DIAGNOSTIC SYSTEM FOR A LEVEL-CROSSING SAFEGUARDING SYSTEM, CURRENT SENSOR FOR SUCH A DIAGNOSTIC SYSTEM, AND METHOD FOR INSTALLING SUCH A DIAGNOSTIC SYSTEM
20220239079 · 2022-07-28
Inventors
Cpc classification
B61L27/53
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A diagnostic system for a level-crossing safeguarding system. The safeguarding system has a relay circuit with electrical connection cables that are at least partly guided in a cable conduit. The cable conduit has a longitudinal access side with a detachable cover. The diagnostic system is simplified in that the cover is configured for receiving a plurality of current sensors of the diagnostic system and the plurality of current sensors are disposed, in particular fastened, next to one another in the cover in the longitudinal direction of the cover. There is also described a current sensor for such a diagnostic system and to a method for installing such a diagnostic system.
Claims
1-15. (canceled)
16. A diagnostic system for a level crossing safeguarding system, the level crossing safeguarding system having a relay circuit with electrical connection cables that are guided, at least in sections, in a cable duct formed with a longitudinal side access, the diagnostic system comprising: a plurality of current sensors; a detachable cover for covering the longitudinal side access of the cable duct, said detachable cover being configured for accommodating said plurality of current sensors of the diagnostic system; and said plurality of current sensors being disposed in said detachable cover adjacent one another in a longitudinal direction of said cover.
17. The diagnostic system according to claim 16, wherein said plurality of sensors are fastened in said cover.
18. The diagnostic system according to claim 16, wherein a width of said cover is substantially equal to a width of the cable duct.
19. The diagnostic system according to claim 16, wherein a depth of said cover is less than or equal to a depth of the cable duct.
20. The diagnostic system according to claim 16, further comprising a data collection facility, and wherein said plurality of current sensors are connected to said data collection facility via a communication bus and said plurality of current sensors are configured to output measurement data to said data collection facility.
21. The diagnostic system according to claim 20, wherein said current sensors are configured to transfer the measurement data to said data collection facility by way of a serial transfer protocol via the communication bus.
22. The diagnostic system according to claim 20, wherein said data collection facility is an Internet-of-Things box with a communication interface for communicating with a higher-level information technology infrastructure.
23. The diagnostic system according to claim 22, wherein said interface of aid data collection facility is an antenna.
24. The diagnostic system according to claim 16, wherein each of said current sensors is formed with a section that can be opened in order to encase one of the electrical connection cables in a form of a clamp.
25. A current sensor for the diagnostic system according to claim 16, wherein a section of the current sensor is formed to be opened in order to encompass a respective one of the electrical connection cables assigned thereto in a form of a clamp.
26. The current sensor according to claim 25, wherein the part of the current sensor that is embodied as a clamp forms a part of a sensor core and protrudes at least partially into the cable duct.
27. The current sensor according to claim 25, wherein the current sensor has a width of no more than 50 mm.
28. The current sensor according to claim 25, wherein the current sensor has a depth of no more than 50 mm.
29. The current sensor according to claim 25, wherein the current sensor has a length of no more than 70 mm.
30. The current sensor according to claim 25, wherein the current sensor has a width of than 45 mm, a depth of less than 40 mm, and a length of less than 45 mm.
31. The current sensor according to claim 25, wherein the current sensor is a direct current sensor with a measurement range from 10 mA to 200 mA.
32. The current sensor according to claim 25, wherein: the current sensor has a socket forming a first connection and a plug forming a second connection; said first connection being a Micro USB socket at one cable end of a first cable having a length of at least 15 cm; and said second connection being a Micro USB plug at one cable end of a second cable having a length of at least 15 cm.
33. A method of installing a diagnostic system in a level crossing safeguarding system, wherein the safeguarding system has a relay circuit with electrical connection cables, of which at least a plurality are guided in a cable duct, at least in sections, and wherein the cable duct has a longitudinal side access, the method comprising: providing a detachable cover for the longitudinal side access, the cover being configured to accommodate a plurality of current sensors of the diagnostic system, and wherein a plurality of current sensors are arranged in the cover adjacent one another in a longitudinal direction of the cover; opening a section of a respective one of the current sensors to encompass a respective one of the electrical connection cables in a manner of a clamp, and closing the section once the respective connection cable has been inserted.
34. The method according to claim 33, which comprises connecting the plurality of current sensors to form a communication bus that is connected to a data collection facility, and outputting measurement data from the current sensors to the data collection facility.
35. The method according to claim 34, which comprises outputting the measurement data to the data collection facility by way of a serial transfer protocol.
Description
[0021] The invention is furthermore described in greater detail below with reference to
[0022]
[0023]
[0024]
[0025]
[0026]
[0027] According to
[0028] In the level crossing safeguarding system EBÜT80 shown in
[0029] The current sensors 161-164 are, for example, Hall effect sensors that have a sensor core SK (see
[0030] According to
[0031] The two embodiments 130 and 230 of the diagnostic system according to the invention differ only in that the current sensors 161-164 are all oriented in the same way in the first embodiment 130, while they are alternately rotated by 180° in the second embodiment 230.
