Power converter
The power conversion device allows for portable power conversion by enabling the second device to operate independently, addressing the need for additional equipment during emergencies, thus reducing space and cost.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- KAWAMURA ELECTRIC INC
- Filing Date
- 2022-04-04
- Publication Date
- 2026-04-10
AI Technical Summary
Conventional charging/discharging devices require a separate device for portable power conversion during emergencies, necessitating additional space and costs for storage.
A power conversion device comprising a first and second device that can be electrically disconnected, allowing the second device to perform power conversion independently, converting DC to AC and vice versa, without requiring a separate device.
Enables portable power conversion during emergencies without needing additional equipment, reducing space and cost requirements.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a power conversion device.
Background Art
[0002] Conventionally, a technique related to a charging / discharging device connected between a power system and a storage battery has been known. Such a charging / discharging device converts AC power supplied from the power system into DC power, and supplies the converted power to a storage battery mounted on an electric vehicle. Further, the charging / discharging device converts DC power discharged from the storage battery into AC power, and supplies the converted power to an in-house load (see, for example, Patent Document 1).
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] According to the charging / discharging device according to the above-described conventional technology, the charging / discharging device includes a first housing that houses a power conversion circuit, and a second housing that houses a transformer that transforms the voltage of AC power, and the first housing and the second housing are configured to be detachable. Since the second housing separated from the first housing cannot supply power, power conversion cannot be performed except at a location where the power conversion circuit is grounded. That is, according to the conventional technology, in the case where it is desired to perform power conversion while being portable in an emergency, it is necessary to prepare a device different from the charging / discharging device that is normally installed and used. Preparing a device different from the charging / discharging device that is normally installed and used requires a space for storing a device that is not normally used, and also requires costs.
[0005] Therefore, the present invention has been made in view of these circumstances, and aims to provide a technology that enables portable power conversion in emergencies without using a different device from the power conversion device that is normally installed and used. [Means for solving the problem]
[0006] (1) One aspect of the present invention is a power conversion device that converts power supplied from a power grid to a DC power source and power supplied from a DC power source to a power grid, comprising: a first device having a first DC power connection section connected to a DC power source and a power grid connection section connected to a power grid; a second device including a second DC power connection section connected to a DC power source, an electrical equipment connection section connected to an electrical equipment, and a DC-AC converter that converts AC power supplied from a power grid to DC power and DC power supplied from a DC power source to AC power, wherein the second device, when electrically disconnected from the first device, has the second DC power connection section connected to a DC power source and the electrical equipment connection section connected to an electrical equipment, converts the DC power supplied from the DC power source to AC power, and supplies the converted AC power to the electrical equipment. Furthermore, when the first device is electrically disconnected from the second device, it does not convert AC power supplied from the power grid into DC power, nor does it convert DC power supplied from a DC power source into AC power. It is a power conversion device.
[0008] ( 2 ) In one aspect of the present invention, in the power conversion device described in (1) above, the first device, while electrically isolated from the second device, converts AC power supplied from the power grid into DC power, supplies the converted DC power to a DC power source, converts the DC power supplied from the DC power source into AC power, and supplies the converted AC power to the power grid.
[0009] ( 3 )One aspect of the present invention is the above ( 2The power conversion device described in the previous document further comprises a control unit that controls the phase of AC power obtained by converting DC power supplied from a DC power source into AC power by the first device, and the phase of AC power obtained by converting DC power supplied from a DC power source into AC power by the second device, wherein the control unit synchronizes the phase of AC power obtained by converting DC power supplied from a DC power source into AC power by the first device and the phase of AC power obtained by converting DC power supplied from a DC power source into AC power by the second device when the first device and the second device are electrically connected.
[0010] ( 4 ) In one aspect of the present invention, the power conversion device described in (1) above, the first device further comprises a connection part different from the power system connection part, which outputs AC power converted from DC power supplied from a DC power source.
[0011] ( 5 )One aspect of the present invention is the above ( 4 The power conversion device described in the above further comprises a grid connection determination unit that determines whether or not it is connected to a power grid, and the power grid connection unit supplies AC power converted from DC power supplied from a DC power source to electrical equipment when the grid connection determination unit determines that it is not connected to a power grid, and the independent output connection unit supplies AC power converted from DC power supplied from a DC power source to electrical equipment when the grid connection determination unit determines that it is connected to a power grid.
[0012] ( 6 )One aspect of the present invention is (1) to ( 5 In the power conversion device described in any of the above, the DC-AC converter included in the second device comprises a DC-DC conversion unit on one side which is connected to a DC power supply, and a DC-AC conversion unit connected between the other side of the DC-DC conversion unit and an electrical device. [Effects of the Invention]
[0014] According to the present invention, power conversion can be performed in an emergency by being portable without using a device different from the power conversion device that is usually installed and used.
Brief Description of the Drawings
[0015] [Figure 1] It is a diagram for explaining an overview of a power conversion device according to the first embodiment. [Figure 2] It is a diagram for explaining an example when the power conversion device according to the first embodiment is used as an installed type. [Figure 3] It is a diagram for explaining an example when the power conversion device according to the first embodiment is used as a portable type. [Figure 4] It is a diagram showing an example of a functional configuration diagram when the power conversion device according to the first embodiment is used as an installed type. [Figure 5] It is a diagram showing an example of a functional configuration diagram when the power conversion device according to the first embodiment is used as a portable type. [Figure 6] It is a diagram for explaining an overview of a power conversion device according to the second embodiment. [Figure 7] It is a diagram showing an example of a functional configuration diagram when, in the power conversion device according to the second embodiment, the first device and the second device are used in a connected state. [Figure 8] It is a diagram showing an example of a functional configuration diagram when, in the power conversion device according to the second embodiment, the first device and the second device are used in a separated state. [Figure 9] It is a diagram for explaining an overview of a power conversion device according to the third embodiment. [Figure 10] It is a diagram showing an example of a functional configuration diagram of the power conversion device according to the third embodiment. [Figure 11] It is a diagram for explaining an overview of a power conversion device according to the fourth embodiment. [Figure 12] It is a diagram showing an example of a functional configuration diagram of the power conversion device according to the fourth embodiment. [Figure 13]This is a diagram for explaining the outline of the power conversion device according to the fifth embodiment. [Figure 14] This is a diagram showing an example of the functional configuration diagram of the power conversion device according to the fifth embodiment. [Figure 15] This is a diagram for explaining a series of operations of the power conversion device according to the embodiment.
