Final Year Project Final Presentation Title: Energy Conversion for low voltage sources.

Size: px
Start display at page:

Download "Final Year Project Final Presentation Title: Energy Conversion for low voltage sources."

Transcription

1 Final Year Project Final Presentation Title: Energy Conversion for low voltage sources. Supervisor: Dr.Maeve Duffy

2 Aim of Project The aim of this project was to develop circuits to demonstrate the performance of bio fuel cells which are being developed by the Energy research centre in NUI Galway. The ideal end goal would have been where a Microbial Fuel Cell arrangement has the ability to charge a mobile phone battery.

3 Outline of Presentation This presentation will deal with the following topics: 1. Overview of Project 2. Work Completed 3. Outlook for future development 4. Conclusions 5. Questions

4 1) Overview of project:

5 Demonstration Circuit:

6 2) Work Completed: ThéveninEquivalent circuit: LED Demonstration Demonstration of fuel cell powering low power devices Storage Capacitor Knowledge of charging algorithms Demonstration of fuel cell powering a DC Fan

7 ThéveninEquivalent circuit: Power Density curve: Voltag ge (V) Power density (mw/m 2 ) Current density (ma/cm 2 ) 0

8 Blue line represents the power density Vs current density. White line represents Voltage Vs current density. Area across which power density is measured is 5.4cm^2. 1cm^2 = m^2 The point at which we have maximum power output is the second from right so we take this point. When worked out the following outputs result: Power ~ milli-watts Voltage ~ 0.42 volts Current ~ milli-amps Internal Resistance of Fuel Cell ~ 345 ohms

9 ThéveninEquivalent circuit:

10 LED Demonstration: On testing the LED s found in the electronics labs it was found that the lowest power LED needed a minimum of 3.8 milli- Amps and a minimum of 1.83 volts to light. This meant the voltage & current output from the fuel cell needed to be stepped up. There is three solutions to this problem: 1) Cascade a number of fuel cells in parallel, this way increasing the current output and then use a DC-DC boost converter to step up the voltage. 2) Use an RC circuit to boost the current using a mosfetfor switching and then use a DC-DC boost converter to step the voltage up. 3) Use a low power LED (1 milli-amp LED can be obtained)

11 Low power devices identified: Voltage needed: 1.5 Volts DC Power needed: Watts Current needed: micro- Amps Voltage needed: 2.7 volts DC Power needed: 1.4 Watts Current needed: 0.42 Amps Voltage needed: ~3.3 volts DC Power needed: unknown Current needed: unknown

12 Demonstration of fuel cell powering low power devices: To demonstrate these devices a DC-DC boost converter needed to be designed. This caused problems as most common DC-DC boost converters use either diodes or BJT s which have a diode between the base and emitter. The BJT is used due to its fast switching speeds. The diodes cause a minimum of 0.3 voltage drop. As the output voltage from the fuel cell is so low already we can not afford to use BJT s.

13 Demonstration of fuel cell powering low power devices: Using a boost converter obtained from Texas instruments called the TPS61200 the output voltage could be boosted. This converter gets around the problem of using BJT s by using MOSFET s instead. The TPS61200 can needs 0.8 volts to startup, after which it can operate at a voltage as low as 0.3 volts. As the TPS61200 was to small to fit on a board I needed to order the evaluation module.

14 Demonstration of fuel cell powering low power devices:

15 Demonstration of fuel cell powering low power devices:

16 Demonstration of fuel cell powering low power devices:

17 Demonstration of fuel cell powering low power devices: From using the formula to work out the minimum inductance needed (Vin = L * DI/DT),I found that the minimum inductance required was micro-henry s. So the 2.2 micro-henry should be satisfactory to induct the input current from the fuel cell.

18 Storage capacitor: As the DC-DC boost converter needed more power at start up than the MFC could provide a Capacitor needed to integrated into the system to output enough power. It was found through using the equation: E= 1 CV 2 that the Energy which could be obtained from a 0.1 Farad capacitor would be enough to get over the start up power requirements. 3.3 Farad and 10 Farad Capacitors were also obtained to enable the powering of high load devices for longer and devices which require more Energy than the 0.1 Farad capacitor can store. 2

19 Storage capacitor:

20 Research of battery chemistries, charging algorithms: Example of type of voltage and current used to charge a phone: My phone (Sony Ericsson) is a lithium-polymer battery which supplies 3.6 volts to the phone. And has 780 milli- Amp hours. The charger for the phone supplies 5 volts and a current of 1Amp. This is probably implementing a charging algorithm known as constant charge where a constant charge is applied to the battery. The type of charging algorithm that could be implemented for this project would be either pulse charging or trickle charging.

21 Demonstration of fuel cell powering a DC Fan:

22 Demonstration of fuel cell powering a DC Fan:

23 3) Outlook for future development Continuous powering of low power device How many capacitors are needed. Possible switching control devices. How many Microbial Fuel Cells are needed Research on more efficient DC-DC boost converters. Further Research on battery charging profiles.

24 Continuous powering of a low power device There are various ways in which a continuous powering of devices using this circuit can be implemented. Obviously as the load attached to the DC-DC boost converter changes so too does the rate of current discharge from the capacitors. For this reason a system has to be devised for each specific device. An example chosen for this presentation is the continuous powering of a 1.5 volt DC calculator Through testing it has been found that the calculator draws a constant current of 9 μamps from output of the Boost converter and a constant voltage of 3.3 volts is applied across it.

25 Continuous powering of a low power device A 0.1 Farad capacitor took approximately 194 seconds to charge fully. When tested a fully charged capacitor could power the calculator for 100 seconds. This meant that if the system was going to be implemented by allowing the capacitors to fully charge then three 0.1 Farad Capacitors would have to be used as the charge rate does not equal the discharge rate. This also meant using two extra Microbial Fuel Cells as each capacitor would need to be charged separately.

26 Continuous powering of a low power device The alternative to this is to charge the capacitor for about 40 seconds. If you do this the calculator can be powered for nearly 40 seconds meaning you will only need two capacitors to continuously power the calculator. This in turn means there is less MFC s needed to charge the capacitors.

