WO2008023293A2 - Method, system and equipment for making parts made of composite material, in particular reinforced parts for aircraft fuselages - Google Patents

Method, system and equipment for making parts made of composite material, in particular reinforced parts for aircraft fuselages Download PDF

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Publication number
WO2008023293A2
WO2008023293A2 PCT/IB2007/052495 IB2007052495W WO2008023293A2 WO 2008023293 A2 WO2008023293 A2 WO 2008023293A2 IB 2007052495 W IB2007052495 W IB 2007052495W WO 2008023293 A2 WO2008023293 A2 WO 2008023293A2
Authority
WO
WIPO (PCT)
Prior art keywords
compacting
equipment
composite material
zone
arms
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/IB2007/052495
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French (fr)
Other versions
WO2008023293A3 (en
Inventor
Francesco Livi
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Alenia Aermacchi SpA
Original Assignee
Alenia Aeronautica SpA
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Alenia Aeronautica SpA filed Critical Alenia Aeronautica SpA
Priority to EP07825850A priority Critical patent/EP2040909B1/en
Priority to US12/306,493 priority patent/US7967596B2/en
Priority to AT07825850T priority patent/ATE536985T1/en
Priority to ES07825850T priority patent/ES2379403T3/en
Publication of WO2008023293A2 publication Critical patent/WO2008023293A2/en
Publication of WO2008023293A3 publication Critical patent/WO2008023293A3/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C70/00Shaping composites, i.e. plastics material comprising reinforcements, fillers or preformed parts, e.g. inserts
    • B29C70/04Shaping composites, i.e. plastics material comprising reinforcements, fillers or preformed parts, e.g. inserts comprising reinforcements only, e.g. self-reinforcing plastics
    • B29C70/28Shaping operations therefor
    • B29C70/40Shaping or impregnating by compression not applied
    • B29C70/42Shaping or impregnating by compression not applied for producing articles of definite length, i.e. discrete articles
    • B29C70/44Shaping or impregnating by compression not applied for producing articles of definite length, i.e. discrete articles using isostatic pressure, e.g. pressure difference-moulding, vacuum bag-moulding, autoclave-moulding or expanding rubber-moulding
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C2791/00Shaping characteristics in general
    • B29C2791/004Shaping under special conditions
    • B29C2791/006Using vacuum
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29KINDEXING SCHEME ASSOCIATED WITH SUBCLASSES B29B, B29C OR B29D, RELATING TO MOULDING MATERIALS OR TO MATERIALS FOR MOULDS, REINFORCEMENTS, FILLERS OR PREFORMED PARTS, e.g. INSERTS
    • B29K2105/00Condition, form or state of moulded material or of the material to be shaped
    • B29K2105/06Condition, form or state of moulded material or of the material to be shaped containing reinforcements, fillers or inserts
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29LINDEXING SCHEME ASSOCIATED WITH SUBCLASS B29C, RELATING TO PARTICULAR ARTICLES
    • B29L2031/00Other particular articles
    • B29L2031/30Vehicles, e.g. ships or aircraft, or body parts thereof
    • B29L2031/3076Aircrafts
    • B29L2031/3082Fuselages
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10STECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10S425/00Plastic article or earthenware shaping or treating: apparatus
    • Y10S425/06Vacuum

