WO2021003843A1 - 工业园区综合能源系统的分层分布式协调控制时序方法 - Google Patents

工业园区综合能源系统的分层分布式协调控制时序方法 Download PDF

Info

Publication number
WO2021003843A1
WO2021003843A1 PCT/CN2019/106434 CN2019106434W WO2021003843A1 WO 2021003843 A1 WO2021003843 A1 WO 2021003843A1 CN 2019106434 W CN2019106434 W CN 2019106434W WO 2021003843 A1 WO2021003843 A1 WO 2021003843A1
Authority
WO
WIPO (PCT)
Prior art keywords
business
coordinated control
integrated energy
energy system
industrial park
Prior art date
Application number
PCT/CN2019/106434
Other languages
English (en)
French (fr)
Inventor
彭克
徐丙垠
赵曰浩
张聪
陈佳佳
张新慧
Original Assignee
山东理工大学
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 山东理工大学 filed Critical 山东理工大学
Publication of WO2021003843A1 publication Critical patent/WO2021003843A1/zh

Links

Images

Classifications

    • GPHYSICS
    • G05CONTROLLING; REGULATING
    • G05BCONTROL OR REGULATING SYSTEMS IN GENERAL; FUNCTIONAL ELEMENTS OF SUCH SYSTEMS; MONITORING OR TESTING ARRANGEMENTS FOR SUCH SYSTEMS OR ELEMENTS
    • G05B19/00Programme-control systems
    • G05B19/02Programme-control systems electric
    • G05B19/418Total factory control, i.e. centrally controlling a plurality of machines, e.g. direct or distributed numerical control [DNC], flexible manufacturing systems [FMS], integrated manufacturing systems [IMS], computer integrated manufacturing [CIM]
    • G05B19/4185Total factory control, i.e. centrally controlling a plurality of machines, e.g. direct or distributed numerical control [DNC], flexible manufacturing systems [FMS], integrated manufacturing systems [IMS], computer integrated manufacturing [CIM] characterised by the network communication
    • GPHYSICS
    • G05CONTROLLING; REGULATING
    • G05BCONTROL OR REGULATING SYSTEMS IN GENERAL; FUNCTIONAL ELEMENTS OF SUCH SYSTEMS; MONITORING OR TESTING ARRANGEMENTS FOR SUCH SYSTEMS OR ELEMENTS
    • G05B2219/00Program-control systems
    • G05B2219/30Nc systems
    • G05B2219/31From computer integrated manufacturing till monitoring
    • G05B2219/31088Network communication between supervisor and cell, machine group
    • 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
    • Y02PCLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
    • Y02P80/00Climate change mitigation technologies for sector-wide applications
    • Y02P80/10Efficient use of energy, e.g. using compressed air or pressurized fluid as energy carrier
    • 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
    • Y02PCLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
    • Y02P90/00Enabling technologies with a potential contribution to greenhouse gas [GHG] emissions mitigation
    • Y02P90/02Total factory control, e.g. smart factories, flexible manufacturing systems [FMS] or integrated manufacturing systems [IMS]

