Description of SGD-04AE
The Yaskawa SGD-04AE is a high-performance AC drive meticulously engineered by Yaskawa, a leading manufacturer in the field of industrial automation solutions. Designed to meet the demands of diverse industrial applications, this AC drive exemplifies precision, reliability, and efficiency. With its compact design and robust features, the SGD-04AE stands as a versatile solution for enhancing motor control and automation processes.
The Yaskawa SGD-04AE is a high-performance AC drive meticulously engineered by Yaskawa, a leading manufacturer in the field of industrial automation solutions. Designed to meet the demands of diverse industrial applications, this AC drive exemplifies precision, reliability, and efficiency. With its compact design and robust features, the SGD-04AE stands as a versatile solution for enhancing motor control and automation processes.
Equipped with a capacity of 400 W, the SGD-04AE offers ample power for driving various types of motors within industrial setups. Operating at a source voltage of 230 V, Phase 1, this AC drive ensures compatibility with standard power sources, facilitating seamless integration into existing systems. Additionally, with a model number SGDH04AE, it boasts a compact form factor, making it ideal for space-constrained environments.
The SGD-04AE is designed to deliver optimal performance and efficiency in motor control applications. With its filter model R88A-FIW107-SE, it ensures smooth and reliable operation, minimizing electromagnetic interference and ensuring stable motor performance. Moreover, with AC input ranging from 200-230 V and AC output ranging from 0-230 V, 0.4 kW, 8 A, this AC drive offers precise control over motor speed and torque, enhancing overall system efficiency.
The SGD-04AE AC drive is engineered to adapt to a wide range of industrial applications, offering versatility and flexibility in motor control. Whether used in manufacturing, automation, or material handling, this AC drive delivers consistent and reliable performance, enabling users to optimize their processes and improve productivity. Its compatibility with various motor types and operating conditions makes it a versatile solution for diverse industrial environments.
Similar Products
| SERVO_DRIVER,YASKAWA,SGDV-R70A05A |
| SERVO_MOTOR,YASKAWA,SGMAH-04AAA2C |
| SERVO_DRIVER,YASKAWA,SGDV-180A05A |
| SERVO_DRIVER,YASKAWA,SGDS-20A05A |
| SERVO_DRIVER,YASKAWA,SGDS_75A05A |
| AC_MOTOR),YASKAWA,SGMAH-A3A1A41 |
| SERVO_DRIVER,YASKAWA,SGDS-15A12A |
| SERVO_MOTORYASKAWA,SGMCS-16E3B11 |
| SERVO_MOTORYASKAWA,SGMAS-08ACAH761 |
| SERVO_MOTOR,YASKAWA,SGMAS-04A2A21 |
| SERVO_MOTOR,YASKAWA,SGMAH-02A1A21 |
| SERVO_MOTOR,YASKAWA,SGMAH-08A1A21 |
| SERVO_DRIVER,YASKAWA,SGDV-120A15A |
| SERVO_DRIVER,YASKAWA,SGDV-120A11A |
| SERVO_DRIVER,YASKAWA,SGDV-R70A11A |
| SERVO_DRIVER,YASKAWA,SGDV-R70A15A |
| SERVO_DRIVER,YASKAWA,SGDV-1R6A11A |
| SERVO_DRIVER,YASKAWA,SGDV-2R8A11A |
| SERVO_DRIVER,YASKAWA,SGDV-5R5A11A |
| SERVO_DRIVER,YASKAWA,SGDV-200A11A |
| SERVO_DRIVER,YASKAWA,SGDV-200A15A |
| AC_MOTOR,YASKAWA,SGM7A-10AFA6C |
| SERVO_DRIVER,YASKAWA,SGD7S-120AE0A |
| SERVO_DRIVER,YASKAWA,SGDM-50ADA |
| SERVO_DRIVER,YASKAWA,JZNC-XRK01D |
| SERVO_DRIVER,YASKAWA,SGDV-330A11A |
| SERVO_MOTOR,YASKAWA,SGDV-R90A01B |
| SERVO_DRIVER,YASKAWA,SGDV-R90A11A |
| SERVO_MOTOR,YASKAWA,SGMPH-04AAA41 |
