Dust collection instrument battery power supply prediction method and system, storage medium and terminal

By segmenting and predicting the battery level of the dust collector, and combining weather information and power consumption efficiency, the problem of inaccurate battery power supply of the dust collector was solved, enabling timely alarms and battery replacement, and ensuring the continuity of monitoring data.

CN116593907BActive Publication Date: 2026-02-06JIANGXI FASHION TECH
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202310538224.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-05-12
Publication Date
2026-02-06
Estimated Expiration
2043-05-12

AI Technical Summary

Technical Problem

The battery power prediction of existing dust collectors is inaccurate, which makes it impossible for staff to replace batteries in time when work is interrupted, affecting the continuity of monitoring data.

Method used

By acquiring the power consumption efficiency of the dust collector's battery and weather information, the system can predict sunny and cloudy periods in segments, determine whether the battery has enough power to support the upcoming cloudy period, and issue an alarm to remind users to replace the battery if the battery is insufficient.

Benefits of technology

It improves the accuracy and practicality of battery power prediction, reduces external communication power consumption, and ensures the continuous operation of the dust collector.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN116593907B_ABST
    Figure CN116593907B_ABST
Patent Text Reader

Abstract

The present application relates to the field of environmental protection technology, and particularly relates to a dust collection instrument battery power supply prediction method and system, a storage medium and a terminal, the method comprising: obtaining the working power consumption efficiency of a dust collection instrument battery; obtaining weather information of the current day and weather information of the next day according to a preset time period; dividing the time domain from the time stamp to 24:00 of the next day into a plurality of sunlight periods and a plurality of non-sunlight periods; when the time stamp is in a sunlight period, in response to the current day weather information entering a non-sunlight period from the sunlight period, obtaining a first real-time power of the dust collection instrument battery, and obtaining a first battery power consumption value of the non-sunlight period; if the first real-time power is less than or equal to the first battery power consumption value, an alarm is triggered; when the time stamp is in a non-sunlight period, obtaining a second real-time power of the dust collection instrument battery, and obtaining a second battery power consumption value from the time stamp to the end of the non-sunlight period; if the second real-time power is less than or equal to the second battery power consumption value, an alarm is triggered.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The present application relates to the field of environmental protection, in particular to a dust collection instrument battery power supply prediction method and system, a storage medium and a terminal. BACKGROUND

[0002] Dust is one of the main sources of air pollution, which has gradually attracted public attention in recent years. However, like other air pollution, dust is greatly affected by environmental factors such as temperature, wind speed and direction, and has strong diffusivity and poor predictability of change trend; construction sites are an important source of dust pollution, and construction sites are easily affected by wind during construction, which can easily produce dust. If it cannot be handled in time, the continuous dust will quickly spread to the surrounding environment.

[0003] The dust collection instrument is the main equipment for monitoring dust at present, and solar cells are usually used for power supply to save energy. However, solar power supply is easily affected by weather, so it is currently impossible to accurately predict whether the battery of the dust collection instrument has enough power to drive the dust collection instrument to work normally within a certain period of time in the future, so the staff often find that the battery of the dust collection instrument needs to be replaced when the battery runs out of power and the dust collection instrument stops working. The staff are not always on site, so the process of replacing the battery sometimes takes a long time, thereby affecting the continuity of the work of the dust collection instrument and causing discontinuity in the monitoring data. SUMMARY

[0004] In order to solve the above technical problems, the present application provides a dust collection instrument battery power supply prediction method and system, a storage medium and a terminal.

[0005] The present application adopts the following technical scheme: a dust collection instrument battery power supply prediction method, the method comprising:

[0006] obtaining the working power consumption efficiency of the dust collection instrument battery;

[0007] obtaining the weather information of the current day and the weather information of the next day with a time stamp according to a preset time period, wherein the weather information includes the sunrise time and the sunset time, and the preset time period is from the sunrise time of the current day to the sunset time of the current day;

[0008] dividing the time domain from the time stamp to 24:00 of the next day into a plurality of sunlight periods and a plurality of non-sunlight periods according to the weather information of the current day and the weather information of the next day;

[0009] when the time stamp is in the sunlight period, obtaining the first real-time power of the dust collection instrument battery in response to the weather information of the current day entering the non-sunlight period from the sunlight period, and obtaining the first battery power consumption value of the non-sunlight period according to the working power consumption efficiency;

[0010] if the first real-time power is less than or equal to the first battery power consumption value, triggering an alarm;

[0011] when the time stamp is in the no-sunlight period, obtaining a second real-time power of the dust collection instrument battery, and obtaining a second battery power consumption value from the time stamp to the end of the no-sunlight period according to the working power consumption efficiency;

[0012] if the second real-time power is less than or equal to the second battery power consumption value, triggering an alarm.

