This application claims priority to European Patent Application No. 20161262.9 filed Mar. 5, 2020, the entire contents of which is incorporated herein by reference.
The present disclosure concerns designs for zero-sequence blocking transformers (ZSBTs).
Zero-sequence blocking transformers (ZSBTs) are commonly used in multi-phase systems having several converters connected in parallel, such as auto-transformer rectifier units (ATRUs), to eliminate or block zero-sequence components in the output signals due to the parallel windings. Zero-sequence components are components that are at any one time equal in different phases of the system and thus give rise to undesirable harmonic content. ZSBTs are designed to present a high impedance between parallel outputs to block zero-sequence components, to remove triplen (3rd, 6th, 9th etc) order harmonics.
The ZSBT is commonly located in an ATRU between the diode bridge rectifiers and the common DC-link capacitor.
A ZSBT present a leakage inductance which is a function of the leakage flux that does not flow from the primary to the secondary winding of the ZSBT. It is desirable to increase ZSBT leakage inductance as this improves the effect of reducing output current ripple from the diode bridge rectifier as well as improving overall ATRU input current power quality.
In conventional ZSBT designs, the magnetic core geometry and winding scheme are selected to provide a given leakage inductance. Each ZSBT, therefore, will have a set leakage inductance, determined by its core geometry and winding arrangement.
The present inventors have identified a need for a ZSBT design in which the leakage inductance can be controlled independently of the core geometry such that a given core can be easily adapted to have different leakage inductances for different needs.
According to the disclosure, there is provided a zero-sequence blocking transformer comprising a first core part around which is wound a first winding and a second core part around which is wound a second winding, and a third core part to create an additional leakage flux path.
The concept of this disclosure can be applied to any known core structure by adding an additional leakage flux component part.
In the case of a known toroidal core, the additional component part may be a rod of magnetic material fitted into the gap between the two windings to intentionally create an additional leakage flux path. Alternatively, an EE core geometry can be used and the additional leakage flux path is created by forming an air gap or adding a magnetic material insert in the leg which does not carry a winding.
The described embodiments are by way of example only. The scope of this disclosure is limited only by the claims.
The use of ZSBTs in ATRUs will be described for background, with reference to
ATRUs are commonly used in medium to high power AC-DC power conversion systems used in e.g. aerospace applications.
As described above, to improve performance of the ATRU, ZSBTs are connected between the outputs of the diode bridge rectifiers and the DC-link capacitor.
ZSBTs are usually designed as a toroidal core 40 having two windings 20, 30 as shown in
As mentioned above, in ZSBT designs as shown in
According to the present disclosure, the ZSBT is designed such that the leakage inductance can be controlled independent of the coil geometry by addition of an extra leakage flux path between the windings. This can be applied to different types of core geometry.
In an alternative example, such as shown in
In an alternative example, shown in
Other core designs may be adapted similarly by insertion of an additional magnetic component without winding to create an additional leakage flux path.
The core design of this disclosure allows the leakage inductance of ZSBTs to be designed in a controlled manner rather than being dependent on core geometry. Because the leakage inductance is mainly provided by the core part having no winding, the windings can have fewer turns and thus be smaller, resulting in a smaller overall core size which is lighter and uses less winding material.
Number | Date | Country | Kind |
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20161262.9 | Mar 2020 | EP | regional |