Enabling Objective 1.3 Describe the Design of the Magnetek Impulse VG+ series 3 Variable Frequency Drive Controller.

Slides:



Advertisements
Similar presentations
Stator Voltage Control
Advertisements

Basic Electronics Part 7: Actuators
AC DRIVES There are two type of AC motor Drives :
Technical Training Program on IMPULSE AC Drives
50Hz N S Load All Actions A1  A weight is balanced at equilibrium position of a spring and produce a Simple Harmonic Motion with acceleration Which.
INDUCTION MOTOR Scalar Control (squirrel cage)
Power System Fundamentals
12/3/2002BAE Electric Motors Classification / types –DC Motors –AC Motors –Stepper Motors –Linear motors Function –Power conversion - electrical.
PSI Pump Systems Inc. 1(800) PSI Pump Systems Inc. 1(800) Variable Frequency Drives Presented by PSI Pump Systems Inc. “ Your Solutions.
EE20A - Electromechanical Energy Conversion Induction Machine
L.
Direct – Current Motor Characteristics and Applications
Application of Power Electronics
ET 332a Dc Motors, Generators and Energy Conversion Devices Lesson 21: Operation and Control of Dc Motors 1 Lesson a.pptx.
SPEED CONTROL OF THREE PHASE INDUCTION MOTOR WITH ENERGY SAVING
WISA Meeting Help Arrange a Speaker, Write Bio, Introduce
7154/7156 Variable Speed Drives
Three-Phase AC machines Three-Phase Cage Rotor Induction Motor – Electronic Methods of Starting and Speed Control Resource 4.
Course Coordinator Prof. Suneet Tuli Presented by- Rupali Gupta (2012TTE2398) M.Tech 1 st Year Textile Engineering.
Prepared by: Luis Fernando Montoya Chun-Ju Huang Ashish K. Solanki
ECE Electric Drives Topic 12: Scalar Control of AC Induction
AC MOTOR INDUCTION MOTOR.
VECTOR DRIVES EASA June 2005 “REACHING NEW HEIGHTS” Dave Ruehle and Bill Colton.
Chapter 22 Alternating-Current Circuits and Machines.
Motor ELECTRICAL ENERGY Mechanical Energy.
Motor Start Theory ME00107A.
IMPULSE® Adjustable Frequency Drives Technical Training Program
7154 VFD Presentation #2 May 2002 Paul Weingartner.
Confidential / Property of Danfoss Drives A/S DKDD-SMC 1 Drives Division Danfoss presents - VLT ® 2800 Series.
AC vs. DC The production of and use of electricity is an expensive business.Therefore the most efficient use of the resource is required. The most efficient.
Induction Motors Prepared By : PRAGNESH, MEET, SAGAR, SAAVAN, KANISH
Al-Najah National University
Closed loop control.
YASKAWA VS-606 V7 COMPACT VECTOR - CONTROLLED INVERTER FOR GENERAL USE 230V (Single-Phase).1Kw ~ 3.7Kw (.13HP ~ 5HP) 230V (Three-Phase).1Kw ~ 7.5Kw (.13HP.
Automatic accident avoiding system PROJECT MEMBERS MUTHUKUMAR.K (05ME33) SAKTHIDHASAN.S (05ME39) SAKTHIVEL.N (05ME40) VINOTH.S (05ME56) PROJECT GUIDE:
Electric motors KON-C2004 Mechatronics Basics Tapio Lantela, Nov 2nd, 2015.
SMV Electric Tutorials
UNIT 17: TYPES OF ELECTRIC MOTORS
INTRODUCTION TO ROBOTICS Part 3: Propulsion System Robotics and Automation Copyright © Texas Education Agency, All rights reserved. 1.
AC Machines. BOOSTER Basic Function:- -Sometimes when we use electrical power we need different voltage level to main supply. It is provided by Booster.
INVERTER TECHNOLOGY.
Three-Phase AC machines
CNC FEED DRIVES.
Motors & Motor Controllers
Introduction to Motors, servos and steppers
Prepared by: Luis Fernando Montoya Chun-Ju Huang Ashish K. Solanki
INDUCTION MOTOR Scalar Control (squirrel cage)
Controlled-Rectifier Fed Drive
Speed control of three phase induction motor
Electric Machine Induction Motor
Three-Phase AC machines
Predefined Speed Control of BLDC Motor
AC and DC motors.
Fault detection Lecture (3).
DC MOTOR SPEED CONTROL 1. Introduction
SPOC Automation and BECI- who are we?
Electric Motors.
Wind turbine technology
Dr. Unnikrishnan P.C. Professor, EEE
Motor Drive Prof. Ali Keyhani. Modern Variable Speed System A modern variable speed system has four components: 1. Electric Motor 2. Power Converter -
Why is starter necessary for a three-phase induction motor?
UNIT-8 INVERTERS 11/27/2018.
Induction Motor Drives
AC Vector Controlled Drives Induction Motor Drives
Prepared by: Luis Fernando Montoya Chun-Ju Huang Ashish K. Solanki
AC Drives Dr. Adel A. El-Samahy Department of Electrical Engineering University of Helwan.
Equations, Performance, Electrical Equivalent Circuits
CHAPTER – 46 ELECTRONIC CONTROL OF A.C. MOTORS
Dynamical Operation, Vector Control, DTC and Encoder-less Operation
FPGA Based Single Phase Motor Control Using Multistep Sine PWM Author Name1, Author Name2., Author Name3, (BE-Stream Name) Under the Guidance Of Guide.
Presentation transcript:

