Battery Thermal Management in Electric Vehicles
|
|
|
- Tracy Carpenter
- 9 years ago
- Views:
Transcription
1 White Paper Battery Thermal Management in Electric Vehicles Xiao Hu, Ph.D. Lead Engineer, ANSYS, Inc. Advanced numerical simulation helps accelerate the development of safe, long-lasting and cost-effective batteries for electric vehicles. In the wake of growing concerns over petroleum supplies and air pollution, electric vehicles (EVs) including hybrid electric vehicles (HEVs) are being developed and refined as costeffective, reliable and safe alternatives to conventional gasoline and diesel engines. The race is on to design electric batteries as the power source for this new class of vehicles. Competition is intense and the stakes are high. Organizations that succeed in bringing cost-effective, long-lasting batteries to market first are in a strong position to dominate the future automotive industry, not to mention reap a sizeable share of profits. One of the major concerns in the development of lithium-ion battery packs for EVs is thermal management. The temperature of all cells must be strictly maintained within a few degrees C across the entire pack. The preferred candidate for EVs is the lithium-ion battery due to its outstanding characteristics such as high energy-to-weight ratio, high voltage, good stability and slow loss of charge when not in use. Lithium-ion batteries have been used extensively since the early 1990s in consumer portable electronic products such as mobile telephones and laptops. Batteries for powering EV powertrains plus auxiliary automotive equipment, however, must ideally provide orders of magnitude more energy, typically 15 or more kilowatt-hours for a driving range of 300 to 400 miles, for example. Battery size for EVs is also proportionately greater, with nearly 300 individual cells sealed in a pack often weighing over 400 pounds and occupying more than four cubic feet about the space of more than 200 books stacked side by side for more than five feet. Fitting these large batteries into available space is, thus, an important consideration. Technical requirements for these massive sources of power present engineers with daunting design challenges in meeting the reliability, durability, safety and packaging standards of automotive applications. Challenges in Battery Design Batteries are very different from the products traditionally developed by auto manufacturers and suppliers. Chemistry, electricity and flow thermal structural physics inside batteries operate in a complex interplay that must be strictly controlled within narrow margins to ensure long battery life and low cost. The slightest deviations from these margins can lead to dramatically shortened battery life and to serious safety hazards. 1 One of the major concerns in the development of lithium-ion battery packs for EVs is thermal management. The temperature of all cells must be strictly maintained within a few degrees C across the entire pack. Cells are vulnerable to overheating from rapid discharging, overcharging or excessive ambient heating. Such overheating and uneven temperature distribution can lead to rapid cell degradation and shorten battery life. In extreme
2 cases, thermal runaway may occur in a cell as heat builds up uncontrollably, possibly causing catastrophic destruction, such as fire and explosion. Figure 1. EV battery pack cooling flow paths with temperature distribution on cells For these reasons, EV battery packs incorporate extensive cooling systems to dissipate heat and provide for uniform temperatures throughout the battery pack. For air cooling, battery pack housings are shaped for optimal cooling provided by a blower and guiding vanes to direct an adequate airflow, as indicated in Figures 1 and 2. Alternatively, liquid coolant can be circulated through heat exchanger elements in contact with cells. To provide for uniform, adequate cooling, a battery management system (BMS) comprising a controller and control algorithm varies loads on different cells based on temperature and charger status. Many Aspects of Complexity Design of the thermal management system requires extensive knowledge of cooling systems and the amount of heat generated by cells throughout the battery pack. Engineers must also weigh various tradeoffs and factors such as cost, packaging, manufacturability, efficiency, reliability of heat dissipation components, and battery pack as an integrated, modular system. In terms of total vehicle development, engineers face the challenge of minimizing battery cooling system noise, since the packs are usually located close to the passenger cabin. Such sound levels would normally be drowned out by engine and exhaust noise in petroleum-powered vehicles but may disrupt the ultra-quiet operation drivers expect in an EV. Engineers must take into account the physical placement of the battery pack within the EV, not only to minimize the effects of ambient temperatures and maximize heat dissipation but also to avoid excessive mechanical stresses, structural fatigue from road vibrations, and potential impact from road debris. The team also must consider crash scenarios in which passengers must be protected from toxic acids released from the battery pack. Figure 2. Mesh for air-cooled cylindrical cell module (top) and cooling flow velocity (bottom) How Advanced Simulation Can Help Numerical simulation has been used for decades in automotive development, but batteries require that a unique range of issues be taken into consideration in such studies. First, detailed models and submodels are needed to simulate the chemical and physical phenomena inside battery cells. Then, these models need to be tied into a system-level model of a battery pack, which can comprise hundreds of cells and cooling circuits. Finally, the battery pack model needs to be integrated with the system model of the entire powertrain and vehicle. 2
3 g g In this respect, system integration is perhaps the greatest challenge in the development of battery packs and other major subsystems, all of which must work together in a coherent, tightly coupled manner for the EV to perform at peak performance and efficiency within a wide range of loads and operating conditions. Consequently, the performance of the battery pack cannot be developed in isolation but rather carefully matched with the attributes and characteristics of all others. Value of an Integrated Simulation Platform Many simulation codes are available to handle individual aspects of such complex designs. To adequately represent the many interrelated complexities of the battery pack especially thermal management simulation solutions must be in the form of an integrated platform. Engineers need tools capable of multidimensional, multiphysical and multiscale simulation that address a wide range of multiphysics phenomenon within the context of the entire vehicle. Multidimensional indicates a system comprising subsystems and components governed by a mixture of physical phenomena that could be 0-D (circuit logic and block diagrams, for example), 1-D (such as modeling flow through long channels), 2-D (stresses on shells, etc.), 3-D (problems such as flow through complex 3-D