Satellite ground comprehensive processing system

By designing a satellite ground comprehensive processing system with distributed architecture, the problem of insufficient reliability and scalability of satellite ground control systems under centralized architecture is solved, and efficient and reliable real-time processing and control of satellite missions is achieved.

CN120110499APending Publication Date: 2025-06-06上海湃星信息科技有限公司
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510288110.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-12
Publication Date
2025-06-06

AI Technical Summary

Technical Problem

The centralized architecture of existing satellite ground control systems has poor reliability, insufficient scalability and processing capacity bottlenecks, resulting in the risk of data loss, processing delays and system paralysis.

Method used

Design a distributed architecture satellite ground comprehensive processing system, including telemetry management subsystem, digital transmission management subsystem and remote control management subsystem, to realize real-time data processing and transmission through middleware such as Kafka.

Benefits of technology

It improves the real-time and reliability of satellite mission execution, solves the bottleneck problem when a single processing node processes large-scale satellite data, and ensures the smooth progress of satellite missions.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120110499A_ABST
    Figure CN120110499A_ABST
Patent Text Reader

Abstract

The invention discloses a satellite ground comprehensive processing system, which comprises a telemetering management subsystem, a data transmission management subsystem and a remote control management subsystem, and is characterized in that the telemetering management subsystem, the data transmission management subsystem and the remote control management subsystem work under the scheduling of ground remote control operation equipment; the telemetering management subsystem is configured to receive, process, store and analyze satellite telemetering data so as to monitor a satellite state; the data transmission management subsystem is configured to transmit the received satellite data to ground remote control operation equipment, and store and dispatch the satellite data; the remote control management subsystem is configured to generate a remote control instruction according to a ground control demand sent by the ground remote control operation device, send the remote control instruction to the satellite, and obtain a feedback result after the satellite executes a corresponding operation according to the remote control instruction. According to the invention, the bottleneck problem of processing large-scale satellite data by an existing single processing node is solved, and the real-time performance and reliability of satellite task execution are improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the field of aerospace technology, and in particular to a satellite ground integrated processing system. Background Art

[0002] With the rapid development of satellite technology, satellite ground integrated processing systems have become increasingly important in the execution of complex satellite missions. Traditional satellite ground control systems usually adopt a centralized architecture. Although this architecture can meet basic data processing and command sending needs, its limitations are gradually increasing in the face of the increasing number of satellites and the increasing complexity of missions.

[0003] In the existing technology, as the complexity of tasks increases, the centralized architecture also has problems such as capacity bottlenecks, poor system reliability and insufficient scalability. The limited performance of the centralized architecture will also lead to problems such as data loss and processing delays. In severe cases, it may even cause system paralysis and affect the smooth progress of satellite missions.

[0004] Based on this, a new technical solution is needed. Summary of the invention

[0005] In view of this, an embodiment of the present invention provides a satellite ground integrated processing system to at least solve the problems of poor reliability and insufficient scalability of centralized architecture systems in the prior art.

[0006] The embodiment of the present invention provides the following technical solutions:

[0007] The embodiment of the present invention provides a satellite ground integrated processing system, including a telemetry management subsystem, a data transmission management subsystem and a remote control management subsystem, wherein the telemetry management subsystem, the data transmission management subsystem and the remote control management subsystem all work under the dispatch of a ground remote control operation device;

[0008] The telemetry management subsystem is configured to receive, process, store and analyze satellite telemetry data to monitor satellite status, wherein the satellite telemetry data includes information collected by one or more of satellite sensors, detection instruments and satellite subsystems;

[0009] The data transmission management subsystem is configured to transmit the received satellite data to the ground remote control operation device, and store and schedule the satellite data, wherein the satellite data includes satellite telemetry data;

[0010] The remote control management subsystem is configured to generate remote control instructions according to the ground control requirements sent by the ground remote control operation device, send the remote control instructions to the satellite, and obtain feedback results after the satellite performs corresponding operations according to the remote control instructions.

[0011] Furthermore, the telemetry management subsystem includes:

[0012] A data monitoring module, the data monitoring module is configured to receive and display real-time data, the data monitoring module includes a fixed area and a customized area, the fixed area is configured to display or switch to display a fixed telemetry data packet, the fixed telemetry data packet includes a serial number, a parameter name, a parsed value, a source code, one or more of the on-board UTC time and the local Beijing time; the customized area is configured to display, modify or delete the selected telemetry data packet.

