Assembly of a turbomachine blower housing and a nacelle air duct

The stiffening element addresses the issue of flange displacement and mechanical failure in turbomachines by enhancing stiffness and absorbing forces, thereby reducing damage and fire risks in the turbomachine connection.

FR3166176A1Pending Publication Date: 2026-03-13SAFRAN AIRCRAFT ENGINES SAS
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Patent Information

Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-09-09
Publication Date
2026-03-13

AI Technical Summary

Technical Problem

The existing connection between the fan housing and nacelle air duct in turbomachines is prone to radial displacement and mechanical component failure due to blade loss, leading to residual play, potential damage from foreign object ingestion, and fire risk, which existing solutions fail to adequately address.

Method used

A stiffening element with a radially extending base and longitudinally extending wall is positioned outside the air sleeve to absorb radial, longitudinal, and torsional forces, enhancing the connection's stiffness and preventing flange displacement and mechanical component failure.

Benefits of technology

The stiffening element strengthens the connection between the fan housing and air duct, reducing the risk of damage and fire by limiting flange displacement and mechanical component failure, while being easily integratable into existing turbomachines without additional modifications.

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Abstract

An assembly of a fan casing (2) of a turbomachine, in particular for aircraft, and a nacelle air duct (3), the turbomachine extending along a longitudinal axis (X) and comprising at least one fan, the fan casing (2) comprising an upstream flange (21) connected to a downstream flange (31) of the air duct (3) by a plurality of mechanical components (4). The assembly comprises at least one stiffening element (5), positioned radially outside the air sleeve (3), the stiffening element (5) comprising a flat base (51) extending radially, the base (51) being arched and connected to the downstream flange (31) of the air sleeve (3) by at least two mechanical members (4), the stiffening element (5) comprising a wall (52) connected to the base (51) of the stiffening element (5) and extending longitudinally radially outside the downstream flange (31) of the air sleeve (3). (See Figure 4 for more details.)
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Description

Title of the invention: Assembly of a turbomachine blower housing and a nacelle air duct technical field

[0001] The present invention relates to the field of aircraft turbomachinery, in particular, the joining of a nacelle air duct to a turbomachine blower housing.

[0002] In a known manner, with reference to [Fig. 1], an aircraft turbomachine 100 extends along a longitudinal axis X and comprises a fan 101, rotatably mounted about said longitudinal axis X, which propels the aircraft from an upstream to a downstream flow of accelerated air by the turbomachine 100. Hereafter, the terms "upstream" and "downstream" are defined with respect to the upstream-to-downstream oriented longitudinal axis X. Similarly, the terms "inside" and "outside" are defined with respect to the radial direction with respect to the longitudinal axis X. In a known manner, the turbomachine 100 comprises a compressor, a combustion chamber, and a turbine to drive the compressor in rotation. In this example, the turbomachine 100 is a dual-flow turbomachine and has a bypass ratio greater than 16.

[0003] The fan 101 comprises a plurality of blades 111. Each blade 111 extends radially about the longitudinal axis X and has a free apex at its distal end. The turbomachine 100 includes a fan housing 102 extending longitudinally along the longitudinal axis X and in which the fan 101 is housed. The fan housing 102 defines an annular cavity for airflow circulation. As known, with reference to [Fig. 2], the fan housing 102 includes an upstream flange 121 for mounting upstream of a nacelle air duct 103, also called an "air inlet". As is known, the air sleeve 103 includes a downstream flange 131 connected to the upstream flange 121 of the blower housing 102 by a plurality of mechanical components 104, in particular, bolts.As is known, such an air sleeve 103 fulfills a function of guiding the airflow upstream and towards the blower housing 102.

[0004] In the schematic representation of [Fig. 2], the upstream end of the nacelle air duct 103 is schematically represented as having an upstream nacelle air inlet. A nacelle is conventionally configured to receive equipment forming the outer shell of the turbomachine, in particular around the fan casing 102. Thus, the nacelle air duct 103 forms a radially inner part of the nacelle.

