Energy Solutions. virtual power plant construction and demonstration project. Virtual Power Plant

Similar documents
Hitachi s Smart Grid Solutions

ELECTRICAL, INSTRUMENTATION & CONTROL SYSTEMS

Hitachi s experience in developing Smart Grids Shin-ichi INAGE Renewable Energy & Smart Grid Division, Hitachi Ltd.

Telecom Italia Smart sustainable cities experiences

R E C T I F I E R I N V E R T E R C O N V E R T E R MP7

High-Reliability, Next-Generation Supervisory and Control System for Power Stations

Automation System Solutions

MP7. Uninterruptible Power Supply

Demand for sustainable power is growing worldwide. Energy producers are broadening their offerings for a quickly evolving marketplace.

Distribution Static Var Compensators and Static Synchronous Compensators for Suppressing Voltage Fluctuation

Energy Storage System

Power System Network Simulator (PSNsim)

The Efficient Way. SVC PLUS Innovation meets experience. Answers for energy.

Smart Grid Technology for Resilient Community

Power System Stabilization Solutions in North America and Future Outlook

Battery Energy Storage System Information Modeling Based on IEC 61850

ENGINEERING AND SERVICES FIRM THAT SPECIALIZES IN HYDROELECTRIC POWER AND CONTROL SYSTEM DESIGN, OUR TEAM OF PROFESSIONALS HAVE WORKED TOGETHER

Hitachi s Latest Supervisory, Operation and Control System for Thermal Power Station

2015 The MathWorks, Inc. 1

Chapter 2 Communication for Control in Heterogeneous Power Supply

Substation Automation Products. Generator protection REG670/650 Relion 670 and 650 series

Evolution of Control for the Power Grid

TELECOM & ENERGY «Collaborating to Power the Smart Grids for Digital Growth«

Energy Solutions for Social Innovation

Christian PAYERL, Poznan, 20 th May, 2009 ABB FACTS Grid connection of Wind Farms. ABB Group May 22, 2009 Slide 1

The current state of the electrical grid And the technologies that will enable its transformation

SCADA and Central Applications An introduction

April 2010 Power Systems division A brief introduction. ABB Group August 25, 2011 Slide 1

Agile and 360 Digital: Path to the Future of Energy. Michael Carlson

A Computer Scientist Looks at the Energy Problem

DC Power Solutions Overview. DC Power Solutions for EVERY Network Application.

Chapter 2 State Estimation and Visualization

O&M Service for Sustainable Social Infrastructure

D2-03_05 DEVELOPMENT OF PHOTOVOLTAIC POWER GENERATION FACILITY MONITORING SYSTEM FOR DECENTRALIZED POWER PLANT OPERATORS

Launch of Smart Grid Demonstration Site in Los Alamos

The Next Generation Grid: Electric Power T & D

Electrical Equipment and Comprehensive Power Grid Solutions

p. 1 p. 9 p. 26 p. 56 p. 62 p. 68

CONSCIENCE TECHNOLOGIES A Right Platform For All Engineers... CODE B.TECH EEE MAT LAB PROJECT TITLE

Small Generator Interconnection System Impact Study Report. Completed For Q0047

Smart Grids, Telecontrol and the New Standards. Reliable and secure communication with zenon Process Gateway

Jim McGhee, Utility Market Manager, RuggedCom Inc.

New Era of Contestable Energy Markets

HYBRID PV INVERTERS HySpirit Series. 4kW-10kW. Hybrid Inverter with Battery Backup Smart Energy for Smart Home

Advanced SIPS using PMU and SCADA data

Small Generator Interconnection Facilities Study Report. Completed for Q0314 ( Interconnection Customer ) A Qualified Facility

Validus DC Systems. DC Power Distribution Solutions Serving: Mission Critical Applications Next Generation Data Centers Green IT Infrastucture

Bus Bar Protection Relay B-PRO 4000

Relion 630 series. Load-shedding controller PML630 High performing load-shedding solution for industrial and utility power networks

Substation Automation Products. Transformer protection RET670/650 Relion 670 and 650 series

News Release October 17, 2018 New Energy and Industrial Technology Development Organization Hitachi, Ltd. Hitachi India Pvt. Ltd.

