Structural reinforcement system for automotive vehicles

Information

  • Patent Grant
  • 6921130
  • Patent Number
    6,921,130
  • Date Filed
    Wednesday, June 25, 2003
    21 years ago
  • Date Issued
    Tuesday, July 26, 2005
    19 years ago
Abstract
An automotive vehicle frame reinforcement system has a skeleton member designed to be secured to a vehicle frame, such as a roof or pillar section. An expandable material, such as an epoxy-based reinforcing foam, is disposed on the skeleton member. Once the system is attached to the frame, the foam expands and cures during an automobile assembly operation, bonding the reinforcement system to the frame. As a result, the reinforcement system provides enhanced load distribution over the vehicle frame without adding excessive weight.
Description
FIELD OF THE INVENTION

The present invention relates generally to a reinforced structural member for use in strengthening the stiffness and strength of a frame assembly. More particularly, the invention relates to a vehicle frame system of an automotive vehicle that is reinforced by a member coated over a portion of its surface with an expandable material, the combination of which increases the structural stiffness and strength of the automotive vehicle.


BACKGROUND OF THE INVENTION

For many years the transportation industry has been concerned with designing reinforced structural members that do not add significantly to the weight of a vehicle. U.S. Pat. Nos. 5,755,486; 4,901,500; and 4,751,249 described prior art reinforcing devices. While these prior art devices may be advantageous in some circumstances, there is needed a simple low cost structure that permits coupling the reinforcement member to a variety of structures of varying geometric configurations.


In the automotive industry there is also a need for a relatively low cost system for reinforcing automotive vehicle frame structures.


SUMMARY OF THE INVENTION

The present invention is directed to a structural reinforcement system, and particularly one for reinforcing automotive vehicle frame structures, such as (without limitation) vehicle roof and pillar structures. The system generally employs a skeleton member adapted for stiffening the structure to be reinforced and helping to redirect applied loads. In use, the skeleton member is in contact, over at least a portion of its outer surface, with an energy absorbing medium, and particularly heat activated bonding material. In a particular preferred embodiment, the skeleton member is a molded metal, or composite frame and it is at least partially coated with foamable epoxy-based resin, such as L5206, L5207, L5208 or L5209 structural foam commercially available from L & L Products of Romeo, Mich.


In one embodiment the skeleton member along with a suitable amount of bonding or load transfer medium is placed in a cavity defined within an automotive vehicle, such as a vehicle roof structure, pillar structure or both. The bonding medium is activated to accomplish expansion of the resin in the space defined between the skeleton member and the wall structure defining the cavity. The resulting structure includes the wall structure joined to the skeleton member with the aid of the structural foam.





DETAILED DESCRIPTION OF THE DRAWINGS

The features and inventive aspects of the present invention will become more apparent upon reading the following detailed description, claims, and drawings, of which the following is a brief description:



FIG. 1 is a perspective view of aspects of an automotive vehicle roof and pillar structure, illustrating an A-Pillar and B-Pillar.



FIG. 2 is a perspective view of a skeleton member coated with an expandable resin in accordance with the present inventions.



FIG. 3 is another perspective view of the structure shown in FIG. 2.



FIG. 4 is a sectional view showing a coated skeleton member prior to activation of an expandable resin.



FIG. 5 illustrates the structure of FIG. 4 after the expandable resin has been expanded.



FIG. 6 is a perspective view of another illustrative structure in accordance with the present invention.



FIG. 7 is a side elevation view of the structure of FIG. 6.



FIG. 8 illustrates yet another structure in accordance with the present invention.



FIG. 9 illustrates the structure of FIG. 8 employed combination with a vehicle pillar structure.





DETAILED DESCRIPTION OF PREFERRED EMBODIMENT


FIG. 1 illustrates an example of an automotive vehicle showing portions of a frame structure. As will be appreciated, it is common for such structures to include a plurality of hollow vehicle frame members that are joined to define the frame. One such structure, for purposes of illustration (without limitation) is a vehicle roof and pillar structure. As will be recognized, included in the roof and pillar structure may also be windows, sunroofs or other removable tops, vehicle doors and door components, headliners (with or without overhead accessories), or the like. As discussed later, other vehicle frame members are also contemplated within the scope of the present invention.


While FIG. 1 illustrates an A-Pillar 12 and B-Pillar 14, other pillars may likewise be employed in accordance with the present invention. In FIG. 1 there is shown also a portion of the roof structure 16 that bridges the A-Pillar 12 and B-Pillar 14.


