Micro-Grid and Battery Energy Storage Technologies for Large Scale Renewable Energy Integration

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1 Micro-Grid and Battery Energy Storage Technologies for Large Scale Renewable Energy Integration Int l Seminar on Energy Storage Options for Renewable Energy Integration at India Habitat Centre, New Delhi, INDIA Dr. Hachidai Ito <ha.ito@ttnij.com> Executive Vice President T.T. Network Infrastructure Japan Corporation 29 January, T.T. Network Infrastructure Japan Corporation

2 Outline 1. Introduction to T.T. Network Infrastructure Japan 2. Issues and Proposed Solutions 3. EMS and BESS, Key Technologies for Renewable Energy Integration 4. Use Cases and Projects 4.1 Case 1: Micro-Grid Control 4.2 Case 2: EMS+BESS to Stabilize the Network 5. Summary 2

3 Introduction to T.T. Network Infrastructure Japan Toshiba Corporation JV for Global Electric Power T&D Business Tokyo Electric Power Company Holdings, Inc. Company profile (as of November, 2017) Name T.T. Network Infrastructure Japan Corporation Establishment September 2, 2013 Head Office Capital 11-2, Ekimae-Honcho, Kawasaki-Ku, Kawasaki-Shi, Kanagawa , Japan JPY 500million (=Around 4.4 MUSD) Shareholding TOSHIBA (51%), TEPCO (49%) President&CEO Business Activities Mr. Satoshi Niwa Project/ Consulting/ Engineering providing systems and system management in overseas T&D field. Operation and Maintenance Service business in T&D market 3

4 Vision and Capability of TTNI from Consultation to O&M + Services Toshiba s Strong Area TEPCO s Strong Area Function Flow Proposition PJ formation Consulting Financing arrangement Product Manufacturing EPC O&M Service Business Data Collection Cloud System Mobile 4

5 TTNI s Major Consulting Experiences (since Sep. 2013) Project Theme Country Client Contract Term Type Efficient Operation of Diesel Generation by Introducing Energy Management System, Renewable Energy and Battery Maldives Ministry of Economy, Trade and Industry (METI), Japan Prime Contract Oct., Mar., 2014 Feasibility Study Backbone Transmission Line Enhancement Project between Dhaka and Chittagong Bangladesh JICA Subcontract (from TEPCO) June, Mar., 2015 Preparatory Study Technical Solutions for Grid Stabilization in Rajasthan, India for Renewable Energy Integration India METI Subcontract (from PwC) July, Mar., 2015 Feasibility Study JCM Project Formation Study Integrated Renewable Energy Project for Resort and Residential Islands Maldives Ministry of the Environment, Japan Subcontract (from PCKK) Aug., Mar., 2015 Feasibility Study Underground Substation in Yangon System Myanmar METI Prime Contract Nov., 2014 Mar., 2015 Feasibility Study T&D Loss Reduction and Power System Stabilization Serbia METI Subcontract (from TEPCO) Dec., 2014 Mar., 2015 Feasibility Study Technical Solutions for Grid Stabilization in Rajasthan, India for Renewable Energy Integration India METI Subcontract (from PwC) July, Mar., 2016 Feasibility Study Compact designed Substation in Dhaka Bangladesh METI Prime Contract Aug Mar Feasibility Study Underground Substation in Bangkok System Thailand METI Prime Contract Aug Mar Feasibility Study Compact designed Substation in Yangon Myanmar METI Prime Contract Aug Mar Feasibility Study Introduction of New Technologies in Transmission and Distribution System in Kuwait Kuwait METI Subcontract (from TEPCO) Sep Mar Feasibility Study 5

6 Outline 1. Introduction to T.T. Network Infrastructure Japan 2. Issues and Proposed Solutions 3. EMS and BESS, Key Technologies for Renewable Energy Integration 4. Use Cases and Projects 4.1 Case 1: Micro-Grid Control 4.2 Case 2: EMS+BESS to Stabilize the Network 5. Summary 6

7 Issues and Proposed Solutions Objective Large Scale RE Integration to the power network Issues Reverse Power Flow, Voltage Variations, Impact on Protection Relays, etc. Power Fluctuation, Ramping = Impact on Power Balance, Frequency, etc. Impact by transient voltage drop, Harmonics, etc. Countermeasures Voltage regulator, SVC, Protection relay upgrade, etc. Micro-Grid and Battery Energy Storage Technologies PCS Technologies Solutions Introducing Remote Micro-Grid technologies EMS + BESS solution to stabilize the power network + Stable Network Operation with Renewable Energy and Battery 7

