Speed Controller

Aug 05
2011

Speed Controller

NWT Speed Control New York Brown Woven Chambray Baby Doll Dress Size Medium M
NWT Speed Control New York Brown Woven Chambray Baby Doll Dress Size Medium M
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Altair Ceiling Fan Wall Control 3 Speed and Light Dimmer NEW
Altair Ceiling Fan Wall Control 3 Speed and Light Dimmer NEW
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Jandy Zodiac Remote Controller Epump Pool Spa Pump Flopro Vs Variable speed NEW
Jandy Zodiac Remote Controller Epump Pool Spa Pump Flopro Vs Variable speed NEW
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Speed Control Controller For Inline Fan Speedster Blower Variable Hydroponics US
Speed Control Controller For Inline Fan Speedster Blower Variable Hydroponics US
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40 Remote Control 114 Offshore Boat RTG Twin Motor RC Electric Racing Speed
40 Remote Control 114 Offshore Boat RTG Twin Motor RC Electric Racing Speed
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HIGH SPEED INVACARE ELECTRIC WHEELCHAIR MOTORSJOYSTICK CONTROLLER CABLES
HIGH SPEED INVACARE ELECTRIC WHEELCHAIR MOTORSJOYSTICK CONTROLLER CABLES
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2PC POWDER COATED REAR LOWER CONTROL ARMS CAMBER NISSAN 350Z FAIRLADY Z G35 RED
2PC POWDER COATED REAR LOWER CONTROL ARMS CAMBER NISSAN 350Z FAIRLADY Z G35 RED
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RC Drift car mini NEW Black convertible full function control high speed Victor
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VINTAGE SONY TCM 20DV Cassette Recorder w SPEED CONTROL and 2 record settings
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ALUMINUM REAR LOWER CONTROL ARMS BARS ROD CAMBER KIT 95 05 BMW E46 E36 Z4 M3 RED
ALUMINUM REAR LOWER CONTROL ARMS BARS ROD CAMBER KIT 95 05 BMW E46 E36 Z4 M3 RED
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PARKZONE 480 SIZE MOTOR AND 18 AMP SPEED CONTROL
PARKZONE 480 SIZE MOTOR AND 18 AMP SPEED CONTROL
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VASCAR PLUS RADAR SPEED CONTROL MONITORING POLICE CAR DEVICE TRAFFIC SAFETY SYST
VASCAR PLUS RADAR SPEED CONTROL MONITORING POLICE CAR DEVICE TRAFFIC SAFETY SYST
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LRP Team Associated SXX TCspec Version 2 Brushless ESC Sensored Speed Control
LRP Team Associated SXX TCspec Version 2 Brushless ESC Sensored Speed Control
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Baldor Encodroless Vector Drive 23Kw AC Motor speed controller
Baldor Encodroless Vector Drive 23Kw AC Motor speed controller
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GENUINE ROYAL ENFIELD 4 SPEED CONTROL CABLE KIT BRAND NEW VALUE PACK
GENUINE ROYAL ENFIELD 4 SPEED CONTROL CABLE KIT BRAND NEW VALUE PACK
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G90373 Leeson Electric Lightnin G3U05R Stirrer w Lightnin Variable Speed Control
G90373 Leeson Electric Lightnin G3U05R Stirrer w Lightnin Variable Speed Control
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Vintage KB Aurora Challenger Speed Controller for Slot Car Racing MINT BOXED
Vintage KB Aurora Challenger Speed Controller for Slot Car Racing MINT BOXED
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2x DHS Skyline3 TG3 ControlSpeed Pips In Table Tennis Rubbers w Sponge New
2x DHS Skyline3 TG3 ControlSpeed Pips In Table Tennis Rubbers w Sponge New
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Kaleja Model 0604002 D 73553 Aldorf DC Motor Speed Control Relays LOT of 3pc
Kaleja Model 0604002 D 73553 Aldorf DC Motor Speed Control Relays LOT of 3pc
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eZRun 25A SL H Brushless speed controller motor ESC 110 112 RC Auto car v2
eZRun 25A SL H Brushless speed controller motor ESC 110 112 RC Auto car v2
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Womens juniors size large L sundress full babydoll knee length SPEED CONTROL
Womens juniors size large L sundress full babydoll knee length SPEED CONTROL
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Medela Pump In Style With Speed Control
Medela Pump In Style With Speed Control
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12V 40V 10A Pulse Width Modulation 13khz PWM DC Motor Speed Control Switch
12V 40V 10A Pulse Width Modulation 13khz PWM DC Motor Speed Control Switch
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New 12V 24V 48V 110V DC Motor Speed Control PWM MACH3 Speed Control
New 12V 24V 48V 110V DC Motor Speed Control PWM MACH3 Speed Control
