Device and method for parts assembly for a nacelle of an aircraft turbojet engine
10710749 ยท 2020-07-14
Assignee
Inventors
- Philippe BIENVENU (GONFREVILLE L'ORCHER, FR)
- Christophe Cornu (Gonfreville l'Orcher, FR)
- Boualem Merabet (Gonfreville l'Orcher, FR)
- David Delamotte (Gonfreville l'Orcher, FR)
- Serge Beliny (Gonfreville l'Orcher, FR)
Cpc classification
B23K3/087
PERFORMING OPERATIONS; TRANSPORTING
B29C43/00
PERFORMING OPERATIONS; TRANSPORTING
B29C33/02
PERFORMING OPERATIONS; TRANSPORTING
B64F5/10
PERFORMING OPERATIONS; TRANSPORTING
B23K20/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
B64F5/10
PERFORMING OPERATIONS; TRANSPORTING
B23K37/04
PERFORMING OPERATIONS; TRANSPORTING
B23K1/00
PERFORMING OPERATIONS; TRANSPORTING
B29C43/00
PERFORMING OPERATIONS; TRANSPORTING
B29C33/02
PERFORMING OPERATIONS; TRANSPORTING
B23K20/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A device and a method of assembly by brazing or diffusion-welding under a gaseous pressure is provided to make structures for a nacelle of an aircraft turbojet engine such as an inner fixed structure. Sealing of the assembly space inside which the parts to assemble are disposed is provided by tie members exerting a mechanical pressure on mold elements. The tie members include jaws made of a first material and a holding element made of a second material. The first material has a thermal expansion coefficient higher than that of the second material.
Claims
1. A device for assembling by brazing or diffusion-welding metallic parts for a nacelle of an aircraft turbojet engine, the device comprising: tooling including a first mold element and a second mold element, the tooling configured to clasp the metallic parts within an assembly space between the first mold element and the second mold element; a gas injection device to inject a gas into the assembly space such that an increase in pressure presses the metallic parts against each other; an enclosure adapted to receive the tooling and the metallic parts; and a heating device arranged to increase a temperature inside the enclosure to an assembly temperature, wherein the tooling further includes tie members configured to seal the assembly space, each tie member comprising two jaws and a holding element, wherein the holding element is configured to hold the two jaws in a sealing position and cause the two jaws to exert a mechanical pressure against respective bearing surfaces of the first mold element and of the second mold element such that the mechanical pressure inhibits the first mold element and the second mold element from getting away from each other at least along a direction normal to said bearing surfaces at least at the assembly temperature, wherein the two jaws of each tie member comprises a first material and the holding element of each tie member comprises a second material, the first material having a thermal expansion coefficient higher than a thermal expansion coefficient of the second material.
2. The device according to claim 1, wherein the tie members are disposed along a circumference of the first mold element and the second mold element such that the mechanical pressure exerted by the two jaws of each tie member is uniform along said circumference.
3. The device according to claim 1, wherein the first mold element and the second mold element each comprise a third material, the third material having a thermal expansion coefficient higher than that of the second material.
4. The device according to claim 1, wherein each jaw of the two jaws of each tie member comprises: a contact element configured to come into contact with a bearing surface of the first mold element or the second mold element when in a contact position; and a stop element that is received by the holding element and operable to hold the contact element in the contact position.
5. The device according to claim 4, wherein at least one jaw of the two jaws of each tie member comprises an adjustment part between the contact element and the stop element.
6. The device according to claim 1 further comprising a pumping device to create vacuum inside the enclosure.
7. The device according to claim 1, wherein: a circumference of the first mold element comprises at least one protrusion extending along the direction normal to the bearing surfaces of the first and second mold elements; and a circumference of the second mold element comprises at least one cavity, wherein each cavity is configured to house the at least one protrusion when in the sealing position.
8. The device according to claim 1, wherein: a circumference of the second mold element comprises at least one protrusion extending along the direction normal to the bearing surfaces of the first and second mold elements; and a circumference of the first mold element comprises at least one cavity, wherein each cavity is configured to house the at least one protrusion when in the sealing position.
