US20150020527A1 - Steam turbomachine having a bypass circuit for throttle flow capacity adjustment - Google Patents
Steam turbomachine having a bypass circuit for throttle flow capacity adjustment Download PDFInfo
- Publication number
- US20150020527A1 US20150020527A1 US13/946,589 US201313946589A US2015020527A1 US 20150020527 A1 US20150020527 A1 US 20150020527A1 US 201313946589 A US201313946589 A US 201313946589A US 2015020527 A1 US2015020527 A1 US 2015020527A1
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- Prior art keywords
- stage
- steam
- valve element
- bypass circuit
- flow path
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- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Abandoned
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Classifications
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01D—NON-POSITIVE DISPLACEMENT MACHINES OR ENGINES, e.g. STEAM TURBINES
- F01D17/00—Regulating or controlling by varying flow
- F01D17/10—Final actuators
- F01D17/12—Final actuators arranged in stator parts
- F01D17/14—Final actuators arranged in stator parts varying effective cross-sectional area of nozzles or guide conduits
- F01D17/141—Final actuators arranged in stator parts varying effective cross-sectional area of nozzles or guide conduits by means of shiftable members or valves obturating part of the flow path
- F01D17/145—Final actuators arranged in stator parts varying effective cross-sectional area of nozzles or guide conduits by means of shiftable members or valves obturating part of the flow path by means of valves, e.g. for steam turbines
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01D—NON-POSITIVE DISPLACEMENT MACHINES OR ENGINES, e.g. STEAM TURBINES
- F01D17/00—Regulating or controlling by varying flow
- F01D17/10—Final actuators
- F01D17/105—Final actuators by passing part of the fluid
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01K—STEAM ENGINE PLANTS; STEAM ACCUMULATORS; ENGINE PLANTS NOT OTHERWISE PROVIDED FOR; ENGINES USING SPECIAL WORKING FLUIDS OR CYCLES
- F01K7/00—Steam engine plants characterised by the use of specific types of engine; Plants or engines characterised by their use of special steam systems, cycles or processes; Control means specially adapted for such systems, cycles or processes; Use of withdrawn or exhaust steam for feed-water heating
- F01K7/34—Steam engine plants characterised by the use of specific types of engine; Plants or engines characterised by their use of special steam systems, cycles or processes; Control means specially adapted for such systems, cycles or processes; Use of withdrawn or exhaust steam for feed-water heating the engines being of extraction or non-condensing type; Use of steam for feed-water heating
- F01K7/38—Steam engine plants characterised by the use of specific types of engine; Plants or engines characterised by their use of special steam systems, cycles or processes; Control means specially adapted for such systems, cycles or processes; Use of withdrawn or exhaust steam for feed-water heating the engines being of extraction or non-condensing type; Use of steam for feed-water heating the engines being of turbine type
Definitions
- the subject matter disclosed herein relates to the art of steam turbomachines and, more particularly, to a steam turbomachine having a bypass circuit for throttle flow capacity adjustment.
- a steam turbomachine high pressure, high temperature steam is utilized as a working fluid.
- Inlet steam is passed through a plurality of nozzles toward a plurality of buckets coupled to a shaft.
- the nozzles redirect and accelerate the inlet steam which then flows onto the buckets.
- the buckets rotate thereby transforming thermal energy from the steam to mechanical, rotational, energy that drives the shaft.
- the shaft is employed to drive a component such as a generator or a pump.
- a steam turbomachine includes a housing having a shell that defines a steam flow path, a first stage bowl cavity formed in the shell, a first stage including a plurality of first stage nozzles and a plurality of first stage buckets arranged downstream of the plurality of first stage nozzles, a second stage including a plurality of second stage nozzles and a plurality of second stage buckets arranged downstream of the plurality of second stage nozzles.
- the second stage is arranged downstream of the first stage along the steam flow path.
- a bypass circuit is formed in the shell. The bypass circuit extends from a first end fluidically connected to the first stage bowl cavity to a second end fluidically exposed to the steam flow path upstream of the second stage.
- a valve element is positioned, in and selectively blocks, the bypass circuit.
- a method of adjusting throttle flow capacity in a steam turbomachine includes guiding steam along a steam flow path of the steam turbomachine, the steam passing through a first stage and a second stage, and delivering an amount of steam from the first stage bowl to the steam flow path upstream of the second stage bypassing the first stage.