[0032] The current sensors 161-164 are preferably adhesively bonded to the bottom of the covering 141 by means of double-sided adhesive strips K or alternatively are fastened by means of screw connections (or connections comparable thereto; for example, plug-in or latching connections), which engage through retaining webs H of the current sensors 161-164.
[0033] The width B of the covering 141 corresponds to the width b of the cable duct 140. In the embodiments shown, it amounts to 50 mm.
[0034] The depth T of the covering is less than or equal to the depth t of the cable duct.
[0035] The diagnostic system 130 or 230 comprises a data collection facility 171.
[0036] The current sensors 161-164 each have a first connection A1 embodied as a socket and a second connection A2 embodied as a plug. The first connection A1 is embodied as a Micro USB socket at one cable end of a first cable K1 (USB cable), which in particular is at least 15 cm long. The second connection A2 is embodied as a Micro USB plug at one cable end of a second cable K2 (USB cable), which in particular is at least 15 cm long.
[0037] The plurality of current sensors 161-164, forming a communication bus 180, are connected to the data collection facility 171 and output their measurement data to the data collection facility 171 via the communication bus 180. To this end, they are interconnected in series.
[0038] The data collection facility 171 is embodied as an Internet of Things box (IoT box), which is embodied as part of a data collection arrangement 170. The data collection arrangement 170 also includes a current supply facility 172, which supplies the Internet of Things box 171 and, via the connected USB cables, also supplies the plurality of current sensors 161-164.
[0039] The data collection facility 171 (Internet of Things box) has a Micro USB interface A3—here in the form of a Micro USB socket. It additionally has a communication interface A4, in particular an antenna, for communicating with a higher-level information technology infrastructure W, which here is formed by what is known as a cloud.
[0040] As shown, the Micro USB plug A2 of the first current sensor 161 is plugged into a Micro USB socket A5 of a USB connection cable VK. A Micro USB plug A6 of the USB connection cable VK is plugged into the Micro USB socket A3 of the Internet of Things box 171.
[0041] The Micro USB plug A2 of the second current sensor 162 is plugged into the Micro USB socket A1 of the first current sensor 161. The Micro USB plug A2 of the third current sensor 163 is plugged into the Micro USB socket A1 of the second current sensor 162. The Micro USB plug A2 of the fourth current sensor 164 is plugged into the Micro USB socket A1 of the third current sensor 163. And the Micro USB plug of the final current sensor (not shown here) is plugged into the Micro USB socket of the penultimate current sensor (also not shown here).
[0042] The plurality of current sensors 161-164 are in each case suitably embodied to transfer the measurement data to the data collection facility 171 by means of a Modbus transfer protocol via the communication bus 180 (Modbus RTU).
[0043] As the figures show, a section 161a-164a of a respective one of the current sensors 161-164 can be opened in order to encompass one of the electrical connection cables 1-4 that is assigned to it in the manner of a clamp.
[0044] The part 161a-164a of the respective current sensor 161-164, which is embodied in the manner of a clamp, together with a further part of the current sensor 161b-164b, forms a sensor core to be closed. The respective part 161a-164a of the current sensors protrude, at least partially, into the cable duct (see in particular
[0045] Each of the current sensors 161-164 is at most 50 mm wide, at most 50 mm deep and at most 70 mm long. The embodiment of the current sensor shown is 45 mm wide, 37.5 mm deep. Its section between the retaining webs is 44 mm long.
[0046] Each of the current sensors is embodied as a direct current sensor with a measurement range from 10 to 200 mA.
[0047] In a further embodiment, not shown here, of the diagnostic system according to the invention, the sensors are divided into at least two sensor groups and assigned to separate cable ducts. A plurality of current sensors therefore form a first sensor group and a plurality of further current sensors form at least one further sensor group. In this context, the one sensor group is arranged in a covering of a cable duct, as in the two first embodiments of the diagnostic system according to the invention, and the at least one further sensor group is arranged in a further covering of a further cable duct. The plurality of current sensors and the further plurality of current sensors—here also forming a communication bus—are connected to a data collection facility and output their measurement data to the data collection facility via the communication bus. In this context, the current sensors each also have a first connection embodied as a USB socket and a second connection embodied as a USB plug. By way of the plug/socket combination used, it is possible to bridge larger distances between the spatially offset sensor groups using standard Micro USB cables, which have a USB socket at one end and a USB plug at the other end.
[0048] For installing the current sensors, the covering 141 is provided, which is suitably embodied for accommodating the plurality of current sensors 161-164 of the diagnostic system. The part 161a-164a of a respective one of the current sensors 161-164 is opened in order to encompass one of the electrical connection cables 1-4 that is assigned to it in the manner of a clamp, and is closed again once the respective connection cable 1-4 has been inserted. The plurality of current sensors 161-164 are arranged adjacent to one another in the longitudinal direction R1 of the covering 141 in said covering 141 and are fastened by means of the adhesive strips K. The plurality of current sensors 161-164 output their measurement data to the data collection facility 171 via the communication bus 180.