Claims
- 1. A dual fuel injection valve for independently and separately injecting two different fuels into a combustion chamber, said injection valve comprising:
(a) a hollow injection valve body comprising:
a hydraulic fluid inlet port through which pressurized hydraulic fluid can be introduced into fluid passages and a control chamber disposed within the interior of said valve body; a hydraulic fluid drain port through which hydraulic fluid can be drained from said control chamber; at least one control valve that is operable to selectively direct the flow of said hydraulic fluid and control hydraulic fluid pressure within said control chamber to influence movement of at least one of an outer needle and an inner needle between respective open and closed positions; a first-fuel inlet port through which a first fuel can be introduced at injection pressure into said valve body; a first-fuel passage provided within said valve body and extending between said first-fuel inlet port and a first-fuel cavity associated with said outer needle; a second-fuel inlet port through which a second fuel can be introduced into said valve body; a second-fuel passage connecting said second-fuel inlet port to a second-fuel cavity associated with said inner needle; and (c) a dual needle assembly comprising:
said outer needle, which is hollow and disposed within said injection valve body, wherein said outer needle is movable between a closed position in which a first sealing surface associated with said outer needle contacts a first seat associated with said body and an open position in which said first sealing surface is spaced apart from said first seat, allowing said first fuel to flow from within said first-fuel cavity into said combustion chamber through at least one first-fuel ejection port; and said inner needle, which is disposed within said hollow outer needle, wherein said inner needle is movable between a closed position in which a second sealing surface associated with said inner needle contacts a second seat associated with said outer needle and an open position in which said second sealing surface is spaced apart from said second seat, allowing said second fuel to flow from within said second-fuel cavity into said combustion chamber through at least one second-fuel ejection port.
- 2. The injection valve of claim 1 wherein said first fuel is a main fuel and said second fuel is a pilot fuel that is more auto-ignitable than said main fuel.
- 3. The injection valve of claim 1 wherein said hollow outer needle serves as an inner valve body and said second-fuel cavity is an annular cavity disposed between said inner needle and said outer needle.
- 4. The injection valve of claim 1 wherein said control chamber is employed to influence the position of said outer needle and an inlet fluid passage connects said control chamber to said hydraulic fluid inlet port, a drain fluid passage connects said control chamber to said drain port, and said control valve is operable to selectively control the flow of hydraulic fluid between said control chamber and said drain port or said hydraulic fluid inlet port to modulate pressure within said control chamber between drain pressure, when pressure within said control chamber is associated with pressure at said drain port, and rail pressure, when pressure within said control chamber is associated with pressure at said hydraulic fluid inlet port.
- 5. The injection valve of claim 4 wherein a portion of said dual needle assembly is dynamically disposed within said control chamber and the volume of said control chamber is variable in response to movement of said dual needle assembly.
- 6. The injection valve of claim 5 wherein pressure within said control chamber is held at rail pressure to generate a hydraulic force that contributes to maintaining said outer needle in said closed position.
- 7. The injection valve of claim 6 wherein a spring provides an additional closing force that cooperates with said hydraulic force to maintain said outer needle in said closed position.
- 8. The injection valve of claim 6 wherein fuel pressure within said first-fuel cavity generates an opening force acting on said outer needle whereby said outer needle is movable to said open position under the influence of said opening force when pressure within said control chamber is reduced to said drain pressure.
- 9. The injection valve of claim 5 wherein said outer needle is biased in said closed position when pressure within said control chamber is at drain pressure and said outer needle is movable to said open position when hydraulic fluid pressure within said control chamber is at rail pressure.
- 10. The injection valve of claim 9 wherein a spring biases said outer needle in said closed position.
- 11. The injection valve of claim 9 wherein said outer needle comprises a shoulder disposed within said first control chamber and when pressure within said first control chamber is raised to rail pressure said hydraulic force is applied to said shoulder.
