The invention is related to a power converter, particularly to a power converter providing a wide-range voltage adjustment.
An electronic product usually operates with a dedicated power converter that generates a specific output power needed by the electronic product. For providing different output powers to different electronic products, a great number of different power converters may be necessary, which is quite inconvenient for users.
To offer a wide-range output voltage adjustment by a single power converter, the power converter may use a plurality of modules to generate multiple output voltages of different levels respectively. With reference to
When the power converter receives an alternate current (AC) power from an input port 100, a rectifying unit 200 of the power converter rectifies the AC power to a DC power for inputting to primary units of the DC/DC converting modules 300, 400. After the DC/DC converting modules 300,400 respectively convert the DC power, the converted DC powers are output from secondary units of the DC/DC converting modules 300,400 to a high-power output port 500 and a low-power output port 600 respectively. The high-power output port 500 is for outputting a high power for electronic products with high power consumption demand, while the low-power output port 600 outputs a relatively low power for products with low power consumption demand.
Since the power converter shown in
Another type of power converter may use different topologies other than the DC/DC modules, but such power converter is unable to achieve the purpose of wide-range output voltage adjustment. According to specifications proposed by the USB Implementers Forum (USB IF), a suggested wide-range output voltage adjustment should be in the range of 5 to 48 volts, while the maximum output power should be 240 watts. Such a power converter only outputs a voltage in the relative narrow range of 5 to 20 volts.
An objective of the present invention is to provide a power converter with an adjustable output voltage to achieve the wide-range output voltage adjustment to meet different load demands without using multiple DC/DC converters connected in parallel.
To achieve the objective, the power converter includes an isolation DC/DC transformer having a primary coil and a secondary coil, a primary side circuit connected to the primary coil of the isolation DC/DC transformer for transmitting an input AC power to the primary coil, a secondary side circuit connected to the secondary coil of the isolation DC/DC transformer and comprising a first output loop and a second output loop, and a mode switch connected to the first output loop.
When the mode switch turns off, the first output loop is open and the second output loop outputs a first output voltage. When the mode switch turns on, the second output loop outputs a second output voltage higher than the first output voltage.
In the power converter, the mode switch is selectively turned on or off depending on load demand so that the secondary side circuit is able to output a voltage needed by the load. The power converter uses a single isolation DC/DC transformer, instead of multiple converters connected in parallel, to achieve the wide-range output voltage adjustment and minimize the size and weight as much as possible.
Other objectives, advantages and novel features of the invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
The DC/DC transformer 10 has a primary coil 11 and a secondary coil 12, wherein the secondary coil 12 in this embodiment is a central-tapped coil having a first end 121, a second end 122 and a central-tapped end 123.
The primary side circuit 20 is connected to the primary coil 11 and comprises an inductor L, a resonant capacitor C, a first switch Q1 and a second switch Q2. As an example, both the first switch Q1 and the second switch Q2 are NMOS power transistors. The inductor L is connected to the primary coil 11 in parallel. The resonant capacitor C is connected between an input port Vin and a dotted end of the primary coil 11, i.e. the end marked with a dot. The second switch Q2 is connected between the ground and a non-dotted end of the primary coil 11, i.e. the end without a dot. The first switch Q1 is connected between the input port Vin and the non-dotted end of the primary coil 11.
The secondary side circuit 30 is connected to the secondary coil 12 and comprises a first output loop and a second output loop, wherein a mode switch Qm is connected to the first output loop. In this embodiment, the secondary side circuit 30 has a first rectifying switch Qsr1 and a second rectifying switch Qsr2. The first rectifying switch Qsr1 is connected between the first end 121 of the secondary coil 12 and a first end of the mode switch Qm. A second end of the mode switch Qm is grounded. The first output loop in this embodiment is formed by connecting the secondary coil 12, the first rectifying switch Qsr1 and the mode switch Qm. The second output loop is formed by connecting the second rectifying switch Qsr2 between the second end 122 of the secondary coil 12 and the ground. The central-tapped end 123 is connected to an output capacitor Co through which an output voltage of the power converter 1 can be supplied to a load. Both the first rectifying switch Qsr1 and the mode switch Qm are NMOS power transistors, wherein source terminals of the two NMOS transistors are connected together.
The power converter 1 of the present invention is selectively operated in either a first mode or a second mode depending on load demand, wherein the output voltage generated in the second mode is greater than the output voltage generated in the first mode. The first mode such as an asymmetric half-bridge flyback mode supplies the output voltage lower than 36 volts. The second mode such as a half-bridge LLC mode supplies the output voltage in a range of 36-48 volts. As shown in
I. First Mode (Asymmetric Half-Bridge Flyback Mode)
With reference to
Vds2: the voltage between drain and source of the second switch Q2;
Vgs2: the voltage between gate and source of the second switch Q2;
Ids2: the current flowing through the second switch Q2;
Icr: the current flowing through the resonant capacitor C;
Isr2: the current flowing through second rectifying switch Qsr2;
Vgsr2: the voltage between gate and source of the second rectifying switch Qsr2; and
Vgs-mode: the voltage between gate and source of the mode switch Qm.
