WO2022012513A1 - 一种车辆蓄电池的标准参数获取方法和装置 - Google Patents
一种车辆蓄电池的标准参数获取方法和装置 Download PDFInfo
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- WO2022012513A1 WO2022012513A1 PCT/CN2021/105978 CN2021105978W WO2022012513A1 WO 2022012513 A1 WO2022012513 A1 WO 2022012513A1 CN 2021105978 W CN2021105978 W CN 2021105978W WO 2022012513 A1 WO2022012513 A1 WO 2022012513A1
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R31/00—Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
- G01R31/005—Testing of electric installations on transport means
- G01R31/006—Testing of electric installations on transport means on road vehicles, e.g. automobiles or trucks
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R31/00—Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
- G01R31/36—Arrangements for testing, measuring or monitoring the electrical condition of accumulators or electric batteries, e.g. capacity or state of charge [SoC]
- G01R31/385—Arrangements for measuring battery or accumulator variables
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R31/00—Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
- G01R31/36—Arrangements for testing, measuring or monitoring the electrical condition of accumulators or electric batteries, e.g. capacity or state of charge [SoC]
- G01R31/385—Arrangements for measuring battery or accumulator variables
- G01R31/387—Determining ampere-hour charge capacity or SoC
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R31/00—Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
- G01R31/36—Arrangements for testing, measuring or monitoring the electrical condition of accumulators or electric batteries, e.g. capacity or state of charge [SoC]
- G01R31/389—Measuring internal impedance, internal conductance or related variables
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R31/00—Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
- G01R31/36—Arrangements for testing, measuring or monitoring the electrical condition of accumulators or electric batteries, e.g. capacity or state of charge [SoC]
- G01R31/392—Determining battery ageing or deterioration, e.g. state of health
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R31/00—Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
- G01R31/36—Arrangements for testing, measuring or monitoring the electrical condition of accumulators or electric batteries, e.g. capacity or state of charge [SoC]
- G01R31/396—Acquisition or processing of data for testing or for monitoring individual cells or groups of cells within a battery
Definitions
- the present application relates to the technical field of vehicle battery detection, and in particular, to a method, device, battery detection device and storage medium for obtaining standard parameters of vehicle battery.
- a vehicle battery is a reversible low-voltage DC power source, a device that can convert chemical energy into electrical energy and electrical energy into chemical energy.
- the main functions of the battery in the vehicle are to start the engine, provide backup power, store electrical energy, coordinate power supply and stabilize the power supply voltage.
- the battery can supply power to the starting system and the ignition system; moreover, the battery is equivalent to a large-capacity capacitor, which can not only maintain the voltage regulation of the automotive electrical system, but also absorb the instantaneous overvoltage in the circuit to prevent It damages the electronics on the car.
- the battery testing equipment is an analysis and testing equipment used to detect the working capacity of the battery. It can analyze the performance of the battery by comparing the measured battery parameters with the standard parameters.
- the inventor found that in the prior art, whenever the performance of the vehicle battery needs to be detected, the user needs to find the standard parameters of the battery first, and then manually input the standard parameters into the battery testing equipment one by one. Since the process of finding and inputting standard parameters is relatively cumbersome, the detection efficiency of the battery is low.
- the purpose of the present invention is to provide a method, device, battery detection device and storage medium for obtaining standard parameters of a vehicle battery, which can automatically obtain the battery corresponding to the vehicle information according to the vehicle information input on the first interface standard parameters to improve the detection efficiency of the battery.
- an embodiment of the present invention provides a method for obtaining standard parameters of a vehicle battery, which is applied to a battery detection device, and the method includes:
- the first interface includes a first area and a second area, wherein the first area is used to input the vehicle information, and the second area is used to display the standard parameters of the battery;
- the standard parameters of the battery corresponding to the vehicle information are displayed in the second area.
- the method further includes:
- the standard parameter is modified according to the modification operation.
- the receiving vehicle information input in the first area includes:
- the second vehicle information is displayed in the first area.
- the receiving vehicle information input in the first area includes:
- Reading the vehicle information from the vehicle according to the user's first trigger operation in the first area and/or,
- the captured image is acquired and the vehicle information is parsed from the image; and/or,
- An input operation of the user in the first area is received, and the vehicle information is determined according to the input operation.
- the first interface includes a first control
- the method further includes:
- a second interface is displayed, and the second interface includes position information of the battery on the vehicle corresponding to the vehicle information.
- the second interface further includes a second control
- the method further includes:
- the battery is detected when an operation by the user on the second control is received.
- the first interface includes a third control
- the method further includes:
- a third interface is displayed, and the third interface includes information on steps of disassembling and assembling the battery on the vehicle corresponding to the vehicle information.
- the first interface includes a fourth control
- the method further includes:
- the battery is detected when an operation of the fourth control by the user is received.
- the first interface includes a fifth control
- the method further includes:
- a fourth interface When receiving the user's operation on the fifth control, a fourth interface is displayed, and the fourth interface includes a vehicle information input area and a battery information input area;
- the newly added vehicle information and the newly added battery information are stored in the mapping table, and a mapping relationship between the newly added vehicle information and the newly added battery information is formed.
- the vehicle information includes at least one of the following:
- License plate VIN code, vehicle brand, vehicle model, vehicle year and battery identification.
- the standard parameters include at least one of the following:
- Battery type battery standard, rated capacity, standard voltage, battery installation location and nominal CCA.
- an embodiment of the present invention further provides a device for obtaining standard parameters of a vehicle battery.
- the device includes:
- the first display module used to display a first interface, the first interface includes a first area and a second area, wherein the first area is used to input the vehicle information, and the second area is used to display all the information.
- the standard parameters of the battery used to display a first interface, the first interface includes a first area and a second area, wherein the first area is used to input the vehicle information, and the second area is used to display all the information.
- a receiving module configured to receive vehicle information input in the first area
- a search module configured to search for standard parameters of the battery corresponding to the vehicle information in a preset mapping table according to the vehicle information
- a second display module configured to display the standard parameters of the battery corresponding to the vehicle information in the second area.
- an embodiment of the present invention further provides a battery detection device, where the battery detection device includes:
- the memory stores instructions executable by the at least one processor, the instructions being executed by the at least one processor to enable the at least one processor to implement the standard for a vehicle battery according to the first aspect Parameter get method.
- embodiments of the present invention further provide a non-volatile computer-readable storage medium, where the computer-readable storage medium stores computer-executable instructions, and when the computer-executable instructions are executed, can execute the following The method for obtaining standard parameters of a vehicle battery described in the first aspect.
- the embodiments of the present invention provide a method, device, battery detection device, and non-volatile computer-readable storage medium for obtaining standard parameters of a vehicle battery, which can A first interface is displayed, and the first interface includes a first area for inputting vehicle information and a second area for displaying battery standard parameters; it can also receive vehicle information input in the first area, and pre-configure the vehicle information according to the input vehicle information. Find the standard parameters of the battery corresponding to the vehicle information in the set mapping table, and then display the standard parameters in the second area.
- the present invention can enable the battery detection device to automatically obtain the standard parameters of the battery according to the input vehicle information, without requiring the user to input the standard parameters of the battery one by one in the battery detection device, so the present invention can Improve the detection efficiency of vehicle batteries and improve user experience.
- FIG. 1 is a schematic diagram of an application scenario provided by an embodiment of the present invention.
- FIG. 2 is a schematic diagram of a hardware structure of a battery detection device provided by an embodiment of the present invention.
- FIG. 3 is a schematic flowchart of a method for obtaining standard parameters of a vehicle battery provided by an embodiment of the present invention
- FIG. 4 is a schematic structural diagram of a first interface provided by an embodiment of the present invention.
- FIG. 5 is a schematic flowchart of a method for obtaining standard parameters of a vehicle battery provided by an embodiment of the present invention
- FIG. 6 is a schematic structural diagram of a third interface provided by an embodiment of the present invention.
- FIG. 7 is a schematic structural diagram of a device for obtaining standard parameters of a vehicle battery provided by an embodiment of the present invention.
- FIG. 8 is a schematic structural diagram of an apparatus for obtaining standard parameters of a vehicle battery provided by an embodiment of the present invention.
- FIG. 1 schematically shows an application environment of the present invention.
- the application environment includes a battery detection device 100 and a vehicle 200; wherein the vehicle 200 can be a vehicle of any model, such as a car , large trucks, buses or engineering vehicles, etc.
- the vehicle 200 has an electronic control system composed of a plurality of electronic control units for coordinating and controlling the vehicle according to the driver's operating instructions, and monitoring one or more vehicle parameters in real time to ensure the reliable and safe operation of the vehicle 200 .
