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Through Bore Encoder V2

The REV Through Bore Encoder V2 provides precise, reliable shaft position measurement with both incremental (ABI quadrature) and absolute (pulse-width) outputs

The Through Bore Encoder V2 delivers higher measurement accuracy—up to ±0.5°—while maintaining strong performance in environments where dust or debris may affect optical encoders. The magnetic sensing design offers consistent feedback without the need for complex alignment or maintenance.

Features

  • Incremental and absolute magnetic encoder

    • Built-in magnet

    • Quadrature output - A, B, and Index

    • Absolute output - Pulse Width (Duty Cycle)

    • MPS MA600

  • Factory calibrated zero-position

    • Zero calibrated to notch in case

  • Through-bore design

    • Easily mounted to any shaft with optional bore inserts

    • 1/2in Hex (default)

    • 3/8in Hex

    • 5mm Hex

    • 1/4in Round

  • Mounting holes

    • Hole spacing matches common 0.5in pitch (MAXTube, MAXPlanetary, etc.)

The FTC Control System currently only supports Incremental Encoder input through the motor encoder ports. Absolute pulse input is not supported.

Do not disassemble the sensor. Disassembling the Through Bore Encoder will dereference the zero position with the physical case notch. It is not possible to recalibrate the zero position as it is permanently saved inside the sensor at the factory

Kit Contents

Part Number

Description

Qty

REV-11-1271

Through Bore Encoder V2

1

REV-25-1870

Through Bore Encoder Insert Pack

1

-

3/8" Hex Insert

1

-

5mm Hex Insert

1

-

1/4" Round Insert

1

JST-PH 6-pin to JST-PH 6-pin Cable

1

JST-PH 6-pin to 4 x 3-pin 0.1" (PWM/Dupont) Cable

1

JST-PH 6-pin to JST-PH 4-pin Cable

1

REV-11-1275
REV-11-1817
REV-31-1815

Application Examples

The REV Through Bore Encoder uses the Monolithic Power Systems MA600, a precision high-bandwidth magnetic angle sensor that detects the absolute angular position of a permanent magnet and geared to the through bore shaft hole. The MPS MA600 uses precision tunnel magnetoresistance technology to measure changes in the magnetic field as the shaft and magnet rotates.

A major benefit of the REV Through Bore Encoder is the flexibility of measuring any shaft in your system. Directly measuring the rotation of an output shaft allow users to read encoders without having to calculate gear ratios.

Cable Options

Cable

Output Connector

Intended System

The Through Bore Encoder comes with several different cables making it easier to connect to different devices. Below are a few wiring examples for the more commonly used devices with the Through Bore Encoder.

To connect the Through Bore Encoder to a Control Hub, use the included JST PH 6-pin to JST PH 4-pin cable. The Through Bore Encoder plugs into the Encoder ports on the Control Hub.

Wiring of the Through Bore Encoder to a SPARK MAX changes depending on the motor type being used with the SPARK MAX. Both motor types use the included JST PH 6-pin cable.

When using a brushed motor with SPARK MAX, the Through Bore Encoder is connected directly to the Encoder Port on the front of the SPARK MAX.

When using a brushless motor with SPARK MAX, the Through Bore Encoder is used as an Alternate Encoder. Using the Alternate Encoder Adapter (REV-11-1881) with the SPARK MAX allows for the JST PH 6-pin cable to connect directly to the adapter and the Through Bore Encoder.

NI's roboRIO supports both quadrature and duty cycle encoders. There are slight differences in wiring depending on what mode is desired. Both wiring setups use the included JST PH 6-pin to 4 Channel PWM Cable.

When using the Through Bore Encoder as a quadrature encoder, plug the ENC A (blue) and ENC B (yellow) signal lines into the DIO ports on the roboRIO.

When using the Through Bore Encoder as a duty cycle encoder plug the ABS (white) signal line into a DIO port on the roboRIO.

This is the default shaft configuration that comes with the encoder out of the box.

When using the 3/8” Hex insert, press the insert into the 1/2” Hex hole.

