JP2015023766A - Power supply switching circuit - Google Patents

Power supply switching circuit Download PDF

Info

Publication number
JP2015023766A
JP2015023766A JP2013152873A JP2013152873A JP2015023766A JP 2015023766 A JP2015023766 A JP 2015023766A JP 2013152873 A JP2013152873 A JP 2013152873A JP 2013152873 A JP2013152873 A JP 2013152873A JP 2015023766 A JP2015023766 A JP 2015023766A
Authority
JP
Japan
Prior art keywords
power
power supply
load
converter
switching circuit
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
JP2013152873A
Other languages
Japanese (ja)
Inventor
佐江 竹中
Sae Takenaka
佐江 竹中
金井 康通
Yasumichi Kanai
康通 金井
忠利 馬場崎
Tadatoshi Babasaki
忠利 馬場崎
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Nippon Telegraph and Telephone Corp
Original Assignee
Nippon Telegraph and Telephone Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Nippon Telegraph and Telephone Corp filed Critical Nippon Telegraph and Telephone Corp
Priority to JP2013152873A priority Critical patent/JP2015023766A/en
Publication of JP2015023766A publication Critical patent/JP2015023766A/en
Pending legal-status Critical Current

Links

Images

Abstract

PROBLEM TO BE SOLVED: To provide a power supply switching circuit capable of selecting a power supply for supplying power to a load regardless of the magnitude of the power supply voltage of an input power supply.SOLUTION: In a power supply switching circuit for switching a plurality of DC power supplies for supplying power to a load, a plurality of power lines to which an input from at least one of the plurality of DC power supplies is connected are connected via a branch part to the load, and the plurality of power lines are respectively provided with a DC/DC converter capable of changing an output voltage and a rectifier element configured to allow currents to flow from the DC/DC converter to the branch part. The output voltage of each of the plurality of DC/DC converters disposed at the plurality of power lines is adjusted such that the priority order of the DC power supply for supplying power to the load is set. The output voltage of the DC/DC converter disposed in the power line connected to the DC power supply whose priority order is high among the plurality of DC/DC converters is made higher than the output voltage of each of the other DC/DC converters such that the DC power supply for supplying power to the load is selected.

Description

本発明は、電力を供給する電源の切替を行う電源切替回路に関する。   The present invention relates to a power supply switching circuit that switches a power supply that supplies electric power.

従来の電子機器には、電圧が変動する電力を対象とした電源回路を有するものがあった。このような電子機器には、複数の電源回路から入力が可能な構成とされ、電源電圧に応じて入力電源を切り替える電源切替回路を有しているものがある。例えば、電源電圧に応じて入力電源を切り替える電源切替回路で、主電源ラインと補助電源ラインとダイオードとを備え、電源電圧に応じて電源の供給元である主電源ラインと補助電源ラインとを切り替える電源切替回路が知られている。   Some conventional electronic devices have a power supply circuit for power whose voltage fluctuates. Some of such electronic devices have a configuration capable of inputting from a plurality of power supply circuits and have a power supply switching circuit that switches input power according to a power supply voltage. For example, a power supply switching circuit that switches input power according to the power supply voltage, and includes a main power supply line, an auxiliary power supply line, and a diode, and switches between the main power supply line and the auxiliary power supply line, which are power supply sources, according to the power supply voltage. A power supply switching circuit is known.

特開2005−312218号公報Japanese Patent Laid-Open No. 2005-31218

しかしながら、上記のような電源切替回路は、電源の供給元が入力電源の電源電圧の大小関係に依存するため、常に電源電圧の高い方が優先的に電源の供給元となり、電源電圧の低い方の入力電源の優先順位を任意につけることが出来なかった。   However, in the power supply switching circuit as described above, since the power supply source depends on the magnitude relationship of the power supply voltage of the input power supply, the higher power supply voltage is always preferentially the power supply source, and the lower power supply voltage is It was not possible to arbitrarily prioritize the input power.

本発明は上記従来の問題に鑑みてなされたものであり、本発明の課題は、入力電源の電源電圧の大小関係に関係なく、負荷に電力を供給する電源を選択することができる電源切替回路を提供することにある。   The present invention has been made in view of the above-described conventional problems, and an object of the present invention is to provide a power supply switching circuit capable of selecting a power supply that supplies power to a load regardless of the power supply voltage level of the input power supply. Is to provide.