[0005] However, cases of blade loss 111 are known, that is, cases where at least one blade 111 detaches from the fan 101 or a portion of a blade breaks upon impact, for example. In such cases, under the effect of centrifugal force, the blade 111 or the portion of a blade 111 is thrown against the fan housing 102, generating an impact that causes radial displacement of the flanges of the fan housing 102 and the air sleeve 103, particularly at the point where they are connected by the mechanical components 104. As a result, the mechanical components 104 are subjected to bending, which can weaken them and reduce their service life.

[0006] In particular, residual play may develop between the fan casing and the air duct. Such residual play presents numerous drawbacks, such as the risk of potential damage to the turbomachine around its fan in the event of severe ingestion of a foreign object impacting the fan, for example, during the ingestion of very large birds in flight. By limiting the residual play, i.e., the geometric variations in the fan casing, the integrity of the turbomachine is improved in the event of large bird ingestion. Furthermore, residual play could potentially allow a fragment of the fan blade to pass through in the event of an impact. Finally, such residual play could also allow air to flow between the fan casing and the air duct, which could potentially fuel a fire in the assembly formed by the fan casing, the air duct, and the nacelle.

[0007] The invention thus aims to eliminate at least some of these drawbacks. PRESENTATION OF THE INVENTION

[0008] The invention relates to an assembly of a fan housing of a turbomachine, in particular for aircraft, and a nacelle air duct, the turbomachine extending along a longitudinal axis and comprising at least one fan mounted movable in rotation about the longitudinal axis so as to accelerate an upstream to downstream airflow, the fan housing comprising an upstream flange connected to a downstream flange of the air duct by a plurality of mechanical members.

[0009] The assembly is notable in that it comprises at least one stiffening element, positioned radially outside the air sleeve, the stiffening element comprising a flat base extending radially, the base being arched and connected to the downstream flange of the air sleeve by at least two mechanical members, the stiffening element comprising a wall connected to the base of the stiffening element and extending longitudinally radially outside the downstream flange of the air sleeve.

[0010] During radial loading, the flange apexes come into contact with the wall of the stiffening element, which reduces the relative radial displacement between the two flanges. This advantageously reduces the radial forces transmitted between the mechanical components and the openings formed in the flanges.

[0011] Thus, the stiffening element allows for the absorption of longitudinal, radial, and potentially torsional forces generated at the connection between the fan housing and the air duct, thereby strengthening the connection between the fan housing and the air duct, notably by adding material in a localized manner and thus additional stiffness. In the event of blade loss, the absorption of forces transmitted between the upstream flange of the fan housing and the downstream flange of the air duct by the mechanical components prevents breakage and / or cracking of these components. In particular, this prevents the formation of residual play between the fan housing and the air duct, thereby limiting the risk of damage to the turbomachine.

[0012] Preferably, the stiffening element is mounted in a separate manner on the air sleeve.

[0013] The stiffening element can therefore be integrated into an existing turbomachine, by being mounted on the air sleeve of said turbomachine.

[0014] According to one aspect, the stiffening element consists of the base and the wall. The structure of the stiffening element is thus very simple, which reduces its mass and facilitates its manufacture.

[0015] According to one aspect, the stiffening element has an L-shaped cross-section.

[0016] According to one aspect, the wall extends longitudinally radially outward from the upstream flange of the blower housing. During radial loading, the flange crests come into contact with the wall of the stiffening element, thereby reducing the relative radial displacement between the two flanges. This advantageously reduces the radial forces transmitted between the mechanical components and the openings formed in the flanges.

[0017] Preferably, the stiffening element is a single piece. This increases robustness. Alternatively, the stiffening element could be made by assembling several parts.

[0018] According to one aspect, the stiffening element extends circumferentially along an angular arc. This allows for the circumferential distribution of mechanical stresses in the event of blade loss.

[0019] According to one aspect, the assembly comprises a plurality of stiffening elements.

[0020] Preferably, a plurality of stiffening elements are distributed circumferentially outside the air sleeve, each stiffening element being connected to the downstream flange of the air sleeve.

