Protected contact device for a light strip
The contact device with a protective and unlocking mechanism addresses the challenge of correct electrical connections in elongated luminaires by ensuring secure and efficient alignment with conductor wires, improving safety and functionality in large-scale installations.
Patent Information
- Application Number
- PCT/EP2024/087130
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-12-29
- Filing Date
- 2024-12-18
- Publication Date
- 2025-07-03
AI Technical Summary
Existing contact devices for luminaires with elongated support rails face challenges in ensuring correct and secure electrical connections between conductor wires, particularly in large-scale installations, due to the complexity of aligning and preventing incorrect insertion, which can compromise safety and functionality.
A contact device with a housing containing multiple contact units and a protective element that includes a movable protective device and an unlocking mechanism, featuring a coding arrangement and unlocking elements to ensure correct alignment and prevent incorrect insertion, allowing for reliable electrical contact with conductor wires.
The solution provides a secure and efficient method for establishing electrical connections in elongated luminaires, minimizing the risk of incorrect contact and ensuring proper alignment, thereby enhancing safety and functionality in large-scale lighting systems.
Smart Images

Figure EP2024087130_03072025_PF_FP_ABST
Abstract
Description
[0001] Protected contact device for a light strip
[0002] The invention relates to a contact device for a system for realizing a luminaire elongated in a longitudinal direction, as well as to such a system and a luminaire realized by means of such a system, as well as to a method for realizing a luminaire.
[0003] Generic systems and generic contact devices of such systems are designed to implement a generic luminaire that is elongated in a longitudinal direction and comprises a plurality of longitudinally elongated support rails. Typically, the support rails serve to fix the luminaire to a building structure, for example, to a ceiling. The support rails represent a type of basic framework for the luminaire and are designed to accommodate supply lines and, preferably, to accommodate mounting bodies to which lamps are attached. Thus, an infrastructure for the luminaire is provided via the support rails. Electrical functional elements of the luminaire are usually attached to the mounting bodies, for example lamps, in particular comprising circuit boards with LEDs, radio modules, electrical cables, and / or operating devices.When mounting the luminaire, the respective support rail is usually first attached to the building structure and then the mounting body, which is equipped with at least one of the aforementioned electrical functional elements of the luminaire, is fixed to the support rail so that the support rail and mounting body enclose an interior space in which essential elements of the luminaire are arranged, for example circuit boards, operating devices, contact devices, etc. Typically, the support rail and mounting body are each elongated in a longitudinal direction; preferably, the longitudinal extent is at least five times the extent perpendicular to the longitudinal direction. The support rail usually has a U-shaped cross-section perpendicular to the longitudinal direction, which extends in a vertical direction and in a transverse direction and is open at one vertical end and which is formed by a support rail base and two support rail side walls.The support rail side walls thus run vertically away from the support rail base, and the support rail base connects the transversely spaced support rail side walls. Depending on requirements, the support rail base and support rail side walls can have contours or recesses. The support rail base and the support rail side walls usually together form an interior space that is at least partially enclosed by the support rail side walls and the support rail base. The interior space is thus defined by the support rail. Typically, all support rails in a system have the features described here. A generic system often has at least a first and a second support rail, which are connected to one another at their mutually facing longitudinal ends to form the luminaire.Typically, they form a common interior space that extends between the support rail side walls of both support rails and the support rail base of both support rails, elongated along the longitudinal extent of both elongated support rails. The two support rails are usually secured to each other by means of a coupling, which has a U-shaped cross-section formed by a coupling base and two coupling side walls. The coupling side walls thus extend vertically from the coupling base, and the support rail base connects the transversely spaced coupling side walls. The U-shaped cross-section of the coupling is preferably open at its end opposite the coupling base.Typically, each of the support rails has a substantially constant cross-section perpendicular to the longitudinal direction, wherein the cross-section is preferably identical except for recesses and / or punchings in the support rail base and / or support rail side walls. Frequently, the cross-section of all support rails is substantially the same. Typically, the support rails are fixed relative to one another by the coupling perpendicular to the longitudinal direction and, in particular, also to one another in the longitudinal direction by means of the coupling. In an operating state of the system in which the first and second support rails are fixed to one another, the coupling is typically arranged in the two support rails in such a way that the coupling base runs along both support rail bases and each of the coupling side walls rests against a respective one of the support rail side walls assigned to it.
[0004] The support rail is typically attached to the building structure via its support rail base. The mounting body is typically arranged at the open vertical end of the support rail, such that the mounting body vertically delimits the interior space defined by the support rail, and the interior space is circumferentially enclosed by the support rail and mounting body perpendicular to the longitudinal direction. At least in some longitudinal sections, the enclosure of the interior space formed by the support rail and mounting body can be interrupted, for example, to allow access to the interior space, for example for air supply. Preferably, the interior space is continuously enclosed over at least 80%, in particular at least 90%, of its longitudinal extent, in particular over its longitudinal extent.The mounting body often has a cross-section perpendicular to the longitudinal direction, comprising a mounting body base extending transversely and, on the two transverse sides of the mounting base, mounting body side walls extending vertically away from the mounting body base. The support rail and mounting body are typically manufactured separately. Particularly preferably, the support rail and / or mounting body are typically each manufactured from a single sheet metal by forming. Typically, in an operating state of the system in which the system is used as intended, the mounting body is held by a retaining spring on support rail retaining anchors of the support rail. Various possibilities for implementing such a retaining spring are known in the prior art.Typically, the retaining spring is firmly connected to the mounting body and has elastically deflectable retaining projections in the transverse direction, wherein the transverse direction, when referring to the mounting body, refers to the operating state of the system. The support rail retaining anchors are preferably designed as projections.
[0005] To implement a generic luminaire, supply lines are usually provided which are arranged in the interior of the support rails and are supplied by the lamps and / or other electrical functional elements arranged on the mounting bodies of the luminaire. A generic system has a current guide rail, which is usually made of plastic, in particular by means of an extrusion process or injection molding process, and which is also elongated in the longitudinal direction, i.e. has an elongated longitudinal extension between its two longitudinal ends. The current guide rail is usually arranged on an inner side of the support rail facing the interior and is fixed to the support rail, in particular to the support rail base and / or to at least one of the support rail side walls.The current conducting rail extends over a significant portion of the length of the support rail, in particular over at least 80% of the longitudinal extent of the support rail. Typically, the current conducting rail has a plurality of channels arranged next to one another along an alignment direction, which channels are open to an access side that is accessible from the interior. In the operating state, the current conducting rail is fixed to the support rail in such a way that the alignment direction runs perpendicular to the longitudinal direction. In one embodiment, the alignment direction runs parallel to the transverse direction in the operating state of the system. The channels preferably extend continuously over the entire length of the current conducting rail. In particular, the transverse direction, the longitudinal direction and the vertical direction run perpendicular to one another.At least one conductor wire is arranged in at least some of the channels, in particular exactly one conductor wire or exactly two conductor wires, which are held at a distance from one another in the respective channel, and at least one longitudinal end of the current conducting rail, the conductor wires are usually connected to an external voltage source, via which electrical energy and in particular electrical signals can be applied to the conductor wires. The conductor wires can thus serve as supply lines in the support rails. For this purpose, an electrical connector, designed in particular as an electrical feed device, is usually arranged at the longitudinal end and is electrically connected to the conductor wires. Usually, an electrical connector is provided at each longitudinal end of the current conducting rail.The electrical connectors can, for example, be designed as mutually corresponding connectors, for example, a first as a plug to a second as a socket. By providing at least one connector at at least one longitudinal end of the busbar, adjacent busbars in the longitudinal direction can be electrically connected to one another, so that the conductor wires can form a through-wiring.
[0006] The system typically further comprises a contact device, via which an electrical contact is established between the conductor wires assigned to the busbar and at least one electrical functional element of the mounting body. The contact device is typically fixed to the mounting body and ensures an electrical connection of the at least one electrical functional element when the mounting body is held in the operating state of the system or in its intended position on the support rail in which the luminaire is implemented. The contact device is designed to engage in the channels from the access side of the support rail to contact the conductor wires.For this purpose, the contact device comprises a plurality of contact units arranged side by side in an arrangement direction, wherein, in the operating state of the system, each of the contact units is electrically conductively connected to one of the conductor wires arranged in the channels of the conductor rail. In the operating state, the arrangement direction, which is defined with reference to the contact device, is arranged parallel to the alignment direction, which is defined with reference to the conductor rail.To contact the conductor wires, the contact device is arranged with its contact side on the access side of the current conducting rail, wherein the contact units for contacting the conductor wires are inserted into the channels along a plug-in direction resulting from the arrangement of the contact units and defined for the contact device, wherein the plug-in direction is usually perpendicular to the arrangement direction and, accordingly, to realize the operating state, perpendicular to the line-up direction.
[0007] Generic systems are used in a wide range of applications, for example in warehouses, production halls, supermarkets, or open-plan offices, where luminaires with a plurality of support rails and mounting elements are used. The basic principle of luminaires manufactured with a generic system is that the support rails form the electrical and mechanical infrastructure of these luminaires, whereas the mounting elements are attached to the support rails and contain the electrical functional elements required in the respective application. Of course, at least some of the electrical functional elements are usually designed as lighting modules with light sources, in particular comprising LED boards.For example, alternatively or additionally, further electrical functional elements can be provided on the respective mounting body, such as a presence sensor (e.g., an infrared sensor), a camera, a radio module, etc. The electrical functional elements are usually fixed to the mounting body. In typical applications, generic systems are used in such a way that several luminaire components, each of which comprises a support rail designed as described, are arranged one behind the other in the longitudinal direction and connected to one another. Further components of the respective luminaire component can be arranged on or in the support rails of the luminaire components.For example, lamps and supply lines can be fastened to the support rails, for example directly to the support rails, for example by providing a mounting body designed as explained above and / or a current conducting rail designed as explained above. For example, each luminaire component can comprise a support rail, a current conducting rail and a mounting body and in particular a coupling fastened to the support rail. The luminaire components are arranged one behind the other in the longitudinal direction, wherein the support rails of the respective luminaire components are mechanically connected to one another by means of the coupling and the supply lines which run in the support rails, in particular the conductor wires arranged in the current conducting rails of the luminaire components, are each arranged in pairs, ieIn each case, a conductor wire of the first luminaire component is electrically connected to a conductor wire of the second luminaire component. This allows very elongated luminaires to be created, as is required in a variety of applications. Thus, a luminaire of the respective system comprises a plurality of support rails and, in particular, a plurality of mounting bodies and / or current conducting rails or a plurality of luminaire components, each of which is interconnected as explained.
