Composite Wing
The composite wing design addresses delamination issues by strategically positioning sub-laminates to avoid high-stress areas, ensuring robustness against foreign object impacts.
Patent Information
- Application Number
- JP2024571612
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2023-01-16
- Filing Date
- 2023-09-25
- Publication Date
- 2026-01-27
- Estimated Expiration
- 2043-09-25
AI Technical Summary
Composite wings are prone to delamination due to localized stress from foreign object impacts, particularly at the blade root, which can lead to damage.
A composite wing design with alternating layers of main and sub-laminates in the blade root portion, where the sub-laminates are positioned to avoid high-stress regions, and a contactable surface with defined edges to minimize interlaminar shear stress.
The design effectively suppresses delamination and crack formation in the composite blade root upon impact, enhancing structural integrity and durability.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to composite wings. [Background technology]
[0002] Reducing fuel consumption in jet engines is a perpetual challenge. To address this challenge, turbofan engines have increased the fan diameter to achieve a higher bypass. However, increasing the bypass size also increases the size of the fan blades, which increases the weight of the engine. For this reason, there is a need for fan blades that are both highly robust and lightweight.
[0003] A composite blade is a blade that includes composite layers of reinforced fiber resin laminated together. Carbon fiber reinforced plastic (CFRP), which uses carbon fiber as the fiber, has attracted attention as a material that can provide strength to fan blades while promoting weight reduction. In this regard, Patent Document 1 discloses a composite blade that was developed with the aim of suppressing a decrease in strength at the blade root. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Publication No. 2019-173726 Summary of the Invention [Problem to be solved by the invention]
[0005] The root (dovetail) of a composite wing is formed by inserting a short composite layer between the composite layers (main plies) that continue from the wing surface. When a foreign object (FOD) such as a bird strike strikes the wing, localized stress is generated in and around the root. If the generated stress is excessively large, damage such as delamination can occur.
[0006] The present disclosure has been made in consideration of the above circumstances, and aims to provide a composite blade that can suppress the occurrence of damage such as delamination due to the collision of a foreign object. [Means for solving the problem]
[0007] A composite wing according to one aspect of the present disclosure comprises an airfoil portion, a blade root portion provided at one end of the airfoil portion, and main laminates and sub-laminates each including a plurality of composite layers formed of reinforced fiber resin and laminated together, the main laminates and sub-laminates being laminated alternately in the blade thickness direction of the composite wing at the blade root portion, the blade root portion including a side surface including a contactable surface that can contact an attachment groove of the blade root portion, the main laminates extending from the blade root portion to the airfoil portion so as to merge before reaching the airfoil portion, and the sub-laminates extending from the blade root portion to each of the merging points of the main laminates, The contactable surface has a first edge and a second edge spaced apart in the spanwise direction of the composite wing and extending in the longitudinal direction of the wing root, the first edge being closer to the airfoil than the second edge, and within the wing root there is defined a first region located around the first edge of the contactable surface and a second region located between the first region and the center plane of the wing root, the end of the sublaminate is not located in the first region, and in at least a portion of the second region, portions of the main laminate and the sublaminate are alternately located along the wing thickness direction.
[0008] The first region may have a predetermined length along the spanwise direction and a predetermined depth toward the center plane of the blade root. When the length from the first edge to the second edge along the spanwise direction is referred to as a reference length, the predetermined length of the first region may be set to a sum of a length from the first edge toward the second edge that is at least 25% of the reference length and a length from the first edge toward the airfoil that is at least 110% of the reference length, and the predetermined depth of the first region may be set to be at least 20% of a minimum width of a neck portion where the airfoil and the blade root are connected.