Definitions

  • the present invention relates, in general, to a method to manufacture components made of composite materials, to a system comprising equipment to manufacture composite material components and to the equipment to manufacture those components.
  • the present invention relates to a method, system and equipment to manufacture cylindrical components, assembled to obtain an aircraft's fuselage.
  • a method and system to manufacture cylindrical parts (fuselage parts) to be assembled to obtain an aircraft's fuselage.
  • composite materials for example, materials made of carbon fibers, that have, in general, the characteristic to associate a great rigidity to a low specific weight.
  • this part comprises reinforcing elements (stringers) 21 (Fig. 1 and Fig. 2) and a protective layer placed on a substantially cylindrical surface, even though other shapes are possible, bonded to the stringers after polymerization.
  • the stringers 21, made of non-polymerized composite material are mounted on a mandrel 11 of a substantially cylindrical structure, and compacted over a plurality of compacting zones 12 using vacuum bags 15, mounted and manually secured on the compacting zones of the mandrel 11.
  • a composite material fabric is placed over the stringers, followed by further compacting using vacuum bags 15 mounted and manually secured, and lastly the polymerization is done by placing, for example, the stringers and the fabric inside an oven.
  • the first typical problem of the known art is that the stringers compacting phase, requiring the manual mounting of the vacuum bags 15 and their securing to the compacting zone 12 using a manually applied sealer, beside having particularly elevated costs, causes also an inconsistent level of quality, which depends on the skill level of the individual operators that effectuate the manual operations of mounting and securing the vacuum bags .
  • a second problem of the known art is that the compacting is followed by the destruction of the vacuum bags 15.
  • the scope of the present invention is a method and a system to manufacture composite material parts that do not require manual labor for the compacting phase of the stringers and/or for the compacting of the layer of fabric covering the fuselage on the stringers.
  • the scope of the present invention is also a system and equipment that do not require the destruction of the vacuum bags after their use.
  • the system comprises at least one compacting equipment which includes a vacuum bag designed to be applied in a removable manner to the compacting zones on the mandrel to compact the composite material parts not yet polymerized.
  • the compacting equipment comprises a frame having on one side, to be in contact with the mandrel, a porous material having the characteristics of blocking the air flow in the compacting zone.
  • the frame of the compacting equipment comprises a connector, eventually equipped with a non-return valve, to which connect the vacuum pump generating the vacuum inside the compacting zone .
  • Fig.l is a schematic representation of a system to manufacture composite material fuselage components, according to the known art
  • Fig.2 is a schematic representation of an application phase of the vacuum bags according to the known art
  • Fig.3a is a schematic representation of a system to manufacture the composite material for fuselage components according to the invention.
  • Fig.3b is a schematic representation of a phase of the vacuum bags application according to the invention.
  • Fig.4 is a schematic representation of an automated equipment for the vacuum bags application according to the invention.
  • a system 10 to manufacture composite material parts, particularly reinforced parts with stringers 21 of composite material comprises, for example, a mandrel or polymerization tool 11 and a plurality of equipment or compacting tools 30.
  • the system 10 comprises also, a first numeric-controlled machine 16 configured to retrieve the compacting equipments from a storage area and to position them on the mandrel 11, as it will be described further in more details.
  • the mandrel 11 can rotate around its own axis, continuously or according to predetermined angles, and show in the upper area, at least one compacting zone 12.
  • the compacting zone 12 comprises one or more slots 14, eventually in a different number among different areas, configured to hold, for example, the stringers 21.
  • the shape, dimensions and the number of slots 14 can vary considerably, according to the type of the reinforced parts to produce .
  • the number of slots in a compacting zone can be, for example, ten or twelve.
  • the stringers 21 are positioned inside the respective slots using a second numeric-controlled machine 26 designed to retrieve the stringers from a stringers storage area and position them in the slots 14 inside the compacting zone that at interval times is presented on the upper area of the mandrel 11.
  • the stringers can also be positioned manually inside the slots.
  • the compacting tools 30, according to the preferred embodiment of the invention are in a number to "cover" the entire mandrel 11, but, naturally, in other embodiments, they can also be in a lower number.