passages), or 4-D (having time-varying 3-D fields of flow, stress, thermal or magnetic fields). Engineers may use 0-D simulation in creating battery control algorithms tightly integrated with 4-D physical models (fluid dynamics and mechanical) in the control circuit simulation. Multiphysical indicates that a system or component is governed by more than one physics. Development of a battery pack may entail the use of fluid flow for studying cooling rates, heat transfer for evaluating thermal levels inside the pack, electrochemistry for characterizing cell behavior, structural stress/strain distributions for solving mechanical scenarios such as a crash or foreign body penetration of the battery pack, electric and magnetic fields radiated throughout the vehicle, etc. In the commercial arena, ANSYS, Inc. is the only simulation software provider with industrystandard mechanical, fluid dynamics, thermal, magnetics and electrical tools for multiphysics simulation. g Multiscale means a system has important physical phenomena occurring at different physical scales. In a battery pack, for example, electrochemical reactions occur at a nanoscale, whereas heat transfer and cooling flow are at a macro scale; the battery controller works at the pack level. The capability to span these multiple levels is critical in evaluating the many interrelated aspects of battery development, particularly issues related to thermal management. 3
4 An integrated simulation platform is of particular value in battery thermal management on two levels: cell and system. Cell level refers to single battery cell, and system level could be either a battery module or a complete battery pack. Figure 3. Schematic of lithium-ion cell sandwich consisting of composite negative and positive electrodes and separator Figure 4. Models based on joule heating experimental data can predict current density distribution (left) and the resulting temperature distribution (right) within a battery cell. Cell-Level Heat Generation Studies of detailed heat generation and temperature distribution within individual cells are performed mainly by battery manufacturers and battery researchers investigating how the rate of heat generation varies with time over the course of charging and discharging. Heat can be generated from multiple sources including internal losses of joule heating and local electrode overpotentials, the entropy of the cell reaction, heat of mixing, and side reactions. If only the most important effects of joule heating and local electrode overpotentials are considered in such studies, heat generation can be expressed by open circuit potential and potential difference between positive and negative electrodes. Figure 3 shows how electrodes are sandwiched together using a separating insulator. Models then can be used to predict the electric potential and current density distribution on cell electrodes as a function of discharge time. Based on these results, battery temperature distributions can be calculated. Results can then be used to examine thermal behavior with regard to electrode configurations, such as their aspect ratio, placement of current collecting tabs and discharge rates. Figure 4 shows typical results from such models. While this type of model is simple to use and gives detailed information about temperatures and current density distributions, it requires entering data from experimental tests. So this type of model cannot predict the impact of design changes on battery thermal performance without performing an entire set of tests again on a modified prototype: a lengthy and expensive process. In contrast, a physics-based electrochemistry model can be used to more readily investigate the impact on battery performance of design parameters including battery geometry, properties and, most importantly, temperature. In this way, a physics-based model can accurately provide performance data that otherwise would be impractical through testing. The most widely recognized physics-based model originally was proposed by Professor John Newman from the University of California Berkeley. The model has been implemented in ANSYS Simplorer advanced simulation software for design, modeling, analysis and optimization of complex multidomain systems. Figure 5 shows charge/discharge results and discharge concentration profiles from Newman s electrochemistry model. 4
5 One optimization problem that suggests itself immediately when examining discharge concentration profiles from Newman s electrochemistry model is determining the initial concentration of electrolyte in the cell. Concentration profiles are presumably determined based on maximum conductivity levels at this concentration. However, discharge profiles may show that the bulk of the composite cathode is at a significantly lower concentration. Conductivity is consequently much lower, leading to severe transport limitations in the depth of the electrode. This provides important insight into electrode behavior: specifically, that a higher initial concentration leads to a somewhat lower conductivity in the separator but a much larger conductivity in the composite cathode. Figure 5. Battery charge and discharge cycle results (top) and concentration profiles during galvanostatic discharge (bottom) from Newman s electrochemistry model The simulation can also readily display concentration profiles under different temperatures, as shown in Figure 6. The information contained in such data indicates where the limiting current occurs and, thus, can help battery designers specify temperature ranges that the cooling system must maintain. Other implications of these profiles for different temperatures is that battery run-time is a strong function of its time in use and that battery life is longer with higher operating temperatures. This is also confirmed in Figure 6 from the physics-based electrochemistry model. Of course, higher temperature is a major safety concern, so this becomes another possible factor in optimizing battery designs. System-Level Thermal Simulation System-level design engineers working on battery modules and packs have different sets of requirements and goals since they cannot afford to simulate as many details as engineers working on the cell level. For instance, computational fluid dynamics (CFD) engineers working in battery thermal management are interested primarily in maintaining required temperature ranges, reducing pressure drop and maintaining temperature uniformity. For these engineers, detailed heat-generation mechanisms and battery cell structure are not of prime interest. Figure 6. Concentration profiles at the same time and discharge rate but for different temperature based on simulations with Newman s electrochemistry model (top). Discharge curves for different temperature (bottom) CFD has been widely used for predicting thermal flow and heat transfer, so the technology is well suited for battery thermal management applications. Significant steps have been taken to make the process easier for users. For example, rather than having different tools for geometry, meshing, postprocessing and optimization for CFD analysis, all the aspects of the simulation can be performed under one umbrella with all tools integrated in the ANSYS Workbench environment. Geometries built within these tools or imported from other CAD packages are all parameterized. An update of results due to change of geometric parameters takes just one button click. Data transfer between different simulation tools are handled seamlessly. In this manner, a complete battery thermal CFD analysis including optimization can be done entirely within the same unified environment. Figure 7 shows an automotive CFD application using such an integrated set of tools. 5
