CHARGE-DISCHARGE CONTROLLER
20170355277 · 2017-12-14
Inventors
Cpc classification
H02J7/00034
ELECTRICITY
H02J7/0048
ELECTRICITY
Y02T10/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B60L58/12
PERFORMING OPERATIONS; TRANSPORTING
B60L50/64
PERFORMING OPERATIONS; TRANSPORTING
Y02T90/14
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02T10/7072
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
G06Q40/00
PHYSICS
Abstract
A charge-discharge controller includes a resetter for executing a SOC reset charging and a timing calculator for executing a timing calculation process that calculates an execution timing of the SOC reset charging by the resetter. The timing calculator calculates a profit reduction amount by an execution of the SOC reset charging for each of a plurality of time ranges, and sets the execution timing of the SOC reset charging in one or more time ranges to minimize the profit reduction amount, in consideration of an economy of charging of battery besides SOC.
Claims
1. A charge-discharge controller controlling a state of charge (SOC) of a storage battery that is chargeable and dischargeable, the charge-discharge controller comprising: a resetter executing an SOC reset charging that brings the battery to an over-charged state; and a timing calculator executing a timing calculation process that calculates an execution timing of the SOC reset charging by the resetter, wherein the timing calculator executes the timing calculation process and calculates a profit reduction amount as a difference between a planned charge-discharge monetary profit and a SOC reset charging monetary profit for each of a plurality of time ranges, among which (i) the planned charge-discharge monetary profit is calculated as a profit from charging and discharging according to a preset charge-discharge plan and (ii) the SOC reset charging monetary profit is calculated as a profit from executing the SOC reset charging, and the timing calculator sets the execution timing of the SOC reset charging in one or more time ranges to minimize the profit reduction amount.
2. The charge-discharge controller of claim 1, wherein the timing calculator sets the execution timing for performing the SOC reset charging in one time range in consideration of the profit reduction amount in other time range when the profit reduction amount in the other time range is expected to be incurred by an execution of the SOC reset charging in the one time range.
3. The charge-discharge controller of claim 1, wherein the timing calculator excludes an over-max time range from candidate time ranges for executing the SOC reset charging based on a calculation of a required charge amount to bring the battery to the over-charged state, based on (i) calculating the required charge amount to bring the battery to the over-charged state for each of the plurality of time ranges and (ii) determining the over-max time range, where the required charge amount exceeds a maximum chargeable amount.
4. The charge-discharge controller of claim 1, wherein the timing calculator executes the timing calculation process to distribute the required charge amount to bring the battery to the over-charged state among two or more time ranges, when executing the SOC reset charging in the two or more time ranges.
5. The charge-discharge controller of claim 4, wherein the timing calculator executes the timing calculation process for a distribution of the required charge amount among the two or more time ranges so that a time range with a greater profit reduction amount has a smaller share of distribution of the required charge amount, when executing the SOC reset charging in the two or more time ranges.
6. The charge-discharge controller of claim 1, wherein the timing calculator executes the timing calculation process at constant intervals.
7. The charge-discharge controller of claim 1, wherein the timing calculator executes the timing calculation process when an accumulated power amount of charge and discharge of the battery exceeds a threshold value.
8. The charge-discharge controller of claim 1, wherein the battery is an in-vehicle battery disposed in a vehicle.
9. The charge-discharge controller of claim 8, wherein the timing calculator estimates a charger-discharger connected time range during which the vehicle is connected to the charger-discharger, and executes the timing calculation process so that the SOC reset charging is executed in the charger-discharger connected time range.
10. The charge-discharge controller of claim 9, wherein the timing calculator collects information about the charger-discharger connected time range, when the vehicle is connected to the charger-discharger for executing the timing calculation process.
11. The charge-discharge controller of claim 9, wherein the resetter executes the SOC reset charging after a re-connection of the vehicle and the charger-discharger, when the SOC reset charging is incomplete due to a disconnection between the vehicle and the charger-discharger, during a time range during which the SOC reset charging is being executed.
