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Aero-Structure Manufacture : Airframe

Airframe is described as the mechanical structure of an aircraft that are generally used excluding engines. Designing airframe is a challenging field of engineering, as balance of performance, reliability and cost is to be achieved by combining the knowledge of aerodynamics, materials technology and manufacturing methods. [Wikipedia, Et. al.]
Manufacturing Airframe is becoming a tough process. Strict quality control and government regulations have to be followed by Manufacturers. The crash on takeoff of an Airbus A300 in 2001, after its tail assembly broke away from the fuselage, called attention to operation, maintenance and design issues involving composite materials that are used in many recent airframes. The A300 had experienced other structural problems but none of this magnitude. The incident bears comparison with the 1959 Lockheed L-188 crash in showing difficulties that the airframe industry and its airline customers can experience when adopting new technology.
Advanced materials are widely used for high performance aircrafts to manufacture airframe. The reduction of weight was always a challenge by the replacement of aluminium with composites or other superalloys. Aircraft manufacturers are always on a look out for new technologies that can provide better value with reducing the total life cycle costs of a commercial aircraft. This can be achieved with composites compared with the metals since the design and the production costs must be lower when compared. There are many advantages of using lighter; the main advantage is
maintenance cost is lower when compared with the metal structures. The composite materials are affordable, easy to maintain and have some flexibility for manufacturing where as for metal, maintenance is a problem. High fuel costs has made manufacturers look for a alternative method to cut the cost, which forced to adopt and improve the composite materials.
Four major eras in commercial airframe production stand out are all-aluminum structures which started in 1920s, high-strength alloys and high-speed airfoils in the beginning of 1940s, with beginning of 1960s long-range designs and improved efficiencies is achieved, and composite material construction began in 1980s. Boeing has claimed a lead, designing its new 787 series flagship airframes scheduled for first delivery in 2008 with a one-piece carbon-fiber fuselage, said to replace "1,200 sheets of aluminum and 40,000 rivets." These airframes are designed to transport 220-300 passengers, while chief competitor Airbus has designed its A380 flagship airframes to transport 550-850 passengers. The A380 is also built with a large proportion of composite material.[ Peel Et. Al. 1995]
Since 1970s, the use of advanced composite materials in transport aircraft structures has widely increased. The nature of composite materials and fabrication processes used to make these structures has tended to promote an integrated, multidisciplinary, approach to product development. The main benefits of composites over metals technology have been structural weight savings, fatigue resistance, and corrosion suppression. Additional strategic defence benefits have led to more military applications such as wing and fuselage, than commercial. Relatively high fuel costs helped to justify the initial commercial applications based on composite weight savings. In the 1980s and 1990s, fuel costs dropped relative to other airline costs, such as ownership. Composite manufacturing costs are currently the most critical barrier to expanded commercial applications.
Modern aerospace vehicles has performed remarkably to a large degree, as a result of the high performance materials and manufacturing technology used in both the airframes and propulsion systems. A commercial aircraft will fly over 60,000 hours during its 30 years life with over 20000 flights, will taxi over 100,000 miles. For obtaining, continuous performance increase, designers and researcher are constantly searching for the lighter, strong and more durable materials. The most efficient way of reducing airframe weight and improving performance is by reducing material density which is recognised. [Lin Ye Et. Al. 2005]
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Source: Boeing 787
Airframe durability is becoming a greater concern since the life of many aircraft, both commercial and military, are being extended far behind their intended design lives. Even for the aircraft with only a 30 year lifetime, it has been estimated that the cost of service and maintenance over the 30 year life of the aircraft exceeds the original purchase by a factor of two.
Since the early 1920, airframe have been built largely out of metal, aluminium in particular has been the material of choice. With high performance composites i.e. first boron and the carbon fibers, started being developed in the mid 1960s and early 1970s, the situation started changing. The earliest developers, and users, of composites were the military. The early application of these in the military, resulted in significant weight savings (approx 20%), they accounted for only small amounts of the airframe structural weight. However, composite usage was expanded from only 2% of the airframe to as much as 27% by the early 1980s.
Similar trends have been followed for commercial aircraft, although at the slower and more cautious pace. Until recently, Airbus has been somewhat more aggressive in using composites than Boeing, primarily for the horizontal stabilisers and vertical fins on their A300 series of aircraft. However, Boeing recently made a major commitment to composites, when it decided to use upwards of 50% on its new 787, which includes both a composite wing and fuselage, as shown in the above figure.[ Barington Et. Al 2002]