9. A method for assembling by brazing or diffusion-welding metallic parts for a nacelle of an aircraft turbojet engine, the method comprising: arranging the metallic parts against the first mold element; arranging the second mold element against the first mold element such that the metallic parts are clasped within the assembly space; arranging the tie members along the first and second mold elements such that the respective jaws of each tie member is in the sealing position; increasing the temperature inside the enclosure using the heating device; injecting gas into the assembly space using the gas injection device to press the metallic parts against each other; and wherein the method is performed using a device according to claim 1.
Description
DRAWINGS
(1) In order that the disclosure may be well understood, there will now be described various forms thereof, given by way of example, reference being made to the accompanying drawings, in which:
(2)
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(5)
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(9) The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way.
DETAILED DESCRIPTION
(10) The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.
(11) An example of a nacelle 1 is illustrated in
(12) The downstream section 5 includes an inner fixed structure 6 surrounding an upstream portion of the turbojet engine (not represented) and an outer fixed structure 7. The inner fixed structure 6 and the outer fixed structure 7 delimit an annular flow path defining a passage for a cold air flow penetrating the nacelle 1 at the level of the air inlet.
(13)
(14) In a non-limiting manner, the present disclosure allows assembling omega shaped integral structures so as to constitute an inner fixed structure 6. In this example, a first integral structure is formed by the half-barrel 61 and the half-islets 63 and 65, shown in an exploded view in
(15) Typically, the integral structures, given herein as examples, as well as other structures of the nacelle 1 comprises acoustic panels.
(16) In one form, each integral structure of the inner fixed structure 6 includes an acoustic panel 10 provided with a honeycomb-type cellular structure 103 clasped between two skins 101 and 102 (
(17) The present disclosure proposes a device and a method for assembling by brazing or by diffusion-welding metallic parts for a nacelle 1. In particular, these metallic parts may include the skins 101 and 102 and the cellular structure 103 of an acoustic panel 10 forming an integral structure of the inner fixed structure 6. Once assembled, these metallic parts may also form any other structure for the nacelle 1, in particular structures having relatively large dimensions with respect to the dimensions of the nacelle 1 and/or having a relatively complex shape.
(18) Referring to
(19) Typically, the enclosure 8 is an enclosure of a furnace capable of withstanding temperatures for brazing or diffusion-welding the metallic parts 10.
(20) The device comprises a heating device 11 arranged to increase the temperature inside the enclosure 8 up to an assembly temperature allowing assembling the metallic parts 10 by brazing or diffusion-welding. Typically, the assembly temperature is higher than 800 C. and is chosen according to the material of the metallic parts 10. Thus, the assembly temperature typically comprises:
(21) between 830 C. and 980 C., for example 850 C., for parts to assemble made of titanium;
(22) between 1000 C. and 1050 C., for example 1010 C., for parts to assemble made of stainless steel; and
(23) between 580 C. and 620 C., for example 600 C., for parts to assemble made of aluminum.
(24) Referring to
(25) According to the present disclosure, the tooling 9 further comprises tie members 93, 94, 95 and 96 whose function is to provide the sealing of the assembly space 12. Only four tie members are represented in this example for illustration. The number of tie members should be adapted so as to provide a satisfactory sealing (see below). Furthermore, the tie members 93, 94, 95 and 96 are schematically represented in
(26)
(27) In this example, the holding element 973 is received into respective orifices of the mold elements 91 and 92, that is to say that it is mounted throughout the mold elements 91 and 92.
(28) The holding element 973 is arranged to hold the two jaws 971 and 972 in a sealing position illustrated in
(29) In one form, the jaw 971 comprises a contact element 9711 and a stop element 9712, and the jaw 972 comprises a contact element 9721 and a stop element 9722. In the example of
(30) As shown in
(31) Furthermore, the stop elements 9712 and 9722 are arranged to be received by the holding element 973 and to hold the contact elements 9711 and 9721 in the contact position. This reception is herein provided by apertures 9731 and 9732 formed in the holding element 973. The stop elements 9712 and 9722 and the holding element 973 are linked according to a slider joint allowing inserting the stop elements 9712 and 9722 into the apertures 9731 and 9732 along the direction D2.