[0008] Since these types of luminaires are typically quite long, often exceeding 5 m, 10 m, 20 m, or even more than 50 m, a system specifically designed for this type of luminaire requires connecting a number of support rails together. Typically, the support rails are delivered with one longitudinal section of the coupling positioned within the respective support rail and another longitudinal section extending from the support rail. This coupling is then inserted into another support rail to secure the two support rails together.To install the electrical functional elements, in particular the lighting devices, the contact devices are arranged with their contact sides within the interior of the support rail on the access side of the conductor rail so that the functional element connected to the respective contact device can be electrically connected to at least some of the conductor wires by means of the contact device. The conductor wires are often contacted by the contact device in such a way that a mounting body with a pre-mounted contact device is arranged at the open end of the support rail, and the contact units of the contact device are inserted into the channels of the conductor rail, while the contact device is fixed to the mounting body.The contact units are often inserted into the conducting wire channels during and due to the same movement of the mounting body relative to the support rail with which the mounting body is arranged and fastened to the open end of the support rail to close the open side of the support rail. Since a current conducting rail of a generic system typically has a large number of channels arranged next to one another in the direction of alignment, typically at least ten, preferably at least thirteen, ensuring correct contact between the conducting wires arranged in the channels is not easy. It must be taken into account that the current conducting rail with all of its channels usually extends over a limited area in the direction of alignment, so that the current conducting rail, and thus a luminaire manufactured using the system, does not have to be overly large.In most cases, the conductor rail extends in the direction of alignment with its total extension length of less than 20 cm, in particular less than 15 cm. The channel walls that separate the clear cross-sections of two adjacent channels of the conductor rail from each other usually have a channel wall thickness of less than 5 mm, in particular less than 4 mm, in particular less than 3 mm. The contact device and its contact units must therefore be carefully aligned relative to the conductor rail so that its contact units can reach the channels provided for them and, in particular, so that the contact units do not contact unwanted components too early due to an inclination of the contact device relative to the conductor rail.Furthermore, such incorrect insertion of the contact device into the busbar must be prevented, if possible, by positioning the contact device at a 180° angle relative to its intended orientation relative to the busbar. It should be noted that each of the conductor wires arranged in the channels of the busbar is typically assigned a specific function, such as a data conductor, neutral conductor, phase conductor, or PE conductor. Therefore, correct positioning of the contact device relative to the busbar and correct contacting of the contact units with their respective designated conductor wires are essential for the correct functioning of a luminaire and also for safety reasons.Various measures have already been taken in the prior art to design a contact device in such a way that incorrect contact is avoided wherever possible. For example, it is known to design the contact device's outer contour to correspond to an inner contour of the mounting rail, so that the contact device can only be arranged in a desired position on the access side of the busbar, which is determined by the interaction of the contours.For example, it is known from document DE 102021 106 844 A1 to equip a contact device with a mismating protection device that has different actuating sections on the contact side of the contact device. The actuating sections are specifically designed to form a coding arrangement provided on the access side of the current conducting rail, so that if the contact device is incorrectly plugged onto the current conducting rail, the coding arrangement actuates the actuating sections in such a way that the mismating protection device prevents the contact units from being inserted into the channels of the current conducting rail. However, it has been found that such a mismating protection device can only be deactivated with considerable effort in such a way that incorrect arrangement of the contact device or incorrect contact can be ruled out with sufficient probability.The present invention is based on the object of providing a contact device for a system for producing a luminaire comprising a current guide rail or such a system or a luminaire comprising the contact device or a method for realizing a luminaire, with which or with which at least one disadvantage of generic contact devices or systems or luminaires or methods can be at least partially remedied.
[0009] As a solution to the problem underlying the invention, the invention proposes a contact device with the features according to claim 1. The contact device is designed to be used as a contact device of a system as explained, which is designed to realize a longitudinally elongated luminaire. The system has a mounting body elongated in a longitudinal direction, on which a light source is arranged as an electrical functional element, which is to be electrically supplied by the contact device. Of course, the contact device can also be provided for the electrical supply of other electrical functional elements arranged on further mounting bodies of the system.Such a system comprises a longitudinally elongated support rail having an interior space in which a longitudinally elongated current conducting rail is arranged, which has longitudinally elongated channels arranged side by side in an array direction perpendicular to the longitudinal direction and open on an access side of the current conducting rail, in each of which at least one longitudinally elongated conductor wire is arranged. The contact device is thus fundamentally designed for use in such a system, for which purpose the contact device has a housing in which a plurality of contact units arranged side by side in an arrangement direction are arranged. The arrangement direction is defined with respect to the contact device or the housing of the contact device.The contact device preferably comprises at least ten, in particular at least thirteen contact units arranged next to one another along the arrangement direction. The contact device can thus be arranged on the access side of a corresponding current conducting rail, which has a corresponding number of channels open on the access side with conductor wires arranged therein. The contact device preferably has an extension length in the arrangement direction that is less than 15 cm, in particular less than 10 cm. Generally speaking, each of the contact units of the contact device preferably has a contact blade made of a conductive material, in particular metal, that is to be introduced into one of the channels of the current conducting rail in order to contact a conductor wire of the current conducting rail. The contact blades of the contact device are preferably spaced apart from one another by less than 5 mm along the arrangement direction.Preferably, each of the contact blades has an extension length of at least 5 mm, in particular an extension length of at least 7 mm, in particular an extension length of at least 10 mm, along a plug-in direction along which the contact units or their contact blades are to be introduced into the channels of the current conducting rail for contacting the conductor wires. The contact device has a contact side and is designed to be arranged with its contact side on the access side of the current conducting rail, which is defined by its explained properties, with at least some of its contact units being introduced along a plug-in direction into one of the channels, thereby contacting the conductor wires arranged in these channels.To make contact with the conductor wires, the contact units are to be inserted at least partially into the channels of the conductor rail, starting from the access side of the conductor rail. Preferably, the contact blades, which are advantageously each encompassed by the contact units, penetrate into the channels of the conductor rail to make contact. The conductor wires are preferably spaced from the access side, i.e. from the end of the channel walls of the channels formed on the access side, by at least 2 mm, in particular by at least 3 mm. The contact device is designed such that it is suitable for being arranged on the access side such that its contact units are brought into electrical contact with the conductor wires arranged in the channels.Generally preferably, the support rail of a system, as part of which the contact device can be used, has a U-shaped cross-section with which it extends perpendicular to the longitudinal direction, wherein the U-base runs in a transverse direction perpendicular to the longitudinal direction and connects the U-side walls of the support rail to one another, wherein the current conducting rail is arranged in the support rail with the direction of arrangement aligned parallel to the transverse direction and the current conducting rail extends along the transverse direction with its channels over at least 80%, in particular at least 90% of the extension length of the interior of the support rail in the transverse direction between the two U-side walls, wherein the contact device from the open side of the support rail, iefrom the open side of the U-shape of the support rail, can be plugged onto the current conducting rail in such a way that one of its contact units is arranged at least in section in each of the channels of the current conducting rail and contacts the conductor wire arranged in the respective channel. In general, the contact device is suitable for being arranged on the access side of the current conducting rail in such a way that the alignment direction runs parallel to the arrangement direction, wherein in this arrangement one of the contact units is arranged in each of the channels of the current conducting rail and contacts the respective conductor wire arranged in the respective channel.During the arrangement of the contact device with its contact side on the access side of the conductor rail or following the arrangement of the contact device with its contact side on the access side of the conductor rail, the contact units can be inserted along a plug-in direction into the channels of the conductor rail that are open towards the access side. The plug-in direction generally runs preferably perpendicular to the arrangement direction or, with a corresponding arrangement of the contact device on the conductor rail, also perpendicular to the alignment direction. In such a normal state, in which the contact units are in electrically conductive contact with the conductor wires arranged in the channels, the contact units thus extend along the plug-in direction from the access side of the conductor rail into the channels of the conductor rail up to the conductor wires.According to the invention, the contact device comprises a protective device having a protective element mounted on the housing such that it can move relative to the housing along the plug-in direction, which protective element at least partially conceals the contact units to protect the contact units, and whose mobility along the plug-in direction is blocked in the rest position by a locking section of the protective device engaging a blocking section provided on the housing. The blocking section is preferably designed as an integral component of the housing. By the protective element at least partially concealing the contact units, in particular the contact blades of the contact units, the protective element can effectively prevent incorrect insertion of the contact units into the channels of the current conducting rail when the contact device is arranged with its contact side on the access side of the current conducting rail.The engagement of the locking portion against the blocking portion in a specific direction along the blocking direction blocks the movement of the protective element relative to the housing, wherein this specific direction is directed counter to the insertion direction along the plug-in direction in which the contact units are to be inserted into the channels. The specific direction and the insertion direction thus run in opposite directions parallel to the plug-in direction. In the rest position, the protective element cannot be moved relative to the housing counter to the insertion direction and thus cannot release the contact units if the contact device is pressed with its contact side against the access side of the current conducting rail in the insertion direction, which runs parallel to the plug-in direction.In the release position explained later, however, the contact units can be inserted into the channels in the insertion direction along the plug-in direction, while the protective element moves to the same extent relative to the housing of the contact device, counter to the insertion direction, along the blocking direction. The protective element preferably extends at least over the same extension area as the contact units, relative to the plug-in direction, and / or on the side of the contact units facing the contact side and / or forms at least a section of the contact side of the contact device. The protective device further comprises a device connected to the protective element.
[0010] Unlocking element which has an unlocking arrangement. The unlocking element is mounted so as to be movable relative to the housing and comprises the locking section of the protective device. The unlocking element can be moved against the unlocking arrangement perpendicular to the plug-in direction by pressing it along the plug-in direction, which pressing takes place from the access side along the plug-in direction, thereby creating a release position in which the locking section is arranged completely next to the blocking section and thus the protective element is movable along the plug-in direction relative to the housing to enable the contact units to be introduced into the channels of the current conducting rail, i.e. to enable the contact units to make contact with the conductor wires arranged in the channels of the current conducting rail.The unlocking element is thus specifically mounted on the housing so that it can move in a manner perpendicular to the plug-in direction when the unlocking arrangement is pressed against it. This can be achieved, for example, by mounting the unlocking element relative to the housing about a rotation axis provided on the housing and / or by providing inclined surfaces as part of the unlocking arrangement that run at an angle to the plug-in direction, so that pressing against these inclined surfaces in the plug-in direction, due to the inclined position, leads to a movement of the unlocking element perpendicular to the plug-in direction. Generally speaking, the unlocking arrangement is preferably designed to correspond to a coding arrangement provided on the access side of the current guide rail, which coding arrangement is thus designed to actuate the unlocking arrangement from the rest position from the contact side of the contact device.The coding arrangement preferably comprises at least one projection of the current guide rail provided on the access side, wherein this at least one projection of the coding arrangement can ensure pressing against the corresponding unlocking arrangement along the plug-in direction. The unlocking arrangement is thus configured to correspond to the coding arrangement in such a way that by pressing the coding arrangement against the unlocking arrangement along the plug-in direction, the unlocking element can be moved perpendicular to the plug-in direction, thereby achieving the release position.Preferably, the unlocking arrangement and coding arrangement are configured to correspond to one another in such a way that, when the contact device is arranged with its contact side on the access side of the current conducting rail, contacting the conductor wires arranged in the channels of the current conducting rail is only possible in a single rotational position of the contact device relative to the current conducting rail, wherein the rotational position refers to a rotation about the plug-in direction. This can be achieved, for example, by an asymmetrical design of the unlocking arrangement and coding arrangement with respect to the plug-in direction. This can enable particularly reliable prevention of incorrect plugging or incorrect contact.
