Turbine blade with non-axisymmetric forward feature
The non-axisymmetric turbine blade design addresses inefficiencies caused by hot gas intrusion by optimizing purge air usage and temperature management, enhancing overall turbine performance.
Patent Information
- Application Number
- JP2021146605
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-09-15
- Filing Date
- 2021-09-09
- Publication Date
- 2026-01-20
- Estimated Expiration
- 2041-09-09
AI Technical Summary
Intrusion of hot combustion gases or steam into the wheel space between turbine blade rows leads to reduced turbine efficiency due to the need for purge air, which increases cooling requirements and inefficiencies.
A turbine blade design featuring a non-axisymmetric forward face and sealing member that separates the fluid flow path from the wheel space, utilizing non-axisymmetric profiles to enhance purge air efficiency and reduce gas temperature buildup.
The non-axisymmetric design improves turbine efficiency by reducing gas temperatures and minimizing purge air requirements, leading to improved operating efficiency and reduced cooling needs.
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Abstract
Description
[Technical Field]
[0001] Embodiments of the present disclosure relate generally to rotary machines, and more particularly to forward features of turbine blades for controlling fluid flow and temperature near the turbine blades and reducing losses that may result from temperature buildup in the space near or below the turbine blade structure. [Background technology]
[0002] Turbines employ rows of rotating blades on wheels or disks of a rotor assembly, alternating with rows of stationary vanes on a stator or nozzle assembly. These alternating rows extend axially along the rotor and stator, allowing combustion gases or steam to rotate the rotor as they flow through it.
[0003] Axial and / or radial openings at the interface between the rotating blades and the stationary nozzles can allow hot combustion gases or steam to exit the main flow and enter radially into the intervening wheel space between the blade rows. In gas turbines, cooling air or "purge air" is often introduced into the wheel space between the blade rows. This purge air serves to cool components and spaces in the wheel space and other areas radially inward from the blades, as well as to provide a counterflow of cooling air to further limit intrusion of hot gases into the wheel space. Nevertheless, intrusion of combustion gases or steam into the wheel space between the blade rows directly and / or indirectly contributes to reduced turbine efficiency due to the need to purge such gases or steam. Summary of the Invention
[0004] Aspects of the present disclosure provide a turbine blade including a platform; an airfoil configured to extend radially outward from the platform and into a fluid flow path, the airfoil separating an upstream portion of the fluid flow path from a downstream portion of the fluid flow path; a sealing member extending axially from the platform toward a stationary nozzle adjacent the platform, the sealing member separating the fluid flow path from a wheel space; and a forward face on the platform between the sealing member and the airfoil, the sealing member axially facing the upstream portion of the fluid flow path, wherein a circumferential profile of an upper surface of the forward face is non-axisymmetric about a centerline axis of the forward face.
[0005] A further aspect of the present disclosure provides a turbine blade including: a platform; an airfoil extending radially outward from the platform and configured to extend into a fluid flow path, the airfoil separating an upstream portion of the fluid flow path from a downstream portion of the fluid flow path; a sealing member extending axially from the platform toward a stationary nozzle adjacent the platform, the sealing member separating the fluid flow path from a wheel space; a forward face on the platform between the sealing member and the airfoil, the sealing member axially facing the upstream portion of the fluid flow path; and a forward axial face on the platform extending from an upper surface of the forward face to the airfoil, wherein the axial profile of the forward axial face is non-axisymmetric about a centerline axis of the forward face.
[0006] Another aspect of the present disclosure provides a turbine blade including a platform; an airfoil configured to extend radially outward from the platform and into a fluid flow path, the airfoil separating an upstream portion of the fluid flow path from a downstream portion of the fluid flow path; a sealing member extending axially from the platform toward a stationary nozzle, the sealing member separating the fluid flow path from a wheel space; and a forward face on the platform between the sealing member and the airfoil and axially facing the upstream portion of the fluid flow path, the circumferential profile of an upper surface of the forward face including: a forward face that is non-axisymmetric about a centerline axis of the forward face; and a forward axial face on the platform that extends from the upper surface of the forward face to the airfoil, the axial profile of the forward axial face being non-axisymmetric about the centerline axis of the forward face.