[0013] Furthermore, the telemetry management subsystem also includes:

[0014] An alarm processing module, wherein the alarm processing module is configured to perform rule verification on the received telemetry data packet based on the alarm rule, and determine whether to alarm according to the verification result;

[0015] The alarm processing module includes a real-time alarm unit and a historical query unit. The alarm unit is configured to select a status quantity alarm that requires operation when historical abnormal data is detected; the historical query unit is configured to query and display list information based on the alarm information, and the list information includes one or more of the corresponding package, telemetry code, telemetry name, alarm status, threshold range, alarm value, and alarm start and end time.

[0016] Furthermore, the telemetry management subsystem also includes:

[0017] An alarm management module, wherein the alarm management module is configured to manage telemetry alarm rule data, monitor alarm data, or display the set telemetry judgment alarm information.

[0018] Furthermore, the telemetry management subsystem also includes:

[0019] A data query module, wherein the data query module is configured to query the satellite telemetry data;

[0020] A statistical analysis module, wherein the statistical analysis module is configured to perform basic data statistics on the satellite telemetry data;

[0021] A data visualization module is configured to visualize the processed satellite telemetry data.

[0022] Furthermore, the data transmission management subsystem includes:

[0023] The digital transmission data stream receiving module is configured to receive the original data stream of the digital transmission data transmitted in real time by the ground remote control operation equipment, and perform data verification and classification.

[0024] Furthermore, the remote control management subsystem is configured to verify and parse satellite control instructions, and display parameters, timing or causal relationships of the satellite control instructions.

[0025] Furthermore, the remote control management subsystem includes:

[0026] The instruction configuration module is configured to preset the satellite control instruction and retrieve the satellite control instruction according to the instruction code, instruction name, subsystem, mission mode, and function stand-alone.

[0027] Furthermore, the remote control management subsystem also includes:

[0028] The instruction generation module is configured to fill or modify instruction parameter content through an instruction configuration information table based on the ground control requirements, perform framing processing on different types of frame structures, so as to generate the satellite control instruction.

[0029] Furthermore, the remote control management subsystem also includes:

[0030] An instruction sending module is configured to verify whether the satellite control instruction complies with the constraint requirements in the instruction parameter item template library.

[0031] Compared with the prior art, the at least one technical solution adopted in the embodiment of the present invention can achieve the following beneficial effects:

[0032] A satellite ground integrated processing system of the present invention comprises a telemetry management subsystem, a data transmission management subsystem and a remote control management subsystem, wherein the telemetry management subsystem, the data transmission management subsystem and the remote control management subsystem all work under the dispatch of a ground remote control operation device; the telemetry management subsystem is configured to receive, process, store and analyze satellite telemetry data to monitor the satellite status, wherein the satellite telemetry data comprises information collected by one or more of satellite sensors, detection instruments and satellite subsystems; the data transmission management subsystem is configured to transmit the received satellite data to the ground remote control operation device, and store and dispatch the satellite data, wherein the satellite data comprises satellite telemetry data; the remote control management subsystem is configured to generate a remote control instruction according to a ground control demand sent by the ground remote control operation device, and send the remote control instruction to the satellite, and obtain feedback results after the satellite performs corresponding operations according to the remote control instruction, thereby solving the bottleneck problem of an existing single processing node in processing large-scale satellite data and improving the real-time performance and reliability of satellite mission execution. BRIEF DESCRIPTION OF THE DRAWINGS

[0033] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings required for use in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative work.