Real-Time Hardware-in-the- Loop Co-Simulation Platform for Microgrid Analysis

USE CASE 14 CONTROLLED ISLANDING

Synchronizing Systems

Electronic Design for Power Control Technology and Knowledge transferred from University to Industry

Make the sun your energy source. SOLAR

Substation Automation Products. Line differential protection RED670 Relion 670 series

Our Power & Control line of Business offers solutions that safely distribute power to your home or business. Our product range includes Low/Medium

November 29, ECE 421 Session 28. Utility SCADA and Automation. Presented by: Chris Dyer

SICAM A8000 Series. Operation, telecontrol, and automation in the smallest spaces. siemens.com/sicam-a8000

POWER GRIDS. We are bridging the gap. Enabling Digital Substations.

JUNXY Series DC Load Banks

Applied Research on AC/DC Integrated Power Supply of Substation Lu Zhigang1, a, Lei Bo1, b, Zheng Yongqiang2, c

Monitor ~ Manage ~ Reduce ~ Control

AUTOMATION OF POWER DISTRIBUTION USING SCADA

Technology for Constructing Environmentally Friendly Data Centers and Fujitsu s Approach

Climate Change Policy Headquarters City of Yokohama

SRI LANKA STANDARD CODE OF PRACTICE FOR GRID CONNECTED PHOTOVOLTAIC POWER SYSTEMS SLS 1522:2016

CHAPTER 11 HOW TO ENHANCE THE RELIABILITY & POWER QUALITY OF ELECTRICITY SUPPLY

Global Collaborative Creation with Customers on Energy Solutions

October 05, ECE 421 Session 12. Utility SCADA and Automation. Presented by: Chris Dyer

Facilities Evaluation Detailed Standards for New Renewable Energy

Keor HPE UPS. THREE-PHASE UPS from 60 to 300 kw GLOBAL SPECIALIST IN ELECTRICAL AND DIGITAL BUILDING INFRASTRUCTURES

Evolution of Control for the Power Grid

Creation of Social Value in Key Business Sectors

- 5G SLICING - Challenges and opportunities from Verticals

High-performance Digital Protection and Control Unit for Distribution Substations

Development and Commercialization of New Digital Protection and Control Equipment

IMS INTERFACE MARKET PROCEDURE NETWORK OPERATORS AND AEMO

CIM, PI AF and SISCO CIM Adapter Create New Application Opportunities for Utilities

Substation Automation Products. Bay control REC670/650 Relion 670 and 650 series

Keor HPE UPS THREE-PHASE UPS. from 60 to 200 kw GLOBAL SPECIALIST IN ELECTRICAL AND DIGITAL BUILDING INFRASTRUCTURES

Chapter 8: Smart Grid Communication and Networking

SMUD Model Data Requirements & Reporting Procedures MOD VERSION 1.2

SVC Light for rail traction The way to effective grid integration

SENSIBLE Project Technical innovations

BST BuildingSystemsTrainer

DIMINISHING THE REQUIREMENT OF POWER USING PLC AND SCADA SYSTEMS IN POWER GRID SYSTEM

Networks as the enabler of the new energy world

Your partner in energy solutions. Systems Division. Automation & services. (Formerly Pauwels Canada Inc)

DGBV-EP DIGITAL GENERATOR AND GENERATOR-TRANSFORMER UNIT PROTECTION. Field of application

Real Time Digital Simulator Testing of an On Line Integrated Stability Control System

PSC 2014 CLEMSON UNIVERSITY

aentron Energy System 1 to 900 Vdc

How green is green? The environmental benefits of using Diesel Rotary UPS systems to support critical loads in the datacenter. Summary.

Substation Automation Products. High impedance differential busbar protection REB650 Relion 650 series

Requirements for Data for Power System Modeling and Analysis (MOD-032-1) Arizona Public Service Company

Value & Risk in the New Energy Era: Rethinking Asset Investment Decisions

POWER SOURCE FOR ELECTRON BEAM WELDING

IMS INTERFACE MARKET PROCEDURE NETWORK OPERATORS AND AEMO

Transcription:

Energy Solutions Electric company Customer ggregator Operation center ICT platform Microgrid operator Information network Public or private network PV EMS PV HEMS Distributed energy resources Solar generation Small wind generation Diesel gas turbine supplying heat and electricity Heat pump Storage battery Heat pump Storage battery Solar Charger generation EV Power grid Renewable energy Conventional generation Commerce and industry Residences EV car sharing & V2G PV: photovoltaic, EMS: building energy management system, HEMS: home energy management system, EV: electric vehicle, V2G: vehicle to grid 1 Virtual plant 1 Virtual Power Plant virtual plant construction and demonstration project. n increase in the use of solar generation, storage batteries and other distributed energy resources is posing a range of problems on the grid. The virtual plant (VPP) is a technology designed to centralize supervisory control based on information communication technology (ICT) for controlling and utilizing these items like a single conventional source. Hitachi is conducting demonstration operations of the VPP with the use of electric vehicles in the US state of Hawaii and with heat pumps in the UK city of Manchester*. In both locations, they are adopted as energy sources that are distributed to consumers and integrated into the grid. These systems are studied as a means of stabilizing the grid according to the fluctuations in the output of renewable energy in Hawaii and as a commodity to be traded in the trading market in Manchester. In Japan as well, a negawatt trading market will be established in 2017. This fiscal year, the Ministry of Economy, Trade and Industry (METI) embarked on the * demonstration project commissioned by METI and by the New Energy and Industrial Technology Development Organization (NEDO). 2 Multiple Microgrid Operation and Management Solution Microgrids are connected to the grid to make the most of distributed sources. On microgrids, it is vital to optimize the demand-supply balance of heat and electric and to minimize operation costs. mid the emergence of the impact of distributed sources on the existing grid, the compatibility of microgrids with the grid and with other microgrids is essential for their continuous operation. The multiple microgrid operation and management solution is designed to implement integrated management and the operation of multiple microgrids to open the way for energy transfer between microgrids and to reduce the total cost of operating multiple microgrids. In addition, it helps create posiwatt and negawatt and stabilize the grid, thereby maximizing the value of microgrids. dopting international 30 Power & Energy

Power grid ( transmission and distribution) Electricity trading market Power & Energy rea energy management system (EMS) Hitachi Energy IoT platform Energy Solutions EMS FEMS HEMS H 2 CHP Microgrid controller Power storage H 2 Heat source H 2 Fuel cell Solar Wind EV charging station EMS: area energy management System, FEMS: factory energy management system, CHP: combined heat and 2 Schematic of operation of multiple microgrids standard communication protocols, the solution facilitates communication with systems on the utility side and with other microgrid systems, and ensures scalability. With the use of the high reliability control technology that has been nurtured by Hitachi and the Internet of Things (IoT), the solution achieves the continuous minimization of expenses and the stable supply of energy. 3 Power Storage Solution hybrid battery energy storage system with a group company, Shin-Kobe Electric Machinery Co., Ltd. (now Hitachi Chemical Company, Ltd.), as part of project subsided by NEDO. The demonstration project on Izu Oshima Island began in 2015 and has entered into a new stage as a joint research project with TEPCO Power Grid, Inc. The companies have been evaluating the efficacy of the monitoring control system and its effects on the operation of existing plants. Hitachi is aiming for the commercialization of the system by 2018 to contribute to stabilizing the supply of for island regions. Maintaining a stable supply of high-quality electricity is becoming an urgent issue as larger amounts of variable renewable energy like photovoltaic generation are being introduced to the grid. Hitachi has been working towards the commercialization of a new hybrid battery energy storage system that combines lead-acid batteries and lithium-ion capacitors as safe and economical battery energy storage systems to provide a solution for this challenge. Hitachi is aiming to cover the range of control from the adjusting capacity of the inertial body of the generator to the automatic frequency control (FC). For this purpose, Hitachi co-developed a 1.5 MW 3 New lead storage battery equipment installed on Izu Oshima Island Hitachi Review 2017 Special Edition 31

