The present invention generally relates to computer aided engineering analysis, more particularly to predict sheet metal forming failure using numerical simulation with finite element analysis (FEA).
Many of metal parts are manufactured via sheet metal forming. One of the most used sheet metal forming processes is deep drawing, which involves a hydraulic or mechanical press pushing a specially-shaped punch into a matching die with a piece of blank sheet metal in between. Exemplary products made from this process include, but are not limited to, car hood, fender, door, automotive fuel tank, kitchen sink, aluminum can, etc. In deep drawing, the depth of a part being made is generally more than half its diameter. As a result, the blank is stretched and therefore thinning in various locations due to the geometry of the part. The part is only good when there is no structural defect such as material failure (e.g., cracking, tearing, wrinkling, necking, etc.).
Localized necking failure is referred to as excessive thinning of the blank sheet metal. Localized necking generally causes by stretching the sheet metal beyond its elastic limit or yield. Localized necking would eventually result into tearing and/or fracture. To correct the problem, the shape of the forming tool (i.e., die, punch) needs to be modified, which is costly due to production time delay and physical costs. Therefore, a computer aided engineering analysis (e.g., finite element analysis) is used for simulating sheet metal forming process to predict whether a failure such as localized necking would occur. Traditionally, a Forming Limit Diagrams (FLD) has been used for determining such occurrence, for example, FLD shown in
Therefore, it would be desirable to have a more reliable approach to predict sheet metal forming failure using numerical simulations with finite element analysis.
This section is for the purpose of summarizing some aspects of the present invention and to briefly introduce some preferred embodiments. Simplifications or omissions in this section as well as in the abstract and the title herein may be made to avoid obscuring the purpose of the section. Such simplifications or omissions are not intended to limit the scope of the present invention.
Systems and methods of predicting sheet metal forming failure using numerical simulations (e.g., finite element analysis (FEA)) are disclosed. According to one aspect of the invention, a finite element analysis model is defined for a particular sheet metal forming process. The FEA model includes a plurality of nodes and elements representing geometry of punch, die and blank sheet metal. The blank sheet metal is modeled with a plurality of shell elements. Additionally, a deformation path-dependent forming limit diagram (FLD) for the material of the blank is included. The deformation path-dependent FLD is converted to a path-independent FLD. A time-marching simulation of the sheet metal forming process is conducted using the FEA model. At each solution cycle, equivalent strain at each integration point of shell element is checked against the corresponding forming limit strain value of the path-independent FLD. The ratio of the equivalent strain and the forming limit strain is defined as formability index. A time history of the formability index of each shell element is saved into a file and displayed to a monitor upon user's instructions. When a particular element's formability index reaches one or higher, a localized necking is predicted.
One of the objects of the present invention is to provide an easy to use and observe means that indicates whether a necking failure might occur based on structural responses obtained a numerical simulation.
Other objects, features, and advantages of the present invention will become apparent upon examining the following detailed description of an embodiment thereof, taken in conjunction with the attached drawings.
These and other features, aspects, and advantages of the present invention will be better understood with regard to the following description, appended claims, and accompanying drawings as follows:
In the following description, numerous specific details are set forth in order to provide a thorough understanding of the present invention. However, it will become obvious to those skilled in the art that the present invention may be practiced without these specific details. The descriptions and representations herein are the common means used by those experienced or skilled in the art to most effectively convey the substance of their work to others skilled in the art. In other instances, well-known methods, procedures, components, and circuitry have not been described in detail to avoid unnecessarily obscuring aspects of the present invention.
Reference herein to “one embodiment” or “an embodiment” means that a particular feature, structure, or characteristic described in connection with the embodiment can be included in at least one embodiment of the invention. The appearances of the phrase “in one embodiment” in various places in the specification are not necessarily all referring to the same embodiment, nor are separate or alternative embodiments mutually exclusive of other embodiments. Further, the order of blocks in process flowcharts or diagrams representing one or more embodiments of the invention do not inherently indicate any particular order nor imply any limitations in the invention.
