Plant Tour: FACC, Reid im Innkreis, Austria
Tier 1 supplier of composite aerostructures, interiors and engine components, pursues innovations, efficiency and growth.
(Top left, clockwise) FACC Plant 1 and Plant 4 in Reid im Innkreis, hot drape forming, outer bypass duct for engines, baggage bin assembly, FACC Technology Center, translating sleeves for thrust reversers and (center) the RTM main fitting for A330/A340 and A350 spoilers. Source | FACC
When it received Frost & Sullivan’s Global Market Share Leadership Award in 2012, FACC AG (Ried im Innkreis, Austria) already had a 30-year history in composites and had become a Tier 1 supplier to Airbus, Boeing, Bombardier, Dassault and Embraer. Yet it remains relatively unknown in the composites industry.
This hardly seems possible for a company that holds contracts for parts on every major commercial airframe now in production. FACC employs more than 3,000 people (more than 700 are engineers) and maintains four fabrication facilities totaling 60,300 square meters in Austria alone. But it also has forged joint ventures in Russia, China and Abu Dhabi in the U.A.E., and has customer support/engineering operations in China, Germany, India, Russia, Canada and the U.S.
The company has focused on three product portfolios: Interiors, Aerostructures and Engines & Nacelles. Considering innovation one of its core capabilities — e.g., the now-standard door hinge with integrated damper for interior stowbins and the industry’s first composite wingbox components produced in a one-shot, out-of-autoclave (OOA) process — FACC is poised to expand into primary structures and recently guided CW through its Austrian facilities, offering insights into its global operations. (See “FACC timeline: Engineer-centric evolution.”)
Emphasis on innovation
FACC replaced the costly forged aluminum main fitting in A330/A340 and A350 spoilers with RTM CFRP, cutting CTE issues and 30% weight. Source | FACC AG
Preform for the A350 spoiler center hinge fitting being formed prior to RTM. Source | FACC AG
CW’s tour began in Plant 1, which houses FACC’s corporate headquarters as well as production of aerostructures and some engine and nacelle components. CEO Walter Stephan and aerostructures product development director Hermann Filsegger explain the company’s success results from its focus on finding ways to cut weight, reduce fasteners/part count, simplify installation and lower costs.
A case in point involves spoilers for the Airbus A330/A340, previously assembled from several precured carbon fiber-reinforced polymer (CFRP) parts bonded to an aluminum main fitting, where the difference in coefficient of thermal expansion (CTE) between the two materials was an issue. “We saved 15% weight vs. the original design by using RTM [resin transfer molding] and CFRP,” said Filsegger. “We had no more CTE issues nor need to purchase expensive forged metal fittings.” The RTM fitting has flown on the A330 for years without any problem, he notes, and FACC has since developed the design further for the A350.
The part uses 977-20 toughened epoxy from Cytec (now Syensqo, Alpharetta, Ga., U.S.), which suggested FACC involvement in the Irkut (Moscow, Russia) MS-21 wingbox program Filsegger explains,“The customers knew they wanted to proceed with an OOA composite concept for the wing but were looking for a partner with expertise in the technology.” He contends that FACC’s tooling concept was a smarter option both for the infusion process and final assembly, “because we calculated the thermal expansion and laminate warpages so that the resulting parts are true to dimension. Not just for expansion and shrinkage, which is expected, but more importantly, we could manage the remaining springback in final assembly.”
(Read more: “Resin-infused MS-21 Wings and wingbox” and “Infused wing sheds light on aerocomposites future”)
It would be impossible to bend the spar — 25.4-millimeters thick at the root — into its necessary shape. “And even if you did,” said Filsegger, “you would introduce an uncontrolled preload on the fasteners, which is not permissible. Our tools could handle springback effects easily, allowing the skin to fit perfectly to the ribs and spars. And it was right the first time.” He notes this was possible because FACC had considered all of the risks during infusion and final assembly from the start. “For us, it was a standard technical risk assessment, but it is key to developing innovations so that you can deliver what is promised.”
When asked if FACC foresees building OOA wings in the future, CEO Stephan explained that OEMs will likely retain (and in Boeing’s case reclaim) control of the wing. “We have developed our expertise so that OOA vertical or horizontal stabilizers will be readily achievable.”