- the battery provided in the vehicle 200 may be any form of battery, for example, a lithium-ion battery, a nickel-cadmium battery, a nickel-metal hydride battery, or a lead-acid battery.
- the above application environment further includes a server, the server is connected to the battery detection device 100 in communication, and the server is configured to receive an image sent by the battery detection device 100, and analyze the vehicle from the image. The information is sent to the battery detection device 100 .
- the battery testing device 100 may be any type of vehicle diagnostic product, including at least one electrical connector, the end of which is used to detect the performance of the battery.
- Electrical connectors include Kelvin connectors, low frequency circular connectors, optical fiber connectors, rectangular connectors, printed circuit connectors, radio frequency connectors and other connectors.
- the battery detection device 100 establishes physical communication connections with various vehicle buses in the vehicle 200 through interface modules, such as diagnostic connectors and hardware communication interfaces, and loads a suitable or paired protocol configuration to achieve communication with the vehicle. Data interaction between 200, such as sending detection instructions or receiving detection data.
- the battery capacity of a battery is a value that characterizes the amount of electrical energy released by the battery after it is fully charged, and can reflect the health of the battery.
- the battery enters the recession period; when the battery capacity of the battery drops below 80% of the rated capacity, the battery enters a sharp recession state.
- the battery is a safety hazard. When the battery capacity drops below 70% of its rated capacity, the battery reaches the scrapped state.
- the battery testing device 100 is used to measure the current performance parameters of the battery, for example, to test the CCA, voltage, internal resistance, charge and discharge performance and battery capacity of the battery, etc. By comparing the measured performance parameters with the standard parameters of the battery, a quick judgment can be made. Find out whether the battery performance is good or bad, and filter out the bad battery.
- the user 300 must manually input the standard parameters of the battery in the battery testing device 100 so that the battery testing device 100 can compare the detected performance parameters with the standard parameters.
- the process for the user 300 to obtain the standard parameters of the battery is relatively complicated. For example, the user 300 needs to find the position of the battery in the vehicle 200 first, and then obtain the standard parameters according to the information marked on the battery nameplate of the battery.
- the battery nameplate cannot be directly seen after some batteries are installed, so the user 300 must remove the battery from the vehicle 200 to find the battery nameplate; in addition, the installation position of some vehicle batteries is relatively concealed , is not easy to find; therefore, the process of finding batteries and battery nameplates is rather cumbersome.
- the core of the present invention is that the standard parameters of the battery corresponding to the vehicle information can be searched in the preset mapping table according to the input vehicle information; that is, the battery detection device can automatically obtain the standard parameters of the battery according to the vehicle information to improve the detection efficiency.
- FIG. 2 schematically shows the hardware structure of the battery detection device 100 .
- the battery detection device 100 includes a processor 110 , a memory 120 and a display device 130 , wherein the processor 110 is connected to the memory 120 and the display device 130 respectively.
- the structure shown in FIG. 2 does not constitute a limitation on the battery testing device, and the battery testing device may include more or less components than those shown in the figure, or combine some components, or disassemble some components components, or a different arrangement of components.
- the battery detection device 100 may further include an image capture device connected to the processor 110, and the image capture device is used for taking pictures or video.
- the display device 130 provides an output interface between the battery detection device and the user, and the content output by the display device 130 may be text or images.
- the display device 130 may be a touch screen.
- the touch screen In addition to displaying an output interface to the user, the touch screen also receives user input operations, such as user's click, slide and other trigger operations.
- the technology for detecting user input may be based on resistive, capacitive or any other possible touch detection technology.
- Touch screens include, but are not limited to, liquid crystal displays or light emitting polymer displays.
- Fig. 3 schematically shows a method for obtaining battery standard parameters. The method is applied to a battery testing device, such as the battery testing device 100 in Fig. 2. As shown in Fig. 3, the method includes the following steps:
- S11 Display a first interface, where the first interface includes a first area and a second area, wherein the first area is used to input the vehicle information, and the second area is used to display the standard parameters of the battery ;
- the first interface 500 includes a first area 510 and a second area 520 , wherein the first area 510 is used for receiving vehicle information.
- the first area 510 includes at least one vehicle information input field, for example, one or more of a license plate input field, a VIN code input field, a brand input field, a vehicle model input field, and a vehicle year model input field.
- the VIN code also known as the vehicle identification code, is a code that indicates the identity of the vehicle.
- the VIN code consists of 17 characters (including English letters and numbers), commonly known as the seventeen-digit code, which is a set of word codes designated by the vehicle manufacturer to distinguish different vehicles.
- the license plate is the vehicle number, which is used to number and register the vehicle, so as to uniquely identify the vehicle.
- the above-mentioned input field can be used as a display field of vehicle information, and the vehicle information is correspondingly displayed in the input field.
- the second area 520 is used to display battery information, and the second area 520 includes at least one battery information display bar; the battery information displayed in the second area 520 includes battery type, battery standard, rated capacity, standard voltage, battery installation position and nominal CCA Wait.
- the battery types of batteries include lead-acid batteries and nickel-alkali batteries; according to different battery electrode materials, battery types include lead batteries, iron-nickel batteries and cadmium-nickel batteries.
- the battery type can be AGM type, FLOODED type, AGM SPIRAL type or EFB type, where AGM type battery is a valve-regulated sealed lead battery with glass fiber separator; FLOODED type battery is a flooded battery, which belongs to lead battery. Acid battery; EFB battery is an enhanced flooded battery.
- the above-mentioned battery standard is a test standard for a storage battery.
- the rated capacity indicates the size of the stored power that the battery can maintain when the vehicle is running normally.
- the standard voltage is the voltage output when the battery can maintain the normal operation of the vehicle.
- the nominal CCA is the cold start current of the battery, which refers to the amount of current released by the battery for 30 consecutive seconds before the voltage drops to the limit feed voltage under a specified low temperature state (usually specified at 0°F or -17.8°C).
- the nominal CCA of a 12V battery is 550, which means that after the battery is fully charged and left at -17.8°C for 24 hours, it can provide a current of 550A for 30 seconds before the voltage drops to 7.2V.
- the battery detection device may read vehicle information from the vehicle according to the user's first trigger operation in the first area.
- the battery detection device can establish a communication connection with the vehicle and obtain vehicle information sent by the vehicle.
- the user can connect the battery detection device and the vehicle through the VCI, and make the VCI scan the ISO15765, ISO14230, ISO9141 and J1850 protocols respectively through the first trigger operation, and confirm the vehicle protocol type by sending the 01 00 command of J1979.
- the battery detection device sends the 09 02 command to read the vehicle information, such as reading the vehicle VIN code, etc.
- the battery detection device may also acquire a captured image according to the user's second trigger operation in the first area, and parse the vehicle information from the image.
- an image recognition button may be set on the first interface. After the user clicks the image recognition button, the image capture device starts to capture images.
- the number of image recognition buttons may be one or more, and FIG. 4 takes two license plate recognition buttons 511a and VIN recognition buttons 511b as an example.
- the battery detection device can automatically identify the type of vehicle information; when the identified vehicle information is a license plate, the parsed license plate number is automatically filled in the license plate input field; when the identified vehicle information is When the VIN code is used, the parsed VIN code is automatically filled in the VIN code input column; and when the identified vehicle information is battery information, the parsed battery information is displayed in the second display column.
- the image recognition keys may further include a battery recognition key for recognizing the battery ID.
- the user's modification operation on the vehicle information can be received to ensure that the input is correct.
- the user may also directly input vehicle information in the first area, and the battery detection device receives the user's input operation in the first area, and determines the vehicle information according to the input operation. Specifically, the user may input the vehicle information directly and manually enter letters, numbers or Chinese characters.
- the battery detection device in order to enable the battery detection device to quickly acquire a variety of vehicle information, can also receive the first vehicle information input in the first area, and determine the association with the first vehicle information according to the first vehicle information and displaying the second vehicle information in the first area.
- at least two kinds of information in the vehicle information can be associated with each other in advance, and the battery detection device can acquire other associated vehicle information only by using one kind of vehicle information.
- the mapping relationship between the license plate and at least one vehicle information among VIN code, vehicle brand, vehicle model, vehicle year and battery identification can be established in advance; when the battery detection device receives the license plate input in the license plate input field, it will At least one vehicle information from the VIN code, vehicle brand, vehicle model, vehicle year and battery identification corresponding to the license plate will be displayed in the corresponding other input fields. If the inputted first vehicle information has a plurality of parallel second vehicle information associated with it, it may not be displayed. For example, the input vehicle model or vehicle year indicates that the vehicle model or vehicle year uses the same type or the same standard. Battery, there can be multiple license plates or VIN codes associated with the vehicle model or vehicle year, which may not be displayed here. The battery information can be obtained only through the association between the vehicle model, vehicle year and battery.
