Shaped Composite Vehicle Skins and Method for High Rate Manufacturing of Same
20210276688 · 2021-09-09
Assignee
Inventors
Cpc classification
B29C70/545
PERFORMING OPERATIONS; TRANSPORTING
B29C70/34
PERFORMING OPERATIONS; TRANSPORTING
B29C70/305
PERFORMING OPERATIONS; TRANSPORTING
Y02T50/40
GENERAL 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
B64C1/12
PERFORMING OPERATIONS; TRANSPORTING
B29C70/38
PERFORMING OPERATIONS; TRANSPORTING
International classification
B64C1/12
PERFORMING OPERATIONS; TRANSPORTING
B29C70/34
PERFORMING OPERATIONS; TRANSPORTING
B29C70/38
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method for making large vehicle body sections, skins, and panels, including three dimensional sections, skins, and panels, using carbon fiber filaments comingled with thermoplastic polymer filaments to form comingled fibers. The first step is the manufacture of a composite preform using the comingled fibers. The comingled fibers are chopped by a fiber chopper unit mounted on a robot arm to create chopped comingled fibers that are sprayed and set on a preform mold to create a comingled fiber preform. The second step is forming the comingled fiber preform into a composite laminate using heat and pressure to consolidate the comingled fibers on a tooling surface. The disclosed method can be used for making large and contoured thermoplastic composite panels, skins, or sections suitable for light aircraft, automobiles, eVTOL's and other panel applications at a high production rate.
Claims
1. A method of manufacturing a composite laminate comprising: providing a plurality of carbon fiber filaments comingled with a plurality of thermoplastic polymer filaments to form a plurality of comingled fibers; chopping the plurality of comingled fibers with a fiber chopper unit mounted on a robot arm to form a plurality of chopped comingled fibers; spraying the plurality of chopped comingled fibers onto a preform mold; setting the plurality of chopped comingled fibers on the preform mold to form a comingled fiber preform; directing heat energy from a heating unit onto the comingled fiber preform to melt the plurality of thermoplastic polymer filaments; applying pressure to the comingled fiber preform to consolidate the comingled fiber preform; and cooling the comingled fiber preform to form a composite laminate.
2. The method of claim 1 further comprising controlling the fiber chopper unit using computer numerical control.
3. The method of claim 1 wherein applying pressure comprises rolling a roller over the comingled fiber preform.
4. The method of claim 3 further comprising controlling the roller using computer numerical control.
5. The method of claim 1 further comprising controlling the heating unit using computer numerical control.
6. The method of claim 1 wherein the fiber chopping unit comprises a first rotary drum and a second rotary drum, and further wherein the chopping the plurality of comingled fibers is performed by the first rotary drum and the second rotary drum.
7. A method of manufacturing a composite laminate comprising: providing a comingled felt comprising a plurality of carbon fibers and a thermoplastic polymer; forming the comingled felt into a preform shape; directing heat energy from a heating unit onto the comingled felt to melt the thermoplastic polymer; rolling the comingled felt with a compaction roller; and cooling the comingled felt to form a composite laminate.
8. A composite laminate manufactured by a process comprising the steps of: providing a plurality of carbon fiber filaments comingled with a plurality of thermoplastic polymer filaments to form a plurality of comingled fibers; chopping the plurality of comingled fibers with a fiber chopper unit mounted on a robot arm to form a plurality of chopped comingled fibers; spraying the plurality of chopped comingled fibers onto a preform mold; setting the plurality of chopped comingled fibers on the preform mold to form a comingled fiber preform; directing heat energy from a heating unit onto the comingled fiber preform to melt the thermoplastic polymer filaments; applying pressure to the comingled fiber preform to consolidate the comingled fiber preform; and cooling the comingled fiber preform to form a composite laminate.
9. The composite laminate manufactured by the process of claim 8 further comprising controlling the fiber chopper unit using computer numerical control.
