The present invention concerns a pump that is embodied as a diaphragm pump. The present invention moreover concerns a method for determining a top and/or bottom dead center of a diaphragm pump module of the pump. The present invention also concerns a method for operating the pump. Furthermore, the present invention concerns a computer program, which executes each step of at least one of the methods, together with a machine-readable storage medium, which stores the computer program. Finally, the invention concerns an electronic control unit, which is equipped so as to execute the methods.
In order to comply with ever-stricter exhaust gas legislation, it is necessary to reduce the nitrogen oxides in the exhaust gas of internal combustion engines, in particular diesel engines. To this end it is of known for an SCR (selective catalytic reduction) catalyst to be arranged in the exhaust gas system to reduce the nitrogen oxides, contained in the exhaust gas of the internal combustion engine, to nitrogen in the presence of a reducing agent. By this means the proportion of nitrogen oxides in the exhaust gas can be significantly reduced. Ammonia is required for the progress of the reaction, and this is added to the exhaust gas. As a rule, an aqueous urea solution (diesel exhaust fluid (DEF)) is used, which is injected into the gas system upstream of the SCR catalyst and acts as an ammonia-separating reagent. A 32.5% aqueous urea solution is commercially available under the brand name AdBlue®.
Since the freezing point of AdBlue® is −11.5° C., at winter temperatures it is necessary to pump the DEF back from a metering module into a reducing agent tank after switching off the internal combustion engine, in order to prevent damage to the metering module if the DEF freezes. If a diaphragm pump is used as a delivery pump for the DEF, however, a pumping process is only possible in the delivery direction. One solution to this problem is to provide a separate return pump. Alternatively, a valve system can also be provided, which makes it possible to direct the flow of the DEF in either the delivery direction or the return direction. However, such valve systems can lead to leakages, the result of which can be a pressure loss and the occurrence of corrosive DEF.
The invention is based on the knowledge that it is possible to direct the liquid flow of a unidirectional diaphragm pump in two different directions, namely a delivery direction and a return direction, if the top dead center of the pump can be precisely determined during its operation. For this purpose, a pump is provided, which has a diaphragm pump module that is fitted with at least one sensor. The sensor is fitted so as to detect the arrival at a top and/or bottom dead center of the diaphragm pump module. A method for determining a top and/or bottom dead center of the diaphragm pump module of the pump is also provided, wherein the top dead center is detected by means of the sensor. In particular the diaphragm pump takes the form of a reciprocating piston diaphragm pump, or a rotary diaphragm pump. In the case of a reciprocating piston diaphragm pump, the top dead center of the diaphragm pump module corresponds to the top dead center of its reciprocating piston, and the bottom dead center of the diaphragm pump module corresponds to the bottom dead center of its reciprocating piston. The sensor can be designed in different ways in different forms of embodiment of the pump and the method:
In one embodiment of the pump, provision is made for the sensor to be a microphone that is fitted so as to detect an impact noise of a diaphragm of the diaphragm pump module. Furthermore, a stop is provided in the diaphragm pump module, which is arranged in such a way that the diaphragm strikes it when the diaphragm pump module reaches its top dead center. When using a pump according to this embodiment, therefore, provision is made in the method for the top dead center to be identified when the microphone detects the impact noise.
In another embodiment of the pump, the sensor is a camera or a photodetector. If the sensor takes the form of a photodetector, a light source can also be provided. The camera or the photodetector is fitted so as to detect a position of the diaphragm of the diaphragm pump module. According to this embodiment, if a pump is used, the top dead center is identified in the method when the camera or the photodetector detects that the diaphragm has reached its top position. Here the top position is understood to be the position at which the diaphragm experiences its maximum deflection.
In a further embodiment of the pump, the sensor is a Hall effect sensor. This is fitted so as to measure a distance from the diaphragm of the diaphragm pump module. When using the pump according to this example of embodiment, the top dead center is identified when it is detected that the distance between the Hall effect sensor and the diaphragm assumes its minimum value.
In a further example of embodiment of the pump, the sensor is likewise a Hall effect sensor. However, this is fitted so as to measure an inhomogeneity in a magnetic field of the diaphragm pump module. For this purpose a standard Hall effect sensor of a motor controller of the diaphragm pump module can in general be used. However, the latter does not normally detect any inhomogeneities in the magnetic field. Such an inhomogeneity can be artificially generated by providing an inhomogeneity in a magnet of the diaphragm pump module. This is preferably aligned with the top or bottom dead center of the diaphragm pump module. When using a pump according to this embodiment, the top or bottom dead center is identified when the Hall effect sensor detects the occurrence of an inhomogeneity.
