The present invention relates to a proportional valve for control and intake of a gaseous medium, in particular hydrogen, having an ejector unit, in particular for use in vehicles having a fuel cell drive.
In addition to liquid fuels, gaseous fuels will play an increasingly greater role in the motor vehicle segment in the future. In particular in vehicles driven by fuel cells, flows of hydrogen gas must be controlled. In this case, the gas flows are no longer controlled discontinuously as in the case of the injection of liquid fuel, but instead proportional valves in particular are used which adjust an opening cross section of the valve as a function of a desired driving power.
An ejector is described in U.S. Patent Publication No. 2009/0155092 in which the flow cross section of a passage opening of a nozzle unit of an ejector is adjusted with the aid of a mechanical regulating unit having multiple diaphragms. This regulates the feed of the gaseous medium from a tank as well as an intake of the recycled gaseous medium from the fuel cell. Apart from insufficient precision, this regulation also has an unsatisfactory responsiveness.
The proportional valve according to the present invention for control and intake of a gaseous medium has the advantage over the related art that an ejector unit is situated on the valve housing and an actuator activates a closure element attached to the valve housing which unblocks and closes a passage opening. In this case, the passage opening is situated between an inflow area, at which a first gaseous medium is fed, and an intake area of the ejector unit, at which a second gaseous medium is present. This results in a more exact adjustment of the flow cross section of the passage opening. This makes it possible to regulate the continuous and demand-based metering of the second gaseous medium, in particular to an anode of the fuel cell corresponding to the consumed or dissipated volume of the second gaseous medium in a considerably more precise way, and significantly improve the responsiveness. Furthermore, the proportional valve according to the present invention has a simple and compact design.
According to a preferred embodiment of the present invention, a control unit is also provided which controls the actuator based on a pulse width modulation. The pulse width-modulated signal present at the actuator makes it possible for the closure element to adjust the flow cross section of the passage opening rapidly and with high precision. Moreover, it is possible to provide a simple and cost-effective control, whose simple structure requiring little space also makes it integratable without difficulty into a main control unit of the vehicle.
In another advantageous embodiment of the present invention, at least one pressure sensor is provided which is connected to the control unit and is situated at the intake area and/or at the outlet of the mixing tube area. Based on the detected pressure values, it is thus simultaneously possible to provide in particular an improved regulation of the anode pressure, which ensures a continuous and precise adjustment of the opening degree of the passage opening.
Furthermore, the ejector unit preferably includes a heating device for heating the ejector unit. The heating device may be operated with the aid of electrical energy or, alternatively, with the aid of a coolant of a fuel cell. The heating of entire ejector unit 10 prevents icing to the greatest degree possible or makes rapid deicing possible, whereby high operating reliability in a constant temperature range may be ensured.
Furthermore, the present invention relates to a fuel cell system, including a fuel cell and a proportional valve according to the present invention.
Preferably, the fuel cell includes an anode area and a cathode area, the mixing tube area being connected to the anode area with the aid of a connecting line, and a return line is provided which connects the anode area of the fuel cell to the intake area of the ejector unit. This makes possible a reliable, superstoichiometric feed of the first and second gaseous media via the connecting line into the anode area as well as an operationally reliable return of the second gaseous medium via the return line into the intake area of the ejector unit. As a result, it is reliably possible to prevent catalytic converter damage caused by a localized depletion of the gaseous medium in subareas of the fuel cell. Moreover, it is thus possible to prevent an unnecessary venting of the unused gaseous medium from the anode area to the outside or avoid it to the greatest extent possible, resulting in lower fuel consumption.
According to a preferred embodiment of the present invention, a pressure in the connecting line is detected by a first pressure sensor and/or a pressure in the return line is detected by a second pressure sensor. It is further preferred that the fuel cell system includes a control unit for controlling a pressure in the anode area of the fuel cell, the control unit being connected to the proportional valve. It is thus possible to use the detected pressure values and a control algorithm stored in the control unit to implement a precise, simple and cost-effective pressure regulation in the anode circuit of the fuel cell.
The fuel cell system preferably further includes a tank for storing the first gaseous medium, an inflow line which connects the tank to the inflow area of the ejector unit, and a pressure regulating valve which is situated in the inflow line in order to set a pressure in the inflow area of the ejector unit. This ensures an operationally reliable reduction of pressure from the high pressure level in the tank into a defined pressure range before the first gaseous medium is fed to the proportional valve.
According to a preferred embodiment of the present invention, the fuel cell system further includes a heating line which conducts heat from the fuel cell to the ejector unit of the proportional valve. Continuous heating is thus ensured, making a homogeneous function of the proportional valve in a suitable, constant temperature range possible. Moreover, an additional cooling of the fuel cell is provided in a simple manner.
A proportional valve 1 for controlling a gaseous medium will be described in detail below with reference to
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A first pressure sensor 33 is provided in connecting line 25 for detecting the pressure in connecting line 25. Furthermore, a second pressure sensor 34 is provided in return line 26 for detecting the pressure in return line 26. The detected pressure values are fed to a control unit 20 connected to proportional valve 1 for controlling the pressure in anode area 31 of fuel cell 30. Based on a pulse width modulation 20a, control unit 20 controls actuator 12, which activates closure element 4, so that a flow cross section of passage opening 3 is changed in such a way that the gas flow fed to fuel cell 30 is set according to demand.
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Moreover, a heating line 40 is provided between anode area 31 of fuel cell 30 and ejector unit 10, the heating line conducting the heat in a coolant from a circuit of fuel cell 30, which is not shown here, for heating ejector unit 10. The coolant is heated in fuel cell 30 and directed via heating line 40 to ejector unit 10 where it heats ejector unit 10 and is returned to fuel cell 30 using a return line which is not shown.
Proportional valve 1 for controlling a gaseous medium thus has the advantage that the feed of the first gaseous medium and the metering of the second gaseous medium into anode area 31 of fuel cell 30 are possible with the aid of the electronically controlled adjustment of the flow cross section of passage opening 3 while at the same time the anode pressure may be regulated substantially more precisely. This significantly improves the operating reliability and service life of the connected fuel cell, since hydrogen is constantly supplied in a superstoichiometric proportion. Moreover, it is also possible to prevent consequential damages, for example, damages to a downstream catalytic converter.
Number | Date | Country | Kind |
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102010043618.6 | Nov 2010 | DE | national |