- 12. The injection valve of claim 4 wherein said body further comprises a second control chamber employed to influence the position of said inner needle and a second control valve is operable to selectively control pressure of hydraulic fluid within said second control chamber to generate a hydraulic force that contributes to positioning said inner needle in one of said closed or open positions.
- 13. The injection valve of claim 12 wherein said inner needle comprises a shoulder which is dynamically disposed within said second-fuel cavity and said shoulder provides an area for receiving an opening force generated by fuel pressure within said second-fuel cavity.
- 14. The injection valve of claim 13 further comprising an inner spring disposed within said dual needle assembly that biases said inner needle in said closed position.
- 15. The injection valve of claim 14 wherein said hydraulic force generated within said second control chamber provides a force that acts on a movable intensifier piston which is operable to pressurize said second fuel, whereby said second fuel can be pressurized to an intensified pressure to generate an opening force acting on said inner needle that compresses said inner spring to move said inner needle to said open position.
- 16. The injection valve of claim 12 wherein hydraulic fluid pressure within said second control chamber generates a hydraulic force that acts directly upon said dual needle assembly to influence positioning of said inner needle in one of said closed or open positions.
- 17. The injection valve of claim 16 wherein rail pressure within said second control chamber is employed to generate a hydraulic force that contributes to maintaining said inner needle in said closed position.
- 18. The injection valve of claim 17 wherein said second control chamber is disposed within said dual needle assembly and a member associated with said inner needle is dynamically disposed within said second control chamber such that the volume of said second control chamber is variable in response to movement of said member which causes a corresponding movement of said inner needle.
- 19. The injection valve of claim 17 wherein an inner spring provides an additional closing force that cooperates with said hydraulic force to maintain said inner needle in said closed position.
- 20. The injection valve of claim 16 wherein said inner needle is movable to said open position under the influence of an opening force generated by hydraulic fluid at rail pressure within said second control chamber.
- 21. The injection valve of claim 20 wherein said inner needle is biased in said closed position by an inner spring and said second control chamber is said second-fuel cavity whereby said inner needle is movable to said open position when pressure within said second-fuel cavity is at rail pressure.
- 22. The injection valve of claim 12 wherein said dual needle assembly further comprises a cap dynamically disposed within said control chamber between said outer needle and said valve body such that when said control chamber associated with said outer needle is filled with hydraulic fluid at rail pressure, said hydraulic force urges said cap towards said outer needle and a closing force is transmitted through said cap to said outer needle.
- 23. The injection valve of claim 22 wherein said outer needle is movable to said open position under the influence of fuel pressure within said first-fuel cavity acting on said outer needle when pressure within said control chamber is reduced to close to drain pressure.
- 24. The injection valve of claim 23 further comprising an inner spring disposed within said hollow outer needle between said cap and said inner needle for biasing said inner needle in said closed position.
- 25. The injection valve of claim 23 wherein said cap comprises an open-ended bore facing said inner needle, said assembly further comprising an inner spring disposed within said bore between said cap and said inner needle and said inner spring biases said inner needle in said closed position.
- 26. The injection valve of claim 25 wherein said cap is detached from said outer needle such that said inner spring can expand to contribute to holding said outer needle in said closed position by spacing said cap from said outer needle.
- 27. The injection valve of claim 25 wherein said cap is joinable in fixed relationship to said outer needle.
- 28. The injection valve of claim 27 wherein said cap is releasably joined to said outer needle by a threaded connection or by interlocking features.
- 29. The injection valve of claim 12 wherein said dual needle assembly further comprises an inner valve body comprising:
said outer needle; a hollow inner valve housing joined to said outer needle; and a cap joined to said hollow inner valve housing.
- 30. The injection valve of claim 29 wherein said inner needle is disposed within said outer needle and said second-fuel cavity is an annular space between said inner needle and said outer needle, and disposed within said hollow inner valve housing is at least one of an inner spring and said second control chamber for biasing said inner needle in said closed position.
- 31. The injection valve of claim 30 wherein said cap is dynamically disposed within said control chamber associated with said outer needle.
