WO2015043337A1 - 一种时钟同步对时的自动校验方法及其专用设备 - Google Patents

一种时钟同步对时的自动校验方法及其专用设备 Download PDF

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Publication number
WO2015043337A1
WO2015043337A1 PCT/CN2014/084627 CN2014084627W WO2015043337A1 WO 2015043337 A1 WO2015043337 A1 WO 2015043337A1 CN 2014084627 W CN2014084627 W CN 2014084627W WO 2015043337 A1 WO2015043337 A1 WO 2015043337A1
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Prior art keywords
signal
module
beidou
signal source
gps
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PCT/CN2014/084627
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English (en)
French (fr)
Inventor
梁伟
宋维斌
王楠
郭凌旭
徐科
刘涛
王峥
刘畅
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国家电网公司
国网天津市电力公司
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Application filed by 国家电网公司, 国网天津市电力公司 filed Critical 国家电网公司
Priority to US14/646,612 priority Critical patent/US9647783B2/en
Publication of WO2015043337A1 publication Critical patent/WO2015043337A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04JMULTIPLEX COMMUNICATION
    • H04J3/00Time-division multiplex systems
    • H04J3/02Details
    • H04J3/06Synchronising arrangements
    • H04J3/0635Clock or time synchronisation in a network
    • H04J3/0638Clock or time synchronisation among nodes; Internode synchronisation
    • H04J3/0644External master-clock
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04JMULTIPLEX COMMUNICATION
    • H04J3/00Time-division multiplex systems
    • H04J3/02Details
    • H04J3/06Synchronising arrangements
    • H04J3/0635Clock or time synchronisation in a network
    • H04J3/0638Clock or time synchronisation among nodes; Internode synchronisation
    • H04J3/0658Clock or time synchronisation among packet nodes
    • H04J3/0661Clock or time synchronisation among packet nodes using timestamps
    • H04J3/0667Bidirectional timestamps, e.g. NTP or PTP for compensation of clock drift and for compensation of propagation delays
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L69/00Network arrangements, protocols or services independent of the application payload and not provided for in the other groups of this subclass
    • H04L69/28Timers or timing mechanisms used in protocols

