CROSS-REFERENCE TO RELATED APPLICATIONS
FIELD
[0002] The present disclosure relates generally to components for a gas turbine engine,
and more particularly to blade elements including cross-ties.
BACKGROUND
[0003] A gas turbine engine typically includes one or more blades in each of the compressor
and turbine sections of the engine. These components are exposed to high-speed air/gas
flow during operation. In addition, gas turbine engine components are exposed to high
temperatures. As such, airfoils are typically provided with cooling channels (see,
for example,
EP 1431514,
US 7780414 and
US 4278400). Airfoil structures experience high levels of stress during operation which may
limit component operation life (see, for example,
US 2005/0084380). There exists a desire to extend the operational life of components.
[0004] Manufacturing of airfoil components can include using ceramic cores to form passages
in airfoils. Conventional methods include the use of stiffening rods to supporting
cast elements. These rods are removed with cast elements during manufacture of the
component. Accordingly, there rods do not provide structural support during operation.
[0005] While there have been approaches to fabricating components, there is a need in the
art to extend component life and improve integrity.
BRIEF SUMMARY OF THE EMBODIMENTS
[0006] Disclosed and claimed herein are blade elements and methods for making blade elements
including cross-ties. In one embodiment, a blade element for a gas turbine engine
includes a first inner surface of the blade element, wherein the first inner surface
is associated with a first outer blade surface of the blade element, and a second
inner surface of the blade element, wherein the second inner surface is associated
with a second outer blade surface of the blade element and wherein the second inner
surface is opposite from the first inner surface. The blade element also includes
a cross-tie configured to connect the first inner surface to the second inner surface,
wherein the cross-tie is positioned along a trailing edge of the blade element and
the cross-tie is positioned and configured to reduce vibration mode effects of the
blade element reducing the stress and/or strain associated with a vibration mode of
the blade element. The cross-tie includes a first portion blended to the first inner
surface, a second portion blended to the second inner surface, and a non-circular
cross-section between the first and second portions, the non-circular cross-section
is reduced in size relative to the first and second portions of the cross-tie, and
is also formed to include a non-circular blend between first and second portions of
the cross-tie blended to blade surfaces.
[0007] According to another embodiment, a method for manufacturing a blade element of a
gas turbine engine includes forming a first blade surface of the blade element, wherein
the first blade surface includes a first inner surface, and forming a second blade
surface of the blade element, wherein the second blade surface includes a second inner
surface and wherein the second inner surface is opposite from the first inner surface.
The method also includes forming a cross-tie configured to connect the first inner
surface to the second inner surface along a trailing edge of the blade element, wherein
the cross-tie is positioned and configured to stress and/or strain associated with
a vibration mode of the blade element. The cross-tie includes a first portion blended
to the first inner surface, a second portion blended to the second inner surface,
and a non-circular cross-section between the first and second portions, the non-circular
cross-section is reduced in size relative to the first and second portions of the
cross-tie, and is also formed to include a non-circular blend between first and second
portions of the cross-tie blended to blade surfaces.
[0008] Other aspects, features, and techniques will be apparent to one skilled in the relevant
art in view of the following detailed description of the embodiments.
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The features, objects, and advantages of the present disclosure will become more
apparent from the detailed description set forth below when taken in conjunction with
the drawings in which like reference characters identify correspondingly throughout
and wherein:
FIGS. 1A-1C depict graphical representations of a blade element according to one or
more embodiments;
FIG. 2A depicts a graphical representation of a blade element cross-tie according
to one or more embodiments;
FIG. 2B depicts a cross-sectional view of the cross-tie of FIG. 2A according to one
or more embodiments;
FIG. 3 depicts a graphical representation of a blade element cast according to one
or more embodiments; and
FIG. 4 depicts a process for manufacturing a blade element according to one or more
embodiments.
DETAILED DESCRIPTION OF THE EXEMPLARY EMBODIMENTS
Overview and Terminology
[0010] One aspect of the disclosure relates to blade elements for a gas turbine engine.
