Multi-mobile charging vehicle parallel reverse power feedback method, electronic device and storage medium
By using a parallel reverse power feeding method with multiple mobile charging vehicles connected in parallel, and utilizing switches and main conductors, automated reverse power feeding of mobile charging vehicles is achieved. This solves the problems of complexity and the need for dedicated personnel to operate the reverse power feeding in existing technologies, and improves convenience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-22
- Publication Date
- 2026-03-27
AI Technical Summary
The current mobile charging vehicle reverse power feeding process is complex, requires dedicated personnel to operate, and has low convenience.
The method of parallel reverse power feeding of multiple mobile charging vehicles is adopted. The reverse power feeding process is realized through control switch and main conductor connection. This includes sending preset control commands and judging the power threshold, and automatically controlling the switch state to realize parallel reverse power feeding of multiple charging vehicles.
It enables automated reverse power feeding from multiple mobile charging vehicles, simplifying the process, improving convenience, and eliminating the need for dedicated personnel.
Smart Images

Figure CN121361357B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of reverse power feedback of mobile charging vehicles, in particular to a parallel reverse power feedback method of multiple mobile charging vehicles, an electronic device and a storage medium. BACKGROUND
[0002] With the rapid development of new energy technology, more and more mobile charging vehicles are applied in various occasions. Mobile charging vehicles are usually dispatched to charge vehicles during the day. Since there are many mobile charging vehicles, the electric energy stored in each mobile charging vehicle cannot be completely consumed. In order to alleviate the load pressure of the power grid during the power peak, the electric energy stored in the mobile charging vehicle can be fed back to the power grid. However, if the electric energy of a mobile charging vehicle is completely fed back, and then the next mobile charging vehicle is connected, the whole feeding process will be complicated, and a dedicated person is needed to supervise, and the convenience of reverse power feedback is low. SUMMARY
[0003] In view of the above technical problems, the technical scheme adopted by the present application is as follows:
[0004] According to a first aspect of the present application, a parallel reverse power feedback method of multiple mobile charging vehicles is provided. The method is applied to any one of n mobile charging vehicles. Each mobile charging vehicle includes a back charging port, a charging gun, a battery, a first switch S1 and a second switch S2. The back charging port and the charging gun of each mobile charging vehicle are connected through a total wire. The charging end of the battery is connected to the total wire through S1, and the discharging end of the battery is connected to the total wire through S2. The charging gun of any one mobile charging vehicle is connected to the back charging port of the next mobile charging vehicle. The back charging port of the first mobile charging vehicle is connected to the charging gun of the charging pile. The back charging port of the mobile charging vehicle has charging and discharging functions.
[0005] The method includes the following steps:
[0006] S100, if the charging gun connected to the back charging port of the current mobile charging vehicle is the charging gun of the charging pile, a first preset control instruction ZL1 is sent to the next mobile charging vehicle connected to the current mobile charging vehicle, so that the next mobile charging vehicle sets the state of the back charging port thereof to a preset idle state through ZL1; otherwise, step S500 is entered.
[0007] S200, S1 of the current mobile charging vehicle is controlled to be closed, and S2 of the current mobile charging vehicle is controlled to be disconnected.
[0008] S300, the battery capacity Q of the current mobile charging vehicle is acquired now .
[0009] S400, if Q nowIf WT, control S1 of the current mobile charging vehicle to be disconnected, and send a second preset control instruction ZL2 to the next mobile charging vehicle connected with the current mobile charging vehicle, so that the next mobile charging vehicle sets the state of the back charging port thereof to a preset non-idle state through ZL2; wherein WT is a preset second power threshold.
[0010] S500, acquire the battery power Q' of the previous mobile charging vehicle connected with the current mobile charging vehicle. now .
[0011] S600, control the current mobile charging vehicle to perform reverse power feeding to the charging pile according to Q' now .
[0012] According to another aspect of the present application, a non-transitory computer readable storage medium is also provided, which stores at least one instruction or at least one program, the at least one instruction or at least one program is loaded and executed by a processor to implement the above-mentioned parallel reverse power feeding method for multiple mobile charging vehicles.
[0013] According to another aspect of the present application, an electronic device is also provided, which comprises a processor and the above-mentioned non-transitory computer readable storage medium.