Definitions

  • the present invention relates to the technical field of smart grid clock synchronization, and in particular to an automatic verification method for clock synchronization pair and a special device thereof. Background technique
  • the dispatching automation system With the intelligent construction of the power grid, the dispatching automation system, the electricity billing system, the load monitoring system, the fault recorder, the microcomputer relay protection device, the lightning positioning system, the plant monitoring system, the gateway billing, and the communication network Synchronously put forward higher requirements, safe and stable clock synchronization system has become an indispensable infrastructure to support the safe operation of smart grids.
  • the operating state of the power grid changes rapidly, and the grid dispatching implements hierarchical multi-level management.
  • the dispatching center is far away from the site, so the time of all electrical automation equipment and microcomputer protection devices in the power plant or station must be unified.
  • Grid operation and accident analysis (especially complex accident analysis) are significant.
  • the commonly used reference clock signal is obtained in the following manner:
  • the Beidou signal receiving module and the GPS signal receiving module respectively obtain the output signals of the Beidou signal source and the GPS signal source, generally using the Beidou signal as the reference clock signal, and the Beidou signal output module.
  • the reference clock signal is sent to all the timing signal receiving devices.
  • the timing signal comparison module drives the alarm and the blocking module to operate.
  • the alarm and blocking module sends an alarm signal to the background monitoring system on the one hand, and On the one hand, the blocking signal is sent to the Beidou signal output module, and then the timing signal comparison module automatically switches to the output signal of the GPS signal source, and then the GPS output signal module sends the reference clock signal to all the timing signal receiving devices, if the Beidou signal The source and the GPS signal source simultaneously fail, and the timing signal comparison module drives the alarm and the blocking module action.
  • the alarm and blocking module sends an alarm signal to the background monitoring system on the one hand, and the Beidou signal output module and the GPS signal output module on the other hand. Send closed Signal.
  • the switching mode of the above reference clock signal can normally operate normally, but in actual use, once the Beidou signal source fails, the timing signal comparison module does not automatically switch the GPS signal source, and the alarm and blocking module are not driven at the same time. Action, this will cause a reference clock signal error, resulting in error in the clock information of the entire station, with serious consequences.
  • the object of the present invention is to overcome the deficiencies of the prior art and provide a scientifically reasonable and easy to operate clock synchronization. Automatic verification method for time.
  • An automatic verification method for clock synchronization comprising the following steps:
  • the secondary operation process includes the following steps:
  • the clock signal of the GPS signal source is output as a reference clock signal to each pair of time signal receiving devices;
  • the alarm process includes the following steps:
  • the period of the timing acquisition is 50 milliseconds, and the preset value is 20 milliseconds.
  • Another object of the present invention is to provide a special device for automatically verifying a clock synchronization pair, comprising: a Beidou signal receiving module, a GPS signal receiving module, a network module, a timing signal comparison module, and a Beidou signal output module. , GPS signal output module and alarm and blocking module.
  • the Beidou signal receiving module, the GPS signal receiving module, the network module, the timing signal comparison module, the Beidou signal output module, the GPS signal output module, and the alarm and blocking module are all installed in the housing, and the timing signal comparison module is
  • the ports are respectively connected to one end of a Beidou signal receiving module, a GPS signal receiving module, a network module, a Beidou signal output module, a GPS signal output module, and an alarm and blocking module
  • the Beidou signal receiving module, the GPS signal receiving module and the network module are respectively One end is respectively connected with a Beidou signal source, a GPS signal source and an SNTP signal source, and the Beidou signal output module and the GPS signal output mode are respectively connected
  • the other end of the block is connected to a reference clock signal input end of a plurality of timing signal receiving devices, and the other end of the alarm and blocking module is connected to an alarm signal input end of the background monitoring system, and two blocking signals of the alarm and blocking module
  • the output end is connected to the blocking signal input end of