- FIG. 1 is a partial cross-sectional schematic view of a steam turbomachine having a bypass circuit and valve element access passage in accordance with an exemplary embodiment
- FIG. 2 is a partial cross-sectional view of the steam turbomachine of FIG. 1 illustrating the valve element in a partial bypass position
- FIG. 3 is a partial cross-sectional view of the steam turbomachine of FIG. 2 illustrating a locking member abutting the valve element.
- a steam turbomachine in accordance with an exemplary embodiment is indicated generally at 2 in FIG. 1 .
- Steam turbomachine 2 includes a housing 4 having an outer shell 6 and an inner shell 8 including a first inner shell half 10 joined to a second inner shell half (not shown) along a horizontal joint (also not shown).
- Inner shell 8 defines, at least in part, a steam flow path 12 along which extend a plurality of stages 16 .
- plurality of stages 16 includes a first stage 20 , a second stage 22 and a third stage 24 . It should however be understood that the number of stages may vary.
- First stage 20 includes a plurality of first stage nozzles 30 arranged upstream from a plurality of first stage buckets 33 .
- First stage nozzles 30 are supported to inner shell 8 by a nozzle plate assembly such as shown at 34 and first stage buckets 33 are connected to a rotor shaft 35 .
- second stage 22 includes a plurality of second stage nozzles 36 arranged upstream of a plurality of second stage buckets 38 .
- Second stage nozzles 36 are supported to inner shell 8 through a nozzle diaphragm assembly 39 and second stage buckets 38 are coupled to rotor shaft 35 .
- Third stage 24 includes a plurality of third stage nozzles 40 arranged upstream of a plurality of third stage buckets 42 .
- Third stage nozzles 40 are supported to inner shell 8 through a nozzle diaphragm assembly 43 and third stage buckets 42 are coupled to rotor shaft 35 .
- Steam turbomachine 2 is also shown to include a first stage bowl cavity 44 arranged upstream of first stage 20 .
- High temperature, high pressure steam is introduced into first stage bowl cavity 44 and passed through a bowl annulus 45 to steam flow path 12 .
- the high pressure, high temperature steam expands through plurality of stages 16 along steam flow path 12 .
- the high temperature, high pressure steam initially passes through first stage nozzles 30 which impart a desired flow angle and exit velocity.
- the high temperature, high pressure gases impact the plurality of first stage buckets 33 at the desired flow angle imparting a rotation force to a first stage wheel (not separately labeled).
- the high temperature, high pressure gases flow to second stage 22 , passing through the plurality of second stage nozzles 36 and acting upon second stage buckets 38 , and third stage 24 , passing through the plurality of third stage nozzles 40 and acting upon third stage buckets 42 .
- Plurality of stages 16 transforms thermal energy from the high temperature, high pressure gases into mechanical, rotational energy, to rotor shaft 35 that may be used to drive a mechanical device such as a generator, a pump, or the like.
- steam turbomachine 2 includes a bypass circuit 50 that extends through inner shell 8 .
- Bypass circuit 50 may be formed entirely within first inner shell half 10 , as will be detailed below, or along the horizontal joint by machining mirror image channels (not shown) on both first inner shell half 10 and a second inner shell half (also not shown).
- Bypass circuit 50 extends from a first end 54 fluidically exposed to first stage bowl cavity 44 to a second end 55 through an intermediate portion 56 .
- Second end 55 is fluidically exposed to steam flow path 12 , as will be detailed more fully below.
- second end 55 is fluidically exposed to steam flow path 12 upstream of second stage 22 .
- second end 55 is fluidically exposed to steam flow path 12 upstream of the plurality of second stage nozzles 36 . It should however be understood that the particular location of second end 55 may vary depending upon how much additional throttle steam flow is desired, which will also depend on flow resistance of bypass circuit 50 .
- steam is bypassed to second stage 22 in order to lessen a reduction in steam path efficiency that may take place. Bypass flow will be constrained by the available pressure drop across, and physical characteristics (cross sectional area and length) of, the bypass circuit 50 . Additional bypass flow, if required, may be obtained by bypassing more than one stage at the expense of increased reduction in steam path efficiency.
- a first inner shell half 10 includes a recess 58 formed downstream of second end 55 .