[0034] Figure 1 It is a schematic diagram of the structure of the satellite ground integrated processing system provided by the implementation of this specification;

[0035] Figure 2 It is a data display processing flow chart of the telemetry subsystem of the satellite ground integrated processing system provided by the implementation of this specification;

[0036] Figure 3 It is the alarm processing flow chart of the telemetry subsystem of the satellite ground integrated processing system provided by the implementation of this specification;

[0037] Figure 4 It is a processing flow chart of an alarm management module of a telemetry subsystem of a satellite ground integrated processing system provided by an embodiment of the present invention;

[0038] Figure 5 It is a processing flow chart of a data query module of a telemetry subsystem of a satellite ground integrated processing system provided by an embodiment of the present invention;

[0039] Figure 6 The command configuration process of the remote control subsystem of the satellite ground integrated processing system provided by the embodiment of the present invention is Figure 1 ;

[0040] Figure 7 The command configuration process of the remote control subsystem of the satellite ground integrated processing system provided by the embodiment of the present invention is Figure 2 ;

[0041] Figure 8 The command configuration process of the remote control subsystem of the satellite ground integrated processing system provided by the embodiment of the present invention is Figure 3 . DETAILED DESCRIPTION

[0042] The embodiments of the present application are described in detail below with reference to the accompanying drawings.

[0043] The following describes the implementation methods of the present application through specific examples, and those skilled in the art can easily understand other advantages and effects of the present application from the contents disclosed in this specification. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. The present application can also be implemented or applied through other different specific implementation methods, and the details in this specification can also be modified or changed in various ways based on different viewpoints and applications without departing from the spirit of the present application. It should be noted that, in the absence of conflict, the following embodiments and the features in the embodiments can be combined with each other. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in the field without making creative work belong to the scope of protection of the present application.

[0044] It should be noted that various aspects of the embodiments within the scope of the appended claims are described below. It should be apparent that the aspects described herein can be embodied in a wide variety of forms, and any specific structure and / or function described herein is merely illustrative. Based on the present application, it should be understood by those skilled in the art that an aspect described herein can be implemented independently of any other aspect, and two or more of these aspects can be combined in various ways. For example, any number and aspect described herein can be used to implement the device and / or practice the method. In addition, other structures and / or functionalities other than one or more of the aspects described herein can be used to implement this device and / or practice this method.

[0045] It should also be noted that the illustrations provided in the following embodiments are only schematic illustrations of the basic concept of the present application. The drawings only show components related to the present application rather than being drawn according to the number, shape and size of components in actual implementation. In actual implementation, the type, quantity and proportion of each component may be changed arbitrarily, and the component layout may also be more complicated.

[0046] Additionally, in the following description, specific details are provided to facilitate a thorough understanding of the examples. However, it will be understood by those skilled in the art that the examples can be practiced without these specific details.

[0047] Based on the shortcomings of the centralized architecture in the prior art, this specification embodiment proposes a processing solution: Figure 1As shown, a satellite ground integrated processing system of the present invention includes a telemetry management subsystem, a remote control management subsystem, and a data transmission management subsystem to realize efficient data interaction and control between the satellite and the ground; the telemetry management subsystem mainly realizes the functions of receiving, parsing, storing, and displaying the satellite's on-orbit telemetry data; the remote control management subsystem mainly realizes the functions of generating and verifying satellite control instructions, and the subsystem can be used to receive and parse the control instructions sent to the real satellite, and directly display the parameters, timing, causal relationship, etc. of each control instruction through the front-end page; the data transmission management subsystem mainly realizes the functions of receiving, parsing, storing, distributing, and displaying the satellite's on-orbit data transmission data; the system solves the bottleneck problem of a single processing node in processing large-scale satellite data through the design of a distributed architecture, improves the real-time and reliability of satellite mission execution, provides efficient technical guarantee for real-time monitoring and control of satellites, and ensures the accurate execution and efficient operation of aerospace missions.

[0048] The technical solutions provided by various embodiments of the present application are described below in conjunction with the accompanying drawings.

[0049] like Figure 1 As shown, a satellite ground integrated processing system of the present invention includes a telemetry management subsystem, a data transmission management subsystem and a remote control management subsystem, and the telemetry management subsystem, the data transmission management subsystem and the remote control management subsystem all work under the scheduling of the ground remote control operation equipment; the telemetry management subsystem is configured to receive, process, store and analyze satellite telemetry data to monitor the satellite status, and the satellite telemetry data includes one or more information collected by satellite sensors, detection instruments and satellite subsystems; the data transmission management subsystem is configured to transmit the received satellite data to the ground remote control operation equipment, and store and schedule the satellite data, and the satellite data includes satellite telemetry data; the remote control management subsystem is configured to generate remote control instructions according to the ground control requirements sent by the ground remote control operation equipment, and send the remote control instructions to the satellite, and obtain feedback results after the satellite performs corresponding operations according to the remote control instructions.

