Description
IS215WEMAH1B Product Introduction
The specific application scope of the product
will depend on the needs of system integration and industrial application, but generally speaking, this type of embedded controller module can be applied to the following categories:
manufacturing processes, etc.
monitoring and control system.
of the controller module, as well as the specific needs of the customer.
designed to manage gas or steam turbines.
It has a CIMPLICITY graphical interface and an HMI with software suitable for running heavy-duty turbines.
be installed at the bottom of the cabinet. For a small setup that is easy to serve a triple redundant system, up to three components can be installed side by side.
he board can operate within a temperature range of 0 to 65 degrees Celsius without the need for a fan for cooling. NFPA Class 1. This board can be used for two applications.
The most fundamental reason for distinguishing these two motor types is that the design of the air gap magnetic field is different. So the following differences ariseThe back EMF waveform is different:BLDC: Approximate trapezoidal wave (ideal state);PMSM: sine wave (ideal state);The three-phase current waveforms are different:BLDC: Approximate square wave or trapezoidal wave (ideal state);PMSM: sine wave (ideal state);Differences in control systems:BLDC: usually includes position controller, speed controller and current (torque) controller;PMSM: Different control strategies will have different control systems;Controls are different:BLDC: 120-degree square wave current, using PWM control;PMSM: Positive Xuan wave current, controlled by SPWM SVPWM.However, in actual control, brushless DC can also be controlled by FOC, and permanent magnet synchronous motors can also be controlled by square waves.Just like the controllers of electric vehicles, I have disassembled and studied three or four. The interfaces are all the same, the control chips are different, and of course the control algorithms are also different. Electric vehicles controlled by sine waves have very low sound when starting and running, and there is no jitter during operation; but electric vehicles controlled by square waves have very obvious sounds, and the jitter during operation can also be felt. The judder is due to definite torque ripples.Motors controlled by square waves have higher power efficiency, because motors controlled by sine waves have a lower effective voltage.4. Control technology of permanent magnet synchronous motorPermanent magnet synchronous motors and brushless DC motors can be operated using the same control method.
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