27 Continuous powering of a low power device Possible switching devices: 555 Timer MSP430C1101 Voltage Comparator

28 Continuous powering of a low power device Advantages: Inexpensive (47 cent) Easy to implement Disadvantages: Sync issues may arise Inflexible 555 Timer: Higher operational voltage & input current (More MFC s used to power it) Minimum of 3 milli-amps & 4.5 volts

29 Continuous powering of a low power device Voltage Comparator: Advantages: Inexpensive ( 1.65) Easy to implement Low voltage and current input (Less MFC s used to power it) 1.8 volts & 15 μamps Disadvantages: Value of voltage across capacitor has to be very precise

30 Continuous powering of a low power device MSP430C1101: Advantages: More Flexible MP could also be used if implementing a smart battery charger Low voltage and current input (Less MFC s used to power it) 2.2 volts and 150 μamps Disadvantages: Expensive($49.49 Evaluation module & chip) More complex to implement

31 Research on more efficient DC-DC boost converters. The following graph shows the efficiency of the DC-DC boost converter at an input voltage of 0.8 volts:

32 Research on more efficient DC-DC boost converters. An example of this lack of efficiency was observed when powering the calculator. At the start there was from 0.9milli- Amps being drawn from the capacitor into the Boost converter which had 0.8 volts applied across the input. At the end there was 0.3 volts applied across the DC-DC boost converter and 2.2 milli-amps being drawn from it. This means the input power was between 0.72 milli-watts down to 0.66 milli-watts yet the output power was only milli-watts. This is equal to 4.5 % efficiency.

33 Further Research on battery charging profiles. As the 0.1 Farad capacitor takes so long to charge and outputs relatively so little power it is hard to know if a system like the system proposed for the calculator can be altered to trickle charge a even a 1 milli-amps hour battery without drastically increasing the number of Microbial Fuel Cells on available. For a trickle charge algorithm usually the rate at which the battery is Charged is 15 % of the rate at which constant charging Algorithms are implemented. If implemented it is hard to know whether the current being drawn into the battery would be enough to compensate for the idle discharge of the battery through air.

34 Further Research on battery charging profiles. Through testing of the discharge rate of a 10 Farad capacitor a possible way to implement a constant voltage\current charging algorithm was identified. The 10 Farad capacitor powered an Led in series with a 1k resistor for 5 minutes supplying the Led with a constant current of 1.6 milli-amps. This means that if twelve 10 Farad capacitors where charged a 1.5 milli-amp Hour battery could be charged.

35 4) Conclusion: Better understanding of Electronic circuit design & MFC s LED Demonstration Demonstration of fuel cell powering low power devices Knowledge of charging algorithms

36 5) Questions!!

Solar Power Energy Harvesting Electrical Integration

Solar Power Energy Harvesting Electrical Integration WHITEPAPER Solar Power Energy Harvesting Electrical Integration Contents Introduction... 1 Solar Cell Electrical Characteristics... 2 Energy Harvesting System Topologies... 4 Design Guide... 6 Indoor Single

More information

Power Management Chip. Anthony Kanago Valerie Barry Benjamin Sprague John Sandmeyer

Power Management Chip. Anthony Kanago Valerie Barry Benjamin Sprague John Sandmeyer mmax Power Management Chip Anthony Kanago Valerie Barry Benjamin Sprague John Sandmeyer 1 Outline Design Goals and Challenges Power Management IC Design Maximum Power Point Tracking (MPPT) Implementation

More information

Review: The West Mountain Radio CBA-IV Battery Analyzer Phil Salas AD5X. Figure 1: West Mountain Radio CBA-IV Battery Analyzer

Review: The West Mountain Radio CBA-IV Battery Analyzer Phil Salas AD5X. Figure 1: West Mountain Radio CBA-IV Battery Analyzer Review: The West Mountain Radio CBA-IV Battery Analyzer Phil Salas AD5X Figure 1: West Mountain Radio CBA-IV Battery Analyzer Introduction There has been more emphasis on battery power of late, particularly

More information

New energy for the future

New energy for the future World Class Charging Systems E x c e l l e n t T e c h n o l o g y, E f f i c i e n c y a n d Q u a l i t y New energy for the future Lithium-ion energy systems for the materials handling industry LIONIC

More information

DESIGN OF HIGH ENERGY LITHIUM-ION BATTERY CHARGER

DESIGN OF HIGH ENERGY LITHIUM-ION BATTERY CHARGER Australasian Universities Power Engineering Conference (AUPEC 2004) 26-29 September 2004, Brisbane, Australia DESIGN OF HIGH ENERGY LITHIUM-ION BATTERY CHARGER M.F.M. Elias*, A.K. Arof**, K.M. Nor* *Department

More information

Systems: Electronics

Systems: Electronics Systems: Electronics Resistors & Capacitors Units for resistors and capacitors size/component small large resistance ohm kilohm megaohm capacitance picofarad microfarad farad current milliampere Ampere

More information

Mobile Battery Charger Circuit Diagram Without Transformer

Mobile Battery Charger Circuit Diagram Without Transformer Mobile Battery Charger Circuit Diagram Without Transformer The circuit is probably as per Andy Aka but from the photo, it does not have the If battery is 500 mah it will charge at around C/5 and if left

More information

CHAPTER 19 DC Circuits Units

CHAPTER 19 DC Circuits Units CHAPTER 19 DC Circuits Units EMF and Terminal Voltage Resistors in Series and in Parallel Kirchhoff s Rules EMFs in Series and in Parallel; Charging a Battery Circuits Containing Capacitors in Series and

More information

L, LTC, LTM, LT, Burst Mode, are registered trademarks of Linear Technology Corporation.

