Claims
- 1. A crossing gate assembly which that is lowered when detecting the presence of a train, said gate assembly having a support structure and a crossing gate arm normally pivotally mounted on said support structure about a first axis spaced from and substantially aligned with a normal flow path of traffic past said crossing gate assembly, and wherein said gate arm is pivotal about said first axis between a raised, open position for allowing the flow of traffic past said gate assembly and a lowered position for blocking the flow path of traffic past said gate assembly; an improved gate arm mechanism comprising:a crossing gate arm adapter for supporting said gate arm, said gate arm adapter and said gate arm being pivotal about said first axis, said gate arm adapter with said gate arm thereon being pivotally mounted on said support structure which moves about a second axis transverse to said first axis, said gate arm adapter and said gate arm both being pivotal about said second axis between said lowered, blocking position and a displaced position responsive to a displacement force against said gate arm in a direction substantially aligned with said flow path of traffic, a return force mechanism coupled to said gate arm adapter returning said gate arm adapter with said gate arm to said lowered, blocking position of said gate arm upon removal of said displacement force; and a latch hook assembly that holds the gate arm adapter in an operating position in an absence of said displacement force.
- 2. The crossing gate mechanism of claim 1, wherein the latch hook assembly comprises a latch hook that holds the gate arm adapter in said normal position in the absence of the displacement force.
- 3. The crossing gate mechanism of claim 1, wherein the latch hook assembly includes a stop that prevents the gate arm adapter over travel upon return of said gate arm from a displaced position.
- 4. The crossing gate mechanism of claim 1, wherein the latch hook assembly further retards the rate of return of the gate arm adapter and gate arm from a displaced position upon removal of the displacement force.
- 5. The crossing gate mechanism of claim 4, wherein the latch hook assembly further comprises a latch hook pressure mechanism that is disposed in contact with the latch hook assembly and applies a leveraging force to the latch hook assembly, wherein the leveraging force causes the latch hook assembly to apply a levered force to the gate arm adapter that retards a return of the gate arm adapter and gate arm to the normal operating position from a displaced position upon removal of the displacement force.
- 6. The crossing gate mechanism of claim 5, wherein the latch hook pressure mechanism comprises a latch spring that applies a leveraging force to the latch hook.
- 7. The crossing gate mechanism of claim 5, further comprising a wear plate affixed to the gate arm adapter for receiving the levered force of the latch hook.
- 8. The crossing gate mechanism of claim 1, wherein said return force mechanism comprises a spring assembly that is pivotally mounted to the gate arm adapter and wherein the spring mechanism applies an approximately horizontal return force to the gate arm adapter when the gate arm adapter is displaced from a normal operating position perpendicular to the flow of traffic.
- 9. The crossing gate mechanism of claim 1, wherein said latch hook assembly comprises:a pivotally levered latch that selectively restrains said gate arm adapter in its normal operating position; a latch hook pressure mechanism that applies a leveraging force to said pivotally mounted latch to produce a pivotally levered force of the latch; and a hook and drag surface that receives the pivotally levered force of the latch upon application of a displacement force to the crossing gate mechanism.
- 10. The crossing gate mechanism latch hook assembly of claim 9, further comprising a latch hook assembly housing that provides a positive mechanical stop for the gate arm adapter and that prevents gate arm adapter over travel beyond the normal operating position.
- 11. The crossing gate assembly of claim 1 wherein said gate arm adaptor and said gate arm are pivotal about said second axis in the raised position, in the lowered position and in positions therebetween.
- 12. A crossing gate mechanism comprising:a gate arm adapter for receiving a gate arm, wherein the gate arm adapter is capable of being pivotally mounted to a vertical support structure to allow rotation of the gate arm away from a normal operating position approximately perpendicular to a flow of traffic upon application of a displacement force; a return force mechanism coupled to the gate arm adapter that provides for a return of a displaced gate arm adapter to a normal operating position upon removal of the displacement force; and a drag brake that retards a rate of return of the gate arm adapter to the normal operating position from a displaced position upon removal of the displacement force, said drag brake including: a latch hook; a latch hook pressure mechanism that is disposed in contact with the latch hook and that applies a leveraging force to the latch hook; and wherein the leveraging force causes the latch hook to apply a levered force to the gate arm adapter that retards a rate of return of the gate arm adapter to the normal operating position from a displaced position upon removal of a displacement force.
- 13. The crossing gate mechanism of claim 12, wherein the latch hook pressure mechanism comprises:a compressed spring assembly that applies a leveraging force to the latch hook; and a compressed spring assembly housing that houses the compressed spring assembly.
- 14. The crossing gate mechanism of claim 12, further comprising a wear plate affixed to the gate arm adapter for receiving the levered force from the latch hook.
- 15. A crossing gate assembly which that is lowered when detecting the presence of a train, said gate assembly having a support structure and a crossing gate arm normally pivotally mounted on said support structure about a first axis spaced from and substantially aligned with a normal flow path of traffic past said crossing gate assembly, and wherein said gate arm is pivotal about said first axis between a raised, open position for allowing the flow of traffic past said gate assembly and a lowered position for blocking the flow of traffic past said gate assembly; an improved gate arm mechanism comprising:a crossing gate arm adapter for supporting said gate arm for movement about said first axis; a substantially upright hinge pin mounted on said adapter pivotally supporting said arm about a second axis defined by said upright hinge pin; said gate arm being pivotal about said hinge pin and about said second axis for movement of said gate arm away from the flow path of traffic upon application of a displacement force; and a return force mechanism mounted on said adapter, being rotatable about an attachment point and being spaced from said hinge pin in a direction opposite the mounting position of said gate arm relative to said gate arm, said attachment point, said hinge pin and said gate arm being disposed in a generally linear relationship.
- 16. The gate arm mechanism of claim 15 wherein said return force mechanism includes a spring assembly for returning the displaced gate arm to the normal operating position upon removal of the displacement force.
CROSS-REFERENCE TO RELATED APPLICATION
Pursuant to 35 U.S.C. § 119(e), this application claims priority from Provisional Application No. 60/149,841, filed Aug. 19, 1999.
US Referenced Citations (9)
Foreign Referenced Citations (2)
Number |
Date |
Country |
449464 |
Oct 1991 |
EP |
2231844 |
Dec 1974 |
FR |
Provisional Applications (1)
|
Number |
Date |
Country |
|
60/149841 |
Aug 1999 |
US |