The invention relates to a pump for conveying an exhaust gas after treatment medium, in particular, a urea/water solution, for diesel engines according to the preamble of claim 1.
Cleaning devices for diesel vehicles are known in which the exhaust gas of diesel engines is treated with a medium, preferably a 32.5% urea/water solution, in order to reduce or remove completely the nitrous oxides in the exhaust gas. For conveying the medium, a pump is provided that pumps the medium from a reservoir.
The invention has the object to configure the pump of the aforementioned kind such that by means of the pump the exhaust gas after treatment medium can be properly and reliably conveyed under the conditions occurring within diesel vehicles.
This object is solved for the pump of the aforementioned kind in accordance with the present invention with the characterizing features of claim 1.
In the pump according to the invention, the pump element is a piston that is movable against a counterforce during the pumping operation. The piston is separated by a diaphragm from the medium to be pumped. By means of the pump according to the invention sufficiently high pressures can be achieved. Since the piston is separated from the medium by a diaphragm, it is corrosion-resistant because it does not come into contact with the medium. The diaphragm seals the piston so that a shaft seal is not required in the area in contact with the medium. The pump is characterized by a simple configuration and a long service life.
Further features of the invention result from the dependent claims, the description, and the drawing.
The invention will be explained in more detail with the aid of two embodiments illustrated in the drawings. It is shown in:
The pump is advantageously suitable for use in exhaust gas after treatment devices for diesel engines. Of course, it can also be used for other pumping purposes.
The pump has a housing 1 that is provided at one end face with a cylindrical projection 2. At least one solenoid 3 is embedded in the housing 1. The housing 1 has a central axial receiving chamber 4 having at its inner wall a sleeve-shaped slide bearing 5. The bearing is positioned with the first end on a radially inwardly oriented annular shoulder 6 that projects away from the inner wall 7 of the receiving chamber 4.
A cup-shaped piston 8 is arranged in the slide bearing 5 so as to be axially movable against the force of at least one pressure spring 9. One end of the pressure spring 9 is supported on the bottom 10 of the piston and the other end on the bottom side of an adjusting screw 11 that is screwed into the projection 2. By means of the adjusting screw 11, the pretension of the pressure spring 9 can be adjusted continuously. For centering the pressure spring 9, the adjusting screw 11 is provided at its underside with a central projection 12 that projects into the appropriate end of the pressure spring 9.
The piston 8 is provided at the end facing the adjusting screw 11 with a radially outwardly oriented flange 13 that rests against the radially outwardly oriented shoulder 14 of the inner wall 7 of the receiving chamber 4 in a first position (
A pump head 16 is connected, preferably by screwing, to the end face of the housing 1 that is remote from the adjusting screw 11. The pump head 16 has a housing 17 with a radially outwardly oriented flange 18 with which the pump head 16 rests areally and sealingly against the end face of the housing 1. Along the rim of the flange 18 fastening screws 19 are provided with which the pump head 16 is screwed onto the housing 1. The head of the fastening screws 19 is positioned advantageously recessed within the flange 18.
In the pump head there are two check valves 20, 21 that are arranged at a spacing from one another; each is arranged in a receiving chamber 22, 23 of the pump head 16. In the receiving chamber 22 there is a valve body 24 having an outer diameter that is smaller than the outer diameter of the receiving chamber 22. The valve body 24 is loaded by at least one pressure spring 25 in the direction toward its closed position illustrated in
On the side of the pump head 16 opposite the bore 26, a bore 33 opens into the receiving chamber 22; the bore is provided in the connecting plate 34. The plate is fastened to the end face of the pump head 16 that is facing away from the housing 1.
In the receiving chamber 23 of the pump head 16 there is also a valve body 35 that is identical to the valve body 24 but is arranged in the receiving chamber 23 in a 180° rotated position relative to the valve body 24. The valve body 35 closes a bore 36 that extends parallel to the bore 33 in the connecting plate 34. The valve body 35 is loaded by at least one pressure spring 37 in the receiving chamber 23 in the direction toward its closed position (
The pressure spring 25 of the check valve 20 is supported with one end on the connecting plate 34 and with its other end on the valve body 24. The pressure spring 37 is supported with one end on the bottom of the receiving chamber 23 and with its other end on the valve body 35.
The bores 33, 36 open into connectors 39, 40 that are provided at the end face of the connecting plate 34 facing away from the pump head 16 and through which the medium to be conveyed is sucked in or discharged.
In the position according to
Subsequently, the current supply to the solenoid 3 is switched off. This has the result that the piston 8 is returned by the force of the pressure spring 9 so far that its flange 13 contacts the shoulder 14 of the pump housing 1 (
The level of the pump pressure is dependent on the spring force of the pressure spring 9 with which the piston 8 is actuated. By means of the adjusting screw 11 the pump pressure can be fine-adjusted after mounting.
Advantageously, the end face 41 of the piston bottom 10 facing the diaphragm 28 is curved (
The pump is the combination of an oscillating piston pump and a diaphragm pump. The oscillating piston part with the piston 8 serves as a maintenance-free drive while the diaphragm 28 provides the pumping member. During the pumping action, only the diaphragm 28 is in contact with the medium but not the piston 8. Accordingly, the material of the diaphragm 28 can be matched optimally to the medium to be pumped. The piston 8 does not come into contact with this medium and can therefore be manufactured of materials that are accordingly less expensive.
The pump can generate pressures, for example, within the range of approximately 5 bar. The pump is corrosion-resistant relative to aqueous solutions because the oscillating piston part is sealed by the diaphragm 28 relative to the medium. In the diaphragm pump part a shaft seal is not provided so that problems related with such seals do not occur. The described pump is freeze-protected because the pump piston 8 in the rest state (solenoid not supplied with current,
The pump according to
When the coil 3 is supplied with current, the piston 8 is moved against the force of the plate spring 9′ until it comes to rest with its flange 13 against the adjusting screw 11.
In other respects, the function of the pump is identical to that of the embodiment of
Number | Date | Country | Kind |
---|---|---|---|
103 41 995.0 | Sep 2003 | DE | national |
10 2004 011 123.5 | Mar 2004 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/DE04/01848 | 8/19/2004 | WO | 4/17/2006 |