Allen Bradley 20BC260A3ANNADC0 PowerFlex 700 AC Drive
| Company Information | ||||||||
| [email protected] | ||||||||
| Mobile | +8615305023276 | |||||||
| +8615305023276 | ||||||||
| 15305023276 | ||||||||
| Add to | Room 1004, No. 62 Xiangxiu Li, Siming District, Xiamen City, Fujian Province, China | |||||||
Technical Specifications
| Parameter | Specification |
|---|---|
| Model | 20BC260A3ANNADC0 |
| Product Series | PowerFlex 700 |
| Product Type | AC Drive |
| Input Voltage | 400 VAC |
| Input Voltage Range | 380–480 VAC |
| Input Phase | 3-phase |
| Input Frequency | 50 Hz |
| Input Current | 255 A @ 400 VAC |
| Input Power | 177 kVA @ 400 VAC |
| Continuous Output Current | 260 A |
| Normal-Duty Power | 132 kW |
| Heavy-Duty Power | 110 kW |
| Heavy-Duty Output Current | 308 A for 1 minute; 410 A for 3 seconds |
| Output Voltage | 0–400 VAC |
| Output Phase | 3-phase |
| Maximum Output Frequency | 420 Hz |
| Control Method | Vector Control with 24V DC I/O |
| Motor Control | Sensorless Vector, V/Hz, Vector Control |
| Speed Regulation | 0.1% of base speed in Vector Control mode without feedback |
| Torque Regulation | ±5% without feedback |
| PWM Carrier Frequency | 2, 4, 8, or 10 kHz |
| Efficiency | 97.5% |
| Analog Inputs | 2 |
| Analog Outputs | 2 |
| Digital Inputs | 6 |
| Digital Outputs | 3 |
| Internal Communication Module | DeviceNet DPI Module |
| Communication Protocol | DeviceNet |
| Feedback | No feedback |
| Brake IGBT | None |
| Internal Braking Resistor | None |
| EMC Filter | EMC filter with common-mode choke |
| Human Interface | LCD display with full numeric keypad and programming keys |
| Control I/O | 24V DC I/O |
| Enclosure Rating | IP20 / NEMA/UL Type 1 |
| Motor Overload Protection | Class 10 |
| Acceleration Time | 0–3600 seconds, programmable |
| Deceleration Time | 0–3600 seconds, programmable |
| Stop Modes | Coast, DC Brake, Fast Brake, Ramp-to-Hold, S-Curve, and other programmable modes |
| DC Bus Voltage | 540 VDC @ 380/400 VAC |
| DC Bus Overvoltage Trip | 810 VDC @ 380/400 VAC |
| Input Undervoltage Trip | 233 VAC @ 380/400 VAC |
| Input Overvoltage Trip | 570 VAC @ 380/400 VAC |
| Overcurrent Limit | 220–300% of rated current, depending on drive rating |
| Frequency Accuracy | ±0.01% of set output frequency with digital input |
| Operating Temperature | 0–50 °C |
| Relative Humidity | 5–95%, non-condensing |
| Maximum Installation Altitude | 1000 m without derating |
| Conformal Coating | Yes |
| Short-Circuit Rating | Up to 200,000 A symmetrical RMS |
| Dimensions | 850 × 403.9 × 275.5 mm |
| Weight | 71.44 kg |
FAQ
1. What are the rated current and power ratings of the 20BC260A3ANNADC0?
The 20BC260A3ANNADC0 has a continuous output rating of 260 A. At a nominal 400 VAC supply, it is rated for 132 kW under normal-duty operation and 110 kW under heavy-duty operation. The drive can provide 308 A for one minute and 410 A for three seconds under heavy-duty conditions. When selecting the drive for an application, the motor full-load current should be compared with the drive’s continuous output rating. The actual load profile, acceleration requirements, starting torque, and overload duration should also be considered to ensure that the drive is not operated beyond its thermal and current capabilities.
2. What type of motor control is available on the 20BC260A3ANNADC0?
The 20BC260A3ANNADC0 uses vector control with 24V DC I/O and supports Sensorless Vector, V/Hz, and Vector Control operating modes. Sensorless Vector control can provide improved low-speed torque without requiring an encoder, making it suitable for many industrial variable-speed applications. V/Hz control can be used for less demanding loads such as fans and pumps, while Vector Control is better suited to applications requiring improved speed regulation and torque response. Correct motor nameplate data should be entered during commissioning to ensure stable operation.