[0007] These and other features of the present turbine blade will be more readily understood from the following detailed description, taken in conjunction with the accompanying drawings which illustrate various embodiments of the present disclosure. [Brief explanation of the drawings]
[0008] [Figure 1] 1 is a schematic cross-sectional view of a portion of a conventional turbine blade. [Figure 2] FIG. 1 is a perspective view of a turbine blade according to an embodiment of the present disclosure. [Figure 3] 1 is a plot comparing a turbine blade having an axisymmetric forward feature with a turbine blade having a non-axisymmetric forward feature. [Figure 4] FIG. 1 is a perspective view of a plurality of turbine blades having various non-axisymmetric forward features according to an embodiment of the present disclosure. [Figure 5] FIG. 10 is a perspective view of a turbine blade according to a further embodiment of the present disclosure. [Figure 6] FIG. 1 is a schematic block diagram illustrating a portion of a multi-shaft power plant system in which turbine blades are deployed according to an embodiment of the present disclosure.
[0009] It should be noted that the drawings of the present invention are not to scale. The drawings are intended to illustrate only typical aspects of a turbine blade and its features, and therefore should not be considered limiting of the scope of the present invention. In the drawings, like numbers represent like elements between the drawings. DETAILED DESCRIPTION OF THE INVENTION
[0010] Referring now to the drawings, FIG. 1 illustrates a schematic cross-sectional view of a portion of a gas turbine 10 including a blade 40 disposed between two adjacent nozzles, e.g., a first-stage nozzle 20 (sometimes known as a "fixed blade") and a second-stage nozzle 22. The blade 40 extends radially outward from an axially extending rotor (not shown), as will be appreciated by those skilled in the art. The blade 40 includes a platform 42 from which an airfoil 50 extends radially outward. The platform 42 may have a shank portion 60 extending radially inward relative to the airfoil 50.
[0011] The shank portion 60 includes a pair of sealing members 70, 72 (sometimes referred to as "angel wings") that extend axially outward toward the first stage nozzle 20 and a sealing member 74 that extends axially outward toward the second stage nozzle 22. It should be understood that different numbers and arrangements of sealing members are possible. The number and arrangement of sealing members described herein are provided for illustrative purposes only.
[0012] As seen in FIG. 1 , nozzle surface 30 and discourager member 32 extend axially from first-stage nozzle 20 and are disposed radially outward from sealing members 70 and 72, respectively. Thus, nozzle surface 30 overlaps but does not contact sealing member 70, and discourager member 32 overlaps but does not contact sealing member 72. A similar arrangement is shown for discourager member 32 and sealing member 74 of second-stage nozzle 22. With the arrangement shown in FIG. 1 , during turbine operation, a quantity of purge air can be disposed, for example, between nozzle surface 30, sealing member 70, and platform lip 44, thereby limiting both leakage of purge air into hot gas path 28 and intrusion of hot gases from hot gas path 28 into wheel space 26.
[0013] 1 shows blade 40 positioned between first and second stage nozzles 20, 22 so that blade 40 represents a first stage blade, this is for purposes of example and explanation only. The principles and embodiments of the invention described herein may be applied to blades at any stage within a turbine with the expectation of achieving similar results.
[0014] FIG. 2 illustrates a perspective view of a portion of a turbine blade 140 having a non-axisymmetric forward feature in accordance with an embodiment of the present disclosure. While the turbine blade 140 is illustrated in FIG. 2 as being between the first stage nozzle 20 and the second stage nozzle 22, the turbine blade 140 may be located at any conceivable location on a turbomachine where a rotating blade is desired. The turbine blade 140 may include a platform 142 and an airfoil 150 extending radially outward from the platform 142 (i.e., at least partially along the radial axis R). As can be seen, the airfoil 150 includes a leading edge 152 (e.g., closer to the first stage nozzle 20) and a trailing edge 154 (e.g., closer to the second stage nozzle 22). The airfoil 150 may extend into a fluid flow path 160, which may include an upstream portion 160a upstream of the airfoil 150 and a downstream portion 160b downstream of the airfoil 150.