- the preset mapping table can be established when the user uses the battery detection device for the first time.
- the preset mapping table can be established by entering vehicle information and battery information in the database.
- Table 1 schematically shows the preset mapping table.
- the battery detection device can find out the corresponding standard parameter in the preset mapping table according to any vehicle information input in the first area.
- the battery type includes at least one of AGM, FLOODED, AGM SPIRAL and EFB, and the battery standard includes at least one of CCA, SAE, CA, and EN; among them, CCA is a standard; SAE is the American Society of Automotive Engineers standard, And EN is the European standard.
- CCA is a standard
- SAE is the American Society of Automotive Engineers standard
- EN is the European standard.
- the nominal CCA can exist under each battery standard, and it can be displayed on the battery nameplate as a rated parameter of the battery. No matter what standard battery is tested, the nominal CCA can be used as a parameter to compare the quality of the battery.
- Table 1 Structure of the preset mapping table
- the second area can display the standard parameters of at least one battery, such as the nominal CCA of the battery is 720, the rated capacity is 100Ah, and the battery installation position is the side of the trunk, etc. .
- the above method further includes the following steps:
- the user can also modify the wrong standard parameters.
- the battery type is AGM
- the battery standard is SAE
- the standard parameters of the battery with the rated capacity of 720 can be displayed in the second area.
- the display method is expressed in black font. If the displayed standard parameters are wrong, you can slide the relevant parameters up and down until the correct standard parameters are displayed.
- each standard parameter also displays other parameters with gray fonts.
- the currently displayed battery type is AGM
- Other battery types are displayed, such as FLOODED, EFB, etc., which can be grayed out as a waiting option.
- FLOODED FLOODED
- FLOODED can be swiped down by the user. The operation is displayed at the position where the AGM is currently displayed, and the font color changes from gray to black, indicating that the user has modified the battery type, and selects FLOODED instead of AGM as the battery type related to the above vehicle.
- the user can also modify the standard parameters in the second area in other ways, which are not limited here.
- modified standard parameters can be updated in the mapping table, so that the correct standard parameters can be applied to the next invocation. Make the correlation between standard parameters and vehicle information more accurate.
- the first interface further includes a first control.
- Second interface includes position information on the vehicle of the battery corresponding to the vehicle information.
- the user can quickly obtain the battery installation position by clicking the first control.
- the second interface further includes a second control, and when the battery detection device receives the user's operation on the second control, the battery is detected.
- a control includes all components displayed on the interface that receive user operations, which can also be understood as an interface.
- a user can implement related interactions, such as updating the interface, or the battery detection device implements a certain function, etc. .
- the user may display the second interface for the battery detection device by clicking the "next" control.
- the first interface further includes a third control, and when the battery detection device receives the user's operation on the third control, the third interface is displayed, please refer to FIG. 6 , which schematically shows the third interface. structure.
- the third interface 400 includes information on steps of disassembling and assembling the battery on the vehicle corresponding to the vehicle information. The user can quickly obtain the disassembly and assembly method of the battery by clicking the third control, thereby reducing the time for the user to disassemble and assemble the battery, so as to improve the disassembly and assembly efficiency of the battery and improve the user experience.
- the third interface 400 in FIG. 6 further includes a "battery detection" control 401, and the user clicks "battery detection” to make the battery detection device perform function detection on the battery based on the standard parameters of the battery.
- the first interface includes a fourth control
- the battery detection device detects the battery when the user's operation on the fourth control is received.
- the first interface includes a fifth control, and when the battery detection device receives the user's operation on the fifth control, a fourth interface is displayed, wherein the fourth interface includes a vehicle information input area and a battery information input area;
- the battery detection device can receive the newly added vehicle information and the newly added battery information input by the user in the vehicle information input area and the battery information input area respectively;
- the mapping relationship between vehicle information and new battery information For example, in the mapping table shown in Table 1, the mapping relationship between the newly added vehicle information and the newly added battery information may be stored in the second column.
- the vehicle information and/or battery information existing in the mapping table may also be modified on the fourth interface.
- the information of the existing battery can be deleted in the vehicle information input area and/or the battery information input area, and the information of the replaced battery can be re-input.
- FIG. 4 can also be schematically used as the fourth interface, and the user can determine the newly added mapping relationship by inputting the information of each vehicle and the standard parameters of the battery.
- the user can confirm that the input has been completed by clicking, etc., and then update the input information into the mapping table. Then, the battery detection corresponding to the vehicle is turned on.
- the first interface displayed by the battery detection device includes a plurality of controls and has few menu levels, which simplifies user operation and saves user operation time.
- an embodiment of the present invention further provides an apparatus for obtaining standard parameters of a vehicle battery, which can be applied to a battery testing device, for example, the battery testing device 100 shown in FIG. 2 .
- a battery testing device for example, the battery testing device 100 shown in FIG. 2 .
- the standard parameter acquisition device 600 of the vehicle battery includes:
- the first display module 601 used to display a first interface, the first interface includes a first area and a second area, wherein the first area is used to input the vehicle information, and the second area is used to display the standard parameters of the battery;
- a first receiving module 602 configured to receive vehicle information input in the first area
- a search module 603, configured to search for standard parameters of the battery corresponding to the vehicle information in a preset mapping table according to the vehicle information;
- the second display module 604 is configured to display the standard parameter of the battery corresponding to the vehicle information in the second area.
- the apparatus 600 for obtaining standard parameters of a vehicle battery further includes:
- the second receiving module 605 is configured to receive, in the second area, the user's modification operation on the standard parameter after displaying the standard parameter of the battery corresponding to the vehicle information in the second area;
- Modification module used to modify the standard parameter according to the modification operation.
- the first receiving module 602 is specifically configured to:
- the second vehicle information is displayed in the first area.
- the first receiving module 602 is specifically configured to:
- Reading the vehicle information from the vehicle according to the user's first trigger operation in the first area and/or,
- the captured image is acquired and the vehicle information is parsed from the image; and/or,
- An input operation of the user in the first area is received, and the vehicle information is determined according to the input operation.
- the first interface includes a first control
- the apparatus 600 for obtaining standard parameters of a vehicle battery further includes:
- the third display module 606 is configured to display a second interface when receiving the user's operation on the first control, where the second interface includes position information of the battery on the vehicle corresponding to the vehicle information .
- the second interface further includes a second control
- the apparatus 600 for obtaining standard parameters of a vehicle battery further includes:
- the first detection module 607 is configured to detect the storage battery when receiving the user's operation on the second control.
- the first interface further includes a third control
- the apparatus 600 for obtaining standard parameters of a vehicle battery further includes:
- the fourth display module 608 is configured to display a third interface when receiving the user's operation on the third control, and the third interface includes the disassembly and assembly of the battery corresponding to the vehicle information on the vehicle Step information.
- the first interface further includes a fourth control
- the apparatus 600 for obtaining standard parameters of a vehicle battery further includes:
- the second detection module 609 is configured to detect the battery when an operation by the user on the fourth control is received.
- the first interface further includes a fifth control
- the apparatus 600 for obtaining standard parameters of a vehicle battery further includes:
- a fifth display module 610 configured to display a fourth interface when receiving the user's operation on the fifth control, and the fourth interface includes a vehicle information input area and a battery information input area;
- the third receiving module 611 is configured to receive the newly added vehicle information and the newly added battery information respectively input by the user in the vehicle information input area and the battery information input area;
- the storage module 612 is configured to store the newly added vehicle information and the newly added battery information in the mapping table, and form a mapping relationship between the newly added vehicle information and the newly added battery information.
- the vehicle information includes at least one of the following:
- License plate VIN code, vehicle brand, vehicle model, vehicle year and battery identification.
- the standard parameters include at least one of the following:
- Battery type battery standard, rated capacity, standard voltage, battery installation location and nominal CCA.
- Embodiments of the present invention provide a method, device, battery detection device, and non-volatile computer-readable storage medium for obtaining standard parameters of a vehicle battery, which can display a first interface, and the first interface includes a first interface for inputting vehicle information. an area and a second area for displaying battery standard parameters; it can also receive the vehicle information input in the first area, search for the standard parameters of the battery corresponding to the vehicle information in the preset mapping table according to the input vehicle information, and then set the Standard parameters are displayed in the second area.
