High Speed Rail Car Topper Application System
20170014851 ยท 2017-01-19
Assignee
Inventors
Cpc classification
B05B14/00
PERFORMING OPERATIONS; TRANSPORTING
B05B1/20
PERFORMING OPERATIONS; TRANSPORTING
Y02P70/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
Provided is a spray system comprising: a frame, spray bar, and trough. The spray bar may be rotatable between a dispensing orientation and a diversion orientation and may comprise a pipe and a nozzle. The pipe may define a pipe interior, a pipe elongation axis, be operationally rotatable about the pipe elongation axis, be in fluid communication with an output of a fluid supply, adapted to accept an associated fluid from the fluid supply, and adapted to convey the associated fluid. The nozzle may be adapted to direct an output of the associated fluid from the pipe in a diversion direction or in a dispensing direction. The trough may comprise a trough inlet positioned along the diversion direction and adapted to accept associated fluid when the spray bar is in the dispensing orientation, and a trough outlet in fluid communication with the trough inlet and a fluid supply input.
Claims
1. A spray system comprising: a frame; a spray bar rotatable between a dispensing orientation and a diversion orientation in fluid communication with an output of a fluid supply, adapted to accept an associated fluid from the fluid supply, and adapted to convey the associated fluid; at least one nozzle in fluid communication with the spray bar, adapted to direct an output of the associated fluid from the spray bar in a diversion direction when the spray bar is in the diversion orientation, and in a dispensing direction when the spray bar is in the dispensing orientation; and a trough, the trough comprising a trough inlet positioned along the diversion direction and adapted to accept the output of the associated fluid when the spray bar is in the dispensing orientation.
2. The spray system of claim 1 further comprising: a trough outlet in fluid communication with the trough inlet and in fluid communication with an input of the fluid supply.
3. The spray system of claim 2 further comprising: a pipe, the pipe defining a pipe interior, the pipe being elongated to define a pipe elongation axis, operationally rotatable about the pipe elongation axis, the pipe further being in fluid communication with an output of a fluid supply, adapted to accept an associated fluid from the fluid supply, and adapted to convey the associated fluid.
4. The spray system of claim 3, wherein the nozzle is in fluid communication with the pipe, and adapted to direct an output of the associated fluid from the pipe in a diversion direction when the spray bar is in the diversion orientation, and in a dispensing direction when the spray bar is in the dispensing orientation.
5. The spray system of claim 4, wherein the frame is elongated to define a frame elongation axis, the frame having a first frame end and a second frame end.
6. The spray system of claim 5, wherein the at least one nozzle is a plurality of nozzles in fixed engagement with the pipe.
7. The spray system of claim 6 further comprising: a first seal plate movable within the pipe interior along the pipe elongation axis; and a second seal plate movable within the pipe interior along the pipe elongation axis.
8. The spray system of claim 7 further comprising: an actuator, the actuator being a pneumatic cylinder, operationally engaged with the spray bar, adapted to rotate the spray bar between the dispensing orientation and the diversion orientation.
9. The spray system of claim 8, wherein the plurality of nozzle having at least 30 open pipe nozzles where each nozzle is a flat spray nozzle with pipe-size connections ranging from inch to inch, having a spray angle between 5 to 120 inclusive, and having an output capacity between 1.0 GPM to 25.0 GPM, inclusive.
10. A method of using a spray system comprising the steps of: providing a spray system having a frame; a spray bar rotatable between a dispensing orientation and a diversion orientation in fluid communication with an output of a fluid supply, adapted to accept an associated fluid from the fluid supply, and adapted to convey the associated fluid; at least one nozzle in fluid communication with the spray bar, adapted to direct an output of the associated fluid from the spray bar in a diversion direction when the spray bar is in the diversion orientation, and in a dispensing direction when the spray bar is in the dispensing orientation; and a trough, the trough comprising a trough inlet positioned along the diversion direction and adapted to accept the output of the associated fluid when the spray bar is in the dispensing orientation; dispensing the associated fluid from the nozzle; and moving the spray bar into the diversion direction to direct the associated fluid from the nozzle into the diversion direction and into the trough.