L, LTC, LTM, LT, Burst Mode, are registered trademarks of Linear Technology Corporation. DESCRIPTION Demonstration circuits 1376A-A and 1376A-B are High Efficiency USB Power Manager + Triple Step Down DC/DC featuring the LTC3555-1 and LTC3555-3 respectively. The LTC 3555-1/LTC3555-3 are highly

More information

QUICK START GUIDE FOR DEMONSTRATION CIRCUIT 551A-B LITHIUM-ION BATTERY CHARGER WITH CHARGE TERMINATION

QUICK START GUIDE FOR DEMONSTRATION CIRCUIT 551A-B LITHIUM-ION BATTERY CHARGER WITH CHARGE TERMINATION DESCRIPTION LTC4002-8.4 Demonstration circuit 551A-B is a complete constant-current/constant- voltage battery charger designed to charge a two cell Lithium-Ion Battery. Programmed for 3A charge current,

More information

AP Physics B Ch 18 and 19 Ohm's Law and Circuits

AP Physics B Ch 18 and 19 Ohm's Law and Circuits Name: Period: Date: AP Physics B Ch 18 and 19 Ohm's Law and Circuits MULTIPLE CHOICE. Choose the one alternative that best completes the statement or answers the question. 1) A device that produces electricity

More information

Battery Technologies a learn.sparkfun.com tutorial

Battery Technologies a learn.sparkfun.com tutorial Battery Technologies a learn.sparkfun.com tutorial Available online at: http://sfe.io/t28 Contents Battery Options Terminology Lithium Polymer Nickel Metal Hydride Coin Cell Alkaline Resources and Going

More information

Chapter 3. ECE Tools and Concepts

Chapter 3. ECE Tools and Concepts Chapter 3 ECE Tools and Concepts 31 CHAPTER 3. ECE TOOLS AND CONCEPTS 3.1 Section Overview This section has four exercises. Each exercise uses a prototyping board for building the circuits. Understanding

More information

White Paper: Pervasive Power: Integrated Energy Storage for POL Delivery

White Paper: Pervasive Power: Integrated Energy Storage for POL Delivery Pervasive Power: Integrated Energy Storage for POL Delivery Pervasive Power Overview This paper introduces several new concepts for micro-power electronic system design. These concepts are based on the

More information

Battery Bank for Wind Turbine. Project Proposal Prash Ramani, Marcos Rived TA: Katherine O Kane

Battery Bank for Wind Turbine. Project Proposal Prash Ramani, Marcos Rived TA: Katherine O Kane Battery Bank for Wind Turbine Project Proposal Prash Ramani, Marcos Rived TA: Katherine O Kane Table of Contents: 1.0 Introduction.2 1.1 Statement of Purpose 1.1.0 Scope 1.1.1 Purpose 1.2 Objectives 1.2.1

More information

QUICK START GUIDE FOR DEMONSTRATION CIRCUIT 1061A LINEAR LI-ION BATTERY CHARGER WITH DUAL SYNCHRONOUS BUCK REGULATOR

QUICK START GUIDE FOR DEMONSTRATION CIRCUIT 1061A LINEAR LI-ION BATTERY CHARGER WITH DUAL SYNCHRONOUS BUCK REGULATOR Demonstration circuit 1061A is a complete single cell Lithium-Ion battery charger and two synchronous buck voltage regulators with adjustable output voltages. Operating at a frequency of 2.25MHz, the regulators

More information

AMX8X5 Using Low-Cost Ceramic Capacitors for RTC Backup Power

AMX8X5 Using Low-Cost Ceramic Capacitors for RTC Backup Power 1. Introduction This application note describes the use of low-cost capacitors as a backup power source for the real time clock (RTC) families. The ultra-low power consumption of the enables designers

More information

LOW CARBON FOOTPRINT HYBRID BATTERY CHARGER FINAL PRESENTATION

LOW CARBON FOOTPRINT HYBRID BATTERY CHARGER FINAL PRESENTATION LOW CARBON FOOTPRINT HYBRID BATTERY CHARGER FINAL PRESENTATION Students: Blake Kennedy, Phil Thomas Advisors: Mr. Gutschlag, Dr. Huggins Date: May 1, 2008 1 PRESENTATION OUTLINE Project Overview Design

More information

A Novel Hybrid Smart Grid- PV-FC V2G Battery Charging Scheme

A Novel Hybrid Smart Grid- PV-FC V2G Battery Charging Scheme A Novel Hybrid Smart Grid- PV-FC V2G Battery Charging Scheme By E. Elbakush* A. M. Sharaf** *University of New Brunswick **SHARAF Energy Systems Inc. Contents Abstract Introduction System Configuration

More information

Design of a Lead Acid Battery Charger System A THESIS SUBMITTED IN PARTIAL FULFILLMENT OF THE REQUIREMENTS FOR THE DEGREE OF

Design of a Lead Acid Battery Charger System A THESIS SUBMITTED IN PARTIAL FULFILLMENT OF THE REQUIREMENTS FOR THE DEGREE OF Design of a Lead Acid Battery Charger System A THESIS SUBMITTED IN PARTIAL FULFILLMENT OF THE REQUIREMENTS FOR THE DEGREE OF Bachelor of technology In Electronics and Instrumentation Engineering By ABHIK

More information

15 Electrical Circuits Name Worksheet A: SERIES CIRCUIT PROBLEMS

15 Electrical Circuits Name Worksheet A: SERIES CIRCUIT PROBLEMS Worksheet A: SERIES CIRCUIT PROBLEMS be careful to use proper significant figures on all answers 1. What would be the required voltage of an energy source in a circuit with a current of 10.0 A and a resistance

More information

Optimizing Drive Systems for Energy Savings

Optimizing Drive Systems for Energy Savings Optimizing Drive Systems for Energy Savings Richard Messer Siemens AG, Industry Sector, Drive Technologies, Motion Control Systems Erlangen, Germany AIMCAL Web Handling Conference 2012 Prague, Czech Republic

More information

MHP-TA RESETTABLE TCO DEVICE For Lithium Battery Protection

MHP-TA RESETTABLE TCO DEVICE For Lithium Battery Protection MHP-TA RESETTABLE TCO DEVICE For Lithium Battery Protection Littelfuse PolySwitch MHP-TA circuit protection device s thermal activation and other advanced features help provide a cost-effective, space-saving