- the present invention can enable the battery detection device to automatically obtain the standard parameters of the battery according to the input vehicle information, without requiring the user to input the standard parameters of the battery one by one in the battery detection device, so the present invention can Improve the detection efficiency of vehicle batteries and improve user experience.
- the number of processors 110 may be one or more, and one processor 110 is taken as an example in FIG. 2 .
- the processor 110 and the memory 120 may be connected by a bus or in other ways, and the connection by a bus is taken as an example in FIG. 2 .
- the memory 120 as a non-volatile computer-readable storage medium, can be used to store non-volatile software programs, non-volatile computer-executable programs and modules, such as those corresponding to the battery standard parameter acquisition method in the embodiment of the present invention. Program instructions/modules.
- the processor 110 executes various functional applications and data processing of the server by running the non-volatile software programs, instructions and modules stored in the memory 120, that is, to implement the battery standard parameter acquisition method of the above method embodiments.
- the memory 120 may include a storage program area and a storage data area, wherein the storage program area may store an operating system, an application program required for at least one function; the storage data area may store data created according to the use of the device for obtaining standard parameters of the vehicle battery Wait. Additionally, memory 120 may include high-speed random access memory, and may also include non-volatile memory, such as at least one magnetic disk storage device, flash memory device, or other non-volatile solid-state storage device. In some embodiments, the memory 120 may optionally include memory located remotely from the processor 110, and these remote memories may be connected via a network to standard parameter acquisition means for the vehicle battery. Examples of such networks include, but are not limited to, the Internet, an intranet, a local area network, a mobile communication network, and combinations thereof.
- the one or more modules are stored in the memory 120, and when executed by the at least one processor 110, execute the battery standard parameter acquisition method in any of the above method embodiments, for example, execute the above-described method in FIG. 3 .
- the above apparatus can execute the method provided by the embodiment of the present invention, and has corresponding functional modules and beneficial effects for executing the method.
- the above apparatus can execute the method provided by the embodiment of the present invention, and has corresponding functional modules and beneficial effects for executing the method.
- An embodiment of the present invention provides a non-volatile computer-readable storage medium, where the non-volatile computer-readable storage medium stores computer-executable instructions, and the computer-executable instructions are used by an electronic device to execute any of the foregoing method embodiments
- the battery standard parameter acquisition method in FIG. 3 for example, executes the method steps S11-S14 in FIG. 3 described above; the method steps S11-S16 in FIG. 5; the modules 601-604 in FIG. 7 and the modules in FIG. 8 601-612 features.
- An embodiment of the present invention provides a computer program product, including a computer program stored on a non-volatile computer-readable storage medium, where the computer program includes program instructions that, when executed by a computer, make the program instructions
- the computer executes the battery standard parameter acquisition method in any of the above method embodiments, for example, executes the method steps S11-S14 in FIG. 3 described above; the method steps S11-S16 in FIG. 5 ; the modules 601-604 in FIG. 7 and Functions of modules 601-612 in FIG. 8 .
