WO2020078086A1 - 显示方法、装置、系统、终端、光伏板及可读存储介质 - Google Patents

显示方法、装置、系统、终端、光伏板及可读存储介质 Download PDF

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Publication number
WO2020078086A1
WO2020078086A1 PCT/CN2019/100408 CN2019100408W WO2020078086A1 WO 2020078086 A1 WO2020078086 A1 WO 2020078086A1 CN 2019100408 W CN2019100408 W CN 2019100408W WO 2020078086 A1 WO2020078086 A1 WO 2020078086A1
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WO
WIPO (PCT)
Prior art keywords
debris
area
display
coverage
photovoltaic panel
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/CN2019/100408
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English (en)
French (fr)
Inventor
何贤俊
庞文军
谌进
刘露
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Gree Electric Appliances Inc of Zhuhai
Original Assignee
Gree Electric Appliances Inc of Zhuhai
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Gree Electric Appliances Inc of Zhuhai filed Critical Gree Electric Appliances Inc of Zhuhai
Publication of WO2020078086A1 publication Critical patent/WO2020078086A1/zh
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N21/00Investigating or analysing materials by the use of optical means, i.e. using sub-millimetre waves, infrared, visible or ultraviolet light
    • G01N21/17Systems in which incident light is modified in accordance with the properties of the material investigated
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02SGENERATION OF ELECTRIC POWER BY CONVERSION OF INFRARED RADIATION, VISIBLE LIGHT OR ULTRAVIOLET LIGHT, e.g. USING PHOTOVOLTAIC [PV] MODULES
    • H02S40/00Components or accessories in combination with PV modules, not provided for in groups H02S10/00 - H02S30/00
    • H02S40/10Cleaning arrangements
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02SGENERATION OF ELECTRIC POWER BY CONVERSION OF INFRARED RADIATION, VISIBLE LIGHT OR ULTRAVIOLET LIGHT, e.g. USING PHOTOVOLTAIC [PV] MODULES
    • H02S50/00Monitoring or testing of PV systems, e.g. load balancing or fault identification
    • H02S50/10Testing of PV devices, e.g. of PV modules or single PV cells
    • H02S50/15Testing of PV devices, e.g. of PV modules or single PV cells using optical means, e.g. using electroluminescence
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/50Photovoltaic [PV] energy

Definitions

  • the present application relates to the field of smart home technology, in particular to a display method, device, system, terminal, photovoltaic panel, and readable storage medium.
  • photovoltaic air conditioners that use photovoltaic power generation to work have also emerged.
  • the photovoltaic panels of photovoltaic air conditioners are placed outdoors to collect sunlight, and convert the received sunlight into electricity to realize the work of photovoltaic air conditioners, but the air will contain small solid particles, or sometimes smoke will come out, so it is inevitable in the long run A large amount of dust or even garbage will accumulate on the photovoltaic air-conditioning photovoltaic panel, and these impurities such as dust or garbage will block the sunlight, hinder the photovoltaic panel from receiving sunlight, reduce the efficiency of receiving sunlight, and reduce the amount of converted electricity.
  • This application provides a display method, device, system, terminal, photovoltaic panel and readable storage medium to solve the problem that the user cannot observe the distribution of impurities on the photovoltaic panel in the prior art, resulting in the inability to clean the photovoltaic panel in time , A problem that affects the efficiency of sunlight reception.
  • This application provides a display method, which is applied to a terminal.
  • the method includes:
  • the debris attachment information includes the debris coverage and / or the debris attachment distribution
  • the attachment information of the debris is displayed.
  • determining the debris attachment information on the photovoltaic board according to the light intensity corresponding to each area includes:
  • the area corresponding to the light intensity less than the preset light intensity threshold is determined as the debris coverage area on the photovoltaic panel; according to the determined debris coverage area, the Describe the attachment and distribution of debris on the photovoltaic board;
  • determining the debris attachment information on the photovoltaic board according to the light intensity includes:
  • the area corresponding to the light intensity less than the preset light intensity threshold is determined as the debris covered area on the photovoltaic panel; according to the area of the debris covered area, and the The area of the photovoltaic panel determines the coverage of the debris on the photovoltaic panel.
  • displaying the debris attachment information includes:
  • the target display style corresponding to the target debris coverage interval is used to display the debris coverage.
  • displaying the debris coverage rate includes:
  • the debris coverage is displayed according to the target display height and the target display color.
  • displaying the debris attachment information includes:
  • the debris attachment information is displayed in the target first display sub-region of the second display region.
  • the method further includes:
  • displaying the debris attachment information includes:
  • the third display area is displayed using the target background display color, and debris attachment information is displayed in the second display sub-area of the target.
  • This application provides a display method applied to a photovoltaic panel.
  • the method includes:
  • the light collection device includes a photosensitive sensor.
  • This application provides a display device, which is applied to a terminal.
  • the device includes:
  • the receiving module is used for receiving the light intensity obtained by the light collecting device after passing through each area of the photovoltaic panel;
  • a determining module configured to determine the attachment information of the debris on the photovoltaic panel according to the light intensity corresponding to each area, wherein the attachment information of the debris includes the coverage of the debris and / or the distribution of the attachment of debris;
  • the display module is used for displaying the attachment information of the debris.
  • the determination module is specifically configured to, if the debris attachment information includes the debris attachment distribution, according to the light intensity corresponding to each area, reduce the light intensity to a light intensity threshold that is set in advance The corresponding area is determined as the debris coverage area on the photovoltaic panel; according to the determined debris coverage area, the debris attachment distribution on the photovoltaic panel is determined; if the debris attachment information includes the debris coverage rate , According to the light intensity corresponding to each area, the area corresponding to the light intensity less than the preset light intensity threshold is determined as the debris covered area on the photovoltaic panel; according to the area of the debris covered area, and The area of the photovoltaic panel determines the coverage of debris on the photovoltaic panel.
  • the display module is specifically configured to determine the target of the debris coverage rate according to each pre-stored debris coverage interval if the debris attachment information includes the debris coverage rate The debris coverage interval; according to the correspondence relationship between the pre-stored debris coverage interval and the display style, the target display style corresponding to the target debris coverage interval is used to display the debris coverage ratio.
  • the display module is specifically configured to determine the target display height in the first display area of the set shape according to the coverage of the sundries if the display style includes the display color; In the first display area with a fixed shape, the debris coverage is displayed according to the target display height and the target display color.
  • the display module is specifically configured to, if the debris attachment information includes debris attachment distribution, according to the correspondence relationship between the pre-saved debris coverage area and the first display sub-area in the second display area To determine the target first display sub-area corresponding to the debris coverage area; display the debris attachment information in the target first display sub-area of the second display area.
  • the display module is further configured to determine whether the user's selection of the first display area is received if the first interface of the terminal displays debris attachment information including debris coverage Operation; if yes, determine to receive the user's request to view the debris coverage and debris attachment distribution, and display debris attachment information including debris coverage and debris attachment distribution on the second interface of the terminal.
  • the display module is specifically configured to, if the debris attachment information includes debris attachment distribution and debris coverage, according to the correspondence between the pre-stored debris coverage interval and the background display color, Determine the target background display color of the third display area to be displayed; according to the correspondence relationship between the previously stored debris coverage area and the second display sub-area in the third display area, determine the corresponding The second display sub-region of the target; the third display region is displayed using the target background display color, and the debris attachment information is displayed in the second display sub-region of the target.
  • This application provides a display device applied to a photovoltaic panel.
  • the device includes:
  • An acquisition module for acquiring the light intensity of the light passing through each area of the photovoltaic panel through the light collection device
  • the sending module is configured to send the light intensity corresponding to each area to the terminal, so that the terminal determines and displays the attachment information of the debris on the photovoltaic panel according to the light intensity corresponding to each area.
  • the light collection device includes a photosensitive sensor.
  • the present application provides a terminal, including: a processor, a communication interface, a memory, and a communication bus, wherein the processor, the communication interface, and the memory complete communication with each other through the communication bus;
  • a computer program is stored in the memory, and when the program is executed by the processor, the processor is caused to perform the steps of any of the methods described above applied to the terminal.
  • the present application provides a computer-readable storage medium that stores a computer program executable by a terminal, and when the program runs on the terminal, causes the terminal to perform any of the methods described above applied to the terminal step.
  • the present application provides a photovoltaic panel, including: a processor, a communication interface, a memory, and a communication bus, wherein the processor, the communication interface, and the memory communicate with each other through the communication bus;
  • a computer program is stored in the memory, and when the program is executed by the processor, the processor is caused to perform the steps of the method applied to the photovoltaic panel.
  • the present application provides a computer-readable storage medium that stores a computer program executable by a photovoltaic panel, and when the program runs on the photovoltaic panel, causes the photovoltaic panel to perform the above-described method applied to the photovoltaic panel A step of.
  • the present application provides a display method, device, system, terminal, photovoltaic panel, and readable storage medium.
  • the method includes: receiving the light intensity obtained by the light collection device after passing through each area of the photovoltaic panel; according to the description The light intensity corresponding to each area determines the debris attachment information on the photovoltaic panel, wherein the debris attachment information includes debris coverage and / or debris attachment distribution; the debris attachment information is displayed.
  • the light intensity after the light passes through each area of the photovoltaic panel is collected by the light collection device, the terminal determines and displays the impurity attachment information on the photovoltaic panel according to the light intensity, and the user can timely view the impurity attachment information on the photovoltaic panel through the terminal , So that the photovoltaic panel can be cleaned in time to improve the efficiency of sunlight reception.
  • Example 1 is a schematic diagram of a display process provided by Example 1 of this application;
  • Example 4 is a schematic diagram of a display provided by Example 4 of the present application.
  • Example 3 is a schematic diagram of a display provided by Example 4 of the present application.
  • Example 4 is a schematic diagram of a display provided by Example 4 of this application.
  • Example 5 is a schematic diagram of a display provided by Example 5 of the present application.
  • Example 6 is a schematic diagram of a display provided by Example 5 of the present application.
  • Example 7 is a schematic diagram of a display provided in Example 5 of the present application.
  • Embodiment 8 is a schematic diagram of a display process provided by Embodiment 8 of the present application.
  • FIG. 9 is a schematic structural diagram of a display system according to Embodiment 9 of the present application.
  • Example 10 is a schematic structural diagram of a photovoltaic panel provided in Example 10 of this application.
  • Example 11 is a schematic structural diagram of a photovoltaic panel provided in Example 12 of the present application.
  • FIG. 12 is a schematic diagram of a display device provided by an embodiment of the present application.
  • FIG. 13 is a schematic diagram of a display device provided by an embodiment of the present application.
  • the embodiments of the present application provide a display method, device, system, terminal, photovoltaic panel, and readable storage medium.
  • FIG. 1 is a schematic diagram of a display process provided by an embodiment of the present application. The process includes the following steps:
  • S101 Receive the light intensity after the light obtained by the light collection device passes through each area of the photovoltaic panel.
  • the display method provided by the embodiment of the present application is applied to a terminal.
  • the terminal includes a hardware layer, an operating system layer running on the hardware layer, and an application layer running on the operating system.
  • the hardware layer includes central processing unit (CPU, Central Processing Unit), memory management unit (MMU, Memory Management Unit) and memory hardware.
  • CPU central processing unit
  • MMU Memory Management Unit
  • the operating system may be any one or more computer operating systems that display through processes (for example, Linux operating system, Unix operating system, Android operating system, iOS operating system, or windows operating system, etc.).
  • processes for example, Linux operating system, Unix operating system, Android operating system, iOS operating system, or windows operating system, etc.
  • the terminal may be a handheld device such as a smart phone, a tablet computer, or a terminal device such as a desktop computer or a portable computer.
  • the embodiment of the present application is not particularly limited, as long as the application can be recorded through the operation
  • the program of the code of the display method in the embodiment may be displayed.
  • the execution subject displayed in the embodiment of the present application may be a terminal, or a functional module in the terminal that can call a program and execute the program.