Depending upon vehicle design, it is possible that the roof structure 16 bridging the A-Pillar and B-Pillar is relatively indistinguishable between the A-Pillar and B-Pillar such that the A-Pillar structure and B-Pillar structure effectively adjoin one another. In such instances the uppermost portion of the pillar structure is deemed the roof structure.


Reinforcement of the roof and pillar sections is accomplished by locating one or more skeleton members in accordance with the present invention in a hollow or cavity portion of the roof or pillar. FIG. 1 illustrates examples of this by showing a first member 16, a second member 18 and a third member 20 in such locations. The members 16, 18 and 20 preferably are sealingly secured to at least one of the roof and pillar sections by a bonding material, which upon heat activation produces adhesion to skeleton members to help secure the members and the walls defining the hollow from movement within the hollow portion.


Though other heat activated materials are possible, a preferred heat activated material is an expandable plastic, and preferably one that is foamable. A particularly preferred material is an epoxy-based structural foam. For example, without limitation, in one embodiment, the structural foam is an epoxy-based material, including an ethylene copolymer or terpolymer that may possess an alpha-olefin. As a copolymer or terpolymer, the polymer is composed of two or three different monomers, i.e., small molecules with high chemical reactivity that are capable of linking up with similar molecules.


A number of epoxy-based structural reinforcing foams are known in the art and may also be used to produce the structural foam. A typical structural foam includes a polymeric base material, such as an epoxy resin or ethylene-based polymer which, when compounded with appropriate ingredients (typically a blowing and curing agent), expands and cures in a reliable and predicable manner upon the application of heat or the occurrence of a particular ambient condition. From a chemical standpoint for a thermally-activated material, the structural foam is usually initially processed as a flowable thermoplastic material before curing. It will cross-link upon curing, which makes the material incapable of further flow.


An example of a preferred structural foam formulation is an epoxy-based material that is commercially available from L&L Products of Romeo, Mich., under the designations L5206, L5207, L5208 and L5209. One advantage of the preferred structural foam materials 14 over prior art materials is that the preferred materials can be processed in several ways. The preferred materials can be processed by injection molding, extrusion compression molding or with a mini-applicator. This enables the formation and creation of part designs that exceed the capability of most prior art materials. In one preferred embodiment, the structural foam (in its uncured state) generally is dry or relatively free of tack to the touch.


While the preferred materials for fabricating the structural foam have been disclosed, the structural foam can be formed of other materials provided that the material selected is heat-activated or otherwise activated by an ambient condition (e.g. moisture, pressure, time or the like) and cures in a predictable and reliable manner under appropriate conditions for the selected application. One such material is the epoxy based resin disclosed in U.S. patent application Ser. No. 09/268,810, the teachings of which are incorporated herein by reference, filed with the United States Patent and Trademark Office on Mar. 8, 1999 by the assignee of this application. Some other possible materials include, but are not limited to, polyolefin materials, copolymers and terpolymers with at least one monomer type an alpha-olefin, phenol/formaldehyde materials, phenoxy materials, and polyurethane materials with high glass transition temperatures. See also, U.S. Pat. Nos. 5,766,719; 5,755,486; 5,575,526; and 5,932,680, (incorporated by reference). In general, the desired characteristics of the structural foam include relatively high stiffness, high strength, high glass transition temperature (typically greater than 70 degrees Celsius), and good corrosion resistance properties. In this manner, the material does not generally interfere with the materials systems employed by automobile manufacturers.


In applications where a heat activated, thermally expanding material is employed, an important consideration involved with the selection and formulation of the material comprising the structural foam is the temperature at which a material reaction or expansion, and possibly curing, will take place. For instance, in most applications, it is undesirable for the material to be reactive at room temperature or otherwise at the ambient temperature in a production line environment. More typically, the structural foam becomes reactive at higher processing temperatures, such as those encountered in an automobile assembly plant, when the foam is processed along with the automobile components at elevated temperatures or at higher applied energy levels, e.g., during painting preparation steps. While temperatures encountered in an automobile assembly operation may be in the range of about 148.89° C. to 204.44° C. (about 300° F. to 400° F.), body and paint shop applications are commonly about 93.33° C. (about 200° F.) or slightly higher. If needed, blowing agent activators can be incorporated into the composition to cause expansion at different temperatures outside the above ranges.