Plant 1: Winglets, spoilers, bypass ducts
Tour highlights in this 21,000-square-meter facility include winglet, spoiler and engine bypass duct operations. A global leader in the development and production of winglets, FACC delivered its first set of Aviation Partners Boeing’s (APB, Seattle, Wash.) trademarked Blended Winglets for the Boeing 737 Next Generation (i.e., -600/-700/-800/-900 series) in 2002. It then worked with APB to retrofit them to Boeing 757 aircraft. In 2010, FACC delivered the 3,000th shipset of Blended Winglets and was named single-source supplier for the product lifetime.
FACC worked with Aviation Partners Boeing (APB, Seattle, Wash.) to develop and manufacture the Split Scimitar Winglet. Source|FACC AG
It collaborated again on APB’s next design, the Split Scimitar Winglet, performing stress analysis, manufacturing development and production tool design and fabrication. The name describes use of both a split winglet design and high-performance scimitar-shaped tips, which, combined, cut aircraft fuel consumption by ~2%. FACC prototyped the winglets in only 3 months.
FACC’s composite test lab was the site for in-house, full-scale qualification testing of the new 6-meter long Airbus A350 winglet. Source | FACC AG, CW
In 2013, FACC worked with Airbus to develop new winglets for the A350 XWB, sized 2.3-meters wide at the base and 2 meters high. FACC was responsible for the development, qualification, production tooling design and fabrication, as well as testing, series production and assembly of the individual components into a ready-to-install system for delivery to the Airbus final assembly line (FAL) in Toulouse, France. This program was the first in which tests on full-scale parts of this size — wingtips with attached winglets are 6 meters long — were carried out at FACC’s Composite Lab and Test Center. The complete winglet system was subjected to static and dynamic testing for resilience, fatigue and endurance, up to mechanical failure, and was in the final stages of completion during CW’s tour.
Also in Plant 1, multiple automated cutting machines process carbon fabric and prepreg in several large glass-encased kitting rooms. Behind these are massive cleanrooms where prepreg for skins, stiffeners and other structures is hand-laid onto arrays of production tools. These tools are loaded into various autoclaves and ovens in the facility, after which cured parts are transferred to dedicated assembly areas.
Plant 1’s winglet assembly area with racks of CFRP spars ready to bolt to CFRP skins. FACC produces winglets for Aviation Partners Boeing, Dassault and Airbus. Source: CW
Walking through the Split Scimitar Winglet assembly area, 8-10 fixtures supported winglets in various stages of completion. The structure featured CFRP skins with bolted stringers and numerous brackets for lights and glazing to be attached later. FACC also paints the winglets with each airline’s livery in an adjoining paintshop, complete with multiple spray booths and a large open area reserved for final detailing.
Moving on through one of the spoiler fabrication areas, racks of completed spoilers shared space with parts in progress on mobile fixtures. Filsegger pointed out the RTM fitting for the A350 XWB spoiler — a massive and visually impeccable layup of carbon composite, with no detectable voids or distortion.
FACC uses numerous automated NDT systems to establish statistical quality performance for its production parts, such as the winglet shown here (top). Plant 1’s high-speed linear 10-axis ultrasound inspection system from FILL (bottom) features two electronically coupled, CNC heads (at center) which perform pulse echo and through transmission inspection. Source | CW
An adjoining area featured large CNC-machining bays as well as automated nondestructive testing (NDT) cells, including two new machines supplied by local machinery company FILL (Gurten, Austria). One was a high-speed, 10-axis, linear ultrasound system capable of through-transmission and pulse echo interrogation. Designed for high throughput (linear speed up to 1.7 meters/second) and high accuracy (±0.2 millimeters), two electronically coupled, numerically controlled modules move the inspection heads along a 3D path generated via interface with standard CAD systems. The second system uses a 7-axis robotic arm to perform pulse-echo ultrasound testing with the same basic speed and accuracy of 3D inspection. As FACC ramps up series production for each program, Filsegger explained that every part is inspected until statistical quality performance is established over a specified number of parts. After that, defined periodic sampling is considered sufficient.
FACC has produced composite outer bypass ducts for Rolls Royce and Pratt & Whitney turbofan engines since 2001-2002. Source | CW
Before leaving Plant 1, we pass through one of the larger open areas within the building, populated by a number of barrel-shaped structures with various-shaped cutouts. Another FACC area of expertise, these were lightweight, sound-absorbing composite outer bypass ducts, which channel the outer (bypass) airflow around the hot core in turbofan engines.
