BOLTED CASTING TO CASTING FLEXIBLE BODY VARIANT SHOCK TOWER SYSTEM
20210016834 ยท 2021-01-21
Assignee
Inventors
- Edward D. Moss (Commerce Township, MI, US)
- Mark J. McGuire (Amherstburg, CA)
- Keith J. Saari (Macomb Township, MI, US)
- Jagmail Singh Cheema (La Salle, CA)
Cpc classification
B62D25/24
PERFORMING OPERATIONS; TRANSPORTING
B62D25/088
PERFORMING OPERATIONS; TRANSPORTING
B62D33/044
PERFORMING OPERATIONS; TRANSPORTING
International classification
B62D21/15
PERFORMING OPERATIONS; TRANSPORTING
B62D25/24
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A system for providing multiple variations of shock tower assemblies with a common vehicle body is provided. The system includes the common vehicle body including a vehicle body member comprising a plurality of bolt holes and a shock tower assembly. The shock tower assembly includes a bolt-on shock tower cap comprising a shock receiving cavity, a plurality of bolt fasteners attaching the bolt-on shock tower cap to the vehicle body member at the plurality of bolt holes, and shock tower components including a shock device. The shock tower components are configured to matingly engage with the shock receiving cavity.
Claims
1.-18. (canceled)
19. A structural system for a vehicle body comprising: a plurality of connected structural members, wherein one of the plurality of connected structural members includes a vehicle body member including a plurality of bolt holes; and a shock tower assembly, including: a bolt-on shock tower cap comprising a shock receiving feature; a plurality of bolt fasteners attaching the bolt-on shock tower cap to the vehicle body member at the plurality of bolt holes; and a shock device including an internal spring and damper mechanism that is matingly engaged with the shock receiving feature; wherein the shock tower assembly enables attachment of one of a plurality of alternative selectable suspension systems to the vehicle body.
20. The system of claim 19, wherein the bolt-on shock tower cap is a die cast element fabricated from aluminum.
21. The system of claim 19, wherein the bolt-on shock tower cap comprises reinforcement ribs.
22. The system of claim 21, wherein the reinforcement ribs are oriented in an in-vehicle up direction.
23. The system of claim 22, wherein the reinforcement ribs comprise a first set of reinforcement ribs; and wherein the vehicle body member is a die case element fabricated from aluminum and comprises a second set of reinforcement ribs perpendicular to the first set of reinforcement ribs.
24. The system of claim 19, wherein the bolt-on shock tower cap further comprises external bolt holes configured to attach a stiffening bar to the bolt-on shock tower cap.
25. A structural system for a vehicle body, comprising: a plurality of connected structural members, wherein one of the plurality of connected structural members includes a vehicle body member including a plurality of bolt holes; and a selected shock tower assembly, including one of: a first selectable shock tower assembly comprising: a first bolt-on shock tower cap comprising a first shock receiving feature, wherein the first shock receiving feature, when attached to the vehicle body member, is disposed at a first vertical position within a vehicle; a first plurality of bolt fasteners configured to attach the first bolt-on shock tower cap to the vehicle body member at the plurality of bolt holes; and a first shock device including a first internal spring and damper mechanism that is matingly engaged with the first shock receiving feature; and a second selectable shock tower assembly comprising: a second bolt-on shock tower cap comprising a second shock receiving feature, wherein the second shock receiving feature, when attached to the vehicle body member, is disposed at a second vertical position within the vehicle, wherein the second vertical position is higher than the first vertical position; a second plurality of bolt fasteners configured to attach the second bolt-on shock tower cap to the vehicle body member at the plurality of bolt holes; and a second shock device including a second internal spring and damper mechanism that is matingly engaged with the second shock receiving feature; wherein the first shock tower assembly variation is attachable to the vehicle body member in a rear-wheel drive variation; and wherein the second shock tower assembly variation is attachable to the vehicle body member in an all-wheel drive variation.
26. The system of claim 25, wherein the second bolt-on shock tower cap comprises at least one external bolt hole configured to attach a stiffening bar.
27. A method for manufacturing a vehicle, comprising: equipping the vehicle body with a structural member including a plurality of bolt holes; providing a first selectable front shock tower assembly corresponding to a rear-wheel drive variation of the vehicle; providing a second selectable front shock tower assembly corresponding to an all-wheel drive variation of the vehicle; monitoring a selected variation of the vehicle; when the selected variation of the vehicle includes the rear-wheel drive variation of the vehicle, affixing the first selectable front shock tower assembly to the plurality of bolt holes with a plurality of bolt fasteners; and when the selected variation of the vehicle includes the all-wheel drive variation of the vehicle, affixing the second selectable front shock tower assembly to the plurality of bolt holes with the plurality of bolt fasteners; wherein the first front shock tower assembly is operable to hold a shock device of the first front shock tower assembly in a relatively lower position in the vehicle; and wherein the second front shock tower assembly is operable to hold a shock device of the second front shock tower assembly in a relatively higher position in the vehicle as compared to the relatively lower position.
