Claims
- 1. A unit fuel injector for an internal combustion engine having an injector body with injection orifices at a lower end thereof, an upper plunger, a timing plunger and a lower plunger which are mounted for reciprocation within the injector body; wherein the injector is divided into two subassemblies, an upper control subassembly and a lower nozzle subassembly; wherein the upper control subassembly comprises an upper portion of the injector body, and the upper and timing plungers; and wherein a plurality of different nozzle subassemblies are provided which are interchangeably mountable to a lower end of the control subassembly; wherein at least one of said nozzle subassemblies is an open nozzle type nozzle subassembly that comprises a lower portion of the injector body which has said injection orifices and a bore extending therethrough to the injection orifices, and a said lower plunger mounted in said bore; and wherein at least one of said nozzle subassemblies is a closed nozzle type nozzle subassembly that comprises a lower portion of the injector body which has said injection orifices and a metering and injection chamber therein, a said lower plunger mounted for reciprocation in the injection chamber, and a pressure responsive valve for controlling fuel flow from the metering and injection chamber to the injection orifices.
- 2. A unit fuel injector according to claim 1, wherein all of the nozzle subassemblies have the same external size and configuration so that the fuel injector has the same external size and configuration irrespective of which nozzle subassembly is attached to the control subassembly, whereby the fuel injector can be converted from one including one type of nozzle subassembly to another without affecting installation of the fuel injector in an engine.
- 3. A unit fuel injector according to claim 1, wherein all of the nozzle subassemblies are configured such that they utilize the same metering control principles, whereby the fuel injector can be converted from one including one type of nozzle subassembly to another without requiring modification of the control subassembly.
- 4. A unit fuel injector according to claim 3, wherein said control subassembly further comprises a pressure actuated valve means for commencing and blocking a flow of timing fluid from a variable volume timing fluid chamber, defined between the upper plunger and the timing plunger, through passage means in the timing plunger and at least one flow passage formed in the upper portion of the injector body in dependence upon whether the pressure of said timing fluid is at least a predetermined value; wherein said pressure actuated valve means includes a valve body having a circumferential wall with at least one surface area in which at least one outlet port is formed, and a band-shaped resilient valve spring member mounted over the circumferential wall of the valve body; wherein said spring member seals said at least one port in a closed condition thereof; and wherein said spring member is resiliently movable into a second, open condition, in which said band-shaped spring member is displaced from said circumferential wall for permitting discharge of fluid from said at least one port, under pressure exerted by fluid in said at least one port.
- 5. A unit fuel injector according to claim 1, wherein said control subassembly further comprises a pressure actuated valve means for commencing and blocking a flow of timing fluid from a variable volume timing fluid chamber, defined between the upper plunger and the timing plunger, through passage means in the timing plunger and at least one flow passage formed in the upper portion of the injector body in dependence upon whether the pressure of said timing fluid is at least a predetermined value; wherein said pressure actuated valve means includes a valve body having a circumferential wall with at least one surface area in which at least one outlet port is formed, and a band-shaped resilient valve spring member mounted over the circumferential wall of the valve body; wherein said spring member seals said at least one port in a closed condition thereof; and wherein said spring member is resiliently movable into a second, open condition, in which said band-shaped spring member is displaced from said circumferential wall for permitting discharge of fluid from said at least one port, under pressure exerted by fluid in said at least one port.
- 6. A unit fuel injector according to claim 5, wherein the open nozzle type nozzle subassembly further comprises cushioning means for limiting return travel of the lower plunger, at an end of each injection cycle, to less than that of said upper plunger in an impact absorbing manner.
- 7. A unit fuel injector according to claim 5, wherein a drain passage is formed in the lower portion of the injector body of the closed nozzle type nozzle subassembly for providing a drainage path from said metering and injection chamber; wherein a pressure-responsive valve means is provided for closing said drain passage when the pressure of fuel in the metering and injection chamber is below a predetermined value; and wherein the pressure-responsive valve means comprises an annular spring keeper disposed about an upper portion of the lower plunger in overlying relationship to an outlet end of the drain passage formed in an inner surface of the lower portion of the injector body, and a spring acting between said spring keeper and a shoulder formed on an inner surface of the upper portion of the injector body of the control subassembly.
- 8. A unit fuel injector according to claim 1, wherein the open nozzle subassembly type nozzle further comprises cushioning means for limiting return travel of the lower plunger, at an end of each injection cycle, to less than that of said upper plunger in an impact absorbing manner.
- 9. A unit fuel injector according to claim 1, wherein a drain passage is formed in the lower portion of the injector body of the closed nozzle type nozzle subassembly for providing a drainage path from said metering and injection chamber; wherein a pressure-responsive valve means is provided for closing said drain passage when the pressure of fuel in the metering and injection chamber is below a predetermined value; and wherein the pressure-responsive valve means comprises an annular spring keeper disposed about an upper portion of the lower plunger in overlying relationship to an outlet end of the drain passage formed in an inner surface of the lower portion of the injector body, and a spring acting between said spring keeper and a shoulder formed on an inner surface of the upper portion of the injector body of the control subassembly.
- 10. A fuel injector for an internal combustion engine having an injector body having injection orifices at a lower end thereof, an upper plunger and a lower plunger which are mounted for reciprocation within the injector body; wherein the injector is divided into two subassemblies, an upper control subassembly and a lower nozzle subassembly; wherein the upper control subassembly comprises an upper portion of the injector body and the upper plunger; and wherein a plurality of different types of nozzle subassemblies are provided which are interchangeably mountable to a lower end of the upper subassembly; and wherein each of said nozzle subassemblies comprises a lower portion of the injector body which has said injection orifices and a metering and injection chamber into which fuel to be injected is metered, and a said lower plunger for injecting fuel metered into said chamber through the injection orifices.
