The invention relates generally to boost power converters, and more specifically to a system and method to reduce the input filter size of a boost power converter.
Boost power converters are used in many different applications to provide a high power factor to an AC power line, and/or to provide a regulated DC bus for specific power applications. A significant problem inherent with such boost power converters is related to high frequency harmonics associated with the boost power converter switching frequency fed back to the boost power converter input (i.e. AC power line). These high frequency harmonics are generally required by certain regulatory agencies to be attenuated by factors of 100 or more to meet the requisite regulatory levels. High frequency can also stress capacitors by means of internal heating and dielectric material breakdown.
Known boost power converters have traditionally employed large bulky filtering techniques, systems and devices to reduce boost power converter input side switching harmonics. Such techniques, system and devices have generally been very large and expensive since the filtering is required to be very effective at low frequencies (i.e. 100's of kHz). These filtering techniques often become so large, that the interaction between the filter and boost power converter can create undesirable stability problems. These filters are large also because all components carry full current.
It would be both advantageous and beneficial to provide a method and system to reduce undesirable high frequency harmonics fed back to the input side of a boost power converter in a manner that is significantly smaller and less costly than traditional boost power converter switching frequency filters.
Briefly, in accordance with one embodiment of the invention, a boost inductor value reduction circuit is configured to substantially reduce the size and inductance value of a boost converter boost inductor that provides a predetermined level of boost converter performance when the boost converter is operating in a continuous conduction mode, such that the reduced inductance boost inductor in combination with the boost inductor value reduction circuit maintains substantially the same predetermined boost converter performance level as that provided by the boost converter operating in the absence of the boost inductor value reduction circuit, and such that the boost converter maintains substantially the same performance level when operating in a continuous conduction mode, in a bounded conduction mode, or in a discontinuous conduction mode.
According to another embodiment of the invention, a boost inductor value reduction circuit is configured to substantially reduce the size and inductance value of a boost converter boost inductor that is configured to limit a boost converter input ripple current value when the boost converter is operating in a continuous conduction mode, such that the reduced inductance boost inductor in combination with the boost inductor value reduction circuit maintains substantially the same boost converter input ripple current value as that provided by the boost converter operating in the continuous conduction mode in the absence of the boost inductor value reduction circuit, and such that the boost converter maintains substantially the same performance level when operating in a continuous conduction mode, in a bounded conduction mode, or in a discontinuous conduction mode.
According to yet another embodiment of the invention, a boost inductor value reduction circuit is configured to substantially reduce the size of a boost converter input filter that is operational to limit a boost converter input ripple current value when the boost converter is operating in a continuous conduction mode, such that the reduced size boost converter input filter in combination with the boost inductor value reduction circuit maintains substantially the same boost converter input ripple current value as that provided by the boost converter operating in the continuous conduction mode in the absence of the boost inductor value reduction circuit, and such that the boost converter maintains substantially the same performance level when operating in a continuous conduction mode, in a bounded conduction mode, or in a discontinuous conduction mode.
These and other features, aspects, and advantages of the present invention will become better understood when the following detailed description is read with reference to the accompanying drawings in which like characters represent like parts throughout the drawings, wherein:
While the above-identified drawing figures set forth alternative embodiments, other embodiments of the present invention are also contemplated, as noted in the discussion. In all cases, this disclosure presents illustrated embodiments of the present invention by way of representation and not limitation. Numerous other modifications and embodiments can be devised by those skilled in the art which fall within the scope and spirit of the principles of this invention.
Although boost converter 10 is depicted as having an AC line input, the present embodiments are not so limited; and it shall be understood that the principles described herein apply equally well to a boost converter having a DC input source.
Boost inductor value reduction circuit 12 creates a ripple current signal that is substantially equal to and opposite in phase to the high frequency input ripple created by the boost converter switching components 14, 16, such that the high frequency input ripple created by the boost converter 10 switching components 14, 16 is substantially canceled by the high frequency ripple signal created by the boost inductor value reduction circuit 12.
Although certain aspects of the invention are described in association with a boost converter operating in a critical conduction mode where the switching frequency changes considerably over a single AC line waveform, the present invention is not so limited. The boost inductor value reduction circuit 12 can also achieve the desired results in accordance with the principles described herein when applied to a boost converter operating in either a continuous conduction mode or a discontinuous conduction mode. One embodiment was found to achieve greater than a 30 dB reduction in EMI conducted back to the input of the boost converter, when using a boost inductor value reduction circuit according to the principles described herein.
According to one embodiment, a boost inductor value reduction circuit transformer component 18 is implemented simply by adding one or more low current windings on an existing boost converter inductor 20. The resultant auxiliary inductor 22 carries only an opposing high frequency ripple current, and has a much lower inductance than the boost converter inductor 20.
Boost inductor value reduction circuit 12 also includes a small wattage damping resistor 24 and a small microfarad auxiliary capacitor 26. According to one aspect, auxiliary capacitor 26 sees only a unipolar voltage across it during operation; and so capacitor 26 can be a low cost aluminum electrolytic capacitor with a large ESR that desirably contributes to damping according to one embodiment.
One 80 watt critical conduction mode boost converter was found to have a switching frequency that varied from about 20 kHz when the AC magnitude was near its peak to about 100 kHz when the AC line voltage was small. A 0.22 microfarad DC link capacitor 30 was found suitable to help reduce the harmonics reflected back to the AC line for the critical conduction mode boost converter using an 800 micro Henry boost inductor 20 and a 220 microfarad output capacitor 32.
The auxiliary capacitor 26 and auxiliary inductor 22 are together selected according to one embodiment, to provide a workable filter corner frequency such that the boost inductor value reduction circuit 12 operates to reduce all critical conduction mode boost switching harmonics reflected back to the AC line, above the corner frequency. The boost inductor value reduction circuit 12 is therefore not tuned to a particular frequency, but provides broadband attenuation.
Boost inductor value reduction circuit 12 also operates in association with a boost converter running discontinuous conduction mode or continuous conduction mode to provide the desired ripple cancellation effects according to the principles described herein, as stated herein before. More specifically, the boost inductor value reduction circuit 12 operates to reduce high frequency harmonics for a rectified sinewave input voltage, a DC input voltage, or any other input voltage that has a low frequency relative to the power switching frequency.
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The improvement in ripple current reduction achieved by using a boost inductor value reduction circuit such as depicted in
In summary explanation, a very compact, low cost boost inductor value reduction circuit has been described that greatly reduces the undesirable high frequency currents associated with boost converter switching frequencies and that are limited by EMI regulations in order to alleviate system interference and other difficulties. The boost inductor value reduction circuit, according to one embodiment, creates a continuous input side current for a critical conduction mode boost converter, while maintaining the MOSFET side current in critical conduction mode. This feature substantially eliminates diode switching losses generally associated with boost converters, and also eliminates input side conducted EMI problems.
A further advantage provided by the boost inductor value reduction circuit 50 is directed to efficiency improvement. Reducing the boost inductor value and physical size results in a PV inverter efficiency increase regardless of losses associated with the boost inductor value reduction circuit 50. This is possible because the performance of the PV inverter is maintained and the power loss density of the boost inductor with the boost inductor value reduction circuit 50 is maintained. A small physical inductor with the same power loss density as the original inductor will therefore inherently have lower losses. A balance can then be found with the main boost switching device as the losses begin to shift into the form of increased turn-off switching losses.
While only certain features of the invention have been illustrated and described herein, many modifications and changes will occur to those skilled in the art. It is, therefore, to be understood that the appended claims are intended to cover all such modifications and changes as fall within the true spirit of the invention.