  • the terminal can receive the light intensity, which is the light intensity after the light acquired by the light collection device passes through each area of the photovoltaic panel, so the light intensity received by the terminal can be regarded as the photovoltaic corresponding to each area on the photovoltaic panel Intensity, the light collection device can be set or installed on the relevant components of the photovoltaic panel, can be set or installed on the photovoltaic panel, etc.
  • the light collection device can be a photosensitive sensor, can be a photoelectric probe, etc., not limited here .
  • S102 Determine debris attachment information on the photovoltaic board according to the light intensity corresponding to each area, where the debris attachment information includes debris coverage and / or debris attachment distribution.
  • the terminal can determine the debris attachment information such as the debris coverage and / or debris attachment distribution on the photovoltaic panel according to the light intensity corresponding to each area.
  • the attachment distribution of debris can be determined according to the impurity coverage area determined by the light intensity, and the debris coverage can be determined according to the area of the debris coverage area and the area of the photovoltaic panel.
  • the terminal After the terminal determines the attachment information of the debris on the photovoltaic board, it can display the attachment information of impurities on the photovoltaic board to the user by displaying the attachment information of the debris.
  • the terminal determines the attachment information of the debris on the photovoltaic board, it can display the attachment information of impurities on the photovoltaic board to the user by displaying the attachment information of the debris.
  • the terminal After the user can enter the display interface, the terminal displays the impurity attachment information on the photovoltaic panel on the display interface. Further, the terminal can also display the impurity attachment information on the photovoltaic panel in the form of a pop-up window or a notification.
  • the terminal When the terminal displays the attachment information of the debris, it may be displayed in the form of text, or may be displayed in a corresponding display style. Specifically, an application APP for display may be installed on the terminal.
  • the light intensity after the light passes through each area of the photovoltaic panel is collected by the light collection device, the terminal determines and displays the impurity attachment information on the photovoltaic panel according to the light intensity, and the user can timely view the impurities on the photovoltaic panel Attach the information, so that the photovoltaic panel can be cleaned in time to improve the efficiency of receiving sunlight.
  • the debris attachment information includes debris attachment distribution
  • the debris attachment on the photovoltaic board is determined according to the light intensity corresponding to each area
  • the information includes:
  • the area corresponding to the light intensity less than the preset light intensity threshold is determined as the debris coverage area on the photovoltaic panel; according to the determined debris coverage area, the Describe the attachment and distribution of debris on the photovoltaic board;
  • determining the debris attachment information on the photovoltaic board according to the light intensity includes:
  • the area corresponding to the light intensity less than the preset light intensity threshold is determined as the debris covered area on the photovoltaic panel; according to the area of the debris covered area, and the The area of the photovoltaic panel determines the coverage of the debris on the photovoltaic panel.
  • the embodiment of the present application provides a determination process of the attachment information of the sundries.
  • a light intensity threshold is stored in the terminal.
  • the light intensity threshold may be set by a photovoltaic panel installer, or may be set by a user according to his own needs.
  • the specific value of the light intensity threshold is not limited in the embodiments of the present application.
  • the terminal can determine the area corresponding to the light intensity less than the preset light intensity threshold as the sundries covered area on the photovoltaic panel according to the light intensity corresponding to each area, specifically for each area, to determine the light corresponding to the area Whether the intensity is less than the preset light intensity threshold, if it is determined that the area is a debris covered area on the photovoltaic panel; if not, it is considered that the area is not a debris covered area on the photovoltaic panel.
  • the terminal determines the debris coverage area on the photovoltaic panel, it can determine the attachment distribution of the debris on the photovoltaic panel according to the debris coverage area, that is, the debris is attached to the debris coverage area on the photovoltaic panel.
  • the terminal After determining the debris coverage area on the photovoltaic panel, the terminal can also determine the debris coverage rate on the photovoltaic panel according to the area of the debris coverage area and the area of the photovoltaic panel.
  • the terminal can obtain the area of the debris covered area, the area of the debris covered area is related to the area of each area on the photovoltaic panel, and the terminal can also obtain the area of the photovoltaic panel.
  • the terminal may be the area of the photovoltaic panel stored in advance, and the area of each area on the photovoltaic panel, or the photovoltaic panel may send the area of the photovoltaic panel itself and the area of each area on the photovoltaic panel to the terminal.
  • the ratio of the area of the debris coverage area to the area of the photovoltaic panel may be determined as the debris coverage, or the debris coverage may be The product of the ratio of the area of the area to the area of the photovoltaic panel and the set weight value is determined as the debris coverage rate.
  • the terminal may display debris attachment information including the debris attachment distribution and / or debris coverage, so as to ensure that the user can timely view the debris attachment information on the photovoltaic panel.
  • the terminal can determine the debris attachment distribution and the debris coverage rate, thus ensuring that the user can timely view the debris attachment information on the photovoltaic panel.
  • the debris attachment information includes debris coverage
  • displaying the debris attachment information includes:
  • the target display style corresponding to the target debris coverage interval is used to display the debris coverage.
  • the debris attachment information includes the debris coverage
  • the terminal displays the debris coverage it may be determined according to the debris coverage interval where the determined debris coverage is located.
  • Each debris coverage interval is stored in the terminal.
  • the debris coverage interval stored in the terminal may be a continuous interval, and each debris coverage interval is at least between 0-100, specifically each debris coverage interval How to divide may be set by the maintenance personnel of the photovoltaic panel, or may be set by the user according to his own needs.
  • the specific division of each debris coverage interval is not limited in the embodiments of the present application.
  • the target debris coverage interval where the debris coverage ratio is located can be determined, that is, the debris coverage ratio into which the debris coverage ratio falls Determine the target debris coverage interval.
  • the correspondence relationship between the debris coverage interval and the display style is also saved in the terminal.
  • the correspondence relationship between the debris coverage interval and the display style saved in the terminal can be set by the photovoltaic panel maintenance personnel, or can be set by the user according to their own needs And preferences.
  • the display style may include shape, color, mark label, and the like.
  • the terminal may determine the target display style corresponding to the target debris coverage rate interval according to the correspondence between the debris coverage rate interval and the display style, and adopt the target display style to display the debris coverage rate.
  • the target display style corresponding to the target debris coverage interval where the debris coverage ratio is used in the embodiments of the present application displaying the debris coverage ratio can enable the user to intuitively view the debris coverage ratio on the photovoltaic panel for cleaning .
  • the display style includes the display color
  • the target display style corresponding to the target debris coverage interval is used, and displaying the debris coverage includes:
  • the debris coverage is displayed according to the target display height and the target display color.
  • the display of different coverage areas of debris is distinguished by the display color.
  • the target display style corresponding to the target debris coverage interval includes the target display color.
  • the terminal may display in a first display area of a set shape, and the set shape of the first display area may be a circle, an ellipse, or a polygon.
  • the terminal When the terminal displays in the first display area of the set shape, it can determine the target display height in the first display area according to the debris coverage. Determining the target display height according to the debris coverage rate may be: determining the product of the debris coverage rate and the set height as the target display height, if the set shape of the first display area is circular, the setting The height can be related to the radius of the circle, if the first display area is elliptical, the set height can be related to the distance between the two focal points of the ellipse, if the first display area is polygonal, the set height It can be related to the side length of the polygon.
  • the terminal After the terminal determines the target display height, it can display the debris coverage according to the target display height and target display color in the first display area of the set shape.
  • the target display color can be used as the target display height corresponding area In the first display area, the coverage of the sundries may be displayed by using the target display height to display the first display area, and using the target display color as the display color of the sundries coverage.
  • the circle in the lower right corner is the first display area of the set shape, and the debris coverage is 10%
  • the fill color of the area corresponding to the target display height corresponding to the 10% debris coverage is the target display color, for example, the target display color is tender green
  • the debris coverage is directly displayed in the first display area.
  • the interface where the first display area is located can also display other data of the photovoltaic panel, such as current power consumption information, current power generation information, whether the photovoltaic operation function is turned on, and whether the feed network operation function is turned on.
  • the circle in the lower right corner is the first display area of the set shape, and the debris coverage rate is 40%.
  • the 40% debris coverage rate corresponds to the target
  • the fill color of the area corresponding to the display height is the target display color, for example, the target display color is grass green, and the debris coverage is directly displayed in the first display area.
  • the interface where the first display area is located can also display other data of the photovoltaic panel, such as current power consumption information, current power generation information, whether the photovoltaic operation function is turned on, and whether the feed network operation function is turned on.
  • the circle in the lower right corner is the first display area of the set shape, and the debris coverage is 70%.
  • the 70% debris coverage corresponds to the target
  • the fill color of the area corresponding to the display height is the target display color, for example, the target display color is orange-red, and the debris coverage is directly displayed in the first display area.
  • the interface where the first display area is located can also display other data of the photovoltaic panel, such as current power consumption information, current power generation information, whether the photovoltaic operation function is turned on, and whether the feed network operation function is turned on.
  • the grass green in the circle in Figure 3 is 1/3 to 2/3 of the height of the entire ball.
  • the coverage of debris on the photovoltaic panel reaches more than 3/10, it means that the ratio of debris blocking the photovoltaic panel is very serious. Be sure to clean up the debris on the photovoltaic panel in time.
  • the orange-red color in the circle in Figure 4 is more than 2/3 of the height of the entire ball.
  • the display color is used to distinguish the display of different debris coverage intervals, so that the user can more intuitively view the attachment information of debris on the photovoltaic panel.
  • displaying the debris attachment information includes:
  • the debris attachment information is displayed in the target first display sub-region of the second display region.
  • the debris attachment information includes the debris attachment distribution
  • the terminal displays the debris attachment distribution it may be determined according to the debris coverage area where the debris is attached.
  • a second display area is preset in the terminal, and a first display sub-area is pre-divided in the second display area.
  • the interface where the second display area is located may be the same as or different from the interface where the first display area is located.
  • the second display area When dividing the first display sub-area, it can be divided according to each area in the photovoltaic panel, so that the display can be correspondingly displayed to achieve a better display effect, and the division of the first display sub-area in the second display area can be maintained by the photovoltaic panel
  • the personnel can be divided according to their own habits and preferences.
  • the terminal stores the correspondence between each area in the photovoltaic panel and the first display sub-area in the second display area. It may be considered that the terminal covers the impurity-covered area in the photovoltaic panel and the first display sub-area in the second display area in advance Therefore, the terminal may determine the target first display sub-area corresponding to the debris coverage area according to the debris coverage area.
  • the terminal can display debris attachment information in the target first display sub-region of the second display area.
  • the user can determine the presence of debris on the photovoltaic panel according to the target first display sub-region displaying the debris attachment information Covered area covered by debris.
  • the terminal When the terminal displays the attachment information of the debris, it may display the mark information of the attachment of the debris, for example, it may display the specific mark shape and mark color.
  • Figure 5 corresponds to Figure 2. At this time, there are fewer impurities on the photovoltaic panel, less than 1/10 of the entire photovoltaic panel.
  • the black circles on the photovoltaic panel indicate the size and distribution of the impurities on the photovoltaic panel, that is, the impurities Coverage of objects and attachment of debris, black circles indicate obstacles.
  • Figure 6 corresponds to Figure 3.
  • the debris on the photovoltaic panel has reached a certain ratio, reaching 1/10 to 2/10 of the entire photovoltaic panel.
  • the black circle on the photovoltaic panel indicates the size of the debris on the photovoltaic panel And distribution location.
  • Figure 7 corresponds to Figure 4. When there are more debris on the photovoltaic panel, it reaches more than 3/10 of the entire photovoltaic panel.
  • the black circle on the photovoltaic panel indicates the size and distribution of the debris on the photovoltaic panel .
  • the debris attachment information is displayed in the target first display sub-area of the second display area in the embodiment of the present application, the user can intuitively view the debris-covered area where the debris adheres to the photovoltaic panel for cleaning.
  • the method further includes:
  • the sundries attachment information including the sundries coverage and sundries attachment distribution is displayed on the second interface of the terminal.
  • the first display area displaying debris attachment information including debris coverage is displayed on the first interface of the terminal, if the user wants to view the debris coverage and debris attachment distribution, the user can jump to View on the second interface.
  • the operation that the user jumps to the second interface to view the coverage of the debris and the attachment distribution of the debris may be a selection operation on the first display area, and the selected operation may be a click operation, a double-click operation, a press operation, etc.