[0014] The present application has at least the following beneficial effects:
[0015] In the parallel reverse power feeding method for multiple mobile charging vehicles, if the charging gun connected with the back charging port of the current mobile charging vehicle is the charging gun of the charging pile, a first preset control instruction ZL1 is sent to the next mobile charging vehicle connected with the current mobile charging vehicle, so that the next mobile charging vehicle sets the state of the back charging port thereof to a preset idle state through ZL1; S1 of the current mobile charging vehicle is controlled to be closed, and S2 of the current mobile charging vehicle is controlled to be disconnected, so that the current mobile charging vehicle performs reverse power feeding to the charging pile; the battery power of the current mobile charging vehicle is acquired, if the battery power of the current mobile charging vehicle is less than a preset second power threshold, S1 of the current mobile charging vehicle is controlled to be disconnected, and the power feeding of the current mobile charging vehicle is ended; and a second preset control instruction ZL2 is sent to the next mobile charging vehicle connected with the current mobile charging vehicle, so that the next mobile charging vehicle sets the state of the back charging port thereof to a preset non-idle state through ZL2; if the charging gun connected with the back charging port of the current mobile charging vehicle is not the charging gun of the charging pile, the battery power Q' of the previous mobile charging vehicle connected with the current mobile charging vehicle is acquired, and the current mobile charging vehicle is controlled to perform reverse power feeding to the charging pile according to Q' now . nowThe current mobile charging vehicle controls the charging pile to carry out reverse power feedback, so that the automatic reverse power feedback process of the multiple mobile charging vehicles is realized, and since the reverse power feedback process of the multiple mobile charging vehicles is realized automatically, the whole power feedback process is relatively simple, and does not need special person on duty, and the convenience of reverse power feedback is high. BRIEF DESCRIPTION OF DRAWINGS
[0016] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the embodiments description. Obviously, the drawings in the following description are only some embodiments of the present application, and for those skilled in the art, other drawings can also be obtained without creative labor based on these drawings.
[0017] Figure 1 The flow chart of the parallel reverse power feedback method of the multiple mobile charging vehicles provided by the embodiments of the present application. DETAILED DESCRIPTION
[0018] The technical solutions in the embodiments of the present application will be described clearly and completely in the following with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some embodiments of the present application, but not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor are within the protection scope of the present application.
[0019] It should be noted that based on the present disclosure, those skilled in the art should understand that one aspect described herein can be implemented independently of any other aspect, and two or more of these aspects can be combined in various ways. For example, an apparatus and / or a method can be implemented using any number of the aspects set forth herein. In addition, this apparatus and / or method can be implemented using other structures and / or functionalities in addition to or other than one or more of the aspects set forth herein.
[0020] The technical solutions in the embodiments of the present application will be described clearly and completely in the following with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some embodiments of the present application, but not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor are within the protection scope of the present application. Figure 1 The flow chart of the parallel reverse power feedback method of the multiple mobile charging vehicles provided by the embodiments of the present application.
[0021] The parallel reverse power feedback method of the multiple mobile charging vehicles is applied to any mobile charging vehicle in n mobile charging vehicles, each mobile charging vehicle comprising: a back charging port, a charging gun, a battery, a first switch S1 and a second switch S2; wherein the back charging port and the charging gun of each mobile charging vehicle are connected through a total wire, the charging end of the battery is connected with the total wire through S1, and the discharging end of the battery is connected with the total wire through S2; the charging gun of any mobile charging vehicle is connected with the back charging port of the next mobile charging vehicle, and the back charging port of the first mobile charging vehicle is connected with the charging gun of the charging pile; the back charging port of the mobile charging vehicle has charging and discharging functions.
[0022] In this embodiment, the back charging port of the mobile charging vehicle is used to charge the mobile charging vehicle, and the charging gun of the mobile charging vehicle is used to connect the next mobile charging vehicle or charge the new energy vehicle; the first switch S1 can be a relay or a contactor, and the second switch S2 can be a relay or a contactor, which can be specifically selected according to actual needs; the charging end of the battery has charging and discharging functions.
[0023] The specific connection mode of the n mobile charging vehicles is that the charging gun of the preset charging pile is inserted into the back charging port of the first mobile charging vehicle, the charging gun of the first mobile charging vehicle is inserted into the back charging port of the second mobile charging vehicle, the charging gun of the second mobile charging vehicle is inserted into the back charging port of the third mobile charging vehicle, and the n mobile charging vehicles are connected in sequence in the above manner. It can be understood that the charging gun of the last mobile charging vehicle is in an idle state, i.e., a suspended state. It should be noted that the back charging port and the charging gun of each mobile charging vehicle are connected by a total conductor, and thus the n mobile charging vehicles are in a parallel connection relationship.
[0024] The multi-mobile charging vehicle parallel reverse feedback method can include the following steps:
[0025] S100, if the charging gun connected to the back charging port of the current mobile charging vehicle is the charging gun of the charging pile, a first preset control instruction ZL1 is sent to the next mobile charging vehicle connected to the current mobile charging vehicle, so that the next mobile charging vehicle sets the state of the back charging port thereof to a preset idle state through ZL1; otherwise, step S500 is entered.
[0026] In this embodiment, the back charging port of the mobile charging vehicle has a communication function and can obtain device information of the device connected thereto, so as to determine whether the charging gun connected to the back charging port of the current mobile charging vehicle is the charging gun of the charging pile through the obtained device information; if the charging gun connected to the back charging port of the current mobile charging vehicle is the charging gun of the charging pile, it indicates that the current mobile charging vehicle is the first mobile charging vehicle; ZL1 is used to set the state of the corresponding back charging port to an idle state; the idle state can be understood as a state in which the charging gun is not inserted.
[0027] S200, control S1 of the current mobile charging vehicle to be closed, and control S2 of the current mobile charging vehicle to be disconnected.
