Method for varying a cylinder-specific compression ratio of an applied-ignition internal combustion engine and internal combustion engine for carrying out a method of said type
10815909 ยท 2020-10-27
Assignee
Inventors
- Martin Wirth (Remscheid, DE)
- Maziar Khosravi (Cologne, DE)
- Bernd Steiner (Bergisch Gladbach, DE)
- Jens Dunstheimer (Cologne, DE)
Cpc classification
F02D41/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B75/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B75/048
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2700/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C9/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2200/0611
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/0025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C3/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16C3/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C23/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02D15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C9/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C3/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B75/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C23/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method for varying a compression ratio of an operating applied-ignition internal combustion engine having at least two cylinders and having a crank mechanism (1) comprising a crankshaft (2) which is mounted in a crankcase and which rotates at a crankshaft rotational speed .sub.crankshaft, is described. The method includes increasing an expansion phase of a cylinder cycle via rotation of the eccentric bushing (4).
Claims
1. A method for varying a cylinder-specific compression ratio E of an operating applied-ignition internal combustion engine having at least two cylinders and having a crank mechanism comprising a crankshaft which is mounted in a crankcase and which rotates at a crankshaft rotational speed .sub.crankshaft, in which internal combustion engine: each cylinder has a piston which, during a course of a working cycle, moves along a piston longitudinal axis through a piston stroke s, specifically from a bottom dead center BDC to a top dead center TDC during a compression phase and from the top dead center TDC to the bottom dead center BDC during a subsequent expansion phase; the crankshaft has, for each cylinder, an associated crankshaft throw, the associated crankshaft throw being arranged spaced apart from other crankshaft throws along a longitudinal axis of the crankshaft; and for each cylinder, a connecting rod is provided which is mounted, at a large connecting rod eye, on the associated crankshaft throw using a rotatable eccentric bushing as an intermediate element in order to realize the cylinder-specific compression ratio , wherein the cylinder-specific compression ratio is, during the subsequent expansion phase, increased by rotation of the rotatable eccentric bushing relative to the associated crankshaft throw with the top dead center TDC being maintained, the piston stroke s being increased, and as a result the bottom dead center BDC being shifted, as a result of the rotation of the rotatable eccentric bushing, wherein the rotation of the rotatable eccentric bushing is performed with a rotational speed .sub.eccentric, wherein .sub.eccentric=1.5 .sub.crankshaft, wherein the rotation of the rotatable eccentric bushing is performed in a same direction with respect to the crankshaft, wherein the rotation of the rotatable eccentric bushing is performed in a positively controlled manner using the crankshaft, wherein the rotation of the rotatable eccentric bushing is performed using a bushing-specific gearing, and wherein the rotation of the rotatable eccentric bushing is performed using the bushing-specific gearing which is arranged in the crankcase, the bushing-specific gearing comprising: an internal gear which is mounted in and fixedly with respect to the crankcase and which has an internal toothing; an auxiliary gear which is fixedly connected to the rotatable eccentric bushing and which has an external toothing and which is rotatably mounted on the associated crankshaft throw; and a planet gear which is rotatably mounted on a journal of a planet carrier which is fixedly connected to the crankshaft, the planet gear having an external toothing, which engages with the internal toothing of the internal gear, and an internal toothing, which engages with the external toothing of the auxiliary gear.
2. The method of claim 1, wherein the cylinder-specific compression ratio is, during an exhaust phase following the subsequent expansion phase, decreased by rotation of the rotatable eccentric bushing relative to the associated crankshaft throw with the top dead center TDC being maintained, the piston stroke s being decreased, and as a result the bottom dead center BDC being shifted, as a result of the rotation of the rotatable eccentric bushing.
3. The method of claim 2, wherein the cylinder specific compression ratio is, during an intake phase preceding the compression phase, decreased by rotation of the rotatable eccentric bushing relative to the associated crankshaft throw with the top dead center TDC being maintained, the piston stroke s being decreased, and as a result the bottom dead center BDC being shifted, as a result of the rotation of the rotatable eccentric bushing.
4. The method of claim 3, wherein the cylinder-specific compression ratio is, during the compression phase, increased by rotation of the rotatable eccentric bushing relative to the associated crankshaft throw with the top dead center TDC being maintained, the piston stroke s being increased, and as a result the bottom dead center BDC being shifted, as a result of the rotation of the rotatable eccentric bushing.
5. The method of claim 4, wherein the rotation of the rotatable eccentric bushing is performed continuously.
6. A method for operating an engine, comprising: during a cycle of a cylinder, adjusting a stroke of the cylinder via a crank mechanism to generate a first stroke length of the cylinder during an expansion stroke of the cylinder; during the cycle of the cylinder, adjusting the stroke of the cylinder via the crank mechanism to generate a second stroke length of the cylinder during a compression stroke of the cylinder; selectively increasing a compression phase compression ratio of the cylinder responsive to a fuel octane; and adjusting a position of an exhaust recirculation (EGR) valve responsive to the first stroke length and the second stroke length, wherein the EGR valve is positioned along an EGR passage that is external to the cylinder, the EGR passage coupling an exhaust manifold to an intake manifold.
7. The method of claim 6, where the compression phase compression ratio of the cylinder is increased in response to the fuel octane increasing.
8. A method for varying a cylinder-specific compression ratio of an operating applied-ignition internal combustion engine having at least two cylinders and having a crank mechanism comprising a crankshaft which is mounted in a crankcase and which rotates at a crankshaft rotational speed .sub.crankshaft, in which internal combustion engine: each cylinder has a piston which, during a course of a working cycle, moves along a piston longitudinal axis through a piston stroke s, specifically from a bottom dead center BDC to a top dead center TDC during a compression phase and from the top dead center TDC to the bottom dead center BDC during a subsequent expansion phase; the crankshaft has, for each cylinder, an associated crankshaft throw, the associated crankshaft throw being arranged spaced apart from other crankshaft throws along a longitudinal axis of the crankshaft; and for each cylinder, a connecting rod is provided which is mounted, at a large connecting rod eye, on the associated crankshaft throw using a rotatable eccentric bushing as an intermediate element in order to realize the cylinder-specific compression ratio , wherein the cylinder-specific compression ratio is, during the subsequent expansion phase, increased by a rotation of the rotatable eccentric bushing relative to the associated crankshaft throw with the top dead center TDC being maintained, the piston stroke s being increased, and as a result the bottom dead center BDC being shifted, as a result of the rotation of the rotatable eccentric bushing, and wherein the rotation of the rotatable eccentric bushing is performed using a bushing-specific gearing which is arranged in the crankcase, the bushing-specific gearing comprising: an internal gear which is mounted in and fixedly with respect to the crankcase and which has an internal toothing; an auxiliary gear which is fixedly connected to the rotatable eccentric bushing and which has an external toothing and which is rotatably mounted on the associated crankshaft throw; and a planet gear which is rotatably mounted on a journal of a planet carrier which is fixedly connected to the crankshaft, the planet gear having an external toothing, which engages with the internal toothing of the internal gear, and an internal toothing, which engages with the external toothing of the auxiliary gear.