Mode for Carrying Out the Invention
[0016] A preferred embodiment of the power conversion device 10 according to an aspect of the present invention will be described in detail below with reference to the accompanying drawings. Note that the aspects of the present invention are not limited to these embodiments, and also include those with various modifications or improvements added. That is, the components described below include those that can be easily assumed by those skilled in the art and substantially identical ones, and the components described below can be combined as appropriate. Also, various omissions, substitutions, or changes of the components can be made without departing from the gist of the present invention.
[0017] First, matters that are the premise of the present invention will be described. The power conversion device 10 is owned by a consumer and performs AC / DC conversion, DC / AC conversion, power flow control, etc. of electric power. The power conversion device 10 is usually used in a state of being installed at a predetermined position. Here, in the event of an abnormality or emergency such as a disaster, there may be a case where power conversion or the like is desired to be performed at a location different from the predetermined location where the power conversion device 10 is installed. In such a case, a part of the power conversion device 10 is removed, and the removed part is transported to a predetermined location, so that the transported part of the device performs power conversion or the like at the predetermined location. That is, the power conversion device 10 according to the present embodiment is a device that is fixed and used at a specific location as an installed type device during normal times, and a part of it can be transported and used at an arbitrary location as a portable type device in the event of an abnormality or emergency such as a disaster.
[0018] [First Embodiment] The power converter 10 according to the first embodiment will be described with reference to Figures 1 to 5. Figure 1 is a diagram illustrating the overview of the power converter 10 according to the first embodiment. The overview of the power converter 10 will be described with reference to this figure. The power converter 10 comprises a first device 11 and a second device 12. The first device 11 and the second device 12 each have different housings and are separable from each other as separate and independent devices. When the first device 11 and the second device 12 are separated from each other, the first device 11 is used as a stationary device fixed in a specific location, and the second device 12 is used as a portable device that can be moved to any location. Figure 1(A) is an example of the case in which the first device 11 and the second device 12 are used integrally as a stationary device, and Figure 1(B) is an example of the case in which the second device 12 is used independently as a portable device.
[0019] First, with reference to Figure 1(A), an example of a case in which the first device 11 and the second device 12 are used integrally as a stationary device will be described. The power converter 10 is connected between the DC power supply 20 and the power grid 30. The DC power supply 20 supplies DC power. The DC power supply 20 may be, for example, a storage battery or a solar cell. Below, an example will be described in which the DC power supply 20 is an on-board battery installed in a vehicle such as an electric vehicle (EV). The power grid 30 is a commercial power grid that supplies AC power to consumers.
[0020] The power converter 10 controls the exchange of power between the DC power supply 20 and the power system 30 by being connected between the DC power supply 20 and the power system 30. Specifically, the power converter 10 converts the power supplied from the power system 30 to the DC power supply 20. The power converter 10 converts the AC power P1 supplied from the power system 30 to DC power P2 and supplies the converted DC power P2 to the DC power supply 20. The power converter 10 also converts the power supplied from the DC power supply 20 to the power system 30. The power converter 10 converts the DC power P3 supplied from the DC power supply 20 to AC power P4 and supplies the converted AC power P4 to the power system 30 (i.e., reverse power flow). Converting the DC power P3 supplied from the DC power supply 20 to AC power P4 and supplying the converted AC power P4 to the power system 30 is also referred to as V2H (Vehicle to Home).
[0021] Next, with reference to Figure 1(B), an example of the case in which the second device 12 is used independently as a portable device will be described. The second device 12 is connected between the DC power supply 20 and the electrical equipment 40. The electrical equipment 40 operates by being supplied with AC power. In other words, the electrical equipment 40 is a load that consumes AC power. Specific examples of the electrical equipment 40 include household appliances such as electric fans and rice cookers. Alternatively, an AC-DC conversion adapter may be used as the electrical equipment 40, and an electrical device that can operate by being supplied with DC power (for example, a smartphone or tablet) may be connected. By being connected between the DC power supply 20 and the electrical equipment 40, the second device 12 converts the power supplied from the DC power supply 20 to the electrical equipment 40. The second device 12 converts the DC power P5 supplied from the DC power supply 20 into AC power P6 and supplies the converted AC power P6 to the electrical equipment 40.
[0022] In other words, the power converter 10 can supply power to electrical equipment 40 located at a location distant from the specific location where the power converter 10 is installed, by making a second device 12, which is a part of the power converter 10, portable. As mentioned above, the DC power supply 20 is an on-board battery and is therefore portable to the vicinity of the electrical equipment 40. As shown in Figure 1(B), the second device 12 may be configured to be easily portable by being equipped with wheels.
[0023] Figure 2 is a diagram illustrating an example of how the power converter according to the first embodiment is used as a stationary unit. Referring to this figure, the details of how the first unit 11 and the second unit 12 are used as a single stationary unit will be described. In the example shown in the figure, the power converter 10 is installed near the house 32. By being installed near the house 32, the power converter 10 controls the exchange of power between the power system 30 that supplies power to the house 32 and the DC power supply 20. Specifically, the power converter 10 supplies power from the power system 30 to the DC power supply 20 installed in the vehicle 21 via the house 32. The power converter 10 also supplies power from the DC power supply 20 installed in the vehicle to the power system 30 via the house 32. The house 32 is equipped with a distribution board 31. The power system 30 is connected to the power converter 10 via the distribution board 31.
[0024] In the example shown in Figure 2, the second device 12 is located inside the first device 11. The first device 11 includes a first DC power supply connection section 111 and a power system connection section 116. The first DC power supply connection section 111 is connected to a DC power supply 20. The power converter 10 supplies DC power P2 to the DC power supply 20 via the first DC power supply connection section 111 and receives DC power P3 from the DC power supply 20. The power system connection section 116 is connected to a power system 30. The power converter 10 receives AC power P1 from the power system 30 via the power system connection section 116 and supplies AC power P4 to the power system 30. The distribution board 31 supplies AC power P7 supplied from the power system 30 as AC power P1 to the power converter 10 and supplies AC power P4 supplied from the power converter 10 as AC power P8 to the power system 30.
[0025] Figure 3 is a diagram illustrating an example of when the power converter according to the first embodiment is used as a portable device. Referring to this figure, the details of when the second device 12 is used as a standalone portable device will be explained. The second device 12 is portable in a state where it is electrically isolated from the first device 11. An electrically isolated state means a state in which no power is exchanged between the devices. In other words, an electrically isolated state broadly includes states in which the devices are connected to each other in a way that allows them to communicate with each other via wireless communication, etc.
[0026] In the example shown in Figure 3, the second device 12 is portable and used between the vehicle 21 and the electrical equipment 40. The second device 12 controls the exchange of power between the DC power supply 20 provided in the vehicle 21 and the electrical equipment 40. Specifically, the second device 12 converts the DC power P5 supplied from the DC power supply 20 into AC power P6 and supplies the converted AC power P6 to the electrical equipment 40. In other words, the second device 12C realizes V2L (Vehicle to Load) between the vehicle 21 and the electrical equipment 40.