Generally, suitable expandable foams have a range of expansion ranging from approximately 0 to over 1000 percent. The level of expansion of the structural foam 14 may be increased to as high as 1500 percent or more. Typically, strength is obtained from products that possess low expansion.


Referring now to FIG. 2, there is shown one example of a first reinforcement member 16 in accordance with the present invention. This illustrated embodiment is useful, for instance, for reinforcing the juncture between an automotive vehicle roof 22 and the A-Pillar. The first member 16 has a first portion 24 adapted for placement in a cavity defined in a vehicle roof structure, and a second portion 26 adapted for placement in a cavity defined in a vehicle pillar, such as an A-Pillar as illustrated. Preferably the cross sectional silhouette of both the first portion 24 and the second portion 26 is generally complementary to the walls of the cavity defined in opposing roof or pillar structure. Though the member may also be solid, the member preferably includes a skeleton frame that is prepared to minimize weight while still achieving desired rigidity. Accordingly, the skeleton frame preferably is designed to employ a plurality of ribs that effectively are beamlike (e.g. I-beam) in function, thus helping to selectively strengthen the member. The ribs are illustrated in FIGS. 2 and 3 generally running orthogonal to one another. However, this is not intended as limiting, as the rib configuration may be varied depending upon the desired outcome.


In general, however, a rib is placed adjacent to, and in generally non-parallel relationship to a surface over which loads will be distributed. In FIG. 2, by way of illustration, a plurality of first ribs 28 are located adjacent to a surface of the member (shown covered with expandable material 30). FIG. 3 also shows how the ribs 28 (reference numerals illustrating some of the ribs, but not all) can be configured relative to one another to provide additional stabilization. In general, because of the relatively high bending moment of the ribs, without unduly increasing weight of the member, rigidity can be increased in locations where loads are anticipated by selective design and placement of the ribs. At the same time, enhanced load distribution is possible from the continuous surfaces and foam employed with the ribs to spread energy. Moreover, weight savings can be achieved by such design. For instance, the structure of the member is also such that over at least one quarter, preferably one half and more preferably greater than about three quarter of the length of the member at any given point between the ends of said member, the cross-sectional area of the member is less than 75%, more preferably less than 50% and still more preferably less than 20% of the overall area for a silhouette profile taken such point. In this manner, weight reductions of up to about 50%, more preferably about 70%, and still more preferably about 90%, are possible as compared with a solid structure of the same material.


It should be appreciated that other devices for securing the members 16, 18, and 20 to the vehicle frame may be employed, including suitable fasteners, straps, or other mechanical interlocks. Through-holes 32 may also be defined within the structure to assist in vehicle manufacturing. In a particularly preferred embodiment, the skeleton members of the present invention are injection molded plastics, such as nylons. However, other materials and manufacturing techniques may be employed similarly to achieve like results. For instance, high strength to weight metal components, such as aluminum, titanium, magnesium or the like, may be employed, as well as polymer composites such as a layered polymer with fibers capable of compression molding to generate strength.


Returning to FIG. 1, when employed in an automotive vehicle in accordance with the present invention, the skeleton members, particularly when coated with an expandable material (such as a heat activated epoxy based foam) can reinforce the region for which it is used by the combination of increased stiffening from the presence of beam-like ribs and load distribution through the combination of relatively high surface area continuous surfaces and an expandable material.


In another preferred embodiment, the expandable material, upon expansion will serve as a sealant for blocking the passage of fluids or other elements through the cavity. Thus, in such embodiment, it is preferred that the expandable material is provided continuously about generally the entirety of the periphery of any portion of the skeleton member that does not sealingly contact the automobile frame structure. FIG. 5 illustrates this by showing how skeleton member 16 coated with an expandable material 30 (shown in FIG. 4) is sealed in place upon activation of the material 30 (shown expanded in FIG. 5).



FIGS. 6 through 9 illustrate other embodiments in accordance with the present invention. In FIGS. 6 and 7, there is shown a reinforcement member 18 adapted for a pillar of an automotive vehicle. The structure of the skeleton member employs a plurality of ribs 34 adjoining one or more continuous surfaces 36 (shown coated with an expandable material 38).


The expandable material is shown in its expanded state. As the skilled artisan will appreciate, not all ribs are shown, and the specific design of each rib configuration will vary depending upon its intended use, and the geometry of the region being reinforced (e.g. walls 40 and 42 of the vehicle frame structure defining the cavity). Further expandable material may be employed in contact with the ribs.