9. The method of claim 8, wherein the rotation of the rotatable eccentric bushing is performed with a rotational speed .sub.eccentric, wherein .sub.eccentric=0.5 .sub.crankshaft.
Description
BRIEF DESCRIPTION OF THE FIGURES
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DETAILED DESCRIPTION
(10) The present description is related to a variable compression ratio internal combustion engine. The engine may be naturally aspirated or it may be turbocharged or supercharged.
(11)
(12) An internal combustion engine of the stated type is used as a motor vehicle drive unit. Within the context of the present invention, the expression internal combustion engine encompasses Otto-cycle engines but also hybrid internal combustion engines, that is to say applied-ignition internal combustion engines that are operated using a hybrid combustion process and are ignited using applied ignition, and hybrid drives which comprise not only the applied-ignition internal combustion engine but also an electric machine which can be connected in terms of drive to the internal combustion engine and which receives power from the internal combustion engine or which, as a switchable auxiliary drive, additionally outputs power.
(13) Internal combustion engines of the stated type have a crank mechanism which comprises a crankshaft mounted in a crankcase, which crankshaft has, for each cylinder, a cylinder-specific crankshaft throw on which a cylinder-specific connecting rod is mounted. The crankshaft throws of the cylinders are arranged spaced apart from one another along the longitudinal axis of the crankshaft.
(14) The internal combustion engine to which the present invention relates has a crank mechanism in which, for each cylinder, a connecting rod is provided which is mounted, at the large connecting rod eye, on the cylinder-specific crankshaft throw using a rotatable eccentric bushing as an intermediate element, whereby a variable cylinder-specific compression ratio can be realized. It would be advantageous if the cylinder-specific eccentric bushings could be adjusted in targeted fashion in accordance with demand in order to be able to adapt the compression ratio in an efficiency-optimized manner to the present operating state of the internal combustion engine or of the cylinder. Against this background, it is an object of the present invention to specify a method with which the efficiency of the applied-ignition internal combustion engine can be further increased. It is a further sub-object of the present invention to specify an applied-ignition internal combustion engine for carrying out a method of said type.
(15) The first sub-object is achieved by means of a method for varying a cylinder-specific compression ratio of an operating applied-ignition internal combustion engine having at least two cylinders and having a crank mechanism comprising a crankshaft which is mounted in a crankcase and which rotates at a crankshaft rotational speed .sub.crankshaft, in which internal combustion engine: each cylinder has a piston which, during the course of a working cycle, moves along a piston longitudinal axis through a piston stroke s, specifically from a bottom dead center BDC to a top dead center TDC during a compression phase and from the top dead center TDC to the bottom dead center BDC during a subsequent expansion phase; the crankshaft has, for each cylinder, an associated crankshaft throw, the crankshaft throws being arranged spaced apart from one another along the longitudinal axis of the crankshaft; and for each cylinder, a connecting rod is provided which is mounted, at a large connecting rod eye, on the cylinder-specific crankshaft throw using a rotatable eccentric bushing as an intermediate element in order to realize a variable compression ratio , which method is distinguished by the fact that the compression ratio is, during the expansion phase, increased by rotation of the eccentric bushing relative to the crankshaft throw with the top dead center TDC being maintained, the piston stroke s being increased, and as a result the bottom dead center BDC being shifted, as a result of the rotation of the eccentric bushing.
(16) According to the invention, the compression ratio of a cylinder is varied not in a load-dependent or operating-point-specific manner but rather within the presently occurring working cycle of the respective cylinder. The method according to the invention thus permits a more extensive adaptation of the compression ratio to the present operating state of the individual or respective cylinder in relation to the prior art. The efficiency of the internal combustion engine can thus be further increased. The cylinder-specific eccentric bushings are adjusted in targeted fashion in accordance with demand. Accordingly, the compression ratio is, during the expansion phase, increased by rotation of the eccentric bushing relative to the crankshaft throw with the top dead center TDC being maintained. For this purpose, the bottom dead center BDC is, by rotation of the eccentric bushing, shifted such that the spacing to the unchanged top dead center TDC is increased, that is to say the piston stroke s increases.
(17) This increase of the compression ratio during the expansion phase is a measure with which the efficiency of the internal combustion engine can be increased. The technical or thermodynamic effect of this measure according to the invention is based on the fact that the gases situated in the cylinder are, owing to the combustion that is taking place, generally under pressure even when the at least one outlet valve opens close to the bottom dead center BDC at the start of the charge exchange, this being the case despite the fact that the gases situated in the cylinder have already expanded owing to a piston moving toward the bottom dead center in the expansion phase.
(18) When the at least one outlet valve opens for the purposes of discharging the combustion gases, the combustion gases flow at high speed through the valve-specific outlet opening into the exhaust-gas discharge system owing to the high pressure level prevailing in the cylinder at the end of the combustion and the associated high pressure difference between the combustion chamber and exhaust line. It is only during the further course of the charge exchange that the pressures in the cylinder and in the exhaust-gas discharge system equalize, such that the combustion gases are no longer evacuated primarily in a pressure-driven manner but rather are expelled as a result of the stroke movement of the piston. As a result, the high pressure in the cylinder at the start of the charge exchange remains thermodynamically unutilized. Since the energy still contained in the pressurized gases is not utilized to perform work on the piston but rather is used for the evacuation of the exhaust gases from the cylinder, this energy is lost for the internal combustion engine.
(19) It is thermodynamically more advantageous for the pressure in the cylinder to be lowered to the greatest possible extent, that is to say for the expansion of the gases situated in the cylinder to be advanced substantially further, before the at least one outlet valve is opened. For this purpose, the lengthening of the expansion phase, that is to say the increase of the compression ratio in the manner according to the invention, is the suitable measure. The increase of the compression ratio is performed according to the invention by means of a shift of the bottom dead center and the associated increase of the piston stroke s, because, for the geometric compression ratio, the following applies: =1+V.sub.h/V.sub.c with V.sub.h=A.sub.K.Math.s, where A.sub.K denotes the piston surface area and s denotes the piston stroke.