  • the set shape is a small circle as shown in FIGS. 2 to 4, the user can jump to the second interface by clicking the first display area displayed on the first interface.
  • the terminal can determine whether the user's selection operation on the first display area is received, if it is, it is determined that the user's request for viewing the debris coverage and attachment distribution is received; if not, it is determined that the user's debris coverage is not received View request for attachment and distribution of debris.
  • the second interface of the terminal displays the attachment information of the debris including the coverage and attachment distribution of the debris.
  • the terminal may The first interface jumps to the second interface, and the attachment information of the debris is displayed in the second interface.
  • the user can jump from the first interface to the second interface to display debris attachment information including debris coverage and debris attachment distribution, the user can accurately view the debris attached to the photovoltaic panel To clean things up.
  • displaying the debris attachment information includes:
  • the third display area is displayed using the target background display color, and debris attachment information is displayed in the second display sub-area of the target.
  • the debris attachment information includes debris coverage and debris attachment distribution
  • the terminal displays debris attachment information
  • the user can more accurately view the debris attached to the photovoltaic panel according to the debris coverage and debris attachment distribution.
  • the correspondence relationship between the debris coverage interval and the background display color is stored in the terminal.
  • the correspondence relationship between the debris coverage interval and the background display color saved in the terminal can be set by the photovoltaic panel maintenance personnel, or can be set by the user according to their own The needs and preferences are set.
  • the background display color is arbitrary, as long as it can distinguish different debris coverage intervals.
  • the terminal may determine the target background display color corresponding to the target debris coverage interval, and determine the target background display color as the result of the display
  • the target background display color of the third display area the user can intuitively determine the debris coverage according to the target background display color of the third display area.
  • the third display area for display may be preset in the terminal, and a second display sub-area is pre-divided in the third display area, the interface where the third display area is located, and the interface where the second display area is located or
  • the interface where the first display area is located may be the same or different, and if the debris attachment information includes the debris coverage and the debris attachment distribution is displayed by the user's selection operation on the first display area during display, the third display area is located Is different from the interface where the first display area is located, that is, the second interface where the third display area is located is different from the first interface where the first interface area is located.
  • the manner in which the third display area is pre-divided into the second display sub-area may be the same as the manner in which the second display area is pre-divided into the first display sub-area.
  • the third display area is pre-divided into the second display sub-area.
  • the terminal may determine the target second display sub-area corresponding to the debris covered area according to the debris covered area.
  • the terminal may display the third display area using the target background display color, and display the debris attachment information in the target second display sub-area of the third display area, and the user may display the second display sub-area according to the target displaying the debris attachment information, Make sure that there is a sundries covered area on the photovoltaic panel.
  • the process for the terminal to display debris attachment information in the second display sub-region of the target is similar to the process for displaying debris attachment information in the first display sub-region of the target, and details are not described in the embodiments of the present application.
  • the third display area is shown in FIG. 5, if the target background display color in FIG. 5 is dark green, it can be considered that the terminal background color of the photovoltaic panel is dark green for the user at this time. Assuming that the third display area is shown in FIG. 6, if the target background display color in FIG. 6 is yellow-green, it can be considered that the background color of the photovoltaic panel is displayed in the terminal for the user as yellow-green. Assuming that the third display area is shown in FIG. 7, if the target background display color in FIG. 7 is dark red, it can be considered that the background color of the photovoltaic panel is displayed in dark red for the user at this time.
  • the user can display the debris coverage and debris attachment information of the debris attachment distribution in the embodiment of the present application, the user can accurately view the debris attached to the photovoltaic panel for cleaning.
  • FIG. 8 is a schematic diagram of a display process provided by an embodiment of the present application, including the following steps:
  • the display method provided by the embodiment of the present application is applied to a photovoltaic panel, and the photovoltaic panel can obtain the light intensity after the light passes through each area of the light collection device to determine the light intensity corresponding to each area.
  • the light collection device includes a photosensitive sensor.
  • S802 Send the light intensity corresponding to each area to the terminal, so that the terminal determines and displays the attachment information of the debris on the photovoltaic panel according to the light intensity corresponding to each area.
  • the photovoltaic panel After determining the light intensity corresponding to each area, the photovoltaic panel sends the light intensity corresponding to each area to the terminal, and the terminal displays it.
  • FIG. 9 is a schematic structural diagram of a display system provided by an embodiment of the present application.
  • the display system includes a photovoltaic panel 901 and a terminal 902; wherein,
  • the photovoltaic panel 901 is used to obtain the light intensity of the light passing through each area of the photovoltaic panel through a light collection device; send the light intensity corresponding to each area to the terminal;
  • the terminal 902 is configured to receive the light intensity corresponding to each area; according to the light intensity corresponding to each area, determine the debris attachment information on the photovoltaic board, wherein the debris attachment information includes debris coverage Rate and / or debris attachment distribution; displaying the debris attachment information.
  • a display system provided by an embodiment of the present application includes a photovoltaic panel and a terminal.
  • the light collection device includes a photosensitive sensor.
  • the terminal is specifically used to determine the area corresponding to the light intensity less than the preset light intensity threshold as the photovoltaic according to the light intensity corresponding to each area if the debris attachment information includes the debris attachment distribution The debris coverage area on the board; according to the determined debris coverage area, determine the debris attachment distribution on the photovoltaic panel; if the debris attachment information includes the debris coverage ratio, according to the correspondence of each area Light intensity, the area corresponding to the light intensity less than the preset light intensity threshold is determined as the debris covered area on the photovoltaic panel; based on the area of the debris covered area and the area of the photovoltaic panel, determined Coverage of sundries on the photovoltaic panel.
  • the terminal is specifically configured to determine the target debris coverage rate interval where the debris coverage rate is located according to each pre-stored debris coverage rate interval if the debris attachment information includes the debris coverage rate;
  • the correspondence relationship between the stored debris coverage interval and the display style adopts the target display style corresponding to the target debris coverage interval to display the debris coverage.
  • the terminal is specifically used to determine the target display height in the first display area of the set shape according to the coverage of the sundries if the display style includes the display color; in the first display area of the set shape , According to the target display height and the target display color, display the debris coverage.
  • the terminal is specifically configured to determine the debris coverage area according to the correspondence between the pre-stored debris coverage area and the first display sub-region in the second display area if the debris attachment information includes the debris attachment distribution Corresponding target first display sub-region; displaying debris attachment information in the target first display sub-region of the second display region.
  • the terminal is also used to determine whether the user's selection operation on the first display area is received if the first interface of the terminal displays debris attachment information including the coverage of the debris; A user's request for viewing the coverage of debris and the attachment distribution of debris displays, on the second interface of the terminal, the attachment information of the debris including the coverage and attachment distribution of debris.
  • the terminal is specifically configured to determine the third display area to display if the debris attachment information includes debris attachment distribution and debris coverage, according to the correspondence between the pre-stored debris coverage interval and the background display color
  • the target background display color determine the target second display sub-area corresponding to the debris coverage area according to the correspondence relationship between the pre-stored debris coverage area and the second display sub-area in the third display area;
  • the target background display color displays the third display area, and displays debris attachment information in the target second display sub-area.
  • embodiments of the present application further provide a terminal 1000, as shown in FIG. 10, including: a processor 1001, a communication interface 1002, a memory 1003, and a communication bus 1004, where the processor 1001, Communication interface 1002 and memory 1003 complete communication with each other through communication bus 1004;
  • a computer program is stored in the memory 1003, and when the program is executed by the processor 1001, the processor 1001 is caused to execute any of the above embodiments applied to the terminal.
  • the communication bus mentioned in the above terminal may be a peripheral component interconnection (Peripheral Component Interconnect, PCI) bus or an extended industry standard architecture (Extended Industry Standard Architecture, EISA) bus, etc.
  • PCI peripheral component interconnection
  • EISA Extended Industry Standard Architecture
  • the communication bus can be divided into an address bus, a data bus, and a control bus.
  • the figure is only represented by a thick line, but it does not mean that there is only one bus or one type of bus.
  • the communication interface 1002 is used for communication between the above terminal and other devices.
  • the memory may include random access memory (Random Access Memory, RAM), or non-volatile memory (Non-Volatile Memory, NVM), for example, at least one disk memory.
  • RAM Random Access Memory
  • NVM Non-Volatile Memory
  • the memory may also be at least one storage device located away from the aforementioned processor.
  • the above processor may be a general-purpose processor, including a central processor, a network processor (Network Processor, NP), etc .; it may also be a digital instruction processor (Digital Signal Processing, DSP), an application specific integrated circuit, a field programmable gate display or Other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc.
  • NP Network Processor
  • DSP Digital Signal Processing
  • the embodiments of the present application further provide a computer storage readable storage medium, where the computer readable storage medium stores a computer program executable by the terminal.
  • the terminal When the program is stored in the terminal When running, the terminal is enabled to implement any of the above embodiments applied to the terminal when it is executed.
  • the above computer-readable storage medium may be any available medium or data storage device that can be accessed by the processor in the terminal, including but not limited to magnetic storage such as floppy disk, hard disk, magnetic tape, magneto-optical disk (MO), etc., optical storage such as CD, DVD, BD, HVD, etc., and semiconductor memories such as ROM, EPROM, EEPROM, non-volatile memory (NAND FLASH), solid state hard disk (SSD), etc.
  • magnetic storage such as floppy disk, hard disk, magnetic tape, magneto-optical disk (MO), etc.
  • optical storage such as CD, DVD, BD, HVD, etc.
  • semiconductor memories such as ROM, EPROM, EEPROM, non-volatile memory (NAND FLASH), solid state hard disk (SSD), etc.
  • the embodiments of the present application further provide a photovoltaic panel 1100, as shown in FIG. 11, including: a processor 1101, a communication interface 1102, a memory 1103, and a communication bus 1104, where the processor 1101 , The communication interface 1102, the memory 1103 complete the communication with each other through the communication bus 1104;
  • a computer program is stored in the memory 1103, and when the program is executed by the processor 1101, the processor 1101 is caused to execute any of the above embodiments applied to the photovoltaic panel.
  • the communication bus mentioned in the above photovoltaic panel may be a peripheral component interconnection standard (Peripheral Component Interconnect, PCI) bus or an extended industry standard structure (Extended Industry Standard Architecture, EISA) bus, etc.
  • PCI peripheral component interconnection standard
  • EISA Extended Industry Standard Architecture
  • the communication bus can be divided into an address bus, a data bus, and a control bus.
  • the figure is only represented by a thick line, but it does not mean that there is only one bus or one type of bus.
  • the communication interface 1102 is used for communication between the above photovoltaic panel and other devices.
  • the memory may include random access memory (Random Access Memory, RAM), or non-volatile memory (Non-Volatile Memory, NVM), for example, at least one disk memory.
  • RAM Random Access Memory
  • NVM Non-Volatile Memory
  • the memory may also be at least one storage device located away from the aforementioned processor.
  • the above processor may be a general-purpose processor, including a central processor, a network processor (Network Processor, NP), etc .; it may also be a digital instruction processor (Digital Signal Processing, DSP), an application specific integrated circuit, a field programmable gate display or Other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc.
  • NP Network Processor
  • DSP Digital Signal Processing
  • the embodiments of the present application also provide a computer storage readable storage medium, and the computer readable storage medium stores a computer program executable by the photovoltaic panel.
  • the program is in the When the photovoltaic panel is running, the photovoltaic panel is implemented to implement any of the above embodiments applied to the photovoltaic panel.
  • the above computer-readable storage medium may be any available medium or data storage device that can be accessed by the processor in the photovoltaic panel, including but not limited to magnetic storage such as floppy disk, hard disk, magnetic tape, magneto-optical disk (MO), etc., optical storage such as CD , DVD, BD, HVD, etc., as well as semiconductor memory such as ROM, EPROM, EEPROM, non-volatile memory (NAND FLASH), solid state hard disk (SSD), etc.
  • magnetic storage such as floppy disk, hard disk, magnetic tape, magneto-optical disk (MO), etc.