According to one embodiment, a blade element, such as fan blades, turbine blades and
vanes, may be provided including one or more cross-ties. As used herein, a cross-tie
is a structural element configured to provide rigidity to an interior passage or hollow
section of a blade element. According to one or more embodiments, each cross-tie may
have a curved profile with surface blended to inner walls of a blade element. According
to another embodiment cross-ties may include a non-circular cross section. Cross-ties
may be placed and configured to provide support and rigidity to unsupported areas
of a blade element. Cross-ties may additionally allow for internal connections within
a blade element without restricting airflow or changing heat transfer of the blade
element.
[0011] Another aspect of the disclosure is directed to manufacturing blade elements to include
one or more cross-ties. According to one embodiment, a cast having positives and negatives
may be formed for manufacturing a blade element having one or more cross-ties.
[0012] As used herein, the terms "a" or "an" shall mean one or more than one. The term "plurality"
shall mean two or more than two. The term "another" is defined as a second or more.
The terms "including" and/or "having" are open ended (e.g., comprising). The term
"or" as used herein is to be interpreted as inclusive or meaning any one or any combination.
Therefore, "A, B or C" means "any of the following: A; B; C; A and B; A and C; B and
C; A, B and C". An exception to this definition will occur only when a combination
of elements, functions, steps or acts are in some way inherently mutually exclusive.
[0013] Reference throughout this document to "one embodiment," "certain embodiments," "an
embodiment," or similar term means that a particular feature, structure, or characteristic
described in connection with the embodiment is included in at least one embodiment.
Thus, the appearances of such phrases in various places throughout this specification
are not necessarily all referring to the same embodiment. Furthermore, the particular
features, structures, or characteristics may be combined in any suitable manner on
one or more embodiments without limitation.
[0014] Referring now to the figures, FIGS. 1A-1C depict graphical representations of a blade
element according to one or more embodiments. Referring first to FIG. 1A, blade element
100 is shown including leading edge 105, blade surface 106 (e.g., a first blade surface)
and trailing edge 110. Blade element 100 may be one of a turbine blade, fan blade,
vane, and gas turbine engine component. FIG. 1A depicts blade element 100 including
base structure 120.
[0015] According to one embodiment, blade element 100 may include one or more cross-ties
configured to connect a first blade surface, such as an inner surface of blade surface
106, to a second inner blade surface. By way of example, cross-ties may connect inner
surfaces of the blade element. Cross-ties may be positioned near and/or along trailing
edge 110 of blade element 100, wherein the cross-tie is positioned and configured
to reduce vibration mode effects of the blade element 100. As discussed herein, vibration
mode effects can relate to one or more of blade surface stress, blade surface strain,
vibratory stress, vibratory strain, and blade deformation. Cross-ties may be configured
to provide stiffening to reduce one or more of the vibratory effects. It should be
appreciated that the frequency of vibratory stress may be driven up or down. While
stress should be generally reduced everywhere in blade element 100, there are situations
where the vibratory frequency needs to be driven upward. Thus, cross-ties as discussed
herein may be configured to reduce stress and/or strain associated with the vibratory
mode of a blade element.
[0016] In one embodiment, cross-ties of blade element 100 are positioned between 20-90%
of a span length, shown generally as area 115 in FIG. 1A, of blade element 100. The
trailing edge portion of the blade may relate to portions of the blade element 100
near trailing edge 110. Blade element 100 may include a plurality of cross-ties along
the trailing edge 110 in area 115. Each cross-tie may be formed integrally with an
inner surface of blade element 100 within a particular area shown as section 116.
Section or area 116 is shown in more detail with respect to FIGS. 2A-2B. In some embodiments,
cross-ties may be positioned in other portions of blade element 100.
[0017] FIG. 1B depicts a top down representation of blade element 100. As shown in FIG.
1B, blade element 100 includes a first blade surface of the blade element, blade surface
106 with corresponding first inner surface 108, and a second blade surface, blade
surface 107 with corresponding second inner surface 109. Blade surface 108 is opposite
from blade surface 109, wherein the blade surfaces are between leading edge 105 and
trailing edge 110. In one embodiment, blade surface 108 is opposite from blade surface
109 meaning the surfaces are on opposing ends of an interior portion. It can be appreciated
that surfaces 108 and 109 may be parallel, substantially parallel, or not parallel.