[0015] The platform 142 may include a forward face 170 that is closer to the leading edge 152 than the trailing edge 154. In this case, the leading edge 152 of the airfoil 150 may face axially (i.e., along the axial axis Z) toward the forward face 170. The forward face 170 may extend radially from the sealing member 172 to an upper surface 174 and may face toward the upstream portion 160a of the fluid flow path 160. The upper surface 174 of the forward face 170 (similar to the platform lip 44 in FIG. 1 ) separates the forward face 170 from an upper surface 176 of the platform 142. In this case, the airfoil 150 may be attached to and / or extend radially outward from the upper surface 176 of the platform 142.
[0016] The sealing member 172 may be formed from the platform 142, for example, by being machined from a larger precursor structure, and / or may be manufactured via any known or later-developed method. For example, the sealing member 172 and / or other distinct features of the platform 142 may be formed by casting and / or additive manufacturing. However, the formed sealing member 172 may extend axially (i.e., along the axial axis Z) toward the first-stage nozzle 20. The sealing member 172 may also separate a platform space 178 in the upstream portion 160a from other spaces radially below the sealing member 172 (i.e., in the negative direction along the radial axis R). Such spaces may include, for example, a buffer space 180 radially between the upstream portion 160a and the wheel space 182. An additional sealing member 184 may radially separate the buffer space 180 from the wheel space 182.
[0017] The platform 142 may include a forward feature shaped to be non-axisymmetric about the centerline axis of the corresponding portion of the platform 142. One such forward feature may include, for example, the upper surface 174 of the forward face 170. The forward face 170 may have a centerline axis J that extends axially outward from the platform 142, for example, toward the first-stage nozzle 20. The turbine blade 140 may differ from conventional blade structures, for example, by having at least one forward feature that is non-axisymmetric about the centerline axis J. The term “non-axisymmetric” refers to any portion of the platform 142 that is not symmetric about the location of the centerline axis J. According to one example, such a forward feature may include a circumferential profile of the upper surface 174. The term “circumferential profile” may refer to the path that the upper surface 174 follows, at least in part, relative to the circumferential axis C.
[0018] An axisymmetric circumferential profile may include, for example, a linear or arcuate path that is symmetric or centered about the centerline axis J. Such profiles may also include, for example, arcuate, piecewise defined linear, and / or other profiles along the circumferential axis C that are symmetric about the centerline axis J. In embodiments of the present disclosure, the upper surface 174 is non-axisymmetric about the centerline axis J. For example, in the example of FIG. 2 , the upper surface 174 includes a nodule N that is closer to one circumferential end of the platform 142 than the other. As used herein, the term “nodule” may refer to at least one raised portion, depressed portion, ramp, bump, recess, and / or other similar feature that may be an arcuate and / or non-arcuate discrepancy from the profile of another surface region. Regardless of shape, the nodule N may be closer to the pressure side surface PS than the suction side surface SS of the airfoil 150 (as shown), or vice versa.
[0019] It is understood that upper surface 174 can include multiple nodules, for example, some nodules closer to suction side surface SS than to pressure side surface PS of airfoil 150. Any number or arrangement of nodules is possible, provided that such nodules and / or other non-linear and / or arcuate portions of upper surface 174 are not symmetric about centerline axis J. In a further example, each nodule N and / or other non-arcuate or non-linear portions of upper surface 174 can itself have a profile that is non-axisymmetric relative to centerline axis J. As shown in FIG. 2 , nodule N has both a non-axisymmetric profile and an asymmetric location within upper surface 174, illustrating both of these possibilities.