  • the network module adopts a wireless transmission mode or a wired transmission mode.
  • the three clock signals output by the Beidou signal source, the GPS signal source and the SNTP signal source are used as the original clock signal, and then the Beidou signal and the GPS signal are subtracted, and the Beidou signal and the SNTP signal are subtracted.
  • the two differences are taken as absolute values, and then compared with the preset values. If they are exceeded, the GPS signal and the SNTP signal are subtracted, and finally, according to the result, which of the signal sources output the clock signal is received as a plurality of timing signals.
  • the reference clock signal of the device can effectively avoid the problems in the prior art, ensure the consistency and accuracy of the system time, and ensure the stable and safe operation of the system and the normal operation of other grid services.
  • 1 is a flow chart showing the operation of the automatic verification method of the clock synchronization pair of the present invention
  • FIG. 2 is a schematic structural view of a dedicated device of the present invention. detailed description
  • An automatic verification method for clock synchronization includes the following steps:
  • the clock signal of the Beidou signal source is output as a reference clock signal to each of the pair of time signal receiving devices;
  • the secondary operation process includes the following steps:
  • the clock signal of the GPS signal source is output as a reference clock signal to each pair of time signal receiving devices;
  • the alarm process includes the following steps:
  • the period of the timing acquisition is 50 milliseconds, and the preset value is 20 milliseconds.
  • the Beidou signal source is preferentially selected. If there is a problem with the Beidou signal source, the GPS signal source is preferentially selected. If both have problems, the alarm is output and the output of each clock signal is blocked.
  • the structure of the special equipment used in the present invention is as shown in FIG. 2: including Beidou signal receiving module, GPS signal receiving module, network module, timing signal comparison module, Beidou signal output module, GPS signal output module, alarm and blocking The module, wherein the Beidou signal receiving module, the GPS signal receiving module, the timing signal comparison module, the Beidou signal output module, the GPS signal output module, and the alarm and blocking module are all prior art components, and the main purpose is to perform the Beidou signal.
  • a network module is further installed in the housing 1, and the specific connection structure of each module is: the Beidou signal receiving module, GPS The signal receiving module, the network module, the timing signal comparison module, the Beidou signal output module, the GPS signal output module, and the alarm and blocking module are all installed in the casing, and the ports of the timing signal comparison module are respectively connected to the Beidou signal receiving module.
  • GPS signal receiving module One end of the block, the GPS signal output module and the alarm and blocking module, the other ends of the Beidou signal receiving module, the GPS signal receiving module and the network module are respectively connected to the Beidou signal source, the GPS signal source and the SNTP signal source, and the Beidou signal output
  • the other end of the module and the GPS signal output module are connected to the reference clock signal input end of the plurality of timing signal receiving devices
  • the other end of the alarm and blocking module is connected to the alarm signal input end of the background monitoring system
  • the alarm and blocking module Two blocking signal outputs are connected to the blocking signal input of the Beidou signal output module and the GPS signal output module
  • the above network module can adopt a wireless transmission mode, that is, a hardware module supporting wireless transmission, or a wired transmission mode, that is, a hardware module connected through a network cable, both of which can obtain a clock signal output by the SNTP signal source.
  • the above alarm signal is a high level, used to trigger the background monitoring system, and the blocking signal is also a high level for blocking the Beidou signal output module and the GPS signal output module.
  • the three clock signals output by the Beidou signal source, the GPS signal source and the SNTP signal source are used as the original clock signal, and then the Beidou signal and the GPS signal are subtracted, and the Beidou signal and the SNTP signal are subtracted.
  • the two differences are taken as absolute values, and then compared with the preset values. If they are exceeded, the GPS signal and the SNTP signal are subtracted, and finally, according to the result, which of the signal sources output the clock signal is received as a plurality of timing signals.
  • the reference clock signal of the device can effectively avoid the problems in the prior art, ensure the consistency and accuracy of the system time, and ensure the stable and safe operation of the system and the normal operation of other grid services.

