Triggering monitoring device for a deformation tube for a coupling; and train coupling
11332170 · 2022-05-17
Assignee
Inventors
- Thomas Prill (Gehrden, DE)
- Michael Ahrens (Braunschweig, DE)
- Matthias Homann (Braunschweig, DE)
- Bernd Lauter (Sontheim an der Brenz, DE)
- Tobias Seeberger (Dinkelsbühl, DE)
Cpc classification
International classification
Abstract
The current invention relates to a triggering monitoring device for a deformation tube having two tube parts which can slide into each other against resistance in a coupling, in particular a train coupling, having a housing that includes a connection for connecting to the deformation tube and at least one working surface for action of one tube part during its movement relative to the other tube part of the deformation tube part, wherein the housing can be deformed through the action of the tube part on the working surface. The triggering monitoring device according to the invention is characterized in that a sensor is provided in or on the housing which detects deformation of the housing and which is moreover equipped to transmit detection of a deformation to an evaluation device.
Claims
1. A triggering monitoring device for a deformation tube used with a train coupling, comprising: a first tube part and a second tube part sliding into each other against a resistance in the train coupling; a housing including a connection for connecting to the deformation tube and at least one working surface for an action of the first tube part during movement of the first tube part relative to the second tube part of the deformation tube, the housing deforming through the action of the first tube part and the second tube part on the at least one working surface; and a sensor located in or on the housing for detecting a deformation of the housing and transmitting detection of the deformation to an evaluation device, wherein the sensor produces a magnetic field with the deformation of the housing and detects changes in the magnetic field.
2. The triggering monitoring device according to claim 1, wherein the housing is equipped with an electrical connection that is at least indirectly connected with the sensor to connect to the evaluation device.
3. The triggering monitoring device according to claim 2, wherein the evaluation device is positioned on or remotely from the housing and is connected with the sensor, by at least one electric line, for an analysis of sensor data.
4. The triggering monitoring device according to claim 1, wherein the housing is at least one of bent and sheared off through the action of the first tube part and the second tube part on the at least one working surface.
5. The triggering monitoring device according to claim 1, wherein the housing includes: at least one stationary housing part and at least one movable housing part, wherein the at least one movable housing part is at least one of moveable and twistable relative to the at least one stationary housing part; and the at least one working surface is positioned on the at least one movable housing part, wherein the at least one movable housing part is moved relative to the at least one stationary housing part, by the action of the first tube part and the second tube part on the at least one working surface, wherein the sensor detects the at least one movable housing part being moved relative to the at least one stationary housing part.
6. The triggering monitoring device according to claim 1, wherein the housing includes at least one cylindrical end section, where the connection retains the at least one cylindrical end section in a bore of the deformation tube.
7. A triggering monitoring device for a deformation tube used with a train coupling, comprising: a first tube part and a second tube part sliding into each other against a resistance in the train coupling; a housing including a connection for connecting to the deformation tube and at least one working surface for an action of the first tube part during movement of the first tube part relative to the second tube part of the deformation tube, the housing deforming through the action of the first tube part and the second tube part on the at least one working surface; and a sensor located in or on the housing for detecting a deformation of the housing and transmitting detection of the deformation to an evaluation device, wherein the housing includes at least one cylindrical end section, where the connection retains the at least one cylindrical end section in a bore of the deformation tube, wherein the connection is provided by an outside thread on the at least one cylindrical end section of the housing.
8. A deformation tube for a train coupling, comprising: a first tube part and a second tube part sliding into each other against a resistance; and a sensor connecting to the deformation tube in a region of an interface between the first tube part and the second tube part and transmitting detection of a deformation of the deformation tube to an evaluation device, wherein the sensor produces a magnetic field due to the deformation and detects changes in the magnetic field.
9. The deformation tube according to claim 8, wherein the coupling includes a Scharfenberg train coupling.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above-mentioned and other features and advantages of this invention, and the manner of attaining them, will become more apparent and the invention will be better understood by reference to the following description of embodiments of the invention taken in conjunction with the accompanying drawings, wherein:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13) Corresponding reference characters indicate corresponding parts throughout the several views. The exemplifications set out herein illustrate embodiments of the invention and such exemplifications are not to be construed as limiting the scope of the invention in any manner.
DETAILED DESCRIPTION OF THE INVENTION
(14) Referring to the drawings and more particularly to
(15) Triggering monitoring device 1 includes a housing 5, including a stationary housing part 12 which is mounted on first tube part 3.1 and a mobile housing part 13 which is mounted rotatably on stationary housing part 12 in this case above rotational axis 14 that is positioned vertically on first tube part 3.1. In order to better understand the structure of triggering monitoring device 1 we refer you to
(16) Movable housing part 13 has a working surface 7 with which a front surface of second tube part 3.2 acts when first tube part 3.1 is pushed into second tube part 3.2 due to an external force.
(17) Due to the action of second tube part 3.2 on working surface 7 and continued insertion of first tube parts 3.1 into second tube part 3.2, movable housing part 13 is twisted on the outer surface of stationary housing part 12 which, in this case is cylindrical in shape, because stationary housing part 12 is connected rigidly at its connection 6 to first tube part 3.1. In the illustrated design example, connection 6 is provided by a through-bore 16 in combination with a screw which is not illustrated in detail and which is screwed through through-bore 16 into first tube part 3.1. Other connection methods are conceivable.
