Method for producing a sensing element for a thermal flow meter, sensing element and flow meter
11054293 · 2021-07-06
Assignee
Inventors
- Stephan Gaberthüel (Oberwil, CH)
- Alexander Grün (Lörrach, DE)
- Hanno Schultheis (Hermrigen, CH)
- Tobias Baur (Reinach, CH)
- Martin Barth (Riehen, CH)
- Anastasios Badarlis (Birsfelden, CH)
- Lars Neyerlin (Wahlen, CH)
- Martin Arnold (Reinach, CH)
- Oliver Popp (Oberwil, CH)
Cpc classification
G01F15/00
PHYSICS
Y10T29/49083
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
The present disclosure relates to a method for producing a probe of a thermal flow meter for measuring the mass flow rate of a medium in a measuring tube, the method having the following steps: introducing a probe core in the form of a material to be melted into a first probe casing, the first probe casing having an open first end and a closed second end facing away from the first end; melting the probe core; quenching the probe core to a temperature below the solidification temperature; attaching a thermoelement to a contact surface of the solidified probe core. The invention also relates to a probe obtained according to the production method and to a flow meter including the probes according to the present disclosure.
Claims
1. A method for producing a probe of a thermal flow meter for measuring the mass flow rate of a medium in a measuring tube, the method comprising: introducing a probe core in the form of a material to be melted into a first probe casing, wherein the first probe casing includes an open first end and a closed second end opposite the first end; melting the probe core; cooling the probe core to a temperature lower than a solidification temperature of the material to be melted; after cooling the probe core, exposing a region of the probe core by removal of at least a portion of a wall of the first probe casing; and attaching a thermoelement to a contact surface of the solidified probe core.
2. The method of claim 1, wherein the contact surface is prepared by machining the solidified probe core to form an area configured for attaching the thermoelement.
3. The method of claim 1, further comprising, after exposing the region, attaching a open third end of a second probe casing to the first end of the first probe casing in a leak-tight manner, wherein the second probe casing further includes an open fourth end opposite the open third end, wherein the second probe casing surrounds the region.
4. The method of claim 3, wherein the region is machined in a subregion such that the subregion of the probe core is separated from all surfaces of the first probe casing and/or the second probe casing, wherein the subregion includes all cross-sections of the probe core that intersect or touch the contact surface.
5. The method of claim 1, wherein the thermoelement is attached to the contact surface of the probe core using a solder or sinter layer.
6. The method of claim 1, wherein cooling the probe core includes quenching the probe core to a temperature lower than the solidification temperature.
7. The method of claim 1, wherein the thermoelement is configured to increase and/or detect a temperature of the probe core.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) The invention will now be described with reference to exemplary embodiments.
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DETAILED DESCRIPTION
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(8) In a first step 101, a probe core 13 in the form of a material to be melted is introduced into a first probe casing 11, wherein the material to be melted has copper or silver, and wherein the first probe casing 11 is made of a stainless steel.
(9) In a second step 102, the probe core 13 is melted so that the liquid material of the probe core 13 collects in the region of a closed second end 22 of the first probe casing 11. While the probe core 13 is fluid, an intermetallic connecting layer is formed at an interface between the probe core 13 and the first probe casing 11, in which layer the material of the probe core 13 and the material of the first probe casing 11 mix.
(10) In a third step 103, the probe core 13 is quenched to a temperature lower than its solidification temperature. Due to the formation of the intermetallic connecting layer, the contact between probe core 13 and first probe casing 11 is maintained after the probe core has solidified.
(11) In a fourth step 104, the probe core 13 is exposed in a first region by partial removal of a wall of the first probe casing 11.
(12) In a fifth step 105, a contact surface 14 is prepared by machining, in particular, smoothed and aligned, for the attachment of a thermoelement 31. This can be accomplished, for example, by drilling or milling.
(13) In a sixth step 106, a thermoelement is attached to the contact surface by means of a solder or sinter layer.
(14) In a seventh step 107, a second probe casing 12 with an open third end 23 and an open fourth end 24 is attached, in particular welded, to the first end 21 in a leak-tight manner by means of the third open end, wherein the second probe casing 12 wraps completely around the first region.
(15) Advantageously, the first region is machined in a subregion, so that the subregion 16 of the probe core is spaced apart from all surfaces of the first probe casing 11 and/or the second probe casing 12, wherein the subregion 16 comprises all first cross-sections of the probe core, which first cross-sections intersect or touch the contact surface 14.
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(24) To measure the mass flow rate of a medium through the measuring tube 40, a probe 10.1 in the medium flowing through the measuring tube 40 is, for example, heated in such a way that a temperature difference in relation to the media temperature remains constant. It is appropriate to use a second probe 10.2 for measuring the temperature of the medium, which second probe is arranged upstream of or, as shown in
(25) The probes 10 may also be arranged in succession, one after the other, in the flow direction, wherein a first upstream probe heats the medium flowing past and, with it, a second probe situated downstream. In this case, the heating line, required for maintaining a temperature difference, of the first probe depends upon the flow rate of the medium.