RAILROAD HOPPER CAR DISCHARGE GATE ASSEMBLY AND RELATED METHOD FOR CONTROLLING DISCHARGE OF MATERIAL FROM A RAILROAD HOPPER CAR
20170158207 ยท 2017-06-08
Inventors
Cpc classification
International classification
Abstract
A railroad hopper car discharge gate assembly having first and second elements arranged in vertically stacked relationship relative to each other for controlling discharge of material from a hopper car. First and second drive mechanisms move the first and second elements, respectively, between closed and open positions. A lock assembly including first and second locks serve to maintain the first and second elements, respectively, in a closed position. The gate assembly also includes a mechanical system for positively removing the first and second locks from a locked condition relative to their respective element upon rotation of either drive mechanism. A method for controlling discharge of material through an opening defined by the railroad hopper discharge gate assembly is also disclosed.
Claims
1. A discharge gate assembly for a railroad hopper car, said discharge gate assembly comprising: a rigid frame defining a discharge opening; a first element carried by said frame for movement between a closed position, wherein said first element extends across said discharge opening, and an open position; a second element carried by said frame for movement between a closed position, wherein said second element extends across said discharge opening, and an open position, with said first and second elements being arranged on said frame in vertically spaced relation relative to each other; a first drive mechanism including a first operating shaft assembly mounted on said frame for moving said first element relative to said frame; a second drive mechanism including a second operating shaft assembly mounted on said frame for moving said second element relative to said frame; a lock assembly carried by said frame, said lock assembly including a first lock movable between a locked condition, wherein said first lock releasably maintains said first element in said closed position, and an unlocked condition, a second lock movable between a locked condition, wherein said second lock releasably maintains said second element in said closed position, and an unlocked condition; and a mechanism for positively removing said first and second locks from their locked condition relative to their respective element upon rotation of either drive mechanism.
2. The discharge gate assembly according to claim 1, wherein each drive mechanism includes a lost motion connection for allowing the respective drive mechanism to be rotated a predetermined number of degrees during collapse of the lost motion connection before contributing to significant movement of the respective element relative to said frame.
3. The discharge gate assembly according to claim 1, wherein said first and second drive mechanisms each include a rack and pinion assembly arranged in operable combination with the operating shaft assembly of the respective drive mechanism.
4. The discharge gate assembly according to claim 3, wherein each rack and pinion assembly includes a rack operably associated with a respective element, and with each rack being movable along a predetermined path of travel concomitantly with the respective element.
5. The discharge gate assembly according to claim 4, wherein a centerline of each operating shaft assembly is disposed to a common vertical side of the of the predetermined path of travel of the respective rack of each rack and pinion assembly.
6. The discharge gate assembly according to claim 1, wherein said first element is a discharge gate slidably movable along a generally horizontal path of travel relative to said frame, with said discharge gate having an upper surface and a lower surface.
7. The discharge gate assembly according to claim 6, further including support structure disposed beneath the lower surface of said gate and above said second element.
8. The discharge gate assembly according to claim 1, wherein said second element is a pan assembly slidably movable along a generally horizontal path of travel relative to said frame, with said pan assembly defining a pneumatic discharge outlet.
9. The discharge gate assembly according to claim 1, wherein each operating shaft assembly includes cam structure for positively removing said locks from their locked condition relative to their respective element upon rotation of either of said drive mechanisms.
10. The discharge gate assembly according to claim 9, wherein the cam structure on said first and second operating shaft assemblies are arranged a predetermined number of degrees out of phase relative to each other.
11. The discharge gate assembly according to claim 1, wherein each operating shaft assembly includes an operating shaft rotatably supported on said frame and capstans removably connected to opposite ends of said operating shaft.
12. The discharge gate assembly according to claim 11, wherein the cam structure of each operating shaft assembly is provided on each capstan.
13. A discharge gate assembly for a railroad hopper car, said discharge gate assembly comprising: a frame configured for attachment to said hopper car and defining a discharge opening, said frame including a pair of side walls extending generally parallel to a longitudinal axis of the hopper car and a pair of end walls rigidly interconnected to said side walls; a first element carried by said frame for sliding movements in a single generally horizontal path of travel and relative to said discharge opening between closed and open positions; a second element carried by said frame beneath said first element for sliding movements in a single generally horizontal path of travel and relative to said discharge opening between closed and open positions; a first drive mechanism including a first operating shaft assembly mounted on said frame for rotation about a first axis fixed relative to said frame for moving said first element relative to said frame; a second drive mechanism including a second operating shaft assembly mounted on said frame for rotation about a second axis fixed relative to said frame for moving said second element relative to said frame; a lock assembly carried by said frame and including a first lock movable between a locked condition, wherein said first lock extends into the path of travel of said first element when said first element is in the closed position whereby releasably maintaining said first element in said closed position, and an unlocked condition, a second lock movable between a locked condition, wherein said second lock operably extends into the path of travel of said second element when said second element is in the closed position whereby releasably maintaining said second element in said closed position, and an unlocked condition; and a mechanism for conjointly and positively removing said first and second locks from the path of travel of their respective element upon rotation of either drive mechanism.