(20) There are further measures with which the cylinder-specific compression ratio can be varied within a presently occurring working cycle in order to increase the efficiency of the internal combustion engine. These measures will be discussed in more detail in conjunction with the advantageous embodiments of the method according to the invention. With the method according to the invention, the first sub-object on which the invention is based is achieved, that is to say a method is specified with which the efficiency of the applied-ignition internal combustion engine can be further increased. Embodiments of the method are advantageous in which the compression ratio is, during an exhaust phase following the expansion phase, decreased by rotation of the eccentric bushing relative to the crankshaft throw with the top dead center TDC being maintained, the piston stroke s being decreased, and as a result the bottom dead center BDC being shifted, as a result of the rotation of the eccentric bushing.
(21) As already mentioned, there are further measures with which the cylinder-specific compression ratio can be varied within a presently occurring working cycle in order to increase the efficiency of the internal combustion engine. The above method variant reduces the compression ratio during the exhaust phase that follows the expansion phase. This measure already serves for the preparation for the subsequent compression phase, which should be performed with the highest possible, or maximum, compression ratio .sub.compression. The fundamental causal relationship that, with increasing compression ratio , the efficiency likewise increases applies unchanged for the impending compression phase. With regard to the highest possible efficiency of the combustion process, the cylinder fresh charge should therefore be compressed to the greatest possible extent in the compression phase, that is to say the compression ratio .sub.compression should be as high as possible. It must nevertheless be taken into consideration that the compression ratio .sub.compression in the compression phase is, according to the invention, smaller or lower than the compression ratio .sub.expansion in the expansion phase, because other regulating circumstances, such as for example the knocking tendency, must be taken into consideration. In this respect, for the compression, the compression ratio must be decreased proceeding from the expansion. The eccentric bushing is accordingly rotated, wherein said rotation preferably is, or constitutes, a continuation of the rotational movement during the expansion phase, advantageously with an equal rotational speed, that is to say angular speed .sub.eccentric.
(22) That which has been stated above analogously also applies for the following method variant, in which a further rotation of the eccentric bushing likewise serves for the preparation for the impending compression phase, that is to say the compression of the cylinder fresh charge in the compression phase with the highest or largest possible compression ratio .sub.compression.
(23) For the reasons stated above, embodiments of the method are also advantageous in which the compression ratio is, during an intake phase preceding the compression phase, decreased by rotation of the eccentric bushing relative to the crankshaft throw with the top dead center TDC being maintained, the piston stroke s being decreased, and as a result the bottom dead center BDC being shifted, as a result of the rotation of the eccentric bushing. The two above method variants relate in principle to a 4-stroke internal combustion engine, in which a working cycle comprises an intake phase and an exhaust phase in addition to the expansion phase and the compression phase. The two latter working strokes are omitted in the 2-stroke method or in a 2-stroke internal combustion engine.
(24) Embodiments of the method are advantageous in which the compression ratio is, during the compression phase, increased by rotation of the eccentric bushing relative to the crankshaft throw with the top dead center TDC being maintained, the piston stroke s being increased, and as a result the bottom dead center BDC being shifted, as a result of the rotation of the eccentric bushing.
(25) The above method variant increases the compression ratio during the compression phase that precedes the expansion phase. This measure already serves for the preparation for the expansion phase, which should be performed with the highest or largest possible compression ratio .sub.expansion in order to be able to extract the greatest possible amount of energy from the gases situated in the cylinder. The eccentric bushing is correspondingly rotated, wherein said rotation is preferably in turn a continuation of the preceding rotational movements.
(26) All of the rotational movements of the eccentric bushing take place continuously and are preferably performed with an equal rotational speed, that is to say angular speed .sub.eccentric.
(27) Embodiments of the method are basically advantageous in which the rotation of the eccentric bushing is performed continuously. Embodiments of the method are advantageous in which the rotation of the eccentric bushing is performed with a rotational speed .sub.eccentric, wherein .sub.eccentric=0.5 .sub.crankshaft. Embodiments of the method may also be advantageous in which the rotation of the eccentric bushing is performed with a rotational speed .sub.eccentric, wherein .sub.eccentric=1.5 .sub.crankshaft. Embodiments of the method are advantageous in which the rotation of the eccentric bushing is performed in the same direction with respect to the crankshaft. Embodiments of the method may also be advantageous in which the rotation of the eccentric bushing is performed in the opposite direction with respect to the crankshaft.
(28) The fact that the rotation of the eccentric bushing may in the individual case be performed in the same direction with respect to the crankshaft or in the opposite direction with respect to the crankshaft leads to a certain degree of flexibility in the design of the adjustment mechanism for rotating the eccentric bushing, that is to say of the rotation device.
(29) Embodiments of the method are advantageous in which the rotation of the eccentric bushing is performed in a positively controlled manner using the crankshaft. It is expedient and advantageous to utilize the crankshaft to rotate the eccentric bushing, as a constituent part of the rotation device, because the eccentric bushing has to be rotated relative to the crankshaft, specifically relative to the crankshaft throw. Here, the encircling crankshaft generally serves as drive shaft for the rotation device of the eccentric bushing, for example as a gearing input shaft or as a sun gear of a planetary gear set.
(30) In this context, embodiments of the method are also advantageous in which the rotation of the eccentric bushing is performed using a bushing-specific gearing. A gearing with a fixed transmission ratio i ensures a continuous rotation of the eccentric bushing, in particular a targeted and reproducible rotation. In the present case, the gearing may be arranged in the crankcase or outside the crankcase and may serve for controlling the rotational movement of an eccentric bushing or of multiple eccentric bushings.
(31) Embodiments of the method are advantageous in which the rotation of the eccentric bushing is performed using a bushing-specific gearing which is arranged in the crankcase, the gearing comprising: an internal gear which is mounted in and fixedly with respect to the crankcase and which has an internal toothing; an auxiliary gear which is fixedly connected to the eccentric bushing and which has an external toothing and which is rotatably mounted on the bushing-specific crankshaft throw, and a planet gear which is rotatably mounted on a journal of a planet carrier which is fixedly connected to the crankshaft, the planet gear having an external toothing, which engages with the internal toothing of the internal gear, and an internal toothing, which engages with the external toothing of the auxiliary gear.
(32) The above gearing-like adjustment mechanism for rotating the eccentric bushing has the advantage that the adjustment mechanism participates not in the oscillating movement of the crank mechanism but only in the rotating movement, and does so only to a small extent. The oscillating mass of the crank mechanism is thus not increased.
(33) The gearings arranged in the crankcase ensure a compact construction of the internal combustion engine or of the drive unit as a whole, and the densest possible packaging in the engine bay of a vehicle. Furthermore, the lubrication of the internal combustion engine and/or of the crankshaft with oil can be utilized for the bushing-specific gearing.