[0011] In one embodiment, the unlocking arrangement has a first unlocking section and a second unlocking section, which are spaced apart from one another. This ensures improved functionality of the protective device. In one embodiment, the release position of the contact device can be reached by pressing against only one of the two unlocking sections, starting from the rest position of the contact device. In another embodiment, the release position can only be reached by actuating both unlocking sections, starting from the rest position. The provision of the two spaced-apart unlocking sections thus offers the advantage of particularly targeted use of the contact device.Particularly preferably, the first unlocking section is assigned to a first coding section of the coding arrangement and the second unlocking section is assigned to a second coding section of the coding arrangement. In one embodiment, in a contacting position of the contact device relative to the current conducting rail, each of the unlocking sections is designed to interact with the coding section respectively assigned to it in order to reach the release position starting from the rest position. In the contacting position, the contact side of the contact device points to the access side of the current conducting rail, and each of the unlocking sections interacts with the coding section respectively assigned to it in order to reach the release position starting from the rest position. The contacting position designates a specific position of the contact device relative to the current conducting rail.The contacting position defines the position of the contact device relative to the current conducting rail with respect to its position along the alignment or arrangement direction, as well as in any direction perpendicular thereto, and with respect to a rotation about the plug-in direction. In one embodiment, the coding sections are each designed as a projection of the current conducting rail, with a recess formed by the current conducting rail being provided between the coding sections. This ensures particularly good definability of the respective coding sections. In one embodiment, the unlocking sections of the contact device are separated from one another by a separating section of the contact device running along the plug-in direction. The separating section and the unlocking sections are each surface sections of the unlocking element.The separating section preferably points in a different direction than the coding sections. In one embodiment, the separating section runs parallel to the plug-in direction or points along the plug-in direction in an opposite direction compared to the coding sections; generally preferably, the coding sections run obliquely to the plug-in direction and are each accessible from the contact side of the contact device or form a section of the contact side. In one embodiment, the first and second unlocking sections are spaced apart from one another in the arrangement direction and / or in a direction running perpendicular to the plug-in direction and arrangement direction. When the contact device is used as intended, the direction running perpendicular to the plug-in direction and arrangement direction runs in the longitudinal direction.In one embodiment, the first and second coding sections are spaced apart from one another in the arrangement direction and / or in a direction running perpendicular to the plug-in direction and arrangement direction. Generally speaking, the contact device and current conducting rail are preferably designed to correspond to one another in such a way that when the coding arrangement is pressed against the unlocking arrangement, the contact device rests on the current conducting rail and thus on the coding arrangement exclusively via the first and second unlocking sections. In one embodiment, each of the coding sections has at least one interruption along the longitudinal direction, wherein the interruptions of the coding sections are offset from one another in the longitudinal direction. The contact device can be arranged over the entire longitudinal extent of the coding arrangement on the access side of the current conducting rail with its contact units inserted into the channels.Despite the interruption provided in the respective coding section, the contact device can thus be arranged at any longitudinal position relative to the current guide rail along the coding arrangement, i.e., along the extension of the coding sections, with its contact side on the access side, reaching the release position from the rest position. Generally, the coding arrangement preferably extends uninterrupted over at least 90%, in particular at least 95%, of the total length of the current guide rail.
[0012] In one embodiment, in a first longitudinal position of the contact device relative to the current conducting rail, i.e. in a first position of the contact device in relation to the longitudinal direction relative to the current conducting rail, the release position starting from the rest position can be achieved solely by the interaction of the first unlocking section and the first coding section, while the second unlocking section is spaced from the second coding section and thus does not cooperate with it to achieve the release position, whereas in a second longitudinal position of the contact device relative to the current conducting rail, the release position can be achieved solely by the interaction of the second unlocking section and the second coding section, while the first unlocking section is spaced from the first coding section and thus does not cooperate with it to achieve the release position.Thus, the coding arrangement can have a changing design over its longitudinal extent, wherein in each of the two longitudinal positions of the contact device relative to the current conducting rail, it is always ensured via the interaction of one of the unlocking sections and one of the coding sections that when the contact device is arranged relative to the current conducting rail for contacting the line wires, the contact device can reach the release position from its rest position and thus the line wires can be contacted by their contact units.
[0013] In one embodiment, the unlocking sections are rigidly connected to one another. The locking element is preferably designed as a one-piece plastic component, in particular manufactured as a one-piece component by injection molding. In one embodiment, each of the unlocking sections forms an inclined surface section which is accessible from the contact side, in particular forms a section of the contact side. Generally speaking, the inclined surface sections preferably run parallel and are spaced apart from one another. In one embodiment, the unlocking element is movable from the rest position in a direction of movement to reach the release position, wherein the unlocking sections are spaced apart from one another along the direction of movement. The corresponding spaced-apart arrangements of the unlocking sections orThe rigid coupling of the unlocking sections can be particularly advantageous for the functionality of the protective device; in particular, it can be particularly reliably ensured that pressing against only one optionally selectable of the two unlocking sections has the same effect as pressing against both unlocking sections, wherein the effect relates to reaching the release position starting from the rest position. In one embodiment, the unlocking element is fixed in position relative to the protective element at least with one fixing section along the plug-in direction. As a result, the unlocking element can be guided particularly reliably to the protective element in such a way that the release position can be achieved by the unlocking element upon actuation of the unlocking arrangement or pressing against the unlocking arrangement along the plug-in direction starting from the rest position.In one embodiment, the unlocking element has an extension length in the arrangement direction which is a multiple, in particular at least three times, in particular at least four times, in particular at least five times, of an extension length of the unlocking element in a direction running perpendicular to the arrangement direction, in particular perpendicular to the arrangement direction and the plug-in direction. In one embodiment, the protective element has an extension length in the arrangement direction which is a multiple, in particular at least three times, in particular at least four times, in particular at least five times, of an extension length of the protective element in a direction running perpendicular to the arrangement direction, in particular perpendicular to the arrangement direction and perpendicular to the plug-in direction. As a result of this configuration, the unlocking element orThe protective element can particularly advantageously be guided relative to the housing of the contact device. In one embodiment, the protective element extends over at least 60%, in particular at least 70%, in particular at least 80% of the total extension length of the contact device in the arrangement direction. In one embodiment, the unlocking element extends over at least 30%, in particular at least 40%, in particular at least 50%, in particular at least 60% of the total extension length of the contact device in the arrangement direction. In one embodiment, the housing, the protective element, and the unlocking element are each designed as a separately manufactured injection-molded component. As a result, each of these injection-molded components can be specifically adapted to the requirements placed on it.
[0014] In one embodiment, the contact device has a first group of contact units and a second group of contact units spaced apart from the first group by a spacing region in a direction perpendicular to the arrangement direction and perpendicular to the plug-in direction, wherein the protective device is arranged in the spacing region between the two groups of contact units. The spaced-apart arrangement of the two groups of contact units can be particularly advantageous for arranging the contact units at a short distance from one another in relation to the arrangement direction and, at the same time, ensuring good accessibility of the contact units for connecting an electrical functional element. All contact units are arranged next to one another along the arrangement direction orarranged one behind the other, with the contact units of the different groups arranged offset from one another in the direction mentioned. The contact units explained naturally include both the first group and the second group of contact units, so that the contact units of both groups can be inserted into the channels of the current conducting rail as intended when the contact device is arranged with their contact side on the access side of the current conducting rail.
[0015] In one embodiment, the protective element has a guide section for each individual contact unit assigned to this respective contact unit, which guides a contact blade of the respective contact unit laterally both in the rest position and in the release position, as well as during a movement of the protective element along the insertion direction starting from the release position. The guide section is preferably arranged on both sides of the contact blade, with the term "sides" referring to the two sides relative to the arrangement direction. The movement of the protective element starting from the release position along the insertion direction refers to a movement of the protective element that the protective element performs when the contact device is arranged with its contact side on the access side of the current conducting rail and its contact units are inserted into the channels along the insertion direction.During the aforementioned movement, the distance along the plug-in direction over which the contact blades of the contact units protrude beyond the protective element on the contact side is increased so that they can be inserted into the channels of the current conducting rail. By guiding the contact blades of the contact units, the contact blades can be aligned particularly reliably so that they can be inserted into the channels of the current conducting rail without interference. At this point, it should be generally noted that the contact units preferably each have a contact blade made of a conductive material, in particular metal. Such contact blades must have a certain length so that they can contact the conductor wires arranged in the channels.
[0016] At the same time, such contact blades can only have a limited thickness, i.e. blade strength, on the one hand for cost reasons, and on the other hand due to space constraints or distances that must be maintained between the various contact blades of different contact units. Guiding the contact blades by the guide section of the protective element is therefore particularly advantageous for the realization of thin and sufficiently long contact blades. Generally speaking, a contact blade preferably has a length along the extension direction that is at least ten times, in particular at least twenty times, in particular at least thirty times the contact blade thickness, i.e. the extension length of the contact blade in the arrangement direction. In one embodiment, the guide section extends on both sides of the contact blade over the same longitudinal extension section as the contact blade.The longitudinal extension section refers to a length section along a direction that is perpendicular to the plug-in direction and perpendicular to the arrangement direction. The longitudinal extension length of the longitudinal extension section preferably increases from the release position during the movement of the protective element along the plug-in direction. Thus, the guide section and contact blade overlap along the said direction over a length that increases during the movement of the protective element, which the protective element, as explained above, performs starting from the release position along the plug-in direction when the contact blades are inserted into the channels of the current-conducting rail along the plug-in direction or when the contact blades increasingly extend beyond the protective element along the plug-in direction.In one embodiment, the guide section is funnel-shaped, with a free space provided for the contact blade tapering along the plug-in direction toward the contact side. This ensures improved guidance toward the contact side, i.e., guidance with less play the closer the guide is to the contact side. In one embodiment, the guide section encloses the contact blade in a U-shape and is thus open at one end. The U-shape preferably describes the cross-section of the guide section perpendicular to the plug-in direction. This can ensure both sufficient flexibility and adequate guidance of the contact blade.
[0017] In one embodiment, a first group of contact units is arranged on a first side of the protective element, which are arranged next to one another in the arrangement direction, and a second group of contact units is arranged on a second side of the protective element, which are arranged next to one another in the arrangement direction, wherein a first group of guide sections is provided on the first side, each of which guides the contact blade of one of the contact units of the first group, and wherein a second group of guide sections is provided on the second side, each of which guides the contact blade of one of the contact units of the second group. The two groups of contact units can be the two groups of contact units explained above. Preferably, all contact units, ieBoth those of the first and those of the second group are arranged one behind the other along the arrangement direction, so that none of the contact units of the first group is arranged at the same height, relative to the arrangement direction, as one of the contact units of the second group. By arranging the protective element between the groups of contact units, guidance of all contact units can be ensured in a particularly space-saving and effective manner. The protective element is preferably arranged between the two groups of contact units in a direction perpendicular to the plug-in direction and perpendicular to the arrangement direction, thus running along the longitudinal direction when used as intended, so that the sides of the protective element relate to this direction and thus point away from each other along this direction.
[0018] In one embodiment, the guide sections extend in the plug-in direction over at least 1%, in particular at least 3%, in particular at least 5% of a total extension length of the contact device that the contact device has in its rest position in the plug-in direction. In one embodiment, the guide sections extend in the plug-in direction over less than 50%, in particular less than 30%, in particular less than 20% of the total extension length of the contact device that it has in its rest position in the plug-in direction. In one embodiment, the guide sections extend in the plug-in direction over at least 5%, in particular at least 10% of a total extension length of the protective element that the protective element has in the plug-in direction.In one embodiment, the guide sections extend in the plug-in direction over less than 70%, in particular less than 50%, in particular less than 30% of the total extension length of the protective element which the protective element has in the plug-in direction.
