Turbine casing and steam turbine
11339685 ยท 2022-05-24
Assignee
Inventors
Cpc classification
F05D2240/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2240/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/31
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2220/31
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D25/243
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01D25/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A turbine casing comprises: a turbine casing body, which covers a rotor of a steam turbine from the outer side, and in which is formed an exhaust port through which steam is horizontally exhausted; an overhanging part that horizontally widens from the outer surface of the turbine casing body; and a support part that supports the overhanging part on a baseplate; the support part restraining vertical displacement of the overhanging part relative to the baseplate, and securing the overhanging part to the baseplate so as to allow the overhanging part to be horizontally deformed or displaced.
Claims
1. A turbine casing comprising: a turbine casing body that covers a rotor of a steam turbine from an outside and has an exhaust port for exhausting steam in a horizontal direction; an extension portion that extends in the horizontal direction from an outer surface of the turbine casing body; a support portion that supports the extension portion on a base plate; and a foundation bolt inserted into a base plate hole formed in the base plate and a through-hole formed in a foundation portion, wherein the support portion restricts displacement of the extension portion with respect to the base plate in a vertical direction, and fixes the extension portion to the base plate in a state where deformation or the displacement of the extension portion is allowed in the horizontal direction, wherein the support portion has a bolt inserted into a first through-hole formed in the extension portion, having a threaded portion formed on an outer peripheral surface, and having a lower end portion meshing with a threaded hole formed in the base plate, a nut that fixes the extension portion to the base plate in the vertical direction by meshing with an upper end portion of the bolt, and a washer provided between the nut and the extension portion, a thickness of the washer is smaller than a separation dimension between the nut and the extension portion, and a foundation nut fastened to the foundation bolt has an outer diameter smaller than an inner diameter of the base plate hole and is in direct contact with a bottom part of the base plate hole to fix the base plate to the foundation portion.
2. The turbine casing according to claim 1, wherein an inner diameter dimension of the first through-hole is larger than an outer diameter dimension of the bolt.
3. The turbine casing according to claim 1, further comprising: a low friction member provided on a surface of the washer on an extension portion side and having a friction coefficient lower than a friction coefficient between the washer and the extension portion.
4. A steam turbine comprising: a rotor rotatable around an axis; and the turbine casing according to claim 1, which covers the rotor from outside.
5. The turbine casing according to claim 1, wherein the foundation bolt is inserted into the base plate hole and the through-hole formed in the foundation portion via a second through-hole formed in the extension portion.
6. The turbine casing according to claim 5, the first though-hole is formed at a position closer to the turbine casing body than the second through-hole in the extension portion.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
DESCRIPTION OF EMBODIMENTS
First Embodiment
(5) A first embodiment of the present invention will be described with reference to
(6) The turbine casing 1 has a cylindrical turbine casing body 1B formed around the axis O, a first extension portion 22A (extension portion) provided on an outer surface of the turbine casing body 1B, and a second extension portion 22B. The turbine casing body 1B has an upper half turbine casing 11 located on the upper side and a lower half turbine casing 12 located on the lower side, when a division surface L in the horizontal direction which passes through the axis O is set as a boundary. The upper half turbine casing 11 and the lower half turbine casing 12 respectively have a semi-cylindrical shape, and are integrally joined in an upward-downward direction via the division surface 1, thereby forming the turbine casing body 1B. A portion of the turbine casing 1 configured in this way is an exhaust port E which is open in the horizontal direction. The exhaust port E communicates with a condenser 90 via a connection portion 80. The condenser 90 is a device for liquefying low-temperature and low-pressure steam exhausted from the exhaust port E.
(7) The lower half turbine casing 12 has a first extension portion 22A and a second extension portion 22B for fixing the lower half turbine casing 12 to a first foundation portion 50A installed on a floor surface F and a second foundation portion 50B, and a transverse anchor Ta. The first extension portion 22A is fixed to an upper surface of the first foundation portion 50A extending upward from the floor surface F by a support portion 30 (to be described later). The first extension portion 22A has a plate shape extending in the horizontal direction from an outer surface of the turbine casing body 1B (lower half turbine casing 12) (refer to
(8) The second extension portion 22B is not fixed to and placed on an upper surface of the second foundation portion 50B extending upward from the floor surface. The second extension portion 22B has a plate shape extending in the horizontal direction from an outer surface of the turbine casing body 1B (lower half turbine casing 12) (refer to
(9) The transverse anchor Ta is at fixing device that restricts the displacement of the lower half turbine casing 12 in the horizontal direction and allows the displacement or the deformation in the vertical direction. When viewed in the direction of the axis O, the transverse anchor Ta is provided at a position overlapping the axis O of the lower half turbine casing 12.