  • Every compacting tool 30 (Fig. 4) comprises preferably, a frame 31, for example a rectangular steel frame, having an upper side 32a and a lower side 32b, two straight arms, respectively 31a and 31b, and two arms, respectively 31c and 31d, curved according to a curving radius slightly bigger than the radius of the mandrel 11 (Fig. 3a, Fig. 3b, Fig. 4) .
  • all arms can be straight, or the frame can be differently shaped, beside being rectangular.
  • Every frame's arm, from 31a to 31d, has preferably a quadrangular section, comprising a plurality of holes 43a on the lower side and it is configured to create an internal channel communicating with the correspondent internal channels of the other arms.
  • At least one of the arms comprises a connecting element 37 communicating with the arms' conduits to which to connect a pump 53 (a vacuum pump) , of known kind, to generate a vacuum condition.
  • the connecting element can comprise also a non-return valve, of known kind, to stop the air influx inside the frame's conduits, in case the vacuum pump 53 is disconnected.
  • the frame comprises hooking elements of mechanical type, for example dowel pins or hooks, to fasten the compacting equipment 30 to the mandrel 11 inside the compacting zone.
  • the lower side 32b of the frame 31 is connected to a layer of porous material 33, for example a semi-closed strip of foam of E. P. D.M type (Ethylene-Propylene- Diene Monomer) NITTO 686 or a foam with substantially similar characteristics .
  • a vacuum bag is interposed between the porous material (foam or strip of foam) 33, in particular between the first side of the foam 33 and the lower side 32b of the frame 31 a vacuum bag is interposed.
  • Said vacuum bag 35 is attached, glued for example, to the first face of the foam 33 and to the lower side 32b of the frame, so that the foam 33, vacuum bag 35 and the frame make one body.
  • the foam 33 and the vacuum bag 35 have respective holes, 43b and 43c, in correspondence to the holes 43a of the lower side 32b.
  • the foam strip 33 preferably, has the first face connected to the entire perimeter of the lower side 32b of the frame 31 and has a second face configured to become in contact with the compacting zone; the foam has a thickness to compensate possible curving differences between the compacting zone 12 and the curved arms, 31c and 31d, and/or possible irregularities in the compacting zone 12, when the second face of the foam comes in contact with the compacting zone.
  • the foam has a thickness between 20 and 30 mm.
  • the foam 33 can have a different thickness but still capable to compensate shape differences between the compacting zone 12 and the frame 31.
  • the foam 33 has the function, when used, to stop the air influx inside the vacuum bag following the mounting of the vacuum pump 53 to the connecting element 37 and to maintain a predetermined vacuum level in a predetermined area, e.g. the area delimited by the foam 33 of the compacting tool 30 when in contact with the compacting zone 12 on the mandrel 11.
  • the compacting zone 12 positioned in the upper area of the mandrel 11 is loaded, for example, using the second numeric-controlled machine 26, with a number of stringers equal to the number of the slots 14 in the compacting zone 12.
  • the first numeric-controlled machine 16 retrieves from a storage area a compacting equipment 30 and positions it in correspondence, for example, of the compacting zone 12, to make, thanks to the presence of the foam 33, a kind of sandwich with the inside being the stringers 21.
  • the pump (53) is applied to the compacting equipment to produce a vacuum in the stringers area.
  • the vacuum force pushes the vacuum bag, as illustrated in Fig. 3b, against the stringers to shape them by making them to take the slots' shapes; the porous foam material applies pressure on the compacting zone 12 surface preventing the air from entering the stringers area.
  • a fourth phase for example, the mandrel 11 is rotated to show the next compacting zone (12) in the upper area.
  • the vacuum pump In such a phase, and in the subsequent phases until the completion of the compacting phase of all required stringers, the vacuum pump
  • the compacting procedure restarts from the first phase until the compacting phase completion.
  • the compacting equipment 30 are taken by the first numeric-controlled machine 16 and returned to the storage area for the next use.
  • the described process can be repeated, with equivalent steps, even after the positioning of the fabric over the stringers, according to the known process.
  • the vacuum bags are fully reusable.
  • the inventor has detected with experimentation that the vacuum level that can be obtained with the system and the equipment according to the invention (0.8 Kg/cm 2 ) is better than the one obtained by the manual process, which is about 0.6
  • the description refers to a compacting equipment to be used only for the compacting phases.
  • the compacting equipment comprises a vacuum bag and a foam that, although has substantially similar features to the one described, it can be resistant also to high polymerizing temperatures, to allow the equipment to be used during the polymerization phase.
  • Obvious modifications or variations are possible according to the description above, in the dimensions, shapes, materials, components, as well in the construction details as illustrated and in the operating method without deviating from the spirit of the invention, as defined in the following claims.

