提高电力系统灵活性—工业电气化和绿氢生产的作用.pdf
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1、Increasing Electric Power System FlexibilityThe Role of IndusTRIal elecTRIfIcaTIon and GReen hydRoGen PRoducTIonA Report of the Energy Systems Integration Groups Flexibility Resources Task ForceJanuary 2022ESEnErgy SyStEmS IntEgratIon groupindustrial ElEctrification and GrEEn HydroGEn Production EnE
2、rgy SyStEmS IntEgratIon group ii ESENERGY SYSTEMS INTEGRATION GROUPAbout ESIGThe Energy Systems Integration Group is a nonprofit organization that marshals the expertise of the electricity industrys technical community to support grid transformation and energy systems integration and operation.More
3、information is available at https:/www.esig.energy.ESIG Publications Available OnlineThis report is available at https:/www.esig.energy/reports-briefs.Get in TouchTo learn more about the topics discussed in this report or for more information about the Energy Systems Integration Group,please send an
4、 email to infoesig.energy.industrial ElEctrification and GrEEn HydroGEn Production EnErgy SyStEmS IntEgratIon group iii Prepared byAidan Tuohy,Electric Power Research InstituteNiall Mac Dowell,Imperial College LondonTask Force MembersWilliam Dhaeseleer,KU LeuvenElizabeth Endler,ShellAnthony Ku,NICE
5、America ResearchNiall Mac Dowell,Imperial College LondonPierluigi Mancarella,University of MelbourneJulia Matevosyan,Energy Systems Integration GroupToby Price,Australian Electricity Market OperatorAidan Tuohy,Electric Power Research InstituteSuggested CitationFlexibility Resources Task Force.2022.I
6、ncreasing Electric Power System Flexibility:The Role of Industrial Electrification and Green Hydrogen Production.Reston,VA:Energy Systems Integration Group.https:/www.esig.energy/reports-briefs.This work was supported by funds from the American Council on Renewable Energy(ACORE).The task force would
7、 like to acknowledge the valuable input and support of Karin Matchett in preparing this report.Design:David Gerratt/NonprofitD 2022 Energy Systems Integration GroupIncreasing Electric Power System Flexibility:The Role of Industrial Electrification and Green Hydrogen ProductionA Report of the Flexibi
8、lity Resources Task Force of the Energy Systems Integration Groupindustrial ElEctrification and GrEEn HydroGEn Production EnErgy SyStEmS IntEgratIon group iv Contents1 Evolving Reliability Needs for a Decarbonized Grid 1 A Critical Need for New Sources of Flexibility 2 Services Provided by Industria
9、l Electrification and Electrolytic Hydrogen Production to the Electricity System3 Industrial Electrification and Electric Power System Flexibility 3 Electricity Use in Industry Today 3 Pathways for Contribution of EIIs to Decarbonization8 Provision of Flexibility from Energy-Intensive Industries 8 I
10、ncreased Demand as a Result of Increased Electrification of Industry 9 Provision of Demand Response via Industrial Loads 10 Provision of Grid Services 11 Barriers to the Provision of Flexibility by Newly Electrified Loads12 Role of Hydrogen Production in Grid Decarbonization and Flexibility 13 Poten
11、tial Applications of Hydrogen in the Power System 14 Considerations for Obtaining Flexibility from Green Hydrogen in a Future High-Renewables Grid 17 Provision of Grid Services21 Advances Needed in System Planning,Operations,and Market Design24 Referencesindustrial ElEctrification and GrEEn HydroGEn
12、 Production EnErgy SyStEmS IntEgratIon group 1 Evolving Reliability Needs for a Decarbonized GridAs electric power systems continue to decarbonize and levels of renewable energy continue to rise,sources of system flexibility will become increas-ingly important.As flexibility from traditional resourc
13、es may be reduced with the retirement of conventional coal-and natural gasfired generation,other sources such as demand-side flexibility will become much more important.Concurrently,the increased electrification of the overall energy system will create new loads on the electric power system,which wi
14、ll have the potential to contribute to such system flexibility.A key issue for electricity system operations and plan-ning is to what extent the new loads may contribute to system flexibility:whether and how these loads can shift electrical energy demand from periods when renewable electricity is le
15、ss abundant to periods when there is a large amount available.A Critical Need for New Sources of FlexibilityMany decarbonization studies demonstrate the increas-ing importance of this flexibility as clean energy,particu-larly variable renewables such as wind and solar,becomes a larger portion of the
16、 resource mix(EPRI,2021;Larson et al.,2020;Williams et al.,2021).For example,hydro-gen production and the electrification of industrial loads are often cited as important sources of flexibility as levels of renewables surpass 80 or 90percent of total electricity(EPRI,2021).At such high levels of ren
17、ewables,the need to shift energy across time(and potentially space),as well as the expected retirement of existing sources of flexibility,means that electric power system flexibility from the typical sources todayconventional natural gas plants,batteries,interconnection with neighboring grids,and re
18、newables themselvesmay need to be supple-mented with new sources.The need for flexibility stems from two issues related to supply and demand balancing of electricity systems that are reliant on variable renewable electricity gen-eration:oversupply of generation,and structural energy deficits due to
19、the variability associated with renewable generation(EPRI,2016).The first issue arises from the limited capacity factors of wind and solar.High electri-cal-energy penetration of naturally variable sources such as wind and solar photovoltaics could result in substan-tial overcapacity compared to the
20、peak load of the elec-trical power system,which,in the absence of dedicated measures,would lead to negative net,or residual,load in industrial ElEctrification and GrEEn HydroGEn Production EnErgy SyStEmS IntEgratIon group 2 1 Net load,or residual load,are defined as the total load minus the instanta
21、neous generation of solar photovoltaics and wind.“Net”and“residual”can be used synonymously.2 See https:/www.energy.gov/eere/fuelcells/hydrogen-shot.many hours.1 While the instantaneous excess power generation could always be curtailed,an alternative is to divert that electric power to sectors outsi
22、de the classical electric grid system.This would involve using flexible electric loads to increase demand to maintain the supply/demand balance.The second issue,energy deficits,can occur in systems where there are long periods with relatively little wind or solar power compared to system demand,due
23、to prevail-ing weather conditions.(This is likely to be particularly important for wind energy,as demonstrated recently in the UK and EU region where wind was relatively low for a long period of time.)In such circumstances,resources that are not often used will need to be available to provide energy
24、 when called upon.The ability to shift demand from periods of energy deficits to periods with more renewables available could therefore be a signifi-cant source of flexibility.The need for this flexibility will be region-specific and depend on the particular mix of generation,transmission,and load o
25、n the electricity system.The absolute quantity of flexible capacity(however de-fined)that is required to manage oversupply of renew-able energy appears low,giving opportunity for flexibility via industrial electrification,including hydrogen produc-tion,to play an important role.Currently,the electri
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