Fuel injection apparatus, a piston engine and method of operating a piston engine
10001097 ยท 2018-06-19
Assignee
Inventors
Cpc classification
F02M2200/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/167
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M53/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/9007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M47/027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/166
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M47/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M69/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M47/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M55/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M53/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M47/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fuel injection apparatus for a piston engine includes a fuel injector body in which an injector needle is provided, which injector needle is arranged to prevent or allow fuel injection flow from the injection apparatus based on the position of the injector needle. The position is effected by a pressurized control fluid so that by applying the pressurized control fluid the needle may be urged towards its closed position and by reducing the pressurized control fluid the needle may be allowed to move away from its closed position. The injection apparatus includes a flow path for the control fluid, wherein the flow path for the control fluid comprises a restriction section providing a restriction effect to the control fluid flow. The restriction section includes at least one temperature-effected member providing a temperature-dependent restriction effect.
Claims
1. A fuel injection apparatus for a piston engine comprising: a fuel injector body in which an injector needle is provided, which injector needle is arranged to prevent or allow fuel injection flow from an injection apparatus based on a position of the injector needle, which position is effected by a pressurized control fluid in a control space; the fuel injector body comprising an injector space, into which the injector needle is arranged, which injector space is provided with a fuel inlet port and fuel injection spray hole orifices at a first end of the injector space, through which the fuel may be injected under control of the injector needle, wherein a second end of the injector needle is arranged to border the control space, which control space is connectable with a low pressure side of the fuel injection system via a flow path for the control fluid, wherein the flow path for the control fluid comprises a restriction section for restricting a flow of the control fluid, the restriction section bounded by a valve plate and a control plate, and wherein the control plate is separate from and movably received in a collar part, the control plate sealingly engageable with the valve plate to seal the control space in an non-injection position, the control plate comprises an orifice, the collar part bounding the control space when the control plate is completely separated from the valve plate, the collar part at least partially circumferentially surrounding the injection needle, the restriction section comprising the orifice in the control plate and an outlet channel of the valve plate, the control plate having a different coefficient of thermal expansion than the valve plate allowing a change in a restriction effect of the restriction section in response to a change of a temperature of the valve plate and the control plate.
2. A fuel injection apparatus according to claim 1, wherein the control space is bordered by the collar part encircling at least partly the injector needle.
3. A fuel injection apparatus according to claim 2, wherein the collar part encircles at least partly an end of the injector needle.
4. A fuel injection apparatus according to claim 2, wherein the restriction section comprises a gap between the outer surfaces of the injector needle and the collar part.
5. A fuel injection apparatus according to claim 1, wherein the first member is of ceramic material and the second member is steel.
6. A piston engine having a common rail fuel injection system, wherein the common rail fuel injection system comprises a fuel injection apparatus according to claim 1.
7. A piston engine according to claim 6, wherein the piston engine comprises a cooling system arranged in operational vicinity of the fuel injection apparatus.
8. A piston engine according to claim 7, wherein the piston engine comprises a cooling system arranged in operational vicinity of the body of the fuel injection apparatus.
9. A method of operating a piston engine with a common rail fuel injection system comprising a fuel injector apparatus according to claim 1, in which method the piston engine is operated so that after starting the engine, emission of at least one predetermined substance is measured from the exhaust gases of the engine, wherein at least until the engine has reached its operational temperature the cooling system of the engine is controlled to have effect on the temperature of the fuel and/or the fuel injection apparatus in order to control the at least one temperature-effected member providing a temperature-dependent restriction effect to the control fluid flow effecting on the position of the injector needle.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) In the following, the invention will be described with reference to the accompanying exemplary, schematic drawings, in which
(2)
(3)
(4)
DETAILED DESCRIPTION OF DRAWINGS
(5)
(6) The accumulator space 30 within the fuel injector body 25 is in flow connection with the fuel space 70 in the injector through a main fuel channel 50 arranged to the injector body 25. The main fuel channel opens into the fuel space 70 through an inlet port 51. There is also a flow fuse 55 arranged to the channel 50. The flow fuse is arranged to allow only a limited amount of continuous fuel flow blocking the fuel flow for example in the case of malfunction of the system. As is apparent from the
(7) The valve plate is provided with a connection channel 75 which connects the main channel 50 to the space inside the collar part 65. The connection channel 75 is provided with a first constriction 80 the purpose of which will be explained later. The valve plate 60 is additionally provided with an outlet channel 85 which opens also into the space inside the collar part 65. The outlet channel 85 is provided with a second constriction 90 through which the outlet channel 85 connects to a valve member 95. The valve member is preferably an on-off solenoid valve and it separates connectably a high pressure part 30, 35, 70 and a low pressure part 100 of the fuel injection system 10 from each other.
(8) The collar part 65 is pressed against the valve plate 60 by a needle spring 66 which is supported between the collar part 65 and the injector needle 40.
