This application is the U.S. national stage application of International Application PCT/EP2021/052697, filed Feb. 4, 2021, which international application was published on Aug. 12, 2021, as International Publication WO 2021/156382 A1 in the English language. The International Application claims priority of Great Britain Patent Application 2001703.4, filed Feb. 7, 2020.
This invention relates to an apparatus for use in electrical conversion, and in particular in current shaping applications, for example in shaping of the output of a rectifier.
Rectification arrangements for use in the conversion of an AC electrical output to a DC electrical output are well known. However, the current at the output of, for example, a simple bridge rectifier varies significantly, and as a consequence some form of smoothing arrangement is required to be used in conjunction with the rectifier to reduce the variation in the output current. A simple form of smoothing arrangement takes the form of a large capacitor that charges and discharges to compensate for the variations in the output current, reducing the level of variation in the output current. Such a smoothing capacitor is typically of large capacitance. By way of example, in a typical battery charger circuit for use in charging the battery of a cordless power tool, a 33 μF, 400V capacitor is often used. However, such capacitances are generally of relatively large dimensions, and are expensive, and so their use in a number of applications is undesirable. Furthermore, whilst the variations in the output current are reduced, a significant ripple may still be present, which is undesirable.
It is an object of the invention to provide an electrical conversion apparatus for use in current shaping, wherein the output of the apparatus is of improved suitability for use in applications in which a load with which the apparatus is used consumes a substantially constant power.
According to the present invention there is provided an electrical conversion apparatus for use in current shaping comprising at least two capacitors connected in series between first and second lines, a first diode connected in parallel across the first capacitor, a second diode connected in parallel across the second capacitor, and a constant current device connected in series with the first and second capacitors.
Such a circuit may be used in substitution for the relatively large smoothing capacitor that is typically used. The apparatus is advantageous in that it allows each individual capacitor to be of considerably smaller capacitance than would typically be required if a smoothing capacitor were being used to perform the current shaping function.
Preferably, a third capacitor is connected in series with the first and second capacitors, and additional diodes are provided to provide charge and discharge paths to the third capacitor.
In use, such an arrangement may be used as a replacement for, for example, a 33 μF, 400V smoothing capacitor, each of the first, second and third capacitors taking the form of, for example, a 10 μF, 160V capacitor. As such capacitors are of considerably smaller dimensions and cost, it will be appreciated that the use of the invention is significantly advantageous over the use of a conventional smoothing capacitor. The number and size of capacitors used will vary depending upon space and cost requirements, and the size smoothing capacitor that is being replaced.
The invention will further be described, by way of example, with reference to the accompanying drawings, in which:
Referring firstly to
In accordance with the invention, as shown in
As shown in
A constant current source or device 30 is located in the circuit, in this case between the first and second capacitors 14, 16. By way of example, it may be a 40 mA constant current source such as an AL5890.
The circuit is arranged such that the charging path is made up of the third capacitor 18, diode 20b, second capacitor 16, diode 20a, constant current source 30, and the first capacitor 14. It is important that the constant current source 30 is located somewhere within the charging path, but its precise location is not crucial and it could be located in locations other than that illustrated.
The circuit includes three discharge paths. The first discharge path is made up of the first capacitor 14 and the second discharge diode 24. The second discharge path is made up of the first discharge diode 22, the second capacitor 16 and the discharge diode 28. The third discharge path is made up of the discharge diode 26 and third capacitor 18.
Where used in substitution for a 33 μF, 400V smoothing capacitor, it is envisaged that each of the first, second and third capacitors 14, 16, 18 will take the form of a 10 μF, 160V capacitor. These capacitors are of smaller dimensions than a 33 μF, 400V smoothing capacitor and are of considerably lower cost, with the result that the component cost of the entire circuit of
Whilst the three capacitors 14, 16, 18 shown in
The reduced peak current and associated power factor impact upon the harmonic content arising from the use of the circuit, as illustrated by comparing
Whilst
Whilst specific embodiments of the invention have been described hereinbefore, it will be appreciated that a number of modifications and alterations may be made thereto without departing from the scope of the invention as defined by the appended claims.
Number | Date | Country | Kind |
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2001703 | Feb 2020 | GB | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2021/052697 | 2/4/2021 | WO |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2021/156382 | 8/12/2021 | WO | A |
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20130026937 | Nakajo et al. | Jan 2013 | A1 |
20210067039 | Huang | Mar 2021 | A1 |
20220041074 | Pfeilschifter | Feb 2022 | A1 |
Number | Date | Country |
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201919210 | Aug 2011 | CN |
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0602908 | Jun 1994 | EP |
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32286787 | Jul 1989 | JP |
H01170364 | Jul 1989 | JP |
2009080417 | Jul 2009 | WO |
WO-2009080417 | Jul 2009 | WO |
Entry |
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International Search Report and Written Opinion for International Application No. PCT/EP2021/052697, mailed Apr. 28, 2021. |
Lam, John et al. A New Passive Valley Fill Dimming Electronic Ballast with Extended Line Current Conduction Angle (Annual International Telecommunication Energy Conference, 28th, IEEE, PI, Sep. 1, 2006, pp. 1-7. |
Lam, John et al. A Modified Valley Fill Electronic Ballast Having a Current Source Resonant Inverter With Improved Line-Current Total Harmonic Distortion (THD), High Power Factor, and Low Lamp Crest Factor (IEEE Transactions on Industrial Electronics, IEEE Service Center, Piscataway, NJ, USA, vol. 55, No. 3, Mar. 1, 2008, pp. 1147-1159. |
Office Action for European Application No. 21705892.4, mailed Mar. 7, 2024. |
Number | Date | Country | |
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20230067594 A1 | Mar 2023 | US |