the seal member 31 via the spring receiving member 48 in the radial direction R, in which the biasing force moves the seal fins 32 away from the rotor 12.

[0061] The pressure adjustment space 33 is provided in the support portion 51 of the seal member 31. Specifically, the pressure adjustment space 33 is provided in the high-pressure side end surface 51b of the support portion 51 of the seal member 31. The pressure adjustment space 33 is formed by providing a recess in the high-pressure side end surface 51b of the seal member 31. The pressure adjustment space 33 faces the high-pressure side surface 41b of the recess 41 of the sealing holder 40. In other words, the pressure adjustment space 33 is a space formed between the high-pressure side end surface 51b of the support portion 51 of the seal member 31 and the high-pressure side surface 41b of the recess 41 by contact between them. One end of the communicating passage 34 communicates with the low-pressure side space LP, and the other end communicates with the pressure adjustment space 33.

[0062] When the steam turbine 10 (see FIG. 1) starts up, some of the steam S in the high-pressure space HP leaks into the low-pressure space LP through the gap between the seal fin 32 and the rotor 12. Some of the steam S also passes between the sealing holder 40 and the high-pressure side retainer 45 and enters the outer peripheral surface 51a of the support portion 51 of the seal member 31. The seal member 31 is then pressed inward in the radial direction R by the steam S in the high-pressure space HP, and moves inward in the radial direction R against the biasing force of the compression spring 49. This reduces the gap between the tip of the seal fin 32 and the outer peripheral surface of the rotor 12, causing a pressure loss due to the small gap. This pressure loss suppresses the leakage flow of the steam S flowing through the gap in the axial direction A.

[0063] At this time, some of the steam S in the high-pressure side space HP enters the recess 41 of the sealing holder 40 and acts on the low-pressure side end surface 51c of the seal member 31. This increases the pressing force between the seal member 31 and the high-pressure side surface 31b of the recess 41. However, because the low-pressure steam S in the low-pressure side space LP is supplied to the pressure adjustment space 33 through the communicating passage 34, the pressing force of the seal member 31 against the high-pressure side surface 31b of the recess 41 is reduced. This reduces the sliding resistance of the seal member 31 against the retainer 44 when it moves in the radial direction R. As a result, the seal member 31 can move smoothly in the radial direction R in accordance with the pressure difference between the high-pressure side space HP and the low-pressure side space LP.

[0064] Furthermore, when the pressure of the steam S in the high-pressure space HP fluctuates, the pressing force of the seal member 31 against the high-pressure side surface 31b of the recess 41 fluctuates. At this time, the pressure difference between the high-pressure space HP and the low-pressure space LP also fluctuates. In other words, the pressing force of the seal member 31 against the high-pressure side surface 31b of the recess 41 is appropriately adjusted in accordance with the fluctuations in the high-pressure space HP. As a result, the sliding resistance of the recess 41 against the sealing holder 40 when the seal member 31 moves in the radial direction R is appropriately adjusted.

[0065] [Effects of this embodiment] The sealing device of the first embodiment is a sealing device 15, 15A, 15B, 15C, 15D that is arranged between a casing (stationary body) 11 and a rotor (rotating body) 12 and suppresses the flow of steam (fluid) S from a high-pressure side space portion HP to a low-pressure side space portion LP, and is equipped with a sealing member 31 that is supported on the casing 11 so as to be freely movable in the axial direction A and radial direction R of the rotor 12, a sealing fin 32 that extends from the sealing member 31 toward the rotor 12, a pressure adjustment space portion 33 that is provided between the casing 11 and the high-pressure side end face 51b of the sealing member 31, and a communicating passage 34, 34B whose one end is connected to the low-pressure side space portion LP and whose other end is connected to the pressure adjustment space portion 33.

