Fire retardant proportioning system and apparatus
11027158 · 2021-06-08
Inventors
Cpc classification
International classification
Abstract
Fire fighting apparatus using a single pressurizing pump and an improved eductor venturi to enable the in-line eduction of a long term fire retardant concentrate into a pressurized diluting water flow stream downstream of the water pressurizing pump so that the resulting mixture of water and liquid concentrate is accurately proportioned to meet a specification dictated by the concentrate vendor and is thus instantly available for application to fire threatened structures and vegetation.
Claims
1. A fire retardant concentrate proportioning system and apparatus for proportioning and mixing one or more concentrated liquid chemicals with pressurized water, comprising: a first input port for connection to a source of water pressurized to a first pressure; a selectably variable pressure regulator connected to said first input port for reducing the pressure of water input thereto from said first pressure to a selected second pressure; a second input port for connection through a metering orifice to a source of liquid chemical concentrate having a predetermined concentration; a first check valve; a second check valve; an output port; and an eductor means having a motive port fluidly connected by said first check valve to said pressure regulator for receiving a stream of water pressurized thereby to said selected second pressure, a suction port fluidly connected by said second check valve to said second input port for receiving liquid chemical concentrate from said source thereof, and a discharge port fluidly connected to said output port, said eductor means being configured such that the velocity of flow of pressurized water therethrough induces a negative pressure at said suction port which induces a predetermined flow of said liquid chemical concentrate through said metering orifice and said second input port and into said suction port where it becomes mixed with said stream of pressurized water, the resulting mixture being discharged through said discharge port to said output port and through any hose and nozzle connected thereto.
2. A fire retardant concentrate proportioning system and apparatus as recited in claim 1 wherein said selectably variable pressure regulator is a pressure relief valve having an adjustment screw and an associated branch port and by-pass linkage for returning excess pressurized water to the source of water.
3. A fire retardant concentrate proportioning system and apparatus as recited in claim 2 wherein said selectably variable pressure regulator further includes a pressure gauge for indicating the pressure of the water input to said eductor means as said adjustment screw is adjusted to reduce said first pressure to said second pressure.
4. A fire retardant concentrate proportioning system and apparatus as recited in claim 2 and further comprising a post-use fluid clean-out flow path including a tee-fitting disposed in the flow path between said metering orifice and said second check valve, and said tee-fitting includes a branch port fluidly coupled to said first input port via a user selectable, normally closed, valve means whereby by disconnecting said source of liquid chemical concentrate, and opening said selectable valve means, with said nozzle open, said first pressurized water will be caused to back-flush the entire system and clear any clogs therefrom.
5. A fire retardant concentrate proportioning system and apparatus as recited in claim 1 wherein said metering orifice is sized to create a vendor specified ratio between the liquid chemical concentrate flow at said suction port and the mixture flow at the nozzle.
6. A system and apparatus for proportioning and mixing one or more concentrated liquid fire retardant chemicals with another liquid, comprising: a first input port for connection to a source of said another liquid pressurized to a first pressure; a selectably variable pressure regulator connected to said first input port for reducing the pressure of a stream of said another liquid input thereto from said first pressure to a selected second pressure; a second input port for connection through a metering orifice to at least one source of liquid fire retardant chemicals having a predetermined concentration; an output port for connection to the proximal end of a distribution-hose having a discharge nozzle operatively mounted to the distal end thereof; an eductor means having a motive port fluidly coupled to said pressure regulator for receiving a stream of said another liquid pressurized thereby to said selected second pressure, a suction port fluidly coupled to said second input port for receiving the concentrated liquid fire retardant chemicals from said source thereof, and a discharge port fluidly connected to said output port; a first check valve fluidly coupled between said pressure regulator and said motive port for limiting the direction of fluid flow of said pressurized stream of said another liquid from said pressure regulator to said motive port; and a second check valve fluidly coupled between said second input port and said suction port for limiting the direction of fluid flow of said concentrated liquid fire retardant chemicals from said second input port to said suction port; said eductor means being configured to allow a constant and fixed flow rate of said another liquid therethough at said second pressure such that the velocity of flow of said another liquid therethrough is constant and induces a negative pressure at said suction port sufficient to draw a pre-specified flow of said concentrated liquid chemicals through said second input port and said first metering orifice into said eductor means wherein it becomes mixed with said stream of pressurized another liquid, and the resultant mixture is discharged from said discharge port to said output port.