10. The composite laminate manufactured by the process of claim 8 wherein applying pressure comprises rolling a roller over the comingled fiber preform.
11. The composite laminate manufactured by the process of claim 10 further comprising controlling the roller using computer numerical control.
12. The composite laminate manufactured by the process of claim 8 further comprising controlling the heating unit using computer numerical control.
13. The composite laminate manufactured by the process of claim 8 wherein the fiber chopping unit comprises a first rotary drum and a second rotary drum, and further wherein the chopping the plurality of comingled fibers is performed by the first rotary drum and the second rotary drum.
14. A composite laminate manufactured by a process comprising the steps of: providing a comingled felt comprising a plurality of carbon fibers and a thermoplastic polymer; forming the comingled felt into a preform shape; directing heat energy from a heating unit onto the comingled felt to melt the thermoplastic polymer; rolling the comingled felt with a compaction roller; and cooling the comingled felt to form a composite laminate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0046] The following is a detailed description of embodiments to illustrate the principles of the invention. The embodiments are provided to illustrate aspects of the invention, but the invention is not limited to any embodiment. The scope of the invention encompasses numerous alternatives, modifications, and equivalents. The scope of the invention is limited only by the claims.
[0047] While numerous specific details are set forth in the following description to provide a thorough understanding of the invention, the invention may be practiced according to the claims without some or all of these specific details.
[0048] Various embodiments will be described in detail with reference to the accompanying drawings. Wherever possible, the same reference numbers are used throughout the drawings to refer to the same or like parts. References made to particular examples and implementations are for illustrative purposes and are not intended to limit the scope of the claims.
[0049] Comingled Fibers
[0050] As shown in
[0051] Examples of thermoplastic polymer filaments 120 include polyetheretherketone (PEEK), polyaryletherketone (PAEK), polyphenylene sulfide (PPS), and polyetherimide (PEI). However, other suitable thermoplastic polymer filaments 120 at different ratios can also be used.
[0052] In one example embodiment, carbon fiber is used as a reinforcing fiber for aircraft, helicopters, eVTOL, and even lightweight automobiles. However, glass fibers with comingled thermoplastic filaments can also be used in an alternative embodiment.
[0053] Robot Application Machine
[0054] As shown in
[0055] As shown in
[0056] In an alternative embodiment, carbon fiber filaments 110 and thermoplastic polymer filaments 120 can be independently fed through the fiber chopper unit 230 rather than comingling the two materials together into comingled fibers 100. In another alternative embodiment, pre-impregnated carbon fiber often called tow-preg can be fed into the fiber chopper unit 230. In the case of the tow-preg, it will be higher cost due to the pre-preg operation.
[0057] As shown in
[0058] Fiber chopping unit 230 can also comprise a second rotary drum 1140 to cut different lengths of chopped comingled fibers 205. In one example embodiment, the second rotary drum 1140 has a larger diameter than first rotary drum 1110 and fewer cutter blades 1120, and therefore produces longer chopped comingled fibers 205. The first rotary drum 1110 and second rotary drum 1140 can rotate on rotating platform 1150 to engage and bear against the drive drum 1130 as required to cut chopped comingled fibers 205.
[0059] In one example embodiment, the length of chopped comingled fibers 205 can also vary by mechanically retracting one or more of cutter blades 1120 in the first rotary drum 1110 and/or second rotary drum 1140 used to cut the length of chopped comingled fibers 205 or by using computer numerical control to switch between first rotary drum 1110 and second rotary drum 1140.
[0060] Compressed air provides the delivery of comingled fibers 100 through fiber chopper unit 230. A binder material can be sprayed with chopped comingled fibers 205 so that the short lengths of lightweight chopped comingled fibers 205 adhere as they are blown onto the preform mold 220.
[0061] In one example embodiment, preform mold 220 is a half circle or doom shape form for a lightweight air vehicle such as an eVTOL. In one embodiment, preform mold 220 can be made of metal hardware cloth, wire screen, or wire mesh that has been formed to the shape of the vehicle body.
