Claims
- 1. A fuel supply system for injection carburetors, comprising:
- a first channel including an invariable-sized (26) and constant flow rate control means, said first channel being provided for returning the fuel having passed through said invariable-sized orifice from among the fuel of a predetermined constant flow rate fed from a fuel supply source through said constant flow rate control means, to said fuel supply source;
- a second channel branching off from said first channel between said constant flow rate control means and said invariable-sized orifice and capable of injecting the fuel fed through said constant flow rate control means into a suction tube;
- an air flow rate detecting means arranged in association with said suction tube and capable of detecting the amount of air sucked into said suction tube as a pressure difference; and
- a fuel ejection control means including said invariable-sized orifice and said second channel, to said air flow a rate detecting means for metering a flow rate of fuel to be ejected so that the pressure difference detected by said air flow rate detecting means is balanced with a fuel pressure difference between the upstream side and the downstream side of said invariable-sized orifice to maintain consistently an air-fuel ratio of a gas mixture to be produced in said suction tube at a constant value.
- 2. A fuel supply system for injection carburetors, comprising:
- a first channel including an invariable-sized orifice (26) and constant flow rate control means, said first channel being provided for returning the fuel having passed through said invariable-sized orifice from among the fuel of a predetermined constant flow rate fed from a fuel supply source through said constant flow rate control means, to said fuel supply source;
- a second channel branching of from said first channel between said constant flow rate control means and said invariable-sized orifice and capable of injecting the fuel fed through said constant flow rate control means into a suction tube;
- an air flow rate detecting means arranged in associated with said suction tube and capable of detecting the amount of air sucked into said suction tube as a pressure difference; and
- a fuel ejection control means including said invariable-sized orifice and said second channel, connected to said air flow rate detecting means for metering a flow rate of fuel to be ejected so that the pressure difference detected by said air flow rate detecting means is balanced with a fuel pressure difference between the upstream side and the downstream side of said invariable-sized orifice to maintain consistently an air-fuel ratio of ages mixture to be produced in said suction tube at a constant value, and
- wherein said constant flow rate control means comprises a diaphragm dividing a fuel inlet chamber from a fuel outlet chamber, a valve connected with said diaphragm and capable of opening and closing an inlet pot of said fuel inlet chamber, a second orifice communication said fuel inlet chamber with said fuel outlet chamber, and a spring pressing said diaphragm in a direction in which said valve is opened.
- 3. A fuel supply system for injection carburetors, comprising:
- a first channel including an invariable-sized orifice (26) and constant flow rate control means, said first channel being provided for returning the fuel having passed through a said invariable-sized orifice from among the fuel of a predetermined constant flow rate fed from a fuel supply source through said constant flow rate control means, to said fuel supply souerce;
- a second channel branching off from said first channel between said constant flow rate control means and said invariable-sized orifice and capable of injecting the fuel fed through said constant flow rate control means into a suction tube;
- an air flow rate detecting means arranged in associated with said suction tube and capable of detecting the amount of air sucked into said suction tube as a pressure difference; and
- a fuel injection control means including said invariable-sized orifice and said second channel, connected to said air flow rate detecting means for metering a flow rate of fuel to be ejected so that the pressure difference detected by said air flow rate detecting means is balanced with a fuel pressure difference between the upstream side and the downstream side of said invariable-sized orifice to maintain consistently an air-fuel ratio of a gas mixture to be produced in said suction tube at a constant value, and
- wherein said fuel ejection control means comprises a first diaphragm dividing a fuel ejection chamber having a fuel inlet port and a fuel ejection port from a fuel outlet chamber having a fuel outlet port, a second negative pressure diaphragm dividing a depression chamber from an atmosphere chamber, a connecting member connected between said first diaphragm and said second diaphragm and having a fuel ejection valve associated with said fuel ejection port to determine the flow rate of the fuel to be injected into said suction tube in accordance with the pressure difference with atmospheric pressure which is detected by said air flow rate detecting means, nd a spring pressing said fuel ejection valve in a direction in which said fuel ejection valve is closed.