上記の課題を解決するために、一実施形態に記載の発明は、負荷に電力を供給する複数の直流電源を切り替える電源切替回路において、前記負荷に電力を供給する電力線が電源に接続される複数の電力線に分岐される分岐のうち、負荷に直接接続されている電力線が接続されている分岐におけるすべての電源側配線の分岐近傍に、電源から負荷に電流が流れるようにダイオードを配置し、該ダイオードの電源側近傍に出力電圧の変更が可能なDC/DCコンバータを配置し、前記複数のDC/DCコンバータの出力電圧を調整することにより、前記負荷に供給する前記直流電源の優先順位を設定することを特徴とする電源切替回路である。   In order to solve the above-described problem, the invention described in an embodiment is a power supply switching circuit that switches a plurality of DC power supplies that supply power to a load. A plurality of power lines that supply power to the load are connected to a power supply. A diode is arranged in the vicinity of all the power supply side wiring branches in the branch to which the power line directly connected to the load is connected among the branches branched to the power line, so that a current flows from the power source to the load. A DC / DC converter capable of changing the output voltage is arranged near the power supply side of the diode, and the priority order of the DC power supply to be supplied to the load is set by adjusting the output voltage of the plurality of DC / DC converters. This is a power supply switching circuit.

本発明に係る電源切替回路の構成を表す回路図である。It is a circuit diagram showing the structure of the power supply switching circuit which concerns on this invention. 本発明に係る電源切替回路の構成を表す回路図で、第1の実施形態を示す回路図である。1 is a circuit diagram illustrating a configuration of a power supply switching circuit according to the present invention, and is a circuit diagram illustrating a first embodiment. FIG. 本発明に係る電源切替回路の構成を表す回路図で、第2の実施形態を示す回路図である。It is a circuit diagram showing the structure of the power supply switching circuit which concerns on this invention, and is a circuit diagram which shows 2nd Embodiment.

以下、本発明の実施の形態について、詳細に説明する。   Hereinafter, embodiments of the present invention will be described in detail.

本実施形態の電源切替回路は、負荷に電力を供給する複数の直流電源を切り替える電源切替回路において、前記複数の直流電源のうちの少なくとも1つからの入力がそれぞれ接続された複数の電力線を、分岐部を介して前記負荷に接続し、前記複数の電力線は、出力電圧の変更が可能なDC/DCコンバータと該DC/DCコンバータから前記分岐部に電流が流れるように構成した整流素子とをそれぞれ有し、前記複数の電力線のそれぞれに設けられた複数のDC/DCコンバータの出力電圧を調整することにより、負荷に供給する直流電源の優先順位を設定する。複数のDC/DCコンバータのうち、優先順位の高い直流電源に接続された電力線に設けられたDC/DCコンバータの出力電圧を他のDC/DCコンバータの出力電圧よりも高くすることにより、負荷に電力を供給する電源を選択する。   The power supply switching circuit of the present embodiment is a power supply switching circuit that switches a plurality of DC power supplies that supply power to a load, and a plurality of power lines to which inputs from at least one of the plurality of DC power supplies are respectively connected, The plurality of power lines are connected to the load via a branch unit, and the plurality of power lines include a DC / DC converter capable of changing an output voltage and a rectifying element configured to allow a current to flow from the DC / DC converter to the branch unit. The priority order of the DC power supplies to be supplied to the load is set by adjusting the output voltages of the plurality of DC / DC converters provided in the respective power lines. Among a plurality of DC / DC converters, by making the output voltage of a DC / DC converter provided on a power line connected to a DC power supply with high priority higher than the output voltage of other DC / DC converters, Select a power supply to supply power.

従来の電源切替回路では、負荷に電力を供給する電力線に電源からの複数の電力線を接続する際に、電源から負荷に向かってのみ電流が流れるようにダイオードを配置し、複数の電源の内、電圧のより高い電源の電力のみを負荷に供給する回路が知られていた。しかし、電源電圧により電力を供給する電源が自動的に決まってしまい、電源電圧にかかわらず希望する電源から電力を供給することができないという問題があった。   In a conventional power supply switching circuit, when connecting a plurality of power lines from a power source to a power line that supplies power to a load, a diode is arranged so that a current flows only from the power source toward the load. There has been known a circuit that supplies only a power source having a higher voltage to a load. However, the power source that supplies power is automatically determined by the power source voltage, and there is a problem that power cannot be supplied from the desired power source regardless of the power source voltage.