Embodiments of the present invention are discussed herein with reference to
Methods and systems of predicting material failure (e.g., onset of localized necking) in a sheet forming process are disclosed. A time-marching simulation using a finite element analysis model is performed. The finite element analysis model comprises a plurality of shell elements representing the blank sheet metal being formed to a desired part. In order to perform such prediction using a finite element analysis in a computer system, a traditional strain path-dependent forming limit diagram (FLD) is converted into a path-independent FLD. Then formability index of each shell element is compiled into a time history from the time-marching simulation. When any of the formability indices is equal to one or over, it indicates a likely necking failure of the sheet metal.
The path-independent FLD defines forming limit strain based on equivalent plastic strain
where ε1 is major strain, while ε2 is minor strain.
It can be shown that β is uniquely related to the minor over major stress ratio (σ2/σ1) for associated flow rule with a homogeneous yield surface function. In most general term the equivalent strain can be expressed as
For a material obeying the power law hardening σ=Kεn, which leads to
It is noted that Equation (1) depends upon yield surface type. The special planar isotropic case, sometimes, is denoted as a R00=R45=R90 case. For more advanced or different yield surfaces, equivalent strain is obtained using a general relationship as follows:
eq=(σ11ε11+σ22ε22+σ33ε33+σ12ε12+σ13ε13+σ23ε23)/
where
Traditional path-dependent FLD 100 comprises a forming limit curve 102, with a critical combination of major εmajor and minor strains εminor at the onset of necking failure for a specific load path. In order to cover various possible non-linear load paths, a safety margin is added to the forming limit curve to form the lower curve 104. Theoretically, all strain combinations below the lower curve 104 do not cause any material failure. Traditionally, strains obtained in a computer simulation of metal forming are checked against the path-dependent FLD 100. As long as the strains are below the lower curve 104, the sheet metal forming process is supposed to be working. However, due to non-linear load paths, even with safety margin, there exist many incidences of real world failure even the computer simulation indicates otherwise. It is noted that the term “strain” used in this document is true strain whether major, minor or equivalent. True strain is the correct measure of the final strain when deformation takes place in a series of increments, taking into account the influence of the strain path.
Usage of path-independent FLD 200 is similar to that of the path-dependent FLD 100. As long as the equivalent strain of any point on the surface of the sheet metal being formed to a specific part is below forming limit curve 202, the specific part can be formed without encountering material failure. In order to easily identify any point on the surface is within the forming limit, a formability index (FI) is calculated. As an example, formability index is a ratio of equivalent strain Y 212 at point 210 to the corresponding forming limit strain YL 214. That is FI=Y/YL. For any given point on the surface of the sheet metal, a time history of the formability index is compiled from the time-marching simulation. According to one embodiment of the present invention, any formability index equal to or greater than one indicates potential real world necking failure.
To demonstrate an advantage of the present invention,
While the traditional FLD does not provide good prediction, the formability index derived from path-independent FLD does.
Referring now to
Process 500 starts by defining a finite element analysis (FEA) model used for simulating a metal forming process at step 502. The model includes rigid punch and die and flexible or formable blank sheet metal. The blank sheet metal is represented by a plurality of shell elements to be formed to a desired part. A traditional path-dependent forming limit diagram (FLD) for the material of the blank sheet metal is also included in the definition. Next, at step 504, path-dependent FLD is converted to a path-independent FLD. The conversion can be performed using Equation (1) above in accordance with one embodiment of the present invention. Then at step 506, a time-marching simulation of sheet metal forming is conducted using the FEM model. FEA is used for obtaining stress/strain history of the FEA model (i.e., each and every shell element for the entire forming process). Accordingly, formability index time history of every shell element is compiled at step 508. Formability index history is checked at decision 510. Any index value is equal to or greater than one is deemed to be a failure or at the onset of failure.
Generally, the centroid 332 of each shell element 330 is checked for single integration point element shown in
According to one aspect, the present invention is directed towards one or more computer systems capable of carrying out the functionality described herein. An example of a computer system 600 is shown in
Computer system 600 also includes a main memory 608, preferably random access memory (RAM), and may also include a secondary memory 610. The secondary memory 610 may include, for example, one or more hard disk drives 612 and/or one or more removable storage drives 614, representing a floppy disk drive, a magnetic tape drive, an optical disk drive, etc. The removable storage drive 614 reads from and/or writes to a removable storage unit 618 in a well-known manner. Removable storage unit 618, represents a floppy disk, magnetic tape, optical disk, etc. which is read by and written to by removable storage drive 614. As will be appreciated, the removable storage unit 618 includes a computer usable storage medium having stored therein computer software and/or data.