FIGS. 8 and 9 illustrate yet another embodiment according to the present invention. In this embodiment, a skeleton member 20 having a plurality ribs 44 and generally continuous surfaces (shown coated with a layer 46) is fabricated to also include structure for facilitating vehicle manufacture. Specifically, the embodiment shown includes a plurality of through-holes 48, for enabling body shop weld access or the like. As shown in FIG. 9, in this embodiment, the expandable material layer 46, upon expansion, covers the circumference of a cross section of the structure.


The skilled artisan will appreciate that the use of the reinforcements disclosed herein is not intended as being limited only to illustrate the locations shown in FIG. 1. They can be used in any location within an automotive vehicle frame. For instance, other reinforced locations are also possible including but not limited to pillar to door regions, roof to pillar, mid-pillar, roof rails, windshield or other window frames, deck lids, hatches, removable top to roof locations, other vehicle beltline locations, motor rails, lower sills, cross members, lower rails, and the like. Moreover, vehicle roof tops may be reinforced to support additional loads in accordance with the present invention. In the same manner as was described above in the context of a roof and pillar system, a reinforcement frame member having an expandable material thereon is placed in a cavity defined in the vehicle frame structure. The material is expanded to help secure the reinforcement in place.


The preferred embodiment of the present invention has been disclosed. A person of ordinary skill in the art would realize however, that certain notifications would come within the teachings of this invention. Therefore, the following claims should be studied to determine the true scope and content of the invention.