6 Figure 7. Model of a battery module (left) used for a CFD simulation to study airflow around the 16 cells (right) Figure 8. Comparison of CFD results with Foster network results Figure 9. A complete dynamic model is created by coupling an electric circuit model with a Foster network thermal model. While CFD can give detailed thermal information about battery thermal management systems, it is time consuming to perform multiple sets of simulations. For these cases, a model order-reduction technique can be used to extract a model from CFD results. The extracted model (called Foster network model) gives the same solution as that from the full CFD model but much more quickly. A CFD model that might take two hours or more to simulate on a single CPU, for example, could be completed with an extracted Foster network model in only about 20 seconds: a time reduction of more than two orders of magnitude. CFD results from these two methods are compared in Figure 8. The model order-reduction process for these rapid simulations can be handled automatically by an advanced multidomain solution, opening the door for studies that would otherwise be difficult or altogether impractical for applications such as battery thermal control system analysis. A primary concern for electrical engineers in these applications is the electric performance of the battery, rather than thermal performance. With battery electric performance a strong function of temperature, however, electrical engineers often need an accurate yet simple-to-use thermal model that couples with their battery electric circuit model. The resulting complete dynamic circuit model in Figure 9 accounts for nonlinear equilibrium potentials, rate and temperature dependencies, thermal effects, and response to transient power demand. While Figure 9 uses the more accurate Foster network as the thermal model, the traditional thermal network model can also be used to couple with electric circuit models. With the help of VHDL-AMS (an IEEE standard hardware simulation language supported by advanced multidomain system simulation tools), a traditional thermal network model can be generated easily. In fact, VHDL-AMS can be used for much more complex multiphysics and multidomain problems, and the Newman electrochemistry model mentioned above was generated using VHDL-AMS in such an advanced solution. In this way, an integrated multidomain simulation platform greatly facilitates efforts of entire engineering team working on various aspects of battery thermal management. ANSYS, Inc. Southpointe 275 Technology Drive Canonsburg, PA U.S.A [email protected] Toll Free U.S.A./Canada: Toll Free Mexico: Europe: [email protected] ANSYS, Inc. is one of the world s leading engineering simulation software providers. Its technology has enabled customers to predict with accuracy that their product designs will thrive in the real world. The company offers a common platform of fully integrated multiphysics software tools designed to optimize product development processes for a wide range of industries. Applied to design concept, final-stage testing, validation and trouble-shooting existing designs, software from ANSYS can significantly speed design and development times, reduce costs, and provide insight and understanding into product and process performance.visit for more information ANSYS, Inc. All Rights Reserved. Any and all ANSYS, Inc. brand, product, service and feature names, logos and slogans are registered trademarks or trademarks of ANSYS, Inc. or its subsidiaries in the United States or other countries. All other brand, product, service and feature names or trademarks are the property of their respective owners.
Electrical Drive Modeling through a Multiphysics System Simulation Approach
Application Brief Electrical Drive Modeling through a The electric drive system is a key application in power electronics. Optimizing such complex mechatronic system requires in-depth analysis, expertise
DESIGN AND SIMULATION OF LITHIUM- ION BATTERY THERMAL MANAGEMENT SYSTEM FOR MILD HYBRID VEHICLE APPLICATION
DESIGN AND SIMULATION OF LITHIUM- ION BATTERY THERMAL MANAGEMENT SYSTEM FOR MILD HYBRID VEHICLE APPLICATION Ahmed Imtiaz Uddin, Jerry Ku, Wayne State University Outline Introduction Model development Modeling
Doctoral School on Engineering Sciences Università Politecnica delle Marche
Doctoral School on Engineering Sciences Università Politecnica delle Marche Extended summary Knowledge-based approaches to support the design and development of the electrochemical storage Scuola di Dottorato
The Value of High-Performance Computing for Simulation
White Paper The Value of High-Performance Computing for Simulation High-performance computing (HPC) is an enormous part of the present and future of engineering simulation. HPC allows best-in-class companies
Battery Thermal Management and Design. Scott Stanton Xiao Hu. 2010 ANSYS, Inc. All rights reserved. 1 ANSYS, Inc. Proprietary
Battery Thermal Management and Design Scott Stanton Xiao Hu ANSYS, Inc. 2010 ANSYS, Inc. All rights reserved. 1 ANSYS, Inc. Proprietary Outline Battery thermal management using CFD Battery system thermal
Clean and energy-efficient vehicles Advanced research and testing Battery systems
Clean and energy-efficient vehicles Advanced research and testing Battery systems Flanders DRIVE Index: Flanders DRIVE 1 Optimising power / energy ratio of energy storage systems 4 Battery ageing research
Reliable World Class Insights Your Silicon Valley Partner in Simulation ANSYS Sales, Consulting, Training & Support
www.ozeninc.com [email protected] (408) 732 4665 1210 E Arques Ave St 207 Sunnyvale, CA 94085 Reliable World Class Insights Your Silicon Valley Partner in Simulation ANSYS Sales, Consulting, Training &
An Approach for Designing Thermal Management Systems for EV and HEV Battery Packs
An Approach for Designing Thermal Management Systems for EV and HEV Battery Packs 4th Vehicle Thermal Management Systems Conference London, UK May 24-27, 1999 Ahmad A. Pesaran, Ph.D. Steven D. Burch Matthew
Parametric Analysis: The Key to Rapid, Robust Design
White Paper Parametric Analysis: The Key to Rapid, Robust Design Parametric studies can drive significant time and costs out of the development process while still ensuring design robustness and ultimate
The Future of Battery Technologies Part I
Dr. Annika Ahlberg Tidblad This paper is the first in our ongoing series about batteries. This installment provides an overview of battery technologies. In future installments, we will spotlight lithium
The Tesla Roadster battery pack is comprised of about 6800 of these 18650 cells, and the entire pack has a mass of about 450kg.
