Product data sheet ATV71H075N4 Characteristics variable speed drive ATV71 - 0.75kW-1HP - 480V - EMC filter-graphic terminal Product availability: Stock - Normally stocked in distribution facility Main Range of product Altivar 71 Product or component Variable speed drive type Product specific applica- Complex, high-power machines tion Component name ATV71 Motor power kW 0.75 kWat 380...480 V 3 phases Motor power hp 1 hpat 380...480 V 3 phases Motor cable length <= 164.04 ft (50 m) Shielded cable <= 328.08 ft (100 m) Unshielded cable Power supply voltage 380...480 V (- 15...10 %) Phase 3 phases Line current 3 Afor 480 V 3 phases 0.75 kW / 1 hp 3.7 Afor 380 V 3 phases 0.75 kW / 1 hp EMC filter Integrated Assembly style With heat sink Apparent power 2.4 kVAat 380 V 3 phases 0.75 kW / 1 hp Prospective line Isc <= 5 kA, 3 phases Nominal output current 2.1 Aat 4 kHz 460 V 3 phases 0.75 kW / 1 hp 2.3 Aat 4 kHz 380 V 3 phases 0.75 kW / 1 hp Maximum transient cur- 3.5 Afor 60 s 3 phases 0.75 kW / 1 hp rent 3.8 Afor 2 s 3 phases 0.75 kW / 1 hp Output frequency 0.1...599 Hz Nominal switching fre- 4 kHz quency Switching frequency 1...16 kHz adjustable 4...16 kHz with derating factor Asynchronous motor ENA (Energy adaptation) system for unbalanced control profile loads Flux vector control (FVC) with sensor (current vec- tor) Sensorless flux vector control (SFVC) (voltage or current vector) Voltage/frequency ratio (2 or 5 points) Type of polarization No impedance Modbus Complementary Product destination Asynchronous motors Synchronous motors Power supply voltage limits 323...528 V Power supply frequency 50...60 Hz (- 5...5 %) Power supply frequency limits 47.5...63 Hz Speed range 1...100 asynchronous motor in open-loop mode, without speed feedback 1...50 synchronous motor in open-loop mode, without speed feedback 1...1000 asynchronous motor in closed-loop mode with encoder feedback Speed accuracy +/- 0.01 % of nominal speed 0.2 Tn to Tn torque variation in closed-loop mode with encoder feedback +/- 10 % of nominal slip 0.2 Tn to Tn torque variation without speed feedback Torque accuracy +/- 15 % in open-loop mode, without speed feedback +/- 5 % in closed-loop mode with encoder feedback Transient overtorque 220 % of nominal motor torque +/- 10 %for 2 s 170 % of nominal motor torque +/- 10 %for 60 s every 10 minutes Aug 9, 2019 1 The information provided in this documentation contains general descriptions and/or technical characteristics of the performance of the products contained herein. This documentation is not intended as a substitute for and is not to be used for determining suitability or reliability of these products for specific user applications. It is the duty of any such user or integrator to perform the appropriate and complete risk analysis, evaluation and testing of the products with respect to the relevant specific application or use thereof. Neither Schneider Electric Industries SAS nor any of its affiliates or subsidiaries shall be responsible or liable for misuse of the information contained herein.Braking torque <= 150 % with braking or hoist resistor 30 % without braking resistor Synchronous motor control profile Vector control without speed feedback Regulation loop Adjustable PI regulator Motor slip compensation Adjustable Automatic whatever the load Not available in voltage/frequency ratio (2 or 5 points) Suppressable Diagnostic 1 LED red presence of drive voltage Output voltage <= power supply voltage Insulation Electrical between power and control Type of cable for mounting in an enclosure With a NEMA Type1 kit: 3-strand UL 508 cableat 104 F (40 C), copper 75 C PVC With an IP21 or an IP31 kit: 3-strand IEC cableat 104 F (40 C), copper 70 C PVC Without mounting kit: 1-strand IEC cableat 113 F (45 C), copper 70 C PVC Without mounting kit: 1-strand IEC cableat 113 F (45 C), copper 90 C XLPE/ EPR Electrical connection AI1-/AI1+, AI2, AO1, R1A, R1B, R1C, R2A, R2B, LI1...LI6, PWR terminal 2.5 mm / AWG 14 L1/R, L2/S, L3/T, U/T1, V/T2, W/T3, PC/-, PO, PA/+, PA, PB terminal 4 mm / AWG 10 Tightening torque AI1-/AI1+, AI2, AO1, R1A, R1B, R1C, R2A, R2B, LI1...LI6, PWR 5.31 lbf.in (0.6 N.m) L1/R, L2/S, L3/T, U/T1, V/T2, W/T3, PC/-, PO, PA/+, PA, PB 12.39 lbf.in (1.4 N.m) / 12.3 lb.in Supply Internal supply for reference potentiometer (1 to 10 kOhm), 10.5 V DC +/- 5 %, <= 10 mAfor overload and short-circuit protection Internal supply, 24 V DC, voltage limits 21...27 V, <= 200 mAfor overload and short-circuit protection Analogue input number 2 Analogue input type AI1-/Al1+ bipolar differential voltage +/- 10 V DC, input voltage 24 V max, resolu- tion 11 bits + sign AI2 software-configurable current 0...20 mA, impedance 242 Ohm, resolution 11 bits AI2 software-configurable voltage 0...10 V DC, input voltage 24 V max, im- pedance 30000 Ohm, resolution 11 bits Input sampling time AI1-/Al1+ 2 ms, +/- 0.5 ms analog input(s) Al2 2 ms, +/- 0.5 ms analog input(s) LI1...LI5 2 ms, +/- 0.5 ms discrete input(s) LI6 (if configured as logic input) 2 ms, +/- 0.5 ms discrete input(s) Response time <= 100 ms in STO (Safe Torque Off) AO1 2 ms, tolerance +/- 0.5 ms analog output(s) R1A, R1B, R1C 7 ms, tolerance +/- 0.5 ms discrete output(s) R2A, R2B 7 ms, tolerance +/- 0.5 ms discrete output(s) Absolute accuracy precision AI1-/Al1+ +/- 0.6 % for a temperature variation 60 C AI2 +/- 0.6 % for a temperature variation 60 C AO1 +/- 1 % for a temperature variation 60 C Linearity error AI1-/Al1+, AI2 +/- 0.15 % of maximum value AO1 +/- 0.2 % Analogue output number 1 Analogue output type AO1 software-configurable current 0...20 mA, impedance 500 Ohm, resolution 10 bits AO1 software-configurable logic output 10 V <= 20 mA AO1 software-configurable voltage 0...10 V DC, impedance 470 Ohm, resolution 10 bits Discrete output number 2 Discrete output type R1A, R1B, R1C configurable relay logic NO/NC, electrical durability 100000 cy- cles R2A, R2B configurable relay logic NO, electrical durability 100000 cycles Minimum switching current Configurable relay logic 3 mAat 24 V DC Maximum switching current R1, R2 on resistive load, 5 Aat 250 V AC, cos phi = 1, R1, R2 on resistive load, 5 Aat 30 V DC, cos phi = 1, R1, R2 on inductive load, 2 Aat 250 V AC, cos phi = 0.4, R1, R2 on inductive load, 2 Aat 30 V DC, cos phi = 0.4, Discrete input number 7 2