Zhengzhou Ledi Optoelectronic Technology Co., LTD
  • KON113 series hollow absolute encoder ultra-thin structure suitable for complex industrial conditions
  • KON113 series hollow absolute encoder ultra-thin structure suitable for complex industrial conditions
  • KON113 series hollow absolute encoder ultra-thin structure suitable for complex industrial conditions
  • KON113 series hollow absolute encoder ultra-thin structure suitable for complex industrial conditions
  • KON113 series hollow absolute encoder ultra-thin structure suitable for complex industrial conditions
  • KON113 series hollow absolute encoder ultra-thin structure suitable for complex industrial conditions
  • KON113 series hollow absolute encoder ultra-thin structure suitable for complex industrial conditions
  • KON113 series hollow absolute encoder ultra-thin structure suitable for complex industrial conditions
  • KON113 series hollow absolute encoder ultra-thin structure suitable for complex industrial conditions
  • KON113 series hollow absolute encoder ultra-thin structure suitable for complex industrial conditions

KON113 series hollow absolute encoder ultra-thin structure suitable for complex industrial conditions

Maximum speed 6000 rpm, high resolution, high stability, suitable for precision machinery

Model:
KON113-M16S20SN00
KON113-M16S24SN00
KON113-M16S23ST00

USD 268

output value: Monthly Output5200

contact shop

Product Description

The KON113 series encoders come in various models with high resolution, strong environmental adaptability, and stable communication performance, making them suitable for industrial scenarios such as precision machinery.

Product parameters

Product Model

           KON113-M16S20SN00-HR63C0V5
           KON113-M16S24SN00-HR63C0V5

       KON113-M16S23ST00-HR63C0V5

Output Resolution

Maximum supported: 16777216 (24-bit), 20-bit compatible

8388608(23bit)

Number of Revolutions

65536 (16-bit)

Auxiliary Functions

Fault warning, *Electromagnetic environment warning

Interface

RS485

Communication Frequency

≤16K

Baud Rate

2.5Mbps

Input Shaft Tolerance

Axial: -; Axial play: <0.1mm;
Radial: -; Radial runout: <0.02mm;
Shaft-to-stator mounting surface perpendicularity: 0.05

Spindle Speed

≤6000rpm

Moment of Inertia

8.9×10⁻⁵kg·m²

Weight

0.066kg (rotor)

Rotor Angular Acceleration

≤80,000rad/s²

Vibration

10 to 55Hz, maintaining an amplitude of 1.5mm;
55 to 2000Hz, acceleration: 98m/s²;
2 hours per axis in each X, Y, and Z direction, for a total of 6 hours.

Mechanical Shock

Shock acceleration: 980 m/s², 11 ms;
3 shocks per direction, 18 shocks total

Operating Temperature

-20°C to 95°C

Relative Humidity

≤90% (40°C/21 days, based on EN 60068-2-78); non-condensing

IP Rating

—(Protected by the motor rear cover)

Electrical parameters

Product Model

KON113-M16S20SN00-HR63C0V5
KON113-M16S24SN00-HR63C0V5
KON113-M16S23ST00-HR63C0V5

Specifications

Temperature T=25℃

Minimum

Typical

Maximum

Supply Voltage

4.75V

5V

5.25V

Main Power Supply Current Draw (Typical)

130mA

Battery Voltage

3.6V

Battery Fault Voltage

2.9V

Battery Warning Voltage

3.1V

Mode transition voltage

Main power to low power mode

4.32V

Low power to main power mode

4.16V

Differential output level

High level

3.5V

Low level

1.7V

Edge transition time

100ns

Insulation resistance

50MΩ

Terminal and Cable Definitions

Terminal Number

1

2

3

4

5

6

7

8

Definition

5V

GND

485+

485-

Battery +

Battery GND

NC

PE

Cable Color

Red

Black

Blue

Yellow

Brown

White

Shield

Structural Dimensions

Structural Dimensions 1

Structural Dimensions 2

Stator Mounting Hole Dimension Requirements

Rotor Mounting Shaft Dimension Requirements


Product Display



Structural Design: Non-contact (bearingless), ultra-thin reflective optical design reduces installation height.


Measurement Accuracy: Single-turn resolution ≥ 20 bits, absolute accuracy <±15 arc seconds, repeatability <±0.7 arc seconds.


Multi-turn Performance: 16-bit magnetic multi-turn design balances battery life and counting reliability.





Communication Interface: Bidirectional asynchronous communication interface.


