1. Field of Invention
Federal Regulators and Consumer Advocates are requesting higher performance in rollover, side, and frontal impacts. Their objectives are to increase buckling strength to 2.5 times vehicle weights to maintain the integrity of the passenger door apertures and passenger compartment during higher speed impacts.
The present invention relates to the manufacture of automotive impact and structural components. More, particularly, the invention discloses a front pillar structure of a vehicle adapted to reinforce the front pillar through stiffening or by way of a device for increasing the strength of a hollow shaped front pillar, which has a closed cross-section.
Typically, the automotive engineer strives to increase the strength of the roof rails, pillars, and bows while attaching this structure to a stiff foundation (e.g. frame or uni-body components). Traditional solutions usually included adding multiple sheet metal stampings of higher gage with strength, which were limited to the formability process. A tubular product always has been superior in torsional stiffness and strength; however, it could not be feasibly packaged, or attached to a non-cylindrical cavity in the vehicle, such as the pillars, which the present invention presumes to solve.
2. Description of the Prior Art
Present construction of roof rails, roof headers, rocker reinforcements, front shot-gun structure, and radiator supports, are traditionally made of several stampings comprising a portion of a structural automotive body. Recently, roof structures and radiator supports have began replacing stampings as a one-piece component made by the hydroform process.
An example of a hydro-formed space frame exhibiting a pair of laterally spaced, and longitudinally extending side rail structures is set forth in U.S. Pat. No. 6,926,350, issued to Gabbianelli et al., and which also includes a pair of forward-most upright structures, each connected to a respective side rail structure, to thereby form a pair of A-pillars. A pair of roof rail structures are included, a forward end of each being connected to an upper end of an associated A-pillar, a rearward ring assembly connected at upper portions thereof with the roof rail structure and at bottom portions thereof with the side rail structures. The rearward ring assembly further includes a tubular hydroformed and inverted U-shaped upper member having a cross portion and a pair of leg portions extending downwardly from opposite ends of the cross portion, a pair of tubular hydroformed side members, and a cross structure rigidly connected in ring-forming relation between the second ends of the side members.
U.S. Patent Application Publication No. 2005/0088012, to Yoshida, teaches a vehicle front pillar with inner and outer frame members joined into a substantially tubular shape. A fore portion of the inner frame member is oriented toward the front of the vehicle and has at least one bent portion formed thereon so as to serve as a shock absorbing section. A rear portion of the inner frame member is oriented toward the back of the vehicle and has a reinforced member of a closed sectional structure attached thereto so as to serve as a high-rigidity section. The reinforcing member may have a circular or rectangular cross-sectional shape.
Finally, Yamamoto et al., U.S. Pat. No. 6,692,065, teaches a framing structure for arrangement around a vehicle door opening produced by a hydraulically tube-formed tubular framework disposed inside the vehicle door opening to form a basic framing. An outer panel us joined to the tubular framework by welding. The inner side of the tubular framework is an inner wall within the vehicle. The outer side of the tubular framework, facing the outer panel, is a stiffening wall. The stiffening wall is hidden within a closed spaced between the outer panel and the inner wall.
The present invention discloses an elongated structural member and associated method for producing, and which is created according to any of a roll-forming, extrusion manufacturing, or hydroforming process, the structural member incorporating either an integrally formed or welded on flange hemmed over, providing a flange to spot-weld additional body panels, e.g., door, window mounting structure or other structure panels, to the structural member. The closed section rolled components, defining the elongated structural member, replace a multi-piece stamped construction with a simple single piece section and can either be rolled or extruded straight, or stretch bent into a curved or compound curved environment.
The present construction eliminates individual components or steps within the manufacturing process of automobile impact and structural component, such as, increases in steel gages, additional reinforcement members, and/or complex manufacturing operations. This in turn increases tooling and handling costs associated with conventional manufacturing processes as provided in the prior art.
Typical roof structures include an A-pillar, a roof rail, and B or C pillars for vehicle reinforcement. The present invention combines these commonly individual members by forming a one-piece structural member with integral weld flanges. Additional to pillar applications, the elongated structural member of the present invention may also be reconfigured for application to a lower rocker panel application.
The one-piece roll formed and stretch-bent component, (or otherwise fixture formed structural component), replaces (in the disclosed application) the following components of a roof rail system: 1) an inner A-pillar panel, 2) an outer A-pillar panel, 3) an A-pillar reinforcement, 4) an inner-side roof rail panel, 5) an outer-side roof rail panel, 6) an A-pillar extension, and 7) a C-pillar reinforcement, all used in typical body structure constructions. As a result, the present invention has a tooling advantage where it eliminates many stamped tool dies, weld machines, weld fixtures, and checking fixtures and also provides a weight advantage, if the martensitic alternative should it be required.
Reference will now be made to the attached drawings, when read in combination with the following detailed description, wherein like reference numerals refer to like parts throughout-the several views, and in which:
Referring to accompanying drawings, a preferred embodiment of the present invention will now be described as follows. A roof structure, generally illustrated at 40, (
The tubular shape of the roof structure 40 increases the structural integrity of the entire member and as a result, the strengthened roof structure 40 eliminates the need of an additional A-pillar reinforcement insert. As was further previously described, the elongated structural member of the present invention is also suitable for incorporation into other applications, not limited to rocker panels, bumper configurations, and the like.
