FLAT FLEXIBLE COATING ARRANGEMENT
20200029414 ยท 2020-01-23
Inventors
- Leonhard Trutwig (Duderstadt, DE)
- Mirko Hahnl (Berlingerode, DE)
- Karl-Otto Storck (Duderstadt, DE)
- Melanie Ricke (Katlenburg-Lindau, DE)
- Dirk Wandke (Heilbad Heiligenstadt, DE)
- Dirk Simon (Bovenden, DE)
Cpc classification
H05H2245/34
ELECTRICITY
H05H2245/36
ELECTRICITY
H05H1/2406
ELECTRICITY
International classification
Abstract
The invention relates to a flat flexible coating arrangement comprising a coating surface (9) for placing on a body region of a living being and at least one electrode (3, 3) arranged above the coating surface (9), and a dielectric (1) containing the at least one electrode (3, 3), the at least one electrode (3, 3) comprising a supply line for an AC high voltage in order to form a dielectrically impeded plasma. Said arrangement enables fusion processes over the course of the plasma treatment and optionally wound healing without removing the coating arrangement from the body region by means of at least one built-in sensor (14) for determining at least one parameter of the body region.
Claims
1. A planar flexible contact arrangement, comprising: a contact surface configured for contact on a body region of a living being; at least one electrode arranged above the contact surface; a dielectric material embedding the at least one electrode, wherein the at least one electrode has a supply line for an AC high voltage to form a dielectric barrier plasma; and at least one sensor for ascertaining at least one parameter of the body region.
2. The contact arrangement as claimed in claim 1, wherein the at least one sensor is connected to an electric voltage.
3. The contact arrangement as claimed in claim 1 wherein the at least one sensor is configured for measuring an oxygen saturation in the body region.
4. The contact arrangement as claimed in claim 1 wherein the at least one sensor is configured for measuring a local temperature in the body region.
5. The contact arrangement as claimed in claim 1 wherein the at least one sensor is configured for detecting a color change in the body region.
6. The contact arrangement as claimed in claim 1 wherein the at least one sensor is configured for measuring the pH value in the body region.
7. The contact arrangement as claimed in claim 1 wherein the at least one sensor comprises multiple sensors for detecting a same measurement parameter, and are arrangeable at different points of the body region.
8. The contact arrangement as claimed in claim 1 wherein the at least one sensor comprises multiple sensors which differ from one another and detect different measurement parameters.
9. The contact arrangement as claimed in claim 1, further comprising: a terminal arrangement to a supply voltage for the at least one sensor.
10. The contact arrangement as claimed in claim 1, further comprising: a battery arrangement for a supply voltage for the at least one sensor.
11. The contact arrangement as claimed in claim 1, further comprising: a high-voltage step for generating AC high voltage for the at least one electrode from an output voltage of a battery arrangement of the contact arrangement.
Description
[0021] The invention is to be explained in greater detail hereafter on the basis of exemplary embodiments schematically illustrated in the drawing, in which:
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029] The exemplary embodiment illustrated in
[0030] Along a longitudinal axis of the web-shaped attachment 2, the electrodes 3 are separated from one another in the dielectric material 2 by a spacing 5, so that the spacing forms a middle strip in the dielectric material in which no electrodes 3 are located.
[0031] As may be seen from
[0032] The passage holes 6 of the dielectric material also extend through the electrodes 3, so that they extend through the dielectric material 1 from a lower contact surface 9 up to an upper side 10. For example, wound secretion can be suctioned off through the passage openings 6 if the contact arrangement has a partial vacuum source applied to it on the upper side 10 and is covered in a sealed-off manner.
[0033] Respective corresponding passage holes 11 of the electrodes 3 align with the passage holes 6 of the dielectric material. These passage holes 11 have a larger diameter than the passage holes 6, so that the edge of the passage holes 11 of the electrodes 3 is covered by dielectric material if the passage holes 6 of the dielectric material 1 form a smooth continuous channel having a constant cross section.
[0034] The contact surface 9 of the dielectric material is provided below the electrodes 3 with intersecting webs 12 forming a grid, which delimit square chambers 13, which are open toward the contact surface 9 in the illustrated exemplary embodiment, within the dielectric material 2. The chambers 13 represent air chambers, in which the plasma forms below the electrodes 3 when the electrodes 3 are provided with a suitable high voltage. The electrodes 3 are furthermore covered in this case toward the chambers 13 by a layer of the dielectric material 1. The passage holes 6 of the dielectric material are located centrally in the chambers 13.
[0035] The free edges of the webs 12 thus jointly form the contact surface 9 for the contact arrangement.
[0036] In the illustrated exemplary embodiment, eight sensors 14 are arranged at equal spacing in relation to one another in extension of the longitudinal axis of the web-shaped attachment 2 in the spacing 5 between the electrodes 3. The sensors 14 are embedded in the dielectric material 1.
[0037] As
[0038] If the sensors 14 are to be supplied with a separate supply voltage via the web-shaped attachment 2, a corresponding conductor track can be laid in the web-shaped attachment and the contacting can take place therein.
[0039] The sensors 14 can be designed as optical sensors, so that they do not require direct contact with the skin of the patient. However, it is recognizably also possible to form the dielectric material below the sensors without chambers 12 and to terminate the sensors flush with the contact surface 9. In this case, the sensors 14 are already embedded during the production of the lower layer 15 of the dielectric material 1.
[0040] The embodiment shown in
[0041] In this exemplary embodiment, the dielectric material 1 is provided with passage holes 6 in the region of the electrodes 3. The electrodes 3 have larger passage holes 11 where the passage holes 6 extend through electrodes 3.
[0042] The sensors 14 are arranged here on a center line in portions of the meandering spacing 5 extending parallel to one another.
[0043] The special feature of this contact arrangement is that it does not require an external voltage supply, but rather comprises integrated in the dielectric material a battery arrangement 17 made of three micro-batteries, from which two conductor tracks 18 lead to a microcomputer 19, at the output of which a controller 20 and, adjoining it, a high-voltage step 21 having two transformer coils are connected. At the output of the high-voltage step 21, the two electrodes 3 are connected via conductor tracks 18.
[0044] It is readily recognizable that the sensors are connectable in a routine manner (not shown) to the microcomputer 19, using which the data measured by the sensors 14 can be stored or analyzed and possibly displayed.
[0045]
[0046] The sensors (14) or at least one of them can also manage without voltage supply if they physically or chemically react to physical parameters to be monitored and thus generate an optical or possibly electrical signal. The optical signal can consist of a visible change of the material as a function of the environmental parameter, as is known from indicator papers for the pH value, for temperatures, etc. An electrical signal can be formed, for example, without voltage supply by a piezoelectric sensor if, for example, a pressure situation in the body region is monitored. The electrical signal can then be analyzed in a conventional manner. In general, the output signals of the sensors can be transmitted to an analysis stage inside the contact arrangement or also to an external analysis arrangement. This transmission can take place via a line or also wirelessly via close-range communication (for example, according to the Bluetooth standard).