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  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Composite Materials (AREA)
  • Mechanical Engineering (AREA)
  • Moulding By Coating Moulds (AREA)
  • Casting Or Compression Moulding Of Plastics Or The Like (AREA)
  • Processing And Handling Of Plastics And Other Materials For Molding In General (AREA)

Abstract

The present invention relates to a system to manufacture composite material parts comprising a supporting mandrel having at least one compacting zone (12) configured to contain at least one composite material element (21) to be compacted by applying a certain degree of vacuum. The system comprises also at least one compacting equipment (30) comprising a frame (31) having a plurality of interconnected arms along a predetermined perimeter, at least one vacuum bag (35) attached to a side of the frame (31) along its perimeter and configured to compact the element (21), at least one porous material (33) attached to the vacuum bag (25) along the frame's perimeter and configured to adhere in a removable way to the compacting zone (12) and to impede the air influx during the compacting of element (21). The invention also relates to a compacting equipment and to a method to manufacture composite material parts.

Description

METHOD, SYSTEM AND EQUIPMENT FOR MAKING PARTS MADE OF COMPOSITE MATERIAL, IN PARTICULAR REINFORCED PARTS FOR AIRCRAFT FUSELAGES
Technical Field
The present invention relates, in general, to a method to manufacture components made of composite materials, to a system comprising equipment to manufacture composite material components and to the equipment to manufacture those components. In particular, the present invention relates to a method, system and equipment to manufacture cylindrical components, assembled to obtain an aircraft's fuselage. To simplify the description, unless specified otherwise, from now on it will be referred as a method and system to manufacture cylindrical parts (fuselage parts) to be assembled to obtain an aircraft's fuselage.
Related Art
It is known, that one way to improve the aircraft's performance is to use composite materials, for example, materials made of carbon fibers, that have, in general, the characteristic to associate a great rigidity to a low specific weight.
The introduction of composite materials to the manufacturing of fuselage components requires methods and systems particularly complex and highly labor-intensive. Referring to a fuselage's section, this part comprises reinforcing elements (stringers) 21 (Fig. 1 and Fig. 2) and a protective layer placed on a substantially cylindrical surface, even though other shapes are possible, bonded to the stringers after polymerization.
According to the known art, for example, the stringers 21, made of non-polymerized composite material, are mounted on a mandrel 11 of a substantially cylindrical structure, and compacted over a plurality of compacting zones 12 using vacuum bags 15, mounted and manually secured on the compacting zones of the mandrel 11. After the compacting of the stringers, a composite material fabric is placed over the stringers, followed by further compacting using vacuum bags 15 mounted and manually secured, and lastly the polymerization is done by placing, for example, the stringers and the fabric inside an oven.
The first typical problem of the known art is that the stringers compacting phase, requiring the manual mounting of the vacuum bags 15 and their securing to the compacting zone 12 using a manually applied sealer, beside having particularly elevated costs, causes also an inconsistent level of quality, which depends on the skill level of the individual operators that effectuate the manual operations of mounting and securing the vacuum bags .
A second problem of the known art is that the compacting is followed by the destruction of the vacuum bags 15.
In fact, because the vacuum bags 15 are glued to the first compacting zone, they can only be destroyed when removed.
Description of the Invention
The scope of the present invention is a method and a system to manufacture composite material parts that do not require manual labor for the compacting phase of the stringers and/or for the compacting of the layer of fabric covering the fuselage on the stringers. The scope of the present invention is also a system and equipment that do not require the destruction of the vacuum bags after their use.
The scope is achieved by the method and system to manufacture composite material parts, particularly reinforced parts for aircraft's fuselage, as claimed.
The claims are an integral part of the technical teaching regarding the invention.
According to a preferred embodiment, the system comprises at least one compacting equipment which includes a vacuum bag designed to be applied in a removable manner to the compacting zones on the mandrel to compact the composite material parts not yet polymerized.
According- to a further feature of the present invention, the compacting equipment comprises a frame having on one side, to be in contact with the mandrel, a porous material having the characteristics of blocking the air flow in the compacting zone.