More information

Polymer-Lithium-Ion Cell Charger

Polymer-Lithium-Ion Cell Charger Datasheet AC12050615A Polymer-Lithium-Ion Cell Charger Features: 1000mA Fast Charge Capability Low Cost, Highly Reliable 5.5V to 20V DC Input Voltage Deep-Discharge Battery Preconditioning Intelligent

More information

Technical Note. Management of Sealed Lead Acid Batteries in Reliable Small DC Standby Power Supply Systems

Technical Note. Management of Sealed Lead Acid Batteries in Reliable Small DC Standby Power Supply Systems Technical Note Management of Sealed Lead Acid Batteries in Reliable Small DC Standby Power Supply Systems Automation Products Introduction As more and more remote monitoring is installed on sites ranging

More information

SECTION #1 - The experimental design

SECTION #1 - The experimental design Six Lemons in a Series/Parallel Charging a 4.4 Farad Capacitor, NO Load Resistor SECTION #1 - The experimental design 1a. The goal of this experiment is to see what voltage I can obtain with the lemon

More information

The Benefits of Cell Balancing

The Benefits of Cell Balancing The Benefits of Cell Balancing Application Note AN141.0 Author: Yossi Drori and Carlos Martinez Introduction In the world of portable consumer products, the single biggest complaint voiced by the consumer

More information

Lithium Ion Battery Charging Using Bipolar Transistors

Lithium Ion Battery Charging Using Bipolar Transistors Application Note 40 Lithium Ion Battery Charging Using Bipolar Transistors Introduction Portable applications such as cell phones are becoming increasingly complex with more and more features designed

More information

Power Management Solution: Constant Voltage (CV) Pulse Charging of Hybrid Capacitors

Power Management Solution: Constant Voltage (CV) Pulse Charging of Hybrid Capacitors VISHAY BCCOMPONENTS www.vishay.com Aluminum Capacitors By Gerald Tatschl ENYCAP TM 196 HVC SERIES GENERAL INFORMATION In order to fully utilize the performance of ENYCAP 196 HVC capacitors, a reliable

More information

QUICK START GUIDE FOR DEMONSTRATION CIRCUIT 1020 HIGH EFFICIENCY USB POWER MANAGER + TRIPLE STEP-DOWN DC/DC LTC3555

QUICK START GUIDE FOR DEMONSTRATION CIRCUIT 1020 HIGH EFFICIENCY USB POWER MANAGER + TRIPLE STEP-DOWN DC/DC LTC3555 DESCRIPTION Demonstration Circuit 1020 is a High Efficiency USB Power Manager + Three Step-Down DC/DC Converters featuring the LTC 3555. The LTC 3555 is a highly integrated power management and battery

More information

ECE 480 Design Team 3: Designing Low Voltage, Low Current Battery Chargers

ECE 480 Design Team 3: Designing Low Voltage, Low Current Battery Chargers Michigan State University Electrical Engineering Department ECE 480 Design Team 3: Designing Low Voltage, Low Current Battery Chargers Application Note Created by: James McCormick 11/8/2015 Abstract: The

More information

Lipo Rider V1.3 - Lipo Pil Güç Devresi - SeeedStudio

Lipo Rider V1.3 - Lipo Pil Güç Devresi - SeeedStudio Lipo Rider V1.3 - Lipo Pil Güç Devresi - SeeedStudio Features Jst 2.0 connector Stable 5V USB power supply regardless of source Charge/Recharge algorithms built into chip Charge Lithium Polymer Battery

More information

High Efficiency Battery Charger using Power Components [1]

High Efficiency Battery Charger using Power Components [1] APPLICATION NOTE AN:101 High Efficiency Battery Charger using Power Components [1] Marco Panizza Senior Applications Engineer Contents Page Introduction 1 A Unique Converter Control Scheme 1 The UC3906

More information

OUTLINE INTRODUCTION SYSTEM CONFIGURATION AND OPERATIONAL MODES ENERGY MANAGEMENT ALGORITHM CONTROL ALGORITHMS SYSTEM OPERATION WITH VARYING LOAD

OUTLINE INTRODUCTION SYSTEM CONFIGURATION AND OPERATIONAL MODES ENERGY MANAGEMENT ALGORITHM CONTROL ALGORITHMS SYSTEM OPERATION WITH VARYING LOAD OUTLINE INTRODUCTION SYSTEM CONFIGURATION AND OPERATIONAL MODES ENERGY MANAGEMENT ALGORITHM CONTROL ALGORITHMS SYSTEM OPERATION WITH VARYING LOAD CONCLUSION REFERENCES INTRODUCTION Reliable alternative

More information

DC/DC power modules basics

DC/DC power modules basics DC/DC power modules basics Design Note 024 Ericsson Power Modules General Abstract This design note covers basic considerations for the use of on-board switch mode DC/DC power modules, also commonly known

More information

Power Management Solution With 196 HVC ENYCAP TM for Mini Charger and Fixed Voltage Supply Board

Power Management Solution With 196 HVC ENYCAP TM for Mini Charger and Fixed Voltage Supply Board VISHAY BCCOMPONENTS www.vishay.com Aluminum Capacitors By Gerald Tatschl MAL29699003E3 96 HVC ENYCAP TM - MINI CHARGER AND BACKUP BOARD DESCRIPTION The MAL29699003E3 mini charger and backup demonstration

More information

ETA mA Fully Integrated Linear Charger for 1 Cell Li-ion Battery APPLICATIONS ORDERING INFORMATION TYPICAL APPLICATION

ETA mA Fully Integrated Linear Charger for 1 Cell Li-ion Battery APPLICATIONS ORDERING INFORMATION TYPICAL APPLICATION 800mA Fully Integrated Linear Charger for 1 Cell Li-ion Battery DESCRIPTION is a single cell, fully integrated constant current (CC)/constant voltage (CV) Li-ion battery charger. Its compact package with

More information

DEVELOPING AND BUILDING A PROTOTYPE REAR WHEEL DRIVE ELECTRIC CAR. PRJ.021 F17/0294/2004.