本実施形態による電源切替回路においては、負荷に電力を供給する複数の直流電源を切り替える電源切替回路において、負荷に電力を供給する電力線が電源に接続される複数の電力線に分岐される分岐のうち、最も負荷に近い分岐におけるすべての電源側配線の分岐近傍に、電源から負荷に電流が流れるようにダイオードを配置し、更にすべてのダイオードの電源側近傍に出力電圧の変更が可能なDC/DCコンバータを配置する。これにより、電力を供給したい電源に接続されたDC/DCコンバータの出力電圧を他のDC/DCコンバータの出力電圧よりも高くすることで、電源電圧にかかわらずに負荷に電力を供給する電源を選択することが可能となり、複数の電源が接続された電力系においてより自由に電源を選択することができる。   In the power supply switching circuit according to the present embodiment, in the power supply switching circuit that switches a plurality of DC power supplies that supply power to the load, a power line that supplies power to the load is divided into a plurality of power lines that are connected to the power supply. DC / DC in which a diode is arranged near the branch of all power supply side wirings in the branch closest to the load so that current flows from the power supply to the load, and the output voltage can be changed near the power supply side of all the diodes Place the converter. As a result, by setting the output voltage of the DC / DC converter connected to the power supply to which power is desired to be higher than the output voltage of other DC / DC converters, the power supply that supplies power to the load regardless of the power supply voltage can be obtained. The power source can be selected, and the power source can be selected more freely in the power system to which a plurality of power sources are connected.

図1は電源切替回路の回路構成の一例を示す図である。図1において、電源11、12と、DC/DCコンバータ13、14と、負荷15と、DC/DCコンバータ側をアノード端子で接続する整流素子16、17とを設けて、整流素子16と整流素子17とのカソード端子同士を接続して負荷15に接続して構成されている。この回路において、DC/DCコンバータ13、14の出力電圧を任意に設定することで、負荷に供給する電源の優先順位を任意に決めて入力電源を切り替えることができる。なお、入力電源の数は限定しない。   FIG. 1 is a diagram illustrating an example of a circuit configuration of a power supply switching circuit. In FIG. 1, power sources 11 and 12, DC / DC converters 13 and 14, a load 15, and rectifier elements 16 and 17 that connect the DC / DC converter side with an anode terminal are provided. 17 is connected to the load 15 by connecting the cathode terminals to the load 15. In this circuit, by arbitrarily setting the output voltages of the DC / DC converters 13 and 14, it is possible to arbitrarily determine the priority order of the power supplies to be supplied to the load and switch the input power supply. The number of input power supplies is not limited.

(第1の実施形態)
太陽光発電と蓄電池とACアダプタの3電源を入力電源とした第1の実施形態について説明する。
(First embodiment)
A first embodiment will be described in which three power sources of solar power generation, a storage battery, and an AC adapter are input power sources.

図2は、第1の実施形態の電源切替回路の回路構成を示す図である。電源切替回路は、太陽光発電21と、蓄電池22と、ACアダプタ23を電源とし、太陽光発電21に接続したDC/DCコンバータ24と、蓄電池22に接続したDC/DCコンバータ25と、ACアダプタ23に接続したDC/DCコンバータ26と、アノード端子をDC/DCコンバータ24に接続したダイオード27と、アノード端子をDC/DCコンバータ25に接続したダイオード28と、アノード端子をDC/DCコンバータ26に接続したダイオード29と、ダイオード27、28、29のカソード端子同士を負荷20に接続する構成を備えている。   FIG. 2 is a diagram illustrating a circuit configuration of the power supply switching circuit according to the first embodiment. The power supply switching circuit uses a photovoltaic power generation 21, a storage battery 22, and an AC adapter 23 as a power source, a DC / DC converter 24 connected to the photovoltaic power generation 21, a DC / DC converter 25 connected to the storage battery 22, and an AC adapter. 23, a DC / DC converter 26 connected to 23, a diode 27 whose anode terminal is connected to the DC / DC converter 24, a diode 28 whose anode terminal is connected to the DC / DC converter 25, and an anode terminal to the DC / DC converter 26. The connected diode 29 and the cathode terminals of the diodes 27, 28, 29 are connected to the load 20.

図2に示す電源切替回路において、太陽光発電21と蓄電池22とACアダプタ23の電源電圧が、それぞれ30V、20V、10V、DC/DCコンバータ24、25、26の出力電圧が、それぞれ1V、2V、3Vと設定したと仮定する。   In the power supply switching circuit shown in FIG. 2, the power supply voltages of the photovoltaic power generation 21, the storage battery 22, and the AC adapter 23 are 30V, 20V, and 10V, respectively, and the output voltages of the DC / DC converters 24, 25, and 26 are 1V and 2V, respectively. Assume that 3V is set.