[0050] The satellite ground integrated processing system of the present application is used to comprehensively process the mission management and operation control of the satellite to support the real-time reception, analysis, storage, display and generation and execution of control instructions for the satellite's on-orbit data.

[0051] Among them, the telemetry management subsystem is used to receive and analyze satellite telemetry data, monitor satellite status in real time, and display key parameters; the data transmission management subsystem is used to process the transmission of satellite data, including the reception, storage and display of image data; the remote control management subsystem is used to generate and verify satellite control instructions to ensure accurate and timely satellite control, and can display the parameters and timing of the instructions through the front-end page.

[0052] Among them, the telemetry data processed by the telemetry management system may include relevant parameters such as satellite operating status and equipment performance, and the data can be monitored and stored in real time.

[0053] Among them, the telemetry management system can also provide real-time fault diagnosis and abnormal warning according to predetermined task requirements to ensure the accuracy and completeness of the data.

[0054] The telemetry management subsystem is responsible for collecting and processing the satellite's real-time telemetry data, covering key parameters such as the satellite's orbit, attitude, temperature, and power. Through efficient data collection and processing capabilities, the subsystem can reflect the satellite's operating status in real time, and trigger fault warnings in a timely manner when an abnormality occurs, providing decision support.

[0055] Among them, the data collected by the satellite subsystem can be information such as attitude control, temperature, pressure or orbital data. Satellite telemetry data is usually transmitted wirelessly to the ground station through the satellite's telemetry system for reception. The ground integrated processing system is responsible for real-time detection, processing and analysis of this data to ensure the normal operation of the satellite and the achievement of mission objectives.

[0056] In some of the embodiments, Figure 2 As shown, the telemetry management subsystem is also used for data display processing, and its specific process is to receive telemetry data, display real-time data, status monitoring, customize templates, display template lists, etc.

[0057] Among them, the data transmission management subsystem can ensure efficient data transmission and avoid data loss or delay. Especially when facing the real-time processing of large-scale telemetry data, the system can quickly schedule and process data as needed.

[0058] Among them, the data transmission management subsystem is responsible for data transmission and storage tasks, ensuring stable and reliable data exchange between the satellite and the ground station, and supporting the two-way transmission of real-time mission instructions and satellite status data.

[0059] Among them, the remote control management subsystem is used to generate and verify satellite control instructions. It can be used to receive and parse control instructions sent to real satellites, and directly display the parameters, timing, cause and effect relationships of each control instruction through the front page.

[0060] Among them, remote control instructions refer to commands sent from the ground control station to remote devices (such as satellites, spacecraft, drones, etc.) to control their behavior, status or perform specific tasks. Through remote control instructions, ground control personnel can start or shut down equipment, adjust attitude or orbit, perform tasks, perform fault diagnosis and repair, etc. Remote control instructions are transmitted through remote control communication links to ensure the accuracy and security of the instructions.

[0061] Among them, the remote control management subsystem can generate corresponding control instructions based on telemetry data and mission planning. Through the satellite control center, these instructions are accurately sent to the space satellite to perform complex tasks such as orbit control, attitude adjustment, and mission operations. This subsystem must not only be able to generate instructions based on simulation training results, but also be able to respond to changes in the satellite's operating status in real time, dynamically adjust the command output, and ensure the stability and reliability of satellite mission execution. In addition, the remote control management subsystem uses a multi-level feedback mechanism to not only control the basic operations of the satellite, but also automatically adjust strategies when failures occur or environmental changes occur, reduce human intervention, and improve the system's adaptability.

[0062] Among them, the telemetry management subsystem, the data transmission management subsystem and the remote control management subsystem are connected through a data interface.

[0063] Kafka is added as a data transmission and processing middleware between the telemetry management subsystem, the data transmission management subsystem and the remote control management subsystem. Kafka can provide high throughput, low latency real-time data stream transmission capabilities, while ensuring the system's real-time processing of massive telemetry data.

[0064] This application integrates multiple subsystems to efficiently manage telemetry data, digital transmission data and remote control commands, and displays the satellite's operating status, mission execution status and potential abnormal risks in real time through a visual data display module. It can also ensure the precise scheduling and execution of satellite missions, ensure the stable operation of satellites in complex environments, and realize the funny management and real-time control of satellite missions.