  • optical storage such as CD , DVD, BD, HVD, etc.
  • semiconductor memory such as ROM, EPROM, EEPROM, non-volatile memory (NAND FLASH), solid state hard disk (SSD), etc.
  • FIG. 12 is a schematic diagram of a display device 1200 provided by an embodiment of the present application, which is applied to a terminal, and the device includes:
  • the receiving module 1201 is used to receive the light intensity after the light obtained by the light collecting device passes through each area of the photovoltaic panel;
  • the determining module 1202 is configured to determine the attachment information of the debris on the photovoltaic board according to the light intensity corresponding to each area, wherein the attachment information of the debris includes the coverage of the debris and / or the attachment distribution of the debris;
  • the display module 1203 is configured to display the attachment information of the debris.
  • the determining module 1202 is specifically configured to determine the area corresponding to the light intensity that is smaller than the preset light intensity threshold according to the light intensity corresponding to each area if the debris attachment information includes the debris attachment distribution A debris coverage area on the photovoltaic panel; according to the determined debris coverage area, determine the debris attachment distribution on the photovoltaic panel; if the debris attachment information includes the debris coverage ratio, according to each The light intensity corresponding to the area, the area corresponding to the light intensity less than the preset light intensity threshold is determined as the debris covered area on the photovoltaic panel; according to the area of the debris covered area, and the area of the photovoltaic panel To determine the debris coverage on the photovoltaic panel.
  • the display module 1203 is specifically configured to, if the debris attachment information includes the debris coverage ratio, determine the target debris coverage ratio interval where the debris coverage ratio is located according to each pre-stored debris coverage interval; According to the correspondence relationship between the pre-stored debris coverage interval and the display style, the target display style corresponding to the target debris coverage interval is used to display the debris coverage.
  • the display module 1203 is specifically configured to determine the target display height in the first display area of the set shape according to the coverage of the sundries if the display style includes the display color; in the first display of the set shape In the area, according to the target display height and the target display color, the debris coverage is displayed.
  • the display module 1203 is specifically configured to determine the debris according to the correspondence between the pre-stored debris coverage area and the first display sub-region in the second display area if the debris attachment information includes the debris attachment distribution The target first display sub-region corresponding to the coverage area; displaying the debris attachment information in the target first display sub-region of the second display area.
  • the display module 1203 is further configured to determine whether the user's selection operation on the first display area is received if the first interface of the terminal displays debris attachment information including the debris coverage; if so, determine Receiving the user's request to view the coverage of debris and the distribution of debris attachments, the second interface of the terminal displays debris attachment information including the coverage of debris and the distribution of debris attachments.
  • the display module 1203 is specifically configured to determine the third display according to the correspondence between the pre-stored debris coverage interval and the background display color if the debris attachment information includes debris attachment distribution and debris coverage.
  • the target background display color of the display area according to the correspondence relationship between the pre-stored debris coverage area and the second display sub-area in the third display area, the target second display sub-area corresponding to the debris coverage area is determined ; Use the target background display color to display the third display area, and display debris attachment information in the second display sub-area of the target.
  • the light intensity after the light passes through each area of the photovoltaic panel is collected by the light collection device, the terminal determines and displays the impurity attachment information on the photovoltaic panel according to the light intensity, and the user can timely view the impurities on the photovoltaic panel Attach the information, so that the photovoltaic panel can be cleaned in time to improve the efficiency of receiving sunlight.
  • FIG. 13 is a schematic diagram of a display device 1300 provided by an embodiment of the present application, which is applied to a photovoltaic panel, and the device includes:
  • the obtaining module 1301 is used to obtain the light intensity of light passing through each area of the photovoltaic panel through a light collecting device;
  • the sending module 1302 is configured to send the light intensity corresponding to each area to the terminal, so that the terminal determines and displays the attachment information of the debris on the photovoltaic panel according to the light intensity corresponding to each area.
  • the light collection device includes a photosensitive sensor.