上記条件では、入力電源の出力電圧の大きさは、太陽光発電21の電圧>蓄電池22の電圧>ACアダプタ23の電圧となっている。しかし、DC/DCコンバータの出力電圧の大きさは、DC/DCコンバータ26の電圧>DC/DCコンバータ25の電圧>DC/DCコンバータ24の電圧であるため、入力電源の電圧の大小に依存せず、常に入力電源の優先順位は、ACアダプタ23、蓄電池22、太陽光発電21の順になる。すなわち、全ての電源から出力されている場合は、その電源の出力電圧の大小にかかわらずACアダプタ23の出力が最も優先的に負荷20に接続される。ACアダプタ23が切断された場合には、蓄電池22の出力が負荷20に接続される。さらにACアダプタ23に加えて蓄電池22も切断された場合は、太陽光発電21の出力が負荷20に接続される。このように、DC/DCコンバータの出力電圧を調整することによって、入力電圧の大小に依存せず、負荷に接続される入力電源の優先順位を設定することができる。   Under the above conditions, the magnitude of the output voltage of the input power supply is the voltage of the photovoltaic power generation 21> the voltage of the storage battery 22> the voltage of the AC adapter 23. However, since the magnitude of the output voltage of the DC / DC converter is the voltage of the DC / DC converter 26> the voltage of the DC / DC converter 25> the voltage of the DC / DC converter 24, it depends on the magnitude of the voltage of the input power supply. Instead, the priority order of the input power supply is always the order of the AC adapter 23, the storage battery 22, and the solar power generation 21. That is, when output is from all power supplies, the output of the AC adapter 23 is connected to the load 20 with the highest priority regardless of the output voltage of the power supply. When the AC adapter 23 is disconnected, the output of the storage battery 22 is connected to the load 20. Further, when the storage battery 22 is also disconnected in addition to the AC adapter 23, the output of the photovoltaic power generation 21 is connected to the load 20. Thus, by adjusting the output voltage of the DC / DC converter, it is possible to set the priority of the input power source connected to the load without depending on the magnitude of the input voltage.

また、複数の電源導入時の運転モードを任意に設定できるという利点もある。すなわち、入力電源の出力電圧の大きさに依存せずDC/DCコンバータの設定次第で、ACアダプタ>蓄電池>太陽光発電の優先順位に設定した商用電源優先モードや、太陽光発電>ACアダプタ>蓄電池の優先順位に設定した太陽光優先モード(省エネ)などに設定することができ、複数の電源が分散配置された電力系において、より自由に電源を選択することができる。   There is also an advantage that the operation mode at the time of introducing a plurality of power supplies can be arbitrarily set. That is, depending on the setting of the DC / DC converter without depending on the magnitude of the output voltage of the input power supply, depending on the setting of the AC adapter> storage battery> solar power generation priority mode or photovoltaic power generation> AC adapter> It can be set to the solar power priority mode (energy saving) or the like set to the priority order of the storage battery, and the power source can be selected more freely in the power system in which a plurality of power sources are distributed.

(第2の実施形態)
次に、第2の実施形態について説明する。第2の実施形態は、太陽光発電と蓄電池とACアダプタの3電源を本システムの入力電源とし、外部条件によって電源の供給元が変わることで、任意に設定した優先順位の通りにシステムが運転する構成である。
(Second Embodiment)
Next, a second embodiment will be described. In the second embodiment, three power sources of photovoltaic power generation, a storage battery, and an AC adapter are used as input power sources of this system, and the power source is changed according to external conditions. It is the structure to do.

