SECURING METHOD, SECURING DEVICE, USE OF A SECURING DEVICE AND TEMPERATURE SENSOR
20200191662 · 2020-06-18
Inventors
Cpc classification
G02B6/02104
PHYSICS
G01K11/32
PHYSICS
G01K11/3206
PHYSICS
C03B23/207
CHEMISTRY; METALLURGY
International classification
Abstract
The invention relates to a securing method, comprising the following Steps: providing an optical waveguide made of a material with a first melting temperature, wherein a sensor region of the optical waveguide has at least one integrated temperature sensor element; providing a capillary made of a material with a second melting temperature, in such a way that the capillary surrounds at least regions of the sensor region of the optical waveguide, and that a securing region of the capillary is arranged at a distance from the sensor region, wherein the second melting temperature is lower than the first melting temperature, wherein the temperature sensor element is arranged in an end region of the optical waveguide, and the end region is inserted into the capillary; securing the securing region of the capillary to the optical waveguide, involving a heating of the securing region of the capillary to a heating temperature that is equal to or higher than the second melting temperature; and heating the free end of the capillary to a heating temperature that is equal to or higher than the second melting temperature. A temperature sensor comprising an optical waveguide with at least one integrated temperature sensor element can be obtained with the method. A securing device comprises an Insertion region for the capillary, a detector and a heating region. The securing device can be used for carrying out the method.
Claims
1. A securing method, comprising: providing an optical waveguide made of a material with a first melting temperature, wherein a sensor region of the optical waveguide comprises at least one integrated temperature sensor element; providing a capillary made of a material with a second melting temperature in such a way that the capillary surrounds at least regions of the sensor region of the optical waveguide, and that a securing region of the capillary is arranged at a distance from the sensor region, wherein the second melting temperature is lower than the first melting temperature, wherein the temperature sensor element is arranged in an end region of the optical waveguide, and the end region is inserted into the capillary so that an end of the capillary is exposed; securing the securing region of the capillary to the optical waveguide, involving a heating of the securing region of the capillary to a heating temperature that is equal to or higher than the second melting temperature; heating the exposed end of the capillary to a heating temperature that is equal to or higher than the second melting temperature.
2. The securing method according to claim 1, wherein the heating temperature is lower than the first melting temperature.
3. The securing method according to claim 1, wherein the securing comprises: heating the securing region to the heating temperature for a predetermined period of time; and allowing the securing region to cool down.
4. The securing method according to claim 1, wherein the securing comprises: heating the securing region to the heating temperature, wherein the heating temperature is equal to or higher than the first melting temperature, for a predetermined duration of time, wherein the predetermined duration of time is selected such that the material of the optical waveguide during securing is heated to a temperature that is lower than the first melting temperature; and allowing the securing region to cool down.
5. The securing method according to claim 3, wherein the securing further comprises: temporarily fixing the securing region relative to at least the axial direction of the optical waveguide prior to heating; and after allowing to cool down, the fixing is released.
6. The securing method according to claim 3, wherein the predetermined duration of time is at least so long that at a given diameter, a given material thickness and a given elongation of the securing region in the axial direction, the material of the capillary melts in the securing region, and wherein the predetermined duration of time is at maximum so long that the material of the optical waveguide remains in the non-molten state.
7. The securing method according to claim 3, wherein the predetermined duration of time is at maximum so long that a region of the capillary surrounding the sensor region of the optical waveguide remains in the non-molten state.
8. The securing method according to claim 1, wherein the securing region of the capillary is provided to be circumferential around an axis of the capillary, and wherein, after securing, the securing region circumferentially abuts against the peripheral surface of the optical waveguide in at least one manner selected from the group consisting of a friction-fit manner and/a circumferentially sealing manner.
9. The securing method according to claim 1, wherein the securing region of the capillary has at least one axial elongation which is suitable to withstand a predetermined force in the axial direction between the capillary and the optical waveguide after securing.
10. A securing device, comprising: an insertion region for the capillary surrounding a sensor region of an optical waveguide at least in regions, wherein the capillary comprises a securing region that can be arranged at a distance from the sensor region of the optical waveguide; a detector configured to detect a marking on the capillary which is provided on the capillary in order to indicate the securing region of the capillary; a heating region configured to heat the securing region of the capillary.