[0028] In this embodiment, the order of reverse feedback of the mobile charging vehicle is to first feed the mobile charging vehicle connected to the charging pile. If the charging gun connected to the back charging port of the current mobile charging vehicle is the charging gun of the charging pile, S1 of the current mobile charging vehicle is controlled to be closed, and S2 of the current mobile charging vehicle is controlled to be disconnected, so that the current mobile charging vehicle is connected to the charging gun of the charging pile.
[0029] S300, obtaining a current battery capacity Q of the mobile charging vehicle now .
[0030] In this embodiment, Q now may be obtained by a detection control system of the current mobile charging vehicle; Q now is a percentage, for example, Q now = 90% indicates that the current battery capacity of the mobile charging vehicle is 90% of the full capacity.
[0031] S400, if Q now < WT, control S1 of the current mobile charging vehicle to be disconnected; and send a second preset control instruction ZL2 to the next mobile charging vehicle connected to the current mobile charging vehicle, so that the next mobile charging vehicle sets the state of the return charging port thereof to a preset non-idle state through ZL2; wherein WT is a preset second capacity threshold.
[0032] In this embodiment, during the reverse power feeding process of the current mobile charging vehicle, Q now is obtained in real time, and if Q now < WT, it indicates that the battery capacity of the current mobile charging vehicle is low, and it can be considered that the feeding process has been completed, and S1 of the current mobile charging vehicle is controlled to be disconnected, so as to disconnect the battery of the current mobile charging vehicle from the charging gun of the charging pile; the value range of WT can be 0.2-0.3.
[0033] The second preset control instruction ZL2 is sent to the next mobile charging vehicle connected to the current mobile charging vehicle, so that the next mobile charging vehicle sets the state of the return charging port thereof to a preset non-idle state through ZL2, so as to connect the next mobile charging vehicle to the charging gun of the charging pile through the total conductor of the current mobile charging vehicle.
[0034] S500, obtaining a battery capacity Q' of a previous mobile charging vehicle connected to the current mobile charging vehicle now .
[0035] In this embodiment, the current mobile charging vehicle can communicate with the previous and next mobile charging vehicles, so as to obtain the battery capacity of the previous mobile charging vehicle.
[0036] S600, according to Q' now , control the current mobile charging vehicle to perform reverse power feeding to the charging pile.
[0037] Further, step S600 can include the following steps:
[0038] S610, if Q' now < WT, control S1 of the current mobile charging vehicle to be closed, and control S2 of the current mobile charging vehicle to be disconnected.
[0039] In the embodiment, the current mobile charging vehicle is not the first mobile charging vehicle, i.e., is not directly connected with the charging gun of the charging pile; at this time, it is needed to determine whether the previous mobile charging vehicle has completed reverse power feedback, if Q now <WT, it indicates that the previous mobile charging vehicle has completed reverse power feedback, then S1 of the current mobile charging vehicle is closed, so that the current mobile charging vehicle is connected with the charging pile, and S2 of the current mobile charging vehicle is disconnected, so as to close the external charging function of the mobile charging vehicle.
[0040] S611, the battery capacity Q of the current mobile charging vehicle is acquired. now .
[0041] S612, if Q now <WT, S1 of the current mobile charging vehicle is disconnected, and ZL2 is sent to the next mobile charging vehicle connected with the current mobile charging vehicle, so that the next mobile charging vehicle sets the state of the back charging port thereof to a preset non-idle state through ZL2.
[0042] In the process of reverse power feedback of the current mobile charging vehicle, Q now is acquired in real time, if Q now <WT, it indicates that the battery capacity of the current mobile charging vehicle is low, and it can be considered that the power feedback process has been completed, then S1 of the current mobile charging vehicle is disconnected, so that the battery of the current mobile charging vehicle is disconnected with the charging gun of the charging pile.
[0043] ZL2 is sent to the next mobile charging vehicle connected with the current mobile charging vehicle, so that the next mobile charging vehicle sets the state of the back charging port thereof to a preset non-idle state through ZL2, so as to connect the next mobile charging vehicle to the charging gun of the charging pile through the total conductor of the current mobile charging vehicle.
[0044] Further, the step S600 can further include the following steps:
[0045] S630, if Q now <WT, the number NUM of target mobile charging vehicles is acquired; the target mobile charging vehicle is the mobile charging vehicle connected with the current mobile charging vehicle and having a battery capacity less than WT.
[0046] S631, the weight ω of the mobile charging vehicle which has completed power feedback is determined according to NUM and n, ω=NUM / n.
[0047] S632, if ω≥ω', the state of the back charging port of the current mobile charging vehicle is set to a preset idle state, so as to stop the reverse power feedback of the current mobile charging vehicle; ω' is a preset weight threshold of the mobile charging vehicle which has completed power feedback.
[0048] In the embodiment, the n mobile charging vehicles can be used by users during the reverse feedback process, and therefore, a part of the mobile charging vehicles are not used for reverse feedback during the reverse feedback process of the n mobile charging vehicles, so as to cope with the situation that the mobile charging vehicles are suddenly needed by the users; for example, ω'≥0.3; that is, at least 30% of the mobile charging vehicles are not used for reverse feedback.
