The invention relates to an apparatus for measuring a measurement variable of a fluid, particularly a sensor, such as pressure sensor, a displacement sensor or the like.
The measuring apparatus may be a sensor, such as a pressure sensor, a displacement sensor, or the like. Such measuring apparatuses are used in particular to measure a measurement variable of a fluid, for example, to measure the water level in washing machines, dishwashers, wet and/or dry vacuum cleaners or in other water-guiding parts of domestic appliances. In particular, these measuring apparatuses are pressure sensors for low pressures, for example, specifically less than 3,500 Pa (Pascal).
Measuring apparatuses of this type comprising a housing and a diaphragm arranged in and/or on the housing are known. A resilient element for restoring the diaphragm is located in the housing. A signal transmitter is operatively connected to the diaphragm and/or to the resilient element. A signal receiver cooperates with the signal transmitter in order to generate the measuring signal. It has been proven that external influences on the measuring apparatus disturb the resilient element, which in turn may lead to a falsification of the measuring signal.
The object of the present invention is to develop the measuring apparatus in such a way that the quality of the measuring signal is improved. In particular, a stable mechanical measuring system is to be created, which functions independently of external influences where possible.
In the case of the measuring apparatus according to the present invention, the resilient element is held on the housing and/or is fastened on the housing at the edge of the resilient element, more specifically at parts of the edge. The suspension or the fastening of the resilient element is thus decoupled from the actual spring element, such that the spring element can swing freely. Due to the decoupling, disturbing external influences cannot act on the spring element, thus advantageously preventing falsifications of the measuring signal. In other words, the present invention provides a mechanical decoupling of the outer contours of the measuring apparatus from the actual mechanical measuring system by means of a sprung suspension.
In one embodiment, to reduce the installation height of the measuring apparatus, it is proposed for the resilient element to be formed in the manner of a disk-shaped leaf spring. The leaf spring expediently has a substantially circular shape, which corresponds substantially to the shape of the diaphragm. A particularly high restoring force can be achieved with the resilient element since the leaf spring has a spring element running in a spiraled manner from the center to the edge region of the leaf spring. A compact embodiment with high spring force is thus ensured.
In a simple embodiment of the present invention, at least one lug can be found on the edge region of the resilient element in order to hold and/or to fasten the resilient element. Three lugs are preferably attached to the resilient element and are arranged uniformly over the periphery at the edge of the resilient element, whereby a stable support of the resilient element on the housing is ensured. For a particularly stable fastening, the lug can be fastened on the housing by adhesive bonding. In one embodiment, the lug may comprise an indentation in order to ensure sufficient receipt of adhesive by means of a corresponding flow into the indentation in the event of adhesive bonding.
In another embodiment, the lug expediently comprises two mutually opposed indentations, which ensures a particularly durable adhesive bond. The resilient element can be produced cost-effectively from metal as a punched and/or bent part, wherein the lug can be easily stamped onto the resilient element and bent expediently as necessary. The resilient element including the lug can be produced in a simple manner as a punched and bent part in a corresponding tool.
In a simple and cost-effective embodiment, the signal transmitter consists of a magnet. The signal receiver consists of a position sensor, which detects the magnetic field generated by the magnet. The position sensor may be a Hall sensor. It is proposed to arrange the signal transmitter on the resilient element, more specifically in particular in the center thereof. In order to prevent a displacement between the magnet and the spring, the signal transmitter is expediently adhesively bonded to the resilient element.
In order to largely protect the sensitive parts of the measuring apparatus against harmful influences, the diaphragm and the resilient element and also the signal transmitter and the signal receiver can be arranged in the interior of the housing. The housing then comprises a connection piece for feeding the fluid that is to be measured to the diaphragm.
The advantages achieved by the present invention lie in particular in the fact that disturbing external influences are not transferred to the resilient element, or more specifically are not transferred to the spring element. Falsifications of the measuring signal by external influences are therefore prevented and the quality of the measuring signal is increased.
An exemplary embodiment of the invention with different developments and embodiments is illustrated in the drawings and will be described in greater detail hereinafter.
In
As can also be deduced from
The signal transmitter 10 consists of a magnet, more specifically of a permanent magnet. The magnet (signal transmitter 10) is fastened on the resilient element 9, and more specifically is adhesively bonded to the resilient element 9 in the center 13 thereof (see
The substantially circular diaphragm 8 consists of an elastomer, for example of silicone. The spring (resilient element 9) consists of metal, for example of a spring steel. The spring (resilient element 9), which is likewise substantially circular, is designed in the manner of a disk-shaped leaf spring, as can be seen with reference to
The suspension 16 is formed as a lug 17, which can be fastened on the housing 2 by means of adhesive bonding. In accordance with
The present invention is not limited to the described and illustrated exemplary embodiments. Rather, it comprises all developments routine in the art within the scope of the invention defined by the claims. Such a measuring apparatus may thus also be used as another sensor, such as a fill level sensor, displacement sensor, or the like, more specifically not just for domestic appliances, but also in other applications, for example in lab technology and in chemical engineering.
1: pressure sensor
2: housing
3: connection piece
4: plug connection
5: detent mechanism
6: base (of housing)
7: cover (of housing)
8: diaphragm
9: resilient element/spring/leaf spring
10: signal transmitter/magnet
11: signal receiver/position sensor
12: printed circuit board
13: center (of resilient element)
14: edge region (of resilient element)/edge
15: spiraled spring element
16: suspension
17: lug (on spring)
18, 18′: indentation (on lug)
19: adhesive droplet
Number | Date | Country | Kind |
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10 2010 053 455 | Nov 2010 | DE | national |
This application is a continuation of International Application No. PCT/EP2011/005975 filed Nov. 29, 2011, which designated the United States, and claims the benefit under 35 USC §119(a)-(d) of German Application No. 10 2010 053 455.2 filed Nov. 29, 2010, the entireties of which are incorporated herein by reference.
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5140733 | Shimada et al. | Aug 1992 | A |
8631710 | Weisser et al. | Jan 2014 | B2 |
20050000291 | Shirai et al. | Jan 2005 | A1 |
Number | Date | Country |
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24 42 155 | Mar 1976 | DE |
689 08 697 | Dec 1993 | DE |
10 2009 050 554 | Apr 2010 | DE |
0 913 677 | May 1999 | EP |
1 621 860 | Feb 2006 | EP |
451178 | Jul 1936 | GB |
1519803 | Aug 1978 | GB |
1 519 803 | Aug 1998 | GB |
Entry |
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German Search Report dated Aug. 4, 2011. |
International Search Report and Written Opinion dated Jun. 27, 2012. |
Number | Date | Country | |
---|---|---|---|
20130291646 A1 | Nov 2013 | US |
Number | Date | Country | |
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Parent | PCT/EP2011/005975 | Nov 2011 | US |
Child | 13904223 | US |