  • the light intensity after the light passes through each area of the photovoltaic panel is collected by the light collection device, the terminal determines and displays the impurity attachment information on the photovoltaic panel according to the light intensity, and the user can timely view the impurities on the photovoltaic panel Attach the information, so that the photovoltaic panel can be cleaned in time to improve the efficiency of receiving sunlight.
  • the embodiments of the present application may be provided as methods, systems, or computer program products. Therefore, the present application may take the form of an entirely hardware embodiment, an entirely software embodiment, or an embodiment combining software and hardware. Moreover, the present application may take the form of a computer program product implemented on one or more computer usable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) containing computer usable program code.
  • computer usable storage media including but not limited to disk storage, CD-ROM, optical storage, etc.
  • These computer program instructions may also be stored in a computer readable memory that can guide a computer or other programmable data processing device to work in a specific manner, so that the instructions stored in the computer readable memory produce an article of manufacture including an instruction device, the instructions The device implements the functions specified in one block or multiple blocks of the flowchart one flow or multiple flows and / or block diagrams.
  • These computer program instructions can also be loaded onto a computer or other programmable data processing device, so that a series of operating steps are performed on the computer or other programmable device to produce computer-implemented processing, which is executed on the computer or other programmable device
  • the instructions provide steps for implementing the functions specified in one block or multiple blocks of the flowchart one flow or multiple flows and / or block diagrams.

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Abstract

一种显示方法、装置、系统、终端、光伏板及可读存储介质,该方法包括:接收通过光线采集装置获取的光线透过光伏板每个区域后的光线强度(S101);根据每个区域对应的光线强度,确定光伏板上的杂物附着信息,其中杂物附着信息包括杂物覆盖率和/或杂物附着分布(S102);显示杂物附着信息(S103)。可通过终端及时查看光伏板上的杂物附着信息,从而及时进行清理,提高阳光接收效率。

Description

显示方法、装置、系统、终端、光伏板及可读存储介质
相关申请
本申请要求2018年10月15日申请的,申请号为201811196171.0,名称为“显示方法、装置、系统、终端、光伏板及可读存储介质”的中国专利申请的优先权,在此将其全文引入作为参考。
技术领域
本申请涉及智能家居技术领域,尤其涉及一种显示方法、装置、系统、终端、光伏板及可读存储介质。
背景技术
为了响应国家提出的环保号召,利用光伏发电进行工作的光伏空调也应运而生。光伏空调的光伏板为了采集阳光而放置在户外,将接收到的阳光转换为电量,实现光伏空调的工作,但是空气中会含有固体小颗粒,或者有时候有烟雾飘散而来,所以长期以往难免会积累大量的灰尘甚至是垃圾到光伏空调光伏板上,而这些灰尘或垃圾等杂质会遮挡阳光,妨碍光伏板接收阳光,导致接收阳光效率降低,导致转化的电量也会降低。但是先前技术中由于用户无法观察到光伏板上的杂质的分布状态,也就不能知道是否有杂质妨碍到光伏板接收阳光,导致用户无法及时对光伏板进行清理,影响了阳光的接收效率。
发明内容
本申请提供了一种显示方法、装置、系统、终端、光伏板及可读存储介质,用以解决先前技术中用户无法观察到光伏板上的杂质的分布状态,导致无法及时对光伏板进行清理,影响阳光的接收效率的问题。
本申请提供了一种显示方法,应用于终端,该方法包括:
接收通过光线采集装置获取的光线透过光伏板每个区域后的光线强度;
根据所述每个区域对应的光线强度,确定所述光伏板上的杂物附着信息,其中所述杂物附着信息包括杂物覆盖率和/或杂物附着分布;
显示所述杂物附着信息。
在其中一个实施例中,如果所述杂物附着信息包括杂物附着分布,所述根据所述每个 区域对应的光线强度,确定所述光伏板上的杂物附着信息包括:
根据所述每个区域对应的光线强度,将小于预先设置的光线强度阈值的光线强度对应的区域确定为所述光伏板上的杂物覆盖区域;根据确定的所述杂物覆盖区域,确定所述光伏板上的杂物附着分布;
如果所述杂物附着信息包括杂物覆盖率,所述根据所述光线强度,确定所述光伏板上的杂物附着信息包括:
根据所述每个区域对应的光线强度,将小于预先设置的光线强度阈值的光线强度对应的区域确定为所述光伏板上的杂物覆盖区域;根据所述杂物覆盖区域的面积,及所述光伏板的面积,确定所述光伏板上的杂物覆盖率。
在其中一个实施例中,如果所述杂物附着信息包括杂物覆盖率,所述显示所述杂物附着信息包括:
根据预先保存的每个杂物覆盖率区间,确定所述杂物覆盖率所在的目标杂物覆盖率区间;
根据预先保存的杂物覆盖率区间与显示样式的对应关系,采用所述目标杂物覆盖率区间对应的目标显示样式,显示所述杂物覆盖率。
在其中一个实施例中,如果显示样式包括显示颜色,所述采用所述目标杂物覆盖率区间对应的目标显示样式,显示所述杂物覆盖率包括:
根据所述杂物覆盖率,确定在设定形状的第一显示区域内的目标显示高度;
在所述设定形状的第一显示区域内,按照所述目标显示高度及所述目标显示颜色,显示所述杂物覆盖率。
在其中一个实施例中,如果所述杂物附着信息包括杂物附着分布,所述显示所述杂物附着信息包括:
根据预先保存的杂物覆盖区域与第二显示区域中第一显示子区域的对应关系,确定所述杂物覆盖区域对应的目标第一显示子区域;
在所述第二显示区域的目标第一显示子区域中显示杂物附着信息。
在其中一个实施例中,如果所述终端的第一界面显示有包括杂物覆盖率的杂物附着信息,所述方法还包括:
判断是否接收到用户对所述第一显示区域的选中操作;
如果是,确定接收到用户对杂物覆盖率和杂物附着分布的查看请求,在所述终端的第二界面显示包括杂物覆盖率和杂物附着分布的杂物附着信息。
在其中一个实施例中,如果所述杂物附着信息包括杂物附着分布和杂物覆盖率,所述 显示所述杂物附着信息包括:
根据预先保存的杂物覆盖率区间与背景显示颜色的对应关系,确定进行显示的第三显示区域的目标背景显示颜色;
根据预先保存的杂物覆盖率区域与所述第三显示区域中第二显示子区域的对应关系,确定所述杂物覆盖率区域对应的目标第二显示子区域;
采用所述目标背景显示颜色显示所述第三显示区域,并在所述目标第二显示子区域中显示杂物附着信息。
本申请提供了一种显示方法,应用于光伏板,该方法包括:
通过光线采集装置获取光线透过所述光伏板每个区域后的光线强度;
将所述每个区域对应的光线强度发送给终端,使所述终端根据所述每个区域对应的光线强度,确定并显示所述光伏板上的杂物附着信息。
在其中一个实施例中,所述光线采集装置包括光敏传感器。
本申请提供了一种显示装置,应用于终端,该装置包括:
接收模块,用于接收通过光线采集装置获取的光线透过光伏板每个区域后的光线强度;
确定模块,用于根据所述每个区域对应的光线强度,确定所述光伏板上的杂物附着信息,其中所述杂物附着信息包括杂物覆盖率和/或杂物附着分布;
显示模块,用于显示所述杂物附着信息。
在其中一个实施例中,所述确定模块,具体用于如果所述杂物附着信息包括杂物附着分布,根据所述每个区域对应的光线强度,将小于预先设置的光线强度阈值的光线强度对应的区域确定为所述光伏板上的杂物覆盖区域;根据确定的所述杂物覆盖区域,确定所述光伏板上的杂物附着分布;如果所述杂物附着信息包括杂物覆盖率,根据所述每个区域对应的光线强度,将小于预先设置的光线强度阈值的光线强度对应的区域确定为所述光伏板上的杂物覆盖区域;根据所述杂物覆盖区域的面积,及所述光伏板的面积,确定所述光伏板上的杂物覆盖率。
在其中一个实施例中,所述显示模块,具体用于如果所述杂物附着信息包括杂物覆盖率,根据预先保存的每个杂物覆盖率区间,确定所述杂物覆盖率所在的目标杂物覆盖率区间;根据预先保存的杂物覆盖率区间与显示样式的对应关系,采用所述目标杂物覆盖率区间对应的目标显示样式,显示所述杂物覆盖率。
在其中一个实施例中,所述显示模块,具体用于如果显示样式包括显示颜色,根据所述杂物覆盖率,确定在设定形状的第一显示区域内的目标显示高度;在所述设定形状的第 一显示区域内,按照所述目标显示高度及所述目标显示颜色,显示所述杂物覆盖率。
在其中一个实施例中,所述显示模块,具体用于如果所述杂物附着信息包括杂物附着分布,根据预先保存的杂物覆盖区域与第二显示区域中第一显示子区域的对应关系,确定所述杂物覆盖区域对应的目标第一显示子区域;在所述第二显示区域的目标第一显示子区域中显示杂物附着信息。
在其中一个实施例中,所述显示模块,还用于如果所述终端的第一界面显示有包括杂物覆盖率的杂物附着信息,判断是否接收到用户对所述第一显示区域的选中操作;如果是,确定接收到用户对杂物覆盖率和杂物附着分布的查看请求,在所述终端的第二界面显示包括杂物覆盖率和杂物附着分布的杂物附着信息。
在其中一个实施例中,所述显示模块,具体用于如果所述杂物附着信息包括杂物附着分布和杂物覆盖率,根据预先保存的杂物覆盖率区间与背景显示颜色的对应关系,确定进行显示的第三显示区域的目标背景显示颜色;根据预先保存的杂物覆盖率区域与所述第三显示区域中第二显示子区域的对应关系,确定所述杂物覆盖率区域对应的目标第二显示子区域;采用所述目标背景显示颜色显示所述第三显示区域,并在所述目标第二显示子区域中显示杂物附着信息。
本申请提供了一种显示装置,应用于光伏板,该装置包括:
获取模块,用于通过光线采集装置获取光线透过所述光伏板每个区域后的光线强度;
发送模块,用于将所述每个区域对应的光线强度发送给终端,使所述终端根据所述每个区域对应的光线强度,确定并显示所述光伏板上的杂物附着信息。
在其中一个实施例中,所述光线采集装置包括光敏传感器。
本申请提供了一种终端,包括:处理器、通信接口、存储器和通信总线,其中,处理器,通信接口,存储器通过通信总线完成相互间的通信;
所述存储器中存储有计算机程序,当所述程序被所述处理器执行时,使得所述处理器执行上述应用于终端任一项所述方法的步骤。
本申请提供了一种计算机可读存储介质,其存储有可由终端执行的计算机程序,当所述程序在所述终端上运行时,使得所述终端执行上述应用于终端任一项所述方法的步骤。
本申请提供了一种光伏板,包括:处理器、通信接口、存储器和通信总线,其中,处理器,通信接口,存储器通过通信总线完成相互间的通信;
所述存储器中存储有计算机程序,当所述程序被所述处理器执行时,使得所述处理器执行上述应用于光伏板所述方法的步骤。
本申请提供了一种计算机可读存储介质,其存储有可由光伏板执行的计算机程序,当 所述程序在所述光伏板上运行时,使得所述光伏板执行上述应用于光伏板所述方法的步骤。
本申请提供了一种显示方法、装置、系统、终端、光伏板及可读存储介质,该方法包括:接收通过光线采集装置获取的光线透过光伏板每个区域后的光线强度;根据所述每个区域对应的光线强度,确定所述光伏板上的杂物附着信息,其中所述杂物附着信息包括杂物覆盖率和/或杂物附着分布;显示所述杂物附着信息。本申请中通过光线采集装置采集光线透过光伏板每个区域后的光线强度,终端根据光线强度确定并显示光伏板上的杂质附着信息,用户能够通过终端及时查看到光伏板上的杂质附着信息,从而能够及时对光伏板进行清理,提高阳光的接收效率。