[0049] Further, the mobile charging vehicle further comprises a third switch S3; one end of the S3 is connected to the charging port of the mobile charging vehicle, and the other end is connected to the connection end of the S1 and the total wire; the mobile charging vehicle sets the state of the charging port to the preset non-idle state through the ZL2, and the method comprises the following steps:
[0050] S410, the S3 of the next mobile charging vehicle is controlled to be disconnected, so that the state of the charging port of the next mobile charging vehicle is the preset idle state.
[0051] In the embodiment, after the next mobile charging vehicle controls the S3 to be disconnected, the charging gun of the previous mobile charging vehicle is still inserted into the charging port of the next mobile charging vehicle, and actually, the charging gun of the previous mobile charging vehicle has been disconnected from the charging port of the next mobile charging vehicle, and therefore, when the S3 of the next mobile charging vehicle is disconnected, the state of the charging port of the next mobile charging vehicle and the state of the charging gun of the previous mobile charging vehicle are both the preset idle state.
[0052] In the embodiment, the state of the charging port of the current mobile charging vehicle and the state of the charging gun of the previous mobile charging vehicle are changed to the preset idle state by setting the S3, and the processor of the mobile charging vehicle does not need to process complex control information, but only needs to control the on-off of the S3, so that the control of the reverse feedback sequence of the mobile charging vehicle is more simple and reliable.
[0053] Further, before the step S100, the method further comprises the following steps:
[0054] S010, obtaining the current time t now .
[0055] S011, if t now is within the preset mobile charging vehicle reverse feedback time period T2, the step S100 is entered; wherein, the working mode of the charging gun of the charging pile is the reverse feedback mode within T2.
[0056] In this embodiment, the reverse power feedback time period of the mobile charging vehicle is generally the power consumption peak time period in the daytime, for example, T2 is 18:00-20:00 of the day; in this time period, the power grid load is relatively high, and the power grid can be reversely fed in this time period to balance the load pressure of the power grid; it should be noted that the working mode of the charging pile includes the outward discharging mode, in which the charging pile can charge the mobile charging vehicle; the working mode of the charging pile also includes the reverse power feedback mode, in which the charging pile can receive the electric energy provided by the mobile charging vehicle and reversely transmit the electric energy provided by the mobile charging vehicle to the power grid to balance the load pressure of the power grid.
[0057] The method for parallel reverse power feedback of multiple mobile charging vehicles in this embodiment, if the charging gun connected to the back charging port of the current mobile charging vehicle is the charging gun of the charging pile, sends a first preset control instruction ZL1 to the next mobile charging vehicle connected to the current mobile charging vehicle, so that the next mobile charging vehicle sets the state of the back charging port of the next mobile charging vehicle to a preset idle state through ZL1; controls S1 of the current mobile charging vehicle to be closed and controls S2 of the current mobile charging vehicle to be disconnected, so that the current mobile charging vehicle reversely feeds the charging pile; and acquires the battery capacity of the current mobile charging vehicle, if the battery capacity of the current mobile charging vehicle is less than a preset second capacity threshold, controls S1 of the current mobile charging vehicle to be disconnected, and ends the power feeding of the current mobile charging vehicle; and sends a second preset control instruction ZL2 to the next mobile charging vehicle connected to the current mobile charging vehicle, so that the next mobile charging vehicle sets the state of the back charging port of the next mobile charging vehicle to a preset non-idle state through ZL2; if the charging gun connected to the back charging port of the current mobile charging vehicle is not the charging gun of the charging pile, acquires the battery capacity Q of the previous mobile charging vehicle connected to the current mobile charging vehicle now , according to Q now , controls the current mobile charging vehicle to reversely feed the charging pile; thereby realizing the automatic reverse power feedback process of multiple mobile charging vehicles; since the entire reverse power feedback process of multiple mobile charging vehicles is realized automatically, the entire power feeding process is relatively simple, and does not need to be manned, and the convenience of reverse power feedback is relatively high.
[0058] In an exemplary embodiment, based on the connection mode of the n mobile charging vehicles in the above embodiment, a method for realizing automatic unattended charging of n mobile charging vehicles is provided, and specifically, the method can include the following steps:
[0059] T100, acquiring the state HC of the back charging port of the current mobile charging vehicle now and the state CD of the charging gun of the current mobile charging vehicle now .
[0060] In the embodiment, whether the return port of the mobile charging vehicle is inserted into the charging gun and whether the charging gun of the mobile charging vehicle is connected to other equipment can be directly obtained by the detection control system of the mobile charging vehicle; therefore, the HC now and CD now ; when the return port is inserted into the charging gun, the corresponding state is the non-idle state, and when the return port is not inserted into the charging gun, the corresponding state is the idle state; when the charging gun of the mobile charging vehicle is inserted into the next mobile charging vehicle, the corresponding state is the non-idle state, and when the charging gun of the mobile charging vehicle is suspended, the corresponding state is the idle state.
[0061] It can be understood that the state of the charging gun of the current mobile charging vehicle is the same as the state of the return port of the next connected mobile charging vehicle.
[0062] T200, if the HC now is the preset non-idle state and the CD now is the preset idle state, the battery capacity Q now of the current mobile charging vehicle is obtained.
