The German publication DE 10 2005 002 363 B3 discloses a sensor arrangement having at least two sensor elements. The sensor elements are arranged in a common housing.
In one aspect, the invention specifies a sensor arrangement that detects the temperatures at an interface between at least two temperature zones.
A sensor arrangement comprising at least two sensor components is specified. The sensor components each comprise a housing with at least one sensor element. The housings of the sensor components each comprise at least one part of a connecting device which can be used to mechanically connect the at least two sensor components of the sensor arrangement to one another.
In one embodiment of the sensor arrangement, the sensor elements of the at least two sensor components are thermally insulated from one another.
In one embodiment, the sensor arrangement consists of at least two individual independent sensor components which are thermally decoupled from one another.
In one embodiment of the sensor arrangement, at least one sensor element is arranged in a cavity of the sensor component. In another embodiment, at least one sensor element is arranged in a depression in the housing wall on the outside or on an outer surface of the housing wall of a sensor component. In one embodiment, the sensor element is encased with a potting compound in order to protect against corrosion or destruction.
In order to detect the temperatures at an interface between two temperature zones as independently as possible, the sensor elements are arranged such that they are spatially separate, with the result that the sensor elements are thermally and spatially decoupled from one another.
In one embodiment of the sensor arrangement, the connecting device of the sensor components is in the form of a tongue-and-groove plug-in connection. At least one sensor component has at least one groove. At least one further sensor component has at least one tongue which fits into the groove of the one sensor component. The groove and the tongue are preferably designed in such a manner that they can be plugged into one another and together have a preferably form-fitting connection.
In one embodiment of the sensor arrangement, the tongue-and-groove plug-in connection is in the form of a dovetail connection or a fir tree connection. The groove of one component is at least designed in such a manner that the tongue of the further component preferably fits into the groove in a form-fitting manner.
In one embodiment of the sensor arrangement, the tongue is in the form of a separate connecting piece which is arranged on the housing of the sensor component or is mechanically connected to the latter, for example, adhesively bonded. In another embodiment, the tongue is an integrally formed part of the sensor component to be connected. The tongue is plugged into the housing of the sensor component.
In one embodiment of the sensor arrangement, each of the sensor components has at least two electrical connecting contacts for electrically connecting the sensor elements. In one embodiment in which a sensor component has more than one sensor element, electrical contacts of the respective sensor elements form the electrical connection of the sensor component.
In one embodiment of the sensor arrangement, at least one sensor element is arranged on a printed circuit board. In one embodiment, the printed circuit board is preferably arranged in the housing of one of the sensor components. In one embodiment, the printed circuit board has at least two electrical connecting contacts. In one embodiment of the sensor arrangement, further electrical components are arranged on the printed circuit board.
In one embodiment of the sensor arrangement, the housings of the sensor components contain at least a plastic. In the embodiment of the sensor components as temperature sensors, the housing of the sensor components preferably has good thermal properties at least in the region of the sensor elements. The housing preferably has good thermal conductivity in the region of the sensor element. When the sensor elements are in the form of optical sensors, the housing of the sensor components has an optically transparent region, preferably in the infrared range, at least in the region of the sensor elements. The optically transparent region of the at least one sensor component is in the form of a preferably optically transparent cap, for example. The cap comprises a material which is preferably optically transmissive to radiation in the infrared range.
In one embodiment of the sensor arrangement, at least two of the sensor elements are in the form of temperature sensor elements. The temperature sensor elements are preferably in the form of NTC (component with a negative temperature coefficient) elements. In another embodiment, the temperature sensor elements are in the form of PTC (component with a positive temperature coefficient) elements.
In one embodiment of the sensor arrangement, at least one sensor component has at least two sensor elements, a first sensor element being in the form of an optical sensor, and a further sensor element being in the form of an NTC element. The optical sensor is preferably a photodiode for detecting the thermal radiation from a radiation source. The NTC element is preferably used to detect the convection heat and/or the thermal radiation from a radiation source.