Definitions

  • the invention relates to the technical field of integrated energy system coordinated control, in particular to a hierarchical distributed coordinated control time sequence method of an industrial park integrated energy system.
  • Optimized and coordinated control between multiple energy sources is a key technology to achieve energy balance and stable operation between energy supply and energy consumption, and to improve energy efficiency. It is the core technology to build a new generation of clean, low-carbon, safe and efficient integrated energy system in my country in the future.
  • the coordinated control of the integrated energy system involves several complex issues such as multi-energy flow coupling, multi-stakeholders, and multi-time scales.
  • the coordinated control process involves multiple services such as data collection and monitoring, load forecasting, optimization management, command execution, and demand response, which are extremely complex.
  • customers, software developers, service providers, technical R&D personnel and other participants may have different understandings and concerns about the coordinated control process.
  • the platform connects the electricity trading market, the energy derivative market, and the energy Internet to facilitate user transactions.
  • the patent "Multi-service system information fusion grid visualization method based on grid GIS” uses the information interaction bus to obtain information on the six major business links of smart grid power transmission, transformation, distribution, power consumption, dispatching, and communication.
  • the purpose of the present invention is to provide a hierarchical distributed coordinated control time sequence method for the integrated energy system of an industrial park, and optimize the coordinated control of the integrated energy system of the industrial park through the hierarchical distributed coordinated control business use case model.
  • the energy balance and stable operation between energy supply and energy consumption are improved, and energy efficiency is improved.
  • the present invention provides a hierarchical distributed coordinated control time sequence method for an integrated energy system in an industrial park, including:
  • UML Unified Modeling Language, Unified Modeling Language
  • the process of performing UML service modeling on services that require coordinated control includes:
  • step 1) the name, type, and description of the core business role are abstracted from the coordination control business.
  • step 2) a corresponding coordination control business use case context diagram is constructed according to the main use cases involved in the coordination process of the industrial park.
  • step 3 the information interaction of the core business roles in the process of coordinated control of the integrated energy system of the industrial park is combined with each core business role, and the integrated energy system is made according to the sequence characteristics The business sequence diagram of the coordination control process.
  • the core business roles include integrated energy providers, factory users, demand response aggregators, and power grid companies.
  • the coordinated control business use case context diagram includes a factory user coordinated control use case diagram, a park integrated energy provider coordinated control use case diagram, a park contact line over-limit processing business use case diagram, and demand response Business use case diagram.
  • the service sequence diagram includes a factory user coordinated control sequence diagram, an integrated energy provider coordinated control sequence diagram, a park tie line over-limit processing sequence diagram, and a demand response service sequence diagram.
  • the use case model is a view composed of participants, use cases and the relationship between them to describe the functions of the software system.
  • the technical solution of the embodiment of the present invention is a hierarchical distributed coordinated control time sequence method for an integrated energy system in an industrial park, which includes: acquiring data of various services in the integrated energy system of an industrial park; performing UML business modeling on services that require coordinated control;
  • the integrated energy system of the industrial park carries out hierarchical and distributed coordinated control.
  • the present invention also proposes a hierarchical and distributed coordinated control business modeling strategy for an integrated energy system.
  • the process of UML business modeling for services that require coordinated control includes three key steps, namely, abstract and standardized description of coordinated control business roles, Activities, determine the main business participants and scenarios, make use case models, and make sequence diagrams based on the information interaction process of business objects.
  • the present invention uses an object-oriented method and a unified modeling language to perform business modeling on the hierarchical distributed coordination control business, and clearly, comprehensively and standardizedly expresses the business roles, application scenarios and information interaction process of the hierarchical distributed coordination control And steps to help customers, software developers, service providers, technical R&D personnel and other participants understand the process, and provide a more standardized approach for the preliminary design research, software implementation, and project landing of the coordinated control project of the integrated energy system.