[0027] The second device 12 includes a second DC power supply connection section 121 and an electrical equipment connection section 126. The second DC power supply connection section 121 is connected to a DC power supply 20. When electrically disconnected from the first device 11, the second device 12 obtains DC power P5 from the DC power supply 20 via the second DC power supply connection section 121. When electrically disconnected from the first device 11, the electrical equipment connection section 126 is connected to the electrical equipment 40. The second device 12 supplies AC power P6 to the electrical equipment 40 via the electrical equipment connection section 126.
[0028] Figure 4 shows an example of a functional configuration diagram when the power converter according to the first embodiment is used as a stationary device. Referring to this figure, an example of the functional configuration when the power converter 10 is used as a stationary device will be described. When the power converter 10 is used as a stationary device, the DC power supply 20 is connected directly to the first device 11, and the power system 30 is connected to the first device 11 via the distribution board 31. The first device 11 includes a first DC power supply connection unit 111, a control unit 112, an operation acquisition unit 113, a display control unit 114, a grid connection protection circuit 115, and a power system connection unit 116.
[0029] The first DC power supply connection unit 111 is connected to the DC power supply 20. The first DC power supply connection unit 111 supplies DC power to the DC power supply 20 or obtains DC power from the DC power supply 20. The first DC power supply connection unit 111 supplies DC power supplied from the second device 12 to the DC power supply 20. The first DC power supply connection unit 111 also supplies DC power obtained from the DC power supply 20 to the second device 12.
[0030] The control unit 112 controls power conversion based on the state of power supplied to the first DC power supply connection unit 111, the state of power supplied to the power system connection unit 116, and user operations. The control unit 112 acquires user operations from the operation acquisition unit 113 and causes the display control unit 114 to display the power conversion status, the settings status of the device, etc. The operation acquisition unit 113 acquires operations from the user. The operation acquisition unit 113 acquires user operations from a touch panel, voice input device, or wireless communication unit (not shown). The operation acquisition unit 113 provides the acquired operations to the control unit 112. The display control unit 114 is controlled by the control unit 112 and displays information to the user. The display control unit 114 displays information to the user by outputting information to a liquid crystal display (not shown), an audio output device, or a wireless communication unit, etc.
[0031] The grid connection protection circuit 115 is equipped with multiple protective relays and provides grid protection in the event of a power outage or other abnormal or emergency. The grid connection protection circuit 115 monitors the grid voltage and detects abnormal increases or decreases in the grid voltage, and disconnects the circuit after a set time if an abnormality is detected. The power system connection unit 116 is connected to the power system 30 via the distribution board 31. The power system connection unit 116 acquires AC power from the power system 30 via the distribution board 31 and supplies AC power to the power system 30 via the distribution board 31. The power system connection unit 116 supplies the AC power supplied from the power system 30 via the distribution board 31 to the second device 12 via the grid connection protection circuit 115. In addition, the power system connection unit 116 supplies the AC power supplied from the second device 12 via the grid connection protection circuit 115 to the power system 30 via the distribution board 31.
[0032] The second device 12 comprises a second DC power supply connection unit 121, a control unit 122, a DC-AC converter 123, an operation acquisition unit 124, a display control unit 125, and an electrical equipment connection unit 126. The second device 12 acquires AC power from the first device 11, converts the acquired AC power to DC power, and supplies the converted DC power to the first device 11. The second device 12 also acquires DC power from the first device 11, converts the acquired DC power to AC power, and supplies the converted AC power to the second device 12.
[0033] The second DC power supply connection unit 121, the control unit 122, the operation acquisition unit 124, the display control unit 125, and the electrical equipment connection unit 126 are used when the second device 12 is disconnected from the first device 11. When the power converter 10 is used as a stationary unit, the description of the second DC power supply connection unit 121 is omitted. The DC-AC converter 123 is an isolated, bidirectional DC-AC converter. The DC-AC converter 123 acquires DC power from the first device 11, converts the acquired DC power into AC power, and outputs the converted AC power to the first device 11. The DC-AC converter 123 also acquires AC power from the first device 11, converts the acquired AC power into DC power, and outputs the converted DC power to the first device 11. In other words, the DC-AC converter 123 converts AC power supplied from the power system 30 into DC power, and converts DC power supplied from the DC power supply 20 into AC power.
[0034] In the example shown in Figure 4, the second device 12 has a DC-AC conversion function, while the first device 11 does not. Therefore, when the second device 12 is disconnected from the power converter 10, the power converter 10 does not have a power conversion function. In other words, when the first device 11 is electrically disconnected from the second device 12, it does not convert AC power supplied from the power system 30 to DC power, nor does it convert DC power supplied from the DC power supply 20 to AC power.
[0035] Figure 5 shows an example of a functional configuration diagram when the power converter according to the first embodiment is used as a portable device. Referring to this figure, an example of the functional configuration when the second device 12, which is part of the power converter 10, is used as a portable device will be described. When the second device 12, which is part of the power converter 10, is used as a portable device, the DC power supply 20 and the electrical equipment 40 are directly connected to the second device 12. The functional configuration of the second device 12 has been explained with reference to Figure 4, so similar components may be denoted by the same reference numerals and their explanation may be omitted.
[0036] The second DC power supply connection unit 121 is connected to the DC power supply 20. The second DC power supply connection unit 121 obtains DC power from the DC power supply 20. The second DC power supply connection unit 121 supplies the DC power obtained from the DC power supply 20 to the DC-AC converter 123. The control unit 122 controls power conversion based on the state of power supplied to the second DC power supply connection unit 121 and user operations. The control unit 122 acquires user operations from the operation acquisition unit 124 and causes the display control unit 125 to display the power conversion status, the settings status of the device, etc.
[0037] The operation acquisition unit 124 acquires operations from the user. The operation acquisition unit 124 acquires user operations from a touch panel, voice input device, or wireless communication unit (not shown). The operation acquisition unit 124 provides the acquired operations to the control unit 122. The display control unit 125 is controlled by the control unit 122 and displays information to the user. The display control unit 125 displays information to the user by outputting information to a liquid crystal display (not shown), an audio output device, or a wireless communication unit, etc.
[0038] The electrical equipment connection unit 126 is connected to the electrical equipment 40. The electrical equipment connection unit 126 obtains AC power from the DC-AC converter 123. The electrical equipment connection unit 126 supplies the AC power obtained from the DC-AC converter 123 to the electrical equipment 40.