図3は、本発明の第2の実施形態に係る実施の形態を示す図である。電源切替回路は、太陽光発電31と、蓄電池32と、ACアダプタ33を電源とし、アノード端子を太陽光発電31に接続したダイオード34と、アノード端子をACアダプタ33に接続したダイオード35と、ダイオード34とダイオード35のカソード端子を接続したDC/DCコンバータ36と、蓄電池32に接続したDC/DCコンバータ37と、アノード端子をDC/DCコンバータ36の出力に接続したダイオード38と、アノード端子をDC/DCコンバータ37の出力に接続したダイオード39と、ダイオード38と39のカソード端子を負荷30に接続して構成される。図3に示す電源切替回路を用いて、DC/DCコンバータの出力電圧を任意に設定することで以下の条件の動作を行うことができる。   FIG. 3 is a diagram showing an embodiment according to the second embodiment of the present invention. The power supply switching circuit includes a photovoltaic power generation 31, a storage battery 32, and an AC adapter 33 as a power source, a diode 34 having an anode terminal connected to the photovoltaic power generation 31, a diode 35 having an anode terminal connected to the AC adapter 33, and a diode. 34 and a cathode terminal of a diode 35, a DC / DC converter 36 connected to the storage battery 32, a diode 38 having an anode terminal connected to the output of the DC / DC converter 36, and a DC terminal DC connected to the output of the DC / DC converter 36. A diode 39 connected to the output of the DC converter 37, and cathode terminals of the diodes 38 and 39 are connected to a load 30. The operation under the following conditions can be performed by arbitrarily setting the output voltage of the DC / DC converter using the power supply switching circuit shown in FIG.

(1)DC/DCコンバータ36の出力電圧がDC/DCコンバータ37の出力電圧よりも高い場合
(1−1)太陽光発電31の電源電圧がACアダプタ33の電源電圧より高いとき:
太陽光発電31の電源電圧がACアダプタ33の電源電圧より高いので、ダイオード34の出力がダイオード35の出力よりも優先される。また、DC/DCコンバータ36の出力電圧がDC/DCコンバータ37の出力電圧よりも高いのでダイオード38の出力がダイオード39の出力より優先されるため、太陽光発電31が負荷30の消費電力を賄うこととなる。
(1) When the output voltage of the DC / DC converter 36 is higher than the output voltage of the DC / DC converter 37 (1-1) When the power supply voltage of the photovoltaic power generation 31 is higher than the power supply voltage of the AC adapter 33:
Since the power supply voltage of the photovoltaic power generation 31 is higher than the power supply voltage of the AC adapter 33, the output of the diode 34 has priority over the output of the diode 35. Further, since the output voltage of the DC / DC converter 36 is higher than the output voltage of the DC / DC converter 37, the output of the diode 38 is prioritized over the output of the diode 39, so that the photovoltaic power generation 31 covers the power consumption of the load 30. It will be.

(1−2)太陽光発電31の電源電圧とACアダプタ33の電源電圧とが等しいとき:
太陽光発電31の電源電圧とACアダプタ33の電源電圧が等しいので、ダイオード34の出力とダイオード35の出力との両方が出力される。また、DC/DCコンバータ36の出力電圧がDC/DCコンバータ37の出力電圧よりも高いのでダイオード38の出力がダイオード39の出力より優先されるため、太陽光発電31およびACアダプタ33が負荷30の消費電力を賄うこととなる。
(1-2) When the power supply voltage of the photovoltaic power generation 31 and the power supply voltage of the AC adapter 33 are equal:
Since the power supply voltage of the photovoltaic power generation 31 and the power supply voltage of the AC adapter 33 are equal, both the output of the diode 34 and the output of the diode 35 are output. Further, since the output voltage of the DC / DC converter 36 is higher than the output voltage of the DC / DC converter 37, the output of the diode 38 is prioritized over the output of the diode 39, so that the photovoltaic power generation 31 and the AC adapter 33 are connected to the load 30. It will cover power consumption.

(1−3)ACアダプタ33の電源電圧が太陽光発電31の電源電圧より高いとき:
ACアダプタ33の電源電圧が太陽光発電31の電源電圧より高いので、ダイオード35の出力がダイオード34の出力よりも優先される。また、DC/DCコンバータ36の出力電圧がDC/DCコンバータ37の出力電圧よりも高いのでダイオード38の出力がダイオード39の出力より優先されるため、ACアダプタ33が負荷30の消費電力を賄うこととなる。
(1-3) When the power supply voltage of the AC adapter 33 is higher than the power supply voltage of the photovoltaic power generation 31:
Since the power supply voltage of the AC adapter 33 is higher than the power supply voltage of the photovoltaic power generation 31, the output of the diode 35 has priority over the output of the diode 34. In addition, since the output voltage of the DC / DC converter 36 is higher than the output voltage of the DC / DC converter 37, the output of the diode 38 is given priority over the output of the diode 39, so that the AC adapter 33 covers the power consumption of the load 30. It becomes.