  • Fig. 1 is a flow chart showing a time sequence method for hierarchical distributed coordinated control of an integrated energy system in an industrial park according to an exemplary embodiment
  • Fig. 2 is a flow chart showing a method of UML business modeling according to an exemplary embodiment
  • Figure 3 is a use case diagram of a factory user coordinated control of the present invention.
  • Figure 4 is a use case diagram of a park integrated energy provider coordinated control of the present invention.
  • Figure 5 is a business use case diagram of a park tie line over-limit processing of the present invention.
  • Fig. 6 is a use case diagram of a demand response business of the present invention.
  • Figure 7 is a time sequence diagram of factory user coordinated control of the present invention.
  • FIG. 8 is a time sequence diagram of the coordinated control of a park integrated energy provider according to the present invention.
  • FIG. 9 is a time sequence diagram of a park tie line over-limit processing service according to the present invention.
  • Fig. 10 is a sequence diagram of a demand response service of the present invention.
  • Fig. 1 is a flow chart showing a time sequence method for hierarchical distributed coordinated control of an integrated energy system in an industrial park according to an exemplary embodiment.
  • an embodiment of the present invention provides a hierarchical distributed coordinated control timing method for an integrated energy system in an industrial park, including:
  • the layered and distributed coordinated control of the integrated energy system is effectively achieved, and the energy balance and stable operation between the supply and use of energy are realized, and the energy efficiency is improved.
  • the process of UML service modeling for services that require coordinated control includes:
  • step 1) the name, type, and description of the core business role are abstracted from the coordination control business.
  • step 2) a corresponding coordination control business use case context diagram is constructed according to the main use cases involved in the coordination process of the industrial park.
  • step 3 the information interaction of the core business roles in the coordinated control process of the integrated energy system of the industrial park is combined with each core business role, and the integrated energy system is coordinated and controlled according to the sequence characteristics Business sequence diagram of the process.
  • the core business roles include integrated energy providers, factory users, demand response aggregators, and grid companies.
  • the coordinated control business use case context diagram includes a factory user coordinated control use case diagram, a park integrated energy provider coordinated control use case diagram, a park contact line over-limit processing business use case diagram, and a demand response business use case diagram Figure.
  • the service sequence diagram includes a factory user coordinated control sequence diagram, an integrated energy provider coordinated control sequence diagram, a park tie line over-limit processing sequence diagram, and a demand response service sequence diagram.
  • the Use Case is a view composed of actors (Actors) and use cases and the relationship between them to describe the functions of the software system. This model can be used to describe the user's business needs.
  • This embodiment proposes a hierarchical and distributed coordinated control business modeling strategy for an integrated energy system.
  • the process of UML business modeling for services that require coordinated control includes three key steps, namely, abstract and standardized description of coordinated control business roles, Activities, determine the main business participants and scenarios, make use case models, and make sequence diagrams based on the information interaction process of business objects.
  • the four core business roles abstracted by the coordination and control of the integrated energy system of the industrial park were abstracted. Analyze and construct the typical use case context diagram of the coordination control business.
  • the sequence diagram of the information interaction among the participating objects in the process of coordinated control of the integrated energy system of the industrial park is analyzed and constructed.
  • the present invention uses an object-oriented method and a unified modeling language to perform business modeling on the hierarchical distributed coordination control business, and clearly, comprehensively and standardizedly expresses the business roles, application scenarios and information interaction process of the hierarchical distributed coordination control And steps to help customers, software developers, service providers, technical R&D personnel and other participants understand the process, and provide a more standardized approach for the preliminary design research, software implementation, and project landing of the coordinated control project of the integrated energy system.
  • Table 1 The core business roles of coordination and control business
  • the industrial park coordination process involves four main use cases, including: lower-level factory user coordination control use case diagram, upper-level park integrated energy provider coordination control use case diagram, park contact line over-limit processing business use case diagram, and demand response business Use case diagrams are constructed, as shown in Figure 3 to Figure 6.
  • a sequence diagram of the coordinated control business of the integrated energy system is made according to the sequence characteristics.