- the device embodiments described above are only illustrative, wherein the units described as separate components may or may not be physically separated, and the components shown as units may or may not be physical units, that is, they may be located in One place, or it can be distributed over multiple network elements. Some or all of the modules may be selected according to actual needs to achieve the purpose of the solution in this embodiment.
- each embodiment can be implemented by means of software plus a general hardware platform, and certainly can also be implemented by hardware.
- Those of ordinary skill in the art can understand that all or part of the processes in the methods of the above embodiments can be completed by instructing the relevant hardware through a computer program, and the program can be stored in a computer-readable storage medium, and the program is During execution, it may include the processes of the embodiments of the above-mentioned methods.
- the storage medium may be a magnetic disk, an optical disk, a read-only memory (Read-Only Memory, ROM), or a random access memory (Random Access Memory, RAM) or the like.
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Abstract
一种车辆蓄电池的标准参数获取方法、装置、电池检测设备及存储介质, 涉及车辆蓄电池检测技术领域。该车辆蓄电池的标准参数获取方法、装置、电池检测设备及存储介质,能够显示包括第一区域(510)和第二区域(520)的显示界面;还能够接收在第一区域输入的车辆信息(S12),根据输入的车辆信息在预设的映射表中查找车辆信息对应的蓄电池的标准参数(S13),然后将标准参数显示在第二区域(S14)。因此,在对车辆蓄电池进行检测时,可以使电池检测设备根据输入的车辆信息自动获取蓄电池的标准参数,而不需要用户在电池检测设备中逐个输入蓄电池的标准参数,故可以提高车辆蓄电池的检测效率,提升用户体验。
Description
本申请要求于2020年7月14日提交中国专利局、申请号为202010677088.6、申请名称为“一种车辆蓄电池的标准参数获取方法和装置”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
本申请涉及车辆蓄电池检测技术领域,特别是涉及一种车辆蓄电池的标准参数获取方法、装置、电池检测设备及存储介质。
车辆蓄电池是一种可逆的低压直流电源,即能将化学能转换为电能,也能将电能转换为化学能的装置。蓄电池在车辆中的主要起到启动发动机、备用供电、存储电能、协同供电和稳定电源电压的作用。例如,当需要启动发动机时,蓄电池可以向启动系统和点火系统供电;而且,蓄电池相当于大容量电容器,不仅能保持汽车电气系统的电压稳压,还能够吸收电路中出现的瞬时过电压,防止其损坏汽车上的电子设备。
然而,蓄电池的使用寿命是有限的。随着时间的增长,蓄电池会因极板逐渐老化而不能进行有效的化学反应,影响车辆的正常运转。因此,为了及时发现并更换失效的蓄电池,必需对蓄电池进行定期检测。电池检测设备是一种用于检测蓄电池工作能力的分析检测设备,能够通过将测得的电池参数和标准参数进行对比来分析出蓄电池性能的好坏。
在实现本发明的过程中,发明人发现现有技术,每当需要检测车辆蓄电池性能的时候,用户都需要先找到蓄电池的标准参数,再手动将标准参数逐个输入至电池检测设备中。由于查找和输入标准参数的过程相对繁琐,导致蓄电池的检测效率低下。
发明内容
为了克服蓄电池检测效率低的问题,本发明的目的在于提供一种车辆蓄电池的标准参数获取方法、装置、电池检测设备及存储介质,能够根据第一界面输入的车辆信息自动获取车辆信息对应的蓄电池的标准参数,以提高蓄电池的检测效率。
为了实现上述目的,本发明实施例提供了以下技术方案:
第一方面,本发明实施例提供一种车辆蓄电池的标准参数获取方法,应用于电池检测设备,所述方法包括:
显示第一界面,所述第一界面包括第一区域和第二区域,其中,所述第一区域用于输入所述车辆信息,所述第二区域用于显示所述蓄电池的标准参数;
接收在所述第一区域输入的车辆信息;
根据所述车辆信息在预设的映射表中查找所述车辆信息对应的蓄电池的标准参数;
在所述第二区域显示所述车辆信息对应的所述蓄电池的所述标准参数。
可选的,所述在所述第二区域显示所述车辆信息对应的所述蓄电池的所述标准参数后,所述方法还包括:
在所述第二区域内接收用户针对所述标准参数的修改操作;
根据所述修改操作修改所述标准参数。
可选的,所述接收在所述第一区域输入的车辆信息,包括:
接收在所述第一区域输入的第一车辆信息;
根据所述第一车辆信息确定与所述第一车辆信息相关联的第二车辆信息;
在所述第一区域显示所述第二车辆信息。
可选的,所述接收在所述第一区域输入的车辆信息,包括:
根据用户在所述第一区域的第一触发操作,从车辆中读取所述车辆信息;和/或,
根据用户在所述第一区域的第二触发操作,获取采集的图像并从所述图像中解析出所述车辆信息;和/或,
接收用户在所述第一区域的输入操作,根据所述输入操作确定所述车辆信息。
可选的,所述第一界面包括第一控件,所述方法还包括:
当接收到用户针对所述第一控件的操作时,显示第二界面,所述第二界面包括所述车辆信息对应的所述蓄电池在所述车辆上的位置信息。
可选的,所述第二界面还包括第二控件,所述方法还包括:
当接收到用户针对所述第二控件的操作时,对所述蓄电池进行检测。
可选的,所述第一界面包括第三控件,所述方法还包括:
当接收到用户针对所述第三控件的操作时,显示第三界面,所述第三界面包括所述车辆信息对应的所述蓄电池在所述车辆上的拆装步骤信息。
可选的,所述第一界面包括第四控件,所述方法还包括:
当接收到用户针对所述第四控件的操作时,对所述蓄电池进行检测。
可选的,所述第一界面包括第五控件,所述方法还包括:
当接收到用户针对所述第五控件的操作时,显示第四界面,所述第四界面包括车辆信息输入区域以及电池信息输入区域;
接收用户在所述车辆信息输入区域和所述电池信息输入区域分别输入的新增车辆信息和新增电池信息;
将所述新增车辆信息和所述新增电池信息存储至所述映射表中,并形成所述新增车辆信息和所述新增电池信息的映射关系。
可选的,所述车辆信息包括以下至少一种:
车牌、VIN码、车辆品牌、车辆型号、车辆年款和电池标识。
可选的,所述标准参数包括以下至少一种:
电池类型、电池标准、额定容量、标准电压、电池安装位置和标称CCA。
第二方面,本发明实施例还提供一种车辆蓄电池的标准参数获取装置所述装置包括:
第一显示模块:用于显示第一界面,所述第一界面包括第一区域和第二区域,其中,所述第一区域用于输入所述车辆信息,所述第二区域用于显示所述蓄电池的标准参数;
接收模块,用于接收在所述第一区域输入的车辆信息;
查找模块,用于根据所述车辆信息在预设的映射表中查找所述车辆信息对应的蓄电池的标准参数;
第二显示模块,用于在所述第二区域显示所述车辆信息对应的所述蓄电池的所述标准参数。
第三方面,本发明实施例还提供一种电池检测设备,所述电池检测设备包括:
至少一个处理器;和
与所述至少一个处理器通信连接的存储器;其中,
所述存储器存储有可被所述至少一个处理器执行的指令,所述指令被所述至少一个处理器执行,以使所述至少一个处理器能够执行如第一方面所述的车辆蓄电池的标准参数获取方法。
第四方面,本发明实施例还提供一种非易失性计算机可读存储介质,所述计算机可读存储介质存储有计算机可执行指令,当所述计算机可执行指令被执行时,能够执行如第一方面所述的车辆蓄电池的标准参数获取方法。
本发明实施方式的有益效果是:区别于现有技术的情况,本发明实施例提供了一种车辆蓄电池的标准参数获取方法、装置、电池检测设备及非易失性计算机可读存储介质,能够显示第一界面,且第一界面包括用于输入车辆信息的第一区域和用于显示蓄电池标准参数的第二区域;还能够接收在第一区域输入的车辆信息,根据输入的车辆信息在预设的映射表中查找车辆信息对应的蓄电池的标准参数,然后将标准参数显示在第二区域。因此,在对车辆蓄电池进行检测时,本发明可以使电池检测设备根据输入的车辆信息自动获蓄电池的取标准参数,而不需要用户在电池检测设备中逐个输入蓄电池的标准参数,故本发明可以提高车辆蓄电池的检测效率,提升用户体验。
