Project description Environmental issues Beneficiaries Administrative data

Similar documents
DemoEV - Demonstration of the feasibility of electric vehicles towards climate change mitigation LIFE10 ENV/MT/000088

Background Information

ZF posts record sales in 2017; announces increased research and development activities

Emission Trading Scheme (ETS)

How do we make city buses cleaner and more comfortable?

Future Power Technologies

TECHNICAL ISSUES IN DEVELOPMENT OF A VARIABLE HYBRIDITY FUELCELL LOCOMOTIVE

ENERGY STORAGE SOLUTIONS FOR IMPROVING THE ENERGY EFFICIENCY OF PUBLIC TRANSPORT VEHICLES

Formation and finishing

E-Mobility in the City of Klagenfurt on Lake Wörthersee CEMOBIL project. Julia Zientek Austrian Mobility Research, FGM-AMOR Graz

EIB experience in financing smart meter roll-outs

Fuel Cells and Hydrogen 2 Joint Undertaking (FCH 2 JU) Frequently Asked Questions

Dr. Chris Dudfield. Chief Technology Officer Intelligent Energy. Sponsors

Contemporary technological solutions

Smart grids in European Union. Andrej GREBENC European Commission "Energy Awarness Seminar Villach

Wayside Energy Storage System Modeling

CO2 Reduction in Transportation (Automobile)

WP 2 ELIPTIC Use Cases Upgrading and/or regenerating electric public transport systems (flywheel, reversible substations)

Philip Mezey Chief Operating Officer Itron North America. US Chamber of Commerce May 13, , Itron Inc.

ABB Fact Sheet Full-year ABB Slide 1

Share with the GHSEA. Smart Energy Initiatives. Collaboration and a partner eco-system to achieve results

Resource management. An end-to-end architecture for energy storage in the grid

Challenges and solutions for transport in Norway

Operational eco-efficiency in Refineries

Intelligent Transport Systems and the International Transport Forum

Europe s % Interconnection Target:

European Union s Emissions Trading Scheme

New Nuclear Plants In the United States: Progress and Expectations

Flywheel energy storage retrofit system

Maritime emissions IMO discussions

Urban Mobility Systems - Regulation Across Modes

Pametno gospodarenje cestovnom infrastrukturom Smart Management of Road Infrastructure Christophe Nicodème, ERF

Galapagos San Cristobal Wind Project. VOLT/VAR Optimization Report. Prepared by the General Secretariat

Energy efficiency policy - an innovation-based policy of the state and civil society

Ilaria Rosso - FITUP project Coordinator Electro Power Systems SpA.

Steel solutions in the green economy FutureSteelVehicle

Supporting Energy Efficiency and. through Climate Based Finance

The future role of storage in a smart and flexible energy system

The Fuel Cells and Hydrogen Joint Undertaking. Bert De Colvenaer, Executive Director Paris, 12 October 2012

EU Projekt HySYS Fuel Cell Hybrid Vehicle System Component Development

Project Title: Contract Number: Milestone Number: Report Date: Contract Contact: Phone: Congressional District: Executive Summary:

Government Management Committee. Bruce Bowes, Chief Corporate Officer. P:\2008\Internal Services\Fleet\Gm08001Fleet - (AFS 5469)

Power and Energy (GDS Publishing Ltd.) (244).

Energy and Mobility Transition in Metropolitan Areas

Charlotte Energy Hub. Restricted Siemens Energy Inc.

SIHARBOR: The shore connection system for berthed ships Shore-side power supply for eco-friendly ports

Siemens A&D: Energy-efficient Automation for Environmentally Compatible Production Siemens Media Summit

PRESS RELEASE. Significant fuel savings and rapid payback shown for rail flywheel hybrid technology. 16 June 2015

TEMPLATE OF THE NATIONAL REPORT

Stora Enso Helping Stora Enso achieve big energy savings

Film title: Key Technology Battery A Global Challenge for German Engineering Companies

Getting Smart Evolution to the Smart Grid April 2008

ELECTRIP: DEUTZ demonstrates electric drive systems in actual use

Global Perspectives of ITS

SECTORS SYNERGIES: RAIL AND ENERGY LINKS FOR BETTER CLIMATE

FIRST IMPLEMENTATION OF A NEW WASTE RECOVERY TECHNOLOGY CONVERTING THE MSW FROM A REPRESENTATIVE URBAN REGION INTO SYNTHETIC DIESEL FUEL

GREEN WAREHOUSE LOGISTICS

Weight-Saving ZF Technology for the Chassis

Commercialized storage solutions for enhanced grid operation

ELIPTIC. Planning a charging infrastructure for electric vehicles using Barcelona s rail network Eliptic Project. April EBERSWALDE LONDRES