(34) The second sub-object on which the invention is based, specifically that of providing an applied-ignition internal combustion engine for carrying out a method of a type described above, is achieved by means of an internal combustion engine having at least two cylinders and having a crank mechanism comprising a crankshaft which is mounted in a crankcase and which rotates at a crankshaft rotational speed .sub.crankshaft, in which internal combustion engine: each cylinder has a piston which, during the course of a working cycle, moves along a piston longitudinal axis through a piston stroke s, specifically from a bottom dead center BDC to a top dead center TDC during a compression phase and from the top dead center TDC to the bottom dead center BDC during a subsequent expansion phase; the crankshaft has, for each cylinder, an associated crankshaft throw, the crankshaft throws being arranged spaced apart from one another along the longitudinal axis of the crankshaft; and for each cylinder, a connecting rod is provided which is mounted, at a large connecting rod eye, on the cylinder-specific crankshaft throw using a rotatable eccentric bushing as an intermediate element in order to realize a variable compression ratio , and which internal combustion engine is characterized by the fact that, for the variation of the cylinder-specific compression ratio of an operating internal combustion engine, for each eccentric bushing, a bushing-specific gearing is provided which is arranged in the crankcase, the gearing comprising: an internal gear which is mounted in and fixedly with respect to the crankcase and which has an internal toothing; an auxiliary gear which is fixedly connected to the eccentric bushing and which has an external toothing and which is rotatably mounted on the bushing-specific crankshaft throw; and a planet gear which is rotatably mounted on a journal of a planet carrier which is fixedly connected to the crankshaft, the planet gear having an external toothing, which engages with the internal toothing of the internal gear, and an internal toothing, which engages with the external toothing of the auxiliary gear.
(35) That which has already been stated with regard to the method according to the invention also applies to the internal combustion engine according to the invention, for which reason reference is generally made at this juncture to the statements made above with regard to the internal combustion engine. The internal combustion engine according to the invention has an adjustment device in the true sense, by means of which the rotation process of the bushing can be influenced in a targeted manner. According to the invention, the rotatable eccentric bushing is not left to its own devices, but rather is rotated in targeted fashion, that is to say is moved or transferred into the respectively presently required position relative to the crankshaft throw, by means of an adjustment mechanism, specifically a planetary gear set, which is kinematically connected to the bushing. Positive control of the bushing, that is to say a controlled rotation of the bushing, is performed.
(36) Each eccentric bushing is rotated, in accordance with the working cycle of the associated cylinder, in order to adapt the compression ratio in an efficiency-optimized manner to the present working stroke of the individual cylinder. Embodiments of the applied-ignition internal combustion engine are advantageous in which the gearing (5) is configured with a transmission ratio i=.sub.eccentric/.sub.crankshaft, for which the following applies: i=0.5. Embodiments of the applied-ignition internal combustion engine may also be advantageous in which the gearing is configured with a transmission ratio i=.sub.eccentric/.sub.crankshaft, for which the following applies: i=1.5.
(37) Referring to
(38) Engine 10 includes combustion chamber 30 and cylinder walls 32 with piston 36 positioned therein and connected to crankshaft 2 via connecting rod 3. Piston 36 reciprocates during a cycle of engine 10 along longitudinal axis 61 of the piston and the engine's compression ratio may be adjusted via compression ratio adjusting device 62. In some examples, compression ratio adjusting device may increase the height of piston 36 or a length of rod 3 to increase the engine compression ratio. In one example, the length of rod 3 or the height of piston 36 is adjusted via the mechanisms described in U.S. Pat. Nos. 6,644,171 and 6,568,357 which are hereby fully incorporated by reference for all purposes.
(39) Cylinder head 13 is fastened to engine block 14. Combustion chamber 30 is shown communicating with intake manifold 44 and exhaust manifold 48 via respective intake valve 52 and exhaust valve 54. Each intake and exhaust valve may be operated by an intake cam 51 and an exhaust cam 53. Although in other examples, the engine may operate valves via a single camshaft or pushrods. The position of intake cam 51 may be determined by intake cam sensor 55. The position of exhaust cam 53 may be determined by exhaust cam sensor 57. Intake poppet valve 52 may be operated by a variable valve activating/deactivating actuator 59, which may be a cam driven valve operator (e.g., as shown in U.S. Pat. Nos. 9,605,603; 7,404,383; and 7,159,551 all of which are hereby fully incorporated by reference for all purposes). Likewise, exhaust poppet valve 54 may be operated by a variable valve activating/deactivating actuator 58, which may a cam driven valve operator (e.g., as shown in U.S. Pat. Nos. 9,605,603; 7,404,383; and 7,159,551 all of which are hereby fully incorporated by reference for all purposes). Intake poppet valve 52 and exhaust poppet valve 54 may be deactivated and held in a closed position preventing flow into and out of cylinder 30 for one or more entire engine cycles (e.g. two engine revolutions), thereby deactivating cylinder 30. Flow of fuel supplied to cylinder 30 may also cease when cylinder 30 is deactivated.
(40) Fuel injector 68 is shown positioned in cylinder head 13 to inject fuel directly into combustion chamber 30, which is known to those skilled in the art as direct injection. Fuel is delivered to fuel injector 68 by a fuel system including a fuel tank 26, fuel pump 21, and fuel rail (not shown). In some examples, the fuel system includes a low pressure fuel pump and a high pressure fuel pump.
(41) Engine air intake system 19 includes intake manifold 44, throttle 62, charge air cooler 163, turbocharger compressor 162, and intake plenum 42. Intake manifold 44 is shown communicating with optional electronic throttle 62 which adjusts a position of throttle plate 64 to control air flow from intake boost chamber 46. Compressor 162 draws air from air intake plenum 42 to supply boost chamber 46. Compressor vane actuator 84 adjusts a position of compressor vanes 29. Exhaust gases spin turbine 164 which is coupled to turbocharger compressor 162 via shaft 161. Compressor speed may be adjusted via adjusting a position of turbine variable vane control actuator 78 or compressor recirculation valve 158.
(42) In alternative examples, a waste gate 79 may replace or be used in addition to turbine variable vane control actuator 78. Turbine variable vane control actuator 78 adjusts a position of variable geometry turbine vanes 166. Exhaust gases can pass through turbine 164 supplying little energy to rotate turbine 164 when vanes are in an open position. Exhaust gases can pass through turbine 164 and impart increased force on turbine 164 when vanes are in a closed position. Alternatively, wastegate 79 or a bypass valve may allow exhaust gases to flow around turbine 164 so as to reduce the amount of energy supplied to the turbine. Compressor recirculation valve 158 allows compressed air at the outlet 15 of compressor 162 to be returned to the inlet 17 of compressor 162. Alternatively, a position of compressor variable vane actuator 78 may be adjusted to change the efficiency of compressor 162. In this way, the efficiency of compressor 162 may be reduced so as to affect the flow of compressor 162 and reduce the possibility of compressor surge. Further, by returning air back to the inlet of compressor 162, work performed on the air may be increased, thereby increasing the temperature of the air. Optional electric machine (e.g., motor) 165 is also shown coupled to shaft 161.
