Single Phase Smart Grid Tie inverter

Power inverters are devices that can convert electrical energy from DC form into AC form as an output. Inverters can come in many different varieties, with different parameters like price, power rating, efficiency, and applications. The DC/AC power inverter normally takes DC power supplied by a sola

2025-06-28 16:35:02 - Adil Khan

Project Title

Single Phase Smart Grid Tie inverter

Project Area of Specialization Electrical/Electronic EngineeringProject Summary

Power inverters are devices that can convert electrical energy from DC form into AC form as an output. Inverters can come in many different varieties, with different parameters like price, power rating, efficiency, and applications. The DC/AC power inverter normally takes DC power supplied by a solar panel (or) battery, such as a 12-volt battery, and transform it into a 230 volt AC power source operating at 50 Hz, it has emulated the power available at an ordinary household electrical application. Micro solar power systems are designed for the generation of electrical power. They are generally independent of large centralized electric grids and are used in remote areas. By building a grid-tie inverter the household solar power generation systems are connected to the centralized grid system. There is a need to design a low-cost single-phase power inverter that can be used with a small amount of power generation capacity, possibly capable of using small scale solar power generation systems that wish to supply the excess power generated to the electric grid. Operating a renewable energy system in parallel with an electric grid requires a special grid-interactive or Grid-Tie inverter (GTI). The power processing circuits of a GTI are similar to that of a conventional portable DC-AC Converter that operates as a stand-alone device. The main differences are in their control algorithm and safety features. A GTI takes a variable voltage from a DC source, such as a solar panel or battery inverts it to AC synchronized with the mains. It can provide power to our loads and feed an excess of the electricity into the grid. Depending on power and voltage levels, GTIs circuits normally have from one to three stages. When the inverter output is pure sinusoidal and it is connected to the grid. But, to match the frequency, phase, and amplitude of the grid and inverter output. The inverter output depends upon the PWM (Pulse Width Modulation) signals to the gating of the inverter switches. The PWM is generated with the help of the Arduino Atmel 328 controller. Hysteresis current controller is used to adjust the inverter frequency up to the grid frequency. This controller is implemented simply and it provides a good dynamic response and good output current regulation. The project is designed to construct a 200W normal AC Output power and a 250W maximum AC Output power Grid Tie Inverter. The proposed GTI has Over Current Protection, anti-islanding and Reverse Polarity Protection.

Project Objectives

Environmental concerns like global warming and climate change are driving the need for increased penetration of distributed renewable resources into the next generation of the electricity grid. Environmental friendly electricity generation and storage, along with energy policy and regulations are changing the characteristics of electricity networks and supply. As a result, micro grids provide a unique opportunity for integrating renewable resources into the distribution system. Micro grids are small-scale versions of centralized electricity systems where smaller-scale distributed generators and renewable energy resources like wind turbines, solar panels, and energy storage, provide power closer to point of use. As well as providing an opportunity to reduce environmental impacts through increased use of renewable resources, micro grids can improve power quality, network efficiency, reliability, and economics.

The solution this project proposes is an implementation of the designed filter to effectively reduce the harmonics injected into the grid to an acceptable value according to standards and also an approach to control the real and reactive power output of the inverters to help solve the problems of instability and power quality of the distribution system. The design, modeling, and simulation of the smart inverter system are performed in MATLAB/SIMULINK software environment.

Our main objectives are as below;

Moreover; Pakistan is moving towards incorporating EVs policies into the automotive industry. So our project can serve as a Vehicle to Grid (V to G) service as well which is the new and trending concept launching in Pakistan.

Project Implementation Method

The design of the hardware & software for GTI consists of the full-bridge inverter, driver circuits, and a low pass filter. The H-bridge consists of IRF530 switches. It has low resistance, less power dissipation, higher efficiency, and fast switching time. It is used to apply the switching pulses coming from the microcontroller to the MOSFET. IR2110 is a high voltage half-bridge gate driver designed to drive both the high side and low side MOSFETs in a synchronous buck configuration. The rising edge of each output can be independently delayed with a programming resistor.

The pulse synchronizing & isolation circuits are used between the microcontroller & MOSFET drivers. The Op-Amps and transistors convert the 2 PWM signals coming from the microcontroller into four signals going to the MOSFET. Optocouplers 6N137 are used to electrically isolate the electronic low voltage circuits from the power electronic section that includes the MOSFETs and drivers that are higher voltage.

The Schmitt Trigger makes a square wave signal from the sine wave that feeds into the timer of the microcontroller. It uses the square wave signal to measure the frequency of the sine wave and determine the zero-crossing times of the sine wave so that the output signal can be generated with the correct phase of the network signal.

B.

PWM signals are produced by the microcontroller which drives the MOSFET; the output from the H-bridge circuit is also a PWM signal that can be produced in different ways. The basic technique is the 2-Level PWM method. A 2-Level PWM signal is obtained from a reference sine wave by modulation with a carrier wave at a much higher frequency. This can be achieved by running both signals through a comparator, which produces an output PWM signal with a duty cycle that is directly proportional to the amplitude of the reference sine wave.