[0039] In other words, when the second device 12 is electrically disconnected from the first device 11, the second DC power supply connection section 121 is connected to the DC power supply 20, and the electrical equipment connection section 126 is connected to the electrical equipment 40. The second device 12 is equipped with a DC-AC converter 123, which converts the DC power supplied from the DC power supply 20 to AC power, and supplies the converted AC power to the electrical equipment 40.
[0040] [Summary of the first embodiment] According to the embodiment described above, the power converter 10 converts power supplied from the power system 30 to the DC power supply 20 and converts power supplied from the DC power supply 20 to the power system 30. The power converter 10 comprises a first device 11 and a second device 12, and can be used in either a stationary or portable form. The first device 11 is connected to the DC power supply 20 by comprising a first DC power supply connection part 111 and is connected to the power system 30 by comprising a power system connection part 116. The second device 12 is connected to the DC power supply 20 by comprising a second DC power supply connection part 121 and is connected to electrical equipment 40 by comprising an electrical equipment connection part 126. The second device 12 also comprises a DC-AC converter 123, which converts AC power supplied from the power system 30 to DC power and converts DC power supplied from the DC power supply 20 to AC power. With the second device electrically disconnected from the first device 11, the second DC power supply connection section 121 is connected to the DC power supply 20, and the electrical equipment connection section 126 is connected to the electrical equipment 40. Furthermore, since the second device 12 is equipped with a DC-AC converter 123, it converts the DC power supplied from the DC power supply 20 to AC and supplies the converted AC power to the electrical equipment 40. Therefore, according to this embodiment, the first device 11 and the second device 12 are configured to be detachable, and the second device 12 can perform power conversion and supply even when disconnected from the first device 11. Therefore, according to this embodiment, even in cases where it is necessary to perform power conversion in an emergency, a part of the power conversion device 10 that is normally installed and used can be moved and used. Therefore, according to this embodiment, it is not necessary to prepare a different device from the power conversion device 10 that is normally installed and used, and there is no need for space and cost to store a device that is not normally used.
[0041] Furthermore, according to the embodiment described above, when the first device 11 is electrically disconnected from the second device 12, it does not convert AC power supplied from the power system 30 to DC power, nor does it convert DC power supplied from the DC power source to AC power. In other words, according to this embodiment, when the second device 12 is disconnected from the power converter 10, the power converter 10 does not have a power conversion function. Therefore, the power converter 10 can be made simpler by reducing its functions. Also, since the power converter 10 has a single DC-AC converter, control can be made easier.
[0042] [Second Embodiment] The power converter 10A according to the second embodiment will be described with reference to Figures 6 to 8. Figure 6 is a diagram illustrating the overview of the power converter according to the second embodiment. The overview of the power converter 10A will be described with reference to this figure. In the description of the power converter 10A, components similar to those of the power converter 10 may be denoted by the same reference numerals, and their explanation may be omitted. The power converter 10A comprises a first device 11A and a second device 12A. The power converter 10A differs from the power converter 10 in that it has a power conversion function even when the second device 12A is electrically disconnected.
[0043] As shown in Figure 6, the power converter 10A is used when the first device 11A and the second device 12A are electrically isolated from each other. The first device 11A, while electrically isolated from the second device 12A, acquires AC power P1 from the power system 30 via the distribution board 31, converts the acquired AC power P1 to DC power P2, and supplies the converted DC power P2 to the DC power supply 20. Also, the first device 11A, while electrically isolated from the second device 12A, acquires DC power P3 from the DC power supply 20, converts the acquired DC power P3 to AC power P4, and supplies the converted AC power P4 to the power system 30 via the distribution board 31. Furthermore, since the second device 12A controls the exchange of power between the DC power supply 20 and the electrical equipment 40, similar to the second device 12 described above, its explanation will be omitted.
[0044] Figure 7 shows an example of a functional configuration diagram when the first and second devices are connected in the power converter according to the second embodiment. Referring to this figure, an example of the functional configuration of the power converter 10A when the first device 11A and the second device 12A are connected will be described. The first device 11A differs from the first device 11 in that it further includes a DC-AC converter 117. Also, the first device 11A differs from the first device 11 in that it includes a control unit 112A instead of a control unit 112.
[0045] The DC-AC converter 117 is an isolated, bidirectional DC-AC converter. When the first device 11 is electrically isolated from the second device 12B, the DC-AC converter 117 acquires DC power from the DC power supply 20, converts the acquired DC power to AC power, and outputs the converted AC power to the first device 11. Also, when the first device 11 is electrically isolated from the second device 12B, the DC-AC converter 117 acquires AC power supplied from the power system 30 via the distribution board 31, converts the acquired AC power to DC power, and outputs the converted DC power to the DC power supply 20. In other words, the DC-AC converter 117 converts AC power supplied from the power system 30 to DC power and converts DC power supplied from the DC power supply 20 to AC power.
[0046] Here, the power converter 10A is equipped with two DC-AC converters, DC-AC converter 117 and DC-AC converter 123, in parallel. Since the power converter 10A performs power conversion to a single power system 30 using the two DC-AC converters connected in parallel, it is necessary to control the phase of each DC-AC converter. This phase control is performed by the control unit 112A. Specifically, the control unit 112A controls the phase of the AC power obtained by converting the DC power supplied from the DC power supply 20 into AC power by the DC-AC converter 117 in the first device 11, and the phase of the AC power obtained by converting the DC power supplied from the DC power supply 20 into AC power by the DC-AC converter 123 in the second device 12. More specifically, when the first device 11 and the second device 12 are electrically connected, the control unit 112A controls the phase of the AC power obtained by converting the DC power supplied from the DC power supply 20 into AC power by the DC-AC converter 117 in the first device 11, and the phase of the AC power obtained by converting the DC power supplied from the DC power supply 20 into AC power by the DC-AC converter 123 in the second device 12, to synchronize them.
[0047] Figure 8 shows an example of a functional configuration diagram when the first and second devices are used in a state where they are separated in the power converter according to the second embodiment. Referring to this figure, an example of a functional configuration when the first device 11A and the second device 12A are used in a state where they are separated will be explained. The first device 11A and the second device 12A each have a power conversion function even when they are electrically separated from each other. The state in which the first device 11A and the second device 12A are electrically separated from each other is when the second device 12, which is part of the power converter 10A, is removed as a portable device. In such a case, the first device 11 functions at the location where the power converter 10A is installed, and the second device 12 functions at the location where the second device 12, as a portable device, is temporarily placed. The functional configuration of the second device 12A is the same as that of the second device 12, which was explained with reference to Figure 5, so the same reference numerals are used and the explanation is omitted.