It can also be appreciated that surfaces 108 and 109 may not correspond to the surface
shape characteristics of surfaces 106 and 107. By way of example, while surfaces 106
and 107 may be smooth, surfaces 108 and 109 may be formed on one or more protrusions
of other interior features of a blade element. As further depicted in FIG. 1B, blade
element 100 includes a representation of cross-tie 130
1. Cross-tie 130
1 is configured to connect blade surface 106 to blade surface 107. Cross-tie 130
1 is positioned near trailing edge 110 of blade element 100. Cross-tie 130
1 may be configured to reduce vibration mode of blade element 100 by providing increased
stiffness for walls of the blade element.
[0018] FIG. 1C depicts a cut-away representation of blade element 100. According to one
embodiment, blade element 100 may include cooling area 125 to provide cooling air/air
flow for cooling blade element 100. Cooling area 125 may be one or more hollow sections
of blade element 100. Cross-ties 130
1-n are shown relative to inner surface 109 and near trailing edge 110. In certain embodiments,
cross-ties 130
1-n may be positioned to provide structural integrity without restricting airflow.
[0019] FIG. 2A depicts a graphical representation of a blade element cross-tie according
to one or more embodiments. In FIG. 2A, section 200 of a blade element (e.g., blade
element 100) includes cross-tie 205. Cross-tie 205 includes a first portion blended
to an inner wall of blade surface 206, a second portion blended to an inner wall of
blade surface 207, and a non-circular cross-section 210 between the first and second
portions. As shown in FIG. 2A, non-circular cross-section 210 is reduced in size relative
to the first and second portions of the cross-tie blended to blade surfaces. Cross-tie
205 may be configured to provide a connection between surfaces 206 and 207 and provide
both in-plane (shear) and out-of-plane (compressive/tensile) support. By providing
stiffening, cross-tie 205 can reduce the extent to which surfaces 206 and 207 participate
in the vibration mode of the blade element.
[0020] FIG. 2B depicts a cross-sectional view of the cross-tie of FIG. 2A according to one
or more embodiments. Blade element section 250 is a cross sectional view along reference
line A-A of FIG. 2A, which is associated with the central axis of the cross-tie 205.
As shown in FIG. 2A, cross-tie 205 is formed to include a non-circular blend between
first and second portions of the cross-tie blended to blade surfaces. Non-circular
curved/bending is shown by arcs 255, 260, 265 and 270. Cross-tie 205 includes a long
axis oriented with the direction of centrifugal pull of a blade element (e.g., blade
element 105). According to one embodiment, cross-tie 205 increases stability of the
blade element by supporting the first and second blade element surfaces in a hollow
section of the blade element. Cross-tie 205 may be configured to provide in-plane
and out-of-plane support for the blade element. In-plane support provided by the blade
element may relate support along an axis of cross-tie 205, while out-of-plane support
may relate to support for vibratory and steady state stress of the blade element in
general.
[0021] FIG. 3 depicts a graphical representation of a blade element cast according to one
or more embodiments. According to one embodiment, blade elements (e.g., blade element
100) may be cast to include one or more cross-ties. Cast 300 is a simplified representation
of a cast element including negatives and positives that may be employed to fabricate
a blade element as described herein. As shown in FIG. 3, cast 300 includes a plurality
of negatives, shown as 305
1-n, to allow for cross-ties to be formed. Cast 300 also includes a plurality of positives,
shown as 310
1-n, to allow for cooling passages to be formed.
[0022] FIG. 4 depicts a process for manufacturing a blade element (e.g., blade element 100)
according to one or more embodiments. Process 400 may be initiated at block 405 with
determining one or more cross-tie locations for a blade element. By way of example,
modelling of a blade element may indicate one or more locations where additional stiffness
or an internal connection is required. In certain embodiments, determining one or
more cross-tie locations for the blade element includes modelling a blade element
for one or more of vibratory frequency, vibratory mode shape and vibratory stress.
[0023] At block 410, a cast (e.g., cast 300) for the blade element may be generated. According
to one embodiment, a cast may be formed at block 410 to include one or more negatives
and positives, to form cross-ties and cooling paths.
