Nonlinear Hydraulic Antilock Braking System and Fuzzy Control with Variable Slip Frequency Control to Improve Stopping Distance in Heterogeneous Road

2021 ◽  
Author(s):  
Muchammad Harly ◽  
Sumarli Sumarli ◽  
Marji Marji ◽  
Khisbullah Hudha
Author(s):  
Radu-Emil Precup ◽  
Sergiu Viorel Spataru ◽  
Emil M. Petriu ◽  
Stefan Preitl ◽  
Mircea-Bogdan Radac ◽  
...  

2011 ◽  
Vol 74 (11) ◽  
pp. 1883-1893 ◽  
Author(s):  
Andon V. Topalov ◽  
Yesim Oniz ◽  
Erdal Kayacan ◽  
Okyay Kaynak

2012 ◽  
Vol 229-231 ◽  
pp. 2394-2398 ◽  
Author(s):  
Vimal Rau Aparow ◽  
Ahmad Fauzi ◽  
Muhammad Zahir Hassan ◽  
Khisbullah Hudha

This paper presents about the development of an Antilock Braking System (ABS) using quarter vehicle model and control the ABS using different type of controllers. Antilock braking system (ABS) is an important part in vehicle system to produce additional safety for drivers. In general, Antilock braking systems have been developed to reduce tendency for wheel lock and improve vehicle control during sudden braking especially on slippery road surfaces. In this paper, a variable structure controller has been designed to deal with the strong nonlinearity in the design of ABS controller. The controllers such as PID used as the inner loop controller and Fuzzy Logic as outer loop controller to develop as ABS model to control the stopping distance and longitudinal slip of the wheel.


Author(s):  
Radu-Emil Precup ◽  
Sergiu Viorel Spataru ◽  
Mircea-Bogdan Radac ◽  
Emil M. Petriu ◽  
Stefan Preitl ◽  
...  

Energies ◽  
2021 ◽  
Vol 14 (5) ◽  
pp. 1294
Author(s):  
Xiangdang XUE ◽  
Ka Wai Eric CHENG ◽  
Wing Wa CHAN ◽  
Yat Chi FONG ◽  
Kin Lung Jerry KAN ◽  
...  

An antilock braking system (ABS) is one of the most important components in a road vehicle, which provides active protection during braking, to prevent the wheels from locking-up and achieve handling stability and steerability. The all-electric ABS without any hydraulic components is a potential candidate for electric vehicles. To demonstrate and examine the all-electric ABS algorithms, this article proposes a single-wheel all-electric ABS test bench, which mainly includes the vehicle wheel, the roller, the flywheels, and the electromechanical brake. To simulate dynamic operation of a real vehicle’s wheel, the kinetic energy of the total rotary components in the bench is designed to match the quarter of the one of a commercial car. The vertical force to the wheel is adjustable. The tire-roller contact simulates the real tire-road contact. The roller’s circumferential velocity represents the longitudinal vehicle velocity. The design and analysis of the proposed bench are described in detail. For the developed prototype, the rated clamping force of the electromechanical brake is 11 kN, the maximum vertical force to the wheel reaches 300 kg, and the maximum roller (vehicle) velocity reaches 100 km/h. The measurable bandwidth of the wheel speed is 4 Hz–2 kHz and the motor speed is 2.5 Hz–50 kHz. The measured results including the roller (vehicle) velocity, the wheel velocity, and the wheel slip are satisfactory. This article offers the effective tools to verify all-electric ABS algorithms in a laboratory, hence saving time and cost for the subsequent test on a real road.


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