Designing a Smarter and Greener Electric Grid: AS Sensor-Data Driven Approach. Study of Power Consumption
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1 Designing a Smarter and Greener Electric Grid: AS Sensor-Data Driven Approach Study of Power Consumption Monitoring Systems
2 Organisation of the Presentation About CDAC CDAC s component in the project-designing a Smarter and Greener Electric Grid: A Sensor-Data Driven Approach Sensor configuration and digital processing platform required for home automation Scheme and description of the digital processing platform Configuration of the communication network 2
3 Centre for Development of Advanced Computing(CDAC) Centre for Development of Advanced Computing (C DAC) is the premier R&D organization of the Department of Elecrinics and Information Technology (DeitY), Ministry of Communications & Information Technology (MCIT), Government of India for carrying out R&D in IT, Electronics and associated areas. Multi locational, Multi activity R&D organization with HQ at Pune Multi locational, locational Multi activity R&D organization with HQ at Pune Spread out at 10 locations with14 laboratories Spread out at 10 locations with14 laboratories 2000 employees, involved in the design, development and deployment 2000 employees, involved in the design, development and deployment of electronics and advanced Information Technology ofelectronics andadvanced Information Technology 3
4 C-DAC-Thiruvananthapuram Scientific Society of the Department of Information Technology, Ministry of Communication & Information Technology(DeitY), Government of India Development Groups Broadcast & Communications Group (BCG) Power Electronics Group Control and Instrumentation Group Strategic Electronics Group Hardware Design Group 4
5 Activities in Power Electronics Group Simulation Real time Multi-level l l PQ Inverters solutions Distributed Generation Current Activities EV/HEV Energy storage UPS Drives SMPS 5
6 Scope of the Project CDAC s objective in this project is to provide sufficient inputs to the main project which will be piloted by IITB and UMASS. As a development partner, CDAC proposes a study which involves survey and identification of suitable technology for monitoring the energy consumption at the point of electrical power outlets in walls of residential buildings. 6
7 Study Points The study will cover Standards d for data exchange schemes in Home Area Networks and Industrial environment and the hardware requirement for the same Study on deployment of sensors for measurement and monitoring the power consumption pattern of various loads Design of an embedded platform which can be integrated with the wall mounted distribution board in in a smart home Deployment scheme for current and voltage sensors at different points in the network Algorithms to identify the type of load based on active/reactive/harmonic pattern 7
8 Physical Outcome of the Project CDAC will conduct a detailed d survey and study on the technology for power consumption measurement and various standards associated with such systems. After the studies, CDAC will generate a technical report containing Hardware scheme with plan for sensor deployment Details on communication scheme Requirement specification for the embedded hardware in the sensor unit 8
9 Hardware Architecture The intelligence will be integrated with the distribution board as given in the block diagram. The hardware consists of the following building blocks Voltage and current sensors Data acquisition hardware Data processing platform Intelligent switches for connection/disconnection of loads for demand response Communication interface Data logging 9
10 Architecture of Smart Distribution Board Smart Distribution Board Intelligent Switch Power outlet LOAD 1 LOAD 2 Utility Grid Current Sensor LOAD 3 Voltage Sensor Current Sensor for critical/selected loads LOAD 4 LOAD 5 LOAD N Optional f/b A/D Conversion Processing, Monitoring and Control Platform Communication Interface HMI 10
11 Architecture of the Processing Platform Mass memory Storage Communication Interface Current f/b Voltage f/b A/D Converters Memory Interface PROCESSING CORE DSP FPGA Switch/Relay Logic Relay Control Signals I/O Ports, HMI(Optional) 11
12 Functions of the Processing Platform Management and Control of Domestic Smart grid technology Sensing of voltage, current signals Estimation of active and reactive power Estimation of harmonic profile Identification of loads and load changes Automatic controllability for the input switches Management of data communication Identification of faults Algorithm for various demand side load management schemes Data storage Time tagging event recording etc.. 12
13 Detailed Scheme w.cdactvm.in www 13
14 Features of the Processing Platform Multi core processor (OMAP L137) FPGA for accelerating the speed of data processing (Cyclone II-EP2C5 from Altera) Ethernet, wireless, USB interfaces HMI for status indication and operator level controls I/O ports for ON/OFF controls A/D channels for current and voltage feedback Optional feed back for various environmental parameters Data logging on local memory and SD card Time stamping of events with RTC 14