[0024] Process 400 may continue to block 415 to fabricate a blade element based on the cast
generated at block 410 to include one or more cross-ties. In one embodiment, fabricating
a blade element of a gas turbine engine at block 415 includes forming a first blade
surface of the blade element, and forming a second blade surface of the blade element,
wherein the second blade surface is opposite from the first blade surface. Fabricating
a blade element of a gas turbine engine at block 415 may also include forming one
or more cross-ties configured to connect the inner surface of a first blade surface
to the inner surface of a second blade surface on a trailing edge of the blade element.
Forming cross-ties at block 415 can include forming a plurality of cross-ties along
the trailing edge of the blade element.
[0025] While this disclosure has been particularly shown and described with references to
exemplary embodiments thereof, it will be understood by those skilled in the art that
various changes in form and details may be made therein without departing from the
scope of the claimed embodiments.
1. A blade element (100) for a gas turbine engine, the blade element (100) comprising:
a first inner surface (108) of the blade element, wherein the first inner surface
(108) is associated with a first outer blade surface (106) of the blade element;
a second inner surface (109) of the blade element, wherein the second inner surface
(109) is associated with a second outer blade surface (107) of the blade element and
wherein the second inner surface (109) is opposite from the first inner surface (108);
and
a cross-tie (130;205) configured to connect the first inner surface (108) to the second
inner surface (109), wherein the cross-tie (130;205) is positioned along a trailing
edge (110) of the blade element and the cross-tie (130;205) is positioned and configured
to reduce vibration mode effects of the blade element (100) reducing the stress and/or
strain associated with a vibration mode of the blade element;
wherein the cross-tie (130;205) includes a first portion blended to the first inner
surface, a second portion blended to the second inner surface, and a non-circular
cross-section (210) between the first and second portions, the non-circular cross-section
(210) being reduced in size relative to the first and second portions of the cross-tie
(130;205), and also being formed to include a non-circular blend between first and
second portions of the cross-tie blended to blade surfaces.
2. The blade element (100) of claim 1, wherein the cross-tie (130;205) includes a long
axis oriented with the direction of centrifugal pull of the blade element.
3. The blade element (100) of claim 1 or claim 2, wherein the cross-tie (130;205) increases
stability of the blade element by supporting the first and second blade element surfaces
in a hollow section of the blade element.
4. The blade element (100) of any preceding claim, wherein the second inner surface (109)
is opposite from the first inner surface (108) within at least one of cooling passage
and hollow portion of the blade element.
5. The blade element (100) of any preceding claim, wherein vibration mode effects include
at least one of blade surface stress, blade surface strain, vibratory stress, vibratory
strain, and blade deformation.
6. The blade element (100) of any preceding claim, wherein said blade element includes
a plurality of cross-ties (130;205) along the trailing edge (110) of the blade element.
7. The blade element (100) of claim 6, wherein cross-ties (130;205) of the blade element
are positioned between 20 - 90% of a span length of the blade element.
8. A method for fabricating a blade element (100) of a gas turbine engine, as claimed
in any of claims 1, 2, 6 and 7, the method comprising:
forming a first blade surface (106) of the blade element, wherein the first blade
surface includes the first inner surface (108);
forming a second blade surface (107) of the blade element, wherein the second blade
surface includes the second inner surface (109) and wherein the second inner surface
(109) is opposite from the first inner surface (108); and
forming the cross-tie (130;205) configured to connect the first inner surface (108)
to the second inner surface (109) along a trailing edge (110) of the blade element,
wherein the cross-tie (130;205) is positioned and configured to reduce vibration mode
effects of the blade element (100) reducing the stress and/or strain associated with
a vibration mode of the blade element (100);
wherein the cross-tie (130;205) includes a first portion blended to the first inner
surface, a second portion blended to the second inner surface, and a non-circular
cross-section (210) between the first and second portions, the non-circular cross-section
(210) being reduced in size relative to the first and second portions of the cross-tie
(130;205), and also being formed to include a non-circular blend between first and
second portions of the cross-tie blended to blade surfaces.