- 11. A unit fuel injector according to claim 10, wherein all of the nozzle subassemblies have the same external size and configuration so that the fuel injector has the same external size and configuration irrespective of which nozzle assembly is attached to the control subassembly, whereby the fuel injector can be converted from one type of nozzle subassembly to another without affecting installation of the fuel injector in an engine.
- 12. A unit fuel injector according to claim 10, wherein all of the nozzle subassemblies are configures such that they utilize the same metering control principles, whereby the fuel injector can be converted from one including one type of nozzle subassembly to another without requiring modification of the control subassembly.
- 13. A unit fuel injector according to claim 12, wherein said control subassembly further comprises a timing plunger located between said upper and lower plungers, a pressure actuated valve means for commencing and blocking a flow of timing fluid from a variable volume timing fluid chamber, defined between the upper plunger and the timing plunger, through passage means in the timing plunger and at least one flow passage formed in the upper portion of the injector body in dependence upon whether the pressure of said timing fluid is at least a predetermined value; wherein said pressure actuated valve means includes a valve body having a circumferential wall with at least one surface area in which at least one outlet port is formed, and a band shaped resilient valve spring member mounted over the circumferential wall of the valve body; wherein said spring member seals said at least one port in a closed condition thereof; and wherein said spring member is resiliently movable into a second, open condition, in which said band-shaped spring member is displaced from said circumferential wall for permitting discharge of fluid from said at least one port, under pressure exerted by fluid in said at least one port.
- 14. A unit fuel injector according to claim 13, wherein the different types of nozzle subassemblies include an open nozzle type nozzle subassembly, and the open nozzle type nozzle subassembly further comprises cushioning means for limiting return travel of the lower plunger, at an end of each injection cycle, to less than that of said upper plunger in an impact absorbing manner.
- 15. A unit fuel injector according to claim 13, wherein the different types of nozzle subassemblies include a closed nozzle type nozzle subassembly, and a drain passage is formed in the lower portion of the injector body of the closed nozzle type nozzle subassembly for providing a drainage path from said metering and injection chamber; wherein a pressure-responsive valve means is provided for closing said drain passage when the pressure of fuel in the metering and injection chamber is below a predetermined value; and wherein the pressure-responsive valve means comprises an annular spring keeper disposed about an upper portion of the lower plunger in overlying relationship to an outlet end of the drain passage formed in an inner surface of the lower portion of the injector body, and a spring acting between said spring keeper and a shoulder formed on an inner surface of the upper portion of the injector body of the control subassembly.
- 16. A unit fuel injector according to claim 10, wherein said control subassembly further comprises a timing plunger located between said upper and lower plungers, a pressure actuated valve means for commencing and blocking a flow of timing fluid from a variable volume timing fluid chamber, defined between the upper plunger and the timing plunger, through passage means in the timing plunger and at least one flow passage formed in the upper portion of the injector body in dependence upon whether the pressure of said timing fluid is at least a predetermined value; wherein said pressure actuated valve means includes a valve body having a circumferential wall with at least one surface area in which at least one outlet port is formed, and a band-shaped resilient valve spring member mounted over the circumferential wall of the valve body; wherein said spring member seals said at least one port in a closed condition thereof; and wherein said spring member is resiliently movable into a second, open condition, in which said band-shaped spring member is displaced from said circumferential wall for permitting discharge of fluid from said at least one port, under pressure exerted by fluid in said at least one port.
- 17. A unit fuel injector according to claim 10, wherein the different types of nozzle subassemblies include an open nozzle type nozzle subassembly, and the open nozzle type nozzle subassembly further comprises cushioning means for limiting return travel of the lower plunger, at an end of each injection cycle, to less than that of said upper plunger in an impact absorbing manner.
- 18. A unit fuel injector according to claim 10, wherein the different types of nozzle subassemblies include a closed nozzle type nozzle subassembly, and a drain passage is formed in the lower portion of the injector body of the closed nozzle type nozzle subassembly for providing a drainage path from said metering and injection chamber; wherein a pressure-responsive valve means is provided for closing said drain passage when the pressure of fuel in the metering and injection chamber is below a predetermined value; and wherein the pressure-responsive valve means comprises an annular spring keeper disposed about an upper portion of the lower plunger in overlying relationship to an outlet end of the drain passage formed in an inner surface of the lower portion of the injector body, and a spring acting between said spring keeper and a shoulder formed on an inner surface of the upper portion of the injector body of the control subassembly.
- 19. A unit fuel injector according to claim 10, wherein said control subassembly further comprises a timing plunger located between said upper and lower plungers, a pressure actuated valve means for commencing and blocking a flow of timing fluid from a variable volume timing fluid chamber, defined between the upper plunger and the timing plunger, through passage means in the timing plunger and at least one flow passage formed in the upper portion of the injector body in dependence upon whether the pressure of said timing fluid is at least a predetermined value; wherein said pressure actuated valve means is located within said upper plunger and includes a valve element, spring means for biasing the valve element against a valve seat formed in said upper plunger, stop means carried by said spring means for limiting a valve opening movement of said valve element; and wherein said spring means has a spring rate which coacts with a moving mass of said valve element and spring means to form a performance means for achieving a natural frequency of the valve element that is high enough to prevent chattering of the valve element and a valve droop value which insures sufficient injection pressures under low speed engine operating conditions while avoiding excessive injection pressures under high speed engine operating conditions.
CROSS REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part of commonly owned, copending U.S. patent application Ser. No. 07/729,500, filed Jul. 12, 1991 by two of the present inventors, now U.S. Pat. No. 5,209,403.
US Referenced Citations (12)
Continuation in Parts (1)
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Number |
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729500 |
Jul 1991 |
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