一个或多个实施例通过与之对应的附图中的图片进行示例性说明,这些示例性说明并不构成对实施例的限定,附图中具有相同参考数字标号的元件表示为类似的元件,除非有特别申明,附图中的图不构成比例限制。
图1是本发明一实施例提供的应用场景的示意图;
图2是本发明一实施例提供的电池检测设备的硬件结构示意图;
图3是本发明一实施例提供的车辆蓄电池的标准参数获取方法流程示意 图;
图4是本发明一实施例提供的第一界面的结构示意图;
图5是本发明一实施例提供的车辆蓄电池的标准参数获取方法流程示意图;
图6是本发明一实施例提供的第三界面的结构示意图;
图7本发明一实施例提供的车辆蓄电池的标准参数获取装置结构示意图;
图8是本发明一实施例提供的车辆蓄电池的标准参数获取装置结构示意图。
为了使本发明的目的、技术方案及优点更加清楚明白,以下结合附图及实施例,对本发明进行进一步详细说明。应当理解,此处所描述的具体实施例仅用以解释本发明,并不用于限定本发明。
需要说明的是,如果不冲突,本发明实施例中的各个特征可以相互组合,均在本发明的保护范围之内。另外,虽然在装置示意图中进行了功能模块的划分,在流程图中示出了逻辑顺序,但是在某些情况下,可以以不同于装置示意图中的模块划分,或流程图中的顺序执行所示出或描述的步骤。
除非另有定义,本说明书所使用的所有的技术和科学术语与属于本发明的技术领域的技术人员通常理解的含义相同。本说明书中在本发明的说明书中所使用的术语只是为了描述具体的实施方式的目的,不是用于限制本发明。本说明书所使用的术语“和/或”包括一个或多个相关的所列项目的任意的和所有的组合。
图1示意性地出示了本发明的一种应用环境,如图1所示,该应用环境包括电池检测设备100和车辆200;其中,车辆200可以是任意车型车款的车辆,例如,小汽车、大货车、巴士车或工程车等。车辆200具有由多个电子控制单元组成的电子控制系统,用以协调和控制车辆按照驾驶员的操作指令,并对一个或者多项车辆参数进行实时监测,确保车辆200可靠并安全地运行。设置于车辆200的蓄电池可以是任意形式的蓄电池,例如,锂离子电池、镍镉电池、镍氢蓄电池或铅酸蓄电池等。可选的,本发明的某些实施例中,上述应用环境还包括服务器,服务器与电池检测设备100通信连接,服务器用于接收电池检测设备100发送的图像,并将从图像中解析出的车辆信息发送给电池检测设备100。
电池检测设备100可以是任何类型的车辆诊断产品,包括至少一个电连接器,电连接器的末端用于检测蓄电池的性能。电连接器包括开尔文(Ke l v i n)连接器、低频圆形连接器、光纤连接器、矩形连接器、印制电路连接器、射频连接器等连接器。
在实际使用过程中,电池检测设备100通过接口模块,例如诊断接头和硬件通信接口,与车辆200中的多种车辆总线建立物理上的通信连接,并加载合 适或者配对的协议配置来实现与车辆200之间的数据交互,例如发送检测指令或者接收检测数据。
蓄电池在长时间使用过程中,可能会出现电池端电压不均匀、电池壳变形、电解液渗漏或电池容量不足等现象,影响蓄电池的供电。蓄电池的电池容量是表征蓄电池充足电后放出电能大小的数值,能够反映蓄电池的健康状况。通常,当蓄电池的实际电池容量下降到其额定容量的90%以下时,蓄电池便进入衰退期;当蓄电池的电池容量下降到额定容量的80%以下时,蓄电池便进入急剧的衰退状态,此时蓄电池存在安全隐患。而当电池容量下降到其额定容量的70%以下时,蓄电池达到报废状态。
电池检测设备100用于测量蓄电池当前的性能参数,例如,测试蓄电池的CCA、电压、内阻、充放电性能和电池容量等,通过测得的性能参数和电池的标准参数作对比,可以快速判断出电池性能的好坏,并筛选出不良电池。
现有技术中,用户300必须在电池检测设备100中手动输入蓄电池的标准参数,电池检测设备100才能将检测到的性能参数和标准参数作对比。然而,用户300获取蓄电池标准参数的过程相对复杂。比如说,用户300需要先找到车辆200中蓄电池的位置,再根据蓄电池的电池铭牌标注的信息获取标准参数。而且,由于受到车辆其他部件的遮挡,部分蓄电池安装后无法直接看到电池铭牌,故用户300必须将电池从车辆200上拆卸下来才能找到电池铭牌;另外,还有部分车辆蓄电池的安装位置比较隐蔽,不容易被发现;因此,查找蓄电池和电池铭牌的过程相当繁琐。
本发明的核心在于,可以根据输入的车辆信息在预设的映射表中查找车辆信息对应的蓄电池的标准参数;即,电池检测设备可以根据车辆信息自动获取蓄电池的标准参数,提高检测效率。为了便于读者理解本发明,下面结合具体的实施例来进行说明。
图2示意性地出示了电池检测设备100的硬件结构,如图2所示,电池检测设备100包括处理器110、存储器120和显示装置130,其中处理器110分别连接存储器120和显示装置130。本领域技术人员可以理解,图2所示的结构并不构成对电池检测设备的限定,电池检测设备可以包括比图示更多或者更少的部件,或者组合某些部件,或者拆分某些部件,或者不同的部件布置。例如,在本发明的某些实施例中,电池检测设备100还可以包括与处理器110连接的图像采集装置,并且图像采集装置用于拍摄照片或者视屏。
显示装置130在电池检测设备和用户之间提供一种输出界面,显示装置130输出的内容可以是文字或图像。可选的,显示装置130可以是触控屏,触控屏除了向用户显示输出界面外,还接收用户的输入操作,例如,用户的点击、滑动等触发操作。检测用户输入的技术可以是基于电阻式、电容式或者其他任意可能的触控检测技术。触控屏包括但不限于液晶显示器或发光聚合物显示器。
请参阅图3,图3示意性出示了蓄电池标准参数的获取方法,该方法应用 于电池检测设备,例如图2中的电池检测设备100,如图3所示,该方法包括如下步骤:
S11、显示第一界面,所述第一界面包括第一区域和第二区域,其中,所述第一区域用于输入所述车辆信息,所述第二区域用于显示所述蓄电池的标准参数;
请参阅图4,图4示意性出示了第一界面的结构,如图4所示,第一界面500包括第一区域510和第二区域520,其中,第一区域510用于接收车辆信息的输入并对其进行显示,第一区域510包括至少一个车辆信息输入栏,例如,车牌输入栏、VIN码输入栏、品牌输入栏、车辆型号输入栏和车辆年款输入栏中的一种或多种;其中,VIN码又称为车辆识别码,是表明车辆身份的代码。VIN码由17位字符(包括英文字母和数字)组成,俗称十七位码,是车辆制造厂为了区分不同车辆而指定的一组字码。车牌为车辆号码,用于对车辆进行编号与信息登记,进而能够唯一识别车辆。同时上述输入栏可以作为车辆信息的显示栏,车辆信息对应显示于输入栏中。
第二区域520用于显示电池信息,第二区域520包括至少一个电池信息显示栏;第二区域520显示的电池信息包括电池类型、电池标准、额定容量、标准电压、电池安装位置和标称CCA等。按照蓄电池电解液的种类来划分,蓄电池的电池类型包括铅酸蓄电池和镍碱蓄电池;按照蓄电池电极材料的不同,电池类型包括铅蓄电池、铁镍蓄电池和镉镍蓄电池。例如,电池类型可以是AGM型、FLOODED型、AGM SPIRAL型或EFB型,其中AGM型蓄电池是一种采用玻璃纤维隔板的阀控式密封铅蓄电池;FLOODED型蓄电池是富液式电池,属于铅酸蓄电池;EFB型蓄电池为增强型富液式蓄电池。
另外,上述电池标准为蓄电池的测试标准。额定容量表示蓄电池能维持车辆正常运转时存储电量的大小。标准电压为蓄电池能维持车辆正常运转时输出的电压值。标称CCA即蓄电池的冷启动电流,指在规定的某一低温状态下(通常规定在0℉或-17.8℃)蓄电池在电压降至极限馈电电压前,连续30秒释放出的电流量。例如一个12V的蓄电池的标称CCA为550,即指蓄电池在充满电并在-17.8℃环境下静置24小时后,在电压降至7.2V之前,能连续30秒提供550A的电流。
S12、接收在所述第一区域输入的车辆信息;
本实施例中,电池检测设备获取车辆信息的方式有多种。在一些实施例中,电池检测设备可以根据用户在第一区域的第一触发操作,从车辆中读取车辆信息。例如,电池检测设备可以与车辆建立通信连接,并获取车辆发送的车辆信息。具体的,用户可以通过VCI连接电池检测设备和车辆,并通过第一触发操作使VCI分别扫描ISO15765、ISO14230、ISO9141和J1850几个协议,通过发送J1979的01 00指令来确认车辆协议类型,当确定协议类型后;电池检测设备发送09 02指令,来读取车辆信息,如读取车辆VIN码等。
在另一些实施例中,电池检测设备还可以根据用户在第一区域的第二触发 操作获取采集的图像并从图像中解析出车辆信息。例如,第一界面可以设置图像识别按键,用户点击图像识别按键后,图像采集装置开始采集图像。图像识别按键的数量可以是一个或多个,图4中以车牌识别按键511a和VIN识别按键511b两个为例。当图像识别按键为一个时,电池检测设备可以自动识别出车辆信息的类型;当识别出的车辆信息为车牌时,将解析出的车牌号自动填入车牌输入栏;当识别出的车辆信息为VIN码时,将解析出的VIN码自动填入VIN码输入栏;而当识别出的车辆信息为电池信息时,将解析出的电池信息显示在第二显示栏。当图像识别按键为多个时,图像识别按键还可以包括用于识别电池ID的电池识别按键。
可选地,上述方式输入的车辆信息,在第一区域显示车辆信息后,可以接收用户对车辆信息的修改操作,以保证输入正确。
在本发明的某些实施例中,用户还可以直接在第一区域输入车辆信息,电池检测设备接收用户在第一区域的输入操作,并根据输入操作确定所述车辆信息。用户输入车辆信息的方式具体可以是直接手动键入字母、数字或汉字。