[0021] The plurality of stiffening elements distributed on the air sleeve makes it possible to add, at different points on the air sleeve, additional stiffness limiting the stresses Radial forces are transmitted between the upstream flange of the blower housing and the downstream flange of the air duct by the mechanical components. Thus, the connection between the air duct and the blower housing is more robust along its entire length, limiting the risk of relative radial displacement of the blower housing and air duct flanges, thereby also limiting the bending of the mechanical components and consequently their breakage and / or cracking in the event of blade loss.

[0022] Alternatively, a single stiffening element has a plurality of through openings, said stiffening element being connected to the downstream flange of the air sleeve by a plurality of mechanical members connecting the upstream flange of the blower housing to the downstream flange of the air sleeve, each mechanical member passing through respectively one of the plurality of through openings.

[0023] According to one aspect, the mechanical components are bolted components.

[0024] According to one aspect the base extends circumferentially and parallel to the downstream flange around a cylindrical section of the air sleeve adjacent to the downstream flange.

[0025] The invention also relates to a turbomachine, in particular for aircraft, comprising a fan housing and nacelle air duct assembly as previously described, the turbomachine extending along a longitudinal axis and comprising at least one fan mounted movably in rotation in the fan housing along the longitudinal axis so as to accelerate an upstream to downstream airflow. PRESENTATION OF THE FIGURES

[0026] The invention will be better understood upon reading the following description, given by way of example, and referring to the following figures, given by way of non-limiting examples, in which identical references are given to similar objects.

[0027] Fig. 1 is a schematic representation of a longitudinal cross-sectional view of an aircraft turbomachine according to the prior art comprising a fan housing.

[0028] Fig. 2 is a close-up schematic representation in longitudinal half-section of the blower housing of Fig. 1, connected to an air sleeve according to the prior art.

[0029] Fig. 3 is a schematic representation of a longitudinal half-section view of a turbomachine according to an embodiment of the invention comprising a blower housing connected to an air sleeve.

[0030] Fig. 4 is a close schematic representation of the connection between the blower housing and the air sleeve of the nacelle of Fig. 3.

[0031] It should be noted that the figures set out the invention in detail to implement the invention, said figures being of course able to serve to better define the invention where appropriate. DETAILED DESCRIPTION OF THE INVENTION

[0032] With reference to [Fig. 3], the invention will be presented for an aircraft turbomachine T, in particular, a turbojet engine. The turbomachine T extends along a longitudinal axis X and comprises a fan 1 mounted for rotation about the longitudinal axis X, which propels the aircraft by means of an airflow entering the turbomachine T and circulating from upstream to downstream. Hereafter, the terms "upstream" and "downstream" are defined with respect to the longitudinal axis X oriented from upstream to downstream. Similarly, the terms "inside" and "outside" are defined with respect to the radial direction with respect to the longitudinal axis X. In a known manner, the turbomachine T comprises a compressor, a combustion chamber, and a turbine to drive the compressor. Preferably, the turbomachine T is a dual-flow turbomachine and has a bypass ratio greater than 16.

[0033] With reference to Figures 3 and 4, the turbomachine T comprises a fan housing 2 and a nacelle air duct 3 mounted upstream of the fan housing 2. The fan housing 2 includes at its upstream end an upstream mounting member, corresponding in particular to an upstream flange 21. Similarly, the air duct 3 includes at its downstream end a downstream mounting member, corresponding in particular to a downstream flange 31, configured to cooperate with the upstream flange 21 of the fan housing 2. Thus, the air duct 3 can be mounted on the fan housing 2 by means of a plurality of mechanical members 4. Preferably, the flanges 21, 31 extend radially to achieve an axial connection through the mechanical members 4.

[0034] As is known, each mechanical element 4 corresponds to bolted screws enabling the connection between the air duct 3 and the blower housing 2 and, more specifically, the retention of the downstream flange 31 of the air duct 3 against the upstream flange 21 of the blower housing 2. In particular, each mechanical element 4 is formed of at least one threaded screw 40 passing through the upstream flange 21 of the blower housing 2 and the downstream flange of the air duct. The threaded screw 40 comprises a head bearing against said downstream flange 31 and a foot onto which a nut 41 is screwed, bearing against the upstream flange 21 ([Fig. 4]).

