SYSTEM FOR DATA TRANSMISSION IN OPTICAL SYSTEMS
20190250333 ยท 2019-08-15
Inventors
Cpc classification
G02B6/4292
PHYSICS
G02B6/29391
PHYSICS
G02B6/28
PHYSICS
G02B6/4296
PHYSICS
G02B2006/4297
PHYSICS
International classification
G02B6/28
PHYSICS
Abstract
The invention relates to an optical light guiding system, comprising an interface for coupling in and/or an interface for decoupling data and at least one data channel for transmitting data, and a method for transmitting data in optical systems, comprising the steps of coupling data into an interface of a beam guidance element; the transmission of the data by means of a first and/or a second data channel, which are arranged within the beam guiding element (or the casing), wherein the data channels can also be used for the fractional monitoring of the beam guiding element; and decoupling the data from an interface.
Claims
1. An optical light guiding element, comprising an interface for coupling in and/or an interface for decoupling data and at least a first data channel for transmitting data.
2. The light guiding element of claim 1, comprising at least an electrical or optical channel.
3. The light guiding element of claim 1, comprising an optical channel as the second data channel.
4. The light guiding element of claim 2, wherein comprising as the first data channel, an electrical line for driving a source of the second data channel and as the second channel, an electrical line or the control fiber that is arranged in the light guiding element.
5. The light guiding element of claim 4, wherein the second data channel connects the at one end of the light guiding element arranged source for generating an electrical signal, an electromagnetic wave or an optical signal with a detector arranged at the other end of the light guiding element.
6. The light guiding element of claim 4, comprising at least one plug-in connection for transmitting user data, communication with sensors and/or actuators, the electrical control of the source at one end of the light guiding element and/or the signal from the source to the detector and/or the signal of the detector.
7. The light guiding element of claim 4, wherein the source is arranged in a plug connection connected to the light guiding element, in the light guiding element itself or in a device connected to the light guiding element.
8. The light guiding element of claim 7, wherein a plug connection connected to the light guiding element is configured to interrupt electrical and/or optical channels.
9. The light guiding element of claim 2, comprising plug-in connections at both ends for at least one channel for connection to further light guiding elements.
10. The light guiding element of claim 1, comprising at least one monitoring channel as a data line or separate data lines along the system.
11. A light guiding system, comprising at least two interconnected light guiding elements of claim 1, or interconnected light guiding components, comprising light guiding elements.
12. A method for transmitting data in optical systems, comprising the steps: a. Coupling data into an interface of a light guiding element; b. Transmission of the data by means of a first and/or a second data channel which are arranged within the light-guiding element c. Decoupling the data from an interface of a light guiding element.
13. The method of claim 12, wherein the second data channel is a control fiber or an electrical line.
14. The method of claim 12, wherein data is transmitted electrically via the first data channel and data is transmitted via the second data channel electrically, optically or electromagnetically.
15. The method of claim 12, wherein the data to be transmitted is generated within and/or outside the light guiding element.
16. The method of claim 16, wherein the data to be transmitted are generated in a connector coupled to the light guide.
17. A method of using a light guiding system comprising the step of connecting at least two light guiding elements of claim 1.
18. The method of claim 17, further comprising the step of transmitting data in an optical system
Description
BRIEF DESCRIPTION OF THE FIGURES
[0034] The invention will be described based on figures. It will be understood that the embodiments and aspects of the invention described in the figures are only examples and do not limit the protective scope of the claims in any way. The invention is defined by the claims and their equivalents. It will be understood that features of one aspect or embodiment of the invention can be combined with a feature of a different aspect or aspects of other embodiments of the invention, in which:
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
DETAILED DESCRIPTION OF THE INVENTION
[0043] The above-stated object of the invention is solved by the features of the non-dependent claims. The dependent claims cover further specific embodiments of the invention.
[0044] The invention relates to an optical light guiding system, comprising an interface for coupling in and/or an interface for decoupling data and at least one data channel for transmitting data, and a method for transmitting data in optical systems, comprising the steps of coupling data into an interface of a beam guidance element; the transmission of the data by means of a first and/or a second data channel, which are arranged within the beam guiding element (or the casing), wherein the data channels can also be used for the fractional monitoring of the beam guiding element; and decoupling the data from an interface.
[0045] The terms light guiding elements and optical elements will be used synonymously in connection with the description of the present invention. Both can designate a fiber optic cable or a connector for fiber optic cable. Plug or connections for coupling-in and decoupling of laser radiation are also encompassed by these terms. An optical system is formed of light guiding elements or optical elements.
[0046] The object of the invention is achieved in that the elements which are used for monitoring a break of a fiber optic cable or a light guiding system, are also used for the transmission of user data or provided within a light guiding system separate elements for data transport.
