METHOD FOR PRODUCING A PROBE OF A THERMAL FLOWMETER, PROBE OF A THERMAL FLOWMETER, AND THERMAL FLOWMETER
20220196450 · 2022-06-23
Inventors
- Anastasios Badarlis (Birsfelden, CH)
- Stephan Gaberthüel (Oberwil, CH)
- Alexander Grün (Lörrach, DE)
- Hanno Schultheis (Lörrach, DE)
- Tobias Baur (Reinach, CH)
- Martin Barth (Riehen, CH)
- Martin Arnold (Reinach, CH)
- Mathieu Habert (Rixheim, FR)
Cpc classification
B21D26/08
PERFORMING OPERATIONS; TRANSPORTING
G01F1/684
PHYSICS
International classification
Abstract
A method for producing a probe of a thermal flowmeter for measuring mass flow of a medium in a measuring tube, wherein a probe core is provided arranged loosely in a probe sleeve having a longitudinal axis, wherein the probe sleeve is deformed relative to the longitudinal axis completely radially in the direction of the probe core by means of high energy rate forming, wherein a material-locking connection between probe sleeve and probe core results and a rod is formed, wherein the rod represents a base body that is used for probe production, wherein a deformation speed reaches values greater than 100 m/s, and wherein the high energy rate forming includes explosive forming or magnetic forming.
Claims
1-13. (canceled)
14. A method for producing a probe of a thermal flowmeter for measuring mass flow of a medium in a measuring tube, the method comprising: providing a probe core disposed loosely in a probe sleeve having a longitudinal axis; and deforming the probe sleeve completely radially relative to the longitudinal axis in the direction of the probe core using high energy rate forming such that a material-locking connection is formed between the probe sleeve and the probe core and a rod is produced, wherein the rod defines a base body, or a separated section of the rod defines the base body, from which base body a probe is manufactured, wherein a radial deformation speed of the high energy rate forming reaches values greater than 100 m/s, and wherein the high energy rate forming is performed using explosive forming or magnetic forming.
15. The method of claim 14, further comprising drawing the base body such that an outer diameter of the base body is decreased and a lateral surface of the base body is smoothed.
16. The method of claim 14, further comprising sealing a first end of the base body media-tightly, wherein the sealing of the first end comprises: removing the probe core in an end region; introducing a probe head into the end region; and securing the probe head to the probe sleeve by welding, wherein an outer side of the probe head has a rounded shape.
17. The method of claim 16, wherein the probe head has a hemispherical or hemiellipsoidal shape.
18. The method of claim 14, further comprising: exposing a region of the probe core, at least partially, a side toward a second end of the base body; preparing a contact area on the probe core, wherein the contact area is configured to enable mounting a thermoelement on the probe core, wherein the contact area has an interior angle relative to the longitudinal axis that is less than 30 degrees.
19. The method of claim 18, wherein the interior angle of the contact area is less than 10 degrees.
20. The method of claim 18, further comprising: mounting the thermoelement on the contact area; affixing a connecting sleeve media-tightly to the probe sleeve of the base body by welding, wherein the connecting sleeve completely covers the at least partially exposed region of the probe core.
21. The method of claim 20, wherein the thermoelement is mounted on the contact area by soldering, adhesive or sintering, and wherein the connecting sleeve is affixed to the probe sleeve by a circumferential laser weld.
22. The method of claim 20, wherein the probe sleeve includes a section of reduced outer diameter in a contact region, the section configured to facilitate affixing the probe sleeve with the connecting sleeve, wherein the connecting sleeve is introduced onto the section of reduced outer diameter.
23. The method of claim 14, wherein the probe sleeve is a first material comprising a stainless steel, wherein the probe core is made of a second material having a thermal conductivity of at least 100 W/(m*K), and wherein the connecting sleeve is the first material.
24. The method of claim 14, wherein, after the high energy rate forming, a diameter of the probe core is less than 5 mm and greater than 0.5 mm, and wherein, after the high energy rate forming, the probe sleeve has an unreduced outer diameter of at least 0.1 mm greater than, and at most 1.5 mm greater than, the diameter of the probe core.
25. The method of claim 24, wherein, after the high energy rate forming, a diameter of the probe core is less than 3 mm and greater than 1.5 mm, and wherein, after the high energy rate forming, the probe sleeve has an unreduced outer diameter of at least 0.5 mm greater than, and at most 1 mm, greater than the diameter of the probe core.