附图说明
为了更清楚地说明本申请实施例或先前技术中的技术方案,下面将对实施例或先前技术描述中所需要使用的附图作简单地介绍,显而易见地,下面描述中的附图仅仅是本申请的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据这些附图获得其他的附图。
图1为本申请实施例1提供的一种显示过程的示意图;
图2为本申请实施例4提供的一种显示的示意图;
图3为本申请实施例4提供的一种显示的示意图;
图4为本申请实施例4提供的一种显示的示意图;
图5为本申请实施例5提供的一种显示的示意图;
图6为本申请实施例5提供的一种显示的示意图;
图7为本申请实施例5提供的一种显示的示意图;
图8为本申请实施例8提供的一种显示过程的示意图;
图9为本申请实施例9提供的一种显示系统的结构示意图;
图10为本申请实施例10提供的一种光伏板的结构示意图;
图11为本申请实施例12提供的一种光伏板的结构示意图;
图12为本申请实施例提供的一种显示装置示意图;
图13为本申请实施例提供的一种显示装置示意图。
具体实施方式
为了保证用户能够及时查看到光伏板上的杂质附着信息,本申请实施例提供了一种显 示方法、装置、系统、终端、光伏板及可读存储介质。
为了使本申请的目的、技术方案和优点更加清楚,下面将结合附图本申请作进一步地详细描述,显然,所描述的实施例仅仅是本申请的一部分实施例,而不是全部的实施例。基于本申请中的实施例,本领域普通技术人员在没有做出创造性劳动前提下所获得的所有其他实施例,都属于本申请保护的范围。
实施例1:
图1为本申请实施例提供的一种显示过程的示意图,该过程包括以下步骤:
S101:接收通过光线采集装置获取的光线透过光伏板每个区域后的光线强度。
本申请实施例提供的显示方法应用于终端。
该终端包括硬件层,运行在硬件层之上的操作系统层,以及运行在操作系统上的应用层。
该硬件层包括中央处理器(CPU,Central Processing Unit)、内存管理单元(MMU,Memory Management Unit)和内存等硬件。
该操作系统可以是任意一种或多种通过进程(Process)实现显示的计算机操作系统,例如,Linux操作系统、Unix操作系统、Android操作系统、iOS操作系统或windows操作系统等。
并且在本申请实施例中该终端可以是智能手机、平板电脑等手持设备,也可以是桌面计算机、便携式计算机等终端设备,本申请实施例中并未特别限定,只要能够通过运行记录有本申请实施例中的显示方法的代码的程序,实现显示即可。
本申请实施例中的显示的执行主体可以是终端,或者是终端中能够调用程序并执行程序的功能模块。
该终端能够接收光线强度,该光线强度为光线采集装置获取到的光线透过光伏板每个区域后的光线强度,因此该终端接收到的光线强度可以认为是光伏板上每个区域对应的光伏强度,该光线采集装置可以是设置或安装在光伏板的相关组件上,可以是设置或安装在光伏板上等,该光线采集装置可以为光敏传感器,可以为光电探头等,在此不做限定。
S102:根据所述每个区域对应的光线强度,确定所述光伏板上的杂物附着信息,其中所述杂物附着信息包括杂物覆盖率和/或杂物附着分布。
该终端能够根据每个区域对应的光线强度,确定光伏板上的杂物覆盖率和/或杂物附着分布等杂物附着信息。
其中杂物附着分布可以根据光线强度确定的杂质覆盖区域确定,杂物覆盖率可以根据杂物覆盖区域的面积与光伏板的面积确定等。
S103:显示所述杂物附着信息。
终端确定光伏板上的杂物附着信息后,可以通过显示杂物附着信息向用户展示光伏板上的杂质附着信息,用户可以根据终端显示的杂质附着信息及时作出相应的处理,如有杂物或杂物过多时及时对光伏板进行清理擦拭等,提高阳光的接收效率,减少转化的能力损耗。
用户可以进入该显示界面后,终端在显示界面显示光伏板上的杂质附着信息,进一步地,终端还可以采用弹窗或通知的形式显示光伏板上的杂质附着信息。
终端在显示杂物附着信息时,可以是以文字形式展示,可以是对应的显示样式进行显示等。具体地,终端上可以安装有用于显示的应用程序APP。
本申请实施例中通过光线采集装置采集光线透过光伏板每个区域后的光线强度,终端根据光线强度确定并显示光伏板上的杂质附着信息,用户能够通过终端及时查看到光伏板上的杂质附着信息,从而能够及时对光伏板进行清理,提高阳光的接收效率。
实施例2:
在上述实施例的基础上,本申请实施例中,如果所述杂物附着信息包括杂物附着分布,所述根据所述每个区域对应的光线强度,确定所述光伏板上的杂物附着信息包括:
根据所述每个区域对应的光线强度,将小于预先设置的光线强度阈值的光线强度对应的区域确定为所述光伏板上的杂物覆盖区域;根据确定的所述杂物覆盖区域,确定所述光伏板上的杂物附着分布;
如果所述杂物附着信息包括杂物覆盖率,所述根据所述光线强度,确定所述光伏板上的杂物附着信息包括:
根据所述每个区域对应的光线强度,将小于预先设置的光线强度阈值的光线强度对应的区域确定为所述光伏板上的杂物覆盖区域;根据所述杂物覆盖区域的面积,及所述光伏板的面积,确定所述光伏板上的杂物覆盖率。
为了实现光伏板上的杂物附着信息的显示,本申请实施例提供了杂物附着信息的确定过程。
由于当杂物附着到光伏板上时,会影响到光线的透过,因此可以通过判断接收到的每个区域对应的光线强度,与预先设置的光线强度阈值的比较确定该光伏板上是否存在杂物附着,从而确定每个区域是否为杂物覆盖区域。
终端中保存有光线强度阈值,该光线强度阈值可以是光伏板安装人员设置的,可以是用户根据自身的需求设定的,该光线强度阈值具体取值如何在本申请实施例中不做限定。
终端可以根据每个区域对应的光线强度,将小于预先设置的光线强度阈值的光线强度 对应的区域确定为光伏板上的杂物覆盖区域,具体可以是针对每个区域,判断该区域对应的光线强度是否小于预先设置的光线强度阈值,如果是确定该区域为光伏板上的杂物覆盖区域;如果否,则认为该区域非光伏板上的杂物覆盖区域。
终端确定光伏板上的杂物覆盖区域后,可以根据杂物覆盖区域,确定光伏板上的杂物附着分布,即光伏板上的杂物覆盖区域上附着有杂物。
终端在确定光伏板上的杂物覆盖区域后,还可以根据杂物覆盖区域的面积,及光伏板的面积,确定光伏板上的杂物覆盖率。
终端可以获取到杂物覆盖区域的面积,该杂物覆盖区域的面积与光伏板上每个区域的面积相关,终端也可以获取到光伏板的面积。具体地,终端中可以是预先保存的光伏板的面积,及光伏板上每个区域的面积,可以是光伏板将光伏板自身的面积及光伏板上每个区域的面积发送给终端等。
终端根据杂物覆盖区域的面积及光伏板的面积确定杂物覆盖率时,可以是将杂物覆盖区域的面积与光伏板的面积的比值确定为杂物覆盖率,可以是将该杂物覆盖区域的面积与光伏板的面积的比值,与设定权重值的乘积确定为杂物覆盖率等。
终端在确定杂物附着分布或杂物覆盖率后,可以显示包括杂物附着分布和/或杂物覆盖率的杂物附着信息,从而保证用户能够及时查看到光伏板上的杂物附着信息。
本申请实施例中,终端能够确定杂物附着分布及杂物覆盖率,因此保证了用户能够及时查看到光伏板上的杂物附着信息。
实施例3:
为了实现良好的用户体验,在上述各实施例的基础上,本申请实施例中,如果所述杂物附着信息包括杂物覆盖率,所述显示所述杂物附着信息包括:
根据预先保存的每个杂物覆盖率区间,确定所述杂物覆盖率所在的目标杂物覆盖率区间;
根据预先保存的杂物覆盖率区间与显示样式的对应关系,采用所述目标杂物覆盖率区间对应的目标显示样式,显示所述杂物覆盖率。
如果杂物附着信息包括杂物覆盖率,则终端在显示杂物覆盖率时,可以根据确定的杂物覆盖率所在的杂物覆盖率区间确定。
终端中保存有每个杂物覆盖率区间,终端中保存的杂物覆盖率区间可以为连续的区间,每个杂物覆盖率区间至少位于0-100之间,具体每个杂物覆盖率区间如何划分可以是光伏板维护人员设置的,可以是用户根据自身的需求设定的,每个杂物覆盖率区间具体如何划分在本申请实施例中不做限定。
终端确定杂物覆盖率后,根据预先保存的每个杂物覆盖率区间,可以确定该杂物覆盖率所在的目标杂物覆盖率区间,即将该杂物覆盖率落入的杂物覆盖率区间确定为目标杂物覆盖率区间。
终端中还保存有杂物覆盖率区间与显示样式的对应关系,终端中保存的杂物覆盖率区间与显示样式的对应关系可以是由光伏板维护人员设置的,可以是由用户根据自身的需求和喜好设定的。
该显示样式可以包括形状、颜色、标记标号等。
因此终端可以根据杂物覆盖率区间与显示样式的对应关系,确定目标杂物覆盖率区间对应的目标显示样式,并采用该目标显示样式,显示该杂物覆盖率。
由于本申请实施例中采用杂物覆盖率所在的目标杂物覆盖率区间对应的目标显示样式,显示该杂物覆盖率,能够使用户直观地查看到光伏板上的杂物覆盖率从而进行清理。
实施例4:
在上述各实施例的基础上,本申请实施例中,如果显示样式包括显示颜色,所述采用所述目标杂物覆盖率区间对应的目标显示样式,显示所述杂物覆盖率包括:
根据所述杂物覆盖率,确定在设定形状的第一显示区域内的目标显示高度;
在所述设定形状的第一显示区域内,按照所述目标显示高度及所述目标显示颜色,显示所述杂物覆盖率。
为了能够使用户更加直观地查看到光伏板上的杂物附着信息,本申请实施例中通过显示颜色对不同杂物覆盖率区间的显示进行区分。
因此目标杂物覆盖率区间对应的目标显示样式包括目标显示颜色。
终端在显示杂物覆盖率时,可以是在设定形状的第一显示区域内进行显示,该第一显示区域的设定形状可以为圆形、椭圆形、多边形等。
终端在设定形状的第一显示区域内进行显示时,可以根据该杂物覆盖率确定在第一显示区域内的目标显示高度。根据该杂物覆盖率确定目标显示高度可以是,将所述杂物覆盖率与设定高度的乘积确定为目标显示高度,如果该第一显示区域的设定形状为圆形时,该设定高度可以与该圆形的半径相关,如果该第一显示区域为椭圆形,该设定高度可以与该椭圆形的两个焦点的距离相关,如果该第一显示区域为多边形,该设定高度可以与该多边形的边长相关。
终端确定目标显示高度后,可以在该设定形状的第一显示区域内,按照目标显示高度及目标显示颜色,显示该杂物覆盖率,具体地,可以将目标显示颜色作为目标显示高度对应区域的填充色,在该第一显示区域内,显示杂物覆盖率,可以是将采用目标显示高度显 示该第一显示区域,将该目标显示颜色作为杂物覆盖率的显示颜色进行显示等。
下面以一个具体的实施例对本申请实施例进行说明,如图2所示,右下角(如图2所示的上下左右)的圆形为设定形状的第一显示区域,杂物覆盖率为10%,该10%的杂物覆盖率对应的目标显示高度对应区域的填充色为目标显示颜色,例如该目标显示颜色为嫩绿色,该第一显示区域内直接显示有杂物覆盖率。此外,该第一显示区域所在的界面中还可以显示有该光伏板的其他数据,如当日用电信息、当日发电信息、光伏运行功能是否开启,馈网运行功能是否开启等。
如图3所示,右下角(如图3所示的上下左右)的圆形为设定形状的第一显示区域,杂物覆盖率为40%,该40%的杂物覆盖率对应的目标显示高度对应区域的填充色为目标显示颜色,例如该目标显示颜色为草绿色,该第一显示区域内直接显示有杂物覆盖率。此外,该第一显示区域所在的界面中还可以显示有该光伏板的其他数据,如当日用电信息、当日发电信息、光伏运行功能是否开启,馈网运行功能是否开启等。
如图4所示,右下角(如图4所示的上下左右)的圆形为设定形状的第一显示区域,杂物覆盖率为70%,该70%的杂物覆盖率对应的目标显示高度对应区域的填充色为目标显示颜色,例如该目标显示颜色为橙红色,该第一显示区域内直接显示有杂物覆盖率。此外,该第一显示区域所在的界面中还可以显示有该光伏板的其他数据,如当日用电信息、当日发电信息、光伏运行功能是否开启,馈网运行功能是否开启等。
在图2至图4中,通过检测光伏板上的杂物分布,然后通过将分布的信息反馈给APP,然后及时通知用户去清理,图一右下角的小圆圈类似于手机清理的小圆圈,当光伏板上的杂物覆盖率达到整个光伏板的1/10以下,图2中圆圈里面的嫩绿色在整个小球高度的1/3以下,此时则说明,杂物遮挡光伏板不是很严重,可以忽略。当光伏板上的杂物覆盖率达到1/10到2/10,此时则说明,杂物遮挡光伏板比较严重,建议去清理。图3中圆圈里的草绿色在整个小球的高度1/3到2/3。当光伏板上的杂物覆盖率达到3/10以上,此时则说明,杂物遮挡光伏板比非常严重,务必去及时去清理光伏板上的杂物。图4中圆圈里的橙红色在整个小球的高度2/3以上。
本申请实施例中通过显示颜色对不同杂物覆盖率区间的显示进行区分,能够使用户更加直观地查看到光伏板上的杂物附着信息。
实施例5:
在上述各实施例的基础上,本申请实施例中,如果所述杂物附着信息包括杂物附着分布,所述显示所述杂物附着信息包括:
根据预先保存的杂物覆盖区域与第二显示区域中第一显示子区域的对应关系,确定所 述杂物覆盖区域对应的目标第一显示子区域;
在所述第二显示区域的目标第一显示子区域中显示杂物附着信息。
如果杂物附着信息包括杂物附着分布,则终端在显示杂物附着分布时,可以根据存在杂物附着的杂物覆盖区域确定。
终端中预先设置有第二显示区域,该第二显示区域中预先划分了第一显示子区域,该第二显示区域所在的界面与第一显示区域所在的界面可以相同或不同,第二显示区域在划分第一显示子区域时可以按照光伏板中每个区域进行划分,以在显示时能够对应显示实现更好的显示效果,第二显示区域中第一显示子区域的划分可以由光伏板维护人员进行划分,可以是由用户根据自己的习惯喜好进行划分等。
终端中保存有光伏板中每个区域与第二显示区域中第一显示子区域的对应关系,可以认为终端中预先保存有光伏板中的杂质覆盖区域与第二显示区域中第一显示子区域的对应关系,因此终端可以根据杂物覆盖区域,确定杂物覆盖区域对应的目标第一显示子区域。