8 Outline 1. Introduction to T.T. Network Infrastructure Japan 2. Issues and Proposed Solutions 3. EMS and BESS, Key Technologies for Renewable Energy Integration 4. Use Cases and Projects 4.1 Case 1: Micro-Grid Control 4.2 Case 2: EMS+BESS to Stabilize the Network 5. Summary 8

9 EMS and BESS, Key Technologies for RE integration Battery Battery EMS BESS Battery EMS EMS: Energy Management System BESS: Battery Energy Storage System 9

10 Outline 1. Introduction to T.T. Network Infrastructure Japan 2. Issues and Proposed Solutions 3. EMS and BESS, Key Technologies for Renewable Energy Integration 4. Use Cases and Projects 4.1 Case 1: Micro-Grid Control 4.2 Case 2: EMS+BESS to Stabilize the Network 5. Summary 10

11 Use Case Challenges Solutions User 1. Micro-Grid control for remote region/island Use Cases by EMS and BESS Reducing cost of electricity generation (diesel) with renewable energy integration EMS controls diesel generation in order to minimize the fuel cost and combination with battery suppress the fluctuation of renewable energy output Electric power company Mining industry Army base 2. Stable Network Operation Power balance control under large amount of renewable energy sources Increasing the efficiency of electric facilities Resiliency against natural disaster EMS and BESS achieve peak shave/shift and stabilize tie-line power flow Islanding operation with renewables and batteries Distribution utility Community owner Hospital 3. Distribution Management Voltage management Preventing reverse power flow due to renewable energy integration in distribution level EMS collaborates with SCADA and/or AMI network and control voltages by using VR and/or battery Distribution utility 4. EV Deployment Charging load leveling in order to minimize an impact to the grid Solar carport which PV power is used to energize EV Shopping mall owner Highway rest area Distribution utility 11

12 Use Case Challenges Solutions User 1. Micro-Grid control for remote region/island Use Cases by EMS and BESS Reducing cost of electricity generation (diesel) with renewable energy integration EMS controls diesel generation in order to minimize the fuel cost and combination with battery suppress the fluctuation of renewable energy output Electric power company Mining industry Army base 2. Stable Network Operation Power balance control under large amount of renewable energy sources Increasing the efficiency of electric facilities Resiliency against natural disaster EMS and BESS achieve peak shave/shift and stabilize tie-line power flow Islanding operation with renewables and batteries Distribution utility Community owner Hospital 3. Distribution Management Voltage management Preventing reverse power flow due to renewable energy integration in distribution level EMS collaborates with SCADA and/or AMI network and control voltages by using VR and/or battery Distribution utility 4. EV Deployment Charging load leveling in order to minimize an impact to the grid Solar carport which PV power is used to energize EV Shopping mall owner Highway rest area Distribution utility 12

13 Outline 1. Introduction to T.T. Network Infrastructure Japan 2. Issues and Proposed Solutions 3. EMS and BESS, Key Technologies for Renewable Energy Integration 4. Use Cases and Projects 4.1 Case 1: Micro-Grid Control 4.2 Case 2: EMS+BESS to Stabilize the Network 5. Summary 13

14 Case 1 Remote Micro-Grid (based on the results of the FS funded by METI) 14

15 Micro-Grid Control Minimizing generation cost (Diesel etc.) and keep frequency stable PV G BESS WT Remote Region or Island environments utilize traditional distributed generation such as diesel as a power source, which results in higher cost of power generation due to fuel cost. In order to reduce generation cost, renewable energy sources are introduced into the network, but the intermittent nature of renewable energy affects power grid stability. 15

16 Remote Micro-Grid Solution System Configuration Issues of REs installation Renewable Energies Diesel Power Plant Feasible capacity of REs is limited due to the fluctuation in the output. (Generally limited to approx. 20% of the peak-demand) Photovoltaic System Wind Farm EMS The efficiency of Diesel Generators drops due to absorbing the fluctuation of REs output. Benefit of this model To contribute to carbon-offset by increasing the feasible capacity of REs to 37% of peak-demand. Li-ion Battery Buildings EMS: Energy Management System Consumers Load To improve 4% of Diesel Generators efficiency through optimal operation utilizing EMS and battery. Combination of EMS and Battery system realizes both the installation of large-scale renewable energy, and high-efficiency operation of existing diesel generators. 16

17 Issues of PV penetration Issues of PV penetration a) Fluctuation of PV output caused by weather condition. b) The efficiency of DG (Diesel Generation) is dropped to adjust to changing output of PV. Reserve power DG +PV DG a) Fluctuation in PV output b) Low power operation of DG 17

