IP Library Granted Patent US 10,422,401
Granted Patent B2
US 10,422,401 · App. 15/202,572 · Granted Sep 24, 2019

Energy-absorbing structure for vehicle

Inventor: Umesh N. Gandhi (Farmington Hills, MI)
Assignee: Toyota Motor Engineering & Manufacturing North America, Inc.
F16F7/12B60R19/34F16F7/124F16F7/125B62D21/152F16F2224/0241
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Quick Facts
Patent No.
US 10,422,401
App. No.
15/202,572
Granted
Sep 24, 2019
Kind
B2
Abstract

An energy-absorbing structure includes a first mounting fixture having a base and a cavity formed in the base. The cavity is structured to receive a portion of an energy-absorbing member therein. The cavity has at least one wall, a bottom, and at least a pair of opposed crush initiator portions extending between the at least one wall and the bottom. A portion of an energy-absorbing member is inserted into the cavity. The energy-absorbing member is in contact with the first mounting fixture along the first mounting fixture crush initiator portions.

Claims (39)

1. An energy-absorbing structure comprising:

a first mounting fixture including a base and a cavity formed in the base, the cavity having at least one wall and at least a pair of opposed flat crush initiator portions extending from the at least one wall to a solid bottom of the cavity extending between ends of the opposed flat crush initiator portions of the at least a pair of opposed flat crush initiator portions; and

an energy-absorbing member having a portion inserted into the cavity,

wherein the energy-absorbing member is in contact with the first mounting fixture along the at least a pair of crush initiator portions, but not along the cavity bottom, and

wherein the at least a pair of opposed flat crush initiator portions is structured to initiate crushing of the energy-absorbing member upon application of a sufficient load to at least one of the energy-absorbing member and the first mounting fixture.

2. The energy-absorbing structure of claim 1 wherein the first mounting fixture has an energy-absorbing member insertion axis, and wherein each crush initiator portion of the at least a pair of crush initiator portions comprises a beveled surface extending along a plane forming an angle with respect to the energy-absorbing member insertion axis.

3. The energy-absorbing structure of claim 1 wherein the energy-absorbing member has a longitudinal axis, a first crush initiator portion is positioned on a first side of the longitudinal axis, and a second crush initiator portion is positioned on a second side of the longitudinal axis opposite the first side.

4. The energy-absorbing structure of claim 1 wherein each crush initiator portion of the at least a pair of crush initiator portions forms a radius between at least one cavity wall and the cavity bottom.

5. The energy-absorbing structure of claim 4 wherein each radius has a value of at least four times a wall thickness of a material from which a portion of the energy-absorbing member in contact with the crush initiator portions is fabricated.

6. The energy-absorbing structure of claim 1 wherein the energy-absorbing member has a first wall portion, a second wall portion forming a first obtuse internal angle with the first wall portion, and a third wall portion positioned opposite the second wall portion, the third wall portion forming a second obtuse internal angle with the first wall portion.

7. The energy-absorbing structure of claim 6 wherein the energy-absorbing member has a fourth wall portion opposite the first wall portion, a fifth wall portion forming a third obtuse internal angle with the fourth wall portion, and a sixth wall portion positioned opposite the fifth wall portion, the sixth wall portion forming a fourth obtuse internal angle with the fourth wall portion.

8. The energy-absorbing structure of claim 1 wherein the energy-absorbing member is formed from a fiber-reinforced polymer material.

9. An energy-absorbing structure comprising:

a first mounting fixture including a base and a cavity formed in the base, the cavity having at least one wall, a bottom, and at least a pair of opposed crush initiator portions extending between the at least one cavity wall and the cavity bottom; and

an energy-absorbing member having a portion inserted into the cavity,

wherein the energy-absorbing member is in contact with the first mounting fixture along the at least a pair of crush initiator portions,

wherein the first mounting fixture has an energy-absorbing member insertion axis, wherein each crush initiator portion of the at least a pair of crush initiator portions comprises a beveled surface extending along a plane forming an angle with respect to the energy-absorbing member insertion axis, and

wherein a distance in a direction parallel to the insertion axis and extending between the cavity bottom and a plane perpendicular to the insertion axis and passing through locations where the at least a pair of crush initiator portions intersect the at least one cavity wall, is at least three times a wall thickness of a material from which a portion of the energy-absorbing member in contact with the at least a pair of crush initiator portions is fabricated.

10. The energy-absorbing structure of claim 9 wherein an angle formed between the energy-absorbing member insertion axis and a plane containing a crush initiator portion of the at least a pair of crush initiator portions is in a range of 35° to 60° inclusive.

11. The energy-absorbing structure of claim 10 wherein the angle formed between the energy-absorbing member insertion axis and the plane containing the crush initiator portion of the at least a pair of crush initiator portions is approximately 45°.