[0009] The fibers constituting the reinforced fiber resin may be unidirectional carbon fibers. At least one of the sub-laminates may be located outermost from the center plane of the blade root in the arrangement of the sub-laminates and the main laminates in the blade thickness direction. The side surface of the blade root may be formed as an inclined surface extending away from the center plane of the blade root as it approaches the base end of the composite blade. [Effects of the Invention]
[0010] According to the present disclosure, it is possible to provide a composite blade that can suppress the occurrence of damage such as delamination due to the collision of a foreign object. [Brief explanation of the drawings]
[0011] [Figure 1] FIG. 1 is a perspective view of a fan blade, which is an example of a composite blade according to an embodiment of the present disclosure. [Figure 2] FIG. 1 illustrates an example of multiple composite layers that make up a laminate according to an embodiment of the present disclosure. [Figure 3A] FIG. 2 is a cross-sectional view of a blade root and its surroundings according to an embodiment of the present disclosure. [Figure 3B] 3B is a diagram showing a first region, a second region, and a third region in the cross section shown in FIG. 3A. FIG. [Figure 4] FIG. 2 is a cross-sectional view of a mounting groove of the fan rotor blade shown in FIG. [Figure 5A] FIG. 4 is a cross-sectional view showing local stresses generated in a blade root due to the collision of a foreign object or the like. [Figure 5B] FIG. 4 is a cross-sectional view showing local stresses generated in a blade root due to the collision of a foreign object or the like. [Figure 5C] FIG. 4 is a cross-sectional view showing local stresses generated in a blade root due to the collision of a foreign object or the like. DETAILED DESCRIPTION OF THE INVENTION
[0012] A composite blade according to an embodiment of the present disclosure will be described below with reference to the drawings. Common parts in the drawings will be assigned the same reference numerals, and duplicated explanations will be omitted. For ease of explanation, a fan blade 10 will be used as an example of a composite blade according to this embodiment. The fan blade 10 is used in an aircraft engine such as a turbofan engine (not shown).
[0013] FIG. 1 is a perspective view of a fan blade 10. FIG. 2 is a diagram showing an example of multiple composite layers 31 that make up a laminate 30. FIG. 3A is a cross-sectional view of the blade root 12 of the fan blade 10 and its surroundings. FIG. 3B is a diagram showing a first region 41, a second region 42, and a third region 43 in the cross-section shown in FIG. 3A. FIG. 4 is a cross-sectional view of a mounting groove 50 of the fan blade 10. FIG. 5 is a cross-sectional view showing local stresses that occur in the blade root 12 due to the collision of a foreign object or the like. Note that each cross-section shown in FIGS. 3A to 5 is perpendicular to the extension direction of the blade root 12 (i.e., the longitudinal direction LD).
[0014] As shown in Figure 1, fan blade 10 comprises an airfoil portion 11 provided at the tip end of fan blade 10 and a blade root portion 12 provided at the base end of fan blade 10. Airfoil portion 11 and blade root portion 12 are formed as a single unit using multiple composite layers 31, which will be described later. Airfoil portion 11 has a leading edge 11a, a trailing edge 11b, a tip 11c, and a hub 11d. Airfoil portion 11 extends in the blade span direction SD of fan blade 10 from its one end, hub 11d, to its other end, tip 11c.
[0015] The blade root 12 is connected to the hub 11d of the airfoil portion 11. The blade root 12 extends in the longitudinal direction LD and fits into a mounting groove 50 (see FIG. 3) of a rotor (not shown) to which the fan blades 10 are attached. The blade root 12 will be described in detail later.
[0016] As shown in FIG. 2, the main structural material of the fan blade 10 is a plurality of composite layers 31 formed from a reinforced fiber resin. The composite layers 31 are composed of reinforced fibers impregnated with resin. The resin that constitutes the reinforced fiber resin is a thermosetting resin or a thermoplastic resin. Thermosetting resins include epoxy resin, phenolic resin, and polyimide resin. Thermoplastic resins include polyether ether ketone and polyphenylene sulfide. However, the resin components are not limited to the above substances. On the other hand, the fibers that constitute the reinforced fiber resin are carbon fibers that are parallel to each other and aligned in a predetermined direction. In other words, the fibers that constitute the reinforced fiber resin are unidirectional carbon fibers. However, the fibers that constitute the reinforced fiber resin are not limited to carbon fibers as long as they have mechanical strength and flexibility equivalent to those of carbon fibers.