Reliable Quality: Passed EMC and reliability testing to ensure long-term stable operation.


Ease of Use: Non-contact installation and one-click commissioning adapt to complex working conditions.


Quality Control

The quality of encoders directly impacts the stability and reliability of industrial automation systems. We have established a comprehensive quality control system, rigorously screening suppliers from raw material procurement to ensure that core components meet performance standards. During production, we employ high-precision equipment and standardized processes, coupled with real-time monitoring through online testing technology. At the finished product stage, we undergo rigorous testing for high and low temperatures, electromagnetic compatibility, and lifespan aging to eliminate performance risks. Each encoder undergoes multiple quality inspections, ensuring superior quality and a solid foundation for intelligent manufacturing, ensuring long-term, stable operation for our customers.

Application Cases

The KON113 series products are suitable for industrial servo control, precision machinery, robotics, logistics AGVs, and rail transit auxiliary systems.

Installation Instructions

1. Installation Jig Instructions2. Installation Accessories





Phillips Torque Screwdriver

Metric 1.5mm Across-Flat Hexagon Torque Wrench

3. Installation Procedure




Stator Installation:


① Align the front face (electronics side) of the stator with the A-side of the mounting jig, and align the pin holes with the jig's locating pins.


② Reverse the assembled stator and jig, aligning the stator legs with the mounting platform and the jig's center hole with the mounting axis to position the stator motherboard. Secure the motherboard with five M2.5×8 Phillips-recessed small pan head screws and flat washers, applying a final tightening torque of 5-7 kgf·cm.


③ Slowly remove the jig, taking care not to tilt it. The stator is now installed.



[Notes]:


1) Pay attention to the screw head height, especially at the star mark "*." The height of the screw head protruding from the PCB must be less than 2.3mm.


2) To prevent the screws from loosening, pre-apply threadlocker to the threaded holes or use screws with pre-applied threadlocker.






Rotor Installation:


① Align the back of the rotor (not the encoder) with the B side of the mounting jig. Be mindful of the impact of the magnets during attraction, and align the rotor shaft hole as closely as possible with the jig shaft hole.


② Reverse the assembled rotor and jig, aligning the rotor shaft hole with the mounting shaft. Slowly push the jig downward, keeping the jig flat and parallel to the mounting platform. Stop when the jig legs are aligned with the mounting platform. Be careful not to push the rotor too far. Use two M3×3 hexagon socket head set screws with a torque of 7 kgf/cm to tighten the rotor to the shaft. (Be mindful of the effect of the rotor magnet's attraction on the screws and tools to avoid contact and damage to the encoder.)


③ Remove the jig. Rotor installation is complete. After rotor installation, rotate the rotor one full revolution to check for interference, paying particular attention to the screws on the bottom of the encoder. Remove the encoder protective film and clean the encoder surface with a cotton swab or dust-free cloth. After installation, proceed to the next step of testing.

4. Precautions


This encoder has a split-body design. The encoder shaft (including the code disc) is separate from the main unit.

 The encoder shaft and motor shaft must be exposed to air during installation. Please assemble in a clean, dust-free environment.


Before installation, degrease and clean the motor shaft to prevent oil and dirt from interfering with the encoder shaft's tightness and contaminating the code disc.


Be careful not to touch the code disc directly with your hands or other hard objects. Fingerprints, oil, dust, and other debris can cause signal abnormalities, and hard objects can damage the code disc.


After installation, inspect the surface of the reflective code disc for cleanliness. 

If contamination is detected, gently wipe it with a dust-free cloth or other material dipped in alcohol. 

Please note that excessive force or use of hard materials may damage the code disc.


Communication Protocol

1. Overview

Unit

Descriptio

Notes

Communication code system

Binary

Communication circuit

Differential drive

RS485

Data transmission content

Single-turn position information

23bit

Multi-turn position information

16bit

Communication rate

2.5 Mbps

2. E²PROM Communication Specifications

Unit

Address

Description

Notes

Read/Write User Parameter Address Range

0-0x7E

User parameter range

This address field can be used to store user parameters. Some areas are reserved and are not recommended for use.

Page Address

0x7F

0~7

Do not exceed this range.

Maximum Erasable and Writeable Endurance

100,000 times

Number of times the operation can be performed

3. Frame Format

Each data frame consists of several data words. The transmission and reception of each data word is implemented by a start bit, 8 data bits, and a stop bit, with the least significant bit first and the most significant bit last.

The terms used in data frame transmission are shown in the following table:

Unit

Description

Notes

CF

Control Field

This section identifies different command types.