The Tesla Roadster Battery System Tesla Motors August 16, 2006 By Gene Berdichevsky, Kurt Kelty, JB Straubel and Erik Toomre Summary This paper provides details about the design of the Tesla Roadster s
Battery Thermal Management System Design Modeling
Battery Thermal Management System Design Modeling Gi-Heon Kim, Ph.D Ahmad Pesaran, Ph.D ([email protected]) National Renewable Energy Laboratory, Golden, Colorado, U.S.A. EVS October -8, 8, 006 Yokohama,
Eveready Carbon Zinc (Zn/MnO ² ) Application Manual
Page 1 of 13 Eveready Carbon Zinc (Zn/MnO ² ) Application Manual Eveready carbon zinc batteries are marketed in two basic categories--classic and Super Heavy Duty. The Classic category, our least expensive
MAKING LITHIUM-ION SAFE THROUGH THERMAL MANAGEMENT
MAKING LITHIUM-ION SAFE THROUGH THERMAL MANAGEMENT Greg Albright, Director of Product Development Said Al-Hallaj, CEO AllCell Technologies, Chicago, IL Abstract Lithium-ion batteries have revolutionized
Benefits of Cold Aisle Containment During Cooling Failure
Benefits of Cold Aisle Containment During Cooling Failure Introduction Data centers are mission-critical facilities that require constant operation because they are at the core of the customer-business
Lithium Battery Testing Under UN/DOT 38.3
Lithium Battery Testing Under UN/DOT 38.3 8 tests required according to the United Nations Manual of Tests and Criteria White paper Abstract Lithium batteries provide a reliable and cost-effective power
INTERACTION OF LIQUID MOTION ON MOBILE TANK STRUCTURE
Journal of KONES Powertrain and Transport, Vol. 18, No. 3 2011 INTERACTION OF LIQUID MOTION ON MOBILE TANK STRUCTURE Mariusz Domaga a, Edward Lisowski Cracow University of Technology, Department of Mechanical
Addressing the Impact of Temperature Extremes on Large Format Li-Ion Batteries for Vehicle Applications
Addressing the Impact of Temperature Extremes on Large Format Li-Ion Batteries for Vehicle Applications Ahmad Pesaran, Ph.D. Shriram Santhanagopalan, Gi-Heon Kim National Renewable Energy Laboratory Golden,
Electric Coolant Pumps. Always at the Correct Temperature
Electric Coolant Pumps Always at the Correct Temperature Electric coolant pumps Conventional pumps for engine cooling are driven by toothed belts and hence their output is coupled to engine RPM. Coolant
BATTERY CHARGING GUIDELINES FOR 6-VOLT DEEP CYCLE BATTERIES
BATTERY CHARGING GUIDELINES FOR 6-VOLT DEEP CYCLE BATTERIES Introduction Your 6-volt deep cycle battery set has been specially formulated for long cycle life and has particular voltage and specific gravity
KINETIC ENERGY RECOVERY SYSTEM BY MEANS OF FLYWHEEL ENERGY STORAGE
ADVANCED ENGINEERING 3(2009)1, ISSN 1846-5900 KINETIC ENERGY RECOVERY SYSTEM BY MEANS OF FLYWHEEL ENERGY STORAGE Cibulka, J. Abstract: This paper deals with the design of Kinetic Energy Recovery Systems
Battery Cell Balancing: What to Balance and How
Battery Cell Balancing: What to Balance and How Yevgen Barsukov, Texas Instruments ABSTRACT Different algorithms of cell balancing are often discussed when multiple serial cells are used in a battery pack
EMI in Electric Vehicles
EMI in Electric Vehicles S. Guttowski, S. Weber, E. Hoene, W. John, H. Reichl Fraunhofer Institute for Reliability and Microintegration Gustav-Meyer-Allee 25, 13355 Berlin, Germany Phone: ++49(0)3046403144,
A Study of Durability Analysis Methodology for Engine Valve Considering Head Thermal Deformation and Dynamic Behavior
A Study of Durability Analysis Methodology for Engine Valve Considering Head Thermal Deformation and Dynamic Behavior Kum-Chul, Oh 1, Sang-Woo Cha 1 and Ji-Ho Kim 1 1 R&D Center, Hyundai Motor Company
High-Speed Serial I/O Design Using Response Surface Modeling
AN APPLICATION BRIEF FROM ANSYS, INC. High-Speed Serial I/O Design Using Response Surface Modeling ABSTRACT Response surface modeling (RSM) enables engineers to consider all aspects of a design while only
Computational Fluid Dynamics in Automotive Applications
Computational Fluid Dynamics in Automotive Applications Hrvoje Jasak [email protected] Wikki Ltd, United Kingdom FSB, University of Zagreb, Croatia 1/15 Outline Objective Review the adoption of Computational