7. A system and apparatus as recited in claim 6 wherein said selectably variable pressure regulator is a pressure relief valve having an adjustment screw and an associated branch port and by-pass linkage for returning excess pressurized liquid to the source of said another liquid.
8. A system and apparatus as recited in claim 7 wherein said selectably variable pressure regulator further includes a pressure gauge for indicating the pressure of said another liquid input to said eductor means as said adjustment screw is adjusted to reduce said first pressure to said second pressure.
9. A system and apparatus as recited in claim 6 and further comprising means forming a post-use fluid clean-out flow path including a tee-fitting disposed in the flow path between said metering orifice and said second check valve, and said tee-fitting includes a branch port fluidly coupled to said first input port via a user selectable, normally closed, valve means, whereby by disconnecting said at least one source of liquid fire retardant chemicals, and opening said selectable valve means, with said discharge nozzle open, said first pressurized another liquid will be caused to back-flush the entire system and clear any clogs therefrom.
10. A system and apparatus as recited in claim 6 wherein said metering orifice is sized to create a 70 percent ratio between the concentrate flow rate and the mixture flow rate at the discharge nozzle.
Description
IN THE DRAWING
(1)
(2)
(3)
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(5)
DETAILED DESCRIPTION OF THE ILLUSTRATED EMBODIMENT
(6) Referring now to
(7) The depicted skid 10 is of a type designed to extract fire-fighting chemicals or concentrates contained in one or more containers 14, and to mix the extracted chemicals with pressurized water and to then use the resulting mixture to suppress and/or extinguish wildfires. The illustrated skid is a system and apparatus such as the MTECH POLYTOUGH™ Skid apparatus comprised of a 300-gallon MTECH PolyTough™ water tank 12; a water pressurizing pump 17, such as the Waterax Striker 3, 3-stage centrifugal pump, for pressurizing water withdrawn from tank 12; a gasoline engine 20, such as the Honda, 13HP, electric start engine, for driving the pump 17; one or more chemical vendor supplied containers 14 respectively filled with one or more types of chemicals to be withdrawn from and mixed at a pre-specified ratio with pressurized water obtained from tank 12; and a suitable proportioning and mixing subsystem such as that generally illustrated at 16.
(8) Skid 10 further includes a hose reel assembly 22 carrying a fire hose 24 having a suitable nozzle 26 affixed to the distal end thereof; and an assembly of plumbing elements and valves 28 for interconnecting the several fluid handling, directing and processing system components.
(9) Tank 12 has an outlet port 30 connected to an intake port 32 of pump 17 which in turn has an outlet port 34 connected via suitable tubing, piping or other forms of fluid conduit 36 to a pressurized water inlet port 38 of subsystem 16. Subsystem 16 has a chemical inlet port 40 connected by a suitable conduit 42 to an outlet port 44 of at least one of the containers 14. Subsystem 16 also has a water/chemical mixture outlet port 46 connected by a conduit 48 to the proximal end (not shown) of the fire hose 24 wrapped about reel assembly 22. An example of the hose reel assembly 22 is a Hannay electric hose reel mechanism having 150 feet of ¾″ I.D. Booster Hose wound thereabout.
(10) Also mounted on the skid and depicted in
(11) In operation, water drawn from the tank outlet port 30 is pressurized by the motor driven pump 17 and fed via conduit 36 to the subsystem 16 where it is mixed with chemicals drawn via a suction hose 42 and mixed in the subsystem 16 with the pressurized water drawn from the tank 12.
