Fuel injector adapter
12540594 ยท 2026-02-03
Assignee
Inventors
Cpc classification
F02D41/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M65/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/181
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M55/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2041/225
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M55/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M55/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2200/0602
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/8076
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/858
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/856
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/168
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A fuel injector adapter for an internal combustion engine, including an adapter shaft including a first shaft end disposed within a fuel injector, a second shaft end, a shaft passage disposed in the adapter shaft extending from the first shaft end to a port portion of the adapter shaft, the port portion including annular openings; and an adapter body disposed over the adapter shaft, including a fitting portion including a first end, a second end, and a bore including a fuel portion, an elbow port spaced from the fitting portion, the elbow port including a port fuel portion, and an extension connecting the fitting portion to the elbow port, the extension including a fuel passage for connecting the port fuel portion of the elbow port to the fuel portion of the bore proximate the annular openings of the port portion of the adapter shaft.
Claims
1. A fuel injector adapter for an internal combustion engine, comprising: an adapter shaft including a first shaft end configured to be disposed within a fuel injector, a second shaft end, and a shaft passage disposed in the adapter shaft extending from the first shaft end to a port portion of the adapter shaft, the port portion including annular openings; and an adapter body disposed over the adapter shaft, including a fitting portion including a first end, a second end, and a bore including a fuel portion, an elbow port spaced from the fitting portion, the elbow port including a port fuel portion, and an extension connecting the fitting portion to the elbow port, the extension including a fuel passage connecting the port fuel portion of the elbow port to the fuel portion of the bore proximate the annular openings of the port portion of the adapter shaft.
2. The fuel injector adapter of claim 1, wherein the adapter shaft further comprises: a plurality of annular recesses on an outside surface of the adapter shaft; and a first plurality of seals disposed within the plurality of annular recesses of the adapter shaft.
3. The fuel injector adapter of claim 2, wherein spacing of the first plurality of seals on the adapter shaft separates the bore to further include a monitoring portion when the adapter body is disposed over the adapter shaft, the elbow port including a port monitoring portion, and the extension including a monitoring passage connecting the port monitoring portion to the monitoring portion.
4. The fuel injector adapter of claim 3, further comprising an elbow connecting the fuel injector adapter to a bulkhead of a rocker base, the elbow comprising: an elbow body including a connector end disposed within the elbow port of the fuel injector adapter, and a bulkhead end attached to the bulkhead; an elbow fuel passage within the elbow body extending from the connector end to the bulkhead end and aligning with a bulkhead fuel passage in the bulkhead; an elbow monitoring passage within the elbow body extending from the connector end to the bulkhead end and aligning with a bulkhead monitoring passage in the bulkhead; and a second plurality of seals disposed about the connector end such that the elbow fuel passage and the elbow monitoring passage are fluidly separated at the connector end when the elbow is inserted into the elbow port.
5. The fuel injector adapter of claim 3, wherein the monitoring portion further includes a first monitoring portion proximate the first shaft end of the adapter shaft when it is disposed within the fuel injector, the first plurality of seals including a first pair of O-rings defining a boundary of the first monitoring portion, and a second monitoring portion between the first shaft end and the port portion of the adapter shaft, the first plurality of seals including a second pair of O-rings defining a boundary of the second monitoring portion.
6. The fuel injector adapter of claim 1, further comprising a fastener disposed on the second shaft end configured to lock the adapter body in an abutting position with the fuel injector.
7. A method of assembling an internal combustion engine, comprising: providing a fuel injector disposed in a rocker base on the internal combustion engine; attaching an adapter shaft of a fuel injector adapter to the fuel injector, the adapter shaft including a first shaft end disposed within the fuel injector, a second shaft end, a shaft passage disposed in the adapter shaft extending from the first shaft end to a port portion of the adapter shaft; disposing a fitting portion of an adapter body about the adapter shaft, the adapter body including the fitting portion with a first end and a second end, a bore including a fuel portion, an elbow port including a port fuel portion; and an extension connecting the fitting portion to the elbow port including a fuel passage connecting the port fuel portion of the elbow port to the fuel portion of the bore proximate the port portion of the adapter shaft; connecting an elbow to the adapter body, the elbow including an elbow body with a connector end disposed within the elbow port of the adapter body and a bulkhead end attached to a bulkhead on the rocker base.