14. The discharge gate assembly according to claim 13, wherein each drive mechanism includes a lost motion connection for allowing the respective drive mechanism to be rotated a predetermined number of degrees during collapse of the lost motion connection before contributing to significant movement of the respective element relative to said frame.
15. The discharge gate assembly according to claim 13, wherein said first and second drive mechanisms each include a rack and pinion assembly arranged in operable combination with the operating shaft assembly of the respective drive mechanism.
16. The discharge gate assembly according to claim 14, wherein the lost motion connection of each drive mechanism includes a slotted configuration arranged in pinions of each rack and pinion assembly.
17. The discharge gate assembly according to claim 15, wherein each rack and pinion assembly includes a pair of racks operably associated with a respective element, and the racks associated with each element being movable along a predetermined path of travel concomitantly with the respective element.
18. The discharge gate assembly according to claim 17, wherein a centerline of each operating shaft assembly is disposed to a common vertical side of the of the predetermined path of travel of the respective racks of each rack and pinion assembly.
19. The discharge gate assembly according to claim 17, wherein the racks operably associated with the first element are operably supported by a pair of laterally spaced extensions on said first element and which are slidably carried on said frame, with each extension being laterally disposed outwardly of the side walls of the frame and move with the first element.
20. The discharge gate assembly according to claim 19, further including a material disposed between an underside of each lateral extension on the first element and said frame for operably reducing the coefficient of friction therebetween as said first element is moved between closed and open position relative to the discharge opening defined by said frame.
21. The discharge gate assembly according to claim 13, wherein said first element is a discharge gate slidably movable along a generally horizontal path of travel relative to said frame, with said discharge gate an upper surface and a lower surface.
22. The discharge gate assembly according to claim 21, further including support structure disposed beneath the lower surface of said gate and above said second element.
23. The discharge gate assembly according to claim 13, wherein said second element is a pan assembly slidably movable along a generally horizontal path of travel relative to said frame, with said pan assembly defining a pneumatic discharge outlet.
24. The discharge gate assembly according to claim 13, wherein each operating shaft assembly includes cam structure for positively removing said locks from the path of travel of their respective element and in timed relation relative to rotation of either drive mechanism.
25. The discharge gate assembly according to claim 24, wherein the cam structure on said first and second operating shaft assemblies are arranged a predetermined number of degrees out of phase relative to each other.
26. The discharge gate assembly according to claim 25, wherein each operating shaft assembly includes an operating shaft rotatably supported on said frame and capstans removably connected to opposite ends of said operating shaft.
27. The discharge gate assembly according to claim 26, wherein the cam structure of each operating shaft assembly is provided on each capstan.
28. A combination gravity/pneumatic hopper car discharge gate assembly, comprising: a four sided frame defining a discharge opening, said frame including a pair of generally parallel side walls having diverging angular surfaces extending upwardly from said discharge opening toward an upper surface of said frame and a pair of generally parallel end walls rigidly secured to said side walls, said end walls having diverging angular surfaces extending upwardly from said discharge opening toward the upper surface of said frame, said frame further including spaced and generally parallel extensions extending from and generally parallel to said side walls; a gate carried on said frame for generally linear sliding movements along a predetermined path of travel and in opposed directions between a closed position, wherein said gate extends across said discharge opening, and an open position; a vacuum pan assembly carried on said frame beneath said gate for generally linear sliding movements along a predetermined path of travel and in opposed directions between a closed position, wherein said pan assembly extends across said discharge opening, and an open position, with said pan assembly defining a chamber disposed below said gate along with a pneumatic conduit leading therefrom; a first drive mechanism including a first operating shaft assembly supported for rotation about a first fixed axis by said extensions on said frame for moving said gate between said closed and open positions in response to rotation of said first operating shaft assembly, with said first fixed axis being arranged above the predetermined path of travel of said gate; a second drive mechanism including a second operating shaft assembly supported for rotation about a second fixed axis by said extensions on said frame for moving said pan assembly between said closed and open positions in response to rotation of said second operating shaft assembly, with said second fixed axis being arranged above the predetermined path of travel of said pan assembly; a lock assembly supported by said extensions on said frame, said lock assembly including a rock shaft disposed for rotation about a fixed pivot axis disposed between said first and second fixed axes, said lock assembly further including first and second locks mounted on and for rotation with said rock shaft about said pivot axis, with said first lock being movable between a locked condition, wherein said first lock extends into the path of travel of said gate when said gate is in the closed position whereby releasably maintaining said gate in said closed position, and an unlocked condition, and with said second lock being movable between a locked condition, wherein said second lock operably extends into the path of travel of said pan assembly when said pan assembly is in the closed position whereby releasably maintaining said pan assembly in said closed position, and an unlocked condition; and a mechanism for positively removing said first lock from the path of travel of the gate and for positively removing the second lock from the path of travel of the pan assembly in timed relation relative to rotation of either said first or second drive mechanism.