Landscapes

  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Manufacturing & Machinery (AREA)
  • Quality & Reliability (AREA)
  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Automation & Control Theory (AREA)
  • Management, Administration, Business Operations System, And Electronic Commerce (AREA)

Abstract

一种工业园区综合能源系统的分层分布式协调控制时序方法,包括:获取工业园区综合能源系统中各个业务数据信息;对需要协调控制的业务进行UML业务建模;对工业园区综合能源系统时序进行分层分布式协调控制。通过对多能协同的综合能源系统协调控制的业务建模,有效地对综合能源系统的分层分布式协调控制,实现了供、用能间的能量平衡与稳定运行,提升了能源效率。

Description

工业园区综合能源系统的分层分布式协调控制时序方法 技术领域
本发明涉及综合能源系统协调控制技术领域,具体涉及一种工业园区综合能源系统的分层分布式协调控制时序方法。
背景技术
为了应对日益严峻的能源危机与环境问题,许多国家纷纷对能源利用效率较高、环境友好性较好的多能互补的综合能源系统展开了研究与建设。多种能源间的优化协调控制是实现供、用能间的能量平衡与稳定运行,以及能源效率提升的关键技术,是构建未来我国清洁低碳、安全高效的新一代综合能源系统的核心技术。综合能源系统的协调控制涉及到多能流耦合、多利益主体、多时间尺度等若干复杂问题。同时,协调控制过程中又涉及数据采集与监测、负荷预测、优化管理、命令执行、需求响应等多个业务,复杂度极高。在协调控制功能具体的开发与实现过程中,客户、软件开发人员、服务商、技术研发人员等参与方可能对该协调控制过程存在不同的理解与关注点。
为了实现对该业务过程清晰、全面、规范的表述,有必要构建综合能源系统协调的业务模型。目前,国内外对综合能源系统的协调控制的业务模型仍缺乏较为深入的研究,相关研究成果较为匮乏。如专利“面向电网削峰的综合能源系统分层分布式协调控制方法”,利用分层分布式的控制方法实现电网削峰,专利“一种气电综合能源配网系统的协调运行方法”,对冷热电联供系统的运行进行协调优化,对于故障时的紧急控制策略主要以供电恢复为主。如专利“新能源电站故障紧急控制方法”,通过对新能源电站故障进行有效控制,增强新能源电站的低电压穿越能力,同时减轻故障恢复阶段的高电压现 象,从而有效防御新能源电站连锁脱网事故的发生。如专利“电网智能化综合能源服务系统”,所述平台对电力交易市场、能源衍生市场和能源互联网等进行连接,方便用户交易。如专利“基于电网GIS的多业务系统信息融合电网可视化方法”,利用信息交互总线获取智能电网输电、变电、配电、用电、调度、通信六大业务环节的信息。
目前,现有方案大多集中在综合能源系统协调控制的方法以及能源交易、信息采集方面,对多能协同的综合能源系统协调控制的业务建模研究少有涉及,无法充分发挥综合能源系统协调控制的优势。
发明内容
为了解决上述问题,本发明的目的是提供一种工业园区综合能源系统的分层分布式协调控制时序方法,通过分层分布式协调控制业务用例模型对工业园区综合能源系统进行优化协调控制,实现了供、用能间的能量平衡与稳定运行,提升了能源效率。
为实现上述目的,本发明采用以下技术方案:
本发明提供的一种工业园区综合能源系统的分层分布式协调控制时序方法,包括:
获取工业园区综合能源系统中各个业务数据;
对需要协调控制的业务进行UML(Unified Modeling Language,统一建模语言)业务建模;
对工业园区综合能源系统时序进行分层分布式协调控制。
作为本实施例一种可能的实现方式,所述对需要协调控制的业务进行UML业务建模的过程包括:
1)抽象出协调控制业务中的元素,对该协调控制业务过程中的业务角色和活动进行确定,并使用规范化的文字、图表对其进行描述;
2)确定协调控制业务的主要参与人员和相关的业务应用场景,并作出该 协调控制业务的用例模型;
