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Schneider ATV320U15N4B ATV | Variable speed drive, ATV320, 1.5 kW, 380…500 V, 3 phases, book

Schneider Electric
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Schneider ATV320U15N4B ATV

16,940.40 EGP 33,880.80 EGP

In stock

Schneider ATV320U15N4B ATV

Introduction to Schneider ATV320U15N4B ATV

In today’s rapidly evolving industrial landscape, the demand for efficient and reliable motor control solutions continues to rise. Schneider Electric, a global leader in energy management and automation, addresses this demand with its innovative range of variable frequency drives (VFDs). Among these, it stands out as a versatile and high-performance option for various industrial applications.

Understanding the Features of Schneider ATV320U15N4B ATV

Power and Performance

it boasts impressive power capabilities, making it suitable for driving various types of motors with precision and efficiency. With a rated power of 15 kW and a voltage range of 380-500 V, this VFD can effectively control the speed and torque of compatible motors, ensuring optimal performance across different operating conditions.

Compact Design

One notable feature of it is its compact and space-saving design. Designed to fit seamlessly into industrial control panels and enclosures, this VFD offers flexibility in installation without compromising on performance. Its compact footprint makes it an ideal choice for applications where space is limited.

Advanced Control

Equipped with advanced control algorithms and built-in intelligence, it provides precise and reliable motor control. From simple speed regulation to complex motion profiles, users can easily program and customize the drive parameters to meet specific application requirements. Additionally, built-in safety features ensure safe operation and protection against faults or anomalies.

Applications of Schneider ATV320U15N4B ATV

The versatility of it makes it suitable for a wide range of industrial applications, including:

Industrial Automation

From conveyor systems to pumps and fans, it is well-suited for various automation tasks in manufacturing and processing plants. Its precise control capabilities enable smooth operation and optimized energy consumption, contributing to overall productivity and efficiency.

HVAC Systems

In heating, ventilation, and air conditioning (HVAC) systems, precise motor control is essential for maintaining optimal indoor comfort levels while minimizing energy consumption. it provides efficient control of HVAC motors, allowing for precise regulation of airflow and temperature in commercial and residential buildings.

Water and Wastewater Treatment

In water and wastewater treatment plants, reliable motor control is crucial for ensuring efficient operation and compliance with regulatory standards. it offers robust performance and advanced control features, making it suitable for controlling pumps, blowers, and other critical equipment in water treatment processes.

Installation and Setup Process

Initial Setup

Installing it is straightforward, thanks to its user-friendly interface and intuitive setup wizard. Users can easily configure basic parameters such as motor type, voltage, and frequency using the built-in keypad and display.

Wiring and Connections

Proper wiring and connections are essential for the safe and reliable operation of it. Detailed wiring diagrams and instructions provided by Schneider Electric ensure correct installation and connection of power, motor, and control signals.

Configuration

Once installed and wired, users can further customize the drive settings using Schneider Electric’s dedicated software tools. From adjusting acceleration and deceleration rates to setting up communication protocols, the configuration options are extensive, allowing for precise tailoring to specific application requirements.

Benefits of Using

Energy Efficiency

By providing precise control over motor speed and torque, it helps optimize energy consumption in industrial processes. By reducing unnecessary energy wastage, users can achieve significant cost savings while minimizing their environmental footprint.

Reduced Downtime

The reliability and robustness of it translate to minimal downtime and increased productivity. With built-in diagnostics and fault detection capabilities, users can quickly identify and address potential issues before they escalate, ensuring uninterrupted operation and maximum uptime.

Enhanced Safety

Safety is paramount in industrial environments, and it prioritizes safety through its comprehensive set of features and functionalities. From overload protection to motor stall prevention, the drive offers multiple layers of protection against potential hazards, safeguarding both equipment and personnel.