29. The discharge gate assembly according to claim 28, wherein each operating shaft assembly includes cam structure for positively removing said locks from the path of travel of the respective gate and pan assembly in timed relation relative to rotation of either drive mechanism.
30. The discharge gate assembly according to claim 29, wherein the cam structures on said first and second operating shaft assemblies are arranged a predetermined number of degrees out of phase relative to each other.
31. The discharge gate assembly according to claim 29, wherein each operating shaft assembly includes an operating shaft rotatably supported by said extensions and capstans removably connected to opposite ends of said operating shaft.
32. The discharge gate assembly according to claim 31, wherein the cam structure of each operating shaft assembly is provided on each capstan.
33. The discharge gate assembly according to claim 28, wherein each drive mechanism includes a lost motion connection for allowing the respective drive mechanism to be rotated a predetermined number of degrees during collapse of the lost motion connection whereby operating said mechanism to conjointly and positively remove said first and second locks from the path of travel of the respective gate and pan assembly prior to significant movement of the respective gate and pan assembly relative to said frame.
34. The discharge gate assembly according to claim 33, wherein said first and second drive mechanisms each include a rack and pinion assembly arranged in operable combination with the operating shaft assembly of the respective drive mechanism.
35. The discharge gate assembly according to claim 34, wherein the lost motion connection of each drive mechanism includes a slotted configuration arranged on pinions of each rack and pinion assembly.
36. The discharge gate assembly according to claim 34, wherein each rack and pinion assembly includes a pair of racks operably associated with the respective gate and pan assembly, and the racks associated with said gate and said pan assembly are movable along a predetermined path of travel concomitantly with the respective gate and pan assembly.
37. The discharge gate assembly according to claim 36, wherein the fixed axis of each operating shaft assembly is disposed to a common vertical side of the of the predetermined path of travel of the respective racks of each rack and pinion assembly.
38. The discharge gate assembly according to claim 36, wherein the racks operably associated with the gate are operably supported by a pair of laterally spaced gate extensions slidably carried on said frame, with each gate extension being laterally disposed outwardly of the side walls of the frame and move with the gate.
39. The discharge gate assembly according to claim 38, further including a material disposed between an underside of each gate extension and said frame for operably reducing the coefficient of friction as said gate is moved between closed and open position relative to the discharge opening defined by said frame.
40. A railroad hopper car having an enclosure for holding and transporting material, said enclosure defining toward a bottom thereof an opening through which the material in said enclosure is discharged from said enclosure, and a gate assembly for controlling the discharge of material from said enclosure either pneumatically or gravitationally, said gate assembly comprising: a frame defining a discharge opening; a first element carried by said frame for movement between a closed position, wherein said first element extends across said discharge opening, and an open position; a second element carried by said frame for movement between a closed position, wherein said second element extends across said discharge opening, and an open position, with said first and second elements being arranged on said frame in vertically spaced relation relative to each other; a first drive mechanism including a first operating shaft assembly mounted on said frame for moving said first element relative to said frame; a second drive mechanism including a second operating shaft assembly mounted on said frame for moving said second element relative to said frame; a lock assembly carried by said frame, said lock assembly including a first lock movable between a locked condition, wherein said first lock releasably maintains said first element in said closed position, and an unlocked condition, a second lock movable between a locked condition, wherein said second lock releasably maintains said second element in said closed position, and an unlocked condition; and a mechanism for positively removing said first and second locks from their locked condition relative to their respective element upon rotation of either drive mechanism.
41. The railroad hopper car according to claim 40, wherein each drive mechanism of said gate assembly includes a lost motion connection for allowing the respective drive mechanism to be rotated a predetermined number of degrees during collapse of the lost motion connection before contributing to significant movement of the respective element relative to said frame.
42. The railroad hopper car according to claim 40, wherein said first and second drive mechanisms each include a rack and pinion assembly arranged in operable combination with the operating shaft assembly of the respective drive mechanism.
43. The railroad hopper car according to claim 42, wherein each rack and pinion assembly includes a rack operably associated with a respective element, and with each rack being movable along a predetermined path of travel concomitantly with the respective element.
44. The railroad hopper car according to claim 42, wherein a centerline of each operating shaft assembly is disposed to a common vertical side of the of the predetermined path of travel of the respective rack of each rack and pinion assembly.