FACC worked with Pratt & Whitney to develop the latter’s first composite bypass duct in 2002, and has produced more than 1,000 similar parts for Rolls Royce’s (London, U.K.) BR700 family of engines since 2001. The Pratt & Whitney structure uses a sandwich construction with carbon fiber/epoxy skins that feature a 2x2 twill prepreg and aluminum honeycomb core. FACC also developed a sound attenuation treatment for the duct’s inner skin. In 2013, after only 12 months of development, FACC delivered several variations of a new design for the PurePower PW800 engine aimed at long-range business jets, regional jets and single-aisle jetliners and looks forward to beginning serial production soon.
Interiors, now and tomorrow
Aircraft interiors were an early beneficiary of FACC innovations. It recently installed this new, optimized A320 interiors assembly line to meet increasing aircraft production rates. Source | FACC AG
To tour Plants 2 and 3, we drive 10 kilometers to Ort im Innkreis. Plant 2 houses interiors production. “There are only three companies who can design, develop and supply a complete aircraft interior,” Stephan pointed out. “Diehl [Laupheim, Germany], Boeing Interiors Responsibility Center [North Charleston, S.C., and Everett, Wash.] and us. We make and supply all of the components needed, from cargo to cabin.”
FACC now owns a 20%+ share of the commercial aircraft cabin market. Filsegger credits that to FACC’s innovative approach to interiors, which dates back to the first MD-95. “The line of stowage bins, sidewalls and ceiling panels inside the finished cabin had to be precisely level,” he recalls. The composite interiors were attached to the plane’s aluminum fuselage sections, which he describes as “flexible tubes”, using myriad adjustable brackets. Thus, interior unit alignment required painstaking adjustment of hundreds of hard-to-reach threaded tie rods. “We developed a laser-aligned installation, which located a highly effective new type of attachment, independent of the incongruities in the fuselage barrels,” notes Filsegger, “which was very fast and efficient.”
FACC also pioneered the now-standard hinge used on practically every fixed-shelf overhead stowage bin door. “It used to be that this hinge had an air- or spring-loaded actuator that extended back into the bin,” says Filsegger, “but which made the corners unusable space.” FACC’s smaller, more reliable hinge incorporates the actuator into the hingeline, opening up that space.
Assembled from flat honeycomb-cored panels pre-potted to receive hardware, interior stowbins (baggage bins) include in-house produced composite ducts installed on top (top photo) before curved cored composite doors are added (bottom). Source | CW
Walking through Plant 2, we pass rack after rack of completed bins and numerous fabrication and assembly areas, each devoted to a different aircraft’s components. The stowbins are all made from flat honeycomb-cored panel stock and curved cored doors, with attachment points prepotted to accommodate hardware. For many of the units, oddly shaped composite duct modules — most made from lightweight glass fabric and phenolic resin — are also prefabricated and then attached during assembly. After mechanisms and trim are added, finished bins are strapped into specialized containers and shipped to Diehl for rigging of electrical and other systems. FACC continues to increase unitization of the parts it ships. One example is a composite “plug and play” module for the A350 XWB smoke detection panel, designed in cooperation with Siemens Process Industries and Drives (Buc Cedex, France), which reduces part mass and makes it easier and more economical to install than conventional panels.
Although the materials and processes used in stowbins have been standard for decades, Stephan says FACC always looks for new options, but he admits, “crushed core is hard to beat because it is very robust … and it’s easy to push out part after part with consistent quality and not a lot of quality control intervention. It is also cheap.” When asked if thermoplastic composites hold promise, Stephan is cautious, “The problem is that in order to get the fire, smoke and toxicity [FST] performance, you are forced into materials that are 10 times the cost of current phenolic and honeycomb.” Nor does he think thermoplastic composites could increase throughput. “We are already press-forming the phenolic parts with a cycle time as low as 30 minutes for large baggage bin doors,” he says. “There is also a limit to the weight savings you can achieve on a sidewall, for example, because noise transmission is governed by mass.”
Plant 2 also houses a very large core machining area, with two new CNC milling machines supplied by Reichenbacher Hamuel (Dörfles-Esbach, Germany) used only for honeycomb with clamping systems by Inteccs (Dortmund, Germany). Filsegger explains that it is more economical for FACC to mill honeycomb in-house and notes as we pass stacks of machined core, “All of this is only for today’s production.”