[0019] In one embodiment, the unlocking element is arranged at least predominantly, in particular entirely, within the protective element. In one embodiment, the unlocking element extends over at least 50%, in particular at least 70%, of a total extension length that the protective element has along the arrangement direction. In one embodiment, the unlocking element extends over at least 50%, in particular at least 70%, of a total extension length that the contact device has along the arrangement direction.
[0020] In one embodiment, the housing has a sliding guide for the unlocking element, which runs along the plug-in direction and in which the unlocking element is mounted and guided during a movement along the plug-in direction relative to the housing starting from the release position perpendicular to the plug-in direction. The unlocking element preferably has at least one guide section which is assigned to a sliding guide section of the sliding guide, wherein in the rest position the guide section is arranged offset perpendicular to the plug-in direction from the sliding guide section assigned to it, and in the release position is arranged aligned with the sliding guide section assigned to it. Thus, the guide section can only be guided along the plug-in direction by the sliding guide section when the release position is reached, whereas in the rest position such guidance is not possible due to the offset.The guide section preferably forms at least part of the locking section of the contact device. The unlocking element preferably has at least two guide sections that are spaced apart from one another perpendicular to the plug-in direction, in particular along the arrangement direction, and that are each assigned to one of two sliding guide sections of the sliding guide, which are also spaced apart from one another perpendicular to the plug-in direction, in particular along the arrangement direction. By providing two spaced-apart guide sections or sliding guide sections, particularly reliable, tilt-free guidance of the unlocking element relative to the housing can be ensured. In one embodiment, the protective element, starting from the release position, can only be moved along the plug-in direction relative to the housing together with the unlocking element.In one embodiment, the protective element and the unlocking element each have guide sections by means of which they are each guided on the housing during a movement along the plug-in direction relative to the housing. As explained above, the movement along the plug-in direction can be the movement that the protective element performs together with the unlocking element when the contact units are arranged in the channels of the current guide rail. Preferably, the protective element has a guide section which, during the movement, is guided in a same sliding guide section of the housing in which a guide section of the unlocking element is also guided, wherein the cross sections of the guide sections of the unlocking element and protective element are preferably each adapted to the cross section of the sliding guide section, such that the two guide sections are guided in the same way by the sliding guide section.
[0021] In one embodiment, the protective element has a guide arrangement corresponding to the unlocking arrangement, wherein the guide arrangement is arranged in front of the unlocking arrangement on the contact side along the plug-in direction. In the rest position, the unlocking arrangement is preferably arranged in alignment with the guide arrangement so that the coding arrangement can be brought through the guide arrangement to the unlocking arrangement. The guide arrangement can thus ensure guidance of projections formed by the coding arrangement so that these projections can come into contact with the unlocking arrangement with particular precision. Thus, the guide arrangement, just like the unlocking arrangement, is preferably designed to correspond to the coding arrangement. Particularly preferably, the guide arrangement is spaced from the unlocking arrangement along the plug-in direction.Particularly preferably, the unlocking arrangement is accessible from the contact side only after passing the guide arrangement. Thus, the unlocking arrangement for the coding arrangement is preferably only accessible after the coding arrangement has been guided past the guide arrangement. In one embodiment, the guide arrangement has a plurality of arrangement sections that are spaced apart from one another in the arrangement direction, wherein each of the arrangement sections is preferably assigned to exactly one of the unlocking sections and, in the rest position, is arranged in alignment with the respective unlocking section assigned to it.
[0022] In one embodiment, the guide arrangement comprises a first group of arrangement sections, each of which is assigned to an unlocking section of the unlocking arrangement, and a second group of arrangement sections, which are arranged offset from all of the unlocking sections of the unlocking arrangement. Generally, both the arrangement sections of the first group and the arrangement sections of the second group are preferably each designed as a recess, wherein the arrangement sections of the first group are preferably arranged in the same spatial arrangement as the arrangement sections of the second group. By being designed as a recess, each of the arrangement sections can be designed to receive a projection encompassed by the coding arrangement, wherein a specific arrangement of projections can be received by both the first group of arrangement sections and the second group of arrangement sections, i.e.can be inserted into the respective arrangement of recesses. Preferably, the first group of arrangement sections is arranged offset from the second group of arrangement sections along the arrangement direction. Preferably, the arrangement sections are arranged in front of the locking element on the contact side along the plug-in direction, so that the locking element and thus also the unlocking arrangement are accessible from the contact side along the plug-in direction only after passing the arrangement sections.In one embodiment, in a first position of the contact device in its rest position relative to the current conducting rail, the coding arrangement is in engagement with the first group of arrangement sections, enabling realization of the release position, whereas in a second position of the contact device in its rest position relative to the current conducting rail, the coding arrangement is in engagement with the second group of arrangement sections, preventing realization of the release position.Preferably, in the first position, the coding arrangement rests against the unlocking arrangement, whereas in the second position the coding arrangement is spaced apart from the unlocking arrangement along the arrangement direction, so that, starting from the second position, when the coding arrangement is pressed against the locking element along the plug-in direction, the locking element is blocked in its movement, whereas when the coding arrangement is pressed against the locking element along the plug-in direction, starting from the first position, the pressing causes the locking element to move, and the release position can thereby be reached.By providing the two different groups of arrangement sections, on the one hand, with a correct positioning of the contact device relative to the current conducting rail, which occurs when the contact device is arranged in the first position, a targeted guidance of the coding arrangement to the unlocking arrangement can be ensured, whereas in the case of incorrect positioning, which occurs when the contact device is in the second position, a movement of the locking element along the plug-in direction is blocked by the mutual abutment of the locking section and the blocking section and thus incorrect contact of the conductor wires arranged in the current conducting rail is prevented as far as possible.
[0023] In one embodiment, the locking section extends over at least 30%, in particular at least 50%, in particular at least 60%, in particular at least 70% of a total extension length of the unlocking element in the arrangement direction. Preferably, the locking section is designed to be uninterrupted or interrupted by interruptions and, in the rest position, rests against the blocking section over its entire extension length in the arrangement direction. In embodiments in which the locking section has interruptions, it naturally does not rest against the blocking section at the level of the interruptions, but only with its physical sections, which are naturally provided next to the interruptions.Due to the extension of the locking section over a considerable proportion of the total extension length of the unlocking element, a particularly reliable inhibition of a movement of the unlocking element along the plugging direction starting from the rest position can be ensured unless the unlocking arrangement is actuated by a corresponding coding arrangement to reach the release position.
[0024] In one embodiment, the contact device has a center plane that divides the contact device into two halves of equal length relative to the arrangement direction, wherein the unlocking arrangement is arranged only within one of these two halves. The unlocking arrangement is preferably spaced from the center plane in the arrangement direction, in particular by at least 5%, in particular at least 10% of the total extension length of the contact device in the arrangement direction. Due to the off-center arrangement of the contact device, incorrect plugging of the contact device can be avoided as far as possible, especially when the contact device is rotated by 180° about the plugging direction relative to its desired position relative to the current conducting rail, and contacting of the conductor wires by the contact device can be avoided.
[0025] In one embodiment, the contact device has a spring device. In one embodiment, the spring device presses against both the protective element and the unlocking element in the rest position. Preferably, the spring device presses against the unlocking element in a first spring direction and against the protective element in a second spring direction, wherein the spring device preferably has two different springs, one of which is assigned to the protective element and the other to the unlocking element and / or the spring device is guided in two different guide sections, one of which is assigned to the protective element and the other to the unlocking element. In one embodiment, when the contact device is in the rest position, the spring device presses both the protective element and the unlocking element against a stop provided on the housing.The stop associated with the protective element is preferably spaced apart from the stop associated with the unlocking element, in particular spaced apart along the insertion direction and / or arrangement direction. In one embodiment, the spring device comprises a first spring that presses against the unlocking element, and a second spring that presses against the protective element. The first spring preferably presses against the unlocking element in a direction perpendicular to the insertion direction, in particular against the unlocking element along the arrangement direction, and the second spring presses against the protective element along the insertion direction.
[0026] In one embodiment, the unlocking element is mounted on the protective element in a linear guide formed by the protective element, guided displaceably in a displacement direction determined by the linear guide and running at least with one component perpendicular to the plug-in direction. The linear guide fixes the unlocking element in its position perpendicular to the displacement direction. The unlocking arrangement has an inclined surface section accessible from the contact side of the contact device along the plug-in direction, running obliquely to the displacement direction and obliquely to the plug-in direction. The oblique surface section can form a section of the contact side of the contact device. In the rest position, the spring device presses the unlocking element against a stop within the linear guide in a spring direction running along the displacement direction.By pressing against the inclined surface section of the unlocking arrangement from the contact side along the plug-in direction, the inclined position of the inclined surface section forces the unlocking element to move in the linear guide counter to the spring direction, thus achieving the release position. The inclined surface section thus acts like a wedge-type friction device, generating a reversal of movement by converting a pressing force exerted on the inclined surface section along the plug-in direction into a displacement force counter to the spring direction due to the inclined orientation of the inclined surface section.Thus, the coding arrangement and the unlocking arrangement are preferably designed to correspond to one another in such a way that by pressing the coding arrangement along the plug-in direction against the inclined surface section of the unlocking arrangement, a displacement of the unlocking element in the linear guide is forced against the spring direction, thereby realizing the release position.
[0027] In one embodiment, the first spring is resiliently compressed in the rest position between the protective element and the unlocking element along the spring direction, and the second spring is resiliently compressed between the housing and the protective element along the plug-in direction. Thus, the first spring is compressed in the rest position between the protective element and the unlocking element, such that it generates a direct force on the unlocking element relative to the protective element, whereas the second spring generates a relative force between the housing and the protective element. Thus, the second spring can permanently hold the protective element in a state in which it at least partially encloses or surrounds the contact units.protects, whereas when the protective element is loaded along the plug-in direction, as occurs when the contact device is arranged with its contact side on the access side of the busbar in order to contact the conductor wires arranged in the channels of the busbar through the contact units, the second spring is compressible along the plug-in direction to enable the contacting process. This is accompanied by the displaceability of the protective element along the plug-in direction, which, however, is only possible if the unlocking element has previously been brought into a position in which the release position of the contact device is created. In one embodiment, the first spring is mounted in the unlocking element in the rest position and in particular also in the release position over at least 30%, in particular at least 50% of its extension length in the spring direction.Due to the bearing guided in the unlocking element, tilting between the unlocking element and the first spring can be particularly effectively prevented and thus a reliable force action of the first spring on the unlocking element can always be guaranteed. Accordingly, the second spring is preferably mounted in the protective element in the rest position and in particular in the release position over at least 10%, in particular at least 20%, in particular at least 30% of its extension length in the spring direction. The spring direction refers to the spring direction of the respective spring. In one embodiment, the second spring is spaced from the unlocking element such that the second spring acts on the unlocking element only indirectly via the protective element.As a result, the second spring can be used to prevent as effectively as possible any inhibition of a movement of the unlocking element, which is required to move the unlocking element from the rest position into the release position. Preferably, the protective element has a guide section for the second spring, wherein the unlocking element is arranged toward the contact side, i.e., on the contact side, in front of the guide section with respect to the plug-in direction and is thus spaced from the second spring, so that the second spring is further away from the contact side with respect to the plug-in direction than the section of the unlocking element closest to it along the plug-in direction.