45. The railroad hopper car according to claim 40, wherein said first element is a discharge gate slidably movable along a generally horizontal path of travel relative to said frame, with said discharge gate having an upper surface and a lower surface.
46. The railroad hopper car according to claim 45, further including support structure disposed beneath the lower surface of said gate and above said second element.
47. The railroad hopper car according to claim 40, wherein said second element is a pan assembly slidably movable along a generally horizontal path of travel relative to said frame, with said pan assembly defining a pneumatic discharge outlet.
48. The railroad hopper car according to claim 40, wherein each operating shaft assembly includes cam structure for positively removing said locks from their locked condition relative to their respective element upon rotation of either of said drive mechanisms.
49. The railroad hopper car according to claim 48, wherein the cam structures on said first and second operating shaft assemblies are arranged a predetermined number of degrees out of phase relative to each other.
50. The railroad hopper car according to claim 48, wherein each operating shaft assembly includes an operating shaft rotatably supported on said frame and capstans removably connected to opposite ends of said operating shaft.
51. The railroad hopper car according to claim 50, wherein the cam structure of each operating shaft assembly is provided on each capstan.
52. A method for controlling discharge of material through an opening defined by a railroad hopper car, said method comprising the steps of: providing a frame configured for attachment to said hopper car and defining a discharge opening arranged in general registry with the opening defined by the hopper car, said frame including a pair of side walls extending generally parallel to a longitudinal axis of the hopper car and a pair of end walls rigidly interconnected to said side walls; providing a first element carried by said frame for sliding movements in a single generally horizontal path of travel and relative to said discharge opening between open and closed positions; providing a second element carried by said frame beneath said first element for sliding movements in a single generally horizontal path of travel and relative to said discharge opening between open and closed positions; providing a first drive mechanism on said frame for rotation about a first fixed axis for moving said first element relative to said frame; providing a second drive mechanism on said frame for rotation about a second fixed axis for moving said second element relative to said frame, with said second axis extending generally parallel to said first axis; and arranging a lock assembly in operable combination with said first and second elements, respectively, with said lock assembly including a first stop movable between a locked condition, wherein said first stop extends into the path of travel of said first element when said first element is in the closed position whereby releasably maintaining said first element in said closed position, and an unlocked condition, and a second stop movable between a locked condition, wherein said second stop operably extends into the path of travel of said second element when said second element is in the closed position whereby releasably maintaining said second element in said closed position, and an unlocked condition; and providing a mechanism for conjointly and positively removing said first and second stops from the path of travel of their respective element upon rotation of either drive mechanism in a direction to move the respective element toward an open position.
53. The method for controlling discharge of material through the opening defined by the railroad hopper car according to claim 52, said method further comprising the step of: providing a rack and pinion assembly in operable combination with each element of the gate assembly, each rack and pinion assembly includes a pair of racks operably associated with a respective element, and with the racks associated with each element being movable along a predetermined path of travel concomitantly with the respective element.
54. The method for controlling discharge of material through the opening defined by the railroad hopper car according to claim 52, said method further comprising the step of: arranging a centerline of each drive assembly to a common vertical side of the predetermined path of travel of the respective racks of each rack and pinion assembly.
55. The method for controlling discharge of material through the opening defined by the railroad hopper car according to claim 53, said method further comprising the step of: supporting the racks operably associated with the first element on a pair of laterally spaced extensions on said first element which are slidably carried on the frame, with each extension being laterally disposed outwardly of the side walls of the frame and move with the first element.
56. The method for controlling discharge of material through the opening defined by the railroad hopper car according to claim 55, said method further comprising the step of: providing a material between an underside of each lateral extension on the first element and said frame for operably reducing the coefficient of friction therebetween as the first element is moved between closed and open position relative to the discharge opening defined by said frame.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0067] While this invention disclosure is susceptible of embodiment in multiple forms, there is shown in the drawings and will hereinafter be described a preferred embodiment, with the understanding the present disclosure sets forth an exemplification of the disclosure which is not intended to limit the disclosure to the specific embodiment illustrated and described.
[0068] Referring now to the drawings, wherein like reference numerals indicate like parts throughout the several views, a railroad hopper car, equipped with one or more gate assemblies embodying principals and teachings of the present invention disclosure, is shown in
[0069] As shown, a bottom 20 of the hopper 12 is provided with a plurality of longitudinally spaced openings 22 for allowing material in the hopper 12 to be discharged from within the hopper 12. As will be appreciated, more or fewer openings than that shown for illustrative purposes can be readily provided on the hopper 12 without detracting or departing from the spirit and novel scope of this invention disclosure. The hopper 12 of railcar 10 typically includes a plurality of conventional slope sheets 24 funneling downward toward each opening at the bottom 20 of the railcar 10 to promote the discharge of material therefrom.