26. A probe for a thermal flowmeter for measuring mass flow of a medium in a measuring tube, the probe comprising: a base body including a probe core and a probe sleeve, which at least sectionally surrounds the probe core and is connected therewith by material bonding; a probe head, which is connected media-tightly with the probe sleeve at a first end of the base body and seals the first end; a thermoelement secured to a contact area of the probe core in a previously, at least partially, exposed region, wherein the thermoelement includes electrical connection lines to enable operation of the thermoelement; and a connecting sleeve, which completely covers the previously, at least partially, exposed region, wherein the connecting sleeve is connected media-tightly with the probe sleeve, wherein the probe is manufactured according to the method of claim 14.
27. The probe of claim 26, wherein the probe core includes in the previously, at least partially, exposed region a projection, which protrudes from a base area, wherein the contact area is arranged on the projection and has relative to the longitudinal axis an interior angle of less than 30 degrees.
28. The probe of claim 27, wherein the projection includes a rear face connected to the probe sleeve by material bonding, wherein the probe sleeve is adapted mechanically in a region of the rear face to stabilize the projection.
29. The probe of claim 26, wherein the thermoelement is adapted to determine a temperature of the medium and/or to heat the medium.
30. A thermal flow measuring device, comprising: a measuring tube adapted to convey a medium; at least one probe according to claim 26, wherein the at least one probe is arranged in the measuring tube; an electronic measuring/operating circuit configured to operate the at least one probe and to provide flow measured values; and a housing adapted to house the electronic measuring/operating circuit.
Description
[0025] The invention will now be described based on examples of embodiments presented in the appended drawing, the figures of which show as follows:
[0026]
[0027]
[0028]
[0029]
[0030]
[0031] In an additional method step, the base body can be subjected to drawing, by means of which a lessening, or adjusting, of an outer diameter 14.1 of the base body and a smoothing of a lateral surface 14.2 of the base body are obtained. In such case, the base body is drawn through an opening, which has a slightly smaller diameter than the outer diameter of the base body. This step can be repeated a number of times, with, in each case, a smaller opening. The base body has a first end 14.3 and a second end 14.4.
[0032]
[0033] In an additional method step, the probe core is exposed at a second end of the base body and a contact area formed for bringing a thermoelement 16 to the probe core. The contact area can, such as shown in this case, extend in parallel with the longitudinal axis of the probe sleeve. Other views by way of example for the contact area are shown in
[0034] Thermoelement 16 includes, in such case, electrical connection lines 16.1, by means of which the thermoelement is connectable to an electronic measuring/operating circuit 3; see
[0035] Probe sleeve 11 can in a contact region 11.1 be provided with a reduced outer diameter for receiving a connecting sleeve 17, such as shown in this case in
[0036] The sequence of the method steps described here can be changed.
[0037]
[0038] The probe sleeve 11 shown in
[0039] Since stainless steel has a lower of thermal conductivity than the second material, a temperature change of the probe sleeve, caused, for example, by a change of the media temperature, leads to a uniform, or almost constant, temperature distribution in the sensor core and, thus, in the thermoelement.
[0040]
[0041]
[0042] In order to measure the mass flow of a medium through the measuring tube 2, for example, a first probe is heated in the medium flowing through the measuring tube 40 in such a manner that a temperature difference relative to the media temperature remains constant. A second probe can be used, in such case, for temperature measurement of the medium. Assuming that media properties, such as density and composition, remain constant, the mass flow of the medium can be ascertained via the heating current needed for maintaining the temperature. The thermal flowmeter shown here is by way of example and purely for purposes of illustration. Those skilled in the art can bring together any number of probes according to given requirements of an application and arrange these in the measuring tube in desired manner. Methods for operation of such probes are known in the art.
LIST OF REFERENCE CHARACTERS
[0043] 1 thermal flowmeter [0044] 2 measuring tube [0045] 3 electronic measuring/operating circuit [0046] 4 housing [0047] 10 probe [0048] 11 probe sleeve [0049] 11.1 contact region [0050] 11.2 longitudinal axis [0051] 12 probe core [0052] 12.1 contact area [0053] 12.2 diameter of probe core [0054] 12.3 projection [0055] 13 rod/rod section [0056] 14 base body [0057] 14.1 outer diameter of base body [0058] 14.2 lateral surface [0059] 14.3 first end of the base body [0060] 14.31 end region [0061] 14.4 second end of the base body [0062] 15 probe head [0063] 15.1 outside of the probe head [0064] 16 thermoelement [0065] 16.1 electrical connection lines [0066] 17 connecting sleeve