4 OCCTO operation center 4 OCCTO System Inauguration The Organization for Cross-regional Coordination of Transmission Operators, Japan (OCCTO) is a new organization that was established in pril 2015. It plans to construct transmission networks that are necessary for the extensive utilization of sources, monitors the supply-demand conditions of individual electric suppliers and provides instructions on electric supply from one supplier to another when the supply-demand balance is tight. The OCCTO system collaborates with general electric utilities, producers and suppliers and Japan Electric Power Exchange (JEPX) to monitor the supplydemand balance and the grid condition, manage reserve capacity and the use of interconnection lines, adjust wide-area frequency and publish grid information. The OCCTO system commenced operation in pril 2016. The main features of this system are as follows. (1) triplex hot standby system involving a geographical distance of hundreds of kilometers is introduced to the main site and the backup site. (2) The leading model in the grid system complies with IEC 61970-301 (common information model) and thereby achieved linkage with different systems and higher compatibility with package products, as well as a high level of scalability. (3) The screen is designed with a focus on people to achieve the human machine interface (HMI) featuring the enhanced visibility of the position of electric equipment located in an extensive space and the area where it belongs. (4) Unauthorized intrusion is blocked by security measures that comply with different security guidelines. In the future, Hitachi will continue to offer solutions in line with the progress of system innovation. 5 Kihoku Converter Station, Kansai Electric Power Co., Inc. Replacement of Supervisory Control System Following the addition of 500 kv extraction equipment to the Kihoku Converter Station due to the south grid reconstruction, the supervisory control Operation console Disp1 Disp2 Console server Operation console Operation console C Project server Large screen projector Disp3 Disp1 Disp2 Console server Disp3 Disp1 Disp2 Disp3 Console server C In operation (for combined use) Projector server Large screen 1 Large screen 6 LP LP Maintenance server Maintenance computer HMILN Online LN Standard clock (NTP) Supervisory control Supervisory server control server LN Online information Online server information server Disp Disp Supervisory control server 1 output (for combined Supervisory use) control ol server 2 output (for combined use) Input and output I/F larm unit Ry High speed waveform observation and failure analysis system CPU control terminal station SC CPU control terminal station SC LN for supply information Terminal Terminal Terminal Terminal equipment equipment equipment equipment : Existing equipment in use : New HU- HU- Shift to (20 units added to the south system) Direct bipolar control panel (Send ) (Receive ) (Send ) (Receive ) (Receive ) (Send ) nan converter station TC I/F (Receive ) (Send ) (Receive) (Send) Tachibanawan thermal station TC (Master) TC (Extension) Yura switching station DPT DSU DPX Load center DPX Next-generation supply information network Power supply linkage system IP linkage for supply information Router FTP terminal Router Router Router Router Load Load center COM- center COM- Router Private line Central load Central load control center COM- control center COM- Direct transmission from FTP terminal Disp: display, LP: laser beam printer, SC: star coupler, TC: telecontrol, I/F: Interface, : cyclic digital transmission, DPT: data packet transmission, DSU: digital service unit, DPX: data packet exchange, FTP: file transfer protocol, COM: communication server 5 Configuration of supervisory control system at Kihoku converter station 32 Power & Energy

system was replaced. The supervisory control server, the online information server, the operation console server, the system monitoring server, the maintenance server and other upper-level systems were replaced while the lower-level systems central processing unit (CPU) control terminal station and terminal equipment were retained for continued use. Part of the terminal equipment was shifted to the remote station (). The main features are as follows. (1) Devices constituting the current system that cannot be supplied in the future were replaced with new models. (2) The new system is configured to accommodate both devices from the conventional system and newly introduced systems. (3) To improve maintainability, the architecture of servers at supply stations and electric facilities was adopted, which is the standard for the control systems of the Kansai Electric Power Co., Inc. 6 Izumi Substation, Hokuriku Electric Power Company Inauguration of STTCOM Var Compensator The Izumi Substation faced an issue of addressing the voltage fluctuation that occurs during the start-up in pumping in a neighboring pumped storage station. s a solution to this issue, a static synchronous compensator (STTCOM) was installed and commenced practical operation. Prior to this, the voltage fluctuation on the 6.6 kv bus line of the Izumi Substation reached a maximum of 10% at the start-up of the pumped storage station and around 5% prior to parallel operation. fter the installation of STTCOM, the fluctuation is suppressed to ±2% to meet the voltage fluctuation requirement stipulated in the system interconnection regulations. STTCOM s initial capacity was planned to be 16.5 MV. In order to avert long-term constraints on pumped storage operation due to the failure of the conversion for transformer, the STTCOM was planned to consist of three 5.5 MV units of which two units would be constantly required and the remaining would serve as a spare unit. In this project, cooperative tap control that combines the tap control of the 154 kv/6.9 kv transformer was devised to reduce the required capacity to 11 MV (two 5.5 MV units). Even in the event that only one unit (5.5 MV) is operating after another unit has failed, the voltage fluctuation is still within ±2% to satisfy the requirement. 7 The Kansai Electric Power Co., Inc. 500 kv PCM Current Differential Protection Relay Equipment The pulse code modulation (PCM) current differential protection relay equipment for 500 kv grids originally comprised two-panel configuration, consisting Power & Energy Energy Solutions Item Rated capacity Rated voltage Rated frequency Voltage fluctuation suppression Response time Converter configuration Rated DC voltage Main device Modulation system Cooling system Harmonic filter Specifications 11 MV (two parallel units of 5.5 MV each) 6.6 kv (three-phase) 60 Hz Within ±2% Within 50 ms Parallel quadruplex three-phase three-level converters 6,000 V 3,300 V, 1,200, IGT 15-pulse multi-carrier PWM Circulation water and air cooling 1,010 kvar IGT: insulated gate bipolar transistor, PWM: pulse width modulation 6 Specifications (top) and equipment at Izumi STTCOM (bottom) 7 500 kv PCM current differential protection relay equipment Hitachi Review 2017 Special Edition 33