[0070] A gate assembly embodying principals and teachings of the present invention disclosure, and generally designated by reference numeral 30, is shown in
[0071] Each gate assembly 30 includes a rigid frame 32 defining a discharge opening 34 (
[0072] As shown in
[0073] Each side wall 36, 38 and end wall 40, 42 has a mounting flange 44 arranged in generally coplanar relation relative to each other and which define the upper surface 45 (
[0074] As shown in
[0075] Turning to
[0076] As shown by way of example in
[0077] As shown in
[0078] A lower end of the walls 36, 38, 40 and 42 of the gate assembly frame 32 extend beneath the lower surface 58 of the gate 50 to define a discharge plenum 70 (
[0079] As shown by way of example in
[0080] Like element or gate 50, the second element 80 likewise extends across the discharge opening 34 defined by the gate assembly frame 32 and is slidably mounted for movements between closed and open positions. In the closed position, the second element 80 extends across the discharge opening 34 and beneath the lower surface 58 of the gate 50 so as to inhibit dirt, moisture and related debris from entering the plenum 70 (
[0081] The second element 80 of the gate assembly 30 is preferably configured as an open-top pan assembly. The pan assembly 80 is arranged in operable combination with the gate assembly 30 for effecting pneumatic discharge of material from the hopper 12 (
[0082] As shown in
[0083] In the illustrated embodiment, the upper edges of the side walls 81, 82 of the second element 80 are configured to form mounting flanges 88 which define inwardly opening channels 90. The mounting flanges 88 on the side walls 81, 82 of pan assembly 80 are preferably mirror images of each other and, thus, only the mounting flange 88 associated with side wall 82 of pan assembly is illustrated in
[0084] In a preferred embodiment, and as illustrated by way of example in
[0085] In a preferred embodiment, and toward the end walls 83 and 84, the pan assembly 80 also includes suitable seal structure 91 (
[0086] When the second element 80 is configured as a pan assembly, a discharge outlet 92 is connected to and extends laterally from at least one side and preferably above the bottom 85 of the pan assembly 80. As will be appreciated by those skilled in the art, outlet 92 is arranged in material receiving relation with an interior of the pan assembly 80 beneath the gate 50 and can be used to pneumatically exhaust material from the hopper 12 (
[0087] Returning to
[0088] In one form, and although horizontally separated relative to each other, the drive mechanisms 100 and 130 are preferably arranged in horizontally adjacent relationship relative to each other. In the illustrated embodiment, the fixed axes 102 and 132 of the drive mechanisms 100 and 130, respectively, are preferably disposed in vertically adjacent relationship relative to each other. That is, in the preferred embodiment illustrated in
[0089] As illustrated in
[0090] Preferably, operating shaft assembly 104 is of multipiece constructions and includes an elongated operating shaft 106 (
[0091] As shown in
[0092] As shown, the rack and pinion assembly preferably includes a pair of laterally spaced pinions 112 and 112 mounted on and for rotation with the operating shaft 106 of shaft assembly 104. The pinions are arranged in intermeshing relationship with a pair of racks or toothed tracks 114, 114.
[0093] In the illustrated embodiment, pinions 112, 112 are identical relative to each other, As such, only pinion 112 will be described in detail in connection with
[0094] The racks or toothed tracks 114, 114 of the rack and pinion assembly 110 are preferably fastened or otherwise secured to and concomitantly move with the gate or first element 50 of gate assembly 30. As shown in
[0095] In the illustrated embodiment, and when the gate 50 is mounted on the frame 32, the racks 114, 114 extend generally parallel to and are disposed outwardly from opposed side walls 36, 38, respectively, of the frame 32. In a preferred form, and in addition to support structure 60, the gate 50 and the racks 114, 114 are operably supported by and for sliding movements relative to the frame 32 by a pair of laterally spaced extensions or wings 51, 51 (
[0096] In one form, the wings 51, 51 on opposed sides of the gate 50 are substantially identical relative to each other. Accordingly, only the wing 51 and its operable association with gate 50 will be discussed in detail regarding
[0097] In a preferred embodiment, each extension or wing 51, 51 and the respective rack 114,114 carried thereby is disposed in elevated relation relative to the underlying supporting portion of the gate assembly frame 32 so as to enhance sliding movements of the extensions or wings 51, 51 on the gate assembly frame 32. Several designs can be used to effect these desirous ends. In the illustrated embodiment, a lightweight thermoplastic material, such as an ultra-high molecular weight thermoplastic axially elongated strip 116 underlies a major length of each extension on the gate and extends over the underlying portion of the assembly frame 32 thereby significantly reducing the coefficient of friction and, thus, enhancing the ability of the gate 50 to slidably move with the extensions and racks relative to the gate assembly frame 32.