According to another feature of the present invention, the frame of the compacting equipment comprises a connector, eventually equipped with a non-return valve, to which connect the vacuum pump generating the vacuum inside the compacting zone .
Brief Description of the Drawings
This and other features of the present invention will be clear from the following description of the preferred embodiment of the invention, documented as an example and not as a limitation, with the support of the attached drawings wherein elements labeled with the same number or similar numeric reference indicate components having the same or similar function, and wherein: Fig.l is a schematic representation of a system to manufacture composite material fuselage components, according to the known art;
Fig.2 is a schematic representation of an application phase of the vacuum bags according to the known art;
Fig.3a is a schematic representation of a system to manufacture the composite material for fuselage components according to the invention;
Fig.3b is a schematic representation of a phase of the vacuum bags application according to the invention;
Fig.4 is a schematic representation of an automated equipment for the vacuum bags application according to the invention.
Description of the Preferred Embodiment
With reference to Fig. 3a and 3b, a system 10 to manufacture composite material parts, particularly reinforced parts with stringers 21 of composite material, comprises, for example, a mandrel or polymerization tool 11 and a plurality of equipment or compacting tools 30.
The system 10 according to its preferred embodiment, comprises also, a first numeric-controlled machine 16 configured to retrieve the compacting equipments from a storage area and to position them on the mandrel 11, as it will be described further in more details.
The mandrel 11 can rotate around its own axis, continuously or according to predetermined angles, and show in the upper area, at least one compacting zone 12. The compacting zone 12 comprises one or more slots 14, eventually in a different number among different areas, configured to hold, for example, the stringers 21. The shape, dimensions and the number of slots 14 can vary considerably, according to the type of the reinforced parts to produce .
In case of an aircraft's fuselage, the number of slots in a compacting zone can be, for example, ten or twelve.
The stringers 21, made of composite material, such as non- polymerized (not cured) carbon, thanks to the fact they are not yet polymerized, have the characteristic of being deformed to take the slots' shape after being inserted into the slots 14. Preferably, the stringers 21 are positioned inside the respective slots using a second numeric-controlled machine 26 designed to retrieve the stringers from a stringers storage area and position them in the slots 14 inside the compacting zone that at interval times is presented on the upper area of the mandrel 11.
In other embodiments, the stringers can also be positioned manually inside the slots.
The compacting tools 30, according to the preferred embodiment of the invention, are in a number to "cover" the entire mandrel 11, but, naturally, in other embodiments, they can also be in a lower number.
Every compacting tool 30 (Fig. 4) comprises preferably, a frame 31, for example a rectangular steel frame, having an upper side 32a and a lower side 32b, two straight arms, respectively 31a and 31b, and two arms, respectively 31c and 31d, curved according to a curving radius slightly bigger than the radius of the mandrel 11 (Fig. 3a, Fig. 3b, Fig. 4) .
Naturally, according to other embodiments, all arms can be straight, or the frame can be differently shaped, beside being rectangular.
Every frame's arm, from 31a to 31d, has preferably a quadrangular section, comprising a plurality of holes 43a on the lower side and it is configured to create an internal channel communicating with the correspondent internal channels of the other arms.
Preferably, at least one of the arms, for example the arm 31a, comprises a connecting element 37 communicating with the arms' conduits to which to connect a pump 53 (a vacuum pump) , of known kind, to generate a vacuum condition. The connecting element can comprise also a non-return valve, of known kind, to stop the air influx inside the frame's conduits, in case the vacuum pump 53 is disconnected.
