SENSOR DEVICE
20240167975 ยท 2024-05-23
Assignee
Inventors
Cpc classification
International classification
Abstract
A sensor device is for determining moisture using an electrical conductivity measurement. A non-conducting support has individual electrical conductors. The electrical resistance between the electrical conductors is dependent upon the amount of moisture present on the support and the electrical conductors. The respective electrical conductor is an integral component of a hook-and-loop fastener part.
Claims
1. A sensor device configured for determining moisture using an electrical conductivity measurement, comprising: a non-conducting support which has individual electrical conductors; and wherein the electrical resistance between the electrical conductors is dependent upon the amount of moisture present on the support and the electrical conductors; wherein the respective electrical conductor is an integral component of a hook-and-loop fastener part.
2. The sensor device according to claim 1, wherein the hook-and-loop fastener part is made of a base fabric, made of warp and weft threads, through which passes, at least partially, at least one functional thread which partially forms fastener elements protruding above the base fabric, and in that the electrical conductor is woven into the base fabric as well as a respective further functional thread.
3. The sensor device according to claim 2, including fastener hooks, wherein the fastener hooks are designed such that loops of the functional thread are cut open on the side, in a ratio of about one-third to two-thirds, wherein fastener heads are formed on the free loop ends and are formed by the separation of the loops being carried out thermally and the free loop ends continuing to be heated.
4. The sensor device according to claim 3, wherein the further functional thread is woven into the base fabric as a warp thread.
5. The sensor device according to claim 4, wherein the further functional thread consists of a non-rusting, multifilament stainless steel yarn.
6. The sensor device according to claim 5, wherein the further functional threads run parallel in associated pairs at a pre-specifiable distance from one another in the hook-and-loop fastener part.
7. The sensor device according to claim 6, wherein the hook-and-loop fastener part is designed as a flat, flexible strip, along whose two longitudinal edges a further functional thread runs over the entire strip length.
8. The sensor device according to claim 7, wherein the electrically conductive further functional threads are firmly bonded on the rear side to a non-conductive polyurethane layer, which adjoins a surface adhesion part, which is fixedly connected to this layer.
9. The sensor device according to claim 8, wherein the surface adhesion part forms an again releasable hook-and-loop fastener with the fastener elements of the hook-and-loop fastener part.
10. The sensor device according to claim 8, wherein electrical contacting points are applied or incorporated into the strip-like hook-and-loop fastener part, in which the respective further functional thread ends.
11. The sensor device according to claim 9, wherein an evaluation device for the measurement data is connected to the respective further functional thread.
12. The hook-and loop fastener part as part of the sensor device according to claim 1 has non-conductive functional threads which form individual fastener elements protruding from the base fabric, and has electrically conductive, further functional threads as an integral component of the base fabric.
13. The sensor device according to claim 1, including fastener hooks, wherein the fastener hooks are designed such that loops of the functional thread are cut open on the side, in a ratio of about one-third to two-thirds, wherein fastener heads are formed on the free loop ends and are formed by the separation of the loops being carried out thermally and the free loop ends continuing to be heated.
14. The sensor device according to claim 2, wherein the further functional thread is woven into the base fabric as a warp thread.
15. The sensor device according to claim 2, wherein the further functional thread consists of a non-rusting, multifilament stainless steel yarn.
16. The sensor device according to claim 2, wherein the further functional threads run parallel in associated pairs at a pre-specifiable distance from one another in the hook-and-loop fastener part.
17. The sensor device according to claim 2, wherein the hook-and-loop fastener part is designed as a flat, flexible strip, along whose two longitudinal edges a further functional thread runs over the entire strip length.
18. The sensor device according to claim 2, wherein the electrically conductive further functional threads are firmly bonded on the rear side to a non-conductive polyurethane layer, which adjoins a surface adhesion part, which is fixedly connected to this layer.
19. The sensor device according to claim 2, wherein the surface adhesion part forms an again releasable hook-and-loop fastener with the fastener elements of the hook-and-loop fastener part.
20. The sensor device according to claim 2, wherein electrical contacting points are applied or incorporated into the strip-like hook-and-loop fastener part, in which the respective further functional thread ends.
21. The sensor device according to claim 2, wherein an evaluation device for the measurement data is connected to the respective further functional thread.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The sensor device according to the invention is explained in more detail below with reference to an exemplary embodiment according to the drawing. In the drawings, which are schematic representations that are not to scale:
[0019]
[0020]
[0021]
DETAILED DESCRIPTION OF EMBODIMENTS OF THE INVENTION
[0022]
[0023] This hook-and-loop fastener part 8 can be lengthened in any way within the image plane both in one and in the other image direction, and the geometric dimensions of the flat material are dependent upon the specifications of the weaving device on which the hook-and-loop fastener part is produced.
[0024] The hook-and-loop fastener part 8 consists of warp threads 10 and weft threads 12, which, woven together at right angles, form the base fabric 14 for the hook-and-loop fastener part 8. Furthermore, the base fabric 14 is designed with functional threads 16 in the manner of pile threads, and the respective functional thread 16 forms the individual fastener elements 18 for the flat hook-and-loop fastener part. Furthermore, the production direction for the hook-and-loop fastener part 8 in the context of the weaving production is reproduced on its upper side, as seen in the direction of view of
[0025] In the shown arrangement according to
[0026] The named loops 22, 24 form the fastener elements 18, and the loops 22, 24 remain closed as shown in
[0027] As can also be seen from
[0028] As shown, in particular, in the representation according to
[0029] The base fabric 14 of
[0030] With the aid of a voltage source 48 in the form of a direct current battery, electrical current is sent through the sensor device according to
[0031] The strip-shaped sensor device according to
[0032] Since the strip 42 is extremely flexible and can be looped back onto itself and fixed in a releasable manner on other components of almost any design, another preferred application would be if such a strip 42 were to comprise a sleeve connection in pipelines in order to be able to detect a possible water escape in the region of the sleeve connection. If this is then used as an evaluation device, which allows a wireless measured value transmission, a central location can be used to monitor moisture, and, in the process, to monitor several such strips 42.
[0033] Due to the special fabric design for the base fabric 14, it is also ensured that, during operation with the sensor device, the open fabric structure of the strip 42 cannot be saturated with water vapor, which could greatly reduce the measurement sensitivity. Rather, due to the open fabric structure, drying always occurs, and the sensor is regenerated in this respect and available without measurement error for repeated moisture measurements. The fiber material can also be at least partially hydrophobic or coated, so that, even in this respect, residual moisture harmful for the measurement is removed.
[0034] It goes without saying that the sensor device presented above is only one possible embodiment of a plurality of designs. It would thus be conceivable to combine several different fabrics with one another, so that a wide variety of types of fabric upper sides 32 and fabric undersides 26 can result. Furthermore, it is also possible to obtain the hook-and-loop fastener part in a casting process (chill-rolling process) as a microreplication part, and to incorporate the electrical conductors, at least partially exposed, as the further functional threads 38 into the cast compound.
[0035] Since the strip solution according to