1. Field of the Invention
The present invention relates to the field of system diagnoses, e.g., especially diagnoses of vehicle-specific systems.
2. Description of Related Art
To monitor and diagnose complex physical systems such as hydraulic systems of injection systems in vehicles, the system components are usually checked according to a predefined test scheme with the aid of monitoring and diagnosis functions.
A disadvantage of the known diagnosis concepts, especially for performing a system diagnosis in injection systems, is the often insufficient overview of the implemented monitoring and diagnosis functions. Furthermore, greater effort is often required to determine which diagnosis function is executed at which time, which is the case in particular when the monitoring and diagnosis functions have different enabling conditions. Furthermore, the known diagnosis concepts do not allow a rapid and reduced-cost diagnosis of an overall system, because they always have a complete diagnosis of the individual system components as their basis.
The present invention is based on the recognition that a system diagnosis possibly involving both testing and monitoring of the system which may have a plurality of system components, is able to be carried out efficiently and at reduced effort if it is performed in two stages. The system diagnosis is preferably subdivided into individual subtests, i.e., diagnosis functions, which run one after the other, i.e., sequentially, it being possible to define a duration and a sequence of the subtests. The individual subtests are preferably performed sequentially, without analyzing the diagnosis results in this first stage. Instead, for example, the individual diagnosis function supplies the system characteristic associated therewith, so that a curve of the system characteristic specific to the function and state is made available at the end of the first stage. To diagnose the system, the curve of the system characteristic may be analyzed in a second stage, for which, for example, different state-specific system characteristics may be linked with each other in order to diagnose the system. Thus, a single test is performed for the entire system, without checking the individual system components while implementing the test for the occurrence of a fault, which allows for a rapid system diagnosis. Furthermore, the system diagnosis may be triggered by a single signal common to all functions, so that the current diagnosis status is known at all times.
According to one aspect, the present invention relates to a diagnosis method for performing a system diagnosis, especially a diagnosis of a physical system, which encompasses the steps of transferring the system into a plurality of predefined system states, recording a characteristic curve of the system in at least two system states of the plurality of predefined system states, in order to obtain a state-specific curve of the system characteristic, and analyzing the state-specific characteristic curve of the system characteristic in order to obtain a diagnosis result. For example, the system is transferred into a system state when a diagnosis function is executed. For this purpose, for instance, one of the system components can be transferred into a state specific to the system component, such as switch-on or switch-off state. The particular system characteristic thus is a response of the system to the execution of the individual diagnosis function, i.e., the behavior of the system in the particular system state, which is able to be induced by a system test, for instance. Thus, the curve of the system characteristic may include a curve of test results or of partial test results, for example.
According to one advantageous specific embodiment, the system characteristic is not analyzed in the step in which the system characteristic is recorded, so that the diagnosis is able to be performed rapidly.
According to one advantageous specific embodiment, the sequence of the system states and/or the dwell time of the system in the particular system state are/is predefined. In this way the diagnosis of the system is always able to be implemented in a defined manner and a manner specific to the system components.
According to one advantageous specific embodiment, the system characteristic is detected in each predefined system state of the plurality of system states, so that a comprehensive system diagnosis is able to be performed quite rapidly.
According to one advantageous specific development, the system is sequentially transferred into the plurality of predefined, sequentially occurring system states, so that mutual blocking of the diagnosis function which transfers the system into the particular state is advantageously preventable in efficient manner.
According to one advantageous specific embodiment, the system includes a plurality of system components; to transfer the system into the system states, at least one of the system components is transferred into a predefined system component state or into a sequential succession of system component states, or a plurality of system components is transferred into a sequential succession of system component states, or the system is excited to transfer the system into the system states on the input and/or output side, sequentially and in different manners, for example. This enables a successive and uncomplicated acquisition of the curve of the system characteristics.
According to one advantageous specific embodiment, the system includes a plurality of system components, the system characteristic being associated with a method of functioning or a system-component state of the individual system component of the system. This readily ensures that the system characteristic or the curve thereof is related to the system component.
According to one advantageous specific development, the system states are pressures such as air pressures or fuel pressures, or torques or currents or voltages. In general, the system states are physical states of the system which come about in response to a physical excitation of the system.
According to one advantageous specific embodiment, the system is a vehicle system or a hydraulic system, e.g., a hydraulic actuating system for a vehicle clutch, or a fuel injection system or an electronic vehicle system or an energy supply system of a vehicle such as a vehicle electrical system or a drive system of the vehicle, e.g., a hybrid drive having at least two drive sources, or a vehicle control system.
According to one advantageous specific embodiment, the system may be a fuel-injection system, which has a closing valve on the input side, a dosing valve connected downstream from the input-side closing valve, a first sensor situated between the input-side closing valve and the dosing valve, e.g., a pressure or temperature sensor, and a second sensor connected downstream from the closing valve, it being possible to transfer the system into the plurality of system states by opening and/or closing the input-side closing valve or a dosing valve connected downstream from the closing valve; the curve of the system characteristic is detected with the aid of the first sensor, and a further curve of the system characteristic, with the aid of the second sensor. Preferably, a common analysis of the characteristic curve and the further curve of the system characteristics is performed in order to obtain the diagnosis result. The curve and the further curve of the system characteristics may also be linked for this purpose.
According to one advantageous specific embodiment, physical signals, especially pressure signals or electronic signals, are acquired for detecting the system characteristic or the behavior thereof, so that a signal-based analysis of the state-specific curve of the system characteristic is able to be performed in an advantageous manner.
According to one further aspect, the present invention relates to a vehicle control device for performing a diagnosis of a system which includes a device for transferring the system into a plurality of predefined system states, a device for detecting a system characteristic of the system in at least two system states of the plurality of the predefined system states, in order to obtain a state-specific curve of the system characteristic, and a device for analyzing the state-specific characteristic curve of the system characteristic in order to obtain a diagnosis result.
Additional features of the vehicle control device result directly from the features of the diagnosis method according to the present invention.
According to one advantageous specific embodiment, the devices of the vehicle control device are realized in software or in hardware.
According to one further aspect, the present invention relates to a computer program having program code for executing the diagnosis method when the computer program runs on a computer.
According to one further aspect, the present invention relates to a diagnosis device set up with software, e.g., a control device, designed to execute the computer program.
a and 5b show curves of the system characteristics.
The flow chart shown in
The system shown in
For example, in order to transfer the system into state 505 shown in
For the subsequent transfer of the system into state 507, valve 401 is closed and valve 403 is opened. For the subsequent transfer of the system into state 509, valve 401 is opened and valve 403 is opened.
The system characteristics 501 and 503 shown in
Number | Date | Country | Kind |
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10 2009 027 375.1 | Jul 2009 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP10/59298 | 6/30/2010 | WO | 00 | 3/19/2012 |