[0063] In the embodiment, if the HC now is the preset non-idle state and the CD now is the preset idle state, it indicates that the current mobile charging vehicle is the last mobile charging vehicle, at this time, the detection control system of the current mobile charging vehicle can obtain the battery capacity of the current mobile charging vehicle.
[0064] T300, if Q now Q', the S1 of the current mobile charging vehicle is controlled to be closed, and the S2 of the current mobile charging vehicle is controlled to be disconnected; wherein Q' is a preset first capacity threshold.
[0065] In the embodiment, first, it is judged whether the battery capacity of the current mobile charging vehicle is less than the preset first capacity threshold Q', for example, Q' can be set to 90%; if Q now Q', it indicates that the battery capacity of the current mobile charging vehicle meets the condition of continuing to charge, then the S1 of the current mobile charging vehicle is controlled to be closed, and the S2 of the current mobile charging vehicle is controlled to be disconnected, so that the charging pile charges the last mobile charging vehicle; and the battery capacity of the current mobile charging vehicle is continuously obtained until the battery is fully charged.
[0066] T400, if Q now Q', the S1 of the current mobile charging vehicle is controlled to be disconnected, and the S2 of the current mobile charging vehicle is controlled to be closed; and step T500 is entered.
[0067] In the embodiment, if Q now≥ Q', indicating that the current mobile charging vehicle has a high battery level and does not meet the condition for continuing charging, the S1 of the current mobile charging vehicle is controlled to be disconnected, the S2 of the current mobile charging vehicle is controlled to be connected, so that the current mobile charging vehicle is disconnected from the charging pile and the charging is stopped.
[0068] T500, setting the state of the return charging port of the current mobile charging vehicle to a preset idle state, and setting the state of the charging gun of the previous mobile charging vehicle to a preset idle state.
[0069] In the embodiment, after the current mobile charging vehicle is fully charged, the state of the return charging port of the current mobile charging vehicle is set to a preset idle state, and the state of the charging gun of the previous mobile charging vehicle is set to a preset idle state, so that the previous mobile charging vehicle connected with the current mobile charging vehicle, i.e., the last mobile charging vehicle, is equivalent to the last mobile charging vehicle, thereby being able to enter step T100 to continue to perform the above steps for charging.
[0070] If the last mobile charging vehicle is disconnected from the previous mobile charging vehicle by the user when the battery of the last mobile charging vehicle is not fully charged, the previous mobile charging vehicle becomes the last mobile charging vehicle, thereby being able to perform step T100 for charging.
[0071] The parallel charging method of the plurality of mobile charging vehicles in the embodiment is that the charging gun of any mobile charging vehicle of the n mobile charging vehicles is connected with the return charging port of the next mobile charging vehicle, and the return charging port of the first mobile charging vehicle is connected with the charging gun of the charging pile; the state HC of the return charging port of the current mobile charging vehicle is obtained now and the state CD of the charging gun of the current mobile charging vehicle is obtained now ; whether the current mobile charging vehicle is the mobile charging vehicle currently in need of charging is determined according to HC now and CD now ; if the current mobile charging vehicle is the mobile charging vehicle in need of charging, the battery level Q of the current mobile charging vehicle is obtained now ; if Q now < Q', the S1 is controlled to be connected and the S2 is controlled to be disconnected; thereby the current mobile charging vehicle is charged; if Q now ≥ Q', indicating that the charging is completed, the S1 is controlled to be disconnected and the S2 is controlled to be connected; thereby the charging can be realized from the last connected mobile charging vehicle to the front one by one, the whole charging process is relatively simple, and a dedicated person is not needed to be on duty, which is good in convenience.
[0072] In addition, when the user uses the mobile charging vehicle, the last connected mobile charging vehicle can be used first, and the battery of the last connected mobile charging vehicle has the largest power, which meets the use demand of the actual scene; and the last connected mobile charging vehicle is only connected with the charging gun of the previous mobile charging vehicle through the self-recharging port, and after the connection is disconnected, it does not affect the remaining mobile charging vehicle to continue charging, further improving the convenience.
[0073] Further, after step T100 and before step T200, the method comprises the following steps:
[0074] T110, if HC now and CD now are both preset non-idle states, control S1 and S2 of the current mobile charging vehicle to be disconnected.
[0075] In this embodiment, if HC now and CD now are both preset non-idle states, it indicates that the recharging port of the current mobile charging vehicle is inserted with a charging gun, and the charging gun of the current mobile charging vehicle is also inserted in the recharging port of another mobile charging vehicle, it can be determined that the current mobile charging vehicle is not the last mobile charging vehicle; then, S1 and S2 of the current mobile charging vehicle should be controlled to be disconnected, so that the current mobile charging vehicle is in the state of queuing for charging.
[0076] T120, if HC now is a preset idle state, control S1 of the current mobile charging vehicle to be disconnected, and control S2 of the current mobile charging vehicle to be closed.