CHAPTER 5 PHOTOVOLTAIC SYSTEM DESIGN
CHAPTER 5 PHOTOVOLTAIC SYSTEM DESIGN 5.1 Introduction So far in the development of this research, the focus has been to estimate the available insolation at a particular location on the earth s surface
SOLIDWORKS SIMULATION GET DESIGN INSIGHTS TO DRIVE MARKET WINNING INNOVATION
SOLIDWORKS SIMULATION GET DESIGN INSIGHTS TO DRIVE MARKET WINNING INNOVATION SOPHISTICATED SIMULATION IS NO LONGER JUST FOR SPECIALISTS What if? It s the inspiration that fuels innovation and with SolidWorks
In-Vehicle Testing and Computer Modeling of Electric Vehicle Batteries
In-Vehicle Testing and Computer Modeling of Electric Vehicle Batteries B. Thomas, W.B. Gu, J. Anstrom, C.Y. Wang and D.A. Streit GATE Center for Advanced Energy Storage Pennsylvania Transportation Institute
Using CFD for optimal thermal management and cooling design in data centers
www.siemens.com/datacenters Using CFD for optimal thermal management and cooling design in data centers Introduction As the power density of IT equipment within a rack increases and energy costs rise,
Thermal Management of Batteries in Advanced Vehicles Using Phase-Change Materials
Thermal Management of Batteries in Advanced Vehicles Using Phase-Change Materials Gi-Heon Kim: Speaker Jeff Gonder, Jason Lustbader, Ahmad Pesaran National Renewable Energy Laboratory, U.S.A. NREL/PR-540-42544
RESULTS OF ICARUS 9 EXPERIMENTS RUN AT IMRA EUROPE
Roulette, T., J. Roulette, and S. Pons. Results of ICARUS 9 Experiments Run at IMRA Europe. in Sixth International Conference on Cold Fusion, Progress in New Hydrogen Energy. 1996. Lake Toya, Hokkaido,
Automotive Lithium-ion Batteries
Automotive Lithium-ion Batteries 330 Automotive Lithium-ion Batteries Akihiko Maruyama Ryuji Kono Yutaka Sato Takenori Ishizu Mitsuru Koseki Yasushi Muranaka, Dr. Eng. OVERVIEW: A new of high-power lithium-ion
SAFETY PERFORMANCE OF A LARGE FORMAT, PHOSPHATE BASED LITHIUM-ION BATTERY
SAFETY PERFORMANCE OF A LARGE FORMAT, PHOSPHATE BASED LITHIUM-ION BATTERY John Nguyen Business Development Manager Valence Technology Austin, TX ABSTRACT The use of lithium-ion batteries in many of today
PROGRAMME OF WORK FOR THE BIENNIUM 2009-2010. Work on the inclusion of ultra capacitors in the UN Model Regulations
COMMITTEE OF EXPERTS ON THE TRANSPORT OF DANGEROUS GOODS AND ON THE GLOBALLY HARMONIZED SYSTEM OF CLASSIFICATION AND LABELLING OF CHEMICALS Sub-Committee of Experts on the Transport of Dangerous Goods
NASDAQ:BLDP TSX:BLD. Smarter Solutions for a Clean Energy Future
NASDAQ:BLDP TSX:BLD Smarter Solutions for a Clean Energy Future Fuel Cell Engineering Services Smarter Solutions for a Clean Energy Future Corporate Background Ballard Power Systems, Inc. is a recognized
Motor-CAD Software for Thermal Analysis of Electrical Motors - Links to Electromagnetic and Drive Simulation Models
Motor-CAD Software for Thermal Analysis of Electrical Motors - Links to Electromagnetic and Drive Simulation Models Dave Staton, Douglas Hawkins and Mircea Popescu Motor Design Ltd., Ellesmere, Shropshire,
INTERNATIONAL JOURNAL OF MECHANICAL ENGINEERING AND TECHNOLOGY (IJMET)
INTERNATIONAL JOURNAL OF MECHANICAL ENGINEERING AND TECHNOLOGY (IJMET) Proceedings of the 2 nd International Conference on Current Trends in Engineering and Management ICCTEM -2014 ISSN 0976 6340 (Print)
Batteries in HP notebooks
Batteries in HP notebooks Executive summary... 2 What is a battery pack?... 2 Qualifying the right battery cell... 2 Testing... 3 Qualification testing... 3 Battery construction... 3 Battery Management
ACHIEVING CHARGE QUALITY FOR LEAD ACID BATTERIES IN INDUSTRIAL MOTIVE APPLICATIONS
ACHIEVING CHARGE QUALITY FOR LEAD ACID BATTERIES IN INDUSTRIAL MOTIVE APPLICATIONS Delta-Q Technologies success as an industrial battery charger supplier to original equipment manufacturers (OEMs) has
Overview. also give you an idea of ANSYS capabilities. In this chapter, we will define Finite Element Analysis and. Topics covered: B.