9. The method of claim 8, wherein the cross-tie (130;205) increases stability of the
blade element (100) by supporting the first and second blade element surfaces in at
least one of a cooling passage and hollow portion of the blade element.
10. The method of claim 8 or claim 9, wherein forming cross-ties (130;205) includes forming
a plurality of cross-ties along the trailing edge (110) of the blade element (100).
11. The method of any of claims 8 to 10, further comprising determining one or more cross-tie
locations for the blade element (100).
12. The method of claim 11, wherein determining one or more cross-tie locations for the
blade element (100) includes modelling a blade element for one or more of vibratory
frequency, vibratory mode shape and vibratory stress.
1. Schaufelelement (100) für ein Gasturbinentriebwerk, wobei das Schaufelelement (100)
Folgendes umfasst:
eine erste Innenfläche (108) des Schaufelelements, wobei die erste Innenfläche (108)
mit einer ersten Schaufelaußenfläche (106) des Schaufelelements verbunden ist;
eine zweite Innenfläche (109) des Schaufelelements, wobei die zweite Innenfläche (109)
mit einer zweiten Schaufelaußenfläche (107) des Schaufelelements verbunden ist und
wobei die zweite Innenfläche (109) der ersten Innenfläche (108) gegenüberliegt; und
eine Querstrebe (130; 205), die dazu konfiguriert ist, die erste Innenfläche (108)
mit der zweiten Innenfläche (109) zu verbinden, wobei die Querstrebe (130; 205) entlang
einer Hinterkante (110) des Schaufelelements angeordnet ist und die Querstrebe (130;
205) dazu angeordnet und konfiguriert ist, dass sie Schwingungsformauswirkungen des
Schaufelelements (100) verringert, was die Belastung und/oder Beanspruchung in Verbindung
mit einer Schwingungsform des Schaufelelements verringert;
wobei die Querstrebe (130; 205) einen ersten Abschnitt, der in die erste Innenfläche
übergeht, einen zweiten Abschnitt, der in die zweite Innenfläche übergeht, und einen
nicht kreisförmigen Querschnitt (210) zwischen dem ersten und dem zweiten Abschnitt
beinhaltet, wobei der nicht kreisförmige Querschnitt (210) relativ zum ersten und
zum zweiten Abschnitt der Querstrebe (130; 205) in der Größe verringert ist und auch
so ausgebildet ist, dass er einen nicht kreisförmigen Übergang zwischen dem ersten
und dem zweiten Abschnitt der Querstrebe, die in die Schaufelflächen übergehen, beinhaltet.
2. Schaufelelement (100) nach Anspruch 1, wobei die Querstrebe (130; 205) eine Längsachse
beinhaltet, die mit der Richtung der zentrifugalen Zugkraft des Schaufelelements ausgerichtet
ist.
3. Schaufelelement (100) nach Anspruch 1 oder Anspruch 2, wobei die Querstrebe (130;
205) die Stabilität des Schaufelelements erhöht, indem sie die erste und die zweite
Schaufelelementfläche in einem Hohlprofil des Schaufelelements unterstützt.
4. Schaufelelement (100) nach einem der vorstehenden Ansprüche, wobei die zweite Innenfläche
(109) gegenüber der ersten Innenfläche (108) innerhalb mindestens eines aus einem
Kühlkanal und einem Hohlprofil des Schaufelelements liegt.
5. Schaufelelement (100) nach einem der vorstehenden Ansprüche, wobei Schwingungsformauswirkungen
mindestens eines aus Schaufeloberflächenspannung, Schaufeloberflächendehnung, Schwingungsbeanspruchung,
Schwingungsdehnung und Schaufelverformung beinhalten.
6. Schaufelelement (100) nach einem der vorstehenden Ansprüche, wobei das Schaufelelement
eine Vielzahl von Querstreben (130; 205) entlang der Hinterkante (110) des Schaufelelements
beinhaltet.
7. Schaufelelement (100) nach Anspruch 6, wobei Querstreben (130; 205) des Schaufelelements
zwischen 20 - 90 % einer Höhenlänge des Schaufelelements angeordnet sind.