[0028] In one embodiment, the coding arrangement is formed at least partially by a channel wall of the current guide rail, which separates a clear cross-section of one of the channels from a clear cross-section of a channel adjacent to it in the alignment direction. Preferably, the coding arrangement is formed at least partially by two channel walls of the current guide rail, which are spaced from one another in the alignment direction at least by the clear cross-section of a channel arranged between them, in particular by the clear cross-sections of several channels arranged between them. By configuring at least part of the coding arrangement by at least one channel wall of the current guide rail, the coding arrangement can be formed or realized at an advantageous location on the current guide rail, relative to the alignment direction, in a cost-effective and space-saving manner.In one embodiment, the current conducting rail has a plurality of current conducting profiles arranged one behind the other in the longitudinal direction, each of which forms a longitudinal section of the coding arrangement. In one embodiment, the current conducting profiles arranged one behind the other jointly form the channel walls of the current conducting rail, wherein a first of the channel walls is designed as a first coding channel wall and a second of the channel walls is designed as a second coding channel wall, and wherein the coding channel walls each form a coding section of the coding arrangement, wherein preferably each of the current conducting profiles forms a longitudinal section of each of the coding channel walls and the coding section has an interruption between two longitudinal sections of each coding channel wall, which are formed by current conducting profiles arranged one behind the other, wherein the interruptions are offset from one another in the longitudinal direction.
[0029] The invention further relates to a system comprising a contact device according to the invention and a mounting body elongated in the longitudinal direction, on which a lighting means is arranged as the electrical functional means, and in particular at least one further elongated mounting body on which another electrical functional element is arranged. The respective electrical functional element provided on the respective mounting body is to be electrically supplied by means of a respective contact device according to the invention. The system further comprises a longitudinally elongated support rail having a U-shaped cross-section running perpendicular to the longitudinal direction and an open end, and a longitudinally elongated current conducting rail having longitudinally elongated channels arranged side by side in an array direction running perpendicular to the longitudinal direction and open on an access side of the current conducting rail.At least one longitudinally elongated conductor wire is arranged in each channel. In an operating state of the system, the contact device is fixed to the mounting body, and the mounting body is arranged at the open end of the support rail and fastened relative to the support rail. In the operating state, the contact device and the current conducting rail are arranged in an interior space of the support rail closed off by the mounting body. In the operating state, the contact device contacts, with its contact units, at least some of the conductor wires arranged in the channels of the current conducting rail, in particular all of the conductor wires arranged in the channels of the current conducting rail.
[0030] The invention further relates to a luminaire manufactured using a system according to the invention. To realize the luminaire, the system is in the operating state. As explained above, the luminaire can comprise several luminaire components, each of which comprises a support rail, a current-conducting rail, and several mounting elements, as well as an electrical functional element and a contact device on each mounting element.
[0031] The invention further relates to a method for implementing a luminaire using a system according to the invention. To implement the operating state of the system and thus to implement the luminaire, the contact device with its contact units is moved along the plug-in direction toward the conductor rail, and the coding arrangement is pressed against the unlocking arrangement in the plug-in direction, whereby the unlocking element is moved perpendicular to the plug-in direction. Subsequently, by continuing the movement of the contact units along the plug-in direction, in particular together with the housing of the contact device, toward the conductor rail or into the channels of the conductor rail, at least some of the conductor wires arranged in the channels of the conductor rail, in particular all of these conductor wires, are contacted with the contact units.
[0032] In advantageous embodiments, the contact device according to the invention, the system according to the invention, the luminaire according to the invention, and the method according to the invention can each have features that are described for a respective other inventive solution and / or that are described in connection with generic systems or contact devices or luminaires or methods. Furthermore, the described embodiments of the invention can be particularly advantageously combined with one another.
[0033] The invention is explained in more detail below with reference to twelve figures using exemplary embodiments.
[0034] They show:
[0035] Figure 1: in various schematic principle representations, an embodiment of a contact device according to the invention and components of an embodiment of a system according to the invention;
[0036] Figure 2: in various schematic principle representations, different views of an embodiment of a contact device according to the invention in its rest position;
[0037] Figure 3: in a schematic principle representation, the contact device according to Figure 2 when approaching a current conducting rail along the plug-in direction;
[0038] Figure 4: in various schematic representations of the contact device according to Figure 2 in its release position;
[0039] Figure 5: in various schematic representations of the principle, the contact device according to Figure 2 in a state in which its contact units contact conductor wires of the current conducting rail;
[0040] Figure 6: in a schematic diagram, the contact device according to Figure 2 together with a rail in the case of incorrect positioning;
[0041] Figure 7: in a schematic principle representation, components of an embodiment of a system according to the invention;
[0042] Figure 8: in various schematic principle representations of components of the contact device according to Figure 2;
[0043] Figure 9: in a schematic principle representation of the locking element of the contact device according to Figure 2;
[0044] Figure 10: in a schematic principle representation, a section of a current guide rail of an embodiment of a system according to the invention;
[0045] Figure 11: in a schematic principle representation, a view of a current conducting profile of the current conducting rail according to Figure 10;
[0046] Figure 12: in a schematic principle representation, a view of another current conducting profile of the current conducting rail according to Figure 10.
[0047] Figure 1, comprising Figures 1a, 1b and 1c, shows an embodiment of a contact device 1 according to the invention and several components of an embodiment of a system according to the invention comprising such a contact device 1 in schematic principle representations. Figure 1a shows a perspective view of a section through components of the system according to the invention to illustrate the basic principle of a system according to the invention and thus also of a luminaire according to the invention. In relation to the longitudinal direction X and transverse direction Y of the system, the components in Figure 1a are shown in their relative arrangement to one another, which they occupy in the operating state of the system. Figure 1a shows a cross-section perpendicular to the longitudinal direction X.The system comprises a support rail 2 which has a U-shaped cross-section with a support rail base and support rail side walls extending away from the support rail base in a vertical direction perpendicular to the transverse direction Y and the longitudinal direction X. The system further comprises a mounting body 5 which is arranged at an open end of the support rail 2 and which is fixed in position to the support rail 2 by means of a retaining spring 51 in order to implement the operating state. For fixing, projections 511 of the retaining spring engage behind projections 20 which are formed by the support rail side walls of the support rail 2. The mounting body 5 also has a U-shaped cross-section, with the U-shapes of the mounting body 5 and the support rail 2 opposite one another.The mounting body side walls each have a projection 50, under which the retaining spring 51 is pressed with retaining projections 512 and is thus held pressed against the mounting body base. Starting from the relative position of the mounting body 5 and the support rail 2 shown in Figure 1a, the mounting body 5 must still be moved vertically towards the support rail base so that the operating state is realized. A contact device 1 is fastened to the mounting body 5, and a current conducting rail 3 is fastened to the support rail 2, which has channels in which conductor wires 4 are arranged. Starting from the relative position shown in Figure 1a, the mounting body 5, together with the contact device 1, must still be moved vertically towards the support rail base until the projections 511 of the retaining spring 51 engage behind the projections 20 of the support rail 2.During this movement, contact units 11 of the contact device 1 are inserted into the channels of the conductor rail 3, contacting the conductor wires 4. By means of actuating elements 52, the retaining spring can be deflected from the operating state so that the mounting body 5 can be removed from the support rail 2. In the operating state, the contact device.
[0048] I and the busbar 3, as well as the conductor wires 4 arranged therein, are arranged in the interior of the support rail 2, which is closed by the mounting body 5. The mounting body 5 has, on its mounting body base on the side facing away from the interior, a lighting device 58 comprising a circuit board with LEDs. A cover can also be arranged on this side of the mounting base of the mounting body 5, which cover can, for example, comprise lenses with which a light distribution of the light emitted by the LEDs of the lighting device 58 can be determined.
[0049] Figure 1b shows a schematic perspective view of an embodiment of a contact device 1. The contact device 1 has, generally advantageous according to the invention, retaining projections 12, by means of which it can be fastened to the mounting body 5 to implement the operating state of the system. In the operating state, the retaining projections 12 engage under the projections 50 of the mounting body 5 shown in Figure 1a and press against them. The contact device 1 further has two groups of contact units 11, each having a contact blade 110. Between the two groups of contact units
[0050] II, the protective element 70 is arranged in a protective device of the contact device 1, which conceals the contact blades 110 in such a way that faulty contacting of the conductor wires 4 arranged in the channels of the current conducting rail 3 according to Figure 1a is effectively prevented. In Figure 1b, due to the oblique view, only all of the contact units 11 of the first group of contact units 11 can be seen, whereas of the group of contact units 11 arranged on the other side of the protective element 11, only one of the contact units 11 with its contact blade 110 can be seen due to the oblique view. In Figure 1c, the current conducting rail 3 with protruding conductor wires 4 is also shown for explanatory purposes. Figure 1c shows that the current conducting rail 3 is elongated in the longitudinal direction X, with its conductor wires arranged next to one another in the alignment direction A.The contact units 11 of the contact device 1 are arranged next to one another with their contact blades 110 in an arrangement direction which relates to the contact device 1 per se, wherein the arrangement direction runs parallel to the alignment direction A in the relative arrangement of contact device 1 and current conducting rail 3 according to Figure 1c.It can be seen that, starting from the relative position of contact device 1 and current conducting rail 3 shown in Figure 1c, the contact blades 110 of the contact units 11 can only be brought into electrically conductive contact with the conductor wires 4 if the housing 10 of the contact device 1 is moved along the plug-in direction S towards the current conducting rail 3 and, in the process, the protective element 70 is moved along the plug-in direction S relative to the housing 10 and relative to the contact units 11, wherein the contact units 11 are fixed in a fixed position in the housing 10 in the present exemplary embodiment and generally advantageously.
