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EP 1 564 377 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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07.04.2010 Bulletin 2010/14 |
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Date of filing: 26.01.2005 |
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International Patent Classification (IPC):
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Rotor blade and rotor disc for a gas turbine engine with a reduced coefficient of
friction at the blade and disc interface
Gasturbinen-schaufel und -rotorscheibe mit einem reduzierten Reibungskoeffizient an
der Schaufel- und Rotorscheibe-grenzfläche
Aube et disque rotorique d'une turbine à gaz ayant un coefficient de friction réduit
à l'interface entre l'aube et le disque rotorique
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Designated Contracting States: |
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DE FR GB |
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Priority: |
12.02.2004 GB 0403064
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Date of publication of application: |
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17.08.2005 Bulletin 2005/33 |
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Proprietor: ROLLS-ROYCE PLC |
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London, SW1E 6AT (GB) |
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Inventor: |
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- Goldfinch, Keith Christopher
Clifton
Bristol
BS8 4TE (GB)
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Representative: Tindall, Adam et al |
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Rolls Royce plc
P.O. Box 3 Filton
Bristol
BS34 7QE Filton
Bristol
BS34 7QE (GB) |
| (56) |
References cited: :
EP-A- 0 496 503 US-A- 4 169 694 US-A- 5 846 054
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US-A- 3 809 495 US-A- 5 264 295
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
[0001] This invention relates to gas turbine engine rotor blades, discs and bladed discs,
and in particular concerns the attachment of rotor blades in blade fixing slots in
rotor discs.
[0002] Single tooth attachments, or dovetail attachments, are commonly used to secure fan
and/or compressor blades to discs in gas turbine engines. Dovetail shaped blade roots
are located in similarly shaped slots circumferentially spaced around the rim of the
rotor disc. The dovetail attachment reacts the centrifugal force generated by the
blade during engine operation by contact with the disc on flat bearing surfaces, commonly
referred to as "flanks".
[0003] Dovetail root cracking is a common occurrence in gas turbine engines due to high
stress concentrations at the upper edge of contact (EOC) which are not adequately
predicted by known finite element methods due to the extremely high stress gradients
present at the edge of contact. Other factors that contribute to dovetail cracking
include high coefficients of friction at the contact surfaces, high frequency blade
excitation (high cycle fatigue) and fretting due to movement of the contact surfaces
of the dovetail attachment. Dry-film-lubricant (DFL) is commonly applied to the contact
surfaces of the dovetail attachment, principally to reduce fretting but also to reduce
the coefficient of friction at the contact surfaces. Dry-film-lubricants have a tendency
to degrade relatively quickly in gas turbine engine applications due to heavy loading
and wear, with the rate of wear varying along the length of the dovetail contact surfaces.
European Patent Application No. 0496503A1 (General Electric) describes the application of a dry film lubricant to the full
length of the slots and roots of a titanium alloy turbine rotor assembly.
[0005] There is a requirement to reduce the incidents of dovetail root cracking in fan and
compressor blades in gas turbine engine applications, or other load bearing surfaces
where the contact surfaces are subject to both steady state and dynamic contact stresses
during operation.
[0006] According to an aspect of the invention there is provided a load bearing component
for a gas turbine engine comprising at least one load bearing surface, characterised
in that a dry film lubricant coating is provided on selected area(s) of the bearing
surface with the remaining area(s) of said bearing surface being substantially free
of the said coating, the selected area(s) of coating being distributed in a predetermined
pattern produced by determining the distribution of steady and cyclic stresses acting
on the said bearing surface of the uncoated component under engine operating conditions,
determining the stress ratio distribution for the said uncoated surface under the
said operating conditions, and applying a dry film lubricant coating to area(s) of
the bearing surface having a stress ratio above a pre-determined stress ratio threshold
value.
[0007] According to another aspect of the invention which however is not claimed there is
provided a rotor disc for a gas turbine engine, the disc having a plurality of blade
root fixing slots circumferentially spaced around the rim of the disc for fixing respective
blades to the disc; each slot having at least one bearing surface on each side of
the slot for contact with corresponding surfaces on opposite flanks of a blade, wherein
at least one selected area of the bearing surface of each slot which, in operation,
is an area of alternating stress greater than about 50 MPa (peak to peak), is configured
to have a co-efficient of friction lower than the remainder of the slot surface.