DEVELOPING AND BUILDING A PROTOTYPE REAR WHEEL DRIVE ELECTRIC CAR. PRJ.021 F17/0294/2004. DEVELOPING AND BUILDING A PROTOTYPE REAR WHEEL DRIVE ELECTRIC CAR. PRJ.021 PRESENTER: MURIITHI JOSEPH NYAGA F17/0294/2004. SUPERVISOR: EXAMINER: DR. J.M MBUTHIA MR. N.S WALKADE An electric car is an alternative

More information

Learning Objectives:

Learning Objectives: Topic 5.5 High Power Switching Systems Learning Objectives: At the end of this topic you will be able to; recall the conditions under which a thyristor conducts; explain the significance of the following

More information

Figure 1: Graphs Showing the Energy and Power Consumed by Two Systems on an ROV during a Mission

Figure 1: Graphs Showing the Energy and Power Consumed by Two Systems on an ROV during a Mission Power Systems 3 Cornerstone Electronics Technology and Robotics III Notes primarily from Underwater Robotics Science Design and Fabrication, an excellent book for the design, fabrication, and operation

More information

Solar Based Up Convertor Handles Remote Sensors

Solar Based Up Convertor Handles Remote Sensors Solar Based Up Convertor Handles Remote Sensors This project is an up-convertor with a mix of functions. This gadget essentially converts a low voltage source to a higher voltage source. Usually you can

More information

THE SOLAR POWERED ANTI-THEFT BAG

THE SOLAR POWERED ANTI-THEFT BAG THE SOLAR POWERED ANTI-THEFT BAG Ruchi Mangesh Jadhav 1, Sarika Hari Gaonkar 2, Darshan Kamlesh Khatri 3 Soumya Satish Bangera 4 a ruchimjadhav@gmail.com, b sarikagaonkar01@gmail.com, c darshankk.dk@gmail.com,

More information

6.UAP Thesis Proposal: Design of an Inductively-Coupled. AUV Recharging System

6.UAP Thesis Proposal: Design of an Inductively-Coupled. AUV Recharging System 6.UAP Thesis Proposal: Design of an Inductively-Coupled AUV Recharging System Sam Kendig Thesis Supervisors: James Kirtley, Jr. and Chryssostomos Chryssostomidis 12th December 2005 1 Project Overview Many

More information

Use of Aqueous Double Layer Ultracapacitor using Hybrid CDI-ED Technology for the use in Hybrid Battery Systems

Use of Aqueous Double Layer Ultracapacitor using Hybrid CDI-ED Technology for the use in Hybrid Battery Systems Use of Aqueous Double Layer Ultracapacitor using Hybrid CDI-ED Technology for the use in Hybrid Battery Systems Overview By Robert Atlas, Aqua EWP,LLC. September 2007 Aqua EWP. has for the last 10 years

More information

Time-Division Multiplexed Pulsed Charging of Modular Pb-acid Battery Storage

Time-Division Multiplexed Pulsed Charging of Modular Pb-acid Battery Storage IOSR Journal of Electrical and Electronics Engineering (IOSR-JEEE) e-issn: 2278-1676,p-ISSN: 2320-3331, Volume 9, Issue 4 Ver. II (Jul Aug. 2014), PP 35-40 Time-Division Multiplexed Pulsed Charging of

More information

Available online at ScienceDirect. Procedia Technology 21 (2015 ) SMART GRID Technologies, August 6-8, 2015

Available online at  ScienceDirect. Procedia Technology 21 (2015 ) SMART GRID Technologies, August 6-8, 2015 Available online at www.sciencedirect.com ScienceDirect Procedia Technology 21 (2015 ) 619 624 SMART GRID Technologies, August 6-8, 2015 Battery Charging Using Doubly Fed Induction Generator Connected

More information

Lecture 1. Introduction to Power Electronics

Lecture 1. Introduction to Power Electronics Lecture 1 Introduction to Power Electronics Definition of Power Electronics Power Electronics (PE) is power processing It is an application of electronic circuits to control the power between the source

More information

Use of Aqueous Double Layer Ultracapacitor using Hybrid CDI-ED Technology for the use in Hybrid Battery Systmes

Use of Aqueous Double Layer Ultracapacitor using Hybrid CDI-ED Technology for the use in Hybrid Battery Systmes Overview Use of Aqueous Double Layer Ultracapacitor using Hybrid CDI-ED Technology for the use in Hybrid Battery Systmes By Robert Atlas, Aqua EWP,LLC. September 2006 Aqua EWP. has for the last 10 years

More information

Engineers in Training Day 2. Developed by Shodor and Michael Woody

Engineers in Training Day 2. Developed by Shodor and Michael Woody Engineers in Training Day 2 Developed by Shodor and Michael Woody What uses electricity? Name some things that use electricity Try to name something you like to do that doesn t use electricity. Everything

More information

Second Generation Bicycle Recharging Station

Second Generation Bicycle Recharging Station Second Generation Bicycle Recharging Station By Jasem Alhabashy, Riyadh Alzahrani, Brandon Gabrelcik, Ryan Murphy and Ruben Villezcas Team 13 Final Report For ME486c Document Submitted towards partial

More information

XA4217. Preset 8.4V Charge Voltage with 1% Accuracy

XA4217. Preset 8.4V Charge Voltage with 1% Accuracy High Accuracy Linear Li-Lon Battery Charger Features Preset 8.4V Charge Voltage with 1% Accuracy Input Voltage:9-10V DC Pre-Charging, the Charge Current is Programmable Charge Current Up to 1A adjustable

More information

Lipo Rider V1.3. The Lipo Rider can be purchased as a separate board or as a kit (Lipo Rider + Lithium Battery + Solar Panel).