11. The method of claim 10 further comprising the step of: conducting a dispensing operation having the steps of, moving a gondola railway car carrying cargo into a region along the dispensing direction; moving the spray bar into the dispensing orientation to direct the associated fluid from the nozzle into the dispensing direction and onto the cargo; and moving a gondola railway car carrying cargo out of the region along the dispensing direction.
12. The method of claim 11, wherein the spray system further comprises: a trough outlet in fluid communication with the trough inlet and in fluid communication with an input of the fluid supply.
13. The method of claim 12, wherein the spray system further comprises: a pipe, the pipe defining a pipe interior, the pipe being elongated to define a pipe elongation axis, operationally rotatable about the pipe elongation axis, the pipe further being in fluid communication with an output of a fluid supply, adapted to accept an associated fluid from the fluid supply, and adapted to convey the associated fluid.
14. The method of claim 13, wherein the nozzle is in fluid communication with the pipe, and adapted to direct an output of the associated fluid from the pipe in a diversion direction when the spray bar is in the diversion orientation, and in a dispensing direction when the spray bar is in the dispensing orientation.
15. The method of claim 14, wherein the frame is elongated to define a frame elongation axis, the frame having a first frame end and a second frame end.
16. The method of claim 15, wherein the at least one nozzle is a plurality of nozzles in fixed engagement with the pipe.
17. The method of claim 16, wherein the spray system further comprises: a first seal plate movable within the pipe interior along the pipe elongation axis; and a second seal plate movable within the pipe interior along the pipe elongation axis.
18. The method of claim 17, wherein the spray system further comprises: an actuator, the actuator being a pneumatic cylinder, operationally engaged with the spray bar, adapted to rotate the spray bar between the dispensing orientation and the diversion orientation.
19. The method of claim 18, wherein the plurality of nozzle having at least 30 open pipe nozzles where each nozzle is a flat spray nozzle with pipe-size connections ranging from inch to inch, having a spray angle between 5 to 120 inclusive, and having an output capacity between 1.0 GPM to 25.0 GPM, inclusive.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] Example arrangements are described hereinafter with reference to the accompanying drawings.
[0011]
[0012]
[0013]
[0014]
DETAILED DESCRIPTION
[0015] With reference to the non-limiting embodiments shown in
[0016] With continuing reference
[0017] A spray bar 440 may be rotatable with respect to the frame between a dispensing orientation and a diversion orientation. One non-limiting embodiment of a diversion orientation is shown in
[0018] The pipe 450 defines a pipe interior 452 and a pipe exterior 454. The pipe may be elongated to define a pipe elongation axis 451. In the embodiment shown in
[0019] The one or more nozzles 460 are in fixed engagement and orientation with respect to the pipe 450. Each nozzle is an elongated fluid conduit having a first nozzle end 462 in fluid communication with the pipe interior 452 and a second nozzle end 464 opposite the first nozzle end 462, where the second nozzle end 464 is open to issue the associated fluid either in the dispensing direction or in the diversion direction as dictated by the orientation of the spray bar 440. In the non-limiting embodiment shown in
[0020] A spray bar 440 may optionally comprise one or more seal plates 444, 446. A seal plate 444, 446 may provide a substantially fluid-tight obstruction within the pipe interior 452. A seal plate 444, 446 may be adapted to fluidly isolate one part of pipe interior 452 from another part of pipe interior 452. In some embodiments, a seal plate 444, 446 may be an adjustable plate with fluid-tight seals moveable within the pipe interior 452. In some embodiments, as shown in
[0021] A trough 470 may comprise one or more trough inlets 472 in fluid communication with a trough outlet 474. The trough inlet 472 is positioned along the diversion direction and adapted to accept the output of the associated fluid when the spray bar 440 is in the diversion orientation. In the embodiment shown in
[0022] An actuator 490 may be operationally engaged with the spray system 400 to allow the spray bar to be rotated between the dispensing orientation and the diversion orientation. The actuator may be any actuator chosen with good engineering judgement. The actuator may comprise a stepper motor, an encoder, a servo motor, a mechanical linkage, a four-bar mechanism, a snap-through mechanism, a pneumatic cylinder, a hydraulic cylinder, an accumulator, or combinations thereof. In the embodiment shown in