15 www w.cdactvm.in Circuit Fabrication Analog region Clock circuit PCB form factor : 220 x 150 mm No of Layers : 10 Layers D acquisition Data iii : 16 bi bit, 8 channel h l ADC(2 nos)) Code and data storage : SPI flash, NAND flash Communication interfaces : UART, SPI,C DAC Ethernet,USB etc CDAC Thiruvananthapuram All Rights Reserved OMAP FPGA 15
16 Algorithms to be ported and tested on the Experimental platform platform Estimation of active and reactive power (IEEE Standard 1459: Definitions for the Measurement of Electric Power Quantities Under Sinusoidal, Non sinusoidal, Balanced, or Unbalanced Conditions) Estimation of harmonic current profiles (Real time / off line FFT) Identifying the type of loads based on power signature of individual loads Demand response based on operating conditions (Electricity price, comfort level, Peak reduction etc..) Identification of faults on load side and protection (Deviation from normal signature) 16
17 Load signature Reactive Power Active Power w.cdactvm.in www THD 17
18 Incandescent lamp steady state w.cdactvm.in www Voltage and current waveform Harmonic spectrum of current 18
19 Incandescent lamp Transient w.cdactvm.in www Voltage and current waveform Harmonic spectrum of current 19
20 CFL Steady state w.cdactvm.in www Voltage and current waveform Harmonic spectrum of current 20
21 CFL Transient w.cdactvm.in www Voltage and current waveform Harmonic spectrum of current 21
22 Motor Steady state w.cdactvm.in www Voltage and current waveform Harmonic spectrum of current 22
23 Communication Network Exchanges Voltage & current (power), temperature, humidity and other physical parameters between nodes and controller Command signals to controllable equipments System status 23
24 Why ZigBee? Reliable Supports large number of nodes Range suitable for home networks(~100m) Easy to deploy Very long battery life Secure Low cost Can be used globally 24
25 Sample Scheme Current Measurement RF Control Grid w.cdactvm.in www ZigBee Coordinator & Data Collector Control Unit (Load Disaggregator & Data Management) Visuals 25
26 Intelligent Plug Power Outlet Current Measurement ADC Peripheral 8051 MCU Core 2.4 GHz RF Transceiver Sensor / End Device CC2530 Relay Central Controller OMAP SPI Peripheral 8051 MCU Core 2.4 GHz RF Transceiver Collector / Collector CC2530 FPGA Ethernet 26
27 Standards IEEE Std e IEEE Standard for Local and metropolitan area networks Part 15.4: Low-Rate Wireless Personal Area Networks (LR- WPANs) IEEE Std IEEE Standard Definitions for the Measurement of Electric Power Quantities Under Sinusoidal, Nonsinusoidal, Balanced, or Unbalanced Conditions IEC Edition Electromagnetic Compatibilty(EMC) part 4-30: Testing and measurement techniques - power quality measurement methods 27
28 Network Topologies Mesh Star Ring Bus Tree 28
29 OSI Model Application Application issues Presentation Session Transport Data transfer issues Network Data link Physical 29
30 ZigBee Protocol Application & Profiles Application Framework Network & Security layers ZigBee Specification MAC layer PHY Layer IEEE
31 ZigBee Protocol Application layer controls the application(s) running on the ZigBee device, e.g current sensing Zigbee Stack layer the protocols that look after routing the data to the correct destination and security IEEE standard MAC sub-layer- responsible for addressing (where outgoing data is going to, and where incoming data has come from) PHY sub-layer - responsible for the radio transmission i itself 31
32 Application Framework ZigBee Device Object AO / EP (ZDO) AO / EP 240 APSDE SAP APSDE SAP O Public erface ZDO Int APSDE SAP ZigBee Application Securit ty Service Application Support Sublayer (APS) NLDE SAP NLME SAP Network Layer AIB NIB anagement ZDO M ZigBee Alliance MLDE SAP MLME SAP Media Access Control (MAC) MIB PD SAP PLME SAP Physical Layer 2.4 GHz 868 and 915 MHz PIB IEEE
33 ZigBee Evaluation Module(EVM) & IAR EW8051 IDE w.cdactvm.in www 33
34 CC2530ZDK (From Texas Instruments) CC2530ZDK includes: 2 SmartRF05 Evaluation Boards 5 SmartRF05 Battery Boards 7 CC2530 Evaluation Modules 1 CC1531 USB Dongle Antennas and batteries IAR EW8051 C-compiler with C-SPY debugger 34
35 w.cdactvm.in www 35
36 w.cdactvm.in www 36
37 CC2530EM RF module CC2531 USB Dongle SmartRF05BB 37
38 IAR EW
39 Thank You
40 Variable Speed Wind Electric Generator Machine side Inverter Grid side Inverter WEG GRID Digital Controller 40
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42 BIO-MASS PLANT (20 kw) BIM - Basic Interface Module (10 kva) BIM 1 BIM 2 Y Y Digital Controller 1 WIND ELECTRIC BIM 3 GENERATOR (5 kw) Panel 1 Y SOLAR PANEL (55 kwp) BIM 4 BIM 5 BIM 6 BIM 7 BIM 8 Y Y Y Panel 2 Y Y Digital Controller 2 Digital Controller 3 Central Control unit Dump Load BIM 9 Y Panel 3 42
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44 Prototype Developed by CDAC PMU Module Sensor Module GPS Antenna
45 Power Quality Solutions 3 Phase, 3 wire and 4 wire active filters Single phase active filters Dynamic Voltage Restorer Shunt Hybrid Active Filters Sour ce Series Voltage injection Load SERIES INVERTER + _ SHUNT CONVERTER
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