[0077] In this embodiment, if HC now is a preset idle state, it indicates that the recharging port of the current mobile charging vehicle is not inserted with a charging gun, then control S1 of the current mobile charging vehicle to be disconnected, and control S2 of the current mobile charging vehicle to be closed, so that the current mobile charging vehicle can charge the external new energy vehicle at any time.
[0078] Further, before step T100, the method can comprise the following steps:
[0079] T010, acquiring the current time t now .
[0080] T011, if t now is within a preset mobile charging vehicle charging time period T1, enter step T100; wherein the working mode of the charging gun of the charging pile within T1 is the outward discharging mode.
[0081] In this embodiment, the power supplement time period of the mobile charging vehicle is generally at night, for example, T1 is 22:00 of the current day to 6:00 of the next day; during this time period, the mobile charging vehicle is used by the user less frequently, and it is suitable to supplement power during this time period; it should be noted that the working mode of the charging pile includes a power output mode, in which the charging pile can charge the mobile charging vehicle; the working mode of the charging pile also includes a reverse power feedback mode, in which the charging pile can receive the power provided by the mobile charging vehicle and reversely transmit the power provided by the mobile charging vehicle to the power grid to balance the load pressure of the power grid.
[0082] Further, the mobile charging vehicle further comprises a third switch S3; one end of S3 is connected to the back charging port of the mobile charging vehicle, and the other end is connected to the connection end of S1 and the total conductor; S3 can be a relay or a contactor; step T500 can comprise the following steps:
[0083] T510, control S3 of the current mobile charging vehicle to be disconnected, so that the state of the back charging port of the current mobile charging vehicle and the state of the charging gun of the previous mobile charging vehicle are both in a preset idle state.
[0084] In this embodiment, after controlling S3 to be disconnected, although the charging gun of the previous mobile charging vehicle is still inserted into the back charging port of the current mobile charging vehicle, in fact, the charging gun of the previous mobile charging vehicle has been disconnected from the back charging port of the current mobile charging vehicle, therefore, under the condition that S3 is disconnected, the state of the back charging port of the current mobile charging vehicle and the state of the charging gun of the previous mobile charging vehicle are both in a preset idle state.
[0085] In this embodiment, by setting S3, the state of the back charging port of the current mobile charging vehicle and the state of the charging gun of the previous mobile charging vehicle are both changed to a preset idle state, without the processor of the mobile charging vehicle processing complex control information, only the on-off of S3 needs to be controlled, and communication with the adjacent connected mobile charging vehicle is not required, so that the control of the charging sequence of the mobile charging vehicle is more simple and reliable.
[0086] In addition, through the above method, even in the case that the last mobile charging vehicle is fully charged and not disconnected by the user, the previous mobile charging vehicle can also be automatically switched to be charged, realizing unattended charging.
[0087] Further, the range of Q' can be 0.85-0.95, for example, Q' is 0.9; the range of Q' can also be adjusted according to actual needs.
[0088] Further, Q' is determined according to the current t now and the preset mobile charging vehicle charging time period T1, specifically, it can comprise the following steps:
[0089] T310, obtaining current time t now .
[0090] T320, if t now is within T1, obtaining the start time t1 and the end time t2 corresponding to T1.
[0091] T330, obtaining t now and the time interval TA with t1 and the time interval TB with t2. now .
[0092] T340, obtaining the target time interval TC=MIN(TA, TB) and the preset range FQ=[FQ1, FQ2] corresponding to Q'; wherein MIN() is a preset minimum value function; FQ1 is the minimum first electric quantity threshold corresponding to Q', and FQ2 is the maximum first electric quantity threshold corresponding to Q'.
[0093] In this embodiment, for example, FQ1 can be 0.85, and FQ2 can be 0.95.
[0094] T350, determining Q'=FQ1+TC×(FQ2-FQ1) / (0.5×(t2-t1)) according to TC, T1 and FQ.
[0095] In this embodiment, Q' determined by the above method is dynamically variable, because the middle time of T1 is the time when the mobile charging car is used with the lowest probability, at this time, Q' is set to be larger, so that the battery electric quantity of each mobile charging car when fully charged is higher; and the time interval TA with t1 or TB with t2 is smaller, the probability of the mobile charging car being used is larger, at this time, Q' is set to be smaller, so that the speed of the mobile charging car when fully charged is improved, thereby providing a larger number of mobile charging cars fully charged for the user. now
[0096] In addition, although the steps of the method in the present disclosure are described in a specific order in the accompanying drawings, this does not require or imply that the steps must be performed in this specific order, or that all the steps shown must be performed to achieve the desired results. In addition or alternatively, some steps can be omitted, a plurality of steps can be combined into one step, and / or one step can be divided into a plurality of steps, etc.
[0097] The embodiments of the present application also provide a non-transitory computer readable storage medium, which can be arranged in an electronic device to save at least one instruction or at least one program related to a method in the method embodiments, and the at least one instruction or the at least one program is loaded and executed by the processor to implement the method provided by the above-mentioned embodiments.
[0098] The program product can employ any combination of one or more computer-readable media. The computer-readable media can be a computer-readable storage medium or a computer-readable signal medium. The computer-readable storage medium can be, for example, but not limited to, an electronic, magnetic, optical, electromagnetic, infrared, or semiconductor system, apparatus, or device, or any suitable combination of the foregoing. More specific examples (a non-exhaustive list) of the computer-readable storage medium include the following: an electrical connection having one or more wires, a portable disc, a hard disk, a random access memory (RAM), a read-only memory (ROM), an erasable programmable read-only memory (EPROM or Flash memory), an optical fiber, a portable compact disc read-only memory (CD-ROM), an optical storage device, a magnetic storage device, or any suitable combination of the foregoing.
[0099] The computer-readable signal medium can include a computer-readable storage medium that is propagated as a carrier wave. The computer-readable signal medium can be any computer-readable medium that is not a computer-readable storage medium and that can communicate, propagate or transport programming code.
[0100] The program code embodied on the computer-readable media can be transmitted using any appropriate medium, including but not limited to wireless, wired, optical fiber cable, RF, etc., or any suitable combination of the foregoing.
[0101] The program code can be executed by one or more programmable processors, which can be implemented using one or more microprocessors, microcontrollers, digital signal processors, application specific integrated circuits, field programmable gate arrays, programmable logic devices, or the like. The program code can be written in any combination of one or more programming languages, including an object oriented programming language such as Java, C++, or the like, and conventional procedural programming languages, such as the "C" programming language or the like. The program code can execute entirely on the user's computing device, partly on the user's computing device, as a stand-alone software package, partly on the user's computing device and partly on a remote computing device or entirely on the remote computing device or server. In the latter scenario, the remote computing device can be connected to the user's computing device through any type of network, including a local area network (LAN) or a wide area network (WAN), or the connection can be made to an external computing device, such as through the Internet using an Internet Service Provider. The application is not limited to the above-mentioned combinations of hardware and software.
[0102] An electronic device provided by an embodiment of the present application includes a processor and the aforementioned non-transitory computer-readable storage medium.
[0103] The electronic device is merely an example, and should not bring any limitation to the functions and usage scope of the embodiments of the present application.
[0104] The electronic device is in the form of a general purpose computing device. Components of the electronic device can include, but are not limited to, the at least one processor, the at least one memory, a bus that connects the different system components including the memory and the processor.
[0105] The memory stores a program code that can be executed by the processor, such that the processor performs the steps in the various embodiments described in this specification.
[0106] The memory can include a readable medium in the form of volatile memory, such as random access memory (RAM) and / or cache memory, and can further include read only memory (ROM).
[0107] The memory can further include program / utility programs having a set of (at least one) program modules that include, but are not limited to, an operating system, one or more application programs, other program modules, and program data, each or a combination thereof that can include implementation of a network environment.
[0108] The bus can be representative of one or more of several types of bus structures, including a memory bus or memory controller, a peripheral bus, a graphics acceleration port, a processor or local bus using any of a variety of bus structures.
[0109] The electronic device can also communicate with one or more external devices such as a keyboard or pointing device, a Bluetooth device, etc. through an input / output (I / O) interface. The electronic device can also communicate with one or more devices that enable a user to interact with the electronic device, and / or one or more devices (e.g., a router, a modem, etc.) that enable the electronic device to communicate with one or more other computing devices. Such communication can occur via an I / O interface. Still yet, the electronic device can communicate with one or more networks (such as a local area network (LAN), a wide area network (WAN), and / or the Internet) through a network adapter. It should be appreciated that the network adapter can be collectively provided as a communication component, and can be provided as a part of the bus in some implementations. Furthermore, the electronic device can be a part of a multiprocessor system, and on that account, various features discussed in this specification can be provided on each of the processors. The electronic device can also be provided as a part of a distributed system having numerous component devices, where each component device performs tasks according to a particular specialization. In this regard, various features discussed in this specification can be provided on each of the component devices.
[0110] Those skilled in the art can clearly understand the example embodiments described herein through the above description of the example embodiments, and the example embodiments described herein can be implemented by software or by software in combination with necessary hardware. Therefore, the technical solutions according to the embodiments of the present disclosure can be embodied in the form of a software product, which can be stored in a non-volatile storage medium (which can be a CD-ROM, a USB flash disk, a mobile hard disk, or the like) or on a network, and includes a number of instructions to enable a computing device (which can be a personal computer, a server, a terminal device, or a network device, etc.) to perform the methods according to the embodiments of the present disclosure.
[0111] Embodiments of the present disclosure also provide a computer program product comprising program code for causing an electronic device to perform the steps of the methods according to the various example embodiments of the present disclosure described above in the specification when the program product is run on the electronic device.
[0112] Although some specific embodiments of the present disclosure have been described in detail by way of examples, those skilled in the art should understand that the above examples are only for illustration, and are not intended to limit the scope of the present disclosure. Those skilled in the art should also understand that various modifications can be made to the embodiments without departing from the scope and spirit of the present disclosure.
Claims
1. A method for parallel reverse power feeding of a plurality of mobile charging vehicles, characterized in that, The method is applied to any of n mobile charging vehicles, each of which comprises a return charging port, a charging gun, a battery, a first switch S1 and a second switch S2; wherein the return charging port and the charging gun of each mobile charging vehicle are connected through a total wire, the charging end of the battery is connected with the total wire through S1, and the discharging end of the battery is connected with the total wire through S2; the charging gun of any mobile charging vehicle is connected with the return charging port of the next mobile charging vehicle, and the return charging port of the first mobile charging vehicle is connected with the charging gun of the charging pile; the return charging port of the mobile charging vehicle has charging and discharging functions; The method comprises the following steps: S100, if the charging gun connected with the return charging port of the current mobile charging vehicle is the charging gun of the charging pile, a first preset control instruction ZL1 is sent to the next mobile charging vehicle connected with the current mobile charging vehicle, so that the next mobile charging vehicle sets the state of the return charging port thereof to a preset idle state through ZL1; otherwise, step S500 is entered; S200, S1 of the current mobile charging vehicle is controlled to be closed, and S2 of the current mobile charging vehicle is controlled to be disconnected; S300, acquire the current battery capacity Q of the mobile charging vehicle now ; S400, if Q now If WT, control S1 of the current mobile charging vehicle to be disconnected; and send a second preset control instruction ZL2 to the next mobile charging vehicle connected with the current mobile charging vehicle, so that the next mobile charging vehicle sets the state of the back charging port thereof to a preset non-idle state through ZL2; wherein WT is a preset second electric quantity threshold. S500, acquire the battery capacity Q' of the previous mobile charging vehicle connected with the current mobile charging vehicle now ; S600, according to Q' now , control the current mobile charging vehicle to carry out reverse power feeding to the charging pile; Step S600 comprises the following steps: S630, if Q now If WT, the number of target mobile charging vehicles NUM is obtained; wherein the target mobile charging vehicle is a mobile charging vehicle connected to the current mobile charging vehicle and having a battery charge less than WT. S631, according to NUM and n, the weight ω=NUM / n of the mobile charging vehicle that has completed feeding is determined; S632, if ω≥ω', the state of the return charging port of the current mobile charging vehicle is set to a preset idle state to stop the reverse feeding of the current mobile charging vehicle; ω' is a preset weight threshold of the mobile charging vehicle that has completed feeding; The method further comprises the following steps: T100, acquire the current state HC of the charging inlet of the mobile charging vehicle now and the current state CD of the charging gun of the mobile charging vehicle now; T200, if HC now is a preset non-idle state and CD now is a preset idle state, then obtain the current battery capacity Q now of the mobile charging vehicle T300, if Q now if Q' is met, S1 of the current mobile charging vehicle is closed and S2 of the current mobile charging vehicle is opened; wherein Q' is a preset first electric quantity threshold. Q' is determined by the following steps: T310, obtain the current time t now ; T320, if t now If within T1, the starting time t1 and the ending time t2 corresponding to the preset mobile charging vehicle charging time period T1 are obtained. T330, obtain t now a time interval TA with t1 and now a time interval TB with t2; T340, a target time interval TC=MIN(TA, TB) and a preset range FQ=[FQ1, FQ2] corresponding to Q' are obtained; wherein MIN() is a preset minimum value function; FQ1 is a minimum first electric quantity threshold corresponding to Q', and FQ2 is a maximum first electric quantity threshold corresponding to Q'; T350, according to TC, T1 and FQ, Q'=FQ1+TC×(FQ2-FQ1) / (0.5×(t2-t1)) is determined; T400, if Q now ≥ Q', then control S1 of the current mobile charging vehicle to be disconnected, control S2 of the current mobile charging vehicle to be closed; enter step T500; T500, the state of the return charging port of the current mobile charging vehicle is set to a preset idle state, and the state of the charging gun of the previous mobile charging vehicle is set to a preset idle state.
2. The method of claim 1, wherein, The mobile charging vehicle further comprises a third switch S3; wherein one end of S3 is connected with the return charging port of the mobile charging vehicle, and the other end is connected with the connection end of S1 and the total wire; the next mobile charging vehicle sets the state of the return charging port thereof to a preset non-idle state through ZL2, comprising the following steps: S410, S3 of the next mobile charging vehicle is controlled to be disconnected, so that the state of the return charging port of the next mobile charging vehicle is a preset idle state.
3. The method of claim 1, wherein, Before step S100, the method comprises the following steps: S010, obtaining current time t now ; S011, if t now If the preset reverse power feeding time period T2 of the mobile charging vehicle is reached, step S100 is entered; in which the working mode of the charging gun of the charging pile is the reverse power feeding mode.
4. The method of claim 1, wherein, The value range of WT is 0.2-0.
3.
5. A non-transitory computer-readable storage medium having stored therein at least one instruction or at least one piece of program, characterized in that, The at least one instruction or the at least one program is loaded and executed by the processor to realize the multi-mobile charging vehicle parallel reverse feeding method according to any one of claims 1-4.
6. An electronic device, comprising: The processor and the non-transitory computer readable storage medium of claim 5 are included. The at least one instruction or the at least one program is loaded and executed by the processor to realize the multi-mobile charging vehicle parallel reverse feeding method according to any one of claims 1-4. The processor and the non-transitory computer readable storage medium of claim 5 are included.
Citation Information
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