(43) Optional electric machine 165 may rotate compressor 162 when engine 10 is not rotating, when engine 10 is rotating at low speed (e.g., cranking speed such as 250 RPM), when exhaust energy is low to provide additional boost, or on an as desired basis. Air flows into engine 10 in the direction of arrows 5.
(44) Flywheel 97 and ring gear 99 are coupled to crankshaft 2. Starter 96 (e.g., low voltage (operated with less than 30 volts) electric machine) includes pinion shaft 98 and pinion gear 95. Pinion shaft 98 may selectively advance pinion gear 95 to engage ring gear 99 such that starter 96 may rotate crankshaft 2 during engine cranking. Starter 96 may be directly mounted to the front of the engine or the rear of the engine. In some examples, starter 96 may selectively supply torque to crankshaft 2 via a belt or chain. In one example, starter 96 is in a base state when not engaged to the engine crankshaft. An engine start may be requested via human/machine interface (e.g., key switch, pushbutton, remote radio frequency emitting device, etc.) 69 or in response to vehicle operating conditions (e.g., brake pedal position, accelerator pedal position, battery SOC, etc.). Battery 8 may supply electrical power to starter 96 and electric machine 165. Controller 12 may monitor battery state of charge.
(45) Distributorless ignition system 88 provides an ignition spark to combustion chamber 30 via spark plug 92 in response to controller 12. Universal Exhaust Gas Oxygen (UEGO) sensor 126 is shown coupled to exhaust manifold 48 upstream of catalytic converter 70. Alternatively, a two-state exhaust gas oxygen sensor may be substituted for UEGO sensor 126. Exhaust flows in the direction of arrow 7.
(46) Exhaust gas recirculation (EGR) may be provided to the engine via high pressure EGR system 83. High pressure EGR system 83 includes valve 80, EGR passage 81, and EGR cooler 85. EGR valve 80 is a valve that closes or allows exhaust gas to flow from upstream of emissions device 70 to a location in the engine air intake system downstream of compressor 162. EGR may be cooled via passing through EGR cooler 85. EGR may also be provided via low pressure EGR system 75. Low pressure EGR system 75 includes EGR passage 77 and EGR valve 76. Low pressure EGR may flow from downstream of emissions device 70 to a location upstream of compressor 162. Low pressure EGR system 75 may include an EGR cooler 74.
(47) Controller 12 is shown in
(48) During operation, each cylinder within engine 10 typically undergoes a four stroke cycle: the cycle includes the intake stroke, compression stroke, expansion stroke, and exhaust stroke. During the intake stroke, generally, the exhaust valve 54 closes and intake valve 52 opens. Air is introduced into combustion chamber 30 via intake manifold 44, and piston 36 moves to the bottom of the cylinder so as to increase the volume within combustion chamber 30. The position at which piston 36 is near the bottom of the cylinder and at the end of its present stroke (e.g. when combustion chamber 30 is at its largest volume for the present stroke) is typically referred to by those of skill in the art as bottom dead center (BDC).
(49) During the compression stroke, intake valve 52 and exhaust valve 54 are closed. Piston 36 moves toward the cylinder head so as to compress the air within combustion chamber 30. The point at which piston 36 is at the end of its stroke and closest to the cylinder head (e.g. when combustion chamber 30 is at its smallest volume) is typically referred to by those of skill in the art as top dead center (TDC). In a process hereinafter referred to as injection, fuel is introduced into the combustion chamber. In a process hereinafter referred to as ignition, the injected fuel is ignited by known ignition means such as spark plug 92, resulting in combustion.
(50) During the expansion stroke, the expanding gases push piston 36 back to BDC for the expansion stroke. Crankshaft 2 converts piston movement into a rotational torque of the rotary shaft. Finally, during the exhaust stroke, the exhaust valve 54 opens to release the combusted air-fuel mixture to exhaust manifold 48 and the piston returns to TDC. Note that the above is shown merely as an example, and that intake and exhaust valve opening and/or closing timings may vary, such as to provide positive or negative valve overlap, late intake valve closing, or various other examples.
(51)
(52) The solid line 202 in
(53) It is duly the case also in the method according to the invention that the cylinder fresh charge should be compressed to the greatest possible extent in the compression phase. However, the compression ratio .sub.compression of the compression phase is in the present case lower than the compression ratio .sub.expansion of the expansion phase. The piston stroke s, that is to say the distance between the top dead center TDC and the bottom dead center BDC.sub.compression or BDC.sub.expansion is smaller in the compression phase than in the expansion phase. Leader 206 shows the length of the expansion stroke for the present invention.
(54) Referring now to
(55) In the compression phase, the piston moves from a bottom dead center BDC.sub.compression to the top dead center TDC. The compression ratio .sub.compression is increased already in the compression phase for the subsequent expansion phase, in which the piston moves from the top dead center TDC to a bottom dead center BDC.sub.expansion which is shifted as a result of rotation of the eccentric bushing. Leader 250 shows the length of the compression stroke for the present invention. The compression ratio .sub.expansion is increased further in the expansion phase in order that the gases situated in the cylinder can expand further and, in the process, perform further work on the piston. In the subsequent two working strokes, the exhaust phase and the intake phase, the compression ratio is decreased further in preparation for the subsequent compression phase. The cycle continues to repeat as the engine continues to rotate (not shown). Thus, the bottom dead center position of the piston may be shifted along the longitudinal axis of the engine cylinder to adjust the cylinder stroke.
(56) The cylinder fresh charge should be compressed to the greatest possible extent in the compression phase. However, the compression ratio .sub.compression of the compression phase is in the present case lower than the compression ratio .sub.expansion of the expansion phase. The piston stroke s, that is to say the distance between the top dead center TDC and the bottom dead center BDC.sub.compression or BDC.sub.expansion is smaller in the compression phase than in the expansion phase. Leader 252 shows the length of the expansion stroke for the present invention.