[0062] Preform mold 220 is mounted to a work surface 250 that has a plenum 270 underneath it. Blower 260 pulls air from the inner space of the plenum 270, which aids in adhering the chopped comingled fibers 205 to the outer surface of the preform mold 220. In one example embodiment, blower 260 is a large squirrel cage type blower or other high volume, low pressure blower.
[0063] Preform Manufacture Process
[0064] Turning to
[0065] At Step 410, comingled fibers 100 are continuously delivered from comingled fiber supply spool 210 to fiber chopper unit 230 mounted on robot arm 240. Comingled fibers 100 are then cut by fiber chopper unit 230 to form chopped comingled fibers 205.
[0066] At Step 420, chopped comingled fibers 205 are applied or laid down on the surface of preform mold 220. This step can be done using robot arm 240 for manipulating the fiber chopper unit 230. The robot arm 240 is programmed to lay down chopped comingled fibers 205 on the preform mold 220 in a controlled and repeatable manner. This provides an improved method over conventional fiberglass chopped fiber spray-up which is typically done by hand.
[0067] In another embodiment, the amount of chopped comingled fibers 205 can be programmed to vary over the surface of the preform mold 220. For example, the robot arm 240 can be programmed to not lay down chopped comingled fibers 205 in areas such as window openings, hatches, and door openings thereby avoiding material waste.
[0068] At step 430, chopped comingled fibers 205 are set on the preform mold 220 to create comingled fiber preform 310. This process can vary depending on the type of binder used in conjunction with fiber chopper unit 230. In one embodiment, a water or solvent binder may require infrared heat for a few minutes to set the comingled fiber preform 310. In other embodiments, infrared heat can be applied by overhead lamps or as an end effector on a robot arm. In one embodiment, the random orientation of the chopped comingled fibers 205 creates a quasi-isotropic composite laminate.
[0069] In Step 440, the comingled fiber preform 310 is removed from the preform mold 220 and staged for the next part of manufacture. Making the comingled fiber preform 310 on a separate preform mold 220 improves the overall rate production since spray-up time is separated from the thermoplastic consolidation process.
[0070] Preform Consolidation Tool
[0071] As shown in
[0072] In one example embodiment, consolidation tool 500 is made from carbon fiber so it has a low coefficient of thermal expansion (CTE), but other tool materials can be used. Consolidation tool 500 is integrally heated to optimize the consolidation process, although consolidation tool 500 is always kept at a lower temperature than the melt point of the thermoplastic polymer filaments 120.
[0073] As shown in
[0074] Roller 610 applies line contact pressure on the comingled fiber preform 310, and thus has high local consolidation pressure. Thus, a pneumatic cylinder spring can be incorporated into the end of robot arm 620 to provide compliance to the system.
[0075] Heating unit 640 applies heat from heat energy power source 650 to comingled fiber preform 310.
[0076] Several options exist for heat energy from heat energy power source 650 through heating unit 640 suitable to melt the thermoplastic polymer filaments 120 of comingled fiber preform 310. In one embodiment, directed heat energy is used. The directed heat energy can be supplied by a laser or pulsed light. An example of a pulsed light system is the Heraeus humm3™ pulsed light technology wherein the pulsed light is controlled in terms of energy, duration, and frequency. In one embodiment, a laser is used for the directed heat energy, although other directed heat energy methods may be used in alternative embodiments.
[0077] Consolidation Process
[0078] Turning to
[0079] At step 710, roller 610 and heating unit 640 are progressively passed over comingled fiber preform 310 with high pressure thereby pin-rolling the carbon fiber filaments 110 and thermoplastic polymer filaments 120.
[0080] At step 720, the directed heat energy from the heating unit 640 is focused just before the contact point of roller 610. The directed heat energy of heating unit 640 heats and melts the thermoplastic polymer filaments 120 of the comingled fiber preform 310.
