Line connector with integrated sensor for measurement of urea solutions
10508577 · 2019-12-17
Assignee
Inventors
- Sascha Rosenfeldt (Wipperfürth, DE)
- Christian Zwillus (Bergneustadt, DE)
- Waldemar WILMS (Marienheide, DE)
Cpc classification
F01N2610/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2450/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2610/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L25/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/12
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
F01N2610/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2610/142
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L53/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2610/146
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/208
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2900/1811
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2900/1814
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01L19/0023
PHYSICS
International classification
F01N3/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L25/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L53/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01R13/00
ELECTRICITY
Abstract
A line connector for a fluid, in particular a urea solution, including a connecting piece with an interior flow-through channel extending in the longitudinal direction of the connecting piece. The connecting piece includes at each of its two ends a coupling section designed such that a flexible media line or a tubing or an aggregate can be connected to an aggregate connector. The flow-through channel is also provided with an electrical heating unit. In the region of the flow-through channel, between the connecting sections, an enclosed perimeter receiving housing is formed on the coupling piece, in which an optical sensor unit is disposed for measuring of properties of the fluid flowing in the flow-through channel. A ready-made media line, including a tubular or hose-like media line and a line connector connected on one or both sides to this media line is also disclosed.
Claims
1. A line connector for a fluid comprising: a connecting piece with a flow-through channel in an interior thereof and extending in a longitudinal direction of the connecting piece, the connecting piece having two ends each with a coupling section configured such that a flexible media line or a tubing or an aggregate can be connected to an aggregate connector, the flow-through channel being provided with an electrical heating unit, in a region of the flow-through channel between the coupling sections a permeable wall section that is permeable to an optical sensor signal being formed in a wall of the connecting piece surrounding the flow-through channel as an open aperture, an enclosed perimeter receiving housing formed on the connecting piece and surrounding the permeable wall section, a covering received in the receiving housing and sealing off the aperture such that one wall section of the covering bounds the flow-through channel of the connecting piece, an optical sensor unit disposed in the receiving housing and configured to measure properties of a fluid flowing in the flow-through channel, the optical sensor unit including an emitter and an optical receiver arranged such that an optical beam path is guided from the emitter through the covering and the aperture to a medium flowing in the flow-through channel and is reflected by the medium back through the aperture and covering to the receiver.
2. A line connector according to claim 1, wherein the connecting piece is a single piece, integral plastic molded part including the receiving housing.
3. A line connector according to claim 1, wherein the connecting piece is formed of a plastic suitable for the transport of urea solutions used with SCR-catalysts.
4. A line connector according to claim 1, wherein the receiving housing defines a receiving opening is closed off by a sealing lid that is one of detachably or non-detachably connected to the receiving housing.
5. A line connector according to claim 4, wherein the sealing lid is detachable connected to the receiving housing by a bayonet connector.
6. A line connector according to claim 4, the sealing lid is non-detachable connected to the receiving housing by a permanently bonded laser welded connection.
7. A line connector according to claim 4, wherein the sealing lid defines an assembly space surrounded by a perimeter wall and the covering, the assembly space in the sealed position extending through the receiving opening of the receiving housing, wherein an optical sensor unit is mounted in the assembly space.
8. A line connector according to claim 4, further comprising a perimeter gasket arranged between the sealing lid and the receiving housing for sealing against leakage of fluid from the receiving housing.
9. A line connector according to claim 1, wherein the receiving opening is closed off by a sealing lid defining an assembly space that is sealed at a side facing the aperture by the covering, the sensor unit being enclosed by the covering in the assembly space.
10. A line connector according to claim 9, wherein on both sides of the one wall section bordering the flow-through channel the covering includes mutually opposing protrusions each featuring an inner cavity, wherein in one of the protrusions the emitter is arranged and in the other of the protrusions the optical receiver of the optical sensor unit is arranged, wherein the emitter and the receiver are further arranged such that an optical beam path is guided.