[0017] Multiple composite plies 31 are alternately stacked in the blade thickness direction (WD) to form a single laminate (ply) 30, which is formed as a primary laminate 32 or a secondary laminate 33, as shown in FIG. 3A. In forming this laminate 30, the multiple composite plies 31 are stacked while periodically changing the fiber orientation angle. The fiber orientation angle is the direction in which the fibers extend relative to the blade span direction (SD). For example, as shown in FIG. 2, the orientation angles of four laminated composite plies 31a, 31b, 31c, and 31d are 0°, −45°, 0°, and 45°, respectively. By stacking composite plies with positive and negative orientation angles of equal absolute values (in this case, composite plies 31b and 31d), the cross-elasticity effect occurring in each ply can be canceled out.
[0018] The blade root portion 12 will now be described. As shown in Figure 3A, when viewed in the longitudinal direction LD, the blade root 12 has a generally triangular cross section with its apex facing the airfoil portion 11, or in other words, a generally trapezoidal cross section with its short base facing the airfoil portion 11. The blade root 12 has a bottom surface 12b and a pair of side surfaces 12a, 12a that form the above-mentioned cross section. The bottom surface 12b is located at the base end of the fan blade 10. The bottom surface 12b may be covered with a metal protective part (not shown). The protective part (not shown) covers and protects the end faces of the main laminate 32 and sub-laminate 33 that form the bottom surface 12b.
[0019] Each side surface 12a is formed as an inclined surface that extends away from the center plane 5 of the blade root 12 as it approaches the base end of the fan blade 10 (in other words, the bottom surface 12b). Each side surface 12a is formed of a composite layer 22 and includes a contactable surface 13 that can come into contact with the side surface 50a of the mounting groove 50. The reinforcing fibers that make up the composite layer 22 are, for example, glass fiber or carbon fiber. However, the reinforcing fibers of the composite layer 22 are not limited to these, as long as the composite layer 22 meets the performance requirements. A protective material (not shown) may be attached to the side surface 12a. The protective material suppresses excessive wear of the side surface 12a of the fan blade 10 and the side surface 50a of the mounting groove 50.
[0020] The contactable surface 13 has a first edge 14 and a second edge 15 spaced apart in the spanwise direction SD and extending in the longitudinal direction LD of the blade root 12. The first edge 14 is closer to the airfoil 11 than the second edge 15.
[0021] The side surface 12a of the blade root portion 12 extends to a position closer to the airfoil portion 11 than the first edge portion 14. Therefore, the first edge portion 14 does not have a discontinuous structure such as a step. The side surface 12a of the blade root portion 12 may extend to a position closer to the bottom surface 12b than the second edge portion 15, or may be located at the boundary between the contactable surface 13 (side surface 12a) and the bottom surface 12b. In the former case, like the first edge portion 14, the second edge portion 15 does not have a discontinuous structure such as a step. In the latter case, the second edge portion 15 is formed as a corner of the contactable surface 13 (side surface 12a). The shape of the second edge portion 15 depends on the shape and dimensions of the side surface 50a of the mounting groove 50 (see Figure 4).
[0022] As shown in Figure 3A, the blade root 12 is provided with a main laminate (main ply) 32 and a sub-laminate (filler) 33 configured as the laminate 30 described above. In the blade root 12, the main laminates 32 and the sub-laminates 33 are alternately laminated in the blade thickness direction WD to form most of the cross-sectional shape described above. The number of composite layers may be different or the same for each main laminate 32. The selection of which number to use depends on the dimensions of the cross-sectional shape of the blade root 12. The same applies to the sub-laminate 33.
