The present invention relates to a method for increasing power transferred by an integrated inductor and an integrated inductor suitable for a resonant-mode power supply with a quality-factor limiter.
Two main types of resonant voltage converters are known from the prior art literature: series converters and parallel converters. They are provided with bridge or half-bridge commutation structures supplying energy to resonant circuits. The control of the resonant circuit frequency allows controlling the resonant circuit voltage and current, and therefore the power supplied to the load. The main advantages of resonant converters are the possibility of commutating large currents at zero voltage thus minimizing commutation losses and, consequently, allowing generation of quasi-sinusoidal currents, which in turn reduces the level of generated interference. In order to ensure favourable conditions for semiconductor devices commutation in converter and inverter circuits, there are used complex resonant structures comprising a plurality of reactance elements. The most widely used are series-parallel structures provided with additional elements. Under resonance conditions, particularly if the current supplied to load has to be as close to sinusoidal as possible, the peak current values in the resonant circuit are considerably exceeding the maximum load current. Therefore, the resonant circuit reactance elements should enable energy transfer in the amount significantly exceeding the amount of energy being drawn. Larger amounts of energy accumulated in inductive elements require their larger dimensions and weight. It is, therefore, purposeful to seek solutions that allow reduction of the converter magnetic components mass thus reducing the converter manufacturing cost and its total mass.
This goal can be achieved by integration of inductive elements in such a manner that certain portions of the magnetic circuit are simultaneously utilized by at least two inductive elements.
The U.S. Pat. No. 5,886,516 presents an integrated multi-winding magnetic element intended for operation in a series resonant converter, in which on a single “UU” gapped magnetic core are located two windings of an isolation transformer and two additional windings constituting two inductive elements of the resonant circuit. This assembly constitutes a resonant circuit consisting of three inductances, two capacitances and an isolation transformer.
An integrated-magnetic apparatus is known from the U.S. Pat. No. 5,726,615, comprising three ferromagnetic pot cores, two of which have central core-columns carrying two flat windings located around these columns. These two inductive elements constitute a transformer. The third ferromagnetic pot core has a shorter central core-column around which a flat winding is placed. The third core-piece located adjacent to flat exterior surface of the transformer allows to form the third inductive element. The third inductive element is partially magnetically coupled through an air gap to the other windings and is phased to have the magnetic induction in the same direction as the magnetic induction in the ungapped magnetic circuit.
The U.S. Pat. No. 7,525,406 presents a structure that contains a plurality of coupled and non-coupled inductive elements and at least one closed magnetic circuit comprised of mutually contiguous magnetic elements having groves for current conductors in the X-axis and the perpendicular to it Y-axis. The current conductors located along the same axis exhibit mutual inductance but none between mutually orthogonal axes.
Mutual transfer of orthogonal magnetic fluxes by means of the central ferromagnetic core-piece is known from the U.S. Pat. No. 7,525,406.
The above examples illustrate embodiments of integrated reactance elements suitable for operation in typical resonant DC/DC converters. However, the aforementioned integrated reactances elements do not fully utilize the specific operating conditions of combined reactance elements, which allow also improving of some operating parameters.
The object of the invention is a resonant-mode power supply comprising an integrated inductor, the integrated inductor comprising an inductor and a transformer, wherein the main internal winding of the transformer is surrounded by magnetic elements for closing the magnetic flux lines around the main internal winding of the transformer, wherein at least one magnetic element is surrounded by at least one auxiliary external winding of the inductor arranged orthogonally to the main internal winding of the transformer, and the power supply being configured such that during operation the current flowing through the inductor is shifted in phase with respect to the current flowing through the primary winding of the transformer.
Preferably, the magnetic elements of the integrated inductor are separated by non-magnetic gaps in at least one of a vertical and a horizontal plane.
Preferably, the shift in phase between the currents is close to 90°.
Another object of the invention is a method for increasing electric power transferred by an integrated inductor in a resonant-mode power supply comprising an integrated inductor, the integrated inductor comprising an inductor and a transformer, wherein the main internal winding of the transformer is surrounded by magnetic elements for closing the magnetic flux lines around the main internal winding of the transformer, wherein at least one magnetic element is surrounded by at least one auxiliary external winding of the inductor arranged orthogonally to the main internal winding of the transformer, wherein the electric power transferred by the integrated inductor is increased by choosing the values of induction elements of the resonant-mode power supply such that during operation the current flowing through the inductor is shifted in phase with respect to the current flowing through the primary winding of the transformer.
The invention is shown by means of exemplary embodiment on a drawing, in which:
The integrated inductor shown in
The exemplary embodiment of the integrated inductor according to
In the resonant-mode power supply according to
When the vectors B1(t) and B2(t) are parallel, the length of the resulting magnetic induction vector can be defined as:
|BR(t)|=B·(sin ωt+cos ωt)=B·√{square root over (2)}·sin(45°+ωt)=BAR·sin(45°+ωt)
The maximum amplitude of the induction vector resulting from both currents will be:
B
AR
=B·√{square root over (2)}
Therefore, in order not to exceed the saturation induction BMAX, the useful value of the induction will be at most:
When the magnetic induction vectors B1(t) and B2(t) in the combined magnetic circuit are oriented orthogonally with respect to each other, the length of the resulting vector can be written as:
|Bxy(t)|=√{square root over (B2·sin2 ωt+B2·cos2 ωt)}=B·√{square root over (sin2 ωt+cos2ωt)}=B=BMAX
The value of energy for a selected portion of the magnetic circuit is proportional to the square of the value (vector length) of the magnetic induction. Therefore, for a case wherein the induction vectors are arranged orthogonally, the sum of the peak energy values for the selected portion of the magnetic circuit can be doubled. In that case, two inductive elements are constructed utilising the same portion of the magnetic circuit, each of them having capability to operate at the maximum magnetic induction value B, close to the saturation induction BMAX. Therefore, by utilising the same portion of the magnetic circuit for two windings, the amount on stored energy is increased. The sum of peak energy values is increased while maintaining the same amplitude of the magnetic induction vector.
Resonant-mode power supplies different than that of
The best results, i.e. the best increase in power transferred by the integrated inductor, are achieved when the shift in phase between the currents (I1, I2) is close to 90°, but for smaller phase shifts smaller power increases will be achieved as well.
Number | Date | Country | Kind |
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393133 | Dec 2010 | PL | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP11/71499 | 12/1/2011 | WO | 00 | 5/30/2013 |