Electrical Drives 1. Week 1: Introduction to drive systems

Similar documents
Power Electronics. Prof. K. Gopakumar. Centre for Electronics Design and Technology. Indian Institute of Science, Bangalore.

Torque control MSF Softstarter

Inductance. Motors. Generators

FREQUENCY CONTROLLED AC MOTOR DRIVE

What Is Regeneration?

AC Induction Motor Slip What It Is And How To Minimize It

8 Speed control of Induction Machines

Variable Frequency Drives and Energy Savings

ELECTROPUTERE ROTATING ELECTRICAL MACHINES DIVISION

Discover the power of e-learning! The Quick Guide to AC Variable Frequency

ABB drives. Technical guide No. 4 Guide to variable speed drives

Unit 33 Three-Phase Motors

Drives 101. Functions of an Adjustable Frequency Drive (AFD) This lesson covers the basic functions of an Adjustable Frequency Drives (AFD).

Understanding Variable Speed Drives

WIND TURBINE TECHNOLOGY

HITACHI INVERTER SJ/L100/300 SERIES PID CONTROL USERS GUIDE

Simulation and Analysis of PWM Inverter Fed Induction Motor Drive

ELECTRICAL ENGINEERING Vol. III - Induction Motor and Self-Excited Induction Generator - Tze-Fun Chan

Synchronous motor. Type. Non-excited motors

A1000 Cheat Sheet (Open Loop Vector)

Technical Guide No High Performance Drives -- speed and torque regulation

Centrifugal Fans and Pumps are sized to meet the maximum

Data Sheet. AC Industrial Electric Motors

13 ELECTRIC MOTORS Basic Relations

Static Drives vs Motor Generators

Pulse Width Modulated (PWM) Drives. AC Drives Using PWM Techniques

White Paper Mervin Savostianik P. Eng. Littelfuse, Inc.

Lab 8: DC generators: shunt, series, and compounded.

300 MW Variable Speed Drives for Pump-Storage Plant Application Goldisthal

NO LOAD & BLOCK ROTOR TEST ON THREE PHASE INDUCTION MOTOR

Pulse Width Modulated (PWM)

Principles of Adjustable Frequency Drives

vacon ac drives for mining & minerals

We will discuss common industrial applications with guides for the proper use of electric motors on these.

Drives Low Voltage. Adjustable Frequency. Adjustable Frequency Drives Low Voltage Contents

AC Kinetics Variable Frequency Drive Comparative Transient Inertial Testing. This document was prepared by Advanced Energy.

How to Turn an AC Induction Motor Into a DC Motor (A Matter of Perspective) Steve Bowling Application Segments Engineer Microchip Technology, Inc.

Tamura Closed Loop Hall Effect Current Sensors

Motor Fundamentals. DC Motor

SYNCHRONOUS MACHINES

Model RC Armature-Slot- Insulation Folder

TRAMS TROLLEY-BUSES SUBWAY

LOSSELESS STARTING METHOD FOR THE WOUND ROTOR INDUCTION MOTOR

DC MOTOR ANALYSIS & TROUBLESHOOTING

Unidrive M Energy Savings

RF Network Analyzer Basics

FRENIC5000MS5 for Machine Tool Spindle Drives

1 Temperature Derating Guide

Variable Frequency Drives - a Comparison of VSI versus LCI Systems

ELECTRICAL ENGINEERING

MACHINE TOOL DRIVES. Learning Objectives:

Mathematical Modeling and Dynamic Simulation of a Class of Drive Systems with Permanent Magnet Synchronous Motors

Chen. Vibration Motor. Application note

Unit 24: Applications of Pneumatics and Hydraulics

(3) Explosion proof. Designed to prevent ignition of any explosive gases or dust and dirt which may surround the motor.