- diaphragm assembly 39 includes a plurality of circumferential bypass grooves, one of which is indicated at 60 .
- Bypass grooves 60 extend across an upstream surface of diaphragm assembly 39 and fluidically connect recess 58 with steam flow path 12 . More specifically, bypass grooves 60 extend from a first end portion 61 to a second end portion 62 through an intermediate portion 63 .
- First end portion 61 receives steam from first stage bowl cavity 44 via bypass circuit 50
- second end portion 62 delivers bypass steam to steam flow path 12 upstream of second stage nozzles 36 .
- steam turbomachine 2 includes a valve element access passage 80 that bisects bypass circuit 50 .
- Valve element access passage 80 includes a first passage portion 84 that extends through outer shell 6 , a second passage portion 85 that extends through inner shell 8 , and a recess portion 87 .
- Second passage portion 85 includes a threaded region 89 .
- a valve element 94 is selectively arranged in valve element access passage 80 to adjust a cross-sectional area of bypass circuit 50 .
- Valve element 94 includes a plug body 97 that may have a threaded portion 99 and a non-threaded portion 103 .
- Threaded portion 99 inter-engages with threaded region 89 to adjust a radial position of valve element 94 in valve element access passage 80 .
- Non-threaded portion 103 may extend into bypass circuit 50 .
- non-threaded portion 103 may nest within recessed portion 87 , as shown in FIG. 1 .
- Valve element 94 may be adjusted from the fully seated position to a partial bypass position, as shown in FIG. 2 .
- a locking member 109 FIG. 3
- Both valve element 94 and locking member 109 may include a tool engaging element such as shown at 112 and 114 respectively.
- Tool engaging elements 112 and 114 provide structure that engages with a setting tool, such as a T-handle wrench 116 , to set the desired position of valve element 94 and locking member 109 .
- the exemplary embodiments provide a system for introducing bypass steam from the first stage bowl cavity into the steam flow path bypassing the first stage of the steam turbomachine.
- the amount of bypass steam flowing through the bypass circuit may be varied in order to selectively adjust throttle flow capacity of the steam turbomachine.
- the valve element may be selectively positioned to provide the desired amount of bypass steam.
- the term “valve element” should be understood to encompass the form shown, as well as other valve-like arrangements such as a ball/barrel valve, a butterfly valve, a needle valve and the like, that provide selective adjustment of steam flow.
- valve element in accordance with the exemplary embodiment allows the throttle flow capacity of the steam turbomachine turbine to be adjusted in the field to a small degree (on the order of a few percent of the valve wide open (VWO) design flow).
- the bypass may be manually adjustable from outside of the turbine via an access port.
- the bypass circuit removes steam from the first stage bowl and sends it to a downstream stage bowl. This bypass has the effect of increasing the total flow to the turbine with a minor compromise to steam path efficiency.
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- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- General Engineering & Computer Science (AREA)
- Chemical & Material Sciences (AREA)
- Combustion & Propulsion (AREA)
- Control Of Turbines (AREA)
Abstract
A steam turbomachine includes a housing having a shell that defines a steam flow path, a first stage bowl cavity formed in the shell, a first stage including a plurality of first stage nozzles and a plurality of first stage buckets arranged downstream of the plurality of first stage nozzles, a second stage including a plurality of second stage nozzles and a plurality of second stage buckets arranged downstream of the plurality of second stage nozzles. The second stage is arranged downstream of the first stage along the steam flow path. A bypass circuit is formed in the shell. The bypass circuit extends from a first end fluidically connected to the first stage bowl cavity to a second end fluidically exposed to the steam flow path upstream of the second stage. A valve element is positioned in, and selectively blocks, the bypass circuit.
Description
- The subject matter disclosed herein relates to the art of steam turbomachines and, more particularly, to a steam turbomachine having a bypass circuit for throttle flow capacity adjustment.
- In a steam turbomachine, high pressure, high temperature steam is utilized as a working fluid. Inlet steam is passed through a plurality of nozzles toward a plurality of buckets coupled to a shaft. The nozzles redirect and accelerate the inlet steam which then flows onto the buckets. Upon contact with the high temperature, high pressure steam, the buckets rotate thereby transforming thermal energy from the steam to mechanical, rotational, energy that drives the shaft. The shaft is employed to drive a component such as a generator or a pump.