[0048] When the first device 11A and the second device 12A are electrically disconnected from each other (the second device 12A is disconnected from the power converter 10A), the first device 11A independently controls the exchange of power between the DC power supply 20 and the power system 30. That is, when the first device 11A supplies power from the DC power supply 20 to the power system 30, it does not supply power acquired by the first DC power supply connection unit 111 to the second device 12A, which is different from the example described with reference to Figure 7. Also, when the first device 11A supplies power from the power system 30 to the DC power supply 20, it does not supply power acquired by the power system connection unit 116 to the second device 12A, which is different from the example described with reference to Figure 7.
[0049] Furthermore, when the first device 11A and the second device 12A are disconnected, the power conversion capacity is reduced compared to when the first device 11A and the second device 12A are connected to each other and power conversion is performed. For example, if the DC-AC converter 117 and the DC-AC converter 123 have the same rated power, when the first device 11A and the second device 12A are disconnected, the power that can be converted is halved compared to when the first device 11A and the second device 12A are connected and power conversion is performed.
[0050] [Summary of the second embodiment] According to the embodiment described above, in the power converter 10A, the first device 11A converts AC power supplied from the power system 30 to DC power when electrically disconnected from the second device 12A, and supplies the converted DC power to the DC power supply 20. Also, when electrically disconnected from the second device 12A, the first device 11A converts DC power supplied from the DC power supply 20 to AC power and supplies the converted AC power to the power system 30. In other words, the power converter 10A can perform power conversion by itself even when the second device 12A is removed. Therefore, with the power converter 10A, power conversion can be performed simultaneously at both the location where the power converter 10A is installed and the location where the second device 12A is temporarily installed.
[0051] Furthermore, according to the embodiment described above, the power converter 10A includes a control unit 112A that controls the phase of the AC power obtained by converting the DC power supplied from the DC power supply 20 into AC power by the first device 11A, and the phase of the AC power obtained by converting the DC power supplied from the DC power supply 20 into AC power by the second device. Therefore, according to this embodiment, when the power converter 10A is used with the first device 11A and the second device 12A connected, the DC-AC converter 117 provided in the first device 11A and the DC-AC converter 123 provided in the second device 12A can be used simultaneously, resulting in a large amount of power that can be converted. For example, if the DC-AC converter 117 and the DC-AC converter 123 have similar rated power, the power converter 10A can achieve approximately twice the rated power compared to using either one by controlling the phase with the control unit 112A. In the example described above, the phase control was assumed to be performed by the control unit 112A provided in the first device 11A, but this phase control may also be performed by the control unit 122 provided in the second device 12A.
[0052] [Third Embodiment] The power converter 10B according to the third embodiment will be described with reference to Figures 9 and 10. Figure 9 is a diagram illustrating the overview of the power converter according to the third embodiment. The overview of the power converter 10B will be described with reference to this figure. In the description of the power converter 10B, components similar to those of the power converter 10 may be denoted by the same reference numerals, and their explanation may be omitted. The power converter 10B comprises a first device 11B and a second device 12B. The power converter 10B differs from the power converter 10 in that it has the function of supplying power to electrical equipment 40 when used as a stationary device. Because the power converter 10B has the function of supplying power to electrical equipment 40, it can drive the electrical equipment 40 using the DC power stored in the DC power supply 20 in the event of an abnormality such as a power outage. Driving the electrical equipment 40 using the DC power stored in the DC power supply 20 is also referred to as V2H.
[0053] The power converter 10B may be used when the first device 11B and the second device 12B are electrically connected to each other, or when they are electrically disconnected from each other. In the example shown in Figure 9, an example of use when the first device 11B and the second device 12B are electrically connected to each other will be described. The electrical equipment 40 is installed in a position where it can be electrically connected to the power converter 10B. The first device 11B is equipped with a self-contained output connection part 118, and the self-contained output connection part 118 is connected to the electrical equipment 40. The power converter 10B supplies AC power P9 to the electrical equipment 40 via the self-contained output connection part 118. AC power P9 is power obtained when DC power P3 supplied from the DC power source 20 is converted to AC power by the power converter 10B.
[0054] The power grid connection section 116 and the independent output connection section 118 may both be connection terminals of the same standard, or they may be connection terminals of different standards. Furthermore, under normal conditions (i.e., when no abnormalities such as power outages occur), the power converter 10B may output power from the power grid connection section 116, and in the event of an abnormality such as a power outage, it may output power from the independent output connection section 118. In other words, the power grid connection section 116 and the independent output connection section 118 may output power exclusively. Moreover, this embodiment is not limited to an example of exclusively outputting power, and the power converter 10B may output power simultaneously from both the power grid connection section 116 and the independent output connection section 118.
[0055] Figure 10 shows an example of a functional configuration diagram of a power converter according to the third embodiment. Referring to this figure, an example of the functional configuration of the power converter 10B when the first device 11B and the second device 12B are connected will be described. The first device 11B differs from the first device 11 in that it further includes a standalone output connection section 118, and the control section 112 includes a grid connection determination section 1121. The functional configuration of the second device 12B is the same as that of the second device 12 described with reference to Figure 4, so the explanation will be omitted.
[0056] The self-sustaining output connection section 118 is provided in at least one of the first device 11B or the second device 12B. The self-sustaining output connection section 118 may be provided in both the first device 11B and the second device 12B, or it may be provided only in the second device 12B. The following description will explain an example in which the self-sustaining output connection section 118 is provided in the second device 12B. The self-sustaining output connection section 118 is a different connection section from the power system connection section 116. The self-sustaining output connection section 118 outputs power which is obtained by converting the DC power supplied from the DC power supply 20 into AC power.
[0057] The grid connection determination unit 1121 determines whether the power converter 10B is connected to the power system 30. The grid connection determination unit 1121 determines whether the power converter 10B is connected to the power system 30 by monitoring the power system. The control unit 112 controls the output destination of the AC power based on the result determined by the grid connection determination unit 1121. The output destination of the AC power is at least one of the power system connection unit 116 or the independent output connection unit 118. In the example shown in Figure 10, an example is described in which a distribution board 31 is connected to the power system connection unit 116 and electrical equipment 40 is connected to the independent output connection unit 118. However, the power system connection unit 116 and the independent output connection unit 118 may have connection terminals of the same standard, and multiple electrical equipment 40 may be connected to the power system connection unit 116 and the independent output connection unit 118, respectively. In other words, if the power grid connection unit 1121 determines that the power grid connection unit 116 is not connected to the power grid 30, it supplies AC power converted from DC power supplied from the DC power supply 20 to the electrical equipment 40. Also, if the independent output connection unit 118 determines that it is connected to the power grid 30 by the power grid connection unit 1121, it supplies AC power converted from DC power supplied from the DC power supply 20 to the electrical equipment 40.