[0008] The present invention is based on observations that a relationship exists between
the coefficient of friction of the bearing surfaces and blade root steady stresses
with high blade root friction resulting in high steady stresses. The present inventor
has demonstrated that where the coefficient of friction varies along the contact surfaces
of the dovetail root, due to degradation of a dry-film-lubricant applied to the surfaces,
the areas having a relatively high coefficient of friction are more highly loaded
than areas where the lubricant is not degraded and where a relatively low coefficient
of a friction exists. Where the coefficient of friction varies along the length of
the dovetail contact surfaces the areas of high coefficient of friction take proportionately
more load in terms of steady stress than areas of low coefficient of friction, effectively
off loading the areas having a low coefficient of friction. In comparison, however,
dynamic loads resulting in cyclic stresses on the contact surfaces are substantially
independent of the coefficient of friction of the surface. Cyclic stresses are substantially
due to the vibration mode shape of the blade and therefore only specific sections
of the blade root are exposed to high alternating stress, for example the leading
and trailing edges. As a result dovetail root cracking is more prevalent where high
steady stresses occur due to breakdown of a friction reducing coating in combination
with relatively high alternating stresses due to blade vibration. The combination
of high steady and alternating stresses leads to high stress ratios and therefore
reduced fatigue life. A "high" alternating stress can be taken to be any stress greater
than about 50 MPa (peak to peak).
[0009] The "stress ratio" is defined as the ratio of actual alternating stress of the allowable
alternating stress for failure in 10
7 cycles at a given steady stress. A stress ratio of greater than about 40% in the
examples presented will result in failure of the components. Hence a stress ratio
of greater than 40% is taken to be a "high" stress ratio.
[0010] Hitherto, dry-film-lubricant has been applied to compressor/fan blade and disc dovetail
roots along the whole flank (contact surfaces), principally to reduce root fretting
but also to reduce coefficient of friction and therefore steady stresses. The present
invention uses the principle of varying the co-efficient of friction of contact surfaces
to optimise stresses within the blade root and in particular the stress ratio distribution
along the length of the contact surfaces (flanks) of the blade root. The present invention
enables the distribution of steady stresses to be manipulated by, for example, using
selective application of dry-film-lubricant to areas of high alternating stress thereby
offloading at least part of the load generating the high steady stresses to areas
of low alternating stress. In this way it is possible to optimise the stress ratio
distribution over the whole of the blade root contact surfaces to ensure that no area
of the contact surface is subject to both high alternating and steady stresses. This
readily enables the maximum stress ratio to be reduced for particular engine operating
conditions.
[0011] The bearing surfaces of the rotor blade root each comprise a leading edge end and
a trailing edge end. Preferably the region configured to have a low co-efficient of
friction is a region where the stress distribution along the flanks requires it and
is configured in such a manner as to achieve the desired result. In one example a
dry film lubricant coating is applied to the root in the region of the leading edge
end and/or the trailing edge end. In this way, in embodiments where the alternating
stresses are highest at the leading and trailing edge ends of the root bearing surfaces,
for example due to blade vibration, the steady state contact stresses can be reduced
in these areas by the selective application of a dry-film-lubricant to these areas
with the region between the trailing and leading edge ends being substantially free
of lubricant. This can be readily achieved by masking the middle portion of the root
bearing surfaces during the application of the dry-film-lubricant to the respective
leading and trailing edge ends of the surfaces. This has the effect of reducing the
stress ratio where the lubricant is applied but increasing the stress ratio where
lubricant is not applied such that the stress ratio distribution along the length
of the root contact surfaces is substantially uniform. In this way the maximum ratio
of minimum to maximum stress is substantially reduced when compared with a root having
a wholly uncoated or wholly coated bearing surface. In the context of the present
invention it is to be understood that the terms "leading edge" and "trailing edge"
relate to the aerofoil leading and trailing edge at opposite ends of the blade.
[0012] The selected area(s) having a relatively low co-efficient of friction may be between
40-70% of the surface area of the bearing surfaces. Alternatively the selected area(s)
having a relatively low co-efficient of friction may be between 20-60% of the surface
area of the bearing surfaces.