[0047] A channel within the meaning of the present invention designates a part of the entire security channel of the invention, which thus always consists of at least two channels and is used for the transmission of user datathat is, data independent from the monitoring function. The entire safety channel is integrated into the parts of the beam guiding system, e.g. fiber optic cable, optical connector, etc.). The present invention thus provides a safety channel which, even if one channel fails, ensures the safety of a system in operation. The two-channel safety channel thus increases the reliability in the detection in the sense that in fact is only switched off when there is damage and not even when there is a malfunction of a single monitoring channel. The at least two channels as part of a safety channel according to the invention can be different or the same in terms of their function and mode of operation. Each channel is inside the protective tube, i.e. in the immediate vicinity of the power fiber. However, they are separate parts, i.e. no components of the power fiber.
[0048] A channel as part of the security channel, which can be used for the transmission of user data, is, for example, an electrical channel which runs along the beam guiding system and is capable of transmitting data on its own.
[0049] The geometry of the electrical conductors is not limited, so possible designs are several separate conductors, a least two-core cable or the lines may be coaxial with each other.
[0050] An optical channel as part of a security channel according to the invention is a combination of at least one separate, so-called monitoring or control fiber that is fed in addition to the power fiber into the protective tube and the necessary coupling elements and required for the electrical transmission and processing converter. At least one material of the monitoring or control fiber is configured in a manner that it absorbs the wavelength of the high-power laser radiation, i.e. at least one of core, cladding, protective coating or outer shell. The monitoring or control fiber carries light for monitoring or transmitting user data. The optical channel runs along the beam guiding system and is independently able to transmit user data in addition to the security function.
[0051] The forwarding within the beam guiding system as well as the evaluation unit may include a conversion of the optical signals into electrical signals (and vice versa).
[0052] These elements are, for example, monitoring elements which can be multi-channeled. The term multi-channel in the sense of the present invention means that the elements use at least two channels, as for example takes place with one electrical and one optical channel or two electrical channels.
[0053] When using elements that are used for security monitoring of the optical system, care must be taken that this security function is not affected by the transmission of the user data.
[0054] For a better understanding of the invention, the safety components are shown and described below with reference to the figures, so that their use for data transmission is easier to understand. The words channel and data channel are used synonymously.
[0055]
[0056] The coaxial cable 1 forms the first monitoring channel 10 and the control fiber 15 a second monitoring channel along power fiber 5. Both channels use different media (electrical and optical) for the signal line of the monitoring signals and thus create a true diversity and redundancy.
[0057] It must be ensured when implementing this concept, that a suitable control fiber 15 is used. In particular, the absorption of the control fiber 15 in the wavelength range of the power carried in the power fiber 5 and the crosstalk (optical coupling) of power fiber into the control fiber are to be considered.
[0058] Crosstalk from the power fiber 5 into the control fiber 15 may be separated from the signal of the power fiber 5 by a suitable signal patterns generated by source 25. A suitable signal pattern is any property of the light generated by source 25, which differs from characteristics of the light carried in the power fiber 5. This may be, for example, a particular wavelength, a combination of different wavelengths or the modulation of the signal generated by the source.
[0059] By appropriate spectral choice of the source and the detector as well as by sheathing the control fiber crosstalk can be minimized.
[0060] The access to the signals or user data can be realized both by separately led out of the fiber optic cable connector 20 connection cable (plug 40 in
[0061] The plug-in monitoring is a device that monitors whether the end of the optical cable or light guiding system is properly inserted into the appropriate recording.
[0062] FIG.
[0063]
[0064] In addition to the electrical connection, a defined optical coupling between the source/transmitter and the monitoring element in the optical fiber cable must be ensured.
[0065]
[0066] In
[0067] The source of the subsystems forms the light guidance system, which is also called a system. A source 25 generates suitable electrical signals which are fed into a monitoring channel. The second monitoring element forms the second channel (or return channel). This can be designed both optically (see above) and electrically (see above). By returning the signal via the monitoring channel 2, it is possible to arrange the feed and the evaluation of the monitoring signals at the same end of the light guidance system.
[0068] The light guidance system must be designed in a manner that there is either only a coupling between the two monitoring channels at the end of the monitoring chain, or both monitoring channels are evaluated separately.
[0069] In the case of several interconnected subsystems, it is advantageous to implement a control and condition monitoring of the components involved. This requires data transmission along the light guidance system. In the simplest case, this could be realized by a separate running wiring (prior art), which, however, is cumbersome to handle for the user.
[0070] The invention integrates a data transmission path into the light guidance components involved. This integration also allows the development of more feature-rich components. Thus, for example, the integration of additional sensors, data storage, actuators, etc. can be realized in the components of the light delivery system which can be controlled without additional effort of the user or can be read.