C. Software

The GTI is controlled by the EVK1100, which tracks the phase & frequency of the grid waveform, and

generates output signals to drive the low and high-side of the H-bridge. It is based on a hybrid polling structure. Five functions are executed every cycle through the main loop. A separate function to update the display status is executed when a flag is raised. This occurs less frequently since it does not have a high priority in terms of operating the inverter. The microprocessor runs at a clock speed of 48 MHz. A high clock speed can give a high performance so that the inverter output closely matches that of the grid.

Benefits of the Project

The smart grid is a power production and distribution system that allows for a two-way flow of electricity and communication, ultimately designed to deliver sustainable, cost-effective, and secure electricity supplies. Much like the internet, the smart grid utilizes a range of advanced information, communication, and energy technologies working together to respond digitally to variable electricity demand across the grid. Benefits associated with the smart grid include:

According to the 17 sustainable development goals (SDGs) set by the United Nations to transform our world, the following are related to our project.

GOAL 7: Affordable and Clean Energy

Moreover, our project is also linked with other two goals i.e GOAL 8: Decent Work and Economic Growth & GOAL & 9: Industry, Innovation and Infrastructure.

Technical Details of Final Deliverable

GTI includes two boards, transformers and connections. The board consists of MOSFET switches and drivers, DC regulators, sampling circuits, optocouplers and other devices. Other boards will the Atmel EVK1100 armed with an AVR32 UC3A0512 microcontroller, LCD display and other useful features. The two transformers are used to convert the 230V AC grid voltage to 18V AC and for isolating the electronic board from the 18V AC network voltage. Although the LC filter applied to the output of the H-bridge removes most of the high-frequency noise, a better filter structure maybe needed in the final design.

The frequency, amplitude and phase of the GTI output signal are synchronized with the voltage signal of the grid. The GTI is controlled by an Atmel microcontroller (EVK1100 with UC3A0512). Results confirm that the GTI is capable of producing an AC waveform that is synchronized with the grid. Future software modifications will add the capability to control real and reactive power output from the inverter, in addition to the output frequency.

Final Deliverable of the Project HW/SW integrated systemCore Industry Energy Other Industries Medical , Agriculture , Manufacturing , Others Core Technology OthersOther Technologies Internet of Things (IoT), Clean TechSustainable Development Goals Affordable and Clean Energy, Decent Work and Economic Growth, Industry, Innovation and Infrastructure, Climate ActionRequired Resources
Item Name Type No. of Units Per Unit Cost (in Rs) Total (in Rs)
Total in (Rs) 79997
Vero boards (100x240 mm) Equipment485340
Pcb boards (12 Equipment5180900
Iron Solder (KS100R ;100W) Equipment137003700
Soldering Paste Grease (50g) Equipment127002700
Suction desoldering pump (GOOT ;GS-100) Equipment132003200
Digital Oscilloscope (DSO 138 TFT) Equipment11600016000
Volt metre Equipment2195390
Ampere meter Equipment2450900
MOSFETs 50N60 Equipment460240
Cd4047 Equipment460240
Atmel 329 (controller) Equipment117001700
Bulb Holder Equipment24590
Transformer 12/220v (6A) Equipment1580580
Incandescent bulbs (Load) Equipment2130260
Hall effect sensor for ampare measurement (ACS712 30A 20A 5A) Equipment116001600
Transformer 220/12 0.5 amp Equipment1600600
Full wave rectifier Diodes (1A) Equipment33090
Potentio meter 50 k ohm Equipment355165
Liquid crystal display LCD (16x2)) Equipment37002100
Variable resistor 10k ohm Equipment425100
Relay 6 volt operation (10 A) Equipment26801360
Fuse 15 amps Equipment22550
Driving circuit 44m Equipment111701170
Resistor and capacitor circuit for zero crossing measurement Equipment130003000
Esp32 wifi module for controlling through Android app Equipment115001500
Two pin connectors Equipment41872
3 pin connectors Equipment430120
4 pin connectors Equipment440160
Jumper wires Equipment3180540
Battery/ cell+ clip Equipment390270
Female header Equipment440160
Male header Equipment425100
Battery charger 12 volt Equipment129602960
hot glue Gun + Glue stick Equipment125502550
DMM (UT51) Equipment128002800
PCB board Electric Drill Grinder Machine Kit Equipment147004700
Iron Soldering stand Equipment1230230
oldering Wire 100 gram Equipment1280280
Battery (S50L+) 9 plates Equipment163006300
ATmega controller Equipment1970970
Optocouplers 6N137 Equipment6150900
IR2110 Equipment4120480
Resistors Equipment902180
IRF530 Equipment4220880
Button (Push & Sliding) Equipment640240
Bread Board GL (for testing) Equipment72801960
1 m wire for AC supply Equipment1170170
Photo Sheats Pack (for PCB Board printing) Miscellaneous 1370370
Shopping components online or from Lahore (Travelling) + Postal etc Miscellaneous 165006500
PanaFlex (Project Exibition) Miscellaneous 1850850
Chip board (2x2) +Glass (for case) Miscellaneous 114001400
CD Drive Miscellaneous 1130130
Thesis Book (Printing+Binding) Miscellaneous 1750750

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