18 Micro-Grid Operation (EMS) Purpose Main functions of EMS (1)Automated generation planning - Forecasting(Demand, PV output) - Scheduling (2)Control of DG and BESS (3)Control of PV output a) Maintaining grid stability by absorbing PV fluctuation b) Curtailment of Fuel consumption by efficient operation of DG Command (Charge/discharge) Control of PV output kw Scheduled curve of demand and supply BESS Output of BESS EMS Output of PV SOC value Output of Command DG to DG Frequency PCS PV t DG 18

19 Examples of actual feasibility study Site location of feasibility study Addu Atoll in Maldives Supplier -> FENAKA Peak load -> 4.5MW Population -> 32,000 19

20 Capacity: 1.7MW Configuration of Micro Grid System Photovoltaic System Existing Diesel Power Plant Gen No. Capacity #1 : 750kW #2 : 750kW #3 : 750kW #4 : (Broken down) #5 : 1MW #6 : 1.6MW(Under repair) #7 : 1MW #8 : 1MW #9 : 800kW(Future Plan) Battery Lithium-ion Battery Output: 1MW Capacity: 336kWh EMS Load Peak Load: 4.5MW Li-ion Battery Residences Buildings EMS : Energy Management System 20

21 Expected Fuel Consumption (in the 1st year of the Project) Peak Demand: 4.5MW PV: 1.7MW (38% of the peak demand) Base Case 0 100% Fuel Consumption by DG All electric energy is generated by DG +PV w/o µems & BESS -8.7% Fuel Consumption by DG -4.4% +1.8% +2.5% PV generated energy Efficiency Drop of DG (low power operation) Efficiency Drop of DG (absorbing PV fluctuation) +PV with µems & BESS Fuel Consumption by DG -8.7% -12.5% PV generated energy -3.8% Efficiency Improvement of DG (optimum operation) 21

22 Benefits of Remote Micro-Grid solution Base case Only PV penetration Remote Micro-Grid - Power is supplied only by DG (Grid capacity: 4.5MW) - Case study of Addu atoll in Maldives - - Power is supplied by PV and DG - Power is managed by utilizing EMS and BESS G G G No PV system Capability of PV penetration: 700kW (16% of grid capacity) Capability of PV penetration: ( of grid capacity) Benefits of island solution 1) Capability of PV penetration: approximately 40% of peak-demand 2) Curtailment of fuel consumption: 17,000 [kl/15years] 3) CO2 reduction: 45,000 [t-co2/15years] If 1(USD/L) 17M(USD/15years) 22

23 Case 2 EMS+BESS to Stabilize the Network (based on the ongoing FS funded by NEDO) 23

24 Economical Control PV WT BESS Transmission Substation Lines EV HEMS BEMS FEMS 24

25 Issues and solutions for RE integration 25

26 Economic & Financial loss by power outages (24/7) Modi s policy SLDC s load shedding 26

27 time[h] time[h] Controlling BESS by RESS RESS RE PV WT Batt. Capacity type Power type Load time[h] 27

28 Collaborating REMC and RESS Aggregating (visualization/ forecasting etc.) the REs SLDC SLDC Server Measure 1 Measure 2 Active measure to stabilize the network like spinning reserve Mitigating the Fluctuation from the REs by Batteries REMC (Renewable Energy Management Centre) RESS (Renewable Energy Stabilizing System) REMC Server RESS Server n Hybrid Battery Control BESS (Battery Energy Storage System) Wind / Solar power generations Power Type Battery (Lithium-ion battery) 50MW-25MWh Two types of batteries Capacity Type Battery ( Sodium-sulfur battery etc.) 50MW-300MWh 28 n

29 Outline 1. Introduction to T.T. Network Infrastructure Japan 2. Issues and Proposed Solutions 3. EMS and BESS, Key Technologies for Renewable Energy Integration 4. Use Cases and Projects 4.1 Case 1: Micro-Grid Control 4.2 Case 2: EMS+BESS to Stabilize the Network 5. Summary 29

30 Summary Issues to introduce more distribute PV Reverse Power Flow, Voltage Variations, Impact on Protection Relays, etc. Power Fluctuation = Impact on Power Balance, Frequency, etc. Impact by transient voltage drop, Harmonics, etc. Countermeasures Voltage regulator, SVC, Protection relay upgrade, etc. Key Technologies and Use Cases We, TTNI are ready to contribute Micro Grid Technologies PCS Technologies Key Technologies: EMS and BESS Use Case 1: Micro-Grid control for remote region/island Example: FS for Remote Micro-Grid in Maldives Use Case 2: Stabilizing the network by EMS+BESS Example: FS for network stabilization in Rajasthan, India Use Case 3: Distribution Management, Use Case 4: EV Deployment Consultation/FS and Pilot PJ for stable network operation when having more RE integration 30

31 Contact: Dr. Hachidai Ito Executive Vice President 31

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