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TB6560 4 Axis Stepper Motor Driver
- Driver Chip: TB6560AHQ
- Operating Voltage: 10-35V
- Nominal Voltage: 24V
- Stepper motor drive current: 1.5A – 3A/phase
- With the large heat sink to ensure good heat dissipation
- Double-pole constant flow PWM actuation output
- 6N137 high-speed OptoCoupler, to ensure a high speed without stepping out.
- Compatible Stepper motors: 2/4 Phase, 4/6/8 leads stepper motors within 3.5A
- 1 – 1/16 micro step setting – higher accuracy, smoother operation
- Full closed-type optical isolation to protect the user’s computer and equipment
- Professional design, two-stage signal processing, super anti-jamming
- Bipolar constant current chopper drive motor low-speed non-creeping phenomenon, noise, non-resonant region
- Four input control
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This stepper motor driver controller board used an updated version of the TB6560 Chip. It is a high-performance micro-stepping drive based on pure-sinusoidal current control technology. This pure sine and the self-adjustment technology to self-adjust current control parameters offers a quick setup while using different motors. Thus This CNC Router Single Axis 3.5A Stepper Motor driver board can run with smaller noise, lower heating, smoother movement and have better performances at a higher speed than most of the drives in the markets. It is suitable for driving 2-phase and 4-phase hybrid stepping motors. Therefore, in order to improve reliability, the driver features some built-in protection functions. Such as low voltage shutdown, overheating stop, and overcurrent protection circuit.
- The inductive DC-DC step-down module, computer terminal and then using the power isolation module design, just to run a set of power input, the input voltage of 24V-40V allows high voltage input, completely beyond TB6560, TB6560 of the input voltage. typically 24V.
- .Increase the external signal input optocoupler used in all-optical coupling isolation input.
- Increase the simulation 0-10V output, combined with MACH3 software to control the drive spindle speed.
- add a select group of relay outputs (can output two relays, control the two different devices, load isolation, P9 pin relay 1, relay 2 pin P16, P17 cited relay 3 setting foot)
- Increase the 20-pin multi-connector, docking variety of signal input control. you can use the microcontroller, ARM, DSP control.
- Add the buffer chip signal, amplify the external signal, increasing the accuracy of the pulse.
- E-type bottom oversized aluminium heat sink to ensure the full capacity 24 hours. The temperature is very low (which can add a fan or other cooling device).

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Leadshine DM320C
- Supply voltage up to +30 VDC
- Output current programmable, from 0.3A to 2.0A
- Pulse input frequency up to 70 kHz
- TTL compatible and optically isolated input
- Automatic idle-current reduction
- Suitable for 2-phase and 4-phase motors
- Support PUL/DIR and CW/CCW modes
- Over-voltage, over-current, phase-error protection
- Anti-Resonance provides optimum torque and nulls mid-range instability
- Self-test and Auto-configuration technology offers optimum responses with different motors
- Microstep resolutions programmable, from full-step to 102,400 steps/rev
- Support PUL/DIR and CW/CCW modes
- Over-voltage, over-current, phase-error protection
- Its unique features make the DM320C an ideal solution for applications that require low-speed smoothness
Leadshine DMA860E Stepper Motor Driver
- Model: DMA860E.
- Control Mode: Step & Direction.
- Max Input Frequency: 200 kHz.
- Input Voltage Range: 18 - 80 VAC / 24 - 110 VDC.
- Suggested Power Supply Voltage Range: 36-90 VDC /24-60 VAC.
- Number of DIP Switch Resolution Configurations: 16.
- 16 selectable micro-step resolutions of 400-51,200 via DIP switches.
- 8 selectable output current settings of 2.4 – 7.2A via DIP switches.
- Logic Current Range: 7-16mA (10mA typical).
- Logic Voltage Range: 4-5 VDC for pulse active high (default), or 0-0.5V for pulse active low.
- Pulse enabled at: Rising edge.
- Idle Current Percentage: 50 %.
- Number of Digital Inputs: 3.
- Step Width: 2,500 ns.
- Minimal Direction Setup Time: 5,000 ns.
- Isolation Resistance: 500M Ohm..
- Ambient Temperature: 0-50°C.
- Humidity: 40–95% RH.
- Operating Temperature: 0-70°C.
- Vibration: 5.9 m/s2 Max.
- Motor auto-identification and parameter auto-configuration for optimal torque from wide-range motors.
- Step & direction (PUL/DIR) and CW/CCW (via internal jumper set) control. Step & direction by default Multi-Stepping for smooth motor movement.
- Opto Isolation for input control signals.
- Soft-start with no “jump” when powered on.