12. The charge-discharge controller of claim 1, wherein the battery is provided as plural pieces of a device.
13. The charge-discharge controller of claim 12, wherein the timing calculator sets the execution timing of the SOC reset charging for each of the plural battery devices, so that the SOC reset charging is executed for one battery device in one time range.
14. The charge-discharge controller of claim 12, wherein the timing calculator adjusts a charge amount of other battery devices other than a SOC-reset-charging battery device for which the SOC reset charging is currently being executed so that a total charge amount of the plural battery devices is brought close to a planned charge amount.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] Objects, features, and advantages of the present disclosure will become more apparent from the following detailed description made with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION
[0031] Hereafter, an embodiment of the present disclosure is described, with reference to the accompanying drawings. For the ease of explanation and description, in each of the drawings, the same component has the same numeral assigned thereto, and the same description is not repeated.
[0032] As shown in
[0033] The power converter 12 is a device which performs charge and discharge of an in-vehicle battery 22 that is a storage battery carried in a vehicle 20. The power converter 12 can also perform charge and discharge of not only the in-vehicle battery 22 but also a storage battery of a fixedly-disposed type.
[0034] The charge-discharge controller 10 is implemented as a computer, including an arithmetic unit, which may be a Central Processing Unit (CPU), a storage unit, which may be Random Access Memory (RAM), Read-Only Memory (ROM) and the like, an interface unit for receiving and transmitting data, together with other parts.
[0035] In the following, functional components of the charge-discharge controller 10 are described.
[0036] As shown in
[0037] The price information calculator 101 is a section that receives the information about an electric power price, e.g., a price of the electric power per unit amount.
[0038] The price information calculator 101 calculates the electric power price information for each time range, a monetary profit at the time of performing a preset/planned charging for each time range, and a monetary profit at the time of performing an SOC reset charging for each time range, and stores calculation results in the profit information storage 105.
[0039] The SOC reset charging brings a storage battery to an over-charged state.
[0040] The consideration notifier 102 is a section that outputs a trigger of calculation execution timing to the timing calculator 103 at a predetermined interval at which the timing calculator 103 determines whether to perform the SOC reset charging.
[0041] The predetermined interval of such determination may be, for example, an interval of one week, ten days, or the like, which may be arbitrarily determinable. That is, the predetermined interval may be a period of time which necessitates an error correction for accurately estimating the SOC of the storage battery.
[0042] The timing calculator 103 is a section that performs a timing calculation processing according to the trigger outputted from the consideration notifier 102, i.e., performs a calculation of an execution timing of the SOC reset charging by the reset performer 104.
[0043] The timing calculator 103 calculates, in the timing calculation processing, a difference between (i) the monetary profit at the time of performing the SOC reset charging, and (ii) the monetary profit at the time of performing charge and discharge, according to a charge-discharge plan, and such calculation is performed for each of a plurality of time ranges for the calculation of the above-described difference as a profit reduction amount by the SOC reset charging, and sets the execution timing for performing the SOC reset charging in one or more of the plurality of time ranges to minimize the profit reduction amount.
[0044] The reset performer 104 is a section that executes the SOC reset charging, which brings the storage battery, e.g., the battery 22, to an over-charged state.
[0045] The reset performer 104 outputs a drive signal to the power converter 12 so that the SOC reset charging is executed at the execution timing calculated by the timing calculator 103.
[0046] Operation of the charge-discharge controller 10 is described with reference to
[0047] In Step S101, the consideration notifier 102 determines whether of an SOC reset consideration timing has arrived, for considering/determining whether to execute the SOC reset charging.
[0048] After a first SOC reset charging is performed as shown in
[0049] The consideration notifier 102 outputs information, or a trigger, to the timing calculator 103, when determining that the execution timing of the SOC reset charging has arrived.