(57) The dash-dot line 210 in
(58)
(59) Proceeding from a piston situated at top dead center TDC (position 1), as the crankshaft rotates, the eccentric bushing 4 changes its position relative to the crankshaft throw 2a by rotation during the expansion phase (position 1 to position 3), such that the bottom dead center BDC.sub.expansion is shifted (position 3). As a result, the piston stroke s and consequently the compression ratio are increased. The expansion phase (position 1 to position 3) is followed by the exhaust phase (position 3 to position 5) and the intake phase (position 5 to position 7). Both in the exhaust phase and in the intake phase, the compression ratio is decreased by virtue of the piston stroke s being decreased by rotation of the eccentric bushing 4 relative to the crankshaft throw 2a, and consequently the bottom dead center BDC.sub.compression being shifted. This serves for preparation for the compression phase (position 7 to position 1), the compression ratio .sub.compression of which is lower than the compression ratio .sub.expansion of the expansion phase (position 1 to position 3).
(60) During the compression phase (position 7 to position 1), the compression ratio is increased again, with the top dead center TDC being maintained, by virtue of the piston stroke s being increased by rotation of the eccentric bushing 4 relative to the crankshaft throw 2a, and consequently the bottom dead center BDC.sub.expansion being shifted. The increase of the compression ratio during the compression phase (position 7 to position 1) serves for preparation for the expansion phase (position 1 to position 3) that follows the compression phase. All of the rotational movements of the eccentric bushing are performed continuously with an equal rotational speed, that is to say angular speed .sub.eccentric.
(61)
(62)
(63) The connecting rod 3 has a small connecting rod eye and a large connecting rod eye 3a. The small connecting rod eye serves for the articulated connection of the connecting rod 3 to the piston by means of piston pins. At the large connecting rod eye 3a, the connecting rod 3 is rotatably mounted on a connecting rod journal 2a of the crankshaft 2 using an eccentric bushing 4 as an intermediate element. For assembly purposes, the crankshaft-side connecting rod bearing realized by the large connecting rod eye 3a, and the eccentric bushing 4, are of two-part form in order that they can be assembled on the connecting rod journal 2a of the crankshaft 2 (not illustrated).
(64) To realize a variable compression ratio , the eccentric bushing 4 is mounted rotatably in the large connecting rod eye 3a. The piston stroke s is varied by rotation of the eccentric bushing 4 relative to the crankshaft throw 2a, with the top dead center TDC being maintained and the bottom dead center BDC being shifted. As a result, the compression ratio is increased or decreased as a result of the rotation of the eccentric bushing 4.
(65) In the present case, the rotation of the eccentric bushing 4 is performed in the same direction with respect to the revolving crankshaft 2, specifically clockwise as indicated by the arrows, wherein the eccentric bushing 4 rotates with a rotational speed .sub.eccentric which is one and a half times the rotational speed .sub.crankshaft of the crankshaft 2. The following applies: .sub.eccentric=1.5 .sub.crankshaft. A gearing 5 serves as adjustment mechanism or rotation device for the bushing 4. Here, a dedicated bushing-specific gearing 5 for each bushing 4 is arranged in the crankcase. A bushing-specific gearing 5 comprises an internal gear 6, which is mounted in and fixedly with respect to the crankcase and which has an internal toothing 6a, and an auxiliary gear 7, which is connected rotationally conjointly to the eccentric bushing 4 and which is mounted rotatably on the bushing-specific crankshaft throw 2a using a bearing 7b and which has an external toothing 7a. A planet gear 8, which is mounted rotatably, using a bearing 8c, on a journal of a planet carrier 9 which is connected fixedly to the crankshaft 2 serves for the kinematic coupling of the auxiliary gear 7 to the internal gear 6. Here, an external toothing 8a of the planet gear 8 engages with the internal toothing 6a of the internal gear 6, whereas an internal toothing 8b of the planet gear 8 engages with the external toothing 7a of the auxiliary gear 7. In the present case, the planet gear 8 rotates counterclockwise, that is to say in the opposite direction with respect to the revolving crankshaft 2 and in the opposite direction with respect to the rotating eccentric bushing 4, as indicated by an arrow, specifically at three times the crankshaft rotational speed .sub.crankshaft. The following applies: .sub.planet gear=3 .sub.crankshaft.
(66) Thus, the system provides for an applied-ignition internal combustion engine having at least two cylinders and having a crank mechanism (1) comprising a crankshaft (2) which is mounted in a crankcase and which rotates at a crankshaft rotational speed .sub.crankshaft, in which internal combustion engine: each cylinder has a piston which, during the course of a working cycle, moves along a piston longitudinal axis through a piston stroke s, specifically from a bottom dead center BDC to a top dead center TDC during a compression phase and from the top dead center TDC to the bottom dead center BDC during a subsequent expansion phase; the crankshaft (2) has, for each cylinder, an associated crankshaft throw (2a), the crankshaft throws (2a) being arranged spaced apart from one another along the longitudinal axis of the crankshaft (2); and for each cylinder, a connecting rod (3) is provided which is mounted, at a large connecting rod eye (3a), on the cylinder-specific crankshaft throw (2a) using a rotatable eccentric bushing (4) as an intermediate element in order to realize a variable compression ratio , wherein, for the variation of the cylinder-specific compression ratio of an operating internal combustion engine, for each eccentric bushing (4), a bushing-specific gearing (5) is provided which is arranged in the crankcase, the gearing comprising: an internal gear (6) which is mounted in and fixedly with respect to the crankcase and which has an internal toothing (6a); an auxiliary gear (7) which is fixedly connected to the eccentric bushing (4) and which has an external toothing (7a) and which is rotatably mounted on the bushing-specific crankshaft throw (2a); and a planet gear (8) which is rotatably mounted on a journal (9a) of a planet carrier (9) which is fixedly connected to the crankshaft (2), the planet gear (8) having an external toothing (8a), which engages with the internal toothing (6a) of the internal gear (6), and an internal toothing (8b), which engages with the external toothing (7a) of the auxiliary gear (7). The applied-ignition internal combustion engine includes wherein the gearing (5) is configured with a transmission ratio i=.sub.eccentric/.sub.crankshaft, for which the following applies: i=0.5. The applied-ignition internal combustion engine includes wherein the gearing (5) is configured with a transmission ratio i=.sub.eccentric/.sub.crankshaft, for which the following applies: i=1.5.
(67) Referring now to
(68) At 502, the engine is rotated and it is combusting fuel. The engine may be rotated via a starter during starting. After the engine is started it rotates via torque generated via combustion. Fuel and spark are provided to the engine's cylinders via a controller, an ignition system, and fuel injectors while the engine is operating. Method 500 proceeds to 504.