The one-piece tubular member is further not limited to being employed over the length of the entire roof structure 40. In variations of the roof structure 40, the one-piece tubular member 8 may be limited in length to the A-pillar section 10, the roof rail section 42, and/or the B or C pillar sections 60. The above said, forming these sections separately requires additional welding and/or bonding subsequent steps to join the members together, and which may increase manufacturing costs.
Referring further to
After the subsequent bending of the roll-formed sheet metal, the one-piece tubular member 10 obtained exhibits a closed, and thereby polygonal shaped, e.g. such as any multi-sided article including triangular, rectangular, pentagonal, hexagonal, etc., section by, such as by welding as referenced at 22, this further creating an integral flange between the respective outer and inner flange walls 20 and 12 for supporting a vehicular component. In doing so, the one-piece tubular member 10 forms a first selected and integrally formed (e.g. door seal) flange, see as further generally referenced at 50. The door seal flange 50 includes a door seal 52 (see again
The top wall 16 of one-piece tubular member 8, (
The subsequent attachment step of the secondary (welded) flange member 30 can also be eliminated if the one-piece tubular member 8 is limited in length to the A-pillar section 10 or does not extend the full length of the roof structure 40, (
As further again referenced in
Given further the limitations associated with roll forming techniques, it is typically understood that any additional flanges (e.g. such as that shown at 30) are separately installed such as by welding. However, the present invention does envision forming configurations and/or applications (roll forming, hydro-forming or the like) whereby more than flange may be integrally formed into an elongated structural member produced according to the present invention.
The polygonal cross-section of the one-piece tubular member 10, (again
Given the above structural description, the method of forming of the roof structure 40, (again
The flattened steel sheet is supplied from the coil into a roll-forming mill, which, in a conventional and known manner, progressively reforms the flat steel sheet as it passes through the mill so that, upon leaving the mill, the steel sheet is longitudinally formed. The continuous corrugated sheet is then fed to a cut-off press, which cuts the continuous corrugated sheet at desired spaced distances corresponding to the desired lengths of the finished roof structure(s).
In a further step, the roof structure(s) is heated at an elevated temperature, which is sufficient to bring about a metallurgical transformation in the metallic members loaded therein. In the preferred method, this metallurgical is an austenizing transition, and in that regard, the parts are heated to a temperature in excess of 900° C.
Following the appropriate heat treatment the roof structure(s) is quenched. The quench fluid is typically a liquid, and generally a water-based liquid, although other quenching media may be employed in the art. The quenching step hardens the metal and locks in the shape imposed thereupon by the forming (roll-forming) step. The resultant structural member consists of Ultra High Strength Steel (UHSS) and therefore has a smaller gage thickness and more importantly requires less package spacing. As a result, the UHSS pillar more efficiently meets vehicle impact standards while the conventional prior-art low-strength steel member requires a thicker gage and/or additional reinforcement structures to meet the same vehicle standards.
Although a particular preferred embodiment of the invention has been disclosed in detail for illustrative purposes, it will be recognized that variations or modifications of the disclosed apparatus, including the rearrangement of parts, lie within the scope of the present invention and without departing from that of the appended claims.
The present application claims the priority of U.S. Provisional Patent Application Ser. No. 60/679,509, filed May 10, 2005, and entitled One-Piece, Tubular Member with an Integrated Welded Flange.
Number | Name | Date | Kind |
---|---|---|---|
4038109 | Pflieger et al. | Jul 1977 | A |
4838606 | Furubayashi et al. | Jun 1989 | A |
5988734 | Longo et al. | Nov 1999 | A |
6364973 | Golle et al. | Apr 2002 | B1 |
6475307 | Nystrom et al. | Nov 2002 | B1 |
6533348 | Jaekel et al. | Mar 2003 | B1 |
6578909 | Reed et al. | Jun 2003 | B1 |
6595579 | Freitag et al. | Jul 2003 | B2 |
6692065 | Yamamoto et al. | Feb 2004 | B2 |
6723175 | Hanakawa et al. | Apr 2004 | B2 |
6926350 | Gabbianelli et al. | Aug 2005 | B2 |
6979052 | Hess et al. | Dec 2005 | B2 |
7021700 | Yoshida et al. | Apr 2006 | B2 |
7144072 | Wallstrom et al. | Dec 2006 | B2 |
7222912 | Deme et al. | May 2007 | B2 |
20020153750 | Feith et al. | Oct 2002 | A1 |
20020174921 | McNulty et al. | Nov 2002 | A1 |
20030075954 | Braitmaier et al. | Apr 2003 | A1 |
20050088012 | Yoshida | Apr 2005 | A1 |
20050258626 | Hill | Nov 2005 | A1 |
20060005503 | Bladow et al. | Jan 2006 | A1 |
20070012748 | McCrink et al. | Jan 2007 | A1 |
20080042469 | McNulty et al. | Feb 2008 | A1 |
Number | Date | Country |
---|---|---|
200009514 | Apr 2002 | JP |
WO0158723 | Aug 2001 | WO |
Number | Date | Country | |
---|---|---|---|
20060255624 A1 | Nov 2006 | US |
Number | Date | Country | |
---|---|---|---|
60679509 | May 2005 | US |