Lipo Rider V1.3. The Lipo Rider can be purchased as a separate board or as a kit (Lipo Rider + Lithium Battery + Solar Panel). Lipo Rider V1.3 Power your favourite electronic kit with green energy! The Lipo Rider board allows you ride the solar wave to run your favourite 5V device. The Lipo Rider board is the ideal green power

More information

RV-1805-C3 Application Note

RV-1805-C3 Application Note Application Note Date: January 2015 Revision N : 1.3 1/11 Headquarters: Micro Crystal AG Mühlestrasse 14 CH-2540 Grenchen Switzerland Tel. Fax Internet Email +41 32 655 82 82 +41 32 655 82 83 www.microcrystal.com

More information

LOW CARBON FOOTPRINT HYBRID BATTERY CHARGER PROJECT PROPOSAL

LOW CARBON FOOTPRINT HYBRID BATTERY CHARGER PROJECT PROPOSAL LOW CARBON FOOTPRINT HYBRID BATTERY CHARGER PROJECT PROPOSAL Students: Blake Kennedy, Phil Thomas Advisors: Dr. Huggins, Mr. Gutschlag, Dr. Irwin Date: December 11, 2007 PRESENTATION OUTLINE Project Summary

More information

LX2206 Dual Level Li-Ion Battery Charger

LX2206 Dual Level Li-Ion Battery Charger Dual Level Li-Ion Battery Charger Manufactured by: Microsemi Corporation Integrated Product Group Garden Grove, Telephone: 714 898-8121 More than solutions enabling possibilities PRODUCT DESCRIPTION The

More information

Optimal Design Methodology for LLC Resonant Converter in Battery Charging Applications Based on Time-Weighted Average Efficiency

Optimal Design Methodology for LLC Resonant Converter in Battery Charging Applications Based on Time-Weighted Average Efficiency LeMeniz Infotech Page number 1 Optimal Design Methodology for LLC Resonant Converter in Battery Charging Applications Based on Time-Weighted Average Efficiency Abstract The problems of storage capacity

More information

Electronics Technology and Robotics I Week 2 Basic Electrical Meters and Ohm s Law

Electronics Technology and Robotics I Week 2 Basic Electrical Meters and Ohm s Law Electronics Technology and Robotics I Week 2 Basic Electrical Meters and Ohm s Law Administration: o Prayer o Bible Verse o Turn in quiz Meters: o Terms and Definitions: Analog vs. Digital Displays: Analog

More information

DC/DC Power Modules Basics

DC/DC Power Modules Basics DC/DC Power Modules Basics Design Note 024 Flex Power Modules General Abstract This design note covers basic considerations for the use of on-board switch mode DC/DC power modules, also commonly known

More information

Period 11 Activity Sheet Solutions: Electric Current

Period 11 Activity Sheet Solutions: Electric Current Period 11 Activity Sheet Solutions: Electric Current Activity 11.1: How Can Electric Charge Do Work? Your instructor will demonstrate a Wimshurst machine, which separates electric charge. a) Describe what

More information

PT8A mA Li-ion/Polymer Battery Charger

PT8A mA Li-ion/Polymer Battery Charger Features A Constant-Current / Constant-Voltage Linear Charger for Single-Cell Li-ion/Polymer Batteries Integrated Pass Element and Current Sensor Highly-Integrated, Requiring No External FETs or Blocking

More information

INTRODUCTION Team Composition Electrical System

INTRODUCTION Team Composition Electrical System IGVC2015-WOBBLER DESIGN OF AN AUTONOMOUS GROUND VEHICLE BY THE UNIVERSITY OF WEST FLORIDA UNMANNED SYSTEMS LAB FOR THE 2015 INTELLIGENT GROUND VEHICLE COMPETITION University of West Florida Department

More information

Power Quality. Power Factor Wiring and Service. Background. Introduction. bchydro.com

Power Quality. Power Factor Wiring and Service. Background. Introduction. bchydro.com Power Quality Power Factor Wiring and Service Scope Power factor is a major consideration in efficient building or system operation. It is the measure of how effectively your equipment is converting electric

More information

Ardalan Vahidi. Clemson Renewable Energy Systems Lab Mechanical Engineering Clemson University

Ardalan Vahidi. Clemson Renewable Energy Systems Lab Mechanical Engineering Clemson University Ardalan Vahidi Clemson Renewable Energy Systems Lab Mechanical Engineering Clemson University Ultracapacitor-assisted conventional powertrains Ultracapacitor-assisted fuel cells Future research plan: Ultracapacitor

More information

HX6038 HX

HX6038 HX HX1001 Advanced Linear Charge Management Controller Features Preset 8.4V Charge Voltage with 1% Accuracy Input Voltage: 9V-16V Pre-Charging, the Charge Current is Programmable Charge Current Up to 1A adjustable

More information

Factory Data: MOSFET Controls Supercapacitor Power Dissipation

Factory Data: MOSFET Controls Supercapacitor Power Dissipation Factory Data: MOSFET Controls Supercapacitor Power Dissipation By ROBERT CHAO, President and CEO, Advanced Linear Devices Recently revealed independent testing data shows that SAB MOSFET arrays designed

More information

ICS1702EB. ICS1702 Evaluation Board. Table 1 Cells R6 R8 1 Open Short 2 2.0k 2.0k 3 1.0k 2.0k 4 1.0k 3.0k 5 3.0k 12k 6 2.0k 10k 7 2.0k 12k 8 1.3k 9.

ICS1702EB. ICS1702 Evaluation Board. Table 1 Cells R6 R8 1 Open Short 2 2.0k 2.0k 3 1.0k 2.0k 4 1.0k 3.0k 5 3.0k 12k 6 2.0k 10k 7 2.0k 12k 8 1.3k 9. ICS70EB ICS70 Evaluation Board General Description Galaxy Power, Inc.'s ICS70 Evaluation Board allows quick evaluation of the ICS70 Charge Controller for Nickel-Cadmium and Nickel-Metal Hydride Batteries.

More information

User Manual 123electric Battery Management System 123\BMS Revision 1.4 Augusts 2015

User Manual 123electric Battery Management System 123\BMS Revision 1.4 Augusts 2015 User Manual 123electric Battery Management System 123\BMS Revision 1.4 Augusts 2015 Table of contents Introduction... 3 System structure... 3 Keep the batteries in a perfect condition : ALWAYS!... 5 Specifications...

