Precision Fuel Additive System
20180187663 ยท 2018-07-05
Inventors
Cpc classification
F04B53/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B17/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D2201/345
PERFORMING OPERATIONS; TRANSPORTING
F04B9/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B43/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B17/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B23/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B49/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M25/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04B17/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D29/31
PERFORMING OPERATIONS; TRANSPORTING
F04B15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B9/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M25/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B49/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B23/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A precision additive dosing device comprising a liquid additive tank, dosing pump, filter, electric actuator, and pump control unit. Upon completion of fueling, the control unit is input with the corresponding volume of fuel just delivered. The pump starts until a time is reached that achieves the correct blend of additive for the fuel. The dosing pump delivers a constant volume of additive with time being the only variable to achieve the correct ratio of additive to fuel. Operation of the pump may be delayed or the time of pump operation may be increased during low ambient temperatures by the pump control circuit. Additionally, a heater may be used to heat the additive in similarly low temperatures.
Claims
1. A liquid dosing device comprising: a. a liquid additive tank comprising a fill tube, one or a plurality of baffle plates, an outlet port, and an bypass tube, the exit of said bypass tube being located above said outlet port, b. an electrically controlled dosing pump found in the category containing solenoid or motor operated metering pumps, c. an electronic input device containing a timing circuit for starting and stopping said dosing pump, d. and a liquid additive filter assembly upstream of said dosing pump, whereby said input device starts or stops said dosing pump based on the entering the volume of liquid to be diluted to said input device to deliver a corresponding volume of said liquid additive to a fuel tank of a vehicle, liquid fueled generator, or the like.
2. The liquid additive dosing device of claim 1 wherein said timing circuit of said input device contains a means to delay starting of said dosing pump during substantially low ambient temperatures.
3. The liquid additive dosing device of claim 1 wherein said timing circuit of said input device contains a means to increase length of operation of said dosing pump during substantially low ambient temperatures.
4. The liquid additive dosing device of claim 1 wherein said dosing pump comprises movable diaphragm having a thermoplastic core and a chemically resistant fluoropolymer elastomer coating.
5. The liquid additive dosing device of claim 1 wherein said dosing pump comprises: a. an inlet port, b. an outlet port, c. a slidably mounted piston, d. a solenoid or motor to shuttle said piston, e. one or a plurality of substantially flat inner plates containing a center bore within close tolerance to the diameter of said piston and mounting holes to locate a fastening means around the perimeter of said center bore, f. one or a plurality of substantially flat outer plates parallel to and sandwiching said inner plates containing mounting holes that align with said mounting holes in said inner plates, g. and one or a plurality of substantially flat side plates mounted perpendicular to said inner and outer plates.
6. The liquid additive dosing device of claim 1 further comprising an electrically controlled valve to switch flow of said liquid additive to said vehicle fuel tank or said fuel tank of said liquid fueled generator.
7. The liquid additive dosing device of claim 1 wherein said liquid additive tank includes a heater whereby said liquid additive is warmed prior to pumping by said dosing pump during substantially low ambient temperatures.
8. The liquid additive dosing device of claim 1 wherein said filter assembly comprises: a. a cylindrical filter, b. a tubular filter housing for containing said cylindrical filter, c. an inlet port comprising a slidably mounted hollow stem, said hollow stem further comprising an inlet hole, an outlet hole, and a fastening means above said inlet hole to retain said hollow stem, d. a compression spring to keep said hollow stem sealed against the top of said tubular filter, e. an outlet port of said tubular filter housing, f. and a filter retaining nut, whereby removal of said filter retaining nut and said cylindrical filter allow said compression spring to extend causing said inlet hole of said hollow stem to drop below the fuel source thus stopping further flow of liquid, and reinsertion of said cylindrical filter and installation of said filter retaining nut compress said compression spring and lift said inlet hole of said hollow stem into the liquid source.
9. The liquid additive dosing device of claim 1 wherein said dosing pump comprises: a. an electrically operated motor, b. a pump manifold having an inlet and outlet check valve, c. a slidably mounted piston having a shoulder in substantially the middle of the length of said piston, d. a bearing mounted to said piston, the axis of said bearing mounted perpendicular to the axis of said piston, e. a rotatable cam having an axis parallel to said axis of said bearing, further having a smooth outer surface contacting the outer race of said bearing, f. an outer plate fixed to said pump housing, g. a compression spring surrounding said piston contacting said shoulder of said piston and the sandwiched face of said outer plate, h. and one or a plurality of motor mounting plates attached to a face of said outer plate or said manifold perpendicularly mounted to said sandwiched face of said outer plate, whereby said motor rotates said cam causing said bearing and said piston to reciprocate within said manifold and pumping said liquid additive from said inlet port through said outlet port.
10. The rotatable cam of claim 9 wherein said cam includes a groove in the outer bearing contacting surface to capture said outer race and a portion of the sides of said bearing.
11. The liquid additive dosing device of claim 1 wherein said dosing pump comprises: a. A motor mounting plate having a hole to accept a motor drive shaft and a hole to accept a reciprocating piston, b. an electrically operated motor fixed to said motor mounting plate, c. a circular cam disk containing an inner face with a plurality of raised lobes, an outer substantially planar face, and a hole for attachment to the rotating shaft of said motor, d. a cam disk housing, e. a thrust device found in the category containing thrust washers and thrust bearings having an inner face contacting said planar face of said cam disk and an outer face contacting said cam disk housing, f. a slidably mounted piston comprising a shoulder midway the length of said piston, a substantially planar end, and a substantially rounded end, g. a pump housing, h. a compression spring surrounding said piston with spring ends contacting said shoulder of said piston and said pump housing facilitating constant contact of said rounded piston end and said raised lobes, i. an inlet check valve, j. and an outlet check valve, whereby said motor rotates said cam disk causing said raised lobes to move said piston into and out of said pump housing inducing flow of liquid additive from said inlet check valve through said outlet check valve.