Claims
  • 1. A reinforced roof and pillar system for an automotive vehicle, comprising: an automotive vehicle frame for a roof and pillar of the automotive vehicle, the frame having a roof rail with a plurality of wall portions defining a cavity therein, the roof rail extending longitudinally relative to the vehicle; a skeleton member at least partially disposed within the cavity as defined by the roof rail, the skeleton member having a length and a longitudinal axis extending along the roof rail, the skeleton member comprising a first portion with a plurality of ribs and a second portion extending away from the first portion, the second portion also including a plurality of ribs, the skeleton member including a first outwardly facing surface opposing at least one of the wall portions and a second outwardly facing surface opposite the first outwardly facing surface wherein the first outwardly facing surface substantially extends along the entire length of the skeleton member; and a structural foam material in sealing contact with the skeleton member and at least one of the plurality of wall portions, wherein; i) at least two of the plurality of ribs of the first portion are in spaced apart opposing relation to each other; and ii) the structural foam material sealingly contacts the first outwardly facing surface along substantially the entire length of the skeleton member and the structural foam material sealingly contacts the second outwardly facing surface along a substantial portion of the length of the skeleton member.
  • 2. A reinforced roof and pillar system as in claim 1 wherein the automotive vehicle frame includes a roof rail adjoining an A-pillar and the first portion of the skeleton member is located in the roof rail and the second portion of the skeleton member extends into the A-pillar.
  • 3. A reinforced roof and pillar system as in claim 2 wherein the second portion has a cross-sectional area taken generally perpendicular to the axis that is less than about fifty percent of a cross-sectional area of the first portion taken generally perpendicular to the axis.
  • 4. A reinforced roof and pillar system as in claim 1 wherein the first portion has a first cross-sectional area taken generally perpendicular to the axis at one end of the length that is less than about fifty percent of a second cross-sectional area of the second portion taken generally perpendicular to the axis at an opposite end of the length.
  • 5. A reinforced roof and pillar system as in claim 1 wherein the automotive vehicle frame includes a roof rail and wherein the first and second portions of the skeleton member are located in the roof rail.
  • 6. A reinforced roof and pillar system as in claim 5 wherein the first portion and the second portion are separated by a third portion, the third portion including a through-hole extending through a substantial amount of the third portion, the substantial amount being greater than half of the third portion.
  • 7. A reinforced roof and pillar system as in claim 1 wherein at least two of said plurality of ribs in the first portion intersect with each other and the plurality of ribs in the first portion are substantially devoid of the foam.
  • 8. A reinforced roof and pillar system as in claim 3 wherein the skeleton member and the structural foam material cooperatively seal the cavity to block passage of materials through the cavity.
  • 9. A reinforced roof and pillar system as in claim 5 wherein the skeleton member and the structural foam cooperatively seal the cavity to block passage of materials through the cavity.
  • 10. A reinforced roof and pillar system for an automotive vehicle, comprising: an automotive vehicle frame for a roof and pillar of the automotive vehicle, the frame having a roof rail with a plurality of wall portions defining a cavity therein; a skeleton member at least partially disposed within the cavity as defined by the roof rail, the skeleton member having a length and a longitudinal axis extending along the roof rail, the skeleton member comprising a first portion with a plurality of ribs and a second portion extending away from the first portion, the second portion also including a plurality of ribs, the skeleton member including a first outwardly facing surface opposing at least one of the wall portions and a second outwardly facing surface opposite the first outwardly facing surface wherein the first outwardly facing surface substantially extends along the entire length of the skeleton member; and a structural foam material in sealing contact with the skeleton member and at least one of the plurality of wall portions, wherein; i) at least two of