- According to one aspect of the exemplary embodiment, a steam turbomachine includes a housing having a shell that defines a steam flow path, a first stage bowl cavity formed in the shell, a first stage including a plurality of first stage nozzles and a plurality of first stage buckets arranged downstream of the plurality of first stage nozzles, a second stage including a plurality of second stage nozzles and a plurality of second stage buckets arranged downstream of the plurality of second stage nozzles. The second stage is arranged downstream of the first stage along the steam flow path. A bypass circuit is formed in the shell. The bypass circuit extends from a first end fluidically connected to the first stage bowl cavity to a second end fluidically exposed to the steam flow path upstream of the second stage. A valve element is positioned, in and selectively blocks, the bypass circuit.
- According to another aspect of the invention, a method of adjusting throttle flow capacity in a steam turbomachine includes guiding steam along a steam flow path of the steam turbomachine, the steam passing through a first stage and a second stage, and delivering an amount of steam from the first stage bowl to the steam flow path upstream of the second stage bypassing the first stage.
- These and other advantages and features will become more apparent from the following description taken in conjunction with the drawings.
- The subject matter, which is regarded as the invention, is particularly pointed out and distinctly claimed in the claims at the conclusion of the specification. The foregoing and other features, and advantages of the invention are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
-
FIG. 1 is a partial cross-sectional schematic view of a steam turbomachine having a bypass circuit and valve element access passage in accordance with an exemplary embodiment; -
FIG. 2 is a partial cross-sectional view of the steam turbomachine ofFIG. 1 illustrating the valve element in a partial bypass position; and -
FIG. 3 is a partial cross-sectional view of the steam turbomachine ofFIG. 2 illustrating a locking member abutting the valve element. - The detailed description explains embodiments of the invention, together with advantages and features, by way of example with reference to the drawings.
- A steam turbomachine in accordance with an exemplary embodiment is indicated generally at 2 in
FIG. 1 .Steam turbomachine 2 includes ahousing 4 having anouter shell 6 and aninner shell 8 including a firstinner shell half 10 joined to a second inner shell half (not shown) along a horizontal joint (also not shown). Of course it should be understood thatturbomachine 2 may include only a single shell.Inner shell 8 defines, at least in part, asteam flow path 12 along which extend a plurality ofstages 16. In the embodiment shown, plurality ofstages 16 includes afirst stage 20, asecond stage 22 and athird stage 24. It should however be understood that the number of stages may vary.First stage 20 includes a plurality offirst stage nozzles 30 arranged upstream from a plurality offirst stage buckets 33.First stage nozzles 30 are supported toinner shell 8 by a nozzle plate assembly such as shown at 34 andfirst stage buckets 33 are connected to arotor shaft 35. - Similarly,
second stage 22 includes a plurality ofsecond stage nozzles 36 arranged upstream of a plurality ofsecond stage buckets 38.Second stage nozzles 36 are supported toinner shell 8 through anozzle diaphragm assembly 39 andsecond stage buckets 38 are coupled torotor shaft 35.Third stage 24 includes a plurality ofthird stage nozzles 40 arranged upstream of a plurality ofthird stage buckets 42.Third stage nozzles 40 are supported toinner shell 8 through anozzle diaphragm assembly 43 andthird stage buckets 42 are coupled torotor shaft 35.Steam turbomachine 2 is also shown to include a firststage bowl cavity 44 arranged upstream offirst stage 20. - High temperature, high pressure steam is introduced into first
stage bowl cavity 44 and passed through abowl annulus 45 tosteam flow path 12. The high pressure, high temperature steam expands through plurality ofstages 16 alongsteam flow path 12. The high temperature, high pressure steam initially passes throughfirst stage nozzles 30 which impart a desired flow angle and exit velocity. The high temperature, high pressure gases impact the plurality offirst stage buckets 33 at the desired flow angle imparting a rotation force to a first stage wheel (not separately labeled). The high temperature, high pressure gases flow tosecond stage 22, passing through the plurality ofsecond stage nozzles 36 and acting uponsecond stage buckets 38, andthird stage 24, passing through the plurality ofthird stage nozzles 40 and acting uponthird stage buckets 42. Plurality ofstages 16 transforms thermal energy from the high temperature, high pressure gases into mechanical, rotational energy, torotor shaft 35 that may be used to drive a mechanical device such as a generator, a pump, or the like. - Manufacturers design steam turbines to possess a predetermined throttle flow capacity which may be dictated by a plant customer. However, computer design models of a steam turbine may differ slightly from an actual steam turbine in operation due to manufacturing tolerances, variations in stage flow characteristics, differences in steam supply, and the like. In such cases, the customer may be disappointed in an actual throttle flow capacity of the steam turbine. In accordance with the present invention, as-built throttle flow capacity of