[0035] The entire fan housing 2 and nacelle air duct 3 assembly is notable in that it comprises at least one stiffening element 5. This stiffening element 5 is positioned radially outside the air duct 3. In particular, the stiffening element 5 comprises a radially extending flat base 51. The base 51 is attached upstream of the downstream flange 31 of the air sleeve 3 as illustrated in [Fig.4],

[0036] The stiffening element 5 further comprises a wall 52 connected to the base 51 of the stiffening element 5 and extending longitudinally radially outwards from the downstream flange 31 of the air sleeve 3. This wall 52 extends towards the upstream flange 21 of the blower housing 2. Preferably, the wall 52 extends longitudinally radially outwards from the upstream flange 21 of the blower housing 2.

[0037] In other words, the stiffening element 5 has an inverted L shape, one of the branches of the L (the base 51) extends against the downstream flange 31 of the air sleeve 3 and the other branch of the L (the wall 52) extends from the first branch towards the blower housing 2, in particular it radially covers the downstream flange 31 of the air sleeve 3 and the upstream flange 21 of the blower housing 2.

[0038] Such an embodiment makes it possible to further increase the rigidity of the connection between the downstream flange 31 of the air duct 3 and the upstream flange 21 of the blower housing 2 in a localized manner, that is to say, at the point where torsion is likely to occur following radial loading. In particular, with such a wall 52, the stiffening element 5 limits the relative radial displacements between the downstream flange 31 of the air duct 3 and the upstream flange 21 of the blower housing 2, because it allows for better absorption of longitudinal forces but also, and especially, of the torsional forces generated at the connection between the blower housing 2 and the air duct 3 following radial loading, thus making the connection between the blower housing 2 and the air duct 3 more robust, notably by adding additional stiffness.

[0039] As illustrated in [Fig. 4], the stiffening element 5 extends circumferentially along an angular arc. The angular opening is variable to achieve high robustness and reduced weight. Preferably, the angular opening covers at least two mechanical components, preferably only two.

[0040] The stiffening element 5 can be attached to the air sleeve 3, so that it can be integrated into an existing air sleeve 3. In this example, the stiffening element 5 is a single piece, as shown in the figures, simplifying its manufacture and, more importantly, providing greater rigidity. Alternatively, the stiffening element 5 could be made by assembling several parts.

[0041] With reference to [Fig. 4], the stiffening element 5 has at least two through openings formed in the base 51. The stiffening element 5 is connected to the downstream flange 31 of the air sleeve 3 by at least two mechanical members 4 connecting the flange upstream 21 of the blower housing 2 to the downstream flange 31 of the air sleeve 3, respectively passing through the two through openings.

[0042] The through openings allow the passage of the threaded screws 40 of the mechanical members 4. Thus, the head of each threaded screw 40, instead of being in contact against the downstream flange 31 of the air sleeve 3, is in contact against the stiffening element 5. In other words, the stiffening element 5 is interposed between the downstream flange 31 of the air sleeve 3 and the head of the threaded screw 40 of the mechanical member 4.

[0043] Advantageously, when the mechanical member 4 is associated with one or more interface members (washer, spacer, etc.), the stiffening element 5 can be associated with the mechanical member 4 in place of one or more interface members. In other words, it is not necessary to replace the mechanical members 4 according to the prior art to allow the mounting of a stiffening element 5, which is advantageous.