3. What is the purpose of the DeviceNet communication module?
The 20BC260A3ANNADC0 is equipped with a DeviceNet DPI communication module, allowing the drive to exchange control and diagnostic data with compatible industrial automation systems. A PLC or DeviceNet controller can use the network to send commands such as start, stop, direction, and speed reference while receiving drive status, output frequency, motor current, alarms, and fault information. During commissioning, the DeviceNet node address and communication configuration should be checked carefully. The control and status data mapping should also be verified in the PLC program so that commands and feedback are interpreted correctly.
4. Does the 20BC260A3ANNADC0 include a built-in braking resistor or Brake IGBT?
No. This configuration does not include an internal braking resistor or Brake IGBT. This is an important consideration for applications involving high-inertia loads, short deceleration times, or frequent braking cycles. During deceleration, the motor can return regenerative energy to the drive’s DC bus. If the regenerated energy cannot be dissipated effectively, the DC bus voltage may rise and cause an overvoltage trip. Applications requiring rapid or repeated braking should therefore be evaluated for an appropriate external braking solution based on motor power, load inertia, deceleration time, and operating cycle.
5. What should be checked when an overcurrent fault occurs?
When an overcurrent fault occurs, begin by checking the motor and driven machinery. Mechanical blockage, excessive friction, damaged bearings, an overloaded machine, or sudden increases in load can all cause excessive motor current. The motor cables should then be inspected for phase-to-phase shorts, ground faults, insulation damage, and incorrect U/V/W connections. Check the programmed acceleration time as well, because a high-inertia load accelerated too quickly can require excessive current. The motor’s rated voltage, current, frequency, and speed should be compared with the parameters programmed into the drive. If the fault remains with the motor disconnected, the drive power section and current-sensing circuitry may require further inspection.
6. Why does the 20BC260A3ANNADC0 develop an overvoltage fault during deceleration?
An overvoltage fault during deceleration is normally associated with regenerative energy. When a high-inertia motor is rapidly decelerated, mechanical energy is converted into electrical energy and returned to the drive’s DC bus. If the deceleration time is too short, the resulting DC bus voltage can rise above the allowable threshold. Troubleshooting should include checking the deceleration time, load inertia, braking cycle, and incoming line voltage. If the process allows, increasing the deceleration time can reduce regenerative energy. For applications that require rapid stopping or frequent braking, an appropriately sized external braking system should be considered.
7. How can DeviceNet communication problems be diagnosed on the 20BC260A3ANNADC0?
DeviceNet communication problems should be investigated by checking the network connection, node address, communication configuration, and controller status. Verify that the drive has the correct DeviceNet address and that no other device on the network is using the same address. The network wiring and termination should also be inspected for loose connections, damaged cables, or installation problems. From the PLC side, verify that the correct drive data assembly, control word, status word, and reference values are being used. If communication is established but control commands do not operate correctly, the drive command source and reference source parameters should also be checked.
8. How can the reliability of the 20BC260A3ANNADC0 be improved in industrial applications?
Reliable operation depends on correct drive sizing, proper electrical installation, accurate motor configuration, adequate cooling, and regular preventive maintenance. The 260 A continuous output rating should be matched to the motor’s actual operating current and load profile. For high-inertia applications, acceleration and deceleration times should be selected carefully, particularly because this configuration does not include an internal braking resistor or Brake IGBT. The DeviceNet network should also be installed correctly and protected against loose connections and electrical interference. Routine maintenance should include inspection of power terminals, motor cables, grounding, cooling airflow, cabinet cleanliness, and abnormal temperature rise. Keeping records of drive parameters and fault codes can help identify recurring problems and reduce unexpected downtime.
Allen Bradley 20BC260A3ANNADC0 PowerFlex 700 AC 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 | |||||||
Company Introduction
Xiamen Shengruite Trading Co., Ltd. is a company specializing in the supply of industrial PLC spare parts.
We provide high-quality PLC spare parts to customers in the global manufacturing, energy and power, chemical and other fields.
Since its establishment in 2011, after 13 years of rapid development, the cumulative global shipments have reached 223,650 pieces, with an annual output value of US$50 million.
Successfully served more than 500 customers in more than 100 countries and regions including Saudi Arabia, UAE, the United States, Europe, Africa, and Southeast Asia
Our Mission
Provide customers with the best quality PLC spare parts and the fastest delivery service to ensure that their industrial automation systems are always in the best operating condition.
We provide a 1-year warranty service, and we support returns and exchanges for any issues to ensure your rights and interests are fully protected.
We can provide detailed product images upon request, and our team can arrange warehouse photos for confirmation to ensure you have all the information you need before making a purchase.
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Returns are accepted within 30 days if the product is unused, unopened, and in its original packaging. Please note that return shipping and associated costs are the buyer\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\\’s responsibility.
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