Preferably, the frame comprises hooking elements of mechanical type, for example dowel pins or hooks, to fasten the compacting equipment 30 to the mandrel 11 inside the compacting zone. In the preferred embodiment, the lower side 32b of the frame 31 is connected to a layer of porous material 33, for example a semi-closed strip of foam of E. P. D.M type (Ethylene-Propylene- Diene Monomer) NITTO 686 or a foam with substantially similar characteristics . Between the porous material (foam or strip of foam) 33, in particular between the first side of the foam 33 and the lower side 32b of the frame 31 a vacuum bag is interposed. Said vacuum bag 35 is attached, glued for example, to the first face of the foam 33 and to the lower side 32b of the frame, so that the foam 33, vacuum bag 35 and the frame make one body. The foam 33 and the vacuum bag 35 have respective holes, 43b and 43c, in correspondence to the holes 43a of the lower side 32b. The foam strip 33, preferably, has the first face connected to the entire perimeter of the lower side 32b of the frame 31 and has a second face configured to become in contact with the compacting zone; the foam has a thickness to compensate possible curving differences between the compacting zone 12 and the curved arms, 31c and 31d, and/or possible irregularities in the compacting zone 12, when the second face of the foam comes in contact with the compacting zone.
In the preferred embodiment, in which the frame has a width of about 2.5 m, a depth comprised between 8 and 16 m, and the mandrel has a curving radius of about 3 m, the foam has a thickness between 20 and 30 mm.
Naturally, in other embodiments, the foam 33 can have a different thickness but still capable to compensate shape differences between the compacting zone 12 and the frame 31. Preferably, the foam 33 has the function, when used, to stop the air influx inside the vacuum bag following the mounting of the vacuum pump 53 to the connecting element 37 and to maintain a predetermined vacuum level in a predetermined area, e.g. the area delimited by the foam 33 of the compacting tool 30 when in contact with the compacting zone 12 on the mandrel 11.
The functioning of the system 10, as previously described, is the following.
In a first phase, the compacting zone 12, positioned in the upper area of the mandrel 11, is loaded, for example, using the second numeric-controlled machine 26, with a number of stringers equal to the number of the slots 14 in the compacting zone 12.
In a second phase, the first numeric-controlled machine 16 retrieves from a storage area a compacting equipment 30 and positions it in correspondence, for example, of the compacting zone 12, to make, thanks to the presence of the foam 33, a kind of sandwich with the inside being the stringers 21.
In a third phase, the pump (53) is applied to the compacting equipment to produce a vacuum in the stringers area. The vacuum force pushes the vacuum bag, as illustrated in Fig. 3b, against the stringers to shape them by making them to take the slots' shapes; the porous foam material applies pressure on the compacting zone 12 surface preventing the air from entering the stringers area.
In a fourth phase, for example, the mandrel 11 is rotated to show the next compacting zone (12) in the upper area. In such a phase, and in the subsequent phases until the completion of the compacting phase of all required stringers, the vacuum pump
53 remains connected to different connecting elements for a predetermined time, for example, the time necessary to shape conveniently the stringers, for example one hour. After completion of the fourth phase, the compacting procedure restarts from the first phase until the compacting phase completion.
After the compacting phase is completed, the compacting equipment 30 are taken by the first numeric-controlled machine 16 and returned to the storage area for the next use.
The described process can be repeated, with equivalent steps, even after the positioning of the fabric over the stringers, according to the known process.
Thanks to the invention, the vacuum bags are fully reusable.
Furthermore, the use of foam guarantees a constant or better quality level with respect to the known process.
In fact, the inventor has detected with experimentation that the vacuum level that can be obtained with the system and the equipment according to the invention (0.8 Kg/cm2) is better than the one obtained by the manual process, which is about 0.6
Kg/cm2.
This description refers to the manufacturing of parts made of composite material for aircrafts, but it is easily understood that that same procedures can be applied to the manufacturing of body parts made of composite material for high speed vehicles such as trains, high performance cars etc. Although a mandrel has been chosen for the manufacturing of composite material parts, it is easily understood that the described method is also applicable whenever a rotating mandrel is not present, but the manufacturing of composite material parts simply requires a vacuum bag's use.
The description refers to a compacting equipment to be used only for the compacting phases.
Naturally, in other embodiments, in which, for example, the compacting equipment comprises a vacuum bag and a foam that, although has substantially similar features to the one described, it can be resistant also to high polymerizing temperatures, to allow the equipment to be used during the polymerization phase. Obvious modifications or variations are possible according to the description above, in the dimensions, shapes, materials, components, as well in the construction details as illustrated and in the operating method without deviating from the spirit of the invention, as defined in the following claims.

