The present invention relates to a hydraulic device for a rail vehicle and especially to an optimized arrangement of a motor-pump unit in hydraulic devices for rail vehicles.
A hydraulic device is a hydraulic control and supply unit which provides a controlled or regulated hydraulic flow for various components of the corresponding rail vehicles. For example, controllable valves may be constructed in the hydraulic devices, which activate certain hydraulic lines specifically in order to produce a volume flow there, or also deactivate them, the control of the hydraulic devices possibly occurring via a vehicle control unit. Hydraulic devices generally consist of three main components: a control region with a control cover, a connection panel (control board) and a tank region with a tank for a hydraulic fluid. Moreover, a motor and a pump to pump the hydraulic fluid into the control board are usually coupled to the control board.
Disclosed embodiments relate to a hydraulic device for a rail vehicle, wherein the hydraulic device comprises a tank region for a hydraulic fluid, a motor with a pump for pumping the hydraulic fluid, a hydraulic connection panel for providing hydraulic fluid paths and for holding hydraulic components, and a control region for controlling the hydraulic components. The tank region and the control region are arranged on opposite sides of the hydraulic connection panel, and the motor is arranged together with the pump on one side of the hydraulic connection panel.
By a fluid path is meant all hollow spaces through which a hydraulic fluid can be conducted. The mentioned hydraulic fluid paths encompass, on the one hand, hydraulic lines leading to the outside, but also fluid connections which are formed inside the hydraulic connection panel and provide for example a connection from the pump to a valve, for example. Furthermore, no housing need be present. If a housing is present, the hydraulic connection panel can be arranged in the housing, for example, such that it divides the housing into two separate regions (the tank region and the control region).
Disclosed embodiments will be better comprehended by the following detailed description and the accompanying drawings of the different sample embodiments, although these should not be taken to mean that the disclosure is limited to the specific embodiments, but rather they serve only for clarification and comprehension.
In rail vehicles of newer design, such as street cars which are manufactured in a low-floor model, the available design space is increasingly scarce. Therefore, ever increasing demands are being placed on the size of the individual components which are to be accommodated in the rail vehicle. For this reason, there is a demand for reducing the size of the components, such as the hydraulic device, so that they can be arranged in a more space-saving manner in the dwindling design space. On the other hand, other or extra functions often need to be accommodated in the same or in a dwindling design space. Increasingly, conventional hydraulic devices are no longer meeting these requirements.
The pump 124 sucks in a liquid from the tank region 410, and pumps the hydraulic fluid through connection ducts (not shown in
The hydraulic devices shown have the following drawbacks. On the one hand, the motor-pump combination 122, 124 requires a lot of space on the control board 430. Therefore, fewer components can be arranged on the control board 430. Moreover, the lead-through bushing 460 of the motor and pump shaft requires an opening through the control board 430. This opening significantly reduces the control board cross section which can be used for the interconnecting of the components and results in costly designs for the connection boreholes between the control board 430 and the mounted components (not shown in
Hence, there is a need for hydraulic devices for rail vehicles which make it possible either to reduce the design size or to accommodate extra functions in the same design space.
As discussed above, disclosed embodiments relate to a hydraulic device for a rail vehicle, wherein the hydraulic device comprises a tank region for a hydraulic fluid, a motor with a pump for pumping the hydraulic fluid, a hydraulic connection panel for providing hydraulic fluid paths and for holding hydraulic components, and a control region for controlling the hydraulic components. The tank region and the control region are arranged on opposite sides of the hydraulic connection panel, and the motor is arranged together with the pump on one side of the hydraulic connection panel.
By a fluid path is meant all hollow spaces through which a hydraulic fluid can be conducted. The mentioned hydraulic fluid paths encompass, on the one hand, hydraulic lines leading to the outside, but also fluid connections which are formed inside the hydraulic connection panel and provide for example a connection from the pump to a valve, for example. Furthermore, no housing need be present. If a housing is present, the hydraulic connection panel can be arranged in the housing, for example, such that it divides the housing into two separate regions (the tank region and the control region).
The aforementioned technical problem is solved by the disclosed embodiments in that a hydraulic control and supply unit (hydraulic device) is created which has the identical functionality as compared to the conventional hydraulic devices, yet which, when implemented, reduces the required installation space or which, when implemented, enables more functions to be realized in the installation space.
In other exemplary embodiments, the hydraulic components comprise at least one valve and/or at least one sensor, which are electrically controllable. The control region may be designed as a cover and comprise a connector unit. The control region may furthermore comprise an electrical interconnection which interconnects the electrically controllable hydraulic components with the connector unit, so that the hydraulic components are controllable from outside the housing.
In other exemplary embodiments, the pump is arranged between the motor and the hydraulic connection panel. Optionally, the motor can also be arranged between the pump and the hydraulic connection panel. One benefit of the first embodiment is that the hydraulic fluid can be pumped directly from the pump into the hydraulic connection panel, without needing additional fluid lines. One benefit of the second embodiment is that the motor is given a secure support by the hydraulic connection panel, so that a mechanically more stable design can be achieved, especially when the motor is larger than the pump.
In other exemplary embodiments, the pump and the motor comprise a common rotation shaft or two rotation shafts coupled together, wherein the rotation shaft(s) is/are separated from the hydraulic connection panel. This means, in particular, that the rotation shaft of the pump and/or the rotation shaft of the motor are not coupled to the hydraulic connection panel and thus also cannot directly transmit vibrations to the hydraulic connection panel. For example, an intermediate space is formed for this purpose between the rotation shaft or shafts, which suppresses the negative influences, for example, of vibrations on sensors or similar components.