This hot drape forming system aids fabrication of a wide array of composite flaps, fairings and control surfaces in Plant 3. Source | FACC AG
Production in Plant 3 includes a wide variety of flaps, fairings and flight control surfaces, often using automated tape laying (ATL) and hot drape forming (HDF) for increased efficiency. The latter applies heat and pressure to flat ATL preforms using a flexible forming pad to produce 3D shapes. One example is ongoing A321 flap production, which uses a cutting-edge automated workcell custom-engineered by FILL.
Large engine parts
In FACC Plant 4, complex prepreg layups for CFRP translating sleeve cowls are fabricated in large cleanrooms, facilitated by laser projection systems. Source | CW
We next enter the 21,000-square-meter Plant 4, where FACC manufactures a wide array of engine and nacelle components. Filsegger highlights FACC’s large composite translating sleeves, critical components in the cascade thrust reverser systems used in today’s commercial jet engines. Sleeve cowls are formed using hand layup prepreg in large glass-fronted cleanrooms. The complex layups are facilitated by laser projection systems from SL Laser (Traunreut, Germany).
FACC builds translating sleeves for the Airbus A350 and Boeing 787 engine nacelles. On the latter, FACC pioneered this double-degree acoustic surface and undulated (chevron) nozzle design. Source | FACC AG
For the Boeing 787, FACC worked with customer UTC Aerospace Systems, now Collins Aerospace (Charlotte, N.C.) to develop, engineer and qualify the first sleeve to use a double-degree acoustic surface and undulated (chevron) engine nozzle design, both achieving significant noise reduction. Working again with UTC now Collins, FACC also developed a weight-optimized design for the Airbus A350 XWB. Both programs were in production at the time of this tour.
Engine parts in Plant 4 are cured in two massive Scholz autoclaves. Note that the autoclave on the right has the diameter and depth to accommodate several wheeled carts with tools stacked two high. Source | FACC AG
Plant 4 also houses two large autoclaves built by Maschinenbau Scholz GmbH & Co. KG (Coesfeld, Germany). One is 12 meters long x 4.5 meters in diameter and the other is 12 x 6 meters. Each is capable of 250°C and able to accommodate sleeve cowls and other oversized parts.
After cure, the various sleeve components are assembled, each sleeve is painted and then proceeds through quality assurance (QA). Plant 4 also accommodates an 8 x 4 x 2-meter 5-axis CNC milling machine and multiple laser coordinate measurement machines and ultrasonic inspection units that facilitate QA.
Firmly on the edge
Completed in 2012, FACC’s Technology Center houses its R&D and engineering teams, and represents its continued investment into advanced technologies and digitization for more efficient future aircraft.
Now a leading Tier 1 aerostructures supplier, FACC’s visibility is increasing. The RTM composite annulus filler it developed with Rolls Royce as part of the CleanSky Initiative was recognized with a 2014 JEC Innovation Award. FACC is also pursuing technology to cut next-gen jet engine fan blade weight by 40% percent vs. metal predecessors.
Looking into FACC’s future, Stephan explains that the company’s financial targets — including $1 billion USD (€799 million) in total revenue by 2016 — are readily achievable, given the aerocomposites market’s 5% annual growth rate. Although he acknowledges that “China and Russia are more long-term investments,” FACC is nonetheless actively pursing growth in the East and will soon assume a 24 % share in the KAPO-Kompozit facility (Kazan, Tatarstan). This 33,000-square-meter facility will not only produce flaps, elevators, rudder and fairings for Superjet International’s (Venice, Italy) SSJ-100, but autoclaved prepreg components for Airbus and Boeing aircraft as well. “We are qualifying the Kazan plant now as a new FACC site,” says Stephan. “We have already done this with the facility in Abu Dhabi where we have partnered with Mubadala, and are proceeding, likewise, in China.”
For some, the risk of expansion into new markets is an obstacle. For FACC, it’s an opportunity enabled by its OEM-recognized emphasis on engineering and program management. Stephan contends, “The key to all of our locations is that we ... can not only control the production processes but also protect our customers’ intellectual property.” He adds that despite its diverse operations and large number of different part programs, “our additional strength is that we have always been solely focused on composites.”
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