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2 Milwaukee Cordless Caulk Adhesive Gun with Speed Control 6550 20
2 Milwaukee Cordless Caulk Adhesive Gun with Speed Control 6550 20
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Bolink SPEED CONTROL  BL4620 for a 1 10 RC NIB
Bolink SPEED CONTROL BL4620 for a 1 10 RC NIB
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Traxxas SPEED CONTROL  RESISTOR 1543 1544 NIB old school
Traxxas SPEED CONTROL RESISTOR 1543 1544 NIB old school
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Monogram SPEED CONTROL  6557 NIB old school
Monogram SPEED CONTROL 6557 NIB old school
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NEWEST MYSTERY 30A Speed Controller RC ESC For Brushless Motor Part 4C
NEWEST MYSTERY 30A Speed Controller RC ESC For Brushless Motor Part 4C
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Minarik Digi Lok Speed Control DLC300
Minarik Digi Lok Speed Control DLC300
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VTG Lot Nintendo 64 2 Controller Speed Off Road RR64 Twisted Edge Excitebike
VTG Lot Nintendo 64 2 Controller Speed Off Road RR64 Twisted Edge Excitebike
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Sharp CCD 12pcs IR LEDs Pan Rotation Speed DOME CCTV Camera w Remote Control
Sharp CCD 12pcs IR LEDs Pan Rotation Speed DOME CCTV Camera w Remote Control
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Shimano Ultegra Flight Deck ST 6501 9 speed Dual Control Levers Left and Right
Shimano Ultegra Flight Deck ST 6501 9 speed Dual Control Levers Left and Right
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TURNIGY Sentilon 100A HV 5 12S Speed Controller Version 4 Program Card
TURNIGY Sentilon 100A HV 5 12S Speed Controller Version 4 Program Card
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RUSTLER VXL ESC Speed Control VELINEON VXL 3s Traxxas 3707
RUSTLER VXL ESC Speed Control VELINEON VXL 3s Traxxas 3707
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Summit EVX 2 168v ESC updated LVD model Electronic Speed Control Traxxas 5607
Summit EVX 2 168v ESC updated LVD model Electronic Speed Control Traxxas 5607
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Milwaukee Tool 7 9 Polisher 11 Amp Motor 5460 6 Dial speed control
Milwaukee Tool 7 9 Polisher 11 Amp Motor 5460 6 Dial speed control
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Losi Ten SCTE 4WD ESC MSC MXPRO Brushless Speed Control LOSB9504 LOSB0128
Losi Ten SCTE 4WD ESC MSC MXPRO Brushless Speed Control LOSB9504 LOSB0128
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Slash 4x4 ESC VXL 3s Electronic Speed Control Waterproof Traxxas 6808
Slash 4x4 ESC VXL 3s Electronic Speed Control Waterproof Traxxas 6808
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PWM DC Motor Speed Control 6A AMP 12 24V VOLT 13KHZ Controller Switch
PWM DC Motor Speed Control 6A AMP 12 24V VOLT 13KHZ Controller Switch
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vintage rc10 futaba MC 112 B full fet with reverse esc speed control
vintage rc10 futaba MC 112 B full fet with reverse esc speed control
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2 PC POWDER COATED REAR LOWER CONTROL ARMS CAMBER 96 00 HONDA CIVIC EK EJ GOLD
2 PC POWDER COATED REAR LOWER CONTROL ARMS CAMBER 96 00 HONDA CIVIC EK EJ GOLD
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FRIGIDAIRE FRONT LOADER WASHING MACHINE MOTOR SPEED CONTROL BOARD
FRIGIDAIRE FRONT LOADER WASHING MACHINE MOTOR SPEED CONTROL BOARD
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Xl 5 Speed Control StampedeRustlerslash
Xl 5 Speed Control StampedeRustlerslash
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12 40V 30A 360W DC Motor Speed Control PWM Controller
12 40V 30A 360W DC Motor Speed Control PWM Controller
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12 40V 17A 200W DC Motor Speed Control PWM Controller
12 40V 17A 200W DC Motor Speed Control PWM Controller
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Wheel Horse 520 HC Tractor Speed Control Link
Wheel Horse 520 HC Tractor Speed Control Link
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Unique Speed Control Knob w Skull Number Guitar Pickup
Unique Speed Control Knob w Skull Number Guitar Pickup
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4pcs Black Speed Control Knob Dial for Electric Guitar
4pcs Black Speed Control Knob Dial for Electric Guitar
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3 UNIQUE Red Skull Head Crossbones Black Speed Control Knobs for Electric Guitar