[0013] The dust collection instrument battery power supply prediction method of the embodiment of the application, by means of dividing the time domain from the time stamp to 24:00 of the next day into a plurality of sunlight periods and a plurality of no-sunlight periods according to the weather information of the current day and the weather information of the next day, and determining whether the time of obtaining the weather information is in the sunlight period or the no-sunlight period according to the time stamp, then judging whether the real-time power of the dust collection instrument battery is sufficient to support the power consumption of the current no-sunlight period or the upcoming no-sunlight period, if not, an alarm is sent to remind the staff to replace the battery in advance, the prediction accuracy is high, so that the application can get enough prediction time to remind the staff to replace the battery; the sunrise time and the sunset time can be accurately predicted according to the longitude and latitude of the dust collection instrument, and the period between the sunset time of the current day and the sunrise time of the next day is definitely a no-sunlight period, so only the weather information needs to be obtained from the sunrise time to the sunset time of the current day, which effectively reduces the power consumption of communication with the outside world, reduces the influence of other factors on the battery power of the dust collection instrument, and improves the accuracy and practicability of the prediction method.

[0014] Further, the step of obtaining the working power consumption efficiency of the dust collection instrument battery specifically comprises:

[0015] obtaining historical data of the power consumption of the dust collection instrument battery in the no-sunlight period;

[0016] obtaining the working power consumption efficiency of the dust collection instrument battery according to the historical data;

[0017] wherein the solar charging efficiency of the working state of the dust collection instrument battery in the sunlight period is greater than the working power consumption efficiency.

[0018] Further, the step of obtaining the weather information of the current day and the weather information of the next day with a time stamp according to a preset period specifically comprises:

[0019] determining the sunrise time and the sunset time of the current day according to the weather information of the next day obtained on the previous day;

[0020] acquire the daily weather information and the next day weather information at the sunrise time, and perform overwriting update on the daily weather information and the next day weather information according to a preset interval until the sunset time;

[0021] The daily weather information and the next day weather information are both provided with the time stamp.

[0022] Further, the step of dividing the time domain from the time stamp to 24:00 of the next day into a plurality of sunlight time periods and a plurality of non-sunlight time periods according to the daily weather information and the next day weather information specifically comprises:

[0023] the time period from the time stamp to the sunset time of the current day, the time period from the sunrise time of the next day to the sunset time of the next day, the time period from the sunset time of the current day to the sunrise time of the next day, and the time period from the sunset time of the next day to 24:00 of the next day are set as non-sunlight time periods, and the remaining time period from the time stamp to 24:00 of the next day is set as a sunlight time period;

[0024] The sunlight time period less than 1 hour is defined as the non-sunlight time period.

[0025] The application further provides a dust collection instrument battery power supply prediction system, which comprises:

[0026] a first acquisition module configured to acquire the working power consumption efficiency of the dust collection instrument battery;

[0027] a second acquisition module configured to acquire daily weather information and next day weather information provided with a time stamp according to a preset time period, wherein the weather information comprises a sunrise time and a sunset time, and the preset time period is from the sunrise time of the current day to the sunset time of the current day;

[0028] a processing module configured to divide the time domain from the time stamp to 24:00 of the next day into a plurality of sunlight time periods and a plurality of non-sunlight time periods according to the daily weather information and the next day weather information;

[0029] a judgment module configured to acquire a first real-time power of the dust collection instrument battery when the time stamp is in the sunlight time period, and acquire a first battery power consumption value of the non-sunlight time period according to the working power consumption efficiency when the daily weather information shows that the sunlight time period enters the non-sunlight time period;

[0030] if the first real-time power is less than or equal to the first battery power consumption value, an alarm is triggered;

[0031] acquire a second real-time power of the dust collector battery when the time stamp is in the sunlight-free period, and acquire a second battery power consumption value from the time stamp to the end of the sunlight-free period according to the working power consumption efficiency;

[0032] if the second real-time power is less than or equal to the second battery power consumption value, an alarm is triggered.