SF

Status Field

This section is used to obtain encoder status.

DF

Data Field

Encoder position data.

ADF

Address Field

Accessible encoder addresses.

EDF

E2PROM Field

Contents at the address.

CRC

CRC Check

Polynomial: x8+1 (Except CRC, all data are XORed).

4. Detailed Description

4.1 Control Field (CF)

The CF consists of one data word. The types and contents are shown in the following table:

CF Class

CF Type

Notes

Read Data

ID0(0x02)

Reading Absolute Position Information (CF+SF+ABS+CRC)

ID1(0x8A)

Reading Multi-Turn Data (CF+SF+ABM+CRC)

ID2(0x92)

Reading Encoder ID Information (CF+SF+ID+CRC)

ID3(0x1A)

Reading All Data (CF+SF+ABS+ID+ABM+ALMC+CRC)

Write E²PROM

ID6(0x32)

8-bit "user data" can be written to the specified address. The encoder will respond within 20μs after the command format is sent. Do not communicate with the encoder during this process.

Read E²PROM

IDD(0xEA)

8-bit "user data" can be read from the specified address. The encoder will respond within 20μs after the command format is sent. Do not communicate with the encoder during this process.

Reset

ID7(0xBA)

This reset command requires 10 consecutive commands at intervals of no less than 62.5μs to reset all fault flags.

ID8(0xC2)

This reset command requires 10 consecutive commands at intervals of no less than 62.5μs to reset any single-turn position to zero (the reset data is retained after power cycle).

IDC(0x62)

This reset command requires 10 consecutive commands at intervals of no less than 62.5μs to reset multi-turn data to zero (does not affect single-turn data) and reset all fault flags.

4.2 Status Field (SF)

The SF consists of one byte. The definition of each bit is shown in the following table:

Bit Field

Definition

Description

Bit0

Rsvd

“0”

Bit1

Rsvd

“0”

Bit2

Rsvd

“0”

Bit3

Rsvd

“0”

Bit4

Counting Error

Same as ALMC.Bit2

Bit5

Xor Multi Error

Equal to the logical OR of ALMC.Bit5, Bit6, and Bit7

Bit6

Rsvd

“0”

Bit7

Rsvd

“0”

4.3 Data Field (DF0-DF7)

Depending on the CF type, the number of bytes in the DF field varies, as shown in the following table:

CF Type

DF0

DF1

DF2

DF3

DF4

DF5

DF6

DF7

ID0 (0x02)

ABS0

ABS1

ABS2






ID1 (0x8A)

ABM0

ABM1

ABM2






ID2 (0x92)

ENID








ID3 (0x1A)

ABS0

ABS1

ABS2

ENID

ABM0

ABM1

ABM2

ALMC

ID7 (0xBA)

ABS0

ABS1

ABS2






ID8 (0xC2)

ABS0

ABS1

ABS2






IDC (0x62)

ABS0

ABS1

ABS2






4.4 Fault Description

ALMC Fault Bit Definition Table

Bit

0

1

2

3

4

5

6

7

Definition

Over-speed

"0"

Counting Error

"0"

"0"

Multi-turn error

Battery error

Battery alarm

Fault Flag Bit Description Table

Fault name

Functional Description

Solution

Over-speed

In 5V power mode, the speed is greater than 7200 RPM.

Recycle power

Counting Error

Single-lap information resolution failure.

Recycle power

Multi-turn error

Multi-lap data loss, multi-lap counting failure.

Reset fault

Battery error

Battery voltage is below 2.9V, set.

Check battery circuit and replace battery

Battery alarm

Battery voltage is below 3.1V, set.

Replace battery and voltage is normal

Timing Description

1. Timing Diagram


2. Detailed Specifications

Characteristic

Symbol

Minimum

Default

Maximum

Unit

Note

Power-On time

Tpon


450

550

ms


Command cycle period

Tcyc

62.5



μs


Data byte time

Tb


4


μs


Encoder enable delay time

Ten1

1.5


3.5

μs


Ten2


4.5


μs


Encoder EEPROM

Tee


12


μs

Read:3bytes data;

Command time


16


μs

Write: 4 bytes data

Encoder response time

Tres


4*N


μs

N bytes data

Encoder data set-up delay time

Tset1

0.8


2

μs


Tset2

1


1.5

μs


Encoder disable delay time

Tdis1

0.6


1.2

μs


Tdis2


1.3


μs


Supplier Information

Email:Ldlg@ttbridge.com

Tel:18639502562

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