[0020] The presence of nodules N and / or other portions of upper surface 174 that are non-axisymmetric about centerline axis J may provide a circumferential profile that facilitates efficient use of purge air PA and avoids entrapment of hot gases from fluid flow path 160 in spaces along turbine blade 140. This characteristic of turbine blade 140 provides, for example, reduced gas temperatures at leading face 170 and upper surface 174 of platform 142. The reduced gas temperatures reduce the total purge flow to spaces adjacent turbine blade 140, thus improving turbine system efficiency. The non-axisymmetric portions of upper surface 174, by being located on leading face 170, may provide favorable heat concentration on turbine blade 140 without significantly impeding the flow of working fluid within fluid flow path 160.
[0021] The non-axisymmetric features of turbine blade 140 may be limited to only one of its features, for example, leading face 170. According to one example, platform 142 may include a leading face 190 axially opposite leading face 170 and facing downstream portion 160b of fluid flow path 160. Leading face 190 may itself include an upper surface 192 (shown in phantom) that is different from upper surface 174 of leading face 170. Upper surface 192 of leading face 190 may be axisymmetric about centerline axis K of leading face 190. Thus, upper surface 192 may not include nodules N as shown by example in upper surface 174.
[0022] In a further example, upper surface 192 may include one or more nodules N, but such nodules may differ from those of upper surface 174 by being symmetrically disposed about centerline axis K. Thus, no matter how upper surface 192 is shaped, the upper surface may have a profile that is geometrically different from upper surface 174 of forward face 170 by being axisymmetric about its centerline axis K.
[0023] FIG. 3 provides a plot comparing portions of a forward feature of a conventional turbine blade (e.g., platform lip 44 (FIG. 1)) with a forward feature of turbine blade 140 (FIG. 2) (e.g., upper surface 174 (FIG. 2)). Axis "C" indicates the circumferential position of upper surface 174 (or platform lip 44) from one side of blade 140 to the other, and axis "S" indicates the height of upper surface 174 relative to upper surface 176 of platform 142 in radial direction R. Interval "N" in FIG. 3 indicates the span of one nodule "N" in the exemplary embodiment. The plot shown in FIG. 3 and labeled "Non-Axisymmetric" may represent a portion of upper surface 174 illustrated in FIG. 2. In a conventional turbine blade, the upper surface of the forward face (i.e., platform lip 44) may be substantially linear and therefore axisymmetric about centerline axis J (shown in FIG. 2). In this case, the top surface of a conventional turbine blade may be fixed at approximately 0% height difference relative to the average height of the platform 142 relative to its lowest point on the radial axis R, as plotted in Figure 3. Such a plot is labeled "axisymmetric."
[0024] However, in this embodiment of turbine blade 140, nodule N has a trough on upper surface 174 that is approximately 10% less than the center height of platform 142 along axis S (i.e., in radial direction R). Nodule N may also have a peak on upper surface 174 that is approximately 5% greater than the center height of platform 142 in radial direction R at a different circumferential location. In this case, the peak on upper surface 174 is located closer to airfoil 150 than the trough on upper surface 174. According to the exemplary plot illustrated in FIG. 3, the peak and trough on upper surface 174 may be circumferentially distal to the location of leading edge 152 ( FIG. 2 ) of airfoil 150, as indicated by mark “LE” in the exemplary plot.
[0025] In further examples, the peaks and troughs of upper surface 174 may be in opposite positions or may be located elsewhere along circumferential axis C. It is also understood that further embodiments may include multiple peaks and multiple troughs (e.g., formed by respective nodules N in upper surface 174). In either case, FIG. 3 demonstrates that upper surface 174 may be non-axisymmetric with respect to centerline axis J.
[0026] 4 illustrates several turbine blades 140 alongside one conventional turbine blade 40 to further illustrate the differences between embodiments of the present disclosure and between turbine blades 140 according to embodiments of the present disclosure and conventional turbine blades 40. It is understood that the depiction in FIG. 4 is for comparison purposes only, and multiple configurations of turbine blades 140 may not be deployed together and / or with conventional turbine blades 40 on a single machine.