[0033] The dust collector battery power supply prediction system of the embodiment of the application can accurately predict the sunrise time and the sunset time according to the longitude and latitude of the dust collector, and the period between the sunset time of the current day and the sunrise time of the next day is necessarily a sunlight-free period, so that the weather information needs to be acquired only from the sunrise time to the sunset time of the current day, thereby effectively reducing the power consumption of communication with the outside world, reducing the influence of other factors on the battery power of the dust collector, and improving the accuracy and practicability of the prediction system.

[0034] Further, the first acquisition module is specifically configured to:

[0035] acquire historical data of the power consumption of the dust collector battery in the sunlight-free period;

[0036] acquire the working power consumption efficiency of the dust collector battery according to the historical data;

[0037] wherein the solar charging efficiency of the working state of the dust collector battery in the sunlight period is greater than the working power consumption efficiency.

[0038] Further, the second acquisition module is specifically configured to:

[0039] determine the sunrise time and the sunset time of the current day according to the next-day weather information acquired on the previous day;

[0040] acquire the current-day weather information and the next-day weather information in response to the sunrise time, and perform overlay updating on the current-day weather information and the next-day weather information according to a preset interval until the sunset time, at which the updating of the current-day weather information and the next-day weather information is stopped;

[0041] The weather information of the day and the weather information of the next day are both provided with the time stamp.

[0042] Further, the processing module is specifically configured to:

[0043] The time period from the time stamp to the sunset time of the day, the time period from the sunrise time of the next day to the sunset time of the next day, the time period from the sunset time of the day to the sunrise time of the next day, and the time period from the sunset time of the next day to 24:00 of the next day are set as the sunlight-free time period, and the remaining time period from the time stamp to 24:00 of the next day is set as the sunlight time period.

[0044] The sunlight time period less than 1 hour is defined as the sunlight-free time period.

[0045] A computer readable storage medium comprises instructions which, when executed on a computer, cause the computer to perform the dust collection instrument battery power prediction method.

[0046] A terminal comprises a processor, a memory; the processor and the memory are in communication with each other;

[0047] The memory is configured to store instructions;

[0048] The processor is configured to execute the instructions in the memory, and execute the dust collection instrument battery power prediction method. BRIEF DESCRIPTION OF DRAWINGS

[0049] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the embodiments or prior art description. Obviously, the drawings in the following description only some embodiments of the present application, and for those skilled in the art, other drawings can also be obtained without creative labor.

[0050] Figure 1 The flow chart of the dust collection instrument battery power prediction method of the first embodiment of the present application;

[0051] Figure 2 The structural block diagram of the dust collection instrument battery power prediction system of the second embodiment of the present application. DETAILED DESCRIPTION

[0052] The embodiments of the present application will be described in detail below, and the examples of the embodiments are shown in the drawings, wherein the same or similar reference signs represent the same or similar elements or elements with the same or similar functions throughout. The embodiments described below by referring to the drawings are exemplary and are intended to explain the embodiments of the present application, and cannot be understood as a limitation of the present application.

[0053] In the description of the embodiments of the application, it should be understood that the terms "length", "width", "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like indicate the orientation or positional relationship shown in the drawings based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the embodiments of the application and simplifying the description, and do not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation of the application.

[0054] In addition, the terms "first", "second" are only for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, the features defined with "first", "second" can explicitly or implicitly include one or more of the features. In the description of the embodiments of the application, the meaning of "multiple" is two or more, unless otherwise explicitly specified and limited.

[0055] In the embodiments of the application, unless otherwise explicitly specified and limited, the terms "mounting", "connection", "connection", "fixing" and the like should be understood in a broad sense, for example, it can be fixedly connected, or it can be detachably connected, or it can be integrated; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be indirectly connected through an intermediate medium; it can be the internal communication of two elements or the interaction relationship between two elements. For those skilled in the art, the specific meaning of the above terms in the embodiments of the application can be understood according to the specific circumstances.

[0056] Referring to Figure 1 The first embodiment of the application is a dust collection instrument battery power supply prediction method, the method comprising:

[0057] S1: obtaining the working power consumption efficiency of the dust collection instrument battery; the step specifically comprises:

[0058] obtaining the historical data of the power consumption of the dust collection instrument battery in the sunlight-free period;

[0059] obtaining the working power consumption efficiency of the dust collection instrument battery according to the historical data;

[0060] Among them, the solar charging efficiency of the working state of the dust collection instrument battery in the sunlight period is greater than the working power consumption efficiency, that is, after the dust collection instrument battery is charged for a certain sunlight period, it can at least continue to work for the same length of time as the sunlight period.

