MUEV Phase III By: Kevin Jaris & Nathan Golick. Introduction Petroleum is a finite resource. Demand for clean energy is driving the increase in the production.

Slides:



Advertisements
Similar presentations
1 Micro Electric Urban Vehicle Phase III Students: Nathan Golick Kevin Jaris Advisors: Mr. Gutschlag Dr. Anakwa.
Advertisements

Design and Computer Modeling of Ultracapacitor Regenerative Braking System Adam Klefstad, Dr. Kim Pierson Department of Physics & Astronomy UW-Eau Claire.
1 Variable Frequency AC Source Students: Kevin Lemke Matthew Pasternak Advisor: Steven D. Gutschlag 1.
Introduction Since the beginning of the oil crises, which remarkably influenced power development programs all over the world, massive technological and.
DC Choppers 1 Prof. T.K. Anantha Kumar, E&E Dept., MSRIT
THIS PRESENTATION HAS BEEN UPLOADED TO THE WIKI. Motors, Controllers, and Regenerative Braking.
Fundamentals of Electric Drives: DC Drives
Electric Motor Control with Regenerative Braking Cody Doremus & Keegan Roach Advisor: Mr. Gutschlag Bradley Electrical Engineering Senior Design Project.
DC-DC Converter Drives
Power Electronics Lecture-10 D.C to D.C Converters (Choppers)
Copyright by UNIT III DC Choppers 4/17/2017 Copyright by
Instrumentation & Power Electronics
POWER SUPPILES LECTURE 20.
To develop a small scale solar powered system that will power a DC load, which incorporates power management techniques, DC-DC conversion and a user interface.
Pulse Width Modulation (PWM) LED Dimmer Circuit
For Electric Vehicle Team Members Pramit Tamrakar- Electrical Engineering Jimmy Skadal- Electrical Engineering Hao Wang- Electrical Engineering Matthew.
Chapter 19 Charging Systems.
Pulse Width Modulation (PWM) LED Dimmer Circuit
Chapter 6 Voltage Regulators - Part 2-.
Power Electronics and Drives (Version ) Dr. Zainal Salam, UTM-JB 1 Chapter 3 DC to DC CONVERTER (CHOPPER) General Buck converter Boost converter.
Switching Power Supplies Week 6
The Control of Electricity in Circuits
Chapter 28 Direct Current Circuits 1.R connections in series and in parallel 2.Define DC (direct current), AC (alternating current) 3.Model of a battery.
Hybrid Wind & Solar Generation Project
Electrical Work and Power. II+- Higher V 1 Lower V 2 Resistance R Current I flows through a potential difference  V Follow a charge Q : at positive end,
CHAPTER 18 Power Supplies. Objectives Describe and Analyze: Power Supply Systems Regulation Buck & Boost Regulators Flyback Regulators Off-Line Power.
ENERGY INSTITUTE Battery Research Group NiMH Battery Pack for HEV Cem Kaypmaz 2008 İstanbul.
Holt: Physics Ch. 20 – 1 Pages
Conductors Metals and graphite are electrical conductors. Electrons are free to move in conductors. Electrons are negatively charged. The electrons carry.
Lecture # 12&13 SWITCHING-MODE POWER SUPPLIES
Power Management for Embedded Systems. Power requirement for Embedded Micro Systems Multiple supply voltages Small size in all components, L R C etc High.
19.4 Sources of electromotive force
Electricity Currents, Circuits Electricity that moves… Current: The flow of electrons from one place to another. Current: The flow of electrons from.
CS-EE 481 Spring Founder’s Day, 2006 University of Portland School of Engineering Electric Vehicle Drive System Authors Steven Arlint Abdullah Binsaeed.
Lecture 10 DC Motors. Electric Braking Sometimes it is desirable to stop a d.c. motor quickly. This may be necessary in case of emergency or to save time.
Switches in Series A heating system is a practical circuit used in homes which has two switches in series. The thermostat switch opens (OFF) when the temperature.
EMT212 – Analog Electronic II
1 Electrical Fundamentals We need some understanding of electrical fundamentals to do the lab exercises. Electric Circuit Consists of: –Power Source: Battery,
SMV Electric Tutorials
Controlled-Rectifier Fed Drive
Students: Thomas Carley Luke Ketcham Brendan Zimmer Advisors: Dr. Woonki Na Dr. Brian Huggins Bradley University Department Of Electrical Engineering 2/28/12.
Presented by : GROUP 1 Associates: Ajeet Kumar Pooja Raikar Sangamesha J M Utkarsh Kumar Viresh Mathad.
By Mr. K.Anish. Block diagram of DC-DC CONVERTER.
CS-EE 480 Fall November, 2005 University of Portland School of Engineering Project Umpqua Electric Vehicle Drive System Team Abdullah Binsaeed Dustin.
Closed Loop Temperature Control Circuit with LCD Display Mike Wooldridge ECE 4330 Embedded Systems.
Power Electronics and Switch Mode Power Supply
Self-Sustainable Electric Golf Bag Final Presentation Group 19 Jon Kinney, Cory Edwards, Harrison Kantner 30 April 2013.
Gandhinagar Institute of Technology
Introduction to Linear Voltage Regulators Krishna Kishore Reddy K 2010H223084H.
 The acronym KERS stands for Kinetic Energy Recovery System.  The device recovers the kinetic energy that is present in the waste heat created by the.
Chapter 6: Voltage Regulator
Devices and technology unique to electric drive vehicles
Advisor:王明賢 Postgraduate:夏傳詠
UNIT III DC Choppers.
From Lecture1 vi , ii vo , io Power Processor Controller Source Load
Inverter Assembly.
Electrical Systems Series Circuits Parallel Circuits Electrical Power.
Controlled-Rectifier Fed Drive
Controlled-Rectifier Fed Drive
Electronic Devices Ninth Edition Floyd Chapter 17.
Cordless Electric Nailer
IMPEDENCE - SOURCE INVERTER FOR MOTOR DRIVES
Vibration Energy Harvesting Circuit to Power Wireless Sensor Nodes
Introduction to Linear Voltage Regulators
From Lecture1 vi , ii vo , io Power Processor Controller Source Load
ABOUT ME ….
Chapter 3 Automotive Systems.
Electric Potential.
Creating Circuit Diagrams
Solar Powered Power Bank
Presentation transcript:

MUEV Phase III By: Kevin Jaris & Nathan Golick

Introduction Petroleum is a finite resource. Demand for clean energy is driving the increase in the production of electric cars. Improvements in regenerative braking techniques will increase the range and efficiency of electric cars.

Regenerative Braking Cars generally dissipate kinetic energy via friction braking. Regenerative braking recovers a significant amount of the kinetic energy. Energy returned to battery. Increases range per charge.

Past Work Phase I Design a prototype electric vehicle test platform for testing with the following specifications: – Minimum round trip distance of 25 miles – Maximum speed of 40 mph – Operate within temperature range of -10˚F to 100˚F –Acquire and display data from the motor and battery subsystems –Operate within a curb weight of 800 to 1800 lbs

Past Work Phase II Modeling Battery DC Motor Controller Vehicle Dynamics Loads –A/C –Lighting –Heat Verify and Optimize Vehicle Model Perform data acquisition Adjust model until desired performance is achieved. Compare experimental and simulated outputs of subsystems

Original Project Goals Design and simulate power electronics Build power electronics Test power electronics in lab Connect to DC motor/generator Create braking profile Model in Simulink Investigate variable speed drive

Functional Description The DC motor/generator produces a back EMF voltage during regenerative braking. Back EMF voltage is the input to the boost converter. The boost converter output is 43 volts. Output voltage charges batteries.

Performance Specifications Generate a constant 43 volt output voltage while in regenerative braking mode Braking voltages range from about 5 to 35 volts. System designed for minimal project construction costs.

System Block Diagram

Boost Converter Basics

Design Process Calculate the component values Design and simulate the boost converter Build boost converter Analyzed and compared the results Solve problems that arose

Design Equations

Boost Converter Schematic

Low Voltage Input Boost Converter Simulation Vin

High Voltage Input Boost Converter Simulation

Test Setup

Additional Circuitry Safety shut off circuit Gate driver circuit Snubber circuit

Issues MOSFET temperature Power supply current limit Wire gauge IC chips highly vulnerable to static discharge Individual to series inductor switch

Output Voltage

Input Current and Drain Voltage

Solutions Parallel MOSFETs Parallel inductors Thermocouple to monitor temperature Fan and heat sinks for heat dissipation to keep case temperature under 90º C Moved to power lab Replaced wire with 16 gauge Testing and replacement of ICs

Final Results Vin(V)Duty CycleVo(V)Io(A) 3520% % % % % % % %

Accomplished Goals Designed and simulated boost converter/power electronics Built power electronics Tested power electronics

Future Work Complete duty cycle controller Attach DC motor/generator Test with braking profile Model subsystem in Simulink Connect regenerative braking system to the MUEV

Questions?

Power Dissipation