SMART DIGITAL GRIDS: AT THE HEART OF THE ENERGY TRANSITION

SPP TENDER MODEL. Electric buses. 20 Electric buses for Stolichen Avtotransport

For personal use only

CASCADE. Cities exchanging on local energy leadership. June 2011 May 2014

Economic, environmental, and social performance of electric two-wheelers

COATING YOUR WAY TO LOWER EMISSIONS

EU CO 2 emission policy : State of Play. European Commission, DG CLIMA. Climate Action

ELENA Introduction and Update. European Investment Bank

H2020 (ART ) CARTRE SCOUT

Robustness and Cost Efficiency through User Flexibility in the Distribution Network

Genbright LLC. AEE Technical Round Table 11/15/2017

Statement Dr. Norbert Reithofer Chairman of the Board of Management of BMW AG Conference Call Interim Report to 30 June August 2013, 10:00 a.m.

Reliability is our profession

Utilization of Fuel Cells for Trains Coradia ilint

Tekes Fuel Cell Programme Annual Seminar

Electro mobility for heavy duty vehicles

Synchronous condenser solutions siemens.com/energy/facts

Reliable, economical and safe siemens.com/rail-electrification

Development of Motor-Assisted Hybrid Traction System

A CO2-fund for the transport industry: The case of Norway

How to make urban mobility clean and green

Results of the High V.LO-City & HyTRANSIT projects

WLTP. The Impact on Tax and Car Design

SIHARBOR: The shore connection system for berthed ships

Closed Size: 194x197mm Open Size: 388x197mm SOLAR DECATHLON MIDDLE EAST DUBAI The Solar Decathlon Middle East s Organising Partners

Monitoring the CO 2 emissions from new passenger cars in the EU: summary of data for 2010

GEAR 2030 Working Group 1 Project Team 2 'Zero emission vehicles' DRAFT RECOMMENDATIONS

GIBRALTAR ERDF OPERATIONAL PROGRAMME POST ADOPTION STATEMENT

Development of ESS for Regenerative Energy of Electric Vehicle

Solar Power and Solar Thermal Energy in Schools

Dave Bone. DREAM Project Coordinator

FEMAG-C. Serial hybrid generator for electric city cars. Hybrid Small Fuel Cells Domenico Serpella LABOR S.r.l. (ITALY)

RES integration into energy system

WESTA Leading Ukrainian producer of automotive batteries

Siemens supplies the world s biggest gearless conveyor drive system

AdaptIVe: Automated driving applications and technologies for intelligent vehicles

INFRASTRUCTURE RENEWAL FOR THE NEXT GENERATION PATCO High Speed Line Power Infrastructure Renewal

Europe's first blockchain project to stabilize the power grid launches: TenneT and sonnen expect results in 2018

Mercedes-Benz: Best Sales Result for the Month of June in Company History Up 13 Percent

Applied Materials is accelerating Solar

Transcription:

Flywheel energy storage - Construction of a demonstration flywheel energy-storage systems for the reduction of the energy-consumption in public light-rail systems by up to 10% LIFE97 ENV/D/000474 Project description Environmental issues Beneficiaries Administrative data Contact details: Project Manager: Friedrich MONINGER Tel: +49 9131 72 71 97 Fax: +49 9131 72 69 61 Email: Friedrich.Moninger@p2.erl1.siemens.net Project description: Background Considering the need for increased economic efficiency and improved service delivery, local transportation companies are faced with the need for measures to upgrade existing systems in order to improve performance and reduce costs. Energy storage could make an important contribution to meeting these new requirements. Currently, the braking energy of a vehicle is normally converted into heat. However, a system for energy storage would allow the storage of this braking energy and its supply at a later time in the form of acceleration power. In this way, energy that up to now was lost, could be harnessed and reused. Objectives The aim of the project was to use flywheel energy storage to regenerate the braking energy of vehicles. The anticipated reduction in energy consumption was up to 10% of the total energy for the mass transit system. This reduction in energy consumption would result in a direct reduction of CO2 emissions, as less energy has to be produced for the same transportation. The reduced energy consumption, as well as the long-term reliability and effectiveness of the process, were to be proven using a prototype. The use of energy-storage-units for the power supply of regional light rail systems reduces total energy consumption and can bring several advantages for the operation and the dimensioning of the power supply: - optimised regeneration of the breaking