[0023] The main laminate 32 extends from the blade root 12 to the airfoil 11. For example, the main laminate 32 extends from the bottom surface 12b of the blade root 12 to the tip 11c of the airfoil 11. The main laminate 32 is the main structural material of the airfoil 11. Therefore, the main laminates 32 converge before reaching the airfoil 11, where they are laminated and integrated together.
[0024] The sublaminates 33 extend from the bottom surface 12b of the blade root 12 to each of the multiple junctions 16 of the main laminates 32. Figure 3A shows one of the multiple junctions 16 as a black circle. The sublaminates 33 are provided between two adjacent main laminates 32 in the blade thickness direction WD, and provide the blade root 12 with a desired thickness. The length of the composite layers 31 constituting each sublaminate 33 (the length from the bottom surface 12b toward the junction 16) is adjusted so that the thickness of the end (tip) of the sublaminate 33 leading to the junction 16 gradually decreases.
[0025] 3A and 3B, a first region 41 and a second region 42 are defined inside the blade root 12. The first region 41 is located around the first edge 14 of the contactable surface 13. The second region 42 is located between the first region 41 and the center plane 5 of the blade root 12.
[0026] 3B , the first region 41 has, for example, a length L along the spanwise direction SD and a depth D toward the center plane 5 of the blade root 12. The length L of the first region 41 is set to the sum of a length L1 extending from the first edge 14 to the second edge 15 that is at least 25% of the reference length RL, and a length L2 extending from the first edge 14 to the airfoil 11 that is at least 110% of the reference length RL. Here, the reference length RL is the length from the first edge 14 to the second edge 15 along the spanwise direction SD. The depth D of the first region 41 is set to be at least 20% of the minimum width RW of the neck 21 where the airfoil 11 and the blade root 12 are connected.
[0027] The above values were determined based on the results of strength tests using test specimens with blade roots identical in shape to the blade root 12 but with various lengths and arrangements of the sublaminate 33. In these strength tests, a gradually increasing load was applied to the test specimen mounted in the mounting groove 50. The loads applied to the test specimen were a tensile load equivalent to the centrifugal force generated when the test specimen rotated around the rotor and a bending load equivalent to the impact of a foreign object. These loads caused excessive stress in the areas corresponding to the blade root 12 and neck 21 (referred to as the corresponding regions for convenience), which at some point led to delamination or cracks penetrating the laminate. The strength tests revealed that if the end of the sublaminate 33 was located in a region of the corresponding region where stress due to the bending load was relatively high, the aforementioned delamination or cracks occurred at a relatively low tensile load. In other words, these test results indicate that the occurrence of delamination or cracks can be suppressed by not positioning the end of the sublaminate 33 in the relatively high-stress region. In this embodiment, this region corresponds to the first region 41. 3A, the end (tip, end on the airfoil 11 side) of the sublaminate 33 is not located in the first region 41. In other words, the first region 41 is occupied by the main laminate 32, or by the main laminate 32 and the sublaminate 33 passing through the region.
[0028] The first region 41 will be described, for example, focusing on the side filler 34. The side filler 34 is one of the sublaminates 33 and is located outermost relative to the center plane 5 of the blade root 12 in the arrangement of the sublaminates 33 and the main lamination 32. In other words, it is the outermost sublaminate in the assembly of the sublaminates 33 and the main lamination 32. The side filler 34 is provided on at least one of the two sides of the center plane 5. In the example shown in FIG. 3A , the side filler 34 is provided on both sides of the center plane 5. The provision of the side filler 34 protects the main lamination 32 during the manufacturing of the fan blade 10, which involves machining. It also prevents cracks from propagating to the main lamination 32 when they occur during engine operation. Furthermore, because the radius of curvature of the main lamination 32 at the neck portion 21 is slightly larger than when the side filler 34 is not provided, stress relief at the neck portion 21 is also expected.