In other exemplary embodiments, the pump is arranged together with the motor in the tank region. One benefit of this embodiment is that the motor together with the pump can be cooled by the fluid present in the tank. Furthermore, a very efficient volume utilization is achieved in this way, since the tank volume only needs to be increased enough to contain the volume of the combination of pump and motor.
In other exemplary embodiments, the tank region comprises a tank for storage of the hydraulic fluid and the pump is accommodated with the motor in the tank.
In other exemplary embodiments, the hydraulic device comprises a support structure for holding the motor and/or the pump. The support structure is supported in the control region or in the tank region and is coupled to the hydraulic connection panel. One benefit of this embodiment is that it becomes possible to attenuate the vibrations produced by the motor and/or the pump and not transmit them directly to the connection panel with the hydraulic components formed thereon. Furthermore, already existing structures can be utilized as the support structures. In other exemplary embodiments, the support structure is part of the tank region or part of the control region.
In other exemplary embodiments, the support structure is coupled to the hydraulic connection panel or the pump is connected by a line to the hydraulic connection panel.
In other exemplary embodiments, the tank region comprises a tank housing and the control region comprises a cover, wherein the support structure can be fastened to the tank housing or the cover.
In other exemplary embodiments, the pump is arranged in the tank region and the motor is fastened on an outer wall of the tank region. Optionally, the motor and the pump is fastened on the hydraulic connection panel next to the tank region.
Disclosed embodiments also relate to a hydraulic device for a rail vehicle with a tank region for a hydraulic fluid, a hydraulic connection panel for providing hydraulic fluid paths and for holding hydraulic components, and a control region for controlling the hydraulic components, wherein the tank region and the control region are arranged on opposite sides of the hydraulic connection panel. Furthermore, this hydraulic device comprises a pump for pumping the hydraulic fluid, which is situated in the tank region. Optionally, a possibility of fastening on the tank region is provided, in order to fasten a motor for operating the pump on an outer surface of the tank region.
Disclosed embodiments also relate to a rail vehicle with one of the above-described hydraulic devices.
On the left side of
The hydraulic components 134 may comprise valves and/or sensors, for example, which open or close hydraulic flow paths 132, 133 or perform measurements on the hydraulic fluid (for example, pressure measurements). The hydraulic flow paths 132, 133 may be internal flow paths 132 between the components on the hydraulic connection panel 130 or other hydraulic flow paths 133 coupled to an external hydraulic line (outside the housing). The valves may be, for example, electromagnetically controlled valves, which are connected by an electrical line 142 to a connector unit 144, the connector unit 144 making a connection between the interior region of the housing 150 and the outside region. For example, the hydraulic device may be electrically controlled by a control unit of the rail vehicle via the connector unit 144, for example in order to read out sensor data from the sensors or to control the valves via corresponding signals.
The hydraulic connection panel 130 for example divides the interior region of the housing 150 into two sections. In the one section there is accommodated the tank region 110, comprising in particular the tank itself, while in the other region is formed the control region 140. The motor 122 together with the pump 124 can be arranged, for example, directly in the tank (see left side of
The sample embodiment on the left side of
In the sample embodiment on the right side of
In both embodiments, the shaft which extends through the motor 122 and the pump 124 is not led into the hydraulic connection panel 130. In particular, an intermediate space may be present between the shaft and the hydraulic connection panel 130. Therefore, sample embodiments further afford the benefit that no additional holes or bores need to be made in the hydraulic connection panel 130, so that the entire volume of the hydraulic connection panel 130 is available to provide hydraulic flow paths.
In the sample embodiment on the right side of
In
In
In other sample embodiments the motor may likewise be fastened to a side wall of the housing (i.e., not opposite the hydraulic connection panel 130) on the housing 150.
Disclosed embodiments likewise pertain to a hydraulic device not having any motor 122, but only providing a fastening possibility of fastening the motor 122, for example, on an outer housing of the tank region 110.
Disclosed embodiments have the following benefits:
(a) The motor 122 and the pump 124 are connected and arranged on one side of the hydraulic connection panel 130 such that no opening is required through the hydraulic connection panel 130 (or a modification thereof).
(b) The motor 122 and the pump 124 are supported by a support structure 115, 145 as part of the control region 140 or the tank region 110 independently of the hydraulic connection panel 130, so that no separate support is required on the hydraulic connection panel 130, such as a motor flange.
(c) Disclosed embodiments furthermore afford the possibility of arranging the motor 122 together with the pump 124 in the oil volume of the tank 110 as well as outside the oil volume (but still in the tank region).
The features of the disclosed embodiments disclosed in the description, the claims, and the figures may be instrumental to the realization of the invention both individually and in any given combination.
Number | Date | Country | Kind |
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10 2015 119 055.9 | Nov 2015 | DE | national |
This patent application is a U.S. National Phase of International Patent Application No. PCT/EP2016/076706, filed Nov. 4, 2016, which claims priority to German Patent Application No. 10 2015 119 055.9, filed Nov. 6, 2015, the disclosure of which being incorporated herein by reference in their entireties.
Filing Document | Filing Date | Country | Kind |
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PCT/EP2016/076706 | 11/4/2016 | WO | 00 |