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  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Computer Security & Cryptography (AREA)
  • Electric Clocks (AREA)
  • Position Fixing By Use Of Radio Waves (AREA)

Abstract

本发明涉及一种时钟同步对时的自动校验方法,包括以下步骤:(1)定时获取北斗信号源、全球定位系统(GPS)信号源和简单网络时间协议(SNTP)信号源发出的时钟信号;(2)将北斗信号源和GPS信号源的时钟信号进行减运算,然后将差值取绝对值:同时将北斗信号源和SNTP信号源的时钟信号进行减运算,然后将差值取绝对值,最后判断两次差值的结果;(3)不断重复步骤(1)〜(2)。本发明中的操作可有效的避免现有技术中的问题,确保了系统时间的一致性和准确性,保证了系统的稳定、安全的运行以及其它电网业务的正常运行。

Description

一种时钟同步对时的自动校验方法及其专用设备 技术领域
本发明涉及智能电网时钟同步对时技术领域, 特别是涉及一种时钟同步对时的自 动校验方法及其专用设备。 背景技术
随着电网智能化的建设, 调度自动化系统、 电量计费系统、 负荷监控系统、 故障录 波装置、微机继电保护装置、 雷电定位系统、厂站监控系统、 关口计费以及通信网络等 对时钟同步提出更高的要求,安全稳定精准的时钟同步系统已成为支撑智能电网安全运 行必不可少的基础设施。在电力系统运行中, 电网运行状态瞬息万变, 而电网调度实行 的是分层多级管理,调度中心远离现场, 因此就要求发电厂或者站内所有电气自动化设 备和微机保护装置的时间必须统一,这对于电网操作、事故分析(特别是复杂事故分析) 意义重大。
现有常用的基准时钟信号的获得采用如下方式: 通过北斗信号接收模块以及 GPS 信号接收模块分别获取北斗信号源和 GPS信号源的输出信号, 一般以北斗信号为基准 时钟信号, 由北斗信号输出模块向所有的对时信号接收设备发送基准时钟信号, 当北斗 信号源发生故障时,对时信号比对模块驱动报警及闭锁模块动作,该报警及闭锁模块一 方面向后台监控系统发送报警信号,另一方面向北斗信号输出模块发送闭锁信号,然后 对时信号比对模块自动切换到 GPS信号源的输出信号, 然后由 GPS输出信号模块向所 有的对时信号接收设备发送基准时钟信号, 如果北斗信号源和 GPS信号源同时出现故 障,对时信号比对模块驱动报警及闭锁模块动作,该报警及闭锁模块一方面向后台监控 系统发送报警信号,另一方面向北斗信号输出模块和 GPS信号输出模块发送闭锁信号。
上述基准时钟信号的切换方式一般情况下可正常运行,但在实际使用中,一旦出现 北斗信号源故障, 但对时信号比对模块并未自动切换 GPS信号源, 同时也未驱动报警 及闭锁模块动作, 这就会出现基准时钟信号错误, 导致全站的时钟信息错误, 会带来严 重的后果。 发明内容
本发明的目的在于克服现有技术的不足,提供一种科学合理、操作简便的时钟同步 对时的自动校验方法。
为此, 本发明采取的技术方案如下:
一种时钟同步对时的自动校验方法, 包括以下步骤:
( 1 ) 定时获取北斗信号源、 GPS信号源和 SNTP信号源发出的时钟信号;
( 2 ) 将北斗信号源和 GPS信号源的时钟信号进行减运算, 然后将差值取绝对值- 同时将北斗信号源和 SNTP信号源的时钟信号进行减运算, 然后将差值取绝对值, 最后 判断两次差值的结果:
①当两个差值小于预设值时, 将北斗信号源的时钟信号作为基准时钟信号向各对 时信号接收设备输出;
②当任意一个差值大于预设值时, 进入二次运算过程;
( 3 ) 不断重复步骤 (1 ) 〜 (2 );
所述二次运算过程包括以下步骤:
( 1 ) 将 GPS信号源和 SNTP信号源的时钟信号进行减运算, 然后将差值取绝对值:
( 2 ) 判断本次差值的结果:
① 当差值小于预设值时, 将 GPS信号源的时钟信号作为基准时钟信号向各对时信 号接收设备输出;
② 当差值大于预设值时, 进入报警过程;
所述报警过程包括以下步骤:
( 1 ) 向北斗信号输出模块和 GPS信号输出模块发送闭锁信号, 停止发送基准时钟 信号;
( 2 ) 向后台监控系统发送报警信号。
而且, 所述定时获取的周期为 50毫秒, 所述预设值为 20毫秒。
本发明的另一个目的是提供一种时钟同步对时的自动校验方法使用的专用设备,包 括: 北斗信号接收模块、 GPS信号接收模块、 网络模块、 对时信号比对模块、 北斗信号 输出模块、 GPS信号输出模块和报警及闭锁模块。 所述北斗信号接收模块、 GPS信号接 收模块、 网络模块、 对时信号比对模块、 北斗信号输出模块、 GPS信号输出模块和报警 及闭锁模块均安装在壳体内, 所述对时信号比对模块的端口分别连接北斗信号接收模 块、 GPS信号接收模块、 网络模块、 北斗信号输出模块、 GPS信号输出模块和报警及闭 锁模块的一端, 所述北斗信号接收模块、 GPS信号接收模块和网络模块的另一端分别连 接北斗信号源、 GPS信号源和 SNTP信号源, 所述北斗信号输出模块和 GPS信号输出模 块的另一端均连接多个对时信号接收设备的基准时钟信号输入端,所述报警及闭锁模块 的另一端连接后台监控系统的报警信号输入端,所述报警及闭锁模块的两个闭锁信号输 出端连接所述北斗信号输出模块和 GPS信号输出模块的闭锁信号输入端。