在一些实施例中,为了使电池检测设备能够快速获取多种车辆信息,电池检测设备还能够接收在第一区域输入的第一车辆信息,并根据第一车辆信息确定与第一车辆信息相关联的第二车辆信息,以及在第一区域显示第二车辆信息。本实施例中,可以预先使车辆信息中的至少两种信息互相关联,电池检测设备只要通过其中一种车辆信息便可以获取相关联的其他车辆信息。例如,可以预先建立车牌与VIN码、车辆品牌、车辆型号、车辆年款和电池标识中至少一种车辆信息之间的映射关系;当电池检测设备接收到在车牌输入栏输入的车牌时,便会在相应的其他输入栏显示车牌对应的VIN码、车辆品牌、车辆型号、车辆年款和电池标识中至少一种车辆信息。如果输入的第一车辆信息有多个并列的第二车辆信息与之关联,则可不予显示,例如,输入车辆型号或车辆年款,表明该车辆型号或车辆年款多用同一类型或同一标准的电池,可有多个车牌或VIN码与该车辆型号或车辆年款关联,在此可不予显示,仅通过车辆型号与车辆年款与电池的关联关系,即可获取电池信息。
上述方式进一步简化了车辆信息的输入,增加用户体验。
S13、根据所述车辆信息在预设的映射表中查找所述车辆信息对应的蓄电池的标准参数;
本实施例中,预设的映射表可以在用户首次使用电池检测设备时建立,例如,可以通过在数据库中录入车辆信息和电池信息建立预设的映射表,表一示意性出示了预设的映射表的结构,如表一所示,车辆信息包括电池ID、车牌、VIN码、车辆品牌、车辆型号和车辆年款中的至少一种,蓄电池的标准参数包括电池品牌、电池类型、电池标准、标称CCA、标准电压、额定容量和电池安装位置中的至少一种。电池检测设备可以根据第一区域输入的任一车辆信息,在预设的映射表中查找出对应的标准参数。电池类型包括AGM、FLOODED、AGM SPIRAL和EFB中的至少一种,电池标准包括CCA、SAE、CA和EN中的至少一 种;其中,CCA为一种标准;SAE为美国机动车工程师学会标准,而EN为欧洲标准。其中,标称CCA可在各电池标准下存在,其可以显示在电池名牌上,作为电池的一个额定参数,无论何种标准电池进行检测,该标称CCA均可作为参数比照电池的好坏。
表一:预设的映射表的结构
| 序号 | 1 | 2 | 3 | 4 | 5 |
| 电池ID | 7186501725282360 | ||||
| 车牌 | 粤B11111 | ||||
| VIN码 | WDDNG86X37A128280 | ||||
| 车辆品牌 | Mercedes | ||||
| 车辆型号 | S550 | ||||
| 车辆年款 | 2007 | ||||
| 电池品牌 | 瓦尔塔 | ||||
| 电池类型 | AGM | ||||
| 电池标准 | SAE | ||||
| 标称CCA | 720 | ||||
| 标准电压 | 12V | ||||
| 额定容量 | 100Ah | ||||
| 电池安装位置 | 后备箱侧面 |
S14、在所述第二区域显示所述车辆信息对应的所述蓄电池的所述标准参数。
例如,当第一区域输入的车牌为粤B11111时,第二区域可以显示出至少一个电池的标准参数,例如显示电池的标称CCA为720、额定容量为100Ah以及电池安装位置为后备箱侧面等。
请参阅图5,在一些实施例中,上述方法还包括以下步骤:
S15、在所述第二区域内接收用户针对所述标准参数的修改操作;
S16、根据所述修改操作修改所述标准参数。
本实施例中,当第二区域显示的标准参数有误时,用户还可以对错误的标准参数进行修改。例如,如图4中所示的界面中,当在第一区域输入车辆信息后,可在第二区域显示电池类型为AGM,电池标准为SAE,而额定容量为720的电池的标准参数,其显示方式以黑色字体表达。若所显示的标准参数有误,可以上下滑动相关参数直至显示正确的标准参数,如在图4中,各标准参数还显示有灰色字体的其他参数,例如当前显示电池类型为AGM,其上下区域显示 有其他电池类型,如FLOODED,EFB等,其可作为待选项呈现灰色,用户可以通过上下滑动使其他参数显示在当前显示位置以替代AGM,如选取FLOODED,则FLOODED可以通过用户的向下滑动操作显示在当前显示AGM的位置,并且字体颜色由灰色变成黑色,表明用户对电池类型进行修改,选取FLOODED替代AGM作为上述车辆相关的电池类型。当然,用户还可以通过其他方式在第二区域实现对标准参数的修改,在此不予限定。
进一步地,可在映射表中更新修改后的标准参数,从而能够使正确的标准参数适用于下次调用。使标准参数与车辆信息的关联更精准。
在一些实施例中,为了帮助不清楚电池安装位置的用户快速找到安装在车辆中的蓄电池,第一界面还包括第一控件,当电池检测设备接收到用户针对第一控件的操作时,显示第二界面。其中,第二界面包括车辆信息对应的蓄电池在车辆上的位置信息。本实施例中,用户可以通过点击第一控件快速获取电池安装位置。在一些实施例中,第二界面还包括第二控件,当电池检测设备接收到用户针对第二控件的操作时,对蓄电池进行检测。
本申请实施例中,控件包括界面上显示的一切接收用户操作的部件,也可以理解为接口,用户通过对控件的操作,可以实现相关交互,如更新界面,或者电池检测设备实现某一功能等。
例如,如图4所示的“下一步”控件,用户通过点击“下一步”控件可以是电池检测设备显示第二界面。
在一些实施例中,第一界面还包括第三控件,当电池检测设备接收到用户针对第三控件的操作时,显示第三界面,请参阅图6,图6示意性出示了第三界面的结构。如图6所示,第三界面400包括所述车辆信息对应的所述蓄电池在所述车辆上的拆装步骤信息。用户可以通过点击第三控件快速获取蓄电池的拆装方法,从而减少用户拆装蓄电池的时间,以提高蓄电池的拆装效率,提升用户体验。图6中的第三界面400还包括“电池检测”控件401,用户通过点击“电池检测”使电池检测设备基于电池的标准参数对蓄电池进行功能检测。
在一些实施例中,第一界面包括第四控件,当电池检测设备接收到用户针对第四控件的操作时,对蓄电池进行检测。
例如,如图4所示的“下一步”控件,用户通过点击“下一步”使电池检测设备基于电池的标准参数对蓄电池进行功能检测。
在一些实施例中,第一界面包括第五控件,当电池检测设备接收到用户针对第五控件的操作时,显示第四界面,其中,第四界面包括车辆信息输入区域以及电池信息输入区域;电池检测设备能够接收用户在车辆信息输入区域和电池信息输入区域分别输入的新增车辆信息和新增电池信息;并将新增车辆信息和新增电池信息存储至映射表中,然后形成新增车辆信息和新增电池信息的映射关系。例如,在表一所示的映射表中,可以将新增车辆信息和新增电池信息的映射关系存储至第二列。可选的,在本发明的某些实施例中,也可以在第四 界面对映射表中已有的车辆信息和/或电池信息进行修改。例如,当用户对蓄电池进行更换后,可以在车辆信息输入区域和/或电池信息输入区域删除已有蓄电池的信息,并重新输入更换后的蓄电池的信息。例如,图4也可以示意性作为第四界面,用户可以通过对各车辆信息以及电池的标准参数的输入,确定新增的映射关系。在此,对于图4中显示的“下一步”控件,用户可以通过点击等方式确认已输入完成,进而使输入信息更新至映射表中。进而开启该车辆对应的电池检测。
本发明实施例中电池检测设备显示的第一界面包括多个控件,菜单层级少,简化用户操作,节省用户操作时间。
相应的,本发明实施例还提供一种车辆蓄电池的标准参数获取装置,可以应用于电池检测设备,例如,图2所示的电池检测设备100。如图6所示,车辆蓄电池的标准参数获取装置600包括:
第一显示模块601:用于显示第一界面,所述第一界面包括第一区域和第二区域,其中,所述第一区域用于输入所述车辆信息,所述第二区域用于显示所述蓄电池的标准参数;
第一接收模块602,用于接收在所述第一区域输入的车辆信息;
查找模块603,用于根据所述车辆信息在预设的映射表中查找所述车辆信息对应的蓄电池的标准参数;
第二显示模块604,用于在所述第二区域显示所述车辆信息对应的所述蓄电池的所述标准参数。
如图7所示,在一些实施例中,车辆蓄电池的标准参数获取装置600还包括:
第二接收模块605,用于在所述第二区域显示所述车辆信息对应的所述蓄电池的所述标准参数后,在所述第二区域内接收用户针对所述标准参数的修改操作;
修改模块:用于根据所述修改操作修改所述标准参数。
在一些实施例中,第一接收模块602具体用于,
接收在所述第一区域输入的第一车辆信息;
根据所述第一车辆信息确定与所述第一车辆信息相关联的第二车辆信息;
在所述第一区域显示所述第二车辆信息。
在另一些实施例中,第一接收模块602具体用于:
根据用户在所述第一区域的第一触发操作,从车辆中读取所述车辆信息;和/或,
根据用户在所述第一区域的第二触发操作,获取采集的图像并从所述图像中解析出所述车辆信息;和/或,
接收用户在所述第一区域的输入操作,根据所述输入操作确定所述车辆信息。
在一些实施例中,所述第一界面包括第一控件,车辆蓄电池的标准参数获 取装置600还包括:
第三显示模块606,用于当接收到用户针对所述第一控件的操作时,显示第二界面,所述第二界面包括所述车辆信息对应的所述蓄电池在所述车辆上的位置信息。
在一些实施例中,所述第二界面还包括第二控件,车辆蓄电池的标准参数获取装置600还包括:
第一检测模块607,用于当接收到用户针对所述第二控件的操作时,对所述蓄电池进行检测。
在一些实施例中,所述第一界面还包括第三控件,车辆蓄电池的标准参数获取装置600还包括:
第四显示模块608,用于当接收到用户针对所述第三控件的操作时,显示第三界面,所述第三界面包括所述车辆信息对应的所述蓄电池在所述车辆上的拆装步骤信息。
在一些实施例中,所述第一界面还包括第四控件,车辆蓄电池的标准参数获取装置600还包括:
第二检测模块609,用于当接收到用户针对所述第四控件的操作时,对所述蓄电池进行检测。
在一些实施例中,所述第一界面还包括第五控件,车辆蓄电池的标准参数获取装置600还包括:
第五显示模块610,用于当接收到用户针对所述第五控件的操作时,显示第四界面,所述第四界面包括车辆信息输入区域以及电池信息输入区域;