(10) The support portion 30 fixes the first extension portion 22A in a state where the displacement in the vertical direction is restricted on the first foundation portion 50A and the deformation or the displacement is allowed in the horizontal direction. As illustrated in
(11) As illustrated in
(12) A foundation nut 72 that fixes and presses the base plate 53 to the upper surface of the grout 52 is fastened to an upper end of the foundation bolt 71. A second hole H2 having a size into which the foundation bolt 71 can be inserted is formed at a position corresponding to the base plate hole 53H in the first extension portion 22A. That is, the foundation bolt 71 can be attached after the first extension portion 22A is disposed on the first foundation portion 50A.
(13) The support portion 30 has a bolt 73, a nut 74, a washer 75, and a low friction member 76. The bolt 73 is inserted into a first hole H1 (through-hole) formed in the first extension portion 22A. The first hole H1 is formed at a position closer to the turbine casing body 1B (lower half turbine casing 12) than the above-described second hole H2. An inner diameter dimension of the first hole H1 is larger than an outer diameter dimension of the bolt 73. That is, a gap is formed between an outer peripheral surface of the bolt 73 and an inner peripheral surface of the first hole H1. A lower end portion of the bolt 73 is fixed by meshing with a threaded hole H3 formed in the base plate 53.
(14) The nut 74 is attached to an upper end of the bolt 73. The nut 74 is fastened at a position separated upward from an upper surface S1 of the first extension portion 22A. That is, a gap G is formed between the nut 74 and the upper surface S1. The washer 75 is attached to this gap G. The washer 75 has an annular shape having an inner diameter dimension into which the nut 74 can be inserted. A thickness of the washer 75 is smaller than a separation dimension (dimension of the gap G in the vertical direction) between the nut 74 and the first extension portion 22A.
(15) The low friction member 76 is integrally attached below the washer 75. The low friction member 76 has a friction coefficient lower than a friction coefficient between the washer 75 and the first extension portion 22A. As an example, the low friction member 76 is formed of a resin material containing nylon or Teflon (registered trademark). According to the above-described configuration, a lower surface S2 of the first extension portion 22A and the base plate upper surface 53S are in a state of being in contact with each other.
(16) Here, the turbine casing body 1B is internally in a vacuum state in order to promote smooth exhaust of the steam. That is, the turbine casing body 1B receives a load generated from an outside by atmospheric pressure. On the other hand, the exhaust port E of the turbine casing body 1B is open to the atmospheric pressure. Accordingly, a load acting toward the exhaust port E side in the horizontal direction is generated in the turbine casing body 1B. Due to the load, a moment around the central axis (axis O) of the rotor 21 is generated in an upper-half portion (upper half turbine casing 11) of the turbine casing body 1B. As a result, the upper half turbine casing 11 is pushed by the lower half turbine casing 12 from below. Accordingly, in some cases, the upper half turbine casing 11 may be displaced to deform upward. The displacement causes vibrations in the turbine casing body 1B. Accordingly, it is desirable to suppress the displacement. On the other hand, due to heat of the steam, thermal expansion occurs in the turbine casing body 1B and the first extension portion 22A. Therefore, it is not a best way to completely suppress the deformation or the displacement.
(17) Therefore, in the above-described configuration, the support portion 30 fixes the first extension portion 22A to the base plate 53 in a state where the displacement of the first extension portion 22A with, respect, to the base plate 53 is restricted in the vertical direction and the deformation or the displacement is allowed in the horizontal direction. In this manner, the displacement (upward deformation) in the vertical direction can be suppressed while the thermal expansion in the horizontal direction is allowed in the turbine casing body 1B and the extension portion.