(69) At 504, method 500 judges if the present cylinder being controlled is to be operated with a compression phase (e.g., compression stroke) high compression ratio. In one example, method 500 may judge to operate the engine with the compression phase high compression ratio when the alcohol concentration in fuel supplied to the engine exceeds a threshold concentration (e.g., 20% of fuel injected during a cylinder cycle). However, if the alcohol concentration in fuel supplied to the engine is less than the threshold concentration, then the cylinder may be operated in its compression phase with a low compression ratio. If method 500 judges that the present cylinder is to operate in its compression phase with a high compression ratio, then the answer is yes and method 500 proceeds to 506. Otherwise, the answer is no and method 500 proceeds to 550.
(70) At 506, method 500 adjusts the cylinder's compression ratio to provide a high compression ratio during the cylinder's compression phase. The compression ratio in the compression phase may be increased via increasing a length of rod 3 or a height of piston 36. Method 500 proceeds to 508.
(71) At 550, method 500 adjusts the cylinder's compression ratio to provide a low compression ratio during the cylinder's compression phase. The compression ratio in the compression phase may be decreased via decreasing a length of rod 3 or a height of piston 36. Method 500 proceeds to 508.
(72) At 508, method 500 judges if the present cylinder being controlled is to be operated with a long expansion stroke (e.g., the trajectory of trace 202 in
(73) At 510, method 500 adjusts the cylinder's expansion stroke to provide a long stroke during the cylinder's expansion phase (e.g., an expansion stroke that is longer than a compression stroke of the same cylinder as shown by trace 202 in
(74) At 552, method 500 adjusts the cylinder's expansion stroke to provide a short stroke during the cylinder's expansion phase (e.g., an expansion stroke that is the same length as the compression stroke of the same cylinder as shown by trace 204 of
(75) At 512, method 500 judges if the present cylinder being controlled is on its expansion stroke. Method 500 may judge that the present cylinder is on its expansion stroke based on input from a crank position sensor. Further, the crankshaft mechanism described herein provides a unique piston trajectory profile during the present cylinder's expansion stroke that is mechanically set via an eccentric bushing and a crankshaft throw. If method 500 judges that the present cylinder is on its expansion stroke, the answer is yes and method 500 proceeds to 514. Otherwise, the answer is no and method 500 proceeds to 516.
(76) At 514, method 500 operates the present cylinder with a first stroke length. The first stroke length is provided via an eccentric bushing relative to crankshaft throw. The bushing may be rotated as shown in
(77) At 516, method 500 judges if the present cylinder being controlled is on its exhaust stroke. Method 500 may judge that the present cylinder is on its exhaust stroke based on input from a crank position sensor. Further, the crankshaft mechanism described herein provides a unique piston trajectory profile during the present cylinder's exhaust stroke that is mechanically set via an eccentric bushing and a crankshaft throw. If method 500 judges that the present cylinder is on its exhaust stroke, the answer is yes and method 500 proceeds to 518. Otherwise, the answer is no and method 500 proceeds to 520.
(78) At 518, method 500 operates the present cylinder with a first stroke length. The first stroke length is provided via an eccentric bushing relative to crankshaft throw. The bushing may be rotated as shown in
(79) At 520, method 500 judges if the present cylinder being controlled is on its intake stroke. Method 500 may judge that the present cylinder is on its intake stroke based on input from a crank position sensor. Further, the crankshaft mechanism described herein provides a unique piston trajectory profile during the present cylinder's intake stroke that is mechanically set via an eccentric bushing and a crankshaft throw. If method 500 judges that the present cylinder is on its intake stroke, the answer is yes and method 500 proceeds to 522. Otherwise, the answer is no and method 500 proceeds to 524.
(80) At 522, method 500 operates the present cylinder with a second stroke length. The second stroke length is provided via an eccentric bushing relative to crankshaft throw. The bushing may be rotated as shown in
(81) At 524, method 500 judges if the present cylinder being controlled is on its compression stroke. Method 500 may judge that the present cylinder is on its compression stroke based on input from a crank position sensor. Further, the crankshaft mechanism described herein provides a unique piston trajectory profile during the present cylinder's compression stroke that is mechanically set via an eccentric bushing and a crankshaft throw. If method 500 judges that the present cylinder is on its compression stroke, the answer is yes and method 500 proceeds to 526. Otherwise, the answer is no and method 500 proceeds to exit.
(82) At 526, method 500 operates the present cylinder with a second stroke length. The second stroke length is provided via an eccentric bushing relative to crankshaft throw, and the second stroke length is less than the first stroke length. The bushing may be rotated as shown in
(83) Thus, method 500 adjusts stroke length of a cylinder to provide two different length strokes during a cycle of the cylinder. In particular, during expansion and exhaust strokes of a cylinder during a cylinder cycle, the stroke length is a first stoke length. During intake and compression strokes of the cylinder during the cylinder cycle, the stroke length is a second stroke length, the second stroke length less than the first stroke length.
(84) The method of
(85) The method of
(86) Referring now to
(87) The first plot from the top of
(88) The second plot from the top of
(89) The third plot from the top of
(90) The fourth plot from the top of
(91) The fifth plot from the top of
(92) The sixth plot from the top of
(93) At time t0, the engine is operating and combusting (not shown) a lower octane fuel. The engine load is low and the compression ratio is low. The expansion stroke length relative to or measured from the crankshaft centerline is at a middle level. The EGR valve is opened a small amount and the desired EGR valve is at a middle level. Between time t0 and time t1, the engine load is increased and the remaining conditions are unchanged.
(94) At time t1, the desired EGR amount is increased and so the expansion stroke BDC height relative to the crankshaft centerline is adjusted upward toward TDC. By adjusting the expansion stroke BDC height, additional exhaust pressure may be provided to increase the EGR flow rate. The EGR valve is closed a small amount to compensate for the higher exhaust pressure. The engine continues to operate on the lower octane fuel and the engine load continues to increase. The compression stroke TDC height is unchanged.
(95) At time t2, the desired EGR amount is decreased and so the expansion stroke BDC height relative to the crankshaft centerline is adjusted downward away from TDC. By adjusting the expansion stroke BDC height lower, less exhaust pressure may be provided to decrease the EGR flow rate and work performed in the exhaust stroke may be increased. The EGR valve is opened a small amount to compensate for the lower exhaust pressure. The engine continues to operate on the lower octane fuel and the engine load continues to increase. The compression stroke TDC height is unchanged. Between time t2 and time t3, the engine load increases and then decreases.
(96) At time t3, the desired EGR amount is increased again so the expansion stroke BDC height relative to the crankshaft centerline is adjusted upward toward TDC. By adjusting the expansion stroke BDC height, additional exhaust pressure may be provided to increase the EGR flow rate. The EGR valve is closed a small amount to compensate for the higher exhaust pressure. The engine continues to operate on the lower octane fuel and the engine load continues to decrease. The compression stroke TDC height is unchanged.
