Encoders & Feedback
Incremental, absolute, rotary and linear encoders plus resolvers.
Also searched as: rotary encoderabsolute encoderlinear encoderresolverquadrature
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INDUSTRIAL RESOLVER ROTARY ENCODER, 9MM
Shaft Diameter: 9 mm
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Incremental Optical Rotary Encoder
Rotation: 360 degrees
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Rotary Encoder + Extras
PPR: 100Phases: 2
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Incremental Rotary Encoder
Output: PNPPhase: AB 90°Pulses per revolution: 100Shaft Diameter: 6 mmShaft Type: Solid
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0 Digit LED Display Encoder
Features: 0 Digit LED DisplayOutput Type: QuadraturePulses per Revolution: 360
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0 Digit LED Display Quadrature Encoder
Output Type: Quadrature
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2 Phase Incremental Rotary Encoder
Cable Length: 194 cmPPR: 600Shaft Diameter: 6 mmShaft Length: 16 mmVoltage: 5-24V DC
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3/8in Rotary Encoder
Shaft Diameter: 3/8 in
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360 Degree Rotary Encoder
Rotation: 360 Degree
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360 Degree Rotary Encoder Module KY-040 with Push Button
Rotation: 360 Degree
from $14.99Amazon $14.99 -
360 Degrees Rotary Encoder Module Brick Sensor Switch
Rotation: 360 degrees
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360P/R Optical Rotary Encoder for Arduino
Pulses Per Revolution: 360Type: OpticalVoltage: 5-24V
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360° Rotary Encoder Module Set
Rotation: 360°
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5-Pin Rotary Encoder 15/20mm Knurled Shaft
Pins: 5Shaft Diameter: 15/20 mm
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6" SPC Output Vertical Digimatic Scale Unit
Length: 6"Output: SPC
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6045 Manual Handle Type Incremental Rotary Encoder
Output: IncrementalType: Manual Handle
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8" SPC Output Vertical Digimatic Scale Unit
Length: 8"
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ABSOLUTE ENCODER electric actuator multi-turn
Turns: multi-turn
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AD2S1210 16Bit RDC Resolver-to-Digital Conversion Module
Bits: 16Excitation: 15.8Vpp
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AS5600 absolute rotary encoder
Interface: PWM/I2C
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Absolute Encoder
Dial Diameter: 2.380 inchesGraduation: 0.0005 inches/0.01 mmOutput: SPC dataRange: 0-0.500 inches
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Absolute Encoder 0-5V 0-10V 4-20mA Output 12 Bit
Output: 0-5V 0-10V 4-20mAResolution: 12 Bit
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Absolute Encoder 10Bit RS485 SSI CAN 5V
Output: RS485, SSI, CANResolution: 10-bitShaft Diameter: 6 mmShaft Type: SolidVoltage: 5V
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Absolute Encoder AG626XDN
Interface: DeviceNet
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Absolute Encoder ARS60-F4A01024
Interface: SSI, RS-485 (Modbus RTU)Resolution: 17-bit Single Turn / 19-bit Multi-TurnType: Multi-Turn Absolute Encoder
About encoders & feedback
Encoders and feedback devices translate mechanical motion into electrical signals for control and measurement. This category encompasses incremental, absolute, rotary, and linear encoders, alongside resolvers. Incremental encoders output a series of pulses per unit of displacement, often in quadrature (A/B channels) with an index pulse (Z channel), providing relative position. Absolute encoders provide a unique digital code for each position, maintaining position information after power cycling, available in single-turn and multi-turn variants. Rotary encoders measure angular displacement, specified by resolution (PPR for incremental, bits for absolute), shaft diameter (e.g., 6mm, 10mm, 1/4", 3/8"), mounting style (flange, servo, hollow shaft), and output protocol (e.g., HTL, TTL, SSI, BiSS, Ethernet/IP, PROFINET). Linear encoders measure linear displacement, defined by resolution, measuring length, and output. Resolvers are analog inductive devices providing absolute angular position via sine/cosine signals, robust in harsh environments. Key selection parameters include resolution, accuracy, operating temperature range, shock/vibration resistance, IP rating (e.g., IP65, IP67), electrical interface, and supply voltage. Common materials include aluminum or stainless steel housings, with various bearing types for rotary units.
How to choose
When selecting an encoder or feedback device, first determine if relative or absolute positioning is required. For relative, incremental encoders are suitable; for absolute, consider absolute encoders or resolvers. Next, specify the type of motion: rotary or linear. For rotary, define the required resolution (PPR or bits) and shaft interface (solid, hollow, through-hole). For linear, specify the measuring length and resolution. Evaluate environmental conditions: IP rating for dust/moisture, operating temperature, and shock/vibration resistance. Finally, select the appropriate output protocol (e.g., HTL, TTL, SSI, BiSS, Ethernet/IP) and electrical interface for integration with the control system, balancing performance requirements against system complexity and cost implications.