3 UNIQUE Red Skull Head Crossbones Black Speed Control Knobs for Electric Guitar
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PWM DC Converter 9 28V Micro DC Motor Speed Adjuster Controller DC Motor Driver
PWM DC Converter 9 28V Micro DC Motor Speed Adjuster Controller DC Motor Driver
Paypal   US $.99
Team Losi MSC12L Lipo Compatable Electronic Speed Controller
Team Losi MSC12L Lipo Compatable Electronic Speed Controller
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PWM DC Converter 12V 36V 10A DC Motor Speed Controller Adjuster DC Motor Driver
PWM DC Converter 12V 36V 10A DC Motor Speed Controller Adjuster DC Motor Driver
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PWM CVT 12V 40V 10A DC Motor Speed Adjuster Controller Driver 13KHz 10 100
PWM CVT 12V 40V 10A DC Motor Speed Adjuster Controller Driver 13KHz 10 100
Paypal   US $.01
Mercedes 420 500SL SE SEL SEC Idle Speed Control 0045451032 412214 001 001
Mercedes 420 500SL SE SEL SEC Idle Speed Control 0045451032 412214 001 001
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3800W SCR Voltage Regulator Module Dimming Thermostat DC Motor Speed Controller
3800W SCR Voltage Regulator Module Dimming Thermostat DC Motor Speed Controller
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NEW Slash XL 5 ESC Speed Control XL5 Waterproof
NEW Slash XL 5 ESC Speed Control XL5 Waterproof
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Speed Control New York coral summer dress SZ XL Fits more like a Small SM
Speed Control New York coral summer dress SZ XL Fits more like a Small SM
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Speed Control White Lace Long Plunge V Neck Smocked Lined Sun Dress Plus Size 3X
Speed Control White Lace Long Plunge V Neck Smocked Lined Sun Dress Plus Size 3X
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GE Security Three Axis Variable Speed Desktop Controller Keypad KTD 405
GE Security Three Axis Variable Speed Desktop Controller Keypad KTD 405
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92 93 TOYOTA CAMRY CHASSIS ECM SPEED CRUISE CONTROL UNIT MODULE COMPUTER
92 93 TOYOTA CAMRY CHASSIS ECM SPEED CRUISE CONTROL UNIT MODULE COMPUTER
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ADJUSTABLE POWDER COATED REAR CAMBER TOE CONTROL ARMS 02 08 350Z G35 ALTIMA RED
ADJUSTABLE POWDER COATED REAR CAMBER TOE CONTROL ARMS 02 08 350Z G35 ALTIMA RED
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2Guitar Speed knob Control Switch for Gibson White
2Guitar Speed knob Control Switch for Gibson White
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5PCS Dental Control angle Low Speed Handpiece Latch type contra 235mm Bur
5PCS Dental Control angle Low Speed Handpiece Latch type contra 235mm Bur
Paypal   US $189.00
2X DHS Skyline TG3 ControlSpeed Pips In Rubber
2X DHS Skyline TG3 ControlSpeed Pips In Rubber
Paypal   US $34.99
NEW NOVAK GTS SPEED CONTROL
NEW NOVAK GTS SPEED CONTROL
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NEW NOVAKXRS SPEED CONTROL STILL IN FACTORY PLASTIC WRAP
NEW NOVAKXRS SPEED CONTROL STILL IN FACTORY PLASTIC WRAP
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NEW NOVAK HAMMER SPEED CONTROL USED
NEW NOVAK HAMMER SPEED CONTROL USED
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USED NOVAK DUSTER SPEED CONTROL
USED NOVAK DUSTER SPEED CONTROL
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Ok501 Manual Variable for AC FAN Speed Controller
Ok501 Manual Variable for AC FAN Speed Controller
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Precision AC Gear Motor Speed Controller 220V 15W
Precision AC Gear Motor Speed Controller 220V 15W
Paypal   US $.01
Jeti JES 006 Speed Controller
Jeti JES 006 Speed Controller
Paypal   US $25.00
PDL ELECTRONICS ME021D54 INDUSTRIAL MICRODRIVE ELITE AC MOTOR SPEED CONTROLLER
PDL ELECTRONICS ME021D54 INDUSTRIAL MICRODRIVE ELITE AC MOTOR SPEED CONTROLLER
Paypal   US $99.99
NEW MOPAR SERVO Speed Control 53009315 CHRYSLER DODGE JEEP 1997 2011
NEW MOPAR SERVO Speed Control 53009315 CHRYSLER DODGE JEEP 1997 2011
Paypal   US $36.95
Minarik DLC3000 Digi Lock Speed Control
Minarik DLC3000 Digi Lock Speed Control
Paypal   US $19.95
Redcat RS10 XT 1 10 Rockslide 4x4x4 Crawler 50A Dual Motor Speed Control
Redcat RS10 XT 1 10 Rockslide 4x4x4 Crawler 50A Dual Motor Speed Control
Paypal   US $17.00
RAZOR DIRT QUAD ELECTRICAL THROTTLE SPEED CONTROLLER ATV 24 VOLT BICYCLE
RAZOR DIRT QUAD ELECTRICAL THROTTLE SPEED CONTROLLER ATV 24 VOLT BICYCLE
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Ceiling Fan Speed Control Switch Wall Button AC220V New
Ceiling Fan Speed Control Switch Wall Button AC220V New