Maintenance and Troubleshooting

Regular Maintenance Tips

To ensure optimal performance and longevity, regular maintenance of it is recommended. This includes periodic inspection of electrical connections, cleaning of cooling vents, and checking for any signs of wear or damage. Following the manufacturer’s maintenance guidelines can help extend the lifespan of the drive and prevent unexpected failures.

Common Issues and Solutions

Despite its reliability, it may encounter occasional issues that require troubleshooting. Common issues such as parameter errors, communication faults, or motor overheating can often be resolved through simple troubleshooting steps outlined in the user manual or with assistance from Schneider Electric’s technical support team.

Main
range of product Altivar Machine ATV320
product or component type Variable speed drive
Product specific application Complex machines
Variant Standard version
Format of the drive Book
mounting mode Cabinet mount
communication port protocol Modbus serial
CANopen
Option card Communication module, CANopen
Communication module, EtherCAT
Communication module, Profibus DP V1
Communication module, PROFINET
Communication module, Ethernet Powerlink
Communication module, EtherNet/IP
Communication module, DeviceNet
[Us] rated supply voltage 380…500 V – 15…10 %
Nominal output current 4.1 A
Motor power kW 1.5 kW for heavy duty
EMC filter Class C2 EMC filter integrated
IP degree of protection IP20
Complementary
Discrete input number 7
Discrete input type STO safe torque off, 24 V DC, impedance: 1.5 kOhm
DI1…DI6 logic inputs, 24 V DC (30 V)
DI5 programmable as pulse input: 0…30 kHz, 24 V DC (30 V)
Discrete input logic Positive logic (source)
Negative logic (sink)
Discrete output number 3
Discrete output type Open collector DQ+ 0…1 kHz 30 V DC 100 mA
Open collector DQ- 0…1 kHz 30 V DC 100 mA
Analogue input number 3
Analogue input type AI1 voltage: 0…10 V DC, impedance: 30 kOhm, resolution 10 bits
AI2 bipolar differential voltage: +/- 10 V DC, impedance: 30 kOhm, resolution 10 bits
AI3 current: 0…20 mA (or 4-20 mA, x-20 mA, 20-x mA or other patterns by configuration), impedance: 250 Ohm, resolution 10 bits
Analogue output number 1
Analogue output type Software-configurable current AQ1: 0…20 mA impedance 800 Ohm, resolution 10 bits
Software-configurable voltage AQ1: 0…10 V DC impedance 470 Ohm, resolution 10 bits
Relay output type Configurable relay logic R1A 1 NO electrical durability 100000 cycles
Configurable relay logic R1B 1 NC electrical durability 100000 cycles
Configurable relay logic R1C
Configurable relay logic R2A 1 NO electrical durability 100000 cycles
Configurable relay logic R2C
Maximum switching current Relay output R1A, R1B, R1C on resistive load, cos phi = 1: 3 A at 250 V AC
Relay output R1A, R1B, R1C on resistive load, cos phi = 1: 3 A at 30 V DC
Relay output R1A, R1B, R1C, R2A, R2C on inductive load, cos phi = 0.4 and L/R = 7 ms: 2 A at 250 V AC
Relay output R1A, R1B, R1C, R2A, R2C on inductive load, cos phi = 0.4 and L/R = 7 ms: 2 A at 30 V DC
Relay output R2A, R2C on resistive load, cos phi = 1: 5 A at 250 V AC
Relay output R2A, R2C on resistive load, cos phi = 1: 5 A at 30 V DC
Minimum switching current Relay output R1A, R1B, R1C, R2A, R2C: 5 mA at 24 V DC
Method of access Slave CANopen
4 quadrant operation possible True
Asynchronous motor control profile Voltage/frequency ratio, 5 points
Flux vector control without sensor, standard
Voltage/frequency ratio – Energy Saving, quadratic U/f
Flux vector control without sensor – Energy Saving
Voltage/frequency ratio, 2 points
Synchronous motor control profile Vector control without sensor