Enabling Objective 1.3 Describe the Design of the Magnetek Impulse VG+ series 3 Variable Frequency Drive Controller

IMPULSE ® Drive IMPULSE ® Controls Advantages Lowers Operating Costs and Minimizes Equipment Downtime –AC Squirrel Cage Induction Motors for Variable Speed Control Provide Reliability –Electronic Reversing, Multi-Speed Operation Eliminates Conventional Magnetic Contactors –Electronic Dynamic Braking Provides Effective Braking without the Use of Mechanical Brakes

IMPULSE ® Drive IMPULSE ® Controls Advantages Variable Speed Control w/Single-Speed Motor Minimizes High-Starting Current w/Motor Adjust Acceleration/Deceleration Rates Unique Torque Limit Function Creep Speed for Precise Positioning without Plugging Can Produce 150% Full Load Torque

IMPULSE ® Drive IMPULSE ® Controls Advantages Inverter Output Frequencies > 60Hz are Possible Retrofit Existing AC Equipment Motor Insulation class should be considered

Brake Set Delay Timers Ultra Lift™ Slip Compensation Stall Prevention Alternate Acceleration/Deceleration Micro-Positioning Control™ Built-In Auto-Tuning IMPULSE ® VG+ Series 3 Software Features IMPULSE ® Drive

Motor Torque Proving at Start Roll Back Detection at Start Seized Brake Detection at Start Brake Proving at Stop Torque Limited Load Check™ Torque Limited Accel and Decel Built-In Auto-Tuning IMPULSE ® VG+ Series 3 Software Features IMPULSE ® Drive

Quick Stop™ Reverse Plug Simulation™ Multi-Level Password Motor Thermal Overload Protection Motor Phase Loss Detection Ground Fault Protection Slack Cable Protection Software Features IMPULSE ® VG+ Series 3 IMPULSE ® Drive

Overload/Load Check Counter Number of Operations Short Circuit Protection Built-In Serial Communication Fault History and Tracing via Flash ROM Elapsed Run Timer Software Features IMPULSE ® VG+ Series 3 IMPULSE ® Drive

Closed Loop control via Encoder Speed Set Points with Torque Limit Determines Motor Slip Calculates Torque Demand Quick Response to Changes in Torque Demand IMPULSE ® VG+ Series 3 Theory of Operation IMPULSE ® Drive

Adjusts Torque Producing Current without Increasing Magnetizing Current IMPULSE ® VG+ Series 3 Theory of Operation IMPULSE ® Drive

In Simple Terms The VG+ series 3 controller is basically a 3 phase AC voltage to DC voltage to 3 phase AC voltage converter. It starts by receiving 480Vac power and utilizes a 3 phase rectifier to supply a DC bus.