3)根据协调控制业务工程实际情况以及对该协调控制业务的对象、步骤的理解,作出该协调控制业务的时序图,并对该协调控制业务过程中的各业务角色之间的信息交互过程作出准确直观的表示。
作为本实施例一种可能的实现方式,在步骤1)中,从协调控制业务中抽象出核心业务角色的名称、类型、描述。
作为本实施例一种可能的实现方式,在步骤2)中,根据工业园区协调过程中涉及的主要用例进行构建对应的协调控制业务用例语境图。
作为本实施例一种可能的实现方式,在步骤3)中,对工业园区综合能源系统协调控制过程中核心业务角色进行的信息交互,结合各个核心业务角色,按照时序先后特征做出综合能源系统协调控制过程的业务时序图。
作为本实施例一种可能的实现方式,所述核心业务角色包括综合能源提供商、工厂用户、需求响应聚集商和电网公司。
作为本实施例一种可能的实现方式,所述协调控制业务用例语境图包括工厂用户协调控制用例图、园区综合能源提供商协调控制用例图、园区联络线越限处理业务用例图和需求响应业务用例图。
作为本实施例一种可能的实现方式,所述业务时序图包括工厂用户协调控制时序图、综合能源提供商协调控制时序图、园区联络线越限处理时序图和需求响应业务时序图。
作为本实施例一种可能的实现方式,所述用例模型是由参与人员和用例以及它们二者之间的关系组成的用来描述软件系统功能的一种视图。
本发明实施例的技术方案可以具有的有益效果如下:
本发明实施例的技术方案一种工业园区综合能源系统的分层分布式协调控制时序方法,包括:获取工业园区综合能源系统中各个业务数据;对需要 协调控制的业务进行UML业务建模;对工业园区综合能源系统进行分层分布式协调控制。通过对多能协同的综合能源系统协调控制的业务建模,有效地对综合能源系统的分层分布式协调控制,实现了供、用能间的能量平衡与稳定运行,提升了能源效率。
本发明还提出了一种综合能源系统分层分布式协调控制业务建模策略,对需要协调控制的业务进行UML业务建模的过程包括三个关键步骤,即抽象并标准化描述协调控制业务角色、活动,确定主要业务参与人员及场景,做出用例模型,根据业务对象的信息交互过程,做出时序图。本发明利用面向对象的方法和统一建模语言,对分层分布式协调控制业务进行业务建模,清晰、全面、规范地表述了分层分布式协调控制的业务角色、应用场景,信息交互过程及步骤,有助于客户、软件开发人员、服务商、技术研发人员等参与方对该过程进行理解,为综合能源系统的协调控制项目的前期设计研究、软件实现、项目落地等提供较为规范化的业务描述参考。
附图说明
图1是根据一示例性实施例示出的一种工业园区综合能源系统的分层分布式协调控制时序方法的流程图;
图2是根据一示例性实施例示出的一种UML业务建模的方法流程图;
图3是本发明的一种工厂用户协调控制用例图;
图4是本发明的一种园区综合能源提供商协调控制用例图;
图5是本发明的一种园区联络线越限处理业务用例图;
图6是本发明的一种需求响应业务用例图;
图7是本发明的一种工厂用户协调控制时序图;
图8是本发明的一种园区综合能源提供商协调控制时序图;
图9是本发明的一种园区联络线越限处理业务时序图;
图10是本发明的一种需求响应业务时序图。
具体实施方式
下面结合附图与实施例对本发明做进一步说明:
为能清楚说明本方案的技术特点,下面通过具体实施方式,并结合其附图,对本发明进行详细阐述。下文的公开提供了许多不同的实施例或例子用来实现本发明的不同结构。为了简化本发明的公开,下文中对特定例子的部件和设置进行描述。此外,本发明可以在不同例子中重复参考数字和/或字母。这种重复是为了简化和清楚的目的,其本身不指示所讨论各种实施例和/或设置之间的关系。应当注意,在附图中所图示的部件不一定按比例绘制。本发明省略了对公知组件和处理技术及工艺的描述以避免不必要地限制本发明。
图1是根据一示例性实施例示出的一种工业园区综合能源系统的分层分布式协调控制时序方法的流程图。如图1所述,本发明实施例提供的一种工业园区综合能源系统的分层分布式协调控制时序方法,包括:
获取工业园区综合能源系统中各个业务数据;
对需要协调控制的业务进行UML业务建模;
对工业园区综合能源系统时序进行分层分布式协调控制。
本实施通过对多能协同的综合能源系统协调控制的业务建模,有效地对综合能源系统的分层分布式协调控制,实现了供、用能间的能量平衡与稳定运行,提升了能源效率。