energy of vehicles. - Smaller dimensioning of substations with constant peak power in the system. - Rescue of trains from tunnels during power failures in the public supply network. - Stabilising of the system voltage on distant feeders. The optimised regeneration of the braking energy can save up to 10% of total energy requirement of a substation. The energy-storage-unit consists of a carbon-fibre flywheel rotating at more than 10.000 rpm. The energy-transport to and from the flywheel was managed by a special synchron motor-generator-unit, which was fed by a special power-converter. The control unit for the power converter was developed especially for this project. Results The project included the development of basic tools to determine the optimal location for energy storage for the energy storage system, to be used in complicated mass transit systems. Thanks to an intelligent software, even with only a few data inputs it is possible to estimate in advance the optimal location of a system and the saving potential, and therefore to make a statement about economic efficiency. During the project the optimal location for the first fast rotating flywheel energy storage in the system of the Transportation Company of Cologne was determined. This first prototype of energy storage has been operating successfully and continuous at the substation in Ensen since June 2000. Measurements at the prototype storage system in Cologne confirm the high-dynamic characteristic of energy storage and the predicted energy saving potential. One single energy storage system in a mass transit substation can reduce the annual demand for electrical energy by up to 340,000 kwh. To generate this amount of energy, a modern coal fired power plant would burn about 100 tons of coal and emit about 370 tons of C02. Assuming ten years of operation, more than 3700 tons of CO2 emmission would be prevented, which equates to a financial vaue of EUR 75,000 (based on the average price of EUR 20 per ton of prevented CO2-Emission. Considering all the advantages and disadvantages, as well as the costs of the different storage systems, it was concluded that a high-speed flywheel is the most suitable technique for application in public transportation systems. The electrical machine as the basis of the flywheel has practically no limiting effects as regards lifetime (millions of cycles are possible, as compared with thousands for batteries). This high number of cycles is necessary a train will stop every 1 to 2 minutes, which can cause more than 1,000 cycles per day. Discharging to extremely low energy content is not a limiting factor for flywheels. For batteries this is a decisive factor in reducing limetime. A follow-up questionnaire was completed by Siemens in 2005. It showed that the originally chosen mechanical flywheel technology had not proved to be mature enough for the tough conditions in the railway system. However, lessons were learned from this first experience in terms of reliability and operational costs, and follow-up work was able to address these obstacles. The successful technology could not be applied to the LIFE project, which closed in March 2000, as the requirement for development of the new capacitors couldn t have been foreseen in the preparatory phase of the project. As a result, a completely new concept for energy storage was chosen: and the prototype installation of this second generation storage system was installed at the substation Cologne Ensen, which had been also the site of the flywheel energy tests. Based on the experience with the new prototype, Siemens continued developing the energy storage technology, using double-layer capacitors (DLC) as

storage media. This is an innovative component based on electrostatic energy storage. In February 2001, the world s first energy storage system equipped with double-layer capacitors was installed in the Brueck substation of the Cologne transport company. Double-layer capacitors are the most innovative energy strorage technology at extremely high power cycling capability. The small voltage of the individual capacitor cells is adapted to any traction system voltage by series connection and paralleling of the capacitors. First measurements and operational results realized at the DLC storage system showed the reachable energy saving potential was visibly higher then with the prototype of the first generation in Cologne Ensen. Therefore, the group concluded that the economic and environmental advantages have proven to be much better than with the flywheel system. In the follow-up questionnaire, Siemens reported that the second generation of its storage system, with supercapacitors, was already installed at five sites - in Germany, Spain, and in the US, and five further installations were planned for the near future. Environmental issues addressed: Themes Energy - Efficiency Services & Commerce - Transportation - Storage Keywords alternative technology energy saving emission reduction greenhouse gas public transport rail transport Target EU Legislation Industry and Product Policy Directive 96/61 - Integrated Pollution Prevention and Control (IPPC) (24.09.1996) Climate Change & Energy efficicency COM(2000)87 -"Green Paper on greenhouse gas emissions trading within the European Union" (08.03.2... COM(2000)88 - "Towards a European Climate Change Programme (ECCP)" (08.03.2000) "Kyoto Protocol to the United Nations Framework Convention on Climate Change - Declaration Offici... Natura 2000 sites Not applicable

Beneficiaries: Coordinator Siemens AG, VT 349 Type of organisation International enterprise Description For 155 years, the Siemens name has been synonymous with cutting-edge technologies. With a wide array of products, systems and services, Siemens are world leaders in information and communications, automation and control, power, medical solutions, transportation and lighting. Siemens' portfolio comprises the following business areas: Information and Communications Automation and Control Power Transportation Medical Lighting Financing Real Estate Affiliates The individual Groups within these areas are responsible for their own worldwide operations, with regional units around the globe supporting their activities. This decentralized structure gives the Groups the greatest possible degree of entrepreneurial responsibility and the ability to nurture close ties to their customers. Cross-Group and cross-regional cooperation is crucial for the success of our GLOBAL NETWORK OF INNOVATION. At the same time, it enables Siemens to provide a broad range of customer-focused products, solutions and services for the global market. Siemens had 426,000 employees at the end of 2002. Administrative data: Project reference LIFE97 ENV/D/000474 Duration 01-JUL-1997 to 31-MAR -2000 Total budget 971,414.84 EU contribution 187,431.94 Project location Nordrhein-Westfalen(Deutschland)

Project description Environmental issues Beneficiaries Administrative data Read more