| SERVO_DRIVER,YASKAWA,SGDH-02AE |
| SERVO_MOTORYASKAWA,SGDV-R70A01A |
| SERVO_DRIVER,YASKAWA,SGDS-15A05A |
| SERVO_DRIVER,YASKAWA,SGDS-01A05A |
| SERVO_MOTOR,YASKAWA,SGMPH-08AAAH12C |
| SERVO_MOTOR,YASKAWA,SGMGH-09ACA2C |
| SERVO_DRIVER,YASKAWA,SGDV-R90F01A |
| SERVO_DRIVER,YASKAWA,SGDV-1R6A15B |
| SERVO_MOTOR(,YASKAWA,SGMPH-08AAA2C |
| LINEAR_MOTOR,YASKAWA,SGLFW-35A230AP |
| SERVO_MOTOR(,YASKAWA,SGMAS-12A2A21 |
| SERVO_MOTOR(,YASKAWA,SGMAH-02AAA21 |
| SERVO_MOTOR(,YASKAWA,SGMAS-A5A2A41 |
| SERVO_DRIVER,YASKAWA,SGDM-08ADA-Y116 |
| SERVO_DRIVER,YASKAWA,SGDM-20ADA |
| SERVO_DRIVER,YASKAWA,SGDR-EH130RY55 |
| SERVO_MOTOR,YASKAWA,SGM-08A314C |
| SERVO_MOTOR(,YASKAWA,SGDV-R70A11B |
| SERVO_MOTOR(,YASKAWA,SGMAH-08AAA2B |
| LINEAR_MOTOR(,YASKAWA,SGLGW-30A080CP |
| SERVO_DRIVER,YASKAWA,JASP-WRCA01B |
| SERVO_MOTOR,YASKAWA,SGDV-5R5A15A |
| SERVO_MOTOR),YASKAWA,SGMAH-02AAA2B |
| SERVO_MOTOR,YASKAWA,SGMPH-15AAA41 |
| SERVO_MOTOR,YASKAWA,SGM-01A314 |
| SERVO_MOTOR,YASKAWA,SGDS-30A05A |
Stepping Modes
The following are the most common drive modes.
• Wave Drive (1 phase on)
• Full Step Drive (2 phases on)
• Half Step Drive (1 & 2 phases on)
• Microstepping (Continuously
varying motor currents)
For the following discussions please refer to the figure 6.
In Wave Drive only one winding is energized at any given time. The stator is energized according to the
sequence A → B → A → B and the rotor steps from position 8 → 2 → 4 → 6. For unipolar and bipolar wound motors with the same winding parameters this excitation mode would result in the same mechanical position. The disadvantage of this drive mode is that in the unipolar wound motor you are only using 25% and in the bipolar motor only 50% of the total motor winding at any given time. This means that you are not getting the maximum torque output from the motor
In Full Step Drive you are energizing two phases at any given time. The stator is energized according to
the sequence AB → AB → AB → AB and the rotor steps from position 1 → 3 → 5 → 7 . Full step mode results in the same angular movement as 1 phase on drive but the mechanical position is offset by one half of a full step. The torque output of the unipolar wound motor is lower than the bipolar motor (for motors with the same winding parameters) since the unipolar motor uses only 50% of the available winding while the bipolar motor uses the entire winding.
Half Step Drive combines both wave and full step (1&2 phases on) drive modes. Every second step only
one phase is energized and during the other steps one phase on each stator.
The stator is energized according to the sequence AB → B → AB → A → AB → B → AB → A and the
rotor steps from position 1 → 2 → 3 → 4 → 5 → 6 → 7 → 8. This results in angular movements that are half of those in 1- or 2-phases-on drive modes. Half stepping can reduce a phenomena referred to as resonance
which can be experienced in 1- or 2- phases-on drive modes.
SYNCHRONOUS SPEED
The speed with which the stator magnetic field rotates, which will determine the speed of
the rotor, is called the Synchronous Speed (SS). The SS is a function of the frequency
of the power source and the number of poles (pole pairs) in the motor. The relationship
to calculate the SS of an induction motor is:
1 SS = (120 X f) / P
Where:
SS = Synchronous Speed (RPM)
f = frequency (cycles / second) = 60
P = number of poles (pole pairs)
![]()