[0029] As described above, the end of the sublaminate 33 is not located in the first region 41. Therefore, the end 34a of the side filler 34, indicated by a white circle, is located closer to the base end of the fan blade 10 than the first region 41, i.e., closer to the bottom surface 12b of the blade root portion 12 (see FIG. 3A ). In other words, if a third region 43 is defined as being located closer to the base end of the fan blade 10 along the contactable surface 13 than the first region 41, the third region 43 will include sublaminates 33 such as the side filler 34 and the main laminate 32, but only the sublaminate 33 does not extend to the first region 41. The third region 43 has the same depth as the first region 41 in the blade thickness direction WD.
[0030] The end 33c of the sub-laminate 33 provided in the third section 43, such as the side filler 34, may be located closer to the airfoil 11 than the first section 41. That is, the sub-laminate 33 and the main laminate 32 in the third section 43 may both pass through the first section 41 toward the airfoil 11.
[0031] In at least a portion of the second region 42, portions of the main laminates 32 and portions of the sublaminates 33 are alternately positioned along the blade thickness direction WD. That is, at least two sublaminates 33 are provided between the main laminates 32 between the first region 41 and the center plane 5. In the second region 42, the sublaminates 33 are not concentrated in one location but are scattered in the blade thickness direction. By extending some of the sublaminates 33 into the second region 42, the number of main laminates 32 can be reduced while still ensuring the required width of the neck portion 21 where the airfoil portion 11 and the blade root portion 12 are connected.
[0032] The blade root 12 is mounted in a mounting groove 50 shown in Figure 4. The mounting groove 50 is formed on the outer surface of the rotor (not shown) and has at least a pair of side surfaces 50a, 50a and a bottom surface 50b. The pair of side surfaces 50a, 50a extend in the longitudinal direction LD of the blade root 12 at a distance from each other and are connected to each other via the bottom surface 12b. The mounting groove 50 has a cross section complementary to the cross section of the blade root 12. Therefore, the pair of side surfaces 50a, 50a are arranged parallel to the pair of side surfaces 12a, 12a provided on the blade root 12 and contact the respective contactable surfaces 13.
[0033] When the rotor (not shown) rotates with the blade root portion 12 attached to the mounting groove 50, centrifugal force is generated in the fan blade 10 from the blade root portion 12 toward the airfoil portion 11, increasing the degree of adhesion between the side surface 50a of the mounting groove 50 and the contactable surface 13 of the blade root portion 12.
[0034] If a foreign object such as a bird strikes the blade root 12 while the rotor is rotating, the airfoil 11 will deflect to one side in the blade thickness direction WD. As an example, Figure 5A shows the airfoil 11 deflected to the right. At this time, the pressure at the first edge 14 of the right contactable surface 13 and the pressure at the second edge 15 of the left contactable surface 13 increase. Meanwhile, the pressure at the second edge 15 of the right contactable surface 13 and the pressure at the first edge 14 of the left contactable surface 13 decrease. At this time, interlaminar shear stress increases rapidly near the first edge 14 of the right contactable surface 13.
[0035] When the airfoil 11 is deflected to the left, as shown in FIG. 5B, the pressure distribution is opposite to that when the airfoil 11 is deflected to the right, as shown in FIG. 5A. As a result, interlaminar shear stress increases rapidly near the first edge 14 of the left contact surface 13. The impact of a foreign object causes the airfoil 11 to deflect from side to side. Therefore, when a foreign object strikes, the interlaminar shear stress increases rapidly near the first edges 14 on the right and left sides, making delamination (i.e., cracks along the composite plies 31) more likely to occur. Delamination within the laminate is more likely to occur in the regions where the ply edges are located.
[0036] However, in the blade root 12 according to this embodiment, a first region 41 is defined around the first edge 14, and no edges of any laminates are present within this first region 41. In other words, the edges of the laminates are not present in an area where shear stress that induces delamination is likely to increase. This makes it possible to suppress the occurrence of damage such as delamination and cracks between the laminates.