[0098] In the exemplary embodiment illustrated in
[0099] In one form, the interlocking instrumentality illustrated by way of example in
[0100] To inhibit endwise shifting movements of the strip 116 relative to the respective extension or wing 51, 51 as the gate 50 moves between positions, the effective length of the strip 116 is preferably sized to be endwise entrapped between linearly spaced stops 122, 122 (
[0101] As illustrated in
[0102] To effect these ends, the fixed axis 132 about which operating shaft assembly 130 turns is preferably disposed to the same vertical side of the gate 50 as is operating shaft assembly 104. That is, and like the fixed axis 102 of operating shaft assembly 104 (
[0103] Preferably, and as shown in
[0104] As shown in
[0105] The rack and pinion assembly 140 preferably includes a pair of laterally spaced pinions 142 and 142 mounted on and for rotation with the operating shaft 136 of shaft assembly 134. In the embodiment illustrated by way of example, the pinions 142, 142 are identical to each other and, thus, only pinion 142 will be described in detail in connection with
[0106] The racks 144, 144 are preferably fastened to and move concomitantly with the second element or pan assembly 80. Returning to
[0107] Preferably, and when the pan assembly 80 is mounted on the gate assembly 30, the racks 144, 144 extend generally parallel to and outwardly from the opposed side walls 81, 82, respectively, of pan assembly 80. In the embodiment illustrated by way of example, and when the pan assembly 80 is mounted for sliding movements on the frame 32, the racks 144, 144 of each rack and pinion assembly 140 are carried and supported by the frame 32 in laterally spaced outward relation relative to the side walls 81, 82 for movement along a predetermined path. of travel. As such, and in the illustrated embodiment, the racks 144, 144 are disposed outwardly from and to opposed sides of both the discharge opening 34 and the plenum 70 (
[0108] Suffice it to say, when the second element or pan assembly 80 is in a full open position (when the pinions 142, 142 on operating shaft assembly 134 operably engage with stops 145), the second element or pan assembly 80 is removed from beneath the discharge opening 34 defined by frame 32 so as to permit material in hopper 12 to be gravitationally discharged from hopper 12 through the gate assembly 30.
[0109] The gate assembly of the present invention disclosure furthermore includes a lock assembly 150 for influencing movements of both the first and second elements 50 and 80, respectively, along their fixed paths of travel and relative to the frame 32. That is, the purpose of the lock assembly 150 is to releasably hold the first and second elements 50 and 80 of gate assembly 30 against movement toward an open position until the lock assembly 150 is purposefully released by the operator. In the illustrated embodiment, the lock assembly 150 is supported and carried by the gate assembly frame 32 and is automatically operated in response to operation of either the first or second drive mechanism 100 or 130, respectively.
[0110] Lock assembly 150 includes a first lock 160 movable between a locked condition, illustrated in
[0111] In the illustrated embodiment, lock assembly 150 is preferably configured such that both locks 160 and 170 are initially released in response to operation of either drive mechanism 100 or 130 automatically followed by movement of either the first element 50 or second element 80 of the gate assembly 30 toward the open position. As such, and when the hopper 12 (
[0112] In a preferred embodiment shown in
[0113] Preferably, the first lock 160 further includes a second stop 162 arranged in laterally spaced relation relative to the first stop 162. Stop 162 is substantially similar to the stop 162 and, thus, no further detailed description need be provided for stop 162. Suffice it to say, stop 162 is mounted for simultaneous movement with stop 162. That is, stop 162 is mounted for between a first and second positions. In the first position, stop 162 is disposed, at least partially, in the path of movement of the first element or gate 50 to inhibit inadvertent movement of the gate 50 from the closed position toward the open position. In the second position (
[0114] In a preferred form, the second lock 170 includes a stop 172 mounted for movement between a first or locked position (
[0115] Preferably, the second lock 170 further includes as second stop 172 arranged in laterally spaced relation relative to the stop 172. Stop 172 is substantially similar to the stop 172 and, thus, no further detailed description need be provided for stop 172. Suffice it to say, stop 172 is mounted for simultaneous movement with stop 172. That is, stop 172 is mounted for between a first position (
[0116] In the illustrated embodiment, the mechanism or mechanical system 180 moves the stops 162, 162 (
[0117] In the embodiment shown in
[0118] The shaft 182 of mechanism 180 is preferably arranged above the upper surface 56 of the gate 50 and generally parallel thereto. Shaft 182 is mounted for oscillatory movement about the axis 184 extending generally parallel to axes 102 about which shaft assembly 100 turns and generally parallel to the to axes 132 about which shaft assembly 130 turns.