More information

Designing Applications with Lithium-Ion Batteries

Designing Applications with Lithium-Ion Batteries Application Note Roland van Roy AN025 Sep 2014 Designing Applications with Lithium-Ion Batteries Contents 1. Introduction...1 2. Single Li-Ion Cell as Power Source...2 3. Battery Charging...6 4. Battery

More information

C&D VRLA Batteries Extended Run Time for Small UPS Machines

C&D VRLA Batteries Extended Run Time for Small UPS Machines TECHNICAL BULLETIN 41-7954 C&D VRLA Batteries Extended Run Time for Small UPS Machines 41-7954/0112/CD www.cdtechno.com Small UPS machines, in the range of 400 to 2500 VA, are typically used to provide

More information

NESSCAP ULTRACAPACITOR TECHNICAL GUIDE. NESSCAP Co., Ltd.

NESSCAP ULTRACAPACITOR TECHNICAL GUIDE. NESSCAP Co., Ltd. NESSCAP ULTRACAPACITOR TECHNICAL GUIDE 2008 NESSCAP Co., Ltd. 1 About Ultracapacitors? Enter the ultracapacitor, also known as a supercapacitor, Electric Double Layer Capacitor (EDLC), or pseudocapacitor.

More information

Off-grid Power for Wireless Networks. Training materials for wireless trainers

Off-grid Power for Wireless Networks. Training materials for wireless trainers Off-grid Power for Wireless Networks Training materials for wireless trainers Goals Provide a general view of the parts that comprise a solar photovoltaic system for telecommunication Understand the variables

More information

Three Phase Hermetic Protector Application Process

Three Phase Hermetic Protector Application Process Purdue University Purdue e-pubs International Compressor Engineering Conference School of Mechanical Engineering 1996 Three Phase Hermetic Protector Application Process J. Petraitis Texas Instruments Follow

More information

High Altitude Balloon

High Altitude Balloon High Altitude Balloon Power Bus Development Team Todd Rogers Aoun Barki Henok Feseha June 2009 Faculty Advisors John Wu Bruce Rahn (Mentor) Balloon Setup Balloon Parachute Connection Ring Experiment Box

More information

Power Management Solution: Constant Voltage (CV) Pulse Charging of Hybrid Capacitors

Power Management Solution: Constant Voltage (CV) Pulse Charging of Hybrid Capacitors VISHAY BCCOMPONENTS www.vishay.com Aluminum Capacitors By Gerald Tatschl ENYCAP TM 196 HVC SERIES GENERAL INFORMATION Rechargeable energy storage solutions are of high interest because of their flexibility,

More information

Quallion Large Battery Pack Technology. May 2009 Hisashi Tsukamoto, PhD. CEO/CTO Quallion LLC

Quallion Large Battery Pack Technology. May 2009 Hisashi Tsukamoto, PhD. CEO/CTO Quallion LLC Quallion Large Battery Pack Technology May 2009 Hisashi Tsukamoto, PhD. CEO/CTO Quallion LLC Quallion Milestones 1998 2001 2002 2003 2004 2005 2006 2007 2008 Company established in Southern California,

More information

Wireless Test Instrumentation for Rotating Parts

Wireless Test Instrumentation for Rotating Parts Wireless Test Instrumentation for Rotating Parts ECE 193 Advisor: Rajeev Bansal Olivia Bonner David Vold Brendon Rusch Michael Grogan ME 32 Advisor: Robert Gao Kyle Lindell Andrew Potrepka Problem Statement

More information

How to use the Multirotor Motor Performance Data Charts

How to use the Multirotor Motor Performance Data Charts How to use the Multirotor Motor Performance Data Charts Here at Innov8tive Designs, we spend a lot of time testing all of the motors that we sell, and collect a large amount of data with a variety of propellers.

More information

Lithium Ion Battery Charger for Solar-Powered Systems

Lithium Ion Battery Charger for Solar-Powered Systems Lithium Ion Battery Charger for Solar-Powered Systems General Description: The is a complete constant-current /constant voltage linear charger for single cell Li-ion and Li Polymer rechargeable batteries.

More information

Power Electronics Projects

Power Electronics Projects Power Electronics Projects I. POWER ELECTRONICS based MULTI-PORT SYSTEMS 1. Analysis, Design, Modeling, and Control of an Interleaved- Boost Full-ridge Three-Port Converter for Hybrid Renewable Energy

More information

Dynamic power path management in battery chargers: a highly integrated implementation

Dynamic power path management in battery chargers: a highly integrated implementation from ams AG Dynamic power path management in battery chargers: a highly integrated implementation By Mark Shepherd Field Applications Engineer (US), ams AG www.ams.com In portable electronic devices with

More information

Powerterm L120C Single Output PSU/Battery Chargers Model C2199A-1 (12V/8A) or Model C2199A-2 (24V/6A)

Powerterm L120C Single Output PSU/Battery Chargers Model C2199A-1 (12V/8A) or Model C2199A-2 (24V/6A) A Complete solution for small battery-backed dc instrument power systems. DATASHEET Supply 12Vdc 8A or 24Vdc 6A loads Ideal for RTU s, dataloggers, remote field instrumentation, alarm systems, etc. where

More information

Ag Features. Multi-Stage Charging. Solar Panel or DC Input. Maximum Power Point Tracking (MPPT) Very Low Power Consumption

Ag Features. Multi-Stage Charging. Solar Panel or DC Input. Maximum Power Point Tracking (MPPT) Very Low Power Consumption Datasheet Ag103 Intelligent Sealed Lead Acid Solar Battery Charger Module Pb 1 Features Multi-Stage Charging Solar Panel or DC Input Maximum Power Point Tracking (MPPT) Very Low Power Consumption Wide

More information

Components for your PV Solar Electric System

Components for your PV Solar Electric System Components for your PV Solar Electric System Here is a brief description of the major components of a Solar Electric System. The components vary depending on whether batteries will be used in your system.