- Protections for over-voltage and over-current.
- Dimension: 5.94 X 3.82 X 2.24 Inches.
- Weight: 1.13 lbs.
Leadshine DMA860H
- Input voltage: Up to +80VAC or +110VDC.
- Output current Up to 7.2A.
- Pulse input frequency up to 300 KHz.
- Automatic idle-current reduction.
- Over-voltage, over-current protection.
- Suitable for 2-phase and 4-phase motors.
- Support PUL/DIR and CW/CCW modes.
- Operating Temperature : 70 C.
- High performance, cost-effective
- Self-adjustment technology
- Pure-sinusoidal current control technology
- TTL compatible and optically isolated input
- 16 selectable resolutions in decimal and binary, up to 51,200 steps/rev
MOTOR SHIELD L293
- 2 connections for 5V ‘hobby’ servos connected to the Arduino’s high-resolution dedicated timer
- 4 H-Bridges: L293D chipset provides 0.6A per bridge (1.2A peak) with thermal shutdown protection, internal kickback protection diodes.
- Can run motors on 4.5VDC to 25VDC.
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NEMA 17 1.6 kgcm
- Operating Voltage : 12~16 V
- Step Angle : 1.8°
- Holding Torque : 1.6 KgCm
- Operating Voltage : 12 - 16 volts
- Supply Current (A) :0.31 Ampere
- Number of Leads : 6
- Frame Size (mm) : 42 x 42
- Shaft Diameter (mm) : 5
- Shaft Length (mm) : 20
- Input pulse decides the rotation angle of the motor.
- High accuracy of around 3 to 5% a step.
- Provides good starting, stopping and reversing.
- Control of this motor is less costly because of the exclusion of complex control circuitry.
- The speed is proportional to the frequency of the input pulses.
NEMA 17 5.5 kgcm
- Step Angle : 1.8°
- Holding Torque : 5.5 KgCm
- Operating Voltage : 12 - 16 volts
- Supply Current (A) :1.5 Ampere
- Number of Leads : 6
- Inductance : 5.5 mH
- Resistance : 2.8 Ohms
- Weight (gm) : 363
- Detent Torque (kg-cm) : 2.6
- Frame Size (mm) : 42 x 42
- Inductance Accuracy : ±20%
- Resistance Accuracy : ±10%
- Step Angle Accuracy : ±5%
- Shaft Diameter (mm) : 5
- Shaft Length (mm) : 22
- Input pulse decides the rotation angle of the motor.
- High accuracy of around 3 to 5% a step.
- Provides good starting, stopping and reversing.
- Control of this motor is less costly because of exclusion of complex control circuitry.
- The speed is proportional to the frequency of the input pulses.
Nema17 Stepper Motor With Stainless Steel 8mm 300mm Lead Screw + T8 Nut For 3D Printer CNC Machine
- Current / Phase: 1.5A
- Step Angle(degrees): 1.8
- Phase: 2
- Type: Hybrid
- Certification: ROHS,CE
- Holding Torque: 4.2 KGCM
- Step angle accuracy: + - 5%(full step, not load)
- Resistance accuracy: + - 10%
- Inductance accuracy: + - 20%
- Temperature rise: 80deg Max(rated current,2 phase on)
- Ambient temperature: -20deg ~+50deg
- Insulation resistance:100M Min,500VDC
- Insulation Strength: 500VAC for one minute
- (Lead Screw)
- Lead Screw Material: 304 Stainless Steel
- Color: Sliver
- Diameter: 8mm
- Length: 300mm
- Lead of thread: 8mm.
Stepper Motor Nema 23 kg 7.2 kg Dual shaft
- Rated Voltage: 6.6 V
- Current/ phase: 1A
- Resistance/ phase: 6.6ohms
- Inductance/ phase: 8.2 mH
- Holding Torque: 7.2 kg-cm
- of Leads - 6
- Rotor Inertia - 275
- Weight: 0.65kg
- Detent Torque: 0.36 kg-cm
- Step Angle - 1.8°
- Step Angle Accuracy - ±5% (full step, no load)
- Resistance Accuracy - ±10%
- Inductance Accuracy - ±20%
- Frame Size (mm) - 57x57
- Shaft Length (mm) - 20.6
- Shaft Diameter (mm) - 6.35
- Comparably more powerful than NEMA17 motors.
- Input pulse decides the rotation angle of the motor.
- High accuracy of around 3 to 5% a step.
- Provides good starting, stopping and reversing.
- Control of this motor is less costly because of exclusion of complex control circuitry.
- The speed is proportional to the frequency of the input pulses.

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