Paypal   US $.99
DART CONTROLS 253G 200E VARIABLE SPEED DC CONTROL
DART CONTROLS 253G 200E VARIABLE SPEED DC CONTROL
Paypal   US $49.99
Mitsubishi SC A2400B Inverter Speed Controller
Mitsubishi SC A2400B Inverter Speed Controller
Paypal   US $125.00
2 PNEU TROL FCV B FLOW CONTROL VALVE SPEED 1 4NPT BRASS NEEDLE CHECK VALVE 40446
2 PNEU TROL FCV B FLOW CONTROL VALVE SPEED 1 4NPT BRASS NEEDLE CHECK VALVE 40446
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Arri Arriflex 2C Motor Speed Control IIC Ex Cond Eclair Aaton
Arri Arriflex 2C Motor Speed Control IIC Ex Cond Eclair Aaton
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PWM DC Motor Speed Control Switch 12V 40V 10A Pulse Width Modulation 13khz
PWM DC Motor Speed Control Switch 12V 40V 10A Pulse Width Modulation 13khz
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1 4 MINI DRILL PRESS 3 RANGE VARIABLE SPEED CONTROL 0 8500 RPM
1 4 MINI DRILL PRESS 3 RANGE VARIABLE SPEED CONTROL 0 8500 RPM
Paypal   US $49.50
SPEED 2 CRUISE CONTROL VHS 1997 GUC BULLOCK PATRIC
SPEED 2 CRUISE CONTROL VHS 1997 GUC BULLOCK PATRIC
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60 HP M14600B Lenze AC Motor Speed Controller
60 HP M14600B Lenze AC Motor Speed Controller
Paypal   US $4,485.00
REMOTE SWITCH FOR FANLight with speed control up to 7 hr timer 100 MTS RANGE
REMOTE SWITCH FOR FANLight with speed control up to 7 hr timer 100 MTS RANGE
   US $9.36
Zodiac Speed Control
Zodiac Speed Control
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Speed Control Actuator Module off 1988 Toyota Cressida 88200 22240
Speed Control Actuator Module off 1988 Toyota Cressida 88200 22240
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RC Speed 40 Radio Remote Control Offshore Racing Boat Twin Motor Ready To Run
RC Speed 40 Radio Remote Control Offshore Racing Boat Twin Motor Ready To Run
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SQUARE D 8810 SE0 11 MOTOR CONTROL CENTER MULTI SPEED STARTER 120V COIL 52207
SQUARE D 8810 SE0 11 MOTOR CONTROL CENTER MULTI SPEED STARTER 120V COIL 52207
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Speed Control Dress
Speed Control Dress
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Electrical Powertrain control Vehicle speed sensor Auto Train Control
Electrical Powertrain control Vehicle speed sensor Auto Train Control
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25 HP M12250B Lenze AC Motor Speed Controller
25 HP M12250B Lenze AC Motor Speed Controller
Paypal   US $2,564.48

Speed Controller

Pwm Based Speed Control of Dc Motor Drive

Introduction When the switch is closed, the motor sees 12 Volts, and when it is open it sees 0 Volts. If the switch is open for the same amount of time as it is closed, the motor will see an average of 6 Volts, and will run more slowly accordingly. As the amount of time that the voltage is on increases compared with the amount of time that it is off, the average speed of the motor increases. This on-off switching is performed by power MOSFETs. A MOSFET is a device that can turn very large currents on and off under the control of a low signal level voltage. The time that it takes a motor to speed up and slow down under switching conditions is dependant on the inertia of the rotor , and how much friction and load torque there is. The graph below shows the speed of a motor that is being turned on and off fairly slowly: We can see that the average speed is around 150, although it varies quite a bit. If the supply voltage is switched fast enough, it won’t have time to change speed much, and the speed will be quite steady. This is the principle of switch mode speed control. Thus the speed is set by PWM. Inductors Before we go on to discuss the circuits, we must first learn something about the action of inductive loads, and inductors. Inductors do not allow the current flowing through them to change instantly (in the same way capacitors do not allow the voltage across them to change instantly). The voltage dropped across an inductor carrying a current i is given by the equation Where di/dt is the rate of change of the current. If the current is suddenly changed by opening a switch, or turning a transistor off, the inductor will generate a very high voltage across it. For example, turning off 100 Amps in 1 microsecond through a 100 microHenry inductor generates 10kV! PWM frequency The frequency of the resulting PWM signal is dependant on the frequency of the ramp waveform. Frequencies between 20Hz and 18kHz may produce audible screaming from the speed controller and motors. Each switching on and