Embodiments of the present invention relate to an EMC filter, in particular to a high-current EMC filter according to the independent claim.
Feed-through components such as feed-trough filter or feed-trough capacitors are electrical components, which are provided in an electric power line. They consist in an electric circuit arranged around a conductor in a housing. The conductor extends the housing creating two outer contacts for connecting external elements. The elements of the circuit consist of capacitors, ferromagnetic materials or resistances, which are in many embodiments co-axial with the electric conductor.
Feed-through components are used generally for changing the transmitting properties of electric power or data lines. Such filters with for example a π-filter circuit are mainly used for wide band noise reduction of power lines to sensitive or noise generating devices. Such filter circuit consists mostly of one or two identical capacitive members and one ferromagnetic member. Until now the concentric arrangement of the elements of the circuit increases high frequency damping values. However, the depending on arrangement, the insertion losses of the filter could be rather high. Such feed-through components are known from DE4218171, DE10240084 or DE4025159.
Furthermore, most of the feed-through elements are soldered or pressed with a conductive gasket to contact the different elements of circuit with each other.
It is one aim of the present invention to provide an EMC Filter, which will be more reliable and easier to assemble.
It is another aim of the present invention to create an EMC filter operable within a high frequency bandwidth.
According to the invention, these aims are achieved by means of the feature of the impended claim. Dependent claims give advantageous embodiments.
Especially these aims are solved by an EMC filter unit with the features of the preamble of independent claim, characterised in that
One advantage comes from the fact that flat connection elements are arranged on both sides of the capacitors, which allows an easy manufacturing process without soldering. The invention can as well be used for 2-, 3- or 4-lines EMC filters.
The invention will be better understood with the aid of the description of an embodiment given by way of example and illustrated by the figures, in which:
a shows a schematic view of a first embodiment of an inventive EMC filter;
b shows a side view of the inventive EMC filter;
c shows the detail I of
a shows a schematic view of a first embodiment of an inventive EMC filter circuit 1 and
As seen in
The filter comprises two main inductors 4 and capacitors 5. The inductors 4 arranged around the bus bar 3 consist of a ferromagnetic material such as ferrite with a gap, iron powder, sendust or similar. In one embodiment they have a rectangular shape with a central rectangular aperture, which accommodates the bus bar 3, and they increase an impedance of the central bus bar 3. The number of inductors 4 is given by the way of example and will be chosen according to the use of the inventive filter 1.
Furthermore the capacitors 5 have each a first and a second faces 51, 52 in opposition, each one of which comprises an electric terminal. The capacitors 5 are inserted solderless and tightly held in position between the conductive housing 2 and the bus bar 3. The first face 51 is thereby being juxtaposed to the bus bar 3 and the corresponding electric terminal on the first face 51 is in electric contact with the electric conductor. The second face 52 is being juxtaposed to the conductive housing 2, the electric terminal on the second face 52 is in electric contact with the conductive housing 2. Therefore the faces 51, 52 are in direct electrical contact with the bus bar 3 and the grounded conductive housing 2. To increase the contact, the faces 51, 52 can be provided with a conductive electrical layer 53. As seen in
One advantage is that the construction of the EMC filter according to this invention is much simpler than known constructions of prior art filters and that this design and especially flat connection elements on both sides of the capacitors allow an easy manufacturing process. The inductors 4 can put onto the bus bar 3 and assembled with the material 22 into the housing 2. Finally the capacitors 5 can be put manually into place. Then the housing will be closed and fixed by the eyelet 21 or soldering pin on a device. Another advantage comes from the fact that no electrical contact has to be soldered inside the inventive EMC filter. Due to short connection of the capacitors between bus bar 3 and housing 2 it works with a high frequency bandwidth.
This application is a continuation of PCT/EP2010/066855, the contents of which are hereby incorporated by reference.
Number | Date | Country | |
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Parent | PCT/EP2010/066855 | Nov 2010 | US |
Child | 13862127 | US |