[0050] The consideration notifier 102 repeats determination of Step S101, after determining that the execution timing of the SOC reset charging has not yet arrived.
[0051] In Step S102, the timing calculator 103 performs the timing calculation processing, which calculates the execution timing of the SOC reset charging by the reset performer 104.
[0052] As shown in
[0053] An example of the SOC reset charging is described with reference to
[0054] As shown in
[0055] The timing calculator 103 determines the execution timing of the SOC reset charging Xk to be set in a time range that minimizes the profit reduction amount, as shown in
[0056] Profit information (i.e., LOSS OF PROFIT, or a profit reduction amount in the claims) shown in
[0057] The description of the SOC reset charging returns to
[0058] In Step S103 subsequent to S102, the reset performer 104 determines whether the execution timing of the SOC reset charging has arrived.
[0059] If it is determined that the execution timing of the SOC reset charging has not yet arrived, processing of Step S103 is repeated, and if it is determined that the execution timing of the SOC reset charging has arrived, the process proceeds to Step S104.
[0060] In Step S104, the reset performer 104 outputs a drive signal for executing the SOC reset charging to the power converter 12, and the power converter 12 performs the SOC reset charging.
[0061] When a control object, i.e., a battery to be charged, is the in-vehicle battery 22 as shown in
[0062] Therefore, the charge-discharge controller 10 obtains actual use history information regarding EV connected time range(s), i.e., regarding when the in-vehicle battery 22 is connected to the power converter 12, as shown in
[0063] Based on the actual use history information, the charge-discharge controller 10 calculates a forecast of the EV connected time range, as shown in
[0064] Then, the timing calculator 103 sets the execution timing for performing the SOC reset charging in a time range with an economical merit which is, as described above, a narrowed-down forecast time range narrowed from a preset time range.
[0065] As shown in
[0066] For example, if the SOC reset charging Xk is performed between time Tk+3 and time Tk+4, the maximum chargeable amount Pmax will be exceeded. Thus, such time range, i.e., an over-max time range, is excluded from candidate time ranges for performing the SOC reset charging.
[0067] As shown in
[0068] However, setting the SOC reset charging only in one time range may lead to an excessive charging situation exceeding the maximum chargeable amount, as described with reference to
[0069] Thus, as shown in
[0070] In an example of
[0071] Further, as shown in
[0072] A distribution ratio for distributing the SOC reset charging among a plurality of time ranges may be suitably changed to increase/maximize an economical merit or to minimize the profit reduction amount, e.g., by increasing the distribution ratio of a Tk to Tk+1 time range.
[0073] As described above, when the SOC reset charging is performed in a certain time range, it is preferred to perform the SOC reset charging in consideration of how much a profit reduction amount by the SOC reset charging would be.
[0074] Further, in case that a planned charge and/or a planned discharge is affected by the execution of the SOC reset charging, i.e., when a loss of profit by divergence from the plan, it is preferred to also take such loss of profit into consideration.
[0075] As shown in an example of
[0076] Then, in the next time range from Tk+1 to Tk+2, the charge plan ak+1 may not fully performed as planned, due to a less-than-expected electric power use amount in addition to the SOC reset charging Xk.
[0077] In such case, the loss of profit by a divergence from the plan is expected/forecasted, such a loss of profit may be taken into consideration for the determination of the SOC reset charging, as shown in
[0078] The charge-discharge controller 10 concerning the present embodiment includes the reset performer 104 that executes the SOC reset charging for bringing the storage battery to an over-charged state and the timing calculator 103 that performs the timing calculation processing, which calculates the execution timing of the SOC reset charging by the reset performer 104.
[0079] The timing calculator 103 calculates the profit reduction amount, or a loss of profit, at the time of performing the SOC reset charging for each of the plurality of time ranges, by executing the timing calculation processing, and sets the execution timing for performing the SOC reset charging in one or more time ranges, to minimize the profit reduction amount.