If you are having difficulty pressing the insert into the encoder, try flipping the insert over and press it in. There is a slight taper in the insert, so it is recommended to press the insert with the smaller end first. When removing, it is recommended to push the insert out in the reverse order (larger end first).

When using the 5mm Hex insert, press the insert into the 1/2” Hex hole.

If you are having difficulty pressing the insert into the encoder, try flipping the insert over and press it in. There is a slight taper in the insert, so it is recommended to press the insert with the smaller end first. When removing, it is recommended to push the insert out in the reverse order (larger end first).

When using the 1/4” round insert, press the insert onto the shaft first and then place the encoder onto the insert.

This adapter fits the encoder shaft on common gearboxes like the Toughbox Mini, which is traditionally included in the FRC Kit of Parts Chassis.

There is a switch on the side of the encoder and with two options: ‘A’ and ‘S’. ‘A’ is the ABI encoder output mode which outputs the incremental and absolute encoder signals. ‘S’ is the SSI/SPI mode used in the manufacturing stage and potential future features. Currently, only the ‘A’ mode is supported. Make sure that the switch is in the ‘A’ position when using this encoder.

The REV Through Bore Encoder is specifically designed with the end user in mind, allowing teams to place sensors in the locations closest to the rotation that they wish to measure. Using the ¼” round insert allows teams to easily attach the Through Bore Encoder to the output shaft of the ToughBox Mini with the AM14U series kit of parts chassis. This guide is to show the process for attaching the Through Bore Encoder to the ToughBox Mini gearbox

Additional information about the MPS MA600, its capabilities, and its features can be found in the following datasheet:

Through Bore Encoder V1

The REV Through Bore Encoder is designed with the end user in mind, allowing teams to place sensors in the locations closest to the rotation they wish to measure. This rotary sensor measures both relative and absolute position through its ABI quadrature output and its absolute position pulse output.

  • Incremental and absolute magnetic encoder

    • Built-in magnet

Output Signals

REV-11-1275

6-Pin JST PH

SPARK MAX Brushed Motor Mode

A, B, I, ABS

REV-11-1817

3-pin 0.1" Connector (PWM/Dupont) (4x)

roboRIO DIO

A, B, I, ABS

REV-31-1815

4-Pin JST PH

Control/Expansion Hub Encoder Port

A, B

Wiring Examples

Control Hub (REV-31-1595)

SPARK MAX (REV-11-2158)

Brushed Motors

Brushless Motors

Make sure to check the Alternate Encoder Mode bring up in the SPARK MAX documentation before connecting the Through Bore Encoder.

NI roboRIO

Quadrature Encoder (Relative)

Duty Cycle Encoder (Absolute)

Shaft Options

1/2” Hex

3/8” Hex

5mm Hex

1/4" Round

Switch Options

AM14U KOP Chassis – Encoder Install

These instructions show the Through Bore Encoder (REV-11-1271) but the steps are the same for the Through Bore Encoder (REV-11-3174)

Additional Resources

AM14U KOP Chassis – Encoder Install
MPS MA600 Datasheet

Quadrature output - A, B, and Index

  • Absolute output - Pulse Width (Duty Cycle)

  • Broadcom AEAT-8800

  • Factory-calibrated zero-position

    • Zero calibrated to notch in case

  • Through-bore design

    • Easily mounted to any shaft

    • Bore inserts

      • 1/2" Hex (default)

      • 3/8" Hex

      • 5mm Hex

      • 1/4" Round

  • Mounting holes

    • Hole spacing matches common FRC gearboxes and chassis

  • Part Number

    Description

    Qty

    Through Bore Encoder

    1

    -

    Features

    The FTC Control System currently only supports Incremental Encoder input through the motor encoder ports. Absolute pulse input is not supported.

    Do not disassemble the sensor. Disassembling the Through Bore Encoder will dereference the zero position with the physical case notch. It is not possible to recalibrate the zero position as it is permanently saved inside the sensor at the factory

    Kit Contents

    Specifications

    General Specifications

    Parameter

    Value and Units

    Sensor Type

    Digital, Encoder

    Connector

    JST-PH 6-pin

    Application Examples

    The REV Through Bore Encoder uses the Broadcom AEAT-8800-Q24 magnetic rotary sensor to measure the rotation of a magnet embedded and geared to the through bore shaft hole. The AEAT-8800-Q24 uses hall effect technology to measure changes in the magnetic field as the shaft and magnet rotates.

