Electronic Device And Electronic Circuit

Data of electronic device , PCB Design and electronic circuit

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Saturday, June 13, 2009

BRUSHLESS DC MOTOR Driver Circuit

Closed Loop Brushless DC Motor Control Circuit

Brushless DC Motor Controller
The MC33035 is a high performance second generation monolithic
brushless DC motor controller containing all of the active functions
required to implement a full featured open loop, three or four phase
motor control system. This device consists of a rotor position decoder
for proper commutation sequencing, temperature compensated
reference capable of supplying sensor power, frequency
programmable sawtooth oscillator, three open collector top drivers,
and three high current totem pole bottom drivers ideally suited for
driving power MOSFETs.



The MC33035, by itself, is only capable of open loop
motor speed control. For closed loop motor speed control,
the MC33035 requires an input voltage proportional to the
motor speed. Traditionally, this has been accomplished by
means of a tachometer to generate the motor speed feedback
voltage. Figure 39 shows an application whereby an
MC33039, powered from the 6.25 V reference (Pin 8) of the
MC33035, is used to generate the required feedback voltage
without the need of a costly tachometer. The same Hall
sensor signals used by the MC33035 for rotor position
decoding are utilized by the MC33039. Every positive or
negative going transition of the Hall sensor signals on any
of the sensor lines causes the MC33039 to produce an output
pulse of defined amplitude and time duration, as determined
by the external resistor R1 and capacitor C1. The output train

of pulses at Pin 5 of the MC33039 are integrated by the error
amplifier of the MC33035 configured as an integrator to
produce a DC voltage level which is proportional to the
motor speed. This speed proportional voltage establishes the
PWM reference level at Pin 13 of the MC33035 motor
controller and closes the feedback loop. The MC33035
outputs drive a TMOS power MOSFET 3−phase bridge.
High currents can be expected during conditions of start−up,
breaking, and change of direction of the motor.

The system shown in Figure 39 is designed for a motor
having 120/240 degrees Hall sensor electrical phasing. The
system can easily be modified to accommodate 60/300
degree Hall sensor electrical phasing by removing the
jumper (J2) at Pin 22 of the MC33035.



2.8A THREE-PHASE BRUSHLESS DC MOTOR Driver Circuit

DMOS DRIVER FOR THREE-PHASE BRUSHLESS DC MOTOR
The L6235 is a DMOS Fully Integrated Three-Phase
Motor Driver with Overcurrent Protection.
Realized in MultiPower-BCD technology, the device
combines isolated DMOS Power Transistors with
CMOS and bipolar circuits on the same chip.
The device includes all the circuitry needed to drive a
three-phase BLDC motor including: a three-phase
DMOS Bridge, a constant off time PWM Current Controller
and the decoding logic for single ended hall
sensors that generates the required sequence for the
power stage.



A typical application using L6235 is shown in Figure 21.
Typical component values for the application are shown
in Table 3. A high quality ceramic capacitor (C2) in the
range of 100nF to 200nF should be placed between the
power pins VSA and VSB and ground near the L6235 to
improve the high frequency filtering on the power supply
and reduce high frequency transients generated by the
switching. The capacitor (CEN) connected from the EN
input to ground sets the shut down time when an over
current is detected (see Overcurrent Protection). The two
current sensing inputs (SENSEA and SENSEB) should be
connected to the sensing resistor RSENSE with a trace
length as short as possible in the layout. The sense
resistor should be non-inductive resistor to minimize
the di/dt transients across the resistor. To increase noise
immunity, unused logic pins are best connected to 5V
(High Logic Level) or GND (Low Logic Level) (see pin
description). It is recommended to keep Power Ground
and Signal Ground separated on PCB.



175-V, 2-A, two-quadrant velocity controller Driver Circuit

The UCC3626 motor controller device combines
many of the functions required to design a
high-performance, two- or four-quadrant, threephase,
brushless dc motor controller into one
package. Rotor position inputs are decoded to
provide six outputs that control an external power
stage. A precision triangle oscillator and latched
comparator provide PWM motor control in either
voltage- or current-mode configurations. The
oscillator is easily synchronized to an external
master clock source via the SYNCH input.
Additionally, a QUAD select input configures the
chip to modulate either the low-side switches only,
or both upper and lower switches, allowing the
user to minimize switching losses in less
demanding two-quadrant applications.



Figure illustrates a simple 175-V, 2-A, two-quadrant
velocity controller using the UCC3626. The power stage
is designed to operate with a rectified off-line supply using
IR2210s to provide the interface between the low
voltage control signals and the power MOSFETs.

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Thursday, January 15, 2009

Stepper Motor Data 1

program shows the basic operation of the stepper motors

This program shows the basic operation of the unipolar and
bipolar stepper motors. In addition there are demos of a translator
, oscillator and indexer.
http://www.wimb.net/index.php?s=delphi&page=6

Basic theory of Stepping Motors

Stepping motors are electromagnetic, rotary, incremental devices
which convert digital pulses into mechanical rotation. The amount
of rotation is directly proportional to the number of pulses and the
speed of rotation is relative to the frequency of those pulses.