Aluminium alloys have been has been the main airframe material since they started replacing wood in the early 1920s. Even though the role of aluminium in future commercial aircraft will probably be somewhat eroded by the increasing use of composite materials, high strength aluminium alloys are and will remain important airframe material. The attractiveness of aluminium is that it is relatively low cost, light weight metal that can be heat treated to fairly high strength levels, and it is one of the most easily fabricated of the high performance materials, which usually correlates with lower costs. Improvements in the compositional control and processing have continually produced improved alloys. Reducing impurities, in particular iron and silicon, has resulted in higher fracture toughness. Along with tightening compositional controls and eliminating unwanted impurities, the development of improved aging heat treatment for 7XXX alloys has resulted in greatly reduced stress corrosion cracking susceptibility and improved fracture toughness, with only a minimal impact on strength. Improvement in aluminium manufacturing technology includes high speed machining and friction stir welding. Aluminium-lithium alloys are attractive for aerospace applications because the addition of lithium increases the modulus of aluminium and reduces the density. Each 1 wt% of lithium increases the modulus by about 6% while decrease the density about 3%.
Titanium is often used to save weight by replacing heavier steel alloys in the airframe and super alloys in the low temperature portions of gas turbines. Titanium is becoming even more important as an airframe material due to its outstanding resistance to fatigue, its high temperature capability and its resistance to corrosion. Titanium alloys are also used extensively in the lower temperature regions of jet turbine engines. Near net shape processes can lead to savings in materials, machining costs and cycle times over conventional forged or machined parts. Investment castings, in combination with hot isostatic pressing (HIP), can produce aerospace quality titanium near net shaped parts that can offer significant cost savings over forgings and built-up structures.
While high strength steels normally account for only about 5-15% of the airframe structural weight, they are often used for highly critical parts such as landing gear components. The main advantages of high strength steels are their extremely high strength and stiffness. This can be extremely important in landing gear applications where it is critical to minimize the volume of the gear component.[ Freeman Et. Al. 1993]
Superalloys are other enabling materials for modern flight where they are used extensively in the jet turbine engines. Some superalloys are capable of being used in load bearing applications in excess of 80% of their incipient melting temperatures while exhibiting high strength, good fatigue and creep resistance, good corrosion resistance and the ability ton operate at elevated temperatures for extended periods of time. The remarkable role superalloy technology had played in allowing higher engine operating temperatures.
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Composite materials usage on the 777
The field of composite materials covers polymer matrix composites. The advantage of high performance polymer matrix composites are many, including lighter weight; the ability to tailor lay ups for optimum strength and stiffness; improved fatigue life; corrosion resistance; and with good design practice, reduced assembly costs and due to fever details parts and fasteners. The specific strength (strength/density) and specific modulus (modulus/density) of high strength fibre composites, especially carbon, are higher than comparable aerospace metallic alloys. This translates into greater weight savings resulting in improved performance, greater payloads, longer range and fuel savings. However, to realise the type of structure in the commercial aircraft world, the cost of composite structures still needs to be reduced through innovative design and manufacturing technologies. (Ilcewicz et al., 1997)
For the next generation in aero vehicles, aircraft manufacturers are involved in the development of functionalised materials and structures, with the target of essential safety, cost efficiency, airworthiness, system integrity, environmental compatibility.
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Utility of composite structures on A380: (a) monolithic CFRP and thermoplastics; (b) materials distribution (weight breakdown).
Since large quantity of composite materials are used for the production, motivates to innovate improve material. Automated fibre placement (AFP), automated tape laying (ATL), resin film infusion (RFI) and resin transfer moulding (RTM) are few latest manufacturing technologies introduced by Airbus. Jumbo has developed concepts such as GLARE, laser beam welding (LBW). GLARE, is a made by alternative overlapping the layers of aluminium foils with unidirectional glass fibers, it is classified as hybrid material. GLARE can improve the corrosion and fire resistance of the material whereas LBW is used to reduce cracks in aircraft skins by eliminating traditional rivets.
The future of the composite can be judged with the example, 777 empennage structural properties were derived from a size scaling approach, which correlated analysis with a balance of tests at the coupon, element, and subcomponent levels. Some structural behaviour was predicted using reliable analysis methods and basic material properties, reducing or eliminating the number of element and subcomponent tests. Difficult strength predictions used additional element and subcomponent tests. The subcomponent tests helped relieve overly conservative analysis assumptions, which result in cost and performance penalties. This approach also proved to be more cost effective than developing sophisticated analysis methods and testing many coupons at the lower level. (Ilcewicz et al., 1997)
Conclusion

