Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Application of Tilt Integral Derivative for Efficient Speed Control and Operation of BLDC Motor Drive for Electric Vehicles

View through CrossRef
This study presents the tilt integral derivative (TID) controller technique for controlling the speed of BLDC motors in order to improve the real-time control of brushless direct current motors in electric vehicles. The TID controller is applied to the considered model to enhance its performance, e.g., torque and speed. This control system manages the torque output, speed, and position of the motor to ensure precise and efficient operation in EV applications. Brushless direct current motors are becoming more and more popular due to their excellent torque, power factor, efficiency, and controllability. The differences between PID, TID, and PI controllers are compared. The outcomes demonstrated that the TID control enhanced the torque and current stability in addition to the BLDC system’s capacity to regulate speed. TID controllers provide better input power for BLDC (brushless DC) drives than PI and PID controllers do. Better transient responsiveness and robustness to disturbances are features of TID controller design, which can lead to more effective use of input power. TID controllers are an advantageous choice for BLDC drive applications because of their increased performance, which can result in increased system responsiveness and overall efficiency. In an experimental lab, a BLDC motor drive prototype is implemented in this study. To fully enhance the power electronic subsystem and the brushless DC motor’s real-time performance, a test bench was also built.
Title: Application of Tilt Integral Derivative for Efficient Speed Control and Operation of BLDC Motor Drive for Electric Vehicles
Description:
This study presents the tilt integral derivative (TID) controller technique for controlling the speed of BLDC motors in order to improve the real-time control of brushless direct current motors in electric vehicles.
The TID controller is applied to the considered model to enhance its performance, e.
g.
, torque and speed.
This control system manages the torque output, speed, and position of the motor to ensure precise and efficient operation in EV applications.
Brushless direct current motors are becoming more and more popular due to their excellent torque, power factor, efficiency, and controllability.
The differences between PID, TID, and PI controllers are compared.
The outcomes demonstrated that the TID control enhanced the torque and current stability in addition to the BLDC system’s capacity to regulate speed.
TID controllers provide better input power for BLDC (brushless DC) drives than PI and PID controllers do.
Better transient responsiveness and robustness to disturbances are features of TID controller design, which can lead to more effective use of input power.
TID controllers are an advantageous choice for BLDC drive applications because of their increased performance, which can result in increased system responsiveness and overall efficiency.
In an experimental lab, a BLDC motor drive prototype is implemented in this study.
To fully enhance the power electronic subsystem and the brushless DC motor’s real-time performance, a test bench was also built.

Related Results

IMPLEMENTASI DAN ANALISIS KENDALI KECEPATAN MOTOR BLDC 1 kW MENGGUNAKAN ALGORITMA PID
IMPLEMENTASI DAN ANALISIS KENDALI KECEPATAN MOTOR BLDC 1 kW MENGGUNAKAN ALGORITMA PID
Pemanfaatan teknologi alternatif dalam bidang otomotif maupun otomasi industri menggunakan motor Brushless Direct Current (BLDC) sudah banyak digunakan karena memiliki kelebihan di...
Exploring the Cargo Potential: A Comprehensive Analysis of Kertajati Airport
Exploring the Cargo Potential: A Comprehensive Analysis of Kertajati Airport
Motorized vehicle can’t be apart from our daily activity, because it’s very significantly save our time and energy. According to Erwin (in Sasongko, 2014: 1) mentioned air pollutio...
Sliding Mode Controlled drives for wide speed operation of Threephase Induction Motor
Sliding Mode Controlled drives for wide speed operation of Threephase Induction Motor
Induction motor is widely used due to advantages in terms of performance, size, maintenance and efficiency compared to dc motor. Induction motor is either Scalar Controlled or Vect...
Performance Analysis of Brushless DC Motor Drive for Air Conditioner
Performance Analysis of Brushless DC Motor Drive for Air Conditioner
This paper presents an efficiency comparison and verification of two types of Brushless DC (BLDC) motors and drives combination. The trapezoidal BLDC motor is excited by trapezoida...
Drive systems optimization in electric, hybrid and fuel cell vehicles
Drive systems optimization in electric, hybrid and fuel cell vehicles
(English) We are currently immersed in the fourth industrial revolution that involves, among others, technology to prevent climate change, transformation of the transport sector, ...
The Rise and Fall of a Mid-West Tilt: Seasonal Evolution of Titan’s Stratospheric Tilt Axis
The Rise and Fall of a Mid-West Tilt: Seasonal Evolution of Titan’s Stratospheric Tilt Axis
Titan’s entire stratosphere is in superrotation (Flasar et al. 2005) and appears to rotate about an axis offset from its solid body rotation axis by around 4o (Achterberg et al. 20...
Brushless DC motor drive with optimal fractional-order sliding-mode control based on a genetic algorithm
Brushless DC motor drive with optimal fractional-order sliding-mode control based on a genetic algorithm
Introduction. Brushless DC (BLDC) motor is a type of permanent magnet synchronous motor that operates without brushes employed in many applications owing to its efficiency and cont...
Speed control of BLDC motor using microcontroller
Speed control of BLDC motor using microcontroller
Brushless DC motors (BLDC) are becoming increasingly attractive in a large number of applications due to performance advantages such as reduced size and cost, reduced torque ripple...

Back to Top