Allen Bradley 20BC8P7A0AYNANC0NNAD 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 | 20BC8P7A0AYNANC0NNAD |
| Product Series | PowerFlex 700 |
| Product Type | AC Drive |
| Input Voltage | 400 VAC |
| Input Phase | Three-phase |
| Input Frequency | 50 Hz |
| Rated Output Current | 8.7 A |
| Normal-Duty Power | 4 kW |
| Heavy-Duty Power | 3 kW |
| Output Phase | Three-phase |
| Output Voltage | 0–400 VAC |
| Maximum Output Frequency | 400 Hz |
| Control Method | Vector Control with 24V DC I/O |
| Motor Control Modes | Sensorless Vector, V/Hz, Vector Control |
| Speed Regulation | 0.1% of base speed in Vector Control mode without feedback |
| V/Hz Speed Regulation | 0.5% of base speed with slip compensation |
| PWM Carrier Frequency | 4 kHz |
| Analog Outputs | 2 |
| Digital Inputs | 6 |
| Digital Outputs | 3 |
| Communication Module | No built-in communication module |
| Communication Interface | RS-485 |
| Brake IGBT | Built-in |
| Internal Braking Resistor | None |
| EMC Filter | CE EMC filter / common-mode choke |
| Human Interface | No HIM, blank panel |
| Enclosure Rating | IP20 / NEMA 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 |
| Current Limit | 20–160% of rated output current, programmable |
| Input Undervoltage Protection | Approximately 233 VAC |
| Input Voltage Tolerance | ±10% |
| Short-Circuit Rating | Up to 200,000 A symmetrical RMS |
| Operating Temperature | 0–50 °C |
| Relative Humidity | 5–95%, non-condensing |
| Vibration | 0.152 mm displacement, 1 G peak |
| Shock | 15 G peak, 11 ms duration |
| Installation Altitude | Up to 1000 m without derating |
| Dimensions | 336 × 110 × 200 mm |
| Weight | 5.22 kg |
FAQ
1. What are the rated output current and power ratings of the 20BC8P7A0AYNANC0NNAD?
The 20BC8P7A0AYNANC0NNAD has a rated output current of 8.7 A, with a normal-duty power rating of 4 kW and a heavy-duty power rating of 3 kW. It is designed for three-phase 400 VAC applications. When selecting a motor, the motor’s rated full-load current should be compared with the drive’s continuous output capability rather than relying only on the motor power rating. For machines with high starting torque, frequent acceleration and deceleration, or significant overload conditions, the actual load profile and operating cycle should also be considered to ensure sufficient drive capacity.
2. Which motor control modes are supported by the 20BC8P7A0AYNANC0NNAD?
The drive supports V/Hz, Sensorless Vector, and Vector Control. V/Hz control is suitable for general-purpose variable-speed equipment such as fans, pumps, and conveyors. Sensorless Vector control provides improved low-speed torque and speed stability without requiring an encoder. Vector Control is better suited to applications requiring improved torque response and speed regulation. During commissioning, the motor rated voltage, current, frequency, and speed should be entered accurately. The selected control mode should then be matched to the characteristics of the motor and mechanical load.
3. Does the 20BC8P7A0AYNANC0NNAD have a built-in Brake IGBT?
Yes. The 20BC8P7A0AYNANC0NNAD is equipped with a built-in Brake IGBT but does not include an internal braking resistor. The Brake IGBT can be used to control an external braking resistor and dissipate regenerative energy generated when the motor decelerates. This is useful for high-inertia loads or applications requiring rapid stopping. The external braking resistor must be selected according to the actual regenerative energy, motor power, load inertia, deceleration time, and braking frequency. An incorrectly sized resistor can overheat or provide insufficient braking capacity, potentially resulting in DC bus overvoltage protection.
4. What should be checked if the 20BC8P7A0AYNANC0NNAD develops an overcurrent fault?
Start by checking the mechanical system for conditions such as mechanical blockage, excessive friction, bearing problems, transmission faults, or a sudden increase in load. The motor power cables should then be inspected for phase-to-phase shorts, ground faults, damaged insulation, and incorrect phase connections. The programmed acceleration time should also be reviewed. If a high-inertia machine is accelerated too quickly, the motor may require excessive current and trigger protection. The motor’s rated voltage, current, frequency, and speed should be compared with the values programmed in the drive. If the problem remains after the mechanical system and motor wiring have been verified, the drive’s power module and current-sensing circuitry should be inspected.
5. Why can the 20BC8P7A0AYNANC0NNAD experience a DC bus overvoltage fault during deceleration?
When a motor drives a high-inertia load and the load is rapidly decelerated, stored mechanical energy can be returned to the drive as regenerative energy. This energy increases the DC bus voltage. If the deceleration time is too short or the braking system cannot dissipate the regenerated energy, the DC bus voltage can rise to the protection threshold and cause an overvoltage fault. Troubleshooting should begin by checking the deceleration time, load inertia, braking frequency, and external braking resistor. If the process allows, increasing the deceleration time can reduce the amount of regenerative energy. For applications involving frequent rapid stopping, the external braking resistor should be sized according to the actual braking duty cycle.
6. How should the motor parameters be configured on the 20BC8P7A0AYNANC0NNAD?
Before the first motor start, enter the motor nameplate data, including rated voltage, rated current, rated frequency, and rated speed. The minimum and maximum output frequency, acceleration time, and deceleration time should also be configured according to the application. Accurate motor data is particularly important when using Sensorless Vector or Vector Control because the drive uses the motor parameters to establish its control model. Incorrect values can result in insufficient starting torque, excessive current, unstable speed, or unexpected protective trips. After configuration, the motor should initially be operated at low speed to verify rotation direction, output current, and mechanical behavior before normal-speed operation.
7. How can the 20BC8P7A0AYNANC0NNAD be commissioned without a HIM?
This configuration is supplied without a standard HIM and uses a blank panel. Commissioning therefore requires the appropriate external control, configuration, or communication method. Before commissioning, verify the incoming power, motor wiring, control connections, and grounding. The motor parameters, command source, and speed reference source should then be configured. If external I/O is used, check the digital and analog control signals carefully. If RS-485 communication is used, verify the communication connection and associated communication parameters. During the first test run, operate the motor at low speed and check direction, current, status, and fault indications before increasing the operating frequency.
8. How can the operating stability and service life of the 20BC8P7A0AYNANC0NNAD be improved?
Reliable operation depends on proper drive selection, correct parameter configuration, adequate cooling, sound electrical connections, and preventive maintenance. The motor’s rated current should be compatible with the drive’s 8.7 A continuous output capability. For high-inertia loads or frequent stopping applications, acceleration and deceleration times should be configured appropriately, and the external braking resistor should be correctly selected. Power, control, and grounding connections should remain secure, while control wiring should be properly separated from high-power cables where necessary to reduce electrical interference. The installation environment should remain clean and dry, with adequate airflow around the drive. Regular maintenance should include checking terminals, motor cables, cooling paths, and signs of abnormal heating. Recording fault codes and operating conditions can also help identify recurring problems before they develop into major equipment failures.
Allen Bradley 20BC8P7A0AYNANC0NNAD 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.
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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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