[0080] According to the present embodiment, since the execution timing for performing the SOC reset charging is set in one or more time ranges to minimize the profit reduction amount, the determination of the SOC reset charging is made in consideration of both of (i) the SOC of the storage battery and (ii) the profit reduction amount due to the execution of the SOC reset charging.
[0081] As described in the present embodiment, with reference to
[0082] That is, by taking into consideration the profit reduction amount in the other time range(s), the SOC reset charging is performable in a more economical manner, i.e., in consideration of an economic effect of the SOC reset charging.
[0083] Further, as described in the present embodiment with reference to
[0084] In such manner, i.e., by excluding the over-max time range from the candidate time ranges, the SOC reset charging is assignable/distributable to an appropriate time range or time ranges, in a feasible manner, which does not set the execution timing of the SOC reset charging in a non-chargeable time range.
[0085] Further, as described in the present embodiment with reference to
[0086] Therefore, by such distribution of the required charge amount among two or more time ranges, a possibility of exceeding the maximum chargeable amount is reduced.
[0087] Further, as described in the present embodiment with reference to
[0088] Thus, by distributing the required charge amount to the two or more time ranges, the SOC reset charging is performable by minimizing the profit reduction amount, while reducing the possibility of exceeding the maximum chargeable amount.
[0089] According to the present embodiment, as described with reference to
[0090] For example, by executing the timing calculation processing at an interval of one week, the accuracy of an SOC estimation can be periodically raised.
[0091] Further, according to the present embodiment, the timing calculator 103 executes the timing calculation processing at a timing when an accumulated power amount of charge and discharge to/from the storage battery exceeds a threshold value, i.e., by accumulating the charge-discharge power amount and by examining the accumulated amount of charge-discharge with reference to the threshold value.
[0092] The execution of the timing calculation process at the above-described timing of exceeding the threshold charge-discharge power amount is beneficial for improving the SOC estimation accuracy, because repeated charges and discharges typically increase the error in the SOC estimation.
[0093] In the present embodiment, as described with reference to
[0094] Further, as described in the present embodiment with reference to
[0095] By estimating a time range when the vehicle 20 and the in-vehicle battery 22 are connected to the power converter 12, the execution timing of the SOC reset charging is set in a time range during which the SOC reset charging is expected to be more readily/securely performable.
[0096] According to the present embodiment, as described with reference to
[0097] As described in the present embodiment with reference to
[0098] By resuming/continuing the SOC reset charging after re-connection, the SOC reset charging is securely performable, i.e., is securely brought to completion.
[0099] Although the storage battery is described as the in-vehicle battery 22 in the above-mentioned example, the storage battery may be two or more, i.e., plural, fixedly-disposed batteries.
[0100] In such case, the timing calculator 103 can shift the execution timing of the SOC reset charging for one of the plural batteries from the execution timing of the SOC reset charging for the other batteries. That is, the timing calculator 103 sets the execution timing of the SOC reset charging for each of the plural batteries so that the SOC reset charging is executed for one battery at one time, i.e., in one time range.
[0101] An example of performing charge and discharge to a storage battery and a storage battery 2 is described with reference to
[0102]
[0103] In
[0104] When performing the SOC reset charging Xk for the storage battery 1 in a time range from time Tk to time Tk+1, an amount of charge for the storage battery 2 is reducible so that an amount of the overall charge plan ak needs not be changed.
[0105] That is, the timing calculator 103 is capable of adjusting/bringing an amount of charge for the plural fixedly-disposed batteries to an amount of the overall charge plan by adjusting an amount of charge for the other batteries other than the one for which the SOC reset charging is currently being executed.
[0106] Although the present disclosure has been described in connection with preferred embodiment thereof with reference to the accompanying drawings, it is to be noted that various changes and modifications as well as combinations thereof will become apparent to those skilled in the art, and such changes, modifications, combinations and summarized schemes are to be understood as Is being within the scope of the present disclosure as defined by appended claims, unless otherwise described or unless technical limitations hinder such changes/modifications.