A container for supplying pressure fluid to a master cylinder of a hydraulic motor vehicle brake system, which comprises a filling reservoir arranged on a first level and including a fill hole and a discharge opening, a main reservoir arranged on a second level and including an inlet opening and discharge openings, as well as a device for monitoring the container's state of filling, with the first level being disposed above the second level, and the filling reservoir and the main reservoir being interconnected.
A container of this type is disclosed in EP 1 019 272 B1. The arrangement needs improvement in particular with respect to its installation capability at the vehicle manufacturer's plant.
In view of the above, an object of the present invention is to provide an improved container for the pressure fluid supply.
According to the invention, this object is achieved in that a means for filling the main reservoir is integrated in the container and includes one or more channels, with the result that the exchange of air between the reservoirs is improved.
The container has an integral design in a favorable improvement of the invention. This will improve the assembly at the vehicle manufacturer's plant.
The channels include a bottom wall in order to isolate the pressure fluid of the main reservoir from the filling reservoir in extreme positions of the motor vehicle occurring, for example, in intensive brake operations, and further in order to prevent the escape of pressure fluid through a container cover that closes the fill hole.
The first filling of pressure fluid into the brake system is carried out by a machine at the vehicle manufacturer's plant. To this end, a filler cap is fitted to the container, and the brake system is filled with pressure fluid after evacuation. With a projection being shaped at the container, the container is supported on the master cylinder in order to accommodate the forces which develop in the first filling operation and are caused by the fitment of the filler cap and the subsequent machining operation.
According to a favorable embodiment of the invention, a pressure fluid supply line and a pressure fluid return line for component parts of an electrohydraulic brake system (EHB) are formed at the container. An electrohydraulic brake system (EHB) concerns an electronically controlled system, the function and components of which are generally known in the art.
According to another preferred embodiment, the main reservoir is subdivided into several compartments being interconnected by means of openings. The two compartments which are associated with the pressure chambers of the master cylinder are designed in such a fashion that in the case of pressure fluid loss in one compartment, a defined residual volume still prevails in the second compartment.
It is possible to use the invention in principally all brake systems, while it is especially suited for electrohydraulic brake systems (EHB).
The invention will be explained in the following by way of the accompanying drawings showing embodiments for an electrohydraulic brake system. In the drawings:
In order to supply pressure fluid to the master cylinder and the components of an electrohydraulic brake system (EHB) such as a pump, the main reservoir 3 is subdivided into several compartments. The subdivision of the compartments is described in detail in
The container 1 is made in an injection-molding operation. Two housing shells are die-cast and interconnected by means of a melting process.
The main reservoir 3 is disposed on a second level 19 that is arranged below the level 14, with the term ‘level’ referring to the spatial arrangement of the reservoirs rather than to the state of filling with pressure fluid. The result is that the pressure fluid can propagate from the filling reservoir 2 through the channels 18 into the main reservoir 3 which consists of several compartments. The two pressure chambers of the master cylinder are fed by way of a first compartment 20 with a discharge opening 47 and a second compartment 21 with a discharge opening 48. The float 10 and the contact 9 of the device 8 are arranged in another compartment 22 for monitoring the container's state of filling. As can be seen from
A bottom wall 26 of the channels 18 can be seen from
To prevent the escape of pressure fluid through a container cover 27 in the event of intensive braking, accelerating or cornering maneuvers, the fill hole 15 is provided centrally on the filling reservoir 2.
As can be seen in
The main reservoir 30 is composed of three compartments 37, 38, 39. A pump is e.g. fed through the compartment 37 and a pressure fluid supply line 40 shaped at the bottom end. The compartments 38 and 39, which are isolated by a wall 41, feed the pressure chambers of the master cylinder through the ports 4 and 5. The pressure fluid return line 42 is also provided at the main reservoir 30 in this embodiment. As has been described in the embodiment of
Number | Date | Country | Kind |
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103 10 170.5 | Mar 2003 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP04/02355 | 3/8/2004 | WO | 9/6/2005 |