This application claims priority to EP 17165396.7 filed Apr. 7, 2017, the entire contents of which are hereby incorporated by reference.
The invention relates to an insulating body for a connector unit, a connector unit with such an insulating body, a plug-and-socket connector with such a connector unit and a method for manufacturing such an insulating body.
Plug-and-socket connectors, which comprise two connector units that are complementary to one another, serve for connecting and disconnecting electrical lines and electrical devices. Normally, connector units include a plurality of contact pins or contact bushes, which are isolated vis-à-vis each other and connected by electrical lines.
From prior art, various plug-and-socket connectors are known, which are particularly suitable for applications in mechanical engineering, in electrical switch cabinets or in applications with more stringent requirements regarding mechanical or chemical robustness. To ensure meeting the requirements regarding robustness, the plug-and-socket connectors are designed with massive housings, which results in very large needs for space. The size of the housing is further influenced by the interior insulating body as well as the elements necessary for securing the insulating body on the housing.
From EP2034562B1, a plug-and-socket connector is known with a one-piece insulating body. On the outer side, the insulating body has densely packed, slender structures, which ensure insulation between adjoining contacts. Between the slender structures, dirt particles regularly accumulate, via which leakage currents can flow, so that the insulating properties of the plug-and-socket connector are impaired.
Based on the foregoing, the primary object of the present invention is creating an improved insulating body for connector units and to connector units and plug-and-socket connector units equipped with this insulating body. The invention relates further to a method for manufacturing such an insulating body.
Especially the insulating body should be able to admit and guide a plurality of electrical contacts electrically insulated against each other.
Additionally, the insulating body should have a compact design and be suitable for rated voltages of at least 400V. The insulating body should be able to accommodate contact pins and contact bushes having increased density, without the appearance of leakage currents.
Additionally, the structures should be designed on the outside of the insulating body, so that despite contamination by deposited particles, a sufficiently large leakage path exists as a minimum leakage segment (as per IEC 60664-1) between two adjoining conducting elements.
In addition, a method should be indicated for manufacture of such an insulating body. Additionally, male and female plug-and-socket connector units should be created which are equipped with an inventive insulating body and can be combined into a plug-and-socket connector.
The novel features believed characteristic of the invention, i.e. of the inventive insulating body, the connector unit, the plug-and-socket connector unit and the inventive method, are set forth in the appended claims.
The insulating body, which is suitable for use in an electrical plug-and-socket unit, comprises at least two, preferably a plurality of insertion channels, for receiving contact pins or contact bushes. The insertion channels preferably are aligned along a principal axis of the insulating body, to make possible a compact design. Into the insertion channels, bared cable ends are insertable and able to be secured in the contact pins or contact bushes. Additionally, the insulating body has at least two, and preferably a plurality of securing channels, which are aligned at least approximately perpendicular to the insertion channels. To each insertion channel a securing channel is assigned, so that the set screw inserted into the securing channel can impinge mechanically on the contact pin or contact bush supported in the insertion channel. On the outer side of the insulating body, at least approximately aligned coaxial to the fixing channel, at least two, and preferably a plurality of insulating collars are shaped. The insulating collars ensure lateral electrical insulation of the set screws electrically connected with the contact pins or contact bushes.
According to the invention, the insulating collars each have a collar opening, which is limited on both sides by collar ends. Through the collar openings, the distance between the slender insulating collars is increased, so that small dirt particles no longer can stay stuck between the insulating collars. Deposited dirt particles can cause leakage currents on insulating bodies, which lead to a failure of the insulating body and the plug-and-socket connector connected therewith, since electrical insulation no longer can be ensured. The leakage segment along the surface of the of the insulating body is increased according to the invention by the collar openings, so that operational safety of the insulating body is improved, or also the attachment contacts can be designed with greater density.
In one preferred embodiment, the insulating collars are configured as segments of hollow cylinders, which lack a hollow cylinder segment at the collar ends. Preferably the collar ends form edges that are aligned parallel to one another, which limit the collar opening. This geometric shape makes it possible to simplify manufacture.