- 4. A fuel supply system according to claim 1, wherein said constant flow rate control means comprises a diaphragm dividing a fuel inlet chamber from a fuel outlet chamber, a valve connected with said diaphragm and capable of opening and closing an inlet port of said fuel inlet chamber, a second orifice communicating said fuel inlet chamber with said fuel outlet chamber and a spring pressing said diaphragm in a direction in which said valve is opened.
- 5. A fuel supply system according t claim 1, wherein said air floor rate detecting mean comprises a piston valve advancing into or retracting from said suction tube in accordance with the amount of air sucked into said suction tube, a spring pressing said piston valve in a direction in which said piston valve advances into said suction tube, a negative pressure passage opened in an internal wall of said suction tube which is directed to an end face of said piston valve, and an air passage opened in an air horn.
- 6. A fuel supply system according to claim 1, wherein said fuel ejection control means comprises a first diaphragm dividing a fuel ejection chamber having a fuel outlet port and a fuel ejection port form a depression chamber, a second diaphragm dividing a fuel outlet chamber having a fuel outlet port from an atmosphere chamber, a connecting member connected between said first diaphragm and said second diaphragm, having a fuel ejection valve capable of opening and closing said fuel ejection port, and a spring pressing said fuel ejection valve in a direction in which said fuel ejection valve is closed, and said fuel ejection valve is associated with said fuel ejection port so that fuel of the flow rate according to the pressure difference with atmospheric pressure which is detected by said air flow rate detecting means is ejected from said fuel ejection port.
- 7. A fuel supply system according to claim 1, wherein said fuel ejection control means comprises a first diaphragm dividing a fuel inlet chamber having a fuel inlet port from a depression chamber a second diaphragm dividing a fuel outlet chamber having a fuel outlet port from an atmosphere chamber a connecting member connected between said first diaphragm and said second diaphragm, having a valve associated with said fuel inlet port to control a return flow rate of the fuel passing through said orifice in accordance with pressure difference with atmospheric pressure which is detected by said air flow ate detecting means, a spring pressing said valve in a direction in which said valve is opened, and an ejection nozzle connected between said valve and said constant flow rate control means, ejecting the fuel into said suction tube.
- 8. A fuel supply system according to claim 1, wherein said fuel ejection control means comprises a first diaphragm dividing a fuel inlet chamber from a depression chamber, a second diaphragm dividing a fuel outlet chamber having a fuel outlet port from an atmosphere chamber, a connecting member connected between said first diaphragm and said second diaphragm, having a valve controlling flow rate of the fuel returned to said fuel supply source in accordance with the pressure difference with atmospheric pressure which is detected by said air flow rate detecting means, a spring pressing said valve in a direction in which said valve is closed, and an ejection nozzle connected to said fuel inlet chamber, ejecting the fuel into said suction tube.
- 9. A fuel supply system according to claim 1, wherein said fuel injection control means comprises a first diaphragm dividing a fuel ejection chamber having a fuel inlet port and a fuel ejection port from a fuel outlet chamber having a fuel outlet port, a second negative pressure diaphragm dividing a depression chamber form an atmosphere chamber, a connecting member connected between said first diaphragm and said second diaphragm and having a fuel ejection valve associated with said fuel ejection port to determine the flow rate of the fuel to be injected into said suction tube in accordance with the pressure difference with atmospheric pressure which is detected by said air flow rate detecting means, and a spring pressing said fuel ejection valve in a direction in which said fuel ejection valve is closed.
- 10. A fuel supply system according to any one of claims 6, 7, 8 or 9, wherein mean for adjusting resilient force of said spring is provided.
- 11. A fuel supply system according to claim 3, wherein means for adjusting resilient force of said spring is provided.
Parent Case Info
This is a divisional of copending application Ser. No. 07/425,015 filed on Oct. 23, 1989, now U.S. Pat. No. 5,031,596.
US Referenced Citations (10)
Divisions (1)
|
Number |
Date |
Country |
Parent |
425015 |
Oct 1989 |
|