8. The method of claim 7, wherein attaching the adapter shaft to the fuel injector further comprises: disposing a first plurality of seals about a plurality of annular recesses of the adapter shaft; inserting the adapter shaft at the first shaft end into the fuel injector; and disposing the fitting portion of the adapter body over the adapter shaft such that the fitting portion covers the first plurality of seals and forms separate portions between the adapter shaft and the bore of the fitting portion including the fuel portion fluidly connected to the port portion of the adapter shaft, and a monitoring portion in the bore, the monitoring portion being fluidly connected to a port monitoring portion in the elbow port through a monitoring passage in the extension connecting the monitoring portion to the port monitoring portion.
9. The method of claim 8, wherein connecting the elbow to the fuel injector adapter further comprises: disposing a second plurality of seals about the connector end of the elbow; and disposing the connector end of the elbow in the elbow port of the fuel injector adapter such that the second plurality of seals separates the connector end of the elbow into an elbow fuel portion and an elbow monitoring portion, the elbow fuel portion connected to the fuel passage, and the elbow monitoring portion connected to the monitoring passage.
10. The method of claim 7, further comprising attaching a fastener at the second shaft end of the adapter shaft abutting with the adapter body.
11. The method of claim 7, further comprising connecting the bulkhead of the rocker base to a fuel line such that fuel may be delivered to the fuel injector via the fuel passage.
12. The method of claim 9, further comprising connecting the bulkhead of the rocker base to a monitoring line including a sensor, the monitoring line connected to the monitoring passage and configured to monitor a leak condition.
13. The method of claim 12, wherein monitoring the leak condition further comprises pumping pressurized fluid into the monitoring passage and detecting atomized fuel with the sensor.
14. An internal combustion engine, comprising: a rocker base; a fuel injector attached to the rocker base; a fuel injector adapter connected to the fuel injector, further comprising: an adapter shaft including a first shaft end disposed within the fuel injector, a second shaft end, a shaft passage disposed in the adapter shaft extending from the first shaft end to a port portion of the adapter shaft, the port portion including annular openings, and an adapter body disposed over the adapter shaft, including a fitting portion including a first end, a second end, and a bore including a fuel portion and a monitoring portion, an elbow port spaced from the fitting portion, the elbow port including a port fuel portion and a port monitoring portion, and an extension connecting the fitting portion to the elbow port, the extension including a fuel passage connecting the port fuel portion of the elbow port to the fuel portion of the bore proximate the annular openings of the port portion of the adapter shaft, and the extension including a monitoring passage connecting the port monitoring portion of the elbow port to the monitoring portion of the bore, and an elbow connecting the fuel injector to the rocker base.
15. The internal combustion engine of claim 14, the elbow further comprising: an elbow body including a connector end disposed within the elbow port of the fuel injector adapter, and a bulkhead end attached to a bulkhead of the rocker base; an elbow fuel passage within the elbow body extending from an elbow fuel portion at the connector end aligned with the port fuel portion of the adapter body to an elbow fuel inlet portion at the bulkhead end aligned with a bulkhead fuel passage in the bulkhead; and an elbow monitoring passage within the elbow body extending an elbow monitoring portion at the connector end aligned with the port monitoring portion of the adapter body to an elbow inlet monitoring portion at the bulkhead end aligned with a bulkhead monitoring passage in the bulkhead.
16. The internal combustion engine of claim 15, further comprising a fuel line connected to the bulkhead fuel passage at an outside surface of the rocker base.
17. The internal combustion engine of claim 15, further comprising a leak monitor connected to the bulkhead monitoring passage at an outside surface of the rocker base.