[0066] According to the seal device of the first aspect, the seal member 31 is pressed against the casing 11 by the pressure of the steam S in the high-pressure side space HP, and sliding resistance increases when the seal member 31 moves in the radial direction R. However, because the steam S in the low-pressure side space LP is supplied to the pressure adjustment space 33 through the communicating passage 34, the pressing force of the seal member 31 pressed against the casing 11 is reduced. Therefore, sliding resistance against the casing 11 when the seal member 31 moves in the radial direction R is reduced. As a result, the seal member 31 can move smoothly in the radial direction R in accordance with the pressure difference between the high-pressure side space HP and the low-pressure side space LP.

[0067] Furthermore, when the pressure of the steam S in the high-pressure space HP fluctuates, the pressing force of the seal member 31 against the casing 11 fluctuates. At this time, the differential pressure between the high-pressure space HP and the low-pressure space LP also fluctuates. In other words, the pressing force of the seal member 31 against the casing 11 is appropriately adjusted in accordance with the fluctuations in the high-pressure space HP. Therefore, the sliding resistance of the seal member 31 against the casing 11 when it moves in the radial direction R is appropriately adjusted. As a result, the seal member 31 can operate smoothly regardless of pressure fluctuations, thereby maintaining stable sealing performance.

[0068] In the seal device according to the second aspect, the pressure adjustment space 33 is provided along the circumferential direction C of the rotor 12, and the communicating passages 34, 34B are provided along the axial direction A of the rotor 12 and are provided at intervals in the circumferential direction C of the rotor 12. This allows the steam S in the low-pressure side space LP to be appropriately supplied to the pressure adjustment space 33 through the communicating passage 34, and the sliding resistance of the seal member 31 can be appropriately adjusted over the entire circumference.

[0069] In the seal device according to the third aspect, a recess 41 recessed outward in the radial direction R of the rotor 12 is provided in the casing 11, and the seal member 31 has a support portion 51 disposed in the recess 41 and a fin mounting portion 52 extending from the support portion 51 toward the rotor 12, and the pressure adjustment space 33 is provided in the support portion 51. Thus, by providing the pressure adjustment space 33 in the support portion 51 disposed in the recess 41, the sliding resistance of the seal member 31 relative to the recess 41 can be appropriately reduced.

[0070] In the sealing device according to the fourth aspect, a retainer 44 is attached to a recess 41 of a casing 11, and a support portion 51 of a sealing member 31 is supported by the retainer 44. By using the retainer 44, the sealing member 31 can be attached to the casing 11 with high precision regardless of the size or shape of the recess 41.

[0071] In the seal device according to the fifth aspect, one end of the communicating passages 34, 34B opens to the fin mounting portion 52, so that the communicating passages 34, 34B communicate with the low-pressure space portion LP. This allows the steam S in the low-pressure space portion LP to be appropriately supplied to the pressure adjustment space portion 33 by the communicating passages 34.

[0072] In the seal device according to the sixth aspect, a plurality of seal fins 32 are provided at intervals in the axial direction A of the rotor 12, and one end of the communication passage 34B communicates with the first low-pressure side space LP1 between the plurality of seal fins 32. As a result, by supplying relatively high steam S to the pressure adjustment space 33, the adjustment margin for the sliding resistance of the seal member 31 can be increased.

[0073] In the seal device according to the seventh aspect, a first seal portion 61 is provided between the casing 11 (low-pressure side retainer 46) and the low-pressure side end surface 51c of the seal member 31. This makes it possible to suppress leakage of steam S from the gap between the casing 11 (low-pressure side retainer 46) and the seal member 31, regardless of the pressure-receiving area of ​​the pressure adjustment space portion 33.

[0074] In the seal device according to the eighth aspect, second seal portions 62 are provided on the inner and outer sides of the pressure adjustment space 33 in the radial direction R of the rotor 12 between the casing 11 (high-pressure side retainer 45) and the high-pressure side end face 51b of the seal member 31. This makes it possible to suppress leakage of steam S from the gap between the casing 11 (low-pressure side retainer 46) and the seal member 31.

