The present application is related to and claims the priority benefit of German Patent Application No. 10 2021 110 147.6, filed on Apr. 21, 2021, the entire contents of which are incorporated herein by reference.
The present disclosure relates to a cleaning unit for a sensor and to a sensor with the cleaning unit.
In analytical measurement technology, especially in the fields of water management and environmental analysis and in industry, e.g., in food technology, biotechnology, and pharmaceuticals, as well as for various laboratory applications, measurands, which give insights into the composition or the state of a measurement medium that is to be monitored, are vitally important. These measurands can be captured and/or monitored by means of various sensors, such as optical or acoustic sensors.
Sensors are arranged in a sensor housing in order to protect the sensor electronics from environmental influences—for example, from the measuring medium. Over time, however, it may happen that the sensor housing becomes soiled due to the environmental influences. For this reason, the sensor housing, in particular the window of the sensor housing used for detecting the sensor, must be cleaned regularly so that the sensor always provides optimal measurement results. In most cases, if the sensor housing is cleaned incorrectly, e.g., because the cleaning unit is defective, this has a direct effect on the quality of the sensor's measurement results. For example, dirt deposits on the sensor housing can cause greater rotational resistance of the cleaning unit and trigger a defect of the cleaning unit. For this reason, it is important to provide a reliable cleaning unit for a sensor.
It is, therefore, an aim of the present disclosure to propose a cleaning unit for a sensor which is robust, reliable, and cost-effective.
This aim is achieved according to the present disclosure by the cleaning unit for a sensor having a sensor housing and a drive shaft.
The cleaning unit according to the present disclosure comprises:
wherein the ring has at least one tooth which extends radially to the axis.
The cleaning unit according to the present disclosure makes it possible for dirt deposits to be avoided in the region of the axis of rotation of the cleaning unit, i.e., about the drive shaft. Thus, it is avoided that the motor connected to the drive shaft in the interior of the sensor body be subjected to an unnecessarily high torque, which ultimately leads to a longer service life of the motor and to more efficient cleaning of the sensor housing.
According to one embodiment of the present disclosure, the wiper element also has a lip which extends radially to the axis and is designed to be in contact with the sensor housing when the holding element is mounted on the drive shaft.
According to one embodiment of the present disclosure, the ring and the lip are formed in one piece.
According to one embodiment of the present disclosure, the wiper element is made from rubber.
According to one embodiment of the present disclosure, the holding element and the wiper element are produced by means of a multicomponent, injection-molding process.
According to one embodiment of the present disclosure, the lip is suitable for cleaning a predetermined region of the sensor housing when the cleaning unit is moved by the drive shaft at an angle about the axis, wherein the number of teeth is selected in such a way that the teeth are arranged on the ring such that, when the cleaning unit is rotated about the angle, the teeth pass through a full angle so that deposits between the teeth are avoided.
According to one embodiment of the present disclosure, the tooth has a cleaning surface and the lip has a cleaning surface. The two cleaning surfaces are arranged in one plane.
According to one embodiment of the present disclosure, the holding element is detachably attached to the drive shaft—for example, by means of a screw.
According to one embodiment of the present disclosure, the sensor has a sensor housing and a drive shaft, and the cleaning unit is attached to the drive shaft.
According to one embodiment of the present disclosure, between the cleaning unit and the sensor housing, a sliding element is arranged on the drive shaft.
The present disclosure is explained in more detail on the basis of the following description of the figures. The following are shown:
The holding element 20 extends along the axis X1 and is suitable for being mounted on the drive shaft 3 so that the cleaning unit 10 can be moved by the drive shaft 3. For example, the holding element 20 can be detachably attached to the drive shaft 3 by means of a screw 4 (see
Of course, other detachable fastening types for attaching the holding element 20 to the drive shaft 3 are also conceivable. The advantage of a detachable attachment of the holding element 20 or of the cleaning unit 10 to the drive shaft 3 is obvious: A worn cleaning unit 10 can thus be replaced quickly and easily, without having to replace further components of the sensor 1.
According to one embodiment, a sliding element 5 is arranged between the cleaning unit 10 and the sensor housing 2 (see
The wiper element 30 is attached to the holding element 20—for example, by a form fit. For example, the holding element 20 has recesses or a groove in order to receive the wiper element 30 (see, for example,
The wiper element 30 has a ring 31 which axially surrounds the holding element 20 so that the ring 31 is in contact with the sensor housing 2 of the sensor 1 when the holding element 20 is mounted on the drive shaft 3 (see, for example,
The ring 31 has at least one tooth 32. The tooth 32 extends radially to the axis X1. The ring 31 has, for example, eight teeth 32, as shown in
The number of teeth 32 is preferably selected such that the deposits A are moved when the cleaning unit 10 is rotated by the angle W.
In other words, the number of teeth 32 is selected and the teeth 32 are arranged on the ring 31 such that, when the cleaning unit 10 is rotated by the angle W, the teeth 32 pass through a full angle. This ensures that no deposits A accumulate between the teeth 32; instead, the deposits A are moved or removed by the teeth 32.
This means that, when the cleaning unit 10 is rotated by, for example, an angle W of 90°, four teeth 32 spaced evenly from one another are arranged on the ring 31 in order to jointly pass through a full angle. In this case, each tooth is rotated by 90°, as a result of which the full angle of 360° is achieved by means of the uniform spacing of the teeth.
The lip 34 extends radially to the axis X1. The lip 34 is designed to be in contact with the sensor housing 2 when the holding element 20 is mounted on the drive shaft 3.
As can be seen in
As can be seen in
Number | Date | Country | Kind |
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10 2021 110 147.6 | Apr 2021 | DE | national |
Number | Date | Country |
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102121900 | Jul 2011 | CN |
0590487 | Apr 1994 | EP |
1816462 | Aug 2007 | EP |
20090100053 | Sep 2009 | KR |
Number | Date | Country | |
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20220342208 A1 | Oct 2022 | US |