2. FEA and ANSYS FEA and ANSYS Overview In this chapter, we will define Finite Element Analysis and also give you an idea of ANSYS capabilities. Topics covered: A. What is FEA? B. About ANSYS FEA and ANSYS
CHARGING METHODS. Methods of Charging the Valve Regulated (Sealed) Lead-Acid Battery. 19 Valve Regulated (Sealed) Lead-Acid Batteries
CHARGNG METHODS Methods of Charging the alve Regulated (Sealed) Lead-Acid Battery For charging the alve Regulated (Sealed) lead-acid battery, a well-matched charger should be used because the capacity
Lithium Iron Phosphate High Current Rechargeable Lithium Ion Batteries
1 of 5 8/21/2006 2:37 PM Lithium Iron Phosphate High Current Rechargeable Lithium Ion Batteries Lithium Iron phosphate batteries are safer than Lithium-ion cells, and are available in 10 and 20 AH packs
Advanced Electricity Storage Technologies Program. Smart Energy Storage (Trading as Ecoult) Final Public Report
Advanced Electricity Storage Technologies Program Smart Energy Storage (Trading as Ecoult) Final Public Report Introduction Ecoult, working with CSIRO as its principal subcontractor, was provided $1,825,440
Managing A123 Cells with FMA Cell Balancing Technologies
Managing A123 Cells with FMA Cell Balancing Technologies By FMA Staff Latest revision: March 23, 2007 Document provided by FMA, Inc. 5716A Industry Lane Frederick, MD 21704 U.S.A. Phone: (800) 343-2934
LMS Imagine.Lab AMESim Powertrain Transmission
LMS Imagine.Lab AMESim Powertrain Transmission LMS Imagine.Lab Powertrain Transmission LMS Imagine.Lab Powertrain Transmission provides a generic platform for analyzing and designing optimal transmission
How To Powertrain A Car With A Hybrid Powertrain
ELECTRIFICATION OF VEHICLE DRIVE TRAIN THE DIVERSITY OF ENGINEERING CHALLENGES A3PS Conference, Vienna Dr. Frank Beste AVL List GmbH 1 Motivation for Powertrain Electrification Global Megatrends: Urbanization
Virtual Battery Simulation Tools for Engineering
Virtual Battery Simulation Tools for Engineering Electrical and thermal modeling of lithium-ion batteries Ari Hentunen Aalto University School of Electrical Engineering, Espoo, Finland 24.9.14 Simulation
Simulation Techniques for Tablet and Mobile Phone Design Bill McGinn; Ansys Senior Application Engineer
Simulation Techniques for Tablet and Mobile Phone Design Bill McGinn; Ansys Senior Application Engineer 1 Tablets in our daily lives Tablets are very entertaining, stylish and powerful Shopping, reading,
Solar Wind Microhydro Water Pumping Inverters Batteries Professional system design and installation
Solar Wind Microhydro Water Pumping Inverters Batteries Professional system design and installation BATTERY CHARGING GUIDELINES FOR GLOBAL/DAVIDSON TUBULAR PLATE BATTERIES Introduction Your Global/Davidson
Vapor Chambers. Figure 1: Example of vapor chamber. Benefits of Using Vapor Chambers
Vapor Chambers A vapor chamber is a high-end thermal management device that can evenly dissipate heat from a small source to a large platform of area (see Figure 1). It has a similar construction and mechanism
"Charging Lithium-Ion Batteries: Not All Charging Systems Are Created Equal"
"Charging Lithium-Ion Batteries: Not All Charging Systems Are Created Equal" By Scott Dearborn Principal Applications Engineer Microchip Technology Inc. 2355 West Chandler Blvd Chandler, AZ 85224 www.microchip.com
Current Limiting Power Resistors for High-Power LED Module Lighting Applications
Current Limiting Power Resistors for High-Power LED Module Lighting Applications PWR263 An ongoing trend toward miniaturization of virtually all electronics is accompanied by the demand for a reduction
Introduction to Solid Modeling Using SolidWorks 2012 SolidWorks Simulation Tutorial Page 1
Introduction to Solid Modeling Using SolidWorks 2012 SolidWorks Simulation Tutorial Page 1 In this tutorial, we will use the SolidWorks Simulation finite element analysis (FEA) program to analyze the response
AN APPLICATION MANUAL FOR BUILDING ENERGY AND ENVIRONMENTAL MODELLING
AN APPLICATION MANUAL FOR BUILDING ENERGY AND ENVIRONMENTAL MODELLING D. Bartholomew *, J. Hand #, S. Irving &, K. Lomas %, L. McElroy # F. Parand $, D. Robinson $ and P. Strachan # * DBA, # University
Table Of Contents 6 6 6 7 7 8 8 9-11 12 12-13 14 15 16 17 18 19 20-21 22 22 23 24 24 24
USER S GUIDE Table Of Contents Package Contents Accessories: Sold Separately Product Specifications Intended Use Compatibility ResMed Device Warning Battery Pack Run Times Power Backup Usage Getting Started
Pushing the limits. Turbine simulation for next-generation turbochargers
Pushing the limits Turbine simulation for next-generation turbochargers KWOK-KAI SO, BENT PHILLIPSEN, MAGNUS FISCHER Computational fluid dynamics (CFD) has matured and is now an indispensable tool for
Avoiding AC Capacitor Failures in Large UPS Systems
Avoiding AC Capacitor Failures in Large UPS Systems White Paper #60 Revision 0 Executive Summary Most AC power capacitor failures experienced in large UPS systems are avoidable. Capacitor failures can
Realize Your Product Promise. Maxwell
Realize Your Product Promise Maxwell DC permanent magnet motor solved by Maxwell with ANSYS RMxprt Build reliability and efficiency into your electromagnetic and electromechanical designs with ANSYS Maxwell.