(9) The fuel injection system 10 is operated so that the source of pressurized fuel maintains the fuel accumulator volume 30 filled with fuel at a predetermined pressure. When the valve member i.e. the solenoid 95 opens a flow communication between the outlet channel 85 and the low pressure part 100 of the system the pressure in the chamber or space inside the collar part 65 and above the second end of the injector needle 40 decreases rapidly. This may take place due to the fact that the first constriction 80 has a first area for fuel flow that is smaller than a second area of the second constriction 90 in the outlet channel 85. Decreasing the pressure inside the collar part 65 and above the second end of the injector needle 40 while the pressure in the fuel space 70 is maintained substantially unchanged changes the balance of forces acting against the injector needle 40 in the direction of its longitudinal axis causing it to move towards the valve plate 60 and opening a flow connection between the fuel injection spray hole orifice and the fuel space 70.
(10) The collar part 65 is pressed tight against the valve plate 60 during the whole injection cycle, as the pressure in the fuel space 70 acts from underneath to ensure closure and tightness against the valve plate 60. The needle spring 66 assists in holding the collar static and pressure tight against the valve plate.
(11) A small gap 71 between the collar part 65 and the needle 40 allows some leakage fuel to flow from the fuel space 70 which assists lubrication between the reciprocating needle and the stationary collar part.
(12) As is explained above the position of the injector needle 40 is effected by pressurized control fluid, which in this embodiment is the fuel. It is apparent to a person skilled in the art that the control fluid may also by some other suitable pressure medium, like hydraulic oil, but it is advantageous to utilize the fuel pressurized already for the injection event. Thus by applying the pressurized fuel the needle may be urged towards its closed position and by reducing the pressurized control fluid the needle may be allowed to move away from its closed position.
(13) The injections may be executed according to an embodiment of the invention at a reduced initial injection rate despite the high-pressure fuel injection system 10, which provides a potential to reduce particulate, NO.sub.x and noise emissions simultaneously. This may be accomplished by restricting the control fluid flow when the control fluid pressure is reduced and the needle 40 is allowed to move away from its closed position.
(14) In the embodiment of
(15) In the embodiment of
(16) In this embodiment particularly the inner surface of the collar part 65 and the outer surface of the injector needle 40 define the flow for the control fluid in which the two opposite temperature-effected members cause the gap between them to change according to the prevailing temperature. This in turn has effect on the flow rate of the fuel from the fuel space 70 through the gap to the space 63 inside of the collar part 65 and the depressurizing thereof.
(17) The cylinder head 15 is provided with a cooling system 102 arranged in operational vicinity of the fuel injection apparatus 20 including fluid flow channels in the cylinder head, especially in the vicinity of the body of the fuel injection apparatus, By means of cooling system it is possible have effect on the temperature of the fuel and/or the fuel injection apparatus 10 in order to control the at least one temperature-effected member 40, 65, 71. Cooling apparatus may include fluid flow channels arranged also to the injector body 25 (not shown).
(18) Now turning to
(19) As can be seen from the
(20) According to an embodiment of the invention a piston engine is operated so that after starting the engine, the emission of at least one predetermined substance is measured from the exhaust gases of the engine and at least until the engine has reached its normal operational temperature the cooling system of the engine is controlled to effect on the temperature of the fuel and/or the fuel injection apparatus 10 in order to control the at least one temperature-effected member 65 providing a temperature-dependent restriction effect on the control fluid flow.
(21)
(22) In the embodiment of
(23) In the rest position before the injection starts, the control plate 60 is sealed against the valve plate 60 by the rim 72. When the valve member 95 is activated, the depressurizing of the control space 63 is commenced. The fuel escape from the pressurized control space inside the collar part 65 is controlled by the orifice 69 in the control plate 68 together with the second constriction 90 in the outlet channel 85. This enables a slower needle lifting ramp and hence a lower injection pressure rise.
(24) Additionally in the embodiment of
(25) A closing sequence starts when the valve member 95 is closing the flow out via the orifice 69 in the control plate. Advantageously the valve member 95 is a solenoid valve. At the initial phase the control plate 68 is against the valve plate 60 and the fuel flows only through the orifice 69. As the flow via the orifice 80 continues through the orifice 69 to the cavity 64 or control space 63, the pressure in the control space 63 acting on top of the needle 40 causes the needle to start its closing movement. The force caused by pressure in the cavity 64 and the force of the spring 67 decreases below the force caused by the pressure in the space at the second side of the control plate 68 bordered by a rim 72 and the valve plate 60. At this stage the control plate 68 departs from contact with the valve plate 60 and the fuel may flow around the control plate 68. This allows a considerable increase in the fuel flow into the control space 63 urging the needle to its closed position. In the closing sequence the control plate 68 is floating between the second end of the injector needle 40 and the valve plate 60. The gap between the control plate and the collar part is big enough to allow flow of control fluid in an amount of pushing the needle downwards fast enough without the plate 68 following. Thus the orifice 69 does not retard the closing sequence after the initial phase at all.
(26) According to an embodiment of the invention, the collar part 65 is of different material than the injector needle i.e. ceramic material as in
(27) While the invention has been described herein by way of examples in connection with what are, at present, considered to be the most preferred embodiments, it is to be understood that the invention is not limited to the disclosed embodiments, but is intended to cover various combinations or modifications of its features, and several other applications included within the scope of the invention, as defined in the appended claims. The details mentioned in connection with any embodiment above may be used in connection with another embodiment when such combination is technically feasible.