(32) In the example of
(33) In this example, the tie member 97 comprises a screw 974 configured to inhibit the stop element 9712 from slipping along the direction D2.
(34) Each tie member 93, 94, 95 and/or 96 of the tooling 9 shown in
(35) In order to provide a satisfactory sealing of the assembly space 12, the tooling 9 comprises tie members disposed along a circumference of the first mold element 91 and of the second mold element 92 so that the respective mechanical pressure exerted by the jaws of the tie members is substantially uniform along said circumference.
(36) For example, tie members may be disposed according to a 300 mm step. In other words, two contiguous tie members may be spaced apart by 300 mm from each other. In one variation, this step should be adjusted according to the respective materials of the tooling 9, the pressure within the assembly space 12 and the assembly temperature.
(37) According to the present disclosure, the first mold element 91 and the second mold element 92 comprise a third material, for example steel. The holding element of the tie members 93, 94, 95 and 96 comprises a second material, for example molybdenum. The jaws 971 and 972 of the tie members 93, 94, 95 and 96 comprise a first material, for example stainless steel. In any case, the first material has a thermal expansion coefficient higher than that of the second material, for example a thermal expansion coefficient twice to four times higher than that of the second material.
(38) Furthermore, the material of the mold elements 91 and 92, that is to say said third material has a thermal expansion coefficient higher than that of the second material.
(39) The increase of the thermal expansion coefficient of the first material and/or the third material, with respect to that of the second material, allows amplifying the clamping at the assembly temperature, that is to say increasing the respective mechanical pressure exerted by the jaws 971 and 972 on the mold elements 91 and 92, thanks to the respective thermal expansion of these different materials. This provides the sealing of the assembly space 12.
(40) Referring to
(41) As illustrated in
(42) More generally, the first mold element 91 may comprise one or several cavity(ies) and/or one or several protrusion(s) which cooperate respectively with one or several protrusion(s) and/or one or several cavity(ies) of the second mold element 92.
(43) In the sectional plane of
(44) An assembly method according to the present disclosure is typically as follows.
(45) First, the metallic parts 10 to assemble are disposed against the first mold element 91. More specifically, referring to
(46) Afterwards, the second mold element 92 is disposed against the first mold element 91 so as to clasp the metallic parts 10 within the assembly space 12.
(47) Afterwards, the tie members 93, 94, 95 and 96 are disposed so as to place the respective jaws of the tie members in the sealing position (
(48) The tooling 9 and the metallic parts 10 are placed into the enclosure 8 (
(49) Afterwards, a vacuum is created inside the enclosure 8 using a pumping device (not represented).
(50) Afterwards, the temperature inside the enclosure 8 is increased using a heating device 11 up to the assembly temperature so as to assemble the metallic parts 10 by brazing or diffusion-welding.
(51) When the assembly temperature is reached, a gas is injected into the assembly space 12 using a gas injection device (not represented) so as to press the metallic parts 10 against each other. In this example, the inner skin 102 may thus be pressed against the cellular structure 103. The gas injection may be carried out before the enclosure 8 reaching the assembly temperature. Nonetheless, it is desirable to start the gas injection when the assembly temperature is reached in order to benefit from the sealing achieved by the device.
(52) Of course, the present disclosure is not limited to the examples that have been described and numerous arrangements may be brought to these examples without departing from the scope of the present disclosure.
(53) Unless otherwise expressly indicated herein, all numerical values indicating mechanical/thermal properties, compositional percentages, dimensions and/or tolerances, or other characteristics are to be understood as modified by the word about or approximately in describing the scope of the present disclosure. This modification is desired for various reasons including industrial practice, manufacturing technology, and testing capability.
(54) The description of the disclosure is merely exemplary in nature and, thus, variations that do not depart from the substance of the disclosure are intended to be within the scope of the disclosure. Such variations are not to be regarded as a departure from the spirit and scope of the disclosure.