Express Introductory Training in ANSYS Fluent Lecture 1 Introduction to the CFD Methodology
Express Introductory Training in ANSYS Fluent Lecture 1 Introduction to the CFD Methodology Dimitrios Sofialidis Technical Manager, SimTec Ltd. Mechanical Engineer, PhD PRACE Autumn School 2013 - Industry
Fundamentals of Mass Flow Control
Fundamentals of Mass Flow Control Critical Terminology and Operation Principles for Gas and Liquid MFCs A mass flow controller (MFC) is a closed-loop device that sets, measures, and controls the flow of
Understand Hybrid Generator Battery Systems
Understand Hybrid Generator Battery Systems For off-grid applications powered by diesel generators, move to cyclic operation to save costs Telecommunications operators in Africa, India and other developing
THERMAL STRATIFICATION IN A HOT WATER TANK ESTABLISHED BY HEAT LOSS FROM THE TANK
THERMAL STRATIFICATION IN A HOT WATER TANK ESTABLISHED BY HEAT LOSS FROM THE TANK J. Fan and S. Furbo Abstract Department of Civil Engineering, Technical University of Denmark, Brovej, Building 118, DK-28
VRLA BATTERIES AUGUST
CHARGNG METHODS Methods of Charging the alve-regulated Lead-Acid Battery For charging the valve-regulated lead-acid battery, a well-matched charger should be used because the capacity or life of the battery
Dynamic test environment for fuel cells From stack to vehicle energy system
Dynamic test environment for fuel cells From stack to vehicle energy system Dynamic test environment for fuel cells From stack to vehicle energy system Fuel cell electric vehicles (FCEV) are characterized
Battery Thermal Management in EVs and HEVs: Issues and Solutions
Battery Thermal Management in EVs and HEVs: Issues and Solutions Ahmad A. Pesaran National Renewable Energy Laboratory 1617 Cole Blvd. Golden, Colorado 80401 Advanced Automotive Battery Conference Las
Development of Grid-stabilization Power-storage Systems Using Lithium-ion Rechargeable Batteries
48 Development of Grid-stabilization Power-storage Systems Using Lithium-ion Rechargeable Batteries TSUTOMU HASHIMOTO *1 AKIO KURITA *2 MASAAKI MINAMI *3 MASAHIRO YOSHIOKA *2 KATSUAKI KOBAYASHI *4 MASAYUKI
Safety Issues for Lithium-Ion Batteries
Safety Issues for Lithium-Ion Batteries Safety Issues for Lithium-Ion Batteries Lithium-ion batteries are widely used as a power source in portable electrical and electronic products. While the rate of
EMIT. RF Cosite and Coexistence RFI Modeling and Mitigation
RF Cosite and Coexistence RFI Modeling and Mitigation EMIT provides a powerful new capability to the ANSYS RF Option. It is used to predict radio frequency interference (RFI) in complex environments containing
Energy Efficient Data Center Design. Can Ozcan Ozen Engineering Emre Türköz Ozen Engineering
Energy Efficient Data Center Design Can Ozcan Ozen Engineering Emre Türköz Ozen Engineering 1 Bio Can Ozcan received his Master of Science in Mechanical Engineering from Bogazici University of Turkey in
Safakcan Tuncdemir 1, William M. Bradley *2. 1. Introduction
Modeling and Experimental Verification of the Power Transfer and Thermal Characteristics of Piezoelectric Transformers Subjected to Combined Mechanical and Electrical Loading Safakcan Tuncdemir 1, William
Everline Module Application Note: Round LED Module Thermal Management
Everline Module Application Note: Round LED Module Thermal Management PURPOSE: Use of proper thermal management is a critical element of Light Emitting Diode (LED) system design. The LED temperature directly
IT@Intel. Thermal Storage System Provides Emergency Data Center Cooling
White Paper Intel Information Technology Computer Manufacturing Thermal Management Thermal Storage System Provides Emergency Data Center Cooling Intel IT implemented a low-cost thermal storage system that
Multiphase Flow - Appendices
Discovery Laboratory Multiphase Flow - Appendices 1. Creating a Mesh 1.1. What is a geometry? The geometry used in a CFD simulation defines the problem domain and boundaries; it is the area (2D) or volume
CONVERGE Features, Capabilities and Applications
CONVERGE Features, Capabilities and Applications CONVERGE CONVERGE The industry leading CFD code for complex geometries with moving boundaries. Start using CONVERGE and never make a CFD mesh again. CONVERGE
OVERVIEW. Toolbox for Thermodynamic Modeling and Simulation with MATLAB /Simulink. Key Features:
A COMPANY WITH ENERGY Toolbox for Thermodynamic Modeling and Simulation with MATLAB /Simulink OVERVIEW Thermolib Expands the MATLAB /Simulink Suite with tools to design, model and simulate complex thermodynamic
Temperature Compensated Charging of Lead Acid Batteries
Technical Note Batteries 512-0101-01-01 Rev 1 Temperature Compensated Charging of Lead Acid Batteries Introduction To ensure optimum charging of lead acid batteries, the charge voltages should be adjusted
Thinking Outside the Box Server Design for Data Center Optimization
Thinking Outside the Box Server Design for Data Center Optimization Marie Ross, Senior Applications Engineer Tom Gregory, Consultant Engineer October 2013 The benefits of analyzing thermal performance
Customer Training Material. Lecture 2. Introduction to. Methodology ANSYS FLUENT. ANSYS, Inc. Proprietary 2010 ANSYS, Inc. All rights reserved.
