专利摘要:
The invention relates to a method for torsional vibration damping in a drive train (1), which has an internal combustion engine (2), in particular a reciprocating piston engine, and at least one additional machine (3), in particular an electric machine, connected thereto, wherein during at least a first phase ( A) of the internal combustion engine (2) a torque pulse MA in the drive train (1) is initiated, and wherein at least one torque pulse (MB) for torsional vibration damping is selectively generated by the additional machine (3). In order to achieve a calming of the vibrations in the simplest and most efficient manner, it is provided that the torque pulse (MB) of the additional machine (3) is so out of phase with the torque pulse (MA) of the internal combustion engine (2) in the drive train (1) during at least one is introduced to the first phase (A) following the second phase (B) that the excitation frequency (f) is increased, preferably doubled
公开号:AT513529A1
申请号:T50477/2012
申请日:2012-10-25
公开日:2014-05-15
发明作者:Dieter Dipl Ing Dr Höfler;Günter Dr Hohenberg;Gudrun Mag Beidl-Stangl
申请人:Ivd Prof Hohenberg Gmbh;
IPC主号:
专利说明:

1 16202
The invention relates to a method for torsional vibration damping in a drive train, weichereine internal combustion engine, in particular a reciprocating engine, and at least one associated with this additional machine, in particular electric machine, wherein during at least a first phase of the internal combustion engine, a torque pulse is introduced into the drive train, and wherein at least one torque pulse for torsional vibration damping is selectively generated by the additional machine.
Conventional internal combustion engines with three and fewer cylinders have the disadvantage from a vibration and rotational vibration technical point of view that a relatively high idling speed or an elastic element with very low rigidity for decoupling in the drive train is necessary due to the lower excitation frequency due to the small number of cylinders to allow comfortable operation.
DE 10 2006 036 217 A1 describes a method for improving the driving characteristics of a hybrid drive which has at least one internal combustion engine and at least one electric machine. In at least one modulation operating state of the hybrid drive, an operating variable of the at least one electric motor function, in particular an electric motor speed and / or an electric motor power, is modulated with a predetermined frequency spectrum having at least one modulation amplitude, at least one modulation frequency and at least one modulation phase. This is intended to reduce the audible and noticeable difference between driving with different uses of an internal combustion engine.
It is known, in a drive train with an internal combustion engine and an electric machine, to use the electric machine for active damping of the vibrations (extinction of the torque peaks). For example, DE 10 2009 047 116 A1 discloses a method for operating a hybrid drive of a motor vehicle, wherein the hybrid drive has an internal combustion engine, an electric motor and a further unit, which are connected to one another via a force-carrying connection. The force-carrying connection is subjected to a rotational irregularity in the form of a positive or negative deviation of a rotational speed from a target rotational speed, which is generated by the internal combustion engine and / or the unit. The rotational nonuniformity 2/15 2 is detected and the electric motor is controlled and / or regulated so that the rotational nonuniformity is reduced by a counter torque. However, the application of the counter-torque has a disadvantageous effect on the efficiency.
The object of the invention is to avoid this disadvantage and to achieve a calming of the vibrations in the simplest possible way.
According to the invention this is achieved in that the torque pulse is introduced so phase-shifted to the torque pulse of the internal combustion engine in the drive train during at least one second phase following the first phase, that the excitation frequency is increased, preferably doubled. As a result, the shape of the torque curve is impressed.
The torque pulse generated by the additional machine is preferably carried out in the same direction for excitation by the internal combustion engine - and not in the opposite direction, as in known methods.
By increasing the excitation frequency, a greater distance from the natural frequency of the drive train can be achieved. The inventive method thus aims - in contrast to known methods - not on the extinction of rotational nonuniformity, but on the reduction of the vibrations by increasing the excitation frequency.
By multiplying (for example, doubling) the excitation spectrum and simultaneously reducing the amplitudes of the usable speed range can be increased and a significant reduction in idle speed, and a higher or constant comfort can be achieved.
The amplitude of the torque pulse generated by the additional engine may be substantially equal to the amplitude of the torque pulse introduced into the powertrain during the first phase. Likewise, the shape of the torque pulse generated by the additional engine may be substantially modeled on the shape of the torque pulse introduced into the powertrain during the first phase, wherein preferably the torque pulse generated by the additional engine during the second phase is a triangular, square or sinusoidal signal , The spectrum of the torque pulse generated by the additional machine during the second phase can be designed so that defined sections of the spectrum are repeated between two consecutive first phases.
Particularly at low battery charge, it is advantageous if during the first phase, the additional machine is operated by a generator and during the second phase by motor, wherein the torque pulse of the internal combustion engine during the first phase at least partially attenuated and during the second phase, at least the damped portion of the torque pulse Powertrain is fed back. Thus, the energy to be applied in the second phase for the torque pulses of the additional machine during the first phase can be generated by damping the torque pulses of the internal combustion engine.