Static or holding torque - displacement characteristic
The characteristic of static (holding) torque - displacement is best
explained using an electro-magnet and a single pole rotor . In
the example the electro-magnet represents the motor stator and is
energized with it's north pole facing the rotor
http://www.sapiensman.com/step_motor/

Stepper Motors: Principles of Operation



Permanent Magnet stepper motors incorporate a permanent magnet
rotor, coil windings and magnetically conductive stators. Energizing
a coil winding creates an electromagnetic field with a north and south
pole .
http://www.pc-control.co.uk/step-motor.htm

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Monday, January 12, 2009

Microstep Stepper motor driver circuit

Half-step, full-step and microstep Stepper motor driver

The L6219 is a bipolar monolithic integrated
circuits intended to control and drive both winding
of a bipolar stepper motor or bidirectionally control
two DC motors.
The L6219 with a few external components form a
complete control and drive circuit for LS-TTL or
microprocessor controlled stepper motor system.
The power stage is a dual full bridge capable of
sustaining 46V and including four diodes for
current recirculation.


Features
- Able to drive both windings of bipolar stepper
motor
- Output current up to 750 mA each winding
- Wide voltage range: 10 V to 46 V
- Half-step, full-step and microstepping mode
- Built-in protection diodes
- Internal PWM current control
- Low output saturation voltage
- Designed for unstabilized motor supply voltage
- Internal thermal shutdown

L6219 Datasheet pdf

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Saturday, January 10, 2009

bipolar stepper motor with current control


The UDN2916B, UDN2916EB, and UDN2916LB motor drivers are
designed to drive both windings of a bipolar stepper motor or
bidirectionally control two dc motors. Both bridges are capable of
sustaining 45 V and include internal pulse-width modulation (PWM)
control of the output current to 750 mA. The outputs have been
optimized for a low output saturation voltage drop (less than 1.8 V
total source plus sink at 500 mA).

FEATURES
- 750 mA Continuous Output Current
- 45 V Output Sustaining Voltage
- Internal Clamp Diodes
- Internal PWM Current Control
- Low Output Saturation Voltage
- Internal Thermal Shutdown Circuitry
- Similar to Dual PBL3717, UC3770

UDN2916 Datasheet pdf

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Wednesday, January 07, 2009

2A Step Motor Driver Circuit

TWO PHASE BIPOLARSTEPPERMOTOR CONTROL CIRCUIT
This circuit drives bipolar stepper motors with winding currents
up to 2A.The diodes are fast 2A types.


L297
STEPPER MOTOR CONTROLLERS
The L297/A/D Stepper Motor Controller IC generates
four phase drive signals for two phase bipolar
and four phase unipolar step motors in microcomputer-
controlled applications. The motor can be
driven in half step, normal and wawe drive modes
and on-chip PWM chopper circuits permit switchmode
control of the current in the windings.

Feature
- NORMAL/WAWE DRIVE
- HALF/FULL STEP MODES
- CLOCKWISE/ANTICLOCKWISEDIRECTION
- SWITCHMODE LOAD CURRENT REGULATION
- PROGRAMMABLE LOAD CURRENT
- FEW EXTERNALCOMPONENTS
- RESET INPUT & HOME OUTPUT
- ENABLE INPUT

L297 Datasheet pdf

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Wednesday, December 24, 2008

HALF-BRIDGE MOSFET DRIVER CIRCUIT

IN = PWM 0 to 95%
IR2111
The IR2111(S) is a high voltage, high speed power
MOSFET and IGBT driver with dependent high and
low side referenced output channels designed for halfbridge
applications. Proprietary HVIC and latch
immune CMOS technologies enable ruggedized
monolithic construction. Logic input is compatible with
standard CMOS outputs. The output drivers feature a
high pulse current buffer stage designed for minimum
driver cross-conduction. Internal deadtime is provided
to avoid shoot-through in the output half-bridge. The
floating channel can be used to drive an N-channel
power MOSFET or IGBT in the high side configuration
which operates up to 600 volts.


Features
- Floating channel designed for bootstrap operation
Fully operational to +600V
Tolerant to negative transient voltage
dV/dt immune
- Gate drive supply range from 10 to 20V
- Undervoltage lockout for both channels
- CMOS Schmitt-triggered inputs with pull-down
- Matched propagation delay for both channels
- Internally set deadtime
- High side output in phase with

IR2111 Datasheet pdf

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Sunday, December 21, 2008

High and Low Side Mosfet Driver Circuit

IR2110
The IR2110/IR2113 are high voltage, high speed power MOSFET and
IGBT drivers with independent high and low side referenced output channels.
Proprietary HVIC and latch immune CMOS technologies enable
ruggedized monolithic construction. Logic inputs are compatible with
standard CMOS or LSTTL output, down to 3.3V logic. The output
drivers feature a high pulse current buffer stage designed for minimum
driver cross-conduction. Propagation delays are matched to simplify use in
high frequency applications. The floating channel can be used to drive an
N-channel power MOSFET or IGBT in the high side configuration

whichoperates up to 500 or 600 volts

Features
- Floating channel designed for bootstrap operation
Fully operational to +500V or +600V
Tolerant to negative transient voltage
dV/dt immune
- Gate drive supply range from 10 to 20V
- Undervoltage lockout for both channels
- 3.3V logic compatible
Separate logic supply range from 3.3V to 20V
Logic and power ground 5V offset
- CMOS Schmitt-triggered inputs with pull-down
- Cycle by cycle edge-triggered shutdown logic
- Matched propagation delay for

IR2110 Datasheet pdf

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