[0058] [Summary of the third embodiment] According to the embodiment described above, the first device 11B is equipped with a standalone output connection section 118, which is a different connection section from the power grid connection section 116, and outputs AC power converted from DC power supplied from the DC power supply 20 to an output destination different from the power grid connection section 116. In other words, the power converter 10B is equipped with a standalone output connection terminal, which is independent of the normal output terminal. Therefore, according to this embodiment, the power converter 10B can supply power to the electrical equipment 40 connected to the standalone output connection section 118 even in the event of an abnormality such as a power outage.
[0059] Furthermore, according to the embodiment described above, the power converter 10B further includes a grid connection determination unit 1121 to determine whether or not the power converter 10B is connected to the power system 30. If the grid connection determination unit 1121 determines that the power converter 10B is not connected to the power system 30, the power system connection unit 116 supplies AC power converted from DC power supplied from the DC power supply 20 to the electrical equipment 40. Also, if the grid connection determination unit 1121 determines that the power converter 10B is connected to the power system 30, the independent output connection unit 118 supplies AC power converted from DC power supplied from the DC power supply 20 to the electrical equipment 40. In other words, according to this embodiment, the power converter 10B includes a grid connection determination unit 1121 to determine whether or not an abnormality such as a power outage has occurred, and in the event of an abnormality such as a power outage, it provides independent output via the independent output connection unit 118. Therefore, even in the event of a power outage or other abnormality, the user can supply power to the electrical equipment 40 by connecting it to the self-contained output connection unit 118.
[0060] [Fourth Embodiment] The power converter 10C according to the fourth embodiment will be described with reference to Figures 11 and 12. Figure 11 is a diagram illustrating the overview of the power converter according to the fourth embodiment. The overview of the power converter 10C will be described with reference to this figure. In the description of the power converter 10C, components similar to those of the power converter 10 may be denoted by the same reference numerals, and their explanation may be omitted. In the fourth embodiment, an example of when the power converter 10C is used as a portable device will be described.
[0061] The power converter 10C includes a second device 12C. In the example shown in the figure, the second device 12C is portable and used between the vehicle 21 and the electrical equipment 40. The second device 12C controls the exchange of power between the DC power supply 20 installed in the vehicle 21 and the electrical equipment 40. Specifically, the second device 12C converts the DC power P3 supplied from the DC power supply 20 into AC power P9 and supplies the converted AC power P9 to the electrical equipment 40. In other words, the second device 12C realizes V2L between the vehicle 21 and the electrical equipment 40.
[0062] The second device 12C differs from the second device 12 in that it includes a common section 120-1 and a DA conversion slot 120-2. More specifically, the functions of the second device 12 are divided into the common section 120-1 and the DA conversion slot 120-2 in the second device 12C. The DA conversion slot 120-2 is removable from the second device 12C. The second device 12C can implement different functions or expand its functions by replacing the DA conversion slot 120-2 with other slots.
[0063] Figure 12 is a diagram showing an example of the functional configuration of a power converter according to the fourth embodiment. An example of the functional configuration of the second device 12C will be described with reference to this figure. The second device 12C comprises a common section 120-1 and a DA conversion slot 120-2. The common section 120-1 comprises a second DC power supply connection section 121, a control section 122, a DC-DC conversion section 1231, an operation acquisition section 124, and a display control section 125. The DA conversion slot 120-2 comprises a DC-AC conversion section 1232 and an electrical equipment connection section 126. The DC-DC conversion section 1231 and the DC-AC conversion section 1232 are divided versions of the DC-AC converter 123C.
[0064] The DC-DC converter 1231 converts the DC power supplied from the DC power supply 20 via the second DC power supply connection unit 121 into DC power of different voltages. Here, the voltage of the DC power supplied from the DC power supply 20 is, for example, approximately 300[V (volts)] to 200[V]. The DC-DC converter 1231 converts the voltage, which fluctuates between approximately 300[V] and 200[V], into DC power of a constant voltage of, for example, approximately 200[V]. The DC-AC converter 1232 converts the DC power, which has been converted to a constant voltage of, for example, 200[V], into AC power of 100[V]. The DC-AC converter 1232 supplies the converted AC power to the electrical equipment 40 via the electrical equipment connection unit 126.
[0065] In this embodiment, the DC-AC converter 123C is divided into a DC-DC conversion unit 1231 and a DC-AC conversion unit 1232, with the DC-DC conversion unit 1231 included in the common unit 120-1 and the DC-AC conversion unit 1232 included in the DA conversion slot 120-2. In other words, the DC-AC converter 123C included in the second device 12C comprises a DC-DC conversion unit 1231, one of which is connected to a DC power supply 20, and a DC-AC conversion unit 1232, which is connected between the other side of the DC-DC conversion unit 1231 and the electrical equipment 40. The DC-DC conversion unit 1231 and the DC-AC conversion unit 1232 are connected to each other by predetermined connection terminals.
[0066] [Summary of the fourth embodiment] According to the embodiment described above, the DC-AC converter 123C included in the second device 12C comprises a DC-DC converter 1231, one of which is connected to the DC power supply 20, and a DC-AC converter 1232, the other of the DC-DC converter 1231, connected to the power system 30. That is, the DC-AC converter 123C in the second device 12C is provided in a form that can be divided into a DC-DC converter 1231 and a DC-AC converter 1232. Therefore, the common section 120-1 and the DA conversion slot 120-2 in the second device 12C are separable from each other. Thus, according to this embodiment, the second device 12C is capable of V2L power supply, and different functions can be implemented or functions expanded by replacing the DA conversion slot 120-2 with other slots.
[0067] [Fifth Embodiment] The power converter 10D according to the fifth embodiment will be described with reference to Figures 13 and 14. Figure 13 is a diagram illustrating the overview of the power converter according to the fifth embodiment. The overview of the power converter 10D will be described with reference to this figure. In the description of the power converter 10D, components similar to those in the power converter 10C may be denoted by the same reference numerals, and their description may be omitted. In the fifth embodiment, an example of when the power converter 10D is used as a portable device will be described.
[0068] The power converter 10D includes a second device 12D. In the example shown in the figure, the second device 12D is transported and used between vehicle 21A and vehicle 21B. Vehicle 21A and vehicle 21B are each equipped with a DC power supply 20A and a DC power supply 20B. Vehicle 21A and vehicle 21B are both examples of vehicle 21, and DC power supply 20A and DC power supply 20B are both examples of DC power supply 20.