the plurality of ribs of the first portion and at least two of the plurality of ribs of the second portion are in spaced apart opposing relation to each other and the at least two of the plurality of ribs of the first portion both extend between the first outwardly facing surface and the second outwardly facing surface; ii) the first portion is contiguous with the second portion and the first portion and the second portion are substantially aligned with each other along the longitudinal axis; iii) the structural foam material sealingly contacts the first outwardly facing surface along substantially the entire length of the skeleton member and the structural foam material sealingly contacts the second outwardly facing surface along a substantial portion of the length of the skeleton member; and iv) the skeleton member is formed as a singular molded plastic component.
  • 11. A reinforced roof and pillar system as in claim 10 wherein the automotive vehicle frame includes a roof rail adjoining an A-pillar and the first portion of the skeleton member is located in the roof rail and the second portion of the skeleton member extends into the A-pillar.
  • 12. A reinforced roof and pillar system as in claim 10 wherein the second portion has a cross-sectional area taken generally perpendicular to the axis that is less than about fifty percent of a cross-sectional area of the first portion taken generally perpendicular to the axis.
  • 13. A reinforced roof and pillar system as in claim 9 wherein at least two of said plurality of ribs in the first portion intersect with each other and the plurality of ribs in the first portion are substantially devoid of the foam.
  • 14. A reinforced roof and pillar system as in claim 12 wherein the skeleton member and the structural foam material cooperatively seal the cavity to block passage of materials through the cavity.
  • 15. A reinforced roof and pillar system for an automotive vehicle, comprising: an automotive vehicle frame for a roof and pillar of the automotive vehicle, the frame having a plurality of wall portions defining a cavity therein, wherein the automotive vehicle frame includes a roof rail adjoining an A-pillar, the roof rail extending longitudinally relative to the vehicle; a skeleton member disposed within the cavity as defined by the roof rail and the A-pillar, the skeleton member having a length and a longitudinal axis extending along the roof rail and the A-pillar, the skeleton member comprising a first portion with a plurality of ribs and a second portion extending away from the first portion, the second portion also including a plurality of ribs, the skeleton member including a first outwardly facing surface opposing at least one of the wall portions and a second outwardly facing surface opposite the first outwardly facing surface wherein the first outwardly facing surface substantially extends along the entire length of the skeleton member; and a structural foam material in sealing contact with the skeleton member and at least one of the plurality of wall portions, wherein; i) at least three of the plurality of ribs of the first portion and at least three of the plurality of ribs of the second portion are in spaced apart opposing relation to each other and the at least three of plurality of ribs of the first portion each extend between the first outwardly facing surface and the second outwardly facing surface; ii) the first portion is contiguous with the second portion and the first portion and the second portion are substantially aligned with each other along the longitudinal axis; and iii) the first portion of the skeleton member is located in the roof rail and the second portion of the skeleton member extends into the A-pillars; iv) the plurality of ribs of the first portion and the plurality of ribs of the second portion being substantially devoid of the structural foam material; v) the structural foam material sealingly contacts the first outwardly facing surface along substantially the entire length of the skeleton member and the structural foam material sealingly contacts the second outwardly facing surface along a substantial portion of the length of the skeleton member.
  • 16. A reinforced roof and pillar system as in claim 15 wherein the second portion has a cross-sectional area taken generally perpendicular to the axis that is less than about fifty percent of a cross-sectional area of the first portion taken generally perpendicular to the axis.
  • 17. A reinforced roof and pillar system as in claim 16 wherein the skeleton member and the structural foam material cooperatively seal the cavity to block passage of materials through the cavity.