11. A line connector according to claim 10, wherein a recess is defined in a bottom section of the receiving housing on both sides of the aperture, each recess accommodating one of the protrusions.
12. A line connector according to claim 1, wherein a coupling region for an electrical power supply is formed in a region of the sealing lid.
13. A line connector according to claim 1, wherein the electrical heating unit is formed from heating elements disposed along an outside of the connecting piece.
14. A line connector according to claim 13, wherein the heating element is formed from at least one electrical conductor wire which meanders in the region of the connecting piece between the coupling sections on an outside of a bottom section of the receiving housing, on the outside of the wall of the flow-through channel, and in a region of cylindrical sections of the connecting piece, the conductor wire proceeding spiral-like between the bottom section and the coupling sections and two ends of the conductor wire are designed and disposed for coupling to separate electrical supply lines.
15. A line connector according to claim 14, wherein the electrical conductor wire is guided by guide elements in sections or over an entire progression to the connecting piece.
16. A line connector according to claim 14, wherein the coupling sections are designed as one of sleeve sections with detachment elements arranged thereon for detachable inserting of insertion elements, coupling elements for pushing on of a media line to be connected, or receiving elements for snap-on receiving of a media line to be connected and for permanent connection therewith.
17. A line connector according to claim 16, wherein the connecting piece is surrounded by an encapsulation in a region between the coupling section equipped with detachment elements, out to beyond a region or up to a region of the other coupling section.
18. A line connector according to claim 17, wherein the encapsulation is combined into one housing from two housing shells that are detachably joined together by means of snap-in features.
19. A line connector according to claim 17, wherein one of the encapsulation or the housing features a receiving chamber for receiving electrical connecting elements for connecting the ends of the conductor wire to electrical coupling wires of an external power supply or for connecting ends of a heating conductor of a media line connected thereto.
20. A ready-made media line, comprising a tubular media line and a line connector connected on one or both sides of the media line, wherein the line connector is according to claim 1.
21. A ready-made media line according to claim 20, wherein the tubular media line is surrounded by a mantle tube and the media line is spiral wrapped by a heating conductor along its longitudinal direction, wherein the mantle tube is introduced into one of encapsulation or the housing by a particular end inserted into encapsulation or into the housing, and the mantle tube is connected in a form fitted manner to one of the encapsulation or the housing, and also the heating wire of the media line is electrically connected to an external power supply via a connecting line or is connected to the conductor wire of the connecting piece by one of a series or parallel circuit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Favorable embodiments of the invention and the invention itself are explained in greater detail below, based on the included figures and illustrated exemplary embodiments. The figures depict:
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DETAILED DESCRIPTION
(13) The same parts in the various figures of the illustrations are always provided with the same reference numbers.
(14) With regard to the following specification, the invention is not restricted to the exemplary embodiments and thus not to all or several features of described feature combinations, rather each individual part feature of the/of each exemplary embodiment is also of significance for the subject matter of the invention, even when detached from all other part features described in connection with it, and also in combination with features of any other exemplary embodiment.
(15) As is indicated, for example in
(16) In the region of the flow-through channel 2 between the two coupling sections 3, 4 provided at each of the ends of the flow-through channel 2, there is a wall section permeable to an optical sensor signal located in a wall of the connecting piece 1 surrounding the flow-through channel 2, said wall section is produced as an aperture 8, as is depicted preferably in
(17) Preferably the connecting piece 1 including the two coupling sections 3, 4 and the receiving housing 9 are designed as a single piece, integral injection molded plastic part. In this case a plastic is used which is suitable for transporting of urea solutions in the SCR method. The optical sensor unit 12 is expediently installed in a sealing lid 13 for the receiving opening 11, wherein the sealing lid 13 is preferably detachably or non-detachably joined to the receiving housing 9 in its sealed position sealing the receiving opening 11. Preferably the detachable sealed position of the sealing lid 13 is produced by means of a bayonet-like connection. The non-detachable sealed position is formed in particular by a material-bonded, or permanently bonded connection, in particular by a laser welded bond. The sealing lid 13 features preferably an assembly space surrounded by a perimeter wall 14; the optical sensor unit 12 is or can be mounted in this assembly space. The height of the perimeter wall 14 is preferably dimensioned such that the sealing lid 13 in its sealed position with the perimeter wall 14 passes through the receiving opening 11 into the receiving housing 9.