[0069] The second device 12D controls the exchange of power between the DC power supply 20A installed in vehicle 21A and the DC power supply 20B installed in vehicle 21B. Specifically, the second device 12D converts the DC power P3 supplied from the DC power supply 20A into AC power P10 and supplies the converted AC power P10 to the DC power supply 20B. In other words, the second device 12D realizes V2V (Vehicle to Vehicle) between vehicle 21A and vehicle 21B.
[0070] The second device 12D comprises a common section 120-1 and a DD conversion slot 120-3. That is, the second device 12D differs from the second device 12C in that it has a DD conversion slot 120-3 instead of a DA conversion slot 120-2. More specifically, by having a DD conversion slot 120-3 instead of a DA conversion slot 120-2, the second device 12D becomes a DC-DC converter and realizes V2V. The DA conversion slot 120-2 and the DD conversion slot 120-3 are easily detachable. The second device 12D may be configured so that either slot can be installed by installing the DD conversion slot 120-3 in the position where the DA conversion slot 120-2 was removed. By selecting and installing either the DA conversion slot 120-2 or the DD conversion slot 120-3, the user can realize different functions.
[0071] Figure 14 is a diagram showing an example of the functional configuration of a power converter according to the fifth embodiment. An example of the functional configuration of the second device 12D will be described with reference to this figure. The second device 12D comprises a common section 120-1 and a DD conversion slot 120-3. The common section 120-1 is the same as the configuration described with reference to Figure 12, so its description will be omitted. The DD conversion slot 120-3 comprises a DC-DC conversion section 1233 and an electrical equipment connection section 126. In other words, the DD conversion slot 120-3 differs from the DA conversion slot 120-2 in that it has a DC-DC conversion section 1233 instead of a DC-AC conversion section 1232. The DC-DC conversion section 1231 and the DC-DC conversion section 1233 are electrically coupled to form a DC-DC converter 127. In other words, the DC-DC conversion section 1231 and the DC-DC conversion section 1233 are divisions of the DC-DC converter 127.
[0072] The DC-DC converter 1231 has the same configuration as described with reference to Figure 12, so a detailed explanation is omitted. The DC-DC converter 1231 converts a voltage that fluctuates between approximately 300[V] and 200[V] supplied from a DC power supply 20A, which is an example of a DC power supply 20, into a constant voltage DC power of, for example, approximately 200[V]. The DC-DC converter 1231 supplies the converted DC power to the DC-DC converter 1233. The DC-DC converter 1233 converts the DC power, which has been converted to a constant voltage of approximately 200[V] by the DC-DC converter 1231, into a voltage that generates a constant current. The DC-DC converter 1233 supplies the DC power, which has been converted into a voltage that generates a constant current, to the DC power supply 20B via the electrical equipment connection unit 126.
[0073] The DC-DC converter 1231 may be referred to as the first DC-DC converter, and the DC-DC converter 1233 may be referred to as the second DC-DC converter. In other words, the second device 12D replaces the DC-AC converter 1232 with a DC-DC converter 1233 (second DC-DC converter), which is different from the first DC-DC converter 1231, thereby supplying DC power from a DC power supply 20A to another DC power supply 20, which is a DC power supply 20.
[0074] [Summary of the Fifth Embodiment] According to the embodiment described above, the second device 12D includes a DC-DC converter 1231, one of which is connected to the DC power supply 20, and a DC-DC converter 1233, which is connected between the other of the DC-DC converter 1231 and the DC power supply 20. That is, the DC-DC converter 127 of the second device 12D is provided in a form that can be divided into a DC-DC converter 1231 and a DC-DC converter 1233. Therefore, the common part 120-1 and the DD conversion slot 120-3 of the second device 12D are separable from each other. Thus, according to this embodiment, the second device 12D can be powered by V2V. Furthermore, with the second device 12D, different functions can be implemented or functions can be expanded by replacing the DD conversion slot 120-3 with other slots.
[0075] [A series of operations of a power converter] The power converters 10 to 10D according to the first and fifth embodiments have been described above. All of the power converters 10 to 10D can be realized by the control of the control unit. Specifically, the control unit 112 and the control unit 122 provided in the first device 11 determine whether they are connected to each other, and the control unit 122 further determines whether either the DC-AC conversion unit 1232 or the DC-DC conversion unit 1233 slot is inserted, thereby enabling the V2H, V2L, and V2V functions to be realized. In the following explanation, if power converters 10 through 10D are not distinguished, they may simply be referred to as power converter 10.
[0076] Figure 15 is a diagram illustrating a series of operations of a power converter according to an embodiment. The series of operations of the power converter 10 will be explained with reference to this figure. (Step S11) First, the power converter 10 determines whether or not a portable device is inserted into the stationary device. Specifically, the power converter 10 is equipped with a safety switch (not shown), and the safety switch is conductive (on) when the second device 12 is inserted into the power converter 10, and disconnected (off) when the second device 12 is not inserted into the power converter 10. The control unit 112 provided in the first device 11 acquires the conductivity state of the safety switch. The control unit 112 determines whether or not a portable device is inserted into the stationary device according to the acquired conductivity state. If a portable device is inserted into the stationary device (i.e., Step S11; YES), the process proceeds to Step S13. If a portable device is not inserted into the stationary device (i.e., Step S11; NO), the process proceeds to Step S21. The safety switch may be a microswitch with mechanical contacts, or it may be an electrical switch using a photointerrupter or the like.
[0077] (Step S13) Next, the power converter 10 determines whether the V2H switch is in EV discharge mode. The V2H switch is specifically implemented by the operation acquisition unit 113 and the display control unit 114. For example, the power converter 10 has V2H mode, V2L mode, and V2V mode as examples of power conversion modes. The display control unit 114 displays the current power conversion mode. The user switches the power conversion mode by operating an input device (not shown) (e.g., touch panel, keyboard, voice input device, etc.). The operation acquisition unit 113 acquires the power conversion mode input by the user. If the power conversion mode acquired by the operation acquisition unit 113 is V2H mode (EV discharge mode) (i.e., Step S13; YES), the process proceeds to Step S15. If it is not V2H mode (i.e., Step S13; NO), the process proceeds to Step S17.
[0078] (Step S15) The power converter 10 supplies power from the EV to the indoor wiring. That is, the power converter 10 converts the DC power supplied from the DC power source 20 into AC power, and supplies the converted AC power to the power system 30 or electrical equipment 40. The power supply from the EV to the indoor wiring is V2H. After the V2H power supply is completed, the power converter 10 proceeds to step S40. (Step S17) The power converter 10 supplies power from the commercial power source to the EV. That is, the power converter 10 converts the AC power supplied from the power grid 30 into DC power and supplies the converted DC power to the DC power source 20. After the power converter 10 has finished supplying power from the commercial power source to the EV, it proceeds to step S40.