在一种可能的实现方式中,如图2所示,所述对需要协调控制的业务进行UML业务建模的过程包括:
1)抽象出协调控制业务中的元素,对该协调控制业务过程中的业务角色和活动进行确定,并使用规范化的文字、图表对其进行描述;
2)确定协调控制业务的主要参与人员和相关的业务应用场景,并作出该 协调控制业务的用例模型;
3)根据协调控制业务工程实际情况以及对该协调控制业务的对象、步骤的理解,作出该协调控制业务的时序图,并对该协调控制业务过程中的各业务角色之间的信息交互过程作出准确直观的表示。
在一种可能的实现方式中,在步骤1)中,从协调控制业务中抽象出核心业务角色的名称、类型、描述。
在一种可能的实现方式中,在步骤2)中,根据工业园区协调过程中涉及的主要用例进行构建对应的协调控制业务用例语境图。
在一种可能的实现方式中,在步骤3)中,对工业园区综合能源系统协调控制过程中核心业务角色进行的信息交互,结合各个核心业务角色,按照时序先后特征做出综合能源系统协调控制过程的业务时序图。
在一种可能的实现方式中,所述核心业务角色包括综合能源提供商、工厂用户、需求响应聚集商和电网公司。
在一种可能的实现方式中,所述协调控制业务用例语境图包括工厂用户协调控制用例图、园区综合能源提供商协调控制用例图、园区联络线越限处理业务用例图和需求响应业务用例图。
在一种可能的实现方式中,所述业务时序图包括工厂用户协调控制时序图、综合能源提供商协调控制时序图、园区联络线越限处理时序图和需求响应业务时序图。
在一种可能的实现方式中,用例模型(Use Case,UC)是由参与人员(Actor)和用例以及它们二者之间的关系组成的用来描述软件系统功能的一种视图。此模型可用来描述用户的业务需求。
本实施例提出了一种综合能源系统分层分布式协调控制业务建模策略,对需要协调控制的业务进行UML业务建模的过程包括三个关键步骤,即抽象 并标准化描述协调控制业务角色、活动,确定主要业务参与人员及场景,做出用例模型,根据业务对象的信息交互过程,做出时序图。在进行UML业务建模的过程中,抽象出了工业园区综合能源系统协调控制抽象出的4个核心业务角色。对协调控制业务的典型用例语境图进行分析与构建。对工业园区综合能源系统协调控制过程中各个参与对象间信息交互的时序图进行了分析与构建。本发明利用面向对象的方法和统一建模语言,对分层分布式协调控制业务进行业务建模,清晰、全面、规范地表述了分层分布式协调控制的业务角色、应用场景,信息交互过程及步骤,有助于客户、软件开发人员、服务商、技术研发人员等参与方对该过程进行理解,为综合能源系统的协调控制项目的前期设计研究、软件实现、项目落地等提供较为规范化的业务描述参考。
下面结合图2至图10所示的具体算例对综合能源系统分层分布式协调控制业务建模策略进行详细说明。
如图2所示,工业园区综合能源系统协调控制UML(Unified Modeling Language,统一建模语言)业务建模的主要流程如下:
首先,对业务建模元素进提取,抽象出核心业务角色名称、类型、描述。该工业园区综合能源系统协调控制抽象出的4个核心业务角色如下表1所示。
表1协调控制业务的核心业务角色
Figure PCTCN2019106434-appb-000001
其次,对协调控制业务用例语境图进行构建。其中,工业园区协调过程中涉及了四个主要用例,包括:下层的工厂用户协调控制用例图、上层的园区综合能源提供商协调控制用例图、园区联络线越限处理业务用例图以及需 求响应业务用例图进行了构建,分别如图3至图6所示。
最后,对工业园区综合能源系统协调控制过程中各个参与对象间进行的信息交互,按照时序先后特征做出综合能源系统协调控制业务的时序图。其中,包含四个主要的业务时序图:下层工厂用户协调控制时序图、上层综合能源提供商协调控制时序图、园区联络线越限处理时序图、需求响应业务时序图,分别如图7至图10所示。
上述虽然结合附图对本发明的具体实施方式进行了描述,但并非对本发明保护范围的限制。对于所属领域的技术人员来说,在上述说明的基础上还可以做出其它不同形式的修改或变形。这里无需也无法对所有的实施方式予以穷举。在本发明的技术方案的基础上,本领域技术人员不需要付出创造性劳动即可做出的各种修改或变形仍在本发明的保护范围以内。