[0051] Figure 2, comprising Figures 2a, 2b and 2c, shows schematically, in various schematic representations, views of an embodiment of a contact device 1 according to the invention together with a current conducting rail 3. In Figures 2a, 2b and 2c, the contact device 1 is shown in an identical position, namely in its rest position. Figure 2a shows a plan view of one side of the current conducting rail 3 and the contact device 1, and Figures 2b and 2c show a plan view of a section spanned by the plug-in direction S and the array direction A. In Figures 2a and 2b, the contact device 1 is arranged identically to the current conducting rail 3 and is spaced from it along the plug-in direction.The arrangement direction along which the contact units 11 of the contact device 1 are arranged next to one another is arranged parallel to the alignment direction A, which is shown in Figures 2a and 2b and along which the channels of the current conducting rail 3 and thus also the conductor wires 4 arranged in the channels are arranged next to one another. In the arrangement shown in Figures 2a and 2b, the contact device 1 is arranged relative to the current conducting rail 3 such that its contact side faces the access side of the current conducting rail 3, and is arranged such that it can be arranged on the access side of the current conducting rail 3 solely by moving the housing 10 along the plug-in direction S towards the current conducting rail 3 such that its contact units 11, with their contact blades 110, each contact one of the conductor wires 4 arranged in the channels of the current conducting rail 3.The functional principle of the embodiment of the contact device 1 shown can be clearly seen from the sectional views shown in Figures 2b and 2c, in conjunction with Figures 8a and 9. The contact device 1 has a housing 10 and a protective device 7. The protective device 7 comprises a protective element 70 (shown in Figure 8a) and an unlocking element 71 (shown in Figure 9). In the rest position shown in Figures 2b and 2c, the protective element 70 is pressed against a projection along the plug-in direction S by a second spring 82. The unlocking element 71 is mounted on the protective element 70, in this case in the protective element 70, in a linear guide formed by the protective element 70, so that it can be displaced in a displacement direction defined by the linear guide and running perpendicular to the plug-in direction S.In the rest position shown, the unlocking element 71 is pressed against a stop in a spring direction by a first spring 81. In the present case, the spring direction is arranged parallel to the displacement direction, which is generally advantageous according to the invention. In the present case, the spring direction is arranged parallel to the arrangement direction or alignment direction A, which is generally advantageous according to the invention. In the rest position, the protective element partially covers the contact units 11 of the contact device 1. In the present case, the protective element 70 extends along the plug-in direction beyond the contact units 11 on the contact side, thereby ensuring particularly good protection against incorrect contact with the contact blades 110 of the contact units 11.It can also be seen from the sectional view that the unlocking element 71 has a first unlocking section 711 and a second unlocking section 712, each of which is designed as an inclined surface section accessible from the contact side of the contact device 1. In the rest position of the contact device 1 shown in Figure 2, the unlocking sections 711, 712 are arranged in alignment with a respective arrangement section 701, 702 of a guide arrangement of the protective element 70. The protective element 70 forms a housing for the unlocking element 71, with which the protective element 70 covers the contact side of the unlocking element 71 with respect to the plug-in direction S, wherein the arrangement sections 701, 702 are designed as a recess in the protective element 70, through which the unlocking sections 711, 712 are accessible along the plug-in direction S, starting from the contact side of the contact device 1.Thus, when the contact device 1 is moved onto the current conducting rail 3 along the plug-in direction S, a coding section 311, 312 can be brought through the respective arrangement section 701, 702 of the protective element 70 assigned to it up to the respective unlocking section 711, 712 assigned to it and come into contact with the latter. This is particularly evident in Figure 3. In Figure 3, in comparison to the arrangement of the current conducting rail 3 and contact device 1 relative to one another as shown in Figure 2, the contact device 1 is arranged closer to the current conducting rail 3 with respect to the plug-in direction S, but otherwise its position relative to the current conducting rail 3 is unchanged. The coding sections 311, 312 are inserted through the respective arrangement section 701, 702 of the protective element 70 assigned to them and brought into contact with the respective unlocking section 711, 712 assigned to them.As the contact device 1 continues to move along the plugging direction S toward the busbar 3, the coding sections 311, 312 each press against the respective associated unlocking section 711, 712. Since the unlocking sections 711, 712 are designed as inclined surface sections, they convert the pressing force exerted along the plugging direction S into a displacement force acting on the unlocking element 71 along a displacement direction perpendicular to the plugging direction S. This reversal of the movement of the force acting on the unlocking element 71 occurs through the interaction of the design of the unlocking sections 711, 712 as inclined surface sections and the linear guide of the unlocking element 71 in the protective element 70.During the movement of the contact device 1 along the plug-in direction S towards the current conducting rail 3, the coding sections 311, 312 slide off the unlocking section 711, 712 assigned to them, whereby the unlocking element 71 is moved along the displacement direction against the spring force that the spring 81 exerts on the unlocking element 71. At this point, it should be noted that this naturally causes the first spring 81 to be compressed, even if this is not shown in detail in the figures for the sake of simplicity and due to their purely schematic design. Figure 4, comprising Figures 4a, 4b and 4c, shows the relative position of the contact device 1 and the current conducting rail 3 after such a further movement of the contact device 1 relative to the current conducting rail 3 along the plug-in direction S.Accordingly, the contact device 1 is in the release position in Figures 4a and 4b. As can be seen in particular from Figure 4b, in the release position the locking section is arranged completely next to the blocking section 107 of the housing 10 along the arrangement direction, so that, starting from the release position shown in Figure 4, the protective element 70 can be displaced relative to the housing 10 along the plug-in direction S without further hindrance, except for the spring force generated by the second spring 82. Figure 4 also shows the design of the guide 173 of the protective element 70 as a linear guide, within which the unlocking element 71 is mounted so as to be guided so as to be movable exclusively linearly along the direction of displacement. Furthermore, a view of Figures 4a, 4b, and 4c together shows that the housing 10 has a sliding guide running along the plug-in direction with sliding guide sections 171, 172.This sliding guide is a linear guide running along the insertion direction S. In a first sliding guide section 171, a guide section of the protective element 70 is guided linearly along the insertion direction S. In a second sliding guide section 172, a guide section of the unlocking element 71 can be arranged starting from the release position, and in the first sliding guide section 171, a further guide section 773 of the unlocking element 71 can be arranged starting from the release position shown in Figure 4. Thus, while in the rest position, which is shown, for example, in Figures 2 and 3, the guide sections 772, 773 are arranged offset from the sliding guide sections 171, 172 along the arrangement direction or alignment direction A, they are arranged in alignment with these sliding guide sections 171, 172 in the release position shown in Figure 4.However, it can be seen from Figure 4c that when the release position is reached by the described movement of the contact device with its contact side towards the access side of the current conducting rail 3 in the plug-in direction S, the contact units 11 with their contact blades 110 are not yet arranged in the channels of the current conducting rail 3. However, starting from the relative arrangement of the current conducting rail 3 and contact device 1 shown in Figure 4, they can be introduced into the channels of the current conducting rail 3 by a further movement of the housing 10 along the plug-in direction S towards the current conducting rail 3 until they are in electrically conductive contact with the respective conductor wires 4 arranged in the channels. This state, in which the contact blades 110 are in contact with the respective conductor wires 4 assigned to them after performing such a movement, is shown in Figure 5, comprising Figures 5a and 5b.While Figure 5a shows a sectional view, Figure 5b shows a top view. Only one group of contact units 11 is visible at a time, since the other group of contact units 11 is provided on the side of the contact device 1 not shown.
[0052] Figure 6 shows an arrangement of the contact device 1 relative to the current conducting rail 3, in which the contact device 1, compared to the arrangement shown in Figure 3, occupies a position relative to the current conducting rail 3 that is rotated by 180° around the plug-in direction S. Thus, the contact device 1 is incorrectly aligned relative to the current conducting rail 3. With such an incorrect alignment, when the contact device 1 and the current conducting rail 3 move toward each other along the plug-in direction S, the coding sections 311, 312 are arranged in arrangement sections 703, 704 of a second group of arrangement sections. Due to this arrangement of the coding sections 311, 312 in the arrangement sections 703, 704 of the second group, the coding sections 311, 312 are guided particularly reliably and press against a contact surface of the unlocking element 71 that runs perpendicular to the plug-in direction S.In this case, in accordance with the invention, it is generally advantageous for the coding sections 311, 312 of the current conducting rail 3 to be guided in such an arrangement both in the arrangement sections 703, 704 of the second group and in receptacles formed by the unlocking element 71 in such a way that movement of the coding arrangement comprising the two coding sections 311, 312 along the arrangement direction or alignment direction A is prevented, since at least one of the coding sections 311, 312 is fixed in its position along the arrangement direction or alignment direction A in at least one of the said arrangement sections 703, 704 and at least one of the arrangement sections 703, 704 is fixed in its position relative to the receptacle formed by the unlocking element 71 and receiving it along the arrangement direction or alignment direction A.
[0053] For explanatory purposes, Figure 7 shows a section spanned by the plug-in direction S and the arrangement direction or alignment direction A when the contact device 1 is arranged relative to the current conducting rail 3. It can be seen that the protective element 70 forms a housing for the unlocking element 71, which in Figure 7 can only be seen with its unlocking sections 711, 712. Furthermore, the arrangement sections 701, 702, 703, 704 can be seen, which are designed to receive the coding sections 311, 312. In Figure 8, comprising Figures 8a and 8b, the protective element 70 is shown alone and together with a contact unit 11 for further explanatory purposes. In Figure 9, the unlocking element 71 is shown alone for explanatory purposes. From Figures 8 and 9 it can be seen that the protective element 70 has a projection 708 with which it is locked to the housing 10.This projection 708 limits the movement of the protective element 70 relative to the housing 10 along the insertion direction S. In the rest position, the projection 708 is pressed against a corresponding contact section of the housing 10, with the second spring 82 applying the corresponding pressing force. In the rest position, the projection 708 thus presses against a stop of the housing 10 and thus blocks mobility of the protective element 70 in a first direction along the insertion direction S, whereas the engagement of the locking section 717 and the blocking section 107 blocks mobility of the protective element relative to the housing 10 in a second direction along the insertion direction S, with the second direction running parallel, but opposite to the first direction and, of course, parallel to the insertion direction S.Generally, the mobility of the protective element 70 in the rest position along the plug-in direction S is preferably limited on one side by the locking section 717 and the blocking section 107 engaging, and on the opposite side by the engaging of a contact section of the protective element 70 against a corresponding contact section of the housing 10, wherein, in particular in the rest position, the contact sections are pressed against one another along the plug-in direction by a spring device of the contact device 1. Figure 8 further shows that the protective element 70 has guide sections 705 for guiding the contact blades 110 of the contact units 11, as well as a guide section 706 for guiding the second spring 82. Similarly, Figure 9 shows that the unlocking element has a guide section 713 for guiding the first spring 81.The provision of such guide sections 713, 706 for guiding the respective spring 81, 82 is generally advantageous according to the invention, as is the provision of a projection on the protective element to ensure a travel limitation of the protective element relative to the housing 10 in the rest position, based on the plug-in direction S. Figures 10-12 schematically show an embodiment of a current conducting rail 3 in various principle representations. Figure 10 shows an oblique view of a section of the current conducting rail 3. Figure 11 shows a first current conducting profile 31 of the current conducting rail 3 according to Figure 10. Figure 12 shows a second current conducting profile 32 of the current conducting rail 3 according to Figure 10. The current conducting profiles 31, 32 are each shown with a longitudinal end region in Figures 11 and 12.With their longitudinal end regions shown in Figures 11 and 12, they overlap to form the current conducting rail 3, as shown in Figure 10. The current conducting rail 3 has a coding arrangement comprising a first coding section 311 and a second coding section 312. The coding sections 311, 312 are each formed by a channel wall 30 of the current conducting rail 3, designed as a coding channel wall 301, 302. The current conducting profiles 31, 32 each form a section of each of the channel walls 30, so that the channel walls 30 of the current conducting rail 3 are jointly formed by the current conducting profiles 31, 32 of the current conducting rail 3. The first current-conducting profile 31 forms a first longitudinal section 3111, 3121 of the first and second coding channel walls 301, 302 and a second longitudinal section 3112, 3122 of the first and second coding channel walls 301, 302.Accordingly, the second current-conducting profile 32 also forms a first longitudinal section 3211, 3221 of the first and second coding channel walls 301, 302 and forms a second longitudinal section 3212, 3222 of the first and second coding channel walls 301, 302. The first longitudinal sections 3111, 3121, 3211, 3221 project beyond the second longitudinal sections 3112, 3122, 3212, 3222 along the plugging direction S. As can be seen from Figure 10, the coding sections 311, 312 each have an interruption 3110, 3120, which is present over a longitudinal extension region such that the respective coding channel walls 301, 302 are formed solely by the second longitudinal sections 3112, 3122, 3212, 3222. To create the current conducting rail 3, the two current conducting profiles 31, 32 are arranged relative to one another in such a way that their mutually facing longitudinal end regions interlock in a comb-like manner over an overlap region.As can be seen from the combination of Figures 10, 11 and 12, due to the comb-like interlocking, the current conducting profiles 31, 32 are arranged on one another in such a way that a channel wall section formed by the first current conducting profile 31 rests against a channel wall section formed by the second current conducting profile 32 along the alignment direction A. In the overlapping region, a first longitudinal section formed by one of the current conducting profiles 31, 32 projects over a second longitudinal section formed by the other of the two current conducting profiles 31, 32 of the respective coding channel wall 301, 302, which second longitudinal section is formed by the aforementioned first and second longitudinal sections.As can be seen from Figures 11 and 12, a lateral projection 3011, 3022 is provided on each of the first longitudinal sections 3111, 3221, with which projection the respective first longitudinal section projects over the second longitudinal section forming the same coding channel wall within the overlapping area.