Description
DRAWINGS
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TABLE-US-00001 DRAWINGSReference Numerals 2 additive tank 4 tank body 6 fill tube 8 vented Cap 10 baffle plate 12 end plate 14 end cover 16 seal 18 heater 20 mounting bracket 22 logo band 24 vibration isolator 26 remote control 28 volume button 30 increase button 32 display 34 start button 36 dosing pump 38 filter assembly 40 outlet port 42 filter 44 inlet spool 46 compression spring (filter) 48 filter seal 50 upper seal 52 stem 54 stem retaining nut 56 filter cap 58 inlet hole 60 electric motor 62 internal retaining nut 64 external retaining nut 66 front motor bracket 68 rear motor bracket 70 motor shaft 72 motor bearing 74 elliptical cam 76 piston bearing 78 piston 80 shoulder screw 82 outer housing 84 main housing 86 washer 88 piston seal 90 compression spring (pump) 92 inlet check valve 94 outlet check valve 96 level sensor 98 single motor mounting plate 100 cam groove 102 motor bracket 104 cam disk 106 motor shaft 108 thrust washer/bearing 110 disk housing 112 shaft bearing 114 piston 116 disk surface 118 cam lobe 120 inner housing 122 compression spring 124 pump chamber 126 valve block 128 inlet check valve 130 outlet check valve 132 piston seal 134 solenoid actuator 136 inlet port 138 pump body 140 piston 142 outlet check valve 144 piston housing 146 adapter plate 148 front support plate 150 spacer plate 152 piston support plate 154 motor mounting plate 156 side plates 158 pump mounting plate 160 orifice 162 outlet tube 164 relief valve 166 relief tube 168 controller 170 single check valve 172 inline filter 174 fuel tank 176 reefer tank 178 solenoid valve
DETAILED DESCRIPTION
[0028] One embodiment of the additive tank (2) is shown in
[0029] Since equipment that is mounted on the exterior of a truck needs to be cosmetically sound, a logo band (22) may be used to provide advertising for the additive in use as well as providing an alternate seal between the bottom of the tank (2) and the end cover (14). Due to road vibration, vibration isolators (24) are used to protect the components of the additive device.
[0030] Upon completion of the refueling of a vehicle, the remote control (26),
[0031] Additive passes through the end plate (12) of the tank (2) and through a filter assembly (38) and to the filter outlet port (40). The filter assembly (38) is preferably comprised of a filter (42), an inlet spool (44) with a compression spring (46), and filter seal (48). An upper seal (50) may be used against the stem (52) of the inlet spool (44) to prevent leakage to the housing cavity near the spring (46). During fabrication, a stem retaining nut (54) is used to keep the spool (44) from coming out of the end plate (12). To change the filter (42), the filter cap (56) is removed allowing the spring (46) to extend which moves the inlet hole (58) below the tank end plate (12). This seals the inlet hole (58) to prevent excess additive from draining from the tank. The old filter (42) is removed and replaced. When a new or clean filter (42B) is reinserted, the spring (46) compresses and forces the inlet spool (44) to extend into the tank. Once the filter cap (56) is secured, the inlet hole (58) is now inside the tank cavity allowing fuel additive to reenter the filter (42B). Additive is then available to be moved to the pump (36) through the outlet port (40). An internal retaining nut (62) is used to retain the filter (42). An external retaining nut (64) can be removed to gain access to the pump and controller circuitry. This external retaining nut (64) is used to keep the filter assembly firmly in place against the cover (14) when changing the filter (42).
[0032] One embodiment of the fuel additive pump is shown in
[0033] A simplified embodiment of the fuel additive pump is shown in
[0034] Another embodiment of the fuel additive pump is shown in
[0035] A further embodiment of the fuel additive pump (36D) is shown in
[0036] If a metering pump like the one specified in
[0037] The additive passes from the outlet tube (162) of the tank (2), though the pump (36) and though a factory calibrated orifice (160). When the additive is dispensed in this means, the volume of additive is constant and the only variable is the amount of time the pump (36) is operating. The fuel additive recirculates back to the additive tank through a relief valve (164) via a relief tube (166) within the tank (2) until the pump (36) is turned off by a signal from the controller (168).
[0038] A simplified process & instrumentation diagram
[0039] It is also an advantage of this additive dosing pump, to increase or decrease the amount of time the dosing pump remains on depending on the temperature of the additive in the additive tank (2). As the temperature drops, the viscosity of the additive decreases making the flow decrease through the orifice (160). The controller circuit (168) then increases the amount of time the pump (36) is on to compensate for the thickness of the additive. If the additive is at a very low temperature, for example 20 degrees, the controller (168) starts a delay sequence to allow the engine time to warm the surrounding air and thus the nearby additive tank (2). A heater element (18) may be attached to the bottom of the tank to heat the additive and allow it to flow at very low temperatures.
[0040] Another embodiment of a dosing pump (not shown) uses a solenoid to move a diaphragm which supplies fuel additive from the inlet to the outlet port. The diaphragm is preferably constructed of a thermoplastic core such as polypropylene with an exterior surface of a chemical resistant elastomer such as Viton.
[0041] The control unit circuitry preferably contains a switch or the ability to add a switch if desired to switch the flow of fuel additive to either a vehicle fuel tank (174) or a fuel tank of a generator (compressor) for a refrigerated trailer, or reefer tank (176), using a solenoid valve (178).
[0042] Although the above description contains many specificities, it should not be construed as limiting the scope of the embodiments. For example, the description above lists many advantages of a fuel additive dosing system, however the embodiments may prove useful for dosing other chemicals used in carwashes and the like.