[0119] Preferably, and as shown in
[0120] In the embodiment illustrated by way of example in
[0121] That embodiment of the mechanical system 180 illustrated by way of example in
[0122] The first follower 186 of system 180 is adapted to cooperate with cam structure 190 on the operating shaft assembly 104 (
[0123] In the embodiment shown by way of example in
[0124] Since the cam structure 190 at each end of the operating shaft assembly 104 is substantially identical, only one actuating member or cam 192 will be described in detail. Each cam 192 is preferably formed as an integral part of the handle 108 on shaft assembly 104 and includes a peripheral surface 193. Notably, at least a portion of each cam 192 is larger in diameter and extends radially outward from that portion of the operating handle 108 preferably joined thereto. In the embodiment illustrated by way of example in
[0125] Besides being gravitationally urged into engagement with the gate 50, in a preferred embodiment, stops 162, 162 are urged into positive engagement with the gate 50 so as to inhibit inadvertent release of the lock assembly 150 as the railcar travels between locations. In the form shown in
[0126] In the embodiment shown by way of example in
[0127] In a preferred form, cam 202 is provided on the capstan 138. Such design allows the cam follower 196 of the mechanical system 180 to be advantageously disposed adjacent to the gate assembly frame 32. Preferably, another cam follower and associated cam structure, including an actuating member or cam, which are identical to the cam follower 196 and associated cam structure 200, including an actuating member or cam 202 is preferably provided on the operating handle 138 (
[0128] Since the cam structure at each end of the operating shaft assembly 134 (
[0129] Besides being gravitationally urged into operative engagement with at least a portion of the pan assembly 80, in a preferred embodiment, stops 172, 172 are urged into positive operative engagement with a portion of the pan assembly 80 so as to inhibit inadvertent release of the stops 172, 172 as the railcar travels between locations. As mentioned, shaft 182 of the mechanical system 180 is resiliently biased by the torsion spring 164. As such, and since the stops 172, 172 move with the shaft 182 they too are resiliently urged toward the first position, thus, preventing stops 172, 172 from inadvertent operative disengagement with the second element or pan assembly 80. The preferred spring arrangement furthermore allows the follower 196 to advantageously remain in operative engagement with the periphery 203 of the cam structure 200 during turning rotational movements of the operating shaft assembly 134.
[0130] In the embodiment shown, each actuating member or cam 202 defines a throughbore or slot 204, having a closed margin, arranged in radially spaced relation relative to the rotational axis 132 of the operating shaft assembly 134. Moreover, the cam follower 189 is preferably configured to promote arrangement of a tamper seal 205 (
[0131] Preferably, the mechanical system for operating the lock assembly 150 includes a lost motion mechanism 210 (
[0132] As will be appreciated, the lost motion mechanism 210 can take different designs without detracting or departing from the spirit and scope of this invention disclosure. In the embodiment illustrated by way of example, shaft 106 of operating shaft assembly 104 has a generally square cross-sectional configuration. Moreover, in the embodiment shown in
[0133] In the embodiment shown by way of example in
[0134] As with the lost motion mechanism 210 illustrated by way of example in
[0135] In the embodiment illustrated by way of example in
[0136] Operation of the gate 50 and the first lock 150 is such that when gate 50 is in a closed position, each stop 162, 162 is in operative engagement with gate 50 (
[0137] When gate 50 of gate assembly 30 is to be opened, a suitable tool or powered driver (not shown) operably engages with either capstan 108, 108 and is operated to turn or rotate the operating shaft assembly 104 in the appropriate direction. In the embodiment illustrated in
[0138] As shown in
[0139] Returning to
[0140] At the limit of free rotational movement of operating shaft assembly 104, shaft 106 is disposed as shown in
[0141] Rotation of operating shaft assembly 104 in a direction to move the gate 50 toward the open position causes cam structure 190 to move the stops 162, 162 against the action of spring 164 (
[0142] As will be appreciated from an understanding of that set forth above, the present invention disclosure permits either gravitational discharge or pneumatic discharge of commodity or material from the hopper 12 (
[0143] When second element or pan assembly 80 of gate assembly 30 is to be opened, to effect gravitational discharge of material/commodity from gate assembly 30, a suitable tool or powered driver (not shown) operably engages with either capstan 138, 138 and is operated to turn or rotate the operating shaft assembly 134 in the appropriate direction. In the embodiment illustrated in
[0144] During initial rotation of shaft assembly 134, and as shown in
[0145] As shown in
[0146] At the limit of free rotational movement of operating shaft assembly 134, shaft 136 is disposed as shown in
[0147] As shown in
[0148] After the commodity is gravitationally discharged from car 10, the operating shaft assembly 104 is rotated to return the first element or gate 50 to a closed position. When the operating shaft assembly 104 is rotated to close the first element or gate, shaft 106 initially traverses the angular or radial distance separating walls or surfaces 126c and 126a within the slotted recesses 124 on the pinions on shaft assembly 104 until the outer surface of shaft 106 engages with walls or surface 126a within the slotted recesses 124 on the pinions on shaft assembly 104. Continued rotation of the operating shaft assembly 106 imparts rotation to the pinions of mechanism 100 which is transmuted to linear displacement of the gate 50 toward the closed position by the rack and pinion assembly 110. When the gate 50 reaches the closed position, the cam structure 190 is disposed as shown in