Transient overtorque 170…200 % of nominal motor torque
Maximum output frequency 0.599 kHz
Acceleration and deceleration ramps Linear
U
S
CUS
Ramp switching
Acceleration/deceleration ramp adaptation
Acceleration/deceleration automatic stop with DC injection
Motor slip compensation Automatic whatever the load
Adjustable 0…300 %
Not available in voltage/frequency ratio (2 or 5 points)
Switching frequency 2…16 kHz adjustable
4…16 kHz with derating factor
Nominal switching frequency 4 kHz
Braking to standstill By DC injection
Brake chopper integrated True
Line current 6.5 A at 380 V (heavy duty)
4.9 A at 500 V (heavy duty)
Maximum input current 6.5 A
Maximum output voltage 500 V
Apparent power 4.2 kVA at 500 V (heavy duty)
Network frequency 50…60 Hz
Relative symmetric network frequency tolerance 5 %
Prospective line Isc 5 kA
Base load current at high overload 1.5 A
Power dissipation in W Fan: 56.0 W at 380 V, switching frequency 4 kHz
With safety function Safely Limited Speed (SLS) True
With safety function Safe brake management (SBC/SBT) False
With safety function Safe Operating Stop (SOS) False
With safety function Safe Position (SP) False
With safety function Safe programmable logic False
With safety function Safe Speed Monitor (SSM) False
With safety function Safe Stop 1 (SS1) True
With sft fct Safe Stop 2 (SS2) False
With safety function Safe torque off (STO) True
With safety function Safely Limited Position (SLP) False
With safety function Safe Direction (SDI) False
Protection type Input phase breaks: drive
Overcurrent between output phases and earth: drive
Overheating protection: drive
Short-circuit between motor phases: drive
Thermal protection: drive
Width 45.0 mm
Height 325.0 mm
Depth 245.0 mm
net weight 2.5 kg
Environment
Operating position Vertical +/- 10 degree
Product certifications CE
ATEX
NOM
GOST
EAC
RCM
KC
marking CE
ATEX
UL
CSA
EAC
RCM
Standards IEC 61800-5-1
Electromagnetic compatibility Electrostatic discharge immunity test level 3 conforming to IEC 61000-4-2
Radiated radio-frequency electromagnetic field immunity test level 3 conforming to IEC 61000-4-3
Electrical fast transient/burst immunity test level 4 conforming to IEC 61000-4-4
1.2/50 µs – 8/20 µs surge immunity test level 3 conforming to IEC 61000-4-5
Conducted radio-frequency immunity test level 3 conforming to IEC 61000-4-6
Voltage dips and interruptions immunity test conforming to IEC 61000-4-11
Environmental class (during operation) Class 3C3 according to IEC 60721-3-3
Class 3S2 according to IEC 60721-3-3
Maximum acceleration under shock impact (during operation) 150 m/s² at 11 ms
Maximum acceleration under vibrational stress (during operation) 10 m/s² at 13…200 Hz
Maximum deflection under vibratory load (during operation) 1.5 mm at 2…13 Hz
Permitted relative humidity (during operation) Class 3K5 according to EN 60721-3
Volume of cooling air 9.4 m3/h
Overvoltage category III
Regulation loop Adjustable PID regulator
Speed accuracy +/- 10 % of nominal slip 0.2 Tn to Tn
Pollution degree 2
Ambient air transport temperature -25…70 °C
Ambient air temperature for operation -10…50 °C without derating
50…60 °C with derating factor
Ambient air temperature for storage -25…70 °C
Packing Units
Unit Type of Package 1 PCE
Number of Units in Package 1 1
Package 1 Height 8.200 cm
Package 1 Width 27.500 cm
Package 1 Length 32.500 cm
Package 1 Weight 2.330 kg
Unit Type of Package 2 P06
Number of Units in Package 2 24
Package 2 Height 75.000 cm
Package 2 Width 60.000 cm
Package 2 Length 80.000 cm
Package 2 Weight 70.264 kg

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