[0054] The current-conducting profiles 31, 32 are each fixed to one another with their mutually facing longitudinal end regions in such a way that they can be displaced relative to one another along the longitudinal direction X over a predefined displacement range. For this purpose, the second current-conducting profile 32 has, within its longitudinal end section, with which it is arranged within the overlapping region, a lateral guide section 34 on its sides provided with respect to the alignment direction A. The first current-conducting profile 31, with its longitudinal end section arranged in the overlapping region, is arranged in the alignment direction A between the guide sections 34 of the second current-conducting profile and is thus guided by them along the alignment direction A.In addition, the second current-conducting profile 32 has locking projections 33, each of which is locked into a receiving groove (not shown in the figures) of the first current-conducting profile 31, wherein the receiving grooves are provided on the underside of the first current-conducting profile 31 facing away from the access side with respect to the plug-in direction S. The locking projections 33 are guided in the receiving groove with play relative to the longitudinal direction X. The displacement range over which the current-conducting profiles 31, 32 can be displaced relative to one another along the longitudinal direction X is thus defined by the stops predetermined by the receiving grooves for the locking projection 33 arranged in each of them. In addition, as is generally advantageous according to the invention, the second current-conducting profile has, within the overlap region, a transverse web 35 running along the alignment direction A, which extends in the alignment direction A across all channels of the current-conducting rail 3.The first current-conducting profile 31 is arranged on the upper side of the crosspiece 35 and rests against the crosspiece 35 in a sliding manner. The interaction of the guide sections 34, the locking projections 33 with associated receiving grooves, and the crosspiece 35 ensures particularly good fixation of the first and second current-conducting profiles to one another, allowing a defined displacement of the first and second current-conducting profiles 31, 32 along the longitudinal direction X, which is limited to a specified displacement range. Across the entire displacement range, the current-conducting profiles 31, 32 are always arranged relative to one another in such a way that the interruptions 3110, 3120 of the coding sections 311, 312 are always offset from one another in the longitudinal direction X.This has the particular advantage that at least one coding section 311, 312 is always provided in each longitudinal position and thus one of the coding channel walls 301, 302 always protrudes beyond other of the channel walls 30 of the current guide rail 3 with respect to the plugging direction S.In conjunction with the particularly advantageous contact device 1 of an embodiment of a system according to the invention, as shown in Figures 1-9, which has two unlocking sections 711, 712 spaced apart from one another along the arrangement direction, each of which is assigned to one of the coding sections 311, 312, it is thus always ensured at every longitudinal position of the contact device 1 relative to the current conducting rail 3 that, with a correct alignment of the contact device 1 relative to the current conducting rail 3, at least one of the coding sections 311, 312 actuates the associated unlocking section 711, 712 when the current conducting rail 3 is arranged with its access side on the contact side of the contact device 1, so that the contact device 1 assumes its release position.
[0055] List of reference symbols
[0056] 1 contact device
[0057] 2 mounting rails
[0058] 3 current conducting rail
[0059] 4 Conductor wire
[0060] 5 Assembly body
[0061] 7 Protective device
[0062] 10 housings
[0063] 11 contacts inhe it
[0064] 12 Stop before jump
[0065] 20 lead
[0066] 30 Canal wall
[0067] 31 Current conducting profile
[0068] 32 Current conducting profile
[0069] 33 Ra st vor sprung
[0070] 34 Guide Section
[0071] 35 Crossbridge
[0072] 50 lead
[0073] 51 Retaining spring
[0074] 52 Actuating element
[0075] 58 lamps
[0076] 70 protective element
[0077] 71 Release element
[0078] 81 Spring 2 Spring 07 Locking section
[0079] 110 Contact Sword
[0080] 171 sliding guide section
[0081] 172 sliding guide section
[0082] 173 Guide
[0083] 301 Coding channel wall
[0084] 302 Coding channel wall
[0085] 311 coding section
[0086] 312 coding section
[0087] 511 lead
[0088] 512 retaining projection
[0089] 701 Order Section
[0090] 702 Order Section
[0091] 703 Order Section
[0092] 704 Order Section
[0093] 705 Guide Section
[0094] 706 Guide Section
[0095] 708 lead
[0096] 711 unlocking section
[0097] 712 unlocking section
[0098] 713 Guide Section
[0099] 772 management section
[0100] 773 Guide Section
[0101] 3011 Head Start
[0102] 3022 lead
[0103] 3110 Interruption
[0104] 3111 Longitudinal section
[0105] 3112 Longitudinal section
[0106] 3120 Interruption
[0107] 3121 Longitudinal section
[0108] 3122 Longitudinal section
[0109] 3211 Longitudinal section
[0110] 3212 Longitudinal section 3221 Longitudinal section
[0111] 3222 Longitudinal section
[0112] A alignment direction
[0113] S Plug-in direction X Longitudinal direction
[0114] Y transverse direction
Claims
Patent claims 1. A contact device (1) for a system for implementing a luminaire, comprising a mounting body (5) elongated in a longitudinal direction (X), on which a light source is arranged, which is to be electrically supplied by means of the contact device (1), and comprising a support rail (2) elongated in the longitudinal direction (X), which has an interior space in which a current conducting rail (3) elongated in the longitudinal direction (X) is arranged, which has channels arranged next to one another in an array direction (A) running perpendicular to the longitudinal direction (X), elongated in the longitudinal direction (X) and open on an access side of the current conducting rail, in each of which at least one conducting wire (4) elongated in the longitudinal direction (X) is arranged, wherein the contact device (1) comprises a housing (10) in which a plurality of contact units (11) arranged next to one another in an arrangement direction are arranged,and wherein the contact device (1) can be arranged with a contact side on the access side of the current conducting rail by introducing at least some of its contact units (11) along a plug-in direction (S) into one of the channels in each case, contacting the conductor wires (4) arranged in these channels, characterized in that the contact device (1) has a protective device (7) which has a protective element (70) which is mounted on the housing (10) so as to be movable relative to the housing (10) along the plug-in direction (S), which protective element covers the contact units (11) at least in sections to protect them and whose mobility along the plug-in direction (S) in the rest position is limited by the application of a The locking section (717) of the protective device (7) is blocked at a blocking section (107) provided on the housing (10), wherein the protective device (7) has an unlocking element (71) connected to the protective element (70) and having an unlocking arrangement, which is mounted so as to be movable relative to the housing and which comprises the locking section (717) of the protective device (7), wherein the unlocking element (71) is movable by pressing along the plug-in direction (S) from the contact side against the unlocking arrangement perpendicular to the plug-in direction (S), thereby realizing a release position in which the locking section (717) is arranged completely next to the blocking section (107) and thus the protective element (70) is movable along the plug-in direction (S) relative to the housing (10) to enable the contact units (11) to be inserted into the channels of the current-conducting rail (3),wherein, in particular, a coding arrangement for actuating the unlocking arrangement is provided on the access side of the current conducting rail (3), wherein the unlocking element (71) is movable perpendicular to the plug-in direction (S) by pressing the coding arrangement along the plug-in direction (S) against the unlocking arrangement, thereby realizing the release position.
2. Contact device (1) according to claim 1, characterized in that the unlocking arrangement has a first unlocking section (711) and a second unlocking section (712) which are spaced apart from one another, wherein in particular the first unlocking section (711) corresponds to a first coding section (311) is assigned to the coding arrangement and the second unlocking section (712) is assigned to a second coding section (312) is assigned to the coding arrangement and, in a contacting position of the contact device (1) relative to the current conducting rail (3), each of the unlocking sections (711, 712) is designed to interact with the coding section (311, 312) respectively assigned to it in order to reach the release position starting from the rest position, wherein in particular the coding sections (311, 312) are each designed as a projection of the current conducting rail (3) and a recess formed by the current conducting rail (3) is provided between them and / or the unlocking sections (711, 712) are separated from one another by a separating section of the contact device (1) running along the plug-in direction (S).
3. Contact device (1) according to claim 2, characterized in that the first and the second unlocking section (711, 712) are spaced apart from one another in the arrangement direction and / or in a direction perpendicular to the plug-in direction (S) and the arrangement direction, and in particular the first and the second coding section (311, 312) are spaced apart from one another in the arrangement direction and / or in the direction perpendicular to the plug-in direction (S) and the arrangement direction, wherein in particular when the coding arrangement is pressed against the unlocking arrangement, the unlocking arrangement (710), in particular the contact device (1), rests on the coding arrangement exclusively via the first and second unlocking sections (711, 712).
4. Contact device (1) according to one of claims 2 or 3, characterized in that each of the coding sections (311, 312) has at least one interruption (3110, 3120) along the longitudinal direction (X) and the interruptions (3110, 3120) of the coding sections (311, 312) are offset from one another in the longitudinal direction (X), wherein the contact device (1) can be arranged over the entire longitudinal extent of the coding arrangement on the access side of the current conducting rail with its contact units (11) being introduced into the channels, wherein in particular the coding arrangement extends uninterrupted over at least 90%, in particular at least 95% of a total length of the current conducting rail (3).
5. Contact device according to one of claims 2 to 4, characterized in that in a first longitudinal position of the contact device (1) relative to the current conducting rail (3), starting from the rest position solely by the interaction of the first unlocking section (711) and the first coding section (311) the release position can be realized, while the second unlocking section (712) is separated from the second coding section (312) and in a second longitudinal position of the contact device (1) relative to the current conducting rail (3) solely by the interaction of the second unlocking section (712) and the second coding section (312) the release position can be realized while the first unlocking section (711) is spaced from the first coding section (311).
6. Contact device according to one of claims 2 to 5, characterized in that the unlocking sections (711, 712) are rigidly connected to one another and / or that each of the unlocking sections (711, 712) forms a respective inclined surface section (711, 712) accessible from the contact side, wherein in particular the inclined surface sections (711, 712) run parallel and spaced from one another.
7. Contact device (1) according to one of claims 2 to 6, characterized in that the unlocking element (71) is movable in a direction of movement from the rest position in order to reach the release position, wherein the unlocking sections (711, 712) are spaced apart from one another along the direction of movement.