[0149] Similarly, and after the commodity is discharged from car 10, the operating shaft assembly 134 is rotated to return element or pan assembly 80 to a closed position. When the operating shaft assembly 134 is rotated to close element 80, shaft 136 initially traverses the angular or radial distance separating walls or surfaces 148c and 148a within the slotted recesses 147 on the pinions of mechanism 130 until the outer surface of shaft 136 engages with walls or surface 148a within the slotted recesses 147 on the pinions. Continued rotation of the operating shaft assembly 134 imparts rotation to the pinions which is transmuted to linear displacement of the element 80 toward the closed position by the rack and pinion assembly 140. When element 80 reaches the closed position, the cam structure 200 is disposed as shown in
[0150] According to another aspect of this invention disclosure, there is provided a method for controlling discharge of material through an opening defined by a railroad hopper car 10. The method includes the steps of: providing a frame 32 configured for attachment to the hopper car 12 and defining a discharge opening 34 arranged in general registry with the opening 22 defined by the hopper car 10. The frame 32 includes a pair of side walls 36, 38 extending generally parallel to a longitudinal axis 11 of car 10 and a pair of end walls 40, 42 rigidly interconnected to the side walls 36, 38. Another step involves: providing a unitary first element 50 carried by the frame 32 for sliding movements in a single generally horizontal path of travel and relative to the discharge opening 34 between closed and open positions. Another step in the methodology involves: providing a second element 80 carried by the frame 32 beneath the first element 50 for sliding movements in a single generally horizontal path of travel and relative to the discharge opening 34 between closed and open positions. Another step involves: providing a first drive mechanism 100 on the frame 32 for rotation about a first fixed axis 102 for moving the first element 50 relative to the frame. Another step involves: providing a second drive mechanism 130 on the frame 32 for rotation about a second fixed axis 132 for moving the second element 80 relative to the frame 32, with the second axis 132 extending generally parallel to the first axis 102. Another step involves: arranging a lock assembly 150 on the frame 32 between the first and second drive mechanisms 100 and 130, respectively. The lock assembly 150 includes a first lock 150 movable between a locked condition, wherein the first lock 150 extends into the path of travel of the first element 50 when the first element 50 is in the closed position whereby releasably maintaining the first element 50 in the closed position, and an unlocked condition, and a second lock 170. The second lock 170 is movable between a locked condition, wherein the second lock 170 operably extends into the path of travel of the second element 80 when the second element 80 is in the closed position whereby releasably maintaining the second element 80 in the closed position, and an unlocked condition. Another step involves providing a mechanism 180 for conjointly and positively removing the first and second locks 150 and 170, respectively, from the path of travel of their respective element upon rotation of either drive mechanism 100, 130.
[0151] In one form, the method for controlling discharge of material through the opening 22 defined by the railroad hopper car 10 includes the step of: providing a rack and pinion assembly 110 and 140 in operable combination with the first and second elements 50 and 80, respectively, of the gate assembly 30. Each rack and pinion assembly 110, 140 includes a pair of racks 114, 144 operably associated with a respective element, and with the racks 114, 144 associated with each element being movable along a predetermined path of travel concomitantly with the respective element 50, 80. Preferably, the method for controlling discharge of material through the opening 22 defined by the railroad hopper car 10 includes the further step of: arranging a centerline 102 and 132 of the first and second drive mechanisms 100 and 130, respectively, to a common vertical side of the predetermined path of travel of the respective racks 114, 144 of each rack and pinion assembly 110, 140.
[0152] In one form, the method for controlling discharge of material through the opening 22 defined by the railroad hopper car 10 includes the further step of: supporting the racks 114 operably associated with the first element 50 on a pair of laterally spaced extensions 51, 51 on the first element 50 which are slidably carried on the frame 32. Each extension 51, 51 is laterally disposed outwardly of the side walls of the frame and move with the first element 50.
[0153] Preferably, the method for controlling discharge of material through the opening 22 defined by the railroad hopper car 10 furthermore involves the step of: providing a non-metallic material 116, 116 between an underside of each lateral extension 51, 51 on the first element 50 and the frame 32 for operably reducing the coefficient of friction therebetween as the first element 50 is moved between closed and open positions relative to the discharge opening 34 defined by the frame 50.
[0154] From the foregoing, it will be observed that numerous modifications and variations can be made and effected without departing or detracting from the true spirit and novel concept of the present invention. Moreover, it will be appreciated, the present disclosure is intended to set forth an exemplification of the invention which is not intended to limit the invention to the specific embodiment illustrated. Rather, this disclosure is intended to cover by the appended claims all such modifications and variations as fall within the spirit and scope of the claims.