Schneider ATV310HU30N4E Variable-Speed Drive
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Technical Specifications
| Parameter | Specification |
|---|---|
| Manufacturer | Schneider Electric |
| Product Series | Easy Altivar 310 |
| Model | ATV310HU30N4E |
| Product Type | Variable-Speed Drive |
| Application | Simple Machines and Industrial Equipment |
| Motor Type | Three-Phase Asynchronous Motor |
| Rated Input Voltage | 380–460 V AC |
| Input Phase | Three-Phase |
| Heavy-Duty Motor Power | 3 kW / 4 hp |
| Normal-Duty Motor Power | 4 kW / 5 hp |
| Input Frequency | 50/60 Hz ±5% |
| EMC Filter | Without Integrated EMC Filter |
| Cooling Method | Integrated Fan |
| Control Methods | V/F Control, Energy-Saving Quadratic V/F, Sensorless Vector Control |
| Output Voltage | 380–460 V AC, Three-Phase |
| Output Frequency | 0.5–400 Hz |
| Heavy-Duty Continuous Output Current | 7.1 A |
| Normal-Duty Continuous Output Current | 8.9 A |
| Heavy-Duty Maximum Transient Current | 10.7 A for 60 s |
| Normal-Duty Maximum Transient Current | 9.8 A for 60 s |
| Switching Frequency | 2–12 kHz Adjustable |
| Nominal Switching Frequency | 4 kHz |
| Transient Over-Torque | Up to 170–200% of Rated Motor Torque |
| Braking Torque | Up to 150% with Braking Resistor / Up to 70% without Braking Resistor |
| Braking Method | DC Injection Braking |
| Acceleration / Deceleration | Linear Ramps, 0–999.9 s Adjustable |
| Communication Protocol | Modbus RTU |
| Communication Interface | 2-Wire RS-485 |
| Communication Connector | RJ45 |
| Communication Rate | 4800 / 9600 / 19200 / 38400 bit/s |
| Modbus Address Range | 1–247 |
| Analog Input | 1 Configurable Input, 0–10 V / 0–5 V / 0–20 mA |
| Digital Inputs | 4 Programmable 24 V Inputs |
| Analog Output | 1 Configurable 0–10 V or 0–20 mA Output |
| Digital Outputs | 2 |
| Motor Protection | Thermal Motor Protection Based on Continuous I²t Calculation |
| Drive Protection | Overvoltage, Undervoltage, Overcurrent, Overheating, Motor Phase Short Circuit, Output Phase-to-Earth Short Circuit and Input Phase-Loss Protection |
| Protection Rating | IP20 |
| Installation Position | Vertical, ±10° |
| Applicable Standard | IEC 61800-3 |
| Noise Level | 50 dB |
| Dimensions | 184 × 140 × 151 mm |
| Weight | 1.8 kg |
FAQ
1. What is the main function of the Schneider ATV310HU30N4E?
The Schneider ATV310HU30N4E is a variable-speed drive from the Easy Altivar 310 series, designed to control the speed, starting, stopping, acceleration, and deceleration of three-phase asynchronous motors. It is rated for 3 kW / 4 hp heavy-duty motor applications and can also be used with 4 kW / 5 hp motors under normal-duty conditions. By adjusting the output voltage and frequency, the drive provides controlled motor operation according to the requirements of the machine. Integrated monitoring and protection functions help protect both the drive and motor during abnormal operating conditions. Typical applications include conveyors, packaging machines, fans, pumps, machine tools, and general industrial machinery.
2. What motor power ratings are supported by the ATV310HU30N4E?
The ATV310HU30N4E is designed for a 3 kW / 4 hp motor under heavy-duty conditions and a 4 kW / 5 hp motor under normal-duty conditions. Selecting the correct rating should not be based on motor power alone. The motor’s rated current, starting torque, load inertia, acceleration requirements, operating cycle, and possible overload conditions should also be considered. Applications involving frequent starts, rapid acceleration, high starting torque, or periodic overload should generally be evaluated using the heavy-duty rating. The motor current must also remain within the applicable continuous output-current capability of the drive.
