• Product
  • Suppliers
  • Manufacturers
  • Solutions
  • Free tools
  • Knowledges
  • Experts
  • Communities
Search


What is Field Oriented Control?

Encyclopedia
Encyclopedia
Field: Encyclopedia
0
China


What is Field Oriented Control?


Field Oriented Control Defined


Field oriented control is a sophisticated technique that manages AC induction motors by independently controlling torque and magnetic flux, similar to DC motors.


Working Principle of Field Oriented Control


The field oriented control consists of controlling the stator currents represented by a vector. This control is based on projections that transform a three phase time and speed dependent system into a two coordinate (d and q frame) time invariant system.


 These transformations and projections lead to a structure similar to that of a DC machine control. FOC machines need two constants as input references: the torque component (aligned with the q coordinate) and the flux component (aligned with d coordinate).


The three-phase voltages, currents and fluxes of AC-motors can be analyzed in terms of complex space vectors. If we take ia, ib, ic as instantaneous currents in the stator phases, then the stator current vector is defined as follow:


263d43bee7306602bf0bc15176396e62.jpeg


Where, (a, b, c) are the axes of three phase system.This current space vector represents the three phase sinusoidal system. It needs to be transformed into a two time invariant coordinate system. This transformation can be divided into two steps:


(a, b, c) → (α, β) (the Clarke transformation), which gives outputs of two coordinate time variant system.

(a, β) → (d, q) (the Park transformation), which gives outputs of two coordinate time invariant system.

 

The (a, b, c) → (α, β) Projection (Clarke transformation)Three-phase quantities either voltages or currents, varying in time along the axes a, b, and c can be mathematically transformed into two-phase voltages or currents, varying in time along the axes α and β by the following transformation matrix:

 

92023f8656e8329614a9fc7b2d10fec7.jpeg

 

62db6de744a10c16dc508f7ca1829daa.jpeg

1ac384a189a50579571447228509f4ab.jpeg


Assuming that the axis a and the axis α are along same direction and β is orthogonal to them, we have the following vector diagram:


The above projection modifies the three phase system into the (α, β) two dimension orthogonal system as stated below:


But these two phase (α, β) currents still depends upon time and speed.The (α, β) → (d.q) projection (Park transformation)This is the most important transformation in the FOC. In fact, this projection modifies the two phase fixed orthogonal system (α, β) into d, q rotating reference system. The transformation matrix is given below:


Where, θ is the angle between the rotating and fixed coordinate system.


If you consider the d axis aligned with the rotor flux, Figure 2 shows the relationship from the two reference frames for the current vector:


Where, θ is the rotor flux position. The torque and flux components of the current vector are determined by the following equations:


These components depend on the current vector (α, β) components and on the rotor flux position. If you know the accurate rotor flux position then, by above equation, the d, q component can be easily calculated. At this instant, the torque can be controlled directly because flux component (isd) and torque component (isq) are independent now.


d4deb33cce17640711eb777ae4cba3df.jpeg


Basic Module for Field Oriented Control


Stator phase currents are measured. These measured currents are fed into the Clarke transformation block. The outputs of this projection are entitled isα and isβ. These two components of the current enter into the Park transformation block that provide the current in the d, q reference frame. 


The isd and isq components are contrasted to the references: isdref (the flux reference) and isqref (the torque reference). At this instant, the control structure has an advantage: it can be used to control either synchronous or induction machines by simply changing the flux reference and tracking rotor flux position. In case of PMSM the rotor flux is fixed determined by the magnets so there is no need to create one. 


Therefore, while controlling a PMSM, isdref should be equal to zero. As induction motors need a rotor flux creation in order to operate, the flux reference must not be equal to zero. This easily eliminates one of the major shortcomings of the “classic” control structures: the portability from asynchronous to synchronous drives. 


The outputs of the PI controllers are Vsdref and Vsqref. They are applied to the inverse Park transformation block. The outputs of this projection are Vsαref and Vsβref are fed to the space vector pulse width modulation (SVPWM) algorithm block. The outputs of this block provide signals that drive the inverter. Here both Park and inverse Park transformations need the rotor flux position. Hence rotor flux position is essence of FOC.