(12) The resulting mixture is then output at an output port 46 and forced through a conduit 48 connected to the proximal end (not shown) of the fire hose 24 after it is unwound from reel 22, and then discharged through a nozzle 26 (
(13) In accordance with a preferred embodiment of the present invention, the illustrated proportioning and mixing subsystem 16 of
(14) Turning now to
(15) As illustrated, a 0-300PSI water pressure reading gauge 63 is shown to extend through an opening 64 in the upper wall 65 of housing 60. The pressurized input water enters housing 60 from line 36 through an opening 38 (entry port 38) in the left side wall 66 of housing 60 via a ¾″ street EL 33, a ¾″ high pressure Tee 35, and a ¾″ nipple 37. An “excess water” return line to tank 12 (
(16) Returning to
(17) Disposed within housing 60 and extending across the upper portion thereof between the nipple 37 (passing through of the pressurized water input port 38), and the water/concentrate mixture outlet port 46 via street EL 49, are (from left to right) a four-way ½″ cross connector 80, a ½″×¾″ flow expander 81, a ¾″ check valve (0.5 PSI cracking pressure) 82, a ¾″×½″ flow reducer 83, a ½″×¼″ flow reducing adapter 84 connected to the motive port 85 of an eductor venturi 86, such as that generally illustrated in
(18) As depicted in
(19) Coupled to the lower branch of cross connector 80 is a 0-300 PSI pressure relief valve 94 used in conjunction with the adjustment screw 70 and gauge 63 as a pressure regulator to control the water pressure input to the RDP-18. The relief valve 94 works to by-pass excess water at the regulator to return via its branch port 75 whereby it is returned through street EL 69 and line 68 to tank 12. Although pressurized water is provided by pump 17 (
(20) Referring now to
(21) As alluded to above and further explained below with respect to
(22) In operation, (as schematically depicted in
(23) As the pressurized water flows through check valve 82 and into the motive port 85 of eductor venturi 86, the pressure drops therewithin creating suction at the suction port 87, thereby drawing retardant concentrate from container 14 through concentrate hose 42, metering orifice 96, check valve 92 and into the pressurized water stream passing through venturi 86. In so doing, the water and concentrate are thoroughly mixed in the venturi 86, and the mixed solution thereupon passes out of the discharge port 89 thereof and through the conduit 48, reel 22, fire-hose 24, the ON/OFF valve 98, and the constant flow orifice 99 and pattern adjustment screw 100 of nozzle 26 for spraying on structures and/or vegetation being treated.
(24) Following use, in order to clean the entire RPD-18 subsystem, the concentrate hose 42 should be withdrawn from the concentrate container 14, and the nozzle 26 should be opened. Opening the flush valve 56 will allow the pressurized water input at 38 to flow through the entire subsystem and exit through the open nozzle 26 and suction tube 42. This will clean the entire subsystem and clear any clogs that may have occurred.
(25) Should the pump 17 not be turned OFF before the nozzle 26 is opened, the check valve 82 will stop mixed solution in the discharge line 48 from returning to the excess water return line 68 and contaminating the water tank 12 and pumping system should the flush valve 56 be opened.
(26) Similarly, should the suction tube 42 not be removed from the concentrate container 14 before the nozzle 26 is opened, and the flush valve 56 be opened, check valve 92 will stop flow-back of mixed solution back to the concentrate container 14 thereby preventing dilution of the concentrate in the container.
(27) It will thus be recognized that the RDP-18 is substantially foolproof in operation, that once setup requires little adjustment during use in otherwise inaccessible areas threatened by wildfires, that it is safer to use in that it reduces the handling and mixing of caustic and corrosive LTFR chemical concentrates by allowing them to be drawn directly from their vendor-supplied containers and accurately mixed in the correct proportions with transported or otherwise available water, that it is relatively easy to clean and care for in between uses, that it is relatively easy to assemble using readily available tools and component parts, that vender supplied concentrate containers can be used to eliminate the need to pour the water and concentrate material into a separate tank for mixing and/or storage, thereby reducing material waste and simplifying cleanup. and that it represents a true advancement over other prior art systems.
(28) The preceding description provides a preferred exemplary embodiment of the invention only, and is not intended to limit the scope, applicability, or configuration of the invention. Rather, the description of the preferred exemplary embodiment is intended to provide those skilled in the art with an enabling disclosure for implementing an embodiment. It is to be understood that various changes may be made in the function and arrangement of the described components and elements without departing from the true spirit and scope of the invention set forth in appended claims.