[0065] In some of the embodiments, the satellite ground integrated processing system also includes a data processing and display module for integrating telemetry data, remote control commands and digital transmission data, and displaying the real-time status and mission progress of the satellite through a visual interface to provide decision support.

[0066] Furthermore, the telemetry management subsystem includes a data monitoring module, which is configured to receive and display real-time data. The data monitoring module includes a fixed area and a customized area. The fixed area is configured to display or switch to display a fixed telemetry data packet. The fixed telemetry data packet includes a serial number, a parameter name, a parsed value, a source code, one or more of the on-board UTC time and the local Beijing time; the customized area is configured to display, modify or delete the selected telemetry data packet.

[0067] Among them, the data monitoring module can display dynamic real-time data, and view static trend curve charts in designated customized areas.

[0068] Among them, the customization area can open multiple telemetry data packet interfaces at the same time, and switch to view the real-time telemetry data. If there is an alarm in the telemetry status, it can also be marked with a specific color in the real-time display, such as red.

[0069] Among them, the customization area can be added according to the template style, and the telemetry data packets to be displayed can be selected as needed, such as displaying the state quantity parameters in the telemetry data packets, and the display method can also be selected, such as using icons, tables, etc. to complete the customization.

[0070] The customization area can also be modified or deleted as needed.

[0071] Furthermore, the telemetry management subsystem also includes an alarm processing module, which is configured to perform rule verification on the received telemetry data packets based on alarm rules, and determine whether to alarm according to the verification results, and confirm the alarm; the alarm processing module includes a real-time alarm unit and a historical query unit, and the alarm unit is configured to select the state quantity alarm that needs to be operated when historical abnormal data is detected; the historical query unit is configured to query and display list information according to the alarm information, and the list information includes one or more of the corresponding package, telemetry code, telemetry name, alarm status, threshold range, alarm value, and alarm start and end time.

[0072] Among them, the alarm processing module can judge the received telemetry data packets one by one, and perform rule verification according to the configured telemetry alarm rules, and then carry out status alarm according to the verification results.

[0073] Among them, the alarm processing module can also transfer the alarm information to humans, so that the humans can process the alarm information and record the processing results.

[0074] Among them, the confirmed alarm data can be summarized in the confirmed list for folded display.

[0075] For example, Figure 3 As shown, the alarm processing flow includes receiving alarm data, alarm processing, alarm history query, etc.

[0076] Among them, the historical query unit can select search conditions such as time period, package, telemetry code, telemetry name, alarm status, etc., and query and display the corresponding list of alarm information that appeared in the selected period.

[0077] Furthermore, the telemetry management subsystem also includes an alarm management module, which is configured to manage telemetry alarm rule data, monitor alarm data, or display the set telemetry judgment alarm information.

[0078] Specifically, the alarm management module can also add, delete, modify and check alarm rule data, and the alarm management module can display the telemetry criterion alarm information that has been set, and perform special information retrieval through search to configure telemetry alarm rules, select "Package", "Telemetry Code", "Telemetry Name", and then set "Threshold Criteria" to add new rules. You can also select the telemetry criteria to be operated in the list to modify or delete them, or enable or disable the alarm rules.

[0079] For example, Figure 4 As shown, the processing flow of the alarm management module can be receiving alarm rule data, adding, deleting, modifying and checking alarm rules, and displaying alarm rule data.

[0080] Furthermore, if Figure 5 As shown, the telemetry management subsystem also includes a data query module, a statistical analysis module and a data visualization module. The data query module is configured to query satellite telemetry data; the statistical analysis module is configured to perform basic data statistics on satellite telemetry data; and the data visualization module is configured to visualize the processed satellite telemetry data.

[0081] Among them, the data query module can query telemetry data by input conditions, perform statistical analysis on telemetry information, merge telemetry data, and independently visualize them, such as through line charts, bar charts, etc.

[0082] Among them, the data query module can also perform functions such as file export and download of visually displayed data sets.

[0083] Among them, the statistical analysis module can count data such as maximum value, maximum value, average, value and variance.

[0084] Among them, the data visualization module can combine single telemetry and multiple telemetry into independent visual displays, has line chart and bar chart display functions, and supports exporting and downloading of visualized data sets.