[0061] S2: obtaining the weather information of the current day and the next day with time stamp according to the preset period, wherein the weather information includes sunrise time and sunset time, and the preset period is from the sunrise time of the current day to the sunset time of the current day; the step specifically comprises:

[0062] determining the sunrise time and the sunset time of the current day according to the weather information of the next day obtained on the previous day;

[0063] obtaining the weather information of the current day and the weather information of the next day in response to the sunrise time, and performing an overlay update on the weather information of the current day and the weather information of the next day according to a preset interval until the sunset time, wherein the preset interval is 1 hour in this embodiment; wherein the weather information of the current day and the weather information of the next day are both time-stamped.

[0064] S3: dividing the time domain from the time stamp to 24:00 of the next day into a plurality of sunlight periods and a plurality of non-sunlight periods according to the weather information of the current day and the weather information of the next day; the step specifically comprises:

[0065] setting the rain and snow weather period from the time stamp to the sunset time of the current day, the rain and snow weather period from the sunrise time of the next day to the sunset time of the next day, the period from the sunset time of the current day to the sunrise time of the next day, and the period from the sunset time of the next day to 24:00 of the next day as non-sunlight periods, and setting the remaining periods from the time stamp to 24:00 of the next day as sunlight periods; wherein a sunlight period less than 1 hour is defined as a non-sunlight period; that is, a sunlight period is at least 1 hour, and according to the solar charging efficiency, the dust collection instrument can work for at least one hour after being charged in a sunlight period, even if the battery capacity cannot meet the power supply of the next non-sunlight period, but there is enough time for the staff to react to replace a new battery.

[0066] S4: when the time stamp is in a sunlight period, obtaining a first real-time battery capacity of the dust collection instrument in response to the weather information of the current day entering a non-sunlight period from the sunlight period, and obtaining a first battery capacity consumption value of the non-sunlight period according to the working power consumption efficiency;

[0067] S5: if the first real-time battery capacity is less than or equal to the first battery capacity consumption value, triggering an alarm;

[0068] S6: when the time stamp is in a non-sunlight period, obtaining a second real-time battery capacity of the dust collection instrument, and obtaining a second battery capacity consumption value from the time stamp to the end of the non-sunlight period according to the working power consumption efficiency;

[0069] S7: if the second real-time battery capacity is less than or equal to the second battery capacity consumption value, triggering an alarm.

[0070] The dust collection instrument battery power supply prediction method of the embodiment of the present application predicts the time when the sun rises and the time when the sun sets according to the longitude and latitude of the dust collection instrument, and the time period from the sunset of the current day to the sunrise of the next day is necessarily a sunlight-free period, so it is only necessary to obtain weather information from the sunrise to the sunset of the current day, effectively reducing the power consumption of communication with the outside world, reducing the influence of other factors on the battery power of the dust collection instrument, and improving the accuracy and practicality of the prediction method of the present application.

[0071] Embodiment two

[0072] Reference Figure 2 The present application also provides a dust collection instrument battery power supply prediction system, which comprises:

[0073] A first acquisition module is configured to acquire the working power consumption efficiency of the dust collection instrument battery.

[0074] A second acquisition module is configured to acquire the current day weather information and the next day weather information with a time stamp according to a preset time period, wherein the weather information comprises the time when the sun rises and the time when the sun sets, and the preset time period is from the sunrise of the current day to the sunset of the current day.

[0075] A processing module is configured to divide the time domain from the time stamp to 24:00 of the next day into a plurality of sunlight periods and a plurality of sunlight-free periods according to the current day weather information and the next day weather information.

[0076] A judgment module is configured to acquire the first real-time power of the dust collection instrument battery when the time stamp is in the sunlight period, and obtain the first battery power consumption value of the sunlight-free period according to the working power consumption efficiency in response to the current day weather information entering the sunlight-free period from the sunlight period.

[0077] If the first real-time power is less than or equal to the first battery power consumption value, an alarm is triggered.

[0078] When the time stamp is in the sunlight-free period, the second real-time power of the dust collection instrument battery is acquired, and the second battery power consumption value from the time stamp to the end of the sunlight-free period is obtained according to the working power consumption efficiency.

[0079] If the second real-time power is less than or equal to the second battery power consumption value, an alarm is triggered.