而且, 所述网络模块采用无线传输方式或有线传输方式。
本发明的优点和积极效果是:
本发明中, 将北斗信号源、 GPS信号源和 SNTP信号源输出的三个时钟信号作为原 始的时钟信号, 然后将北斗信号和 GPS信号进行减运算, 同时将北斗信号和 SNTP信号 进行减运算, 将两个差值取绝对值, 然后和预设值进行比较, 如果超出, 再将 GPS信号 和 SNTP信号进行减运算, 最后根据结果判断以哪个信号源输出的时钟信号作为多个对 时信号接收设备的基准时钟信号,上述操作可有效避免现有技术中的问题,确保了系统 时间的一致性和准确性,保证了系统的稳定、安全的运行以及其它电网业务的正常运行。 附图说明
图 1是本发明的时钟同步对时的自动校验方法的操作流程图;
图 2是本发明的专用设备的结构示意图。 具体实施方式
下面结合实施例对本发明做进一步说明, 下述实施例是说明性的, 不是限定性的, 不能以下述实施例来限定本发明的保护范围。
一种时钟同步对时的自动校验方法, 如图 1所示, 包括以下步骤:
( 1 ) 定时获取北斗信号源、 GPS信号源和 SNTP信号源发出的时钟信号;
( 2 ) 将北斗信号源和 GPS信号源的时钟信号进行减运算, 然后将差值取绝对值- 同时将北斗信号源和 SNTP信号源的时钟信号进行减运算, 然后将差值取绝对值, 最后 判断两次差值的结果:
① 当两个差值小于预设值时, 将北斗信号源的时钟信号作为基准时钟信号向各对 时信号接收设备输出;
② 当任意一个差值大于预设值时, 进入二次运算过程;
( 3 ) 不断重复步骤 (1 ) 〜 (2 );
所述二次运算过程包括以下步骤:
( 1 ) 将 GPS信号源和 SNTP信号源的时钟信号进行减运算, 然后将差值取绝对值: ( 2 ) 判断本次差值的结果:
① 当差值小于预设值时, 将 GPS信号源的时钟信号作为基准时钟信号向各对时信 号接收设备输出;
② 当差值大于预设值时, 进入报警过程;
所述报警过程包括以下步骤:
( 1 ) 向北斗信号输出模块和 GPS信号输出模块发送闭锁信号, 停止发送基准时钟 信号;
( 2 ) 向后台监控系统发送报警信号。
所述定时获取的周期为 50毫秒, 所述预设值为 20毫秒。
上述过程中优先选取北斗信号源,如果北斗信号源有问题,则优先选取 GPS信号源, 如果二者均有问题, 则输出报警且闭锁各时钟信号的输出。
本发明的中使用的专用设备的结构如图 2所示: 包括北斗信号接收模块、 GPS信号 接收模块、 网络模块、 对时信号比对模块、 北斗信号输出模块、 GPS信号输出模块和报 警及闭锁模块, 其中的北斗信号接收模块、 GPS信号接收模块、 对时信号比对模块、 北 斗信号输出模块、 GPS信号输出模块和报警及闭锁模块均为现有技术的部件, 其主要是 为了进行北斗信号和 GPS信号自动比对选择而设置的,但为了适应本发明的自动校验方 法, 在壳体 1内又安装了一个网络模块, 各模块的具体连接结构是: 所述北斗信号接收 模块、 GPS信号接收模块、 网络模块、 对时信号比对模块、 北斗信号输出模块、 GPS信 号输出模块和报警及闭锁模块均安装在壳体内,所述对时信号比对模块的端口分别连接 北斗信号接收模块、 GPS信号接收模块、 网络模块、 北斗信号输出模块、 GPS信号输出 模块和报警及闭锁模块的一端, 所述北斗信号接收模块、 GPS信号接收模块和网络模块 的另一端分别连接北斗信号源、 GPS信号源和 SNTP信号源, 所述北斗信号输出模块和 GPS信号输出模块的另一端均连接多个对时信号接收设备的基准时钟信号输入端,所述 报警及闭锁模块的另一端连接后台监控系统的报警信号输入端,所述报警及闭锁模块的 两个闭锁信号输出端连接所述北斗信号输出模块和 GPS 信号输出模块的闭锁信号输入
¾ °
上述网络模块可以采用无线传输方式, 即支持无线传输的硬件模块,也可以采用有 线传输方式, 即通过网络线连接的硬件模块, 二者均可以获取 SNTP信号源输出的时钟 信号。上述报警信号即为一个高电平, 用于触发后台监控系统, 闭锁信号也是一个高电 平, 用于闭锁北斗信号输出模块和 GPS信号输出模块。 行
本发明中, 将北斗信号源、 GPS信号源和 SNTP信号源输出的三个时钟信号作为原 始的时钟信号, 然后将北斗信号和 GPS信号进行减运算, 同时将北斗信号和 SNTP信号 进行减运算, 将两个差值取绝对值, 然后和预设值进行比较, 如果超出, 再将 GPS信号 和 SNTP信号进行减运算, 最后根据结果判断以哪个信号源输出的时钟信号作为多个对 时信号接收设备的基准时钟信号,上述操作可有效的避免现有技术中的问题,确保了系 统时间的一致性和准确性,保证了系统的稳定、安全的运行以及其它电网业务的正常运

