OVER SLAM HOOD BUMPER
A hood bumper device for an automotive vehicle hood is disclosed that can absorb energy from an impact to the hood. The hood bumper device can fracture under a first predetermined force and then continue to absorb additional energy as the descent of a portion of the device is slowed.
1 . A hood bumper comprising:
a tower with tower legs and a tower connecting piece extending between the tower legs, wherein the tower legs are spaced apart from one another by a first distance to define a cavity therebetween;
a base with base walls, a base floor extending between the base walls, and transition pieces extending between the base walls and the tower legs, wherein each transition piece includes a frangible area that is configured to fracture when a predetermined force is applied to the frangible area;
an energy management protrusion extending from the base floor, wherein the energy management protrusion extends toward the cavity between the tower legs, wherein a dimension of the energy management protrusion is larger than the first distance between the tower legs.
2 . The hood bumper of claim 1 , wherein the energy management protrusion is configured to slow the descent of the tower onto the energy management protrusion.
3 . The hood bumper of claim 1 , wherein the energy management protrusion is configured to spread the tower legs apart from one another as the energy management protrusion enters the cavity after the frangible areas have broken.
4 . The hood bumper of claim 1 , wherein the frangible areas are located on a lower surface of the transition pieces.
5 . The hood bumper of claim 4 , wherein each frangible area comprises a notch.
6 . The hood bumper of claim 1 , wherein the frangible areas are configured to fracture when a tensile load is applied to the transition pieces.
7 . The hood bumper of claim 1 , wherein the tower, base, and energy management protrusion are formed integrally.
8 . The hood bumper of claim 1 , wherein the hood bumper is made from a plastic polymer.
9 . The hood bumper of claim 1 , wherein the energy management protrusion has a triangular shape.
10 . The hood bumper of claim 1 , wherein the energy management protrusion has a hollow interior.
11 . The hood bumper of claim 1 , wherein the energy management protrusion is deformable.
12 . The hood bumper of claim 1 , wherein the tower legs are configured to resist being spread apart from one another.
13 . The hood bumper of claim 1 , further comprising a tower bumper disposed on the tower, wherein the tower bumper is comprised of material that is softer than the material of the tower.
14 . The hood bumper of claim 13 , wherein the tower includes protrusions to secure the tower bumper to the tower.
15 . The hood bumper of claim 1 , wherein a width of the energy management protrusion is equal to the first distance at a middle portion of the energy management protrusion.
16 . The hood bumper of claim 1 , further comprising a bottom extension on a lower surface of base floor 14 , wherein the bottom extension includes at least one elastic snap configured to deflect when the hood bumper is connected to a frame of a vehicle.
17 . The hood bumper of claim 1 , wherein the predetermined force is less than a force required to deform the tower or the base walls.
18 . The hood bumper of claim 1 , wherein each transition piece includes a horizontal component and a vertical component.
19 . The hood bumper of claim 18 , wherein the frangible areas are located in the horizontal components.
20 . A method of absorbing energy from an impact to an automotive hood using a hood bumper, where the hood bumper has tower legs spaced apart from one another; a base with base walls, a base floor extending between the base walls, and transition pieces extending between the base walls and the tower legs, wherein each transition piece includes a frangible area that is configured to fracture when a predetermined force is applied to the frangible area; an energy management protrusion extending from the base floor; the method comprising:
applying a force greater than the predetermined force to the transition pieces through the tower legs;
fracturing the transition pieces at the frangible areas;
descending the tower legs onto the energy management protrusion;
spreading the tower legs apart from one another with the energy management protrusion to absorb energy from the impact.