In a further preferred embodiment, on the outer side of the insulating body, an insulating wall is shaped for electrical insulation of the adjoining set screws in regard to leakage currents. The leakage currents can flow along the surface of the set screws to a protective conductor and/or to a plug-and-socket connector housing and/or to the holding devices. Through the insulating wall, the leakage path is enlarged and the leakage currents correspondingly reduced.
In an especially preferred embodiment, the collar openings in the insulating collars are aligned against the adjoining insulation collar or against the insulating wall. By this means the space between adjoining insulating walls at the narrowest point is increased, due to which smaller particles no longer can be mechanically blocked. The adjoining insulation collars are preferably aligned in a row, with the collar openings at least approximately pointing in the same direction and having a common opening axis.
Preferably the insulating collars have a wall thickness of 0.4 to 1.5 mm. In an especially preferred embodiment, the insulating collars have a wall thickness between 0.75 mm and 1.0 mm.
In an especially preferred embodiment of the insulating body, on the inner side of the insulating collar, on the inner side of the securing channels, one or more blocking ribs are shaped for mechanical blocking of the set screws. The blocking ribs prevent an undesired loosening or falling out of the set screws, through vibrations for example.
Preferably the collar openings have an opening width of 1.0 to 8.0 mm. In an especially preferred embodiment, the collar openings have an opening width between 1.5 mm and 3.0 mm. Preferably the collar openings have an opening angle relative to the central axis of the insulating collar of between 60° and 120°. Especially preferred, the opening angle is in the range between 90° plus or minus 5°.
In a further preferred embodiment, the surface of the insulating body has dirt-deflecting and/or self-cleaning properties. Preferably this property is attained by a coating which is dirt-deflecting and/or self-cleaning. Through the dirt-deflecting and/or self-cleaning surface, deposition of dirt particles on the insulating body is additionally reduced.
Preferably the material for the insulating body, or, as the case may be, for the coating of the insulating body, has high leakage current resistance, so that the insulating body can be assigned to a better insulator group as per IEC 60664-1.
The insulation distance between a set screw and the adjoining insulating collar preferably is in a range between 0.75 mm-1.25 mm, especially preferred at 1 mm. These values can be appropriately adjusted in dependence on the environmental conditions in which the inventive plug-and-socket connectors are used.
In another preferred embodiment, on at least two opposite sides of the insulating body, locking projections and fixing means guides can be provided for mechanical attachment of fixing means. By means of the fixing means, the insulating body can be attached and/or secured in a housing of a plug-and-socket connector.
Preferably the insulating body is suitable for rated voltages of at least 400V. Especially preferred, despite the particles deposited on the insulated body by contamination, only short leakage segments as per the IEC standard 60664-1 are created, so that during the service life of the insulating body, no electrical flashovers occur.
In a preferred embodiment, on the insulating body, coding elements, preferably coding ribs or coding grooves, are shaped. The coding elements ensure correct plug-and-socket connection.
With an inventive insulating body, inventive plug-and-socket connector units can be implemented in advantageous fashion. The plug-and-socket connector comprises two plug-and-socket connector units, with one plug-and-socket connector unit being configured as female or male plug-and-socket connector halves. Preferably both plug-and-socket connector units each include an inventive insulating body.
An inventive insulating body preferably is likewise manufactured by an inventive method. The method is preferably a master-pattern method, especially a casting method, a die-casting method or an injection-molding method. Alternatively, a 3D casting method can be used. Preferably the method includes at least one materials-removal procedural step. In an especially preferred embodiment of the method, during the materials-removal procedural step, the collar openings on the insulating collars are configured.
The invention, as well as a preferred mode of use, further objectives and advantages thereof, will best be understood by reference to the following detailed description of the illustrative embodiments when read in conjunction with the accompanying drawings, wherein:
Number | Date | Country | Kind |
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17165396 | Apr 2017 | EP | regional |
Number | Name | Date | Kind |
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5577933 | Robinson | Nov 1996 | A |
5727314 | Ashcraft | Mar 1998 | A |
20090068894 | Ohashi | Mar 2009 | A1 |
20090311897 | Moist | Dec 2009 | A1 |
20110189901 | Lopez | Aug 2011 | A1 |
Number | Date | Country |
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2 034 562 | Oct 2013 | EP |
Number | Date | Country | |
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20180294597 A1 | Oct 2018 | US |