To summarize, composite panels provide a feasible technical solution at a cost level which is competitive with metal structure. Automated fibre placement and hand-lay-up are both manufacturing possibilities which are not limited by size constraints. Advanced composite technologies must earn their way into future commercial aircraft applications by adding value to the product and gaining customer acceptance. To date, the main benefits of composites over metals technology have been structural weight savings, fatigue resistance, and corrosion suppression. Other increases in value, such as reduced manufacturing and maintenance costs.
Recent advances in composite manufacturing and maintenance technology appear pro missing in reducing the total life cycle costs of an aircraft. Manufacturing concepts, which utilize inexpensive tooling and achieve tight tolerances in large components, have the potential to drive costs below that of traditional aluminium built up structure (Ilcewicz et al., 1997). There is also evidence that products with the highest value will incorporate advances in both metal and composite technology to achieve the lowest total costs in a hybrid design. Airlines, manufacturers, and maintenance companies have also been working together to solve existing composite maintenance issues. Since the early 1990s, one such group has made significant progress in this area, providing documentation on favoured repair practices, maintainable design details, and databases.

REFERENCE:
  1. Peel, C.J., Gregson,P.J., “Design Requiremen for Aerospace Structural Materials”,in high performance materials in aerospace, Chapman & Hall, 1995, pp.1-48
  2. Barington, N., Black, M., “ Aerospace Materials and Manufacturign Processes at the Millenium”, in Aerospace Materials, Institute of physics publishing, 2002, pp. 328-341.
  3. Cotton, J.D., Clark, L.P., Phelps, H.R., “ Titanium Alloys on the F-22 Fighter Aircraft”, Advanced Materials & Processes, May 2002, pp. 25-28.
  4. Williams, J.C., Starke, E.A.,” Progress in structural Materials of Aerospace systems”, Acta Materialia, Vol. 51, 2003, pp. 5775-5799.
  5. Freeman, W.T., “The Use of Composites in Aircraft Primary Structure”, Composites Engineering, vol.3, Nos 7-8, 1993, pp. 767-775.
  6. Lin Ye ,Ye Lu , Zhongqing Su , Guang Meng,”Functionalized composite structures for new generation airframes: a review”, Composites Science and Technology 65 (2005) 1436–1446.
  7. ILCEWICZ. L. B., HOFFMAN. D. J., FAWCETT ,A. J.,” Composite Applications in Commercial Airframe Structures”, 1997.
  8. Airframe, http://en.wikipedia.org/wiki/Airframe

Aerospace manufacturing Technology

Even though aerospace manufacturing has improved quite dramatically over the past decade, much more effort is being constantly put into researching a more efficient way of manufacturing. The aerospace manufacturing industry face an uphill task to produce an efficient way of manufacturing with the introduction of more new higher strength materials.

Machining has also been regard as the optimum way to produce a small number of production run components. The versatility of machining is clearly seen where it can be applied to all kind of materials [2].It also has the less effect on the properties of materials compare to other manufacturing tools. Despite these advantages, manufactures are still looking forward to reduce the high cost of consumable tooling and set up time for high volume production to components often requiring several machining operations, thereby making it difficult to effectively control the machine shop and consequently an increase in work in process [2]. Besides that, machining generally produces large amount of scrap metal which is not very cost effective. Continuous effort has been put into

reducing the net shape titanium produced by machining [5]. By further reducing the net shape titanium size, it will enable a more efficient and productive manufacturing process. Nickel and titanium alloys have a fairly low thermal conductivity which causes the cutting temperature to increase up to 1200°C at the tool point/rake face. The high temperature generated would greatly affect the material property which is not desirable (notes). The above problems tend to form the basis in continued research and development activities in this area of manufacturing technology.

Another main concern in developing future machining technologies is that the hardness of many high strength super alloys increases significantly upon heat treatment. The formation of the second phase particles makes the alloy both stronger and more abrasive but extremely difficult to machine [2]. Hence it is an advantage to machine at a softer state. A typical manufacturing process would be to machine the component to a near net shape in a solution treated condition, then age hardened and then finally finish machined to generate the desired surface finish and to eliminate any distortion associated with heat treatment [2]. Positive rake geometry minimizes work hardening of machine surfaces and efficiently shears the chip away from the workpiece. Therefore positive rake geometry is use whenever is possible. Relatively sharp edges should be applied also whenever it is possible because it improves the machining process by preventing material build up. Below shows a table on the practical guide of machining high strength super alloys.