3. What type of power supply is required for the ATV310HU30N4E?
The ATV310HU30N4E uses a three-phase AC input supply rated from 380 to 460 V, with an input frequency of 50/60 Hz ±5%. Before installation and commissioning, the incoming voltage and phase balance should be checked to ensure that the power supply is suitable. The installation should include appropriate upstream circuit protection and a reliable protective grounding connection. Input phase loss, excessive voltage, undervoltage, loose terminals, or insufficient power capacity can cause protection faults or unstable operation. The power supply and wiring should therefore be verified carefully before the motor is started.
4. Does the ATV310HU30N4E support sensorless vector control?
Yes. The ATV310HU30N4E supports conventional V/F control, energy-saving quadratic V/F control, and sensorless vector control. V/F control is suitable for applications where straightforward motor-speed control is sufficient, while quadratic V/F control can be useful for loads with quadratic torque characteristics. Sensorless vector control can provide improved torque response and speed regulation without requiring a physical encoder on the motor. It can be useful for applications with changing loads or higher low-speed torque requirements. When using sensorless vector control, accurate motor nameplate data and appropriate drive parameters are important for achieving stable performance.
5. What communication functions are available on the ATV310HU30N4E?
The ATV310HU30N4E provides Modbus RTU communication through a two-wire RS-485 interface with an RJ45 connector. It can communicate with PLCs, HMIs, industrial controllers, and other Modbus master devices. Communication can be used for run and stop commands, speed references, operating-status monitoring, parameter access, and fault information. Supported communication rates include 4800, 9600, 19200, and 38400 bit/s, with Modbus addresses from 1 to 247. If communication with a PLC is unsuccessful, check the RS-485 wiring, polarity, device address, baud rate, communication format, and PLC master configuration. For networks containing multiple devices, the overall RS-485 wiring arrangement should also be inspected.
6. Why does the ATV310HU30N4E experience an overcurrent fault during starting or acceleration?
An overcurrent fault during starting or acceleration is commonly related to acceleration time, motor settings, or mechanical load. If the acceleration time is too short, the motor must produce a high amount of torque within a limited period, causing the output current to rise rapidly. The motor’s rated voltage, current, frequency, power, and speed should first be checked against the actual motor nameplate. The mechanical system should then be inspected for excessive load, mechanical blockage, increased bearing resistance, or excessive inertia. If the electrical and motor parameters are correct, increasing the acceleration time can reduce the instantaneous current demand. If the problem continues, the motor cable, terminals, insulation, and motor condition should be inspected.
7. How can an overcurrent fault on the ATV310HU30N4E be diagnosed?
The first step is to determine exactly when the overcurrent fault occurs. If the fault appears immediately after a start command, check the motor wiring, output cable, insulation condition, and motor parameters for errors. If the fault occurs during acceleration, check whether the acceleration ramp is too short or the mechanical load has excessive inertia. If it occurs during constant-speed operation, inspect the motor for overload and check whether the machine has excessive mechanical resistance or a sudden increase in load torque. If the fault occurs during deceleration, the deceleration ramp and braking conditions should be examined. Motor terminals and drive output connections should also be checked for loose or damaged connections. Repeated overcurrent faults should be investigated systematically instead of simply increasing protection limits.
8. What commissioning steps are recommended after replacing an ATV310HU30N4E?
After replacing an ATV310HU30N4E, first verify the three-phase input supply, protective grounding, motor power connections, control terminals, and upstream protection devices. Enter the motor nameplate data accurately, including rated voltage, current, frequency, power, and speed. Select the appropriate V/F or sensorless vector control mode according to the motor and machine requirements, then configure suitable acceleration and deceleration times. During the first startup, operate the motor at low speed and under a light load to verify the rotation direction, output current, operating frequency, and speed response. If Modbus communication is used, confirm that the PLC or controller can successfully send commands and read drive status. After confirming that there are no abnormal alarms, gradually increase the speed and mechanical load while monitoring motor current, drive temperature, operating stability, and diagnostic information. This staged commissioning process helps identify wiring, parameter, and load-related problems before the equipment enters normal operation.
Schneider ATV310HU30N4E Variable-Speed Drive is in stock. Please contact us for a quick quote and competitive pricing.
| Company Information | ||||||||
| [email protected] | ||||||||
| Mobile | +8615305023276 | |||||||
| +8615305023276 | ||||||||
| 13950166376 | ||||||||
| Add to | Room 1004, No. 62 Xiangxiu Li, Siming District, Xiamen City, Fujian Province, China | |||||||
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