[0027] FIG. 4 illustrates four different turbine blades 140, each having a respective leading face 170 with a distinctly shaped upper surface 174. As shown, each upper surface 174 may have respective nodules N that make each upper surface 174 of the turbine blade 140 non-axisymmetric relative to the corresponding centerline axis J of the leading face 170. In contrast, turbine blade 40 lacks nodules N and more notably has an axisymmetric profile on its leading face. Thus, it is understood that the upper surface 174 of the leading face 170 may be formed using any conceivable shape, profile, etc., to have a non-axisymmetric profile along the circumferential axis C relative to the corresponding centerline axis J of the leading face 170. It is also understood that the location where the airfoil 150 intersects with the upper face 176, as shown in FIG. 4, may vary based on the shape, number, and / or location of the nodules N within the upper surface 174.
[0028] FIG. 5 illustrates a further example of a turbine blade 140 having various additional features. The turbine blade 140 may include some of the same or similar features as those described in other embodiments (e.g., the turbine blade 140 illustrated in FIGS. 2 and 4 ) unless otherwise noted herein. The various features of the turbine blade 140 illustrated in FIG. 5 may be implemented together with the features of other embodiments or separately. In some implementations, the platform 142 may include a forward axial surface 194 extending from the upper surface 176 onto at least a portion of the forward face 170. In some cases, the forward axial surface 194 may extend from the airfoil 150 to the sealing member 172. Additionally, the forward axial surface 194 may be oriented toward the upstream portion 160 a of the fluid flow path 160.
[0029] However, the embodied forward axial surface 194 may take the form of additional surfaces and / or raised areas axially positioned between a portion of the airfoil 150 (e.g., the leading edge 152) and the sealing member 172. The forward axial surface 194 may have any conceivable axial profile that is non-axisymmetric about the centerline axis J of the forward face 170. The axis J is shown facing in a different direction than in FIG. 2 due to differences in the structure of the forward face 170. In FIG. 5, the forward axial surface 194 extends substantially axially along a portion of the forward face 170 but curves circumferentially toward the suction side surface SS of the airfoil 150 along portions of the forward face 170 and upper surface 174 closer to the airfoil 150. In this configuration, the axial profile of the forward axial surface 194 is not symmetric about the centerline axis J of the forward face 170 and is therefore non-axisymmetric as described herein. Additionally, one axial end of the forward axial face 194 may contact a portion of the pressure side surface PS at a location axially offset from the leading edge 152 (eg, between the leading edge and the trailing edge 154).
[0030] Further embodiments of the forward axial surface 194 can extend across the upper surface 176 with any conceivable axial profile that is non-axisymmetric about the centerline axis J, where such axial profile can include a linear axial path and / or a non-linear axial path. Regardless of the shape and location of the forward axial surface 194, the forward face 170 can optionally feature the upper surface 174 having a circumferential profile that is also non-axisymmetric about the centerline axis J. In such cases, the location of one or more nodules N in the upper surface 174 can coincide with the location of the forward axial surface 194 on the platform 142. It is also understood that the forward axial surface 194 may alternatively be positioned on a platform 142 where the upper surface 174 does not feature a non-axisymmetric circumferential profile. However, similar to other embodiments described herein, the turbine blade 140 can include a forward surface 190 having an upper surface 192, where the circumferential profile of the upper surface 192 is axisymmetric about the centerline axis K of the forward surface 190.
[0031] Although embodiments of turbine blades 140 are described as being positioned between first and second stage nozzles 20, 22, it is understood that turbine blades 140 may be mounted between nozzles of other stages and / or adapted to other portions of the turbomachine. Thus, turbine blades 140 may be operable to deploy into fluid flow passages 160 to reduce gas temperatures at or near forward face 170 and / or forward axial face 194.
[0032] The turbine blade 140 differs from conventional rotating blade structures by, for example, including a non-axisymmetric geometry of the leading face 170 (specifically, the upper surface 174) and / or the leading axial face 194 on the forward-facing axial surface of the platform 142. The leading face 170 and / or the leading axial face 194 having the non-axisymmetric features may be adjacent to a purge air cooling space (e.g., the platform space 178 and / or the buffer space 180) at the upper surface of the leading face 170, thereby causing a more significant temperature difference (e.g., at least about 200°F) between the portion of the platform 142 adjacent the airfoil 150 and the portion of the platform 142 adjacent the sealing member 172. Such a temperature difference may provide improved operating efficiency compared to conventional rotating blade structures, e.g., an efficiency improvement of at least about 0.20% of the turbine stage in which the platform 142 is used. Furthermore, such a temperature difference may reduce the amount of purge air required to cool certain thermally sensitive areas of the platform 142.