IMPULSE ® Drive AC to Dc Conversion AC INPUT DC BUS

The DC bus is then applied to an Output Transistor assembly to produce square wave pulses. These pulses are modulated and become additive to produce an output voltage at the desired frequency and amplitude. A basic bidirectional Inverter…

IMPULSE ® Drive DC to AC conversion Gate Drive Board DC Bus

IMPULSE ® Drive PWM Inverter

IMPULSE ® Drive PWM Inverter

IMPULSE ® Drive 3-Phase PWM

IMPULSE ® Drive PWM Waveforms

Load Reactors Load Reactors (Coils) are utilized to protect the drive unit from collapsing motor fields or short circuits and they improve the efficiency by creating a more perfect sine wave.

IMPULSE ® Drive Selecting Line/Load Reactors Load Reactors Used on the Load Side of the AFD between AFD and Motor Protects the Drive under Motor Short Circuit Conditions Reactor Attempts to Recreate Perfect Sine Wave, Improves Motor Efficiency Use the Full Load Ampere Rating of the Motor When Selecting Load Reactors

The Rectifier section of the Drive is energized when power is applied to the crane and remains so. When a drive signal is called upon to start and run a motor, a 3 phase output is developed and delivered to the motor. IMPULSE ® VG+ Series 3 Theory of Operation IMPULSE ® Drive

Flux Vector “A Vector Drive uses feedback of various real world information (encoder and CT’s) to further modify the PWM pattern to maintain more precise control of the desired operating parameter, be it current, speed or torque. Using a more powerful and faster microprocessor, it uses the feedback information to calculate the exact vector of voltage and frequency to attain the goal. In a true closed loop fashion, it goes on to constantly update that vector to maintain it. It tells the motor what to do, then checks to see if it did it, then changes its command to correct for any error.”

Flux Vector “A true closed Loop Vector Drive can also make an AC motor develop continuous full torque at zero speed. This makes them suitable for crane and hoist applications where the motor must produce full torque before the brake is released or else the load begins dropping and it can't be stopped. Closed Loop is also so close to being a servo drive that some people use them as such. The shaft encoder can be used to provide precise travel feedback by counting pulses”

Flux Vector Control Typical IMPULSE ® Drive

Light Load IMPULSE ® Drive

Heavy Load IMPULSE ® Drive

Dynamic Braking When slowing down of stopping a motor, Dynamic Braking is utilized. Dynamic Braking occurs when the applied frequency/voltage delivered to the stator is lowered. Due to inertia, the rotor speed can now be faster than the delivered stator speed which results in the motor becoming a generator. Since Generated Voltage is proportional to Speed “N”(differential or slip) times the Magnetic Flux “O” a voltage is now delivered back through the inverter section to the DC bus. Eg = O field X N differential

Dynamic Braking A Dynamic Braking Unit is connected across the +/- DC bus and this acts to dissipate the energy and limit the rise of DC voltage. –Without the Dynamic Braking resistor, damage would occur to the drive unit.

With Dynamic Braking

IMPULSE ® Drive V/F Ratio

IMPULSE ® Drive V/F Curve

IMPULSE ® Drive Torque & Horsepower vs. Speed

IMPULSE ® Drive Theoretical V/F Ratio w/Voltage Boost

Encoder Specifications Heavy Duty Industrial Type Output Resolution – 1,024 Pulses per Revolution 12V DC Differential Line Driver Output Connected to Motor Shaft to Provide Zero Backlash Shielded Cable IMPULSE ® Drive

IMPULSEVG+ Series 3 PG-T2 Board IMPULSE ® Drive

PG-X2 Card Inputs/Test Points IMPULSE ® Drive

Initial Inspection Check Programming Parameters Check Encoder Connections Confirm Rotation of Motor Auto Tune Motor Start-Up Procedure IMPULSE ® VG+ Series 3 Take No-Load Reading Load Test Check Brake Proving Save Parameters IMPULSE ® Drive

Selecting Line/Load Reactors Acts as a Current Limiting Device Filters the Waveform and Attenuates Electrical Noise Associated with AFD Output Use Continuous Output Rating of the Line Reactors