DC-DC CONVERTER SYSTEM, DC VOLTAGE SUPPLY SYSTEM AND PRINTED CIRCUIT BOARD FOR A DC-DC CONVERTER SYSTEM
20170331368 · 2017-11-16
Inventors
Cpc classification
H02M1/008
ELECTRICITY
H02M1/08
ELECTRICITY
International classification
Abstract
A DC-DC converter system (1, 1′) according to the invention is provided with an input (In) for feeding in an input voltage (U_in), a step-up controller section (2) for increasing the input voltage (U_in) in a controlled manner to a controlled first output voltage (U_out1) and for providing the first output voltage (U_out1) at a first supply output (Out1), and a voltage conversion section (3) for converting the input voltage (U_in) into a second output voltage (U_out2) in a manner controlled by a control device of the step-up controller section (2) and for providing the second output voltage (U_out2) at a second supply output (Out2). The DC-DC converter system (1) according to the invention having two supply outputs (Out1, Out2) is based on an expansion of a step-up controller with a SEPIC circuit, wherein the DC-DC converter system comprises only a single control device (S1) and a switching device (T1) which can be controlled by the control device.
Claims
1. A DC-DC converter system (1, 1′), including: an input (In) for feeding in an input voltage (U_in); and a step-up controller section (2) for increasing the input voltage (U_in) in a controlled manner to a controlled first output voltage (U_out1) and for providing the first output voltage (U_out1) at a first supply output (Out1), wherein the step-up controller section further comprises a series circuit of a first inductor (L1) and a first diode (D1), which are electrically interconnected at a first interconnection point (P1), wherein the first diode (D1) is arranged with its forward conducting direction from the first interconnection point (P1) to the first supply output (Out1), and comprises a control device (S1) and a switching device (T1), which is controllable by the control device, for the controlled opening and closing of an electric connection between a first contact point (K1) of the switching device and a second contact point (K2) of the switching device (T1), wherein the first contact point (K1) of the switching device is electrically connected to the first interconnection point (P1), and the second contact point (K2) of the switching device is electrically connected to ground directly or via a first resistor (R1), wherein the DC-DC converter system (1, 1′) further comprises a voltage conversion section (3) for converting the input voltage (U_in) in a manner controlled by the control device (S1) to a second output voltage (U_out2) and for providing the second output voltage (U_out2) at a second supply output (Out2), wherein the voltage conversion section (3) comprises a series circuit of a second inductor (L2) and a second diode (D2), which are electrically interconnected at a second interconnection point (P2), wherein the second diode (D2) is arranged with its forward conducting direction from the second interconnection point (P2) to the second supply output (Out2), and comprises a coupling capacitor (C3) which electrically couples the first interconnection point (P1) and the second interconnection point (P2).
2. The DC-DC converter system as claimed in claim 1, wherein the input of the DC-DC converter system is electrically connected to an input capacitor (C1) which is connected to ground directly or via a resistor.
3. The DC-DC converter system as claimed in claim 1, wherein the anode of the first diode (D1) is electrically connected to the first interconnection point (P1), and the cathode of the first diode (D1) is electrically connected to the first supply output, to the first output capacitor (C2), or both, and/or the anode of the second diode (D2) is electrically connected to the second interconnection point (P2), and the cathode of the second diode (D2) is electrically connected to the second supply output and/or to the second output capacitor (C4).
4. The DC-DC converter system as claimed in claim 1, wherein the switching device (T1) is formed by a field effect transistor, a bipolar transistor, or an IGBT.
5. The DC-DC converter system (1′) as claimed in claim 1, further comprising a third diode (D3), the anode of which is electrically connected to the input of the DC-DC converter system, to the end of the first inductor (L1) facing away from the first interconnection point (P1) or both, and the cathode of which is electrically connected to the end of the second diode (D2) facing away from the second interconnection point (P2), to the second supply output, or both.
6. The DC-DC converter system (1, 1′) as claimed in claim 1, wherein said system is formed by a functional combination of a step-up converter and a SEPIC converter, wherein their respective structurally similar sections, are provided only once for the combined use.
7. The DC-DC converter system (1′) as claimed in claim 5, further comprising a linear controller (LDO), the input side of which is electrically connected to the cathodes of the second and third diodes (D2, D3), and the output side of which forms a stabilized second supply connection, in order to provide a constant DC voltage as the output voltage.