[0033] It is understood that in various embodiments, many sizes, shapes, profiles, etc. of the upper surface 174 and / or forward axial face 194 of the blade structure 140 may vary and may include configurations not specifically shown or described herein. Various other airfoil parameters, such as wall apex locations, blade pitch, width, aspect ratios between the lengths and / or areas of various surfaces, etc., are also possible and may further affect the shape and size of the upper surface 174 of the leading face 170 and / or forward axial face 194. The example values of such parameters provided herein are merely illustrative of some of the many possible embodiments according to the present disclosure.
[0034] Referring to FIG. 6 , a schematic diagram of a portion of a multi-shaft combined cycle power plant 900 in which turbine blades 140 may be deployed is shown. The combined cycle power plant 900 may include, for example, a gas turbine 980 operably connected to a generator 970. The generator 970 and the gas turbine 980 may be mechanically coupled by a shaft 915, which may transfer energy from a drive shaft (not shown) of the gas turbine 980 to the generator 970. Also shown in FIG. 6 is a heat exchanger 986 operably connected to the gas turbine 980 and a steam turbine 992. The heat exchanger 986 may be fluidly connected to both the gas turbine 980 and the steam turbine 992 via conventional conduits (numbering omitted). The gas turbine 980 and / or the steam turbine 992 may include one or more turbine blades 140 as shown and described with reference to FIGS. 2 , 4 , and 5 , and / or other embodiments described herein. Heat exchanger 986 may be a conventional heat recovery steam generator (HRSG), such as those used in conventional combined cycle power generation systems.
[0035] As is known in the power generation art, heat exchanger 986 may use hot exhaust from gas turbine 980 combined with feedwater to generate steam that is supplied to steam turbine 992. Steam turbine 992 may optionally be coupled to a second generator system 970 (via a second shaft 915). It is understood that generator 970 and shaft 915 may be of any size or type known in the art and may vary depending on their application or the system to which they are connected. The common reference numbers for the generator and shaft are for clarity and do not necessarily imply that the generators or shafts are identical. In a further embodiment, single-shaft combined cycle power plant 900 may include a single generator 970 (not shown) coupled to both gas turbine 980 and steam turbine 992 via a single shaft 915 (not shown). Steam turbine 992 and / or gas turbine 980 may include one or more turbine blades 140 as shown and described with reference to FIGS. 2, 4, and 5, and / or other embodiments described herein.
[0036] The apparatus and devices of the present disclosure are not limited to any one particular engine, turbine, jet engine, generator, power generation system, or other system, but may be used with aircraft systems, other power generation systems (e.g., combined cycle, simple cycle), and / or other systems (e.g., nuclear reactors, etc.) In addition, the apparatus of the present disclosure may be used with other systems not described herein that can benefit from the increased efficiency of the apparatus and devices described herein.
[0037] In various embodiments, components described as being "bonded" to one another may be joined along one or more interfaces. In some embodiments, these interfaces may include joints between separate components, while in other cases, these interfaces may include rigidly and / or integrally formed interconnections. That is, in some cases, components "bonded" to one another may be formed simultaneously to define a single, continuous member. However, in other embodiments, these bonded components may be formed as separate members and then joined by known processes (e.g., fastening, ultrasonic welding, adhesive bonding).
[0038] As used herein, the singular forms "a," "an," and "the" are intended to include the plural forms as well, unless the context clearly dictates otherwise. It will be further understood that the terms "comprise" and / or "comprising," as used herein, specify the presence of stated features, integers, steps, operations, elements, and / or components, but do not exclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and / or sets thereof.