More information

Advanced Technology Lithium Polymer Batteries for High Power Applications

Advanced Technology Lithium Polymer Batteries for High Power Applications Advanced Technology Lithium Polymer Batteries for High Power Applications Robert L. Myers Director, Science and Technology Athena Global Energy Solutions, Inc. bob.myers@athena1.com Today s Li-ion Battery

More information

Lithium Polymer Battery Packs for RC Use FAQ s By Chris Nicastro 3/9/2012

Lithium Polymer Battery Packs for RC Use FAQ s By Chris Nicastro 3/9/2012 Lithium Polymer Battery Packs for RC Use FAQ s By Chris Nicastro 3/9/2012 Lithium Polymer or Lipoly batteries come in many varieties but two types are very popular for radio control use. The most popular

More information

Standalone Linear Li-Ion Battery Charger with Thermal Regulation

Standalone Linear Li-Ion Battery Charger with Thermal Regulation HM4056 Standalone Linear Li-Ion Battery Charger with Thermal Regulation FEATURES DESCRIPTION Programmable Charge Current up to 1A No MOSFET, Sense Resistor or Blocking Diode Required Constant-Current/Constant-Voltage

More information

Care and Feeding of Rechargeable Batteries. Chris Capener March 1, 2012

Care and Feeding of Rechargeable Batteries. Chris Capener March 1, 2012 Care and Feeding of Rechargeable Batteries Chris Capener March 1, 2012 Battery Types Lead Acid Nickel-Based NiCd NiMH LSD Li-ion Battery Charging Lead Acid Nickel-based Battery Packs Analyzers & Chargers

More information

HVACR Electrical Systems

HVACR Electrical Systems HVACR Electrical Systems to The following HVAC Excellence competencies (rev. 2007) are covered in this publication. Only the covered compentencies are listed. The first column identifies the competency

More information

SUBJECT AREA(S): Amperage, Voltage, Electricity, Power, Energy Storage, Battery Charging

SUBJECT AREA(S): Amperage, Voltage, Electricity, Power, Energy Storage, Battery Charging Solar Transportation Lesson 4: Designing a Solar Charger AUTHOR: Clayton Hudiburg DESCRIPTION: In this lesson, students will further explore the potential and challenges related to using photovoltaics

More information

INVESTIGATION ONE: WHAT DOES A VOLTMETER DO? How Are Values of Circuit Variables Measured?

INVESTIGATION ONE: WHAT DOES A VOLTMETER DO? How Are Values of Circuit Variables Measured? How Are Values of Circuit Variables Measured? INTRODUCTION People who use electric circuits for practical purposes often need to measure quantitative values of electric pressure difference and flow rate

More information

How, Why, and When to apply electric motors to mobile hydraulic systems

How, Why, and When to apply electric motors to mobile hydraulic systems Parker Hannifin 2008 Global Mobile Sales Meeting & Symposium Whitepaper # 0001 How, Why, and When to apply electric motors to mobile hydraulic systems Patrick Berkner Automation Group Electromechanical

More information

Upgrading from Older Battery Technologies to Lithium Ion (Li-Ion) Systems

Upgrading from Older Battery Technologies to Lithium Ion (Li-Ion) Systems Upgrading from Older Battery Technologies to Lithium Ion (Li-Ion) Systems Battery systems are no longer simply a collection of isolated components, but a complete electro-mechanical structure that plays

More information

Tadiran Lithium Battery Packs for Long Term Ocean Deployments

Tadiran Lithium Battery Packs for Long Term Ocean Deployments Tadiran Lithium Battery Packs for Long Term Ocean Deployments Lee Gordon Doppler Ltd. 858-486-4077 lee@dopplerltd.com Alkaline Pack for a Doppler Profiler Long Term Ocean Deployments Duration: weeks to

More information

THINERGY MEC220. Solid-State, Flexible, Rechargeable Thin-Film Micro-Energy Cell

THINERGY MEC220. Solid-State, Flexible, Rechargeable Thin-Film Micro-Energy Cell THINERGY MEC220 Solid-State, Flexible, Rechargeable Thin-Film Micro-Energy Cell DS1013 v1.1 Preliminary Product Data Sheet Features Thin Form Factor 170 µm Thick Capacity options up to 400 µah All Solid-State

More information

Mellivora: A Battery Experiment

Mellivora: A Battery Experiment Mellivora: A Battery Experiment Overview Team Introduction Problem Our Approach Technological Innovations Design Alternatives Design Specifications Block Diagram Individual Subsystems MDR Deliverables

More information

EE152 Green Electronics

EE152 Green Electronics EE152 Green Electronics Batteries 11/5/13 Prof. William Dally Computer Systems Laboratory Stanford University Course Logistics Tutorial on Lab 6 during Thursday lecture Homework 5 due today Homework 6

More information

Lithium Ion Medium Power Battery Design

Lithium Ion Medium Power Battery Design Bradley University Lithium Ion Medium Power Battery Design Project Proposal By: Jeremy Karrick and Charles Lau Advised by: Dr. Brian D. Huggins 12/10/2009 Introduction The objective of this project is

More information

Battery Capacity Versus Discharge Rate

Battery Capacity Versus Discharge Rate Exercise 2 Battery Capacity Versus Discharge Rate EXERCISE OBJECTIVE When you have completed this exercise, you will be familiar with the effects of the discharge rate and battery temperature on the capacity

More information

PEOPLE ARE FAMILIAR WITH THE CONCEPT OF RUNNING A LIGHT FROM A BATTERY AND THEN RECHARGING THE BATTERY USING A SOLAR PANEL OR A WIND-POWERED GENERATOR

PEOPLE ARE FAMILIAR WITH THE CONCEPT OF RUNNING A LIGHT FROM A BATTERY AND THEN RECHARGING THE BATTERY USING A SOLAR PANEL OR A WIND-POWERED GENERATOR A Perpetual Light PEOPLE ARE FAMILIAR WITH THE CONCEPT OF RUNNING A LIGHT FROM A BATTERY AND THEN RECHARGING THE BATTERY USING A SOLAR PANEL OR A WIND-POWERED GENERATOR. HOWEVER, WE REALLY WANT TO BE ABLE

More information

Date: Technical Overview of Power Requirements for Hot Runner Control Systems

Date: Technical Overview of Power Requirements for Hot Runner Control Systems Date: 11-06-2008 Ref: By: Technical Overview of Power Requirements for Hot Runner Control Systems Fred Schroeder, Sr. Product Engineer Electronics, DME Company Introduction: Many customers ask often, I

More information