off of the speed controller MOSFETs results in a little power loss. Therefore the greater the time spent switching compared with the static on and off times, the greater will be the resulting 'switching loss' in the MOSFETs. The higher the switching frequency, the more stable is the current waveform in the motors. This waveform will be a spiky switching waveform at low frequencies, but at high frequencies the inductance of the motor will smooth this out to an average DC current level proportional to the PWM demand. This spikiness will cause greater power loss in the resistances of the wires, MOSFETs, and motor windings than a steady DC current waveform. It can be seen from the following two graphs. One shows the worst case on-off current waveform, the other the best case steady DC current waveform Both waveforms have the same average current. However, when we work out the power dissipation in the stray resistances in our motor and speed controller, for the DC case: and for the switching case, the average power is So in the switching waveform, twice as much power is lost in the stray resistances. In practice the current waveform will not be square wave like this, but it always remains true that there will be more power loss in a non-DC waveform. Choosing a frequency based on motor characteristics Then we can work out mathematically the minimum frequency to attain this goal. This section is a bit mathematical so you may wish to miss it out and just use the final equation. The following shows the equivalent circuit of the motor, and the current waveform as the PWM signal switches on and off. This shows the worst case, at 50:50 PWM ratio, and the current rise is shown for a stationary or stalled motor, which is also worst case. T is the switching period, which is the reciprocal of the switching frequency. Just taking the falling edge of the current waveform, this is given by the equation ? is the time constant of the circuit, which is L / R. So the current at time t = T/2 (i1) must be no less than P% lower than at t = 0 (i0). This means there is a limiting condition: So Generating PWM signals The PWM signals can be generated in a number of ways. It is possible that your radio receiver already picks up a PWM waveform from the handset transmitter. If there is a microcontroller on the robot, this may be able to generate the waveform, although if you have more than a couple of motors, this may be too much of a load on the microcontroller’s resources. Several methods are described below. Analogue electronics The PWM signal is generated by comparing a triangular wave signal with a DC signal. The DC signal can range between the minimum and maximum voltages of the triangle wave. When the triangle waveform voltage is greater than the DC level, the output of the op-amp swings high, and when it is lower, the output swings low. From the graph it can be seen that if the DC level went higher, the pulses would get even thinner. This uses a counter and weighted resistor ladder to generate the triangle wave (in fact it will generate a saw tooth, but you'll still get a PWM signal at the end of it). The actual resistor values which are unavailable (40k, 80k) can be made up with 20k resistors, or close approximations can be used. The 74HC14 is a Schmitt input inverter, which is connected to act as a simple oscillator. The frequency of oscillation is roughly f = 1/(2.PI.R.C) but it doesn’t matter a great deal within a few tens of percent. This square wave generated feeds the 74HC163 binary 4-bit counter. All the preset and clear inputs of this are disabled, so the outputs, QA to QD just roll around the binary sequence 0000 to 1111 and rollover to 0000 again. These outputs, which swing from 0v to +5v are fed into a binary weighted summer amplifier, the leftmost LM324 opamp section with the 80k, 40k, 20k and 10k resistors. The output voltage of this amplifier depends on the counter count value and is shown in the table below as Amp1 output. The opamp following this just multiplies the voltage by -½ , to make the voltage positive, and bring it back within logic voltage levels, see the Amp2 output column in the table. Counter value Binary value Amp1 output (Volts) Amp2 output (Volts) 0 0000 0 0 1 0001 -0.625 0.3125 2 0010 -1.25 0.625 3 0011 -1.875 0.9375 4 0100 -2.5 1.25 5 0101 -3.125 1.5625 6 0110 -3.75 1.875 7 0111 -4.375 2.1875 8 1000 -5 2.5 9 1001 -5.625 2.8125 10 1010 -6.25 3.125 11 1011 -6.875 3.4375 12 1100 -7.5 3.75 13 1101 -8.125 4.0625 14 1110 -8.75 4.375 15 1111 -9.375 4.6875 The final, rightmost, opamp compares the voltage with the demand voltage