Claims (9)

  1. 一种工业园区综合能源系统的分层分布式协调控制时序方法,其特征在于,包括:
    获取工业园区综合能源系统中各个业务数据信息;
    对需要协调控制的业务进行UML业务建模;
    对工业园区综合能源系统时序进行分层分布式协调控制。
  2. 根据权利要求1所述的工业园区综合能源系统的分层分布式协调控制时序方法,其特征在于,所述对需要协调控制的业务进行UML业务建模的过程包括:
    1)抽象出协调控制业务中的元素,对该协调控制业务过程中的业务角色和活动进行确定,并使用规范化的文字、图表对其进行描述;
    2)确定协调控制业务的主要参与人员和相关的业务应用场景,并作出该协调控制业务的用例模型;
    3)根据协调控制业务工程实际情况以及对该协调控制业务的对象、步骤的理解,作出该协调控制业务的时序图,并对该协调控制业务过程中的各业务角色之间的信息交互过程作出准确直观的表示。
  3. 根据权利要求2所述的工业园区综合能源系统的分层分布式协调控制时序方法,其特征在于,在步骤1)中,从协调控制业务中抽象出核心业务角色的名称、类型、描述。
  4. 根据权利要求3所述的工业园区综合能源系统的分层分布式协调控制时序方法,其特征在于,在步骤2)中,根据工业园区协调过程中涉及的主要用例进行构建对应的协调控制业务用例语境图。
  5. 根据权利要求4所述的工业园区综合能源系统的分层分布式协调控制时序方法,其特征在于,在步骤3)中,对工业园区综合能源系统协调控制过程中核心业务角色进行的信息交互,结合各个核心业务角色,按照时序先后 特征做出综合能源系统协调控制过程的业务时序图。
  6. 根据权利要求5所述的工业园区综合能源系统的分层分布式协调控制时序方法,其特征在于,所述核心业务角色包括综合能源提供商、工厂用户、需求响应聚集商和电网公司。
  7. 根据权利要求5所述的工业园区综合能源系统的分层分布式协调控制时序方法,其特征在于,所述协调控制业务用例语境图包括工厂用户协调控制用例图、园区综合能源提供商协调控制用例图、园区联络线越限处理业务用例图和需求响应业务用例图。
  8. 根据权利要求5所述的工业园区综合能源系统的分层分布式协调控制时序方法,其特征在于,所述业务时序图包括工厂用户协调控制时序图、综合能源提供商协调控制时序图、园区联络线越限处理时序图和需求响应业务时序图。
  9. 根据权利要求2-8任意一项所述的工业园区综合能源系统的分层分布式协调控制时序方法,其特征在于,所述用例模型是由参与人员和用例以及它们二者之间的关系组成的用来描述软件系统功能的一种视图。
PCT/CN2019/106434 2019-07-08 2019-09-18 工业园区综合能源系统的分层分布式协调控制时序方法 WO2021003843A1 (zh)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
CN201910617667.9A CN110262433A (zh) 2019-07-08 2019-07-08 工业园区综合能源系统的分层分布式协调控制时序方法
CN201910617667.9 2019-07-08

Publications (1)

Publication Number Publication Date
WO2021003843A1 true WO2021003843A1 (zh) 2021-01-14

Family

ID=67925260

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/CN2019/106434 WO2021003843A1 (zh) 2019-07-08 2019-09-18 工业园区综合能源系统的分层分布式协调控制时序方法

Country Status (2)

Country Link
CN (1) CN110262433A (zh)
WO (1) WO2021003843A1 (zh)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN115018668A (zh) * 2022-08-09 2022-09-06 东方电子股份有限公司 一种用于园区的可调控能力建模系统
WO2024087319A1 (zh) * 2022-10-28 2024-05-02 云南电网有限责任公司电力科学研究院 多区域综合能源系统调度方法、设备和存储介质

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112068436B (zh) * 2020-09-16 2022-05-27 国网山东省电力公司经济技术研究院 工业园区的综合能源系统分层分布式控制方法及系统

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2007066219A (ja) * 2005-09-02 2007-03-15 Nippon Telegr & Teleph Corp <Ntt> シーケンス図作成方法及びその装置
US8209657B1 (en) * 2006-04-03 2012-06-26 Bae Systems Information And Electronic Systems Integration Inc. System design combining functional decomposition and object-oriented programming
CN108009374A (zh) * 2017-12-15 2018-05-08 佛山市极加互动科技有限公司 一种基于场景分析的系统形式化模型生成方法
CN108647016A (zh) * 2018-05-09 2018-10-12 南京航空航天大学金城学院 一种基于uml动态模型的系统类结构生成方法
CN108830085A (zh) * 2018-06-13 2018-11-16 天津大学 基于扩展UML的Web应用形式化建模及验证方法
CN109614096A (zh) * 2018-11-27 2019-04-12 成都信息工程大学 一种基于uml需求建模过程用例与活动转换的方法