[0081] The directed heat energy must be tailored with consolidation pressure and the rate of movement of the robot arm 620 to optimize the composite laminate 900 produced from the comingled fiber preform 310. The amount of heat energy to put onto the comingled fiber preform 310 just ahead of roller 610 and the traverse speed of the roller is specific to each thermoplastic polymer filament 120 used. For example, PPS requires 500 F+ temperature and 200 psi to consolidate, and other materials like PEEK require in excess of 600 F and similar pressure. Once the process parameters and the allowable deviation is determined, then the robot arm 620 is programmed for that speed and heat input.
[0082] At step 730, roller 610 applies pressure to consolidate the comingled fiber preform 310 and cool it back to a solid form. In one embodiment, roller 610 generates 200+ psi pressure required to adequately flow the melted thermoplastic polymer filaments 120 and produce a high strength relatively void free composite laminate 900 from the comingled fiber preform 310.
[0083] At step 740, when the entire surface of the fully consolidated comingled composite laminate 900 has been fully consolidated, it is ready for removal from the consolidation tool 500.
[0084] Consolidation process 700 performs multiple functions. First, it melts and flows the thermoplastic polymer filaments 120 amongst the carbon fiber filaments 110 in the comingled fiber preform 310. Second, it consolidates the carbon fiber filaments 110 and thermoplastic polymer filaments 120 of the comingled fiber preform 310 into fully consolidated comingled composite laminate 900 with low void content. Third, it is forming the fully consolidated comingled composite laminate 900 to the finish surface 630. Fourth, it is creating a smooth surface on the fully consolidated comingled composite laminate 900 for the non-tool side of the vehicle body.
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Alternate Embodiments
[0087] The two-step process of preform manufacture process 400 and consolidation process 700 is optimized for high-rate production because it increases production rate as the forming of comingled fiber preform 310 is occurring simultaneously with the consolidation of the composite laminate 900 in two separate operations.
[0088] However, in an alternative embodiment, the comingled fibers 100 can also be chopped and sprayed by fiber chopper unit 230 directly onto consolidation tool 500 if production rate is less of a concern. In this embodiment, two robot arms can be utilized concurrently, with one first preforming preform manufacture process 400 and the second then performing consolidation process 700. The directed energy heat is still applied by heating unit 640 in the same manner with roller 610 consolidating the composite laminate 900 as describe herein.
[0089] As shown in
[0090] In other embodiments, other fiber forms and other thermoplastic polymers may be combined in a similar manner to make a felt-like material or mat that can be consolidated into a composite laminate 900 using preform manufacture process 400 with robot application machine 200 and consolidation process 700 with consolidation tool 500.
[0091] Such materials in various forms are commercially manufactured and available in sheet form. An example is Mitsubishi Kyron TEX™. The Kyron TEX™ material is available in sheet form delivered on a roll. For example, the material can be manufactured as wide as six feet. The felt material can be cut to flat pattern shapes that can be joined together to approximate a three-dimensional shape such as a composite vehicle skin. The flat pattern shapes can be joined together by sewing or thermoplastic spot welding. When joined together the shaped felt will loosely approximate the shape of the vehicle.
[0092] The consolidation process 700 can be used to heat and consolidate the felt preform on the consolidation tool 500. Multiple passes of the roller 610 and heating unit 640 may be required to reduce the loft of the felt down to a high strength consolidated laminate. The consolidation temperature and pressure applied is specific to the material and the thickness of composite laminate 900 to be produced. For example, a carbon fiber PPS comingled laminate processed in this manner will require at least 600 degrees Fahrenheit heat input to melt and flow the thermoplastic filaments and a roller line contact pressure equal to or greater than 200 psi.
[0093] While the invention has been specifically described in connection with certain specific embodiments thereof, it is to be understood that this is by way of illustration and not of limitation. Reasonable variation and modification are possible within the scope of the foregoing disclosure and drawings without departing from the spirit of the invention.