[0085] In some of the embodiments, the data transmission management subsystem includes a data transmission data stream receiving module, which is configured to receive the original data stream of the data transmission data transmitted in real time by the ground remote control operation equipment, and perform data verification and classification.

[0086] The satellite data transmitted by the data transmission management subsystem includes various digital information transmitted between the satellite and the ground station through the data transmission communication link (such as X-band, Ka-band, etc.). These data may include remote sensing images, images taken by satellites, meteorological data, navigation data, etc., which are transmitted to the ground system after encoding and compression.

[0087] In some of the embodiments, the remote control management subsystem includes an instruction configuration module, which is configured to preset satellite control instructions and retrieve satellite control instructions based on instruction code, instruction name, subsystem, mission mode, and function.

[0088] The retrieved instructions may be added to a list of pending instructions.

[0089] For example, Figure 6 As shown, the processing flow of the instruction configuration module can be instruction detail configuration, instruction retrieval, instruction checking, etc.

[0090] Furthermore, the remote control management subsystem also includes an instruction generation module, which is configured to fill or modify instruction parameter content through an instruction configuration information table based on ground control requirements, and perform framing processing on different types of frame structures to generate satellite control instructions.

[0091] Among them, the instruction generation module can load a single remote control instruction.

[0092] For example, Figure 7 As shown, the process of the instruction generation module can be satellite remote control instruction retrieval, satellite remote control instruction selection, autonomous generation of instruction sequence, instruction sequence import and export, instruction loading, instruction framing, etc.

[0093] Furthermore, the remote control management subsystem also includes an instruction sending module, which is configured to verify whether the satellite control instruction complies with the constraint requirements in the instruction parameter item template library.

[0094] The instruction sending module can send instructions manually or automatically. It can list the sent instructions and clear the sent list.

[0095] For example, Figure 8 As shown, the workflow of the command sending module can be plain command reception, command verification, command encryption, secret command sequence reception, command on-demand transmission, format conversion, ground station command annotation, etc.

[0096] The present invention provides a satellite ground integrated processing system based on a distributed architecture. Aiming at the needs of modern satellite operation and mission management, and considering the large number of satellites, complex missions and huge data volume, a collaborative working strategy of telemetry management, data transmission management and remote control management using Kafka distributed integrated management is proposed. The system can receive, process and transmit large-scale telemetry data in real time, and realize precise control of satellites through efficient command sending and feedback mechanism.

[0097] This application uses a distributed architecture to coordinate the telemetry management, data transmission management, and remote control management subsystems, which can effectively improve the system's processing power and reliability. By real-time processing and monitoring of large amounts of satellite telemetry data, it is possible to promptly detect and respond to abnormal situations that may occur during the mission of the satellite, and achieve precise control of the satellite. The system can efficiently process large-scale data streams from multiple satellites and quickly respond to any potential problems, ensuring the accuracy and real-time nature of mission execution.

[0098] This application uses an efficient and accurate data processing and command feedback mechanism, and the satellite ground integrated processing system can ensure the efficient execution of satellite missions, ensure the accurate and efficient completion of various satellite missions, and improve the system's fault tolerance and scalability. The system can process massive amounts of telemetry data in real time, and quickly adjust control commands based on real-time feedback, ensuring that every link in the mission process can be accurately tracked and operated, further enhancing the system's ability to handle large amounts of data.

[0099] This application also enables the ground control station to quickly respond to the operating status of the satellite in a complex mission environment and accurately adjust the satellite mission. Through the distributed architecture, the system can ensure the efficient execution and real-time adjustment of satellite missions under the conditions of large data volumes and real-time processing. This method is particularly suitable for the simultaneous management of multiple satellite missions, ensuring the efficient and stable operation of the satellite system and improving the accuracy and reliability of mission execution.

[0100] The satellite ground integrated processing system proposed in the embodiments of this specification, combined with distributed architecture technology, realizes the full process, efficient management and precise control of satellite missions. By receiving massive amounts of satellite data, real-time data monitoring and the generation of control instructions, the system can effectively improve the accuracy and efficiency of satellite mission execution and ensure the successful completion of space missions.