第三接收模块611,用于接收用户在所述车辆信息输入区域和所述电池信息输入区域分别输入的新增车辆信息和新增电池信息;
存储模块612,用于将所述新增车辆信息和所述新增电池信息存储至所述映射表中,并形成所述新增车辆信息和所述新增电池信息的映射关系。
在一些实施例中,所述车辆信息包括以下至少一种:
车牌、VIN码、车辆品牌、车辆型号、车辆年款和电池标识。
所述标准参数包括以下至少一种:
电池类型、电池标准、额定容量、标准电压、电池安装位置和标称CCA。
本发明实施例提供了一种车辆蓄电池的标准参数获取方法、装置、电池检测设备及非易失性计算机可读存储介质,能够显示第一界面,且第一界面包括用于输入车辆信息的第一区域和用于显示蓄电池标准参数的第二区域;还能够接收在第一区域输入的车辆信息,根据输入的车辆信息在预设的映射表中查找车辆信息对应的蓄电池的标准参数,然后将标准参数显示在第二区域。因此,在对车辆蓄电池进行检测时,本发明可以使电池检测设备根据输入的车辆信息自动获蓄电池的取标准参数,而不需要用户在电池检测设备中逐个输入蓄电池的标准参数,故本发明可以提高车辆蓄电池的检测效率,提升用户体验。
处理器110的数量可以是一个或多个,图2中以一个处理器110为例。处 理器110和存储器120可以通过总线或者其他方式连接,图2中以通过总线连接为例。存储器120作为一种非易失性计算机可读存储介质,可用于存储非易失性软件程序、非易失性计算机可执行程序以及模块,如本发明实施例中的电池标准参数获取方法对应的程序指令/模块。处理器110通过运行存储在存储器120中的非易失性软件程序、指令以及模块,从而执行服务器的各种功能应用以及数据处理,即实现上述方法实施例的电池标准参数获取方法。
存储器120可以包括存储程序区和存储数据区,其中,存储程序区可存储操作系统、至少一个功能所需要的应用程序;存储数据区可存储根据车辆蓄电池的标准参数获取装置的使用所创建的数据等。此外,存储器120可以包括高速随机存取存储器,还可以包括非易失性存储器,例如至少一个磁盘存储器件、闪存器件、或其他非易失性固态存储器件。在一些实施例中,存储器120可选包括相对于处理器110远程设置的存储器,这些远程存储器可以通过网络连接至车辆蓄电池的标准参数获取装置。上述网络的实例包括但不限于互联网、企业内部网、局域网、移动通信网及其组合。
所述一个或者多个模块存储在所述存储器120中,当被所述至少一个处理器110执行时,执行上述任意方法实施例中的电池标准参数获取方法,例如,执行以上描述的图3中的方法步骤S11-S14;图5中的方法步骤S11-S16;图7中的模块601-604及图8中的模块601-612的功能。
上述装置可执行本发明实施例所提供的方法,具备执行方法相应的功能模块和有益效果。未在装置实施例中详尽描述的技术细节,可参见本发明实施例所提供的方法。
本发明实施例提供了一种非易失性计算机可读存储介质,所述非易失性计算机可读存储介质存储有计算机可执行指令,该计算机可执行指令被电子设备执行上述任意方法实施例中的电池标准参数获取方法,例如,例如,执行以上描述的图3中的方法步骤S11-S14;图5中的方法步骤S11-S16;图7中的模块601-604及图8中的模块601-612的功能。
本发明实施例提供了一种计算机程序产品,包括存储在非易失性计算机可读存储介质上的计算程序,所述计算机程序包括程序指令,当所述程序指令被计算机执行时时,使所述计算机执行上述任意方法实施例中的电池标准参数获取方法,例如,执行以上描述的图3中的方法步骤S11-S14;图5中的方法步骤S11-S16;图7中的模块601-604及图8中的模块601-612的功能。
以上所描述的装置实施例仅仅是示意性的,其中所述作为分离部件说明的单元可以是或者也可以不是物理上分开的,作为单元显示的部件可以是或者也可以不是物理单元,即可以位于一个地方,或者也可以分布到多个网络单元上。可以根据实际的需要选择其中的部分或者全部模块来实现本实施例方案的目的。
通过以上的实施例的描述,本领域普通技术人员可以清楚地了解到各实施例可借助软件加通用硬件平台的方式来实现,当然也可以通过硬件。本领域普 通技术人员可以理解实现上述实施例方法中的全部或部分流程是可以通过计算机程序来指令相关的硬件来完成,所述的程序可存储于一计算机可读取存储介质中,该程序在执行时,可包括如上述各方法的实施例的流程。其中,所述的存储介质可为磁碟、光盘、只读存储记忆体(Read-Only Memory,ROM)或随机存储记忆体(Random Access Memory,RAM)等。
最后应说明的是:以上实施例仅用以说明本申请的技术方案,而非对其限制;在本申请的思路下,以上实施例或者不同实施例中的技术特征之间也可以进行组合,步骤可以以任意顺序实现,并存在如上所述的本申请的不同方面的许多其它变化,为了简明,它们没有在细节中提供;尽管参照前述实施例对本申请进行了详细的说明,本领域的普通技术人员应当理解:其依然可以对前述各实施例所记载的技术方案进行修改,或者对其中部分技术特征进行等同替换;而这些修改或者替换,并不使相应技术方案的本质脱离本申请各实施例技术方案的范围。
Claims (14)
- 一种车辆蓄电池的标准参数获取方法,应用于电池检测设备,其特征在于,所述方法包括:显示第一界面,所述第一界面包括第一区域和第二区域,其中,所述第一区域用于输入所述车辆信息,所述第二区域用于显示所述蓄电池的标准参数;接收在所述第一区域输入的车辆信息;根据所述车辆信息在预设的映射表中查找所述车辆信息对应的蓄电池的标准参数;在所述第二区域显示所述车辆信息对应的所述蓄电池的所述标准参数。
- 根据权利要求1所述的方法,其特征在于,所述在所述第二区域显示所述车辆信息对应的所述蓄电池的所述标准参数后,所述方法还包括:在所述第二区域内接收用户针对所述标准参数的修改操作;根据所述修改操作修改所述标准参数。
- 根据权利要求1所述的方法,其特征在于,所述接收在所述第一区域输入的车辆信息,包括:接收在所述第一区域输入的第一车辆信息;根据所述第一车辆信息确定与所述第一车辆信息相关联的第二车辆信息;在所述第一区域显示所述第二车辆信息。
- 根据权利要求1所述的方法,其特征在于,所述接收在所述第一区域输入的车辆信息,包括:根据用户在所述第一区域的第一触发操作,从车辆中读取所述车辆信息;和/或,根据用户在所述第一区域的第二触发操作,获取采集的图像并从所述图像中解析出所述车辆信息;和/或,接收用户在所述第一区域的输入操作,根据所述输入操作确定所述车辆信息。
- 根据权利要求1至4任一项所述的方法,其特征在于,所述第一界面包括第一控件,所述方法还包括:当接收到用户针对所述第一控件的操作时,显示第二界面,所述第二界面包括所述车辆信息对应的所述蓄电池在所述车辆上的位置信息。
- 根据权利要求5所述的方法,其特征在于,所述第二界面还包括第二控件,所述方法还包括:当接收到用户针对所述第二控件的操作时,对所述蓄电池进行检测。
- 根据权利要求1至4任一项所述的方法,其特征在于,所述第一界面包括第三控件,所述方法还包括:当接收到用户针对所述第三控件的操作时,显示第三界面,所述第三界面包括所述车辆信息对应的所述蓄电池在所述车辆上的拆装步骤信息。
- 根据权利要求1至4任一项所述的方法,其特征在于,所述第一界面包括第四控件,所述方法还包括:当接收到用户针对所述第四控件的操作时,对所述蓄电池进行检测。
- 根据权利要求1至4任一项所述的方法,其特征在于,所述第一界面包括第五控件,所述方法还包括:当接收到用户针对所述第五控件的操作时,显示第四界面,所述第四界面包括车辆信息输入区域以及电池信息输入区域;接收用户在所述车辆信息输入区域和所述电池信息输入区域分别输入的新增车辆信息和新增电池信息;将所述新增车辆信息和所述新增电池信息存储至所述映射表中,并形成所述新增车辆信息和所述新增电池信息的映射关系。
- 根据权利要求1所述的方法,其特征在于,所述车辆信息包括以下至少一种:车牌、VIN码、车辆品牌、车辆型号、车辆年款和电池标识。
- 根据权利要求1所述的方法,其特征在于,所述标准参数包括以下至少一种:电池类型、电池标准、额定容量、标准电压、电池安装位置和标称CCA。
- 一种车辆蓄电池的标准参数获取装置,其特征在于,所述装置包括:第一显示模块:用于显示第一界面,所述第一界面包括第一区域和第二区域,其中,所述第一区域用于输入所述车辆信息,所述第二区域用于显示所述蓄电池的标准参数;接收模块,用于接收在所述第一区域输入的车辆信息;查找模块,用于根据所述车辆信息在预设的映射表中查找所述车辆信息对应的蓄电池的标准参数;第二显示模块,用于在所述第二区域显示所述车辆信息对应的所述蓄电池的所述标准参数。
- 一种电池检测设备,其特征在于,所述电池检测设备包括:至少一个处理器;和与所述至少一个处理器通信连接的存储器;其中,所述存储器存储有可被所述至少一个处理器执行的指令,所述指令被所述至少一个处理器执行,以使所述至少一个处理器能够执行如权利要求1-11任一项所述的车辆蓄电池的标准参数获取方法。
- 一种非易失性计算机可读存储介质,其特征在于,所述计算机可读存储介质存储有计算机可执行指令,当所述计算机可执行指令被执行时,能够执行如权利要求1-11任一项所述的车辆蓄电池的标准参数获取方法。
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| CN115774124A (zh) * | 2022-11-11 | 2023-03-10 | 北斗星通智联科技有限责任公司 | 一种车速表测试方法、装置、电子设备及存储介质 |
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