8. Verfahren zum Herstellen eines Schaufelelements (100) eines Gasturbinentriebwerks
nach einem der Ansprüche 1, 2, 6 und 7, wobei das Verfahren Folgendes umfasst:
Herstellen einer ersten Schaufelfläche (106) des Schaufelelements, wobei die erste
Schaufelfläche die erste Innenfläche (108) beinhaltet;
Herstellen einer zweiten Schaufelfläche (107) des Schaufelelements, wobei die zweite
Schaufelfläche die zweite Innenfläche (109) beinhaltet und wobei die zweite Innenfläche
(109) der ersten Innenfläche (108) gegenüberliegt; und
Herstellen der Querstrebe (130; 205), die dazu konfiguriert ist, die erste Innenfläche
(108) mit der zweiten Innenfläche (109) entlang einer Hinterkante (110) des Schaufelelements
zu verbinden, wobei die Querstrebe (130; 205) dazu angeordnet und konfiguriert ist,
dass sie Schwingungsformauswirkungen des Schaufelelements (100) verringert, was die
Belastung und/oder Beanspruchung in Verbindung mit einer Schwingungsform des Schaufelelements
(100) verringert;
wobei die Querstrebe (130; 205) einen ersten Abschnitt, der in die erste Innenfläche
übergeht, einen zweiten Abschnitt, der in die zweite Innenfläche übergeht, und einen
nicht kreisförmigen Querschnitt (210) zwischen dem ersten und dem zweiten Abschnitt
beinhaltet, wobei der nicht kreisförmige Querschnitt (210) relativ zum ersten und
zum zweiten Abschnitt der Querstrebe (130; 205) in der Größe verringert ist und auch
so ausgebildet ist, dass er einen nicht kreisförmigen Übergang zwischen dem ersten
und dem zweiten Abschnitt der Querstrebe, die in die Schaufelflächen übergehen, beinhaltet.
9. Verfahren nach Anspruch 8, wobei die Querstrebe (130; 205) die Stabilität des Schaufelelements
(100) erhöht, indem sie die erste und die zweite Schaufelelementfläche in mindestens
einem aus einem Kühlkanal und einem Hohlprofil des Schaufelelements unterstützt.
10. Verfahren nach Anspruch 8 oder Anspruch 9, wobei das Herstellen von Querstreben (130;
205) das Herstellen einer Vielzahl von Querstreben entlang der Hinterkante (110) des
Schaufelelements (100) beinhaltet.
11. Verfahren nach einem der Ansprüche 8 bis 10, ferner umfassend das Ermitteln einer
oder mehrerer Querstrebenpositionen für das Schaufelelement (100).
12. Verfahren nach Anspruch 11, wobei das Ermitteln einer oder mehrerer Querstrebenpositionen
für das Schaufelelement (100) das Modellieren eines Schaufelelement hinsichtlich eines
oder mehrerer aus Schwingungsfrequenz, Schwingungsformgestalt und Schwingungsbeanspruchung
beinhaltet.
1. Élément de pale (100) pour un moteur à turbine à gaz, l'élément de pale (100) comprenant
:
une première surface interne (108) de l'élément de pale, dans lequel la première surface
interne (108) est associée à une première surface de pale externe (106) de l'élément
de pale ;
une seconde surface interne (109) de l'élément de pale, dans lequel la seconde surface
interne (109) est associée à une seconde surface de pale externe (107) de l'élément
de pale et dans lequel la seconde surface interne (109) est opposée à la première
surface interne (108) ; et
une traverse (130 ; 205) configurée pour relier la première surface interne (108)
à la seconde surface interne (109), dans lequel la traverse (130 ; 205) est positionnée
le long d'un bord de fuite (110) de l'élément de pale et la traverse (130 ; 205) est
positionnée et configurée pour réduire les effets de mode de vibration de l'élément
de pale (100) en réduisant la contrainte et/ou la déformation associée à un mode de
vibration de l'élément de pale ;
dans lequel la traverse (130 ; 205) comporte une première partie associée à la première
surface interne, une seconde partie associée à la seconde surface interne, et une
section transversale non circulaire (210) entre les première et seconde parties, la
section transversale non circulaire (210) étant de taille réduite par rapport aux
première et seconde parties de la traverse (130 ; 205), et étant également formée
pour inclure un assemblage non circulaire entre les première et seconde parties de
la traverse associées aux surfaces de pale.