Claims

权 利 要 求 书
1、 一种时钟同步对时的自动校验方法, 其特征在于: 包括以下步骤:
( 1 ) 定时获取北斗信号源、 GPS信号源和 SNTP信号源发出的时钟信号;
( 2 ) 将北斗信号源和 GPS信号源的时钟信号进行减运算, 然后将差值取绝对值: 同 时将北斗信号源和 SNTP信号源的时钟信号进行减运算, 然后将差值取绝对值, 最后判断 两次差值的结果:
① 当两个差值小于预设值时,将北斗信号源的时钟信号作为基准时钟信号向各对时 信号接收设备输出;
② 当任意一个差值大于预设值时, 进入二次运算过程;
( 3 ) 不断重复步骤 (1 ) 〜 (2 );
所述二次运算过程包括以下步骤:
( 1 ) 将 GPS信号源和 SNTP信号源的时钟信号进行减运算, 然后将差值取绝对值:
( 2 ) 判断本次差值的结果:
① 当差值小于预设值时,将 GPS信号源的时钟信号作为基准时钟信号向各对时信号 接收设备输出;
② 当差值大于预设值时, 进入报警过程;
所述报警过程包括以下步骤:
( 1 ) 向北斗信号输出模块和 GPS信号输出模块发送闭锁信号, 停止发送基准时钟信 号;
( 2 ) 向后台监控系统发送报警信号。
2、 根据权利要求 1所述的一种时钟同步对时的自动校验方法, 其特征在于: 所述定 时获取的周期为 50毫秒, 所述预设值为 20毫秒。
3、根据权利要求 1或 2所述的时钟同步对时的自动校验方法使用的专用设备, 其特 征在于: 包括北斗信号接收模块、 GPS信号接收模块、 网络模块、 对时信号比对模块、 北 斗信号输出模块、 GPS信号输出模块和报警及闭锁模块, 所述北斗信号接收模块、 GPS信 号接收模块、 网络模块、对时信号比对模块、北斗信号输出模块、 GPS信号输出模块和报 警及闭锁模块均安装在壳体内, 所述对时信号比对模块的端口分别连接北斗信号接收模 块、 GPS信号接收模块、 网络模块、 北斗信号输出模块、 GPS信号输出模块和报警及闭锁 模块的一端,所述北斗信号接收模块、 GPS信号接收模块和网络模块的另一端分别连接北 斗信号源、 GPS信号源和 SNTP信号源, 所述北斗信号输出模块和 GPS信号输出模块的另 一端均连接多个对时信号接收设备的基准时钟信号输入端, 所述报警及闭锁模块的另一 端连接后台监控系统的报警信号输入端, 所述报警及闭锁模块的两个闭锁信号输出端连 接所述北斗信号输出模块和 GPS信号输出模块的闭锁信号输入端。
4、根据权利要求 3所述的时钟同步对时的自动校验方法使用的专用设备, 其特征在 于: 所述网络模块采用无线传输方式或有线传输方式。
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