[0080] The dust collection instrument battery power supply prediction method of the embodiment of the present application predicts the time from the time stamp to 24:00 the next day into a plurality of sunlight periods and a plurality of non-sunlight periods according to the weather information of the day and the weather information of the next day, determines whether the time of obtaining the weather information is in the sunlight period or the non-sunlight period according to the time stamp, then judges whether the real-time power of the dust collection instrument battery is sufficient to support the power consumption of the current non-sunlight period or the upcoming non-sunlight period, if not, an alarm is sent to remind the staff to replace the battery in advance, the prediction accuracy is high, so that the present application can get enough prediction time to remind the staff to replace the battery; the sunrise time and the sunset time can be accurately predicted according to the longitude and latitude of the dust collection instrument, and the period between the sunset time of the day and the sunrise time of the next day is definitely a non-sunlight period, so it is only necessary to obtain the weather information from the sunrise time to the sunset time of the day, which effectively reduces the power consumption of communication with the outside world, reduces the influence of other factors on the battery power of the dust collection instrument, and improves the accuracy and practicability of the prediction method of the present application.

[0081] The first obtaining module is specifically configured to:

[0082] obtain the historical data of the power consumption of the dust collection instrument battery in the non-sunlight period;

[0083] obtain the working power consumption efficiency of the dust collection instrument battery according to the historical data;

[0084] The solar charging efficiency of the dust collection instrument battery in the sunlight period is greater than the working power consumption efficiency, that is, after the dust collection instrument battery is charged for a certain sunlight period, it can at least continue to work for the same length of time as the sunlight period.

[0085] The second obtaining module is specifically configured to:

[0086] determine the sunrise time and the sunset time of the day according to the weather information of the next day obtained on the previous day;

[0087] obtain the weather information of the day and the weather information of the next day in response to the sunrise time, and perform coverage update on the weather information of the day and the weather information of the next day according to a preset interval until the sunset time to stop updating the weather information of the day and the weather information of the next day;

[0088] The weather information of the day and the weather information of the next day both have time stamps; in the embodiment, the preset interval is 1 hour.

[0089] The processing module is specifically configured to:

[0090] The time period between the time stamp and the sunset time of the day, the time period between the sunrise time of the next day and the sunset time of the next day, the time period from the sunset time of the day to the sunrise time of the next day, and the time period from the sunset time of the next day to 24:00 of the next day are set as the sunlight-free time period, and the remaining time period from the time stamp to 24:00 of the next day is set as the sunlight time period;

[0091] In the sunlight time period, the sunlight time period less than 1 hour is defined as the sunlight-free time period; that is, the sunlight time period is at least 1 hour, according to the solar charging efficiency, the dust collector can work for at least one hour after being charged in a sunlight time period, even if the battery capacity cannot meet the power supply of the next sunlight-free time period, but there is enough time for the staff to react to replace a new battery.

[0092] Embodiment three

[0093] Based on the same inventive concept, the present application provides a computer readable storage medium, which stores a computer program, and the computer program is executed by a processor to realize the steps of the dust collector battery power supply prediction method in the above embodiments.

[0094] The logic and / or steps represented in the flowchart or otherwise described herein, for example, can be considered a list of executable instructions for implementing logic functions, and can be specifically embodied in any computer-readable medium for use by or in connection with an instruction execution system, apparatus, or device, such as a computer-based system, a processor-based system, or other system that can fetch the instructions from the instruction execution system, apparatus, or device and execute the instructions, or in conjunction with these instruction execution systems, apparatuses, or devices. For the purposes of this specification, a "computer-readable medium" can be any device containing a storage, communication, propagation, or transmission medium that stores or transports programs for use by or in connection with an instruction execution system, apparatus, or device, or in conjunction with these instruction execution systems, apparatuses, or devices.

[0095] More specific examples (a non-exhaustive list) of the computer-readable medium include the following: an electrical connection having one or more wires (electrical devices), a portable computer diskette (magnetic devices), a random access memory (RAM), a read-only memory (ROM), an erasable programmable read-only memory (EPROM or flash memory), an optical fiber device, and a portable compact disc read-only memory (CDROM). In addition, the computer-readable medium can even be paper or other suitable medium on which the program can be printed, because the program can be electronically obtained, for example, by optical scanning of the paper or other medium, followed by electronic conversion, interpretation, or processing, if necessary, in other suitable ways, and then stored in a computer memory.