Lecture 2 Introduction to CFD Methodology Introduction to ANSYS FLUENT L2-1 What is CFD? Computational Fluid Dynamics (CFD) is the science of predicting fluid flow, heat and mass transfer, chemical reactions,
Fast Charging Facts Enhancing use of electric lift trucks, AGVs, and other motive electric vehicles
Fast Charging Facts Enhancing use of electric lift trucks, AGVs, and other motive electric vehicles Nasser Kutkut, Ph.D. PowerDesigners USA, LLC Madison, WI Introduction Fast charging of industrial batteries
CFD SIMULATION OF SDHW STORAGE TANK WITH AND WITHOUT HEATER
International Journal of Advancements in Research & Technology, Volume 1, Issue2, July-2012 1 CFD SIMULATION OF SDHW STORAGE TANK WITH AND WITHOUT HEATER ABSTRACT (1) Mr. Mainak Bhaumik M.E. (Thermal Engg.)
Specification Approval Sheet
GUANGZHOU MARKYN BATTERY CO., LTD. Specification Approval Sheet FOR LIPO BATTERY Product Name Model SPEC Company Name Document Number Li-ion Polymer Battery 062025/250mAh/3.7V GMB POWER GMB1102150615 Sample
Carbon Dioxide Membrane Separation for Carbon Capture using Direct FuelCell Systems
Carbon Dioxide Membrane Separation for Carbon Capture using Direct FuelCell Systems DFC Technology Used as Electrochemical Membrane for CO 2 Purification and Capture during Power Generation FCE s Direct
Technical Note SolarEdge Reliability Methodology
Technical Note SolarEdge Reliability Methodology Summary SolarEdge Technologies develops and sells power electronics for the Photovoltaic market. The heart of the SolarEdge power harvesting system is a
LEAD CRYSTAL. User Manual. Valve-regulated lead-crystal batteries Energy storage Cells
Engineering Production Sales LEAD CRYSTAL Valve-regulated lead-crystal batteries Energy storage Cells User Manual www.axcom-battery-technology.de [email protected] Chapter 1: 1. Introduction
Choosing Close-Coupled IT Cooling Solutions
W H I T E P A P E R Choosing Close-Coupled IT Cooling Solutions Smart Strategies for Small to Mid-Size Data Centers Executive Summary As high-density IT equipment becomes the new normal, the amount of
ME6130 An introduction to CFD 1-1
ME6130 An introduction to CFD 1-1 What is CFD? Computational fluid dynamics (CFD) is the science of predicting fluid flow, heat and mass transfer, chemical reactions, and related phenomena by solving numerically
Considerations When Specifying a DC Power Supply
Programming Circuit White Paper Considerations When Specifying a DC Power Supply By Bill Martin, Sales/Applications Engineer Every automated test system that tests electronic circuit boards, modules or
Virtual Prototyping of Aerospace Systems Using Integrated LMS Virtual.Lab and IMAGINE AMESim
Virtual Prototyping of Aerospace Systems Using Integrated LMS Virtual.Lab and IMAGINE AMESim Joel Tollefson Imagine Inc. Aerospace Business Development Hans Van den Wijngaert LMS Product Manager Motion
Smart Batteries and Lithium Ion Voltage Profiles
Smart Batteries and Lithium Ion Voltage Profiles Louis W. Hruska, Director Rechargeable Batteries Duracell Worldwide Technology Center, 37A Street, Needham MA 02194 Abstract: This paper addresses how the
Argonne s vehicle systems research Future
Argonne s vehicle systems research Future Driving the Accelerating the adoption of New Technologies At Argonne National Laboratory s Center for Transportation Research, our goal is to accelerate the development
CFD Applications using CFD++ Paul Batten & Vedat Akdag
CFD Applications using CFD++ Paul Batten & Vedat Akdag Metacomp Products available under Altair Partner Program CFD++ Introduction Accurate multi dimensional polynomial framework Robust on wide variety
Lithium-Ion Battery Safety Study Using Multi-Physics Internal Short-Circuit Model
Lithium-Ion Battery Safety Study Using Multi-Physics Internal Short-Circuit Model The 5th Intl. Symposium on Large Lithium-Ion Battery Technology and Application in Conjunction with AABC09 June 9-10, 2009,
Energy Storage System Performance Testing
Energy Storage System Performance Testing Peter Blume President Bloomy Windsor, CT Abstract This paper describes the energy storage system data acquisition and control (ESS DAC) system used for testing
A Guide to the Safe Use of Secondary Lithium Ion Batteries in Notebook-type Personal Computers
A Guide to the Safe Use of Secondary Lithium Ion Batteries in Notebook-type Personal Computers April 20, 2007 Japan Electronics and Information Technology Industries Association and Battery Association
Inside the Nickel Metal Hydride Battery
Inside the Nickel Metal Hydride Battery John J.C. Kopera Cobasys 5 June 004 Inside the NiMH Battery Introduction The Nickel Metal Hydride (NiMH) battery has become pervasive in today s technology climate,
Open Source 100kW Electric Vehicle Controller/Inverter
Open Source 100kW Electric Vehicle Controller/Inverter To be used with an AC Induction Motor Description By Tony Ahmann Abstract The Open Source 100kW Electric Vehicle Controller/Inverter acts as the bridge