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2007066219A (ja) * 2005-09-02 2007-03-15 Nippon Telegr & Teleph Corp <Ntt> シーケンス図作成方法及びその装置
US8209657B1 (en) * 2006-04-03 2012-06-26 Bae Systems Information And Electronic Systems Integration Inc. System design combining functional decomposition and object-oriented programming
CN108009374A (zh) * 2017-12-15 2018-05-08 佛山市极加互动科技有限公司 一种基于场景分析的系统形式化模型生成方法
CN108647016A (zh) * 2018-05-09 2018-10-12 南京航空航天大学金城学院 一种基于uml动态模型的系统类结构生成方法
CN108830085A (zh) * 2018-06-13 2018-11-16 天津大学 基于扩展UML的Web应用形式化建模及验证方法
CN109614096A (zh) * 2018-11-27 2019-04-12 成都信息工程大学 一种基于uml需求建模过程用例与活动转换的方法

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN115018668A (zh) * 2022-08-09 2022-09-06 东方电子股份有限公司 一种用于园区的可调控能力建模系统
CN115018668B (zh) * 2022-08-09 2022-11-22 东方电子股份有限公司 一种用于园区的可调控能力建模系统
WO2024087319A1 (zh) * 2022-10-28 2024-05-02 云南电网有限责任公司电力科学研究院 多区域综合能源系统调度方法、设备和存储介质

Also Published As

Publication number Publication date
CN110262433A (zh) 2019-09-20

Similar Documents

Publication Publication Date Title
WO2021003843A1 (zh) 工业园区综合能源系统的分层分布式协调控制时序方法
JP2019517170A (ja) スマートシティシステムに適用可能なスマート家庭用エネルギーのモノのインターネットシステム
CN103078920B (zh) 一种基于iec61968企业服务总线的消息在线校验系统
CN104361457A (zh) 配电网生产检修管理的信息建模方法、交互系统及方法
CN103729732A (zh) 一种分布式能源信息建模及信息交互方法
CN112068825A (zh) 一种可实现异构化节点的可视化联动编排方法
CN104182846A (zh) 一种客户管理系统
CN104102790A (zh) 基于gis的供电图自动成图系统及方法
Gomes et al. Towards an infrastructure to support big data for a smart city project
CN103544060A (zh) 一种基于webservice的服务调度系统及方法
CN109494871A (zh) 一种智能配电终端分布式计算方法及其系统
CN103729455B (zh) 一种基于主副本存储模式的主数据存储方法
CN104809664A (zh) 一种配电主站的信息集成方法
CN114820868A (zh) 一种配网线路智能成图的方法、装置和系统
Dongxu et al. Architecture design of power system fault calculation based on cloud computing technology
CN113139012A (zh) 一种基于json的etl工具引擎处理数据的方法及etl数据处理系统
CN109428907B (zh) 一种跨电力调度区网络操作票系统
CN104573983A (zh) 一种电力生产调度语义服务实现方法
Yi et al. Improved DataX Data Synchronization Technique for Distribution Grid Data Middleware Implementation
Li et al. An AR based edge maintenance architecture and maintenance knowledge push algorithm for communication networks
Zhang et al. A real-time Information Exchange Strategy for Big Data Volume Systems Based on Internet of Things
Li et al. A novel design for data processing framework of park-level power system with data mesh concept
Wang et al. CIM modeling for market management systems
CN210199756U (zh) 一种通用飞行模拟训练辅助支持系统
Huang et al. Research on system construction under the operation mode of power grid cloud security management platform

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 19937260

Country of ref document: EP

Kind code of ref document: A1

122 Ep: pct application non-entry in european phase

Ref document number: 19937260

Country of ref document: EP

Kind code of ref document: A1