11. Use of a securing device, the securing device, comprising: an insertion region for the capillary surrounding a sensor region of an optical waveguide at least in regions, wherein the capillary comprises a securing region that can be arranged at a distance from the sensor region of the optical waveguide; a detector configured to detect a marking on the capillary which is provided on the capillary in order to indicate the securing region of the capillary; and a heating region configured to heat the securing region of the capillary, for carrying out a securing method, the securing method, comprising: providing an optical waveguide made of a material with a first melting temperature, wherein a sensor region of the optical waveguide comprises at least one integrated temperature sensor element; providing a capillary made of a material with a second melting temperature in such a way that the capillary surrounds at least regions of the sensor region of the optical waveguide, and that a securing region of the capillary is arranged at a distance from the sensor region, wherein the second melting temperature is lower than the first melting temperature, wherein the temperature sensor element is arranged in an end region of the optical waveguide, and the end region is inserted into the capillary so that an end of the capillary is exposed; securing the securing region of the capillary to the optical waveguide, involving a heating of the securing region of the capillary to a heating temperature that is equal to or higher than the second melting temperature; heating the exposed end of the capillary to a heating temperature that is equal to or higher than the second melting temperature.
12. A temperature sensor, comprising an optical waveguide having at least one integrated temperature sensor element, wherein the temperature sensor can be obtained by a securing method, the securing method, comprising: providing an optical waveguide made of a material with a first melting temperature, wherein a sensor region of the optical waveguide comprises at least one integrated temperature sensor element; providing a capillary made of a material with a second melting temperature in such a way that the capillary surrounds at least regions of the sensor region of the optical waveguide, and that a securing region of the capillary is arranged at a distance from the sensor region, wherein the second melting temperature is lower than the first melting temperature, wherein the temperature sensor element is arranged in an end region of the optical waveguide, and the end region is inserted into the capillary so that an end of the capillary is exposed; securing the securing region of the capillary to the optical waveguide, involving a heating of the securing region of the capillary to a heating temperature that is equal to or higher than the second melting temperature; heating the exposed end of the capillary to a heating temperature that is equal to or higher than the second melting temperature.
13. The securing device of claim 10, wherein the heating region is configured to heat the securing region of the capillary automatically for a predetermined duration of time when the detector detects the marking.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0033] Embodiments of the invention are illustrated in the drawings and explained in more detail in the description below. Shown are in the drawings:
[0034]
[0035]
[0036]
[0037] Embodiments of the invention will be explained in more detail below. The drawings serve the purpose of depicting one or more examples of embodiments of the invention.
[0038]
[0039] A capillary 20 formed as a non-restrictive example from borosilicate with a second melting temperature of about 700 C., surrounds the sensor region 11 of the optical waveguide 10 circumferentially. The capillary 20 extends in an axial direction of the optical waveguide 10 away from the end region 13 and has a securing region 21 in a portion situated at a certain distance from the sensor region 11 of the optical waveguide 10. By way of example, a marking 22 is applied to the securing region 21. The marking 22 may be optical, but alternatively or additionally may also be machine-detectable, for example, magnetic or the like.
[0040]
[0041] An embodiment of the method is explained using the flow chart of
[0042] In 1001, the optical waveguide 10 is provided. The optical waveguide 10 is made of a material with a first melting temperature. A sensor region of the optical waveguide 10 comprises the fiber Bragg grating as an integrated temperature sensor element 12.
[0043] In 1002, the capillary 20 is provided such that the capillary 20 surrounds the sensor region 11 of the optical waveguide 10 at least in regions, and that the securing region 21 of the capillary 20 is at an axial distance from the sensor region 11. The capillary 20 has a second melting temperature which is lower than the first melting temperature of the optical waveguide 10.
[0044] In 1003, the securing region 21 of the capillary 20 is secured to the optical waveguide 10. During securing, the securing region 21 of the capillary 20 is heated to a heating temperature. The heating temperature is equal to or higher than the second melting temperature. The heating is performed, for example, by the heating region 53 of the securing device 50.
[0045] In the embodiment, moreover, an exposed end 23 of the capillary is heated to a heating temperature in 1004, which is equal to or higher than the second melting temperature. The heating of the exposed end 23 may likewise be performed by the heating region 53 of the securing device 50. A further marking (not shown) may be provided at the exposed end 23 of the capillary 20, which the detector 52 detects and causes the heating region 53 after a corresponding positional determination, if necessary, to heat the exposed end 23 in the region of the further marking. It may also be provided for the detector 52 to detect the end of the capillary 20 (the exposed end 23) without a marking and to cause the heating region 53 there to heat the exposed end 23. It may also be provided for the exposed end 23 to be heated without detection, for example, by an externally performed positioning of the heating region 53.
[0046] Thereby, a temperature sensor is obtained whose temperature sensor element 12 is largely decoupled from undesired mechanical influence by means of the capillary 20. Free from adhesive, the capillary 20 is reliably connected by means of friction to the optical waveguide 10 by its securing region 21 and is sealed circumferentially. At the exposed end 23, the tightness is moreover guaranteed by the heating operation.
[0047] It should be noted at this point that the aspects and embodiments described herein can be appropriately combined with one another, and that single aspects may be omitted where it is reasonable and possible withing the scope of skilled action. The skilled person will be familiar with modifications and additions to the aspects described herein.