[0037] The sub-laminate 33 may have a length that can be classified into a relatively long first sub-laminate 33a and a relatively short second sub-laminate 33b (i.e., shorter than any of the first sub-laminates). In this embodiment, parts of the first sub-laminate 33a and parts of the second sub-laminate 33b are alternately arranged along the blade thickness direction WD.
[0038] As shown in FIG. 3A , the second sub-laminate 33b may be located closer to the bottom surface 12b than a midline 17 located midway between the first edge 14 and the second edge 15 parallel to the blade thickness direction WD. In this case, most or all of the second sub-laminate 33b is located within an area 20 (see FIG. 5C ) surrounded by the bottom surface 12b, line segment 18, and line segment 19. Line segment 18 is a straight line connecting the first edge 14 of the contactable surface 13a and the second edge 15 of the contactable surface 13b. Similarly, line segment 19 is a straight line connecting the first edge 14 of the contactable surface 13b and the second edge 15 of the contactable surface 13a. The contactable surface 13a is one of the two contactable surfaces 13 provided on either side of the central surface 5 (e.g., the right side in FIG. 3A ), and the contactable surface 13b is the other of the two contactable surfaces 13 (e.g., the left side in FIG. 3A ).
[0039] 5A and 5B are superimposed to show the line segment 18, the line segment 19, and the region 20. Most of the second sub-laminate 33b is located within this region 20. In this region, compressive stress occurs when the blade root 12 is deflected in the spanwise direction SD. However, since this compressive stress is unlikely to induce delamination, the occurrence of delamination within region 20 is suppressed, even though the end of the second sub-laminate 33b is present in region 20.
[0040] The present disclosure is not limited to the above-described embodiments, but is defined by the claims, and includes all modifications within the meaning and scope equivalent to the claims.
Claims
1. 1. A composite wing, comprising: an airfoil; a blade root portion provided at one end of the airfoil portion; a main laminate and a sub-laminate, each of which includes a plurality of composite layers formed of a reinforced fiber resin and laminated together, the main laminate and the sub-laminate being alternately laminated in the thickness direction of the composite blade at the blade root portion; Equipped with the blade root portion includes a side surface including a contactable surface that can contact the mounting groove of the blade root portion, the primary laminates extend from the root to the airfoil so as to meet before reaching the airfoil; the sublaminates extend from the blade root to each of the junctions of the main laminates; the contactable surface has a first edge and a second edge spaced apart in a spanwise direction of the composite blade and extending in a longitudinal direction of the blade root, the first edge being closer to the airfoil than the second edge; Within the blade root portion, a first area is defined around the first edge of the contactable surface, and a second area is defined between the first area and a center plane of the blade root portion, The first region does not include an end of the sub-laminate, In at least a portion of the second region, portions of the main laminate and the sub-laminate are alternately positioned along the blade thickness direction, a composite blade, wherein at least one of the sublaminates is located outermost from the center plane of the blade root in an arrangement of the sublaminates and the main laminates in the blade thickness direction;
2. the first section has a predetermined length along the spanwise direction and a predetermined depth toward the center plane of the blade root; When the length from the first edge to the second edge along the spanwise direction is referred to as a reference length, the predetermined length of the first region is set to a sum of a length from the first edge toward the second edge that is at least 25% of the reference length and a length from the first edge toward the airfoil that is at least 110% of the reference length; The predetermined depth of the first region is set to 20% or more of the minimum width of a neck portion where the airfoil portion and the blade root portion are connected. The composite wing of claim 1 .
3. The fibers constituting the reinforced fiber resin are unidirectional carbon fibers.
3. The composite wing according to claim 1 or 2.
4. The side surface of the blade root is formed as an inclined surface that extends away from the center plane of the blade root as it approaches the base end of the composite blade.
3. The composite wing according to claim 1 or 2.
Citation Information
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