[0075] The sealing device according to the ninth aspect is provided with a compression spring (biasing member) 49 that biases the sealing member 31 in a direction in which the sealing fin 32 moves away from the rotor 12. This allows the sealing fin 32 to be appropriately moved to a spaced position spaced away from the rotor 12 and a sealing position (approaching position) close to the rotor 12.

[0076] The rotary machine according to the tenth aspect includes a casing (stationary body) 11, a rotor (rotating body) 12 rotatably supported by the casing 11, and sealing devices 15, 15A, 15B, 15C, and 15D arranged between the casing 11 and the rotor 12. This allows the sealing member 31 to operate smoothly regardless of pressure fluctuations, thereby maintaining stable sealing performance and suppressing performance degradation. [Explanation of symbols]

[0077] 10 Steam turbine (rotary machinery) 11 Casing (stationary body) 12 Rotor (rotating body) 13 Stator blade 14 Moving blade 15, 15A, 15B, 15C, 15D, 16 Sealing device 31 Sealing material 32 Seal fin 33 Pressure adjustment space 34,34B Communication path 40 Sealing holder (stationary body) 41 Recess 42 High pressure side protrusion 43 Low pressure side protrusion 44 Retainer (stationary body) 45 High pressure side retainer 46 Low pressure side retainer 47 Connecting part 48 Spring bearing member 49 Compression spring (biasing member) 51 Support part 52 Fin mounting part 61 First seal part 62 Second seal part HP High-pressure space LP Low pressure space LP1 First low pressure space S Steam (fluid) A axis direction R Radial direction C circumferential direction O1 axis center

Claims

1. A seal device disposed between a stationary body and a rotating body to suppress the flow of a fluid from a high-pressure side to a low-pressure side, a seal member supported on the stationary body so as to be movable in the axial and radial directions of the rotating body; a seal fin extending from the seal member toward the rotating body; a pressure adjustment space portion provided between the stationary body and the high-pressure side end surface of the seal member; a communication passage having one end communicating with the low-pressure side and the other end communicating with the pressure adjustment space; Equipped with the pressure adjustment space and the communication passage are provided independently of a space between a radially outer peripheral surface of the seal member and an inner peripheral surface of the stationary body. Sealing device.

2. the pressure adjustment space portion is provided along a circumferential direction of the rotating body, and the communication passage is provided along an axial direction of the rotating body and is provided in plurality at intervals in the circumferential direction of the rotating body. The sealing device according to claim 1 .

3. the stationary body is provided with a recess recessed radially outward of the rotating body, the seal member has a support portion disposed in the recess and a fin attachment portion extending from the support portion toward the rotating body, and the pressure adjustment space portion is provided in the support portion. The sealing device according to claim 1 or 2.

4. the stationary body has a retainer attached to the recess, and the support portion of the seal member is supported by the retainer. The sealing device according to claim 3 .

5. The communication passage has one end that opens to the fin mounting portion, thereby communicating with the low-pressure side. The sealing device according to claim 3 or 4.

6. The seal fins are provided in plurality at intervals in the axial direction of the rotor, and one end of the communication passage communicates with the plurality of seal fins. The sealing device according to any one of claims 1 to 5.

7. a first seal portion is provided between the stationary body and the low-pressure side end surface of the seal member; The sealing device according to any one of claims 1 to 6.

8. a second seal portion is provided between the stationary body and the high-pressure side end face, on the inner and outer sides in the radial direction of the rotating body in the pressure adjustment space portion; The sealing device according to any one of claims 1 to 7.

9. a biasing member that biases the seal member in a direction in which the seal fin moves away from the rotating body is provided; The sealing device according to any one of claims 1 to 8.

10. A stationary body and a rotating body rotatably supported on the stationary body; The sealing device according to any one of claims 1 to 9, which is disposed between the stationary body and the rotating body; A rotating machine comprising:

Citation Information

Patent Citations

  • JP1975078742A

  • Labyrinth seal device

    JP1986016209A

  • Axially sealing device of rotary machine

    JP2009281437A

  • Shaft seal device and turbomachine

    JP2017057841A

  • Shaft seal device and rotary machine

    JP2018159356A