[0079] (Step S21) Next, the power converter 10 determines whether or not a D / D slot (DD conversion slot 120-3) is inserted into the portable device. Specifically, the second device 12 is equipped with a safety switch (not shown), and the safety switch is turned on if a DD conversion slot 120-3 is inserted into the second device 12, and turned off if a DD conversion slot 120-3 is not inserted into the second device 12. The control unit 122 provided in the second device 12 acquires the conduction state of the safety switch. The control unit 122 determines whether or not a D / D slot is inserted into the portable device according to the acquired conduction state. If a D / D slot is inserted (i.e., step S21; YES), the control unit 122 proceeds to step S23. If a D / D slot is not inserted (i.e., step S21; NO), the control unit 122 proceeds to step S31.
[0080] (Step S23) The power converter 10 supplies power from EV to EV. That is, the power converter 10 converts the DC power supplied from the DC power source 20 into DC power of a constant current, and supplies the converted DC power to a DC power source 20 different from the DC power source 20 from which the DC power was obtained. Power supply from EV to EV is equivalent to V2V. After the V2V power supply is completed, the power converter 10 proceeds to step S40.
[0081] (Step S31) Next, the power converter 10 determines whether a D / A slot (DA conversion slot 120-2) is inserted into the portable device. Specifically, the power converter 10 determines whether a D / A slot is inserted into the portable device by obtaining the conduction state of a safety switch different from the safety switch described in step S21, using the control unit 122 provided in the second device 12. For example, the power converter 10 has two different safety switches, and when the DA conversion slot 120-2 is inserted, the first safety switch is turned on and the second safety switch is turned off. Also, when the DD conversion slot 120-3 is inserted, the first safety switch is turned off and the second safety switch is turned on. In other words, the conduction state of the first safety switch and the second safety switch switches exclusively depending on whether the unit inserted into the slot is the DA conversion slot 120-2 or the DD conversion slot 120-3. The control unit 122 determines whether a D / D slot is inserted into the portable device based on the conductivity status of the two safety switches obtained. If a D / A slot is inserted (i.e., step S31; YES), the control unit 122 proceeds to step S33. If a D / A slot is not inserted (i.e., step S31; NO), the control unit 122 proceeds to step S35.
[0082] (Step S33) The power converter 10 supplies power from the EV to the electrical equipment 40. That is, the power converter 10 converts the DC power supplied from the DC power source 20 into AC power and supplies the converted AC power to the electrical equipment 40. The power supply from the EV to the electrical equipment 40 is equivalent to V2L. After the V2L power supply is completed, the power converter 10 proceeds to step S40. (Step S35) If neither the DA conversion slot 120-2 nor the DD conversion slot 120-3 is inserted into the second device 12, the user cannot perform power conversion using the power converter 10. Therefore, the display control unit 125 provided in the second device 12 displays that it is "unavailable". After displaying that it is "unavailable" to the display control unit 125, the power converter 10 proceeds to step S40.
[0083] (Step S40) The power converter 10 terminates the power supply. After terminating the power supply, the power converter 10 proceeds to step S11 and repeats the process.
[0084] Although embodiments for carrying out the present invention have been described above using examples, the present invention is not limited in any way to these embodiments, and various modifications and substitutions can be made without departing from the spirit of the invention. Furthermore, the configurations described in each of the embodiments and examples above may be combined. [Explanation of Symbols]
[0085] 10...Power converter, 11...First device, 111...First DC power supply connection unit, 112...Control unit, 1121...Grid connection determination unit, 113...Operation acquisition unit, 114...Display control unit, 115...Grid connection protection circuit, 116...Power system connection unit, 117...DC-AC converter, 118...Connection unit for standalone output, 12...Second device, 120-1...Common unit, 120-2...DA conversion slot, 120-3...DD conversion slot Lot, 121...Second DC power supply connection unit, 122...Control unit, 123...DC-AC converter, 1231...DC-DC converter, 1232...DC-AC converter, 1233...DC-DC converter, 124...Operation acquisition unit, 125...Display control unit, 126...Electrical equipment connection unit, 127...DC-DC converter, 20...DC power supply, 21...Vehicle, 30...Power system, 31...Distribution board, 32...Residential, 40...Electrical equipment
Claims
1. A power conversion device that converts power supplied from a power grid to a DC power source and power supplied from a DC power source to a power grid, A first device having a first DC power supply connection section connected to a DC power supply and a power system connection section connected to a power system, The device comprises a second DC power supply connection section connected to a DC power supply, an electrical equipment connection section connected to electrical equipment, and a second device including a DC-AC converter that converts AC power supplied from the power grid into DC power and DC power supplied from the DC power supply into AC power. The second device, when electrically disconnected from the first device, has its second DC power supply connection section connected to a DC power supply and its electrical equipment connection section connected to an electrical equipment, converts the DC power supplied from the DC power supply to AC power, and supplies the converted AC power to the electrical equipment. When the first device is electrically disconnected from the second device, it does not convert AC power supplied from the power grid to DC power, nor does it convert DC power supplied from a DC power source to AC power. Power converter.
2. The first device, while electrically disconnected from the second device, converts AC power supplied from the power grid into DC power, supplies the converted DC power to a DC power source, converts the DC power supplied from the DC power source into AC power, and supplies the converted AC power to the power grid. The power conversion device according to claim 1.
3. The system further includes a control unit that controls the phase of AC power obtained by converting DC power supplied from a DC power source into AC power by the first device, and the phase of AC power obtained by converting DC power supplied from a DC power source into AC power by the second device. The control unit synchronizes the phase of the AC power obtained by the first device, which converts DC power supplied from a DC power source into AC power, with the phase of the AC power obtained by the second device, when the first and second devices are electrically connected. The power conversion device according to claim 2.
4. The first device further includes a connection section, distinct from the power grid connection section, which outputs AC power converted from DC power supplied from a DC power source. The power conversion device according to claim 1.
5. It further includes a grid connection determination unit that determines whether or not it is connected to the power grid, If the power grid connection unit determines that it is not connected to the power grid, the power grid connection unit supplies AC power, which is obtained by converting DC power supplied from a DC power source, to the electrical equipment. When the grid connection determination unit determines that the self-contained output connection unit is connected to the power grid, the DC power supplied from the DC power source is converted into AC power which is then supplied to the electrical equipment. The power conversion device according to claim 4.
6. The DC-AC converter included in the second device comprises a DC-DC converter, one of which is connected to a DC power supply, and a DC-AC converter, the other of which is connected to an electrical device. A power conversion device according to any one of claims 1 to 5.
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