(1−4)太陽光発電31が遮断され、かつACアダプタ33からは出力されているとき:
DC/DCコンバータ36の出力電圧がDC/DCコンバータ37の出力電圧よりも高いのでダイオード38の出力がダイオード39の出力より優先されるため、ACアダプタ33が負荷30の消費電力を賄うこととなる。
(1-4) When the photovoltaic power generation 31 is shut off and output from the AC adapter 33:
Since the output voltage of the DC / DC converter 36 is higher than the output voltage of the DC / DC converter 37, the output of the diode 38 is prioritized over the output of the diode 39, so the AC adapter 33 covers the power consumption of the load 30. .

ACアダプタ33が遮断され、かつ太陽光発電31からは出力されているとき:
DC/DCコンバータ36の出力電圧がDC/DCコンバータ37の出力電圧よりも高いのでダイオード38の出力がダイオード39の出力より優先されるため、太陽光発電31が負荷30の消費電力を賄うこととなる。
When the AC adapter 33 is shut off and output from the photovoltaic power generation 31:
Since the output voltage of the DC / DC converter 36 is higher than the output voltage of the DC / DC converter 37, the output of the diode 38 is prioritized over the output of the diode 39, so that the photovoltaic power generation 31 covers the power consumption of the load 30. Become.

(2)DC/DCコンバータ37の出力電圧がDC/DCコンバータ36の出力電圧よりも高い場合 (2) When the output voltage of the DC / DC converter 37 is higher than the output voltage of the DC / DC converter 36

DC/DCコンバータ37の出力電圧がDC/DCコンバータ36の出力電圧よりも高いのでダイオード39の出力がダイオード38の出力より優先されるため、蓄電池32が負荷30の消費電力を賄うこととなる。   Since the output voltage of the DC / DC converter 37 is higher than the output voltage of the DC / DC converter 36, the output of the diode 39 has priority over the output of the diode 38, so the storage battery 32 covers the power consumption of the load 30.

したがって、第2の実施形態により、供給電源の優先順位を高い方から順にACアダプタ、太陽光発電、蓄電池となる系を実現することができ、負荷に供給する電源の優先順位を任意に設定できる。   Therefore, according to the second embodiment, it is possible to realize a system that becomes an AC adapter, solar power generation, and storage battery in order from the highest power supply priority, and arbitrarily set the power supply priority to the load. .

本発明の電源切替回路は、本実施例に限定されることなく、さらに複数の電源を追加しても同様の切替機能を実現することができる。   The power supply switching circuit of the present invention is not limited to this embodiment, and a similar switching function can be realized even if a plurality of power supplies are added.

11、12 電源
13、14、24、25、26、36、37 DC/DCコンバータ
15、20、30 負荷
16、17 整流素子
21、31 太陽光発電
22、32 蓄電池
23、33 ACアダプタ
27、28、29、34、35、38、39 ダイオード
11, 12 Power supply 13, 14, 24, 25, 26, 36, 37 DC / DC converter 15, 20, 30 Load 16, 17 Rectifier element 21, 31 Solar power generation 22, 32 Storage battery 23, 33 AC adapter 27, 28 , 29, 34, 35, 38, 39 Diode

Claims (4)

負荷に電力を供給する複数の直流電源を切り替える電源切替回路において、
前記負荷に電力を供給する電力線が電源に接続される複数の電力線に分岐される分岐のうち、負荷に直接接続されている電力線が接続されている分岐におけるすべての電源側配線の分岐近傍に、電源から負荷に電流が流れるようにダイオードを配置し、該ダイオードの電源側近傍に出力電圧の変更が可能なDC/DCコンバータを配置し、前記複数のDC/DCコンバータの出力電圧を調整することにより、前記負荷に供給する前記直流電源の優先順位を設定することを特徴とする電源切替回路。
In a power supply switching circuit that switches a plurality of DC power supplies that supply power to a load,
Of the branches branched to a plurality of power lines connected to the power supply power line for supplying power to the load, in the vicinity of all power supply side wiring branches in the branch connected to the power line directly connected to the load, Disposing a diode so that current flows from the power source to the load, disposing a DC / DC converter capable of changing the output voltage in the vicinity of the power source side of the diode, and adjusting the output voltage of the plurality of DC / DC converters To set a priority order of the DC power supplies to be supplied to the load.
前記複数のDC/DCコンバータの少なくとも一つにおいて、複数の直流電源からの電力線がダイオード分岐を介して接続されていることを特徴とする請求項1に記載の電源切替回路。   2. The power supply switching circuit according to claim 1, wherein in at least one of the plurality of DC / DC converters, power lines from a plurality of DC power supplies are connected via a diode branch. 前記複数のDC/DCコンバータのうち、優先順位の高い直流電源に接続された電力線に設けられたDC/DCコンバータの出力電圧を他のDC/DCコンバータの出力電圧よりも高くすることにより、負荷に電力を供給する直流電源を選択することを特徴とする請求項1または2に記載の電源切替回路。   Among the plurality of DC / DC converters, the output voltage of the DC / DC converter provided on the power line connected to the high-priority direct-current power supply is made higher than the output voltage of the other DC / DC converters. The power supply switching circuit according to claim 1, wherein a DC power supply for supplying power to the power supply is selected. 前記整流素子はダイオードであることを特徴とする請求項1から3のいずれか1項に記載の電源切替回路。   The power supply switching circuit according to any one of claims 1 to 3, wherein the rectifying element is a diode.
JP2013152873A 2013-07-23 2013-07-23 Power supply switching circuit Pending JP2015023766A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP2013152873A JP2015023766A (en) 2013-07-23 2013-07-23 Power supply switching circuit