of the main panel and the auxiliary panel. However, Hitachi s latest digital relay unit was applied to make the input auxiliary transformer shared for the main relay and the fault-detecting relay to reduce the number of panels. slim system with a single-panel configuration was therefore created. In Japan, the protection relay system consists of the main relay and the fault-detecting relay, whose hardware configurations and relay functions are different from each other in order to prevent unwanted operation. The main features are as follows. (1) The input auxiliary transformer is shared for the main relay and the fault-detecting relay. (2) It offers advanced out-of-step relay using 2-bit data transmission, with excellent selectivity, responding to swings at high slip frequency. (3) It complies with the immunity standard specified in JEC-2501 (electromagnetic compatibility test on protection relay) in consideration of the latest version of the -402 Standards (digital protection relay and protection relay equipment). fter undertaking the type test witnessed by the Kansai Electric Power Co., Inc., this equipment was delivered to the operation site and preparations are being made for its operation. Hitachi will continuously develop products to provide a high level of reliability and to fulfill a wide range of needs. 8 Energy Solution Centered on Substation Equipment for Consumers Today, the social circumstances surrounding energy are changing drastically amid the deregulation of the electric and gas markets. For many energy consumers, it is a significant issue to make effective use of energy and equipment. fter a decline in the workforce and failure to pass down technologies and expertise in the company as a result of the retirement of experts that previously worked on equipment operation, consumers are under increasing burdens of carrying out maintenance and management for the stability of equipment and equipment replacement planning. Under these circumstances, the desired forms of substation equipment at the heart of consumers source equipment are also changing. Hitachi has delivered substation equipment, private generation equipment, supervisory control equipment and others. In the future, it will work to create and run a business of comprehensive energy system solutions for consumers including renewable energy, uninterruptible system (UPS), storage equipment and heat equipment as well as higher-value added solutions such as system failure prediction and energy management in combination with operational technologies (OT) and IT through collaborative creation with consumers. Next-generation EMS Grid Central supervisory system Energy management Electric data Operation data Equipment ledger management Maintenance and failure history management Equipment management and maintenance Consumers (e.g. factories, office buildings, airports, railway stations) Document management On-site work support High voltage substation equipment Wind Solar Renewable energy sources Storage batteries Co-generation system Secondary substations Use of waste heat EMS: energy management system 8 Energy solution centered on receiving substation equipment for consumers 34 Power & Energy

9 Standardized Relay Unit for On-site Use at Receiving Substations Many of the protective relays used by consumers in their on-site super-high voltage distribution systems are of the analog type and static relays. Some of these systems have already been in service 30 years or more, and it is time for them to be replaced. For replacement purposes, functionally intensive digital relays, which are today s mainstream relays, will be introduced. Given that individual electrical rooms have many unique specifications for alarm items and others, Hitachi developed a protective relay unit for on-site super-high voltage distribution with a standardized digital relay designed to meet individual specifications by means of hardware connection. The main features are as follows. (1) The supply, the CPU, the input converter, the input/output circuit and others are housed in a single unit 349 mm wide, 267 mm high and 274.9 mm deep. (2) The protection system of the in-house super-high voltage distribution equipment is selectable from among the primary protection of the line (current differential), the secondary protection of the line, transformer protection and overload protection. (3) For the output of external alarm, an output selection function has been added to enable arrangement for individual electrical rooms. In the future, Hitachi will endeavor to add functions such as a transfer block function so that the unit can be more widely utilized. Power & Energy Energy Solutions 9 Standard unit of relay equipment for receiving substation Hitachi Review 2017 Special Edition 35