input, which ranges from 0v to 4.6875v, where 0v represents 0% PWM ratio and 4.6875v represents 100% PWM ratio. This demand voltage may range from –12v to +12v but only the 0 to 4.6875 range will adjust the PWM ratio. PWM generator chips There are ICs available which convert a DC level into a PWM output. Many of these are designed for use in switch mode power supplies. Manufacturer IC Normal use SGS Thomson SG1524, SG1525... SMPS Maxim MAX038 Signal generation Alternatively, a MOSFET driver which includes a PWM generator can be used. I know of only one which is not yet released! The SGS Thomson TD340. Digital method The digital method involves incrementing a counter, and comparing the counter value with a pre-loaded register value. It is basically a digital version of the analogue method above: The register must be loaded with the required PWM level by a microcontroller. It may be replaced by a simple ADC if the level must be controlled by an analogue signal (as it would from a radio control servo). This method is only really practical if a microcontroller is being used in your robot, which can preload the register easily. Onboard microcontroller If it has this can greatly simplify the process of generating signals. The Hitachi H8S series has up to 16 PWM outputs available, but many other types have two or three. Interfacing to the high power electronics There are two sides to the electronics: the low-power side, and the high-power side. The low power electronics includes any onboard microcontroller, the radio control receiver, and PWM generators. The high-power side includes the MOSFET drivers, the MOSFETs themselves, and any solenoid or pump drivers that you may have. Basically anything that is switching large currents. Interfacing to the radio control receiver You may be able to tap into the PWM signal which comes out of the radio receiver before it goes into the servo, and use this to drive the input to the MOSFET driver. However, this gives you no choice of switching frequency. Alternatively, the potentiometer can generate a voltage to feed into the PWM generator. A more advanced method if you have a microcontroller on board the robot is to take the PWM signal from the radio receiver and connect it to a timer input of the micro. The microcontroller should be able to decode this waveform, and generate a proportional analogue output value (if it has ADCs, or if an external ADC is fitted). Another even more advanced method is to send serial communications data through the radio channel. The radio control handset will need to have a microcontroller in. The microcontroller should read the pots and switches on the handset, and send suitable commands out of its UART. This connects to the radio transmitter. At the receiver, the demodulated output is sent to the robot's microcontroller's UART, and the data is decoded. Current limiting Current limiting is absolutely essential. If the motor is stalled, it can take huge currents which would destroy the MOSFETs very quickly. The form of current limiting presented here is to measure the current that the motor is taking, and if it is above a preset threshold, turn the MOSFETs in the bridge off. If you have a microcontroller on board which generates the PWM ratio, it would be an advantage if the software could detect the over- current status, and reduce the PWM ratio by, say, 10%. This circuit shows just the upper MOSFETs of the bridge being driven for simplicity. The lower MOSFETs are not turned off during a current limit. There is only one sense resistor required for each motor, and that should be connected immediately from the battery positive terminal. The voltage dropped across the sense resistor is amplified by U1A, which is connected in a differential amplifier circuit. The gain of this is 480k / 1k which is 480. This is a very large gain because the voltage dropped across the sense resistor will be very small. The output of the differential amplifier is then heavily low pass filtered by RxCx. This is because there will be a lot of noise coming from the motor, and we do not want to limit the current if we don't need to. D13 is present to make sure that no negative spikes can affect the following circuitry. U2B compares the filtered signal with a preset value (represented here by V5), and if the current is too high (i.e. the signal is greater than V5), U2B will turn Q1 and Q2 on which clamps the PWM signals from the PWM generator. This will force the MOSFET driver to turn the MOSFET off. Q1 must be repeated four times, one for each of the MOSFET driver channels, but all four transistors can