Accuracy and Performance Evaluation of the Parameters Involved in Pulse Laser Metrology Using Time Window Gate Technique
In order to evaluate and improve the accuracy of the distance traveled by the laser beam with a fixed distance, first the relation of the pulsed laser reflection signal reflected from the surface of the objects should be calculated and analyzed. Then, the broadening angle of the reflection signal and the relative broadening factor should be determined. In this research, an analytical relationship for distance measurement and detection for pulsed laser and statistical distance measurement has been designed, in which the minimum measurable distance and the necessary calculations for its quantitative estimation are presented. In this regard, the relationship between the broadening coefficient and relevant parameters such as detection distance, radiation angle to the target surface, and radiation reflection signal have been determined and evaluated. Simulation results and experimental results show that the maximum laser range for reliable distance measurement is 36.5 m, which is associated with a statistical error of 0.24 to 0.48 m. As the measurement threshold increases, the distance measurement error and the reliable range decrease. As the laser radiation angle increases, the divergence angle and the broadening coefficient increase, and as the laser pulse width decreases, the broadening coefficient decreases. Since increasing the angle of the target surface increases the divergence of the reflection signal, the mean values and variance of the reflection signal will also increase.
-
Miniaturization of combustion gas transmission equipment using traveling wave rotary piezoelectric actuator with the approach of improving safety and functional characteristics
Ebrahim Abolghasemi, *, Mehrdad Khandaei
Amirkabir Journal Mechanical Engineering, -
Modeling and Simulation of 6DOF Robot Manipulators with Tactile Position-Force Control
Mohammad Reza Najafi *, Ahmad Khoogar, Hadi Darabi
International Journal of Advanced Design and Manufacturing Technology, Mar 2022