(18) The assembly space of the sealing lid 13 formed by the perimeter wall 14 is preferably equipped with a covering 16 which is optically permeable to optical signals of the optical sensor unit 12. The covering 16 is hereby preferably designed such that it seals the open aperture 8 in the wall 7 of the flow-through channel 2 so that one wall section of the covering 16 bounds the flow-through channel 2 of the connecting piece 1.
(19) Furthermore, it is advantageous, if the covering 16 of the sealing lid 13 features mutually opposing protrusions 17 on both sides of its wall section used to delimit the flow-through channel 2, and each protrusion having a cavity in its interior. An advantageous optical sensor which is arranged within the sensor unit 12, as depicted schematically in
(20) Furthermore, it is advantageous to provide a depression 20 in one bottom section 28 of the receiving housing 9 on both sides of the permeable wall section, especially of the aperture 8, to accommodate one of the protrusions 17 to accommodate the emitter 18 and/or the receiver 19. Thus both a secure covering of the aperture 8, and also an unhindered irradiation of the optical signal 21 onto the fluid flowing in the flow-through channel 2 is assured.
(21) As is illustrated in particular in
(22) The perimeter gasket 22 ensures a fluid-tight sealing between the sealing lid 13 and the receiving housing 9 in the sealed position of the lid 13. A coupling region 23 is formed on the optical sensor unit 12 which is used for connection of an electrical power supply to the sensor arranged within the sensor unit 12.
(23) At the outer perimeter of its perimeter wall 14, the sensor unit 12 features preferably web-like extensions 24 directed perpendicular to said perimeter wall; the protrusions have preferably an arc-like shape and are positioned diametrically opposite each other. Preferably the receiving housing 9 in the plugged-in state of the sensor unit 12 has arc-like, web-shaped extensions 26 positioned opposite the web-shaped extensions 24 of the sensor unit 12. In the region of these web-shaped extensions 24, 26 of the sensor unit 12 and of the receiving housing 9, the sensor unit 12 in the assembled state can be bonded to the receiving housing 9, as already explained, either by a permanent bond or interlocking bond.
(24) As is illustrated especially in
(25) In addition, it can be an advantage according to the invention, when the electrical conductor wire 27 which is disposed on the connecting piece 1, is guided and secured along its progression on the connecting piece 1 by means of guide elements 31 which are designed as web-shaped or rib-shaped or even as guide grooves. This guiding and securing of the conductor wire 27 can also be provided only on sections.
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(28) The coupling section 4 in the illustrated exemplary embodiments is represented as a sleeve section with release elements 33 formed thereon, so that an insertion element, for example a plug, can be inserted into and locked in this sleeve section, and thus secured by means of the release elements 33. In order to extract this insertion element again, the release elements 33 are actuated, for example, by spreading, and the insertion element can be withdrawn from the sleeve section.
(29) As is indicated in particular in
(30) As is illustrated in
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(32) It remains within the scope of the invention to design the line connector according to the invention with coupling sections 3 on both sides, as described above. Also, the line connector according to the invention can be designed as an angled line connector.
(33) The invention is not restricted to the illustrated and described exemplary embodiments, but rather encompasses also all equivalent designs within the sense of the invention. It is expressly emphasized that the exemplary embodiments are not restricted to all features in combination, rather each individual part feature can have inventive significance independently and detached from all other part features. Furthermore, the invention is not restricted to the combination of features defined in claim 1, but rather can also be defined by any other particular combination of specific features of all the disclosed individual features. This means that basically practically every individual feature of claim 1 can be omitted, and/or can be replaced by at least one other individual feature disclosed elsewhere in the application.