8. Contact device (1) according to one of the preceding claims, characterized in that the unlocking element (71) is fixed in position relative to the protective element (70) at least with a fixing section along the plugging direction (S).
9. Contact device (1) according to one of the preceding claims, characterized in that the unlocking element (71) and in particular the protective element (70) has an extension length in the arrangement direction which is a multiple, in particular at least 3 times, of an extension length of the unlocking element (71) or of the protective element (70) in a direction perpendicular to the arrangement direction.
10. Contacting device (1) according to one of the preceding claims, characterized in that the housing (10), the protective element (70) and the unlocking element (71) are each designed as a separately manufactured injection-molded component.
11. Contact device (1) according to one of the preceding claims, characterized in that the contact device (1) comprises a first group of contact units (11) and a second group of contact units (11) spaced apart from the first group in a direction perpendicular to the arrangement direction and the plug-in direction (S) by a spacing region, wherein the protective device (7) is arranged in the spacing region between the two groups of contact units (11).
12. Contact device (1) according to one of the preceding claims, characterized in that the protective element (70) for each individual contact unit (11) a guide section (701) assigned to this respective contact unit (11), which guides a contact blade (110) of the respective contact unit (11) laterally both in the rest position and in the release position and during a movement of the protective element (70) along the plugging direction (S) starting from the release position.
13. Contact device (1) according to claim 12, characterized in that the guide section (701) extends on both sides of the contact blade (110) over a same longitudinal extension section as the contact blade (110), wherein the longitudinal extension length of the longitudinal extension section increases starting from the release position during the movement of the protective element (70) along the plugging direction (S).
14. Contact device (1) according to one of claims 12 to 13, characterized in that the guide section (701) is funnel-shaped, tapering a free space provided for the contact blade (110) along the plugging direction (S) towards the contact side.
15. Contact device (1) according to one of claims 12 to 14, characterized in that the guide section (701) surrounds the contact blade (110) in the manner of a U-shape and is thus open at one end is.
16. Contact device (1) according to one of claims 12 to 15, characterized in that a first group of contact units (11) is arranged on a first side of the protective element (70), which are arranged next to one another in the arrangement direction, and a second group of contact units (11) is arranged on a second side of the protective element (70), which are arranged next to one another in the arrangement direction, wherein a first group of guide sections (701) is provided on the first side, each of which guides the contact blade of one of the contact units (11) of the first group, and wherein a second group of guide sections (701) is provided on the second side, each of which guides the contact blade of one of the contact units (11) of the second group.
17. Contact device (1) according to one of claims 12 to 16, characterized in that the guide sections (701) extend in the plug-in direction over at least 1%, in particular at least 3%, in particular at least 5% of a total extension length of the contact device (1) in its rest position in the plug-in direction (S) and over less than 50%, in particular less than 30%, in particular less than 20% of the total extension length of the contact device (1) in its rest position in the plug-in direction (S), and / or that the guide sections (701) extend in the plug-in direction over at least 5%, in particular at least 10% of a Total extension length of the protective element (70) in the plug-in direction (S) and extend over less than 70%, in particular less than 50%, in particular less than 30% of the total extension length of the protective element (70) in the plug-in direction (S).
18. Contact device (1) according to one of the preceding claims, characterized in that the unlocking element (71) is arranged at least predominantly, in particular completely, within the protective element (70), and / or that the unlocking element extends over at least 50%, in particular at least 70% of a total extension length, based on the arrangement direction, of the protective element (70), in particular of the contact device (1).
19. Contact device (1) according to one of the preceding claims, characterized in that the housing (10) has a sliding guide for the unlocking element (71) running along the plug-in direction (S), in which the unlocking element (71) is mounted in a guided manner during a movement along the plug-in direction (S) relative to the housing (10) starting from the release position perpendicular to the plug-in direction (S), wherein in particular the unlocking element (71) has at least one guide section (772, 773) which is assigned to a sliding guide section (171, 172) of the sliding guide, wherein in the rest position the guide section (772, 773) is offset perpendicular to the plug-in direction (S) relative to the sliding guide section assigned to it (171, 172) and in the release position is aligned to the sliding guide section (171, 172) assigned to it, wherein in particular at least the unlocking element (71) has at least two guide sections (772, 773) which are spaced apart from one another perpendicular to the plug-in direction (S) and which are each assigned to one of two sliding guide sections (171, 172) of the sliding guide, which are also spaced apart from one another perpendicular to the plug-in direction (S).
20. Contact device (1) according to one of the preceding claims, characterized in that the protective element (70), starting from the release position, is movable only together with the unlocking element (71) along the plug-in direction (S) relative to the housing (10), wherein the protective element (70) and the unlocking element (71) each have guide sections (771, 772, 773) by means of which they are each guided on the housing (10) during a movement along the plug-in direction (S) relative to the housing (10).
21. Contact device (1) according to one of the preceding claims, characterized in that the protective element (70) has a guide arrangement corresponding to the unlocking arrangement, which is arranged along the plug-in direction (S) on the contact side in front of the unlocking arrangement, wherein in particular the guide arrangement is spaced apart from the unlocking arrangement along the plug-in direction (S).
22. Contact device (1) according to claim 21, characterized in that the unlocking arrangement is accessible from the contact side only after passing the guide arrangement.
23. Contact device (1) according to one of claims 21 or 22, characterized in that the guide arrangement has a plurality of arrangement sections (701, 702, 703, 704) which are spaced apart from one another in the arrangement direction.
24. Contact device (1) according to claim 23, characterized in that the guide arrangement has a first group of arrangement sections (701, 702), which are each assigned to an unlocking section (711, 712) of the unlocking arrangement, and a second group of arrangement sections (703, 704) which are arranged offset from all unlocking sections (711, 712) of the unlocking arrangement, wherein in particular in a first position of the contact device (1) in its rest position relative to the current conducting rail (3), the coding arrangement is in engagement with the first group of arrangement sections (701, 702) to enable the release position to be achieved, and in a second position of the contact device (1) in its rest position relative to the current conducting rail (3), the coding arrangement is in engagement with the second group of arrangement sections (703, 704) to prevent the release position from being achieved.
25. Contact device according to one of the preceding Claims, characterized in that the locking section (717) extends over at least 30%, in particular at least 50%, in particular at least 60% of a total extension length, based on the arrangement direction, of the unlocking element (71), wherein the locking section (717) is designed to be uninterrupted or interrupted by interruptions and rests against the blocking section (107) over its entire extension length in the arrangement direction in the rest position.
26. Contact device according to one of the preceding claims, characterized in that the contact device (1) has a central plane which divides the contact device (1) into two halves of equal length with respect to the arrangement direction, wherein the unlocking arrangement is arranged only within one of these two halves and is in particular spaced from the central plane.
27. Contact device (1) according to one of the preceding claims, characterized in that the contact device (1) has a spring device which, in particular in the rest position, presses both the protective element (70) and the unlocking element (71) against a stop provided on the housing (10), wherein in particular the spring device has a first spring (81) which presses against the unlocking element (71), and a second spring (82) which presses against the protective element (70), wherein in particular the first spring (81) presses in a direction perpendicular to the plug-in direction (S) and the second spring (82) presses along the plug-in direction (S).
28. Contact device (1) according to claim 27, characterized in that the unlocking element (71) is mounted displaceably guided on the protective element (70) in a linear guide formed by the protective element (70) in a displacement direction determined by the linear guide and running at least with a component perpendicular to the plug-in direction (S), wherein the linear guide fixes the unlocking element in its position perpendicular to the displacement direction (V), and the unlocking arrangement has an inclined surface section (711, 712) accessible from the contact side of the contact device (1) along the plug-in direction (S), running obliquely to the displacement direction (V) and obliquely to the plug-in direction (S), wherein the spring device presses the unlocking element (71) in the rest position in the linear guide against a stop in a spring direction running along the displacement direction (V),wherein the coding arrangement and the unlocking arrangement are designed to correspond to one another in such a way that by pressing the coding arrangement along the plug-in direction (S) against the inclined surface section (711, 712) of the unlocking arrangement, a displacement of the unlocking element (71) in the linear guide against the spring direction is forced, thereby realizing the release position.
29. Contact device (1) according to claims 27 and 28, characterized in that the first spring (81) is resiliently compressed in the rest position between the protective element (70) and the unlocking element (71) along the spring direction and the second spring (82) is resiliently compressed between the housing (10) and the protective element (70) along the plug-in direction (S), wherein in particular the first spring (81) is mounted in the unlocking element (71) in the rest position and in particular in the release position over at least 30%, in particular 50%, of its extension length in the spring direction.
30. Contact device (1) according to claim 28, characterized in that the second spring (82) is spaced from the unlocking element (71) and thus acts only indirectly on the unlocking element (70) via the protective element (70).
31. Contact device according to one of the preceding claims, characterized in that the coding arrangement (31) is formed at least partially by a channel wall (30) of the current conducting rail (3), which separates a clear cross-section of one of the channels from a clear cross-section of a channel adjacent to it, wherein in particular the coding arrangement is formed at least partially by two channel walls (30) of the current conducting rail (3), which are spaced apart from one another in the direction of alignment (A) at least by the clear cross-section of a channel arranged between them.
32. Contact device (1) according to one of the preceding Claims, characterized in that the current conducting rail (3) comprises a plurality of current conducting profiles (300) arranged one behind the other in the longitudinal direction (X), each of which forms a longitudinal section of the coding arrangement.
33. A system comprising a contact device (1) according to one of the preceding claims, as well as a mounting body (5) elongated in the longitudinal direction (X), on which a lighting means is arranged, which is to be electrically supplied by means of the contact device (1), and a support rail (2) elongated in the longitudinal direction (X), which has a U-shaped cross-section and an open end, and a current conducting rail (3) elongated in the longitudinal direction (X), which has channels arranged side by side in an array direction (A) running perpendicular to the longitudinal direction (X), which are elongated in the longitudinal direction (X) and open on an access side of the current conducting rail, wherein at least one conducting wire (4) elongated in the longitudinal direction (X) is arranged in each channel,wherein, in an operating state of the system, the contact device (1) is fixed to the mounting body (2) and the mounting body (5) is arranged at the open end of the support rail (2) fastened to the support rail (2), and the contact device (1) and the current conducting rail (3) are arranged in an interior space of the support rail (2) closed off by the mounting body (5), wherein the contact device (1) contacts with its contact units (11) at least some of the conductor wires (4) arranged in the channels of the current conducting rail (3).
34. A luminaire manufactured by the system of claim 33, wherein the system is in the operating state.
35. Method for realizing a luminaire by means of a system according to claim 33, characterized in that for realizing the operating state, the contact device (I) is moved with its contact units (11) along the plug-in direction (S) towards the current conducting rail (3) and in the process the coding arrangement is pressed along the plug-in direction (S) against the unlocking arrangement, whereby the unlocking element (71) is moved perpendicular to the plug-in direction (S), and then by continuing the movement of the contact units (11), in particular together with the housing (10) of the contact device (1), along the plug-in direction (S) towards the current conducting rail (3) at least some of the conductor wires (4) arranged in the channels of the current conducting rail (3) with the contact units (II) be contacted.
Citation Information
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