The evaluation of the rotor flux position is different if we consider the synchronous or induction motor.In case of synchronous motor(s), the rotor speed is equal to the rotor flux speed. Then rotor flux position is directly determined by position sensor or by integration of rotor speed.


In case of asynchronous motor(s), the rotor speed is not equal to the rotor flux speed because of slip; therefore a particular method is used to evaluate rotor flux position (θ). This method utilizes current model, which needs two equations of the induction motor model in d,q rotating reference frame.


c96580c4b26b9f5cea398f1ee183dec2.jpeg


Simplified Indirect FOC Block Diagram


Classification of Field Oriented Control


FOC for the induction motor drive can be broadly classified into two types: Indirect FOC and Direct FOC schemes. In DFOC strategy rotor flux vector is either measured by means of a flux sensor mounted in the air-gap or by using the voltage equations starting from the electrical machine parameters.


 But in case of IFOC rotor flux vector is estimated using the field oriented control equations (current model) requiring a rotor speed measurement. Among both schemes, IFOC is more commonly used because in closed-loop mode it can easily operate throughout the speed range from zero speed to high-speed field-weakening.


Advantages of Field Oriented Control


  • Improved torque response.



  • Torque control at low frequencies and low speed.



  • Dynamic speed accuracy.



  • Reduction in size of motor, cost and power consumption.



  • Four quadrant operation.


  • Short-term overload capability. 


Give a tip and encourage the author!
Recommended
MVDC: Future of Efficient, Sustainable Power Grids
MVDC: Future of Efficient, Sustainable Power Grids
The Global Energy Landscape Is Undergoing a Fundamental Transformation toward a "fully electrified society," characterized by widespread carbon-neutral energy and the electrification of industry, transportation, and residential loads.In today’s context of high copper prices, critical mineral conflicts, and congested AC power grids, Medium-Voltage Direct Current (MVDC) systems can overcome many limitations of traditional AC networks. MVDC significantly enhances transmission capacity and efficienc
Edwiin
10/21/2025
Grounding Causes of Cable Lines and the Principles of Incident Handling
Grounding Causes of Cable Lines and the Principles of Incident Handling
Our 220 kV substation is located far from the urban center in a remote area, surrounded primarily by industrial zones such as Lanshan, Hebin, and Tasha Industrial Parks. Major high-load consumers in these zones—including silicon carbide, ferroalloy, and calcium carbide plants—account for approximately 83.87% of our bureau’s total load. The substation operates at voltage levels of 220 kV, 110 kV, and 35 kV.The 35 kV low-voltage side mainly supplies feeders to ferroalloy and silicon carbide plants
Felix Spark
10/21/2025
Overhead Power Lines & Towers: Types, Design & Safety
Overhead Power Lines & Towers: Types, Design & Safety
Besides ultra-high voltage AC substations, what we encounter more frequently are power transmission and distribution lines. Tall towers carry conductors that leap across mountains and seas, stretching into the distance before reaching cities and villages. This is also an interesting topic—today, let's explore transmission lines and their supporting towers.Power Transmission and DistributionFirst, let’s understand how electricity is delivered. The electric power industry primarily consists of fou
Encyclopedia
10/21/2025
Automatic Reclosing Modes: Single, Three-Phase & Composite
Automatic Reclosing Modes: Single, Three-Phase & Composite
General Overview of Automatic Reclosing ModesTypically, automatic reclosing devices are categorized into four modes: single-phase reclosing, three-phase reclosing, composite reclosing, and disabled reclosing. The appropriate mode can be selected based on load requirements and system conditions.1. Single-Phase ReclosingMost 110kV and higher transmission lines employ three-phase single-shot reclosing. According to operational experience, over 70% of short-circuit faults in high-voltage overhead li
Edwiin
10/21/2025
Send inquiry
Download
Get the IEE Business Application
Use the IEE-Business app to find equipment, obtain solutions, connect with experts, and participate in industry collaboration anytime, anywhere—fully supporting the development of your power projects and business.