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP2013152873A JP2015023766A (en) 2013-07-23 2013-07-23 Power supply switching circuit

Publications (1)

Publication Number Publication Date
JP2015023766A true JP2015023766A (en) 2015-02-02

Family

ID=52487777

Family Applications (1)

Application Number Title Priority Date Filing Date
JP2013152873A Pending JP2015023766A (en) 2013-07-23 2013-07-23 Power supply switching circuit

Country Status (1)

Country Link
JP (1) JP2015023766A (en)

Cited By (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2016181976A (en) * 2015-03-24 2016-10-13 サンケン電気株式会社 Power supply unit
JP2016208657A (en) * 2015-04-22 2016-12-08 全面性系統整合科技股▲フン▼有限公司 Power supply apparatus by a plurality of energy including solar energy
WO2018070306A1 (en) * 2016-10-12 2018-04-19 富士通株式会社 Power supply control circuit, electronic device, and power supply control method
US10050518B2 (en) 2015-09-23 2018-08-14 Samsung Electronics Co., Ltd. Power supply circuits with variable number of power inputs and cross-coupled diodes and storage devices having the same
US10181723B2 (en) 2015-09-02 2019-01-15 Samsung Electronics Co., Ltd. Circuits and methods to selectively switch power signal generator inputs to a load
JP2019505155A (en) * 2016-02-12 2019-02-21 インディアン・スペース・リサーチ・オーガニゼイションIndian Space Research Organisation Triple Input Smart Power Supply (TRIISP) for desktop PCs and other systems that use DC as the final power supply
JP2019068629A (en) * 2017-10-02 2019-04-25 セイコーエプソン株式会社 Power supply control circuit, portable information processing equipment, and power supply control method
JP2020080614A (en) * 2018-11-13 2020-05-28 富士通クライアントコンピューティング株式会社 Electric power control apparatus and program
US10871812B2 (en) 2018-05-30 2020-12-22 Fujitsu Limited Power supply circuit and electronic device

Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH06342326A (en) * 1993-06-01 1994-12-13 Pfu Ltd Power unit
JPH1063351A (en) * 1996-08-22 1998-03-06 Nec Home Electron Ltd Power unit
JP2001166854A (en) * 1999-12-10 2001-06-22 Aiwa Co Ltd Power supplying method and power supply circuit
JP2008283841A (en) * 2007-05-08 2008-11-20 Yasuo Ohashi Dc voltage power supply system for residence
JP2010110056A (en) * 2008-10-28 2010-05-13 Panasonic Electric Works Co Ltd Power distribution system
JP2011097818A (en) * 2009-10-02 2011-05-12 Panasonic Electric Works Co Ltd Power distribution system
JP2012249458A (en) * 2011-05-30 2012-12-13 Sony Corp Power supply apparatus and power supply control method

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH06342326A (en) * 1993-06-01 1994-12-13 Pfu Ltd Power unit
JPH1063351A (en) * 1996-08-22 1998-03-06 Nec Home Electron Ltd Power unit
JP2001166854A (en) * 1999-12-10 2001-06-22 Aiwa Co Ltd Power supplying method and power supply circuit
JP2008283841A (en) * 2007-05-08 2008-11-20 Yasuo Ohashi Dc voltage power supply system for residence
JP2010110056A (en) * 2008-10-28 2010-05-13 Panasonic Electric Works Co Ltd Power distribution system
JP2011097818A (en) * 2009-10-02 2011-05-12 Panasonic Electric Works Co Ltd Power distribution system
JP2012249458A (en) * 2011-05-30 2012-12-13 Sony Corp Power supply apparatus and power supply control method

Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2016181976A (en) * 2015-03-24 2016-10-13 サンケン電気株式会社 Power supply unit
JP2016208657A (en) * 2015-04-22 2016-12-08 全面性系統整合科技股▲フン▼有限公司 Power supply apparatus by a plurality of energy including solar energy
US10181723B2 (en) 2015-09-02 2019-01-15 Samsung Electronics Co., Ltd. Circuits and methods to selectively switch power signal generator inputs to a load
US10050518B2 (en) 2015-09-23 2018-08-14 Samsung Electronics Co., Ltd. Power supply circuits with variable number of power inputs and cross-coupled diodes and storage devices having the same
JP2019505155A (en) * 2016-02-12 2019-02-21 インディアン・スペース・リサーチ・オーガニゼイションIndian Space Research Organisation Triple Input Smart Power Supply (TRIISP) for desktop PCs and other systems that use DC as the final power supply
US10734813B2 (en) 2016-02-12 2020-08-04 Indian Space Research Organisation Triple input smart power supply (TRISP) for desktop PC and other systems using DC as final power source
WO2018070306A1 (en) * 2016-10-12 2018-04-19 富士通株式会社 Power supply control circuit, electronic device, and power supply control method
JP2019068629A (en) * 2017-10-02 2019-04-25 セイコーエプソン株式会社 Power supply control circuit, portable information processing equipment, and power supply control method
US10871812B2 (en) 2018-05-30 2020-12-22 Fujitsu Limited Power supply circuit and electronic device
JP2020080614A (en) * 2018-11-13 2020-05-28 富士通クライアントコンピューティング株式会社 Electric power control apparatus and program

Similar Documents

Publication Publication Date Title
JP2015023766A (en) Power supply switching circuit
US9831778B2 (en) Power-converting device and power conditioner using the same
AU2019215491B2 (en) Photovoltaic power generation system and photovoltaic power transmission method
US9806618B2 (en) Power converting device and power conditioner using the same
US20160368392A1 (en) Energy storage device having a dc voltage supply circuit and method for providing a dc voltage from an energy storage device
US9859801B2 (en) Fuel cell system in a bipolar high-voltage network and method for operating a bipolar high-voltage network
US10186861B2 (en) Energy storage device comprising a DC voltage supply circuit and method for providing a DC voltage from an energy storage device
US9306407B2 (en) Battery system and method
US20110018354A1 (en) Power System And Control Method Thereof
JP2015106882A (en) Backflow prevention circuit and connection box for photovoltaic power generation
US11146072B2 (en) Inverter with at least two DC/DC converters and use of such an inverter in a photovoltaic installation
KR101697855B1 (en) H-bridge multi-level inverter
EP3104485B1 (en) Power providing apparatus for use with multiple electricity sources
US11804771B2 (en) Customizable power converter and customizable power conversion system
JP2013258863A (en) Multilevel power converter
CN212435577U (en) Power converter apparatus with fault current turn-off capability
KR101792540B1 (en) Power control device for sub-module of mmc converter
JP6315821B2 (en) Power supply device and power storage system
US9531192B2 (en) Power providing apparatus for use with multiple electricity sources
JP3208537U (en) Solar power system
RU2523066C1 (en) Plasmatron power supply source
CN116683607A (en) Mixed topology and power supply
JP2016067070A (en) DC converter
US20110273918A1 (en) Power device
CN116802980A (en) Partial power DC-DC converter with controllable topology

Legal Events

Date Code Title Description
A977 Report on retrieval

Free format text: JAPANESE INTERMEDIATE CODE: A971007

Effective date: 20150528

A131 Notification of reasons for refusal

Free format text: JAPANESE INTERMEDIATE CODE: A131

Effective date: 20150602

A521 Written amendment

Free format text: JAPANESE INTERMEDIATE CODE: A523

Effective date: 20150729

A02 Decision of refusal

Free format text: JAPANESE INTERMEDIATE CODE: A02

Effective date: 20151117

A521 Written amendment

Free format text: JAPANESE INTERMEDIATE CODE: A523

Effective date: 20160209

A911 Transfer of reconsideration by examiner before appeal (zenchi)

Free format text: JAPANESE INTERMEDIATE CODE: A911

Effective date: 20160218

A912 Removal of reconsideration by examiner before appeal (zenchi)

Free format text: JAPANESE INTERMEDIATE CODE: A912

Effective date: 20160304