- 32. The injection valve of claim 31 further comprising an outer spring disposed between said cap and said valve body whereby said outer spring contributes to biasing said outer needle in said closed position.
- 33. The injection valve of claim 12 wherein said dual needle assembly further comprises:
a cap dynamically disposed within said control chamber associated with said outer needle whereby a closing force can be transmitted through said cap to said outer needle; and an inner spring disposed between said cap and a member associated with said inner needle; wherein said inner spring contributes to biasing said inner needle in said closed position by imparting a closing force through said member to said inner needle, and said inner spring can also contribute to biasing said outer needle in said closed position by expanding to space said cap from said outer needle.
- 34. The injection valve of claim 12 wherein said outer needle further comprises a shoulder disposed within said control chamber associated with said outer needle, whereby said outer needle is movable to said open position when said control chamber is filled with hydraulic fluid at rail pressure.
- 35. The injection valve of claim 34 further comprising a spring disposed between said dual needle assembly and said injection valve body for biasing said outer needle in said closed position.
- 36. A dual needle assembly for a dual fuel injection valve for independently and separately injecting two different fuels into a combustion chamber, said dual needle assembly comprising:
a hollow outer needle that can be dynamically disposed within a hollow injection valve body, wherein said outer needle is movable within said injection valve body between a closed position when a first sealing surface associated with said outer needle is urged against a first seat associated with said injection valve body, and an open position when said first sealing surface is spaced apart from said first seat; an inner valve body comprising: said outer needle; and a cap joined to said outer needle; an inner needle dynamically disposed within said outer needle, wherein said inner needle is movable within said outer needle between a closed position when a second sealing surface associated with said inner needle is urged against a second seat associated with said outer needle, and an open position when said second sealing surface is spaced apart from said second seat; an inner spring disposed within said inner valve body between said cap and said inner needle which contributes to biasing said inner needle in said closed position; and at least one fuel ejection port provided in said outer needle that allows fuel to be ejected from an inner fuel cavity within said inner valve body when said inner needle is in said open position.
- 37. The dual needle assembly of claim 36 wherein said inner fuel cavity is an annular volume disposed between said inner needle and said outer needle wherein said inner needle has an outer diameter less than the inside diameter of said hollow outer needle.
- 38. The dual needle assembly of claim 36 wherein said inner valve body further comprises a hollow inner valve housing disposed between and joined to said outer needle and said cap, wherein said inner valve housing comprises a bore for housing said inner spring and the space defined by said bore is sealed from said inner fuel cavity by a match fit between said inner needle and said outer needle.
- 39. The dual needle assembly of claim 38 wherein the space defined by said bore of said inner valve housing is pressurizable with hydraulic fluid supplied from fluid passages within said injection valve body.
- 40. The dual needle assembly of claim 36 wherein pieces of said inner valve body are releasably joined together by interlocking features.
- 41. The dual needle assembly of claim 40 wherein said interlocking features are threaded joints.
- 42. The dual needle assembly of claim 36 wherein pieces of said inner valve body are permanently joined together.
- 43. The dual needle assembly of claim 42 wherein said permanently joined pieces are welded together.
- 44. The dual needle assembly of claim 42 wherein other pieces of said inner valve body are releasably joined together.
- 45. A dual needle assembly for a dual fuel injection valve for independently and separately injecting two different fuels into a combustion chamber, said dual needle assembly comprising:
a hollow outer needle comprising an open end and an opposite sealing end, which comprises a first sealing surface, and said outer needle can be dynamically disposed within a hollow injection valve body, wherein said outer needle is movable within said injection valve body between a closed position when said first sealing surface is urged against a first seat associated with said injection valve body, and an open position when said first sealing surface is spaced apart from said first seat; a cap associated with and detached from said open end of said outer needle, wherein said cap can be dynamically disposed within a control chamber of said injection valve body such that hydraulic fluid pressure within said control chamber can apply a force that is transmitted through said cap to said outer needle to influence the position of said cap and outer needle; an inner needle dynamically disposed within said outer needle, said inner needle comprising a supported end opposite to a sealing end, which comprises a second sealing surface, wherein said inner needle is movable within said outer needle between a closed position when said second sealing surface is urged against a second seat associated with said outer needle, and an open position when said second sealing surface is spaced apart from said second seat; an inner spring disposed within said inner valve body between said cap and said inner needle, whereby said inner spring contributes to biasing said inner needle in said closed position, and said inner spring can also contribute to biasing said outer needle in said closed position by expanding to space said cap away from said outer needle; and at least one fuel ejection port that allows fuel to be ejected from an inner fuel cavity within said hollow outer needle when said inner needle is in said open position.