  • 18. A reinforced roof and pillar system as in claim 1 wherein the outwardly facing surface of the first portion and the outwardly facing surface of the second portion are coextensive with the longitudinal axis and the structural foam material is coextensive with the outwardly facing surface of the first portion and the outwardly facing surface of the second portion.
  • 19. A reinforced roof and pillar system as in claim 10 wherein the outwardly facing surface of the first portion and the outwardly facing surface of the second portion are coextensive with the longitudinal axis and the structural foam material is coextensive with the outwardly facing surface of the first portion and the outwardly facing surface of the second portion.
  • 20. A reinforced roof and pillar system as in claim 17 wherein the outwardly facing surface of the first portion and the outwardly facing surface of the second portion are coextensive with the longitudinal axis and the structural foam material is coextensive with the outwardly facing surface of the first portion and the outwardly facing surface of the second portion.
  • 21. A reinforced roof and pillar system as in claim 1 wherein the skeleton member is formed as a singular molded plastic component.
  • 22. A reinforced roof and pillar system as in claim 20 wherein the skeleton member is formed as a singular molded plastic component.
US Referenced Citations (234)
Number Name Date Kind
1814677 Fennema Jul 1931 A
3054636 Wessells, III Sep 1962 A
3123170 Bryant Mar 1964 A
3493257 Fitzgerald et al. Feb 1970 A
3649375 Venkatesan Mar 1972 A
3665968 DePutter May 1972 A
3746387 Schwenk Jul 1973 A
3757559 Welsh Sep 1973 A
3868796 Bush Mar 1975 A
3890108 Welsh Jun 1975 A
4019301 Fox Apr 1977 A
4029128 Yamagishi Jun 1977 A
4082825 Puterbaugh Apr 1978 A
4083384 Horne et al. Apr 1978 A
4090734 Inami et al. May 1978 A
4238540 Yates et al. Dec 1980 A
4378395 Asoshina et al. Mar 1983 A
4397490 Evans et al. Aug 1983 A
4440434 Celli Apr 1984 A
4457555 Draper Jul 1984 A
4463870 Coburn, Jr. et al. Aug 1984 A
4559274 Kloppe et al. Dec 1985 A
4610836 Wycech Sep 1986 A
4613177 Loren et al. Sep 1986 A
4695343 Wycech Sep 1987 A
4705716 Tang Nov 1987 A
4732806 Wycech Mar 1988 A
4751249 Wycech Jun 1988 A
4762352 Enomoto Aug 1988 A
4769391 Wycech Sep 1988 A
4803108 Leuchten et al. Feb 1989 A
4813690 Coburn, Jr. Mar 1989 A
4822011 Goldbach et al. Apr 1989 A
4836516 Wycech Jun 1989 A
4853270 Wycech Aug 1989 A
4861097 Wycech Aug 1989 A
4898630 Kitoh et al. Feb 1990 A
4901395 Semrau Feb 1990 A
4901500 Wycech Feb 1990 A
4908930 Wycech Mar 1990 A
4917435 Bonnett et al. Apr 1990 A
4922596 Wycech May 1990 A
4923902 Wycech May 1990 A
4946737 Lindeman et al. Aug 1990 A
4978562 Wycech Dec 1990 A
4984406 Friesen Jan 1991 A
4989913 Moore, III Feb 1991 A
4995545 Wycech Feb 1991 A
5040803 Cieslik et al. Aug 1991 A
5072952 Irrgeher et al. Dec 1991 A
5102188 Yamane Apr 1992 A
5122398 Seiler et al. Jun 1992 A
5124186 Wycech Jun 1992 A
5213391 Takagi May 1993 A
5255487 Wieting et al. Oct 1993 A
5266133 Hanley et al. Nov 1993 A
5344208 Bien et al. Sep 1994 A
5358397 Ligon et al. Oct 1994 A
5373027 Hanley et al. Dec 1994 A
5382397 Turner, Jr. Jan 1995 A
5395135 Lim et al. Mar 1995 A
5506025 Otto et al. Apr 1996 A
5529824 Walendy et al. Jun 1996 A
5560672 Lim et al. Oct 1996 A
5575526 Wycech Nov 1996 A
5577784 Nelson Nov 1996 A
5580120 Nees et al. Dec 1996 A
5642914 Takabatake Jul 1997 A
5648401 Czaplicki et al. Jul 1997 A
5649400 Miwa Jul 1997 A
5652039 Tremain et al. Jul 1997 A
5660116 Dannawi et al. Aug 1997 A
5707098 Uchida et al. Jan 1998 A
5725272 Jones Mar 1998 A
5731069 Delle Donne et al. Mar 1998 A
5755486 Wycech May 1998 A
5766719 Rimkus Jun 1998 A
5785376 Nees et al. Jul 1998 A
5786394 Slaven Jul 1998 A
5803533 Schulz et al. Sep 1998 A
5804608 Nakazato et al. Sep 1998 A
5806915 Takabatake Sep 1998 A
5806919 Davies Sep 1998 A
5819408 Catlin Oct 1998 A
5851626 McCorry et al. Dec 1998 A
5855094 Baudisch et al. Jan 1999 A
5866052 Muramatsu Feb 1999 A
5871849 Lepine Feb 1999 A
5878784 Sales et al. Mar 1999 A
5884960 Wycech Mar 1999 A
5885688 McLaughlin Mar 1999 A
5888600 Wycech Mar 1999 A
5888642 Meteer et al. Mar 1999 A
5894071 Merz et al. Apr 1999 A
5901528 Richardson May 1999 A
5901752 Lundman May 1999 A
5902656 Hwang May 1999 A
5904024 Miwa May 1999 A
5932680 Heider Aug 1999 A
5934737 Abouzahr Aug 1999 A
5941597 Horiuchi et al. Aug 1999 A
5979902 Chang et al. Nov 1999 A
5984389 Nuber Nov 1999 A
5985435 Czaplicki et al. Nov 1999 A
5988734 Longo et al. Nov 1999 A
5992923 Wycech Nov 1999 A
5994422 Born et al. Nov 1999 A
5997077 Siebels et al. Dec 1999 A
6003274 Wycech Dec 1999 A
6004425 Born et al. Dec 1999 A