[0044] Such an embodiment makes it possible to increase the rigidity of the connection between the downstream flange 31 of the air duct 3 and the upstream flange 21 of the fan housing 2 in a localized manner, that is, at the point where torsion is likely to occur following radial loading. In other words, the drawbacks of the prior art are addressed at their source. The stiffening elements 5 limit the bending of the mechanical component 4 at which said stiffening element 5 is located and prevent, or at least limit, the risk of breakage and / or cracking. Furthermore, such an embodiment makes it possible to add the stiffening element 5 to an existing turbomachine without requiring modification of the air duct 3 or the fan housing 2, or the addition of any extra parts other than the stiffening element 5, thus complicating the assembly and increasing its cost.Thus, this solution is applicable to all turbomachinery on the market and can be implemented practically and quickly during a maintenance step.

[0045] The assembly may include a plurality of stiffening elements 5 distributed circumferentially on the outside of the air sleeve 3, each stiffening element 5 being connected to the downstream flange 31 of the air sleeve 3. The plurality of stiffening elements 5 distributed on the air sleeve 3 makes it possible to add, at different points of the air sleeve 3, additional stiffness limiting the radial forces transmitted between the upstream flange 21 of the blower housing 2 and the downstream flange 31 of the air sleeve 3 by the mechanical components 4. Thus, the connection between the air sleeve 3 and the blower housing 2 is more robust overall, limiting the risks of relative radial displacement of the flanges of the blower housing 20 and the air sleeve 3, particularly at the point of their connection by the mechanical components 4, and thus also limiting the bending of the mechanical components 4 and therefore their breakage and / or cracking in the event of loss of dawn 11.

[0046] The assembly may also comprise a single stiffening element 5. This stiffening element 5 has a plurality of through openings and is connected to the flange downstream 31 of the air sleeve 3 by a plurality of mechanical parts 4. The number of through openings corresponds to the number of mechanical parts 4 with which the through openings cooperate, each mechanical part 4 passing through respectively one opening of the plurality of through openings.

Claims

Demands

1. An assembly comprising a fan casing (2) of a turbomachine (T), particularly for aircraft, and a nacelle air duct (3), the turbomachine (T) extending along a longitudinal axis (X) and comprising at least one fan (1) mounted to rotate about the longitudinal axis (X) so as to accelerate an upstream to downstream airflow, the fan casing (2) comprising an upstream flange (21) connected to a downstream flange (31) of the air duct (3) by a plurality of mechanical members (4), the assembly characterized in that it comprises at least one stiffening element (5) positioned radially outside the air duct (3), the stiffening element (5) comprising a radially extending flat base (51), the base (51) being arched and connected to the downstream flange (31) of the air duct (3) by at least two mechanical members (4),the stiffening element (5) comprising a wall (52) connected to the base (51) of the stiffening element (5) and extending longitudinally radially outwards to the downstream flange (31) of the air sleeve (3).

2. Assembly according to claim 1, wherein the stiffening element (5) is mounted in a dependent manner on the air sleeve (3).

3. Assembly according to any one of claims 1 to 2, wherein the stiffening element (5) consists of the base (51) and the wall (52).

4. Assembly according to any one of claims 1 to 3, wherein the stiffening element (5) has an L-shaped section.

5. Assembly according to any one of claims 1 to 4, wherein the wall (52) extends longitudinally radially outward to the upstream flange (21) of the blower housing (2).

6. Assembly according to any one of claims 1 to 5, wherein the base (51) extends circumferentially and parallel to the downstream flange (31) around a cylindrical section of the air sleeve (3) adjacent to the downstream flange (31).

7. Assembly according to any one of claims 1 to 6, comprising a plurality of stiffening elements (5).

8. Assembly according to any one of claims 1 to 7, wherein the plurality of stiffening elements (5) is distributed circumferentially outside the air sleeve (3), each stiffening element (5) being connected to the downstream flange (31) of the air sleeve (3).

9. Assembly according to any one of claims 1 to 8, wherein the mechanical parts (4) are bolted parts.

10. Turbomachine (T), particularly for aircraft, comprising a fan housing (2) and a nacelle air duct (3) according to any one of claims 1 to 9, the turbomachine (T) extending along a longitudinal axis (X) and comprising at least one fan (1) mounted movably for rotation in the fan housing (2) along the longitudinal axis (X) so as to accelerate an upstream to downstream airflow.

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