A measuring arrangement for detecting at least two temperature zones using a sensor arrangement described is also specified, at least one sensor element of a first sensor component detecting the temperature of a first temperature zone. At least one sensor element of a second sensor component detects the temperature of a second temperature zone.
The sensor arrangement described above and the measuring arrangement are preferably used when detecting the inside temperature of a motor vehicle. A sensor arrangement as described makes it possible to detect the temperature at the interface between two temperature zones. The mutual influence of the sensor elements is minimized by housings which are thermally decoupled from one another. The temperatures of at least two adjacent temperature zones can thus be detected with one common component.
The sensor arrangement and the measuring arrangement are explained in more detail using the following figures and exemplary embodiments. The drawings should not be interpreted as being true to scale. Rather, individual dimensions of the illustrations may be increased, decreased or else distorted. Elements which are the same as one another or which undertake the same function have the same reference symbol.
a diagrammatically shows a view of the underside of the first sensor component;
b shows a cross section through a sensor component according to
c diagrammatically shows a side view of the first sensor component;
a diagrammatically shows a side view of the second sensor component; and
b diagrammatically shows another side view of the second sensor element.
The following list of reference symbols may be used in conjunction with the drawings:
a shows a view of the underside of a first sensor component 2 according to the embodiment in
In another embodiment which is not illustrated, it is also possible for a plurality of sensor elements 6, 7 to each have completely separate connecting contacts.
b shows a cross section through the second sensor component 2 according to the embodiment in
c diagrammatically shows a view of the housing 4 of the first sensor component 2 from the end face. In the region of the end face, the housing 4 of the first sensor component 2 has an optically transparent cap 18 inside which the sensor elements of the first sensor component 2 are arranged.
a shows a view of the embodiment of the second sensor component 3 from the rear side of the housing 5. The housing 5 of the second sensor component 3 has a groove 10 in the lower region, which groove extends over the entire width of the housing 5. A sensor element 8 is arranged in the upper region and can be contact-connected via electrical connecting contacts 17.
b shows the profile of the housing 5 of the second sensor component 3 according to the embodiment in
Although only a restricted number of possible developments of the invention could be described in the exemplary embodiments, the invention is not restricted thereto. In principle, it is possible for the sensor arrangement to comprise a plurality of sensor components which are mechanically connected to one another via connecting devices and to have a plurality of sensor elements which are thermally decoupled.
The description of the items specified here is not restricted to the individual special embodiments; rather, the features of the individual embodiments can be combined with one another in any desired manner, if technically useful.
Number | Date | Country | Kind |
---|---|---|---|
10 2009 017 230 | Apr 2009 | DE | national |
This application is a continuation of co-pending International Application No. PCT/EP2010/054604, filed Apr. 7, 2010, which designated the United States and was not published in English, and which claims priority to German Application No. 10 2009 017 230.0, filed Apr. 9, 2009, both of which applications are incorporated herein by reference.
Number | Name | Date | Kind |
---|---|---|---|
4407141 | Paddock | Oct 1983 | A |
6642704 | Hastings et al. | Nov 2003 | B2 |
6997605 | Trapp et al. | Feb 2006 | B2 |
20020048308 | Knittel et al. | Apr 2002 | A1 |
20030086477 | Tola | May 2003 | A1 |
20040223534 | Trapp et al. | Nov 2004 | A1 |
20090245324 | Sunaga et al. | Oct 2009 | A1 |
Number | Date | Country |
---|---|---|
1409120 | Apr 2003 | CN |
7219095 | Nov 1972 | DE |
0808089 | Nov 1997 | DE |
103 16 010 | Nov 2004 | DE |
100 49 979 | Dec 2005 | DE |
10 2005 002 363 | Aug 2006 | DE |
0 808 089 | Nov 1997 | EP |
59-143261 | Sep 1984 | JP |
04-118535 | Apr 1992 | JP |
05-079865 | Mar 1993 | JP |
Number | Date | Country | |
---|---|---|---|
20120051393 A1 | Mar 2012 | US |
Number | Date | Country | |
---|---|---|---|
Parent | PCT/EP2010/054604 | Apr 2010 | US |
Child | 13267475 | US |