Hellenic Grid Code Requirements for Wind Farms Grid connection

Slides:



Advertisements
Similar presentations
New Energy Horizons Opportunities and Challenges Fault Current Contributions from Wind Plants Dean Miller PacifiCorp July 25,
Advertisements

Wind Turbine Generators
1 Distributed Generation and Power Quality. 2 Relaying considerations DG infeed may reduce the reach of overcurrent relays –DG feeds fault, so utility.
Study of Wind Energy Penetration in the Iberian Peninsula RED ELÉCTRICA DE ESPAÑA 1 WIND POWER GENERATION Study of Wind Energy Penetration in the Iberian.
Lecture Notes 4 Per Unit System
High Voltage Engineering
ACCIONA WINDPOWER WIND POWER PLANTS AND GRID INTEGRATION EXPERIENCE 2010 –Friday 23 th April Óscar Alonso Teresa Arlabán Alberto García Alejandro González.
Protection notice / Copyright noticeFor presentation in EWEC 2010 HVDC Solution for Offshore Wind Park Comprising Turbines Equipped with Full-Range Converters.
Slide 1 Large Wind Integration Challenges for Operations / System Reliability By : Steve Enyeart, BPA With contributions from: Bart McManus, BPA Roy Ellis,
Problem #2-8 A 480 – 120 V, 60 Hz transformer has its high voltage winding connected to a 460 V system, and its low voltage winding connected to a 24/32.8°Ω.
Power Systems Consulting and Software 4 March 2004 BWEA Conference: UK Offshore Wind 2004 Integration of Offshore Wind Farms into the Local Distribution.
All Island TSO Facilitation of Renewable Studies- Ireland II Ravi Sundaria Jay Panchal.
Importance of advanced simulations of electrical system in wind turbines April 2010.
ET2105 Electrical Power System Essentials
Active and Reactive Power Control Praveen Jain 19 September 2014.
1 Green River Utah Area Transmission and Distribution System – January 16, 2009.
Farid Katiraei Ph.D. Candidate
1 INPUT & OUTPUT ■ INPUT * Voltage Side ( PT side ) Operational range : 0-110% Permissible over range : 150% for 10 seconds 120% continuously * Current.
Survey of Practices Europe & US Julia Matevosyan, ERCOT.
2. Terms and definitions1 # Terms and Definitions # Voltage Sags and Interruptions.
Synchrophasor: Implementation,Testing & Operational Experience
Electricity Research Centre, University College Dublin Wind turbine modelling for grid code analysis Alan Mullane & Mark O’Malley Electricity Research.
Voltage grid support of DFIG wind turbines during grid faults
1 TRANSMISSION SYSTEM OVERVIEW NETWORK OPERATING COMMITTEE April 17, 2007 New Mexico Transmission System Overview.
Electric network faults seen by a wind farm – analysis of measurement data Sanna Uski, Seppo Hänninen, Bettina Lemström.
FREQUENCY CONTROL AND AUTOMATIC GENERATION CONTROL
Clemson University Electric Power Research Association CHANDANA BOMMAREDDY CLEMSON UNIVERSITY DG VOLTAGE CONTROL IN AN ISLANDING MODE OF OPERATION.
DS2 – Grid Integration Dynamic Modelling of Wind Generation in Ireland
Daudi Mushamalirwa Luanda June, 2014 Technical issues of the stability of small size electric systems composed of wind generators and conventional generating.
ERCOT Wind Survey Leo Villanueva. Abilene Mc Camey Big Spring.
Queensland University of Technology CRICOS No J Protection of distributed generation connected networks with coordination of overcurrent relays.
Unit 3 REACTIVE POWER AND VOLTAGE CONTROL.  BASIC REQUIREMENTS OF EXCITATION CNTRL  Excitation Current up to 10’000 amps  Input frequency range from.
Operational Issues & Risks ERCOT Operations Planning August 22, 2008.
Delivering for 2020 TSO Facilitation of Renewables Studies EirGrid Customer Conference Jonathan O’Sullivan October 2009.
ERCOT Wind Survey Leo Villanueva. Abilene McCamey Big Spring.
October 15, 2012 PV & Storage Workshop ERCOT’s Interconnection Process John Adams Principal Engineer.
Abilene Mc Camey Big Spring. Far West Abilene Area All the values are based on returned ERCOT survey results Total number of Wind Powered Generation.
SEMINAR ON ISLANDING BY PAWAN. What is islanding? Normally all Power generators are interconnected to form a network called ‘GRID’. Some times it so happens.
INSTITUTE OF POWER ENGINEERING GDAŃSK DIVISION Some Results of the Study „ Integration Possibilities of Wind Energy with the Polish.
 The common type of wind power generators are squirrel cage induction generator (SCIG),doubly fed induction generator (DFIG)  For more secure and.
YEL WIND POWER PROJECT. YEL WIND POWER PROJECT.
Resource Asset Registration Form – Business Rule updates
Agenda TSOG 8th November
Transposition of European Network Codes
Unit 02: Voltage sag (6 hrs)
Modular Multilevel Converter for Wind Energy Storage Systems
IG BASED WINDFARMS USING STATCOM
BUCK-BOOST CHOPPER TYPE AC VOLTAGE CONTROLLER
Subteam 1a Competitive Solicitations Framework Working Group Meeting
Next Steps in Load Modeling
RfG Implementation Fault Ride Through
Implementation of Connection Network Codes The French process
Storage Connection requirements
Sarath Chandrasiri / EPD / MEW DYNAMIC RESPONSE OF GAS TURBINES PRESENTED BY: THE DIRECTORATE OF ELECTRICITY PRODUCTION  K. A. CHANDRASIRI.
Synchronising Controls Overview by Robert Breadon
Design of Electric Power Systems and Utilities
Implementation of Connection Network Codes The French process
Distributed Generation (DG) Modeling Criteria
Rubustness against Overvoltage by Testing the HVRT Capability of Wind Turbines Dipl.-Wirt.-Ing. Frederik Kalverkamp Division Manager Grid Integration.
PV Solar Projects.
Hellenic Grid Code Requirements for Wind Farms Grid connection
DYNAMIC PERFORMANCE OF INVERTER INTERFACED DISPERSED GENERATION
Jignesh Solanki Research Assistant Professor West Virginia University
Grid integration and stability of 600MW windfarm at Kriegers Flak
Composite Load Model with Distributed Generation (CMPLDWG)
Ilkka Jokinen Taavi Heikkinen
The Global Forum Electricity Ancillary Services and Balancing | Berlin, SmartNet Pilots: The demonstration of the different TSO-DSO coordination.
Waleed Iftikhar Michel Mabano
Hellenic Grid Code Requirements for Wind Farms Grid connection
National Institute of Wind Energy(NIWE)
Presentation transcript:

Hellenic Grid Code Requirements for Wind Farms Grid connection Annex not yet approved by the Regulatory Authority

Requirements for Wind Farms (WFs) Grid connection Frequency and Voltage Operation Boundaries All WTGs should stay connected within the boundary 47.0 - 51.5 Hz All WTGs should disconnect with no delay for system frequency < 47Hz The disconnection of WTGs for system frequency > 51.5Hz takes place in 4 steps, with a 0.5sec delay between each step In each step, 25% of the operating WTGs is disconnected Applicable to all WFs

Requirements for Wind Farms (WFs) Grid connection Active/Reactive Power Boundaries Upper diagram : Q-V curve Within the no-striped area (PF> 0.95) the WF should operate at it’s nominal capacity Within the striped area (0.835 <PF<0.95), WFs active power is limited according the lower diagram Lower diagram : Q-P/Pmax curve The WF should operate within the polygonal curve with a lower allowed PF=0.835 (inductive or capacitive) WF operation within the striped triangular area (P<20%) is optional Active, reactive power and the power factor are measured in the MV side of the WF 150/20 step up transformer Applicable to WFs with installed capacity > 10 MW

Requirements for Wind Farms (WFs) Grid connection Voltage/Reactive Power Control Upon TSO’s request, the WF should operate in voltage, reactive power or PF control mode Voltage regulation is applied at system connection point (HV/150kV), reactive power and power factor regulation is applied at the MV (20kV) side of WF step up transformer The WF should be equipped with voltage/reactive power regulator according a HV Q–V characteristic The slope and the reference value Vset (zero reactive power injection at the MV (20kV) side of WF step up transformer are defined by the TSO The desired value of the controlled quantity should be implemented within 30sec after signal receiving speed of regulation response : in a voltage step change at the connection point (or a step change of reactive power or power factor reference value) the reactive power of the WF should reach 90% of the steady state value in less than 1s Applicable to WFs with installed capacity > 10 MW

Requirements for Wind Farms (WFs) Grid connection Load-Frequency control At TSO’s command, the WF should change the active power ramp up/down rate (±MW/min) Min and max limits of ramp up/down rates are set by the TSO Active power measurement applies at the MV (20kV) side of WF step up (150/20) transformer The WF should be equipped with a load-frequency controller (characteristic f-P) Frequency measurement precision ±10mHz Points Β and Γ define a dead zone within the WF should operate with a constant percentage (% P/Pmax) of the available active power Table values are defined by the TSO TSO’s command for reduction of the production should be implemented within 60s after signal receiving Applicable to WFs with installed capacity > 10 MW

Requirements for Wind Farms (WFs) Grid connection Low Voltage Ride Through capability Applicable to all WTGs, voltage is measured at the HV connection point Disconnection is allowed in area 1 Reconnection after fault clearance, within 2sec, with a rate 10-20% Pmax/sec Disconnection is allowed in area 2 Disconnection in 4 steps, with 0.3sec delay between each step, shed 25% of WFs WTGS at each step Reconnection when the voltage at the connection point (HV) is greater than 142,5kV or 380 kV After fault clearance, WTGs not disconnected should increase their production with a rate of 10-20% Pmax/sec Reactive current control WTG nominal values Ηare the reference values For a ±10% Vnom voltage change, the control is activated within 20msec after fault detection Provision of reactive current ± 2% Ιnom for each ±1% ΔVnom For voltage sags 50% Vnom , provision of reactive current +100 % Ιnom within 70 msec after fault detection Provision of reactive current applies for 500 msec after voltage recovery within ±10% Vnom band