[0096] The memory can include mass storage for data or instructions. By way of example, and not limitation, the memory can include a Hard Disk Drive (HDD), a floppy disk drive, a solid-state drive (SSD), flash memory, a USB drive, a magneto-optical disk, optical disks such as Compact Disk (CD) and Digital Versatile Disk (DVD), or a combination of two or more of these. The memory can be removable and / or non-removable (or fixed) as appropriate. The memory can be internal or external as appropriate. In certain embodiments, the memory is a nonvolatile memory. In certain embodiments, the memory includes a Read-Only Memory (ROM) and a Random Access Memory (RAM). The ROM can be a mask-programmed ROM, a Programmable Read-Only Memory (PROM), an Erasable Programmable Read-Only Memory (EPROM), an Electrically Erasable Programmable Read-Only Memory (EEPROM), an Electrically Alterable Read-Only Memory (EAROM), or a FLASH memory, or a combination of two or more of these, as appropriate. The RAM can be a Static Random-Access Memory (SRAM) or a Dynamic Random Access Memory (DRAM), which can be a Fast Page Mode Dynamic Random Access Memory (FPMDRAM), an Extended Data Output Dynamic Random Access Memory (EDODRAM), a Synchronous Dynamic Random-Access Memory (SDRAM), or the like, as appropriate.

[0097] Embodiment Four

[0098] Based on the same inventive concept, the application provides a terminal, comprising: a processor, a memory; the processor and the memory are in communication with each other; the memory is used for storing instructions; and the processor is used for executing the instructions in the memory to execute the dust collection instrument battery power prediction method of the above-mentioned embodiments.

[0099] It should be understood that parts of the application can be realized by hardware, software, firmware or a combination thereof. In the above embodiments, a plurality of steps or methods can be realized by software or firmware stored in the memory and executed by a suitable instruction execution system. For example, if realized by hardware, and as in another embodiment, it can be realized by any one or a combination of the following technologies known in the art: discrete logic circuit with logic gate circuit for implementing logic function on data signal, application specific integrated circuit with suitable combination logic gate circuit, programmable gate array (PGA), field programmable gate array (FPGA) and the like.

[0100] The technical features of the above-mentioned embodiments can be combined in any way. In order to make the description simple, all possible combinations of the technical features in the above-mentioned embodiments are not described, however, as long as the combination of the technical features does not exist contradictory, it should be considered as the scope of the present application.

[0101] The above-mentioned embodiments only express several embodiments of the present application, and the description is more specific and detailed, but it should not be understood as a limitation on the scope of the patent. It should be pointed out that for those skilled in the art, without departing from the concept of the present application, a number of modifications and improvements can be made, which are all within the scope of the present application. Therefore, the scope of the patent of the present application should be subject to the appended claims.

Claims

1. A dust sampling instrument battery power supply prediction method, characterized in that, The method comprises: acquiring the working power consumption efficiency of the dust sampler battery; acquiring the current day weather information and the next day weather information with a time stamp according to a preset time period, wherein the weather information comprises the sunrise time and the sunset time, and the preset time period is from the sunrise time of the current day to the sunset time of the current day; dividing the time domain from the time stamp to 24:00 of the next day into a plurality of sunlight time periods and a plurality of non-sunlight time periods according to the current day weather information and the next day weather information; when the time stamp is in the sunlight time period, acquiring the first real-time power of the dust sampler battery in response to the current day weather information entering the non-sunlight time period from the sunlight time period, and obtaining the first battery power consumption value of the non-sunlight time period according to the working power consumption efficiency; if the first real-time power is less than or equal to the first battery power consumption value, triggering an alarm; when the time stamp is in the non-sunlight time period, acquiring the second real-time power of the dust sampler battery, and obtaining the second battery power consumption value from the time stamp to the end of the non-sunlight time period according to the working power consumption efficiency; if the second real-time power is less than or equal to the second battery power consumption value, triggering an alarm.

2. The dust extractor battery power supply prediction method according to claim 1, characterized in that, The step of acquiring the working power consumption efficiency of the dust sampler battery specifically comprises: acquiring the historical data of the power consumption of the dust sampler battery in the non-sunlight time period; obtaining the working power consumption efficiency of the dust sampler battery according to the historical data; wherein the solar charging efficiency of the working state of the dust sampler battery in the sunlight time period is greater than the working power consumption efficiency.