28. The method of claim 15, further comprising, when the selected variation of the vehicle includes the all-wheel drive variation of the vehicle, affixing a stiffening bar to the second front shock tower assembly.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION
[0026] A vehicle body and chassis system includes many components that are useful to operating an associated vehicle. One included system includes a suspension system including a plurality of shock towers including shock devices useful for providing a smooth ride over a rough road. Shock towers are attached to the vehicle body and chassis system, such that force transmitted through the shock device is transmitted to the vehicle body and chassis system, and such that the shock tower is securely affixed to the vehicle body and chassis system. In one embodiment a shock tower cap is welded to the vehicle body and includes a shock receiving cavity configured to matingly interface with the shock device and/or components of the shock tower. Such a shock tower cap is rigid and sturdy enough to withstand the forces of the suspension system acting upon the vehicle body.
[0027] A single vehicle body and chassis system or vehicle body can be used in one line of vehicles with multiple options. For example, a same model of vehicle can be provided with rear-wheel drive or all-wheel drive options. Each option may include different suspension system requirements, mandating different shock towers be utilized with the different options. A rear-wheel drive vehicle may require an exemplary low-profile shock tower, and an all-wheel drive vehicle may require an exemplary tall-profile shock tower. Different package sizes and shock tower lengths cause the required interface with the vehicle body, the shock tower cap, to change in geometry and location. Typical vehicles include different vehicle bodies for different shock towers, with different welded on shock tower caps being required for different options. Such variations in vehicle body design cause issues. For example, manufacturing costs and times are increased based upon a manufacturing facility having to track different variations of vehicle body. Further, different welded on features can create systems dynamics issues.
[0028] A modular or interchangeable bolt-on shock tower cap is provided that permits a common vehicle body to be used across multiple options for a single vehicle model. A single vehicle body can include a shock tower cap mounting location with bolt holes that are common for a plurality of bolt-on shock tower caps. The provided system includes a unique shock tower structural system in which a variant specific high integrity die cast shock tower cap may be bolted to a common shock tower/rail high integrity die casting. The large lower shock tower/rail casting is common for both rear-wheel and all-wheel drive variants, while the bolt-on shock tower cap is variant specific, with a low-profile cap being utilized for the non-driven front axle variant, and a tall-profile cap being incorporated for the driven front axle variant. Additionally, the unique bolt-on shock tower cap can be constructed as a die-cast part, with a vertical (in vehicle) die pull direction increasing structural efficiency with advantageous rib patterns for vertical loading, while a vehicle body member may be constructed as a die-cast part, with a cross (in vehicle) die pull direction enables additional ribbing perpendicular to the die pull direction of the attached bolt-on shock tower cap.
[0029]
[0030]
[0031]
[0032] Bolt-on shock tower cap 30 can be constructed with multiple different materials and with different physical characteristics. An exemplary bolt-on shock tower cap can include a die-cast aluminum configuration. An alternative configuration could include steel or other metal such as titanium. Different numbers, sizes, and locations of reinforcing ribs can be used to make the bolt-on shock tower cap stronger or lighter.
[0033]
[0034] In one embodiment, different bolt-on shock tower caps can further include other details. For example, bolt-on shock tower caps 30 include exemplary external bolt holes enabling connection of a stiffening bar 50 attached to both bolt-on shock tower caps 30. Such added details can be used in an exemplary all-wheel drive vehicle, where the front wheels are subject to more extreme forces than a rear-wheel drive vehicle, where the front wheels are only used for steering and are subject to less extreme forces.
[0035] The disclosed bolt-on shock tower cap provides multiple variation for shock systems. It also includes the structural connection and continuity that the cap provides for the upper rail system to maintain vehicle structural performance linearly (in all X,Y Z directions) and torsionally.
[0036]
[0037]
[0038] Vehicle body member 14 can include a single set of bolt holes or integrated nuts used to fasten various bolt-on shock tower caps to the single set of bolt holes. In another embodiment, vehicle body member can include compatible mounting features enabling various different bolt-on shock tower caps to seat upon the vehicle body member and can include different bolt hole locations which can be used by only some of the bolt-on shock tower caps. For instance, a vehicle body member can include seven different bolt hole locations configured for three different bolt-on shock tower caps, and each different bolt-on shock tower cap can use four of the seven bolt holes, with none of the bolt-on shock tower caps using the same four bolt holes.
[0039]
[0040]
[0041]
[0042] A number of different shock tower assemblies can be utilized in a common vehicle model. Different bolt-one shock tower caps with different geometries, different weights, different structural properties can be utilized with a common vehicle body. The disclosure is not intended to be limited to the variations in shock tower assemblies or bolt-on shock tower caps disclosed herein.
[0043] The vehicle body member can include a geometry configured to be attached to in an area that is configured to receive the bolt-on shock tower cap. Such an area configured to receive the cap can be described as a shock tower rail.
[0044]
[0045]
[0046] While the best modes for carrying out the disclosure have been described in detail, those familiar with the art to which this disclosure relates will recognize various alternative designs and embodiments for practicing the disclosure within the scope of the appended claims.