[0101] In this specification, the same or similar parts between the various embodiments can be referred to each other, and each embodiment focuses on the differences from other embodiments. In particular, for the product embodiment described later, since it corresponds to the method, the description is relatively simple, and the relevant parts can be referred to the partial description of the system embodiment.

[0102] The above is only a specific implementation of the present application, but the protection scope of the present application is not limited thereto. Any changes or substitutions that can be easily thought of by a person skilled in the art within the technical scope disclosed in the present application should be included in the protection scope of the present application. Therefore, the protection scope of the present application shall be based on the protection scope of the claims.

Claims

1. A satellite ground integrated processing system, characterized in that: It includes a telemetry management subsystem, a data transmission management subsystem and a remote control management subsystem, and the telemetry management subsystem, the data transmission management subsystem and the remote control management subsystem all work under the dispatch of the ground remote control operation equipment; The telemetry management subsystem is configured to receive, process, store and analyze satellite telemetry data to monitor satellite status, wherein the satellite telemetry data includes information collected by one or more of satellite sensors, detection instruments and satellite subsystems; The data transmission management subsystem is configured to transmit the received satellite data to the ground remote control operation device, and store and schedule the satellite data, wherein the satellite data includes satellite telemetry data; The remote control management subsystem is configured to generate remote control instructions according to the ground control requirements sent by the ground remote control operation device, send the remote control instructions to the satellite, and obtain feedback results after the satellite performs corresponding operations according to the remote control instructions.

2. The satellite ground integrated processing system according to claim 1, characterized in that: The telemetry management subsystem includes: A data monitoring module, the data monitoring module is configured to receive and display real-time data, the data monitoring module includes a fixed area and a customized area, the fixed area is configured to display or switch to display a fixed telemetry data packet, the fixed telemetry data packet includes a serial number, a parameter name, a parsed value, a source code, one or more of the on-board UTC time and the local Beijing time; the customized area is configured to display, modify or delete the selected telemetry data packet.

3. The satellite ground integrated processing system according to claim 2, characterized in that: The telemetry management subsystem also includes: An alarm processing module, wherein the alarm processing module is configured to perform rule verification on the received telemetry data packet based on the alarm rule, and determine whether to alarm according to the verification result; The alarm processing module includes a real-time alarm unit and a historical query unit. The alarm unit is configured to select a status quantity alarm that requires operation when historical abnormal data is detected; the historical query unit is configured to query and display list information based on the alarm information, and the list information includes one or more of the corresponding package, telemetry code, telemetry name, alarm status, threshold range, alarm value, and alarm start and end time.

4. The satellite ground integrated processing system according to claim 3, characterized in that: The telemetry management subsystem also includes: An alarm management module, wherein the alarm management module is configured to manage telemetry alarm rule data, monitor alarm data, or display the set telemetry judgment alarm information.

5. The satellite ground integrated processing system according to claim 2, characterized in that: The telemetry management subsystem also includes: A data query module, wherein the data query module is configured to query the satellite telemetry data; A statistical analysis module, wherein the statistical analysis module is configured to perform basic data statistics on the satellite telemetry data; A data visualization module is configured to visualize the processed satellite telemetry data.

6. The satellite ground integrated processing system according to claim 1, characterized in that: The data transmission management subsystem includes: The digital transmission data stream receiving module is configured to receive the original data stream of the digital transmission data transmitted in real time by the ground remote control operation equipment, and perform data verification and classification.

7. The satellite ground integrated processing system according to claim 1, characterized in that: The remote control management subsystem is configured to verify and parse satellite control instructions and display parameters, timing or causal relationships of the satellite control instructions.

8. The satellite ground integrated processing system according to claim 7, characterized in that: The remote control management subsystem comprises: The instruction configuration module is configured to preset the satellite control instruction and retrieve the satellite control instruction according to the instruction code, instruction name, subsystem, mission mode, and function stand-alone.

9. The satellite ground integrated processing system according to claim 7, characterized in that: The remote control management subsystem also includes: The instruction generation module is configured to fill or modify instruction parameter content through an instruction configuration information table based on the ground control requirements, and perform framing processing on different types of frame structures to generate the satellite control instruction.

10. The satellite ground integrated processing system according to claim 7, characterized in that: The remote control management subsystem also includes: An instruction sending module is configured to verify whether the satellite control instruction complies with the constraint requirements in the instruction parameter item template library.