终端可以在第二显示区域的目标第一显示子区域中显示杂物附着信息,对于用户来说,用户可以根据显示有杂物附着信息的目标第一显示子区域,确定光伏板上存在杂物覆盖的杂物覆盖区域。
终端显示杂物附着信息时,可以显示有杂物附着的标记信息,例如可以是显示有特定的标记形状、标记颜色等。
图5与图2对应,这时候光伏板上的杂物比较少,不到整个光伏板的1/10,光伏板上的黑色的圆圈表示杂物的光伏板上的大小及分布位置,即杂物覆盖率和杂物附着分布,黑色的圆圈表示障碍物。
图6与图3对应,这时候光伏板上的杂物达到了一定的比例,达到整个光伏板的1/10到2/10,光伏板上的黑色的圆圈表示杂物的光伏板上的大小及分布位置。
图7与图4对应,这时候光伏板上的杂物比较多的时候,达到整个光伏板的3/10之上,光伏板上的黑色的圆圈表示杂物的光伏板上的大小及分布位置。
由于本申请实施例中在第二显示区域的目标第一显示子区域中显示杂物附着信息,能够使用户直观地查看到光伏板上的存在杂物附着的杂物覆盖区域从而进行清理。
实施例6:
在上述各实施例的基础上,本申请实施例中,如果所述终端的第一界面显示有包括杂物覆盖率的杂物附着信息,所述方法还包括:
判断是否接收到用户对所述第一显示区域的选中操作;
如果是,确定接收到用户对杂物覆盖率和杂物附着分布的查看请求,在所述终端的第 二界面显示包括杂物覆盖率和杂物附着分布的杂物附着信息。
当显示有包括杂物覆盖率的杂物附着信息的第一显示区域在终端的第一界面显示时,如果用户想要查看杂物覆盖率和杂物附着分布,则用户可以通过操作跳转到第二界面进行查看。
用户跳转到第二界面查看杂物覆盖率和杂物附着分布的操作可以为对第一显示区域的选中操作,该选中操作可以为点击操作、双击操作、按压操作等,如果第一显示区域的设定形状为如图2至图4所示的小圆圈时,用户可以通过点击显示在第一界面的该第一显示区域,跳转到第二界面。
终端可以判断是否接收到用户对第一显示区域的选中操作,如果是,确定接收到用户对杂物覆盖率和杂物附着分布的查看请求;如果否,确定未接收到用户对杂物覆盖率和杂物附着分布的查看请求。
当终端确定接收到用户对杂物覆盖率和杂物附着分布的查看请求后,在终端的第二界面显示包括杂物覆盖率和杂物附着分布的杂物附着信息,具体地,终端可以从第一界面跳转到第二界面,并在第二界面中对杂物附着信息进行显示。
由于本申请实施例中用户可以通过操作从第一界面跳转到第二界面显示包括杂物覆盖率和杂物附着分布的杂物附着信息,能够使用户准确地查看到光伏板上附着的杂物从而进行清理。
实施例7:
在上述各实施例的基础上,本申请实施例中,如果所述杂物附着信息包括杂物附着分布和杂物覆盖率,所述显示所述杂物附着信息包括:
根据预先保存的杂物覆盖率区间与背景显示颜色的对应关系,确定进行显示的第三显示区域的目标背景显示颜色;
根据预先保存的杂物覆盖率区域与所述第三显示区域中第二显示子区域的对应关系,确定所述杂物覆盖率区域对应的目标第二显示子区域;
采用所述目标背景显示颜色显示所述第三显示区域,并在所述目标第二显示子区域中显示杂物附着信息。
如果杂物附着信息包括杂物覆盖率和杂物附着分布,则终端在显示杂物附着信息时,用户根据杂物覆盖率和杂物附着分布更准确地查看到光伏板上附着的杂物。
终端中保存有杂物覆盖率区间与背景显示颜色的对应关系,终端中保存的杂物覆盖率区间与背景显示颜色的对应关系可以是由光伏板维护人员设置的,可以是由用户根据自身的需求和喜好设定的。该背景显示颜色任意,只要能区分不同的杂物覆盖率区间即可。
由于上述实施例已经确定了杂物覆盖率所在的目标杂物覆盖率区间,因此终端可以确定该目标杂物覆盖率区间对应的目标背景显示颜色,并将该目标背景显示颜色确定为由于进行展示的第三显示区域的目标背景显示颜色,用户可以根据第三显示区域的目标背景显示颜色直观确定杂物覆盖率。
该进行展示的第三显示区域可以是终端中预先设置的,该第三显示区域中预先划分了第二显示子区域,该第三显示区域所在的界面,与第二显示区域所在的界面或与第一显示区域所在的界面可以相同或不同,如果杂物附着信息包括杂物覆盖率和杂物附着分布在显示时通过用户对第一显示区域的选中操作显示的,则该第三显示区域所在的界面与所述第一显示区域所在的界面不同,即第三显示区域所在的第二界面与所述第一界面区域所在的第一界面不同。
该第三显示区域在预先划分第二显示子区域时的方式可以与第二显示区域在预先划分第一显示子区域时的方式相同,具体参照上述实施例,在本申请实施例中不做赘述。
终端中保存有光伏板中每个区域与第三显示区域中第二显示子区域的对应关系,可以认为终端中预先保存有光伏板中的杂质覆盖区域与第三显示区域中第二显示子区域的对应关系,因此终端可以根据杂物覆盖区域,确定杂物覆盖区域对应的目标第二显示子区域。
终端可以采用目标背景显示颜色显示第三显示区域,并在第三显示区域的目标第二显示子区域中显示杂物附着信息,用户可以根据显示有杂物附着信息的目标第二显示子区域,确定光伏板上存在杂物覆盖的杂物覆盖区域。
终端在目标第二显示子区域中显示杂物附着信息的过程与在目标第一显示子区域中显示杂物附着信息的过程相似,在本申请实施例中不做赘述。
还以上述为例,假设图5中显示的为第三显示区域,如果图5中的目标背景显示颜色为墨绿色,则可以认为此时在终端中为用户显示光伏板底色为墨绿色。假设图6中显示的为第三显示区域,如果图6中的目标背景显示颜色为黄绿色,则可以认为此时在终端中为用户显示光伏板底色为黄绿色。假设图7中显示的为第三显示区域,如果图7中的目标背景显示颜色为深红色,则可以认为此时在终端中为用户显示光伏板底色为深红色。
由于本申请实施例中用户可以显示杂物覆盖率和杂物附着分布的杂物附着信息,能够使用户准确地查看到光伏板上附着的杂物从而进行清理。
实施例8:
图8为本申请实施例提供的一种显示过程的示意图,包括以下步骤:
S801:通过光线采集装置获取光线透过所述光伏板每个区域后的光线强度。
本申请实施例提供的显示方法应用于光伏板,该光伏板可以通过光线采集装置获取到 光线透过自身每个区域后的光线强度,确定每个区域对应的光线强度。
所述光线采集装置包括光敏传感器。
S802:将所述每个区域对应的光线强度发送给终端,使所述终端根据所述每个区域对应的光线强度,确定并显示所述光伏板上的杂物附着信息。
光伏板确定每个区域对应的光线强度后,将该每个区域对应的光线强度发送给终端,终端进行显示。
实施例9:
在上述各实施例的基础上,图9为本申请实施例提供的一种显示系统的结构示意图,该显示系统包括光伏板901和终端902;其中,
所述光伏板901,用于通过光线采集装置获取光线透过所述光伏板每个区域后的光线强度;将所述每个区域对应的光线强度发送给终端;
所述终端902,用于接收每个区域对应的光线强度;根据所述每个区域对应的光线强度,确定所述光伏板上的杂物附着信息,其中所述杂物附着信息包括杂物覆盖率和/或杂物附着分布;显示所述杂物附着信息。
为了保证用户能够及时查看到光伏板上附着的杂物,本申请实施例提供的一种显示系统,该显示系统包括光伏板和终端。
所述光线采集装置包括光敏传感器。
所述终端,具体用于如果所述杂物附着信息包括杂物附着分布,根据所述每个区域对应的光线强度,将小于预先设置的光线强度阈值的光线强度对应的区域确定为所述光伏板上的杂物覆盖区域;根据确定的所述杂物覆盖区域,确定所述光伏板上的杂物附着分布;如果所述杂物附着信息包括杂物覆盖率,根据所述每个区域对应的光线强度,将小于预先设置的光线强度阈值的光线强度对应的区域确定为所述光伏板上的杂物覆盖区域;根据所述杂物覆盖区域的面积,及所述光伏板的面积,确定所述光伏板上的杂物覆盖率。
所述终端,具体用于如果所述杂物附着信息包括杂物覆盖率,根据预先保存的每个杂物覆盖率区间,确定所述杂物覆盖率所在的目标杂物覆盖率区间;根据预先保存的杂物覆盖率区间与显示样式的对应关系,采用所述目标杂物覆盖率区间对应的目标显示样式,显示所述杂物覆盖率。
所述终端,具体用于如果显示样式包括显示颜色,根据所述杂物覆盖率,确定在设定形状的第一显示区域内的目标显示高度;在所述设定形状的第一显示区域内,按照所述目标显示高度及所述目标显示颜色,显示所述杂物覆盖率。
所述终端,具体用于如果所述杂物附着信息包括杂物附着分布,根据预先保存的杂物 覆盖区域与第二显示区域中第一显示子区域的对应关系,确定所述杂物覆盖区域对应的目标第一显示子区域;在所述第二显示区域的目标第一显示子区域中显示杂物附着信息。
所述终端,还用于如果所述终端的第一界面显示有包括杂物覆盖率的杂物附着信息,判断是否接收到用户对所述第一显示区域的选中操作;如果是,确定接收到用户对杂物覆盖率和杂物附着分布的查看请求,在所述终端的第二界面显示包括杂物覆盖率和杂物附着分布的杂物附着信息。
所述终端,具体用于如果所述杂物附着信息包括杂物附着分布和杂物覆盖率,根据预先保存的杂物覆盖率区间与背景显示颜色的对应关系,确定进行显示的第三显示区域的目标背景显示颜色;根据预先保存的杂物覆盖率区域与所述第三显示区域中第二显示子区域的对应关系,确定所述杂物覆盖率区域对应的目标第二显示子区域;采用所述目标背景显示颜色显示所述第三显示区域,并在所述目标第二显示子区域中显示杂物附着信息。
实施例10:
在上述各实施例的基础上,本申请实施例还提供了一种终端1000,如图10所示,包括:处理器1001、通信接口1002、存储器1003和通信总线1004,其中,处理器1001,通信接口1002,存储器1003通过通信总线1004完成相互间的通信;
所述存储器1003中存储有计算机程序,当所述程序被所述处理器1001执行时,使得所述处理器1001执行上述应用于终端的任一实施例。
上述终端提到的通信总线可以是外设部件互连标准(Peripheral Component Interconnect,PCI)总线或扩展工业标准结构(Extended Industry Standard Architecture,EISA)总线等。该通信总线可以分为地址总线、数据总线、控制总线等。为便于表示,图中仅用一条粗线表示,但并不表示仅有一根总线或一种类型的总线。
通信接口1002用于上述终端与其他设备之间的通信。
存储器可以包括随机存取存储器(Random Access Memory,RAM),也可以包括非易失性存储器(Non-Volatile Memory,NVM),例如至少一个磁盘存储器。可选地,存储器还可以是至少一个位于远离前述处理器的存储装置。
上述处理器可以是通用处理器,包括中央处理器、网络处理器(Network Processor,NP)等;还可以是数字指令处理器(Digital Signal Processing,DSP)、专用集成电路、现场可编程门陈列或者其他可编程逻辑器件、分立门或者晶体管逻辑器件、分立硬件组件等。
实施例11:
在上述各实施例的基础上,本申请实施例还提供了一种计算机存储可读存储介质,所述计算机可读存储介质内存储有可由终端执行的计算机程序,当所述程序在所述终端上运 行时,使得所述终端执行时实现上述应用于终端的任一实施例。
上述计算机可读存储介质可以是终端中的处理器能够存取的任何可用介质或数据存储设备,包括但不限于磁性存储器如软盘、硬盘、磁带、磁光盘(MO)等、光学存储器如CD、DVD、BD、HVD等、以及半导体存储器如ROM、EPROM、EEPROM、非易失性存储器(NAND FLASH)、固态硬盘(SSD)等。
实施例12:
在上述各实施例的基础上,本申请实施例还提供了一种光伏板1100,如图11所示,包括:处理器1101、通信接口1102、存储器1103和通信总线1104,其中,处理器1101,通信接口1102,存储器1103通过通信总线1104完成相互间的通信;
所述存储器1103中存储有计算机程序,当所述程序被所述处理器1101执行时,使得所述处理器1101执行上述应用于光伏板的任一实施例。
上述光伏板提到的通信总线可以是外设部件互连标准(Peripheral Component Interconnect,PCI)总线或扩展工业标准结构(Extended Industry Standard Architecture,EISA)总线等。该通信总线可以分为地址总线、数据总线、控制总线等。为便于表示,图中仅用一条粗线表示,但并不表示仅有一根总线或一种类型的总线。
通信接口1102用于上述光伏板与其他设备之间的通信。
存储器可以包括随机存取存储器(Random Access Memory,RAM),也可以包括非易失性存储器(Non-Volatile Memory,NVM),例如至少一个磁盘存储器。可选地,存储器还可以是至少一个位于远离前述处理器的存储装置。
上述处理器可以是通用处理器,包括中央处理器、网络处理器(Network Processor,NP)等;还可以是数字指令处理器(Digital Signal Processing,DSP)、专用集成电路、现场可编程门陈列或者其他可编程逻辑器件、分立门或者晶体管逻辑器件、分立硬件组件等。
实施例13:
在上述各实施例的基础上,本申请实施例还提供了一种计算机存储可读存储介质,所述计算机可读存储介质内存储有可由光伏板执行的计算机程序,当所述程序在所述光伏板上运行时,使得所述光伏板执行时实现上述应用于光伏板的任一实施例。
上述计算机可读存储介质可以是光伏板中的处理器能够存取的任何可用介质或数据存储设备,包括但不限于磁性存储器如软盘、硬盘、磁带、磁光盘(MO)等、光学存储器如CD、DVD、BD、HVD等、以及半导体存储器如ROM、EPROM、EEPROM、非易失性存储器(NAND FLASH)、固态硬盘(SSD)等。
图12为本申请实施例提供的一种显示装置1200示意图,应用于终端,该装置包括:
接收模块1201,用于接收通过光线采集装置获取的光线透过光伏板每个区域后的光线强度;