[0013] The selected area(s) may cover substantially the same size areas of the bearing surfaces
at the leading and trailing edge ends. This is particularly desirable where the alternating
stresses acting on the contact bearing surfaces are of similar magnitude at the leading
and trailing edge end of the blade root.
[0014] Preferably, the root comprises a dovetail root having a substantially flat bearing
surface on each flank of the root. However, the invention also contemplates other
types of blade fixing roots, for example fir tree roots, having a plurality of load
bearing lands.
[0015] Preferably, the rotor blade comprises a fan or compressor blade having a dovetail
root.
[0016] The selective area(s) to which is configured to have a relatively low co-efficient
of friction is/are subject to dynamic contact stresses, during engine operation, greater
than the average of the dynamic contact stresses on the bearing surface due to blade
vibration.
[0017] In preferred embodiments of the bladed rotor disc assembly the areas of relatively
low co-efficient of friction on the respective bearing surfaces of the blade root
and the disc slot are arranged such that they are in contact with each other in the
disc assembly. In this way the stress ratio generated at the mating contact surfaces
can be minimised.
[0018] According to another aspect of the invention there is provided a method of applying
a dry film lubricant coating to a load bearing surface of gas turbine engine component,
the said method comprising the steps of determining the distribution of steady and
cyclic stresses acting on the said bearing surface of the uncoated component under
engine operating conditions, determining the stress ratio distribution for the said
uncoated surface under the said operating conditions, applying a dry film lubricant
to area(s) of the bearing surface having a stress ratio above a pre-determined stress
ratio threshold value. This method readily enables the stress ratio distribution over
the whole of the bearing surface to be optimised so that no area of the bearing surface
is subject to both high cyclic and high mean stresses under engine operating conditions.
[0019] According to a further aspect of the invention which however is not claimed there
is provided a load bearing assembly comprising at least one pair of load bearing surfaces
in contact with each other for supporting steady state and dynamic loads in use, and
at least one selected area on at least one of the bearing surfaces which, in operation,
is an area of alternating stress greater than about 50 MPa (peak to peak), is configured
to have a co-efficient friction lower than the remainder of the bearing surfaces.
[0020] Preferably the selected areas have a co-efficient the at least one selected area
is provided by the application of a dry film lubricant to said at least one selected
area, with the remaining area(s) of said bearing surfaces being substantially free
of the said coating.
[0021] An embodiment of the present invention will now be more particularly described, by
way of example only, with reference to the accompanying drawings, in which:
Figure 1 is a schematic view of the root section of a gas turbine engine fan blade;
Figure 2 is a schematic view of the rim section of a gas turbine engine fan rotor
disc;
Figure 3 is a cross section view of the root of the fan blade shown in Figure 1 located
in a slot in the rim of the disc shown in Figure 2;
Figure 4 shows the distribution of stress ratio along the bearing surfaces of the
fan blade root of Figure 1 for different applications of dry-film-lubricant; and
Figure 5 shows the distribution of stress ratio along the bearing surfaces of the
fan blade root of Figure 2 for different applications of dry-film-lubricant.
[0022] Configuring selected areas of bearing surfaces of highly loaded components to have
a lower co-efficient of friction than adjacent areas finds particular application
to gas turbine engine components as shown in Figures 1 and 2. One means by which this
can be achieved is the selective application of dry film lubricant to selected areas.
The selective application of dry-film-lubricant to the components shown in Figures
1 and 2 is discussed in relation to the fan section of a gas turbine engine. However,
the present invention is equally applicable to the compressor stages of the engine
as well as the fan.
[0023] Figure 1 shows the root section 10 of a gas turbine engine fan blade. The majority
of the fan blade is not shown in the drawing of Figure 1 since the embodiment of the
present invention discussed with reference to Figure 1 is applicable to the root section
only. The remaining detail of the aerofoil section is therefore not shown. The root
section is disposed on the underside of the blade platform 12 with the aerofoil section
14 of the blade on the opposite side thereof. The root section is in the form of a
dovetail root and comprises a root shank 16 and a dovetail shaped end section 18.
The root shank 16 has a substantially constant cross section area in the spanwise
direction of the blade as defined by a pair of generally parallel side flank surfaces
20 on opposite sides of the blade. The dovetail section 18 comprises a pair of inclined
bearing surfaces 22, which diverge by equal amounts in the spanwise direction of the
blade away from the blade platform 12. The underside of the root 18 between the bearing
surfaces 22 is slightly rounded to give the dovetail end shape.