Claims

1. A system to manufacture composite material comprising:
- a supporting mandrel (11) having at least one compacting zone (12) , said compacting zone being configured to hold at least one composite material element (21) designed to be compacted by applying a pre-determined vacuum level; characterized by
- at least one compacting equipment (30) comprising
- a frame (31) having a plurality of arms (31a, 31b, 31c, 3Id) interconnected along a pre-determined perimeter;
- at least one vacuum bag (35) attached to a side (32b) of said frame (31) along said perimeter and configured to compact said at least one element (21);
- at least one porous material (33) attached to said vacuum bag (35) along said perimeter and configured to adhere in a removable way to said compacting zone (12) and to impede the air flux inside said compacting zone during the compacting phase of said at least one element (21) .
2. A system according to claim 1 wherein said mandrel (11) has a shape substantially cylindrical with a determined curving radius .
3. A system according to either claim 1 or 2 wherein said frame (31) has a shape substantially rectangular and comprises a first pair of opposite arms (31a, 31b) having a substantially straight profile and a second pair of opposite arms (31c, 3Id) having a substantially curved profile with a determined curving radius.
4. A system according to claims 2 and 3 wherein said determined curving radius of said second pair of opposite arms (31c, 3Id) is greater than said determined curving radius of said mandrel (11) .
5. A system according to any one of the preceding claims, wherein at least one of said arms (31a, 31b, 31c, 3Id) comprises connection means (37) configured to be connected to a pump (53) configured to create a vacuum inside said compacting zone.
6. A system according to any one of the preceding claims, wherein said side (32b) of said arms (31a, 31b, 31c, 3Id) , said vacuum bag (35) and said porous material (33) comprise a plurality of holes (43a, 43b, 43c) aligned along said perimeter.
7. A system according to any one of the preceding claims further comprising first numeric-controlled means (16) configured to retrieve said at least one compacting equipment (30) from a storage area and position it on said mandrel (11) .
8. A system according to any one of the preceding claims further comprising second numeric-controlled means (26) configured to retrieve said elements to be compacted (21) from a storage area and position them inside said compacting zone (12) .
9. Equipment to manufacture composite material parts starting from at least one composite material element to be compacted characterized by
- a frame (31) having a plurality of arms (31a, 31b, 31c, 3Id) , interconnected among them along a determined perimeter; - at least one vacuum bag (35) attached to a side (32b) of said frame (31) along a determined perimeter and configured to compact said at least one element (21) ;
- at least one porous material (33) attached to the vacuum bag (35) along said perimeter and configured to adhere in a removable way to a surface on which it is positioned said at least one element to be compacted (21) so as to define a compacting zone in which to impede the air influx during the compacting of said at least one element (21) .
10. Equipment according to claim 9 wherein said frame (31) has a shape substantially rectangular and comprises a first pair of opposite arms (31a, 31b) having a substantially straight profile and a second pair of opposite arms (31c, 3Id) having a substantially curved profile with a determined curving radius.
11. Equipment according to any one of preceding claims 9 or 10 wherein said arms (31a, 31b, 31c, 3Id) comprise connection means (37) configured to be connected to a pump (53) to create a vacuum inside said compacting zone.
12. Equipment according to claim 11 wherein said connection means comprise a non-return valve.
13. Equipment according to any one of the preceding claims 9 to 12 wherein said side (32b) of said arms (31a, 31b, 31c, 3Id) , said vacuum bag (35) and said foam comprise a plurality of holes (43a, 43b, 43c) aligned along said perimeter.
14. A method to manufacture composite material parts comprising the steps of - positioning at least one element of composite material (21) to be compacted inside a compacting zone (12);
- positioning at least one compacting equipment comprising a vacuum bag (35) over said compacting zone (12), said compacting equipment (30) being configured to adhere in a removable way by means of a said porous material (33) to said compacting zone (12) and to impede the air influx from said compacting zone;
- compacting said at least one element by producing a certain vacuum level in said compacting zone (12) .
15. A method according to claim 14 comprising also the steps of retrieving by way of a first numeric-controlled means (16) said at least one compacting equipment (30) from a storage area, and positioning by way of said first numeric-controlled means (16) said at least one compacting equipment (30) over said compacting zone (12) .
16. A method according to any one of claims 14 or 15 comprising also the steps of - retrieving by way of second numeric-controlled means (26) said elements to be compacted (21) from a storage area, and
- positioning by way of said second numeric-controlled means (26) said elements to be compacted inside said compacting zone (12).
PCT/IB2007/052495 2006-06-28 2007-06-27 Method, system and equipment for making parts made of composite material, in particular reinforced parts for aircraft fuselages Ceased WO2008023293A2 (en)