3. The dust extractor battery power prediction method of claim 1, wherein, The step of acquiring the current day weather information and the next day weather information with a time stamp according to a preset time period specifically comprises: determining the sunrise time and the sunset time of the current day according to the next day weather information acquired on the previous day; acquiring the current day weather information and the next day weather information in response to the sunrise time, and performing overlay update on the current day weather information and the next day weather information according to a preset interval until stopping updating the current day weather information and the next day weather information at the sunset time; wherein the current day weather information and the next day weather information both have the time stamp.

4. The dust extractor battery power prediction method of claim 1, wherein, The step of dividing the time domain from the time stamp to 24:00 of the next day into a plurality of sunlight time periods and a plurality of non-sunlight time periods according to the current day weather information and the next day weather information specifically comprises: setting the rain and snow weather time period between the time stamp and the sunset time of the current day, the rain and snow weather time period between the sunrise time of the next day and the sunset time of the next day, the time period from the sunset time of the current day to the sunrise time of the next day, and the time period from the sunset time of the next day to 24:00 of the next day as non-sunlight time periods, and setting the remaining time period from the time stamp to 24:00 of the next day as sunlight time periods; wherein the sunlight time period less than 1 hour is defined as the non-sunlight time period.

5. A dust-probe battery-powered prediction system, characterized in that, The system comprises: a first acquisition module for acquiring the working power consumption efficiency of the dust sampler battery; The second acquisition module is configured to acquire weather information with a time stamp for a current day and weather information for a next day according to a preset time period, wherein the weather information comprises a sunrise time and a sunset time, and the preset time period is from the sunrise time of the current day to the sunset time of the current day. The processing module is configured to divide a time domain from the time stamp to 24:00 of the next day into a plurality of sunlight time periods and a plurality of non-sunlight time periods according to the weather information for the current day and the weather information for the next day. The judgment module is configured to acquire a first real-time power of a battery of the dust collector when the time stamp is in the sunlight time period, and acquire a first battery power consumption value of the non-sunlight time period according to the working power consumption efficiency when the non-sunlight time period is entered from the sunlight time period in response to the weather information for the current day. If the first real-time power is less than or equal to the first battery power consumption value, an alarm is triggered. When the time stamp is in the non-sunlight time period, a second real-time power of the battery of the dust collector is acquired, and a second battery power consumption value from the time stamp to an end of the non-sunlight time period is obtained according to the working power consumption efficiency. If the second real-time power is less than or equal to the second battery power consumption value, an alarm is triggered.

6. The dust extractor battery power prediction system of claim 5, wherein, The first acquisition module is specifically configured to: acquire historical data of power consumption of the battery of the dust collector in the non-sunlight time period; obtain the working power consumption efficiency of the battery of the dust collector according to the historical data; wherein a solar charging efficiency of the battery of the dust collector in the sunlight time period is greater than the working power consumption efficiency.

7. The dust extractor battery power prediction system of claim 5, wherein, The second acquisition module is specifically configured to: determine the sunrise time and the sunset time of the current day according to the weather information for the next day acquired on a previous day; acquire the weather information for the current day and the weather information for the next day in response to the sunrise time, and perform overlay update on the weather information for the current day and the weather information for the next day according to a preset interval until the sunset time, and stop updating the weather information for the current day and the weather information for the next day at the sunset time; wherein the weather information for the current day and the weather information for the next day both have the time stamp.

8. The dust extractor battery power prediction system of claim 5, wherein, The processing module is specifically configured to: set a rain and snow weather time period between the time stamp and the sunset time of the current day, a rain and snow weather time period between the sunrise time of the next day and the sunset time of the next day, the sunset time of the current day to the sunrise time of the next day, and the sunset time of the next day to 24:00 of the next day as non-sunlight time periods, and set the remaining time period from the time stamp to 24:00 of the next day as sunlight time periods; wherein the sunlight time period less than 1 hour is defined as the non-sunlight time period.

9. A computer-readable storage medium, characterized in that, The instructions, when executed on a computer, cause the computer to perform the method of any one of claims 1 to 4.

10. A terminal, characterized by comprising: The terminal comprises a processor and a memory; the processor and the memory are in communication with each other; The memory is configured to store instructions; The processor is configured to execute the instructions in the memory to perform the method of any one of claims 1 to 4.

Citation Information

Patent Citations

  • Photovoltaic prediction method and system for obtaining weather data based on opening and storage medium

    CN110598898A

  • Photovoltaic charging station charging control method and device based on weather prediction

    CN110877546A