[0024] Referring now to Figure 2 which shows part of the radially outer periphery of a fan
disc 24 having a plurality of dovetail slots 26 circumferentially spaced around the
periphery and opening radially for receiving respective dovetail root fan blades 10.
Each dovetail slot 26 comprises a pair of inclined bearing surfaces 28, on opposite
sides of the slot that diverge from the outer periphery towards the hub of the disc.
The angle of divergence of the bearing surfaces 28 is the same as the angle of divergence
of the bearing surfaces 22 with the dimensions of the slot being such that the blade
root sections 10 slide into the slots to be attached to the disc as shown in the drawing
of Figure 3.
[0025] When the engine is stationary the dovetail roots 22 rest in the slots 26. During
operation the rotational forces generated by the rotor blades cause the root bearing
surfaces 22 to contact the slot bearing surfaces 28 so that the centrifugal force
generated by the rotating fan blades is transferred to the disc 24 by the mating surfaces
22, 28. The magnitude of the force is a function of the rotational speed of the bladed
rotor assembly and therefore the higher the operational speed of the rotor the greater
the loading on the bearing surfaces 22, 28.
[0026] The steady stresses acting on the surfaces 22, 28 constitute steady stresses since
they are principally dependent on the speed of rotation of the engine shaft to which
the fan is attached to and at constant shaft speeds, combined with the friction at
the interface between the two components. During engine operation the contact surfaces
22, 28 are also subject to high frequency cyclic contact stresses due to vibration
of the fan blades in the slots 26.
[0027] In an embodiment of the present invention the deleterious effects of the combined
steady (or mean) and alternating stresses acting on the bearing surfaces 22 of the
dovetail roots are mitigated by configuring selected areas of the bearing contact
surfaces 22 to have a lower co-efficient of friction than the remainder of the surface.
This is achieved by the selective application of a dry-film-lubricant to selective
areas of the bearing contact surfaces 22. In the drawing of Figure 1 a dry-film-lubricant
is applied to the leading edge end 30 and the trailing edge end 32 of the bearing
surfaces 22. The dry-film-lubricant is applied over the whole width of the bearing
surfaces at the leading and trailing edge ends with the central region 34 of the surface
22 between the ends 30 and 32 being substantially free of the dry-film-lubricant coating.
The area of the central section 34 of the bearing surfaces 22 constitutes about 50%
of the total surface area of the bearing surface 22 with the coated areas 30 and 32
being of substantially equal area and each comprising about 25% of the total surface
area.
[0028] Selective areas of the bearing surfaces 28 of the dovetail slots are also provided
with a dry-film-lubricant surface coating. Dry-film-lubricant is applied to the surfaces
28 at the opposite ends of the slot such that the coated region 30 on the blade root
bearing surface 22 contacts a coated region 36 at the leading edge side of the disc
slot, and the coated region 32 at the trailing edge end of the blade root contacts
a region 38 at the trailing edge end of the slot. The dimensions of the coated regions
30 and 36 and 32 and 38 are such that the coated regions of the root and the slot
are substantially the same and in contact with each other in the bladed disc assembly.
[0029] Figure 4 shows the variation of the stress ratio of the steady and alternating stresses
acting on the bearing surface 22 of the blade root from the leading edge end to the
trailing edge end at a particular engine operating condition. The "Y" axis 41 represents
the stress ratio value and the "X" axis 43 represents the distance along the root
from the trailing edge to the leading edge and thereof. The solid line 40 in the drawing
of Figure 3 represents the stress ratio variation from the leading edge end (left
hand side) to the trailing edge end (right hand side) of the bearing surface 22 where
the whole of the surface is coated with a dry-film-lubricant. The broken line 42,
on the other hand, represents the stress ratio variation where the bearing surface
22 is coated with dry-film-lubricant on selective areas 30 and 32 as shown in the
drawing of Figure 1. Comparing the stress ratio variations 40 and 42 it can be seen
that while in both cases the stress ratio is a maximum at the leading edge end and
the trailing edge end and a minimum at the mid point between the respective ends,
the extent of variation is much less in the case of the part coated bearing surface
shown in Figure 1 than the fully coated surface represented by line 40. The stress
ratio distribution shown in Figure 4 demonstrates that the application of a dry-film-lubricant
at the leading edge and trailing edge end regions 30 and 32 of the bearing surface
22 lowers the steady (mean) stress at these points and therefore lowers the stress
ratio while increasing the steady (mean) stress along the central region 34 thereby
increasing the stress ratio in this region. The reduction in mean stress at the leading
and trailing edge ends of the bearing surface 22 has the effect of increasing the
fatigue life of the dovetail root at these regions where cracking has been known to
occur in dovetail roots having fully coated surfaces 22.