In alternative embodiments, secondary memory 610 may include other similar means for allowing computer programs or other instructions to be loaded into computer system 600. Such means may include, for example, a removable storage unit 622 and an interface 620. Examples of such may include a program cartridge and cartridge interface (such as that found in video game devices), a removable memory chip (such as an Erasable Programmable Read-Only Memory (EPROM), Universal Serial Bus (USB) flash memory, or PROM) and associated socket, and other removable storage units 622 and interfaces 620 which allow software and data to be transferred from the removable storage unit 622 to computer system 600. In general, Computer system 600 is controlled and coordinated by operating system (OS) software, which performs tasks such as process scheduling, memory management, networking and I/O services.
There may also be a communications interface 624 connecting to the bus 602. Communications interface 624 allows software and data to be transferred between computer system 600 and external devices. Examples of communications interface 624 may include a modem, a network interface (such as an Ethernet card), a communications port, a Personal Computer Memory Card International Association (PCMCIA) slot and card, etc. Software and data transferred via communications interface 624. The computer 600 communicates with other computing devices over a data network based on a special set of rules (i.e., a protocol). One of the common protocols is TCP/IP (Transmission Control Protocol/Internet Protocol) commonly used in the Internet. In general, the communication interface 624 manages the assembling of a data file into smaller packets that are transmitted over the data network or reassembles received packets into the original data file. In addition, the communication interface 624 handles the address part of each packet so that it gets to the right destination or intercepts packets destined for the computer 600. In this document, the terms “computer program medium”, “computer readable medium”, “computer recordable medium” and “computer usable medium” are used to generally refer to media such as removable storage drive 614 (e.g., flash storage drive), and/or a hard disk installed in hard disk drive 612. These computer program products are means for providing software to computer system 600. The invention is directed to such computer program products.
The computer system 600 may also include an input/output (I/O) interface 630, which provides the computer system 600 to access monitor, keyboard, mouse, printer, scanner, plotter, and the likes.
Computer programs (also called computer control logic) are stored as application modules 606 in main memory 608 and/or secondary memory 610. Computer programs may also be received via communications interface 624. Such computer programs, when executed, enable the computer system 600 to perform the features of the present invention as discussed herein. In particular, the computer programs, when executed, enable the processor 604 to perform features of the present invention. Accordingly, such computer programs represent controllers of the computer system 600.
In an embodiment where the invention is implemented using software, the software may be stored in a computer program product and loaded into computer system 600 using removable storage drive 614, hard drive 612, or communications interface 624. The application module 606, when executed by the processor 604, causes the processor 604 to perform the functions of the invention as described herein.
The main memory 608 may be loaded with one or more application modules 606 (e.g., FEM and/or SPH application module) that can be executed by one or more processors 604 with or without a user input through the I/O interface 630 to achieve desired tasks. In operation, when at least one processor 604 executes one of the application modules 606, the results are computed and stored in the secondary memory 610 (i.e., hard disk drive 612). Results of the analysis (e.g., formability index time histories) are reported to the user via the I/O interface 630 either in a text or in a graphical representation upon user's instructions.
Although the present invention has been described with reference to specific embodiments thereof, these embodiments are merely illustrative, and not restrictive of, the present invention. Various modifications or changes to the specifically disclosed exemplary embodiments will be suggested to persons skilled in the art. For example, whereas Hill's yield surface has been shown and described to derive Equation (1) through which a path-dependent FLD is converted to path-independent FLD. Other equivalent methods can be used instead, for example, a general relationship between equivalent strain and effective stress. Additionally, whereas quadrilateral shell elements have been shown and described to represent the FEA model, other types of elements can be used instead, for example, triangular elements. In summary, the scope of the invention should not be restricted to the specific exemplary embodiments disclosed herein, and all modifications that are readily suggested to those of ordinary skill in the art should be included within the spirit and purview of this application and scope of the appended claims.