[0071] By using internally routed data transfer channels, intermodular communication along the light delivery system can be realized. This allows the transport and exchange of user data.
[0072] In a further embodiment of the invention, user data are distributed along the light guiding system (optical fiber cable, optical fiber cable coupler, etc.). The distribution of the data includes not only a purely passive data transport (which is additionally possible), but also a direct integration of the participating subsystems as active components (referred to as optional communication member 60 in
[0073] The sub-systems which now form the network, can both be executed passively (pure data transport, no manipulation of the data stream) and actively (participation in the data exchange). For example, if the fiber optic cable or other component of the light guidance system is an active participant in the data transfer, it may receive, process, and/or feed user data (e.g., serial number, type, sensor data, etc.) from the data stream. The same applies to all other connected subsystems.
[0074] User (or payload) data refers to all types of data that have nothing to do with the maintenance of the safety function. This can be any data of all connected subsystems and their peripherals. This includes control signals for the operation of the sub-systems as well as sensor data.
[0075] One way of participating in the data stream would be, for example, the integration of additional data lines into the optical fiber cable as well as the lead-out via additional connections on the optical fiber cable connector. However, this involves the disadvantage of additional elements in the light guide cable and in the plug. The advantage of this option is the independence of the data transport from the security monitoring.
[0076] Another possibility is to use the connections and connections for the data transmission, which are integrated anyway for the optical fiber cable safety circuit. The additionally required elements for coupling and decoupling the data must not impair the safety function.
[0077] The transmission of user data can take over parts of the safety function or even the safety function completely. This can be done for example by a combined data stream of security and user data.
[0078] If passive components (for example traffic light cables) are to become active components so far, a power supply for the active parts has to be guaranteed. This can be done via separate connections or be implemented to a limited extent via the data lines themselves.
[0079]
[0080] In this case, each active subsystem includes a communication member 60 which receives the incoming data stream, modifies it depending on the task of the subsystem and sends it on to the next subsystem. The final sub system in the chain closes the connection between the two transmission channels and thus represents the end of the chain.
[0081] To separate the security function and the user data as well as the integration of the network consisting of subsystems into a higher-level system, an evaluation unit 105 may be necessary.
[0082]
[0085] If the two channels are interconnected completely independently of each other with the evaluation unit (or the evaluation units), it is of course also possible to send only the security IDs on the respective channel, i.e. SIDA on the one channel and SIDB on the other.
[0086] The evaluation unit 105 forms the coupling element between the transmission channels 1, 95 and 2, 100 to the higher-level system. Evaluation SIDA 110, SIDB 115 and IDN 120 are carried out in evaluation unit 105. Evaluation unit 105 also has the output of safety circuit 125 and an output of the user data or data for communication 130.
[0087]
[0088] SIDA and SIDB represent individually unique (per overall system) identification characteristics of the redundantly constructed safety evaluations. Each safety evaluation sends and evaluates only the identification feature determined by it and for it.
[0089] If SIDA and SIDB are transmitted cyclically, the time for such a cycle depends on the required reaction time of the safety function and is also monitored by the components of the evaluation unit responsible for the safety.
[0090] The rest of the time of one cycle, which is not needed for the transfer of the SIDA and SIDB, is used for the transmission of user data IDN.
[0091] The foregoing description of the preferred embodiment of the invention has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed, and modifications and variations are possible in light of the above teachings or may be acquired from practice of the invention. The embodiment was chosen and described in order to explain the principles of the invention and its practical application to enable one skilled in the art to utilize the invention in various embodiments as are suited to the particular use contemplated. It is intended that the scope of the invention be defined by the claims appended hereto, and their equivalents. The entirety of each of the aforementioned documents is incorporated by reference herein.
REFERENCE NUMERALS
[0092] 1 protective tube [0093] 5 power fiber [0094] 10 coaxial cable 1 [0095] 15 control fiber [0096] 20 optical fiber plug [0097] 25 source/transmitter [0098] 30 detector/receiver [0099] 35 optical fiber cable socket [0100] 40 plug [0101] 45 coaxial cable 2 [0102] 50 impedance 1 [0103] 55 impedance 2 [0104] 60 communication member [0105] 65 component of light guiding system [0106] 70 sub-system 1 [0107] 75 sub-system 2 [0108] 80 sub-system 3 [0109] 85 sub-system 4 [0110] 90 sub-system 5 [0111] 95 monitoring channel 1 [0112] 100 monitoring channel 2 [0113] 105 evaluation unit [0114] 110 evaluation SIDA [0115] 115 evaluation SIDB [0116] 120 evaluation IDN [0117] 125 output safety circuit [0118] 130 user data/communication [0119] 135 data packet