(18) A sensor 8 is provided in housing 5 as illustrated in
(19) Break-off tab 27 protrudes from one housing part, in this instance movable housing part 13, into the other housing part, in this instance the stationary housing part 12, where it is held in place, in this case by a spacer 29. Since, at the same time board 26 is fixed on the other housing part which in this case is movable housing part 13, a relative movement between the two housing parts 12, 13 which in this case is twisting of movable housing part 13 on stationary housing part 12 leads to breaking off of break-off tab 27 from the rest of board 26 and thus to severing of electrical conductor 19.
(20) Since electrical conductor 19 is connected with electric connector 30 which provides an electrical connection 10 for an evaluation device 9, the interruption of electrical conductor 19 due to the change in the electric resistance or respectively the electric conductivity can be captured and based thereupon can be closed upon twisting of movable housing part 13 relative to stationary housing part 12 due to the insertion of first tube part 3.1 into second tube part 3.2.
(21) Evaluation device 9 is connected in housing 5 via electric lines 11 at electrical connection 10 of sensor 8 and is located in particular remotely from housing 5. However, this is not absolutely necessary.
(22) By breaking off break-off tab 27 from board 26, electrical conductor 29 is permanently interrupted, so that a conceivable premature damage of deformation tube 2 can be reliably detected, independent of its return into its starting position.
(23) Stationary housing part 12 may be designed cylindrically, in particular symmetrically over movable housing part 13 and can include an outside surface for a bore of movable housing part 13. In the illustrated design example, movable housing part 13 is placed axially on stationary housing part 12 and is secured by a clamping ring 31 which in this case is held, for example by a retainer ring 32 on stationary housing part 12. Movable housing part 13 is sealed relative to stationary housing part 12, or respectively clamping ring 31. See for example, illustrated seals 33.
(24) As a result of clamping ring 31 being locked above rotary axis 14 onto stationary housing part 12, additional screws are no longer necessary for assembly.
(25)
(26) Referring now to
(27) Bore 17 is designed as a blind bore which presents a feasible option in any embodiment.
(28) In
(29) According to
(30) According to
(31) In
(32)
(33) In
(34) In
(35) In
(36) In
(37) In
(38)
(39) In
(40) Especially with various couplings in a vehicle or also per each coupling and/or per each deformation tube in a vehicle, several triggering monitoring devices can be provided which are connected accordingly on a common evaluation device or respectively to an individual evaluation device. Here it is also possible to connect the various triggering monitoring devices with a vehicle system, in particular in the embodiment of a vehicle master computer, with or without interposed evaluation device. One evaluation device an also query several triggering monitoring devices.
(41)
(42) In
(43) In
(44) In
(45) In
(46) In the event of deformation or shearing off of housing 5, brittle support 47 is destroyed and thus the capacity or the electric resistance of the electrical conductor 19 and thereby that of the sensor changed. This can be detected via electric connection 10.
(47) In
(48) In
(49) Sensor 8 includes two electrodes 24.1 and 24.2 which are electrically conductively connected with one another via a contact element 49. Contact element 49 is herein pressed by elastic pressure element 50 against the two electrodes 24.1, 24.2 in this case respectively against a front end of same. Contact element 49 in the illustrated design example is plate-like, but can also be something else.
(50) Deformation element 18 forms an abutment for elastic pressure element 50; in this case on a side opposite contact element 49, for example through the bottom region of the housing-like, in this case cylindrical deformation element 18. If housing 5 or respectively deformation element 18 is deformed or destroyed through relative movement of the two housing parts, stationary housing part 12 and movable housing part 13, elastic pressure element 50 relaxes because the abutment drops off. As a result, contact element 49 is lifted off the two electrodes 24.1., 24.2 and the electrical connection between the two elements 24.1 and 24.2 is interrupted.
(51) As illustrated, a second elastic pressure element 52 may be provided which, at a drop off of the abutment of the spring force of first elastic pressure element 50 actively pushes contact element 49 away from electrodes 24.1 and 24.2. However, other measures are also conceivable for this. For example, contact element 49 can be connected or fastened to elastic pressure element 50 in order to ensure reliable separation of the electrically conductive connection. It would also be possible for example, to provide a tension-proof connection between contact element 49 and the area of deformation element 18 which forms the abutment, and which is removed from electrodes 24.1, 24.2 in the event of destruction of deformation element 18.
(52) While this invention has been described with respect to at least one embodiment, the present invention can be further modified within the spirit and scope of this disclosure. This application is therefore intended to cover any variations, uses, or adaptations of the invention using its general principles. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practice in the art to which this invention pertains and which fall within the limits of the appended claims.
COMPONENT IDENTIFICATION LIST
(53) 1 triggering monitoring device 2 deformation tube 3,1, 3.2 tube parts 4 coupling 5 housing 6 connection 7 working surface 8 sensor 9 evaluation device 10 electrical connection 11 electric line 12 stationary housing part 13 movable housing part 13 rotary axis 15 outside thread 16 through bore 17 bore 18 deformation element 19 electrical conductor 20 optical sender 21 optical receiver 22 pressure sensor 23 volatile fluid 24.1, 24.2 electrodes 25 interface 26 board 27 break-off tab 28 predetermined breaking point 29 spacer 30 electric plug 31 clamping ring 32 retainer ring 33 seal 34 casting compound 35 electrical coil 36 ferromagnetic rod 37 magnet 38 magnet sensor 39 optical reflector 40 stopper 41 vehicle system 42 end cap 43 end plate 44 filler material 45 measuring element 46 tubular body 47 brittle support 48 sensor support 49 contact element 50 elastic pressure element 51 second elastic pressure element