[0030] Figure 5 shows the variation of stress ratio between the leading edge (left hand
side) and trailing edge (right hand side) end of the bearing surface 28 of a dovetail
slot. Line 44 represents the stress ratio variation along the length of the slot for
a fully coated bearing surface 28 while line 46 represents the stress ratio variation
for the part coated bearing surface 28 shown in and described with reference to Figure
2. The stress ratio variation shown in Figure 5 is very similar to that shown in Figure
4 with the fully coated bearing surface 28 having a higher stress ratio at the leading
edge and trailing edge ends and a lower stress ratio at the central part of the bearing
surface when compared with the stress ratio variation 46 for the part coated bearing
surface 28.
[0031] Although aspects of the invention have been described with reference to the embodiments
shown in the accompanying drawings, it is to be understood that the invention is not
limited to the precise embodiment shown and that various changes and modifications
may be effected without further inventive skill and effort. For example, the invention
is applicable to any type of bearing surface which is in contact with another surface
for supporting steady state and dynamic loads where the dynamic loads are not evenly
distributed over the surface.
1. A load bearing component for a gas turbine engine comprising at least one load bearing
surface (22, 28), characterised in that a dry film lubricant coating is provided on selected area(s) (30,32, 36) of the bearing
surface with the remaining area(s) (34) of said bearing surface (22,28) being substantially
free of the said coating, the selected area(s) of coating being distributed in a predetermined
pattern produced by determining the distribution of steady and cyclic stresses acting
on the said bearing surface (22,28) of the uncoated component under engine operating
conditions, determining the stress ratio distribution for the said uncoated surface
under the said operating conditions, and applying a dry film lubricant coating to
area(s) (30, 32, 36) of the bearing surface (22,28) having a stress ratio above a
pre-determined stress ratio threshold value.
2. A load bearing component as claimed in claim 1 wherein the predetermined pattern is
further produced by determining which area(s) on the said bearing surface (22,28)
of the uncoated component is/are subject, in use, to dynamic contact stresses greater
than the average dynamic contact stress on the bearing surface (22, 28), and applying
a dry film lubricant coating to area(s) (30, 32, 36) of the bearing surface (22,28)
in having a dynamic contact stress above a pre-determined dynamic contact stress threshold
value.
3. A load bearing assembly for a gas turbine engine comprising at least one pair of load
bearing surfaces (22,28) in contact with each other for supporting steady state and
dynamic load, characterised in that a dry film lubricant coating is provided on selected area(s) (30,32, 36) of each
bearing surface with the remaining area(s) (34) of said bearing surfaces (22,28) being
substantially free of the said coating, the selected area(s) of coating being distributed
in a predetermined pattern produced by determining the distribution of steady and
cyclic stresses acting on the said bearing surface (22,28) of the uncoated component
under engine operating conditions, determining the stress ratio distribution for the
said uncoated surface under the said operating conditions, and applying a dry film
lubricant coating to area(s) (30, 32, 36) of the bearing surface (22,28) having a
stress ratio above a pre-determined stress ratio threshold value, wherein selected
coated area(s) (30,32,36) of the bearing surfaces (22,28) of the bearing surface pair
are arranged to be in contact with selected coated area(s) (30,32,36) of the other
bearing surface (22,28) of the pair. substantially the same size and distributed in
the same predetermined pattern as each other.
4. A load bearing assembly as claimed in claim 3 wherein the selected coated area(s)
(30,32,36) of the bearing surfaces (22,28) of the bearing surface pair are
5. A load bearing component as claimed in claim 1 or claim 2 wherein the component is
a rotor blade for a gas turbine engine, the blade having a root (10), and the at least
one load bearing surface (22) being provided on each of the flanks of the root (10).