In a further embodiment of the pump, the sensor takes the form of a TRM (Tunnel Magneto Resistance) sensor. Moreover, in this embodiment of the pump an additional magnet is arranged in the diaphragm pump module. In particular, it is arranged on a motor shaft, and aligned with the top or bottom dead center of the diaphragm pump module. The TRM sensor is fitted so as to detect an angle of rotation of the magnet. If a pump according to this embodiment is used, the top or bottom dead center can be determined in the method from the angle of rotation of the magnet.
In different forms of embodiment of the invention the sensor can be arranged in a pump chamber of the pump, or in a working region of a magnetic armature of the pump.
If the top or bottom dead center is known, this enables, for example, an implementation of the pump in which the latter has an inlet and an outlet, wherein an inlet valve is arranged in the inlet and an outlet valve is arranged in the outlet. Each valve has a closure element, which is fitted so as to close the inlet or the outlet in a closure position. Furthermore, each valve has a restoring element, in particular in the form of a spring, which is fitted so as to push the closure element into the closure position by means of a restoring force. Finally, each valve has an actuator, which is fitted so as to move the closure element out of the closure position. When the actuator is actuated, it overcomes the restoring force, so that the inlet valve or outlet valve opens. When the actuation of the actuator is terminated, the restoring force pushes the respective closure element back into the closure position and the inlet valve or the outlet valve is once again closed.
Such a pump can be operated in a delivery mode of operation and a return mode of operation. In the delivery mode of operation, the inlet valve is opened and the outlet valve is closed, when the diaphragm pump module moves from the bottom dead center to the top dead center, and the inlet valve is closed and the outlet valve is opened, when the diaphragm pump module moves from the top dead center to the bottom dead center. In the return mode of operation, however, the inlet valve is closed and the outlet valve is opened, when the diaphragm pump module moves from the bottom dead center to the top dead center, and the inlet valve is opened and the outlet valve is closed, when the diaphragm pump module moves from the top dead center to the bottom dead center. This enables operation in both delivery and return modes of operation with a single pump, wherein valves are provided only in the inlet and the outlet of the pump, so that leakages can be minimized.
The computer program is equipped to execute each step of the method for determining the top and/or bottom dead center, and/or each step of the method for operating the pump, when executed on a computer or an electronic control unit. It enables the implementation of different forms of embodiment of the methods in an electronic control unit, without having to make structural changes to the latter. For this purpose it is stored on the machine-readable storage medium.
By uploading the computer program onto a conventional electronic control unit, the electronic control unit is obtained, which is equipped so as to determine a top and/or bottom dead center of a diaphragm pump module of a pump, and/or to operate a pump.
Examples of embodiment of the inventions are shown in drawings, and are explained in more detail in the following description.
In the following examples of embodiment of pumps as presented, these, as shown in
If, in
The determination of the top dead center OT required for the execution of the delivery and return modes of operation is implemented in different examples of embodiment of the pump by using different sensors:
In the first example of embodiment, as shown in
In a second example of embodiment, which is shown in
In the third example of embodiment, a Hall effect sensor 45 is arranged in the diaphragm working chamber 11. This continuously measures its distance to the diaphragm 12. When this distance reaches a minimum, the arrival at the top dead center is identified.
In a fourth example of embodiment of the pump, the diaphragm pump module 10 also features a Hall effect sensor. However, this Hall effect sensor 46 is not located in the diaphragm working chamber 11. Instead, it is positioned in such a way that it can identify an inhomogeneity in the magnetic field of the diaphragm pump module 10. The solenoid 16 is embodied such that this inhomogeneity occurs when the reciprocating piston 13 reaches its top dead center OT. In this way, the top dead center can be inferred from the signal of the Hall effect sensor 46.
In a fifth example of embodiment of the pump, the latter has a TMR sensor 47. In addition, another magnet 48 is arranged in such a way that its position alters as a result of the movement of the reciprocating piston 13. This results in an angle of rotation that can be detected by means of the TMR sensor 47. This arrangement is designed in such a way that the arrival at the top dead center OT can be determined from the angle of rotation by means of the TMR sensor.
Number | Date | Country | Kind |
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10 2018 212 985.1 | Aug 2018 | DE | national |