18. The internal combustion engine of claim 17, wherein the leak monitor includes a sensor, the leak monitor providing pressurized air to the monitoring passage and detecting atomized fuel with the sensor.
19. The internal combustion engine of claim 17, wherein the leak monitor includes a pressure sensor, the leak monitor providing gaseous nitrogen into the monitoring passage and detecting an increase in pressure.
20. The internal combustion engine of claim 17, wherein the leak monitor includes a collection device connected to the monitoring passage for collecting an excess of leaking fuel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(12) Referring now to the drawings, and with specific reference to
(13) Internal combustion engines may be used to convert combustion energy into rotational mechanical energy. The engine 10 may comprise a head 11 assembled onto a block (not depicted) housing a cylinder with a piston connected to a rotating crankshaft. The head 11 may be attached to the block by head bolts 13 placed through attachment holes 12. The engine 10 may provide a combustible fuel to the cylinder such that when ignited, the energy produced forces the piston in a downward direction, thereby causing a rotation in the crankshaft. The combustible fuel may be conventional diesel fuel, petrol, or may be a low-flashpoint fuel such as liquefied natural gas (LNG), methanol, ethanol, or any fuel as known. Various internal combustion engines may have configurations utilizing any number of cylinders and pistons contained within the block. As such, engine 10 may include a single cylinder, or may include a plurality of cylinders.
(14) Internal combustion engines utilize combustion of a mixture of fuel and air. In order for air to enter and exit the cylinder of the internal combustion engine, the engine 10 may include a camshaft (not depicted) coupled to the crankshaft. The camshaft may be connected to a valvetrain as depicted in
(15) The engine 10 may comprise a rocker base 14 configured to be attached to the head 11 of the engine 10, including a bulkhead 60 with a bulkhead fuel passage 62 and a bulkhead monitoring passage 63 (
(16) The engine 10 may comprise a fuel injector adapter 40 configured to connect to the fuel injector 30. The fuel injector adapter 40 is configured to be the primary means of delivering fuel to the fuel injector 30 such that it may be atomized within the cylinder of the engine 10 and combusted. The fuel injector adapter 40 is advantageously configured to be placed below certain components of the valvetrain. As depicted in
(17) As depicted in
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(19) As depicted in the primary embodiment, particularly in
(20) As depicted in
(21) In the embodiment of
(22) As depicted in
(23) The fuel injector adapter 40 may further comprise an elbow 50 configured to connect the fuel injector adapter 40 to the bulkhead 60 of the rocker base 14.
(24) By providing the elbow 50 connected to the bulkhead 60, both a fuel line 70 and a monitoring line 80 may be connected to the bulkhead 60 such that fuel is delivered via the bulkhead fuel passage 62 to the fuel injector 30, and possible fuel leaks may be detected in the fuel injector adapter 40 by delivering leaking fuel through the bulkhead monitoring passage 63. As depicted in
(25) As depicted in
(26) The engine 10 may further comprise a leak monitor 81 connected to the bulkhead monitoring passage 63 at the outside surface of the rocker base 14.
INDUSTRIAL APPLICABILITY
(27) In operation, the teachings of the present disclosure can find applicability in many industries including but not limited to marine vessels, mining equipment, on and off-highway vehicles, and other industries utilizing internal combustion engines. While depicted and described in conjunction with an internal combustion engine using low-flashpoint fuels, such teachings can also find applicability with other engines using a wide array of fuels as known to persons skilled in the art.
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(29) In a fourth step 604, the fuel injector 30 may be provided on the engine 10 disposed within the rocker base 14 and configured to provide atomized fuel to the cylinder. The fuel injector adapter 40 may then be installed within the fuel injector 30. In a fifth step 605, the adapter shaft 410 is assembled, which may include providing the first pair of O-rings 425, 426 about annular recesses between the shoulder 414 and the first shaft end 411 proximate the first monitoring portion 424.