In the asymmetric half-bridge flyback mode, the mode switch Qm remains in the turned-off status so that the Vgs-mode in
II. Second Mode (Half-Bridge LLC Mode)
With reference to
Vds2: the voltage between drain and source of the second switch Q2;
Vgs2: the voltage between gate and source of the second switch Q2;
Icr: the current flowing through the resonant capacitor C;
Isr1: the current flowing through the first rectifying switch Qsr 1;
Isr2: the current flowing through the second rectifying switch Qsr 2;
Vgsr1: the voltage between gate and source of the first rectifying switch Qsr1;
Vgsr2: the voltage between gate and source of the second rectifying switch Qsr2; and
Vgs-mode: the voltage between gate and source of the mode switch Qm.
In the half-bridge LLC mode, the mode switch Qm remains in the turned-on status so that the Vgs-mode in
With reference to
With reference to
The two input terminals 31, 32 of the full bridge rectifying circuit are respectively connected to the first end 121 and the second end 122 of the secondary coil 12. The two output terminals 33, 34 are respectively connected with the two ends of the output capacitor Co. The connection of the secondary coil 12, the first diode D1, the output capacitor Co and the fourth diode D4 form the first output loop, wherein the mode switch Qm is connected in series with the fourth diode D4. The connection of the secondary coil 12, the second diode D2, the output capacitor Co and the third diode D3 form the second output loop. When the mode switch Qm remains in the turn-on status, the full bridge rectifying circuit performs a full wave rectifying function so that the power converter 1 operates in the second mode. When the mode switch Qm is turned off, the first output loop becomes an open circuit, and the full bridge circuit performs a half wave rectifying function so that the power converter 1 operates in the first mode.
With reference to the fourth embodiment in
With reference to the fifth embodiment in
With reference to
When the PD controller 5 determines that the load requires a high charging power, the power distribution controller 5 outputs control signals to the power converter 1 to respectively turn on or turn off the first switch Q1, the second switch Q2, the mode switch Qm, the first rectifying switch Qsr1 and the second rectifying switch Qsr2 in such a way that the power converter 1 operates in the half-bridge LLC mode to supply a high charging power. When the power distribution controller 5 determines that the load requires a low charging power, the PD controller 5 outputs control signals to the power converter 1 for controlling the power converter 1 to be operated in the asymmetric half-bridge flyback mode and output the low charging power to the load.
Instead of using multiple DC/DC converters connected in parallel, the power converter 1 of the present invention can be operated in different modes by controlling the mode switch Qm to meet different load demands. With the relatively simple circuit configuration, the power converter achieves the wide-range output voltage adjustment, for example 5-48 volts, and also reduces the size of the power converter such that it is more suitable to be applied in a portable charger.
Even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and function of the invention, the invention is illustrative only. Changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
Number | Name | Date | Kind |
---|---|---|---|
5907481 | Svardsjo | May 1999 | A |
6188592 | Farrington | Feb 2001 | B1 |
6324077 | Lopresti | Nov 2001 | B1 |
8693213 | Jungreis | Apr 2014 | B2 |
9966861 | Yeh | May 2018 | B1 |
9979308 | Meneses Herrera | May 2018 | B1 |
9997994 | Luo | Jun 2018 | B1 |
10666154 | Yao | May 2020 | B2 |
10862400 | Nian | Dec 2020 | B2 |
11349401 | Zafarana | May 2022 | B1 |
11362593 | Ouyang | Jun 2022 | B2 |
11411504 | Peng | Aug 2022 | B1 |
20020110005 | Mao | Aug 2002 | A1 |
20040109335 | Gan | Jun 2004 | A1 |
20050040711 | West | Feb 2005 | A1 |
20050243582 | Lee | Nov 2005 | A1 |
20060139823 | Shoji | Jun 2006 | A1 |
20090212758 | Asinovski | Aug 2009 | A1 |
20090290384 | Jungreis | Nov 2009 | A1 |
20100052423 | Shimada | Mar 2010 | A1 |
20110090604 | Butler | Apr 2011 | A1 |
20130162048 | Kim | Jun 2013 | A1 |
20150098250 | Wu | Apr 2015 | A1 |
20150103562 | Yeh | Apr 2015 | A1 |
20150124492 | Fu | May 2015 | A1 |
20160190945 | Liu | Jun 2016 | A1 |
20170087997 | Trunk | Mar 2017 | A1 |
20170104418 | Hsiao | Apr 2017 | A1 |
20180069485 | Hsiao | Mar 2018 | A1 |
20180309372 | Leong | Oct 2018 | A1 |
20190068069 | Sheng | Feb 2019 | A1 |
20200083818 | Lin | Mar 2020 | A1 |
20200358355 | Zambetti | Nov 2020 | A1 |
20220385190 | Xu | Dec 2022 | A1 |
Number | Date | Country |
---|---|---|
201220662 | May 2012 | TW |
201338385 | Sep 2013 | TW |
M603233 | Oct 2020 | TW |