To control the additional machine, the torque curve of the internal combustion engine either directly or indirectly over the speed curve-preferably based on information from the engine control unit-continuously determined and the torque pulse of the additional machine can be generated on the basis of this torque curve. Alternatively or additionally, a time difference between two successive combustion of the internal combustion engine, preferably from the information about engine variables, such as ignition timing and / or injection timing, determined and the torque pulse of the additional machine are generated on the basis of this time difference.
The time difference and / or the torque pulse course can alternatively also be determined from the information about the speed curve of the additional machine (3).
In order to achieve a good vibration reduction, it is advantageous if the additional engine torque pulse generated in the second phase or the additional engine torque pulses generated in the second phase are evenly positioned between two consecutive engine torque pulses.
Between the internal combustion engine and the additional machine, a detachable connection - for example, a separable coupling - be arranged. It is particularly advantageous if the detachable connection has such a high torsional stiffness that it can be approximately considered to be rigid in the frequency range of the primary excitations. Alternatively, it can also be provided that the releasable connection has a decoupling element which is effective in selected frequency ranges, for example in the form of an elastic element or centrifugal pendulum. Furthermore, if necessary, a transmission can also be arranged between the internal combustion engine and the additional machine.
The invention will be explained in more detail below with reference to FIG.
1 shows an internal combustion engine for carrying out the method according to the invention, FIG. 2 shows a torque curve of a cylinder of the internal combustion engine, and FIG. 3 shows an amplitude spectrum when using the method according to the invention.
1 shows a drive train 1 with an internal combustion engine 2 and an additional machine 3 formed by an electric machine, which are connected to one another either directly or via a transmission (not shown) or with a detachable connection 4 formed, for example, by a separable coupling , Internal combustion engine 2 and additional machine 3 are either rigid, or connected via an elastic element 5 with the rest of the drive train 6. The bearing 7 is preferably chosen so that the vibrations transmitted to the vehicle can be ideally decoupled.
2 shows the torque curve of a cylinder of the internal combustion engine 2, wherein the torque M is plotted against the crank angle α. A cylinder of the internal combustion engine 2 generates in the region of a first phase A a torque pulse MA introduced into the drive train 1. From the additional engine 3 provided in addition to the internal combustion engine 2, a positive torque pulse MB - similar to that of the internal combustion engine 2 - is applied in phase B in a second phase B such that there is an increase, for example a doubling of the exciting frequency f from fi to f2 (FIG. see Fig. 3). For four-stroke internal combustion engines, the phase offset, for example in a 2-cylinder engine, between phases A and B is about 180 °, for two-stroke internal combustion engines about 90 °. 5/15 5
The shape of the additionally introduced in the second phase B torque pulse MB is ideally equal to that produced by the combustion torque curve MA on the crankshaft 2a of the internal combustion engine 2. However, it can be selected the spectrum of the additional torque pulse MB so that defined portions of the spectrum doubled become. In the simplest case, the drive signal corresponds to a triangular, rectangular or sinusoidal signal. The applied torque curves may vary depending on the operating point and requirement (eg, energy efficient control or adaptive choice by the driver).
In particular, at low battery charge, the torque pulse MA of the internal combustion engine 2 can be damped by the additional machine 3 and out of phase the system additionally impressed.
In contrast to known solutions in the present method by the additional machine 3, a positive torque pulse MB - so in the same direction, but out of phase with the torque pulse MA of the engine 2 -abgegeben. This results in an increase in the total available drive torque, wherein a first part is generated by the internal combustion engine 2 and a second part of the drive torque by the additional machine 3, as shown in FIG. 2. If in addition to the torque pulses MB still a static torque applied by the additional machine 3, this combination can also be used for short-term performance increase (boost function).
Furthermore, combinations of the two operating modes (positive additional torque pulse MB and damped operation) are also possible.
The control of the phase shift can be determined either from the course of the torque MA of the internal combustion engine 2 or from the time difference of the last two burns on the basis of information stored in the engine control unit, for example the ignition or the injection time.
Fig. 3 shows an amplitude-frequency spectrum, wherein in the diagram, the amplitude X is plotted against the frequency f. FE is the natural frequency of the drive train 1, fi represents the excitation frequency by the 6/15 6
Internal combustion engine 2 - without additional excitation by the additional machine 3, wherein the oscillation amplitude is Xi. If, in addition, a positive torque pulse MB is introduced by the additional machine 3, the excitation frequency can be doubled to f2 and the oscillation amplitude reduced substantially to X2.
By a combination with acoustic measures, which coincide with the additionally introduced torque pulse MBstattstatt, in addition an acoustic doubling and thus a subjective improvement of the noise behavior can be achieved.