- 46. The dual needle assembly of claim 45 wherein said supported end of said inner needle has an outside diameter which is match fit with an inside diameter of a bore provided in said outer needle.
- 47. The dual needle assembly of claim 46 further comprising a member that supports one end of said inner spring and which transmits closing forces from said inner spring to said inner needle and to said outer needle.
- 48. The dual needle assembly of claim 47 wherein said spring is a coil spring and said member comprises a flange for receiving one end of said coil spring and a stem which extends through said coil spring, whereby said stem cooperates with said cap to limit travel of said inner needle.
- 49. A method of operating a dual fuel injection valve for independently and separately injecting two different fuels into a combustion chamber of an internal combustion engine, said method comprising:
(a) supplying a first fuel at injection pressure to a first-fuel cavity within said injection valve; (b) selectively applying a first closing force to a first needle to prevent said first fuel from being injected into said combustion chamber by holding said first needle in a closed position against a first seat; (c) selectively injecting said first fuel into said combustion chamber from said first-fuel cavity by at least one of applying to said first needle a first opening force greater than said first closing force and reducing said first closing force such that said first needle is spaced apart from said first seat; (d) supplying a second fuel at less than injection pressure to a second-fuel cavity within said injection valve; (e) selectively applying a second closing force to a second needle to prevent said second fuel from being injected into said combustion chamber by holding said second needle in a closed position against a second seat; (f) selectively operating an intensifier located within said injection valve to intensify the pressure of said second fuel within said second-fuel cavity to generate a second opening force acting on said second needle that is greater than said second closing force, such that said second needle is spaced apart from said second seat and said second fuel is injected into said combustion chamber from said second-fuel cavity.
- 50. The method of claim 49 further comprising metering said second fuel by controlling the stroke of said intensifier.
- 51. The method of claim 49 wherein the pressure of said first fuel within said first-fuel cavity contributes to said first opening force by applying an opening force to a shoulder of said first needle.
- 52. The method of claim 51 wherein said first closing force is generated by directing a pressurized hydraulic fluid to a control chamber within said injection valve and said first fuel is injected when pressure within said control chamber is reduced by draining hydraulic fluid from said control chamber.
- 53. The method of claim 52 further comprising selectively operating an electronically controlled valve to control the flow of said hydraulic fluid to and from said control chamber.
- 54. The method of claim 51 wherein said first closing force is generated by a compressed spring and said first fuel is injected into said combustion chamber by directing a pressurized hydraulic fluid to a control chamber within which a shoulder of said first needle is dynamically disposed, and said hydraulic fluid pressure acting on said shoulder contributes to said first opening force such that said first opening force is greater than said first closing force.
- 55. The method of claim 54 further comprising selectively operating an electronically controlled valve to control the flow of said hydraulic fluid to and from said control chamber.
- 56. The method of claim 49 wherein said intensifier is hydraulically actuated by selectively supplying or draining a pressurized hydraulic fluid from a piston chamber within which an intensifier piston is dynamically disposed.
- 57. The method of claim 56 further comprising selectively operating an electronically controlled valve to control the flow of said hydraulic fluid to and from said piston chamber.
- 58. The method of claim 49 wherein a compressed spring contributes to said second closing force.