steam turbomachine 2 is selectively adjustable after installation without the need to replace or rebuild portions ofsteam flow path 12 orstages 16 and without the need to disassembleouter shell 6 to more accurately meet customer requirements, as will be detailed more fully below. - In accordance with an exemplary embodiment,
steam turbomachine 2 includes abypass circuit 50 that extends throughinner shell 8.Bypass circuit 50 may be formed entirely within firstinner shell half 10, as will be detailed below, or along the horizontal joint by machining mirror image channels (not shown) on both firstinner shell half 10 and a second inner shell half (also not shown).Bypass circuit 50 extends from afirst end 54 fluidically exposed to firststage bowl cavity 44 to asecond end 55 through anintermediate portion 56.Second end 55 is fluidically exposed tosteam flow path 12, as will be detailed more fully below. In accordance with one aspect of the exemplary embodiment,second end 55 is fluidically exposed tosteam flow path 12 upstream ofsecond stage 22. More specifically,second end 55 is fluidically exposed tosteam flow path 12 upstream of the plurality ofsecond stage nozzles 36. It should however be understood that the particular location ofsecond end 55 may vary depending upon how much additional throttle steam flow is desired, which will also depend on flow resistance ofbypass circuit 50. In accordance with an exemplary embodiment, steam is bypassed tosecond stage 22 in order to lessen a reduction in steam path efficiency that may take place. Bypass flow will be constrained by the available pressure drop across, and physical characteristics (cross sectional area and length) of, thebypass circuit 50. Additional bypass flow, if required, may be obtained by bypassing more than one stage at the expense of increased reduction in steam path efficiency. - In accordance with one aspect of the exemplary embodiment, a first
inner shell half 10 includes arecess 58 formed downstream ofsecond end 55. In addition,diaphragm assembly 39 includes a plurality of circumferential bypass grooves, one of which is indicated at 60.Bypass grooves 60 extend across an upstream surface ofdiaphragm assembly 39 and fluidically connectrecess 58 withsteam flow path 12. More specifically,bypass grooves 60 extend from afirst end portion 61 to asecond end portion 62 through anintermediate portion 63.First end portion 61 receives steam from firststage bowl cavity 44 viabypass circuit 50, andsecond end portion 62 delivers bypass steam tosteam flow path 12 upstream ofsecond stage nozzles 36. - In still further accordance with the exemplary embodiment,
steam turbomachine 2 includes a valveelement access passage 80 that bisectsbypass circuit 50. Valveelement access passage 80 includes afirst passage portion 84 that extends throughouter shell 6, asecond passage portion 85 that extends throughinner shell 8, and arecess portion 87.Second passage portion 85 includes a threadedregion 89. Avalve element 94 is selectively arranged in valveelement access passage 80 to adjust a cross-sectional area ofbypass circuit 50.Valve element 94 includes aplug body 97 that may have a threadedportion 99 and anon-threaded portion 103. - Threaded
portion 99 inter-engages with threadedregion 89 to adjust a radial position ofvalve element 94 in valveelement access passage 80.Non-threaded portion 103 may extend intobypass circuit 50. In a fully seated position, in whichvalve element 94 completely blocksbypass circuit 50,non-threaded portion 103 may nest within recessedportion 87, as shown inFIG. 1 .Valve element 94 may be adjusted from the fully seated position to a partial bypass position, as shown inFIG. 2 . In either case, a locking member 109 (FIG. 3 ) may be installed in valveelement access passage 80 to prevent movement ofvalve element 94 during operation ofsteam turbomachine 2. Bothvalve element 94 and lockingmember 109 may include a tool engaging element such as shown at 112 and 114 respectively. 112 and 114 provide structure that engages with a setting tool, such as a T-Tool engaging elements handle wrench 116, to set the desired position ofvalve element 94 and lockingmember 109. - At this point it should be understood that the exemplary embodiments provide a system for introducing bypass steam from the first stage bowl cavity into the steam flow path bypassing the first stage of the steam turbomachine. The amount of bypass steam flowing through the bypass circuit may be varied in order to selectively adjust throttle flow capacity of the steam turbomachine. The valve element may be selectively positioned to provide the desired amount of bypass steam. The term “valve element” should be understood to encompass the form shown, as well as other valve-like arrangements such as a ball/barrel valve, a butterfly valve, a needle valve and the like, that provide selective adjustment of steam flow.