确定模块1202,用于根据所述每个区域对应的光线强度,确定所述光伏板上的杂物附着信息,其中所述杂物附着信息包括杂物覆盖率和/或杂物附着分布;
显示模块1203,用于显示所述杂物附着信息。
所述确定模块1202,具体用于如果所述杂物附着信息包括杂物附着分布,根据所述每个区域对应的光线强度,将小于预先设置的光线强度阈值的光线强度对应的区域确定为所述光伏板上的杂物覆盖区域;根据确定的所述杂物覆盖区域,确定所述光伏板上的杂物附着分布;如果所述杂物附着信息包括杂物覆盖率,根据所述每个区域对应的光线强度,将小于预先设置的光线强度阈值的光线强度对应的区域确定为所述光伏板上的杂物覆盖区域;根据所述杂物覆盖区域的面积,及所述光伏板的面积,确定所述光伏板上的杂物覆盖率。
所述显示模块1203,具体用于如果所述杂物附着信息包括杂物覆盖率,根据预先保存的每个杂物覆盖率区间,确定所述杂物覆盖率所在的目标杂物覆盖率区间;根据预先保存的杂物覆盖率区间与显示样式的对应关系,采用所述目标杂物覆盖率区间对应的目标显示样式,显示所述杂物覆盖率。
所述显示模块1203,具体用于如果显示样式包括显示颜色,根据所述杂物覆盖率,确定在设定形状的第一显示区域内的目标显示高度;在所述设定形状的第一显示区域内,按照所述目标显示高度及所述目标显示颜色,显示所述杂物覆盖率。
所述显示模块1203,具体用于如果所述杂物附着信息包括杂物附着分布,根据预先保存的杂物覆盖区域与第二显示区域中第一显示子区域的对应关系,确定所述杂物覆盖区域对应的目标第一显示子区域;在所述第二显示区域的目标第一显示子区域中显示杂物附着信息。
所述显示模块1203,还用于如果所述终端的第一界面显示有包括杂物覆盖率的杂物附着信息,判断是否接收到用户对所述第一显示区域的选中操作;如果是,确定接收到用户对杂物覆盖率和杂物附着分布的查看请求,在所述终端的第二界面显示包括杂物覆盖率和杂物附着分布的杂物附着信息。
所述显示模块1203,具体用于如果所述杂物附着信息包括杂物附着分布和杂物覆盖率,根据预先保存的杂物覆盖率区间与背景显示颜色的对应关系,确定进行显示的第三显示区域的目标背景显示颜色;根据预先保存的杂物覆盖率区域与所述第三显示区域中第二显示子区域的对应关系,确定所述杂物覆盖率区域对应的目标第二显示子区域;采用所述 目标背景显示颜色显示所述第三显示区域,并在所述目标第二显示子区域中显示杂物附着信息。
本申请实施例中通过光线采集装置采集光线透过光伏板每个区域后的光线强度,终端根据光线强度确定并显示光伏板上的杂质附着信息,用户能够通过终端及时查看到光伏板上的杂质附着信息,从而能够及时对光伏板进行清理,提高阳光的接收效率。
图13为本申请实施例提供的一种显示装置1300示意图,应用于光伏板,该装置包括:
获取模块1301,用于通过光线采集装置获取光线透过所述光伏板每个区域后的光线强度;
发送模块1302,用于将所述每个区域对应的光线强度发送给终端,使所述终端根据所述每个区域对应的光线强度,确定并显示所述光伏板上的杂物附着信息。
所述光线采集装置包括光敏传感器。
本申请实施例中通过光线采集装置采集光线透过光伏板每个区域后的光线强度,终端根据光线强度确定并显示光伏板上的杂质附着信息,用户能够通过终端及时查看到光伏板上的杂质附着信息,从而能够及时对光伏板进行清理,提高阳光的接收效率。
对于系统/装置实施例而言,由于其基本相似于方法实施例,所以描述的比较简单,相关之处参见方法实施例的部分说明即可。
需要说明的是,在本文中,诸如第一和第二等之类的关系术语仅仅用来将一个实体或者一个操作与另一个实体或者另一个操作区分开来,而不一定要求或者暗示这些实体或者操作之间存在任何这种实际的关系或者顺序。
本领域内的技术人员应明白,本申请的实施例可提供为方法、系统、或计算机程序产品。因此,本申请可采用完全硬件实施例、完全软件实施例、或结合软件和硬件方面的实施例的形式。而且,本申请可采用在一个或多个其中包含有计算机可用程序代码的计算机可用存储介质(包括但不限于磁盘存储器、CD-ROM、光学存储器等)上实施的计算机程序产品的形式。
本申请是参照根据本申请实施例的方法、设备(系统)、和计算机程序产品的流程图和/或方框图来描述的。应理解可由计算机程序指令实现流程图和/或方框图中的每一流程和/或方框、以及流程图和/或方框图中的流程和/或方框的结合。可提供这些计算机程序指令到通用计算机、专用计算机、嵌入式处理机或其他可编程数据处理设备的处理器以产生一个机器,使得通过计算机或其他可编程数据处理设备的处理器执行的指令产生用于实现在流程图一个流程或多个流程和/或方框图一个方框或多个方框中指定的功能的装置。
这些计算机程序指令也可存储在能引导计算机或其他可编程数据处理设备以特定方式工作的计算机可读存储器中,使得存储在该计算机可读存储器中的指令产生包括指令装置的制造品,该指令装置实现在流程图一个流程或多个流程和/或方框图一个方框或多个方框中指定的功能。
这些计算机程序指令也可装载到计算机或其他可编程数据处理设备上,使得在计算机或其他可编程设备上执行一系列操作步骤以产生计算机实现的处理,从而在计算机或其他可编程设备上执行的指令提供用于实现在流程图一个流程或多个流程和/或方框图一个方框或多个方框中指定的功能的步骤。
尽管已描述了本申请的实施例,但本领域内的技术人员一旦得知了基本创造性概念,则可对这些实施例做出另外的变更和修改。所以,所附权利要求意欲解释为包括实施例以及落入本申请范围的所有变更和修改。
显然,本领域的技术人员可以对本申请进行各种改动和变型而不脱离本申请的精神和范围。这样,倘若本申请的这些修改和变型属于本申请权利要求及其等同技术的范围之内,则本申请也意图包含这些改动和变型在内。

Claims (22)

  1. 一种显示方法,其特征在于,应用于终端,该方法包括:
    接收通过光线采集装置获取的光线透过光伏板每个区域后的光线强度;
    根据所述每个区域对应的光线强度,确定所述光伏板上的杂物附着信息,其中所述杂物附着信息包括杂物覆盖率和/或杂物附着分布;
    显示所述杂物附着信息。
  2. 根据权利要求1所述的方法,其特征在于,如果所述杂物附着信息包括杂物附着分布,所述根据所述每个区域对应的光线强度,确定所述光伏板上的杂物附着信息包括:
    根据所述每个区域对应的光线强度,将小于预先设置的光线强度阈值的光线强度对应的区域确定为所述光伏板上的杂物覆盖区域;根据确定的所述杂物覆盖区域,确定所述光伏板上的杂物附着分布;
    如果所述杂物附着信息包括杂物覆盖率,所述根据所述光线强度,确定所述光伏板上的杂物附着信息包括:
    根据所述每个区域对应的光线强度,将小于预先设置的光线强度阈值的光线强度对应的区域确定为所述光伏板上的杂物覆盖区域;根据所述杂物覆盖区域的面积,及所述光伏板的面积,确定所述光伏板上的杂物覆盖率。
  3. 根据权利要求1或2所述的方法,其特征在于,如果所述杂物附着信息包括杂物覆盖率,所述显示所述杂物附着信息包括:
    根据预先保存的每个杂物覆盖率区间,确定所述杂物覆盖率所在的目标杂物覆盖率区间;
    根据预先保存的杂物覆盖率区间与显示样式的对应关系,采用所述目标杂物覆盖率区间对应的目标显示样式,显示所述杂物覆盖率。
  4. 根据权利要求3所述的方法,其特征在于,如果显示样式包括显示颜色,所述采用所述目标杂物覆盖率区间对应的目标显示样式,显示所述杂物覆盖率包括:
    根据所述杂物覆盖率,确定在设定形状的第一显示区域内的目标显示高度;
    在所述设定形状的第一显示区域内,按照所述目标显示高度及所述目标显示颜色,显示所述杂物覆盖率。
  5. 根据权利要求2所述的方法,其特征在于,如果所述杂物附着信息包括杂物附着分布,所述显示所述杂物附着信息包括:
    根据预先保存的杂物覆盖区域与第二显示区域中第一显示子区域的对应关系,确定所述杂物覆盖区域对应的目标第一显示子区域;
    在所述第二显示区域的目标第一显示子区域中显示杂物附着信息。
  6. 根据权利要求4所述的方法,其特征在于,如果所述终端的第一界面显示有包括杂物覆盖率的杂物附着信息,所述方法还包括:
    判断是否接收到用户对所述第一显示区域的选中操作;
    如果是,确定接收到用户对杂物覆盖率和杂物附着分布的查看请求,在所述终端的第二界面显示包括杂物覆盖率和杂物附着分布的杂物附着信息。
  7. 根据权利要求6所述的方法,其特征在于,如果所述杂物附着信息包括杂物附着分布和杂物覆盖率,所述显示所述杂物附着信息包括:
    根据预先保存的杂物覆盖率区间与背景显示颜色的对应关系,确定进行显示的第三显示区域的目标背景显示颜色;
    根据预先保存的杂物覆盖率区域与所述第三显示区域中第二显示子区域的对应关系,确定所述杂物覆盖率区域对应的目标第二显示子区域;
    采用所述目标背景显示颜色显示所述第三显示区域,并在所述目标第二显示子区域中显示杂物附着信息。
  8. 一种显示方法,其特征在于,应用于光伏板,该方法包括:
    通过光线采集装置获取光线透过所述光伏板每个区域后的光线强度;
    将所述每个区域对应的光线强度发送给终端,使所述终端根据所述每个区域对应的光线强度,确定并显示所述光伏板上的杂物附着信息。
  9. 根据权利要求8所述的方法,其特征在于,所述光线采集装置包括光敏传感器。
  10. 一种显示装置,其特征在于,应用于终端,该装置包括:
    接收模块,用于接收通过光线采集装置获取的光线透过光伏板每个区域后的光线强度;
    确定模块,用于根据所述每个区域对应的光线强度,确定所述光伏板上的杂物附着信息,其中所述杂物附着信息包括杂物覆盖率和/或杂物附着分布;
    显示模块,用于显示所述杂物附着信息。
  11. 根据权利要求10所述的装置,其特征在于,所述确定模块,具体用于如果所述杂物附着信息包括杂物附着分布,根据所述每个区域对应的光线强度,将小于预先设置的光线强度阈值的光线强度对应的区域确定为所述光伏板上的杂物覆盖区域;根据确定的所述杂物覆盖区域,确定所述光伏板上的杂物附着分布;如果所述杂物附着信息包括杂物覆盖 率,根据所述每个区域对应的光线强度,将小于预先设置的光线强度阈值的光线强度对应的区域确定为所述光伏板上的杂物覆盖区域;根据所述杂物覆盖区域的面积,及所述光伏板的面积,确定所述光伏板上的杂物覆盖率。
  12. 根据权利要求10或11所述的装置,其特征在于,所述显示模块,具体用于如果所述杂物附着信息包括杂物覆盖率,根据预先保存的每个杂物覆盖率区间,确定所述杂物覆盖率所在的目标杂物覆盖率区间;根据预先保存的杂物覆盖率区间与显示样式的对应关系,采用所述目标杂物覆盖率区间对应的目标显示样式,显示所述杂物覆盖率。
  13. 根据权利要求12所述的装置,其特征在于,所述显示模块,具体用于如果显示样式包括显示颜色,根据所述杂物覆盖率,确定在设定形状的第一显示区域内的目标显示高度;在所述设定形状的第一显示区域内,按照所述目标显示高度及所述目标显示颜色,显示所述杂物覆盖率。
  14. 根据权利要求11所述的装置,其特征在于,所述显示模块,具体用于如果所述杂物附着信息包括杂物附着分布,根据预先保存的杂物覆盖区域与第二显示区域中第一显示子区域的对应关系,确定所述杂物覆盖区域对应的目标第一显示子区域;在所述第二显示区域的目标第一显示子区域中显示杂物附着信息。
  15. 根据权利要求13所述的装置,其特征在于,所述显示模块,还用于如果所述终端的第一界面显示有包括杂物覆盖率的杂物附着信息,判断是否接收到用户对所述第一显示区域的选中操作;如果是,确定接收到用户对杂物覆盖率和杂物附着分布的查看请求,在所述终端的第二界面显示包括杂物覆盖率和杂物附着分布的杂物附着信息。
  16. 根据权利要求15所述的装置,其特征在于,所述显示模块,具体用于如果所述杂物附着信息包括杂物附着分布和杂物覆盖率,根据预先保存的杂物覆盖率区间与背景显示颜色的对应关系,确定进行显示的第三显示区域的目标背景显示颜色;根据预先保存的杂物覆盖率区域与所述第三显示区域中第二显示子区域的对应关系,确定所述杂物覆盖率区域对应的目标第二显示子区域;采用所述目标背景显示颜色显示所述第三显示区域,并在所述目标第二显示子区域中显示杂物附着信息。
  17. 一种显示装置,其特征在于,应用于光伏板,该装置包括:
    获取模块,用于通过光线采集装置获取光线透过所述光伏板每个区域后的光线强度;
    发送模块,用于将所述每个区域对应的光线强度发送给终端,使所述终端根据所述每个区域对应的光线强度,确定并显示所述光伏板上的杂物附着信息。
  18. 根据权利要求17所述的装置,其特征在于,所述光线采集装置包括光敏传感器。
  19. 一种终端,其特征在于,包括:处理器、通信接口、存储器和通信总线,其中, 处理器,通信接口,存储器通过通信总线完成相互间的通信;
    所述存储器中存储有计算机程序,当所述程序被所述处理器执行时,使得所述处理器执行权利要求1~7任一项所述方法的步骤。
  20. 一种计算机可读存储介质,其特征在于,其存储有可由终端执行的计算机程序,当所述程序在所述终端上运行时,使得所述终端执行权利要求1~7任一项所述方法的步骤。
  21. 一种光伏板,其特征在于,包括:处理器、通信接口、存储器和通信总线,其中,处理器,通信接口,存储器通过通信总线完成相互间的通信;
    所述存储器中存储有计算机程序,当所述程序被所述处理器执行时,使得所述处理器执行权利要求8或9所述方法的步骤。
  22. 一种计算机可读存储介质,其特征在于,其存储有可由光伏板执行的计算机程序,当所述程序在所述光伏板上运行时,使得所述光伏板执行权利要求8或9所述方法的步骤。
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