(30) In a sixth step 606, the adapter shaft 410 may be attached to the fuel injector 30. In the embodiment as shown in
(31) In a seventh step 607, the remaining of the first plurality of seals including the second pair of O-rings 429, 430 and the third pair of O-rings 431, 432 may be installed on the adapter shaft 410 within the plurality of annular recesses (418, 419, 421, 423). In an eighth step 608, the fitting portion 441 of the adapter body 440 may be disposed over the adapter shaft 410 such that the fitting portion 441 covers the first plurality of seals (429, 430, 431, 432) and forms separate portions between the adapter shaft 410 and the bore 439 of the fitting portion 441. The separate portion may include the fuel portion 438 fluidly connected to the port portion 416 of the adapter shaft 410, and may include the monitoring portion including the second monitoring portion 422 and the third monitoring portion 420 in the bore 439. The second monitoring portion 422 and the third monitoring portion 420 may be fluidly connected to the port monitoring portion 447 in the elbow port through the monitoring passage 449 and the bridge passage 450 in the extension 444. In a ninth step 609, the fastener 460 may be attached to the second shaft end 412 of the adapter shaft 410 such that the adapter body 440 is locked in position with the fuel injector 30. As with the sixth step 606, in the ninth step 609, the fastener 460 may be threaded onto the threads 413 on the second shaft end 412 and may be tightened until a specific torque rating is reached.
(32) In a tenth step 610, the valvetrain components may be installed within the rocker base 14. The valves 20, each having the valve spring 21, the intake rocker arm 15 and the intake connector 16, the exhaust rocker arm 17 and the exhaust connector 18, the injector arm 23, and the rocker shaft 22 may be installed as depicted in
(33) In an eleventh step 611, the elbow 50 may be connected to the adapter body 440. The elbow 50 may include the elbow body 514 with the connector end 501 disposed within the elbow port 445 of the adapter body 440 and the bulkhead end 502 configured to be attached to the bulkhead 60 on the rocker base 14. The second plurality of seals 510, 511 may be disposed about the connector end 501 of the elbow 50. The connector end 501 of the elbow 50 may be disposed in the elbow port 445 of the fuel injector adapter 40 such that the second plurality of seals 510, 511 separates the connector end 501 of the elbow 50 into an elbow fuel portion 506 and an elbow monitoring portion 509. The elbow fuel portion 506 may be connected to the elbow fuel passage 504, and the elbow monitoring portion 509 may be connected to the elbow monitoring passage 507.
(34) Finally, in a twelfth step 612 the fuel line 70 and the monitoring line 80 may be connected to the bulkhead 60. The fuel line 70 is connected to the bulkhead 60 of the rocker base 14 such that fuel may be delivered to the fuel injector 30 via the fuel passage 448. The monitoring line 80 is connected to the leak monitor 81 which may include a sensor 82 for detecting the presence of leaking fuel within the monitoring passage 449, and the collection device 83 for collecting excess fuel within the monitoring line 80.
(35) The method 600 of assembling the engine 10 provides for a valvetrain and fuel delivery configuration fully contained within the rocker base 14 of the engine 10. This configuration provides a small footprint, requiring only a simple rocker cover, and allows for servicing of components of the valvetrain without need for disconnection of components of the fuel delivery system. As such, the configuration of the rocker base 14 of the engine 10 allows for reduced service times, longer service life, and reduced downtime. Additionally, arrangement of the monitoring portions allows for efficient monitoring of leaks within the fuel delivery system near the fuel injector 30.
(36) The method 600 can be adapted to any internal combustion engine, and certain components are capable of retrofit onto older internal combustion engine designs. The method 600 can also be adapted to other internal combustion engines used in a wide variety of industries on many types of machines.
(37) It should be evident that this disclosure is by way of example and that various changes may be made by adding, modifying or eliminating details without departing from the fair scope of the teaching contained in this disclosure. The invention is therefore not limited to particular details of this disclosure except to the extent that the following claims are necessarily so limited.