2. Élément de pale (100) selon la revendication 1, dans lequel la traverse (130 ; 205)
comporte un axe long orienté dans la direction de traction centrifuge de l'élément
de pale.
3. Élément de pale (100) selon la revendication 1 ou la revendication 2, dans lequel
la traverse (130 ; 205) augmente la stabilité de l'élément de pale en supportant les
première et seconde surfaces de l'élément de pale dans une section creuse de l'élément
de pale.
4. Élément de pale (100) selon une quelconque revendication précédente, dans lequel la
seconde surface interne (109) est opposée à la première surface interne (108) à l'intérieur
d'au moins l'un d'un passage de refroidissement et d'une partie creuse de l'élément
de pale.
5. Élément de pale (100) selon une quelconque revendication précédente, dans lequel les
effets de mode de vibration comportent au moins l'un de la contrainte de surface de
pale, de la déformation de surface de pale, de la contrainte vibratoire, de la déformation
vibratoire et de la déformation de pale.
6. Élément de pale (100) selon une quelconque revendication précédente, dans lequel ledit
élément de pale comporte une pluralité de traverses (130 ; 205) le long du bord de
fuite (110) de l'élément de pale.
7. Élément de pale (100) selon la revendication 6, dans lequel les traverses (130 ; 205)
de l'élément de pale sont positionnées entre 20 et 90 % d'une longueur d'envergure
de l'élément de pale.
8. Procédé de fabrication d'un élément de pale (100) d'un moteur à turbine à gaz, selon
l'une quelconque des revendications 1, 2, 6 et 7, le procédé comprenant :
la formation d'une première surface de pale (106) de l'élément de pale, dans lequel
la première surface de pale comporte la première surface intérieure (108) ;
la formation d'une seconde surface de pale (107) de l'élément de pale, dans lequel
la seconde surface de pale comporte la seconde surface interne (109) et dans lequel
la seconde surface interne (109) est opposée à la première surface interne (108) ;
et
la formation d'une traverse (130 ; 205) configurée pour relier la première surface
interne (108) à la seconde surface interne (109) le long d'un bord de fuite (110)
de l'élément de pale, dans lequel la traverse (130 ; 205) est positionnée et configurée
pour réduire les effets de mode de vibration de l'élément de pale (100) en réduisant
la contrainte et/ou la déformation associées à un mode de vibration de l'élément de
pale (100) ;
dans lequel la traverse (130 ; 205) comporte une première partie associée à la première
surface interne, une seconde partie associée à la seconde surface interne, et une
section transversale non circulaire (210) entre les première et seconde parties, la
section transversale non circulaire (210) étant de taille réduite par rapport aux
première et seconde parties de la traverse (130 ; 205), et étant également formée
pour inclure un assemblage non circulaire entre les première et seconde parties de
la traverse associées aux surfaces de pale.
9. Procédé selon la revendication 8, dans lequel la traverse (130 ; 205) augmente la
stabilité de l'élément de pale (100) en supportant les première et seconde surfaces
de l'élément de pale dans au moins l'un d'un passage de refroidissement et d'une partie
creuse de l'élément de pale.
10. Procédé selon la revendication 8 ou la revendication 9, dans lequel la formation de
traverses (130 ; 205) comporte la formation d'une pluralité de traverses le long du
bord de fuite (110) de l'élément de pale (100).
11. Procédé selon l'une quelconque des revendications 8 à 10, comprenant en outre la détermination
d'un ou de plusieurs emplacements de traverse pour l'élément de pale (100).
12. Procédé selon la revendication 11, dans lequel la détermination d'un ou de plusieurs
emplacements de traverse pour l'élément de pale (100) comporte la modélisation d'un
élément de pale pour l'une ou plusieurs d'une fréquence de vibration, d'une forme
de mode vibratoire et d'une contrainte vibratoire.