Priority Applications (4)

Application Number Priority Date Filing Date Title
EP07825850A EP2040909B1 (en) 2006-06-28 2007-06-27 Method, system and equipment for making parts made of composite material, in particular reinforced parts for aircraft fuselages
US12/306,493 US7967596B2 (en) 2006-06-28 2007-06-27 Method, system and equipment for making parts made of composite material, in particular reinforced parts for aircraft fuselages
AT07825850T ATE536985T1 (en) 2006-06-28 2007-06-27 METHOD, SYSTEM AND EQUIPMENT FOR PRODUCING PARTS FROM COMPOSITE MATERIAL, IN PARTICULAR REINFORCED PARTS FOR AIRCRAFT FUSES
ES07825850T ES2379403T3 (en) 2006-06-28 2007-06-27 Method, system and equipment for making parts made of composite material, in particular reinforced parts for aircraft fuselages

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
ITTO2006A000477 2006-06-28
IT000477A ITTO20060477A1 (en) 2006-06-28 2006-06-28 METHOD, SYSTEM AND EQUIPMENT TO REALIZE COMPOSITE MATERIAL PARTS, IN PARTICULAR REINFORCED PARTS FOR AIRCRAFT FUSELAGE

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WO2008023293A2 true WO2008023293A2 (en) 2008-02-28
WO2008023293A3 WO2008023293A3 (en) 2008-05-02

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US (1) US7967596B2 (en)
EP (1) EP2040909B1 (en)
AT (1) ATE536985T1 (en)
ES (1) ES2379403T3 (en)
IT (1) ITTO20060477A1 (en)
WO (1) WO2008023293A2 (en)

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Also Published As

Publication number Publication date
EP2040909A2 (en) 2009-04-01
WO2008023293A3 (en) 2008-05-02
ITTO20060477A1 (en) 2007-12-29
US7967596B2 (en) 2011-06-28
EP2040909B1 (en) 2011-12-14
US20090250165A1 (en) 2009-10-08
ES2379403T3 (en) 2012-04-25
ATE536985T1 (en) 2011-12-15

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