(97) At time t4, the desired EGR amount is decreased and so the expansion stroke BDC height relative to the crankshaft centerline is adjusted downward away from TDC. By adjusting the expansion stroke BDC height lower, less exhaust pressure may be provided to decrease the EGR flow rate and work performed in the exhaust stroke may be increased. The EGR valve is opened a small amount to compensate for the lower exhaust pressure. The engine continues to operate on the lower octane fuel and the engine load continues to increase. The compression stroke TDC height is unchanged.
(98) Between time t4 and time t5, the fuel octane is increased and the compression stroke TDC height from the crankshaft centerline is increased, thereby increasing the compression ratio of the cylinder. Since the compression ratio is increased via increasing piston height or rod length, the expansion stroke BDC height from the crankshaft centerline is also increased. The higher expansion stroke BDC piston height increases exhaust pressure so the EGR valve is partially closed to maintain a same EGR flow rate to the cylinder. The engine load begins to increase near time t5.
(99) At time t5, the desired EGR amount is increased and so the expansion stroke BDC height relative to the crankshaft centerline is adjusted upward toward TDC. By adjusting the expansion stroke BDC height, additional exhaust pressure may be provided to increase the EGR flow rate. The EGR valve is closed a small amount to compensate for the higher exhaust pressure. The engine continues to operate on the lower octane fuel and the engine load continues to increase. The compression stroke TDC height is unchanged. Because the compression phase compression ratio has been increased by increasing the compression stroke TDC height from the crankshaft centerline, the expansion stroke height from the crankshaft centerline at time t5 is higher than the expansion stroke height from the crankshaft centerline at time t1.
(100) At time t6, the desired EGR amount is decreased and so the expansion stroke BDC height relative to the crankshaft centerline is adjusted downward away from TDC. By adjusting the expansion stroke BDC height lower, less exhaust pressure may be provided to decrease the EGR flow rate and work performed in the exhaust stroke may be increased. The EGR valve is opened a small amount to compensate for the lower exhaust pressure. The engine continues to operate on the lower octane fuel and the engine load continues to increase. The compression stroke TDC height is unchanged. Between time t6 and time t7, the engine load increases and then decreases.
(101) At time t7, the desired EGR amount is increased again so the expansion stroke BDC height relative to the crankshaft centerline is adjusted upward toward TDC. By adjusting the expansion stroke BDC height, additional exhaust pressure may be provided to increase the EGR flow rate. The EGR valve is closed a small amount to compensate for the higher exhaust pressure. The engine continues to operate on the lower octane fuel and the engine load continues to decrease. The compression stroke TDC height is unchanged.
(102) At time t8, the desired EGR amount is decreased and so the expansion stroke BDC height relative to the crankshaft centerline is adjusted downward away from TDC. By adjusting the expansion stroke BDC height lower, less exhaust pressure may be provided to decrease the EGR flow rate and work performed in the exhaust stroke may be increased. The EGR valve is opened a small amount to compensate for the lower exhaust pressure. The engine continues to operate on the lower octane fuel and the engine load continues to increase. The compression stroke TDC height is unchanged.
(103) In this way, the compression phase compression ratio may be increased and the expansion phase stroke length may be increased to increase engine work. If higher EGR flow rates are requested, the expansion phase stroke length may be reduced. Further, other combinations and sub-combinations of compression ratio adjustments and expansion ratio stroke length may be provided.
REFERENCE DESIGNATIONS
(104) 1 Crank mechanism 2 Crankshaft 2a Crankshaft throw, connecting rod journal 2b Crank web 2c Balancing weight 3 Connecting rod 3a Large connecting rod eye 4 Eccentric bushing, bushing 5 Gearing, planetary gear set 6 Internal gear 6a Internal toothing of the internal gear 7 Auxiliary gear 7a External toothing of the auxiliary gear 7b Bearing of the auxiliary gear 8 Planet gear 8a External toothing of the planet gear 8b Internal toothing of the planet gear 8c Bearing of the planet gear 9 Planet carrier 9a Journal of the planet carrier Compression ratio without eccentric bushing .sub.compression Compression ratio of the compression .sub.expansion Compression ratio of the expansion Efficiency TDC Top dead center s Stroke BDC.sub.compression Bottom dead center of the compression BDC.sub.expansion Bottom dead center of the expansion V.sub.c Compression volume V.sub.h Swept volume of a cylinder .sub.crankshaft Rotational speed of the crankshaft .sub.eccentric Rotational speed of the eccentric bushing .sub.planet gear Rotational speed of the planet gear
(105) Note that the example control and estimation routines included herein can be used with various engine and/or vehicle system configurations. The control methods and routines disclosed herein may be stored as executable instructions in non-transitory memory and may be carried out by the control system including the controller in combination with the various sensors, actuators, and other engine hardware. Further, portions of the methods may be physical actions taken in the real world to change a state of a device. The specific routines described herein may represent one or more of any number of processing strategies such as event-driven, interrupt-driven, multi-tasking, multi-threading, and the like. As such, various actions, operations, and/or functions illustrated may be performed in the sequence illustrated, in parallel, or in some cases omitted. Likewise, the order of processing is not necessarily required to achieve the features and advantages of the example examples described herein, but is provided for ease of illustration and description. One or more of the illustrated actions, operations and/or functions may be repeatedly performed depending on the particular strategy being used. Further, the described actions, operations and/or functions may graphically represent code to be programmed into non-transitory memory of the computer readable storage medium in the engine control system, where the described actions are carried out by executing the instructions in a system including the various engine hardware components in combination with the electronic controller. One or more of the method steps described herein may be omitted if desired.
(106) It will be appreciated that the configurations and routines disclosed herein are exemplary in nature, and that these specific examples are not to be considered in a limiting sense, because numerous variations are possible. For example, the above technology can be applied to V-6, I-4, I-6, V-12, opposed 4, and other engine types. The subject matter of the present disclosure includes all novel and non-obvious combinations and sub-combinations of the various systems and configurations, and other features, functions, and/or properties disclosed herein.
(107) The following claims particularly point out certain combinations and sub-combinations regarded as novel and non-obvious. These claims may refer to an element or a first element or the equivalent thereof. Such claims should be understood to include incorporation of one or more such elements, neither requiring nor excluding two or more such elements. Other combinations and sub-combinations of the disclosed features, functions, elements, and/or properties may be claimed through amendment of the present claims or through presentation of new claims in this or a related application. Such claims, whether broader, narrower, equal, or different in scope to the original claims, also are regarded as included within the subject matter of the present disclosure.