Specifying a Variable Frequency Drive s

SAFETY PRECAUTIONS AND INSTRUCTIONS FOR USE OF TECHNICAL INFORMATION

Analysis of Space Vector Pulse Width Modulation VSI Induction Motor on various conditions

Coupled Inductors. Introducing Coupled Inductors

Brush DC Motor Basics. by Simon Pata Business Unit Manager, Brushless DC

ABB drives in mining Medium voltage drives for reduced energy consumption and optimized process control

The Right Drive to Maximize Efficiency and Production for Large Overland Conveyors

SIMULATION AND SPEED CONTROL OF INDUCTION MOTOR DRIVES

dspace DSP DS-1104 based State Observer Design for Position Control of DC Servo Motor

ELECTRODYNAMICS 05 AUGUST 2014

ENGINEERING BULLETIN No. EB 039 Product: Cooling Towers, Closed Circuit Coolers & Evaporative Condensers Date: June 2003

Your professional Partner also for special Miniseries & special Series.

WINDER SYSTEMS GE Industrial Control Systems

INSTRUMENTATION AND CONTROL TUTORIAL 2 ELECTRIC ACTUATORS

DIMENSIONING OF CURRENT TRANSFORMERS FOR PROTECTON APPLICATION

SELECTION OF SERVO MOTORS AND DRIVES

AMZ-FX Guitar effects. (2007) Mosfet Body Diodes. Accessed 22/12/09.

... Electronic Softstarter...

Real-Time Digital Simulator Enabled Hardware-in-the-Loop Electric Machine Drive Lab

OVERCURRENT & EARTH FAULT RELAYS. To study the protection of equipment and system by relays in conjunction with switchgear.

However, industrial applications may utilize a relay, which short-circuits the ICL path after the inrush sequence.

PRODUCTS DC MOTORS BLPM MOTORS AC MOTORS CONTROLLERS

Choosing Between Electromechanical and Fluid Power Linear Actuators in Industrial Systems Design

DC Motor control Reversing

Power Monitoring for Modern Data Centers

SECTION VARIABLE FREQUENCY DRIVES

Handbook Softstarter Handbook

Speed Control Methods of Various Types of Speed Control Motors. Kazuya SHIRAHATA

1150 hp motor design, electromagnetic and thermal analysis

Variable Voltage Variable Frequency Speed Control of Induction Motor Using FPGA-Xilinx

Development of the Induction Motor for Machine Tool Spindles and Servo Amplifier SANMOTION S

SECTION 4 ELECTRIC MOTORS UNIT 17: TYPES OF ELECTRIC MOTORS

Fundamentals of Inverter Fed Motors

Product Data Bulletin

BIG SAVINGS FOR A LOT MORE APPLICATIONS

Motors and Generators

Simulation of Electric Drives using the Machines Library and the SmartElectricDrives Library

Unit 96: Marine Propulsion Power Plant

Modelling, Simulation and Performance Analysis of A Variable Frequency Drive in Speed Control Of Induction Motor

Power Quality Paper #3

Siemens AG 2009 MICROMASTER. The universal frequency inverter for drive technology. Brochure April 2008 MICROMASTER.

Circuits with inductors and alternating currents. Chapter 20 #45, 46, 47, 49

Keywords: synchronous generator, synchronous motor, automatic voltage regulator, V- curves, synchronizing power, hunting, excitation system

BALDOR ELECTRIC COMPANY SERVO CONTROL FACTS A HANDBOOK EXPLAINING THE BASICS OF MOTION

Transcription:

Electrical Drives 1 Week 1: Introduction to drive systems

What Do we mean by Electrical Drive System? It is the study of the electric system involving controlling electric motors in both steady state and dynamic operation. It is achieved through taking into account the characteristics of the mechanical loads and the behavior of the power electronic converters. The present: Use of a single converter for speed control Sophisticated design and control Built in options such as overcurrent protection (reduces size considerably) More precise applications such as position control Ac source ac current Shaft dc current Shaft Induction Motor DC generator DC motor Load Multi machine system for speed control : Ward Leonard Method In the PAST: 3 machines Motor-generatormotor set Expensive Inefficient Complex Requires frequent maintenance Has been a leading option for speed control in the first half of the 20 th century Still exists in old elevators

