Normal carburetion injection systems feed fuel into the engine even when the pressure is taken off the gas pedal because of the vacuum produced in the cylinders on the downstroke of the piston and this invention will overcome this problem by by-passing air into the cylinders and closing off the fuel supply, and will only allow fuel flow to keep the motor running at idling speeds or when pressure is again applied to the gas pedal.
Description of the Drawings
FIG. 1 is a side elevation view of the apparatus forming this invention;
FIG. 2 is a top plan view of the device of FIG. 1;
FIG. 3 is a transverse section view of the device of FIG. 1;
FIG. 4 is an enlarged view of a portion of the device shown in FIG. 3; and
FIG. 5 is a schematic drawing of the electrical control system.
As illustrated on the drawings, the invention primarily consists of an air intake, air passage chamber, valve and solenoid arrangements.
The solenoids are operated electrically through manual switch 13 on the dashboard, switch 14 operated by the gas pedal arm and a sail switch 15 operated by air flow from the radiator fan.
The manual switch is normally left in the "on" position as it is primarily a safety cut off and ensures that power will be available for the electrical control system.
At normal or high engine speeds and with the gas pedal depressed, switch 14 is open and air flow from the radiator fan keeps the sail switch 15 closed and the engine operates normally drawing fuel through the carburetor.
When pressure is taken off the gas pedal, switch 14 is closed thus completing the electrical circuit and solenoids 2 and 4 are energized. Solenoid 4 through linkage 8 closes the butterfly valve 3 thus closing off fuel flow through the carburetor and at the same time, solenoid 2 pulls up plunger and valve 10 from the seat allowing air to pass into the intake manifold through intake openings 1, around the outside of the solenoid coil, through openings in casting 17 and opening 12 of flange 7.
As the speed of the engine decreases to a predetermined setting, the sail switch contact opens because of reduced air flow and the solenoids are then de-energized and engine then operates again under normal carburetion injection. This avoids the problem of the engine stopping while parking, in low speed operation or going downhill.
Rib spacers 18 are provided in the solenoid casing allowing air around the coil.
The air intake is provided with filter media 9 and screen 17 and the coil is held in place by a spring clip.
The air intake assembly is removeable for cleaning while the complete intake and solenoid assembly is removeable at flange 5 for servicing.
Solenoid 4 is held in place by clamp 6 and is also removeable for servicing or replacement.
FIG. 4 is an enlarged view of the flange assembly 7 showing the butter-fly valve 3, insert 11 and air passages 20 and illustrates how this flange assembly fits between the carburetor flange 19 and intake manifold flange 16.
Solenoids 2 and 4 are protected from current overload by fuses 21.
Minor modifications can be made to the invention by eliminating solenoid 2 and operating two butterfly valves from solenoid 4 by a linkage arrangement. The air intake arrangement shown can also be deleted with the air taken from the air intake normally provided on the engine. However, the principle of operation remains the same furthermore, this device may be modified to fit any carburetor and intake manifold flanges.