    A major benefit of the REV Through Bore Encoder is the flexibility of measuring any shaft in your system. Directly measuring the rotation of an output shaft allow users to read encoders without having to calculate gear ratios.

    Cable Options

    Cable

    Output Connector

    Intended System

    The Through Bore Encoder comes with several different cables making it easier to connect to different devices. Below are a few wiring examples for the more commonly used devices with the Through Bore Encoder.

    To connect the Through Bore Encoder to a Control Hub, use the included JST PH 6-pin to JST PH 4-pin cable. The Through Bore Encoder plugs into the Encoder ports on the Control Hub.

    Wiring of the Through Bore Encoder to a SPARK MAX changes depending on the motor type being used with the SPARK MAX. Both motor types use the included JST PH 6-pin cable.

    When using a brushed motor with SPARK MAX, the Through Bore Encoder is connected directly to the Encoder Port on the front of the SPARK MAX.

    When using a brushless motor with SPARK MAX, the Through Bore Encoder is used as an Alternate Encoder. Using the Alternate Encoder Adapter (REV-11-1881) with the SPARK MAX allows for the JST PH 6-pin cable to connect directly to the adapter and the Through Bore Encoder.

    NI's roboRIO supports both quadrature and duty cycle encoders. There are slight differences in wiring depending on what mode is desired. Both wiring setups use the included JST PH 6-pin to 4 Channel PWM Cable.

    When using the Through Bore Encoder as a quadrature encoder, plug the ENC A (blue) and ENC B (yellow) signal lines into the DIO ports on the roboRIO.

    When using the Through Bore Encoder as a duty cycle encoder plug the ABS (white) signal line into a DIO port on the roboRIO.

    This is the default shaft configuration that comes with the encoder out of the box.

    When using the 3/8” Hex insert, press the insert into the 1/2” Hex hole.

    If you are having difficulty pressing the insert into the encoder, try flipping the insert over and press it in. There is a slight taper in the insert, so it is recommended to press the insert with the smaller end first. When removing, it is recommended to push the insert out in the reverse order (larger end first).

    When using the 5mm Hex insert, press the insert into the 1/2” Hex hole.

    If you are having difficulty pressing the insert into the encoder, try flipping the insert over and press it in. There is a slight taper in the insert, so it is recommended to press the insert with the smaller end first. When removing, it is recommended to push the insert out in the reverse order (larger end first).

    When using the 1/4” round insert, press the insert onto the shaft first and then place the encoder onto the insert.

    This adapter fits the encoder shaft on common gearboxes like the Toughbox Mini, which is traditionally included in the FRC Kit of Parts Chassis.

    There is a switch on the side of the encoder and with two options: ‘A’ and ‘S’. ‘A’ is the ABI encoder output mode which outputs the incremental and absolute encoder signals. ‘S’ is the SSI/SPI mode used in the manufacturing stage and potential future features. Currently, only the ‘A’ mode is supported. Make sure that the switch is in the ‘A’ position when using this encoder.

    The REV Through Bore Encoder is specifically designed with the end user in mind, allowing teams to place sensors in the locations closest to the rotation that they wish to measure. Using the ¼” round insert allows teams to easily attach the Through Bore Encoder to the output shaft of the ToughBox Mini with the AM14U series kit of parts chassis. This guide is to show the process for attaching the Through Bore Encoder to the ToughBox Mini gearbox

    Additional information about the AEAT-8800-Q24, its capabilities, and its features can be found in the following datasheet:

    3/8" Hex Insert

    1

    -

    5mm Hex Insert

    1

    -

    1/4" Round Insert

    1

    REV-11-1275

    JST-PH 6-pin to JST-PH 6-pin Cable

    1

    REV-11-1817

    JST-PH 6-pin to 4 x 3-pin 0.1" (PWM/Dupont) Cable

    1

    REV-31-1815

    JST-PH 6-pin to JST-PH 4-pin Cable

    1

    REV-11-1271

    Output Signals

    REV-11-1275

    6-Pin JST PH

    SPARK MAX Brushed Motor Mode

    A, B, I, ABS

    REV-11-1817

    3-pin 0.1" Connector (PWM/Dupont) (4x)

    roboRIO DIO

    A, B, I, ABS

    REV-31-1815

    4-Pin JST PH

    Control/Expansion Hub Encoder Port

    A, B

    Wiring Examples

    Control Hub (REV-31-1595)

    SPARK MAX (REV-11-2158)

    Brushed Motors

    Brushless Motors

    Make sure to check the Alternate Encoder Mode bring up in the SPARK MAX documentation before connecting the Through Bore Encoder.

    NI roboRIO

    Quadrature Encoder (Relative)

    Duty Cycle Encoder (Absolute)

    Shaft Options

    1/2” Hex

    3/8” Hex

    5mm Hex

    1/4" Round

    Switch Options

    AM14U KOP Chassis – Encoder Install

    Additional Resources

    AM14U KOP Chassis – Encoder Install
    AEAT-8800-Q24 Datasheet

    V

    Logic Level

    -

    3.3

    5.0

    V

    Maximum RPM

    -

    -

    10000

    RPM

    Cycles per Rev.

    -

    8192

    -

    Counts per Rev.

    Index Pulse Frequency

    -

    1

    -

    Pulse per Rev.

    Index Pulse Width

    -

    0.04

    -

    Degree

    μs

    Frequency

    -

    1

    -

    kHz

    Minimum Pulse (0°)

    -

    3.884

    -

    μs

    Maximum Pulse (360°)

    -

    998.06

    -

    μs

    Pulse Resolution

    -

    12

    -

    bit

    Mounting Holes

    #10 Clearance

    Accuracy

    Factory Calibrated to +/- 0.5 degree

    Weight

    23.0g (0.05lbs)

    Parameter

    Min

    Typ

    Max

    Units

    Input Voltage

    3.3

    -

    Parameter

    Min

    Typ

    Max

    Units

    Quadrature Resolution

    -

    2048

    Parameter

    Min

    Typ

    Max

    Units

    Period

    -

    1000

    Electrical Specifications

    Incremental Output

    Absolute Pulse Output (Duty Cycle)

    Mechanical Drawings

    Pinout

    5.0

    -

    -

    Specifications

    Mounting Holes

    #10 Clearance

    Parameter

    Min

    Typ

    Max

    Units

    Input Voltage

    3.3

    -

    Parameter

    Min

    Typ

    Max

    Units

    Quadrature Resolution

    -

    2048

    Parameter

    Min

    Typ

    Max

    Units

    Period

    -

    1025

    Parameter

    Value and Units

    Sensor Type

    Digital, Encoder

    Connector

    JST-PH 6-pin

    General Specifications

    Electrical Specifications

    Incremental Output

    Absolute Pulse Output (Duty Cycle)

    Mechanical Drawings

    Pinout

    With the switch in the S position, the SSI pins on the AEAT-8800 Magnetic Encoder are exposed on the 6-pin JST PH connector instead of the quadrature and absolute signals (A, B, I, Abs.). Details about the SSI protocol for the sensor can be found in the

    5.0

    V

    Logic Level

    -

    3.3

    5.0

    V

    Maximum RPM

    -

    -

    10000

    RPM

    -

    Cycles per Rev.

    -

    8192

    -

    Counts per Rev.

    Index Pulse Frequency

    -

    1

    -

    Pulse per Rev.

    Index Pulse Width

    -

    90

    -

    °e

    -

    μs

    Frequency

    -

    975.6

    -

    Hz

    Minimum Pulse (0°)

    -

    1

    -

    μs

    Maximum Pulse (360°)

    -

    1024

    -

    μs

    Pulse Resolution

    -

    10

    -

    bit

    AEAT-8800 datasheet