Advantages of Electrical Drives Flexible control characteristic particularly when power electronic converters are employed Wide range of speed, torque and power High efficiency low no load losses Low noise Low maintenance requirements, cleaner operation Electric energy easily transported Adaptable to most operating conditions Available operation in all four torque-speed quadrants

Historical Background Power was provided in a crude way without considering the performance Advances in industrial manufacturing led to a need for more sophisticated drives which have existed in various forms 1. Line shaft Drives: The oldest type of drives. A single motor drives Pulley Load pulley Motor equipment through a common line shaft or belt. It is inflexible and P M inefficient as you can not change the speed of each load alone. Belt 2. Single motor single load drive: most common drive. A single motor is dedicated to each load. Applications include hard disk drives, washers, dryers, fans. single motor single load drive system Load 1 Load 2 Load 3 single motor multiple load drive system

Historical Background (continue): 3. Multi-motor drives: several motors are used to drive a single mechanical load. This type is usually complex such as paper making machines, robotics, airplanes. Multi-motor drive system

Basic Components of an Electrical drive system: 1. Power Source: Provides the energy to the drive system 2. Converter: interfaces the motor with the power source and Power source Electronic Converter Motor Mechanical Load provides the motor with adjustable voltage, current and/or frequency Controller 3. Controller: supervises the operation of the whole system to Block diagram of electric drive system ensure stability and enhance the overall performance 4. Mechanical load: Depends on the customer needs and the industrial process 5. Motor: selected according to the power level, environmental factors and performance required by the load. Ex: if load requires high starting torque so dc series motor is better than induction

Mechanical Loads: Have different torque/speed characteristics mechanical loads are generally speed dependent T = CT r n n r k P = T ω ω = 2π n 60 C= constant T r = load torque at rated speed n r = rated speed n= operating speed k= exponential coefficient representing the torque dependency on speed P= mechanical power ω= angular speed Speed Constant torque Speed Constant torque T~ 1/n T~ n 2 T~ 1/n T~ n 2 Torque Power Typical torque speed characteristics of mechanical loads Typical Power speed characteristics of mechanical loads

Electric Drives Component Selection Several factors affecting drive selection: Steady-state operation requirements nature of torque-speed profile, speed regulation, speed range, efficiency, quadrants of operations, converter ratings Transient operation requirements values of acceleration and deceleration, starting, braking and reversing performance Power source requirements Type, capacity, voltage magnitude, voltage fluctuations, power factor, harmonics and its effect on loads, ability to accept regenerated power Capital & running costs Space and weight restrictions Environment and location Efficiency and reliability What to choose? How can I decide?

DC or AC Drives? Motor DC Drives requires maintenance heavy, expensive limited speed (due to mechanical construction) AC Drives (particularly Induction Motor) less maintenance light, cheaper high speeds achievable (squirrel-cage IM) robust Control Unit Simple & cheap control even for high performance drives decoupled torque and flux control Possible implementation using single analog circuit Depends on required drive performance complexity & costs increase with performance DSPs or fast processors required in high performance drives Performance Fast torque and flux control Scalar control satisfactory in some applications Vector control similar to DC drives

Mechanical Loads: Mechanical load characteristics T = P ω T = CT r n n r k Fan k= 1 Torque independent of speed Torque linearly dependent on speed Torque proportional to the square of speed Torque inversely prop. To speed Drill k= -1 C = 1 k= 0 k= 1 k= 2 k= -1 Power dependent on speed EX: hoists, pumps Power is prop. to n 2 Not so common applications Parabolic Tω characteristics, power is prop. to n 3 EX: centrifugal pumps Requires high starting torque at low speed. Power is speed independent EX: milling machines hoist k= 0

Power sources: Power sources AC source DC source Most common used (single and multi phase) Special type of applications (airplanes) There must be load matching between Motor and mechanical load depending on the load type.

Converters: Converters DC to AC DC to DC AC to DC AC to AC Suitable for IM Suitable for dc motor drives Suitable for dc motor drives Suitable for ac motor drives