6. A load bearing component as claimed in claim 1 or claim 2 wherein the component is
a rotor disc (24) for a gas turbine engine, the disc (24) having a plurality of blade
root fixing slots (26) circumferentially spaced around the rim of the disc (24), and
the at least one load bearing surface (28) being provided on each of the slots (26).
7. A load bearing component as claimed in Claim 5 or Claim 6 wherein the said bearing
surfaces (22, 28) each comprise a leading edge end and a trailing edge end and at
least one selected coated area (30,32, 38) is provided in the region of the leading
edge end and/or the trailing edge end.
8. A method of applying a dry film lubricant coating to a load bearing surface (22,28)
of gas turbine engine component, characterised in that the said method comprising the steps of determining the distribution of steady and
cyclic stresses acting on the said bearing surface (22,28) of the uncoated component
under engine operating conditions, determining the stress ratio distribution for the
said uncoated surface under the said operating conditions, applying a dry film lubricant
to area(s) of the bearing surface (30,32,36) having a stress ratio above a pre-determined
stress ratio threshold value.
1. Lasttragende Komponente für ein Gasturbinentriebwerk, mit mindestens einer lasttragenden
Fläche (22, 28), dadurch gekennzeichnet, dass auf (einem) gewählten Bereich(en) (30, 32, 36) der tragenden Fläche ein Trockenfilm-Schmiermittelüberzug
vorgesehen ist, während der (die) verbleibende(n) Bereich(e) (34) dieser tragenden
Fläche (22, 28) im wesentlichen frei von diesem Überzug ist (sind), wobei der (die)
gewählte(n) Bereich(e) des Überzugs in einem vorbestimmten Muster verteilt ist (sind),
das durch Bestimmung der Verteilung stationärer und zyklischer Spannungen, die auf
die genannte tragende Fläche (22, 28) der nicht überzogenen Komponente unter Triebwerksbetriebsbedingungen
wirken, Bestimmen der Spannungsverhältnisverteilung für die nicht überzogene Fläche
unter den genannten Betriebsbedingungen, und Aufbringen eines Trockenfilm-Schmiermittelüberzugs
auf (einen) Bereich(e) (30, 32, 36) der tragenden Fläche (22, 28) mit einem Spannungsverhältnis
oberhalb eines vorgegebenen Spannungsverhältnis-Schwellenwerts erzeugt wird.
2. Lasttragende Komponente nach Anspruch 1, wobei das vorbestimmte Muster weiter durch
Bestimmen, welche(r) Bereich(e) auf der genannten tragenden Fläche (22, 28) der nicht
überzogenen Komponente im Betrieb dynamischen Berührungsspannungen ausgesetzt ist/sind,
die größer als die mittlere dynamische Berührungsspannung auf der tragenden Fläche
(22, 28) sind, und durch Aufbringen eines Trockenfilm-Schmiermittelüberzugs auf (einen)
Bereich(e) (30, 32, 36) der tragenden Fläche (22, 28) erzeugt wird, die eine oberhalb
eines vorgegebenen dynamischen Berührungsspannungs-Schwellenwerts liegende dynamische
Berührungsspannung erfahren.
3. Lasttragende Baugruppe für ein Gasturbinentriebwerk mit mindestens einem Paar lasttragender
Flächen (22, 28), die miteinander in Berührung stehen, um stationäre und dynamische
Lasten aufzunehmen, dadurch gekennzeichnet, dass ein Trockenfilm-Schmiermittelüberzug auf (einem) gewählten Bereich(en) (30, 32, 36)
jeder tragenden Fläche vorgesehen ist, während der (die) verbleibende(n) Bereich(en)
(34) der tragenden Flächen (22, 28) im wesentlichen frei von dem genannten Überzug
ist (sind), wobei der (die) gewählte(n) Bereich(e) des Überzugs in einem vorbestimmten
Muster verteilt ist (sind), das durch Bestimmen der Verteilung von auf die tragende
Fläche (22, 28) der nicht überzogenen Komponente unter Triebwerksbetriebsbedingungen
wirkenden stationären und zyklischen Spannungen, Bestimmen der Spannungsverhältnisverteilung
für die genannte nicht überzogene Fläche unter den genannten Betriebsbedingungen,
und Aufbringen eines Trockenfilm-Schmiermittelüberzugs auf (einen) Bereich(e) (30,
32, 36) der tragenden Fläche (22, 28) mit einem Spannungsverhältnis oberhalb eines
vorgegebenen Spannungsverhältnis-Schwellenwerts erzeugt wird, wobei (ein) gewählte(r)
überzogene(r) Bereich(e) (30, 32, 36) der tragenden Flächen (22, 28) des tragenden
Flächenpaars so angeordnet ist (sind), dass er (sie) in Berührung mit (einem) gewählten
überzogenen Bereich(en) (30, 32, 36) der anderen tragenden Fläche (22, 28) des Paars
steht/stehen.