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Table 1: Practical guide for machining high temperature alloys [2]

High strength alloys generally have a low thermal conductivity and this would generate lots of heat during the cutting process. A way of solving this problem is to introduce a coolant at the cutting zone to effectively reduce the tool temperature. Cryogenic cooling is an efficient way of maintaining the temperature at the cutting interface well below the softening temperature of the cutting tool material [1]. It works by supplying liquid nitrogen through the nozzles close to the tool tip along the rake face and clearance face of the cutting edge. The figure below shows the schematic setup of cryogenic cooling.

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Figure 1: Dual nozzle system for localized LN2 supply [1]

By reducing the temperature of the cutting zone, it allows a higher cutting speed to be used thus saving manufacturing time. The temperature generated at the cutting face is only 829°C which relatively low compare to the softening temperature of CBN material which is around 1500°C [2]. This improves the tool performance and also increases the tool life. It also has less tendency of material smearing. This method however does pose a problem due to the usage of liquid nitrogen. The low temperature of the coolant would tend to shrink the alloy thus creating a geometrical inaccuracy. However this can be solve by incorporating the shrinking factor of the work piece to machine accordingly.

Since a 1940, a lot of research effort has been done to improve the machininibility of high strength aerospace superalloys. A new technique called thermally enhanced machining utilizes an external heat source such as a laser beam to heat and soften the workpiece locally in front of the cutting tool and allows difficult-to-machine materials to be machined with [6]. The figure below shows a schematic diagram describing the technique above.

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Figure 2: Schematic diagram describing thermally enhanced machining.

From recent research, it was observed that laser does have a big impact on the cutting performance. The heated area generated by the laser softens the workpiece and indirectly reduces the amplitude of the cutting forces hence, result in a lower friction force between the tool and work piece [6]. However the reduction in cutting forces decline dramatically with increasing cutting speed because of the shorter interaction time between the laser bean and workpiece. Nonetheless the reduction in cutting forces of 26% was still significant at the cutting speed of 93m/min [6].

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Figure 3: Graph of reduction of cutting force against surface cutting speed.

To date, laser assited machining of commercially pure Ti6Al4V has also been proven to lower the hardness near the machined surface compared with conventional cutting due to the lower shear deformation and it also helps to improve the surface finish due to lower dynamics cutting force. Even though thermally enhanced machining has been able to provide much more advantages then the conventional machining, much more research must still be done to explore the feasibility of laser-assisted milling of these alloys [6].

New technologies and approaches are also required as part of a strategy for taking cost out of manufacturing [5]. By reducing the work content and increasing productivity, it allows us to have a much more simple manufacturing process at a higher rate. This would indirectly reduce the effective manufacturing cost. In order to develop a higher efficiency way of machining in the future, it would rely heavily on intelligent machining system being able to undertake high speed machining with improve surface finish [3]. However the vibration generated by such high speed machining system can severely affect the speed and efficiency of machining. In the near future, the demand for titanium alloys which is increasingly used in aerospace structural applications will outstrip its availability hence increasing procurement lead times and cost. To endure a more sustainable process for the manufacture of titanium alloy aerospace components, a step change in manufacturing process is required [5].

With the right combination of cutting tools, cutting conditions and machine tool that will promote high speed machining without compromising the integrity and tolerance of the machined components the productivity of machining can be significantly improved [1]. This is predominantly important for the economic machining of hard to cut high strength aerospace alloys whose peculiar characteristics generally impair machinability. In the near future, technologies such as laser direct metal deposition will be available to manufacturer to be used for surfacing, repair, hybrid build and most importantly original part build. Laser deposition is far more efficient then any of the machining tool currently available which wastefully subtract additional materials from casting and forging.

Reference

  1. E.O. Ezugwu, High speed machining of aero-engine alloys, Journal of Brazilian Society of Mechanical Science and Engineering 26 (1) (2004) 1–11.
  2. E.O. Ezugwu, Key improvements in the machining of difficult-to-cut aerospace superalloys, International Journal of Machine Tools & Manufacture 45 (2005) 1353–1367
  3. Phil Withers director of University of Manchester Aerospace Research Institute, Advance in aeroengine manufacturing technology, The engine yearbook 2008.
  4. Aerospace manufacturing magazine 26, September 2007
  5. Aerospace manufacturing magazine 26, July 2007
  6. S. Sun & M. Brandt, Laser assisted machining of titanium alloys, Industrial Laser solution.