be driven from U2B. D11, R14 and C4 make sure that the MOSFET doesn't turn back on straight away, but takes a few milliseconds. This stops the MOSFET being rapidly turned on and off. A simulation of the current limiting part of this circuit is shown in the diagram below. The V5 threshold voltage was chosen to set a current limit of 30 Amps. The square wave is the PWM voltage (MOSFET gate voltage), and the sloppy waveform is the drain (motor) current. The spiky bit at the top of the slopey waveform is when the current limiting is switching in and out. Some circuits you may see sample the current going through the main power MOSFET by placing a much lower power MOSFET in parallel with it. This works OK, but the problem is the actual limiting current is dependant on the value of Rds(on) of the MOSFET. If Rds(on) was only half the value we were expecting it to be, then twice as much current would flow before the limiting circuit took effect. Also the Rds(on) value depends very much on the current that is passing through the MOSFET, and on the temperature. Any variation in Rds(on) will change the limiting current. The Rds(on) figure is quoted as a maximum value on the datasheet, but it is not a design-safe parameter. This means that it is not within defined limits which are published on the datasheet. For example, CMOS digital logic guarantees that the output voltage, Vo, will be between Vcc-0.5v and Vcc, and that figure can be used to design circuits which rely on that figure. However, with Rds(on), we only know that it will be between 0 and the quoted value. We cannot rely on a minimum value of it, yet it is the minimum value which controls the current limit. Therefore, using a separate shunt resistor is a much safer method. Feedback Speed Control To stop a robot swerving in an arc when you want it to go forwards, you need to have feedback control of the motor speeds. This means that the actual speed of each wheel is measured, and compared with all the other wheels. Obviously to go in a straight line, the motor speeds must be equal. However, this does not necessarily mean that the speed demand for each motor should be the same. The motors will have different amounts of friction, and so a ‘stiffer’ motor will require a higher speed demand to go as fast as a more free-running motor. A block diagram of an analogue feedback speed controller is shown below The speed demand is a DC voltage, which is fed to the PWM generator for motor A. This drives motor A at a speed dependant on the demand voltage. The speed of motor A is sampled using an optical encoder. This has a frequency output, which is proportional to the speed of the motor. If we assume that motor B is already running at some speed, then the optical encoder on its shaft will be producing a frequency also. The phase comparator compares the two frequencies, effectively comparing the speeds of the two motors. Its output is a signal which gets larger as the two input frequencies get further apart. If the two frequencies are the same, it has a zero output. The integrator adds the output of the phase comparator to whatever its output was before. For example, if the integrator output was previously 3 volts, and its input is 0 volts, then its output will be 3 volts. If its input changed to –1 volts, then its output would change to 2 volts. Let’s assume that motor B is running slower than motor A. Then the output of the phase comparator will be positive, and the output of the integrator will start to rise. The speed of motor B will then increase. If it increased to a speed greater than that of motor A, then the output of the phase comparator would become negative, and the output of the integrator would start to fall, thereby reducing the speed of motor B. In this manner, the speed of motor B is kept the same as the speed of motor A, and the robot will go in a straight line (as long as its wheels are the same size!). This method can be expanded to use any number of wheels. One motor will always be the directly driven one (in this case motor A), and the others will have their speed locked to this one. Note that if the directly driven motor is faster, or more free-running, than the others, then when it is driven at its fastest speed (the PWM signal is always ON), then the other motors will never be able to keep up, and the robot will still swerve. It is best, therefore, to directly drive the slowest motor.
About the Author

Assistant professor in lord venkateswara engineering college.I am doing phd in sathyabama university, Tamil Nadu,India.


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