4. Lasttragende Baugruppe nach Anspruch 3, wobei der (die) gewählte(n) überzogene(n)
Bereich(e) (30, 32, 36) der tragenden Flächen (22, 28) des tragenden Flächenpaars
im wesentlichen von gleicher Größe und in dem gleichen vorbestimmten Muster verteilt
ist (sind).
5. Lasttragende Komponente nach Anspruch 1 oder Anspruch 2, wobei die Komponente eine
Rotorschaufel für ein Gasturbinentriebwerk ist, und wobei die Schaufel einen Fuß (10)
hat, und die mindestens eine lasttragende Fläche (22) an jeder der Flanken des Fußes
(10) vorgesehen ist.
6. Lasttragende Komponente nach Anspruch 1 oder Anspruch 2, wobei die Komponente eine
Rotorscheibe (24) für ein Gasturbinentriebwerk ist, wobei die Scheibe (24) eine Mehrzahl
von Schaufelfuß-Befestigungsschlitzen (26) aufweist, die umfangsmäßig um den Rand
der Scheibe (24) beabstandet sind, und wobei die mindestens eine lasttragende Fläche
(28) an jedem der Schlitze (26) vorgesehen ist.
7. Lasttragende Komponente nach Anspruch 5 oder Anspruch 6, wobei die tragenden Flächen
(22, 28) jeweils ein Vorderkantenende und ein Hinterkantenende haben, und wobei mindestens
ein gewählter überzogener Bereich (30, 32, 38) in dem Bereich des Vorderkantenendes
und/oder des Hinterkantenendes vorgesehen ist.
8. Verfahren zum Aufbringen eines Trockenfilm-Schmiermittelüberzugs auf eine lasttragende
Fläche (22, 28) einer Gasturbinentriebwerkskomponente, dadurch gekennzeichnet, dass das Verfahren die Schritte des Bestimmens der Verteilung von stationären und zyklischen
Spannungen, die auf die tragende Fläche (22, 28) der nicht überzogenen Komponente
unter Triebwerksbetriebsbedingungen wirken, das Bestimmen der Spannungsverhältnisverteilung
für diese nicht überzogene Fläche unter den genannten Betriebsbedingungen, und das
Aufbringen eines Trockenfilm-Schmiermittels auf (einen) Bereich(e) der tragenden Fläche
(30, 32, 36) mit einem Spannungsverhältnis oberhalb eines vorgegebenen Spannungsverhältnis-Schwellenwerts
umfasst.
1. Composant porteur pour un moteur à turbine à gaz comprenant au moins une surface portante
(22, 28), caractérisé en ce que l'on prévoit un revêtement lubrifiant à film sec sur une (des) zone(s) sélectionnée(s)
(30, 32, 36) de la surface portante avec la (les) zone(s) restante(s) (34) de ladite
surface portante (22, 28) qui est (sont) sensiblement dépourvue(s) dudit revêtement,
la (les) zone(s) de revêtement sélectionnée(s) étant répartie(s) selon un modèle prédéterminé
produit en déterminant la répartition des contraintes régulières et cycliques agissant
sur ladite surface portante (22, 28) du composant non recouvert dans les conditions
de fonctionnement du moteur, en déterminant la répartition du rapport de contrainte
de ladite surface non recouverte dans lesdites conditions de fonctionnement, et en
appliquant un revêtement lubrifiant à film sec sur la (les) zone(s) (30, 32, 36) de
la surface portante (22, 28) ayant un rapport de contrainte supérieur à une valeur
seuil de rapport de contrainte prédéterminée.