(18) Specifically, according to the above-described configuration, the thickness of the washer 75 is smaller than the separation dimension between the nut 74 and the first extension portion 22A. In this manner, when a moment is applied to the turbine casing body 1B in a state where the nut 74 is attached to the bolt 73, the displacement or the thermal expansion in the vertical direction is allowed to some extent in the first extension portion 22A. On the other hand, the nut 74 is provided. Accordingly, excessive displacement or thermal expansion in the vertical direction can be restricted. Therefore, for example, compared to a configuration in which the displacement or the deformation of the first extension portion 22A in the vertical direction is completely suppressed, the first extension portion 22A can be supported on the base plate 53 while stress generated in the first extension portion 22A and the turbine casing body 1B is released to some extent.
(19) Furthermore, according to the above-described configuration, the inner diameter dimension of the first hole H1 is larger than the outer diameter dimension of the bolt 73. Accordingly, when a moment is generated in the first extension portion 22A, the bolt 73 can move inside the first hole H1 to some extent in the horizontal direction. On the other hand, excessive displacement of the bolt 73 is restricted by the first hole H1. Therefore, for example, compared to a configuration in which the displacement or the deformation of the first extension portion 22A in the horizontal direction is completely suppressed, the first extension portion 22A can be supported on the base plate 53 while stress generated in the first extension portion 22A and the turbine casing body 1B is released to some extent.
(20) In addition, according to the above-described configuration, the low friction member 76 is provided between the washer 75 and the first extension portion 22A. Accordingly, a frictional force generated between the washer 75 and the first extension portion 22A is reduced when the first extension portion 22A is displaced in the horizontal direction. In this manner, a stress load generated when the first extension portion 22A is displaced or deformed can be reduced.
(21) Hitherto, the first embodiment of the present invention has been described. The above-described configurations can be changed or modified in various ways as long as the change or the modification does not depart from the concept of the present invention.
Second Embodiment
(22) Next, a second embodiment of the present invention will be described with reference to
(23) The base portion 61 is fixed onto the base plate upper surface 53S, and has a plate shape extending upward.
(24) A surface (base portion inner surface S4) facing the first extension portion 22A in the base portion 61 faces a surface (side surface S3) facing in the horizontal direction of the first extension portion 22A with a gap.
(25) The pressing portion 62 extends in the horizontal direction from an upper end of the base portion 61 toward the first extension portion 22A side. A lower surface (facing surface S5) of the pressing portion 62 faces the upper surface S1 of the first extension portion 22A with a gap.
(26) According to the above-described configuration, the base portion 61 faces the first extension portion 22A with a gap. Accordingly, excessive displacement or excessive deformation can be restricted while the displacement or the deformation of the first extension portion 22A is allowed to some extent in the horizontal direction. In addition, the pressing portion 62 faces the first extension portion 22A with a gap. Accordingly, excessive displacement or excessive deformation can be restricted while the displacement or the deformation of the first extension portion 22A is allowed to some extent in the vertical direction. Therefore, for example, compared to a configuration in which the displacement or the deformation of the first extension portion 22A in the vertical direction is completely suppressed, the extension portion can be supported on the base plate while stress generated in the first extension portion 22A and the turbine casing body 1B is released to some extent.
(27) Hitherto, the second embodiment, of the present invention has been described. The above-described configurations can be changed or modified in various ways as long as the change or the modification does not depart from the concept of the present invention.
INDUSTRIAL APPLICABILITY
(28) The present invention is applicable to a turbine casing and a steam turbine.
REFERENCE SIGNS LIST
(29) 100 steam turbine
(30) 1 turbine casing
(31) 1B turbine casing body
(32) 11 upper half turbine casing
(33) 12 lower half turbine casing
(34) 21 rotor
(35) 22A first extension portion (extension portion)
(36) 22B second extension portion
(37) 30 support portion
(38) 30B support portion
(39) 50A first foundation portion
(40) 50B second foundation portion
(41) 51 foundation body
(42) 52 grout
(43) 53 base plate
(44) 53H base plate hole
(45) 53S base plate upper surface
(46) 61 base portion
(47) 62 pressing portion
(48) 71 foundation bolt
(49) 72 foundation nut
(50) 73 bolt
(51) 74 nut
(52) 75 washer
(53) 76 low friction member
(54) 80 connection portion
(55) 90 condenser
(56) F floor surface
(57) G gap
(58) H1 first hole (through-hole)
(59) H2 second hole
(60) H3 threaded hole
(61) L division surface
(62) O axis
(63) S1 upper surface
(64) S2 lower surface
(65) S3 side surface
(66) S4 base portion inner surface
(67) S5 facing surface
(68) Ta transverse anchor