[0023] In some non-limiting embodiments the associated fluid dispensed by the fluid supply 92 may comprise a binding topper agent. There are many acceptable binding topper agents and forms of application. Generally, any binder topper agent selected with good engineering judgment is acceptable for use as the associated fluid adapted to be dispensed by the fluid supply 92. In some embodiments the chemical for the binding agent is a direct injection liquid concentrate. In one embodiment, the binding agent can be applied up to a 4.48% solution by volume. In other embodiments, the binding agent can be applied in a solution of 1-10% binding agent by volume. In certain embodiments, a binding agent may comprise a polymer: homopolymers, random, block, or graft co-polymers. In certain embodiments, a polymer to be used as a binding topper agent may be an emulsion in water or a solution, with or without the addition of a freezing point depressant, such as glycerin or glycol. In certain embodiments a polymer may comprise one or more of acrylic; vinyl acetate; vinyl acrylic; styrene butadiene; styrene acrylic; vinyl acetate-dioctyl maleate; polyacrylamide; polyacrylamide-crosslinked; polyvinyl acetate; or an alkyl alcohol composition. In certain embodiments, a binding agent may comprise an emulsion. An emulsion to be used as a binding topper agent may be a polymer as noted above, asphalt, tall oil pitch, petroleum oil petroleum, non-petroleum oil such as, without limitation, soy oil, canola oil, nut oil, synthetic fluid including GTL (gas to liquid), and synthetic fluid with binder. In certain embodiments, a binding agent may comprise base oils (petroleum derived) with one or more binders, base oils (petroleum derived) without one or more binders, synthetic fluids with one or more binders, synthetic fluids without one or more binders, lignosulfonates, acidulated soy feedstock, or soy processing by-products, surfactant based materials, glycerin based materials.
[0024] In some embodiments a binding agent, in concentrate form or otherwise, may be used for rapid disbursement with direct injection into a dilution water stream. The dilute solution is considered immediately active without minimum requirements for polymer unwind time.
[0025] With continuing reference to the
[0026] In one method of use, a spray system 400 may be provided, an associated fluid may be dispensed from the nozzle 460 of the spray system 400, and a multi-step dispensing operation conducted in which the steps are: moving a gondola railway car 80 carrying cargo into a region along the dispensing direction; moving the spray bar 440 into the dispensing orientation to direct the associated fluid from the nozzle 460 into the dispensing direction and onto the cargo; moving a gondola railway car 80 carrying cargo out of the region along the dispensing direction; and moving the spray bar 440 into the diversion direction to direct the associated fluid from the nozzle 460 into the diversion direction and into the trough 470.
[0027] By establishing a high volume flow though the spray bar 400 it is possible to dispense very high volumes of an associated fluid very quickly. In some embodiments, control of output is established by redirecting the high volume flow though the spray bar 400 into a trough rather than making a large change in the flow volume though the spray bar 400.
[0028] In certain non-limiting applications, the dispensing system 100 may be deployable on a main line railroad track for use for application of material to cargo while the cars are moving at conventional conveyance speeds, for example and without limitation, at speeds up to 20 mph. In certain non-limiting applications, multiple dispensing systems 100 may be arranged on a main line railroad track to provide for a first dispensing system 100 positioned and adapted to make application of material to cargo and a second dispensing system 100 positioned some offset distance from the first dispensing systems 100 and adapted to make a secondary application of material to cargo. In certain non-limiting applications, the offset distance from the first dispensing systems 100 to the second dispensing system 100 may be less than a mile, a mile, more than a mile, or more than 100 miles. In certain non-limiting applications, the associated cargo to which material is to be applied may be coal in railcars, or other commodities such as met coal, pet coke, gypsum, or grain. In certain non-limiting embodiments, the dispensing system 100 may be adapted to apply an effective amount of a binder topper agent as an associated fluid to the associated cargo in an associated railcar in a train travelling at a speed from 0.3 mph (0.48 kph) to 20.0 mph (32.2 kph) in an effective amount to reduce or substantially eliminate dust from the cargo.
[0029] The embodiments have been described, hereinabove. It will be apparent to those skilled in the art that the above methods and apparatuses may incorporate changes and modifications without departing from the general scope of the present teachings. It is intended to include all such modifications and alterations insofar as they come within the scope of the appended claims or the equivalents thereof.
[0030] Having thus described the disclosed system and method, it is now claimed: