Automobile charging gun use state prompting method, computer device and storage medium
By detecting the plug-in status and charging progress status of the charging gun, and using functional components of the car such as rearview mirrors and windows to transmit the charging gun status, the design redundancy and reliability issues of the status prompt of the charging gun in new energy vehicles are solved, and efficient and reliable status prompts are achieved.
Patent Information
- Application Number
- CN202411277460.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-12
- Publication Date
- 2025-10-17
- Estimated Expiration
- 2044-09-12
AI Technical Summary
The existing method for indicating the usage status of charging guns for new energy vehicles has problems such as design redundancy and the easy damage of dedicated indicator lights, which affects the reliability of the charging gun usage status indication.
By detecting the plug-in status and charging progress status information of the charging gun, control instructions are generated to control the functional components of the vehicle to perform functional actions to indicate the usage status of the charging gun. The functional components of the vehicle itself, such as rearview mirrors and windows, are used to transmit status information, avoiding reliance on a single dedicated indicator light.
It has achieved the goal of reducing design redundancy and failure rate under the concept of vehicle design, clearly displaying the status of the charging gun through diversified channels, and improving the reliability and efficiency of the usage status prompt.
Smart Images

Figure CN119116835B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of automobiles, and in particular to a method for prompting the use state of a charging gun of an automobile, a computer device, and a storage medium. BACKGROUND
[0002] The charging gun is a device for connecting the charging interface of a new energy automobile, especially a pure electric automobile, to an external power source such as a charging pile. The charging gun needs to be used correctly to normally charge the new energy automobile. Therefore, the use state of the charging gun needs to be accurately prompted to the user, so that the user can know whether the charging gun is used normally, thereby adjusting in time when the charging gun is not used normally to ensure normal charging of the new energy automobile, or disconnecting the charging gun from the new energy automobile in time after the charging gun has completed the charging task, on the one hand to avoid the danger of the new energy automobile being continuously connected to the external high-voltage power source, and on the other hand to release the charging gun to other people in time to ensure the use efficiency of the charging gun and the overall charging efficiency.
[0003] In the current new energy automobile technology, a charging gun use state detection component and an indicator light are usually arranged on the automobile to detect the use state of the charging gun, display the use state of the charging gun through the indicator light, and enable the user to know whether the charging gun is normally inserted into the charging interface of the automobile, whether the charging of the automobile is completed, and the like by observing the color, brightness, or flashing frequency of the indicator light. However, the current new energy automobile technology needs to arrange a special indicator light for displaying the use state of the charging gun, does not consider the overall vehicle design concept, produces design redundancy, and increases the use cost. On the other hand, the special indicator light has the possibility of being damaged, thereby affecting the operation of the important basic function of prompting the use state of the charging gun. SUMMARY
[0004] In view of the technical problems in the prior art that the use state of the charging gun of the automobile cannot be prompted in the prior art, the use state of the charging gun cannot be prompted in the prior art, and the use state of the charging gun cannot be prompted in the prior art, the purpose of the present application is to provide a method for prompting the use state of the charging gun of the automobile, a computer device, and a storage medium.
[0005] In one aspect, the present application includes a method for prompting the use state of the charging gun of the automobile, the method comprising the following steps:
[0006] detecting charging gun use state information; the charging gun use state information indicating the use state of the charging gun on the target automobile;
[0007] generating a control instruction according to the charging gun use state information;
[0008] Using the control instruction, control the corresponding automobile function component on the target automobile to perform a function action.
[0009] Further, the detection of the charging gun use state information includes:
[0010] Detecting the gun insertion state of the charging gun on the target automobile to obtain gun insertion state information;
[0011] Detecting the progress state of the target automobile charging through the charging gun to obtain charging progress state information;
[0012] The gun insertion state information and / or the charging progress state information are used as the charging gun use state information.
[0013] Further, the control instruction generated according to the charging gun use state information includes:
[0014] When the charging gun use state information is the gun insertion state information, a first target function component on the target automobile is determined, and a first control instruction is generated; the first control instruction is used to control the first target function component to perform a corresponding function action once or repeatedly multiple times.
[0015] Further, the control instruction generated according to the charging gun use state information includes:
[0016] When the charging gun use state information is the gun insertion state information, a first target function component and a second target function component on the target automobile are determined, and a first control instruction and a second control instruction are generated; the first control instruction is used to control the first target function component to perform a corresponding function action once or repeatedly multiple times, and the second control instruction is used to control the second target function component to perform a corresponding function action once or repeatedly multiple times.
[0017] Further, the automobile charging gun use state prompting method further includes:
[0018] Detecting the function action execution state of the first target function component and the second target function component;
[0019] According to the function action execution state of the first target function component and the second target function component, the performance state of the first target function component and the second target function component is determined.
[0020] Further, the control instruction generated according to the charging gun use state information includes:
[0021] When the charging gun use state information is the charging progress state information, a third target function component on the target automobile is determined;
[0022] determine a lower limit of a functional action amplitude and an upper limit of the functional action amplitude of the third target functional component;
[0023] determine a current functional action amplitude according to the charging gun use state information, the lower limit of the functional action amplitude and the upper limit of the functional action amplitude;
[0024] generate a third control instruction; the third control instruction is used for controlling the third target functional component to perform a functional action corresponding to the current functional action amplitude.
[0025] Further, the third target functional component on the target automobile is determined, comprising:
[0026] obtain a functional component list of the target automobile;
[0027] detect charging environment information; the charging environment information describes a natural environment and / or a social environment where the target automobile and the charging gun are located;
[0028] select a corresponding functional component from the functional component list as the third target functional component according to the charging environment information.
[0029] Further, the third target functional component on the target automobile is determined, comprising:
[0030] obtain a functional component list of the target automobile;
[0031] detect user position information; the user position information indicates a relative position of a user of the target automobile and the target automobile;
[0032] select a functional component with a corresponding position from the functional component list as the third target functional component according to the user position information.
[0033] Further, the control instruction is generated according to the charging gun use state information, comprising:
[0034] when the charging gun use state information is plug-in state information, and the plug-in state information meets a first preset condition, determine a fourth target functional component on the target automobile, and generate a fourth control instruction; the fourth control instruction is used for controlling the fourth target functional component to enter a user uncontrollable state;
[0035] dynamically update the plug-in state information;
[0036] when it is detected that the updated plug-in state information meets a second preset condition, generate a fifth control instruction; the fifth control instruction is used for controlling the fourth target functional component to enter a user controllable state.
[0037] On the other hand, an embodiment of the present invention also includes a computer device, including a memory and a processor, the memory is used to store at least one program, and the processor is used to load at least one program to execute the vehicle charging gun usage status prompt method in the embodiment.
[0038] On the other hand, an embodiment of the present invention further includes a computer-readable storage medium storing a program executable by a processor. When the program is executed by the processor, it is used to execute the method for prompting the usage status of a vehicle charging gun in the embodiment.
[0039] The beneficial effects of the present invention are as follows: the method for prompting the usage status of a car charging gun in the embodiment can convey the usage status information of the charging gun to the user in an obvious manner by controlling the functional components on the target car to perform functional actions, which is conducive to implementing the whole vehicle design concept when designing the car, reducing design redundancy, thereby reducing usage costs and failure rates, and can display the usage status of the charging gun through a variety of channels, avoiding reliance on a single functional component so that the usage status of the charging gun cannot be displayed when the functional component fails. BRIEF DESCRIPTION OF THE DRAWINGS
[0040] Figure 1 Schematic diagram of the structure of a vehicle system to which the method for prompting the use status of a vehicle charging gun in an embodiment can be applied;
[0041] Figure 2 Schematic diagram of the steps of the method for prompting the usage status of a car charging gun in an embodiment;
[0042] Figure 3 Schematic diagram of the combination of the first target functional component and the second target functional component in the embodiment. DETAILED DESCRIPTION
[0043] In this embodiment, the method for prompting the use status of the car charging gun can be applied to Figure 1 In the vehicle system shown. Figure 1 The vehicle-mounted system includes a control module, a charger status detection module, a charging progress detection module, and multiple functional components. These components include rearview mirrors (with electrically adjustable opening and closing), windows, exterior lights, speakers, variable suspension, heads-up display, audio and video entertainment system, variable transparency glass, and windshield wipers. These functional components are installed on the vehicle with specific functions and are not specifically used to indicate the status of the charger. For example, the rearview mirror provides rearview vision for occupants and can be electrically adjusted to adjust the degree of opening and closing, thereby adjusting the rearward viewing angle. The windows provide a connection or separation between the interior and the exterior and can be electrically adjusted to open.
[0044] In this embodiment, the operation performed by a functional component when it implements its function is referred to as the functional action of the functional component. For example, the functional action of a rearview mirror includes adjusting its opening degree by extending or retracting, the functional action of a window includes adjusting its opening degree by raising or lowering the glass sheet, the functional action of an exterior light includes adjusting its brightness or illumination range, the functional action of a horn includes emitting sound, the functional action of a variable suspension includes adjusting its height, the functional action of a heads-up display includes displaying text or graphic content, the functional action of an audio-visual entertainment system includes playing music or video, the functional action of a variable transparency glass includes adjusting its transparency, and the functional action of a windshield wiper includes wiping the windshield.
[0045] In this embodiment, the plug-in state detection module can detect the plug-in state of the charging gun to the charging interface of the target vehicle. Specifically, the plug-in state detection module can be in the form of a photoelectric detector, a contact sensor, or a loop detector, etc. The photoelectric detector or the contact sensor can detect the position of the charging gun and determine whether the charging gun reaches a predetermined position, thereby determining whether the charging gun is correctly plugged into the charging interface of the target vehicle. The loop detector can send a detection signal to a specific contact of the charging gun, and determine whether the corresponding return signal is received, thereby determining whether the charging gun is correctly plugged into the charging interface of the target vehicle. The plug-in state detection module generates plug-in state information to indicate whether the charging gun is correctly plugged into the charging interface of the target vehicle. For example, the content of the plug-in state information can be “0” or “1”, where “0” indicates that the charging gun is not correctly plugged into the charging interface of the target vehicle, and “1” indicates that the charging gun is correctly plugged into the charging interface of the target vehicle.
[0046] In this embodiment, the charging progress state detection module can detect the charging progress state of the charging gun to the power battery in the target vehicle and generate charging progress state information to indicate. Specifically, the charging progress state detection module can be a battery management system (BMS) in the target vehicle, which detects the state of charge (SOC) of the power battery as the charging progress state information; or the charging progress state detection module can be a coulomb counter, which detects the cumulative amount of current and time of the charging gun when the charging gun charges the power battery as the charging progress state information.
[0047] In this embodiment, the plug-in status information generated by the plug-in status detection module can represent the use status of the charging gun from the aspect of whether the charging gun is correctly plugged into the charging interface of the target vehicle, and the charging progress status information generated by the charging progress status detection module can represent the use status of the charging gun from the aspect of the charging progress of the power battery of the target vehicle by the charging gun. Therefore, the plug-in status information and the charging progress status information can each be used as the charging gun use status information alone or in combination as the charging gun use status information.
[0048] In this embodiment, the vehicle equipped with the vehicle-machine system shown in Figure 1 The vehicle to which the vehicle-machine system shown in FIG. 1 is installed, that is, a specific vehicle to which the vehicle charging gun use status prompting method is applied, is referred to as a target vehicle. Each step in the vehicle charging gun use status prompting method can be performed by a control module in the target vehicle. When the control module needs to collect data or perform certain operations in performing some steps, it can call other components to collect data or perform operations.
[0049] Referring to Figure 2 , the vehicle charging gun use status prompting method includes the following steps:
[0050] S1. detecting charging gun use status information;
[0051] S2. generating a control instruction according to the charging gun use status information;
[0052] S3. using the control instruction to control the corresponding vehicle functional component on the target vehicle to perform a functional action.
[0053] The charging gun use status information represents the use status of the charging gun on the target vehicle. In step S1, the control module can call the plug-in status detection module to obtain plug-in status information, call the charging progress status detection module to obtain charging progress status information, use the plug-in status information as the charging gun use status information, or use the charging progress status information as the charging gun use status information, or use the plug-in status information and the charging progress status information in combination as the charging gun use status information.
[0054] In step S2, the control module can determine whether the charging gun use status information meets a specific condition. When the charging gun use status information meets the specific condition, the control module generates a control instruction; if it is determined that the charging gun use status information does not meet the specific condition, the control module does not generate a control instruction, and therefore does not perform subsequent step S3.
[0055] If the control module generates a control instruction in step S2, the control module continues to perform step S3, and sends the control instruction to Figure 1The one or more function components are shown to control the function components on the target vehicle to perform function actions through the control instructions. Since the process of the function components performing function actions, such as the rearview mirror adjusting its opening degree, the window adjusting its opening degree, etc., can be easily observed by the user, the charging gun use state information can be transmitted to the user in an obvious way; since the function components of the vehicle performing function actions can be the function components that the target vehicle itself has, and do not need to be components (such as indicator lights) specially used to display the charging gun use state information, the implementation of the overall vehicle design concept during the design of the vehicle is facilitated, the design redundancy is reduced, the use cost and failure rate are reduced, and since the function components that the target vehicle itself has can be called to transmit the charging gun use state information, the use state of the charging gun can be displayed through diversified ways, and the dependence on a single function component is avoided, so that the use state of the charging gun cannot be displayed when the function component fails.
[0056] In this embodiment, when the step S2, that is, the step of generating the control instructions according to the charging gun use state information, is performed, the following steps can be performed:
[0057] S201A. When the charging gun use state information is the plug-in state information, determine the first target function component on the target vehicle, and generate the first control instruction.
[0058] The step S201A is the first execution mode of the step S2.
[0059] In the step S201A, if the control module detects that the charging gun use state information is the plug-in state information, and the plug-in state information indicates that the charging gun is not correctly plugged into the charging interface of the target vehicle (for example, the content of the plug-in state information is “0”), the control module can generate the first control instruction, where the first control instruction is used to control the first target function component to repeatedly perform the corresponding function action for one time or multiple times.
[0060] When the control module performs the step S201A, the first target function component can be selected first. The first target function component is a specific function component on the target vehicle, and the control module can randomly select a function component from a function component list of the target vehicle as the first target function component. After the first target function component is selected, the control module can generate the first control instruction according to the function action that the first target function component can perform.
[0061] For example, if the control module selects the rearview mirror as the first target functional component, the control module can generate the first control instruction, and when the control module executes step S3, the control module sends the first control instruction to the rearview mirror, so as to control the rearview mirror to execute the functional action of “changing the opening degree from the minimum opening to the maximum” once or repeatedly execute the functional actions of “changing the opening degree from the minimum opening to the maximum” and “changing the opening degree from the maximum folding to the minimum” repeatedly; if the control module selects the window as the first target functional component, the control module can generate the first control instruction, and when the control module executes step S3, the control module sends the first control instruction to the window, so as to control the window to execute the functional action of “changing the opening degree from the minimum lifting to the maximum” once or repeatedly execute the functional actions of “changing the opening degree from the minimum lifting to the maximum” and “changing the opening degree from the maximum lowering to the minimum” repeatedly; if the control module selects the variable suspension as the first target functional component, the control module can generate the first control instruction, and when the control module executes step S3, the control module sends the first control instruction to the variable suspension, so as to control the variable suspension to execute the functional action of “changing the height from the minimum lifting to the maximum” once or repeatedly execute the functional actions of “changing the height from the minimum lifting to the maximum” and “changing the height from the maximum lowering to the minimum” repeatedly.
[0062] By executing step S201A, the user can understand the specific content of the plug-in state information by observing the obvious functional action performed by the first target functional component, for example, understand the abnormal state of “the charging gun is not correctly plugged into the charging interface of the target vehicle”, so as to take adjustment measures in time and ensure the smooth and safe charging process.
[0063] In this embodiment, when executing step S2, that is, generating the control instruction according to the charging gun use state information, the following steps can be executed:
[0064] S201B. When the charging gun use state information is the plug-in state information, determining the first target functional component and the second target functional component on the target vehicle, and generating the first control instruction and the second control instruction.
[0065] Step S201B is the second execution mode of step S2.
[0066] In step S201B, the first target functional component and the second target functional component can be different functional components on the target vehicle, wherein the first control instruction is used to control the first target functional component to execute the corresponding functional action, and the second control instruction is used to control the second target functional component to execute the corresponding functional action.
[0067] On the basis of performing step S201B, the control module can send the first control instruction to the first target functional component and the second control instruction to the second target functional component when performing step S3, or can send the first control instruction to the first target functional component first, and then send the second control instruction to the second target functional component after the sending of the first control instruction is completed.
[0068] In step S201B, the first target functional component and the second target functional component can be randomly selected respectively, thereby forming Figure 3 The combination of the various different functional components and the functional actions performed by them as shown. After performing step S3, the functional action performed by the first target functional component realizes a first reminder to the user, and the functional action performed by the second target functional component realizes a second reminder to the user, thereby realizing a multiple reminder to the user, making it easier for the user to understand the specific content of the plug-in state information, such as understanding the abnormal state of "the charging gun is not correctly inserted into the charging interface of the target vehicle", so as to take timely adjustment measures and ensure the smooth and safe progress of the charging process; moreover, through the multiple reminders to the user, multiple functional components can be called, avoiding the damage of one of the called first target functional component and second target functional component, which leads to the inability to perform the functional action to prompt.
[0069] In this embodiment, on the basis of performing step S201B, after performing step S3, the following steps can also be performed:
[0070] S4. Detect the functional action execution state of the first target functional component and the second target functional component;
[0071] S5. According to the functional action execution state of the first target functional component and the second target functional component, judge the performance state of the first target functional component and the second target functional component.
[0072] After performing step S201B, the first control instruction and the second control instruction are generated, and when performing step S3, the control module uses the first control instruction to control the first target functional component to perform the functional action, and uses the second control instruction to control the second target functional component to perform the functional action, i.e. in the normal state, the first target functional component and the second target functional component perform their own functional actions respectively.
[0073] In step S4, the control module can call the self-checking function of the first target functional component and the second target functional component to detect the function action execution state of each. The function action execution state of the first target functional component indicates whether the function action controlled and executed by the first control instruction is completely executed (including whether the function action is executed and whether the amplitude of the function action is consistent with the first control instruction, etc.), and the function action execution state of the second target functional component indicates whether the function action controlled and executed by the second control instruction is completely executed (including whether the function action is executed and whether the amplitude of the function action is consistent with the second control instruction, etc.). The first target functional component and the second target functional component return the function action execution state obtained by self-checking to the control module respectively.
[0074] In step S5, the control module determines the performance state of the first target functional component and the second target functional component according to the function action execution state of the first target functional component and the second target functional component. The performance state of the first target functional component indicates whether the first target functional component is damaged and the degree of damage, and the performance state of the second target functional component indicates whether the second target functional component is damaged and the degree of damage. For example, in the case that the function action execution state of the first target functional component indicates that the first target functional component executes normal function action, and the function action execution state of the second target functional component indicates that the second target functional component does not execute function action, the control module can determine that the performance state of the first target functional component is normal, and the performance state of the second target functional component is faulty; in the case that the function action execution state of the first target functional component and the second target functional component both indicate that no function action is executed, the control module can determine that the transmission channel of the first control instruction and the second control instruction is interfered, or determine that the performance state of the first target functional component and the second target functional component are both faulty, and further execute fault elimination.
[0075] By executing steps S4-S5, the control module can automatically perform fault elimination in the control process of the first target functional component and the second target functional component, thereby improving the reliability and stability of the car machine system.
[0076] In this embodiment, when executing step S2, that is, generating the control instruction according to the charging gun use state information, the following steps can be executed:
[0077] S201C. When the charging gun use state information is charging progress state information, determining a third target functional component on the target vehicle;
[0078] S202C. Determining the function action amplitude lower limit and the function action amplitude upper limit of the third target functional component;
[0079] S203C. Determine the current function action amplitude according to the charging gun usage state information, the function action amplitude lower limit and the function action amplitude upper limit.
[0080] S204C. Generate the third control instruction.
[0081] Steps S201C-S204C are a third execution manner of step S2.
[0082] In step S201C, if the control module detects that the charging gun usage state information is the charging progress state information, the control module can parse the charging progress state information to obtain quantitative data such as the state of charge SOC of the power battery. The state of charge SOC of the power battery can be expressed as percentage data, and the charging progress state information can be expressed as percentage data in this embodiment. For example, the charging progress state information of “30%” can be understood as that the remaining power of the power battery of the target vehicle is 30%.
[0083] In this embodiment, each function component corresponds to a function action amplitude when it performs its corresponding function action. For example, the function action amplitude of the rearview mirror can be the opening and closing degree (e.g. folding angle) of the rearview mirror; the function action amplitude of the window can be the opening degree (e.g. the proportion of the area of the raised part of the window glass to the total area of the window) of the window; the function action amplitude of the exterior light can be the luminous intensity or the irradiation area of the exterior light; the function action amplitude of the horn can be the sound intensity of the horn; the function action amplitude of the variable suspension can be the height (e.g. absolute height or percentage of the current height to the total height) of the variable suspension; the function action amplitude of the head-up display can be the display brightness of the head-up display; the function action amplitude of the audio-visual entertainment system can be the display brightness of the audio-visual entertainment system; the function action amplitude of the variable transparency glass can be the transparency of the variable transparency glass; the function action amplitude of the wiper can be the wiping angle of the wiper, etc.
[0084] When the control module executes step S201C, it can first select a third target function component. The third target function component is a specific function component on the target vehicle, and the control module can randomly select a function component from the function component list of the target vehicle as the third target function component.
[0085] After the third target functional component is selected, the control module can perform step S202C to obtain the lower limit of the functional action amplitude and the upper limit of the functional action amplitude of the third target functional component from the product parameters of the third target functional component stored locally. The lower limit of the functional action amplitude and the upper limit of the functional action amplitude respectively represent the lower limit and the upper limit of the action amplitude of the functional action performed by the third target functional component.
[0086] For example, if the vehicle window is selected as the third target functional component, the lower limit of the functional action amplitude of the third target functional component can be the height of the extended part of the vehicle window glass when it is lowered to the lowest (e.g. the distance between the top end of the extended part and the lower edge of the vehicle window, generally 0-5 cm in height), and the upper limit of the functional action amplitude of the third target functional component can be the height of the extended part of the vehicle window glass when it is raised to the highest (generally 40-45 cm in height). If the variable transparency glass is selected as the third target functional component, the lower limit of the functional action amplitude of the third target functional component can be the minimum value of the transparency of the variable transparency glass (generally 0-10% in level), and the upper limit of the functional action amplitude of the third target functional component can be the maximum value of the transparency of the variable transparency glass (generally 80-90% in level).
[0087] In step S203C, the control module determines the current functional action amplitude according to the charging gun usage state information (charging progress state information), the lower limit of the functional action amplitude and the upper limit of the functional action amplitude. Specifically, the control module can calculate the current functional action amplitude according to the formula
[0088] The current functional action amplitude = the lower limit of the functional action amplitude + (the upper limit of the functional action amplitude - the lower limit of the functional action amplitude) x the charging progress state information.
[0089] For example, assume that the charging progress status information is 30%, i.e. the power battery is being charged by the charging gun, and the current remaining power of the power battery is charged to 30%; if the vehicle window is selected as the third target functional component, the lower limit of the functional action amplitude is 0, and the upper limit of the functional action amplitude is 40 cm, then the current functional action amplitude is 0 + (40 cm - 0) x 30% = 12 cm; the control module executes step S204C to generate the third control instruction, and when the control module executes step S3, the third control instruction is sent to the vehicle window as the third target functional component, so as to control the vehicle window glass to be raised (or lowered) to 12 cm. If the charging gun continues to charge the power battery, the charging progress status information will change, for example, to 35%, so that the control module can update the current functional action amplitude, i.e. calculate the updated current functional action amplitude as 0 + (40 cm - 0) x 35% = 14 cm; the control module executes step S204C to generate the third control instruction, and when the control module executes step S3, the third control instruction is sent to the vehicle window as the third target functional component, so as to control the vehicle window glass to be raised (or lowered) to 14 cm.
[0090] For example, assume that the charging progress status information is 40%, i.e. the power battery is being charged by the charging gun, and the current remaining power of the power battery is charged to 40%; if the variable transparency glass is selected as the third target functional component, the lower limit of the functional action amplitude is 10%, and the upper limit of the functional action amplitude is 90%, then the current functional action amplitude is 10% + (90% - 10%) x 40% = 42%; the control module executes step S204C to generate the updated third control instruction, and when the control module executes step S3, the updated third control instruction is sent to the variable transparency glass as the third target functional component, so as to control the transparency of the variable transparency glass to be 42%. If the charging gun continues to charge the power battery, the charging progress status information will change, for example, to 50%, so that the control module can update the current functional action amplitude, i.e. calculate the updated current functional action amplitude as 10% + (90% - 10%) x 50% = 50%; the control module executes step S204C to generate the updated third control instruction, and when the control module executes step S3, the updated third control instruction is sent to the variable transparency glass as the third target functional component, so as to control the transparency of the variable transparency glass to be 50%.
[0091] It can be known from the above embodiment that by executing steps S201C-S204C, the control module can continuously and dynamically control the function action amplitude of the third target function component, so that the user can observe the function action amplitude of the third target function component to understand the charging progress state information in real time. Since the function action amplitude of the third target function component is relatively obvious, the charging progress state information can be intuitively displayed, and the user does not need to go to a special location such as a charging pile to check, thereby providing convenience for charging the car.
[0092] In this embodiment, when the control module executes S201C, in addition to randomly selecting a function component as the third target function component, the control module can also call a sensor installed on the target car to detect the relative position of the user of the target car and the target car to obtain user position information. For example, a car with a keyless start system is provided with a key communication module, which can detect the position of a wireless key carried by the user through a wireless communication protocol such as NFC or Bluetooth. The position represents the position of the user, thereby obtaining the user position information. The specific format of the user position information can be that the position of the target car is taken as the origin, and it is indicated that the user is in the front, the back, the left front, etc. When the control module executes S201C, the control module can select a function component having a corresponding position from the function component list as the third target function component. For example, if the user position information is “front”, the control module can select the external headlamp located in front of the target car as the third target function component. In this way, the selected third target function component is located on the same side as the user, and the function action made by the control of the third target function component is more easily observed by the user, thereby improving the information transmission efficiency.
[0093] In this embodiment, when performing S201C, the control module can also first detect charging environment information, wherein the charging environment information includes information indicating the natural environment in which the target vehicle and the charging gun are located, such as weather, temperature, humidity, etc.; the charging environment information includes information indicating the social environment in which the target vehicle and the charging gun are located, such as the number of people, the number of vehicles, the number of vehicles waiting in line to charge, etc. The control module can call the sensors installed by itself, or the sensors or databases installed by the charging pile to obtain the charging environment information. The control module can select a corresponding functional component as the third target functional component according to the information of the natural environment, for example, when the information of the natural environment indicates that it is raining on that day, the control module can select the functional component other than the window as the third target functional component, so as to avoid rainwater entering the vehicle when the window performs the functional action; the control module can select a corresponding functional component as the third target functional component according to the information of the social environment, for example, when the information of the social environment indicates that the current number of people is greater than a threshold, the control module can select the horn and the functional component other than the window as the third target functional component, so as to avoid startling others when the horn performs the functional action, and avoid being entered into the vehicle by outsiders when the window performs the functional action.
[0094] In this embodiment, when performing step S2, that is, when generating the control instruction according to the charging gun use state information, the following steps can be performed:
[0095] S201D. When the charging gun use state information is the plug-in state information, and the plug-in state information satisfies the first preset condition, determine the fourth target functional component on the target vehicle, and generate the fourth control instruction;
[0096] S202D. Dynamically update the plug-in state information;
[0097] S203D. When it is detected that the updated plug-in state information satisfies the second preset condition, generate the fifth control instruction.
[0098] Steps S201D-S203D are a fourth execution mode of step S2. Moreover, steps S201D-S203D can be executed in combination with step S201A or step S201B, for example, the control module executes step S201A and steps S201D-S204D.
[0099] In step S201D, the control module can select a functional component as the fourth target functional component in a random manner, or refer to the manner of step S201B.
[0100] In step S201D, the control module may set a first preset condition. The first preset condition may be "the plug-in status information is 1, indicating that the plug-in status information indicates that the charging plug is correctly inserted into the charging port of the target vehicle." At this point, the control module generates a fourth control instruction. The fourth control instruction is used to control the fourth target functional component to enter a user-uncontrollable state. The user-uncontrollable state locks the controlled function of the fourth target functional component, making it controlled only by the control module and not by direct user operation.
[0101] For example, if the audio-visual entertainment system is selected as the fourth target functional component, then the fourth control instruction controls the audio-visual entertainment system to enter a user-uncontrollable state. When the user operates the buttons or knobs on the center console (used to perform playback, volume adjustment, or fast forward, etc.), the audio-visual entertainment system will not respond.
[0102] In step S202D, the control module dynamically updates the gun insertion status information, for example, determining whether the gun insertion status information changes from "1" to "0".
[0103] In step S203D, the control module may set a second preset condition, and the content of the second preset condition may be "the content of the updated plug-in status information becomes 0, that is, the updated plug-in status information indicates that the charging gun is not correctly inserted into the charging port of the target vehicle."
[0104] In step S203D, if the control module detects that the second preset condition is met, the control module generates a fifth control instruction. The fifth control instruction can perform the inverse control process of the fourth control instruction. That is, the fifth control instruction can control the fourth target functional component to enter a user-controllable state, thereby eliminating the effect of the fourth control instruction. For example, if the audio-visual entertainment system is selected as the fourth target functional component, the fifth control instruction controls the audio-visual entertainment system to enter a user-controllable state. If the user operates a button or knob on the center console, the audio-visual entertainment system will respond, thereby executing operations such as playing, adjusting volume, or fast-forwarding.
[0105] In this embodiment, the principles of steps S201D-S203D are that: in the case where a first preset condition, for example, "the content of the plug-in state information is 1, that is, the plug-in state information indicates that the charging gun has been correctly plugged into the charging interface of the target vehicle", is met, it is indicated that the target vehicle is currently plugged in for charging, at this time, the fourth target functional component is controlled to enter the user-uncontrollable state through the fourth control instruction, which is beneficial to limit the use of part of the functional components on the target vehicle, thereby reminding the user of the target vehicle that the charging gun is currently being occupied for charging, and is beneficial to urge the user of the target vehicle to avoid long-time occupation of the charging gun, and to protect the use efficiency of the public charging gun; in the case where a second preset condition, for example, "the content of the plug-in state information is 0, that is, the plug-in state information indicates that the charging gun is not plugged into the charging interface of the target vehicle", is met, it is indicated that the target vehicle currently unplugs the charging gun, at this time, the fourth target functional component is controlled to enter the user-controllable state through the fifth control instruction, thereby restoring the functional use of part of the functional components on the target vehicle.
[0106] In this embodiment, when the fourth target functional component is selected, a functional component that has no influence on the basic functions such as driving or safety of the vehicle can be selected as the fourth target functional component. For example, a functional component such as an audio-visual entertainment system or an atmosphere lamp can be selected as the fourth target functional component.
[0107] The same technical effects as the vehicle charging gun use state prompting method in the embodiments can be achieved by writing a computer program for executing the vehicle charging gun use state prompting method in the embodiments, writing the computer program into a computer device or a storage medium, and executing the vehicle charging gun use state prompting method in the embodiments when the computer program is read out and run.
[0108] It should be noted that, unless otherwise specified, when a certain feature is referred to as "fixed" or "connected" to another feature, it can be directly fixed or connected to the other feature, or indirectly fixed or connected to the other feature. In addition, the up, down, left, right and other descriptions used in the disclosure are only relative to the relative positional relationship of the components of the disclosure in the drawings. In the disclosure, the singular forms "a", "an" and "the" are also intended to include the plural forms, unless the context clearly indicates otherwise. In addition, unless otherwise defined, all technical and scientific terms used in the embodiments have the same meanings as understood by those skilled in the art. The terms used in the embodiments are only used to describe the specific embodiments, and are not intended to limit the present application. The term "and / or" used in the embodiments includes any combination of one or more related listed items.
[0109] It should be understood that, although the terms first, second, third, etc. can be used herein to describe various elements, components, regions, layers and / or sections, these elements should not be limited to these terms. These terms are only used to distinguish one element from another. For example, a first element could be termed a second element, and, similarly, a second element could be termed a first element, without departing from the scope of the present disclosure. The use of any and all examples, or exemplary language (e.g., "such as", "for instance", etc.), provided herein, is intended merely to better illuminate the present embodiments and does not pose a limitation on the scope of the present disclosure unless otherwise claimed.
[0110] It will be appreciated that embodiments of the present application can be realized by computer hardware, a combination of hardware and software, or by computer instructions stored on a non-transitory computer-readable storage medium. The methods can be implemented in a computer program, using standard programming techniques, including the configuration of non-transitory computer-readable storage media with a computer program, wherein the storage medium so configured with the computer program instructs the computer to operate in a specific and predefined manner according to the method described in the specific embodiments and the accompanying drawings. Each program can be implemented in a high-level procedural or object-oriented programming language to communicate with a computer system. However, the program can be implemented in assembly or machine language, if desired. In any case, the language can be a compiled or interpreted language. Furthermore, the program can be able to run on a specially programmed integrated circuit for this purpose.
[0111] Furthermore, the operations of the processes described in the present embodiments can be performed in any suitable order unless otherwise indicated herein or otherwise clearly contradicted by context. The processes described in the present embodiments (or variations and / or combinations thereof) can be performed under the control of one or more computer systems configured with executable instructions (e.g., computer programs, one or more computer programs, or one or more applications) to perform the operations of the processes, and can be implemented as code (e.g., executable instructions, one or more computer programs, or one or more applications) executing collectively on one or more processors, by hardware, or combinations thereof. A computer program includes a plurality of instructions executable by one or more processors.
[0112] Further, the methods can be implemented in any type of computing platform operably connected to the appropriate, including but not limited to a personal computer, mini-computer, mainframe, workstation, network or distributed computing environment, separate or integrated computer platforms, or in communication with charged particle tools or other imaging devices, and the like. Aspects of the present application can be implemented in machine readable code stored on a non-transitory storage medium or device, whether removable or integrated into a computing platform, such as a hard disk, optical read and / or write storage media, RAM, ROM, and the like, such that it can be read by a programmable computer to configure and operate the computer to perform the processes described herein when the storage medium or device is read by the computer. In addition, the machine readable code, or portions thereof, can be transmitted over wired or wireless networks. The present embodiments of the application include these and other different types of non-transitory computer readable storage media when the instructions or programs incorporating the above steps are implemented in conjunction with a microprocessor or other data processor. The present application also includes the computer itself when programmed in accordance with the methods and techniques of the present application.
[0113] The computer program can be applied to input data to perform the functions of the present embodiments, thereby transforming the input data to generate output data that is stored to non-volatile memory. The output information can also be applied to one or more output devices, such as a display. In the preferred embodiments of the present application, the transformed data represents a physical and tangible object, including a particular visual depiction of the physical and tangible object produced on a display.
[0114] The above merely preferred embodiments of the present application and are not intended to limit the present application thereto. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the scope of the present application. The technical scheme and / or embodiments of the present application can have various modifications and changes within the scope of the present application.
Claims
1. A method for prompting the use status of a car charging gun, characterized in that: The method for prompting the use status of the vehicle charging gun includes: Detect the charging gun's plug-in status on the target car and obtain the plug-in status information; Detecting the charging progress status of the target vehicle through the charging gun to obtain charging progress status information; The charging gun insertion status information and / or the charging progress status information are used as the charging gun usage status information; the charging gun usage status information indicates the usage status of the charging gun on the target vehicle; Generate a control instruction according to the charging gun usage status information; Using the control instructions, controlling corresponding functional components of the target vehicle to perform functional actions; The generating of the control instruction according to the charging gun usage status information includes: When the charging gun usage status information is the charging progress status information, determining a third target functional component on the target vehicle; Determining a lower limit and an upper limit of a functional action amplitude of the third target functional component; Determine the current function action amplitude according to the charging gun usage status information, the function action amplitude lower limit, and the function action amplitude upper limit; generating a third control instruction; wherein the third control instruction is used to control the third target functional component to perform a functional action corresponding to the current functional action amplitude; Determining a third target functional component on the target vehicle includes: Obtaining a list of functional components of the target vehicle; Detecting charging environment information; the charging environment information describes the natural environment and / or social environment in which the target vehicle and charging gun are located; According to the charging environment information, a corresponding functional component is selected from the functional component list as the third target functional component.
2. The method for prompting the use status of a car charging gun according to claim 1, characterized in that: The generating of the control instruction according to the charging gun usage status information includes: When the charging gun usage status information is the gun insertion status information, a first target functional component on the target car is determined and a first control instruction is generated; the first control instruction is used to control the first target functional component to perform a corresponding functional action once or multiple times.
3. The method for indicating the usage status of a vehicle charging gun according to claim 1, wherein: The generating of the control instruction according to the charging gun usage status information includes: When the charging gun usage status information is the gun plug status information, a first target functional component and a second target functional component on the target vehicle are determined, and a first control instruction and a second control instruction are generated; the first control instruction is used to control the first target functional component to perform a corresponding functional action once or multiple times, and the second control instruction is used to control the second target functional component to perform a corresponding functional action once or multiple times; The method for prompting the use status of the vehicle charging gun further includes: detecting the functional action execution states of the first target functional component and the second target functional component; The performance states of the first target functional component and the second target functional component are determined according to the functional action execution states of the first target functional component and the second target functional component.
4. The method for prompting the use status of a vehicle charging gun according to claim 1, characterized in that: Determining a third target functional component on the target vehicle includes: Obtaining a list of functional components of the target vehicle; Detecting user position information; the user position information indicates the relative position of the user of the target vehicle and the target vehicle; According to the user location information, a functional component with a corresponding location is selected from the functional component list as the third target functional component.
5. The method for prompting the use status of a car charging gun according to claim 1, characterized in that: The generating of the control instruction according to the charging gun usage status information includes: When the charging gun usage status information is gun plug-in status information, and the gun plug-in status information satisfies a first preset condition, determining a fourth target functional component on the target vehicle and generating a fourth control instruction; the fourth control instruction is used to control the fourth target functional component to enter a user-uncontrollable state; Dynamically updating the gun insertion status information; When it is detected that the updated gun insertion status information meets the second preset condition, a fifth control instruction is generated; the fifth control instruction is used to control the fourth target functional component to enter a user-controllable state.
6. A computer device, characterized in that: It includes a memory and a processor, the memory is used to store at least one program, and the processor is used to load at least one program to execute the vehicle charging gun usage status prompt method according to any one of claims 1 to 5.
7. A computer-readable storage medium storing a program executable by a processor, characterized in that: The program executable by the processor is used to execute the method for prompting the usage status of the vehicle charging gun according to any one of claims 1 to 5 when executed by the processor.
Citation Information
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