- Regardless of construction, when the valve element is fully retracted, there will be maximum bypass flow, thus a maximum increase in throttle flow through the turbine. The cross-sectional area of the connecting passageway will dictate the percentage increase in flow when the bypass valve is fully open. The valve element in accordance with the exemplary embodiment allows the throttle flow capacity of the steam turbomachine turbine to be adjusted in the field to a small degree (on the order of a few percent of the valve wide open (VWO) design flow). The bypass may be manually adjustable from outside of the turbine via an access port. The bypass circuit removes steam from the first stage bowl and sends it to a downstream stage bowl. This bypass has the effect of increasing the total flow to the turbine with a minor compromise to steam path efficiency.
- While the invention has been described in detail in connection with only a limited number of embodiments, it should be readily understood that the invention is not limited to such disclosed embodiments. Rather, the invention can be modified to incorporate any number of variations, alterations, substitutions or equivalent arrangements not heretofore described, but which are commensurate with the spirit and scope of the invention. Additionally, while various embodiments of the invention have been described, it is to be understood that aspects of the invention may include only some of the described embodiments. Accordingly, the invention is not to be seen as limited by the foregoing description, but is only limited by the scope of the appended claims.
Claims (20)
1. A steam turbomachine comprising:
a housing having a shell that defines a steam flow path;
a first stage bowl cavity formed in the shell;
a first stage including a plurality of first stage nozzles and a plurality of first stage buckets arranged downstream of the plurality of first stage nozzles;
a second stage including a plurality of second stage nozzles and a plurality of second stage buckets arranged downstream of the plurality of second stage nozzles, the second stage being arranged downstream of the first stage along the steam flow path;
a bypass circuit formed in the shell, the bypass circuit extending from a first end fluidically connected to the first stage bowl cavity to a second end fluidically exposed to the steam flow path upstream of the second stage; and
a valve element positioned in and selectively blocking the bypass circuit.
2. The steam turbomachine according to claim 1 , further comprising: a valve element access passage extending through the shell, the valve element access passage being fluidically connected to the bypass circuit.
3. The steam turbomachine according to claim 2 , wherein the shell includes an inner shell and an outer shell, wherein the valve element access passage includes a first passage portion extending through the inner shell and a second passage portion extending through the outer shell, the first passage portion being aligned with the second passage portion.
4. The steam turbomachine according to claim 2 , wherein the valve element access passage includes a threaded region configured and disposed to engage with the valve element.
5. The steam turbomachine according to claim 4 , wherein the valve element includes a threaded portion configured to engage with the threaded region.
6. The steam turbomachine according to claim 5 , wherein the valve element includes a non-threaded portion extending from the threaded portion, the non-threaded portion extending into the bypass circuit.
7. The steam turbomachine according to claim 2 , further comprising: a locking member arranged in the valve element access passage outboard of the valve element, the locking member preventing inadvertent removal of the valve element from the valve element access passage.
8. The steam turbomachine according to claim 1 , further comprising: a recess formed in the shell and fluidically connected with the bypass circuit, the recess extending annularly about the housing.
9. The steam turbomachine according to claim 8 , further comprising: one or more bypass grooves extending from the recess to the steam flow path.
10. The steam turbomachine according to claim 9 , further comprising a nozzle diaphragm assembly connected with one of the plurality of second stage nozzles, each of the one or more bypass grooves extending across the nozzle diaphragm assembly.
11. The steam turbomachine according to claim 10 , wherein the one or more bypass grooves are formed on an upstream surface of the nozzle diaphragm assembly.
12. The steam turbomachine according to claim 1 , wherein the second end of the bypass circuit is fluidically exposed to the steam flow path upstream of the plurality of second stage nozzles.