6006484 Geissbuhler Dec 1999 A
6022066 Tremblay et al. Feb 2000 A
6033300 Schneider Mar 2000 A
6040350 Fukui Mar 2000 A
6050630 Hochet Apr 2000 A
6053210 Chapman et al. Apr 2000 A
6058673 Wycech May 2000 A
6059342 Kawai et al. May 2000 A
6068424 Wycech May 2000 A
6073991 Naert Jun 2000 A
6077884 Hess et al. Jun 2000 A
6079180 Wycech Jun 2000 A
6082811 Yoshida Jul 2000 A
6090232 Seeliger et al. Jul 2000 A
6092864 Wycech et al. Jul 2000 A
6094798 Seeliger et al. Aug 2000 A
6096403 Wycech et al. Aug 2000 A
6096791 Born et al. Aug 2000 A
6099948 Paver, Jr. Aug 2000 A
6102379 Ponslet et al. Aug 2000 A
6102473 Steininger et al. Aug 2000 A
6103341 Barz et al. Aug 2000 A
6103784 Hilborn et al. Aug 2000 A
6110982 Russick et al. Aug 2000 A
6129410 Kosaraju et al. Oct 2000 A
6131897 Barz et al. Oct 2000 A
6135542 Emmelmann et al. Oct 2000 A
6146565 Keller Nov 2000 A
6149227 Wycech Nov 2000 A
6150428 Hanley, IV et al. Nov 2000 A
6152260 Eipper et al. Nov 2000 A
6153709 Xiao et al. Nov 2000 A
6165588 Wycech Dec 2000 A
6168226 Wycech Jan 2001 B1
6174932 Pachl et al. Jan 2001 B1
6189953 Wycech Feb 2001 B1
6196621 VanAssche et al. Mar 2001 B1
6197403 Brown et al. Mar 2001 B1
6199940 Hopton et al. Mar 2001 B1
6207244 Hesch Mar 2001 B1
6232433 Narayan May 2001 B1
6233826 Wycech May 2001 B1
6237304 Wycech May 2001 B1
6247287 Takabatake Jun 2001 B1
6253524 Hopton et al. Jul 2001 B1
6263635 Czaplicki Jul 2001 B1
6267436 Takahara Jul 2001 B1
6270600 Wycech Aug 2001 B1
6272809 Wycech Aug 2001 B1
6276105 Wycech Aug 2001 B1
6277898 Pachl et al. Aug 2001 B1
6281260 Hanley, IV et al. Aug 2001 B1
6287666 Wycech Sep 2001 B1
6296298 Barz Oct 2001 B1
6303672 Papalos et al. Oct 2001 B1
6305136 Hopton et al. Oct 2001 B1
6311452 Barz et al. Nov 2001 B1
6315938 Jandali Nov 2001 B1
6319964 Blank et al. Nov 2001 B1
6321793 Czaplicki et al. Nov 2001 B1
6332731 Wycech Dec 2001 B1
6341467 Wycech Jan 2002 B1
6348513 Hilborn et al. Feb 2002 B1
6357819 Yoshino Mar 2002 B1
6358584 Czaplicki Mar 2002 B1
6368438 Chang et al. Apr 2002 B1
6372334 Wycech Apr 2002 B1
6378933 Schoen et al. Apr 2002 B1
D457120 Broccardo et al. May 2002 S
6382635 Fitzgerald May 2002 B1
6383610 Barz et al. May 2002 B1
6389775 Steiner et al. May 2002 B1
6406078 Wycech Jun 2002 B1
6413611 Roberts et al. Jul 2002 B1
6419305 Larsen Jul 2002 B1
6422575 Czaplicki et al. Jul 2002 B1
6435601 Takahara Aug 2002 B2
H2047 Harrison et al. Sep 2002 H
6455146 Fitzgerald Sep 2002 B1
6467834 Barz et al. Oct 2002 B1
6471285 Czaplicki et al. Oct 2002 B1
6474722 Barz Nov 2002 B2
6474723 Czaplicki et al. Nov 2002 B2
6475577 Hopton et al. Nov 2002 B1
6478367 Ishikawa Nov 2002 B2
6482486 Czaplicki et al. Nov 2002 B1
6482496 Wycech Nov 2002 B1
6491336 Beckmann et al. Dec 2002 B1
6502821 Schneider Jan 2003 B2
6519854 Blank Feb 2003 B2
6523857 Hopton et al. Feb 2003 B1
6523884 Czaplicki et al. Feb 2003 B2
6550847 Honda et al. Apr 2003 B2
6561571 Brennecke May 2003 B1
6573309 Reitenbach et al. Jun 2003 B1
6575526 Czaplicki et al. Jun 2003 B2
6607238 Barz Aug 2003 B2
6619727 Barz et al. Sep 2003 B1
6620501 Kassa et al. Sep 2003 B1
6634698 Kleino Oct 2003 B2
6641208 Czaplicki et al. Nov 2003 B2
6668457 Czaplicki Dec 2003 B1
6691468 Helferty Feb 2004 B2
6692347 Schneider Feb 2004 B1
6708979 Stratman et al. Mar 2004 B2
6729425 Schneider et al. May 2004 B2
6748667 Sevastian Jun 2004 B2
6777049 Sheldon et al. Aug 2004 B2
6786533 Bock et al. Sep 2004 B2
6793274 Riley et al. Sep 2004 B2
6811864 Czaplicki et al. Nov 2004 B2
6817654 Kitagawa et al. Nov 2004 B2
6820923 Bock Nov 2004 B1
20010020794 Ishikawa Sep 2001 A1
20010042353 Honda et al. Nov 2001 A1
20020033617 Blank Mar 2002 A1
20020053179 Wycech May 2002 A1
20020054988 Wycech May 2002 A1
20020074827 Fitzgerald et al. Jun 2002 A1
20030001469 Hankins et al. Jan 2003 A1
20040011282 Myers et al. Jan 2004 A1
20040074150 Wycech Apr 2004 A1
20040079478 Merz Apr 2004 A1
20040135058 Wycech Jul 2004 A1
Foreign Referenced Citations (23)
Number Date Country
42 27 393 Mar 1993 DE
1 006 022 Jun 2000 EP
1 256 512 Nov 2002 EP
1 006 022 Sep 2003 EP
1 362 683 Nov 2003 EP
1 362 769 Nov 2003 EP
1 475 295 Nov 2004 EP
58-87668 Jun 1983 JP
7-117728 May 1995 JP
7-31569 Jun 1995 JP
10-45031 Feb 1998 JP
10-53156 Feb 1998 JP
10-71628 Mar 1998 JP
2000-52444 Feb 2000 JP
2001-48055 Feb 2001 JP
2001-62833 Mar 2001 JP
2001-88739 Apr 2001 JP
2001-191949 Jul 2001 JP
2001-199362 Jul 2001 JP
2002-120250 Apr 2002 JP
2002-362412 Dec 2002 JP
WO 03042024 May 2003 WO
WO 03051676 Jun 2003 WO
Related Publications (1)
Number Date Country
20040104598 A1 Jun 2004 US
Continuations (2)
Number Date Country
Parent 09655965 Sep 2000 US
Child 10603674 US
Parent 09502686 Feb 2000 US
Child 09655965 US