2. Composant porteur selon la revendication 1, dans lequel le modèle prédéterminé est
en outre produit en déterminant quelle(s) zone(s) sur ladite surface portante (22,
28) du composant non recouvert est/sont soumise(s), à l'usage, aux contraintes de
contact dynamiques supérieures à la contrainte de contact dynamique moyenne sur la
surface portante (22, 28) et en appliquant un revêtement lubrifiant à film sec sur
la (les) zone(s) (30, 32, 36) de la surface portante (22, 28) en ayant une contrainte
de contact dynamique supérieure à une valeur seuil de contrainte de contact dynamique
prédéterminée.
3. Ensemble porteur pour un moteur de turbine à gaz comprenant au moins une paire de
surfaces portantes (22, 28) en contact entre elles pour supporter la charge en régime
permanent et dynamique, caractérisé en ce que un revêtement lubrifiant à film sec est prévu sur la (les) zone(s) sélectionnée(s)
(30, 32, 36) de chaque surface portante avec la (les) zone(s) (34) restantes desdites
surfaces portantes (22, 28) qui sont sensiblement dépourvues dudit revêtement, la
(les) zone(s) sélectionnée(s) de revêtement étant répartie(s) selon un modèle prédéterminé
produit en déterminant la répartition des contraintes régulières et cycliques agissant
sur ladite surface portante (22, 28) du composant non recouvert dans des conditions
de fonctionnement du moteur, en déterminant la répartition de rapport de contrainte
pour ladite surface non recouverte dans lesdites conditions de fonctionnement, et
en appliquant un revêtement lubrifiant à film sec sur la (les) zone(s) (30, 32, 36)
de la surface portante (22, 28) ayant un rapport de contrainte supérieur à une valeur
seuil de rapport de contrainte prédéterminée, dans lequel la (les) zone(s) recouverte(s)
sélectionnée(s) (30, 32, 36) des surfaces portantes (22, 28) de la paire de surfaces
portantes est/sont agencée(s) pour être en contact avec la (les) zone(s) recouverte(s)
sélectionnée(s) (30, 32, 36) de l'autre surface portante (22, 28) de la paire.
4. Ensemble porteur selon la revendication 3, dans lequel la (les) zone(s) recouverte(s)
sélectionnée(s) (30, 32, 36) des surfaces portantes (22, 28) de la paire de surfaces
portantes est/sont sensiblement de la même taille et répartie(s) selon le même modèle
prédéterminé l'une par rapport à l'autre.
5. Composant porteur selon la revendication 1 ou la revendication 2, dans lequel le composant
est une aube de rotor pour un moteur de turbine à gaz, l'aube ayant une base (10),
et la au moins une surface portante (22) étant prévue sur chacun des flancs de la
base (10).
6. Composant porteur selon la revendication 1 ou la revendication 2, dans lequel le composant
est un disque de rotor (24) pour un moteur de turbine à gaz, le disque (24) ayant
une pluralité de fentes de fixation (26) de la base d'aube espacées de manière circonférentielle
autour du bord du disque (24), et la au moins une surface portante (28) étant prévue
sur chacune des fentes (26).
7. Composant porteur selon la revendication 5 ou la revendication 6, dans lequel lesdites
surfaces portantes (22, 28) comprennent chacune une extrémité de bord d'attaque et
une extrémité de bord de fuite et au moins une zone recouverte sélectionnée (30, 32,
38) est prévue dans la région de l'extrémité de bord d'attaque et/ou de l'extrémité
de bord de fuite.
8. Procédé pour appliquer un revêtement lubrifiant à film sec sur une surface portante
(22, 28) du composant de moteur à turbine à gaz, caractérisé en ce que ledit procédé comprend les étapes consistant à déterminer la répartition des contraintes
régulières et cycliques agissant sur ladite surface portante (22, 28) du composant
non recouvert dans des conditions de fonctionnement du moteur, à déterminer la répartition
du rapport de contrainte pour ladite surface non couverte dans lesdites conditions
de fonctionnement, à appliquer un lubrifiant à film sec sur la (les) zone(s) de la
surface portante (30, 32, 36) ayant un rapport de contrainte supérieur à une valeur
seuil de rapport de contrainte prédéterminée.


REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description