12. The energy-absorbing structure of claim 9 wherein the distance is approximately four times a wall thickness of a material from which the portion of the energy-absorbing member in contact with the at least a pair of crush initiator portions is fabricated.

13. The energy-absorbing structure of claim 9 wherein a depth of the cavity between the cavity bottom and a plane perpendicular to the insertion axis and passing through locations where the crush initiator portions intersect associated wall sections of the cavity is greater than the distance.

14. An energy-absorbing structure comprising:

a first mounting fixture including a base and a cavity formed in the base, the cavity having at least one wall, a bottom, and at least a pair of opposed crush initiator portions extending between the at least one wall and the bottom; and

an energy-absorbing member having a portion inserted into the cavity,

wherein the energy-absorbing member is in contact with the first mounting fixture along the at least a pair of crush initiator portions, but not along the cavity bottom, wherein the cavity includes a plurality of wall sections joined at ends thereof to form an enclosure, each wall section of the plurality of wall sections being positioned opposite and spaced apart from a corresponding wall portion of the energy-absorbing member, and

wherein the at least a pair of opposed crush initiator portions is structured to initiate crushing of the energy-absorbing member upon application of a sufficient load to at least one of energy-absorbing member and the first mounting fixture.

15. An energy-absorbing structure comprising:

a first mounting fixture including a base and a cavity formed in the base, the cavity having at least one wall, a bottom, and at least a pair of opposed flat crush initiator portions extending between the at least one wall and the bottom; and

an energy-absorbing member having a portion inserted into the cavity, wherein the energy-absorbing member is in contact with the first mounting fixture along the at least a pair of flat crush initiator portions, but not along the cavity bottom,

wherein the at least a pair of opposed flat crush initiator portions of the first mounting fixture is structured to initiate crushing of the portion of the energy-absorbing member upon application of a sufficient load to at least one of the energy-absorbing member and the first mounting fixture,

the energy-absorbing structure further comprising a second mounting fixture including a base and a cavity formed in the base, the cavity being structured to receive a portion of an energy-absorbing member therein, the cavity having at least one wall, a bottom, and at least a pair of opposed flat crush initiator portions extending between the at least one wall and the bottom, and

wherein another portion of the energy-absorbing member is inserted into the second mounting fixture cavity and is in contact with the second mounting fixture along the at least a pair of opposed flat second mounting fixture crush initiator portions of the second mounting fixture, and is spaced apart from the second mounting fixture cavity bottom, and

wherein the at least a pair of opposed flat crush initiator portions of the second mounting fixture is structured to initiate crushing of the other portion of the energy-absorbing member upon application of a sufficient load to at least one of the energy-absorbing member and the second mounting fixture.

16. A mounting fixture for an energy-absorbing structure, the mounting fixture comprising a base and a cavity formed in the base, the cavity having a pair of opposed walls and a flat crush initiator portion extending from each wall of the pair of opposed walls and terminating in a solid bottom of the cavity, the solid bottom extending between an end of a first crush initiator portion extending from a first wall of the pair of opposed walls, and a second crush initiator portion extending from a second wall of the pair of opposed walls.

17. The mounting fixture of claim 16 further comprising an energy-absorbing member insertion axis, wherein each crush initiator portion comprises a beveled surface extending along a plane forming an angle with respect to the energy-absorbing member insertion axis.

18. The mounting fixture of claim 17 wherein each angle formed between the energy-absorbing member insertion axis and the plane along which a crush initiator portion extends is in a range of 35° to 60° inclusive.

19. The mounting fixture of claim 18 wherein each angle formed between the energy-absorbing member insertion axis and the plane along which a crush initiator portion extends is approximately 45°.

20. The mounting fixture of claim 16 wherein each crush initiator portion forms a radius between the at least one cavity wall and the cavity bottom.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 6, 2019
From: TOYOTA MOTOR ENGINEERING & MANUFACTURING NORTH AMERICA, INC.
To: TOYOTA JIDOSHA KABUSHIKI KAISHA
Reel/Frame 050931/0401 →
CHANGE OF ADDRESS Recorded Nov 30, 2018
From: TOYOTA MOTOR ENGINEERING & MANUFACTURING NORTH AMERICA, INC.
To: TOYOTA MOTOR ENGINEERING & MANUFACTURING NORTH AMERICA, INC.
Reel/Frame 047688/0784 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 12, 2016
From: GANDHI, UMESH N.
To: TOYOTA MOTOR ENGINEERING & MANUFACTURING NORTH AMERICA, INC.
Reel/Frame 039133/0263 →
Continuity (1)
Related Publication 20180010663A1 · Jan 11, 2018