[0039] This written description uses examples to disclose the invention, including the best mode, and to enable any person skilled in the art to practice the invention, including making and using any devices or systems and performing any related or incorporated methods. The patentable scope of the invention is defined by the claims, and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims if they have structural elements that do not differ from the literal language of the claims, or if they include equivalent structural elements that do not differ substantially from the literal language of the claims. [Explanation of symbols]
[0040] 10. Gas turbine 20 First stage nozzle 22 Second stage nozzle 26 Wheel Space 28 Hot gas flow path 30 Nozzle surface 32 Blocking member 40 turbine blades 42 Platform 44 Platform Lip 50 Airfoil 60 Shank part 70 Sealing member 72 Sealing member 74 Sealing member 140 Turbine Blade / Blade Structure 142 Platform 150 Airfoil 152 leading edge 154 Trailing edge 160 fluid flow path 160a upstream part 160b downstream part 170 Front side 172 Sealing member 174 Upper surface 176 Top surface 178 Platform Space 180 Buffer space 182 Wheel Space 184 Sealing member 190 Front 192 Upper surface 194 Anterior axial plane 900 Combined Cycle Power Plant 915 shaft / second shaft 970 Generator / Second Generator System 980 Gas Turbine 986 Heat exchanger 992 Steam Turbine C Circumferential axis J Centerline axis K centerline axis N nodule R Radial Axis / Radial Z axis PA Purge Air PS pressure side surface SS negative pressure side surface
Claims
1. A turbine blade (140), comprising: a platform (142); an airfoil (150) extending radially outward from the platform (142) and configured to extend into a fluid flow path (160), the airfoil (150) separating an upstream portion (160a) of the fluid flow path (160) from a downstream portion (160b) of the fluid flow path; a sealing member (172) extending axially from the platform (142) toward a stationary nozzle adjacent the platform (142), the sealing member (172) separating the fluid flow path (160) from a wheel space (182); a forward surface (170) on the platform (142) between the sealing member (172) and the airfoil (150), the forward surface (170) facing axially toward the upstream portion (160a) of the fluid flow path (160); a forward axial surface (194) on said platform (142) extending from an upper surface (174) of said forward face (170) to said sealing member (172); Equipped with the circumferential profile of the upper surface (174) of said forward face (170) is non-axisymmetric about the centerline axis (J) of said forward face (170); and the axial profile of the forward axial surface (194) is non-axisymmetric about the centerline axis (J) of the forward surface (170); A turbine blade (140).
2. 2. The turbine blade of claim 1, wherein the forward face of the platform between the sealing member and the platform of the airfoil defines a platform space of the fluid flow path axially between the platform and the stationary nozzle.
3. 2. The turbine blade of claim 1, further comprising a buffer space defined between the fluid flow path and the wheel space, wherein the sealing member radially separates the forward face of the platform from the wheel space and the buffer space.
4. 2. The turbine blade of claim 1, wherein the upper surface of the forward face includes a radial trough positioned farther from the airfoil than a radial peak of the upper surface.
5. The turbine blade (140) of claim 1, wherein the forward axial surface (194) is a raised portion axially located between a portion of the airfoil (150) and the sealing member (172).
6. The turbine blade (140) of any preceding claim, wherein the forward face (170) is adjacent a purged air cooling space adjacent the turbine blade (140).
7. The turbine blade (140) of claim 1, wherein a leading edge (152) of the airfoil (150) faces axially toward the forward face (170).
8. 2. The turbine blade of claim 1, further comprising a front face on the platform axially opposite the forward face and axially facing the downstream portion of the fluid flow path, wherein a circumferential profile of an upper surface of the front face is axisymmetric about a centerline axis of the front face.
9. A gas turbine (10) comprising a turbine blade according to any one of claims 1 to 8.
Citation Information
Patent Citations
Flow path for compressor with flute
JP2001271792A
Wall of turbo machine, and turbo machine
JP2008248701A
Bank-type platform turbine blades
JP2012511653A
Turbine bucket platform for controlling incursion losses
JP2016160935A
Axial flow turbine
JP2020139464A