13. A method of adjusting throttle capacity in a steam turbomachine, the method comprising:
guiding steam along a steam flow path of the steam turbomachine, the steam passing through at least a first stage and a second stage; and
delivering an amount of steam from a first stage bowl cavity to the steam flow path upstream of the second stage bypassing the first stage.
14. The method of claim 13 , wherein delivering the amount of steam includes selectively guiding steam through a bypass circuit that fluidically connects the first stage bowl cavity and the stem flow path upstream of the second stage.
15. The method of claim 14 , wherein selectively guiding steam through the bypass circuit includes selectively adjusting a cross-sectional area of the bypass circuit.
16. The method of claim 15 , wherein selectively adjusting the cross sectional area of the bypass circuit includes selectively positioning a valve element along a valve element access passage that bisects the bypass circuit.
17. The method of claim 16 , wherein selectively positioning the valve element includes one of threading the valve element into the valve element access passage and threading the valve element out of the valve element access passage.
18. The method of claim 16 , wherein selectively positioning the valve element includes removing the valve element from the bypass circuit.
19. The method of claim 16 , wherein selectively positioning the valve element includes removing the valve element from the valve element access passage.
20. The method of claim 16 , further comprising: installing a locking member in the valve element access passage to prevent movement of the valve element.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US13/946,589 US20150020527A1 (en) | 2013-07-19 | 2013-07-19 | Steam turbomachine having a bypass circuit for throttle flow capacity adjustment |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US13/946,589 US20150020527A1 (en) | 2013-07-19 | 2013-07-19 | Steam turbomachine having a bypass circuit for throttle flow capacity adjustment |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| US20150020527A1 true US20150020527A1 (en) | 2015-01-22 |
Family
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Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US13/946,589 Abandoned US20150020527A1 (en) | 2013-07-19 | 2013-07-19 | Steam turbomachine having a bypass circuit for throttle flow capacity adjustment |
Country Status (1)
| Country | Link |
|---|---|
| US (1) | US20150020527A1 (en) |
Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPWO2017072880A1 (en) * | 2015-10-28 | 2018-03-08 | 三菱重工コンプレッサ株式会社 | Valve equipment, steam turbine equipment |
| CN113700534A (en) * | 2021-08-31 | 2021-11-26 | 中国船舶重工集团公司第七0三研究所 | High-power ship steam turbine external bypass cylinder |
Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US1865551A (en) * | 1927-10-17 | 1932-07-05 | Belluzzo Giuseppe | Reversing steam turbine with variable velocity |
| US20090185895A1 (en) * | 2005-10-31 | 2009-07-23 | Kai Wieghardt | Steam Turbine |
| US8202037B2 (en) * | 2004-08-02 | 2012-06-19 | Siemens Aktiengesellschaft | Steam turbine and method for operation of a steam turbine |
-
2013
- 2013-07-19 US US13/946,589 patent/US20150020527A1/en not_active Abandoned
Patent Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US1865551A (en) * | 1927-10-17 | 1932-07-05 | Belluzzo Giuseppe | Reversing steam turbine with variable velocity |
| US8202037B2 (en) * | 2004-08-02 | 2012-06-19 | Siemens Aktiengesellschaft | Steam turbine and method for operation of a steam turbine |
| US20090185895A1 (en) * | 2005-10-31 | 2009-07-23 | Kai Wieghardt | Steam Turbine |
Cited By (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPWO2017072880A1 (en) * | 2015-10-28 | 2018-03-08 | 三菱重工コンプレッサ株式会社 | Valve equipment, steam turbine equipment |
| US10605114B2 (en) | 2015-10-28 | 2020-03-31 | Mitsubishi Heavy Industries Compressor Corporation | Valve device and steam turbine equipment |
| CN113700534A (en) * | 2021-08-31 | 2021-11-26 | 中国船舶重工集团公司第七0三研究所 | High-power ship steam turbine external bypass cylinder |
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Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| AS | Assignment |
Owner name: GENERAL ELECTRIC COMPANY, NEW YORK Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNORS:EBBING, DAVID MICHAEL;RAZZANO, PATRICK ANTHONY, JR.;REEL/FRAME:030840/0682 Effective date: 20130718 |
|
| STCB | Information on status: application discontinuation |
Free format text: ABANDONED -- FAILURE TO RESPOND TO AN OFFICE ACTION |