8. The DC-DC converter system (1, 1′) as claimed in claim 1, wherein the DC-DC converter system is designed for the input voltage in the range from 6 to 27 volts DC voltage for providing the first output voltage as 30 volts DC voltage and the second output voltage as 12 volts.
9. (canceled)
10. A printed circuit board for a DC-DC converter system as claimed in claim 6, wherein the printed circuit board is designed in such a way that a feeding-in of the first output voltage provided by the step-up converter section to the linear controller can be achieved by installing or not installing components assigned to the voltage conversion section and reversing the polarity connection of the fourth diode (D4).
11. The DC-DC converter system as claimed in claim 1, wherein the first supply output, an end of the first diode (D1) facing away from the first interconnection point (P1), or both are connected to a first output capacitor (C2) which is connected to ground directly or via a resistor.
12. The DC-DC converter system as claimed in claim 1, wherein an end of the second diode (D2) facing away from the second interconnection point (P2) is connected to a second output capacitor (C4) which is connected to ground directly or via a resistor.
13. The DC-DC converter system as claimed in claim 1, wherein the anode of the second diode (D2) is electrically connected to the second interconnection point (P2), and the cathode of the second diode (D2) is electrically connected to the second supply output, to the second output capacitor (C4), or both.
14. The DC-DC converter system (1′) as claimed in 5, further comprising a fourth diode (D4), the anode of which is electrically connected to the second supply output, to the end of the second diode (D2) facing away from the second interconnection point (P2), to the cathode of the third diode (D3), or a combination of the same and the cathode of the fourth diode is electrically connected to the first supply output, to the end of the first diode (D1) facing away from the first interconnection point (P1), or both.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The attached
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DETAILED DESCRIPTION
[0024]
[0025] The step-up controller section 2 is formed by a first inductor L1, a first diode D1, an input capacitor C1, a first output capacitor C2, a switching device T1, which is embodied by a MOSFET and has first and second contact points K1 and K2, a control device S1 embodied by an IC, a first resistor R1, a first supply output Out1, and resistors R2 and R3 connected in series as a voltage divider. The input In is electrically connected to one end of the first inductor L1 and to the input capacitor C1 which is connected to ground. The other end of the first inductor L1 is connected at a first interconnection point P1 to the anode of the first diode D1 and to the first contact point K1 of the switching device T1. The first supply output Out1 is electrically connected to the cathode of the first diode D1, to the first output capacitor C2 connected to ground, and to the resistor R2 of the voltage divider R2+R3. At an interconnection point of the series-connected resistors R2 and R3, which form the voltage divider, a voltage which is dependent on the voltage provided at the first supply output Out1 is tapped and is fed to the control device S1 as a control criterion or a control variable for the first output voltage U_out1. The control device S1 is designed for controlling the opening and closing of the switching device T1, which corresponds to an opening and closing of an electrical connection between the contact points K1 and K2 of the switching device T1, in such a way that the voltage U_out1 provided at the first supply output Out1 is controlled to a predefined output voltage, for example 30 V DC.
[0026] The voltage conversion section 3 includes the second inductor L2, which is connected at one end to ground, the diode D2, the coupling capacitor C3, and the second output capacitor C4 connected to ground, and the second output voltage Out2. The other end of the second inductor L2 and the anode of the diode D2 are electrically connected to each other at a second interconnection point P2. The cathode of the diode D2 is electrically connected to the second supply output Out2 and to the second output capacitor C4. The coupling capacitor C3 is connected between the first interconnection point P1 and the second interconnection point P2. The second supply output Out2 is uncontrolled. The voltage U_out2 provided there is dependent on the input voltage U_in, a load current at the first supply output Out1, and a load current at the second supply output Out2.
[0027] One specific exemplary embodiment according to the invention is designed in such a way that, given an input voltage which varies between 6 volts and 27 volts, the second output voltage U_out2 provided at the second supply output Out2 varies in a range from approximately 2.5 volts and 25 volts. In this case, the highest output voltage U_out2 occurs at the lowest input voltage U_in, and vice versa.
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[0029] In order to illustrate that the present invention is based on a particularly advantageous combination of a step-up controller and a SEPIC converter having a modification in the form of a single switching device and control device,
[0030] A comparison of
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