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关键任务操作需要可靠的电力系统,该系统通过并行模式或自主岛模式补充公用电网,以清洁、优化、低成本和有弹性的方式运行。ETAP μGrid™ (微电网)包括先进的电气数字孪生模型,结合智能自动化和系统保护,以优化和控制简单或复杂的微电网电力和热力系统。
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ETAP 微电网控制提供了一个集成的模型驱动解决方案,用于设计、模拟、优化、测试和控制微电网,并具有微调逻辑的固有能力,可最大限度地提高系统弹性和能源效率。
ETAP 微电网软件可用于微电网的设计、建模、分析、孤岛检测、优化和控制。
ETAP 微电网软件包括一组基本建模工具、内置分析模块和工程设备库,可让您创建、配置、定制和管理系统模型。在将微电网控制器连接到现场之前,可以对其进行验证和确认。
ETAP 提供完全可配置的模型驱动微电网控制器,可提供相当大的灵活性来实现所需的控制功能。一旦将控制器逻辑部署到 ETAP 微电网控制器硬件软件在环 (SIL) 或硬件在环 (HIL),就可以利用测试,其中物理控制器与微电网模型和相关设备进行交互。
ETAP 微电网控制器硬件专为环境而设计,同时提供最佳性能、快速响应和安全性。
<1 MW便携式微电网控制器
< 20 MW可安装微电网控制器
> 20 MW可安装微电网控制器
ETAP 根据用户需求提供设计、分析、监控和控制功能编程全过程的工程服务。
ETAP 微电网能源管理系统是一个包罗万象的整体软件和硬件平台,可提供完整的系统自动化,确保安全可靠的运行。
该解决方案集成了现场热电联产、太阳能光伏、储能、吸收式冷水机组等,以实时管理负载需求和经济高效的发电。
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使用 ETAP Digital Twin 设计、分析、验证和配置微电网系统、目标和逻辑。使用 ETAP 软件在环 (SIL) 或硬件在环 (HIL) 系统验证控制器逻辑,然后只需将模型传输到 ETAP 微电网控制器进行部署。
部署后,控制器可以通过其通信系统控制实时微电网,并且可以立即进行微调和重新部署,而无需任何退役。使用控制器硬件通过易于使用的 HMI 查看、调整参数、设置功能、更新逻辑,整合所有必要的信息。
智能实时态势感知和预测驱动的预测模拟,可靠、准确地确定短期负荷和发电量,特别是来自风能和太阳能等不一致的能源。
ETAP 微电网使用成熟的控制和优化算法自动识别并适应系统变化来处理意外事件。主动发电调度和切换控制逻辑调节电压和频率,以便在孤岛状态期间和之后保护系统。
ETAP 的先进微电网管理控制同时考虑并响应多种突发事件以保护关键负载。
评估节能策略,例如将高峰使用时间移至非高峰时段或从一个费率表转移到另一个费率表,以提高利润。根据负荷和发电变化及优先级快速削减负荷并采取补救措施。
Learn about ETAP Microgrid, an integrated solution used to efficiently evaluate and optimize microgrid systems. The solution enables simulation and hardware-in-the-loop testing for microgrid systems using data-driven technology and built-in functions. This presentation covers the definition of a microgrid, the integration of various energy sources, and the importance of high performance solutions for enhancing energy resilience. Demonstrations of specific scenarios are provided for both grid-tied and off-grid microgrids. The hardware-in-loop testing capabilities are also demonstrated, showcasing the real-time digital simulator and its application for testing and validating microgrid controller functions. By addressing the complexities of microgrid system analysis, management, and control, ETAP Microgrid contributes to cost and time-saving benefits.
Learn how the ETAP Microgrid Controller solution leverages an electrical digital twin from design to validation and automation of Off-Grid (permanently Islanded) Microgrids. In this session, active and reactive power control, optimal dispatch and secondary frequency control will be demonstrated.
This webinar outlines how ETAP Microgrid Control Solution devises and implements adaptive strategies to enable a smooth transition between grid-connected and islanded modes during unplanned islanding.
ETAP's solution combines model-driven microgrid controller hardware with advanced power management software to unlock system resiliency, optimized cost, security, and sustainability. This webinar focuses on microgrid design and software-based validation.
This webinar examines the microgrid controller’s architecture, hardware deployment workflow, and a range of advanced monitoring tools. Learn how ETAP Digital Twin platform enables the design and deployment of ETAP's Intelligent μGrid™ solution.
As more Distributed Energy Resources (DERs) are added and mixed into the grid, the need to effectively evaluate and validate the dynamic response of power systems has become essential for grid resiliency, reliability, and security. In this webinar, learn how ETAP Transient Stability Analysis addresses needs and challenges of stability studies for power systems with integrated DERs.
Engineering and operation objectives of mission-critical facilities require a reliable and secure power supply system. Microgrids have become the leading technological solution for a resilient and sustainable supply of electricity for critical infrastructures. This paper presents ETAP-based power system studies of a microgrid designed for a mission-critical facility, a wastewater treatment plant (WWTP). The microgrid consists of a behind-the-meter (BTM) solar photovoltaic (PV) system, a battery energy storage system (BESS), a combined heat and power (CHP) generator, and standby diesel generators. We modeled this microgrid by leveraging the ETAP software and performed power system studies for both grid-connected and islanded modes of operation. Several scenarios were created based on different loading conditions and power source combinations, which are utilized to validate the power system studies. We will discuss the model of the power system investigated, operational strategy and sequences of operation, findings, challenges, lessons learned, and future works.
The Red Sea Utility Grid is in the Tabuk province of Saudi Arabia. The site is a vast 33,000 km2 of islands, lagoon, coastal plain and mountains with extremely diverse marine life and terrestrial landforms. The grid is divided into four off-grid microgrids. The focus of this presentation is about three of the microgrids that are very similar in size and operation. Each of these microgrids includes two PV generation (total 6 MW), two battery storages (total 5MW, ~18 MWh), and two emergency backup diesel generators (~ total 3.8 MW). The system is designed to achieve high reliability by having redundancy at various levels.
Microgrid Analysis & Design is an essential step for Microgrid Implementation. Upfront design and analysis of the target microgrid system, whether for brownfield or green-field Microgrid implementation, can help drive both technical and financial benefits, including determining optimized generation assets required to meet the microgrid objectives as well as a projection of return on investments. Analysis & design from safety, reliability, and financial perspective are critical for successful microgrid implementation to minimize the impact and rework during the installation phase. This presentation will provide recommendations on best practices for Microgrid Analysis & Design.