- 59. The method of claim 58 further comprising utilizing hydraulic fluid pressure in a second control chamber to contribute to said second closing force applied to said second needle.
- 60. A method of operating a dual fuel injection valve for independently and separately injecting two different fuels into a combustion chamber of an internal combustion engine, said method comprising:
(a) supplying a first fuel at injection pressure to a first-fuel cavity within said injection valve; (b) selectively applying a first closing force to a first needle to prevent said first fuel from being injected into said combustion chamber by holding said first needle in a closed position against a first seat; (c) selectively injecting said first fuel into said combustion chamber from said first-fuel cavity by at least one of applying a first opening force to said first needle that is greater than said first closing force and reducing said first closing force such that said first needle is spaced apart from said first seat; (d) supplying a second fuel at injection pressure to a second-fuel cavity within said injection valve; (e) selectively applying a second closing force to a second needle to prevent said second fuel from being injected into said combustion chamber by holding said second needle in a closed position against a second seat; (f) selectively injecting said second fuel into said combustion chamber from said second-fuel cavity by at least one of applying a second opening force to said second needle that is greater than said second closing force and reducing said second closing force such that said second needle is spaced apart from said second seat.
- 61. The method of claim 60 wherein the pressure of said first fuel within said first-fuel cavity contributes to said first opening force by applying an opening force to a shoulder of said first needle.
- 62. The method of claim 61 wherein said first closing force is generated by directing a pressurized hydraulic fluid to a control chamber within said injection valve and said first fuel is injected when pressure within said control chamber is reduced by draining hydraulic fluid from said control chamber.
- 63. The method of claim 62 further comprising selectively operating an electronically controlled valve to control the flow of said hydraulic fluid to and from said control chamber.
- 64. The method of claim 61 wherein said first closing force is generated by a compressed spring and said first fuel is injected into said combustion chamber by directing a pressurized hydraulic fluid to a control chamber within which a shoulder of said first needle is dynamically disposed, and said hydraulic fluid pressure acting on said shoulder contributes to said first opening force such that said first opening force becomes greater than said first closing force.
- 65. The method of claim 64 further comprising selectively operating an electronically controlled valve to control the flow of said hydraulic fluid to and from said control chamber.
- 66. The method of claim 60 wherein a compressed spring contributes to said second closing force.
- 67. The method of claim 66 wherein the pressure of said second fuel within said second-fuel cavity contributes to said second opening force by applying an opening force to a shoulder of said second needle.
- 68. The method of claim 67 wherein said second closing force is generated by directing a pressurized hydraulic fluid to a second control chamber within said injection valve and said second fuel is injected when pressure within said second control chamber is reduced by draining hydraulic fluid from said second control chamber.
- 69. The method of claim 68 further comprising selectively operating an electronically controlled valve to control the flow of said hydraulic fluid to and from said second control chamber.
- 70. The method of claim 67 wherein said opening force generated by said second fuel within said second-fuel cavity is greater than said closing force when said second fuel is within said second-fuel cavity at injection pressure, and injection is stopped by reducing the pressure of said second fuel by connecting said second-fuel with a drain port.
CROSS-REFERENCE TO RELATED APPLICATION(S)
[0001] This application is a continuation-in-part of U.S. patent application Ser. No. 09/552,480 filed Apr. 18, 2000, entitled “Gaseous and Liquid Fuel Injection Valve with a Two-Way Hydraulic Fluid Control Valve”, which is a continuation-in-part of U.S. patent application Ser. No. 09/154,103 filed Sep. 16, 1998, entitled “Gaseous and Liquid Fuel Injection Valve”, now U.S. Pat. No. 6,073,862 issued Jun. 13, 2000. The '103 and the '480 applications are incorporated herein by reference in their entirety.
Continuation in Parts (2)
|
Number |
Date |
Country |
Parent |
09552480 |
Apr 2000 |
US |
Child |
09989623 |
Nov 2001 |
US |
Parent |
09154103 |
Sep 1998 |
US |
Child |
09552480 |
Apr 2000 |
US |