By the additional application of a positive additional torque pulse MB better efficiencies can be obtained. This makes it possible to achieve further savings in consumption. By improving the vibration behavior of the comfort compared to other internal combustion engines same number of cylinders can be significantly improved. 7/15
权利要求:
Claims (14)
[1]
7. PATENT CLAIMS 1. Method for torsional vibration damping in a drive train (1), which has an internal combustion engine (2), in particular a reciprocating piston engine, and at least one additional machine (3), in particular an electric machine, connected thereto, wherein during at least a first phase ( A) of the internal combustion engine (2) a torque pulse MA in the drive train (1) is initiated, and wherein at least one torque pulse (MB) for torsional vibration damping is generated by the additional machine (3), characterized in that the torque pulse (MB) the additional machine (3) so phase-shifted to the torque pulse (MA) of the internal combustion engine (2) in the drive train (1) during at least one on the first phase (A) following second phase (B) is introduced, that the excitation frequency (f) increases , preferably doubled.
[2]
2. The method according to claim 1, characterized in that the of the additional machine (3) generated torque pulse (MB) takes place in the same direction to the excitation by the internal combustion engine (2).
[3]
3. The method according to claim 1 or 2, characterized in that the amplitude of the torque generated by the additional machine (3) torque pulse (MB) substantially the amplitude of during the first phase (A) in the drive train (1) introduced torque pulse (MB ) corresponds.
[4]
4. The method according to any one of claims 1 to 3, characterized in that the shape of the torque generated by the additional machine (3) torque pulse (MB) substantially the shape of during the first phase (A) in the drive train (1) introduced torque pulse (MA) corresponds.
[5]
5. The method according to any one of claims 1 to 4, characterized in that during the second phase (B) by the additional machine (3) generated torque pulse (MB) is based on a triangular, rectangular or sinusoidal signal. 8/15 8
[6]
6. The method according to any one of claims 1 to 5, characterized in that the spectrum of the torque generated by the additional machine (3) during the second phase (B) torque pulse (MB) is designed so that defined portions of the spectrum between two consecutive first Phases (A) are repeated.
[7]
7. The method according to any one of claims 1 to 6, characterized in that during the first phase (A) the additional machine (3) as a generator and during the second phase (B) is operated by a motor, wherein the torque pulse (MA) of the internal combustion engine ( 2) during the first phase (A) at least partially damped and during the second phase (B) at least the damped portion of the torque pulse (MA) is fed back to the drive train (1).
[8]
8. The method according to any one of claims 1 to 7, characterized in that the torque curve (M) of the internal combustion engine (2) is determined continuously, preferably on the basis of information from the engine control unit, and that the torque pulse (MB) of the additional machine (3 ) is generated on the basis of this torque curve (M).
[9]
9. The method according to any one of claims 1 to 8, characterized in that a time difference between two successive burns, preferably from the information engine-relevant data, particularly preferably ignition timing and / or injection times, is determined and that the position of the torque pulse (MB) of additional machine (3) is generated on the basis of this time difference.
[10]
10. The method according to claims 1 to 9, characterized in that the time difference and / or the torque pulse - course is determined from the information about the speed curve of the additional machine (3).
[11]
11. The method according to any one of claims 1 to 10, characterized in that in the second phase (B) generated torque pulse (MB) of the additional machine (3) or in the second phase (B) generated torque pulses (MB) of the additional engine (3) is evenly positioned between two consecutive torque pulses (MA) of the internal combustion engine (2). 9/15 9
[12]
12. The method according to any one of claims 1 to 11, characterized in that between the internal combustion engine (2) and the additional machine (3) a releasable connection (4) is executed, which has such a high torsional stiffness that they are in the frequency range of the primary Suggestions can be considered approximately as rigid.
[13]
13. The method according to any one of claims 1 to 11, characterized in that between the internal combustion engine (2) and the additional machine (3) a releasable connection (4) is executed, which is effective in selected frequency ranges decoupling element, for example in the form of an elastic Element or centrifugal pendulum, has.
[14]
14. The method according to any one of claims 1 to 13, characterized in that between the internal combustion engine (2) and the additional machine (3) a transmission is arranged (3). 2012 10 25 Fu 10/15
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法律状态:
优先权:
申请号 | 申请日 | 专利标题
ATA50477/2012A|AT513529B1|2012-10-25|2012-10-25|Method for torsional vibration damping in a drive train|ATA50477/2012A| AT513529B1|2012-10-25|2012-10-25|Method for torsional vibration damping in a drive train|
EP13792602.8A| EP2911928B1|2012-10-25|2013-10-23|Method for damping torsional vibration in a drive train|
PCT/EP2013/072154| WO2014064144A1|2012-10-25|2013-10-23|Method for damping torsional vibration in a drive train|
DE202013104787U| DE202013104787U1|2012-10-25|2013-10-24|Device for torsional vibration damping in a drive train|
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